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      <text:p text:style-name="P2"><text:span text:style-name="T4">Cuadernos de Nuestra América/Nueva Época/No. 013 / octubre-diciembre 2024/ </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T4">RNPS: 2529 /ISSN: 2959-9849/123 pp.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T5">Intercambio académico entre la Universidad de Vermont y el </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T5">Colegio Oberlin de los Estados Unidos y el Centro de Estudios </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T5">Ambientales de Cienfuegos (CEAC), Cuba</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T6">Academic exchange between the University of Vermont and Oberlin </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T6">College in the United States and the Center for Environmental </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T6">Studies of Cienfuegos (CEAC), Cuba</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T7">Dra. C. Rita Y. Sibello Hernández </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T8">Centro de Estudios Ambientales de Cienfuegos (CEAC)</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T8">ORCID: 0000-0003-1308-2917 <text:s/></text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T7">Lic. Maikel Hernández Núñez </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T8">Centro de Estudios Ambientales de Cienfuegos (CEAC)</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T8">ORCID: 0009-0003-9507-6760</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T8">Fecha de recepción: noviembre 2024</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T8">Fecha de aceptación: noviembre 2024</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T7">Resumen</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Desde el triunfo revolucionario, las relaciones entre Cuba y los Estados Unidos han sido muy tensas, dificul-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">tando la colaboración entre los científicos de ambas naciones. A pesar de esto, en 2018, investigadores de las </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">universidades estadounidenses de Vermont y Oberlin y el Centro de Estudios Ambientales de Cienfuegos (CEAC), </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">de Cuba, propusieron realizar un intercambio académico, sustentado en la ejecución de un proyecto de investi-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">gación. El objetivo principal fue evaluar las implicaciones que ha tenido la transición de la agricultura intensiva </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">a la de conservación, en el paisaje de Cuba. Las técnicas utilizadas para evaluar la erosión de los suelos, en estos </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">dos períodos, fueron las nucleares, basadas en el uso de los radionúclidos como trazadores ambientales. Para </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">la medición de los radionúclidos se utilizó la espectrometría gamma de bajo fondo. Complementariamente, se </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">caracterizaron químicamente las aguas y los sedimentos de los ríos monitoreados, de lo cual existía poca infor-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">mación. Las concentraciones de los metales en los sedimentos se determinaron por fluorescencia de rayos X. </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Se cumplieron los objetivos propuestos en el proyecto y los resultados corroboran la incidencia positiva de la </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">agricultura de conservación en la calidad de las aguas y la protección de los suelos. El intercambio académico </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">ejecutado es un ejemplo de que la colaboración entre científicos de Cuba y de los Estados Unidos, es posible y </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">necesaria. Esta actividad científica se desarrolló en un ambiente amigable y de respeto, donde estadounidenses </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">y cubanos trabajaron mancomunadamente y compartieron sus experiencias y conocimientos. </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T10">Palabras claves: </text:span><text:span text:style-name="T11">intercambio académico, erosión de los suelos, calidad de las aguas, radionúclidos.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Since the triumph of the Cuban Revolution, relations between Cuba and the United States have been very </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">tense, making collaboration between scientists from both nations difficult. Despite this, in 2018, researchers </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">from the American universities of Vermont and Oberlin and the Cienfuegos Environmental Studies Center from </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Cuba proposed an academic exchange, based on the execution of a research project. The main objective was to </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">evaluate the implications that the transition from intensive to conservation agriculture has had on the landscape </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">of Cuba. The technique used to evaluate soil erosion in these two periods was the nuclear technique, based on </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T1">CUADERNOS DE NUESTRA AMÉRICA</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T2">ARTíCUlOS</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T3">2</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">the use of radionuclides as environmental tracers. Low-background gamma spectrometry was used to measure </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">radionuclides. In addition, the waters and sediments of the monitored rivers were chemically characterized, </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">about which existed scarce information. Metal concentrations in sediments were determined by X-ray fluores-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">cence. The objectives proposed in the project were achieved and the results corroborate the positive impact of </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">conservation agriculture on water quality and soil protection. The academic exchange carried out is an example </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">that collaboration between scientists from Cuba and United States is possible and necessary. This scientific </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">activity was developed in a friendly and respectful environment, where Americans and Cubans worked together </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">and shared their experiences and knowledge.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T10">Keywords:</text:span><text:span text:style-name="T11"> academic exchange, soil erosion, water quality, radionuclides.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T7">Introducción</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">El intercambio académico entre las universidades estadounidenses de Vermont y Oberlin con el Centro de </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Estudios Ambientales de Cienfuegos, de Cuba, estuvo precedido por varias comunicaciones, donde los inves-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">tigadores de ambos países habían encontrado temas afines en sus investigaciones; surgiendo así un interés </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">mutuo de colaboración. </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Los líderes científicos de los Estados Unidos, la profesora asistente de Geología del Colegio Oberlin, Dra. C. </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Amanda H. Schmidt y el profesor de Geología de la Universidad de Vermont, Dr. C. Paul R. Bierman, encontraron </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">en las búsquedas bibliográficas de su interés, artículos científicos relacionados con la aplicación de las técnicas </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">nucleares en investigaciones de la erosión de los suelos y de los procesos de sedimentación, de investigadores </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">del CEAC, entre ellos, de los doctores Carlos M. Alonso Hernández, Misael Díaz Asencio (datación de sedimentos </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">usando el plomo -210 (210Pb)) y Rita Y. Sibello Hernández (erosión de los suelos usando el cesio-137 (137Cs)). </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Nació así la idea del intercambio científico. Por la parte cubana, fue la Dra. C. Sibello Hernández, quien centró la </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">tramitación de los protocolos oficiales para llevar a cabo el intercambio con los investigadores de los Estados </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Unidos, con el Departamento de Relaciones Internacionales del Ministerio de Ciencia Tecnología y Medioam-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">biente de Cuba (CITMA), logrando la aprobación.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Fue a finales del mes de enero de 2018, cuando en las instituciones del CEAC, se recibieron por primera vez, </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">a los doctores estadounidenses Schmidt y Bierman. El CEAC estuvo representado por su entonces director, el </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Dr. C. Reinaldo A. Acosta Melián, el Dr. C. Alonso Hernández, la Dra. C. Sibello Hernández y otros investigadores </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">y especialistas de la institución. La reunión duró dos días, los líderes científicos de ambas naciones expusieron </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">sus experiencias en el tema de interés y sus principales resultados. </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">La agenda de trabajo concluyó con la presentación de un proyecto de investigación relacionado con los </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">procesos de erosión en importantes cuencas de las regiones central, occidental y oriental de Cuba. En el proyecto </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">participarían de manera mancomunada investigadores, especialistas y estudiantes de las tres instituciones. Los </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">fondos estarían cubiertos por la Fundación Nacional de Ciencia (NSF, por sus siglas en inglés), de los Estados </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Unidos; y la Agencia de Energía Nuclear y Tecnologías de Avanzada (AENTA) de Cuba, financiaría en el marco del </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">programa “Tecnologías de Aplicaciones nucleares, el láser, la óptica y la ultrasónica para producir y generalizar </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">bienes y servicios”, a los proyectos nacionales “Uso de Técnicas Nucleares e Isotópicas para una Mayor Eficien-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">cia en el Manejo del Agua y el Suelo en la Agricultura, Vinculadas a Estrategias de Adaptación y Mitigación del </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Cambio Climático-ISOAGRI”, a cargo de Sibello Hernández y el proyecto “Soluciones a Problemas Específicos </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">del Manejo Integrado de Cuencas y Áreas Costeras en Cuba, a través de Técnicas Isotópicas y Nucleares (TIN)- </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">MICATIN” dirigido por Alonso Hernández, los cuales funcionarían como proyectos contrapartes. </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">La idea del proyecto se sustenta en que, como es sabido, para evitar los efectos perjudiciales de la defores-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">tación y de la agricultura intensiva y mecanizada, a menudo se emplean prácticas agrícolas de conservación. </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Aunque estas prácticas de menor impacto se han implementado en todo el mundo, los resultados rara vez han </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">sido cuantificados a escala de paisaje. En este sentido, Cuba se muestra como un laboratorio de prueba único, en </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">el que, durante 30 años, a partir del triunfo revolucionario, se desarrolló una agricultura industrial a gran escala, </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T1">CUADERNOS DE NUESTRA AMÉRICA</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">caracterizada por el uso de maquinaria pesada, pesticidas y fertilizantes, lo cual hipotéticamente, debe estar </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">relacionada con impactos negativos al medio ambiente de contaminación y del incremento de los procesos de </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">erosión–sedimentación, hasta los años 90, cuando el campo socialista desapareció y nuestro país quedó aislado </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">y los suministros agrícolas comenzaron a escasear. A partir de entonces y hasta la actualidad, se practica una </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.577cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="5.457cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">agricultura orgánica y de conservación, lo cual supone una disminución sustancial de la contaminación y de la </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">erosión de los suelos. <text:s/></text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.274cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="6.573cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Este hecho propició proponer la hipótesis de investigación de que la ejecución del proyecto permitiría la </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.018cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="7.081cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">evaluación de los efectos de la agricultura de conservación en la disminución de la envergadura de los procesos </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">erosivos y permitiría comparar los cambios naturales del paisaje a largo plazo.</text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Todos los participantes en la primera reunión estuvieron de acuerdo en que la ejecución del proyecto de </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">investigación propuesto resultaría beneficiosa para ambos países. Para los investigadores cubanos sería una </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.078cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="9.213cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">oportunidad de entrenamiento en la toma de muestras, y de relacionarse con técnicas analíticas novedosas </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.718cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="9.721cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">utilizadas para la cuantificación de la erosión de los suelos y de la sedimentación mediante otros métodos </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.505cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="10.229cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">basados en la medición de los isótopos 10Be y 26Al. El intercambio académico propiciaría la transferencia del </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.356cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="10.737cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T12">know how</text:span><text:span text:style-name="T9"> de la técnica hacia los cubanos y permitiría comparar los resultados previstos en el marco del proyecto </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.064cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="11.245cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">colaborativo con los existentes en el país, validando así los métodos implementados. Además, determinarían las </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.802cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="11.753cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">tasas de erosión y de sedimentación en sitios de interés, donde no existían suficientes datos de estos procesos </text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">ambientales. </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.883cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="12.869cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Para los investigadores estadounidenses la motivación sería la oportunidad única de aplicar estos métodos </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.9cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="13.377cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">de estudios de erosión–sedimentación en condiciones socioambientales diferentes, lo cual contribuiría a su </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.429cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="13.885cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">fortalecimiento como investigadores, además de intercambiar experiencias persona a persona con los investi-</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="3.732cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="14.393cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">gadores de Cuba.</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="2.466cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="15.201cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T7">Desarrollo</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.535cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="15.809cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Para conocer la magnitud de los procesos erosivos y en qué período de tiempo han ocurrido, son utilizados un </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.649cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="16.317cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">grupo particular de radionúclidos ambientales, denominados radionúclidos provenientes de las precipitaciones </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.132cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="16.825cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">radiactivas, cuyo término en inglés es </text:span><text:span text:style-name="T12">fallout radionuclides</text:span><text:span text:style-name="T9"> (FRNs), los cuales incluyen a radionúclidos artificiales </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.036cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="17.333cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">como cesio-137 (137Cs) y radioisótopos geogénicos tales como el plomo-210 (210Pb) y más recientemente </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.929cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="17.841cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">radionúclidos cosmogénicos como el berilo-7 (7Be). Estos han sido utilizados a nivel global para obtener tasas y </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.005cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="18.349cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">patrones de erosión y deposición del suelo a diversas escalas temporales y espaciales (Zapata &amp; Nguyen, 2009; </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="5.963cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="18.857cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Mabit, 2008; Zapata, 2002).</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.65cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="19.465cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">El 137Cs es un radionúclido artificial, producto de la fisión nuclear del uranio-235 (235U), que existe en el </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.573cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="19.973cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">medio ambiente debido especialmente a los ensayos nucleares a cielo abierto de gran potencia, ocurridas fun-</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.221cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="20.481cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">damentalmente durante las décadas de 1950 y 1960. Esto provocó que se emitieran a la estratósfera cantidades </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.027cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="20.989cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">medibles de este radionúclido, el cual se dispersó de manera casi homogénea por todo el planeta, debido a </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.319cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="21.497cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">los movimientos atmosféricos. Posteriormente, por las deposiciones atmosféricas </text:span><text:span text:style-name="T12">fallout</text:span><text:span text:style-name="T9">, llega a la superficie </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.102cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="22.005cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">terrestre y se fija fuertemente a las partículas finas del suelo, convirtiéndose en un radiotrazador sin igual de los </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.747cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="22.513cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">movimientos físicos de este. Ello, unido a las propiedades radiactivas del 137Cs: un período de semidesintegra-</text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.28cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="23.021cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">ción relativamente largo, 30,2 años y su fácil detección por gamma espectrometría, gracias a su línea de emisión </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.434cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="23.529cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">característica de 662 keV, hacen posible que sea utilizado para estudiar la distribución del suelo en el paisaje </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="12.351cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="24.037cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">(Ritchie &amp; Mchenry, 1990; Walling &amp; Quine, 1991 y 1993).</text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">El Pb-210, por el contrario, es un radionúclido natural perteneciente a la serie radiactiva del uranio-238 (238U). <text:s/></text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.335cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="25.153cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">A partir del 238U que está en el suelo, se origina por desintegración radiactiva, el radio-226 (226Ra), el cual, a su </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.382cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="25.661cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">vez, al desintegrarse forma el radón-222 (222Rn), que es un gas noble. Por la desintegración del 222Rn, atrapado </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.823cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="26.169cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">en el suelo, se forma el plomo soportado (210Pbsoport.) en el mismo suelo. Otra parte del 222Rn logra difundir-</text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.937cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="26.677cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">se a través del suelo, pasa a la atmósfera y en su desintegración radiactiva origina 210Pb. Este 210Pb, formado </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T1">CUADERNOS DE NUESTRA AMÉRICA</text:span></text:p>
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    <draw:frame draw:style-name="gr3" draw:text-style-name="P4" draw:layer="layout" svg:width="3.626cm" svg:height="0.7cm" svg:x="9.513cm" svg:y="2.309cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T2">ARTíCUlOS</text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T3">4</text:span></text:p>
     </draw:text-box>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">en la atmósfera, llega al suelo por la precipitación atmosférica, produciendo un exceso de 210Pb en el suelo </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="7.385cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="3.933cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">(210Pbexc.) (Walling &amp; He, 1999). </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.71cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="4.541cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Debido a la procedencia atmosférica de 137Cs y de 210Pbexc. sus distribuciones en el perfil del suelo son </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.581cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="5.049cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">similares y se encuentran en las capas superiores del suelo. Sin embargo, los tiempos de entrada al suelo de estos </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.81cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="5.557cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">radionúclidos son diferentes. La entrada de 137Cs al suelo ocurrió principalmente en la década de 1960, época </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.37cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="6.065cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">en que en Cuba se desarrollaba la agricultura intensiva. El 210Pbexc. se deposita en el suelo continuamente. </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.527cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="6.573cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Gracias a esta diferencia, determinando la presencia o la ausencia de ambos radionúclidos se pueden evaluar </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.721cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="7.081cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">las características de la erosión de los suelos, dadas por su rapidez y profundidad (Walling &amp; Woodward, 1992).</text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.938cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="7.689cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Cuando el 137Cs está presente, el suelo experimentó una erosión superficial lenta durante y después de la </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.319cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="8.197cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">deposición del 137Cs (1945-hasta la actualidad). Cuando el 137Cs está ausente, el sitio experimentó erosión </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.179cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="8.705cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">rápida y profunda durante o después de la deposición de 137Cs. Cuando el 210Pbexc. es detectable, el sitio está </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.218cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="9.213cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">experimentando una erosión superficial lenta. Cuando 210Pbexc. está ausente, el sitio está experimentando </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.044cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="9.721cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">actualmente erosión rápida y profunda. Al determinar la presencia o la ausencia de ambos radionúclidos en </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.331cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="10.229cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">muestras de suelos, podemos evaluar las características de la erosión de los suelos en el pasado y en el presente </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="6.238cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="10.737cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">(Walling &amp; Woodward, 1992).</text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.074cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="11.345cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Por otra parte, es conocido que la denudación a escala del paisaje se produce tanto por la eliminación física </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.082cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="11.853cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">de masa (erosión) como por la disolución química de los minerales en las rocas. El sedimento producido por </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.256cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="12.361cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">la erosión del lecho rocoso se desplaza pendiente abajo hacia el nivel de base, mientras que la disolución de </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.476cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="12.869cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">la roca mueve la masa en solución desde el paisaje hasta los ríos y luego al océano. Entonces, la medición de </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.167cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="13.377cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">los nucleidos cosmogénicos en los sedimentos de los ríos se puede utilizar para inferir la tasa de generación </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.742cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="13.885cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">de sedimentos promediada espacialmente de una cuenca de drenaje (Brown </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 1995; Granger </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 1996; </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.908cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="14.393cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Bierman &amp; Steig, 1996), pero no proporciona información sobre los procesos, como la disolución de la roca, que </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.747cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="14.901cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">ocurren en profundidad. Suponiendo una densidad de la roca fuente, se pueden calcular las tasas equivalentes </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="9.955cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="15.409cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">de reducción del paisaje a lo largo del tiempo. </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">En una cuenca que se erosiona de manera constante, la concentración de nucleidos cosmogénicos en una </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.174cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="16.525cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">muestra de sedimento refleja la tasa a la que se eliminó la masa de la superficie y cerca de ella a medida que se </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.242cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="17.033cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">exhumaba el material tanto a través de la erosión física como de la disolución de la roca (Lal, 1991). La medición </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.607cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="17.541cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">de múltiples nucleidos cosmogénicos con diferentes vidas medias (períodos de semidesintegración radiactiva) </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.091cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="18.049cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">en la misma muestra puede brindar más información sobre el historial de exposición de los materiales de la </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.823cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="18.557cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">superficie, como la mezcla del suelo y el tiempo de residencia (Lal &amp; Chen, 2005), así como el almacenamiento </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.039cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="19.065cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">de sedimentos dentro de la cuenca hidrográfica (Granger &amp; Muzikar, 2001). Entre estos nucleidos cosmogénicos </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.593cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="19.573cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">están el aluminio-26 (26Al) y el berilio-10 (10Be). El 26Al se produce a partir del argón (Ar) atmosférico debido a la </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.09cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="20.081cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">espalación de rayos cósmicos de protones (es decir, protones con altísima energía). El 10Be también se produce </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.535cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="20.589cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">en la atmósfera terrestre mediante la espalación, producida por el bombardeo de la radiación cósmica de alta </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.527cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="21.097cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">energía sobre los núcleos de oxígeno y nitrógeno. Debido a que el berilio tiende a existir en disolución acuosa </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.327cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="21.605cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">con valores de pH menores que 5,5, este berilio atmosférico formado es arrastrado por el agua de lluvia (cuyo pH </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.124cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="22.113cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">suele ser inferior a 5,5), una vez en la tierra, la solución se torna alcalina, precipitando el berilio que queda alma-</text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.946cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="22.621cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">cenado en el suelo durante largo tiempo (período de semidesintegración de 1,387 millones de años). Se conoce </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.45cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="23.129cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">que la relación de producción de 26Al / 10Be, en la superficie en latitudes medias y bajas es de aproximadamente </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.554cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="23.637cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">6,75 (Nishiizumi </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 1989; Balco </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 2008). Esta relación se ha utilizado para estudiar el papel del transporte, </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.599cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="24.145cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">deposición y almacenamiento de sedimentos y la erosión. Si el sedimento que ha acumulado nucleidos cosmo-</text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.047cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="24.653cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">génicos se entierra de manera tal que su producción es insignificante, esta proporción disminuye porque el 26Al </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="9.565cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="25.161cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">se desintegra más rápidamente que el 10Be.</text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.226cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="25.769cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">De manera similar, la mezcla vertical dentro de una columna de suelo tiene el efecto de aumentar el tiempo </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.993cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="26.277cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">de residencia cerca de la superficie de los granos de sedimento, suprimiendo la proporción 26Al/10Be en el </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="20.275cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="26.785cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">sedimento desprendido de la superficie del paisaje durante la erosión (Makhubela </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 2019).</text:span></text:p>
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    </draw:frame>
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      <text:p text:style-name="P2"><text:span text:style-name="T1">CUADERNOS DE NUESTRA AMÉRICA</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T2">ARTíCUlOS</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T3">5</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Todos estos fundamentos descritos anteriormente, constituyen las bases de las técnicas implementadas en </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">la investigación en el marco del proyecto colaborativo propuesto.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">En el mes de agosto de 2018, los investigadores cubanos habían tramitado satisfactoriamente las visas volantes </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">y los permisos aduaneros para la llegada de los colegas estadounidenses, acompañados del equipamiento que </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.496cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="5.557cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">sería utilizado en las actividades de campo del proyecto, así como los permisos para acceder a las áreas naturales </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">que serían monitoreadas en la región central de Cuba.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">El grupo de investigadores que ejecutó la primera campaña estuvo conformado por siete cubanos y seis es-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">tadounidenses, entre los que figuraban además del personal científico, el escritor de ciencia y medio ambiente </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Joshua E. Brown de la Universidad de Vermont y por la parte cubana Maikel Hernández Núñez, comunicador del </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">CEAC. Joshua y Maikel fueron involucrados en estas actividades y debían cumplir con su misión de comunicar a </text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">un público más amplio la ejecución y los logros de la campaña.</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.251cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="9.313cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">El alcance de la campaña fue colectar muestras de agua y sedimentos en alrededor de 30 sitios de las provincias </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Villa Clara, Sancti Spíritus y Cienfuegos. El criterio de selección de estos sitios estuvo dado por varios factores, en </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">primer lugar, debían tener pendientes de cuencas representativas de estas provincias y debían ser representati-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">vos de la intensidad del uso del suelo, del uso agrícola y de la vegetación y, por último, las cuencas a monitorear </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">debían ser lo suficientemente grandes para tener arroyos que acumularan y transportaran mucho sedimento </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">proveniente de la erosión dentro de la cuenca. El objetivo era dilucidar la magnitud de los procesos erosivos </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.446cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="12.361cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">en el paisaje durante un tiempo considerable (más de 50 años), que incluía un primer período de aproximada-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">mente 30 años (1959-1990) de una agricultura intensiva, seguido de un período de tiempo similar (1990-2018), </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.827cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="13.377cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">pero de una agricultura de conservación. Esta cruzada inició un extenso cronograma de trabajo, tributando a la </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.403cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="13.885cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">“</text:span><text:span text:style-name="T9">investigación agrícola y técnicas de manejo para la conservación de suelos y bosques”, una de las ocho áreas de </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">cooperación, contempladas en el Memorando de Entendimiento entre el Departamento de Agricultura de los </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Estados Unidos (USDA, por sus siglas en inglés) y el Ministerio de la Agricultura de Cuba, firmado el 21 de marzo </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">de 2016 (USDA, 2016).</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.048cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="16.017cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Para la ejecución de la campaña, el personal se dividió en dos grupos, tratando que, en cada uno, estuviera </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.37cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="16.525cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">el mismo número de cubanos y estadounidenses, lo cual facilitaría el intercambio entre los investigadores de </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.895cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="17.033cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">las dos naciones. Un grupo, estuvo liderado por Paul Bierman y por el M. Sc. Alejandro García Moya, este último </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.417cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="17.541cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">investigador del CEAC. Además de otros especialistas y estudiantes, en ese grupo iba Joshua, el periodista es-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">tadounidense. El otro grupo de investigadores y estudiantes de ambos países, lo lideraron Amanda Schmidt y </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Rita Sibello, acompañadas por Maikel Hernández, el comunicador del CEAC.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">En este sentido, para caracterizar el ambiente, se seleccionaron 25 ríos en la región central, con diferentes usos de </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.84cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="19.673cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">la tierra, desde bosques hasta uso agrícola. Los sitios seleccionados a investigar fueron repartidos entre ambos </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">grupos, cada uno recorrería sitios diferentes. En cada sitio de muestreo se colectaron muestras de sedimentos </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.407cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="20.689cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">fluviales, las cuales se tamizaron, tomando muestras menores de 63 micras y muestras con una granulometría de </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">250-850 micras (Figura 1). De cada muestra, una mitad fue para el Laboratorio de Ensayos Ambientales (LEA) del </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="25.643cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="21.705cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">CEAC y otra para los laboratorios de las universidades estadounidenses. Las muestras se envasaron en bolsas de nailon </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">y se etiquetaron correctamente para identificar el sitio de procedencia, luego fueron cuidadosamente transpor-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">tadas. A estas muestras tanto en el LEA como en los laboratorios extranjeros, se les analizaría por fluorescencia </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.895cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="23.229cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">de rayos X (FRX), espectrometría gamma y se determinarían los isótopos estables de carbono y nitrógeno. Para </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.95cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="23.737cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">las muestras de aguas fluviales, se determinaron </text:span><text:span text:style-name="T12">in situ </text:span><text:span text:style-name="T9">diferentes parámetros como la temperatura, el oxígeno </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.141cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="24.245cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">disuelto y la conductividad, los cuales caracterizan a los ríos monitoreados y se tomaron, además, muestras </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.671cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="24.753cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">duplicadas para su análisis isotópico en el LEA y en los laboratorios de las universidades de los Estados Unidos </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.259cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="25.261cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">(Figura 2). También, en las muestras de agua de los ríos monitoreados, se determinaron el número más probable </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">(NMP) de bacterias E. Coli, realizando su incubación en el campo (Figura 3). Complementariamente, se realizaron </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">determinaciones en el campo, de las concentraciones de algunos aniones presentes en las aguas tales como </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">nitratos, cloruros y fosfatos.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T13">Figura 1. El escritor de ciencia y medio ambiente Joshua E. Brown de la Universidad de Vermont toma imágenes mientras investiga-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T13">dores estadounidenses y el CEAC realizan el tamizado de los sedimentos. Foto: Maikel Hernández.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T13">Figura 2. El equipo de investigadores cubanos y estadounidenses realizan el filtrado de las aguas fluviales para las posteriores deter-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T13">minaciones de los aniones y de los isótopos estables, en los laboratorios de ambos países. Foto: Maikel Hernández.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T3">7</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T13">Figura 3. Investigadores Dra. C. Amanda H. Schmidt, del Colegio Oberlin, Dr. C. Paul R. Bierman de la Universidad de Vermont, el M. Sc. </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T13">Alejandro García Moya y la Dra. C. Rita Y. Sibello del CEAC, durante la incubación bacteriológica de las muestras. Foto: Joshua Brown.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">La ejecución de la primera campaña de monitoreo en la región central del país fue exitosa, se cumplieron los </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">objetivos propuestos y se logró realizar una amplia caracterización de las cuencas monitoreadas. Se arribaron a </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">importantes conclusiones que corroboran el beneficio de la agricultura de conservación para el medio ambiente. </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">La transición de Cuba a la actual agricultura sostenible, implicando además la reducción del uso de fertilizantes </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">químicos por hectárea de suelo, ha traído como resultado mucha menor concentración de nutrientes en las </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">aguas de los ríos investigados y, por tanto, una mayor calidad de sus aguas, lo cual es un ejemplo para otros </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">tipos de economías. Con respecto a los procesos erosivos, ha resultado en una disminución de la velocidad y de </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">la profundidad de la erosión, contribuyendo a la recuperación de los suelos.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Los resultados obtenidos por estos investigadores en la campaña ejecutada en la región central de Cuba, </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">fueron publicados en la prestigiosa revista científica GSA Today (Bierman </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 2020). En esta publicación, los </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.323cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="20.172cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">autores concluyeron que la composición del agua y la presencia de los sólidos totales disueltos en los ríos de </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">la región central, varían con el tipo de roca, sugiriendo una conexión cerrada entre la química del agua y las </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">unidades de rocas subyacentes. Por ejemplo, las altas concentraciones de calcio (Ca) y magnesio (Mg) y de alca-</text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.018cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="21.696cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">linidad, en muchas muestras, son consistentes con la presencia mapeada de rocas carbonatadas en las cuencas </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">de drenaje.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">En otros sitios, donde la roca madre está constituida por sedimentos marinos del post Eoceno, se encontraron </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">valores más altos de rubidio (Rb), estroncio (Sr), bario (Ba) y uranio (U) que en otros ríos (Figura 4).</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T3">8</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T13">Figura 4. Mapa geológico de las cuencas monitoreadas (French &amp; Schenk, 2004). Fuente: Bierman </text:span><text:span text:style-name="T11">et al.</text:span><text:span text:style-name="T13">, 2020.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">El grupo de científicos, gracias a los análisis químicos realizados en los laboratorios de ambas naciones, determi-</text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">naron que, el arsénico (As), el bario (Ba), el cromo (Cr), el manganeso (Mn), el níquel (Ni), el estroncio (Sr) y el uranio </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.949cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="17.794cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">(U), estaban presentes en algunas de las muestras de las aguas de los ríos analizadas, pero en todos los casos estos </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="20.627cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="18.302cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">valores estuvieron por debajo de las concentraciones máximas permisibles para el agua potable.</text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.599cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="18.91cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Estos investigadores también afirmaron que los valores obtenidos de la Conductividad y de los Sólidos Totales </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="25.66cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="19.418cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Disueltos (STD) en las aguas fluviales eran altos (130-1380 μS/cm) y de 117 a más de 780 mg/L, respectivamente. Ellos </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="25.3cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="19.926cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">consideran que los altos valores de STD no son peligrosos, pero pudieran limitar algunos usos de las aguas y que esos </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.251cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="20.434cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">altos valores de STD pudieran provocar atascamiento en las tuberías industriales y doméstica. Los valores del pH </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.661cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="20.942cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">fueron neutrales hasta ligeramente alcalinos con altos valores de bicarbonato (65-400 mg/L) (Bierman </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 2020).</text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.794cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="21.55cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Otro parámetro medido en las aguas de los ríos fue el oxígeno disuelto (OD), medido </text:span><text:span text:style-name="T12">in situ</text:span><text:span text:style-name="T9">, cuyos valores </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.636cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="22.058cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">estuvieron en el rango desde 59 % hasta 145 % y un valor promedio de 97 %. (Bierman </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 2020). El OD es </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.823cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="22.566cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">esencial para la descomposición de la materia orgánica por las bacterias, lo que ayuda a mantener el equilibrio </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">de los ecosistemas.</text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.005cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="23.682cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">El análisis bacteriológico de las aguas de los ríos monitoreados de la región central arrojó la presencia de E. Coli </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.407cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="24.19cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">en todos estos ríos y está relacionada con la existencia de animales en los alrededores cercanos, por el desarrollo </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="14.103cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="24.698cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">de la ganadería y utilizados en el transporte de equipos de granja.</text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.942cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="25.306cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Como resultados de esta investigación, fueron calculadas altas tasas de intemperismo y de denudación del </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.738cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="25.814cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">paisaje y así se infiere la presencia de rutas de flujo a través de la roca fresca. De manera general, las determi-</text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.662cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="26.322cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">naciones realizadas en el campo de los aniones, estuvieron bien correlacionados con los valores determinados </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="7.025cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="26.83cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">posteriormente en el laboratorio.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T1">CUADERNOS DE NUESTRA AMÉRICA</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T2">ARTíCUlOS</text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T3">9</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Los ensayos realizados tanto en el CEAC como en los laboratorios de los Estados Unidos, permitió la realización </text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">de comparaciones entre los laboratorios, lo cual sirve como control de la calidad de los resultados analíticos.</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.406cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="4.541cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Estos investigadores en su artículo (Bierman </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 2020), concluyen que las aguas de los ríos de la región central </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">de Cuba, son una evidencia de que la agricultura no necesita contaminar a los ríos ni a los reservorios y zonas </text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">costeras, con nutrientes. El nitrógeno y el fósforo están presentes en los ríos cubanos, pero a más bajas concen-</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.331cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="6.065cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">traciones que en las aguas de los Estados Unidos, donde la agricultura es intensiva y se usa mucho fertilizante. El </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.077cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="6.573cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">uso de fertilizantes en Cuba tuvo un pico en 1978 y entonces declinó, mientras que en los Estados Unidos desde </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.085cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="7.081cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">1961 ha permanecido alto el uso de fertilizantes. La agricultura sostenible implementada en Cuba después de la </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.246cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="7.589cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">era de la asistencia soviética ha resultado en menos uso de la fertilización y más calidad de las aguas de los ríos, </text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">afirmaron los investigadores de ambas naciones.</text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">“</text:span><text:span text:style-name="T9">Estos resultados constituyen una comprensiva instantánea de la química del agua que se mueve a través de </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="12.863cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="9.213cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">los ríos de la región central de Cuba”, afirmó el Dr. Bierman.</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.052cm" svg:height="0.497cm" svg:x="1.77cm" svg:y="10.021cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Reduciendo las cargas de sedimentos y de estiércol se pueden conseguir beneficios económicos, porque los ríos </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.708cm" svg:height="0.497cm" svg:x="1.77cm" svg:y="10.529cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">descargan en la zona costera, donde el sedimento suspendido y las bacterias provenientes de la actividad agrícola, </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="25.186cm" svg:height="0.497cm" svg:x="1.77cm" svg:y="11.037cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">impactan negativamente en la calidad del agua y en la transparencia en las barreras coralinas y playas, frecuentadas </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="21.062cm" svg:height="0.497cm" svg:x="1.77cm" svg:y="11.545cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">por turistas, una fuente de ingresos para Cuba, aseguran los investigadores (Bierman </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 2020).</text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.333cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="12.253cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Otro logro alcanzado en el seno del intercambio académico Vermont-Oberlin-CEAC fue lograr interpretar </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.48cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="12.761cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">mediante las técnicas nucleares e isotópicas, los procesos erosivos y denudativos que han tenido lugar en las </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="20.868cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="13.269cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">cuencas hidrográficas de la región central que fueron monitoreadas durante la primera campaña. </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="15.691cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="13.877cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Estos resultados fueron publicados en la revista científica </text:span><text:span text:style-name="T12">Geochronology:</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.451cm" svg:height="0.497cm" svg:x="1.77cm" svg:y="14.685cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">La terminología que hace referencia a la pérdida de masa de las cuencas hidrográficas se ha aplicado de </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.349cm" svg:height="0.497cm" svg:x="1.77cm" svg:y="15.193cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">manera ambigua en el pasado y puede ser confusa. Aquí, se hace referencia al ritmo de pérdida de masa del </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.336cm" svg:height="0.497cm" svg:x="1.77cm" svg:y="15.701cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">paisaje calculado a partir de las concentraciones de 26Al y 10Be como tasas de erosión; estas tasas incluyen </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.848cm" svg:height="0.497cm" svg:x="1.77cm" svg:y="16.209cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">todos los procesos (físicos y químicos) que eliminan masa dentro de los 2 m aproximadamente, de la superficie </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="7.944cm" svg:height="0.497cm" svg:x="1.77cm" svg:y="16.717cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">de la Tierra” (Campbell </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 2022). </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.975cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="17.425cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Las tasas de pérdida de masa del paisaje inferidas a partir de mediciones de la química del agua de los arroyos, </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.538cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="17.933cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">combinadas con estimaciones de los volúmenes de escorrentía anual, se refiere a las tasas de disolución de rocas. </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.577cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="18.441cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Se usa el término denudación para hacer referencia a la pérdida total de masa de las cuencas muestreadas. Todas </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="16.203cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="18.949cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">estas tasas se expresan en términos de masa por área y por tiempo (Mg km</text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr8" draw:text-style-name="P9" draw:layer="layout" svg:width="0.246cm" svg:height="0.289cm" svg:x="14.42cm" svg:y="18.972cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T14">2</text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="7.219cm" svg:height="0.497cm" svg:x="14.547cm" svg:y="18.949cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9"><text:s/></text:span><text:span text:style-name="T9">año-1), que se puede convertir a </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="19.513cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="19.457cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">profundidad a lo largo del tiempo asumiendo la densidad de la roca (Campbell </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 2022).</text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.451cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="20.065cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Estos investigadores (Cambell </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 2022), detallan en su artículo que utilizando mediciones de 26Al y 10Be, </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.166cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="20.573cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">contenidos en las arenas de los 25 ríos monitoreados, junto con las estimaciones del flujo de la carga disuelta en </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.005cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="21.081cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">el río, se pudieron caracterizar los procesos y el ritmo del cambio del paisaje en la región central de Cuba. Estos </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.792cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="21.589cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">autores exponen en este trabajo, que las tasas de erosión a largo plazo, inferidas a partir de las concentraciones de </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="21.156cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="22.097cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">10Be en el cuarzo extraído de la arena de los ríos del centro de Cuba oscilan entre 3,4 y 189 Mgkm</text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr8" draw:text-style-name="P9" draw:layer="layout" svg:width="0.246cm" svg:height="0.289cm" svg:x="17.861cm" svg:y="22.12cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T14">2 </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="2.961cm" svg:height="0.497cm" svg:x="18.031cm" svg:y="22.097cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">año-1 (media </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.217cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="22.605cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">59, mediana 45). Las cargas disueltas, calculadas a partir de las concentraciones de soluto en la corriente y esco-</text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="10.099cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="23.113cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">rrentía modelada, oscilan entre 10 y 176 Mgkm</text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr8" draw:text-style-name="P9" draw:layer="layout" svg:width="0.246cm" svg:height="0.289cm" svg:x="9.402cm" svg:y="23.136cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T14">2 </text:span></text:p>
     </draw:text-box>
    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="13.786cm" svg:height="0.497cm" svg:x="9.578cm" svg:y="23.113cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">año-1 (media 92, mediana 97), las cuales, en 18 de 23 cuencas, </text:span></text:p>
     </draw:text-box>
    </draw:frame>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">excedieron las tasas de erosión derivadas del 10Be cosmogénico. Esta disparidad, según estos autores, indica que, </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">en este entorno, la pérdida de masa a escala de paisaje no está completamente representada por las mediciones </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">de los nucleidos cosmogénicos.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Las relaciones 26Al / 10Be resultaron ser más bajas que las esperadas para la exposición o erosión en estado </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">estacionario en 16 de 24 muestras. Las relaciones 26Al / 10Be reducidas se obtuvieron en muchas de las cuencas </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">que tienen la mayor disparidad entre cargas disueltas (altas) y tasas de erosión inferidas a partir de concentra-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">ciones de nucleidos cosmogénicos (bajas).</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T1">CUADERNOS DE NUESTRA AMÉRICA</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T2">ARTíCUlOS</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T3">10</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Las relaciones 26Al / 10Be reducidas son consistentes con la presencia de una capa de regolito profunda y </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">mixta que proporciona tiempos de almacenamiento prolongados en pendientes y/o enterramiento y almace-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">namiento prolongado durante el transporte fluvial. Los análisis químicos del agua del río indican que muchas </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">cuencas con proporciones 26Al / 10Be más bajas y altas concentraciones de 10Be están sustentadas, al menos </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">en parte, por rocas evaporíticas que se disuelven rápidamente (Campbell </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 2022).</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Estos autores exponen en su artículo científico que, los datos obtenidos muestran que, al evaluar la pérdida </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">de masa en el paisaje tropical húmedo, es particularmente importante tener en cuenta la contribución de la </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">disolución de rocas en profundidad. En climas tan cálidos y húmedos, la disolución de minerales puede ocurrir a </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.183cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="7.589cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">muchos metros por debajo de la superficie, más allá de la profundidad de penetración de la mayoría de los rayos </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">cósmicos y, por lo tanto, de la producción de la mayoría de los nucleidos cosmogénicos.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Los investigadores (Cambell </text:span><text:span text:style-name="T12">et al.</text:span><text:span text:style-name="T9">, 2022), concluyeron que sus datos sugieren la importancia de estimar los </text:span></text:p>
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    </draw:frame>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">flujos de solutos y medir pares de nucleidos cosmogénicos para comprender mejor los procesos y las tasas de </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">transferencia de masa a escala de cuenca.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T7">Conclusiones</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">La transición de Cuba a la actual agricultura sostenible (y esto reduce el uso de fertilizantes por hectárea de </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">suelo de cultivo), ha traído como resultado mucha menor concentración de nutrientes en los ríos de la región </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">central de Cuba que en el agua del río Mississippi de los Estados Unidos y es un modelo para otros tipos de </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">economías, afirmó el </text:span><text:span text:style-name="T12">team</text:span><text:span text:style-name="T9"> de investigadores.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">El grupo de científicos también considera que, la implementación de otras estrategias de manejo para reducir </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">el estiércol y las cargas de sedimentos (tales como mantener el ganado lejos de los ríos), pudiera en el futuro traer </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">una rápida mejora de la calidad de las aguas de los ríos y consecuentemente beneficios económicos al país.</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.662cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="14.893cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Los resultados de estas investigaciones tributaron al Plan del Estado Cubano para el enfrentamiento al cambio </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">climático (Tarea Vida), específicamente en lo concerniente a la protección de los suelos y del agua, brindando un </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.378cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="15.909cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">diagnóstico de la erosión de los suelos en los sitios estudiados, así como la calidad de las aguas, relacionadas con </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.836cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="16.417cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">la deposición de los sedimentos originados en los procesos erosivos y la presencia de contaminantes asociados </text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">a esos sedimentos, muy ligados a la actividad antrópica agropecuaria.</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.676cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="17.533cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Por otra parte, la comunicación pública tuvo un rol importante en la investigación y los participantes en el </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.645cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="18.041cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">intercambio académico Cuba-Estados Unidos, consideran que Cuba puede ser un catalizador para aumentar la </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="14.696cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="18.549cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">conciencia pública sobre la importancia de la conservación del suelo.</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="22.1cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="19.157cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">La ejecución del intercambio académico entre científicos cubanos y estadounidenses, demostró que no </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.175cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="19.665cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">importan las diferencias de ideologías ni de sistemas económicos, cuando existe el máximo respeto, toleran-</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.196cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="20.173cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">cia y aceptación de las desigualdades. En el intercambio Vermont-Oberlin-CEAC, primó en todo momento un </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.823cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="20.681cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">ambiente fraternal, de respeto y de solidaridad, dado por el objetivo común de tener un buen desempeño en la </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="14.713cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="21.189cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">ejecución del proyecto y los resultados obtenidos hablan por sí solos.</text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.048cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="21.797cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Al año siguiente, la delegación de expertos de las instituciones de los Estados Unidos y Cuba volvieron a en-</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.616cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="22.305cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">contrarse en la nación caribeña para desarrollar la segunda campaña de muestreo en la provincia de Pinar del </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="9.561cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="22.813cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Río. Esto será material para otra publicación.</text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T7">Semblanzas</text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">La Universidad de Vermont, es una universidad estatal de Burlington al noroeste del estado de Vermont y es </text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="20.402cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="24.737cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">reconocida en las especialidades de biología, ciencias medioambientales, agrícolas y de la vida.</text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="23.662cm" svg:height="0.497cm" svg:x="1.67cm" svg:y="25.345cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">El Colegio de Oberlin, situada en la ciudad Oberlin, Ohio es una universidad privada, miembro de la Asociación </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="24.378cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="25.853cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">de Universidades de los Grandes Lagos y los Cinco Colegios de Ohio. Sus carreras más populares han sido: Inglés, </text:span></text:p>
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    </draw:frame>
    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="10.598cm" svg:height="0.497cm" svg:x="1.27cm" svg:y="26.361cm">
     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Biología, Historia, Política y Estudios Ambientales.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T1">CUADERNOS DE NUESTRA AMÉRICA</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T2">ARTíCUlOS</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T3">11</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Por su parte, el Centro de Estudios ambientales de Cienfuegos es un centro de investigación adscrito al Mi-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">nisterio de Ciencia Tecnología y Medio Ambiente, dedicado al estudio y solución de procesos ambientales; </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">reconocido por el Organismo Internacional de Energía Atómica (OIEA) como Centro de Referencia Regional en </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">la aplicación de técnicas nucleares a la solución de problemas específicos del manejo integrado costeros, desde </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">2007. Actualmente está acreditado como “Centro Colaborador del Organismo Internacional de Energía Atómica </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">(OIEA) para la Aplicación de Técnicas Nucleares e Isotópicas en el Estudio de Ecosistemas Marinos-Costeros en </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">la Región de Latinoamericana y el Caribe”.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T7">Artículos publicados sobre los resultados del intercambio los Estados Unidos–CEAC, Cuba</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">In Cuba, Cleaner Rivers Follow Greener Farming. doi.org/10.1130/GSATG419A.1</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">¡Cuba! River Water Chemistry Reveals Rapid Chemical Weathering, the Echo of Uplift, and the Promise of More </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Sustainable Agriculture (2020, March-April) . </text:span><text:span text:style-name="T12">GSA Today, 30</text:span><text:span text:style-name="T9">(3-4).</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Cosmogenic nuclide and solute flux data from central Cuba emphasize the importance of both physical and </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">chemical denudation in highly weathered landscapes. 2021. https:doi.org/10.5194/gchrom</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T7">Resultados presentados en eventos científicos</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">MARCUBA, Habana (2018). Water Quality of central Cuban rivers; implications for the flux of material from </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">land to sea.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Taller Ecoagua. Hanabanilla (2020, marzo). Evaluación del impacto de la Meteorización Química y de la Agri-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">cultura Sostenible en la calidad de las aguas de los ríos de la región central de Cuba (Ponencia).</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">XVI Forum de Ciencia y Técnica del CEAC (2020, junio). Evaluación del impacto de la Meteorización Química y </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">de la Agricultura Sostenible en la calidad de las aguas de los ríos de la región central de Cuba (Ponencia). </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T7">Referencias bibliográficas</text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Balco, G., Stone, J. O., Lifton, N. A., Dunai, T. J. (2008). A complete and easily accessible means of calculating </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">surface exposure ages or erosion rates from 10Be and 26Al measurements. </text:span><text:span text:style-name="T12">Quat. Geochronol.,</text:span><text:span text:style-name="T9"> 3, 174-195. </text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9"><text:s/></text:span></text:p>
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    <draw:frame draw:style-name="gr6" draw:text-style-name="P7" draw:layer="layout" svg:width="9.722cm" svg:height="0.497cm" svg:x="1.658cm" svg:y="16.624cm">
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      <text:p text:style-name="P2"><text:span text:style-name="T9">https://doi.org/10.1016/j.quageo.2007.12.001</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Bierman, P. R., Steig, E. (1996). Estimating rates of denudation using cosmogenic isotope abundances in sedi-</text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">ment. </text:span><text:span text:style-name="T12">Earth Surf. Proc. Land.</text:span><text:span text:style-name="T9">, 21, 103-203.</text:span></text:p>
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     <draw:text-box>
      <text:p text:style-name="P2"><text:span text:style-name="T9">Bierman, P. R., Sibello Herdandez, R. S., Schmidt, A., Cartas Águila, H. A., Bolaños Álvarez, Y., Guillén Arrueba-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">rrena, A., Campbell, M. K., Dethier, D., Dix, M., Massey-Bierman, M., García Moya, A., Perdrial, J., Racela, J., </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Alonso-Hernández, C. (2020). ¡Cuba! River Water Chemistry Reveals Rapid Chemical Weathering, the Echo of </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Uplift, and the Promise of More Sustainable Agriculture. </text:span><text:span text:style-name="T12">GSA Today</text:span><text:span text:style-name="T9">, 30, 4-10.</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Brown, E. T., Stallard, R. F., Larsen, M. C., Raisbeck, G. M., Yiou, F. (1995). Denudation rates determined from the </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">accumulation of in situ-produced 10Be in the Luquillo Experimental Forest, Puerto Rico. </text:span><text:span text:style-name="T12">Earth Planet. Sc. </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T12">Lett.</text:span><text:span text:style-name="T9">, 129, 193-202. https://doi.org/10.1016/0012-821X(94)00249-X</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">Campbell M. K., Bierman P. R., Schmidt A. H., Sibello Hernández R., García-Moya A., Corbett L. B., Hidy A. J., Car-</text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">tas Águila H., Guillén Arruebarrena A., Balco G., Dethier D., Caffee M. (2022). Cosmogenic nuclide and solute </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">flux data from central Cuban rivers emphasize the importance of both physical and chemical mass loss from </text:span></text:p>
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      <text:p text:style-name="P2"><text:span text:style-name="T9">In: Froehlich, K. (Ed.), </text:span><text:span text:style-name="T12">Environmental Radionuclides: Tracers and Timers of Terrestrial Processes</text:span><text:span text:style-name="T9">.</text:span></text:p>
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