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Resumen
Soil organic carbon (SOC) stocks play an important role in ecosystem functioning and climate regulation. These stocks are declining in many tropical dry forests due to land-use change and degradation. Data on topsoil (0–300 mm) organic C stocks from six experiments conducted in the Dry Chaco region, the world’s largest dry tropical forest, were used to test the predictive performance of the Rothamsted Carbon Model (RothC) after its implementation in an [ver mas...]
dc.contributor.authorFilip, Iván Daniel
dc.contributor.authorPeri, Pablo Luis
dc.contributor.authorBanegas, Natalia Romina
dc.contributor.authorNasca, Jose Andres
dc.contributor.authorSacido, Mónica
dc.contributor.authorFaverin, Claudia
dc.contributor.authorVibart, Ronaldo
dc.date.accessioned2025-06-04T10:39:33Z
dc.date.available2025-06-04T10:39:33Z
dc.date.issued2025-06
dc.identifier.issn2071-1050
dc.identifier.otherhttps://doi.org/10.3390/su17115012
dc.identifier.urihttp://hdl.handle.net/20.500.12123/22478
dc.identifier.urihttps://www.mdpi.com/2071-1050/17/11/5012
dc.description.abstractSoil organic carbon (SOC) stocks play an important role in ecosystem functioning and climate regulation. These stocks are declining in many tropical dry forests due to land-use change and degradation. Data on topsoil (0–300 mm) organic C stocks from six experiments conducted in the Dry Chaco region, the world’s largest dry tropical forest, were used to test the predictive performance of the Rothamsted Carbon Model (RothC) after its implementation in an object-oriented graphical programming language. RothC provided promising predictions (i.e., precise and accurate) of the SOC stocks under two representative land covers in the region, native forest and Rhodes grass [relative prediction error (RPE) < 10%, concordance correlation coefficient (CCC) > 0.9, modelling efficiency (MEF) > 0.7]. Comparatively, model predictions of the SOC stocks under degraded Rhodes grass swards were suboptimal. The predictions were sensitive to C inputs; under native forests and Rhodes grass, a high C input improved the predictive performance of the model by reducing the mean bias and increasing the MEF values, compared with mean and low C inputs. Larger datasets and revisiting some of the underlying assumptions in the SOC modelling will be required to improve the model’s performance, particularly under the degraded Rhodes grass land cover.eng
dc.formatapplication/pdfes_AR
dc.language.isoenges_AR
dc.publisherMDPIes_AR
dc.relationinfo:eu-repograntAgreement/INTA/2019-PD-E3-I062-001, Estrategias de producción que incrementen el secuestro de C en suelo para la mitigación del Cambio Climáticoes_AR
dc.relationinfo:eu-repograntAgreement/INTA/2019-PE-E1-I006-001, Respuestas tecnológicas para el manejo sustentable y eficiente de pasturas megatérmicas en sistemas ganaderos del norte y centro de Argentinaes_AR
dc.relationinfo:eu-repograntAgreement/INTA/2023-PD-L02-I097, Emisiones de gases de efecto invernadero y captura de carbono en sistemas agropecuarios y forestaleses_AR
dc.rightsinfo:eu-repo/semantics/openAccesses_AR
dc.rights.urihttp://creativecommons.org/licenses/by-nc-sa/4.0/es_AR
dc.sourceSustainability 17 (11) : 5012 (June 2025)es_AR
dc.subjectCarbono Orgánico del Sueloes_AR
dc.subjectSoil Organic Carboneng
dc.subjectBosqueses_AR
dc.subjectForestseng
dc.subjectBosque Primarioes_AR
dc.subjectPrimary Forestseng
dc.subjectPraderases_AR
dc.subjectGrasslandseng
dc.subjectEstimación de las Existencias de Carbonoes_AR
dc.subjectCarbon Stock Assessmentseng
dc.subject.otherBosque Nativoes_AR
dc.subject.otherRegión Chaqueña, Argentinaes_AR
dc.subject.otherChaco Secoes_AR
dc.titlePredicting Soil Organic Carbon Stocks Under Native Forests and Grasslands in the Dry Chaco Region of Argentinaes_AR
dc.typeinfo:ar-repo/semantics/artículoes_AR
dc.typeinfo:eu-repo/semantics/articlees_AR
dc.typeinfo:eu-repo/semantics/publishedVersiones_AR
dc.rights.licenseCreative Commons Attribution-NonCommercial-ShareAlike 4.0 International (CC BY-NC-SA 4.0)es_AR
dc.description.origenEEA Las Breñases_AR
dc.description.filFil: Filip, Iván Daniel. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro de Investigación y Transferencia Formosa; Argentinaes_AR
dc.description.filFil: Filip, Iván Daniel. Instituto Nacional de Tecnología Agropecuaria (INTA). Estación Experimental Agropecuaria Las Breñas; Argentinaes_AR
dc.description.filFil: Peri, Pablo Luis. Instituto Nacional de Tecnología Agropecuaria (INTA). Estación Experimental Agropecuaria Santa Cruz; Argentina.es_AR
dc.description.filFil: Peri, Pablo Luis. Universidad Nacional de la Patagonia Austral; Argentina.es_AR
dc.description.filFil: Peri, Pablo Luis. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina.es_AR
dc.description.filFil: Banegas, Natalia Romina. Instituto Nacional de Tecnología Agropecuaria (INTA). Instituto de Investigación Animal del Chaco Semiárido; Argentinaes_AR
dc.description.filFil: Banegas, Natalia Romina. Universidad Nacional de Tucumán. Facultad de Agronomía, Zootecnia y Veterinaria; Argentinaes_AR
dc.description.filFil: Nasca, Jose Andres. Terratio; Argentinaes_AR
dc.description.filFil: Sacido, Mónica. Investigadora independientes; Argentinaes_AR
dc.description.filFil: Faverin, Claudia. Instituto Nacional de Tecnología Agropecuaria (INTA). Estación Experimental Agropecuaria Balcarce; Argentinaes_AR
dc.description.filFil: Faverin, Claudia. Universidad Nacional de Mar del Plata. Facultad de Ciencias Exactas y Naturales; Argentinaes_AR
dc.description.filFil: Vibart, Ronaldo. AgResearch. Grasslands Research Centre; Nueva Zelandaes_AR
dc.subtypecientifico


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