Publicado

2018-10-01

Soil chemical attributes in a high biodiversity silvopastoral system

Atributos químicos del suelo en un sistema silvopastoril de alta biodiversidad

DOI:

https://doi.org/10.15446/acag.v67n4.70180

Palabras clave:

Organic carbon, Nitrogen, Tree component, Voisin rational grazing, Soil fertility (en)
Carbono orgánico, Nitrógeno, Componente arbóreo, Pastoreo racional Voisin, Fertilidad del suelo (es)

Autores/as

The use of conservation managements such as the silvopastoral system, and the Voisin rational grazing system have been excellent alternatives to increase animal welfare and production efficiency and improve soil chemical attributes of degraded pastures. Therefore, the objective of this work was to evaluatethe effect of a High Biodiversity Silvopastoral System (SPSNUCLEUS) on the soil chemical attributes through comparisons with soils of a Management Intensive Grazing without trees (MIG), primary forest, and secondary forest areas. Total organic carbon, total nitrogen, pH, Al, H+Al, Ca, Mg, K, and P were evaluated after four years of implementation of SPSNUCLEUS. Soil samples from the layers 0-5, 5-10, 10-20, 20-30, and 30-40 cm were collected in all areas—SPSNUCLEUS, MIG, primary forest, and secondary forest. SPSNUCLEUS had better soil quality, with increased P and K contents (0-30 cm), compared to the other areas, and higher total organic carbon,and total nitrogen contents (5-30 cm) when compared to the MIG and secondary forest areas. The soil carbon accumulation capacity in the SPSNUCLEUS area in the layers of 5-10 cm and 20-40 cm was similar to that of the primary forest area, and higher to those of the other areas. SPSNUCLEUS proved to be a promising system to improve the soil chemical attributes of pastures.
La utilización de sistemas de manejo conservacionistas como los sistemas silvopastoriles y el pastoreo racional Voisin se han mostrado óptimas alternativas para promover mayor bienestar animal, aumentar la eficiencia del sistema de producción y mejorar los atributos químicos de los suelos de pastoreo degradados. En este sentido, este trabajo evaluó el efecto del Sistema Silvopastoril con Núcleos arbóreos de alta biodiversidad (SSPNÚCLEOS) en la dinámica de los atributos químicos del suelo, comparando con pastoreo racional Voisin sin árboles (PRV), áreas de bosque primario y bosque secundario adyacentes. En el presente estudio se evaluaron los niveles de carbono orgánico total, nitrógeno total, pH, Al, H + Al, Ca, Mg, K y P. Se muestrearon en las capas de 0-5, 5-10, 10- 20, 20-30 y 30-40 cm el suelo de las áreas con SSPNÚCLEOS, PRV, bosque primario y bosque secundario. El SSPNÚCLEOS presentó mejoras de la calidad del suelo, aumentando los niveles de P y K (0-30 cm) en relación a los demás tratamientos, así como mayores niveles de carbono orgánico y nitrógeno (5-30 cm) en relación al PRV y bosque secundario. En cuanto a la capacidad de acumulación de carbono, en las capas de 5-10 cm y 20-40 cm, el SSPNÚCLEOS se igualó el área de bosque primario, pero fue superior a los demás tratamientos. El SSPNÚCLEOS se mostró prometedor para mejorar los atributos químicos de los suelos de pastoreo.

Referencias

Aber, J. A;and Melillo, J. M. (2001). Terrestrial Ecosystems. Saunders College Publishers: New York, NY. doi.org/10.2307/1311684.

Alvez, J. P; Schmitt, A. L; Farley, J. C; Erickson, J. D;and Méndez, V. E. (2014). Transition from semiconfinement to pasture-based dairy in Brazil: farmers’ view of economic and environmental performances. Agroecology and sustainable food systems, 38(9):995-1014. doi.org/10.1080/21683565.2013.859222.

Alvares Ca; Stape Jl; Sentelhas Pc; Gonçalves Jlm; Sparovek G. (2013). Köppen›s climate classification map for Brazil. Meteorologische Zeitschrift. 22: 711-728. doi.org/10.1127/0941-2948/2013/0507.

Caldeira, M. V. W; Vitorino, M. D; Schaadt, S. S; Moraes, E;and Balbinot, R. (2008). Quantificação de serapilheira e de nutrientes em uma Floresta Ombrófila Densa. Semina: Ci. Agr. 29(1):53-68. doi.org/10.5433/1679-0359.2008v29n1p53.

Cardoso, E. L; Silva, M. L. N; Silva, C. A; Curi, N;and de Freitas, D. A. F. (2011). Estoques de carbono e nitrogênio em solo sob florestas nativas e pastagens no bioma Pantanal. Pesq.Agropec. Bras. 45(9):1028-1035. doi.org/10.1590/s0100-204x2010000900013.

Casals, P; Romero, J; Rusch, G. M;and Ibrahim, M. (2014). Soil organic C and nutrient contents under trees with different functional characteristics in seasonally dry tropical silvopastures. Plant Soil 374(1-2), 643-659. doi.org/10.1007/s11104-013-1884-9.

Coelho, S. R; de Moraes Gonçalves, J. L; de Miranda Mello, S. L; Moreira, R. M; Da Silva, E. V;and Laclau, J. P. (2007). Crescimento, nutrição e fixação biológica de nitrogênio em plantios mistos de eucalipto e leguminosas arbóreas. Pesquisa Agropecuária Brasileira, 42(6), 759-768. doi.org/10.1590/s0100-204x2007000600001.

Corazza, E. J;Silva, J. D; Resck, D. V. S;and Gomes, A. C. (1999). Comportamento de diferentes sistemas de manejo como fonte ou depósito de carbono em relação à vegetação de cerrado. Rev. Bras. Ci. Solo (23):2. doi.org/10.1590/s0100-06831999000200025.

Embrapa. (1997). Manual de métodos de análise de solo. Rio de Janeiro: Embrapa Solos. https://www.agencia.cnptia.embrapa.br/Repositorio/Manual+de+Metodos_000fzvhotqk02wx5ok0q43a-0ram31wtr.pdf.

Embrapa. (1999). Centro Nacional de Pesquisa de Solos. Sistema brasileiro de classificação de solos. Rio de Janeiro. https://www.embrapa.br/solos/sibcs/classificacao-de-solos.

Epagri/CEPA (2017). Sintese Anual da Agricultura de Santa Catarina 2016-2017. Centro de Socioeconomia e Planejamento Agricola, 203. http://docweb.epagri.sc.gov.br/website_epagri/Sintese-Anual-da-Agricultura-SC_2016_17.pdf.

Fisher, A. D; Roberts, N; Bluett, S. J; Verkerk, G. A;and Matthews, L. R. (2008). Effects of shade provision on the behaviour, body temperature and milk production of grazing dairy cows during a New Zealand summer. N. Z. J. Agric. Res. 51(2):99-105. doi.org/10.1080/00288230809510439.

Galvão, S. R; Salcedo, I. H;and de Oliveira, F. F. (2008). Acumulação de nutrientes em solos arenosos adubados com esterco bovino. Pesq. Agrop. Bras. 43(1):99-105. doi.org/10.1590/s0100-204x2008000100013.

Gonçalves, G. K; Bortolon, L; Meurer, E. J; Gonçalves, D. R. N; de Sousa, R. O;and Fagundes, S. M. (2012). Phosphorus extractors for irrigated rice on soils under reactive phosphate fertilization. Rev. Ci. Agrovet. (J. Agrovet. Sci. 11(3):196-204. doi.org/10.5965/223811711632017324.

Hanson, J. C; D. M. Johnson, E. Lichtemberg, and K. Minegishi (2013).Competitiveness of management-intensive grazing dairies in the mid-Atlanticregion from 1995 to 2009. J. Dairy Sci. 96:1–11. doi.org/10.3168/jds.2011-5234.

Haynes, R. J;and Williams, P. H. (1993). Nutrient cycling and soil fertility in the grazed pasture ecosystem. In: Adv. Agron. 49:119-199. doi.org/10.1016/s0065-2113(08)60794-4.

Hoosbeek, M. R; Remme, R. P;and Rusch, G. M. (2016). Trees enhance soil carbon sequestration and nutrient cycling in a silvopastoral system in south-westernNicaragua. Agrof. Syst. 1-11. doi.org/10.1007/

s10457-016-0049-2.

Loss, A; Pereira, M. G; Bernini, T. A; Zatorre, N. P;and Wadt, P. G. S. (2014). Fertilidade do solo e materia orgânica em Vertissolo e Argissolo sob cobertura florestal e pastagem. Comun. Sci. 5(1):1-10. doi.org/10.11606/d.64.2007.tde-18092007-113334.

Machado, L. (2004). Pastoreio Racional Voisin: tecnología agroecológica para o terceiro milênio. 1. ed. Porto Alegre: Cinco Continentes.

MapBiomas. (2017). Sistema de Estimativas de Emissões de Gases de Efeito Estufa do Observatório do Clima. Retrieved February 16, 2017, from http://mapbiomas.org

Schmitt, A; Farley, J; Alvez, J; Alarcon, G;and Rebollar, P. M. (2013). Integrating agroecology with payments for ecosystem services in Santa Catarina’s Atlantic Forest. In: Gov. Prov. Ecosys. Serv.333-355. doi.org/10.1007/978-94-007-5176-7_17.

Schmitt Filho, A. L; Fantini, A.C;Farley, J; Sinisgalli, P. (2017). Nucleation theory inspiring the design of High Biodiversity Silvopastoral System in the Atlantic Forest Biome: ecological restoration, family farm livelihood and agroecology. In: World Conference on Ecological Restoration.Foz do Iguaçu PR. p.450

Tivet, F; de Moraes Sa, J. C; Lal, R; Briedis, C; Borszowskei, P. R; dos Santos, J. B; ... and Bouzinac, S. 2013). Aggregate C depletion by plowing and its restoration by diverse biomass-C inputs under no-till in sub-tropical and tropical regions of Brazil. Soil Till. Res. 126:203-218. doi.org/10.1016/j.still.2012.09.004.

Urquiaga, S; Alves, B. J. R;and Boodey, R. M. 2005. Produção de biocombustíveis A questão do balanço energético. Rev.Política Agr. 14(1):42-46. http://www.scielo.br/pdf/pab/v48n10/v48n10a03.pdf.

Whalen, J. K. et al. 2000. Cattle manure amendments can increase the pH of acid soils. Soil Sci. Soc. Am. J. 64(1):962–966, 2000. doi.org/10.2136/sssaj2000.643962x.

Cómo citar

APA

Zin Battisti, L. F., Schmitt Filho, A. L., Loss, A. & de Almeida Sinisgalli, P. A. (2018). Soil chemical attributes in a high biodiversity silvopastoral system. Acta Agronómica, 67(4), 486–493. https://doi.org/10.15446/acag.v67n4.70180

ACM

[1]
Zin Battisti, L.F., Schmitt Filho, A.L., Loss, A. y de Almeida Sinisgalli, P.A. 2018. Soil chemical attributes in a high biodiversity silvopastoral system. Acta Agronómica. 67, 4 (oct. 2018), 486–493. DOI:https://doi.org/10.15446/acag.v67n4.70180.

ACS

(1)
Zin Battisti, L. F.; Schmitt Filho, A. L.; Loss, A.; de Almeida Sinisgalli, P. A. Soil chemical attributes in a high biodiversity silvopastoral system. Acta Agron. 2018, 67, 486-493.

ABNT

ZIN BATTISTI, L. F.; SCHMITT FILHO, A. L.; LOSS, A.; DE ALMEIDA SINISGALLI, P. A. Soil chemical attributes in a high biodiversity silvopastoral system. Acta Agronómica, [S. l.], v. 67, n. 4, p. 486–493, 2018. DOI: 10.15446/acag.v67n4.70180. Disponível em: https://revistas.unal.edu.co/index.php/acta_agronomica/article/view/70180. Acesso em: 16 mar. 2026.

Chicago

Zin Battisti, Luiz Fernando, Abdon Luiz Schmitt Filho, Arcângelo Loss, y Paulo Antonio de Almeida Sinisgalli. 2018. «Soil chemical attributes in a high biodiversity silvopastoral system». Acta Agronómica 67 (4):486-93. https://doi.org/10.15446/acag.v67n4.70180.

Harvard

Zin Battisti, L. F., Schmitt Filho, A. L., Loss, A. y de Almeida Sinisgalli, P. A. (2018) «Soil chemical attributes in a high biodiversity silvopastoral system», Acta Agronómica, 67(4), pp. 486–493. doi: 10.15446/acag.v67n4.70180.

IEEE

[1]
L. F. Zin Battisti, A. L. Schmitt Filho, A. Loss, y P. A. de Almeida Sinisgalli, «Soil chemical attributes in a high biodiversity silvopastoral system», Acta Agron., vol. 67, n.º 4, pp. 486–493, oct. 2018.

MLA

Zin Battisti, L. F., A. L. Schmitt Filho, A. Loss, y P. A. de Almeida Sinisgalli. «Soil chemical attributes in a high biodiversity silvopastoral system». Acta Agronómica, vol. 67, n.º 4, octubre de 2018, pp. 486-93, doi:10.15446/acag.v67n4.70180.

Turabian

Zin Battisti, Luiz Fernando, Abdon Luiz Schmitt Filho, Arcângelo Loss, y Paulo Antonio de Almeida Sinisgalli. «Soil chemical attributes in a high biodiversity silvopastoral system». Acta Agronómica 67, no. 4 (octubre 1, 2018): 486–493. Accedido marzo 16, 2026. https://revistas.unal.edu.co/index.php/acta_agronomica/article/view/70180.

Vancouver

1.
Zin Battisti LF, Schmitt Filho AL, Loss A, de Almeida Sinisgalli PA. Soil chemical attributes in a high biodiversity silvopastoral system. Acta Agron. [Internet]. 1 de octubre de 2018 [citado 16 de marzo de 2026];67(4):486-93. Disponible en: https://revistas.unal.edu.co/index.php/acta_agronomica/article/view/70180

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2. N. Banegas, D. A. Dos Santos, E. Viruel, N. I. Gasparri. (2025). Impact of pure pasture and silvopastoral systems on carbon and nitrogen in sodic soils of the dry chaco. Agroforestry Systems, 99(6) https://doi.org/10.1007/s10457-025-01245-1.

3. Diego de Lima Coêlho, José Carlos Batista Dubeux, Mércia Virginia Ferreira dos Santos, Alexandre Carneiro Leão de Mello, Márcio Vieira da Cunha, Erinaldo Viana de Freitas, Brivaldo Gomes de Almeida, Valéria Xavier de Oliveira Apolinário, André Pereira Freire Ferraz, Flávia Fernanda Simili. (2024). Can silvopasture with arboreal legumes increase root mass at deeper soil layers and improve soil aggregation?. Soil Science Society of America Journal, 88(6), p.2211. https://doi.org/10.1002/saj2.20756.

4. Joshua Farley, Abdon Schmitt-Filho. (2024). Building a Restorative Agricultural Economy: Insights from a Case Study in Santa Catarina, Brazil. Sustainability, 16(11), p.4788. https://doi.org/10.3390/su16114788.

5. Adriana M. Silva-Olaya, Andres Olaya-Montes, Karen L. Polanía-Hincapié, Maurício Roberto Cherubin, Ervin H. Duran-Bautista, Fausto A. Ortiz-Morea. (2021). Silvopastoral Systems Enhance Soil Health in the Amazon Region. Sustainability, 14(1), p.320. https://doi.org/10.3390/su14010320.

6. Luiz C. Pinheiro Machado Filho, Hizumi L. S. Seó, Ruan R. Daros, Daniel Enriquez-Hidalgo, Adenor V. Wendling, Luiz C. Pinheiro Machado. (2021). Voisin Rational Grazing as a Sustainable Alternative for Livestock Production. Animals, 11(12), p.3494. https://doi.org/10.3390/ani11123494.

7. Karolini Tenffen De-Sousa, Matheus Deniz, João Ari Gualberto Hill, João Ricardo Dittrich, Maria José Hötzel. (2023). Tree arrangements for silvopastoral system: livestock advisors’ knowledge and attitudes. Agroforestry Systems, 97(6), p.1143. https://doi.org/10.1007/s10457-023-00853-z.

8. Gisele Francioli Simioni, Abdon L. Schmitt Filho, Fernando Joner, Joshua Farley, Alfredo C. Fantini, Alexandre P.T. Moreira. (2022). Response of birds to high biodiversity silvopastoral systems: Integrating food production and biodiversity conservation through applied nucleation in southern Brazil. Agriculture, Ecosystems & Environment, 324, p.107709. https://doi.org/10.1016/j.agee.2021.107709.

9. Jucinei José Comin, César Alexandre Bourscheid, Lucas Dupont Giumbelli, Monique Souza Teixeira, Rafael da Rosa Couto, Paulo Emílio Lovato, Gustavo Brunetto, Fabiane Machado Vezzani, Cledimar Rogério Lourenzi, Arcângelo Loss. (2024). Qualitative soil quality assessment is efficient in a grazing system with or without trees. Journal of the Science of Food and Agriculture, 104(4), p.1962. https://doi.org/10.1002/jsfa.13084.

10. Yijie Wang, Yakun Zhu, Susan C. Cook-Patton, Wenjuan Sun, Wen Zhang, Philippe Ciais, Tingting Li, Pete Smith, Wenping Yuan, Xudong Zhu, Josep G. Canadell, Xiaopeng Deng, Yifan Xu, Hao Xu, Chao Yue, Zhangcai Qin. (2025). Land availability and policy commitments limit global climate mitigation from forestation. Science, 389(6763), p.931. https://doi.org/10.1126/science.adj6841.

11. Luana Oliveira Caló, Marcos Vinicius Winckler Caldeira, Cristiane Figueira da Silva, Rodrigo Camara, Kallil Chaves Castro, Sandra Santana de Lima, Marcos Gervasio Pereira, Adriana Maria de Aquino. (2022). Epigeal fauna and edaphic properties as possible soil quality indicators in forest restoration areas in Espírito Santo, Brazil. Acta Oecologica, 117, p.103870. https://doi.org/10.1016/j.actao.2022.103870.

12. Luis G. Bautista-Montealegre, Juan C. Benavides-Cruz, William A. Cardona, Paola J. Criollo-Campos, Daniel R. Torres-Cuesta, Luis O. Albarracín-Arias, Martha M. Bolaños-Benavides. (2023). Prácticas sostenibles para la conservación de suelos en sistemas productivos ganaderos de trópico alto. Temas Agrarios, 28(1), p.9. https://doi.org/10.21897/rta.v27i2.3169.

13. Arnon Henrique Campos Anésio, Márcia Vitória Santos, Mariana Almeida Dumont, Josiane Aparecida de Souza Barboza, Leidivan Almeida Frazão, Rafael Bastos Teixeira, Leonardo David Tuffi Santos, Rodinei Facco Pegoraro, Konrad Passos e Silva. (2024). Management of marandu grass pasture increases soil carbon and nitrogen stocks in silvopastoral systems in the Brazilian Cerrado. Revista Brasileira de Ciência do Solo, 48 https://doi.org/10.36783/18069657rbcs20240057.

14. Juan P. Chavarro-Bermeo, Bruna Arruda, Dúber A. Mora-Motta, Wilfrand Bejarano-Herrera, Fausto A. Ortiz-Morea, Anil Somenahally, Adriana M. Silva-Olaya. (2022). Responses of Soil Phosphorus Fractions to Land-Use Change in Colombian Amazon. Sustainability, 14(4), p.2285. https://doi.org/10.3390/su14042285.

15. Andres Olaya‐Montes, Maria P. Llanos‐Cabrera, Maurício R. Cherubin, Wilmer Herrera‐Valencia, Fausto A. Ortiz‐Morea, Adriana M. Silva‐Olaya. (2021). Restoring soil carbon and chemical properties through silvopastoral adoption in the Colombian Amazon region. Land Degradation & Development, 32(13), p.3720. https://doi.org/10.1002/ldr.3832.

16. Abdon L. Schmitt Filho, Stéfano Gomes Kretzer, Joshua Farley, Daniele C. Kazama, Paulo A. Sinisgalli, Matheus Deniz. (2023). Applied nucleation under high biodiversity silvopastoral system as an adaptive strategy against microclimate extremes in pasture areas. International Journal of Biometeorology, 67(7), p.1199. https://doi.org/10.1007/s00484-023-02488-2.

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