Mostrar el registro sencillo del ítem
Contenido de carbono en un bosque de tierra firme del resguardo Nonuya-Villazul, amazonia colombiana
dc.contributor.author | Paky Barbosa, Edwin | spa |
dc.contributor.author | Moreno, Fabian | spa |
dc.contributor.author | Alvarez-Dávila, Esteban | spa |
dc.date.accessioned | 2017-07-01 00:00:00 | |
dc.date.accessioned | 2023-09-19T21:10:08Z | |
dc.date.available | 2017-07-01 00:00:00 | |
dc.date.available | 2023-09-19T21:10:08Z | |
dc.date.issued | 2017-07-01 | |
dc.identifier.issn | 0120-0739 | |
dc.identifier.uri | http://test.repositoriodigital.com:8080/handle/123456789/44437 | |
dc.description.abstract | La implementación de los programas REDD+ requiere estimaciones precisas del carbono forestal. En este estudio se reporta el contenido de carbono en un bosque de tierra firme del resguardo Villazul-Nonuya RVN de la Amazonia colombiana, con base en una parcela permanente de 6 ha. Se evalúa su variación espacial y la contribución del sotobosque, dos factores poco considerados. Se encontró una biomasa promedio total de 336.1±14.0 t.ha-1; el 11.5% se encuentra en el sotobosque (DAP 1-10 cm) y el 88.5% corresponde a árboles con DAP ≥ 10 cm; los árboles grandes (DAP ≥ 70 cm) son pocos (4 ±1 por ha) y tienen una baja contribución a la biomasa (6.8%) en comparación con otros bosques tropicales. La biomasa promedio estimada está dentro del rango reportado para toda la cuenca Amazónica, es superior a la Amazonia Occidental y similar al de Amazonia colombiana. Considerando que el resguardo VN tiene 208 800 ha en bosques de tierra firme, se estimó un promedio total de 31.0 Mt C (95% IC 29.1-32.04). Estos resultados permiten ubicar a los bosques del resguardo VN en un contexto global y mejorar la precisión de las estimaciones de carbono forestal en la Amazonia colombiana. | spa |
dc.description.abstract | Implementation of REDD programs requires accurate estimates of forest carbon. This study reports biomass and carbon in a forest of the Nonuya-Villazul indigenous reservation (RVN) in the Colombian Amazon, based on a permanent plot of 6 ha. The local spatial variation of the biomass and the contribution of the undergrowth were evaluated, two factors that are rarely taken into account. A total average biomass of 336.1 ± 14.0 t.ha-1 was found; 11.5% is in the understory (DAP 1-10 cm) and 88.5% corresponds to trees with DBH ≥ 10 cm; large trees (DAP ≥ 70 cm) are few (4 ± 1 ha) and have a low contribution to total biomass (6.8%) compared to other tropical forests. The biomass is within the range reported for the Amazon basin, is superior to the Western Amazon and similar to the Colombian Amazon. Considering that the RVN has 208800 ha in unflooded forests, a total average of 31.0 Mt C (95% CI 29.1 - 32.04) was estimated. These results allow to locate the forests of the RVN in a global context and improve the forest carbon estimations in the Colombian Amazon. | eng |
dc.format.mimetype | application/pdf | spa |
dc.format.mimetype | text/html | spa |
dc.language.iso | spa | spa |
dc.publisher | Universidad Distrital Francisco José de Caldas | spa |
dc.rights | Colombia Forestal - 2017 | spa |
dc.rights.uri | https://creativecommons.org/licenses/by-nc-sa/4.0/ | spa |
dc.source | https://revistas.udistrital.edu.co/index.php/colfor/article/view/11188 | spa |
dc.subject | biomasa forestal | spa |
dc.subject | cambio climático | spa |
dc.subject | monitoreo del bosque | spa |
dc.subject | parcela permanente | spa |
dc.subject | forest biomass | eng |
dc.subject | climate change | eng |
dc.subject | forest monitoring | eng |
dc.subject | permanent plot | eng |
dc.title | Contenido de carbono en un bosque de tierra firme del resguardo Nonuya-Villazul, amazonia colombiana | spa |
dc.type | Artículo de revista | spa |
dc.identifier.doi | 10.14483/udistrital.jour.colomb.for.2017.2.a04 | |
dc.rights.accessrights | info:eu-repo/semantics/openAccess | spa |
dc.type.coar | http://purl.org/coar/resource_type/c_6501 | spa |
dc.type.coar | http://purl.org/coar/resource_type/c_2df8fbb1 | spa |
dc.type.local | Journal article | eng |
dc.title.translated | Carbon stock in a unflooded forest of the Nonuya-Villazul indigenous reservation in the Colombian amazon | eng |
dc.rights.coar | http://purl.org/coar/access_right/c_abf2 | spa |
dc.relation.references | Álvarez, E., Duque, A., Saldarriaga, J., Cabrera, K., Salas, G., Valle, I., Lema, A., Moreno, F., Orrego, S. & Rodríguez, L. (2012). Tree above-ground biomass allometries for carbon stocks estimation in the natural forests of Colombia. Forest Ecology and Management, 267, 297-308. https://doi.org/10.1016/j.foreco.2011.12.013 | spa |
dc.relation.references | Álvarez-Dávila, E., Cayuela, L., González-Caro, S., Aldana, A. M., Stevenson, P. R., Phillips, O., Cogollo, A., Pe-uela, M.C., von Hildebrand, P., Jiménez, E., Melo, O., Velasquez, O., Fernández, F., Londo-o-Vega, C., Velázquez-Rua, C., Serna, M., Mendoza, I. & Rey-Benayas, J. M. (2017). Forest Biomass Density across Large Climate Gradients in Northern South America is related to Water Availability but not with Temperature. PLoS ONE 12(3), e0171072. https://doi.org/10.1371/journal.pone.0171072 | spa |
dc.relation.references | Anaya, J. A., Chuvieco, E. & Palacios-Orueta, A. (2009). Aboveground biomass assessment in Colombia: A remote sensing approach. Forest Ecology and Management, 257(4), 1237-1246. https://doi.org/10.1016/j.foreco.2008.11.016 | spa |
dc.relation.references | Asner, G. P., Clark, J. K., Mascaro, J., Galindo García, G. A., Chadwick, K. D., Navarrete Encinales, D. A., Paez-Acosta, G., Cabrera Montenegro, E., Kennedy-Bowdoin, T., Duque, á, Balaji, A., Von Hildebrand, P., Maatoug, L., Phillips Bernal, J. F., Yepes Quintero, A. P., Knapp, D. E., García Dávila, M. C., Jacobson, J. & Ordó-ez, M. F. (2012). High-resolution mapping of forest carbon stocks in the Colombian Amazon. Biogeosciences, 9(7), 2683-2696. https://doi.org/10.5194/bg-9-2683-2012 | spa |
dc.relation.references | Baccini, a., Goetz, S. J., Walker, W. S., Laporte, N. T., Sun, M., Sulla-Menashe, D., Hackler, J., Beck, P. S., Dubayah, R., Friedl, M., Samanta, S. & Houghton, R. (2012). Estimated carbon dioxide emissions from tropical deforestation improved by carbon-density maps. Nature Climate Change, 2(3), 182-185. https://doi.org/10.1038/nclimate1354 | spa |
dc.relation.references | Bastin, J.-F., Barbier, N., Réjou-Méchain, M., Fayolle, A., Gourlet-Fleury, S., Maniatis, D., Haulleville, T., Baya, F., Beeckman, H., Beina, D., Couteron, P., Chuyong, G., Dauby, G., Doucet, J-L., Droissart, V., Dufrêne, M., Ewango, C., Gillet, J. F., Gonmadje, C. H., Hart, T., Kavali, T., Kenfack, D., Libalah, M., Malhi, Y., Makana, J-R., Pélissier, R., Ploton, P., Serckx, A., Sonké, B., Stevart, T., Thomas, D. W., De Cannière, C. & Bogaert, J. (2015). Seeing Central African forests through their largest trees. Scientific Reports, 5(august), 1-8. https://doi.org/10.1038/srep13156 | spa |
dc.relation.references | Bradford, M. G., Metcalfe, D. J., Ford, A., Liddell, M. J. & McKeown, A. (2014). Floristics, stand structure and aboveground biomass of a 25-ha rainforest plot in the wet tropics of Australia. Journal of Tropical Forest Science, 26(4), 543-553. | spa |
dc.relation.references | Chambers, J. Q. J. Q., Negron-Juarez, R. I. R. I., Marra, D. M. D. M., Di Vittorio, A., Tews, J., Roberts, D., Ribeiro, G., Trumbore, S. & Higuchi, N. (2013). The steady-state mosaic of disturbance and succession across an old-growth Central Amazon forest landscape. Proceedings of the National Academy of Sciences, 110(10), 3949-3954. https://doi.org/10.1073/pnas.1202894110 | spa |
dc.relation.references | Chao, K. J., Phillips, O. L., Gloor, E., Monteagudo, A., Torres-Lezama, A. & Martínez, R. V. (2008). Growth and wood density predict tree mortality in Amazon forests. Journal of Ecology, 96(2), 281-292. https://doi.org/10.1111/j.1365-2745.2007.01343.x | spa |
dc.relation.references | Chave, J., Andalo, C., Brown, S., Cairns, M. A., Chambers, J. Q., Eamus, D., Fölster, H., Fromard, F., Higuchi, N., Kira, T., Lescure, J. P., Nelson, B. W., Ogawa, H., Puig, H., Riéra, B. & Yamakura, T. (2005). Tree allometry and improved estimation of carbon stocks and balance in tropical forests. Oecologia, 145(1), 87-99. https://doi.org/10.1007/s00442-005-0100-x | spa |
dc.relation.references | Chave, J., Condit, R., Aguilar, S., Hernandez, A., Lao, S. & Perez, R. (2004). Error propagation and scaling for tropical forest biomass estimates. Philosophical Transactions of the Royal Society B: Biological Sciences, 359(1443), 409-420. https://doi.org/10.1098/rstb.2003.1425 | spa |
dc.relation.references | Chave, J., Condit, R., Lao, S., Caspersen, J. P., Foster, R. B. & Hubbell, S. P. (2003). Spatial and temporal variation of biomass in a tropical forest: Results from a large census plot in Panama. Journal of Ecology, 91(2), 240-252. https://doi.org/10.1046/j.1365-2745.2003.00757.x | spa |
dc.relation.references | Chave, J., Réjou-Méchain, M., Búrquez, A., Chidumayo, E., Colgan, M. S., Delitti, W. B. C., Duque, A., Eid, T., Fearnside, P. M., Goodman, R. C., Henry, M., Martínez-Yrízar, A., Mugasha, W. A., Muller-Landau, H. C., Mencuccini, M., Nelson, B. W., Ngomanda, A., Nogueira, E. M., Ortiz-Malavassi, E., Pélissier, R., Ploton, P., Ryan, C. M., Saldarriaga, J. G. & Vieilledent, G. (2014). Improved allometric models to estimate the aboveground biomass of tropical trees. Global Change Biology, 20(10), 3177-3190. https://doi.org/10.1111/gcb.12629 | spa |
dc.relation.references | Chave, J., Riera, B. & Dubois, M.-A. (2001). Estimation of biomass in a neotropical forest of French Guiana: spatial and temporal variability. Journal of Tropical Ecology, 17, 79-96. https://doi.org/10.1017/S0266467401001055 | spa |
dc.relation.references | Duivenvoorden, J. F., Duque, A., Cavelier, J., Garcia, A., Grandez, C., Macia, M. J., Romero-Saltos, H., Sanchez, M. & Valencia, R. (2005). Density and diversity of plants in relation to soil nutrient reserves in well-drained upland forests in the north-western Amazon basin. Kongelige Danske Videnskabernes Selskab Biologiske Skrifter, 55, 25-35. | spa |
dc.relation.references | Duivenvoorden J.F. (1995). Tree species composition and rainforest-environmental relationship in the middle Caquetá area Colombia, NW Amazonia. Vegetation. Vegetatio, 120(2), 91-113. https://doi.org/10.1007/BF00034341 | spa |
dc.relation.references | Eggleston HS, Buendia L, Miwa K, Ngara T & Tanabe, K. (eds). (2006). 2006 IPCC guidelines for national greenhouse gas inventories. Japón: Task Force on National Greenhouse Gas Inventories (TFI) of the IPCC-IGES. Fecha de acceso: 08 de noviembre de 2011. Recuperado de: http://www.ipcc-nggip.iges.tor.jp/public/2006gl/pdf/0_Overview/V0_0_Cover.pdf | spa |
dc.relation.references | Fauset, S. et al.(2015). Hyperdominance in Amazonian forest carbon cycling. Nature Communications, 6, 6857. https://doi.org/10.1038/ncomms7857 | spa |
dc.relation.references | Feldpausch, T. R. et al.(2012). Tree height integrated into pantropical forest biomass estimates. Biogeosciences, 9(8), 3381-3403. https://doi.org/10.5194/bg-9-3381-2012 | spa |
dc.relation.references | Galindo, G., Cabrera, E., Vargas, D., Pabón, H., Yepes, A., Phillips, J. F., Navarrete, D., Duque, A. García, M. & Ordo-ez, M. F. (2011). Estimación de la biomasa aérea usando datos de campo e información de sensores remotos Versión 1.0. Bogotá: Ideam. 50p. | spa |
dc.relation.references | García-Arbeláez, C., Barrera, X., Gómez, R. & Suárez-Casta-o, R. (2015). El ABC de los compromisos de Colombia para la Cop 21. Bogotá: WWF-Colombia. | spa |
dc.relation.references | Goodman, R. C., Phillips, O. L., Del Castillo Torres, D., Freitas, L., Cortese, S. T., Monteagudo, A. & Baker, T. R. (2013). Amazon palm biomass and allometry. Forest Ecology and Management, 310, 994-1004. https://doi.org/10.1016/j.foreco.2013.09.045 | spa |
dc.relation.references | Holdridge, R. (1982). Ecología basada en zonas de vida. San José de Costa Rica: Instituto Interamericano de Cooperación para la Agricultura (IICA). 216 pp. | spa |
dc.relation.references | Instituto de Hidrología, Meteorología y Estudios Ambientales (Ideam), Instituto Geográfico Agustín Codazzi (Igac), Instituto de Investigaciones Marinas y Costeras "José Benito Vives de Andreis" (Invemar), Instituto Amazónico de Investigaciones científicas (Sinchi) & Instituto de Investigaciones Ambientales del Pacífico (IIAP) (2007). Mapa de Ecosistemas Continentales. Costeros y Marinos de Colombia. Bogotá: Ideam. | spa |
dc.relation.references | Kirby, K. R. & Potvin, C. (2007). Variation in carbon storage among tree species: Implications for the management of a small-scale carbon sink project. Forest Ecology and Management, 246(2-3), 208-221. https://doi.org/10.1016/j.foreco.2007.03.072 | spa |
dc.relation.references | LaFrankie, J. V., Ashton, P. S., Chuyong, G. B., Co, L., Condit, R., Davies, S. J., Foster, R., Hubbell, S., Kenfack, D., Lagunzad, D., Losos, E., Nor, N., Tan, S., Thomas, D., Valencia, R. & Villa, G. (2006). Contrasting structure and composition of the understory in species-rich tropical rain forests. Ecology, 87(9), 2298-2305. https://doi.org/10.1890/0012-9658(2006)87[2298:CSACOT]2.0.CO;2 | spa |
dc.relation.references | Larson, A. M., Corbera, E., Cronkleton, P., Van Dam, C., Bray, D. B., Estrada, M., ... & Pacheco, P. (2010). Rights to forests and carbon under REDD+ initiatives in Latin America. Bogor, Indonesia: Center for International Forestry Research (CIFOR). 8 p. | spa |
dc.relation.references | Lin, D., Lai, J., Muller-Landau, H. C., Mi, X. & Ma, K. (2012). Topographic Variation in Aboveground Biomass in a Subtropical Evergreen Broad-Leaved Forest in China. PLoS ONE, 7(10), 22-24. https://doi.org/10.1371/journal.pone.0048244 | spa |
dc.relation.references | Londo-o, A. C. (2011). Flora and dynamics of an upland and a floodplain forest in Pe-a Roja , Colombian Amazonia (Ph.D. thesis). Amsterdam: Universiteit van Amsterdam. 243 p. | spa |
dc.relation.references | Londo-o, A. C. & Alvarez, E. (1997). Composicion floristica de dos bosques (tierra firme y varzea) en la region de araracuara, amazonia colombiana. Caldasia, 19(3), 431-463. | spa |
dc.relation.references | Londo-o, A. C., Alvarez, E., Forero, E. & Morton, C. M. (1995). A New Genus and Species of Dipterocarpaceae from the Neotropics. I. Introduction, Taxonomy, Ecology, and Distribution. Brittonia, 47(3), 225-236. https://doi.org/10.2307/2807116 | spa |
dc.relation.references | Lutz, J. A., Larson, A. J., Swanson, M. E. & Freund, J. A. (2012). Ecological importance of large-diameter trees in a temperate mixed-conifer forest. PLoS ONE, 7(5). ttp://doi.org/10.1371/journal.pone.0036131 https://doi.org/10.1371/journal.pone.0036131 | spa |
dc.relation.references | Magnabosco-Marra, D., Higuchi, N., Trumbore, S. E., Ribeiro, G. H. P. M., Dos Santos, J., Carneiro, V. M. C., Lima, A., Chambers, J., Negrón-Juárrez, R., Holzwarth, F., Reu, B. & Wirth, C. (2016). Predicting biomass of hyperdiverse and structurally complex central Amazonian forests-A virtual approach using extensive field data. Biogeosciences, 13(5), 1553-1570. https://doi.org/10.5194/bg-13-1553-2016 | spa |
dc.relation.references | Malhi, Y., Baker, T. R., Phillips, O. L., Almeida, S., Alvarez, E., Arroyo, L., Chave, J., Czimczik, C., Di Fiore, A., Higuchi, N., Killeen, T., Laurance, S., Laurance, W., Lewis, S., Mercado-Montoya, L., Monteagudo, A., Neill, D., Vargas, P., Patino, S., Pitman, N., Quesada, C., Salomao, R., Silva, J., Lezama, A., Martínez, R., Terborgh, J., Vinceti, B. & Lloyd, J. (2004). The above-ground coarse wood productivity of 104 Neotropical forest plots. Global Change Biology, 10, 563-591. https://doi.org/10.1111/j.1529-8817.2003.00778.x | spa |
dc.relation.references | Mello, L. N. do C., Sales, M. H. R. & Rosa, L. P. (2016). Analysis of results of biomass forest inventory in northeastern amazon for development of REDD+ carbon project. Anais Da Academia Brasileira de Ciencias, 88(1), 55-64. https://doi.org/10.1590/0001-3765201620140646 | spa |
dc.relation.references | Memiaghe, H. R., Lutz, J. A., Korte, L., Alonso, A. & Kenfack, D. (2016). Ecological Importance of Small-Diameter Trees to the Structure, Diversity and Biomass of a Tropical Evergreen Forest at Rabi, Gabon. PLoS ONE, 11(5), 1-15. https://doi.org/10.1371/journal.pone.0154988 | spa |
dc.relation.references | Mitchard, E. T. et al. (2014). Markedly divergent estimates of Amazon forest carbon density from ground plots and satellites. Global Ecology and Biogeography, 23, 935-946. https://doi.org/10.1111/geb.12168 | spa |
dc.relation.references | Murphy, H. T., Bradford, M. G., Dalongeville, A., Ford, A. J. & Metcalfe, D. J. (2013). No evidence for long-term increases in biomass and stem density in the tropical rain forests of Australia. Journal of Ecology, 101(6), 1589-1597. https://doi.org/10.1111/1365-2745.12163 | spa |
dc.relation.references | Nascimento, H. E. M. & Laurance, W. F. (2002). Total aboveground biomass in central Amazonian rainforests: A landscape-scale study. Forest Ecology and Management, 168(1-3), 311-321. https://doi.org/10.1016/S0378-1127(01)00749-6 | spa |
dc.relation.references | Ngo, K. M., Turner, B. L., Muller-Landau, H. C., Davies, S. J., Larjavaara, M., Nik Hassan, N. F. bin & Lum, S. (2013). Carbon stocks in primary and secondary tropical forests in Singapore. Forest Ecology and Management, 296, 81-89. https://doi.org/10.1016/j.foreco.2013.02.004 | spa |
dc.relation.references | Phillips, J., Duque, A., Scott, C., Wayson, C., Galindo, G., Cabrera, E.,Chave, J., Pe-a, M., Alvarez, E., Carrdenas, D., Duivenvoorden, J., Hildebrand, P., Stevenson, P., Ramírez, S. & Yepes, A. (2016). Live aboveground carbon stocks in natural forests of Colombia.Forest Ecology and Management, 374(August), 119-128. https://doi.org/10.1016/j.foreco.2016.05.009 | spa |
dc.relation.references | Phillips, J., Duque, A., Yepez, A., García, M., Navarrete, D. A., álvarez, E. & Cárdenas, D. (2011). Estimación de las reservas actuales (2010) de carbono almacenadas en la biomasa aérea en bosques naturales de Colombia-Estratificación, alometría y métodos análiticos. Bogotá: Ideam. | spa |
dc.relation.references | Phillips, O., Malhi, Y., Vinceti, B., Baker, T., Lewis, S., Higuchi, N., Laurance, W. F., Nú-ez Vargas, P., Vásquez Martínez, R., Laurance, S., Ferreira, L. V., Stern, M., Brown, S. & Grace, J. (2002). Changes in growth of tropical forests: evaluating potential biases. Ecological Applications, 12(2), 576-587. https://doi.org/10.1890/1051-0761(2002)012[0576:CIGOTF]2.0.CO;2 | spa |
dc.relation.references | Quesada, C.A., Phillips, O.L., Schwarz, M., Czimczik, C.I., Baker, T.R. & Pati-o, S.(2012). Basin-wide variations in Amazon forest structure and function are mediated by both soils and climate. Biogeosciences, 9, 2203-2246. https://doi.org/10.5194/bg-9-2203-2012 | spa |
dc.relation.references | Réjou-Méchain, M. et al.(2014). Local spatial structure of forest biomass and its consequences for remote sensing of carbon stocks. Biogeosciences, 11(23), 6827-6840. https://doi.org/10.5194/bg-11-6827-2014 | spa |
dc.relation.references | Rodriguez, L. (1991). Biomasa y reserva de nutrientes en un ecosistema de tierra firme en la región de Araracuara. Bogotá: Fundación Tropenbos-Colombia. Documento sin publicar. | spa |
dc.relation.references | Royo, A. & Carson, W. P. (2006). On the formation of dense understory layers in forests worldwide: consequences and implications for forest dynamics, biodiversity, and succession. Canadian Journal of Forest Research, 36(6), 1345-1362. https://doi.org/10.1139/x06-025 | spa |
dc.relation.references | Saatchi, S. S., Harris, N. L., Brown, S., Lefsky, M., Mitchard, E. T. , Salas, W., Zutta, B. R., Buermann, W., Lewis, S. L., Hagen, S., Petrova, S., White, L., Silman, M. & Morel, A. (2011). Benchmark map of forest carbon stocks in tropical regions across three continents. Proceedings of the National Academy of Sciences of the United States of America, 108, 9899-904. https://doi.org/10.1073/pnas.1019576108 | spa |
dc.relation.references | Salinas-Abdala, Y. (2014). Los derechos territoriales de los grupos étnicos: ¿un compromiso social, una obligación constitucional o una tarea hecha a medias? Punto de Encuentro, 67, 1-39. | spa |
dc.relation.references | Schnitzer, S. A., DeWalt, S. J. & Chave, J. (2006). Censusing and measuring lianas: A quantitative comparison of the common methods. Biotropica, 38(5), 581-591. https://doi.org/10.1111/j.1744-7429.2006.00187.x | spa |
dc.relation.references | Sierra, C. A., del Valle, J. I., Orrego, S. A., Moreno, F. H., Harmon, M. E., Zapata, M., Colorado, G. J., Herrera, M. A., Lara, W., Restrepo, D. E., Berrouet, L. M., Loaiza, L. M. & Benjumea, J. F. (2007). Total carbon stocks in a tropical forest landscape of the Porce region, Colombia. Forest Ecology and Management, 243(2-3), 299-309. https://doi.org/10.1016/j.foreco.2007.03.026 | spa |
dc.relation.references | Slik, J. W. F. et al.(2013). Large trees drive forest aboveground biomass variation in moist lowland forests across the tropics. Global Ecology and Biogeography, 22(12), 1261-1271. https://doi.org/10.1111/geb.12092 | spa |
dc.relation.references | Statgraphics Centurion, X. V. I. (2013). Statgraphics centurion XVI software version 16.2. 04. Virginia (USA): . StatPoint Technologies Inc, Warrenton. Recuperado de: www.statgraphics.net. | spa |
dc.relation.references | Valencia, R., Condit, R., Muller-Landau, H. C., Hernandez, C. & Navarrete, H. (2009). Dissecting biomass dynamics in a large Amazonian forest plot. Journal of Tropical Ecology, 25(5), 473. https://doi.org/10.1017/S0266467409990095 | spa |
dc.relation.references | Vincent, J. B., Henning, B., Saulei, S., Sosanika, G. & Weiblen, G. D. (2015). Forest carbon in lowland Papua New Guinea: Local variation and the importance of small trees. Austral Ecology, 40(2), 151-159. https://doi.org/10.1111/aec.12187 | spa |
dc.relation.references | Watch, C. T. (2013). Protecting Carbon to destroy forests. Land enclosures and REDD+. Carbon Trade Watch. Published by TNI, FDCL and IGO for the Hands off the Land Alliance. Recuperado de: http://www.carbontradewatch.org/downloads/publications/REDD_and_land-web.pdf. | spa |
dc.relation.references | Zanne, A. E., Lopez-Gonzalez, G., Coomes, D. A., Ilic, J., Jansen, S., Lewis, S. L., Miller, R. B., Swenson, N. G., Wiemann, M. C. & Chave, J. (2009). Data from: Towards a worldwide wood economics spectrum. Leeds (UK): Dryadlab.org. Recuperado de: http://dx.doi.org/10.5061/dryad.234 | spa |
dc.type.coarversion | http://purl.org/coar/version/c_970fb48d4fbd8a85 | spa |
dc.type.driver | info:eu-repo/semantics/article | spa |
dc.type.redcol | http://purl.org/redcol/resource_type/ART | spa |
dc.type.version | info:eu-repo/semantics/publishedVersion | spa |
dc.relation.citationvolume | 20 | spa |
dc.relation.citationissue | 2 | spa |
dc.relation.citationedition | Núm. 2 , Año 2017 : Julio-Diciembre | spa |
dc.relation.ispartofjournal | Colombia forestal | spa |
dc.identifier.eissn | 2256-201X | |
dc.identifier.url | https://doi.org/10.14483/udistrital.jour.colomb.for.2017.2.a04 | |
dc.relation.citationstartpage | 144 | |
dc.relation.citationendpage | 157 | |
dc.relation.bitstream | https://revistas.udistrital.edu.co/index.php/colfor/article/download/11188/12768 | |
dc.relation.bitstream | https://revistas.udistrital.edu.co/index.php/colfor/article/download/11188/12862 | |
dc.type.content | Text | spa |
dspace.entity.type | Publication | spa |
Ficheros en el ítem
Ficheros | Tamaño | Formato | Ver |
---|---|---|---|
No hay ficheros asociados a este ítem. |
Este ítem aparece en la(s) siguiente(s) colección(ones)
-
Distrital tst 1 [372]