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Global Warming and Tropical Land-Use Change: Greenhouse Gas Emissions from Biomass Burning, Decomposition and Soils in Forest Conversion, Shifting Cultivation and Secondary Vegetation

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Abstract

Tropical forest conversion, shifting cultivation and clearing of secondary vegetation make significant contributions to global emissions of greenhouse gases today, and have the potential for large additional emissions in future decades. Globally, an estimated 3.1×109 t of biomass carbon of these types is exposed to burning annually, of which 1.1×109 t is emitted to the atmosphere through combustion and 49×106 t is converted to charcoal (including 26–31×106 t C of black carbon). The amount of biomass exposed to burning includes above ground remains that failed to burn or decompose from clearing in previous years, and therefore exceeds the 1.9×109 t of aboveground biomass carbon cleared on average each year. Above-and belowground carbon emitted annually through decomposition processes totals 2.1×109 t C. A total gross emission (including decomposition of unburned aboveground biomass and of belowground biomass) of 3.41×109 t C year-1 results from clearing primary (nonfallow) and secondary (fallow) vegetation in the tropics. Adjustment for trace gas emissions using IPCC Second Assessment Report 100-year integration global warming potentials makes this equivalent to 3.39×109 t of CO2-equivalent carbon under a low trace gas scenario and 3.83×109 t under a high trace gas scenario. Of these totals, 1.06×109 t (31%) is the result of biomass burning under the low trace gas scenario and 1.50×109 t (39%) under the high trace gas scenario. The net emissions from all clearing of natural vegetation and of secondary forests (including both biomass and soil fluxes) is 2.0×109 t C, equivalent to 2.0–2.4×109 t of CO2-equivalent carbon. Adding emissions of 0.4×109 t C from land-use category changes other than deforestation brings the total for land-use change (not considering uptake of intact forest, recurrent burning of savannas or fires in intact forests) to 2.4×109 t C, equivalent to 2.4–2.9×109 t of CO2-equivalent carbon. The total net emission of carbon from the tropical land uses considered here (2.4×109 t C year-1)calculated for the 1981–1990 period is 50% higher than the 1.6×109 t C year-1 value used by the Intergovernmental Panel on Climate Change. The inferred (= `missing') sink in the global carbon budget is larger than previously thought. However, about half of the additional source suggested here maybe offset by a possible sink in uptake by Amazonian forests. Both alterations indicate that continued deforestation would produce greater impact on global carbon emissions. The total net emission of carbon calculated here indicates a major global warming impact from tropical land uses, equivalent to approximately 29% of the total anthropogenic emission from fossil fuels and land-use change.

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References

  • Allan, W.: 1965, The African Husbandman, Barnes and Noble, New York, p. 265.

    Google Scholar 

  • Andreae, M. O., Browell, E. V., Garstang, M., Gregory, G. L., Harriss, R. C., Hill, G. F., Jacob, D. J., Pereira, M. C., Sachse, G. W., Setzer, A. W., Silva Dias, P. L., Talbot, R. W., Torres, A. L., and Wofsy, S. C.: 1988, ‘Biomass-Burning Emissions and Associated Haze Layers over Amazonia’, J. Geophys. Res. (Atmos.) 93 (D2), 1509-1527.

    Article  CAS  Google Scholar 

  • Araujo, T. M.: 1995, Investigação das Taxas de Dióxido de Carbono Gerado em Queimadas na Região Amazônica, Ph.D. Dissertation in Mechanical Engineering, Universidade Estadual Paulista (UNESP), Guaratinguetá, São Paulo, Brazil, p. 212.

    Google Scholar 

  • Araujo, T. M., Carvalho Jr., J. A., Higuchi, N., Brasil Jr., A. C. P., and Mesquita, A. L. A.: 1997, ‘Estimativa de Taxas de Liberação de Carbono em Experimento de Queimada no Estado do Pará’, Anais da Academia Brasileira de Ciências 69, 575-585.

    Google Scholar 

  • Azevedo, L. G. and Adamoli, J.: 1988, ‘Avaliação Agroecológica dos Recursos Naturais da Região dos Cerrados’, in VI Simpósio sobre Cerrado, Empresa Brasileira de Pesquisa Agropecuária-Centro de Pesquisa Agropecuária dos Cerrados (EMBRAPA-CPAC), Planaltina, DF, Brazil, pp. 729-761.

    Google Scholar 

  • Barbosa, R. I.: 1994, Efeito Estufa na Amazônia: Estimativa da Biomassa e a Quantificação do Estoque e Liberação de Carbono na Queima de Pastagens Convertidas de Florestas Tropicais em Roraima, Brasil, Masters Thesis in Ecology, Instituto Nacional de Pesquisas da Amazônia (INPA)/Universidade Federal do Amazonas (UFAM), Manaus, Amazonas, Brazil, p. 85.

    Google Scholar 

  • Barbosa, R. I.: 1998, Avaliação da Área dos Sistemas Naturais e Agroecossistemas Atingida por Incêndios no Estado de Roraima (01.12.97 a 30.04.98), Instituto Nacional de Pesquisas da Amazônia/NÚcleo de Pesquisas de Roraima, Boa Vista, Roraima, Brazil, p. 30.

    Google Scholar 

  • Barbosa, R. I. and Fearnside, P. M.: 1996, ‘Pasture Burning in Amazonia: Dynamics of Residual Biomass and the Storage and Release of Aboveground Carbon’, J. Geophys. Res. (Atmos.) 101 (D20), 25,847-25,857.

    Article  CAS  Google Scholar 

  • Beardsley, T.: 1998, ‘In the Heat of the Night: Warmer Nights May Be Slowing Tropical Forest Growth and Raising Carbon Dioxide Levels’, Scient. Amer. 279 (4), 12.

    Article  Google Scholar 

  • Bogdonoff, P., Detwiler, R. P., and Hall, C. A. S.: 1985, ‘Land Use Change and Carbon Exchange in the Tropics: III. Structure, Basic Equations, and Sensitivity Analysis of the Model’, Environ. Manage. 9, 345-354.

    Article  CAS  Google Scholar 

  • Borges, L.: 1992, ‘Desmatamento Emite Só 1,4% de Carbono, Diz Inpe’, O Estado de São Paulo 10 April 1992, p. 13.

  • Brazil, Comissão Interministerial para Preparação da Conferência das Nações Unidas sobre Meio Ambiente e Desenvolvimento (CIMA): 1991a, O Desafio do Desenvolvimento Sustentável: Relatório do Brasil para a Conferência das Nações Unidas Sobre Meio Ambiente e Desenvolvimento, CIMA, Brasilia, DF, Brazil, p. 204.

    Google Scholar 

  • Brazil, Comissão Interministerial para Preparação da Conferência das Nações Unidas Sobre Meio Ambiente e Desenvolvimento (CIMA): 1991b, Subsídio Técnico para Elaboração do Relatório Nacional do Brasil para a Conferência das Nações Unidas Sobre Meio Ambiente e Desenvolvimento, CIMA, Brasilia, DF, Brazil, p. 172.

    Google Scholar 

  • Brazil, Instituto Brasileiro de Geografia e Estatística (IBGE) and Instituto Brasileiro de Desenvolvimento Florestal (IBDF): 1988, ‘Mapa de Vegetação do Brasil’, Map Scale 1:5,000,000, Instituto Brasileira de Meio Ambiente e Recursos Naturais e Renováveis (IBAMA), Brasilia, DF, Brazil.

    Google Scholar 

  • Brazil, Instituto Nacional de Pesquisas Espaciais (INPE): 1996, Projeto PRODES. Levantamento das Áreas Desflorestadas na Amazônia Legal no Período 1991-1994. Resultados, INPE, São Jose dos Campos, São Paulo, Brazil, p. 10.

    Google Scholar 

  • Brazil, Instituto Nacional de Pesquisas Espaciais (INPE): 1998, Amazônia: Desflorestamento 1995-1997, Instituto Nacional de Pesquisas Espaciais (INPE), São Jose dos Campos, São Paulo, Document released via internet (http://www.inpe.br).

    Google Scholar 

  • Brazil, Instituto Nacional de Pesquisas Espaciais (INPE): 1999, Monitoramento da Floresta Amazônica Brasileira por Satélite/Monitoring of the Brazilian Amazon Forest by Satellite: 1997-1998, Instituto Nacional de Pesquisas Espaciais (INPE), São José dos Campos, São Paulo, Document released via internet (http://www.inpe.br).

    Google Scholar 

  • Brown, S.: 1997, Estimating Biomass and Biomass Change of Tropical Forests: A Primer, FAO Forestry Paper 134, Food and Agriculture Organization of the United Nations (FAO), Rome, p. 55.

    Google Scholar 

  • Brown, S. and Lugo, A. E.: 1990, ‘Tropical Secondary Forests’, J. Trop. Ecol. 6, 1-32.

    Article  Google Scholar 

  • Brown, S. and Lugo, A. E.: 1992, ‘Aboveground Biomass Estimates for Tropical Moist Forests of the Brazilian Amazon’, Interciencia 17, 8-18.

    CAS  Google Scholar 

  • Brown, S., Gillespie, A. J. R., and Lugo, A. E.: 1989, ‘Biomass Estimation Methods for Tropical Forests with Applications to Forest Inventory Data’, For. Sci. 35, 881-902.

    Google Scholar 

  • Carvalho Jr., J. A., Santos, J. M., Santos, J. C., Leitão, M. M., and Higuchi, N.: 1995, ‘A Tropical Rainforest Clearing Experiment by Biomass Burning in the Manaus Region’, Atmos. Environ. 29, 2301-2309.

    Article  CAS  Google Scholar 

  • Clark, D. A., Piper, S. C., Keeling, C. D., and Clark, D. B.: 1998, ‘Forest-and Species-Level Growth Responses of Tropical Rain Forest Trees to Interannual Climatic Variation, and Their Relation to the Global Atmospheric CO2 Anomaly: A 13-Year Record’, in Abstracts, Meeting of Ecological Society of America, 2-6 Aug. 1998, Baltimore, MD, p. 44.

  • Cofer, W. R., Levine, J. S., Riggan, P. H., Sebacher, D. I., Winstead, E. L., Shaw, E. F., Brass, J. A., and Ambrosia, V. G.: 1988, ‘Trace Gas Emissions from a Mid-Latitude Prescribed Chaparral Fire’, J. Geophys. Res. (Atmos.) 93, 1653-1658.

    Article  CAS  Google Scholar 

  • Crutzen, P. J. and Andreae, M. O.: 1990, ‘Biomass Burning in the Tropics: Impact on Atmospheric Chemistry and Biogeochemical Cycles’, Science 250, 1669-1678.

    Article  CAS  Google Scholar 

  • Crutzen, P. J., Delany, A. C., Greenberg, J., Haagenson, P., Heidt, L., Lueb, R., Pollock, W., Seiler, W., Wartburg, A., and Zimmerman, P.: 1985, ‘Tropospheric Chemical Composition Measurements in Brazil during the Dry Season’, J. Atmos. Chem. 2, 233-256.

    Article  CAS  Google Scholar 

  • da Silva, M. C.: 1991, Ecologia de Subsistência de uma População Cabocla na Amazônia Brasileira, Master's Thesis in Ecology, Instituto Nacional de Pesquisas da Amazonia (INPA)/Universidade Federal do Amazonas (UFAM), Manaus, Brazil, p. 103.

    Google Scholar 

  • de Castro, E. A. and Kauffman, J. B.: 1998, ‘Ecosystem Structure in Brazilian Cerrado: A Vegetation Gradient of Aboveground Biomass, Root Mass and Consumption by Fire’, J. Trop. Ecol. 14, 263-283.

    Article  Google Scholar 

  • Dias, B. F. S.: 1996, ‘Cerrados: Uma Caracterização’, in Dias, B. (ed.), Alternativas de Desenvolvimento dos Cerrados: Manejo e Conservação dos Recursos Naturais Renováveis, Fundação Pró-Natureza (FUNATURA), Brasilia, Brazil, pp. 11-25.

    Google Scholar 

  • Ewel, J., Berish, C., Brown, B., Price, N., and Raich, J.: 1981, ‘Slash and Burn Impacts on a Costa Rican Wet Forest Site’, Ecology 62, 816-829.

    Article  CAS  Google Scholar 

  • FAO (Food and Agriculture Organization of the United Nations): 1993, Forest Resources Assessment 1990: Tropical Countries, FAO Forestry Paper 112, FAO, Rome, p. 61 + annexes.

    Google Scholar 

  • FAO (Food and Agriculture Organization of the United Nations): 1995, Forest Resources Assessment 1990: Global Synthesis, FAO Forestry Paper 124, FAO, Rome, p. 46 + annexes.

    Google Scholar 

  • FAO (Food and Agriculture Organization of the United Nations): 1996, Forest Resources Assessment 1990: Survey of Tropical Forest Cover and Study of Change Processes, FAO Forestry Paper 130, FAO, Rome, p. 152.

    Google Scholar 

  • Fearnside, P. M.: 1984a, ‘Land Clearing Behaviour in Small Farmer Settlement Schemes in the Brazilian Amazon and its Relation to Human Carrying Capacity’, in Chadwick, A. C. and Sutton, S. L. (eds.), Tropical Rain Forest: The Leeds Symposium, Leeds Philosophical and Literary Society, Leeds, U.K., pp. 255-271.

    Google Scholar 

  • Fearnside, P. M.: 1984b, ‘Simulation of Meteorological Parameters for Estimating Human Carrying Capacity in Brazil's Transamazon Highway Colonization Area’, Trop. Ecol. 25, 134-142.

    Google Scholar 

  • Fearnside, P. M.: 1986, Human Carrying Capacity of the Brazilian Rainforest, Columbia University Press, New York, p. 293.

    Google Scholar 

  • Fearnside, P. M.: 1989, ‘Burn Quality Prediction for Simulation of the Agricultural System of Brazil's Transamazon Highway Colonists’, Turrialba 39, 229-235.

    Google Scholar 

  • Fearnside, P. M.: 1990a, ‘The Rate and Extent of Deforestation in Brazilian Amazonia’, Environ. Conserv. 17, 213-226.

    Article  Google Scholar 

  • Fearnside, P. M.: 1990b, ‘Fire in the Tropical Rain Forests of the Amazon Basin’, in Goldammer, J. G. (ed.), Fire in the Tropical Biota: Ecosystem Processes and Global Challenges, Springer-Verlag, Heidelberg, pp. 106-116.

    Chapter  Google Scholar 

  • Fearnside, P. M.: 1991, ‘Greenhouse Gas Contributions from Deforestation in Brazilian Amazonia’, in Levine, J. S. (ed.), Global Biomass Burning: Atmospheric, Climatic, and Biospheric Implications, MIT Press, Cambridge, MA, pp. 92-105.

    Chapter  Google Scholar 

  • Fearnside, P. M.: 1992a, ‘Forest Biomass in Brazilian Amazonia: Comments on the Estimate by Brown and Lugo’, Interciencia 17, 19-27.

    Google Scholar 

  • Fearnside, P. M.: 1992b, Greenhouse Gas Emissions from Deforestation in the Brazilian Amazon, Carbon Emissions and Sequestration in Forests: Case Studies from Developing Countries, Vol. 2, LBL-32758, UC-402, Climate Change Division, Environmental Protection Agency, Washington, DC and Energy and Environment Division, Lawrence Berkeley Laboratory (LBL), University of California (UC), Berkeley, CA, p. 73.

    Google Scholar 

  • Fearnside, P. M.: 1993a, ‘Desmatamento na Amazônia: Quem tem razão-o INPE ou a NASA?’, Ciência Hoje 16 (96), 6-8.

    Google Scholar 

  • Fearnside, P. M.: 1993b, ‘Deforestation in Brazilian Amazonia: The Effect of Population and Land Tenure’, Ambio 22, 537-545.

    Google Scholar 

  • Fearnside, P. M.: 1993c, ‘Biomass of Brazil's Amazonian Forests: Reply to Brown and Lugo Revisited’, Interciencia 18, 5-7.

    Google Scholar 

  • Fearnside, P. M.: 1994, ‘Biomassa das Florestas Amazônicas Brasileiras’, in Anais do Seminário Emissão × Seqüestro de CO 2, Companhia Vale do Rio Doce (CVRD), Rio de Janeiro, Brazil, pp. 95-124.

    Google Scholar 

  • Fearnside, P. M.: 1995a, ‘Potential Impacts of Climatic Change on Natural Forests and Forestry in Brazilian Amazonia’, For. Ecol. Manage. 78, 51-70.

    Article  Google Scholar 

  • Fearnside, P. M.: 1995b, ‘Hydroelectric Dams in the Brazilian Amazon as Sources of “Greenhouse” Gases', Environ. Conserv. 22, 7-19.

    Article  CAS  Google Scholar 

  • Fearnside, P. M.: 1996a, ‘Amazonia and Global Warming: Annual Balance of Greenhouse Gas Emissions from Land-Use Change in Brazil's Amazon Region’, in Levine, J. S. (ed.), Biomass Burning and Global Change. Volume 2: Biomass Burning in South America, Southeast Asia and Temperate and Boreal Ecosystems and the Oil Fires of Kuwait, MIT Press, Cambridge, MA, pp. 606-617.

    Google Scholar 

  • Fearnside, P. M.: 1996b, ‘Amazonian Deforestation and Global Warming: Carbon Stocks in Vegetation Replacing Brazil's Amazon Forest’, For. Ecol. Manage. 80, 21-34.

    Article  Google Scholar 

  • Fearnside, P. M.: 1997a, ‘Greenhouse Gases from Deforestation in Brazilian Amazonia: Net Committed Emissions’, Clim. Change 35, 321-360.

    Article  CAS  Google Scholar 

  • Fearnside, P. M.: 1997b, ‘Environmental Services as a Strategy for Sustainable Development in Rural Amazonia’, Ecol. Econ. 29, 53-70.

    Article  Google Scholar 

  • Fearnside, P. M.: 1998, ‘Plantation Forestry in Brazil: Projections to 2050’, Biomass Bioenergy 15, 437-450.

    Article  Google Scholar 

  • Fearnside, P. M.: 1999, ‘Greenhouse Gas Emissions from Land-Use Change in Brazil's Amazon Region’, Adv. Soil Sci., in press.

  • Fearnside, P. M. and Ferraz, J.: 1995, ‘A Conservation Gap Analysis of Brazil's Amazonian Vegetation’, Conserv. Biol. 9, 1134-1147.

    Article  Google Scholar 

  • Fearnside, P. M. and Rankin, J. M.: 1985, ‘Jari Revisited: Changes and the Outlook for Sustainability in Amazonia's Largest Silvicultural Estate’, Interciencia 10, 121-129.

    Google Scholar 

  • Fearnside, P. M. and Guimarães, W. M.: 1996, ‘Carbon Uptake by Secondary Forests in Brazilian Amazonia’, For. Ecol. Manage. 80, 35-46.

    Article  Google Scholar 

  • Fearnside, P. M. and Barbosa, R. I.: 1998, ‘Soil Carbon Changes from Conversion of Forest to Pasture in Brazilian Amazonia’, For. Ecol. Manage. 108, 147-166.

    Article  Google Scholar 

  • Fearnside, P. M., Leal Filho, N., and Fernandes, F. M.: 1993, ‘Rainforest Burning and the Global Carbon Budget: Biomass, Combustion Efficiency and Charcoal Formation in the Brazilian Amazon’, J. Geophys. Res. (Atmos.) 98 (D9), 16,733-16,743.

    Article  Google Scholar 

  • Fearnside, P. M., Sayer, J. A., Cleary, D., Bierregaard Jr., R. O., and Prance, G.: 1996, ‘Brazil’, in Harcourt, C. and Sayer, J. A. (eds.), The Conservation Atlas of Tropical Forests: The Americas, Simon and Schuster, New York, pp. 229-248.

    Google Scholar 

  • Fearnside, P. M., Graça, P. M. L. A., Leal Filho, N., Rodrigues, F. J. A., and Robinson, J. M.: 1999, ‘Tropical Forest Burning in Brazilian Amazonia: Measurements of Biomass Loading, Burning Efficiency and Charcoal Formation at Altamira, Para’, For. Ecol. Manage. 123, 65-79.

    Article  Google Scholar 

  • Flint, E. P. and Richards, J. F.: 1993, ‘Trends in Carbon Content of Vegetation in South and Southeast Asia Associated with Changes in Land Use’, in Dale, V. H. (ed.), Effects of Land-Use Change on Atmospheric CO 2 Concentrations: South and Southeast Asia as a Case Study, Springer-Verlag, Heidelberg, Germany, pp. 201-299.

    Google Scholar 

  • Fundação S.O.S. Mata Atlântica: 1992, Mata Atlântica, Fundação S.O.S. Mata Atlântica, São Paulo, Brazil.

    Google Scholar 

  • Graça, P. M. L. A.: 1997, ConteÚdo de Carbono na Biomassa Florestal da Amazônia e Alterações após à Queima, Masters Thesis in Forest Sciences, Escola Superior de Agricultura ‘Luiz de Queiroz’, Universidade de São Paulo, Piracicaba, São Paulo, Brazil, p. 105.

    Google Scholar 

  • Graça, P. M. L. A., Fearnside, P. M., and Cerri, C. C.: 1999, ‘Burning of Amazonian Forest in Ariquemes, Rondônia, Brazil: Biomass, Charcoal Formation and Burning Efficiency’, For. Ecol. Manage. 120, 179-191.

    Article  Google Scholar 

  • Grace, J., Lloyd, J., McIntyre, J., Miranda, A. C., Meir, P., Miranda, H. S., Nobre, C., Moncrieff, J., Massheder, J., Malhi, Y., Wright, I., and Gash, J.: 1995, ‘Carbon Dioxide Uptake by an Undisturbed Tropical Rain Forest in Southwest Amazonia, 1992 to 1993’, Science 270, 778-780.

    Article  CAS  Google Scholar 

  • Grace, J., Malhi, Y., Higuchi, N., and Meir, P.: 2000, ‘Productivity and Carbon Fluxes of Tropical Rain Forests’, in Mooney, H. A., Roy, J., and Saugler, B. (eds.), Global Terrestrial Productivity: Past, Present, and Future, Academic Press, London, in press.

    Google Scholar 

  • Guimarães, W. M.: 1993, Liberação de Carbono e Mudanças nos Estoques dos Nutrientes Contidos na Biomassa Aérea e no Solo Resultante de Queimadas de Florestas Secundárias em Áreas de Pastagens Abandonadas, em Altamira, Pará, Masters thesis in ecology, Instituto Nacional de Pesquisas da Amazônia/Fundação Universidade do Amazonas (INPA/FUA), Manaus, Brazil, p. 69.

    Google Scholar 

  • Hao, W. M. and Ward, D. E.: 1993, ‘Methane Production from Global Biomass Burning’, J. Geophys. Res. (Atmos.) 98 (D11), 20,657-20,661.

    Article  Google Scholar 

  • Hao, W. M., Liu, M. H., and Crutzen, P. J.: 1990, ‘Estimates of Annual and Regional Releases of CO2 and Other Trace Gases to the Atmosphere from Fires in the Tropics; Based on the FAO Statistics for the Period 1975-1980’, in Goldammer, J. G. (ed.), Fire in the Tropical Biota, Springer-Verlag, Heidelberg, pp. 440-462.

    Chapter  Google Scholar 

  • Higuchi, N. and Carvalho Jr., J. A.: 1994, ‘Fitomassa e ConteÚdo de Carbono de Espécies Arbóreas da Amazônia’, in Anais do Seminário Emissão × Seqüestro de CO 2, Companhia Vale do Rio Doce (CVRD), Rio de Janeiro, Brazil, pp. 125-153.

    Google Scholar 

  • Higuchi, N., dos Santos, J., Ribeiro, R. J., de Freitas, J. V., Vieira, G., Cöic, A., and Minette, L. J.: 1997, ‘Crescimento e Incremento de uma Floresta Amazônica de Terra-Firme Manejada Experimentalmente’, in Higuchi, N., Ferraz, J. B. S., Antony, L., Luizão, F., Luizão, R., Biot, Y., Hunter, I., Proctor, J., and Ross, S. (eds.), Bionte: Biomassa e Nutrientes Florestais, Relatório Final, Instituto Nacional de Pesquisas da Amazônia (INPA), Manaus, Brazil, pp. 87-132.

    Google Scholar 

  • Houghton, R. A.: 1991, ‘Tropical Deforestation and Atmospheric Carbon Dioxide’, Clim. Change 19, 99-118.

    Article  CAS  Google Scholar 

  • Houghton, R. A., Hobbie, J. E., Melillo, J. M., Moore, B., Peterson, B. J., Shaver, G. R., and Woodwell, G. M.: 1983, ‘Changes in the Carbon Content of the Terrestrial Biota and Soils between 1860 and 1980: A Net Release of CO2 to the Atmosphere’, Ecol. Monogr. 53, 235-262.

    Article  CAS  Google Scholar 

  • Houghton, R. A., Boone, R. D., Fruchi, J. R., Hobbie, J. E., Melillo, J. M., Palm, C. A., Peterson, B. J., Shaver, G. R., Woodwell, G. M., Moore, B., Skole, D. L., and Myers, N.: 1987, ‘The Flux of Carbon from Terrestrial Ecosystems to the Atmosphere in 1980 Due to Changes in Land Use: Geographic Distribution of the Global Flux’, Tellus 39B, 122-139.

    Article  CAS  Google Scholar 

  • Houghton, J. T., Meira Filho, L. G., Bruce, J., Hoesung, Lee, Callander, B. A., Haites, E., Harris, N., and Maskell, K. (eds.): 1995, Climate Change 1994: Radiative Forcing of Climate Change and an Evaluation of the IPCC IS92 Emission Scenarios, Cambridge University Press, Cambridge, U.K., p. 339.

    Google Scholar 

  • Houghton, J. T., Meira Filho, L. G., Callander, B. A., Harris, N., Kattenberg, A., and Maskell, K. (eds.): 1996, Climate Change 1995: The Science of Climate Change, Cambridge University Press, Cambridge, U.K., p. 572.

    Google Scholar 

  • Intergovernmental Panel on Climate Change (IPCC): 1995, Greenhouse Gas Inventory Reporting Instructions, IPCC Guidelines for National Greenhouse Gas Inventories, IPCC, Bracknell, U.K., 3 Vols.

    Google Scholar 

  • Intergovernmental Panel on Climate Change (IPCC): 1996, Climate Change 1995: The Science of Climate Change. Summary for Policy Makers, Cambridge University Press, Cambridge, U.K., p. 56.

    Google Scholar 

  • Joshi, V.: 1991, ‘Biomass Burning in India’, in Levine, J. S. (ed.) Global Biomass Burning: Atmospheric, Climatic, and Biospheric Implications, MIT Press, Boston, MA, pp. 185-193.

    Chapter  Google Scholar 

  • Kauffman, J. B., Cummings, D. L., and Ward, D. E.: 1994, ‘Relationships of Fire, Biomass and Nutrient Dynamics along a Vegetation Gradient in the Brazilian Cerrado’, J. Ecol. 82, 519-531.

    Article  Google Scholar 

  • Kauffman, J. B., Cummings, D. L., Ward, D. E., and Babbitt, R.: 1995, ‘Fire in the Brazilian Amazon: Biomass, Nutrient Pools, and Losses in Slashed Primary Forest’, Oecologia 104, 397-408.

    Article  Google Scholar 

  • Kaufman, Y. J., Setzer, A. W., Justice, C., Tucker, C. J., Pereira, M. G., and Fung, I.: 1990, ‘Remote Sensing of Biomass Burning in the Tropics’, in Goldammer, J. G. (ed.), Fire in the Tropical Biota: Ecosystem Processes and Global Challenges, Springer-Verlag, Heidelberg, pp. 371-399.

    Chapter  Google Scholar 

  • Keller, M., Jacob, D. J., Wofsy, S. C., and Harriss, R. C.: 1991, ‘Effects of Tropical Deforestation on Global and Regional Atmospheric Chemistry’, Clim. Change 19, 139-158.

    Article  CAS  Google Scholar 

  • Klink, C. A., Macedo, R. H., and Mueller, C. C.: 1994, Cerrado: Processo de Ocupação e Implicações para a Conservação e Utilização da sua Diversidade Biológica, World Wide Fund for Nature (WWF-Brasil), Brasilia, Brazil.

    Google Scholar 

  • Kuhlbusch, T. A. J. and Crutzen, P. J.: 1995, ‘Toward a Global Estimate of Black Carbon in Residues of Vegetation Fires Representing a Sink of Atmospheric CO2 and a Source of O2’, Global Biogeochem. Cycles 9, 491-501.

    Article  CAS  Google Scholar 

  • Laurance, W. F., Laurance, S. G., Ferreira, L. V., Rankin-de-Merona, J. M., Gascon, C., and Lovejoy, T. E.: 1997, ‘Biomass Collapse in Amazonian Forest Fragments’, Science 278, 1117-1118.

    Article  CAS  Google Scholar 

  • Laurance, W. F., Laurance, S. G., and Delamonica, P.: 1998, ‘Tropical Forest Fragmentation and Greenhouse Gas Emissions’, For. Ecol. Manage. 110, 173-180.

    Article  Google Scholar 

  • Malhi, Y., Nobre, A. D., Grace, J., Kruijt, B., Pereira, M. G. P., Culf, A., and Scott, S.: 1998, ‘Carbon Dioxide Transfer over a Central Amazonian Rain Forest’, J. Geophys. Res. (Atmos.) 103 (D24), 31,593-31,612.

    Article  CAS  Google Scholar 

  • Malingreau, J. P., Stephens, G., and Fellows, L.: 1985, ‘Remote Sensing of Forest Fires: Kalimantan and North Borneo in 1982-1983’, Ambio 14, 314-321.

    Google Scholar 

  • Martius, C., Wassmann, R., Thein, U., Bandeira, A. G., Rennenberg, H., Junk, W., and Seiler, W.: 1993, ‘Methane Emission from Wood-Feeding Termites in Amazonia’, Chemosphere 26, 623-632.

    Article  CAS  Google Scholar 

  • Martius, C., Fearnside, P. M., Bandeira, A. G., and Wassmann, R.: 1996, ‘Deforestation and Methane Release from Termites in Amazonia’, Chemosphere 33, 517-536.

    Article  CAS  Google Scholar 

  • McNeely, J., Sayers, J., Anspach, P., Ng, F., Singhapant, S., Nuevo, C., and Van der Heide, J.: 1992, ‘Shifting Cultivation’, in Collins, N. M., Sayer, J. A., and Whitmore, T. C. (eds.), The Conservation Atlas of Tropical Forests: Asia and the Pacific, MacMillan, London, pp. 30-35.

    Google Scholar 

  • Meggers, B. J.: 1994, ‘Archeological Evidence for the Impact of Mega-Niño Events on Amazonia During the Past Two Millennia’, Clim. Change 28, 321-338.

    Article  CAS  Google Scholar 

  • Moran, E. F., Brondizio, E., Mausel, P., and Wo, Y.: 1994, ‘Integrating Amazonian Vegetation, Land-Use, and Satellite Data’, BioScience 44, 329-338.

    Article  Google Scholar 

  • Myers, N.: 1991, ‘Tropical Forests: Present Status and Future Outlook’, Clim. Change 19, 3-32.

    Article  CAS  Google Scholar 

  • Nye, P. H. and Greenland, D. J.: 1960, The Soil under Shifting Cultivation, Technical Communication No. 51, Commonwealth Agricultural Bureaux of Soils, Harpenden, U.K., p. 156.

    Google Scholar 

  • Phillips, O. L., Malhi, Y., Higuchi, N., Laurance, W. F., NÚñez, P. V., Vásquez, R. M., Laurance, S. G., Ferreira, L. V., Stern, M., Brown, S., and Grace, J.: 1998, ‘Changes in the Carbon Balance of Tropical Forests: Evidence from Long-Term Plots’, Science 282, 439-442.

    Article  CAS  Google Scholar 

  • Robinson, J. M.: 1989, ‘On Uncertainty in the Computation of Global Emissions from Biomass Burning’, Clim. Change 14, 243-262.

    Article  CAS  Google Scholar 

  • Rudel, T. K. and Horowitz, B.: 1993, Tropical Deforestation: Small Farmers and Land Clearing in the Ecuadorian Amazon, Columbia University Press, New York, p. 234.

    Google Scholar 

  • Runyan, C.: 1998, ‘Indonesia Ablaze’, World Watch 11, 6.

    Google Scholar 

  • Ruthenberg, H.: 1971, Farming Systems in the Tropics, Clarendon Press, Oxford, U.K., p. 313.

    Google Scholar 

  • Schimel, D. and 75 others: 1996, ‘Radiative Forcing of Climate Change’, in Houghton, J. T., Meira Filho, L. G., Callander, B. A., Harris, N., Kattenberg, A., and Maskell, K. (eds.), Climate Change 1995: The Science of Climate Change, Cambridge University Press, Cambridge, U.K., pp. 65-131.

    Google Scholar 

  • Schroeder, P. E. and Winjum, J. K.: 1995, ‘Assessing Brazil's Carbon Budget: I. Biotic Carbon Pools’, For. Ecol. Manage. 75, 77-86.

    Article  Google Scholar 

  • Seiler, W. and Crutzen, P. J.: 1980, ‘Estimates of Gross and Net Fluxes of Carbon between the Biosphere and the Atmosphere from Biomass Burning’, Clim. Change 2, 207-247.

    Article  CAS  Google Scholar 

  • Shine, K. P., Derwent, R. G., Wuebbles, D. J., and Morcrette, J-J.: 1990, ‘Radiative Forcing of Climate’, in Houghton, J. T., Jenkins, G. J., and Ephraums, J. J. (eds.), Climate Change: The IPCC Scientific Assessment, Cambridge University Press, Cambridge, U.K., pp. 41-68.

    Google Scholar 

  • Silva-Forsberg, M. C. and Fearnside, P. M.: 1997, ‘Brazilian Amazonian Caboclo Agriculture: Effect of Fallow Period on Maize Yield’, For. Ecol. Manage. 97, 283-291.

    Article  Google Scholar 

  • Sombroek, W. G., Nachtergaele, F., and Hebel, A.: 1993, ‘Amounts, Dynamics and Sequestering of Carbon in Tropical and Subtropical Soils’, Ambio 22, 417-426.

    Google Scholar 

  • Stone, T. A., Schlesinger, P., Houghton, R. A., and Woodwell, G. M.: 1994, ‘A Map of the Vegetation of South America Based on Satellite Imagery’, Photogrammetric Engineer. Remote Sens. 60, 541-551.

    Google Scholar 

  • Tian, H., Mellilo, J. M., Kicklighter, D.W., McGuire, A. D., Helfrich III, J. V. K., Moore III, B., and Vörösmarty, C.: 1998, ‘Effect of Interanual Climate Variability on Carbon Storage in Amazonian Ecosystems’, Nature 396, 664-667.

    Article  CAS  Google Scholar 

  • Uhl, C. and Buschbacher, R.: 1985, ‘A Disturbing Synergism between Cattle-Ranch Burning Practices and Selective Tree Harvesting in the Eastern Amazon’, Biotropica 17, 265-268.

    Article  Google Scholar 

  • Uhl, C. and Kauffman, J. B.: 1990, ‘Deforestation, Fire Susceptibility, and Potential Tree Responses to Fire in the Eastern Amazon’, Ecology 71, 437-449.

    Article  Google Scholar 

  • Uhl, C., Buschbacher, R., and Serrão, E. A. S.: 1988, ‘Abandoned Pastures in Eastern Amazonia. I. Patterns of Plant Succession’, J. Ecol. 76, 663-681.

    Article  Google Scholar 

  • Uhlig, J., Hall, C. A. S., and Nyo, T.: 1993, ‘Changing Patterns of Shifting Cultivation in Selected Countries in Southeast Asia and Their Effect on the Global Carbon Cycles’, in Dale, V. H. (ed.), Effects of Land-Use Change on Atmospheric CO 2 Concentrations: South and Southeast Asia as a Case Study, Springer-Verlag, Heidelberg, pp. 145-200.

    Google Scholar 

  • UNESCO (United Nations Educational Scientific and Cultural Organization)/UNEP (United Nations Environmental Programme/FAO (Food and Agriculture Organization of the United Nations): 1978, Tropical Forest Ecosystems: A State of Knowledge Report, UNESCO/UNEP, Paris, p. 683.

    Google Scholar 

  • Vermeer, D. E.: 1970, ‘Population Pressure and Crop Rotational Changes among the Tiv of Nigeria’, Ann. Assoc. Amer. Geogr. 60, 299-314.

    Article  Google Scholar 

  • Ward, D. E.: 1986, ‘Field Scale Measurements of Emission from Open Fires’, Technical Paper Presented at the Defense Nuclear Agency Global Effects Review, Defense Nuclear Agency, Washington, D.C.

    Google Scholar 

  • Watson, R. T., Rodhe, H., Oeschger, H., and Siegenthaler, U.: 1990, ‘Greenhouse Gases and Aerosols’, in Houghton, J. T., Jenkins, G. J., and Ephraums, J. J. (eds.), Climate Change: The IPCC Scientific Assessment, Cambridge University Press, Cambridge, U.K., pp. 1-40.

    Google Scholar 

  • Watson, R. T., Meira Filho, L. G., Sanhueza, E., and Janetos, A.: 1992, ‘Greenhouse Gases: Sources and Sinks’, in Houghton, J. T., Callander, B. A., and Varney, S. K. (eds.), Climate Change 1992: The Supplementary Report to the IPCC Scientific Assessment, Cambridge University Press, Cambridge, U.K., pp. 25-46.

    Google Scholar 

  • Wong, C. S.: 1978, ‘Atmospheric Input of Carbon Dioxide from Burning Wood’, Science 200, 197-200.

    Article  CAS  Google Scholar 

  • Yearsley, J. R. and Lettenmaier, D. P.: 1987, ‘Model Complexity and Data Worth: An Assessment of Changes in the Global Carbon Budget’, Ecol. Model. 39, 201-226.

    Article  CAS  Google Scholar 

  • Zinke, P. J., Sabhasri, S., and Kunstadter, P.: 1978, ‘Soil Fertility Aspects of the Lua' Forest Fallow System of Shifting Cultivation’, in Kunstadter, P., Chapman, E. C., and Sabhasri, S. (eds.), Farmers in the Forest: Economic Development and Marginal Agriculture in Northern Thailand, East-West Center, Honolulu, Hawaii, pp. 134-159.

    Google Scholar 

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Fearnside, P.M. Global Warming and Tropical Land-Use Change: Greenhouse Gas Emissions from Biomass Burning, Decomposition and Soils in Forest Conversion, Shifting Cultivation and Secondary Vegetation. Climatic Change 46, 115–158 (2000). https://doi.org/10.1023/A:1005569915357

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