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Evaluating the use of BECCS and afforestation under China’s carbon-neutral target for 2060

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  • Weng, Yuwei
  • Cai, Wenjia
  • Wang, Can

Abstract

Almost all global scenarios under ambitious climate targets rely on the deployment of negative emission technologies (NETs). Bioenergy with carbon capture and storage (BECCS) and afforestation are two promising NET options. However, their roles in most countries’ deep decarbonization pathways and the potential economic and environmental implications have not been fully investigated. Besides, broad economic interactions and complex technical information of NETs bring challenges for traditional top-down or bottom-up models. To address the methodological issues, we integrate energy technology details into a macroeconomic framework and develop a national hybrid computable general equilibrium (CGE) model for China. Based on this, insights are provided into the deployment scale of BECCS and afforestation in China’s mitigation pathways towards carbon neutrality by 2060, as well as the induced macroeconomic and land-use consequences. The results indicate that NETs are necessary for realizing carbon neutrality. BECCS would enter the market around 2030 and the share of negative emissions provided by it would reach about 79% in 2060. The carbon removals in 2060 would be 2,118 MtCO2yr−1, 170 MtCO2yr−1, and 617 MtCO2yr−1 from bioelectricity with CCS, biofuel with CCS, and afforestation, respectively. When only BECCS is deployed as NET, more fossil energy needs to be phased out and renewable energy would take larger market shares. In 2060, most biomass would consist of cellulosic crops (43–47%) and residues (49–52%). Cropland would decrease by 6.9–8.3% due to land competition caused by NET deployment. GDP loss would be 6.4% in 2060 to reach near-zero without NETs. If BECCS and afforestation are both adopted, GDP loss would be alleviated to 4.8%. This study supplements the existing global literature to identify the local feasibility and trade-offs of NET expansion.

Suggested Citation

  • Weng, Yuwei & Cai, Wenjia & Wang, Can, 2021. "Evaluating the use of BECCS and afforestation under China’s carbon-neutral target for 2060," Applied Energy, Elsevier, vol. 299(C).
  • Handle: RePEc:eee:appene:v:299:y:2021:i:c:s0306261921006826
    DOI: 10.1016/j.apenergy.2021.117263
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    as
    1. Michetti, Melania & Rosa, Renato, 2012. "Afforestation and timber management compliance strategies in climate policy. A computable general equilibrium analysis," Ecological Economics, Elsevier, vol. 77(C), pages 139-148.
    2. Robert M. Solow, 1956. "A Contribution to the Theory of Economic Growth," The Quarterly Journal of Economics, President and Fellows of Harvard College, vol. 70(1), pages 65-94.
    3. Jan Sandstad Næss & Otavio Cavalett & Francesco Cherubini, 2021. "The land–energy–water nexus of global bioenergy potentials from abandoned cropland," Nature Sustainability, Nature, vol. 4(6), pages 525-536, June.
    4. Snorre Kverndokk & Knut Rosendahl & Thomas Rutherford, 2004. "Climate Policies and Induced Technological Change: Which to Choose, the Carrot or the Stick?," Environmental & Resource Economics, Springer;European Association of Environmental and Resource Economists, vol. 27(1), pages 21-41, January.
    5. Rutherford, Thomas F, 1999. "Applied General Equilibrium Modeling with MPSGE as a GAMS Subsystem: An Overview of the Modeling Framework and Syntax," Computational Economics, Springer;Society for Computational Economics, vol. 14(1-2), pages 1-46, October.
    6. Peters, Jeffrey C. & Hertel, Thomas W., 2016. "The database–modeling nexus in integrated assessment modeling of electric power generation," Energy Economics, Elsevier, vol. 56(C), pages 107-116.
    7. Gurgel Angelo & Reilly John M & Paltsev Sergey, 2007. "Potential Land Use Implications of a Global Biofuels Industry," Journal of Agricultural & Food Industrial Organization, De Gruyter, vol. 5(2), pages 1-36, December.
    8. T. W. Swan, 1956. "ECONOMIC GROWTH and CAPITAL ACCUMULATION," The Economic Record, The Economic Society of Australia, vol. 32(2), pages 334-361, November.
    9. Pour, Nasim & Webley, Paul A. & Cook, Peter J., 2018. "Opportunities for application of BECCS in the Australian power sector," Applied Energy, Elsevier, vol. 224(C), pages 615-635.
    10. Mu, Yaqian & Cai, Wenjia & Evans, Samuel & Wang, Can & Roland-Holst, David, 2018. "Employment impacts of renewable energy policies in China: A decomposition analysis based on a CGE modeling framework," Applied Energy, Elsevier, vol. 210(C), pages 256-267.
    11. Choumert Nkolo, Johanna & Combes Motel, Pascale & Guegang Djimeli, Charlain, 2018. "Income-generating Effects of Biofuel Policies: A Meta-analysis of the CGE Literature," Ecological Economics, Elsevier, vol. 147(C), pages 230-242.
    12. Pedro R. R. Rochedo & Britaldo Soares-Filho & Roberto Schaeffer & Eduardo Viola & Alexandre Szklo & André F. P. Lucena & Alexandre Koberle & Juliana Leroy Davis & Raoni Rajão & Regis Rathmann, 2018. "The threat of political bargaining to climate mitigation in Brazil," Nature Climate Change, Nature, vol. 8(8), pages 695-698, August.
    13. David Laborde & Hugo Valin, 2012. "MODELING LAND-USE CHANGES IN A GLOBAL CGE: ASSESSING THE EU BIOFUEL MANDATES WITH THE MIRAGE-BioF MODEL," Climate Change Economics (CCE), World Scientific Publishing Co. Pte. Ltd., vol. 3(03), pages 1-39.
    14. Kretschmer, Bettina & Peterson, Sonja, 2010. "Integrating bioenergy into computable general equilibrium models -- A survey," Energy Economics, Elsevier, vol. 32(3), pages 673-686, May.
    15. Tokimatsu, Koji & Yasuoka, Rieko & Nishio, Masahiro, 2017. "Global zero emissions scenarios: The role of biomass energy with carbon capture and storage by forested land use," Applied Energy, Elsevier, vol. 185(P2), pages 1899-1906.
    16. Johanna Choumert Nkolo & Pascale Combes Motel & Charlain Guegang Djimeli, 2018. "Income-generating Effects of Biofuel Policies: A Meta-analysis of the CGE Literature," Post-Print hal-01951339, HAL.
    17. Zhong, Jia & Yu, T. Edward & Clark, Christopher D. & English, Burton C. & Larson, James A. & Cheng, Chu-Lin, 2018. "Effect of land use change for bioenergy production on feedstock cost and water quality," Applied Energy, Elsevier, vol. 210(C), pages 580-590.
    18. Weng, Yuwei & Chang, Shiyan & Cai, Wenjia & Wang, Can, 2019. "Exploring the impacts of biofuel expansion on land use change and food security based on a land explicit CGE model: A case study of China," Applied Energy, Elsevier, vol. 236(C), pages 514-525.
    19. P. A. Turner & C. B. Field & D. B. Lobell & D. L. Sanchez & K. J. Mach, 2018. "Unprecedented rates of land-use transformation in modelled climate change mitigation pathways," Nature Sustainability, Nature, vol. 1(5), pages 240-245, May.
    20. Mu, Yaqian & Wang, Can & Cai, Wenjia, 2018. "The economic impact of China's INDC: Distinguishing the roles of the renewable energy quota and the carbon market," Renewable and Sustainable Energy Reviews, Elsevier, vol. 81(P2), pages 2955-2966.
    21. Alexandre C. Köberle & Pedro R. R. Rochedo & André F. P. Lucena & Alexandre Szklo & Roberto Schaeffer, 2020. "Brazil’s emission trajectories in a well-below 2 °C world: the role of disruptive technologies versus land-based mitigation in an already low-emission energy system," Climatic Change, Springer, vol. 162(4), pages 1823-1842, October.
    22. Jeffrey C Peters, 2016. "The GTAP-Power Data Base: Disaggregating the Electricity Sector in the GTAP Data Base," Journal of Global Economic Analysis, Center for Global Trade Analysis, Department of Agricultural Economics, Purdue University, vol. 1(1), pages 209-250, June.
    23. Minghao Li & Wendong Zhang & Dermot J. Hayes & Riley Arthur & Yantao Yang & Xiudong Wang, 2017. "China's New Nationwide E10 Ethanol Mandate and Its Global Implications," Center for Agricultural and Rural Development (CARD) Publications apr-fall-2017-2, Center for Agricultural and Rural Development (CARD) at Iowa State University.
    24. Vera Heck & Dieter Gerten & Wolfgang Lucht & Alexander Popp, 2018. "Biomass-based negative emissions difficult to reconcile with planetary boundaries," Nature Climate Change, Nature, vol. 8(2), pages 151-155, February.
    25. Morris, Jennifer F. & Reilly, John M. & Chen, Y.-H. Henry, 2019. "Advanced technologies in energy-economy models for climate change assessment," Energy Economics, Elsevier, vol. 80(C), pages 476-490.
    26. Timmer, C. Peter, 2000. "The macro dimensions of food security: economic growth, equitable distribution, and food price stability," Food Policy, Elsevier, vol. 25(3), pages 283-295, June.
    27. Ronald Sands & Hannah Förster & Carol Jones & Katja Schumacher, 2014. "Bio-electricity and land use in the Future Agricultural Resources Model (FARM)," Climatic Change, Springer, vol. 123(3), pages 719-730, April.
    28. Bohringer, Christoph & Rutherford, Thomas F., 2008. "Combining bottom-up and top-down," Energy Economics, Elsevier, vol. 30(2), pages 574-596, March.
    29. Winchester, Niven & Reilly, John M., 2015. "The feasibility, costs, and environmental implications of large-scale biomass energy," Energy Economics, Elsevier, vol. 51(C), pages 188-203.
    30. Fabian Stenzel & Peter Greve & Wolfgang Lucht & Sylvia Tramberend & Yoshihide Wada & Dieter Gerten, 2021. "Irrigation of biomass plantations may globally increase water stress more than climate change," Nature Communications, Nature, vol. 12(1), pages 1-9, December.
    31. Huang, Xiaodan & Chang, Shiyan & Zheng, Dingqian & Zhang, Xiliang, 2020. "The role of BECCS in deep decarbonization of China's economy: A computable general equilibrium analysis," Energy Economics, Elsevier, vol. 92(C).
    32. Johanna Choumert Nkolo & Pascale Combes Motel & Charlain Guegang Djimeli, 2018. "Income-generating Effects of Biofuel Policies: A Meta-analysis of the CGE Literature," Post-Print halshs-01957464, HAL.
    33. Christopher S. Galik, 2020. "A continuing need to revisit BECCS and its potential," Nature Climate Change, Nature, vol. 10(1), pages 2-3, January.
    34. Sue Wing, Ian, 2008. "The synthesis of bottom-up and top-down approaches to climate policy modeling: Electric power technology detail in a social accounting framework," Energy Economics, Elsevier, vol. 30(2), pages 547-573, March.
    35. Kverndokk, Snorre & Rosendahl, Knut Einar & Rutherford, Thomas F., 2004. "Climate policies and induced technological change: Impacts and timing of technology subsidies," Memorandum 05/2004, Oslo University, Department of Economics.
    36. Jeffrey C. Peters & Thomas W. Hertel, 2016. "Matrix balancing with unknown total costs: preserving economic relationships in the electric power sector," Economic Systems Research, Taylor & Francis Journals, vol. 28(1), pages 1-20, March.
    37. Bello, Sara & Galán-Martín, Ángel & Feijoo, Gumersindo & Moreira, Maria Teresa & Guillén-Gosálbez, Gonzalo, 2020. "BECCS based on bioethanol from wood residues: Potential towards a carbon-negative transport and side-effects," Applied Energy, Elsevier, vol. 279(C).
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