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Regulatory mechanism design of GHG emissions in the electric power industry in China

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  • Feng, Tian-tian
  • Gong, Xiao-lei
  • Guo, Yu-hua
  • Yang, Yi-sheng
  • Dong, Jun

Abstract

As one of the key industries of CO2 emissions, the electric power industry plays an important role in China's response to climate change. Recently, the electric power industry has achieved a certain amount of emission reductions through optimizing power structure and enhancing energy efficiency. However, the efforts to address climate change still lack of orderly management and supervision. In order to fulfill the goals of ‘Notice of the 13th Five-Year Work Plan for Controlling GHG emissions’ in China, that by the end of 2020 CO2 emissions per unit of GDP should decrease by 18% compared with that in 2015, there is an urgent need to establish and innovate regulatory mechanisms for Greenhouse gases (GHG) emissions in the electric power industry. This study discusses the status quo and existing problems of GHG emissions regulation of the electric power industry in China from the perspectives of regulatory agencies, measures and accounting methods. Then based on the regulatory experiences from developed countries and combined the real-life characteristics in China, a new GHG emissions regulatory index system and supervision scheme for the electric power industry is established. Finally, some recommendations are proposed for further regulatory mechanism innovation of the electric power industry in China.

Suggested Citation

  • Feng, Tian-tian & Gong, Xiao-lei & Guo, Yu-hua & Yang, Yi-sheng & Dong, Jun, 2019. "Regulatory mechanism design of GHG emissions in the electric power industry in China," Energy Policy, Elsevier, vol. 131(C), pages 187-201.
  • Handle: RePEc:eee:enepol:v:131:y:2019:i:c:p:187-201
    DOI: 10.1016/j.enpol.2019.04.045
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    1. Valentina Bosetti & David G. Victor, 2011. "Politics and Economics of Second-Best Regulation of Greenhouse Gases: The Importance of Regulatory Credibility," The Energy Journal, International Association for Energy Economics, vol. 0(Number 1), pages 1-24.
    2. Wang, Jinman & Wang, Ruogu & Zhu, Yucheng & Li, Jiayan, 2018. "Life cycle assessment and environmental cost accounting of coal-fired power generation in China," Energy Policy, Elsevier, vol. 115(C), pages 374-384.
    3. Jeffrey A. Deason & Lee S. Friedman, 2010. "Intertemporal regulatory tasks and responsibilities for greenhouse gas reductions," Journal of Policy Analysis and Management, John Wiley & Sons, Ltd., vol. 29(4), pages 821-853.
    4. Viebahn, Peter & Lechon, Yolanda & Trieb, Franz, 2011. "The potential role of concentrated solar power (CSP) in Africa and Europe--A dynamic assessment of technology development, cost development and life cycle inventories until 2050," Energy Policy, Elsevier, vol. 39(8), pages 4420-4430, August.
    5. Cavaliero, Carla Kazue Nakao & Da Silva, Ennio Peres, 2005. "Electricity generation:: regulatory mechanisms to incentive renewable alternative energy sources in Brazil," Energy Policy, Elsevier, vol. 33(13), pages 1745-1752, September.
    6. Alan H. Sanstad, 2015. "Abating Carbon Dioxide Emissions from Electric Power Generation: Model Uncertainty and Regulatory Epistemology," The Journal of Legal Studies, University of Chicago Press, vol. 44(S2), pages 423-445.
    7. Sebastián, F. & Royo, J. & Gómez, M., 2011. "Cofiring versus biomass-fired power plants: GHG (Greenhouse Gases) emissions savings comparison by means of LCA (Life Cycle Assessment) methodology," Energy, Elsevier, vol. 36(4), pages 2029-2037.
    8. Shafie, S.M. & Mahlia, T.M.I. & Masjuki, H.H., 2013. "Life cycle assessment of rice straw co-firing with coal power generation in Malaysia," Energy, Elsevier, vol. 57(C), pages 284-294.
    9. Klein, Sharon J.W. & Rubin, Edward S., 2013. "Life cycle assessment of greenhouse gas emissions, water and land use for concentrated solar power plants with different energy backup systems," Energy Policy, Elsevier, vol. 63(C), pages 935-950.
    10. Johnson, Kenneth C., 2007. "California's greenhouse gas law, Assembly Bill 1493: Deficiencies, alternatives, and implications for regulatory climate policy," Energy Policy, Elsevier, vol. 35(1), pages 362-372, January.
    11. Gottinger, Hans W, 1995. "Regulatory policies under uncertainty, value of information and greenhouse gas emissions," Energy Policy, Elsevier, vol. 23(1), pages 51-56, January.
    12. Odeh, Naser A. & Cockerill, Timothy T., 2008. "Life cycle GHG assessment of fossil fuel power plants with carbon capture and storage," Energy Policy, Elsevier, vol. 36(1), pages 367-380, January.
    13. Somorin, Tosin Onabanjo & Di Lorenzo, Giuseppina & Kolios, Athanasios J., 2017. "Life-cycle assessment of self-generated electricity in Nigeria and Jatropha biodiesel as an alternative power fuel," Renewable Energy, Elsevier, vol. 113(C), pages 966-979.
    14. Castelo Branco, David A. & Moura, Maria Cecilia P. & Szklo, Alexandre & Schaeffer, Roberto, 2013. "Emissions reduction potential from CO2 capture: A life-cycle assessment of a Brazilian coal-fired power plant," Energy Policy, Elsevier, vol. 61(C), pages 1221-1235.
    15. Akinyele, D.O. & Rayudu, R.K. & Nair, N.K.C., 2017. "Life cycle impact assessment of photovoltaic power generation from crystalline silicon-based solar modules in Nigeria," Renewable Energy, Elsevier, vol. 101(C), pages 537-549.
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