
Carbon Peak and Carbon Neutrality Path for China’s Power Industry
Yinbiao Shu, Liying Zhang, Yunzhou Zhang, Yaohua Wang, Gang Lu, Bo Yuan, Peng Xia
Strategic Study of CAE ›› 2021, Vol. 23 ›› Issue (6) : 1-14.
Carbon Peak and Carbon Neutrality Path for China’s Power Industry
The low-carbon transformation of power sector is significant for achieving the goal of carbon peak and carbon neutrality in China. Based on the evaluation of power carbon budget, three power transformation scenarios of deep low-carbon, zero carbon, and negative carbon were built, the key boundary conditions such as power consumption demand were studied, and a path planning optimization model was established in the paper. Using the GESP-V software package for optimized analysis, the low-carbon transformation paths were determined for power structure, power carbon emissions, and power supply costs under different scenarios. The major issues that are critical for the low-carbon transformation of the power system were discussed, including coal power development, renewable energy development and utilization, diversified supply of clean energy, and electric power balance. Several suggestions were further proposed. Specifically, the top-level design should be strengthened to steadily plan the transformation pace, major low-carbon technologies should be developed to coordinate the overall technology and industrial layout, and the market mechanism with balanced interests should be improved while establishing a green finance policy system. The high-quality low-carbon transformation of China’s power sector in the medium and long term can be promoted through the coordination of policies, technologies, and mechanisms.
carbon peak / carbon neutrality / power transformation path / carbon budget / carbon emission reduction / scenario analysis / power supply cost
[1] |
IPCC Working Group. Global warming of 1.5℃ [R]. Incheon: IPCC, 2018.
|
[2] |
IPCC Working Group. AR6 climate change 2021: The physical science basis [EB/OL]. (2021-08-24)[2021-10-15]. https://www. ipcc.ch/report/ar6/wg1/.
|
[3] |
Energy & Climate Intelligence Unit. Net zero emissions race [EB/ OL]. (2021-05-15)[2021-10-15]. https://eciu.net/netzerotracker/ map.
|
[4] |
习近平. 在第七十五届联合国大会一般性辩论上的讲话 [R]. 北 京: 中华人民共和国国务院, 2020. Xi J P. Speech at the General Debate of the 75th Session of the United Nations General Assembly [R]. Beijing: State Council of the People’s Republic of China, 2020.
|
[5] |
新华网. 习近平在气候雄心峰会上的讲话[EB/OL]. (2020- 12-12)[2021-10-15]. http://www.xinhuanet.com/politics/leaders/2020-12/12/c_1126853599.htm. Xinhua Net. Xi Jinping’s speech at the Climate Ambition Summit [EB/OL]. (2020-12-12)[2021-10-15]. http://www.xinhuanet.com/ politics/leaders/2020-12/12/c_1126853599.htm.
|
[6] |
张运洲, 鲁刚, 王芃, 等. 能源安全新战略下能源清洁化率和终 端电气化率提升路径分析 [J]. 中国电力, 2020, 53(2): 1–8. Zhang Y Z, Lu G, Wang P, et al. Analysis on the improvement path of non-fossil energy consumption proportion and terminal electrification rate under the new energy security strategy [J]. Electric Power, 2020, 53(2): 1–8.
|
[7] |
李风雷, 尹璐, 赵吉, 等. 以能源转型推进“碳中和”的北欧经验 借鉴与中国方案初探 [J]. 可再生能源, 2021, 39(10): 1308–1313. Li F L, Yin L, Zhao J, et al. The nordic experiences and China’s choices for improving “carbon neutrality” by energy transition [J]. Renewable Energy Resources, 2021, 39(10): 1308–1313.
|
[8] |
陈胜, 卫志农, 顾伟, 等. 碳中和目标下的能源系统转型与变革: 多能流协同技术 [J]. 电力自动化设备, 2021, 41(9): 3–12. Chen S, Wei Z N, Gu W, et al. Carbon neutral oriented transition and revolution of energy systems: Multi-energy flow coordination technology [J]. Electric Power Automation Equipment, 2021, 41(9): 3–12.
|
[9] |
Fuentes S, Villafafila-Robles R, Olivella-Rosell P, et al. Transition to a greener power sector: Four different scopes on energy security [J]. Renewable Energy Focus, 2020, 33: 23–36.
|
[10] |
张宁, 邢璐, 鲁刚. 我国中长期能源电力转型发展展望与挑战 [J]. 中国电力企业管理, 2018 (13): 58–63. Zhang N, Xing L, Lu G. Prospects and challenges of medium and long-term energy and power transformation and development in China [J]. China Power Enterprise Management, 2018 (13): 58–63.
|
[11] |
中华人民共和国国务院. 习近平主持召开中央财经委员会第九 次会议 [EB/OL]. (2021-03-15) [2021-10-15]. http://www.gov.cn/ xinwen/2021-03/15/content_5593154.htm. State Council of the People’s Republic of China. Xi Jinping presided over the ninth meeting of the Central Finance and Economics Committee [EB/OL]. (2021-03-15) [2021-10-15]. http://www.gov.cn/xinwen/2021-03/15/content_5593154.htm.
|
[12] |
李俊峰, 李广. 碳中和——中国发展转型的机遇与挑战 [J]. 环 境与可持续发展, 2021, 46(1): 50–57. Li J F, Li G. Carbon neutrality: Opportunities and challenges for development transformation in China [J]. Environment and Sustainable Development, 2021, 46(1): 50–57.
|
[13] |
International Energy Agency. World energy outlook 2020 [R]. Paris: International Energy Agency, 2021.
|
[14] |
BP p.l.c. BP technology outlook 2020 [R]. London: BP p.l.c., 2020.
|
[15] |
清华大学气候变化与可持续发展研究院. 中国长期低碳发展战 略与转型路径研究 [R]. 北京: 清华大学气候变化与可持续发展 研究院, 2020. Institute of Climate Change and Sustainable Development, Tsinghua University. Research on China’s long-term low-carbon development strategy and transformation path [R]. Beijing: Institute of Climate Change and Sustainable Development, Tsinghua University, 2020.
|
[16] |
国家发展和改革委员会能源研究所. 我国实现全球1.5℃目标下 的能源排放情景研究 [R]. 北京: 国家发展和改革委员会能源研 究所, 2018. Energy Research Institute of National Development and Reform Commission. China’s energy emission scenario study under the global 1.5℃ target [R]. Beijing: Energy Research Institute of National Development and Reform Commission, 2018.
|
[17] |
中国石油经济技术研究院. 2050年世界与中国能源展望 [R]. 北 京: 中国石油经济技术研究院, 2019. CNPC Economics & Technology Research Institute. World and China’s energy outlook in 2050 [R]. Beijing: CNPC Economics & Technology Research Institute, 2019.
|
[18] |
李政, 陈思源, 董文娟, 等. 碳约束条件下电力行业低碳转型路 径研究 [J]. 中国电机工程学报, 2021, 41(12): 3987–4001. Li Z, Chen S Y, Dong W J, et al. Low carbon transition pathway of power sector under carbon emission constraints [J]. Proceedings of the CSEE, 2021, 41(12): 3987–4001.
|
[19] |
International Energy Agency. Power system transition in China [EB/OL]. (2020–02–08) [2021–10–15]. https://www.iea.org/ reports/china-power-system-transformation.
|
[20] |
元博, 张运洲, 鲁刚, 等. 电力系统中储能发展前景及应用关键 问题研究 [J]. 中国电力, 2019, 52(3): 1–8. Yuan B, Zhang Y Z, Lu G, et al. Research on key issues of energy storage development and application in power systems [J]. Electric Power, 2019, 52(3): 1–8.
|
[21] |
International Energy Agency. The role of CCUS in low-carbon power systems [R]. Paris: International Energy Agency, 2021.
|
[22] |
何盛宝, 李庆勋, 王奕然, 等. 世界氢能产业与技术发展现状及 趋势分析 [J]. 石油科技论坛, 2020, 39(3): 17–24. He S B, Li Q X, Wang Y R, et al. Research on current conditions and development trends of global hydrogen energy industry and technology [J]. Oil Forum, 2020, 39(3): 17–24.
|
[23] |
崔学勤, 王克, 傅莎, 等. 1.2℃和1.5℃目标下全球碳预算及排放 路径 [J]. 中国环境科学, 2017, 37(11): 4353–4362. Cui X Q, Wang K, Fu S, et al. Global carbon budget and emissions pathway of 2℃ and 1.5℃ target [J]. China Environmental Science, 2017, 37(11): 4353–4362.
|
[24] |
Quéré C L, Peters G P , Andres R J , et al. Global carbon budget 2013 [J]. Earth System Science Data, 2014 (6): 235–263.
|
[25] |
Zhao J F, Xie H F, Ma J Y, et al. Integrated remote sensing and model approach for impact assessment of future climate change on the carbon budget of global forest ecosystems [J]. Global and Planetary Change, 2021, 203(4): 1–15.
|
[26] |
Intergovernmental Panel on Climate Change. Climate change 2021: The physical science basis [EB/OL]. (2021-03-15)[2021-10- 15]. https://www.ipcc.ch/report/ar6/wg1/downloads/report/IPCC_ AR6_WGI_Full_Report.pdf.
|
[27] |
陈国平, 董昱, 梁志峰. 能源转型中的中国特色新能源高质量发 展分析与思考 [J]. 中国电机工程学报, 2020, 40(17): 5493–5506. Chen G P, Dong Y, Liang Z F. Analysis and reflection on high-quality development of new energy with Chinese characteristics in energy transition [J]. Proceedings of the CSEE, 2020, 40(17): 5493–5506.
|
/
〈 |
|
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