Accounting and decomposition of China's CO2 emissions 1981-2021

被引:4
作者
Ma, Jianhong [1 ]
Wang, Ning [1 ]
Chen, Zihao [1 ]
Wang, Libo [1 ]
Xiong, Qiyang [1 ]
Chen, Peilin [2 ,3 ]
Zhang, Hongxia [1 ]
Zheng, Ying [1 ]
Chen, Zhan-Ming [1 ]
机构
[1] Renmin Univ China, Sch Appl Econ, Beijing 100872, Peoples R China
[2] Northeastern Univ, Sch Econ, Qinhuangdao 066004, Hebei, Peoples R China
[3] Northeastern Univ, Sch Business Adm, Shenyang 110167, Liaoning, Peoples R China
基金
中国国家自然科学基金;
关键词
Five-year plan; CO(2 )emission; Input-output framework; Structural decomposition analysis; CARBON-DIOXIDE EMISSIONS; ENERGY-CONSUMPTION; CO2; EMISSIONS; CEMENT PRODUCTION; INTENSITY CHANGE; INPUT-OUTPUT; 5-YEAR PLAN; REDUCTION; POLICIES; INDUSTRY;
D O I
10.1016/j.apenergy.2024.124104
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The Five-Year Plan (FYP) effectively guides China's short- to medium-term development goals, but limited data hinder research on long-term CO2 2 performance within the FYP framework. This study compiles sectoral CO2 2 emissions from detailed fuels in 1981-2021, employing the input-output model and structural decomposition technique to examine their performance and driving forces. Our results show that the growth rates of national emissions increased continuously from the 6th to the 11th FYP (1981-2011), gradually declined thereafter (2011-2020), but rose significantly in 2021. Urban household emissions per capita fell by 40%, while rural household emissions rose by 209%. The mix effect (or substitution effect) drove households to increase their use of oil and natural gas, reducing reliance on coal. Coal was the primary emissions source in industrial sectors, specifically in manufacturing and utilities. Elevated coal- and oil-related emissions were primarily due to the level effect, whereas the mix effect drove natural gas-related emissions. Manufacturing and construction were major sources of embodied emissions. Emissions intensity had modest mitigation effects, and the input structure effect was relatively low. Our results underscore the need for China to expedite the substitution of fossil fuels with non-fossil energy sources to achieve its low-carbon goals outlined in the 14th FYP.
引用
收藏
页数:21
相关论文
共 88 条
[81]   Is China's energy policy effective for power plants? Evidence from the 12th Five-Year Plan energy saving targets [J].
Zhang, Ning ;
Zhao, Yu ;
Wang, Na .
ENERGY ECONOMICS, 2022, 112
[82]   Decomposition of intensity of energy-related CO2 emission in Chinese provinces using the LMDI method [J].
Zhang, Wei ;
Li, Ke ;
Zhou, Dequn ;
Zhang, Wenrui ;
Gao, Hui .
ENERGY POLICY, 2016, 92 :369-381
[83]   The impact of carbon trading on economic output and carbon emissions reduction in China's industrial sectors [J].
Zhang, Yue-Jun ;
Liang, Ting ;
Jin, Yan-Lin ;
Shen, Bo .
APPLIED ENERGY, 2020, 260
[84]   Inter-provincial trade driving energy consumption in China [J].
Zhao, Nan ;
Xu, Lixiao ;
Malik, Arunima ;
Song, Xuguang ;
Wang, Yafei .
RESOURCES CONSERVATION AND RECYCLING, 2018, 134 :329-335
[85]   The Slowdown in China's Carbon Emissions Growth in the New Phase of Economic Development [J].
Zheng, Jiali ;
Mi, Zhifu ;
Coffman, D'Maris ;
Shan, Yuli ;
Guan, Dabo ;
Wang, Shouyang .
ONE EARTH, 2019, 1 (02) :240-253
[86]   How does information and communication technology affect China's energy intensity? A three-tier structural decomposition analysis [J].
Zhou, Xiaoyong ;
Zhou, Dequn ;
Wang, Qunwei .
ENERGY, 2018, 151 :748-759
[87]   Analysis of the embodied carbon dioxide in the building sector: A case of China [J].
Zhu, Weina ;
Feng, Wei ;
Li, Xiaodong ;
Zhang, Zhihui .
JOURNAL OF CLEANER PRODUCTION, 2020, 269
[88]   Greenhouse gas emissions from agricultural irrigation in China [J].
Zou, Xiaoxia ;
Li, Yu'e ;
Li, Kuo ;
Cremades, Roger ;
Gao, Qingzhu ;
Wan, Yunfan ;
Qin, Xiaobo .
MITIGATION AND ADAPTATION STRATEGIES FOR GLOBAL CHANGE, 2015, 20 (02) :295-315