Estimation of abatement potentials and costs of air pollution emissions in China

被引:48
作者
Zhang, Fenfen [1 ,2 ]
Xing, Jia [1 ,2 ]
Zhou, Yang [3 ,4 ]
Wang, Shuxiao [1 ,2 ]
Zhao, Bin [5 ]
Zheng, Haotian [1 ,2 ]
Zhao, Xiao [6 ]
Chang, Huanzhen [6 ]
Jang, Carey [7 ]
Zhu, Yun [8 ]
Hao, Jiming [1 ,2 ]
机构
[1] Tsinghua Univ, Sch Environm, State Key Joint Lab Environm Simulat & Pollut Con, Beijing 100084, Peoples R China
[2] State Environm Protect Key Lab Sources & Control, Beijing 100084, Peoples R China
[3] Tianjin Acad Environm Sci, Tianjin 300191, Peoples R China
[4] Key Lab Tianjin Air Pollut Control, Tianjin 300191, Peoples R China
[5] Pacific Northwest Natl Lab, Richland, WA 99352 USA
[6] Renmin Univ China, Sch Environm & Nat Resources, Beijing 100872, Peoples R China
[7] US EPA, Res Triangle Pk, NC 27711 USA
[8] South China Univ Technol, Coll Environm Sci & Engn, Guangzhou Higher Educ Mega Ctr, Guangzhou, Peoples R China
基金
国家重点研发计划; 美国国家科学基金会;
关键词
Cost estimation; Abatement potential; End-of-pipe control measures; Multiple pollutants; Multiple sectors; Marginal abatement cost; YANGTZE-RIVER DELTA; ENERGY EFFICIENCY; INTEGRATED ASSESSMENT; REGIONAL DISPARITY; PARTICULATE MATTER; RENEWABLE ENERGY; GREENHOUSE GASES; SO2; EMISSIONS; HEALTH COSTS; CO-BENEFITS;
D O I
10.1016/j.jenvman.2020.110069
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Understanding the air pollution emission abatement potential and associated control cost is a prerequisite to design cost efficient control policies. In this study, a linear programming algorithm model, International Control Cost Estimate Tool, was updated with cost data for applications of 56 types of end-of-pipe technologies and five types of renewable energy in 10 major sectors namely power generation, industry combustion, cement production, iron and steel production, other industry processes, domestic combustion, transportation, solvent use, livestock rearing, and fertilizer use. The updated model was implemented to estimate the abatement potential and marginal cost of multiple pollutants in China. The total maximum abatement potentials of sulfur dioxide (SO2), nitrogen oxides (NOx), primary particulate matter (PM2.5), non-volatile organic compounds (NMVOCs), and ammonia (NH3) in China were estimated to be 19.2, 20.8, 9.1, 17.2 and 8.6 Mt, respectively, which accounted for 89.7%, 89.9%, 94.6%, 74.0%, and 80.2% of their total emissions in 2014, respectively. The associated control cost of such reductions was estimated as 92.5, 469.7, 75.7, 449.0, and 361.8 billion CNY in SO2, NOx, primary PM2.5, NMVOCs and NH3, respectively. Shandong, Jiangsu, Henan, Zhejiang, and Guangdong provinces exhibited large abatement potentials for all pollutants. Provincial disparity analysis shows that high GDP regions tend to have higher reduction potential and total abatement costs. End-of-pipe technologies tended be a cost-efficient way to control pollution in industries processes (i.e., cement plants, iron and steel plants, lime production, building ceramic production, glass and brick production), whereas such technologies were less cost-effective in fossil fuel-related sectors (i.e., power plants, industry combustion, domestic combustion, and transportation) compared with renewable energy. The abatement potentials and marginal abatement cost curves developed in this study can further be used as a crucial component in an integrated model to design optimized cost-efficient control policies.
引用
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页数:12
相关论文
共 60 条
[51]   Kinetics of the [Fe(III)-EDTA]- Reduction by Sulfite under the Catalysis of Activated Carbon [J].
Yang, Xiao-juan ;
Yang, Lin ;
Dong, Li ;
Long, Xiang-li ;
Yuan, Wei-kang .
ENERGY & FUELS, 2011, 25 (10) :4248-4255
[52]   Cost-effectiveness optimization for SO2 emissions control from coal-fired power plants on a national scale: A case study in China [J].
Zhang, Jun ;
Zhang, Yong-xin ;
Yang, Hang ;
Zheng, Cheng-hang ;
Jin, Kan ;
Wu, Xue-cheng ;
Gao, Xiang ;
Cen, Ke-fa .
JOURNAL OF CLEANER PRODUCTION, 2017, 165 :1005-1012
[53]   Evaluating co-benefits of energy efficiency and air pollution abatement in China's cement industry [J].
Zhang, Shaohui ;
Worrell, Ernst ;
Crijns-Graus, Wina .
APPLIED ENERGY, 2015, 147 :192-213
[54]   Co-benefits of energy efficiency improvement and air pollution abatement in the Chinese iron and steel industry [J].
Zhang, Shaohui ;
Worrell, Ernst ;
Crijns-Graus, Wina ;
Wagner, Fabian ;
Cofala, Janusz .
ENERGY, 2014, 78 :333-345
[55]   Change in household fuels dominates the decrease in PM2.5 exposure and premature mortality in China in 2005-2015 [J].
Zhao, Bin ;
Zheng, Haotian ;
Wang, Shuxiao ;
Smith, Kirk R. ;
Lu, Xi ;
Aunan, Kristin ;
Gu, Yu ;
Wang, Yuan ;
Ding, Dian ;
Xing, Jia ;
Fu, Xiao ;
Yang, Xudong ;
Liou, Kuo-Nan ;
Hao, Jiming .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2018, 115 (49) :12401-12406
[56]   Intra-annual variations of regional aerosol optical depth, vertical distribution, and particle types from multiple satellite and ground-based observational datasets [J].
Zhao, Bin ;
Jiang, Jonathan H. ;
Diner, David J. ;
Su, Hui ;
Gu, Yu ;
Liou, Kuo-Nan ;
Jiang, Zhe ;
Huang, Lei ;
Takano, Yoshi ;
Fan, Xuehua ;
Omar, Ali H. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2018, 18 (15) :11247-11260
[57]   A modeling study of the nonlinear response of fine particles to air pollutant emissions in the Beijing-Tianjin-Hebei region [J].
Zhao, Bin ;
Wu, Wenjing ;
Wang, Shuxiao ;
Xing, Jia ;
Chang, Xing ;
Liou, Kuo-Nan ;
Jiang, Jonathan H. ;
Gu, Yu ;
Jang, Carey ;
Fu, Joshua S. ;
Zhu, Yun ;
Wang, Jiandong ;
Lin, Yan ;
Hao, Jiming .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2017, 17 (19) :12031-12050
[58]   Impact of energy structure adjustment on air quality: a case study in Beijing, China [J].
Zhao, Bin ;
Xu, Jiayu ;
Hao, Jiming .
FRONTIERS OF ENVIRONMENTAL SCIENCE & ENGINEERING IN CHINA, 2011, 5 (03) :378-390
[59]  
Zhao X., SYNERGETIC CON UNPUB
[60]   Development of a unit-based industrial emission inventory in the Beijing-Tianjin-Hebei region and resulting improvement in air quality modeling [J].
Zheng, Haotian ;
Cai, Siyi ;
Wang, Shuxiao ;
Zhao, Bin ;
Chang, Xing ;
Hao, Jiming .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2019, 19 (06) :3447-3462