Synergic Benefits of Air Pollutant Reduction, CO2 Emission Abatement, and Water Saving under the Goal of Achieving Carbon Emission Peak: The Case of Tangshan City, China

被引:8
作者
Yang, Rupu [1 ]
Wang, Min [1 ]
Zhao, Mengxue [1 ]
Feng, Xiangzhao [1 ]
机构
[1] Minist Ecol & Environm Peoples, Policy Res Ctr Environm & Econ, Beijing 100029, Peoples R China
基金
中国国家自然科学基金;
关键词
synergic benefits; LEAP model; CO2; emission; air pollutants; water consumption; carbon emission peak; GREENHOUSE-GAS; REDUCING CO2; SECTOR; NEXUS; MODEL; PLAN;
D O I
10.3390/ijerph19127145
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The study aims to explore the synergic benefits of reducing air pollutants and CO2 and water consumption under the carbon emission peak (CEP) policies at a city level. Air pollutants and CO2 emissions are predicted by the Low Emissions Analysis Platform (LEAP) model, and the water consumption is forecast by the quota method. Two scenarios are constructed with the same policies, but to different degrees: the reference scenario achieves CEP in 2030, and the green and low carbon scenario achieves CEP in 2025. The prediction results show that air pollutant emissions, CO2 emissions, and water consumption can be obviously decreased by intensifying the CEP policies. The synergic abatement effect was illustrated by the synergic reduction curve. Accelerating the adjustment of economic structure saves the most water, reduces the greatest amount of CO2 emission, and also obtains the best synergic reduction capability between water consumption and CO2 emission. Transforming the traditionally long process of steelmaking toward a short electric process reduces the majority of PM2.5, SO2, and VOC emissions, while consuming more water. The study provides a new viewpoint to assess and optimize the CEP action plan at city levels.
引用
收藏
页数:24
相关论文
共 43 条
[1]   Synergy and co-benefits of reducing CO2 and air pollutant emissions by promoting electric vehicles-A case of Shanghai [J].
Alimujiang, Adila ;
Jiang, Ping .
ENERGY FOR SUSTAINABLE DEVELOPMENT, 2020, 55 :181-189
[2]  
[Anonymous], 2019, NBS Yearbook, V1-2, P5
[3]  
[Anonymous], 2021, The Shipyard Infrastructure Optimization Program (SIOP): Presidents Fiscal Year 22 Budget 5 Year Plan
[4]   Co-benefit analysis of an air quality management plan and greenhouse gas reduction strategies in the Seoul metropolitan area [J].
Chae, Yeora .
ENVIRONMENTAL SCIENCE & POLICY, 2010, 13 (03) :205-216
[5]   Impacts of reducing air pollutants and CO2 emissions in urban road transport through 2035 in Chongqing, China [J].
Duan, Linfeng ;
Hu, Wei ;
Deng, Di ;
Fang, Weikai ;
Xiong, Min ;
Lu, Peili ;
Li, Zhenliang ;
Zhai, Chongzhi .
ENVIRONMENTAL SCIENCE AND ECOTECHNOLOGY, 2021, 8
[6]   The secondary benefits of CO2 abatement: How much emission reduction do they justify? [J].
Ekins, P .
ECOLOGICAL ECONOMICS, 1996, 16 (01) :13-24
[7]  
GEF, 2015, GUID ACC REP GREENH
[8]  
General Office of the State Council, 2021, FOOD SAV ACT PLAN
[9]   Assessment of the water-energy-carbon nexus in energy systems: A multi-objective approach [J].
Gomez-Gardars, Emanuel Birkir ;
Rodriguez-Macias, Antonio ;
Tena-Garcia, Jorge Luis ;
Fuentes-Cortes, Luis Fabian .
APPLIED ENERGY, 2022, 305
[10]  
HBDRC (Hebei Development and Reform Commission), 2015, GUID ACC METH REP GR