Hybrid life-cycle and hierarchical archimedean copula analyses for identifying pathways of greenhouse gas mitigation in domestic sewage treatment systems

被引:3
作者
Chen, Donghan [1 ,2 ]
Yue, Wencong [1 ,2 ]
Rong, Qiangqiang [1 ,2 ]
Wang, Senchao [1 ,2 ]
Su, Meirong [1 ,3 ]
机构
[1] Dongguan Univ Technol, Res Ctr Ecoenvironm Engn, Dongguan 523808, Peoples R China
[2] Dongguan Univ Technol, Sch Environm & Civil Engn, Dongguan 523808, Peoples R China
[3] Guangdong Univ Technol, Sch Ecol Environm & Resources, Key Lab City Cluster Environm Safety & Green Dev, Minist Educ, Guangzhou 510006, Peoples R China
基金
美国国家科学基金会;
关键词
Greenhouse gas emissions; Sewage treatment; Life cycle analysis; Hierarchical archimedean copula; An urban agglomeration in the Pearl River Delta; WASTE-WATER TREATMENT; IMPACT ASSESSMENT; TREATMENT PLANTS; ENERGY; ASSESSMENTS; INVENTORY; LCA;
D O I
10.1016/j.jenvman.2023.119982
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Electricity consumption and anaerobic reactions cause direct and indirect greenhouse gas (GHG) emissions within domestic sewage treatment systems (DSTSs). GHG emissions in DSTSs were influenced by the sewage quantity and the efficacy of treatment technologies. To address combined effects of these variables, this study presented an approach for identifying pathways for GHG mitigation within the DSTSs of cities under climate change and socio-economic development, through combining life cycle analysis (LCA) and the Hierarchical Archimedean copula (HAC) methods. The approach was innovative in the following aspects: 1) quantifying the GHG emissions of the DSTSs; 2) identifying the correlations among temperature changes, socioeconomic development, and domestic sewage quantity, and 3) predicting the future fluctuations in GHG emissions from the DSTSs. The effectiveness of the proposed approach was validated through its application to an urban agglomeration in the Pearl River Delta (PRD), China. To identify the potentials of GHG mitigation in the DSTSs, two pathways (i.e., general and optimized) were proposed according to the different technical choices for establishing facilities from 2021 to 2030. The results indicated that GHG emissions from the DSTS in the PRD were [3.01, 4.96] Mt CO2eq in 2021, with substantial contributions from Shenzhen and Guangzhou. Moreover, GHG emissions from the sewage treatment facilities based on Anaerobic-Anoxic-Axic (AAO) technology were higher than those based on other technologies. Under the optimized pathway, GHG emissions, contributed by the technologies of Continuous Cycle Aeration System (CASS) and Oxidation Ditch (OD), were the lowest. Through the results of correlation analysis, the impact of socioeconomic development on domestic sewage quantities was more significant than that of climate change. Domestic sewage quantities in the cities of the PRD would increase by 4.10%-28.38%, 17.14%-26.01%, and 18.15%-26.50% from 2022 to 2030 under three Representative Concentration Pathways (RCPs) 2.6, 4.5, and 8.5. These findings demonstrated that the capacities of domestic sewage treatment facilities in most cities of the PRD should be substantially improved from 0.12 to 2.99 times between 2022 and 2030. Under the optimized pathway, the future GHG emissions of the CASS method would be the lowest, followed by the OD method.
引用
收藏
页数:12
相关论文
共 66 条
[1]   Urban Residential Water Demand Prediction Based on Artificial Neural Networks and Time Series Models [J].
Al-Zahrani, Muhammad A. ;
Abo-Monasar, Amin .
WATER RESOURCES MANAGEMENT, 2015, 29 (10) :3651-3662
[2]  
Bureau of Ecology and Environment of Zibo City (BEEZC), 2017, Environmental assessment report for sodium hypochlorite production
[3]   Life cycle assessment (LCA) of urban water infrastructure: emerging approaches to balance objectives and inform comprehensive decision-making [J].
Byrne, Diana M. ;
Lohman, Hannah A. C. ;
Cook, Sherri M. ;
Peters, Gregory M. ;
Guest, Jeremy S. .
ENVIRONMENTAL SCIENCE-WATER RESEARCH & TECHNOLOGY, 2017, 3 (06) :1002-1014
[4]  
[蔡博峰 Cai Bofeng], 2015, [中国人口·资源与环境, China Population Resources and Environment], V25, P118
[5]  
China Urban Water Supply and Drainage Association (CUWSDA), 2016, Statistical Yearbook of Town Drainage
[6]  
Department of Housing and Urban-Rural Development of Guangdong Province (DHURDGZP), 2021, The 14th Five-Year Plan for Urban Sewage Treatment in Guangdong Province
[7]  
Development Planning Commission of Dongguan City (DPCDC), 2021, The 14th FiveYear Plan for Dongguan's National Economic and Social Development and the Outline of the Long-Range Goals to 2035
[8]   Life Cycle Assessment of High-Rate Anaerobic Treatment, Microbial Fuel Cells, and Microbial Electrolysis Cells [J].
Foley, Jeffrey M. ;
Rozendal, Rene A. ;
Hertle, Christopher K. ;
Lant, Paul A. ;
Rabaey, Korneel .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2010, 44 (09) :3629-3637
[9]   Life cycle assessment of wastewater treatment in developing countries: A review [J].
Gallego-Schmid, Alejandro ;
Tarpani, Raphael Ricardo Zepon .
WATER RESEARCH, 2019, 153 :63-79
[10]  
Global Water Research Coalition (GWRC), 2011, N2O and CH4 Emission from Wastewater Collection and Treatment Systems - State of the Science Report