Improving the carbon footprint of water treatment with renewable energy: a Western Australian case study

被引:23
作者
Wahidul K. Biswas
Pauline Yek
机构
[1] Curtin University,Sustainable Engineering Group
[2] Curtin University,Department of Chemical Engineering
来源
Renewables: Wind, Water, and Solar | / 3卷 / 1期
关键词
LCA; Carbon footprint; Water supply options;
D O I
10.1186/s40807-016-0036-2
中图分类号
学科分类号
摘要
A life cycle assessment (LCA) was carried out on three separate drinking water production options—a groundwater treatment plant (GWTP), surface water treatment plant and seawater desalination plant (electrodialysis) in order to calculate the carbon footprint associated with each process and to identify the areas of production with high levels of GHG emissions in order to develop strategies for reducing their carbon footprint. The results obtained from the LCA show that the highest GHG emissions are from the seawater desalination plant via electrodialysis (ED) where the GHG emissions were 2.46 kg CO2 equivalent (eq). By comparison, the GWTP has the lowest carbon footprint emitting some 0.38 kg CO2 eq for water delivery to households. The GHG emission contribution of electricity generation for the GWTP, surface water treatment plant and seawater ED plants was 95, 82 and 98 %, respectively. Furthermore, the GHG emissions associated with this production process can be further reduced by including renewable energy power generation in its operations.
引用
收藏
相关论文
共 55 条
[1]  
Biswas WK(2009)Life cycle assessment of seawater desalination in Western Australia World Academy of Science Engineering and Technology 35 369-375
[2]  
Coday BD(2015)Life cycle and economic assessments of engineered osmosis and osmotic dilution for desalination of Haynesville shale pit water Desalination 369 188-200
[3]  
Miller-Robbie L(2002)Why a 100-year time horizon should be used for global warming mitigation calculations Mitigation and Adaptation Strategies for Global Change 7 19-30
[4]  
Beaudry EG(2010)Comprehensive life cycle inventories of alternative wastewater treatment systems Water Research 44 1654-1666
[5]  
Munakata-Marr J(2011)Long-term trends and opportunities for managing regional water supply and wastewater greenhouse gas emissions Environmental Science and Technology 45 5434-5440
[6]  
Cath TY(2013)Determining a sustainable and economically optimal wastewater treatment and discharge strategy Journal Environmental Management 114 285-292
[7]  
Fearnside PM(2008)A Review of the Application of Lifecycle Analysis to Renewable Energy Systems Bulletin of Science, Technology & Society 28 200-209
[8]  
Foley J(2004)Life cycle assessment for sustainable metropolitan water systems planning Environmental Science and Technology 38 3465-3473
[9]  
de Haas D(2001)Practice of water desalination by electrodialysis Desalination 139 385-392
[10]  
Hartley K(2007)Life-cycle energy use and greenhouse gas emissions inventory for water treatment systems Journal of Infrastructure Systems 13 261-270