Integration of Renewable Energy Technologies With Desalination

被引:0
作者
Mbarga A.A. [1 ]
Song L. [1 ]
Ross Williams W. [2 ]
Rainwater K. [1 ]
机构
[1] Department of Civil and Environmental Engineering, Texas Tech University, Box 41023, Lubbock, 79423, TX
[2] Altresco Companies, 10940 Parker Road, Parker, 80134, CO
来源
Current Sustainable/Renewable Energy Reports | 2014年 / 1卷 / 01期
关键词
Brackish water; Control; Desalination; Distillation; Economic analysis; Electrodialysis; Geothermal energy; Hybrid energy; Intermittency; Membrane; Multi-effect distillation; Off-grid; Optimization; Photovoltaic; Renewable energy; Reverse osmosis; Seawater; Solar energy; Wind energy;
D O I
10.1007/s40518-013-0002-1
中图分类号
学科分类号
摘要
Remote communities in many countries are in need of dependable and affordable fresh water that must be derived from local brackish water or seawater. Thermal and membrane desalination technologies are available, with significant electrical or thermal energy requirements. Renewable energy from wind, solar, geothermal, or other sources may be necessary when access to grid electricity is limited. This literature review summarizes the research reported in the last three years (mid-2010 to mid-2013) by teams of experts in water treatment, renewable energy generation, variable-power system controls, system optimization, and economic analyses. © 2014, Springer International Publishing AG.
引用
收藏
页码:11 / 18
页数:7
相关论文
共 60 条
[1]  
Al-Qaraghuli A., Kazmerski L.L., Comparison of Technical and Economic Performance of the Main Desalination Processes with and without Renewable Energy Coupling. Proceedings of the American Solar Energy Society World Renewable Energy Forum. 2012
[2]  
1–8.
[3]  
Penate B., Castellano F., Bello A., Garcia-Rodriguez L., Assessment of a stand-alone gradual capacity reverse osmosis desalination plant to adapt to wind power availability: a case study, Energy, 36, 7, pp. 4372-4384, (2011)
[4]  
Park G.L., Schafer A.I., Richards B.S., Renewable energy powered membrane technology: the effect of wind speed fluctuations on the performance of a wind-powered membrane system for brackish water desalination, J Membr Sci, 370, 1-2, pp. 34-44, (2011)
[5]  
Park G.L., Richards B.S., Schafer A.I., The effect of intermittent operation on a wind-powered membrane system for brackish water desalination, Water Sci Technol, 65, 5, pp. 867-874, (2012)
[6]  
Park G.L., Schafer A.I., Richards B.S., Renewable energy-powered membrane technology: supercapacitors for buffering resource fluctuations in a wind-powered membrane system for brackish water desalination, Renew Energy, 50, pp. 126-135, (2013)
[7]  
Dahioui Y., Loudiyi K., Wind Powered Desalination., 2013, 2013, pp. 257-262
[8]  
Xenarios G., Papadopoulos P., Tzen E., Wind desalination for the Island of Mykonos in Greece: a case study, Desalin Water Treat, 51, 4-6, pp. 1219-1228, (2013)
[9]  
Rainwater K., Nash P., Song L., Schroeder J., The Seminole project: renewable energy for municipal water desalination, J Contemp Water Res Educ, 151, pp. 50-60, (2013)
[10]  
Bilton A.M., Wiesman R., Arif A.F.M., Zubair S.M., Dubowsky S., On the feasibility of community-scale photovoltaic-powered reverse osmosis desalination systems for remote locations, Renew Energy, 36, 12, pp. 3246-3256, (2011)