Harnessing Clean Water from Power Plant Emissions Using Membrane Condenser Technology

被引:52
作者
Kim, Jeong F. [1 ]
Park, Ahrumi [1 ]
Kim, Seong-Joong [1 ,2 ]
Lee, PyungSoo [1 ]
Cho, YoungHoon [1 ]
Park, HoSik [1 ]
Nam, SeungEun [1 ]
Park, YouIn [1 ]
机构
[1] Korea Res Inst Chem Technol, Adv Mat Div, Res Ctr Membranes, 141 Gajeongro, Daejeon 34114, South Korea
[2] Univ Sci & Technol, 176 Gajeongro, Daejeon 34114, South Korea
关键词
membrane condenser; flue gas dehydration; capillary condensation; white plume; ceramic membrane; WASTE GASEOUS STREAMS; FLUE-GAS; CERAMIC MEMBRANES; POLYMER MEMBRANES; CAPILLARY CONDENSATION; TRANSPORT; RECOVERY; SEPARATION; HEAT; DEHUMIDIFICATION;
D O I
10.1021/acssuschemeng.8b00204
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Power plants consume a major fraction of water to generate electricity, typically in the range between 30-50% of all fresh water sources. Most of the water from plants are lost with heat through stack and cooling towers. It has been reported that if 20% of this water can be recycled, power plants can be self sustainable, allowing them to be located with higher flexibility. Membrane contactor process can be an effective solution to harness this source of water, but most of the studies have been focused on dense vapor separation membranes with limited success. In this work, we investigated a potential application of membrane condenser technology to harness fresh water from power plants. It has been shown that the membrane condenser configuration can be 3 orders of magnitude more effective in recovering water compared to dense vapor separation membranes, with a reasonable water/SOx selectivity of 100. We have prepared suitable ceramic membranes as a proof-of-concept and achieved up to 85% dehumidification efficiency in a single-pass flow. A thorough energy balance indicates that both heat and water flux must be carefully balanced to maximize the membrane condenser performance, and an effective module design must be developed.
引用
收藏
页码:6425 / 6433
页数:17
相关论文
共 32 条
[1]   SEPARATION OF ALCOHOL WATER GASEOUS-MIXTURES BY THIN CERAMIC MEMBRANE [J].
ASAEDA, M ;
DU, LD .
JOURNAL OF CHEMICAL ENGINEERING OF JAPAN, 1986, 19 (01) :72-77
[2]   Waste Gaseous Streams: From Environmental Issue to Source of Water by Using Membrane Condensers [J].
Brunetti, Adele ;
Santoro, Sergio ;
Macedonio, Francesca ;
Figoli, Alberto ;
Drioli, Enrico ;
Barbieri, Giuseppe .
CLEAN-SOIL AIR WATER, 2014, 42 (08) :1145-1153
[3]   Experimental study of water recovery from flue gas using hollow micro-nano porous ceramic composite membranes [J].
Chen, Haiping ;
Zhou, Yanan ;
Su, Xin ;
Cao, Sutian ;
Liu, Yanda ;
Gao, Dan ;
An, Liansuo .
JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2018, 57 :349-355
[4]   Heat exchange and water recovery experiments of flue gas with using nanoporous ceramic membranes [J].
Chen, Haiping ;
Zhou, Yanan ;
Cao, Sutian ;
Li, Xiang ;
Su, Xin ;
An, Liansuo ;
Gao, Dan .
APPLIED THERMAL ENGINEERING, 2017, 110 :686-694
[5]  
Daal L., 2013, FP7NMP CAPWA KEMA NE
[6]   Open-source predictive simulators for scale-up of direct contact membrane distillation modules for seawater desalination [J].
Dong, Guangxi ;
Kim, Jeong F. ;
Kim, Ji Hoon ;
Drioli, Enrico ;
Lee, Young Moo .
DESALINATION, 2017, 402 :72-87
[7]   ECTFE membrane preparation for recovery of humidified gas streams using membrane condenser [J].
Drioli, E. ;
Santoro, S. ;
Simone, S. ;
Barbieri, G. ;
Brunetti, A. ;
Macedonio, F. ;
Figoli, A. .
REACTIVE & FUNCTIONAL POLYMERS, 2014, 79 :1-7
[8]  
Folkedahl B.C., 2006, WATER EXTRACTION COA
[9]   Pressure ratio and its impact on membrane gas separation processes [J].
Huang, Yu ;
Merkel, Tim C. ;
Baker, Richard W. .
JOURNAL OF MEMBRANE SCIENCE, 2014, 463 :33-40
[10]   Dehumidification of air by a hygroscopic liquid membrane supported on surface of a hydrophobic microporous membrane [J].
Ito, A .
JOURNAL OF MEMBRANE SCIENCE, 2000, 175 (01) :35-42