Micro-structured membranes for electricity generation by reverse electrodialysis

被引:86
作者
Guler, Enver [1 ,2 ]
Elizen, Rianne [1 ]
Saakes, Michel [2 ]
Nijmeijer, Kitty [1 ]
机构
[1] Univ Twente, Mesa Inst Nanotechnol, Fac Sci & Technol, NL-7500 AE Enschede, Netherlands
[2] Wetsus, Ctr Excellence Sustainable Water Technol, NL-8900 CC Leeuwarden, Netherlands
关键词
Ion exchange membranes; Structured membranes; Reverse electrodialysis; Salinity gradient energy; Spacers; SALINITY-GRADIENT POWER; EXCHANGE MEMBRANES; ENERGY; PERFORMANCE; DENSITY; WATER; STACK;
D O I
10.1016/j.memsci.2014.01.060
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Reverse electrodialysis (RED) is a technology for extracting salinity gradient power by contacting waters with different salinity, i.e seawater and river water, through ion exchange membranes. Conventionally, non-conductive spacers are used to separate these ion exchange membranes from each other in RED. The power output is hampered by these non-conductive elements which increase electrical resistance in the RED stack. To eliminate the use of these spacers, structured anion exchange membranes with a structure height of 100 pm were prepared by casting a polymer solution on stainless steel molds followed by solvent evaporation. These self-standing membranes with straight-ridge, wave and pillar structures as well as similarly prepared flat membranes were installed on the river water side in a RED stack (where electrical resistance is the highest). 38% higher gross power density and 20% higher net power density were achieved with the pillar-structured membranes when compared to that of flat membranes with spacers. Further optimization of the structure geometry in combination with the possibility to cast membranes of different chemistries offer a huge potential for further development of homogeneous membranes with the desired electrochemical and physical properties, which could provide high power densities in RED. (C) 2014 Elsevier B.V. All rights reserved
引用
收藏
页码:136 / 148
页数:13
相关论文
共 32 条
[21]   Electrodialysis, a mature technology with a multitude of new applications [J].
Strathmann, H. .
DESALINATION, 2010, 264 (03) :268-288
[22]   Reverse electrodialysis: Performance of a stack with 50 cells on the mixing of sea and river water [J].
Veerman, J. ;
Saakes, M. ;
Metz, S. J. ;
Harmsen, G. J. .
JOURNAL OF MEMBRANE SCIENCE, 2009, 327 (1-2) :136-144
[23]   Electrical Power from Sea and River Water by Reverse Electrodialysis: A First Step from the Laboratory to a Real Power Plant [J].
Veerman, Joost ;
Saakes, Michel ;
Metz, Sybrand J. ;
Harmsen, G. Jan .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2010, 44 (23) :9207-9212
[24]   Theoretical power density from salinity gradients using reverse electrodialysis [J].
Vermaas, David A. ;
Guler, Enver ;
Saakes, Michel ;
Nijmeijer, Kitty .
TECHNOPORT 2012 - SHARING POSSIBILITIES AND 2ND RENEWABLE ENERGY RESEARCH CONFERENCE (RERC2012), 2012, 20 :170-184
[25]   Power generation using profiled membranes in reverse electrodialysis [J].
Vermaas, David A. ;
Saakes, Michel ;
Nijmeijer, Kitty .
JOURNAL OF MEMBRANE SCIENCE, 2011, 385 (1-2) :234-242
[26]   Doubled Power Density from Salinity Gradients at Reduced Intermembrane Distance [J].
Vermaas, David A. ;
Saakes, Michel ;
Nijmeijer, Kitty .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2011, 45 (16) :7089-7095
[27]   Phase separation micromolding: A new generic approach for microstructuring various materials [J].
Vogelaar, L ;
Lammertink, RGH ;
Barsema, JN ;
Nijdam, W ;
Bolhuis-Versteeg, LAM ;
van Rijn, CJM ;
Wessling, M .
SMALL, 2005, 1 (06) :645-655
[28]  
Vogelaar L., 2005, PHASE SEPARATION MIC, P117
[29]   Biofouling of spiral-wound nanofiltration and reverse osmosis membranes: A feed spacer problem [J].
Vrouwenvelder, J. S. ;
von der Schulenburg, D. A. Graf ;
Kruithof, J. C. ;
Johns, M. L. ;
van Loosdrecht, M. C. M. .
WATER RESEARCH, 2009, 43 (03) :583-594
[30]   ELECTRIC-POWER FROM DIFFERENCE IN SALINITY - DIALYTIC BATTERY [J].
WEINSTEIN, JN ;
LEITZ, FB .
SCIENCE, 1976, 191 (4227) :557-559