Literature DB >> 20964356

Electrical power from sea and river water by reverse electrodialysis: a first step from the laboratory to a real power plant.

Joost Veerman1, Michel Saakes, Sybrand J Metz, G Jan Harmsen.   

Abstract

Electricity can be produced directly with reverse electrodialysis (RED) from the reversible mixing of two solutions of different salinity, for example, sea and river water. The literature published so far on RED was based on experiments with relatively small stacks with cell dimensions less than 10 × 10 cm(2). For the implementation of the RED technique, it is necessary to know the challenges associated with a larger system. In the present study we show the performance of a scaled-up RED stack, equipped with 50 cells, each measuring 25 × 75 cm(2). A single cell consists of an AEM (anion exchange membrane) and a CEM (cation exchange membrane) and therefore, the total active membrane area in the stack is 18.75 m(2). This is the largest dimension of a reverse electrodialysis stack published so far. By comparing the performance of this stack with a small stack (10 × 10 cm(2), 50 cells) it was found that the key performance parameter to maximal power density is the hydrodynamic design of the stack. The power densities of the different stacks depend on the residence time of the fluids in the stack. For the large stack this was negatively affected by the increased hydrodynamic losses due to the longer flow path. It was also found that the large stack generated more power when the sea and river water were flowing in co-current operation. Co-current flow has other advantages, the local pressure differences between sea and river water compartments are low, hence preventing leakage around the internal manifolds and through pinholes in the membranes. Low pressure differences also enable the use of very thin membranes (with low electrical resistance) as well as very open spacers (with low hydrodynamic losses) in the future. Moreover, we showed that the use of segmented electrodes increase the power output by 11%.

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Year:  2010        PMID: 20964356     DOI: 10.1021/es1009345

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  7 in total

1.  Membrane-based processes for sustainable power generation using water.

Authors:  Bruce E Logan; Menachem Elimelech
Journal:  Nature       Date:  2012-08-16       Impact factor: 49.962

2.  Comparison of Pretreatment Methods for Salinity Gradient Power Generation Using Reverse Electrodialysis (RED) Systems.

Authors:  Jaehyun Ju; Yongjun Choi; Sangho Lee; Chan-Gyu Park; Taemun Hwang; Namjo Jung
Journal:  Membranes (Basel)       Date:  2022-03-29

3.  Reverse Electrodialysis-Assisted Solar Water Splitting.

Authors:  Jihye Lee; Jeongse Yun; Seung-Ryong Kwon; Woo Je Chang; Ki Tae Nam; Taek Dong Chung
Journal:  Sci Rep       Date:  2017-09-25       Impact factor: 4.379

4.  Scale-up of reverse electrodialysis for energy generation from high concentration salinity gradients.

Authors:  A M Hulme; C J Davey; S Tyrrel; M Pidou; E J McAdam
Journal:  J Memb Sci       Date:  2021-06-01       Impact factor: 8.742

5.  Microbial Reverse-Electrodialysis Electrolysis and Chemical-Production Cell for H2 Production and CO2 Sequestration.

Authors:  Xiuping Zhu; Marta C Hatzell; Bruce E Logan
Journal:  Environ Sci Technol Lett       Date:  2014-03-24

6.  Upscaling Reverse Electrodialysis.

Authors:  Jordi Moreno; Simon Grasman; Ronny van Engelen; Kitty Nijmeijer
Journal:  Environ Sci Technol       Date:  2018-08-27       Impact factor: 9.028

7.  Analysis of Membrane Transport Equations for Reverse Electrodialysis (RED) Using Irreversible Thermodynamics.

Authors:  Wojciech Kujawski; Andriy Yaroshchuk; Emiliy Zholkovskiy; Izabela Koter; Stanislaw Koter
Journal:  Int J Mol Sci       Date:  2020-08-31       Impact factor: 5.923

  7 in total

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