• Title/Summary/Keyword: Reverse electrodialysis

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Measurement Technique of Membrane Fouling in Processes Utilizing Ion-Conducting Polymer Membranes (이온전도성 고분자막 활용 공정에서의 막 오염 현상 측정 기술)

  • Han, Soo-Jin;Park, Jin-Soo
    • Membrane Journal
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    • v.27 no.5
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    • pp.434-440
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    • 2017
  • Electrical impedance spectroscopy is used to detect membrane fouling in-situ in reverse electrodialysis. The impedance data for the AMX membrane being fouled in the reverse electrodialysis are plotted and analyzed by Nyquist and admittance method. The meaningful graphical analyses for the fouling phenomena could be done by both Nyquist and admittance method. In addition, the unstable initial fouling stage was identified by the admittance data with high standard deviation, and the structural change of the fouling layer formed at the surface of anion-exchange membranes with the operation time of reverse electrodialysis was also detected.

A Cyclic Voltammetric Study of Electrodes for Reverse Electrodialysis

  • Lee, Seo-Yoon;Lee, Dong-Ju;Yeon, Kyeong-Ho;Kim, Woo-Gu;Kang, Moon-Sung;Park, Jin-Soo
    • Journal of the Korean Electrochemical Society
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    • v.16 no.3
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    • pp.145-150
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    • 2013
  • In this study, the electrochemical investigation of various electrodes for reverse electrodialysis using potassium ferrocyanide and potassium ferricyanide as a redox system was carried out. Cyclic voltammetry was the employed method for this electrochemical study. From the results of cyclic voltammograms for various electrode materials, i.e., Au, Vulcan supported Pt, activated carbon, carbon nanofiber, Vulcan, the Vulcan electrode showed the lowest overpotential, but the Pt electrode having slightly higher overpotential obtained slightly higher anodic and cathodic current densities for the $Fe(CN)_6{^{4-}}/Fe(CN)_6{^{3-}}$ redox couple. The cyclic voltammograms for the Vulcan electrode confirmed very good electrochemical reversibility and kinetic behavior. As a result, among the electrode materials, the Vulcan electrode is the most promising electrode material for reverse electrodialysis.

Effect of Seawater/Fresh Water Flow Rates on Power Density of Reverse Electrodialysis (RED 전력밀도에 미치는 해수/담수 유량의 영향)

  • Na, Jong-Chan;Kim, Han-Ki;Kim, Chan-Soo;Han, Moon-Hee
    • Journal of Korean Society of Environmental Engineers
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    • v.36 no.9
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    • pp.624-628
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    • 2014
  • Reverse electrodialysis (RED) is a technique to produce electricity from two feed water that has different salinity. Recently, RED has been considered the attractive technology because this new process has large global potential and possibility to generate energy from abundant but largely unused resources. To make RED an economically attractive technology, the optimization of operation condition should be developed. In this study, we investigate the relation of internal resistance to power density of RED. And the effect of sea water and fresh water flow rate on power density was confirmed. To minimize the internal resistance and to increase power density of RED, the ratio of sea water and fresh water flow rate was optimized. Experimental result show the best performance with $1.30W/m^2$ of power density at 1.7 flow ratio of seawater/freshwater.

Development of Pore-Filled Anion-Exchange Membranes for High Performance Reverse Electrodialysis (고성능 역전기투석을 위한 세공충진 음이온교환막의 개발)

  • Kim, Do-Hyeong;Song, Hyeon-Bee;Yoon, Kyungseok;Kang, Moon-Sung
    • Membrane Journal
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    • v.32 no.5
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    • pp.336-347
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    • 2022
  • Reverse electrodialysis (RED) is one of the promising eco-friendly renewable energy technologies which can generate electricity from the concentration difference between seawater and freshwater by using ion-exchange membranes as a diaphragm. The ion-exchange membrane is a key component that determines the performance of RED, and must satisfy requirements such as low electrical resistance, high permselectivity, excellent durability, and low manufacturing cost. In this study, pore-filled anion-exchange membranes were fabricated using porous polymer substrates having various thicknesses and porosity, and the effects of ion-exchange polymer composition and membrane thickness on the power generation performance of RED were investigated. When the electrical resistance of the ion-exchange membrane is sufficiently low, it can be confirmed that the RED power generation performance is mainly influenced by the apparent permselectivity of the membrane. In addition, it was confirmed that the apparent permselectivity of the membranes can be improved through IEC, crosslinking degree, membrane thickness, surface modification, etc., and the optimum condition must be found in consideration of the trade-off relationship with electrical resistance.

Research Trends and Prospects of Reverse Electrodialysis Membranes (역전기투석용 이온교환막의 연구동향 및 전망)

  • Hwang, Jin Pyo;Lee, Chang Hyun;Jeong, Yeon Tae
    • Membrane Journal
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    • v.27 no.2
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    • pp.109-120
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    • 2017
  • The reverse electrodialysis (RED) is an energy generation system to convert chemical potential of saline water directly into electric energy via the combination of current derived from a redox couple electrolyte and ionic potential obtained when cation ($Na^+$) and anion ($Cl^-$) pass through cation exchange membrane (CEM) and anion exchange membrane (AEM) into fresh water, respectively. Ion exchange membrane, a key element of RED system, should satisfy requirements such as 1) low swelling behavior, 2) a certain level of ion exchange capacity, 3) high ion conductivity, and 4) high perm-selectivity to achieve high power density. In this paper, research trends and prospects of ionomer materials and ion exchange membranes are dealt with.

Separation Technologies for the Removal of Nitrate-Nitrogen from Aqueous Solution (수용액으로부터 질산성질소 제거를 위한 기술)

  • Seo, Yang Gon;Jung, Se Yeong
    • Clean Technology
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    • v.23 no.1
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    • pp.1-14
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    • 2017
  • At high nitrate concentrations, water must be treated to meet regulated concentrations because it results in threat to human health and eutrophication of natural water. However, it is almost impossible to remove nitrate by conventional water treatment methods such as coagulation, filtration and precipitation, due to its high water solubility. Therefore, other technologies including adsorption, ion exchange, reverse osmosis, denitrification, and electrodialysis are required to effectively remove nitrate. Each of these technologies has their own strengths and drawbacks and their feasibility is weighted against factors such as cost, water quality improvement, residuals handling, and pre-treatment requirements. An adsorption technique is the most popular and common process because of its cost effectiveness, ease of operation, and simplicity of design. Surface modifications of adsorbents have been enhanced their adsorption of nitrate. The nitrate-selective membrane process of electrodialysis reversal and reverse osmosis have proven over time and at many locations to be highly effective in removing nitrate contaminating problems in aqueous solutions. Both electrodiaysis and reverse osmosis methods generate highly concentrated wastes and need careful consideration with respect to disposal.

An Application of the Analytic Hierarchy Process to the Selection of the Membrane Systems of Waste Water Treatment (AHP를 이용한 폐수정화공정의 막기술 선정에 관한 연구)

  • Hong, Soon-Wook;Kim, Gang-Min;Kim, Tae-Hyun;Cho, Keun-Tae
    • IE interfaces
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    • v.12 no.4
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    • pp.602-616
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    • 1999
  • Recently, due to the primary emphasis of environmental problem, the proper selection of the membrane systems necessary for waste water treatment has been one of the critical issues in the industrial sector. This paper shows how an Analytic Hierarchy Process (AHP) model can be used for assessing the performance of selected membrane systems: ultrafiltration, microfiltration, reverse osmosis, and electrodialysis essential for waste water treatments. The final results show that ultrafiltration is the most attractive membrane system to use in a water recycling system, followed by microfiltration, reverse osmosis and electrodialysis. This is consistent with the information that we found with respect to the elements that were taken into consideration. Sensitivity analysis is also provided here.

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Numerical Analysis for the Effect of Spacer in Reverse Electrodialysis (역전기투석 장치 내 스페이서의 영향에 관한 수치해석적 연구)

  • Shin, Dong-Woo;Kim, Hong-Keun;Kim, Tae-Hwan;Park, Jong-Soo;Jeon, Dong Hyup
    • Clean Technology
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    • v.19 no.1
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    • pp.1-7
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    • 2013
  • In this study, the effects of spacer and variation of spacer height in reverse electrodialysis (RED) on the seawater and ion transport were investigated. A three-dimensional computational fluid dynamics (CFD) simulation for a hexagonal spacer was constructed. The results showed that the swirl in the channel and ion transport rate to the membrane were enhanced at higher Reynolds number, on the other hand, pressure difference between the inlet and outlet was increased. Moreover thicker spacer increased Power number and Sherwood number.

Evaluation of Reverse Electrodialysis System with Various Compositions of Natural Resources (다양한 농도 공급원의 조합을 통한 역전기투석 장치의 성능 평가)

  • Kwon, Kilsung;Park, Byung Ho;Kim, Dukhan;Kim, Daejoong
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.39 no.6
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    • pp.513-518
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    • 2015
  • Salinity gradient power (SGP) has attracted significant attention because of its high potential. In this study, we evaluate reverse electrodialysis (RED) with various compositions of available resources. The polarization curve (I-V characteristics) shows linear behavior, and therefore the power density curve has a parabolic shape. We measure the power density with varying compartment thicknesses and inlet flow rates. The gross power density increases with decreasing compartment thickness and increasing flow rate. The net power density, which is the gross power density minus the pumping power, has a maximum value at a compartment thickness of 0.2 mm and an inlet flow rate of 22.5 mL/min. The power density in RED is also evaluated with compositions of desalination brines, seawater, river water, wastewater, and brackish water. A maximum power density of $1.75W/m^2$ is obtained when brine discharged from forward osmosis (FO) and river water are used as the concentrated and the diluted solutions, respectively.

Effect of Flow Channel Shape on Performance in Reverse Electrodialysis (유로 형상이 역전기투석 장치의 성능에 미치는 영향)

  • Kwon, Kilsung;Kim, Deok Han;Kim, Daejoong
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.41 no.5
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    • pp.347-352
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    • 2017
  • Reverse electrodialysis (RED), which generates electrical energy from the difference in concentration of two solutions, has been actively studied owing to its high potential and the increased interest in renewable energy resulting from the Paris Agreement on climate change. For RED commercialization, its power density needs to be maximized, and therefore various methods have been discussed. In this paper, the power density was measured using various flow shapes based on the aspect ratio, opening ratio, and number of distribution channels. We found that the power density is enhanced with a decrease in the aspect ratio and an increase in the opening ratio and number of distribution channels.