• Title/Summary/Keyword: redox-flow battery

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Electrochemical Enhancement of Carbon Felt Electrode for Vanadium Redox Flow Battery with Grephene Oxide (산화그레핀을 이용한 바나듐레독스흐름전지용 카본펠트전극의 표면개질을 통한 전기화학적 활성개선)

  • LEE, KEON JOO;KIM, SUNHOE
    • Transactions of the Korean hydrogen and new energy society
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    • v.28 no.2
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    • pp.206-211
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    • 2017
  • Carbon felt electrode for the vanadium redox-flow battery (VRFB) has been studied to see the effect of grephene oxide (GO) treatment on the surface of the carbon felt electrode. In this paper, surface of carbon felt electrodes were treated with various concentrations of grephene oxide. Electrochemical analysis, cyclic voltammetry (CV), was performed to investigate redox characteristics as electrode for VRFB. Also the effect of GO on the introduction of functional group on the surface of carbon felt electrodes were investigated using X-ray photoelectron spectroscopy (XPS), which discovered increase in the overall functional group content on the surface of carbon felts.

Electrochemical Properties of Current Collector in the All-vanadium Redox Flow Battery (바나듐 레독스-흐름 전지에서 집전체의 전기화학적 특성)

  • Hwang, Gan-Jin;Oh, Yong-Hwan;Ryu, Cheol-Hwi;Choi, Ho-Sang
    • Korean Chemical Engineering Research
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    • v.52 no.2
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    • pp.182-186
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    • 2014
  • Two commercial carbon plates were evaluated as a current collector (bipolar plate) in the all vanadium redox-flow battery (V-RFB). The performance properties of V-RFB were test in the current density of $60mA/cm^2$. The electromotive forces (OCV at SOC 100%) of V-RFB using A and B current collector were 1.47 V and 1.54 V. The cell resistance of V-RFB using A current collector was $4.44{\sim}5.00{\Omega}{\cdot}cm^2$ and $3.28{\sim}3.75{\Omega}{\cdot}cm^2$ for charge and discharge, respectively. The cell resistance of V-RFB using B current collector was $4.19{\sim}4.42{\Omega}{\cdot}cm^2$ and $4.71{\sim}5.49{\Omega}{\cdot}cm^2$ for charge and discharge, respectively. The performance of V-RFB using each current collector was evaluated. The performance of V-RFB using A current collector was 93.1%, 76.8% and 71.4% for average current efficiency, average voltage efficiency and average energy efficiency, respectively. The performance of V-RFB using B current collector was 96.4%, 73.6% and 71.0% for average current efficiency, average voltage efficiency and average energy efficiency, respectively.

The Study on the Separation Characteristics of ion with ion Exchange Membrane - I.The Characteristics of ion Exchange Membrane with the Separator of All-Vanadium Redox Flow Battery - (이온교환막을 이용한 이온의 분리특성에 관한 연구 - I. 전바나듐계 레독스-흐름 전지의 격막용 이온 교환막의 특성 -)

  • Kang, An-Soo
    • Applied Chemistry for Engineering
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    • v.4 no.2
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    • pp.393-402
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    • 1993
  • Redox flow secondary battery have been studied actively as one of the most promising electrochemical energy storage devices for a wide range of applications, such as electric vehicles, photovoltaic arrays, and excess power generated by electric power plants. In all-vanadium redox flow battery using solution of vanadium-sulfuric acid as a active material, the difficulty in developing an efficient ion selective membrane can still be identified. The asymmetric cation exchange membrane(M-30) as a separator of all-vanadium redox flow battery which were obtained by the reaction of chlorosulfonation for 30 minutes under the irradiation of UV, showed its superiority in the transport number of 0.94 and electrical resistivity of $0.5{\Omega}{\cdot}cm^2$. The base membrane were prepared by lamination a low density polyethlene film of $10{\mu}m$ thickness on polyolefin membrane(HIPORE 120). The electrical resistivity of M-30 membrane in real solution of vanadium-sulfuric acid was $3.79{\Omega}{\cdot}cm^2$ and it was similar to that of Nafion 117 membrane. Also the cell resistivity was $6.6{\Omega}{\cdot}cm^2$and lower than that of Nafion 117. In considertion of electrochemical properties and costs of membranes, M-30 membrane was better than that of Nafion 117 and CMV of Asahi glass Co. as a separator of all-vanadium redox flow battery.

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Synthesis and Characterization of IPA-co-HDO-co-(TPA/MA) Anion-Exchange Membrane for All-Vanadium Redox Flow Battery (전바나듐계 레독스-흐름 전지용 IPA-co-HDO-co-(TPA/MA) 음이온교환막의 합성 및 특성)

  • Jung, Jae-Chul;Kwak, Noh-Seok;Hwang, Taek-Sung
    • Polymer(Korea)
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    • v.35 no.6
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    • pp.593-598
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    • 2011
  • The IPA-co-HDO-co-(TPA/MA) copolymers for all-vanadium redox flow battery were synthesized by melt condensation polymerization using isophthalic acid(IPA), 1,6-hexandiol (HDO), terephthalic acid(TPA) and maleic anhydride(MA). The amination of chloromethylated IPA-co- HDO-co-(TPA/MA)(CIHTM) copolymer was carried out using trimethylamine, and the anion exchange membrane was also prepared by UV crosslinking reaction. The structure and thermal stability of IHTM copolymers were confirmed by FTIR, $^1H$ NMR, and TGA analysis. The anion membrane properties such as water uptake, ion exchange capacity, electric resistance and electrical conductivity, were measured by gravimetry, titration and LCR meter. The efficiency of the all-vanadium redox flow battery was analyzed. The ion exchange capacity, electric resistance and electrical conductivity were 1.10 meq/g, $1.98{\Omega}{\cdot}cm^2$, and 0.009 S/cm, respectively. The efficiency of charge-discharge, voltage, and energy for the allvanadium redox flow battery were 96.5, 74.6, 70.0%, respectively.

Characterization of Commercial Membranes for Non-aqueous Vanadium Redox Flow Battery (비수계 바나듐 레독스 흐름 전지를 위한 상용 멤브레인의 특성분석)

  • Sung, Ki-Won;Shin, Sung-Hee;Moon, Seung-Hyeon
    • Korean Chemical Engineering Research
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    • v.51 no.5
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    • pp.615-621
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    • 2013
  • Membrane characterization methods for aqueous redox flow batteries aqueous RFBs were modified for non-aqueous RFBs. The modified characterization methods, such as ion exchange capacity, transport number, permeability and single cell test, were carried out to evaluate commercial membranes in non-aqueous electrolyte. It was found that columbic efficiency and energy efficiency in a single cell test were dependent on the ion selectivity of commercial anion exchange membranes. Neosepta AHA anion exchange membrane showed the anion transport number of 0.81, which is a relatively low ion selectivity in non-aqueous electrolyte, however, exhibited 92% of coulombic efficiency and 86% of energy efficiency in a single cell test. It was also found that a porous membrane without ion selectivity is suitable for a non-aqueous redox flow battery at a high current density.

Discharged Maximum Current Density of Vanadium Redox Flow Battery with Increased Electrolyte Flow Rate (바나듐계 산화-환원 유동 전지의 최대 방전전류와 유량의 상관성에 대한 실험적 연구)

  • Kim, Jung Myoung;Park, Hee Sung
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.40 no.12
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    • pp.777-784
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    • 2016
  • All-vanadium redox flow batteries (VRFBs) are used as energy storage systems for multiple intermittent power sources. The performance of the VRFBs depends on the materials and operating conditions. Hence, performance characterization is of great importance in the development of the VRFBs. This paper proposes a method for determining the maximum current density based on stoichiometric ratios. A laboratory-scaled VRFB with a projected electrode area of $25cm^2$ is electrically charged when the state of the charge has begun from 0.6. The operating conditions, such as current density and volumetric flow rate are important in the test, and the maximum current density is influenced by the mass transfer coefficient. The results show that increasing the electrolyte flow rate from 5 mL/min to 60 mL/min enhances the maximum current density up to $520mA/cm^2$.

Recent Advance on Composite Membrane Based Vanadium Redox Flow Battery (복합막 기반 바나듐 레독스 흐름 전지의 최근 발전)

  • Kyobin Yoo;Rajkumar Patel
    • Membrane Journal
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    • v.33 no.5
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    • pp.233-239
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    • 2023
  • The transport properties of membranes used in vanadium redox flow batteries (VRFB) are fundamental in battery performance. High proton conductivity and low vanadium ion permeability must be achieved to achieve high battery performance. However, there is a trade-off relationship between proton conductivity and vanadium ion permeability. So, solving this trade-off relationship is crucial in VRFB development. Also, maintaining high coulombic efficiency, voltage efficiency, and energy efficiency is essential for high-performing VRFB. Recently, various attempts have been made, primarily on composite membranes and SPEEK membranes, to overcome the existing limit of Nafion membranes. VRFB is an essential class of rechargeable battery in composite membranes reviewed here.

Iron-Chrome Crossover through Nafion Membrane in Iron-Chrome Redox Flow Battery (철-크롬 산화환원흐름전지에서 Nafion막의 철-크롬 Crossover)

  • Kim, Young-Sook;Oh, So-Hyeong;Kim, Eunbi;Kim, Dayoung;Kim, Seongji;Chu, Cheun-Ho;Park, Kwonpil
    • Korean Chemical Engineering Research
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    • v.56 no.1
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    • pp.24-28
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    • 2018
  • The redox flow battery (RFB) is a large-capacity energy storage equipment, and the vanadium redox flow cell is a typical RFB, but VRFB is expensive. Iron-chrome RFBs are economical because they use low-cost active materials, but their low performance is a urgent problem. In this study, the crossover of iron and chromium ion through Nafion membrane and the stability of Nafion membrane in HCl solution were investigated. The permeability of iron and chrome ion through Nafion were $5.5{\times}10^{-5}$ and $6.0{\times}10^{-5}cm^2/min$, respectively, which was 18.9~20.7 times higher than that of vanadium ion ($2.9{\times}10^{-6}cm^2/min$). The crossover of iron and chromium ions were shown to be a cause of performance decrease in Iron-chrome RFB. As the temperature increases, the crossover increases rapidly (activation energy 38.8 kJ/ mol), indicating that operation at low temperature is a methode to reduce the performance loss due to crossover. Nafion membranes were relatively stable in 3 M HCl solution.

Development of Carbon Felt Electrode Using Urea for Vanadium Redox Flow Batteries (Urea를 이용한 바나듐 레독스 흐름 전지용 카본 펠트 전극 개발)

  • Kim, So Yeon;Kim, Hansung
    • Korean Chemical Engineering Research
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    • v.57 no.3
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    • pp.408-412
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    • 2019
  • In this study, nitrogen doped carbon felt was prepared by pyrolysis of urea at high temperature and applied as an electrode for vanadium redox flow cell. Urea is easier to handle than ammonia and forms $NH_2$ radicals at higher temperatures, creating a nitrogen functional group on the carbon surface and acting as an active site in the vanadium redox reaction. Therefore, the discharge capacity of activated carbon felt electrodes using urea was 14.9 Ah/L at a current density of $150mA/cm^2$, which is 23% and 187% higher than OGF and GF, respectively. These results show the possibility that activated carbon felt electrode using urea can be used as electrode material for redox flow battery.