• 제목/요약/키워드: Solid polymer electrolyte(SPE)

검색결과 31건 처리시간 0.028초

PSCAD/EMTDC를 이용한 수소제조용 태양광 발전 시스템의 모델링 (Modeling of Solar-Powered Hydrogen Production System using PSCAD/EMTDC)

  • 이동한;박민원;유인근
    • 대한전기학회논문지:전기기기및에너지변환시스템부문B
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    • 제55권2호
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    • pp.116-121
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    • 2006
  • This paper presents an effective modeling and simulation scheme of solar-powered hydrogen production system (PV-SPE: Photovoltaic Solid Polymer Electrolyte). Existing Hydrogen production technologies can produce vast amounts of hydrogen from hydrocarbons but emit large amounts of carbon dioxide (CO2) into the atmosphere. Advanced hydrogen production methods need development. Renewable technologies such as solar and wind need further development for hydrogen production to be more cost-competitive from other resources. In this paper, authors have focused on a renewable technology to move one step further toward commercial readiness of solar-powered hydrogen production system. Software (PSCAD/EMTDC) based model of PV-SPE system is studied for an effective simulation of hydrogen production system. Using the simulation results, an actual PV-SPE system is implemented to verify the simulation results by comparing them with actual values obtained from the data acquisition system.

PSCAD/EMTDC를 이용한 PV-AF-SPE 시스템의 특성분석 (Characteristic analysis of PV-AF-SPE system using PSCAD/EMTDC)

  • 이동한;이석주;김종현;박민원;유인근
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2006년도 제37회 하계학술대회 논문집 B
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    • pp.1205-1206
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    • 2006
  • In this paper an integrated model of PV-AF (Photovoltaic-Active Filter) and PV-SPE (Photovoltaic Solid Polymer Electrolyte) system using PSCAD/EMTDC were explained in detail. The main concept of PV-AF system starts from the "harmonics". In order to deliver power to utility, PV system essentially needs a converter system. Here PV-AF system adds the function of active filter to the converter system installed in PV system, which was introduced already in several papers. PV-SPE system has been studied as a replacement of existing hydrogen production technology that emits large amount of carbon dioxide into atmosphere. Until now, these two systems, PV-AF and PV-SPE, have been considered separately. However, in this paper, characteristics and advantages of combined system are discussed in detail.

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KIER 실험용 SPE 수전해장치의 실험결과 및 고찰 (Experimental Study on the SPE Water Electrolysis in KIER)

  • 김정덕;심규성;명광식;김종원
    • 한국에너지공학회:학술대회논문집
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    • 한국에너지공학회 2002년도 춘계 학술발표회 논문집
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    • pp.143-148
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    • 2002
  • SPE(solid polymer electrolyte) 수전해법은 고체고분자전해질 막(membrane)을 전해질로 사용하는 방법으로서 이 전해질 막은 알칼리 수전해에서의 KOH전해질과 격리막을 합쳐놓은 것과 같은 역할을 수행한다. SPE 수전해는 양극(anode)에서 촉매 전극에 의해 물로부터 산소기체(O$_2$)와 수소이온(H$^{+}$)이 발생되며 수소이온(H$^{+}$)은 다량의 물($H_2O$)분자와 함께 고체고분자전해질 막을 통하여 음극으로 이동하여 외부회로를 통해 도달한 전자(e)와 음극(cathode)에서 만나 수소기체(H$_2$)를 발생시키는 방법이다.(중략)

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이온전도성 Poly(ethylene oxide) 고분자 전해질과 Li과의 계면에 미치는 가소제 및 Zeolite의 첨가효과 (The Effect of Plasticizer and Zeolite Addition on the Interface between Polymer Electrolyte Based on Poly(ethylene oxide) and Li Electrode.)

  • 김종욱;구할본;진봉수;문성인;윤문수
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1994년도 추계학술대회 논문집 학회본부
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    • pp.205-208
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    • 1994
  • The purpose of this study is to research and develop solid polymer electrolyte(SPE) for Li secondary battery. PEO-$LiClO_4$ electrolyte with plasticizer is very unstable. Passivation phenomena in polymer electrolyte cell was described by the SPL model. The time dependance of the impedance indicates that a passivation layer grows rapidly on the Li surface. However, the growing of passivation layer on the Li surface can be restrained by addition of zeolite to the PEO electrolyte. It suggested that addition of zeoliteto to the PEO-$LiClO_4$ electrolyte effectively controls the formation of a passivation layer on Li electrode.

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이온성 액체 복합 Poly(ethylene oxide)(PEO) 고체 고분자 전해질의 전기화학적 특성 (Electrochemical Properties of Ionic Liquid Composite Poly(ethylene oxide)(PEO) Solid Polymer Electrolyte)

  • 박지현;김재광
    • 전기화학회지
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    • 제19권3호
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    • pp.101-106
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    • 2016
  • 본 연구에서는 리튬 고분자 이차전지의 안정성과 전기화학적 특성을 향상시키기 위하여 poly(ethylen oxide)(PEO)를 lithium bis (trifluoromethanesulfonyl)imide, N-butyl-N-methylpyrrolidinium bis (trifluoromethanesulfonyl)imide 와 블렌딩-가교 법으로 복합화시켜 PEO-LiTFSI-$Pyr_{14}TFSI$ 고분자 전해질을 제조하였다. 전기화학적 산화 안정성 테스트에서 PEOLiTFSI-$Pyr_{14}TFSI$ 복합 고분자 전해질은 비록 4.4 V에서 약간의 산화곡선을 보이지만 5.7 V까지 안정하였다. PEO-LiTFSI-$Pyr_{14}TFSI$ 고분자 전해질은 온도가 증가할수록 이온전도도가 증가하며, PEO계열의 고분자 전해질의 특성상 상온에서 $10^{-6}S\;cm^{-1}$로 낮지만 $70^{\circ}C$에서는 $10^{-4}S\;cm^{-1}$까지 증가 하였다. 리튬 고분자 전지의 전기화학적 특성을 측정하기 위해 $LiFePO_4$ 양극, PEOLiTFSI-$Pyr_{14}TFSI$ 복합 고분자 전해질, 리튬 음극으로 전지를 구성하였으며 0.1 C의 전류밀도에서 방전 용량이 $30^{\circ}C$에서 $40mAh\;g^{-1}$, $40^{\circ}C$에서는 $69.8mAh\;g^{-1}$, $50^{\circ}C$에서는 $113mAhg^{-1}$을 나타내 온도의 증가에 따라 방전 용량이 증가함을 알 수 있었다. PEO-LiTFSI-$Pyr_{14}TFSI$ 복합 고분자 전해질은 $LiFePO_4$양극과 함께 50도에서 가장 우수한 충-방전 성능을 보여주었다.

Electrochemical Characteristics of Solid Polymer Electrode Fabricated with Low IrO2 Loading for Water Electrolysis

  • Ban, Hee-Jung;Kim, Min Young;Kim, Dahye;Lim, Jinsub;Kim, Tae Won;Jeong, Chaehwan;Kim, Yoong-Ahm;Kim, Ho-Sung
    • Journal of Electrochemical Science and Technology
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    • 제10권1호
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    • pp.22-28
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    • 2019
  • To maximize the oxygen evolution reaction (OER) in the electrolysis of water, nano-grade $IrO_2$ powder with a low specific surface was prepared as a catalyst for a solid polymer electrolyte (SPE) system, and a membrane electrode assembly (MEA) was prepared with a catalyst loading as low as $2mg\;cm^{-2}$ or less. The $IrO_2$ catalyst was composed of heterogeneous particles with particle sizes ranging from 20 to 70 nm, having a specific surface area of $3.8m^2g^{-1}$. The anode catalyst layer of about $5{\mu}m$ thickness was coated on the membrane (Nafion 117) for the MEA by the decal method. Scanning electron microscopy (SEM) and electrochemical impedance spectroscopy (EIS) confirmed strong adhesion at the interface between the membrane and the catalyst electrode. Although the loading of the $IrO_2$ catalyst was as low as $1.1-1.7mg\;cm^{-2}$, the SPE cell delivered a voltage of 1.88-1.93 V at a current density of $1A\;cm^{-2}$ and operating temperature of $80^{\circ}C$. That is, it was observed that the over-potential of the cell for the oxygen evolution reaction (OER) decreased with increasing $IrO_2$ catalyst loading. The electrochemical stability of the MEA was investigated in the electrolysis of water at a current density of $1A\;cm^{-2}$ for a short time. A voltage of ~2.0 V was maintained without any remarkable deterioration of the MEA characteristics.

Ti Mesh처리 촉매전극/SPE 가 전기분해에 미치는 영향 (Effect of Catalyst plated Titanium-mesh Electrodes in Water Electrolysis using Solid Polymer Electrolyte)

  • 김연순;박기배;명광식;심규성;한상도
    • 한국에너지공학회:학술대회논문집
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    • 한국에너지공학회 1998년도 춘계 학술발표회 논문집
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    • pp.167-171
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    • 1998
  • 수소는 2차 에너지원으로 그 자원이 풍부하며 청정에너지원으로 지구 환경문제를 해결할 수 있는 에너지로 주목을 받고 있다. 현재 무공해 수소를 제조하는 방법으로는 불을 전기 분해하는 방법 이외에 태양에너지 이용법, 바이오기술, 화학순환기술, 화석연료 분해법 등이 보고되고 있으며 모두 기초연구 단계에 있다. 이중에서 전기분해에 의한 수소의 제조기술은 경제성 및 효율향상을 위해 가장 많이 연구되고 있고 이미 우주선, 잠수함 등 특수용도로는 실용화되고 있는 기술이다. (중략)

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Poly(ethylene oxide) 고분자 전해질의 온도, Li 염의 종류 및 가소제 첨가에 따른 전도도 특성 (The Conductivity Properties of Poly(ethylene oxide) Polymer Electrolyte as a Function of Temperature, Kinds of Lithium Salt and Plasticizer Addition)

  • 김종욱;진봉수;문성인;구할본;윤문수
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1994년도 하계학술대회 논문집 C
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    • pp.1229-1232
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    • 1994
  • The purpose of this study is to research and develop solid polymer electrolyte(SPE) for Li secondary battery. This paper describes the effects of lithium salts, plasticizer addition and temperature dependence of conductivity of PEO electrolytes. Polyethylene oxide(PEO) based polymer electrolyte films were prepared by solution casting an acetonitrile solution of preweighed PEO and Li salt. After solvent evaporation, the electrolyte films were vacuum-dried at $60^{\circ}C$ for 48h, the thickness of the films were $90{\sim}110{\mu}m$. The conductivity properties of prepared PEO electrolytes are summarized as follows. PEO electrolyte complexed with $LiClO_4$ shows the better conductivity of the others. $PEO-LiClO_4$ electrolyte when $EO/Li^+$ ratio is 8, showed the best conductivity. Optimum operating temperature of PEO electrolyte is $60^{\circ}C$. By adding propylene carbonate and ethylene carbonate to $PEO-LiClO_4$ electrolyte, its conductivity was higher than $PEO-LiClO_4$ without those. Also $PEO_8LiClO_4$ electrolyte remains static up to 4.5V vs. $Li/Li^+$.

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함침-환원법으로 제조된 수전해용 Pt-SPE 전극촉매의 특성 (Characterizations of Pt-SPE Electrocatalysts Prepared by an Impregnation-Reduction Method for Water Electrolysis)

  • 장두영;장인영;권오환;김경언;황갑진;강안수
    • 한국수소및신에너지학회논문집
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    • 제17권4호
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    • pp.440-447
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    • 2006
  • Solid polymer electrolyte(SPE) membrane with electrodes embedded on both faces offer unique possibilities for the electrochemical cells like water electrolyzer with fuel cell. The Nafion 117 membrane was used as the SPE, and $Pt(NH_3)_4Cl_2$ and $NaBH_4$ as the electrocatalysts and reducing agent, respectively. The 'impregnation-reduction(I-R) method' has been investigated as a tool for the preparation of electrocatalysts for water electrolyzer by varying the concentration of reducing agent and reduction time at fixed concentration of platinum salt, 5 mmol/L. Pt-SPE electrocatalysts prepared by non-equilibrium I-R method showed the lowest cell voltage of 2.17 V at reduction time, 90 min and with concentration of reducing agent 0.8 mol/L and the cell voltage with those by equilibrium I-R method was 2.42 V at reduction time, 60 min and with concentration of reducing agent 0.8 mol/L. The cell voltage were obtained at a current density $1\;A/cm^2$ and $80^{\circ}C$. In water electrolysis, hydrogen production efficiency by Pt-SPE electrocatalyst is 68.2% in case of non-equilibrium I-R method and 61.2% at equilibrium I-R method.

PSf-co-PPSS/HPA를 이용한 수소제조 수전해용 고체 고분자 전해질 복합 막의 제조 (Preparation of Solid Polymer Electrolytes of PSf-co-PPSS/Heterooolyacid [HPA] Composite Membrane for Hydrogen Production via Water Elecrolysis)

  • 정윤교;이혁재;장인영;황갑진;배기광;심규성;강안수
    • 한국수소및신에너지학회논문집
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    • 제16권2호
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    • pp.103-110
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    • 2005
  • Proton conducting solid polymer electrolyte (SPE) membranes have been used in many energy technological applications such as water electolysis, fuel cells, redox-flow battery, and other electrochemical devices. The availability of stable membranes with good electrochemical characteristics as proton conductivity at high temperatures above 80 $^{\circ}C$ and low cost are very important for its applications. However, the presently available perfluorinated ionomers are not applicable because of high manufacturing cost and high temperature use to the decrease in the proton conductivity and mechanical strength. In order to make up for the weak points, the block copolymer (BPSf) of polysulfone and poly (phenylene sulfide sulfone) were synthesized and sulfonated. The electrolyte membranes were prepared with phosphotungstic acid (HPA)/sulfonated BPSf via solution blending. This study would be desirable to investigate the interaction between the HPA and sulfonated polysulfone. The results showed that the characteristics of SPSf/HPA blend membrane was a better than Nafion at high temperature, 100 $^{\circ}C$. These membranes proved to have a high proton conductivity, $6.29{\times}10-2$ S/cm, a water content, 23.9%, and a ion exchange capacity, 1.97 meq./g dry membrane. Moreover, some of the membranes kept their high thermal and mechanical stability.