• 제목/요약/키워드: PEM fuel cells

검색결과 110건 처리시간 0.022초

Polyol Process를 통한 PEM Fuel Cell용 Pt/C촉매 제조 (Preparation of Pt/C catalyst for PEM fuel cells using polyol process)

  • 오형석;김한성
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2006년도 추계학술대회
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    • pp.443-446
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    • 2006
  • Carbon-supported Platinum (Pt) is the potential electro-catalyst material for anodic and cathodic reactions in fuel cell. Catalytic activity of the metal strongly depends on the particle shape, size and distribution of the metal in the porous supportive network. Conventional preparation techniques based on wet impregnation and chemical reduction of the metal precursors often do not provide adequate control of particle size and shape. We have proposed a novel route for preparing nano sized Pt colloidal particles in solution by oxidation of ethylene glycol. These Pt nano particles were deposited on large surface area carbon support. The process of nano Pt colloid formation involves the oxidation of solvent ethylene glycol to mainly glycolic acid and the presence of its anion glycolate depends on the solution pH. In the process of colloidal Pt formation glycolate actsas stabilizer for the Pt colloidal particle and prevents the agglomeration of colloidal Pt particles. These mono disperse Pt particles in carbon support are found uniformly distributed in nearly spherical shape and the size distribution was narrow for both supported and unsupported metals. The average diameter of the Pt nano particle was controlled in the range off to 3 nm by optimizing reaction parameters. Transmission electron microscopy, CV and RRDE experiments were used to compliment the results.

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Experimental Analyses of Cell Voltages for a Two-cell PEM Stack Under Various Operating Conditions

  • Park, Sang-Kyun;Choi, Jae-Hyuk
    • Journal of Advanced Marine Engineering and Technology
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    • 제35권7호
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    • pp.881-890
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    • 2011
  • Analyses of performance and behavior of the individual PEM fuel cells (PEMFC) under different operating conditions are of importance optimally to design and efficiently to operate the stack. The paper focuses on experimental analyses of a two-cell stack under different operating conditions, which performance and behavior are measured by the voltage of a cell as well as the stack. Experimental parameters include stoichiometric ratio, temperature of the air supplied under different working stack temperatures and loads. Results showed that the cell voltages are dominantly influenced by the temperature of the air supplied among others. In addition, an inherent difference between the first and the second cell voltage exists because of the tolerances of the cell components and the resulting different over-potentials at different equilibrium states. Furthermore, it is shown that the proton conductivity in the membranes conditioned by the humidity in the cathode channel highly affects the voltage differences of the two cells.

고분자 전해질 연료전지 하이브리드 무인 비행기의 설계, 제어, 평가 기법 리뷰 (Design, Control and Evaluation Methods of PEM Fuel Cell Unmanned Aerial Vehicle: A review)

  • 차문용;김민진;손영준;양태현
    • 한국수소및신에너지학회논문집
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    • 제25권4호
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    • pp.405-418
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    • 2014
  • Fuel cells are suitable for a power plant of a unmanned aerial vehicle (UAV) as it is not only environmentally friendly and quiet but also more efficient than an internal combustion engine. A fuel cell hybrid UAV has better performance in endurance than a fuel cell only or battery only UAV. One of the key purposes of making fuel cell hybrid UAVs is having long endurance and now maximum 26 hours of flight is possible. Because optimal design and control methods for fuel cell hybrid UAVs are absolutely needed for their long endurance we have to check the methods. The aircraft made by using application-integrated design method has less BOP mass and better performances. The optimal design and control methods are generally based on computer simulations or Hardware-In-The-Loop simulations by using dynamic models for their design and control. The Hardware-In-The-Loop simulation (HILS) is to use a hardware device like a fuel cell stack as well as a simulation program and it allows for making optimally designed applications. This paper introduce efficient methods of design, control and evaluation for the fuel cell hybrid UAVs.

PEM 연료전지용 가스확산층-탄소 복합재료 분리판 조합체 개발 (Development of GDL-carbon Composite Bipolar Plate Assemblies for PEMFC)

  • 임준우
    • Composites Research
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    • 제34권6호
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    • pp.406-411
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    • 2021
  • PEM(양성자 교환막) 연료 전지는 부산물로 물 만을 생성하여 친환경 에너지원으로 각광받고 있다. 이러한 연료전지의 스택을 이루는 여러 부품들 중 연료전지의 효율을 결정짓는 분리판에 관한 연구가 활발히 진행되고 있다. 복합재료 분리판은 높은 강도와 강성 및 내식성을 갖지만 상대적으로 낮은 전기 전도도를 갖는 단점이 있다. 본 연구에서는 이러한 단점을 극복하고자 가스확산층(GDL)-복합재료 분리판 조합체를 개발하고 그 성능을 실험적으로 확인하였다. 선행 연구에서 개발된 흑연 포일 코팅법을 분리판과 GDL 간의 접촉 저항을 줄이기 위해 적용하였다. 또한, 스택 내의 전자 이동경로를 향상시키고 GDL과 분리판 사이의 접촉저항을 최소화하기 위하여 금속 박막을 이용하여 GDL-분리판 조합체를 제작하였다. 실험 결과 개발된 GDL-분리판 조합체는 기존의 복합재료 분리판과 비교하여 98% 낮은 전기저항을 갖는 것을 확인하였다.

대면적 고분자전해질 연료전지의 데드엔드 운전 (Dead-end Mode Operation of a Large Scale PEM Fuel Cell Stack)

  • 정지훈;신현길;한인수;서하규;김민성;조성백;허태욱
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2010년도 추계학술대회 초록집
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    • pp.83.1-83.1
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    • 2010
  • A Dead-end mode operation is one of the best way to maximize the gas usage rate. But, some components of fuel cell stack like gas diffusion layer(GDL) or membrane can be damaged in dead-end mode operation. In this study, a Large Scale Polymer electrolyte membrane fuel cell(PEMFC) for a dead-end operation has been developed. The stack is composed with 4 cells which has over 400cm2 of active area. Hydrogen is used as a fuel, and oxygen is used as a oxidant. The dead-end operation performance was evaluated by a long-term dead-end mode operation. The fuel cell stack is operated over 1,500 hours in dead-end mode operating fuel cell test station. And the performance change of the fuel cell stack was investigated.

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연료전지 수소 재순환 시스템의 유동해석 (Flow analysis of the Hydrogen Recirculation System for Fuel Cells)

  • 김재춘;이용택;정진택;김용찬;황인철
    • 유체기계공업학회:학술대회논문집
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    • 유체기계공업학회 2005년도 연구개발 발표회 논문집
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    • pp.759-764
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    • 2005
  • In this paper, numerical analysis of hydrogen recycle system has been conducted in order to enhance the efficiency of automotive fuel cell. Generally, the excess hydrogen is provided in the automotive fuel cell. Since the non-reaction hydrogen reduces automotive fuel cell efficiency, reuse of the non-reaction hydrogen can be helpful to improve the fuel cell performance. In case of PEM FC, the water vapor is provided to hydrogen from the cathode so that the mixture experiences phase change depending on the changes of pressure and temperature. The internal flow of the mixture in the hydrogen recirculation system of fuel cell was investigated for real flow conditions. The variation of performance, properties and mass fractions of mixture, hydrogen and water-vapor were investigated. This study was performed based on 80KW level automotive fuel cell's recycling system.

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Influence of the cathode catalyst layer thickness on the behaviour of an air breathing PEM fuel cell

  • Ferreira-Aparicio, Paloma;Chaparro, Antonio M.
    • Advances in Energy Research
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    • 제2권2호
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    • pp.73-84
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    • 2014
  • Fuel cells of proton exchange membrane type (PEMFC) working with hydrogen in the anode and ambient air in the cathode ('air breathing') have been prepared and characterized. The cells have been studied with variable thickness of the cathode catalyst layer ($L_{CL}$), maintaining constant the platinum and ionomer loads. Polarization curves and electrochemical active area measurements have been carried out. The polarization curves are analyzed in terms of a model for a flooded passive air breathing cathode. The analysis shows that $L_{CL}$ affects to electrochemical kinetics and mass transport processes inside the electrode, as reflected by two parameters of the polarization curves: the Tafel slope and the internal resistance. The observed decrease in Tafel slope with decreasing $L_{CL}$ shows improvements in the oxygen reduction kinetics which we attribute to changes in the catalyst layer structure. A decrease in the internal resistance with $L_{CL}$ is attributed to lower protonic resistance of thinner catalyst layers, although the observed decrease is lower than expected probably because the electronic conduction starts to be hindered by more hydrophilic character and thicker ionomer film.

고분자 전해질 막 연료전지 응용을 위한 탄화수소계 고분자 전해질 막의 물성 향상에 관한 연구동향 (Research Trends on Improvement of Physicochemical Properties of Sulfonated Hydrocarbon Polymer-based Polymer Electrolyte Membranes for Polymer Electrolyte Membrane Fuel Cell Applications)

  • 황인혁;최다빈;김기현
    • 멤브레인
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    • 제32권6호
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    • pp.427-441
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    • 2022
  • 고분자 전해질 막 연료전지(polymer electrolyte membrane fuel cell, PEMFC)의 핵심 구성요소 중 하나인 고분자 전해질 막(polymer electrolyte membrane, PEM)은 수소이온을 애노드(anode)에서 캐소드(cathode)로 이동시키는 전해질의 역할 및 연료의 투과를 막는 분리막으로서의 역할을 수행하며 PEMFC의 성능 및 효율을 결정짓는 핵심 소재이다. 현재 나피온 (Nafion®)으로 대표되는 과불소화계 전해질 막이 높은 수소이온 전도도 및 화학적 안정성으로 인해 상용화 되었지만, 높은 생산비용과 구동 시 환경오염 물질이 배출된다는 문제점을 갖고 있다. 이를 대체할 PEM 소재로써 고분자의 구조 조절 및 개질 과정이 용이한 다양한 종류의 탄화수소계 고분자가 제시되고 있지만, 실제 PEMFC에 적용되기 위해서는 성능 및 내구 특성을 개선해야 하는 과제가 남아있다. 이에 본 총설은 탄화수소계 PEM의 성능 및 내구 특성을 향상시키기 위해 1) 가교 구조를 도입한 가교 막 개발, 2) 무기 첨가제 도입을 통한 유⋅무기 복합 막 개발 및 3) 다공성 지지체를 활용한 강화 복합막을 개발하는 연구에 대해 살펴보고자 한다.

연속류식 미생물연료전지의 유기물 제거 및 전기 발생 특성 (Characteristics of Organic Material Removal and Electricity Generation in Continuously Operated Microbial Fuel Cell)

  • 김정구;정연구;박송인
    • 유기물자원화
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    • 제18권1호
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    • pp.57-65
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    • 2010
  • 양성자 교환막 미생물연료전지(PEM-MFC)의 경우 양극의 표면적을 기준으로 유기물 제거능력을 산출하면 유기물 부하에 관계없이 $3.0gCOD/m^2$ 수준으로 나타났다. 또 안정적인 전압이 관찰된 시기의 쿨롱 효율은 22.4~23.4 %로 높지 않은 수준이었다. 양성자 교환막은 양성자뿐만 아니라 초산도 통과시키는 것으로 확인되었다. 양성자 교환막을 사용하지 않은 상향류식 미생물연료전지(ML-MFC)의 경우 다공성 RVC 전극을 사용한 관계로 전극의 외부면적당 유기물 제거능력은 $9.3{\sim}10.1gCOD/m^2{\cdot}d$로 나타났다. 이는 양성자 교환막을 사용한 경우에 비하여 3배 정도 높은 수준이다. 그러나 RVC 양극의 비표면적 차이에 따른 유기물 제거 능력 차이는 크지 않았다. ML-MFC의 경우 전기 발생이 안정적이지 못하였으며, 쿨롱 효율도 3.6~3.7 %로 매우 낮은 수준이었다. 전기 발생량이 안정적이지 못한 것은 음극에 성장한 미생물의 영향으로 판단된다. 이를 해결하기 위해 음극부의 공기주입량을 증가시키면 일시적으로 전기 발생이 증가하였으나 오래 지속되지 못하였다.

연료전지 전원 시스템의 설계 및 분석을 위한 PEMFC의 회로 모델 (A Circuit Model of PEMFC for Design and Analyze Fuel Cell Power System)

  • 이수호;이현우;권순걸
    • 전력전자학회:학술대회논문집
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    • 전력전자학회 2006년도 전력전자학술대회 논문집
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    • pp.197-199
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    • 2006
  • The Proton Exchange Membrane Fuel Cells (PEMFCs) are being used in a variety of applications including portable power generation, transportation and back-up power systems. In this paper presents a novel circuit model for a PEMFC that can be used to design and analyze fuel-cell power system. The Pspice-based model uses BJTs, L and C elements available in the Pspice library with some modification. The model includes the phenomena like activation polarization, ohmic polarization and mass transport effect present in a PEM fuel cell. Simulated characteristics of the fuel cell were compared with the experimental results obtained on a commercial fuel cell.

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