• Title/Summary/Keyword: fuel cell stack

검색결과 487건 처리시간 0.029초

건물용 고체산화물연료전지 스택 안전성능평가 연구 (Study on safety performance evaluation of stationary SOFC stack)

  • 박태성;이은경;이승국
    • 에너지공학
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    • 제27권4호
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    • pp.1-12
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    • 2018
  • SOFC (Solid Oxide Fuel Cell) stack 안전성능 평가항목 및 평가절차 도출을 위하여 국내 외 연료전지 관련 규격들을 분석하였으며, 분석을 통해 도출된 시험항목으로 SOFC stack 안전성능 시험을 실시하였다. 시험에 사용된 SOFC stack은 (주)미코사(社)에서 제작된 음극 지지형 2 cell stack(활성면적: $110.25cm^2/cell$)이고, 평가장치는 자체 제작한 SOFC stack 안전성능 평가 장치를 사용하였다. 기밀성능 시험, 전류전압특성 시험, 정격출력 시험 및 부하변동 시험을 실시하였으며, 그 결과 해당 stack의 최대출력은 65.6 W(1.41 V, 46.5 A, $422mA/cm^2$), 정격출력은 62.3 W(1.57 V, 40 A, $363mA/cm^2$)로 나타났으며 가스누출이 없음을 확인하였다. 또한, 부하변동에 대하여 2초 이내에 안정적으로 출력이 유지되는 것을 확인하였다. 이때 운전 온도 $750^{\circ}C$에서 최대부하(40 A) 및 최소부하(8 A)에서의 출력은 각 62 W와 16 W로 측정되었다. 본 연구를 통하여 고체산화물연료전지의 보급화와 안전한 사용 환경을 제공하는데 기여하고자 한다.

1 kW 고체산화물 연료전지 스택의 내부개질 특성 연구 (Study on Internal Reforming Characteristic of 1 kW Solid Oxide Fuel Cell Stack)

  • 최영재;안진수;이인성;배홍열;문지웅;이종규
    • 한국수소및신에너지학회논문집
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    • 제28권4호
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    • pp.377-383
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    • 2017
  • This paper presents the performance characteristics of a 1 kW solid oxide fuel cell (SOFC) stack under various internal reforming and fuel utilization conditions. The Research Institute of Industrial Science & Technology (RIST) developed the 9-cell stack using a $20{\times}20cm^2$ anode supported planar cell with an active area of $324cm^2$. In this work, current-voltage characteristic test, fuel utilization test, continuous operation, and internal reforming test were carried out sequentially for 765 hours at a furnace temperature of $700^{\circ}C$. The influence of fuel utilization and internal reforming on the stack performance was analyzed. When the 1 kW stack was tested at a current of 145.8 A with a corresponding fuel utilization of 50-70% (internal reforming of 50%) and air utilization of 27%, the stack power was approximately 1.062-1.079 kW. Under continuous operation conditions, performance degradation rate was 2.16%/kh for 664 hours. The internal reforming characteristics of the stack were measured at a current of 145.8. A with a corresponding fuel utilization of 60-75%(internal reforming of 50-80%) and air utilization of 27%. As fuel utilization and internal reforming ratio increased, the stack power was decreased. The stack power change due to the internal reforming ratio difference was decreased with increasing fuel utilization.

메탄올 농도에 따른 직접 메탄올 연료전지의 성능 해석 (Performance Characteristics of Direct Methanol Fuel Cell with Methanol Concentration)

  • 조창환;김용찬;장영수
    • 설비공학논문집
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    • 제20권3호
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    • pp.197-204
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    • 2008
  • DMFC(Direct Methanol Fuel Cell) is one of promising candidates for power sources of small mobile IT devices like notebook, cell phone, and so on. Efficient operation of fuel cell system is very important for long-sustained power supply because of limited fuel tank size. It is necessary to investigate operation characteristics of fuel cell stack for optimal control of DMFC system. The generated voltage was modeled according to various operating condition; methanol concentration, stack temperature, and load current. It is inevitable for methanol solution at anode to cross over to cathode through MEA(membrane electrode assembly), which reduces the system efficiency and increases fuel consumption. In this study, optimal operation conditions are proposed by analyzing stack performance model, cross-over phenomenon, and system efficiency.

부하의 변화를 고려한 연료전지 스택 동특성 모델링 (Fuel Cell Stack Dynamics Modeling Considering Load Variation)

  • 고정민;김종수;최규영;강현수;이병국
    • 전기학회논문지
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    • 제58권1호
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    • pp.93-99
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    • 2009
  • In this paper, transient voltage response of Polmer Electrolyte Membrane Fuel Cell (PEMFC) stack is analyzed and voltage dynamic characteristic is modeled for optimal design of power conditioning system (PCS). According that the load is changed, the corresponding operating voltage of fuel cell stack is also varied with a certain deep and rising time due to the chemical and mechanical responses. This transient behavior can affect on the operation with respect of PI gain in controller, duty ratio, capacitor of capacitor and so on. So in this paper the detailed theoretical analysis of transient voltage dynamics is explained and the methodology of dynamic modeling is introduced. In addition, the validity and feasibility of the proposed dynamic model is verified by experimental results under various load conditions.

다변수 최적화 기법을 이용한 자동차용 고분자 전해질형 연료전지 시스템 모델링에 관한 연구 (A Study of Modeling PEM Fuel Cell System Using Multi-Variable Optimization Technique for Automotive Applications)

  • 김한상;민경덕;전순일;김수환;임태원;박진호
    • 신재생에너지
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    • 제1권4호
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    • pp.43-48
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    • 2005
  • This study presents the integrated modeling approach to simulate the proton exchange membrane [PEM] fuel cell system for vehicle application. The fuel cell system consisting of stack and balance of plant (BOP) was simulated with MATLAB/Simulink environment to estimate the maximum system power and investigate the effect of BOP component sizing on system performance and efficiency. The PEM fuel cell stack model was established by using a semi-empirical modeling. To maximize the net efficiency of fuel cell system, multi-variable optimization code was adopted. Using this method, the optimized operating values were obtained according to various system net power levels. The fuel cell model established was co-linked to AVL CRUISE, a vehicle simulation package. Through the vehicle simulation software, the fuel economy of fuel cell powered electric vehicle for two types of driving cycles was presented and compared. It is expected that this study can be effectively employed in the basic BOP component sizing and in establishing system operation map with respect to net power level of fuel cell system.

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다변수 최적화 기법을 이용한 자동차용 고분자전해질형 연료전지 시스템 모델링에 관한 연구 (A Study of Modeling PEM Fuel Cell System Using Multi-Variable Optimization Technique for Automotive Applications)

  • 김한상;민경덕;전순일;김수환;임태원;박진호
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2005년도 제17회 워크샵 및 추계학술대회
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    • pp.541-544
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    • 2005
  • This study presents the integrated modeling approach to simulate the proton exchange membrane (PEM) fuel cell system for vehicle application. The fuel cell system consisting of stack and balance of plant (BOP) was simulated with MATLAB/Simulink environment to estimate the maximum system power and investigate the effect of BOP component sizing on system performance and efficiency. The PEM fuel cell stack model was established by using a semi-empirical modeling. To maximize the net efficiency of fuel cel1 system, multi-variable optimization code was adopted. Using this method the optimized operating values were obtained according to various system net power levels. The fuel cell model established was co-linked to AVL CRUISE, a vehicle simulation package. Through the vehicle simulation software, the fuel economy of fuel cell powered electric vehicle for two types of driving cycles was presented and compared. It is expected that this study tan be effectively employed in the basic BOP component sizing and in establishing system operation map with respect to net power level of fuel cell system.

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인산형 연료전지 스택의 전산모사 (Simulation Study of the Phosphoric Acid Fuel Cell Stack)

  • 최성우;이갑수;김화용
    • 청정기술
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    • 제7권4호
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    • pp.243-250
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    • 2001
  • 연료전지는 환경 친화적 대체에너지로 지속적인 연구가 이루어지고 있다. 최근에는 연료전지의 실용화를 위해 적층, 대면적화에 대한 기본 기술이 중요시되고 있다. 그러나 연료전지중 가장 많은 기술적 발전을 이룬 인산형 연료전지에 관해서도 연료전지 설계의 기초자료가 되는 스택의 온도 분포에 대한 연구는 거의 발표되지 않았다. 본 연구에서는 인산형 연료전지 스택의 온도 분포를 전산모사하였다. 이를 통하여 여러 작동 조건에서 스택의 온도 분포를 알아내었으며, 스택 운전시 적절한 온도 측정 위치를 예측할 수 있었다. 또한 냉각단의 유로를 변경하여 전산모사를 수행한 결과 스택 내부의 온도 분포의 표준 편차를 약 50% 감소시키는 효과적인 냉각 디자인을 제안할 수 있었다.

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인산형 연료전지 스택에 대한 3차원 모델링 및 모사 (Three-Dimensional Modeling and Simulation of a Phosphoric Acid Fuel Cell Stack)

  • 안현식;김효
    • 한국가스학회지
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    • 제4권1호
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    • pp.40-48
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    • 2000
  • 연료전지는 일정하게 유지되는 전극-전해질계의 공정에 의해 연료와 산화제의 화학에너지를 전기에너지로 끊임없이 전환시킬 수 있는 전기화학장치이다. 인산형 연료전지는 전해질로 진한 인산염을 사용한다. 연료전지 시스템에서 가장 중요한 부분인 스택은 연료의 산화가 일어나는 anode, 산화물의 환원이 일어나는 cathode, 그리고 anode와 cathode를 분리시키고 이온을 전도시키는 전해질로 이루어져 있다. 연료전지의 성능은 시스템의 환경에 따른 작동 및 디자인 변수들에 의해 좌우된다. 따라서 연료전지의 핵심부분이라 할 수 있는 스택의 성능향상을 위하여 전산유체역학 코드를 이용한 스택에 대한 3차원적 모델링 및 전기화학반응이 포함된 모사를 수행하였다. 이로부터 산화제의 유량변화에 따른 스택 내부에서의 연료, 산화제 및 생성물의 농도, 그리고 반응에 의해 생성된 열의 전달에 의한 스택의 온도 분포 및 변화를 전산유체 코드인 FLUENT를 이용하여 계산하였다.

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PEM 연료전지 스택의 과도상태 출력특성에 관한 실험적 연구 (An Experimental Study on Transient Characteristics of PEM Fuel Cell Stack)

  • 김현일;황재순;정태용;신동훈;남진현;김영규
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2007년도 춘계학술대회B
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    • pp.2003-2008
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    • 2007
  • The transient power characteristics of a PEM fuel cell stack was experimentally studied using a commercial 1.2kW PEM fuel cell ($Nexa^{TM}$ Power Module, Ballard Power System Inc.). The conditions in PEM fuel cell stack such as temperature and water content change rather slowly because of their large heat capacity and long channel length, which results in long transient time to converge to a steady state. The steady characteristics of the PEM fuel cell module was determined first, followed by the measurement of its transient characteristics upon stepwise and continuous load current changes. During the stepwise current change from 5A to 25A, the output voltage initially decreased below the steady voltage and then increased gradually. Similar behavior was also observed for the stepwise current change from 25A to 5A. This transient behavior is explained with reference to the evolution of the temperature and water content of the PEM fuel cell stack.

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DEVELOPMENT OF FUEL CELL HYBRID ELECTRIC VEHICLE PERFORMANCE SIMULATOR

  • Park, C.;Oh, K.;Kim, D.;Kim, H.
    • International Journal of Automotive Technology
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    • 제5권4호
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    • pp.287-295
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    • 2004
  • A performance simulator for the fuel cell hybrid electric vehicle (FCHEV) is developed to evaluate the potentials of hybridization for fuel cell electric vehicle. Dynamic models of FCHEV's electric powertrain components such as fuel cell stack, battery, traction motor, DC/DC converter, etc. are obtained by modular approach using MATLAB SIMULINK. In addition, a thermodynamic model of the fuel cell is introduced using bondgraph to investigate the temperature effect on the vehicle performance. It is found from the simulation results that the hybridization of fuel cell electric vehicle (FCEV) provides better hydrogen fuel economy especially in the city driving owing to the braking energy recuperation and relatively high efficiency operation of the fuel cell. It is also found from the thermodynamic simulation of the FCEV that the fuel economy and acceleration performance are affected by the temperature due to the relatively low efficiency and reduced output power of the fuel cell stack at low temperature.