• 제목/요약/키워드: High Temperature Fuel Cell

검색결과 431건 처리시간 0.023초

바이오가스 연료기반 연료전지발전 기술동향 (Technology Trends of Fuel Cell Power Plant Based on Biogas Fuel)

  • 이종규;전재호;이종연
    • 신재생에너지
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    • 제4권3호
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    • pp.5-14
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    • 2008
  • The target for the reduction of $CO_2$ emissions, as specified in the Kyoto Protocol, can only be achieved by an extended use of renewable fuels and the increasing of the energy efficiency. The energy generation from waste gases with a reasonable content of methane like biogas can significantly contribute to reach this target. A further reduction of greenhouse gas emissions is possible by increasing the electrical efficiency using progressive technologies. Fuel cells can be highly energy conversion devices. Utilizing biogas as the fuel for fuel cell systems offers an option that is technically feasible, potentially economically attractive and greenhouse gas neutral. High temperature fuel cells that are able to operate with carbon monoxide in the feed are well suited to these applications. Furthermore, because they do not require noble metal catalysts, the cost of high-temperature fuel cells has the greatest potential to become competitive in the near future compared to other types of fuel cells.

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용융탄산염연료전지와 터보팽창기를 이용한 천연가스 정압기지의 열역학적 분석 (Thermodynamic Analysis on Hybrid Molten Carbonate Fuel Cell - Turbo Expander System for Natural Gas Pressure Regulation)

  • 성태홍;김경천
    • 한국가스학회지
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    • 제18권2호
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    • pp.28-34
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    • 2014
  • 일반적인 천연가스 정압기지에서는 압력제어밸브를 이용하여 고압으로 수송되는 천연가스를 감압하여 내보낸다. 이 과정에서 버려지는 폐압에너지는 터보팽창기를 도입하여 추가적인 전력생산이 가능하나 터보팽창기를 통과하는 유체에서는 감압에 의한 Joule Thompson 효과에 의하여 온도가 급격히 떨어져 파이프라인 외부에 동결을 일으키거나 파이프라인 내부에 메탄하이드레이트와 같은 고체 물질이 형성될 위험이 있다. 현재 터보팽창기를 채용한 천연가스 정압기지에서는 냉열발생에 따른 부작용을 방지하기 위하여 터보팽창기의 전단에 보일러를 설치하여 팽창 전 천연가스를 예열하고 있다. 용융탄산염연료전지와 같은 고온 연료전지는 천연가스를 연료로 사용할 수 있고 친환경적인 고온 배출가스를 방출하며 동시에 추가적인 전력을 생산하여 시스템의 효율을 높일 수 있다. 이 논문에서는 천연가스 정압기지에 용융탄산염연료전지와 터보팽창기를 설치하여 얻을 수 있는 열역학적 이득에 대해서 연구하였다. 연료전지를 기저부하로 사용함에 따라서 얻을 수 있는 이익에 대하여 분석하였다.

Recent Advances in Polybenzimidazole (PBI)-based Polymer Electrolyte Membranes for High Temperature Fuel Cell Applications

  • Vijayakumar, Vijayalekshmi;Kim, Kihyun;Nam, Sang Yong
    • 공업화학
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    • 제30권6호
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    • pp.643-651
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    • 2019
  • Polybenzimidazole (PBI), an engineering polymer with well-known excellent thermal, chemical and mechanical stabilities has been recognized as an alternative to high temperature polymer electrolyte membranes (HT-PEMs). This review focuses on recent advances made on the development of PBI-based HT-PEMs for fuel cell applications. PBI-based membranes discussed were prepared by various strategies such as structural modification, cross-linking, blending and organic-inorganic composites. In addition, intriguing properties of the PBI-based membranes as well as their fuel cell performances were highligted.

고분자 전해질형 연료전지내의 질량유동이 성능에 미치는 영향 (A Study on the Mass Flow Effects to the Performance of PEMFC)

  • 박창권;조인수;오병수
    • 한국수소및신에너지학회논문집
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    • 제18권4호
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    • pp.422-431
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    • 2007
  • Polymer electrolyte membrane fuel cell(PEMFC) is very interesting power source due to high power density, simple construction and operation at low temperature. But it has problems such as high cost, improvement of performance and effect of temperature. These problems can be approached to be solved by using mathematical models which are useful tools for analysis and optimization of fuel cell performance and for heat and water management. In this paper, the present work is to develop an electrochemical model to examine the electrochemical process inside PEM fuel cell. A complete set of considerations of mass, momentum, species and charge is developed and solved numerically with proper account of electrochemical kinetics. When depth of gas channel becomes thinner, diffusion of reactant makes well into gas diffusion layer(GDL) and the performance increases. Although at low current region there is little voltage difference between experimental data of PEM fuel cell and numerical data. When the porosity size of gas diffusion layer for PEM fuel cell is bigger, oxygen diffusion occurs well and oxygen mass fraction appears high in catalyst layer.

A Study on Sintering Inhibition of La0.8Sr0.2MnO3- Cathode Material for Cathode-Supported Fuel Cells

  • Ahmed, Bilal;Lee, Seung-Bok;Song, Rak-Hyun;Lee, Jong-Won;Lim, Tak-Hyoung;Park, Seok-Joo
    • 한국세라믹학회지
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    • 제53권5호
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    • pp.494-499
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    • 2016
  • In this work, the effects of different sintering inhibitors added to $La_{0.8}Sr_{0.2}MnO_{3-{\partial}}$ (LSM) were studied to obtain an optimum cathode material for cathode-supported type of Solid oxide fuel cell (SOFC) in terms of phase stability, mechanical strength, electric conductivity and porosity. Four different sintering inhibitors of $Al_2O_3$, $CeO_2$, NiO and gadolinium doped ceria (GDC) were mixed with LSM powder, sintered at $1300^{\circ}C$ and then they were evaluated. The phase stability, sintering behavior, electrical conductivity, mechanical strength and microstructure were evaluated in order to assess the performance of the mixture powder as cathode support material. It has been found that the addition of $Al_2O_3$ undesirably decreased the electrical conductivity of LSM; other sintering inhibitors, however, showed sufficient levels of electrical conductivity. GDC and NiO addition showed a promising increase in mechanical strength of the LSM material, which is one of the basic requirements in cathode-supported designs of fuel cells. However, NiO showed a high reactivity with LSM during high temperature ($1300^{\circ}C$) sintering. So, this study concluded that GDC is a potential candidate for use as a sintering inhibitor for high temperature sintering of cathode materials.

연료전지 무인항공기의 고도와 체공시간에 대한 특성 분석 및 최신 연구동향 (Research Trend and Analysis of Altitude and Endurance for Fuel Cell Unmanned Aerial Vehicles)

  • 조성현;김민진;손영준;양태현
    • 한국수소및신에너지학회논문집
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    • 제25권4호
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    • pp.393-404
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    • 2014
  • Unmanned aerial vehicles (UAVs) have been applied to not only military missions like surveillance and reconnaissance but also commercial missions like meteorological observation, aerial photograph, communication relay, internet network build and disaster observation. Fuel cells make UAVs eco-friendly by using hydrogen. Proton exchange membrane fuel cells (PEMFCs) show low operation temperature, high efficiency, low noise and high energy density and those characterisitcs are well fitted with UAVs. Thus Fuel cell based UAVs have been actively developed in the world. Recently, fuel cell UAVs have started to develope for high altitude UAVs because target altitude of UAVs is expanded upto stratosphere altitude. Long endurance of UAVs is essential to improve effects of the missions. Improvement of UAV endurance time could be fulfilled by developing a hydrogen fuel storage system with high energy density and reducing the weight of UAVs. In this paper, research trend and analysis of fuel cell UAVs are introduced in terms of their altitude and endurance time and then the prospect of fuel cell UAVs are shown.

연료전기용 컴팩트형 개질기의 고성능화를 위한 고온 공기 연소 기술의 적용에 관한 연구 (A Numerical Study on a High-Temperature Air Combustion Burner for a Compact Fuel-Cell Reformer)

  • 이경호;권오채
    • 한국수소및신에너지학회논문집
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    • 제16권3호
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    • pp.229-237
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    • 2005
  • A new burner configuration for a compact fuel-cell reformer with a high-temperature air combustion concept was numerically studied. The burner was designed for a 40 $Nm^3/hr$ hydrogen-generated reformer using natural gas-steam reforming method. In order to satisfy the primary requirements for designing a reformer burner (uniform distribution of temperature along the fuel processor walls and minimum heat losses from the reformer), the features of the present burner configuration included 1) a self-regenerative burner for an exhaust-gas-recirculation to apply for the high-temperature air combustion concept, and 2) an annular-type shield for protecting direct contact of flame with the processor walls. For the injection velocities of the recirculated gas of 0.6-2.4 m/s, the recirculated gas temperature of 1000 K, and the recirculated oxygen mole fraction of 4%, the temperature distributions along the processor walls were found uniform within 100 K variation. Thus, the present burner configuration satisfied the requirement for reducing temperature gradients along the processor walls, and consequently demonstrated that the high-temperature air combustion concept could be applied to the practical fuel reformers for use of fuel cells. The uniformity of temperature distribution is enhanced as the amount of the recirculated gas increases.

고온형 멤브레인을 사용한 메탄올 개질 연료전지의 개질기 일체형 평판 설계 (Planar fuel cell design integrated with methanol reformer by using a high temperature membrane)

  • 김성한;장재혁;길재형;이홍렬;차혜연;구보성;정창렬;쿤두;미씨;오용수
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2006년도 추계학술대회
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    • pp.467-470
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    • 2006
  • For a mobile application such as cellular phone, micro fuel cells should be extremely compact and thin. RHFC can be an alternative solution because RHFC gives higher power density than DMFC and does not need ahydrogen storage vessel In this paper, RHFC using methanol fuel is made as a novel planar design without a PROX. Both reformer and cell are made closely in a same plate to share the heater of reformer with the cell. The PBI membrane is used in the cell. The reason is that high temperature of reformer can cause a performance drop when perfluorosulfonic acid membrane such as Nafion is used such a high temperature operation also guarantees the higher CO tolerance to MEA catalyst. The cell is designed as an air-breathing type which the cathode of the cell is opened to the air. The commercial Cu/ZnO/Al2O3 steam reformer catalyst is packed in reformer channel. The active area of MEA is $11.9cm^2$ and the peak power density was $27.5mW/cm^2$.

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Sulfated $ZrO_2$를 함침한 SPAES 연료전지막의 특성 평가 (Characterization of Sulfonated Ploy(aryl ether sulfone) Membranes Impregnated with Sulfated $ZrO_2$)

  • 김미내;최영우;김태영;이미순;양태현;김창수;남기석
    • 멤브레인
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    • 제21권1호
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    • pp.30-38
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    • 2011
  • 고온 무가습 조건에서 고분자 전해질 막의 수화성 및 수소이온 전도도 향상을 위해 sulfonated poly(aryl ether sulfone) 전해질 고분자에 sulfated $ZrO_2$ ($s-ZrO_2$)를 함침시킨 유-무기 복합막을 제조하였다. X-ray diffraction를 통해 $s-ZrO_2$ 의 구조적 특징과 입자크기를 확인하였으며 추가적으로 FT-IR 분석을 통해, $s-ZrO_2$입자에 술폰산기가 화학적으로 결합되어 있음을 확인 할 수 있었다. 다양한 $s-ZrO_2$ 조성비를 가진 유-무기 복합막의 이점을 확인하기 위해서 이온교환능력, 함수율, 수소이온 전도도를 측정하였다. 실험결과, $s-ZrO_2$의 조성비를 달리한 유-무기 복합막의 수소이온 전도도는, 5 wt% $s-ZrO_2$를 함유한 유-무기 복합막의 경우에서, 상온 수화조건 뿐만 아니라 $100^{\circ}C$ 이상의 무가습 조건에서 매우 높은 수소 이온 전도도를 나타내었다. 특히 $120^{\circ}C$ 무가습 조건에서도 5 wt% $s-ZrO_2$를 함유한 유-무기 복합막이 $0.0018\;S\;cm^{-1}$의 매우 높은 전도도를 나타냄으로써 $100^{\circ}C$ 이상의 고온에서도 높은 수화도를 유지하는 유-무기 복합막의 제조가 가능하였다.

고온형 고분자전해질형 연료전지에서의 사형 유로와 평행 유로 성능비교에 대한 수치해석적 연구 (Numerical Study on Comparison of Serpentine and Parallel Flow Channel in High-temperature Proton Exchange Membrane Fuel Cells)

  • 안성하;오경민;주현철
    • 한국수소및신에너지학회논문집
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    • 제29권1호
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    • pp.41-55
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    • 2018
  • General polymer electrolyte fuel cell (PEMFC) operates at less than $80^{\circ}C$. Therefore liquid phase water resulting from electrochemical reaction accumulates and floods the cell which in turn increases the mass transfer loss. To prevent the flooding, it is common to employ serpentine flow channel, which can efficiently export liquid phase water to the outlet. The major drawback of utilizing serpentine flow channel is the large pressure drop that happens between the inlet and outlet. On the other hand, in the high temperature polymer electrolyte fuel cell (HT-PEMFC), since the operating temperature is 130 to $180^{\circ}C$, the generated water is in the state of gas, so the flooding phenomenon is not taken into consideration. In HT-PEMFCs parallel flow channel with lower pressure drop between the inlet and outlet is employed therefore, in order to circulate hydrogen and air in the cell less pumping power is required. In this study we analyzed HT-PEMFC's different flow channels by parallel computation using previously developed 3-D isothermal model. All the flow channels had an active area of $25cm^2$. Also, we numerically compared the performance of HT-PEMFC parallel flow channel with different manifold area and Rib interval against the original serpentine flow channel. Results of the analysis are shown in the form of three-dimensional contour polarization curves, flow characteristics in the channel, current density distribution in the Membrane, overpotential distribution in the catalyst layer, and hydrogen and oxygen concentration distribution. As a result, the performance of a real area fuel cell was predicted.