• Title/Summary/Keyword: SOFC (Solid Oxide Fuel Cell)

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Characteristics of Cathode material in SOFC (고체 전해질형 연료전지의 산소극 재료에 대한 연구)

  • Park, J.H.;Park, T.G.;Eom, S.W.;Kim, G.Y.;Moon, S.I.;Lim, H.C.;Lee, C.W.
    • Proceedings of the KIEE Conference
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    • 1995.07c
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    • pp.1051-1053
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    • 1995
  • Nowadays perovskite $La_{1-x}Sr_xMnO_3$ is preferred cathode material in Solid Oxide Fuel cell(SOFC). The $La_{1-x}Sr_xMnO_3$ with Sr contents ranging $x=0{\sim}1.0$ were prepared by a citrate method. These powders were characterized by usual means like TG/DTA, X-ray diffraction analysis. The samples used for measuring thermal expansion were prepared as pellets by cold pressing and subsequent sintering in air at $1200^{\circ}C$ for 5 hours. To measure the by-product of $La_{1-x}Sr_xMnO_3$ reacted with 8mol% YSZ, that samples were sintered at $1200^{\circ}C$ for 5 hours.

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Fabrication of Thin Solid Oxide Film Fuel Cells

  • Jee, Young-Seok;Chang, Ik-Whang;Son, Ji-Won;Lee, Jong-Ho;Kang, Sang-Kyun;Cha, Suk-Won
    • Journal of the Korean Ceramic Society
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    • v.47 no.1
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    • pp.82-85
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    • 2010
  • Recently, thin film processes for oxides and metal deposition, such as physical vapor deposition (PVD) and chemical vapor deposition (CVD), have been widely adapted to fabricate solid oxide fuel cells (SOFCs). In this paper, we presented two research area of the use of such techniques. Gadolinium doped ceria (GDC) showed high ionic conductivity and could guarantee operation at low temperature. But the electron conductivity at low oxygen partial pressure and the weak mechanical property have been significant problems. To solve these issues, we coated GDC electrolyte with a nano scale yittria-doped stabilized zirconium (YSZ) layer via atomic layer deposition (ALD). We expected that the thin YSZ layer could have functions of electron blocking and preventing ceria from the reduction atmosphere. Yittria-doped barium zirconium (BYZ) has several orders higher proton conductivity than oxide ion conductor as YSZ and also has relatively high chemical stability. The fabrication processes of BYZ is very sophisticated, especially the synthesis of thin-film BYZ. We discussed the detailed fabrication processes of BYZ as well as the deposition of electrode. This paper discusses possible cell structure and process flow to accommodate such films.

Effect of Co Dopant on the (La, Sr)$MnO_3$ Cathode for Solid Oxide Fuel Cell (고체산화물 연료전지용 (La, Sr)$MnO_3$ 양극에 대한 Co 첨가효과)

  • 김재동;김구대;이기태
    • Journal of the Korean Ceramic Society
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    • v.37 no.6
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    • pp.612-616
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    • 2000
  • The effect of Co dopant on the (La, Sr)MnO3 cathode was investigated. La2Zr2O7 and SrZrO3 were formed as the reaction products between YSZ and LSMC. The reactivity of LSMC with YSZ increased with increasing Co content. However, the cathodic polarization resistance decreased with increasing Co doping. Therefore, doping Co at Mn site in the (La, Sr)MnO3 cathode was effective on controlling the polarization resistance of the cathode. The polarization property of LSMC-YSZ composite(60 wt%: 40 wt%) cathode was better than that of LSMC single cathode.

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Preparation of Yttria Stabilized zirconia Films by the Electrochemical Vapor Deposition (전기화학증착에 의한 이트리아 안정화 지르코니아 박막의 제조)

  • 정지원;박동원;전치훈;최병진;김대룡
    • Journal of the Korean Ceramic Society
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    • v.31 no.5
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    • pp.477-484
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    • 1994
  • The yttria stabilized zirconia(YSZ) thin films for solid oxide fuel cell (SOFC) were fabricated by an electrochemical vapor deposition(EVD) technique using YCl3+ZrCl4+H2O gas system. The YSZ films were deposited under reduced pressure at the temperature of 1000~120$0^{\circ}C$ on the porous alumina substrates. The deposition rate, chemical composition and growth morphology were investigated by SEM, XRD, EDS. The growth rates of the films obeyed a parabolic rate law, representing that the growing process is controlled by an electrochemical transport through the YSZ film. The Y2O3 content of the films was about 10 mol%, equal to the composition of metal chloride reactant gases, approximately. The YSZ films were highly dense, the growing features showed columnar structure and surface morphologies were changed with the EVD conditions.

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Effect of YSZ Particle Size and Sintering Temperature on the Microstructure and Impedance Property of Ni-YSZ Anode for Solid Oxide Fuel Cell (고체산화물 연료전지용 Ni-YSZ 음극의 미세구조와 임피던스특성에 미치는 YSZ 입자크기 및 소결온도의 영향)

  • 김구대;문지웅;이기태;이홍림
    • Journal of the Korean Ceramic Society
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    • v.38 no.5
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    • pp.466-473
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    • 2001
  • Ni-YSZ 음극의 미세구조와 임피던스특성에 미치는 YSZ 입자크기 및 소결온도의 영향을 고찰하였다. 0.3~0.6$\mu\textrm{m}$의 미세한 NiO 분말을 사용할 경우에는 NiO 분말과 크기가 비슷한 미세한 YSZ 분말(TZ8Y, 0.3$\mu\textrm{m}$)을 첨가했을 때 NiO의 입성장을 억제하는 효과가 가장 크고 환원후 Ni의 입자크기를 미세하게 유지할 수 있는 미세구조를 형성하였다. 또한 미세한 YSZ 분말 (TZ8Y, 0.3$\mu\textrm{m}$)과 조대한 YSZ 분말(FYT13.0, 2$\mu\textrm{m}$)의 혼합비를 달리하여 후막을 제조하였을 때에 TZ8Y 분말만 첨가한 조성이 가장 낮은 분극 저항을 나타내었다. 한편 소결온도는 삼상계면의 양과 분극저항에 영향을 주었으며, 140$0^{\circ}C$에서 소결한 시편의 분극저항이 가장 낮은 값을 나타내었다.

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Numerical Analysis on the Flow Distribution in a 1 kWe SOFC Stack of Internal Manifolds According to the Variation of Manifold Sizes (매니폴드 크기에 따른 1 kWe급 내부 매니폴드형 고체산화물 연료전지 스택 유량 분배에 관한 수치 해석)

  • KIM, YOUNG JIN;YIN, HAOYUAN;KIM, HYEON JIN;YUN, KYONG SIK;YU, JI HAENG
    • Journal of Hydrogen and New Energy
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    • v.33 no.1
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    • pp.47-54
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    • 2022
  • In this study, we performed numerical analysis for 1 kWe SOFC stack of internal manifold types according to the different manifold sizes to verify the influence of the flow uniformity into each cell. To simulate the flow phenomena in the stack, the continuity and momentum conservation equations including the standard k-𝜺 turbulent model for the steady-state conditions were applied. From the calculation results, we verified that the pressure drop from inlet pipes to outlet pipes decreased to a log scale as the manifold size increased in the internal manifold types. Also, we found that the flow uniformity increased on an exponential scale as the manifold size increased. In addition, the calculation results showed that the flow uniformity gradually improved as the fuel and oxygen utilization increased.

Electrical Properties of YSZ Electrolyte Film Prepared by Electron Beam PVD (EB-PVD법에 의해 제조된 YSZ 전해질의 전기적 특성)

  • Shin, Tae-Ho;Yu, Ji-Haeng;Lee, Shiwoo;Han, In-Sub;Woo, Sang-Kuk;Hyun, Sang-Hoon
    • Journal of the Korean Ceramic Society
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    • v.42 no.2 s.273
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    • pp.117-122
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    • 2005
  • Electron Beam Physical Vapor Deposition (EB-PVD) is a typical technology for thermal barrier coating with Yttria Stabilized Zirconia (YSZ) on aero gas turbine engine. In this study EB-PVD method was used to fabricate dense YSZ film on NiO-YSZ as a electrolyte of Solid Oxide Fuel Cell (SOFC). Dense YSZ films of -10 $\mu$m thickness showed nano surface structure depending on deposition temperature. Electrical conductivities of YSZ film and electric power density of the single cell were evaluated after screen- printing $LaSrCoO_3$ as a cathode.

Interfacial Reaction between seal and metal interconnect and effets of protecting layer in planar type SOFC stack (평판형 SOFC 스택의 밀봉재와 금속 분리판의 계면반응 및 보호층 효과)

  • Moon, J.W.;Kim, Y.W.;Seong, B.K.;Kim, D.H.;Jun, J.H.
    • 한국신재생에너지학회:학술대회논문집
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    • 2010.11a
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    • pp.72.2-72.2
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    • 2010
  • 평판형 고체산화물 연료전지 스택의 고온 밀봉 구조에 대하여 설명하고 스택 운전 후 사후 분석을 통하여 밀봉재와 금속 분리판의 계면반응에 대하여 고찰하였다. 대표적인 고온 밀봉재인 Barium-Silicate 계 결정화 유리와 Fe-Cr 계 금속 분리판은 스택의 작동온도인 $700{\sim}850^{\circ}C$ 에서 고온 반응을 통하여 계면에 반응생성물을 형성하는 것이 확인되었다. 이러한 계면반응은 장기 운전시 SOFC 스택 성능 저하의 원인이 되고, 열 싸이클(작동온도${\leftrightarrow}$상온)을 가하면 계면반응 생성물이 delamination 되어 밀봉구조가 파괴되어 수명을 단축시키게 된다. 계면반응은 Fe-Cr 계 금속 분리판의 산화물인 Cr 산화물, Fe 산화물이 밀봉유리 소재와 반응을 일으키는 것이 주요 원인으로 판명되었다. SOFC 스택에서 열 싸이클시 계면반응에 의하여 기밀도가 감소하는 현상이 확인되었으며, 밀봉 구조의 어느 부분에서 계면반응이 진행되는지 관찰하였다. 이러한 계면반응을 막기 위해서는 금속 분리판과 밀봉유리 사이에 계면반응을 억제하는 보호층을 형성하는 방법이 효과적이다. 본 연구에서는 보호층으로서 밀봉유리 및 Fe-Cr 계 금속 분리판과의 계면반응성이 낮고 열팽창 계수가 비슷한 Yttria Stabilized Zirconia 층을 APS(Atmospheric Plasma Spray) 공정을 이용하여 형성하였다. 밀봉유리/YSZ 보호층/금속분리판은 gas-tight 한 밀봉 구조를 형성하였으며, YSZ 보호층은 밀봉유리와 Fe-Cr 계 금속 분리판 소재와 계면반응을 효과적으로 억제하는 것이 확인되었다.

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Electrochemical Properties of La4Ni3O10-GDC Composite Cathode by Facile Sol-gel Method for IT-SOFCs

  • Choi, Sihyuk;Kim, Guntae
    • Journal of the Korean Ceramic Society
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    • v.51 no.4
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    • pp.265-270
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    • 2014
  • Among the Ruddlesden-Popper series, $La_4Ni_3O_{10}$ has received widespread attention as a promising cathode material by reason of its favorable properties for realizing high performance of intermediate temperature solid oxide fuel cells (IT-SOFCs). The $La_4Ni_3O_{10}$ cathode is prepared using the facile sol-gel method by employing tri-blockcopolymer (F127) to obtain a single phase in a short sintering time. There are no reactions between the $La_4Ni_3O_{10}$ cathode and the $Ce_{0.9}Gd_{0.1}O_{2-\delta}$ (GDC) electrolyte upon sintering at $1000^{\circ}C$, indicating that the $La_4Ni_3O_{10}$ cathode has good chemical compatibility with the GDC electrolyte. The maximum electrical conductivity of $La_4Ni_3O_{10}$ reaches approximately 240 S $cm^{-1}$ at $100^{\circ}C$ and gradually decreases with increasing temperaturein air atmosphere. The area specific resistance value of $La_4Ni_3O_{10}$ composite with 40 wt% GDC is $0.435{\Omega}cm^2$ at $700^{\circ}C$. These data allow us to propose that the $La_4Ni_3O_{10}$-GDC composite cathode is a good candidate for IT-SOFC applications.

Characteristics of Sr0.92Y0.08Ti1-xVxO3-δ (x = 0.01, 0.04, 0.07, 0.12) Anode for Using H2S Containing Fuel in Solid Oxide Fuel Cells (H2S를 포함하는 연료를 사용하기 위한 고체산화물 연료전지용 Sr0.92Y0.08Ti1-xVxO3-δ 연료극 특성)

  • Jang, Geun Young;Kim, Jun Ho;Mo, Su In;Park, Gwang Seon;Yun, Jeong Woo
    • Korean Chemical Engineering Research
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    • v.59 no.4
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    • pp.557-564
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    • 2021
  • Sr0.92Y0.08Ti1-xVxO3-δ (SYTV) with perovskite structure was investigated as an alternative anode to utilize H2S containing fuels in solid oxide fuel cells. To improve the electrochemical performance of Sr0.92Y0.08TiO3-δ (SYT), vanadium(V) was substituted to titanium(Ti) at the B-site of the SYT perovskites. The SYTV synthesized by the Pechini method was chemically compatible with the YSZ electrolyte without additional by-products formation under the cell fabricating conditions. As increasing V substitution amounts, the oxygen vacancies increased, resulting to increasing ionic conductivity of the anode. The cell performance in pure H2 at 850 ℃ is 19.30 mW/cm2 and 34.87 mW/cm2 for a 1 mol.% and 7 mol.% of V substituted anodes, respectively. The cell performance using H2 fuel containing 1000 ppm of H2S at 850 ℃ was 23.37 mW/cm2 and 73.11 mW/cm2 for a 1 mol.% and 7 mol.% of V substituted anodes, respectively.