• 제목/요약/키워드: solid-oxide fuel cell

검색결과 511건 처리시간 0.03초

Gd-doped $CeO_2$ 와 Sr-doped $LaMnO_3$ 분말의 합성 및 그 계면에서의 상 안정성 연구 (A Study on the Synthesis of Gd-doped $CeO_2$ and Sr-doped $LaMnO_3$ Powders and Phase Stability in Their Interface)

  • 정승훈;김남진;이덕열
    • 한국세라믹학회지
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    • 제34권6호
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    • pp.652-658
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    • 1997
  • The phase stability in the interface of Sr-doped LaMnO3(LSM)/Gd-doped CeO2(CGO) was examined in this study in order to check the feasibility of using LSM as the cathode material in a low-temperature SOFC(solid oxide fuel cell) using CGO as the electrolyte. For the purpose, CGO powders of Ce0.82Gd0.18O0.91 and two LSM powders having different compositions, La0.9Sr0.1MnO3(LSM10) and La0.5Sr0.5MnO3(LSM50), were synthesized using Pechini method. Then, specimens having the LSM/CGO interface were prepared, heat-treated at 130$0^{\circ}C$ for up to 3 days, and analyzed by XRD and STEM/EDX. Face-centered cubic CGO powders of less than 10 nm size were obtained by calcination of polymeric precursor formed in the process at 45$0^{\circ}C$. Higher calcination temperature of $700^{\circ}C$ was necessary for monoclinic LSM10 and cubic LSM50 powders. LSM powders were coarser than CGO and observed to be in the range of 50~100 nm. No trace of LSM-CGO interaction product was found in the XRD pattern. Also it was known from the concentration profile in the vicinity of the interface that interdiffusion was occurred over only a small penetration depth of ~100 nm order.

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Morphologies of Brazed NiO-YSZ/316 Stainless Steel Using B-Ni2 Brazing Filler Alloy in a Solid Oxide Fuel Cell System

  • Lee, Sung-Kyu;Kang, Kyoung-Hoon;Hong, Hyun-Seon;Woo, Sang-Kook
    • 한국분말재료학회지
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    • 제18권5호
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    • pp.430-436
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    • 2011
  • Joining of NiO-YSZ to 316 stainless steel was carried out with B-Ni2 brazing alloy (3 wt% Fe, 4.5 wt% Si, 3.2 wt% B, 7 wt% Cr, Ni-balance, m.p. 971-$999^{\circ}C$) to seal the NiO-YSZ anode/316 stainless steel interconnect structure in a SOFC. In the present research, interfacial (chemical) reactions during brazing at the NiO-YSZ/316 stainless steel interconnect were enhanced by the two processing methods, a) addition of an electroless nickel plate to NiO-YSZ as a coating or b) deposition of titanium layer onto NiO-YSZ by magnetron plasma sputtering method, with process variables and procedures optimized during the pre-processing. Brazing was performed in a cold-wall vacuum furnace at $1080^{\circ}C$. Post-brazing interfacial morphologies between NiO-YSZ and 316 stainless steel were examined by SEM and EDS methods. The results indicate that B-Ni2 brazing filler alloy was fused fully during brazing and continuous interfacial layer formation depended on the method of pre-coating NiO-YSZ. The inter-diffusion of elements was promoted by titanium-deposition: the diffusion reaction thickness of the interfacial area was reduced to less than 5 ${\mu}m$ compared to 100 ${\mu}m$ for electroless nickel-deposited NiO-YSZ cermet.

SOFC의 세라믹 음극물질로서 Y0.08Sr0.92Fe0.3Ti0.7O3의 합성 및 물성 평가 (Synthesis and Properties of Y0.08Sr0.92Fe0.3Ti0.7O3 as Ceramic Anode for SOFC)

  • Lee, Tae-Hee;Jeon, Sang-Yun;Im, Ha-Ni;Song, Sung-Ju
    • KEPCO Journal on Electric Power and Energy
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    • 제7권1호
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    • pp.161-165
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    • 2021
  • In general, SOFCs mainly use Ni-YSZ cermet, a mixture of Ni and YSZ, as an anode material, which is stable in a high-temperature reducing atmosphere. However, when SOFCs have operated at a high temperature for a long time, the structural change of Ni occurs and it results in the problem of reducing durability and efficiency. Accordingly, a development of a new anode material that can replace existing nickel and exhibits similar performance is in progress. In this study, SrTiO3, which is a perovskite-based mixed conductor and one of the candidate materials, was used. In order to increase the electrical conduction properties, Y0.08Sr0.92Fe0.3Ti0.7O3, doped with 0.08 mol of Y3+ in Sr-site and 0.03 mol of transition metal Fe3+ in Ti-site, was synthesized and its chemical diffusion coefficient and reaction constant were measured. Its electrical conductivity changes were also observed while changing the oxygen partial pressure at a constant temperature. The performance as a candidate electrode material was verified by predicting the defect area through the electrical conductivity pattern according to the oxygen partial pressure.

국내 전력 발전 및 산업 부문에서 탄소 포집 및 저장(CCS) 기술을 이용한 이산화탄소 배출 저감 (Reduction of Carbon-Dioxide Emission Applying Carbon Capture and Storage(CCS) Technology to Power Generation and Industry Sectors in Korea)

  • 위정호;김정인;송인승;송보윤;최경식
    • 대한환경공학회지
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    • 제30권9호
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    • pp.961-972
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    • 2008
  • 2004년 기준, 온실가스(GHG; Greenhouse Gas) 총 배출량 약 5억9,060만톤(t)$CO_2$로 배출량 세계 10위권인 우리나라는 국제 환경의 변화를 볼 때 향후 반드시 GHG를 감축해야한다. 2004년 국내 에너지 부문 중, 전력 발전 및 산업 부분에서 배출된 이산화탄소(CO$_2$)량은 총 2억9,685만t으로 우리나라 GHG 전체 발생량의 53.3%를 차지하여 이 두 분야에서 CO$_2$ 배출을 감축시키는 것이 가장 시급하고 중요한 문제이다. 또한 이 두 분야는 산업의 특성상 CCS(Carbon Capture and Storage) 기술을 적용하여 효율적으로 CO$_2$를 저감할 수 있는 가장 잠재력이 높은 분야이다. 두 분야에서 효율적으로 적용될 수 있는 CCS 기술로 단기적으로는 amine을 이용한 화합흡수법이, 중, 장기적으로는 ATR(Autothermal reforming), 또는 MSR-H2(Methane steam reformer with hydrogen separation membrane reactor)가 장착된 연소 전 기술과, SOFC+GT(Solid oxide fuel cell-Gas turbine) 같은 순산소 연소 기술이 가장 유리 할 것으로 예상된다. 이와 같은 최신 연소 전 및 순산소 연소 기술을 이용하면 향후 CO$_2$ 포집 비용을 $US 8.5-43.5/tCO$_2$로 줄일 수 있으며 이를 이용하여 전력 발전 및 산업 부분에서 발생하는 CO$_2$의 10%만을 감축하더라도 약 3,000만t의 CO$_2$를 저감할 수 있겠다.

고체산화물 연료전지용 La0.7Sr0.3Ga0.6Fe0.4O3-δ계의 메탄부분산화반응 (Partial Oxidation of CH4 Using {0.7}Sr0.3Ga0.6Fe0.4O3-δ for Soild Oxide Fuel Cell)

  • 이승영;이기성;이시우;김종원;우상국
    • 전기화학회지
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    • 제6권1호
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    • pp.59-64
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    • 2003
  • 고상 반응법을 이용하여 $La_{0.7}Sr_{0.3}Ga_{0.6}Fe_{0.4}O_{3-\delta}$ 분말을 합성하고 소결하여 혼합전도성 분리막을 제조하였다. 제조된 분리막들은 페롭스카이트 단일상 결정구조를 나타내었으며, $95\%$, 이상의 상대밀도를 나타내었다. 산소이온 변환 능력을 향상시키기 위해 $La_{0.7}Sr_{0.3}Ga_{0.6}Fe_{0.4}O_{3-\delta}$의 양 표면에 $La_{0.6}Sr_{0.4}CoO_{3-\delta}$ paste를 스크린 프린팅 방법으로 코팅한 결과, 코팅되지 않은 분리막에 비해 산소투과 유속이 크게 증가하여 $950^{\circ}C,\; {\Delta}P_{o_2}=0.21 atm$에서 약 $0.5ml/min{\cdot}cm^2$의 값을 나타내었다. 이러한 산소투과 유속은 표면 코팅층이 다공성일수록, $La_{0.7}Sr_{0.3}Ga_{0.6}Fe_{0.4}O_{3-\delta}$의 결정립 크기가 증가할수록 증가하는 경향을 나타내었다. 제조된 디스크 형상의 소결체를 이용하여 $950^{\circ}C$에서 메탄부분산화반응을 행한 결과 $40\%$ 이상의 메탄전환율과 합성가스의 수율을 얻을 수 있었으며, CO의 선택도는 $100\%$를 나타내었다 또한, $950^{\circ}C$의 메탄분위기에서 600시간의 장기부분산화반응을 통해 상의 안정성을 확인하였다.

(Ba0.5Sr0.5)0.99Co0.2Fe0.8O3-δ(BSCF)의 합성 및 BSCF/GDC(Buffer)/ScSZ의 전기화학적 특성 (Synthesis of (Ba0.5Sr0.5)0.99Co0.2Fe0.8O3-δ (BSCF) and the Electrochemical Performance of the BSCF/GDC(Buffer)/ScSZ)

  • 임용호;황해진;문지웅;박선민;최병현;이미재
    • 한국세라믹학회지
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    • 제43권6호
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    • pp.369-375
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    • 2006
  • [ $(Ba_{0.5}Sr_{0.5})_{0.99}Co_{x}Fe_{1-x}O_{3-{\delta}}$ ] [x=0.8, 0.2](BSCF) powders were synthesized by a Glycine-Nitrate Process (GNP) and the electrochemical performance of the BSCF cathode on a scandia stabilized zirconia, $[(Sc_{2}O_3)_{0.11}(ZrO_2)_{0.89}]-1Al_{2}O_3$ was investigated. In order to prevent unfavorable solid-state reactions between the cathode and zirconia electrolyte, a GDC ($Gd_{0.1}Ce_{0.9}O_{2-{delta}}$) buffer layer was applied on ScSZ. The BSCF (x = 0.8) cathode formed on GDC(Buffer)/ScSZ(Disk) showed poor electrochemical property, because the BSCF cathode layer peeled off after the heat-treatment. On the other hand, there were no delamination or peel off between the BSCF and GDC buffer layer, and the BSCF (x = 0.2) cathode exhibited fairly good electrochemical performances. It was considered that the observed phenomenon was associated with the thermal expansion mismatch between the cathode and buffer layer. The ohmic resistance of the double layer cathode was slightly lower than that of the single layer BSCF cathode due to the incorporation of platinum particle into the BSCF second layer.

프로톤 전도성 SrCe0.95Gd0.05O3-α-Ce0.9Gd0.1O2-β 복합체 멤브레인의 수소투과 특성 (Hydrogen Permeation of SrCe0.95Gd0.05O3-α-Ce0.9Gd0.1O2-β Proton-Conducting Ceramic Membranes)

  • 김환수;유지행;신민재
    • 한국수소및신에너지학회논문집
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    • 제22권2호
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    • pp.161-167
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    • 2011
  • Proton conductors have attracted considerable attention for solid oxide fuel cell (SOFC), hydrogen pump, gas sensor, and membrane separators. Doped $SrCeO_3$ exhibits appreciable proton conductivity in hydrogen-containing atmosphere at high temperature. However commercial realization has been hampered due to the reactivity of $SrCeO_3$ with $CO_2$. The chemical stability and proton conductivity are dependent on dopant type. The purpose of this work is to investigate chemical stability of $SrCe_{0.95}Gd_{0.05}O_{3-\alpha}-Ce_{0.9}Gd_{0.1}O_{2-\beta}$ composites in $CO_2$ and $H_2$ gases. Thermogravimetric analysis (TGA) was performed in gaseous $CO_2$ and electrical conductivity of the composites were also measured between 500 and $900^{\circ}C$ in air and $H_2$ atmosphere. $SrCe_{0.95}Gd_{0.05}O_{3-\alpha}-Ce_{0.9}Gd_{0.1}O_{2-\beta}$ composite membranes showed good chemical stability of in $CO_2$ atmosphere and high conductivity at hydrogen condition. The hydrogen permeation of $SrCe_{0.95}Gd_{0.05}O_{3-\alpha}-Ce_{0.9}Gd_{0.1}O_{2-\beta}$ composite membranes was investigated as a function of volumetric content of $SrCe_{0.95}Gd_{0.05}O_{3-\alpha}$. The $SrCe_{0.95}Gd_{0.05}O_{3-\alpha}-Ce_{0.9}Gd_{0.1}O_{2-\beta}$(6:4) membrane with a thickness of 1.0 mm showed the highest hydrogen permeability with the flux reaching of 0.12 $ml/min{\cdot}cm^2$ at $800^{\circ}C$ in 100%$H_2/N_2$ as feed gas.

중저온형 SOFC를 위한 PSCF3737(Pr0.3Sr0.7Co0.3Fe0.7O3) 공기극 물질의 특성 및 최적화께 관한 연구 (Study of Optimization and Characteristics of PSCF3737(Pr0.3Sr0.7Co0.3Fe0.7O3) for IT-SOFC)

  • 박광진;이창보;김정현;백승욱;배중면
    • 전기화학회지
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    • 제10권3호
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    • pp.207-212
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    • 2007
  • IT-SOFC(중저온형 고체산화물 연료전지)의 공기극으로 적합한 PSCF3737의 물질 특성을 파악하고 그 특성을 이용하여 낮은 ASR을 갖기 위한 소결 온도 및 두께 최적화에 관한 연구를 수행하였다. 분말 사이즈 및 상형성을 고려할 때 GNP 방법으로 합성된 분말의 하소 온도는 $1000^{\circ}C$가 적합함을 알 수 있었다. 산소 분압에 따른 ASR 변화 실험을 통하여 PSCF3737의 저항 성분을 전극 자체의 특성과 관련된 중간 주파수 대역(${\sim}10^2Hz$)과 산소의 확산에 영향 받는 낮은 주파수 대역(${\sim}10^{-1}Hz$) 2가지로 분류할 수 있었다. 공기극의 특성 실험을 통하여 소결 온도는 $1200^{\circ}C$가 가장 적합하며 공기극의 두께는 2번 스크린 프린팅 된 $27\;{\mu}m$가 가장 적합함을 알 수 있었다. 이를 토대로 EIS 측정을 하면 $700^{\circ}C$에서 $0.115\;{\Omega}cm^2$의 낮은 ASR값을 얻을 수 있었다.

은(Ag) 나노입자가 코팅된 페롭스카이트 La0.7Sr0.3Co0.3Fe0.7O3-δ의 Mössbauer 분광연구 (Mössbauer Study of Silver Nanoparticle Coated Perovskites La0.7Sr0.3Co0.3Fe0.7O3-δ (LSCF))

  • 엄영랑;이창규;김철성
    • 한국자기학회지
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    • 제22권2호
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    • pp.37-41
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    • 2012
  • DC 스퍼터를 이용하여 은(Ag) 나노입자를 입도 0.2~3 ${\mu}m$ 크기를 갖는 페롭스카이트(Perovskite) $La_{0.7}Sr_{0.3}Co_{0.3}Fe_{0.7}O_{3-{\delta}}$(LSCF) 입자 표면에 코팅하여 복합재를 제조하였다. 제조된 LSCF/Ag 복합재에서 Ag 나노입자는 수 나노입자 크기로 형성되었으며 Ar가스 분위기에서 $800^{\circ}C$ 열처리 후에도 Ag입자가 응집되는 현상이 없어 안정적으로 증착되었음을 확인하였다. LSCF 표면에 Ag나노입자 코팅양이 2.11 wt.%까지 증가함에 따라 Fourier Transform Infrared Spectroscopy(FT-IR) 분광기의 파수가 크게 변하여 강한 결합이 형성되어 있으며, Ag 코팅 전후 결정 구조의 변화는 없으나 M$\ddot{o}$ssbauer 분광 분석으로 확인한 결과 $Fe^{4+}$ 이온이 감소하면서 $Fe^{3+}$ 이온이 증가하여 LSCF의 전자 가에 변화가 생김을 확인 할 수 있었다.

La0.6Sr0.4Co0.2Fe0.8O3-δ 공기극과 Sc이 도핑된 지르코니아 전해질 사이에 삽입한 Gd0.1Ce0.9O2-δ 중간층이 고체산화물 연료전지의 전기화학적 성능에 미치는 영향 (Influence of Gd0.1Ce0.9O2-δ Interlayer between La0.6Sr0.4Co0.2Fe0.8O3-δ Cathode and Sc-doped Zirconia Electrolyte on the Electrochemical Performance of Solid Oxide Fuel Cells)

  • 임진혁;정화영;정훈기;지호일;이종호
    • 세라미스트
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    • 제21권4호
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    • pp.378-387
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    • 2018
  • The optimal fabrication conditions for $Gd_{0.1}Ce_{0.9}O_{2-{\delta}}$(GDC) buffer layer and $La_{0.6}Sr_{0.4}Co_{0.2}Fe_{0.8}O_{3-{\delta}}$ (LSCF) cathode on 1mol% $CeO_2-10mol%\;Sc_2O_3$ stabilized $ZrO_2$ (CeScSZ) electrolyte were investigated for application of IT-SOFCs. GDC buffer layer was used in order to prevent undesired chemical reactions between LSCF and CeScSZ. These experiments were carried out with $5{\times}5cm^2$ anode supported unit cells to investigate the tendencies of electrochemical performance, Microstructure development and interface reaction between LSCF/GDC/CeScSZ along with the variations of GDC buffer layer thickness, sintering temperatures of GDC and LSCF were checked, respectively. Electrochemical performance was analyzed by DC current-voltage measurement and AC impedance spectroscopy. Microstructure and interface reaction were investigated by scanning electron microscopy (SEM) and energy dispersive spectroscopy (EDS). Although the interfacial reaction between these materials could not be perfectly inhibited, We found that the cell, in which $6{\mu}m$ GDC interlayer sintered at $1200^{\circ}C$ and LSCF sintered at $1000^{\circ}C$ were applied, showed good interfacial adhesions and effective suppression of Sr, thereby resulting in fairly good performance with power density of $0.71W/cm^2$ at $800^{\circ}C$ and 0.7V.