Suspension HVOF Spraying of Reduced Temperature Solid Oxide Fuel Cell Electrolytes

被引:31
|
作者
Oberste Berghaus, Jorg [1 ]
Legoux, J.-G. [2 ]
Moreau, C. [2 ]
Hui, R. [3 ]
Deces-Petit, C. [3 ]
Qu, W. [3 ]
Yick, S. [3 ]
Wang, Z. [3 ]
Maric, R. [3 ]
Ghosh, D. [3 ]
机构
[1] Bekaert Adv Coatings NV, B-9800 Deinze, Belgium
[2] NRC, Inst Ind Mat, Boucherville, PQ, Canada
[3] NRC, Inst Fuel Cell Innovat, Vancouver, BC, Canada
关键词
HVOF suspension spraying; reduced temperature solid oxide fuel cells; suspension thermal spraying;
D O I
10.1007/s11666-008-9249-2
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Metal-supported solid oxide fuel cells (SOFCs) composed of a Ce(0.8)Sm(0.2)O(22)d (SDC) electrolyte layer and Ni-Ce(0.8)Sm(0.2)O(22)d (Ni-SDC) cermet anode were fabricated by suspension thermal spraying on Hastelloy X substrates. The cathode, a Sm(0.5)Sr(0.5)CoO(3) (SSCo)-SDC composite, was screen-printed and fired in situ. The anode was produced by suspension plasma spraying (SPS) using an axial injection plasma torch. The SDC electrolyte was produced by high-velocity oxy-fuel (HVOF) spraying of liquid suspension feedstock, using propylene fuel (DJ-2700). The emerging technology of HVOF suspension spraying was explored here to produce thin and low-porosity electrolytes in an effort to develop a cost-effective and scalable fabrication technique for high-performance, metal-supported SOFCs. In-flight particle temperature and velocity were measured for a number of different gun operating conditions and standoff distances and related to the resulting microstructures. At optimized conditions, this approach was found to limit material decomposition, enhance deposition efficiency, and reduce defect density in the resulting coating, as compared to previous results reported with SPS. Produced button cells showed highly promising performance with a maximum power density (MPD) of 0.5 W cm(-2) at 600 degrees C and above 0.9 W cm(-2) at 700 degrees C, with humidified hydrogen as fuel and air as oxidant. The potential of this deposition technique to scale-up the substrate size to 50 X 50 mm was demonstrated.
引用
收藏
页码:700 / 707
页数:8
相关论文
共 50 条
  • [21] Application of plasma spraying to solid oxide fuel cell production
    Notomi, A.
    Hisatome, N.
    Pure and Applied Chemistry, 68 (05):
  • [22] Performance of tubular Solid Oxide Fuel Cell at reduced temperature and cathode porosity
    Sleiti, Ahmad K.
    JOURNAL OF POWER SOURCES, 2010, 195 (17) : 5719 - 5725
  • [23] Development of reduced-temperature solid oxide fuel cell power systems
    Minh, N
    Anumakonda, A
    Chung, B
    Doshi, R
    Ferrall, J
    Guan, J
    Lear, G
    Montgomery, K
    Ong, E
    Yamanis, J
    SOLID OXIDE FUEL CELLS (SOFC VI), 1999, 99 (19): : 68 - 74
  • [24] PEROVSKITE SOLID ELECTROLYTES FOR INTERMEDIATE TEMPERATURE SOLID OXIDE FUEL-CELLS
    COOK, RL
    MACDUFF, RC
    SAMMELLS, AF
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1990, 137 (10) : 3309 - 3310
  • [25] Improved Solid Oxide Fuel Cell Performance with Nanostructured Electrolytes
    Chao, Cheng-Chieh
    Hsu, Ching-Mei
    Cui, Yi
    Prinz, Fritz B.
    ACS NANO, 2011, 5 (07) : 5692 - 5696
  • [26] Structural investigations on electrodes - electrolytes systems for intermediate temperature solid oxide fuel cell applications
    Duta, L.
    Dorcioman, G.
    Popescu, A. C.
    Mihailescu, I. N.
    Nita, P.
    Mercioniu, I.
    Birsan, A.
    Bibicu, I.
    Constantinescu, S.
    Popescu-Pogrion, N.
    OPTOELECTRONICS AND ADVANCED MATERIALS-RAPID COMMUNICATIONS, 2012, 6 (11-12): : 1073 - 1080
  • [27] Ion irradiation effects in solid oxide fuel cell electrolytes
    Cheng, J
    Pornprasertsuk, R
    Saito, Y
    Prinz, FB
    MATERIALS AND TECHNOLOGY FOR HYDROGEN ECONOMY, 2004, 801 : 225 - 229
  • [28] Evaluation of apatite silicates as solid oxide fuel cell electrolytes
    Marrero-Lopez, D.
    Martin-Sedeno, M. C.
    Pena-Martinez, J.
    Ruiz-Morales, J. C.
    Nunez, P.
    Aranda, M. A. G.
    Ramos-Barrado, J. R.
    JOURNAL OF POWER SOURCES, 2010, 195 (09) : 2496 - 2506
  • [29] High-Velocity Oxy-Fuel (HVOF) Suspension Spraying of Mullite Coatings
    Oberste Berghaus, J.
    Marple, B. R.
    JOURNAL OF THERMAL SPRAY TECHNOLOGY, 2008, 17 (5-6) : 671 - 678
  • [30] High-Velocity Oxy-Fuel (HVOF) Suspension Spraying of Mullite Coatings
    J. Oberste Berghaus
    B.R. Marple
    Journal of Thermal Spray Technology, 2008, 17 : 671 - 678