多孔型流路を有する固体高分子形燃料電池の性能特性と内部現象解析

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Published in日本機械学会論文集B編 Vol. 78; no. 789; pp. 1151 - 1159
Main Authors 近久, 武美, 田部, 豊, 那須, 拓哉, 森岡, 怜史
Format Journal Article
LanguageJapanese
Published 一般社団法人 日本機械学会 2012
Online AccessGet full text
ISSN1884-8346
DOI10.1299/kikaib.78.1151

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Author 那須, 拓哉
田部, 豊
森岡, 怜史
近久, 武美
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  organization: 北海道大学大学院工学研究院
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  fullname: 那須, 拓哉
  organization: 北海道大学大学院工学院
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  fullname: 森岡, 怜史
  organization: 北海道大学大学院工学研究科
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Copyright 2012 一般社団法人 日本機械学会
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References (10) Kumar, A., and Reddy, R.G., “Materials and design development for bipolar/end plates in fuel cells”, Journal of Power Sources, Vol. 129 (2004), pp. 62-67.
(8) Chikahisa, T., Tabe, Y., Kikuta, K., Nohara, N., and Shinohara, H., “Measurement of Water Production Phenomena, Temperature, and current Density Distributions in a Polymer Electrolyte Fuel Cell”, Proceedings of the 4th International Conference on Fuel Cell Science, Engineering and Technology, (2006), [1/1 (CD-ROM) 97016], pp. 1-6.
(1) Wang, C.-Y., “Fundamental Models for Fuel Cell Engineering”, Chemical Reviews, Vol. 104, No. 10 (2004), pp. 4727-4766.
(4) Noponen, M., Ihonen, J., Lundblad, A., and Lindbergh, G., “Current distribution measurement in a PEFC with net flow geometry”, Journal of Applied Electrochemistry, Vol. 34 (2004), pp. 255-262.
(11) Tabe, Y., Lee, Y., Chikahisa, T., and Kozakai, M., “Numerical simulation of liquid water and gas flow in a channel and a simplified GDL model of polymer electrolyte membrane fuel cells using the lattice Boltzmann method”, Journal of Power Sources, Vol. 193 (2009), pp. 24-31.
(6) Tüber, K., Pócza, D., and Hebling, C., “Visualization of water buildup in the cathode of transparent PEM fuel cell”, Journal of Power Sources, Vol. 124 (2003), pp. 403-414.
(9) Tabe, Y., Kikuta, K., Chikahisa, T., and Kozakai, M., “Basic evaluation of separator type specific phenomena of polymer electrolyte membrane fuel cell by the measurement of water condensation characteristics and current density distribution”, Journal of Power Sources, Vol. 193 (2009), pp. 416-424.
(2) Yamada, H., Hatanaka, T., Murata, H., and Morimoto, Y., “Measurement of Flooding in Gas Diffusion Layers of Polymer Electrolyte Fuel Cells with Conventional Flow Field”, Journal of The Electrochemical Society, Vol. 153, No. 9 (2006), pp. A1748-A1754.
(5) Liu, Z., Mao, Z., Wu, B., Wang, L., and Schmidt, V.M., “Current density distribution in PEFC”, Journal of Power Sources, Vol. 141 (2005), pp. 205-210.
(7) Zhang, F.Y., Yang, X.G., and Wang, C.-Y., “Liquid Water Removal from a Polymer Electrolyte Fuel Cell”, Journal of The Electrochemical Society, Vol. 153, No. 2 (2006), pp. A225-A232.
(3) Hogarth, W.H.J., Steiner, J., Benziger, J.B., and Hakenjos, A., “Spatially-resolved current and impedance analysis of a stirred tank reactor and serpentine fuel cell flow-field at low relative humidiry”, Journal of Power Sources, Vol. 164 (2007), pp. 464-471.
References_xml – reference: (2) Yamada, H., Hatanaka, T., Murata, H., and Morimoto, Y., “Measurement of Flooding in Gas Diffusion Layers of Polymer Electrolyte Fuel Cells with Conventional Flow Field”, Journal of The Electrochemical Society, Vol. 153, No. 9 (2006), pp. A1748-A1754.
– reference: (5) Liu, Z., Mao, Z., Wu, B., Wang, L., and Schmidt, V.M., “Current density distribution in PEFC”, Journal of Power Sources, Vol. 141 (2005), pp. 205-210.
– reference: (11) Tabe, Y., Lee, Y., Chikahisa, T., and Kozakai, M., “Numerical simulation of liquid water and gas flow in a channel and a simplified GDL model of polymer electrolyte membrane fuel cells using the lattice Boltzmann method”, Journal of Power Sources, Vol. 193 (2009), pp. 24-31.
– reference: (9) Tabe, Y., Kikuta, K., Chikahisa, T., and Kozakai, M., “Basic evaluation of separator type specific phenomena of polymer electrolyte membrane fuel cell by the measurement of water condensation characteristics and current density distribution”, Journal of Power Sources, Vol. 193 (2009), pp. 416-424.
– reference: (4) Noponen, M., Ihonen, J., Lundblad, A., and Lindbergh, G., “Current distribution measurement in a PEFC with net flow geometry”, Journal of Applied Electrochemistry, Vol. 34 (2004), pp. 255-262.
– reference: (1) Wang, C.-Y., “Fundamental Models for Fuel Cell Engineering”, Chemical Reviews, Vol. 104, No. 10 (2004), pp. 4727-4766.
– reference: (6) Tüber, K., Pócza, D., and Hebling, C., “Visualization of water buildup in the cathode of transparent PEM fuel cell”, Journal of Power Sources, Vol. 124 (2003), pp. 403-414.
– reference: (3) Hogarth, W.H.J., Steiner, J., Benziger, J.B., and Hakenjos, A., “Spatially-resolved current and impedance analysis of a stirred tank reactor and serpentine fuel cell flow-field at low relative humidiry”, Journal of Power Sources, Vol. 164 (2007), pp. 464-471.
– reference: (7) Zhang, F.Y., Yang, X.G., and Wang, C.-Y., “Liquid Water Removal from a Polymer Electrolyte Fuel Cell”, Journal of The Electrochemical Society, Vol. 153, No. 2 (2006), pp. A225-A232.
– reference: (8) Chikahisa, T., Tabe, Y., Kikuta, K., Nohara, N., and Shinohara, H., “Measurement of Water Production Phenomena, Temperature, and current Density Distributions in a Polymer Electrolyte Fuel Cell”, Proceedings of the 4th International Conference on Fuel Cell Science, Engineering and Technology, (2006), [1/1 (CD-ROM) 97016], pp. 1-6.
– reference: (10) Kumar, A., and Reddy, R.G., “Materials and design development for bipolar/end plates in fuel cells”, Journal of Power Sources, Vol. 129 (2004), pp. 62-67.
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Title 多孔型流路を有する固体高分子形燃料電池の性能特性と内部現象解析
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