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    • 1. 发明申请
    • Fuel Cell And Fuel Cell Separator
    • 燃料电池和燃料电池分离器
    • US20070298308A1
    • 2007-12-27
    • US11667876
    • 2006-01-12
    • Yoshinori YamamotoYuichi YagamiJiro AizakiJunichi ShirahamaSogo GotoTsuyoshi TakahashiTomokazu Hayashi
    • Yoshinori YamamotoYuichi YagamiJiro AizakiJunichi ShirahamaSogo GotoTsuyoshi TakahashiTomokazu Hayashi
    • H01M8/02
    • H01M8/0265H01M8/0206H01M8/0228H01M8/0247H01M8/0254H01M8/0258H01M8/0267H01M8/04029H01M8/241H01M8/2457H01M8/2483
    • The fuel cell of the invention includes an electrolyte assembly, and a separator having one face as a gas flow path-forming face with a gas flow path formed thereon to allow flow of a reactive gas and the other face, which is reverse to the one face, as a refrigerant flow path-forming face with a refrigerant flow path formed thereon to allow flow of a refrigerant. The gas flow path-forming face of the separator has multiple linear gas flow paths that are arranged in parallel to one another, and a gas flow path connection structure that divides the multiple linear gas flow paths into plural linear gas flow path groups and connects at least part of the plural linear gas flow path groups in series. The refrigerant flow path-forming face has multiple linear refrigerant flow paths that are formed as a reverse structure of the multiple linear gas flow paths on the gas flow path-forming face, and a refrigerant flow path connection structure that is formed as a reverse structure of the gas flow path connection structure on the gas flow path-forming face to connect the multiple linear refrigerant flow paths in parallel.
    • 本发明的燃料电池包括一个电解液组件和一个隔板,一个表面作为一个气流通道形成面,在其上形成一个气流通道,以允许一个反应气体和另一个面相反流动 作为制冷剂流路形成面,其上形成有制冷剂流路,以允许制冷剂流动。 分离器的气体流路形成面具有彼此平行布置的多个线性气体流动路径,以及气体流路连接结构,其将多个线性气体流动路径分成多个线性气体流动路径组并连接在 多个线性气体流路组的至少一部分串联。 制冷剂流路形成面具有形成为气体流路形成面上的多个线性气体流路的相反结构的多个线性制冷剂流路和形成为反向结构的制冷剂流路连接结构 的气体流路连接结构在气体流路形成面上并联连接多个线性制冷剂流路。
    • 3. 发明授权
    • Fuel cell and fuel cell separator
    • 燃料电池和燃料电池分离器
    • US08557448B2
    • 2013-10-15
    • US11667876
    • 2006-01-12
    • Yoshinori YamamotoYuichi YagamiJiro AizakiJunichi ShirahamaSogo GotoTsuyoshi TakahashiTomokazu Hayashi
    • Yoshinori YamamotoYuichi YagamiJiro AizakiJunichi ShirahamaSogo GotoTsuyoshi TakahashiTomokazu Hayashi
    • H01M8/00H01M8/04H01M8/06H01M2/40
    • H01M8/0265H01M8/0206H01M8/0228H01M8/0247H01M8/0254H01M8/0258H01M8/0267H01M8/04029H01M8/241H01M8/2457H01M8/2483
    • The fuel cell of the invention includes an electrolyte assembly, and a separator having one face as a gas flow path-forming face with a gas flow path formed thereon to allow flow of a reactive gas and the other face, which is reverse to the one face, as a refrigerant flow path-forming face with a refrigerant flow path formed thereon to allow flow of a refrigerant. The gas flow path-forming face of the separator has multiple linear gas flow paths that are arranged in parallel to one another, and a gas flow path connection structure that divides the multiple linear gas flow paths into plural linear gas flow path groups and connects at least part of the plural linear gas flow path groups in series. The refrigerant flow path-forming face has multiple linear refrigerant flow paths that are formed as a reverse structure of the multiple linear gas flow paths on the gas flow path-forming face, and a refrigerant flow path connection structure that is formed as a reverse structure of the gas flow path connection structure on the gas flow path-forming face to connect the multiple linear refrigerant flow paths in parallel.
    • 本发明的燃料电池包括一个电解液组件和一个隔板,一个表面作为一个气流通道形成面,在其上形成一个气流通道,以允许一个反应气体和另一个面相反流动 作为制冷剂流路形成面,其上形成有制冷剂流路,以允许制冷剂流动。 分离器的气体流路形成面具有彼此平行布置的多个线性气体流动路径,以及气体流路连接结构,其将多个线性气体流动路径分成多个线性气体流动路径组并连接在 多个线性气体流路组的至少一部分串联。 制冷剂流路形成面具有形成为气体流路形成面上的多个线性气体流路的相反结构的多个线性制冷剂流路和形成为反向结构的制冷剂流路连接结构 的气体流路连接结构在气体流路形成面上并联连接多个线性制冷剂流路。
    • 4. 发明授权
    • Cell laminate and fuel cell provided with the same
    • 电池层压板和燃料电池提供相同的
    • US08298715B2
    • 2012-10-30
    • US12224373
    • 2007-03-07
    • Tomokazu HayashiYoshinori YamamotoYuichi YagamiJiro AizakiJunichi Shirahama
    • Tomokazu HayashiYoshinori YamamotoYuichi YagamiJiro AizakiJunichi Shirahama
    • H01M2/02
    • H01M8/0273H01M8/0247H01M8/0256H01M8/0258H01M8/242H01M8/2483H01M2008/1095
    • There is realized a structure particularly suitable for inhibiting deformation of separators having a structure where the shapes of projections and recesses are inverted from each other on the front side and the back side of each separator as in a pressed metal separator. Between adjacent separators, there is formed either a power generation region where MEAs and frame members for holding at least a part of the MEAs are inserted or a refrigerant flow region where neither the MEAs nor the frame members are inserted. A deformation inhibiting region for inhibiting deformation of each separator is formed by a projection provided on the separator. Also, a projection for inhibiting the separator from deforming at the deformation inhibiting region or nearby is formed on each frame member. The projection is projected toward the back side of the deformation inhibiting region, where the deformation inhibiting region is a recess on the back side of the separator.
    • 实现了一种特别适合于抑制如在压制金属分离器中每个隔板的前侧和后侧上的突起和凹陷的形状彼此反转的结构的隔板的变形的结构。 在相邻的分离器之间形成有一个发电区域,其中插入用于保持至少一部分MEA的MEA和框架构件,或者不插入MEA和框架构件的制冷剂流动区域。 通过设置在隔板上的突起来形成用于抑制每个隔板变形的变形抑制区域。 此外,在每个框架构件上形成用于抑制隔板在变形抑制区域或附近变形的突起。 突起朝向变形抑制区域的背面突出,其中变形抑制区域是隔板背侧的凹部。
    • 7. 发明授权
    • Fuel battery
    • 燃油电池
    • US09065090B2
    • 2015-06-23
    • US13522620
    • 2010-12-16
    • Kousuke KawajiriKeiji HashimotoSatoshi FutamiTomokazu Hayashi
    • Kousuke KawajiriKeiji HashimotoSatoshi FutamiTomokazu Hayashi
    • H01M8/02H01M8/04H01M8/10
    • H01M8/026H01M8/0263H01M8/0265H01M2008/1095H01M2250/20Y02E60/50Y02T90/32
    • A membrane electrode assembly (15) formed by a solid electrolyte membrane (16) and electrode catalyst layers (17, 18) is interposed between a pair of frames (13, 14). Gas diffusion layers (19, 20) are laminated onto the surface of the electrode catalyst layers (17, 18). A first gas passage forming member (21) is laminated onto the surface of the gas diffusion layer (19) while a second gas passage forming member (22) is laminated onto the surface of the gas diffusion layer (20). Separators (23, 24) contact surfaces of the frame (13, 14) and the first and second gas passage forming member (21, 22). A plurality of first and second straight grooves (21c, 21d) are formed on the first gas passage forming member (21), such that the widths (w1, w2) differ from each other, and cross-sectional areas of the paths for the first and second gas passages (T1, T2) differ from each other.
    • 由固体电解质膜(16)和电极催化剂层(17,18)形成的膜电极组件(15)插入在一对框架(13,14)之间。 气体扩散层(19,20)层压在电极催化剂层(17,18)的表面上。 第一气体通道形成构件(21)层压在气体扩散层(19)的表面上,而第二气体通道形成构件(22)层压在气体扩散层(20)的表面上。 隔板(23,24)接触框架(13,14)和第一和第二气体通道形成构件(21,22)的表面。 在第一气体通道形成构件(21)上形成有多个第一和第二直槽(21c,21d),使得宽度(w1,w2)彼此不同,并且所述路径的横截面积 第一和第二气体通路(T1,T2)彼此不同。
    • 10. 发明申请
    • FUEL CELL
    • 燃料电池
    • US20100285395A1
    • 2010-11-11
    • US12743521
    • 2009-08-27
    • Tomokazu HayashiNaotoshi Miyamoto
    • Tomokazu HayashiNaotoshi Miyamoto
    • H01M8/02
    • H01M8/0232Y02E60/50
    • In a fuel cell having a cell structure in which a gas flow passage is formed by an expanded metal, a bond portion connecting a mesh of the expanded metal stands partially upright in a position where a bond length is shortened so as to form a part of a strand portion. Hence, in an opening formed by the mesh of the expanded metal, a surface area on which front and rear openings overlap in a direction increases when seen from an direction. Thus, a sectional area of gas flow passages constituted by a continuum in the direction of the openings overlapping in the direction increases. As a result, a gas flow flows without making repeated narrow turns, leading to a reduction in gas pressure loss.
    • 在具有通过膨胀金属形成气体流路的电池结构的燃料电池中,将金属制金属支架的网状部分直立连接在键长缩短的位置的结合部分,以形成 股线部分。 因此,在由多孔金属网形成的开口中,从方向观察时,前后开口重合的表面积增加。 因此,由开口方向上的连续体构成的气体流路的截面面积增大。 结果,气体流动而不会产生重复的匝数,导致气体压力损失的降低。