Patent classifications
H01M8/026
Fuel cell separator and fuel cell stack
A fluid flow field of a separator of a fuel cell stack allows a fluid to flow in a separator surface direction. A rubber seal member provides a seal between the fluid passage and the fluid flow field. The tunnel portion intersects the rubber seal member at an intersection. The tunnel portion allows the fluid flow field and the fluid passage to connect to each other. In the rubber seal member, a first portion protrudes from a flat portion in a stacking direction, and a second portion protrudes from a protruding end surface of a tunnel portion in the stacking direction.
Fuel cell separator and fuel cell stack
A fluid flow field of a separator of a fuel cell stack allows a fluid to flow in a separator surface direction. A rubber seal member provides a seal between the fluid passage and the fluid flow field. The tunnel portion intersects the rubber seal member at an intersection. The tunnel portion allows the fluid flow field and the fluid passage to connect to each other. In the rubber seal member, a first portion protrudes from a flat portion in a stacking direction, and a second portion protrudes from a protruding end surface of a tunnel portion in the stacking direction.
METHOD OF PRODUCTION OF CHANNEL MEMBER FOR FUEL CELL
A method of production of a channel member for fuel cell use comprising a step of obtaining a sheet-shaped first conductor part 11 containing a carbon material of at least one of carbon nanotubes, granular graphite, and carbon fibers and a first resin, a step of laying a sheet-shaped second conductor part 21 containing a carbon material and a second resin with a lower melting point than the first resin to form a sheet-shaped base part 13, a step of transferring a grooved surface 51 to a surface to form a grooved base part 16 provided with groove part 15, a step of laying a sheet-shaped third conductor part 31 containing a carbon material and a third resin with a lower melting point than the first resin, and a step of integrally joining the grooved base part and the third conductor part by hot melt bonding to cover the groove parts.
FUEL CELL HAVING WATER BLISTER GENERATION PREVENTION STRUCTURE AND METHOD OF MANUFACTURING THE SAME
A fuel cell having a water blister generation prevention structure, which may bond between a membrane-electrode assembly and a sub-gasket of a fuel cell by an adhesive having a water discharge passage so that the water collected at a portion between a distal end of an electrolyte membrane and the sub-gasket bonded by the adhesive or a portion between distal ends of a cathode and an anode and the sub-gasket bonded by the adhesive may be discharged to the cathode or the anode through a water discharge passage, thereby easily preventing water blister from being generated at a portion between the membrane-electrode assembly and the sub-gasket bonded by the adhesive.
FUEL CELL HAVING WATER BLISTER GENERATION PREVENTION STRUCTURE AND METHOD OF MANUFACTURING THE SAME
A fuel cell having a water blister generation prevention structure, which may bond between a membrane-electrode assembly and a sub-gasket of a fuel cell by an adhesive having a water discharge passage so that the water collected at a portion between a distal end of an electrolyte membrane and the sub-gasket bonded by the adhesive or a portion between distal ends of a cathode and an anode and the sub-gasket bonded by the adhesive may be discharged to the cathode or the anode through a water discharge passage, thereby easily preventing water blister from being generated at a portion between the membrane-electrode assembly and the sub-gasket bonded by the adhesive.
Two-phase water cooling in an electrochemical hydrogen separator
A cooling plate assembly includes an anode half-plate having an anode upper surface and an opposing anode lower surface, and a cathode half-plate having a cathode upper surface and an opposing cathode lower surface, the cathode lower surface configured to engage the anode upper surface. The assembly further includes a cooling tube disposed between and engaging the anode upper surface and the cathode lower surface.
Two-phase water cooling in an electrochemical hydrogen separator
A cooling plate assembly includes an anode half-plate having an anode upper surface and an opposing anode lower surface, and a cathode half-plate having a cathode upper surface and an opposing cathode lower surface, the cathode lower surface configured to engage the anode upper surface. The assembly further includes a cooling tube disposed between and engaging the anode upper surface and the cathode lower surface.
GAS CHANNEL FORMING PLATE FOR FUEL CELL AND FUEL CELL STACK
A gas channel forming plate is arranged between a membrane electrode assembly and a flat separator base. The gas channel forming plate includes gas channels arranged on a surface that faces the membrane electrode assembly, water channels each formed on the back side of the protrusion between an adjacent pair of the gas channels, communication passages that connect the gas channels and the water channels to each other, and guide portions formed by causing an inner wall surface of a gas channel to protrude inward in the gas channel. The guide portions are formed such that the upstream edge of each communication passage is arranged in a range in which, in the velocity vector of the gas flowing in the gas channel, the directional component directed from the side corresponding to the membrane electrode assembly toward the flat separator base has a positive value.
GAS CHANNEL FORMING PLATE FOR FUEL CELL AND FUEL CELL STACK
A gas channel forming plate is arranged between a membrane electrode assembly and a flat separator base. The gas channel forming plate includes gas channels arranged on a surface that faces the membrane electrode assembly, water channels each formed on the back side of the protrusion between an adjacent pair of the gas channels, communication passages that connect the gas channels and the water channels to each other, and guide portions formed by causing an inner wall surface of a gas channel to protrude inward in the gas channel. The guide portions are formed such that the upstream edge of each communication passage is arranged in a range in which, in the velocity vector of the gas flowing in the gas channel, the directional component directed from the side corresponding to the membrane electrode assembly toward the flat separator base has a positive value.
PROCESS FOR PRODUCING A DISTRIBUTOR PLATE FOR AN ELECTROCHEMICAL SYSTEM AND DISTRIBUTOR PLATE FOR AN ELECTROCHEMICAL SYSTEM
A process (30) for producing a distributor plate (1) for an electrochemical system, wherein the distributor plate (1) has at least one metal foil (2) having a first surface (3) and a second surface (4) and the process (30) has the following process steps: a) pretreatment (31) of the metal foil (2); b) mask formation (32) at least on the first surface (3) of the pretreated metal foil (2); c) structure formation (33) at least on the first surface (3) of the metal foil (2) provided with the mask (10), as a result of which a first fluid distributor structure (5) is formed; d) mask removal (36).