H01M8/0213

FUEL CELL

The present embodiment is a fuel cell including a stacked body of single cells each of which includes a power generating unit and separators disposed on both surfaces of the power generating unit, in which the separators each include a metal base material, a carbon layer made of carbon and formed on a first surface of the metal base material on a power generating unit side, and a titanium nitride layer made of titanium nitride and formed on a second surface of the metal base material opposite to the first surface.

Method for Producing Separator Plates for a Fuel Cell

A method for producing separator plates, in particular bipolar plates, for a fuel cell. The method comprises use of a sacrificial binder.

Method for Producing Separator Plates for a Fuel Cell

A method for producing separator plates, in particular bipolar plates, for a fuel cell. The method comprises use of a sacrificial binder.

FUEL CELL SEPARATOR AND METHOD FOR MANUFACTURING SAME

The present disclosure relates to a separator for a fuel cell and a manufacturing method of the same. The manufacturing method of the separator for a fuel cell includes: an unevenness forming step of forming a fine-sized unevenness on a surface of a metal base material; and a coating layer forming step of forming a coating layer by coating carbon on the surface of the metal base material on which the unevenness is formed. Through the manufacturing method, it is possible to obtain an effect of improving water discharge performance and adhesion between the metal base material and the coating layer by forming unevenness on a surface of a metal base material, and then forming a coating layer.

FUEL CELL SEPARATOR AND METHOD FOR MANUFACTURING SAME

The present disclosure relates to a separator for a fuel cell and a manufacturing method of the same. The manufacturing method of the separator for a fuel cell includes: an unevenness forming step of forming a fine-sized unevenness on a surface of a metal base material; and a coating layer forming step of forming a coating layer by coating carbon on the surface of the metal base material on which the unevenness is formed. Through the manufacturing method, it is possible to obtain an effect of improving water discharge performance and adhesion between the metal base material and the coating layer by forming unevenness on a surface of a metal base material, and then forming a coating layer.

FUEL CELL SEPARATOR AND MANUFACTURING METHOD FOR MANUFACTURING FUEL CELL SEPARATOR

This disclosure provides a manufacturing method for manufacturing a fuel cell separator. The manufacturing method includes: providing a material sheet including a fiber sheet, carbon particles, and a resin, the carbon particles and the resin being applied to the fiber sheet; and pressing the material sheet into a recess-projection shape by which a gas circulation passage is to be formed, and forming a top portion and a shift portion. In the pressing of the material sheet, the material sheet is pressed such that a draft of the top portion is higher than a draft of the shift portion.

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.

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.

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.

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.