Low-cost, high-performance composite bipolar plate
This invention describes a low-cost, lightweight, high-performance composite bipolar plate for fuel cell applications. The composite bipolar plate can be produced using stamped or pressed into the final form including flow channels and other structures prior to curing.
1. A method of making a conductive, composite bipolar plate made of coated particles for making a composite material that enhances a property of the composite material, comprising:
providing a powdered component called a powdered host particle, wherein the powdered host particle is a powder from a resin of polymethylpentene;
providing a second powdered component called a conductive additive that comprises a softening or melting temperature higher than the melting point of the powdered host particle, wherein the conductive additive comprises substantially flat graphene oxide flakes, and wherein the conductive additive is formed in situ in a ball mill prior to the addition of the powdered host particle;
inputting said powdered host particle into the ball mill; and
ball milling said powdered host and said conductive additive for a milling time to sufficiently mix but not melt the powdered host particle into a conductive host-additive particle.
2. The method of claim 1 , wherein the conductive host-additive particle is formed into a bipolar plate assembly for a PEM fuel cell, and the bipolar plate comprises a formable resin with one or more conductive materials.
3. The method of claim 1 , wherein the conductive host-additive particle is formed into a bipolar plate assembly for a PEM fuel cell that comprises the bipolar plate having a plurality of formed serpentine flow field on a first side of said bipolar plate and an interdigitated flow field on a second side of said bipolar plate, a plate margin having a first header aperture formed therethrough, a first port formed therethrough between said first header aperture and said serpentine flow field, a second header aperture formed therethrough, and a second port formed therethrough between said second header aperture and said interdigitated flow field.
4. The method of claim 1 , wherein the conductive host-additive particle is formed into a bipolar plate assembly for a PEM fuel cell that comprises a first seal disposed on said second side of said bipolar plate and having a first passageway formed therein to define a first fluid transmission path between said first header and a second passageway formed therein to define a second fluid transmission path between said second port and said interdigitated flow field.
5. The method of claim 1 , wherein the conductive host-additive particle is formed into a bipolar plate assembly for a PEM fuel cell comprises a second seal disposed on said first side of said bipolar plate and having a third passageway formed therein to define a third fluid communication path from said second header to said second port and a fourth passageway formed therein to define a fourth fluid communication path from said first port to said serpentine flow field.
6. A method of making a conductive composite particle or material, comprising:
providing a powdered host particle, wherein the powdered host particle is a powder from a resin of polymethylpentene;
providing a conductive additive with a softening or melting temperature higher than the melting point of the powdered host particle, wherein the conductive additive comprises substantially flat graphene oxide flakes, and wherein the conductive additive is formed in situ in a ball mill prior to the addition of the powdered host particle;
mixing the powdered host particle in the ball mill; and
milling the powdered host and the powdered additive for a time sufficient to mix but not melt the powdered host particle to form an electrically conductive host-additive blend.
7. The method of claim 6 , wherein the electrically conductive host-additive blend has at least one of the following properties: a bulk density less than 1.75 g/cm 3 , an electrical conductivity greater than 250 S/cm, or a Rockwell hardness >80.
8. The method of claim 6 , further comprising the step of extruding, stamping, or otherwise mass-producing the electrically conductive host-additive blend into a bipolar plate.
9. The method of claim 8 , wherein the bipolar plate is adapted for use in a PEM fuel cell, wherein the bipolar plate further comprises a formable resin with one or more conductive additives.
10. The method of claim 8 , further comprising assembling the bipolar plate into a PEM fuel cell that comprises the bipolar plate having a plurality of formed serpentine flow field on a first side of said bipolar plate and an interdigitated flow field on a second side of said bipolar plate, a plate margin having a first header aperture formed therethrough, a first port formed therethrough between said first header aperture and said serpentine flow field, a second header aperture formed therethrough, and a second port formed therethrough between said second header aperture and said interdigitated flow field.
11. The method of claim 10 , further comprising assembling the bipolar plate into a PEM fuel cell comprises a first seal disposed on said second side of said bipolar plate and having a first passageway formed therein to define a first fluid transmission path between said first header and a second passageway formed therein to define a second fluid transmission path between said second port and said interdigitated flow field.
12. The method of claim 10 , further comprising assembling the bipolar plate into a PEM fuel cell comprises a second seal disposed on said first side of said bipolar plate and having a third passageway formed therein to define a third fluid communication path from said second header to said second port and a fourth passageway formed therein to define a fourth fluid communication path from said first port to said serpentine flow field.