Patent classifications
H01M8/0221
Membrane electrode assemblies for ion concentration gradient devices
A device for enabling controlled movement of ions between a first ion-containing fluid and second ion-containing fluid comprises at least one cationic exchange membrane positioned between the first and second ion-containing fluids, and at least one anionic exchange membrane in parallel with the at least one cationic exchange membrane positioned between the first and second ion-containing fluids. The one or more of the at least one cationic exchange membrane and the at least one anionic exchange membrane is a membrane electrode assembly comprising an ion exchange membrane, and one or more permeable electrodes embedded within the ionic exchange membrane. The number of cationic exchange membranes and the number of anionic exchange membranes is the same, and the ions move through the membrane electrode assembly in response to a variable capacitive charge.
Membrane electrode assemblies for ion concentration gradient devices
A device for enabling controlled movement of ions between a first ion-containing fluid and second ion-containing fluid comprises at least one cationic exchange membrane positioned between the first and second ion-containing fluids, and at least one anionic exchange membrane in parallel with the at least one cationic exchange membrane positioned between the first and second ion-containing fluids. The one or more of the at least one cationic exchange membrane and the at least one anionic exchange membrane is a membrane electrode assembly comprising an ion exchange membrane, and one or more permeable electrodes embedded within the ionic exchange membrane. The number of cationic exchange membranes and the number of anionic exchange membranes is the same, and the ions move through the membrane electrode assembly in response to a variable capacitive charge.
METHOD FOR BIPOLAR PLATE FABRICATION
Systems and methods are provided for a redox flow battery. In one example, the redox flow battery includes a bipolar plate assembly including a bipolar plate formed of a thermoplastic composite material. The thermoplastic composite material of the bipolar plate allows the bipolar plate to be directly bonded to a dielectric frame of the bipolar plate assembly, thereby simplifying a manufacturing process of the bipolar plate assembly.
Fuel cell stack
A fuel cell system includes a first fluid flow plate including a first plurality of first channels for flow of an oxidant or a fuel. The plurality of first channel has first channel cross-sectional flow areas. A second fluid flow plate includes a second plurality of second channels for flow of an oxidant or a fuel. The plurality of second channels has second channel cross-sectional flow areas. A membrane electrode assembly is located between the first plate and the second plate. The first flow plate includes a passage for a flow of a fluid entirely on a seam side of the first flow plate as the first plurality of first channels. The passage has a cross-sectional area for flow of the fluid smaller than the first channel cross-sectional flow area.
Polymet Plates With Enhanced Electrically Conductive Pathway And Lower Corrosion For Fuel Cell
A PolyMET plate for a Proton Exchange Membrane (PEM) fuel cell is disclosed. The PolyMET plate includes a body made of a polymeric material and comprise a first surface and a second surface opposite to the first surface. The PolyMET plate includes a plurality of in-plane conductive pathways on the first surface defining a reaction area on the first surface, wherein the plurality of in-plane conductive pathways is formed as a coating of conductive material on the first surface. The PolyMET plate also includes a through-plane conductive pathway formed of a solid conductive material extending between the first surface and second surface, such that the through-plane conductive pathway is electrically coupled to the in-plane conductive pathways.
COMPOSITIONS WITH INCREASED ELECTRICAL CONDUCTIVITY
Thermoset bulk molding compounds (BMC) useful for making electrically conductive components such as bipolar plates for fuel cells are described. The thermoset bulk molding compounds incorporate graphene nanoplatelets to increase the through-plane electrical conductivity by at least 20% compared to BMCs without the graphene nanoplatelets. Additionally, these compositions have low shrinkage, low density for lightweight parts, and are easily processed. The compositions can be used to prepare a variety of electrically conductive components, including bipolar plates for fuel cells and chemical storage batteries that operate at temperatures of less than 100° C.
COMPOSITIONS WITH INCREASED ELECTRICAL CONDUCTIVITY
Thermoset bulk molding compounds (BMC) useful for making electrically conductive components such as bipolar plates for fuel cells are described. The thermoset bulk molding compounds incorporate graphene nanoplatelets to increase the through-plane electrical conductivity by at least 20% compared to BMCs without the graphene nanoplatelets. Additionally, these compositions have low shrinkage, low density for lightweight parts, and are easily processed. The compositions can be used to prepare a variety of electrically conductive components, including bipolar plates for fuel cells and chemical storage batteries that operate at temperatures of less than 100° C.
Gas distributor plate for a fuel cell and/or electrolyzer
The invention relates to a gas distributor plate for a fuel cell, comprising a first distribution structure for distributing a fuel to a first electrode and a second distribution structure (60) for distributing an oxidation agent to a second electrode. According to the invention, there is at least one wire element (80) in at least one of the distribution structures (60). The invention further relates to a fuel cell, which comprises at least one membrane electrode unit having a first electrode and a second electrode, which are separated from each other by a membrane, and at least one gas distribution plate according to the invention.
Gas distributor plate for a fuel cell and/or electrolyzer
The invention relates to a gas distributor plate for a fuel cell, comprising a first distribution structure for distributing a fuel to a first electrode and a second distribution structure (60) for distributing an oxidation agent to a second electrode. According to the invention, there is at least one wire element (80) in at least one of the distribution structures (60). The invention further relates to a fuel cell, which comprises at least one membrane electrode unit having a first electrode and a second electrode, which are separated from each other by a membrane, and at least one gas distribution plate according to the invention.
METHOD FOR DEPOSITING AN ADHESIVE METAL COATING WHICH IS HYDROPHOBIC AND ELECTRICALLY CONDUCTIVE
A process for depositing a metal-adhesive, hydrophobic and electrically conductive coating based on electrically conductive microparticles and on a polymer matrix P comprising at least one thermoplastic fluoropolymer P1 and a thermosetting resin P2, comprises: in a first container, dissolve the polymer P1 in an organic solvent; in a second container, disperse the electrically conductive microparticles in an organic solvent; add, in the first container, the thermosetting resin P2 in the liquid state; mix the contents of the containers, then deposit the mixture on the substrate; crosslink the resin P2 and remove the solvents, to obtain a first coating; then impregnate the surface of the substrate with an additional resin solution P2 dissolved in a third solvent, which is a solvent of the resin P2 and a non-solvent of the polymer P1; eliminate the third solvent and crosslink while compressing the additional resin P2 in order to obtain the targeted final coating.