Patent classifications
H01M8/2459
BIPOLAR PLATE, CELL STACK, AND REDOX FLOW BATTERY
A bipolar plate arranged to face an electrode along which electrolyte is circulated, the bipolar plate includes a flow passage that is provided on at least one of front and back surfaces of the bipolar plate and along which the electrolyte is circulated. The flow passage provided on the at least one of the front and back surfaces of the bipolar plate includes an introduction path along which the electrolyte is introduced and a discharge path that does not communicate with and is independent of the introduction path and along which the electrolyte is discharged. At least one of the introduction path and the discharge path includes an inclined groove that non-orthogonally intersects a long side and a short side of an imaginary rectangle that includes an outer edge of the bipolar plate.
REDOX FLOW BATTERY
A redox flow battery including a plurality of electrically connected stacks is provided. A plurality of stacks are alternately connected by electrical connecting lines, with at least one stack therebetween.
CASCADING STACK ELECTROCHEMICAL FUEL CELL
A fuel cell comprising a series of cascaded cell stacks comprising at least one humidifier-degasser coupled to the cell stacks proximate a stack inlet; the at least one humidifier-degasser comprising at least one degasification section fluidly coupled upstream of at least one humidifier section; and at least one inert concentrator cell coupled downstream from the cell stacks proximate a stack vent.
POLYMER ELECTROLYTE MEMBRANE, ELECTROCHEMICAL CELL AND FLOW CELL EACH COMPRISING SAME, COMPOSITION FOR POLYMER ELECTROLYTE MEMBRANE, AND METHOD FOR PREPARING POLYMER ELECTROLYTE MEMBRANE
A polymer electrolyte membrane having an ionic bond between a sulfonate anion and a bismuth cation, an electrochemical battery and a flow battery including the same, a composition for a polymer electrolyte membrane, and a method for preparing a polymer electrolyte membrane.
FLOATING FRAME PLATE ASSEMBLY
A cell plate has a frame body and a cell plate in fluidic communication. The cell plate is coupled to the frame body using a flexible member, which allows for some independent movement of the cell plate vis--vis the frame body. A plurality of cell plate assemblies may be coupled together to form a cell stack. The cell stack may be put to use in a redox flow battery.
MICROBIAL FUEL CELL USING ELECTRON ABSORBER HAVING HIGH REDUCTION POTENTIAL, AND METHOD OF GENERATING ELECTRIC ENERGY USING SAME
The present invention relates to a microbial fuel cell using an electron absorber having high reduction potential, and a method of generating electric energy using same, and more specifically, to: a microbial fuel cell in which an electron absorber solution having high reduction potential is used as a reduction electrolyte, an organic solution that is an electron donor is used as an oxidization electrolyte, the reduced reduction electrolyte is regenerated through electrolysis in an electrolysis battery and re-supplied to the reduction electrolyte, a separation membrane provided with one or more O-rings in order to prevent leakage is included, hydrogen gas generated from the electrolysis can be supplied to a fuel cell to generate additional electric energy, such that a large quantity of electric power can be generated cost-efficiently, energy from an existing electricity generation system, such as solar electric energy.
FUEL CELL STACK
A fuel cell stack includes a stack body formed by stacking a plurality of power generation cells. A first seal line of a first metal separator and a second seal line of a second metal separator protrude in a stacking direction of the stack body in a manner to contact a resin film. An insulator is provided with a first elastic seal member which contacts a second end seal line. The width of the first elastic seal member is larger than the maximum width of the second end seal line.
Flow Battery Apparatus with Shunted Current Repressed and Method Thereof
A flow battery apparatus is provided with shunted currents repressed. The apparatus has a positive electrode device, a negative electrode device and a plurality of gas-gap devices. Gas-gap devices are separately set between branching channels and inlet and outlet manifolds of positive and negative electrodes. Each of the branching channels separately has an inserting tube to be inserted into one of the gas-gap devices. The diameter of the inserted vessel of gas-gap devices is bigger than the diameter of the inserting tube connected to a corresponding one of the branching channels. Thus, working liquids transferred to the positive and negative electrodes are segregated with coordination of the gas-gap devices. Only air spaces and discrete liquid drops are left between separated parts of the working liquids. Thus, shunted currents are repressed by preventing conductive paths from being formed between the positive and negative electrodes.
FUEL CELL ASSEMBLY INCLUDING MULTIPLE FLOW CAPACITIES IN A CONDENSATION ZONE
An illustrative example fuel cell assembly includes a plurality of cells respectively including at least an electrolyte layer, an anode flow plate on one side of the electrolyte layer, and a cathode flow plate on an opposite side of the electrolyte layer. At least one cooler is situated adjacent a first one of the cells. The cooler is closer to that first one of the cells than it is to a second one of the cells. The cathode flow plates respectively include a plurality of flow channels and the anode flow plates respectively include a plurality of flow channels. The anode flow plates respectively include some of the flow channels in a condensation zone of the fuel cell assembly. The flow channels of the anode flow plate in the condensation zone of the first one of the cells have a first flow capacity. The flow channels of the anode flow plate of the second one of the cells that are in the condensation zone have a second flow capacity. The second flow capacity is greater than the first flow capacity.
METHOD FOR MANUFACTURING A STAMPED MEMBER
A method for manufacturing a stamped member includes the steps of: (1) stamping sheet metal within a stamping press system; (2) assembling the stamped sheet metal with other stamped members to form a plurality of bipolar plates; (3) pre-compressing the first bipolar plate between a pair of flat fixture plates; (4) obtaining first contact pressure variation data; (5) providing a customized patterned fixture which corresponds to the first contact pressure measurement data; (6) pre-compressing the second bipolar plate with the customized patterned fixture; and (7) obtaining second contact pressure variation data.