Patent classifications
H01M8/02
CABLE FOR ELECTRIC POWER TRANSMISSION
A cable that includes a conductor defining a hollow interior, a casing surrounding the conductor, an electrical insulator positioned between the conductor and the casing, and a fluid positioned within the hollow interior of the conductor.
HETEROCYCLIC COMPOUND OR SALT THEREOF, ACTIVE MATERIAL, ELECTROLYTIC SOLUTION AND REDOX FLOW BATTERY
The present disclosure relates to a heterocyclic compound represented by formula (1), (2) or (3), or a salt thereof. The present disclosure also relates to an active material containing at least one heterocyclic compound or a salt thereof described above, an electrolytic solution containing the active material, and a redox flow battery including the electrolytic solution.
METHOD FOR MANUFACTURING ELECTRODE, ELECTRODE MANUFACTURED BY SAME, ELECTRODE STRUCTURE INCLUDING ELECTRODE, FUEL CELL OR METAL-AIR SECONDARY BATTERY, BATTERY MODULE INCLUDING CELL OR BATTERY, AND COMPOSITION FOR MANUFACTURING ELECTRODE
The present specification relates to a method for manufacturing an electrode, an electrode manufactured by the same, an electrode structure including the electrode, a fuel cell or a metal-air secondary battery including the electrode, a battery module including the fuel cell or the metal-air secondary battery, and a composition for manufacturing an electrode.
METHOD FOR MANUFACTURING ELECTRODE, ELECTRODE MANUFACTURED BY SAME, ELECTRODE STRUCTURE INCLUDING ELECTRODE, FUEL CELL OR METAL-AIR SECONDARY BATTERY, BATTERY MODULE INCLUDING CELL OR BATTERY, AND COMPOSITION FOR MANUFACTURING ELECTRODE
The present specification relates to a method for manufacturing an electrode, an electrode manufactured by the same, an electrode structure including the electrode, a fuel cell or a metal-air secondary battery including the electrode, a battery module including the fuel cell or the metal-air secondary battery, and a composition for manufacturing an electrode.
Redox flow battery carrier molecule
A nonaqueous electrolyte composition for use in a redox flow battery system, comprising: a nonaqueous supporting electrolyte; and a metal ligand complex of formula II: ##STR00001##
wherein R.sub.1, R.sub.2, R.sub.3, R.sub.4 and R.sub.6 are each independently H, halogen, alkyl, substituted alkyl, alkoxy, substituted alkoxy, aryloxy, substituted aryloxy, heteroaryloxy, substituted heteroaryloxy, or a polyether, ##STR00002##
wherein R.sub.5 is H, alkyl, or substituted alkyl; and M is a transition metal or zinc.
Redox flow battery carrier molecule
A nonaqueous electrolyte composition for use in a redox flow battery system, comprising: a nonaqueous supporting electrolyte; and a metal ligand complex of formula II: ##STR00001##
wherein R.sub.1, R.sub.2, R.sub.3, R.sub.4 and R.sub.6 are each independently H, halogen, alkyl, substituted alkyl, alkoxy, substituted alkoxy, aryloxy, substituted aryloxy, heteroaryloxy, substituted heteroaryloxy, or a polyether, ##STR00002##
wherein R.sub.5 is H, alkyl, or substituted alkyl; and M is a transition metal or zinc.
APPARATUS FOR DILUTION OF HYDROGEN CONCENTRATION IN A FUEL CELL EXHAUST SYSTEM
An apparatus for dilution of hydrogen concentration in a fuel cell exhaust system is provided. The apparatus includes a fuel cell exhaust line configured for receiving a flow of gas from a connected fuel cell and including a flow of hydrogen gas. The apparatus further includes a mixing chamber disposed to receive the flow of hydrogen gas and configured for mixing a flow of air with the flow of hydrogen gas. The mixing chamber includes a mixing mesh including at least one tab feature configured for altering a flow direction of at least a portion of one of the flow of hydrogen gas and for creating a turbulent flow region within the mixing chamber.
APPARATUS FOR DILUTION OF HYDROGEN CONCENTRATION IN A FUEL CELL EXHAUST SYSTEM
An apparatus for dilution of hydrogen concentration in a fuel cell exhaust system is provided. The apparatus includes a fuel cell exhaust line configured for receiving a flow of gas from a connected fuel cell and including a flow of hydrogen gas. The apparatus further includes a mixing chamber disposed to receive the flow of hydrogen gas and configured for mixing a flow of air with the flow of hydrogen gas. The mixing chamber includes a mixing mesh including at least one tab feature configured for altering a flow direction of at least a portion of one of the flow of hydrogen gas and for creating a turbulent flow region within the mixing chamber.
Device and method for producing flow field plates
A method and a device for producing bipolar plates for fuel cells. A bipolar plate is formed by joining an anode plate to a cathode plate, wherein the anode plate and the cathode plate are formed by forming a substrate plate. In order to provide a cost-effective and automated method, it is proposed that a plate already provided with a reactive coating or catalyst coating, which is transported, automatically driven, via a transport device from the forming device to the joining device, is used as substrate plate.
Fuel cell separator member and fuel cell
A tab of a load receiver forming a fuel cell separator member includes a base portion in the form of a metal plate, and a resin member covering the base portion. A hole, into which the resin member is partially inserted, is formed in the base portion. The resin member includes a thick portion, and a thin portion positioned closer to a first separator than the thick portion is. The hole is disposed so as to be overlapped with the thick portion.