Patent classifications
F17C11/00
METAL COMPOSITE CARBON MATERIAL, FUEL CELL CATALYST, FUEL CELL, HYDROGEN-OCCLUDING MATERIAL, HYDROGEN TANK, AND PRODUCTION METHOD FOR METAL COMPOSITE CARBON MATERIAL
The present invention provides a metal composite carbon material that provides a large contact interface between a fluid and metal fine particles and that can exhibit high catalytic performance when used as a catalyst, having metal fine particles supported in a continuous porous structure in which a carbon skeleton and voids form respective continuous structures, the continuous porous structure having a structural period of larger than 2 nm and 10 μm or smaller.
METAL COMPOSITE CARBON MATERIAL, FUEL CELL CATALYST, FUEL CELL, HYDROGEN-OCCLUDING MATERIAL, HYDROGEN TANK, AND PRODUCTION METHOD FOR METAL COMPOSITE CARBON MATERIAL
The present invention provides a metal composite carbon material that provides a large contact interface between a fluid and metal fine particles and that can exhibit high catalytic performance when used as a catalyst, having metal fine particles supported in a continuous porous structure in which a carbon skeleton and voids form respective continuous structures, the continuous porous structure having a structural period of larger than 2 nm and 10 μm or smaller.
Gas Storage Device
In an embodiment, the gas storage device includes a cylinder with opposing ends. An endcap is present at each end. The cylinder and the endcaps form an enclosure. Each endcap includes a connector. A diaphragm is located in the enclosure. The diaphragm includes an annular sidewall. The device includes an inner chamber defined by an inner surface of the sidewall, and a storage space between an interior surface of the cylinder and an outer surface of the sidewall. A metal hydride composition is located in the storage space.
Method for enhancing volumetric capacity in gas storage and release systems
The present disclosure provides for a porous gas sorbent monolith with superior gravimetric working capacity and volumetric capacity, a gas storage system including a porous gas sorbent monolith of the present disclosure, methods of making the same, and method for storing a gas. The porous gas sorbent monolith includes a gas adsorbing material and a non-aqueous binder.
Material for storing and releasing oxygen
The invention relates to a material for storing and releasing oxygen, consisting of a reactive ceramic made of copper, manganese and iron oxides, wherein, subject to the oxygen partial pressure of a surrounding atmosphere and/or an ambient temperature, the reactive ceramic has a transition region that can be passed through any number of times, said transition region being between a discharge threshold state of a three-phase crednerite/cuprite/hausmannite mixed ceramic and a charge threshold state of a two-phase spinel/tenorite mixed ceramic. A passing through of the transition region from the discharge threshold state towards the charging threshold state is associated with oxygen uptake and a passing through of the transition region from the charge threshold state towards the discharge threshold state is associated with oxygen release.
Material for storing and releasing oxygen
The invention relates to a material for storing and releasing oxygen, consisting of a reactive ceramic made of copper, manganese and iron oxides, wherein, subject to the oxygen partial pressure of a surrounding atmosphere and/or an ambient temperature, the reactive ceramic has a transition region that can be passed through any number of times, said transition region being between a discharge threshold state of a three-phase crednerite/cuprite/hausmannite mixed ceramic and a charge threshold state of a two-phase spinel/tenorite mixed ceramic. A passing through of the transition region from the discharge threshold state towards the charging threshold state is associated with oxygen uptake and a passing through of the transition region from the charge threshold state towards the discharge threshold state is associated with oxygen release.
ADSORBED NATURAL GAS STORING TANK
An adsorbed natural gas storing tank is provided. The adsorbed natural gas storing tank includes a tank body that has an upper plate and a lower plate coupled to define an inner space provided with an adsorbent material. The tank body includes an opening that extends through the upper and lower plates. A central plate is inserted in the opening to seal one side of the tank body. Additionally, the central plate has a plurality of discharge apertures formed along a circumferential wall thereof to discharge natural gas reacted with the adsorbent material and has a mounting region therein. A filter assembly is inserted in the mounting region, is fastened to the central plate, filters natural gas passing through the discharge apertures, and is equipped with a control valve for adjusting natural gas discharge.
GAS ADSORPTION/DESORPTION DEVICE, OBJECT SECURING DEVICE, DRONE, PRESSURE CONTROL METHOD, AND OBJECT GRIPPING METHOD
A gas adsorption/desorption device includes a gastight enclosure filled with a predetermined gas and supplied with no gas from outside or releasing no gas to the outside, and a porous medium disposed in the gastight enclosure. The predetermined gas in the porous medium is released out of the porous medium in response to supply of energy to the porous medium. The porous medium captures the predetermined gas in the gastight enclosure in response to stopping or reducing of the supply of the energy to the porous medium.
GAS ADSORPTION/DESORPTION DEVICE, OBJECT SECURING DEVICE, DRONE, PRESSURE CONTROL METHOD, AND OBJECT GRIPPING METHOD
A gas adsorption/desorption device includes a gastight enclosure filled with a predetermined gas and supplied with no gas from outside or releasing no gas to the outside, and a porous medium disposed in the gastight enclosure. The predetermined gas in the porous medium is released out of the porous medium in response to supply of energy to the porous medium. The porous medium captures the predetermined gas in the gastight enclosure in response to stopping or reducing of the supply of the energy to the porous medium.
Hydrogen storage tank comprising metal hydrides produced through simplified manufacture and storage device comprising at least such a tank
A hydrogen storage material tank including a shell along a longitudinal axis, a hydrogen supply and collection duct along a longitudinal axis, a stack of plural cups around the duct, wherein each cup includes a base perpendicular to the longitudinal axis, a passage allowing installation of the cup around the duct, an outer wall perpendicular to the base, in contact with the shell and an inner wall perpendicular to the base and in contact with the duct, wherein each cup is force-fitted on the duct and each cup includes a mechanism allowing mutual engagement of the cups in one another by mechanical deformation of free ends of the outer walls of the cups.