F04B2015/081

Cryogenic Tank Assembly with a Pump Drive Unit Disposed Within Fluid Storage Vessel

A fluid storage and pressurizing assembly includes a storage receptacle and a pump assembly. The storage receptacle includes an inner vessel defining a cryogen space for storing a fluid at a storage pressure and a cryogenic temperature, an outer vessel surrounding the inner vessel, and an insulated space between the inner vessel and the outer vessel, and a pump assembly. The pump assembly includes a pump immersed in the cryogen space having an inlet for receiving a quantity of fluid from the cryogen space, and an outlet for delivering the fluid therefrom. The pump assembly further includes a pump drive unit for driving the immersed pump, the pump drive unit being at least partially disposed within a space defined by the storage receptacle.

Cryogenic fluid pump

A cryogenic fluid pump includes an outlet tube extending along the pump centerline, the outlet tube having an outlet passage that is fluidly in communication with the combined outlet and with a pump outlet opening, and a shroud that extends concentrically along the outlet tube and has an inner diameter that is larger than an outer diameter of the outlet tube such that a gap is formed in a radial direction between an inner surface of the shroud and an outer surface of the outlet tube, the gap extending along at least a portion of the outlet tube.

APPARATUS AND METHOD FOR FILTERING CRYOGENIC FLUID

An improved filter apparatus for a cryogenic fluid includes a filter and a support. The filter includes a mesh having an internal space and an open end. The support is associated with the mesh for maintaining a volume of the internal space above a predetermined value. In operation cryogenic fluid enters the internal space through the mesh and exits the open end thereof.

System for supplying compressed gas to several gas-fed devices
10563621 · 2020-02-18 · ·

A system for supplying compressed gas to several gas-fed devices is based on a liquid piston gas multistage compressor (100). Gas pressure measurements performed at a gas intake (10), an intermediate gas outlet (20) and at an end gas outlet (30) of the system allow controlling respective gas capacities of the compressor stages. Easy and reliable control can thus be obtained for the system operation. Varying the number of the compressor stages allows matching any pressure requirements for the gas delivery to all the gas-fed devices, and varying the gas capacities of the compressor stages allows easy adaptation to variable gas consumptions of the gas-fed devices.

HEAT INSULATING VESSEL FOR LOW TEMPERATURE LIQUEFIED GAS PUMP

A heat insulating vessel including an inner tank having a vertical axis to accommodate low temperature liquefied gas, an outer tank externally around the inner, and a low temperature liquefied gas pump disposed inside the inner tank. The outer tank having an upper part and an outer tank body. A lid structure having a heat-insulated structure detachably fitted into an upper part of the inner. The heat insulating vessel includes a first fastener to fasten with bolts, a first flange to upper ends of the inner and outer tanks upper part to a second flange to an outer circumferential part of the lid structure, and a second fastener to fasten with bolts, a third flange to an upper end of the outer tank body to a fourth flange to a lower end of the outer tank upper part. A vacuum insulating layer is formed between the inner and outer tanks.

HEAT INSULATING VESSEL FOR LOW TEMPERATURE LIQUEFIED GAS PUMP

A heat insulating vessel for a low temperature liquefied gas pump, which includes an inner tank configured to accommodate low temperature liquefied gas, an outer tank provided externally around the inner tank, and a low temperature liquefied gas pump disposed inside the inner tank. The outer tank has an outer tank upper part that is an upper end portion thereof, and an outer tank body other than the outer tank upper part. A lid structure having a heat-insulated structure detachably fitted into an upper part of the inner tank. The pump is fixed to the lid structure, and a suction pipe and a discharge pipe are insertedly fixed to the lid structure. A vacuum insulating layer is provided between the inner tank and the outer tank. With this heat insulating vessel for the low temperature liquefied gas pump, adiabaticity of the lid structure and maintainability of the pump are increased.

Cryogenic tank assembly with a pump drive unit disposed within fluid storage vessel

A fluid storage and pressurizing assembly includes a storage receptacle and a pump assembly. The storage receptacle includes an inner vessel defining a cryogen space for storing a fluid at a storage pressure and a cryogenic temperature, an outer vessel surrounding the inner vessel, and an insulated space between the inner vessel and the outer vessel, and a pump assembly. The pump assembly includes a pump having an inlet disposed within the cryogen space for receiving a quantity of the fluid from the cryogen space, and an outlet for delivering the fluid therefrom, and a pump drive unit for driving the pump, the pump drive unit being at least partially disposed within a space defined by the storage receptacle.

LIQUID SUPPLY SYSTEM
20200011322 · 2020-01-09 ·

A liquid supply system that can prevent or reduce the occurrence of cavitation without an increase in the overall size of the apparatus. The liquid supply system includes a first pump chamber P1 formed by a space surrounding the outer circumference of a first bellows 141, a second pump chamber P2 formed by a space surrounding the outer circumference of a second bellows 142, a first check valve 160A provided in a fluid passage passing through the first pump chamber P1 to block backflow of fluid, and a second check valve 160B provided in a fluid passage passing through the second pump chamber P2 to block backflow of fluid. The first check valve 160A and the second check valve 160B are both provided in the container 130 and disposed on the side opposite to an actuator 110 that drives a shaft member 120, with respect to the shaft member 120.

HEAT INSULATION STRUCTURE AND LIQUID SUPPLY SYSTEM
20200003196 · 2020-01-02 ·

A heat insulation structure and a liquid supply system that can prevent breakage of a heat insulation member while providing satisfactory heat insulation. The heat insulation structure includes heat insulation members 520 provided between two components and having heat conductivity lower than the two components and a slidable member 530 slidable on the heat insulation member 520. At least two of the heat insulation members 520 are arranged along the direction of compression by the two components, and at least one of the slidable member 530 is disposed between the heat insulation members which are adjacent to each other. The heat insulation members 520 and the slidable member 530 are allowed to be displaced in directions perpendicular to the direction of compression.

Hydraulic drive system for a linearly actuated hydraulic piston pump
10519940 · 2019-12-31 · ·

A linearly actuated hydraulic piston pump is provided. The pump includes a piston disposed between a first section and a second section of a piston chamber. The pump also includes a control valve having a valve body defining a valve chamber therein. The control valve also includes an inlet port, a first port, a regeneration port, a second port, and a spool. The spool in a first spool position fluidly couples a pressurized fluid source to the first section via the inlet port and the first port, and fluidly couples an accumulator to the second section via the regeneration port and the second port. The spool in the second spool position fluidly couples the first section to a drain via the first port and a drain port, and fluidly couples the second section to the pressurized fluid source via the inlet port and the second port.