Patent classifications
F17C2209/236
HIGH-PRESSURE TANK AND MANUFACTURING METHOD OF THE SAME
This high-pressure tank includes a resin liner constituting a hollow fluid filling part, a ferrule including a supply/discharge port which communicates with an internal space of the liner and a flange part which protrudes outward in a radial direction from a circumferential region of the supply/discharge port and abuts on the liner, and a reinforcing layer made of a fiber reinforced resin attached to cover across the liner and an outer circumferential surface of the flange part, in which a discharge hole allowing a gap between abutting surfaces of the flange part and the liner to communicate with an inside of the supply/discharge port and discharging a fluid accumulated between the liner and the reinforcing layer to the supply/discharge port is provided in the ferrule, and a trap groove surrounding a circumferential region of the discharge hole is provided on at least any one of the abutting surface on the flange part side and the abutting surface on the liner side.
CONTAINER FOR RECEIVING AND STORING CRYOGENIC FLUIDS PARTICULARLY CRYOGENIC LIQUIDS AND VISCOUS MATERIALS, AND METHOD FOR THE PRODUCTION THEREOF, AND USE THEREOF
The invention relates to a container for holding and storing liquids and viscous materials, in particular cryogenic fluids, comprising a jacket (12), which defines the interior (14) of the container (10) having a chamber (16), said container (10) being constituted of at least two container structures (20, 20′, 20″) and each of said at least two container structures (20, 20′, 20″) being formed as one piece from a blank (32) and having a dome portion (22), a branching portion (24), which is contiguous to the dome portion (22), and two cylinder portions (26, 28; 26′, 28′), which are contiguous to the branching portion (24), and the mutually facing container structures (20, 20; 20′, 20″) which are adjacent to each other being joined together.
RESERVOIR MADE OF COMPOSITE MATERIAL FOR CONTAINING A PRESSURE FLUID
A method for forming a reservoir made of a composite material includes a tubular element, two end fittings, each inserted into one end of the tubular element, and a circumferential layer that envelops the tubular element and the end fittings. The circumferential layer is made of resin-impregnated wound fibers. At least one segment of each end fitting has an outwardly tapering shape and the wall has a taper at each end, and thus at each end the wall is pressed against the segment surface having a tapering shape. The tubular element includes a plastic tube surrounded by a longitudinal layer essentially made of parallel fibers in a resin matrix, the parallel fibers being oriented along the longitudinal axis of the plastic tube. The circumferential layer is essentially made of fibers wound around the circumference of the tubular element and end fittings and parallel to each other.
Apparatus for opening safety locked bottle caps
An apparatus for opening safety locked bottle caps is disclosed herein. The apparatus enables users to open safety locked bottle caps in a safe and effective manner. In one embodiment of the invention, the various elements of the inventive apparatus enable a user to remove a bottle cap when sufficient downward force is applied to the handle of the apparatus. In one embodiment, the apparatus is comprised of an engagement mechanism that lodges into the bottom portion of the bottle cap's outer lip. The engagement mechanism is designed to remain lodged within the bottle cap's outer lip through a substantial portion of the opening motion. This feature prevents the inventive apparatus from “slipping-off” from the bottle cap while a user is trying to remove the bottle cap from the bottle.
CLADDING
Cladding of the interior of a component part of a pressure vessel is shown. A lining which conforms to at least a portion of the interior geometry of the component is positioned in the interior of the component. The lining is then pressed into the component past its yield strength. The lining is then fused to the component.
Container for receiving and storing cryogenic fluids particularly cryogenic liquids and viscous materials, and method for the production thereof, and use thereof
The invention relates to a container for holding and storing liquids and viscous materials, in particular cryogenic fluids, comprising a jacket (12), which defines the interior (14) of the container (10) having a chamber (16), said container (10) being constituted of at least two container structures (20, 20, 20) and each of said at least two container structures (20, 20, 20) being formed as one piece from a blank (32) and having a dome portion (22), a branching portion (24), which is contiguous to the dome portion (22), and two cylinder portions (26, 28; 26, 28), which are contiguous to the branching portion (24), and the mutually facing container structures (20, 20; 20, 20) which are adjacent to each other being joined together.
High-pressure tank and manufacturing method of the same
This high-pressure tank includes a resin liner constituting a hollow fluid filling part, a ferrule including a supply/discharge port which communicates with an internal space of the liner and a flange part which protrudes outward in a radial direction from a circumferential region of the supply/discharge port and abuts on the liner, and a reinforcing layer made of a fiber reinforced resin attached to cover across the liner and an outer circumferential surface of the flange part, in which a discharge hole allowing a gap between abutting surfaces of the flange part and the liner to communicate with an inside of the supply/discharge port and discharging a fluid accumulated between the liner and the reinforcing layer to the supply/discharge port is provided in the ferrule, and a trap groove surrounding a circumferential region of the discharge hole is provided on at least any one of the abutting surface on the flange part side and the abutting surface on the liner side.
RESERVOIR MADE OF COMPOSITE MATERIAL FOR CONTAINING A PRESSURE FLUID
A reservoir made of a composite material includes a tubular element, two end fittings, each inserted into one end of the tubular element, and a circumferential layer that envelops the tubular element and the end fittings. The circumferential layer is made of resin-impregnated wound fibers. At least one segment of each end fitting has an outwardly tapering shape and the wall of the tubular element has a taper at each end, and thus at each end the wall is pressed against the segment surface having a tapering shape. The tubular element includes a plastic tube surrounded by a longitudinal layer essentially made of parallel fibers in a resin matrix, the parallel fibers being oriented along the longitudinal axis of the plastic tube. Finally, the circumferential layer is essentially made of fibers wound around the circumference of the tubular element and end fittings and parallel to each other.
APPARATUS FOR OPENING SAFETY LOCKED BOTTLE CAPS
An apparatus for opening safety locked bottle caps is disclosed herein. The apparatus enables users to open safety locked bottle caps in a safe and effective manner. In one embodiment of the invention, the various elements of the inventive apparatus enable a user to remove a bottle cap when sufficient downward force is applied to the handle of the apparatus. In one embodiment, the apparatus is comprised of an engagement mechanism that lodges into the bottom portion of the bottle cap's outer lip. The engagement mechanism is designed to remain lodged within the bottle cap's outer lip through a substantial portion of the opening motion. This feature prevents the inventive apparatus from slipping-off from the bottle cap while a user is trying to remove the bottle cap from the bottle.
Method of cladding a pressure vessel
Cladding of the interior of a component part of a pressure vessel is shown. A lining which conforms to at least a portion of the interior geometry of the component is positioned in the interior of the component. The lining is then pressed into the component past its yield strength. The lining is then fused to the component.