Patent classifications
F28F3/14
Refrigeration devices including temperature-controlled container systems
In some embodiments, a refrigeration device includes: walls substantially forming a liquid-impermeable container configured to hold phase change material internal to the refrigeration device; at least one active refrigeration unit including a set of evaporator coils positioned at least partially within the liquid-impermeable container; a unidirectional thermal conductor with a condensing end and an evaporative end, the condensing end positioned within the liquid-impermeable container; a first aperture in the liquid-impermeable container, the first aperture of a size, shape and position to permit the set of evaporator coils to traverse the aperture; a second aperture in the liquid-impermeable container, the second aperture including an internal surface of a size, shape and position to mate with an external surface of the unidirectional thermal conductor; and one or more walls substantially forming a storage region in thermal contact with the evaporative end of the unidirectional thermal conductor.
Refrigeration devices including temperature-controlled container systems
In some embodiments, a refrigeration device includes: walls substantially forming a liquid-impermeable container configured to hold phase change material internal to the refrigeration device; at least one active refrigeration unit including a set of evaporator coils positioned at least partially within the liquid-impermeable container; a unidirectional thermal conductor with a condensing end and an evaporative end, the condensing end positioned within the liquid-impermeable container; a first aperture in the liquid-impermeable container, the first aperture of a size, shape and position to permit the set of evaporator coils to traverse the aperture; a second aperture in the liquid-impermeable container, the second aperture including an internal surface of a size, shape and position to mate with an external surface of the unidirectional thermal conductor; and one or more walls substantially forming a storage region in thermal contact with the evaporative end of the unidirectional thermal conductor.
Heat exchanger having a passage pipe
An inner fin is a wave fin having board portions extending in a pipe longitudinal direction and a top portion connecting the board portions located adjacent with each other. The wave fin has a wave-shaped cross-section perpendicularly intersecting a pipe longitudinal direction, and the board portion is bent into a waveform extending in the pipe longitudinal direction when seen from a pipe layering direction. A wave pitch WP [mm], a wave depth WD [mm], and a passage width H [mm] are set to satisfy relationships of 2.2≤WP/WD≤4.28 and 0.5≤WD/H≤1.8.
COOLING PLATE FOR AN ELECTRICAL ENERGY STORAGE ELEMENT
The invention relates to a cooling plate for an electric energy storage element, said cooling plate comprising at least two non-detachably interconnected metal sheets and at least one plastic covering. The joined metal sheets comprise at least one cooling channel which can be created by separating means.
COOLING PLATE FOR AN ELECTRICAL ENERGY STORAGE ELEMENT
The invention relates to a cooling plate for an electric energy storage element, said cooling plate comprising at least two non-detachably interconnected metal sheets and at least one plastic covering. The joined metal sheets comprise at least one cooling channel which can be created by separating means.
HEAT TRANSFERRING DEVICE AND HEAT TRANSFERRING COMPONENT THEREOF
The present disclosure provides a heat transferring device and a heat transferring component thereof. The heat transferring device includes a heat transferring component, a lower plate and a positioning component. The heat transferring component is in a shape of pouch and includes at least one input end and at least one output end to allow a fluid to be inputted and outputted. The lower plate includes at least one first perforation. The positioning component is disposed on an exterior of the heat transferring component. An end of the positioning component is connected to the lower plate.
HEAT DISSIPATION PLATE AND METHOD FOR MANUFACTURING THE SAME
A method for manufacturing a heat dissipation device that includes stamping a composite plate including a welding material to form a first plate having a plurality of angled grooves, depositing powder in the plurality of angled grooves of the first plate, contacting the first plate to a second plate, and welding the first plate and the second plate together, and sintering powder to obtain a capillary structure.
HEAT DISSIPATION PLATE AND METHOD FOR MANUFACTURING THE SAME
A method for manufacturing a heat dissipation device that includes stamping a composite plate including a welding material to form a first plate having a plurality of angled grooves, depositing powder in the plurality of angled grooves of the first plate, contacting the first plate to a second plate, and welding the first plate and the second plate together, and sintering powder to obtain a capillary structure.
HEAT EXCHANGER WITH THERMAL STRESS-RELIEF AREAS
A heat exchanger with a front group of heat exchange conduits extending between a front inlet tank and a front outlet tank. A rear group of heat exchange conduits extend between a rear inlet tank and a rear outlet tank. A reinforcing plate is adjacent to the front group of heat exchange conduits and the rear group of heat exchange conduits to restrict twisting thereof. A first stress-relief area of the reinforcing plate is proximate to, and spaced apart from, both the front inlet tank and the rear inlet tank. A second stress-relief area of the reinforcing plate is proximate to, and spaced apart from, both the front outlet tank and the rear outlet tank.
HEAT EXCHANGER WITH THERMAL STRESS-RELIEF AREAS
A heat exchanger with a front group of heat exchange conduits extending between a front inlet tank and a front outlet tank. A rear group of heat exchange conduits extend between a rear inlet tank and a rear outlet tank. A reinforcing plate is adjacent to the front group of heat exchange conduits and the rear group of heat exchange conduits to restrict twisting thereof. A first stress-relief area of the reinforcing plate is proximate to, and spaced apart from, both the front inlet tank and the rear inlet tank. A second stress-relief area of the reinforcing plate is proximate to, and spaced apart from, both the front outlet tank and the rear outlet tank.