COOLING CONTAINER USING PHASE CHANGE MATERIAL AND METHOD FOR OPERATING
20240271851 ยท 2024-08-15
Inventors
Cpc classification
F25D3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2700/121
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2303/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D17/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2317/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25D3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D17/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A cooling container having a coolant chamber and a product chamber. Cooling gases from the coolant chamber circulate between the coolant chamber and the product chamber to retain the latter at a desired low temperature. In one embodiment the cooling gases flow through a radiator disposed in the product chamber. In another embodiment a heat exchanger is provided on a divider wall between the coolant chamber and the product chamber. When a temperature sensor detects that the temperature in the product chamber exceeds a temperature set point, a controller opens valves that allow cool gases in the coolant chamber to circulate through the radiator or across the heat exchanger to lower the temperature in the product chamber.
Claims
1. A cooling container using phase change materials, the cooling container comprising: a container body having insulated side and bottom walls, an insulated center divider, a top opening defined by the side walls, and one or more lids, the side and bottom walls defining an interior compartment, the one or more lids for fitting over the top opening to seal off the compartment, the center divider separating the interior compartment into a coolant chamber and a product chamber, the coolant chamber sized for holding a coolant, the product chamber sized for holding products, the center divider including first and second apertures, the coolant and product chambers in communication with each other through said first and second apertures, a controller, a power source in communication with the controller, and a sensor disposed in the product chamber, the sensor in communication with the controller, a fan in communication with the controller and in operative communication with the first aperture, wherein when the sensor detects a temperature in the product chamber above a selected threshold, the controller is configured to activate the fan so that cool gases from the coolant chamber flow through the first aperture into the product chamber and gases from the product chamber are flow the second aperture back into the coolant chamber, thereby maintaining the temperature in the product chamber below said threshold.
2. The cooling container of claim 1 further comprising: the coolant including phase change materials.
3. The cooling container of claim 1 further comprising: a length of sealed conduit disposed in the product chamber extending between the first and second apertures for retaining cooling gases.
4. The cooling container of claim 3 wherein: the length of sealed conduit comprises one or more coils.
5. The cooling container of claim 1 wherein: the divider includes a sealed air gap.
6. The cooling container of claim 1 further comprising: a valve in communication with the first aperture for restricting the flow of gases from the coolant chamber to the product chamber to one direction, wherein the controller is configured to activate the valve when the sensor detects a temperature in the product chamber above a selected threshold.
7. The cooling container of claim 1 wherein: the one or more lids comprises two lids, each of the two lids closing one of the coolant and product chambers.
8. A cooling container using phase change materials, the cooling container comprising: a container body having insulated side and bottom walls, an insulated center divider, a top opening defined by the side walls, and one or more lids, the side and bottom walls defining a chamber, the one or more lids for fitting over the top opening to seal off the chamber, the center divider separating the chamber into a coolant chamber and a product chamber, the coolant chamber sized for holding a coolant, the product chamber sized for holding products, a controller, a power source in communication with the controller, a sensor in communication with the controller, the sensor disposed in the product chamber, and the center divider including first and second partitions and first and second apertures, the first and second partitions spaced apart to define a circulation chamber, the coolant and circulation chambers in communication with each other through said first and second apertures, the first partition including a heat exchanger having a cold side and a hot side, the cold side extending into the circulation chamber and the hot side extending into the product chamber such that heat in the air in the product chamber is transferred from the hot side heat exchanger to the cold side heat exchanger into the circulation chamber, a fan for driving air from the coolant chamber to the circulation chamber through the first aperture, the fan in communication with the controller, wherein when the sensor detects a temperature in the product chamber above a selected threshold, the controller is configured to activate the fan so that cool air from the coolant chamber is driven into the circulation chamber through the first aperture, heat is extracted from the product chamber via the heat exchanger into the circulation chamber, and warmed air from the circulation chamber flows through the second aperture back into the coolant chamber, thereby maintaining the temperature in the product chamber below said threshold.
9. The cooling container of claim 8 further comprising: a valve in communication with the second aperture for preventing back flow of gases from the circulation chamber to the coolant chamber.
10. The cooling container of claim 8 further comprising: the second partition including a sealed air gap.
11. A method for controlling the temperature in a cooling container, the container using phase change materials, the method comprising: detecting the temperature in a product chamber in a cooling container, activating a fan in a cooling chamber in the cooling container to circulate cooling gases between the cooling chamber and the product chamber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENT
[0017] A cooling container 10 that uses a phase change material (PCM) such as dry ice 12 (solid CO.sub.2) as a cooling medium according to the invention is shown in
[0018] The container 10 comprises an insulated bottom 18, side walls 20, and a removable lid 22. Cooling gas 24 (which may include cold CO.sub.2 gas such as created from sublimation of dry ice) in the PCM chamber 14 is circulated within the container 10 to control the amount of cooling that occurs in the product chamber 16. In the embodiment illustrated in
[0019] A temperature sensor 28 monitors the temperature in the product chamber 16 and is connected to a controller 30 to which power is supplied by a battery 32. In one embodiment, the battery may be rechargeable. The battery 32 in turn is connected to a power port 33 so that it can be charged.
[0020] When the product chamber 16 warms above a predetermined temperature set point, valves 34, 36 are opened that allow the cooling gas 24 to be circulated by a blower or fan 38 through the radiator 26 to cool the product chamber 16 but prevent CO.sub.2 from being introduced into the atmosphere of the product chamber. In one embodiment, the fan motor is located outside the coolant chamber 14. In another embodiment valves 34, 36 may be mechanically driven by, for instance, a solenoid, to allow passive cooling by gas flow due to temperature differences. In yet another embodiment valves 34, 36 are passive and spring loaded such that forced air opens them to increase the amount of cooling gas 24 moved through the product chamber 16. Circulation of cooling gas 24 is regulated by controller 30 to minimize self-induced movement of cooling gas due to temperature differences when it is not needed to cool the product chamber 16.
[0021] Cooling gas 24 circulating through the radiator 26 once returned to the coolant chamber 14 is directed through and around the PCM 12 to maintain the gas 24 at a low temperature. The PCM chamber 14 may contain baffles to route the circulating gas 24 through the PCM 12 as seen, for example, in
[0022] An insulating air gap or slot 42 in a center wall 44 may be provided to reduce unintended heat transfer from the product chamber 16 to the PCM chamber 14. Tubing or conduit of low thermal conductivity may also be used for that portion of the radiator that passes through the wall 44 to minimize unintended cooling of the product chamber 16.
[0023] In one embodiment of the cooling container, lid 22 may be divided, as seen in
[0024] The embodiment 200 shown in
[0025] In the embodiment 300 shown in
[0026] Another embodiment 400 of a cooling container according to the invention, shown in
[0027] Electronic controls 436 are disposed atop the center wall 422 as seen and are connected to the fan 434 and a temperature sensor 438 disposed in the product chamber 416. Electronic controls 436 may include a battery, power connections, a display, and a controller. Each of the coolant and product chambers 414, 416 has a lid 440, 442, equipped with a handle. Excess coolant gas 426 may be released from the coolant chamber 414 via valve 444 provided in the side wall 420 thereof.
[0028] In operation, when the temperature in the product chamber 416 rises above a set level, a controller in the electrical controls 436 activates the fan 434 causing cooling gas 426 from the cooling chamber 414 to circulate through the product chamber 416 until a desired low temperature is reached. The PCM is arranged on baffles 415 so that the cooling gas 426 is more effectively cooled as it circulates through and around the PCM.
[0029] With reference now to
[0030] In another aspect of the invention which could be implemented in connection with any of the embodiments discussed above, a heat sink could be provided in the coolant chamber upon which the PCM could be disposed. In such an implementation, heat is absorbed by the heat sink from the air in the coolant chamber and the PCM absorbs heat from the heat sink for more efficient heat transfer. An aluminum heat sink would be suitable in such an embodiment.
[0031] In one aspect of the invention fuzzy logic is used in a method to determine when and how much to open the fan or fans in the device and how much to open the valves. For example, considering again the embodiment shown in
[0032] A high level method for operating the cooling container is shown in
[0033] In another embodiment of a cooling container according to the invention, the product chamber is maintained at a desired temperature by proportionally controlling the fans and valves which govern the amount of cooling gas that circulates between the cooling chamber and the product chamber. Thus, with reference now to
[0034] There have thus been described and illustrated certain embodiments of a/an cooling container that uses PCM as a cooling medium according to the invention. Although the present invention has been described and illustrated in detail, it should be clearly understood that the disclosure is illustrative only and is not to be taken as limiting, the spirit and scope of the invention being limited only by the terms of the appended claims and their legal equivalents.