Insulation and cooling system for temperature sensitive materials
20210389027 · 2021-12-16
Assignee
Inventors
Cpc classification
F25B21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2321/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An insulation and cooling system for temperature sensitive materials is disclosed. The system removes the risk of heat back-flow from the powered down cooler to the cooled volume, and in doing so increases the potential battery life of the device and removes the risk of the contents rapidly heating when the cooler loses power.
Claims
1. An insulated cooling system for storing temperature-sensitive materials, comprising: a housing comprising: at least one battery; a first segment of insulated tubing and a second segment of insulated tubing, wherein each segment has the same length; a third segment of insulated tubing having a length that is lesser than the length of the first and second segments of insulated tubing; an internal heat exchanger; a plurality of heat sinks; a plurality of fans; an insulating volume comprising a plurality of ports; a plurality of thermoelectric (Peltier) coolers; a plurality of thermistors; a circuit board; a pump comprising an inlet and an outlet; a water block comprising a first and second ports; a plastic housing comprising a hinge and a plurality of holes; wherein the first segment of insulated tubing is attached to said first port of said water block and is attached to the outlet of said internal heat exchanger; wherein the second segment of insulated tubing is attached to an outlet of said pump and is attached to an inlet of said internal heat exchanger; wherein the third segment of insulated tubing is attached to the inlet of said pump and attached to the second port of said water block; wherein said water block is placed in between two of said plurality of thermoelectric (Peltier) coolers; wherein said two of said plurality of thermoelectric (Peltier) coolers are attached to said plurality of heat sinks; wherein said plurality of fans are attached to said plurality of heat sinks; and wherein said circuit board, said Peltier coolers, said pump, said plurality of fans, said plurality of thermistors, and said at least one battery are all connected.
2. The insulated cooling system of claim 1, where said circuit board, said Peltier coolers, said pump, said plurality of fans, said plurality of thermistors, and said at least one battery are all connected using an insulated copper wiring.
3. The insulated cooling system of claim 1, further comprising a programable screen.
4. The insulated cooling system of claim 1, further comprising thermal paste spread between said Peltier coolers and said plurality of heat sinks.
5. The insulated cooling system of claim 1, further comprising thermal paste spread between said Peltier coolers and said water block.
6. The insulated cooling system of claim 1, comprising a radiator or other heat-dissipation mechanism.
7. The insulated cooling system of claim 1, wherein said insulating volume comprises a vacuum flask, or container with a highly-insulating volume.
8. The insulated cooling system of claim 1, comprising a liquid reservoir instead of said internal heat exchanger.
9. The insulated cooling system of claim 1, further comprising a data collection and sharing system for performance and temperature monitoring.
10. The insulated cooling system of claim 1, wherein the first and second segment of insulated tubing measure 75 mm.
11. The insulated cooling system of claim 1, wherein the third segment of insulated tubing measure 45 mm.
12. The insulated cooling system of claim 1, wherein the first segment of insulated tubing is attached to said first port of said water block, and is run through a port in said insulated volume and is attached to the outlet of said internal heat exchanger.
13. The insulated cooling system of claim 1, wherein the second segment of insulated tubing is attached to an outlet of said pump, and is run through a port in said insulated volume and attached to an inlet of said internal heat exchanger;
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The accompanying drawings, which are incorporated herein, constitute part of the specifications, and illustrate the preferred embodiment of the invention.
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DETAILED DESCRIPTION OF THE INVENTION
[0025] As stated above, the present invention relates to an insulation and cooling system or device A for storing temperature sensitive materials. Temperature-sensitive medications, bio-components, and many other expensive materials require cold storage, otherwise they risk degradation and spoilage. With current portable devices used to store these expensive materials, battery life is relatively short (4-8 hours) and when their batteries die, the latent heat within the cooling system heats the contents very quickly. This drastically increases the risk of spoiling. There is currently no small, portable cooling and storage solution with a long battery life to protect these materials. The invention claimed here solves this problem. The present invention implements a highly insulated volume and separates the thermal connection between the insulated volume and the cooler unit when powered down, increasing battery life and preventing heat back-flow to the contents.
[0026] The claimed invention differs from what currently exists. Previous means of storing temperature-sensitive medicines and bio-components in battery-powered devices have short battery life and risk the spoiling of the stored materials because the cooling units must be powered on nearly incessantly, otherwise the latent heat within the cooling unit flows to the stored materials. This invention solves this problem by implementing a highly-insulated volume in which to store the materials, and separating the cooling unit from said volume with a short cooling loop, reducing the run-time of the cooling unit and eliminating the latent heat from flowing to the materials when powered off.
[0027] Because of this heat flow to the cooled volume when the coolers are powered off, the current devices on the market have to run the coolers nearly incessantly, limiting the battery life of the devices, and when the batteries die, the contents of the devices very quickly heat up, risking spoiling.
[0028] As shown in
[0029] As shown in
[0030] The insulation and cooling system or device A measures the temperature of the thermistors inside the vacuum flask every few seconds. When the temperature is higher than 7 degrees Celsius (or whatever temperature is programmed by the user), the device powers on the Peltier coolers, fans. This cools the water block. Attached to this water block is a second thermistor, which reads the temperature of the water block every few seconds. Once the temperature of the water block reaches within the specified temperature range, the pump is powered on. This pumps liquid through the water block (cooling the liquid) and circulates the liquid into the vacuum flask to remove the heat from contents of the vacuum flask. When the temperature is measured to be below 4 degrees Celsius (or whatever temperature is programmed by the user) the device powers off the Peltier cooler and pump. This severs the thermal connection between the cooler and the cooled volume, leaning on the insulating properties of the vacuum flask (or similar highly-insulated volume) to maintain the temperature of the contents.
[0031] A highly-insulated lid for the vacuum flask would increase the insulation potential of the invention. Adding additional thermistors in other locations may improve the temperature monitoring and reporting. The fans (8) and heat sinks (7) could be replaced with another cooling solution, such as a radiator, pump and fan, or a passive cooling solution. The vacuum flask (2) could be replaced with another highly-insulating volume. The invention could function with only one Peltier cooler (6), heat sink (7), and fan (8). The fans (8), heat sinks (7), Peltier coolers (6), water block (5), and pump (4) could be interchanged with another cooling system, such as a standard vapor compression refrigeration system. The fans (8) and the heat sinks (7) could be replaced with another form of heat dissipation. The internal heat exchanger (3) could be replaced with a liquid reservoir, or other form of heat exchanger. The vacuum flask (2) could use one port, multiple ports, or no port. The vacuum flask (2) could have the port or ports in another location. Piping fixtures instead of port holes could improve the functionality of the vacuum flask.
[0032] As shown in
[0033] The user would insert a battery pack (1), open the top of Device A, insert their temperature-sensitive materials into the vacuum flask, close the top, and power on the device. Additionally, the present invention could be used for the cooling, heating, and/or transportation of goods other than temperature-sensitive medications and bio-components. The size of the vacuum flask, the power of the cooling system, and the size of the battery pack (1) can be altered to fit different needs. If built large enough, the invention could serve as a refrigerator for all types of goods. If miniaturized, the device could cool and/or transport very smaller quantities of temperature sensitive goods.
[0034] Although certain exemplary embodiments and methods have been described in some detail, for clarity of understanding and by way of example, it will be apparent from the foregoing disclosure to those skilled in the art that variations, modifications, changes, and adaptations of such embodiments and methods may be made without departing from the true spirit and scope of the claims. Therefore, the above description should not be taken as limiting the scope of the invention.
[0035] The invention is not limited to the precise configuration described above. While the invention has been described as having a preferred design, it is understood that many changes, modifications, variations and other uses and applications of the subject invention will, however, become apparent to those skilled in the art without materially departing from the novel teachings and advantages of this invention after considering this specification together with the accompanying drawings. Accordingly, all such changes, modifications, variations and other uses and applications which do not depart from the spirit and scope of the invention are deemed to be covered by this invention as defined in the following claims and their legal equivalents. In the claims, means plus function clauses, if any, are intended to cover the structures described herein as performing the recited function and not only structural equivalents but also equivalent structures.
[0036] All of the patents, patent applications, and publications recited herein, and in the Declaration attached hereto, if any, are hereby incorporated by reference as if set forth in their entirety herein. All, or substantially all, the components disclosed in such patents may be used in the embodiments of the present invention, as well as equivalents thereof. The details in the patents, patent applications, and publications incorporated by reference herein may be considered to be incorporable at applicant's option, into the claims during prosecution as further limitations in the claims to patently distinguish any amended claims from any applied prior art.