Controlled defrost for refrigeration systems
11125488 · 2021-09-21
Assignee
Inventors
- Teddy Glenn Bostic, Jr. (Summerville, SC, US)
- Gregory Joseph Deutschmann (Mt. Pleasant, SC, US)
- Chang H. Luh (Summerville, SC, US)
- Laura Steiner (Mt. Pleasant, SC, US)
Cpc classification
F25D16/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D21/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D29/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61J1/165
HUMAN NECESSITIES
F25D11/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D21/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25D21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D29/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D16/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Defrosting refrigeration equipment meeting the strict requirements for storage of vaccines provided by the Center for Disease Control, California Vaccine for Children, American Academy of Pediatrics, Vaccines for Children (VFC) and the North Dakota Department of Health among others. Vaccine refrigeration storage must maintain consistent temperatures between −58 degrees Fahrenheit and 5 degrees Fahrenheit. The invention utilizes temperature variation moderating heat reservoirs consisting of high specific or latent heat capacity materials to significantly reduce the cycle temperature variation while maintaining the ability to successfully defrost the freezer.
Claims
1. A refrigeration system having an automatic defrost cycle, said refrigeration system comprising: a compressor, condenser, evaporator and fan arranged and disposed to provide refrigeration to the refrigeration system with the automatic defrost cycle; a digital controller that regulates the refrigeration system and also initiates the automatic defrost cycle; a product storage chamber for storing a plurality of individual bottles of vaccine at a predetermined temperature variance even during the automatic defrost cycle to maintain vaccine viability; a temperature variance moderation chamber adjacent to said vaccine storage compartment; wherein said temperature variance moderation chamber further comprises: a plurality of thermal reservoirs made of materials having a latent heat capacity to reduce a cycle temperature variation while maintaining the ability to defrost the refrigeration system during the automatic defrost cycle; a dividing plenum wall dividing said temperature variance moderation chamber from said product storage chamber; wherein said plenum wall has a plurality of integrated retaining clips for holding said plurality of thermal reservoirs to said plenum wall and wherein said plenum wall having a plurality of vents to provide convection between said plurality of thermal reservoirs and said product storage chamber wherein said automatic defrost cycle maintains the temperature variance of the product storage chamber so that the temperature of the product storage chamber does not exceed a consistent temperature requirement; wherein the evaporator is disposed in an evaporator chamber that is separated from the product storage chamber by the temperature variation moderation chamber.
2. The refrigeration system of claim 1 wherein said product storage chamber has a volume ratio relative to the volume of said temperature variance moderation chamber ranging from 3 to 5.5.
3. The refrigeration system of claim 2 wherein said product storage chamber has a volume ratio relative to the volume of said temperature variance moderation chamber of 4.6.
4. The refrigeration system of claim 1 wherein said plurality of thermal reservoirs has a latent heat relative to the volume of said product storage chamber ranging from 100 to 600 ((J/g)/in.sup.3).
5. The refrigeration system of claim 4 wherein said plurality of thermal reservoirs having a latent heat relative to the volume of said product storage chamber of 260 ((J/g)/in.sup.3).
6. The refrigeration system of claim 1 wherein said product storage chamber has a product storage chamber area ratio of a total inwardly facing wall surface area of the product storage chamber to a total inwardly facing wall surface area of said dividing plenum wall ranging from 1 to 10.
7. The refrigeration system of claim 6 wherein said product storage chamber area ratio is about 3.1.
8. The refrigeration system of claim 1 wherein the temperature variation moderation chamber has a temperature variation moderation chamber area ratio of a total inwardly facing wall surface area of said dividing plenum wall to a total outer surface area of said plurality of thermal reservoirs ranging from 0.5 to 4.0.
9. The refrigeration system of claim 8 wherein the temperature variation moderation chamber area ratio is about 1.8.
10. The refrigeration system of claim 1 wherein said product storage chamber is maintained at temperature ranging from a minimum delta of 0° C. higher temperature to a maximum delta of −10° C. higher temperature than the freezing point of at least one of said plurality of thermal reservoirs.
11. The refrigeration system of claim 1 wherein said product storage chamber is maintained at a temperature ranging from a minimum delta of 0° C. lower temperature to a maximum delta of −20° C. lower temperature according to the at least one consistent temperature requirement for the plurality of individual bottles of vaccine in said product storage chamber.
12. The refrigeration system of claim 1 wherein the freezing point temperature of said plurality of thermal reservoirs is maintained at a temperature ranging from a minimum delta of 0° C. lower temperature to a maximum delta of −20° C. lower temperature than the recommended storage temperature of the plurality of individual bottles of vaccine in said product storage chamber.
13. The refrigeration system of claim 1 wherein, during the storage of vaccines in said product storage chamber, said refrigeration system draws down the temperature of said product storage chamber using a vapor compression cycle utilizing a refrigerant selected from the group consisting of R600, R290, and a mixture of the two.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
DETAILED DESCRIPTION OF THE INVENTION
(2) The invention generally relates to the field of hybrid refrigeration and the ability to precisely control temperature, moderate temperature due to heating processes, extend passive temperature control timeframes, better assure product quality and reduce manual maintenance requirements. Refrigeration systems typically rely on intermittent heating cycles to eliminate the accumulation of frost. Typical defrosting technologies raise the temperature of the air within the freezer to levels unacceptable for certain applications due to this heating cycle.
(3) Referring now to
(4) Evaporator 6 is approximately 80 to 160 linear inches of metal tubing approximately 0.25 inches in diameter with fins for heat transfer and integrated evaporator heating element 19 and expansion device 5 such as an orifice or small diameter tube residing within the evaporator chamber 20. Also included in the system is an axial airflow induction fan 7 approximately 3.50 inches in diameter, mounted on the chamber dividing wall 18 and digital controller 9 as manufactured by Dixell (part number XR70 or XR75) that measures chamber temperature and regulates refrigeration system operation.
(5) The evaporator heating element 19 is an electrically resistive component that becomes hot when subject to electric current. The insulated freezer housing 1 is constructed of an inner and outer shell containing an insulating material 2. Access to the interior of the system is provided by a similarly insulated door 3.
(6) Evaporator 6 is separated from the product storage chamber 14 by the temperature variance moderation chamber 12. Chilled air is circulated by the axial airflow induction fan 7.
(7) The temperature variance moderation chamber 12 (the newly defined volume) can be constructed from plastic or metal.
(8) Temperature variance moderation chamber 12 consists of a dividing plenum wall 11, with a plurality of integrated retaining clips 17, a plurality of vents 13 located to induce beneficial convection and sized to optimize the thermal transfer to the indicated thermal reservoirs 10. The two to four thermal reservoirs 10 are nominally 8.5 inch×7.5 inch×0.88 inch.
(9) Temperature variance moderation chamber 12 is adjacent to the product storage chamber 14.
(10) Stored frozen vaccine 15 is contained in product storage chamber 14. The stored frozen vaccine 15 can hold many individual bottles containing a single dose of vaccine. The stored frozen vaccine 15 can be stored loose or contained in trays or baskets 16.
(11) Proportionalities and relationships between the various elements in this embodiment are critical to successful operation and are identified as follows:
(12) Product storage chamber 14 volume relative to the temperature variance moderation chamber 12 volume ratio is nominally 4.6 having a tolerance zone of 3 to 5.5.
(13) The latent heat of reservoirs 10 ratio to product storage chamber 14 volume is nominally 260 ((J/g)/in.sup.3) having a tolerance zone of 100 to 600 ((J/g)/in.sup.3).
(14) Product storage chamber 14 area relative to dividing plenum wall 11 inward surface area ratio is nominally 3.1 having a tolerance zone of 1 to 10.
(15) Dividing plenum wall 11 inward surface relative to the total thermal reservoir 10 surface area ratio is nominally 1.8 having a tolerance zone of 0.5 to 4.0.
(16) Product storage chamber 14 is maintained at a minimum delta of 0° C. higher temperature to a maximum delta of −10° C. higher temperature than the freezing point of the thermal reservoir 10.
(17) Product storage chamber 14 is maintained at a minimum delta of 0° C. lower temperature to a maximum delta of −20° C. lower temperature than the recommended storage temperature of the stored frozen vaccine 15.
(18) Thermal reservoirs 10 freezing point temperature is a minimum delta of 0° C. lower temperature to a maximum delta of −20° C. lower temperature than the recommended storage temperature of the stored frozen vaccine 15.
(19) At storage, the refrigeration systems draws down the temperature of the product storage chamber 14 using a typical vapor compression cycle utilizing R600, R290 or a mixture of the two as a refrigerant.
(20) As temperature variance moderation chamber 12 and product storage chamber 14 temperature is reduced to the minimum operating range (typically −25° C.), thermal reservoirs 10 loose heat through this process.
(21) When digital controller 9 initiates an automatic defrost cycle and the refrigeration system is inactive thermal reservoirs 10 absorb heat via free convection in product storage chamber 14 and maintain the temperature of product storage chamber 14 below the critical vaccine storage temperature throughout the defrost cycle.
(22) Critically, as a process parameter, axial airflow induction fan 7 will not engage until the air temperature around evaporator 6 and in the evaporator chamber 20 has dropped to between −5° C. and −20° C. after a defrost cycle.
(23) Critically, thermal reservoirs 10 and plenum dividing wall 11 create a thermal barrier between evaporator 20 and product storage chamber 14 so the temperature increase induced by evaporator heating element 19 during a defrost cycle does not adversely affect the stored frozen vaccine 15.
(24) Although the present invention has been described with reference to certain preferred embodiments thereof, other versions are readily apparent to those of ordinary skill in the preferred embodiments contained herein.