Refrigeration system with enveloping air circulation around product chamber
11698216 · 2023-07-11
Assignee
Inventors
- Kevin Herrera Blackwood (Summerville, SC, US)
- Teddy Glen Bostic, Jr. (Summerville, SC, US)
- Gloria Christine Corrine Welther Burchett (Moncks Corner, SC, US)
- Mark Andrew James (Goose Creek, SC, US)
- Jonathan Matthew Kolaski (Ridgeville, SC, US)
- Jeffrey Alan Madill (Summerville, SC, US)
- John Lee Warder (Summerville, SC, US)
Cpc classification
F25D17/062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2317/062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2317/0651
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2317/0665
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A refrigeration system including a storage chamber configured to store a product at a predetermined temperature. The storage chamber is defined by an inner wall. The inner wall at least partially defines an air plenum. The inner wall includes an opening wall surface, a floor surface, a rear wall surface and a ceiling wall surface. The system also includes a refrigerant circuit including a compressor, a condenser, a condenser fan, an evaporator and an evaporator fan arranged and disposed in an operable configuration to provide refrigeration to the storage chamber. The air plenum includes a conduit arranged and disposed to convey air from an air inlet across the evaporator and into a discharge chamber and out an air outlet. The air outlet is configured to discharge cooled air in a direction toward the opening wall surface.
Claims
1. A refrigeration system comprising: a storage chamber configured to store a product at a predetermined temperature, the storage chamber defined by an inner wall, the inner wall at least partially defining an air plenum, the inner wall including an opening wall surface, a floor surface, a rear wall surface and a ceiling wall surface; a refrigerant circuit including a compressor, a condenser, a condenser fan, an evaporator and an evaporator fan arranged and disposed in an operable configuration to provide refrigeration to the storage chamber; wherein the air plenum includes a conduit arranged and disposed to convey air from an air inlet across the evaporator and into a discharge chamber and out an air outlet, the air outlet being configured to discharge cooled air in a direction toward the opening wall surface and being positioned at the top of the storage chamber no farther than 12 inches from the opening wall surface and no closer than ½ inch from opening wall surface.
2. The system of claim 1, wherein the air plenum arrangement and storage chamber are arranged and disposed to provide an enveloping airflow that travels from the air outlet of the air plenum along the opening wall surface, across the floor surface and into the air inlet of the air plenum.
3. The system of claim 2, wherein the enveloping airflow envelops at least ½ the volume of the storage chamber.
4. The system of claim 1, wherein the discharge chamber is positioned downstream from the evaporator fan and upstream from the air outlet.
5. The system of claim 1, the opening wall surface includes an inwardly facing surface of an opening that includes a solid or transparent door.
6. The system of claim 1, wherein the refrigeration circuit includes a non-proportional controller operating in a manner that meets or exceeds the temperature control and recovery requirements set forth in the NSF 456-2021 standard defining construction and temperature performance requirements for refrigerators and freezers used for storing vaccines.
7. The system of claim 1, wherein the refrigeration circuit includes a parametric (non-proportional) digital controller that regulates the refrigeration system to operate within a set point and a temperature differential where the system will repeat the refrigeration cycle.
8. The system of claim 1, wherein the product includes a plurality of individual bottles of vaccine or boxes containing a plurality of bottles at a predetermined temperature variance as defined by the NSF 456-2021 standard.
9. The system of claim 1, wherein the refrigeration circuit includes proportional controllers and variable refrigeration effect vapor cycle type refrigeration systems.
10. The system of claim 1, wherein the inner wall is formed of a material selected from the group consisting of aluminum, stainless-steel components, plastic and combinations thereof.
11. The system of claim 1, wherein the ceiling wall surface is arranged and disposed to reduce airflow losses and help prevent unwanted airflow into portions of the upper volumes of the storage chamber.
12. The system of claim 1, wherein the refrigeration system is a retrofitted refrigerator.
13. A method for operating a refrigeration system comprising: providing a storage chamber to store a product at a predetermined temperature, the storage chamber defined by an inner wall, the inner wall at least partially defining an air plenum, the inner wall including an opening wall surface, a floor surface, a rear wall surface and a ceiling wall surface; providing a refrigerant circuit including a compressor, a condenser, a condenser fan, an evaporator and an evaporator fan arranged and disposed in an operable configuration to provide refrigeration to the storage chamber; conveying air from an air inlet, in the air plenum, across the evaporator and into a discharge chamber and out an air outlet, the air outlet being configured to discharge cooled air in a direction toward the opening wall surface; discharging cooled air in a direction toward the opening wall surface through the air outlet, the air outlet being positioned at the top of the storage chamber no farther than 12 inches from the opening wall surface and no closer than ½ inch from opening wall surface.
14. The method of claim 13, further comprising forming an enveloping airflow that travels from the air outlet of the air plenum along the opening wall surface, across the floor surface and into the air inlet of the air plenum.
15. The method of claim 14, wherein the enveloping airflow envelops at least ½ the volume of the storage chamber.
16. The method of claim 13, wherein the air plenum includes an internal baffle arranged and disposed to reduce airflow losses and help prevent unwanted airflow into portions of the upper volumes.
17. The method of claim 13, wherein the refrigeration system is a retrofitted refrigerator.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(9) Wherever possible, the same reference numbers will be used throughout the drawings to represent the same parts.
DETAILED DESCRIPTION OF THE INVENTION
(10) Provided is a refrigeration system that provides a benefit of exhausting air in a direction to the front of the unit rather than the rear and downwards causing the system to operate in a fundamentally different way because there is more room for air mixing, product cannot be positioned to block airflow and in turn temperature homogenization is improved.
(11) The refrigeration system according to the present disclosure relates generally to the field of refrigeration for the storage of vaccines, blood products, food products, lab specimens and any application that requires tightly controlled temperature stability and uniformity. Temperature stability is defined as the largest temperature gradient experienced at a single point in the refrigerated chamber over a period of time. Temperature uniformity is defined as the maximum temperature experience across all points in the refrigerated chamber at any point in time during the testing period.
(12) The disclosed method utilizes a novel air handling plenum that leverages intrinsic properties of the thermal system and construction to greatly improve the product chamber temperature uniformity and stability in comparison to systems with non-critical plenum designs or without plenums. Although this system manages airflow with an air plenum that specifically directs airflow, it is the novel leveraging of the entire thermal system and construction that achieves the performance improvements.
(13) Important to the benefits provided by embodiments of the refrigeration system according to the present disclosure is the partial envelopment of the product chamber improving the uniformity and stability of the air temperature. The differentiators significantly impact the product chamber uniformity and stability parameters.
(14) Embodiments of the present disclosure result in configurations that function in a superior way in comparison to all other known methodologies of homogenizing and stabilizing air temperatures employed in conventional (non-proportional) compressor driven, vapor cycle refrigeration systems. Such systems, employed in medical, pharmaceutical, food service and industrial applications generally rely on the same basic configuration and all have some measure of the issues inherent to such configurations.
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(16) Unlike the system shown in
(17) The inner wall 201 includes an opening wall surface 205, a floor surface 207, a rear wall surface 209 and a ceiling wall surface 211 all of which provide surfaces that bound the storage chamber 107. The air plenum 203 formed by the inner wall 201 corresponding to the rear wall surface 209 and the ceiling wall surface 211 conveys air from an air inlet 213 to an air outlet 215 across the evaporator 101 and the evaporator fan 111. The evaporator fan 111 in the embodiment of
(18) The configuration of refrigeration system 100 provides an air inlet 213 at the bottom of the storage chamber 107 causing an airflow that is counter to the natural convection of warmer air greatly enhancing uniformity though active mixing and counterflowing of cold and warm air currents. In one embodiment, the air inlet 213 intakes air through a plurality of vents in the bottom, rear of the storage chamber 107. In an exemplary embodiment, the distance from the celling wall surface 211 to the single or plurality of air inlet return openings 213 is two thirds to four fifths the height of the product storage chamber 107. In alternative embodiments, there is a step construction in the back wall of the product storage chamber 107 and the distance from the celling wall surface 211 to the single or plurality of air inlet return openings 213 is one half the height of the product storage chamber 107. In addition, the embodiments of the present disclosure eliminate the ejection of cold air along the back wall to the bottom of the chamber where the cold exiting air reinforces the cold air naturally residing at the back rear of the unit. The conventional rear, downward cold air ejection exacerbates the naturally cold regions (colder air naturally falls). This elimination, as is present in the embodiments of the present disclosure, serves to better homogenize the temperature distribution within the chamber. In addition, the embodiments of the present disclosure direct air from the top, front of the chamber to the bottom portion of the rear of the chamber homogenizing temperature variances in the storage chamber 107. This greatly reduces unwanted recirculation effects common in conventional configurations that limits air exchange in the lower volumes, particularly when the chamber is loaded with product. In one embodiment, the air outlet 215 ejects air forward towards the opening 115 of the refrigeration system 100 though a plurality of vents at the top of the chamber no farther than 12 inches from the door and no closer than ½ inch from the opening 115.
(19) Also shown in
(20) Embodiments of the present disclosure are adaptable and retrofittable to common, conventional refrigerator configurations via reversal of flow direction and incorporation of inner wall 201 components to form an air plenum on systems having an evaporator located in the top and ejecting air down the rear wall.
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(24) The arrangement according to the present disclosure, as exemplified in
(25) In addition, the arrangement according to the present disclosure, as exemplified in
(26) While the invention has been described with reference to one or more embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment disclosed as the best mode contemplated for carrying out this invention, but that the invention will include all embodiments falling within the scope of the appended claims. In addition, all numerical values identified in the detailed description shall be interpreted as though the precise and approximate values are both expressly identified.