US20240426537A1 - Walk-in refrigeration system - Google Patents
Walk-in refrigeration system Download PDFInfo
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- US20240426537A1 US20240426537A1 US18/829,020 US202418829020A US2024426537A1 US 20240426537 A1 US20240426537 A1 US 20240426537A1 US 202418829020 A US202418829020 A US 202418829020A US 2024426537 A1 US2024426537 A1 US 2024426537A1
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- Prior art keywords
- wall
- walk
- plenum
- interface
- zone
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D17/00—Arrangements for circulating cooling fluids; Arrangements for circulating gas, e.g. air, within refrigerated spaces
- F25D17/04—Arrangements for circulating cooling fluids; Arrangements for circulating gas, e.g. air, within refrigerated spaces for circulating air, e.g. by convection
- F25D17/06—Arrangements for circulating cooling fluids; Arrangements for circulating gas, e.g. air, within refrigerated spaces for circulating air, e.g. by convection by forced circulation
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D13/00—Stationary devices, e.g. cold-rooms
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D23/00—General constructional features
- F25D23/06—Walls
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D25/00—Charging, supporting, and discharging the articles to be cooled
- F25D25/02—Charging, supporting, and discharging the articles to be cooled by shelves
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D17/00—Arrangements for circulating cooling fluids; Arrangements for circulating gas, e.g. air, within refrigerated spaces
- F25D17/005—Arrangements for circulating cooling fluids; Arrangements for circulating gas, e.g. air, within refrigerated spaces in cold rooms
Definitions
- the disclosure herein relates generally to walk-in refrigerators, including walk-in freezers and coolers.
- walk-in coolers and freezers are typically designed and used primarily in the commercial food service industry. While demand for walk-in refrigerators for residential use has recently risen, simply placing a commercial system into a residential environment raises numerous issues related, for example, to noise, user comfort and temperature management. These issues, among others, are addressed by implementations of the systems disclosed herein.
- FIG. 1 is a diagrammatic perspective view illustrating one example walk-in refrigeration system in accordance with the present disclosure
- FIG. 2 is a further diagrammatic perspective view of the example walk-in refrigeration system of FIG. 1 ;
- FIG. 3 is diagrammatic side view of the example walk-in refrigeration system of FIG. 1 ;
- FIG. 4 is diagrammatic front view of the example walk-in refrigeration system of FIG. 1 ;
- FIG. 5 is diagrammatic cross-sectional view taken along lines 5 - 5 in FIG. 3 ;
- FIG. 6 is magnified view of detail 6 in FIG. 5 ;
- FIG. 7 is diagrammatic cross-sectional view taken along lines 7 - 7 in FIG. 4 ;
- FIG. 8 is magnified view of a portion of FIG. 7 ;
- FIG. 9 is magnified view of detail 9 in FIG. 8 ;
- FIG. 10 is diagrammatic perspective view of the walk-in refrigeration system of FIG. 1 subjected to the cross-sectional cut applied in FIG. 7 ;
- FIG. 11 is magnified view of detail 11 in FIG. 10 , illustrating details of an example air curtain plenum and associate features;
- FIG. 12 is diagrammatic partial cross-sectional view taken along lines 12 - 12 in FIG. 3 , illustrating example air flow and temperature control of the system;
- FIG. 13 is magnified view of detail 13 in FIG. 12 ;
- FIG. 14 is diagrammatic perspective view of the walk-in refrigeration system of FIG. 1 subjected to the cross-sectional cut along lines 14 - 14 in FIG. 3 ;
- FIG. 15 is magnified view of detail 15 in FIG. 14 , illustrating an example interface panel with vent segment, and associated components and features;
- FIG. 16 is magnified view of detail 16 in FIG. 14 , further illustrating an example interface panel with vent segment, and associated components and features;
- FIG. 17 is a diagrammatic partial perspective view illustrating an initial unlocking movement of an example interface panel out of its secured engagement with associated standoff brackets, thereby allowing the interface panel to be removed from the associated interface wall;
- FIG. 18 is a diagrammatic partial perspective view similar to that of FIG. 17 , but wherein the interface panel is shown having been removed from the associated interface wall;
- FIG. 19 is a partial perspective view of an example standoff bracket
- FIG. 20 is a partial front view of the example standoff bracket of FIG. 19 ;
- FIG. 21 is a diagrammatic plan view of an example interface panel blank cut out of sheet metal stock
- FIG. 22 is a diagrammatic perspective view of an example interface panel formed from the interface panel blank of FIG. 21 after undergoing the requisite bending operations;
- FIG. 23 is a diagrammatic partial perspective view of an example interface panel with metering element in disassembled configuration
- FIG. 24 is a diagrammatic partial perspective view similar to that of FIG. 23 , but wherein the example interface panel with metering element is shown in an assembled configuration;
- FIG. 25 is a diagrammatic partial perspective view of the walk-in refrigeration system, showing details of an interface panel with metering element, and associated components and features;
- FIG. 26 is a diagrammatic perspective view of the example walk-in refrigeration system of FIG. 1 , but with the insulation walls and associated outer panels shown removed from the remainder of the system;
- FIG. 27 is a further diagrammatic perspective view of the example walk-in refrigeration system of FIG. 1 , but without the insulation walls and associated outer panels;
- FIG. 28 is a diagrammatic partial perspective view of the example walk-in refrigeration system of FIG. 1 , but without the roof insulation wall so as to reveal details of the ceiling panel assembly and supply plenum;
- FIG. 29 is a diagrammatic top view of the example walk-in refrigeration system of FIG. 1 , but without the roof insulation wall so as to reveal details of the ceiling panel assembly and supply plenum;
- FIG. 30 is a diagrammatic perspective view of an example ceiling panel assembly
- FIG. 31 is a diagrammatic partial perspective view of an example intermediate panel
- FIG. 32 is a diagrammatic partial perspective view of an example intermediate shelf bracket
- FIG. 33 is a diagrammatic perspective view of an example first inboard wall assembly, shown in a disassembled configuration
- FIG. 34 is a diagrammatic perspective view of the example first inboard wall assembly of FIG. 33 , but shown in an assembled configuration;
- FIG. 35 is a further diagrammatic perspective view of the example first inboard wall assembly of FIG. 34 ;
- FIG. 36 is a diagrammatic perspective view of an example second inboard wall assembly, shown in an assembled configuration
- FIG. 37 is a further diagrammatic perspective view of the example second inboard wall assembly of FIG. 36 ;
- FIG. 38 is a diagrammatic perspective view of an example third inboard wall assembly, shown in an assembled configuration
- FIG. 39 is a further diagrammatic perspective view of the example third inboard wall assembly of FIG. 38 ;
- FIG. 40 is diagrammatic cross-sectional view taken along lines 5 - 5 in FIG. 3 , but wherein the walk-in refrigeration system further includes a third inboard wall assembly disposed at the rear of the insulated compartment; and
- FIG. 41 is diagrammatic cross-sectional view of a further example implementation of a walk-in refrigeration system, illustrating example airflow and temperature control aspects of the system.
- the system 100 may comprise a main enclosure 102 , an insulted compartment 128 , a main door 132 , and one or more inboard wall assemblies (such as shown at 170 , 172 , 173 ).
- the main enclosure 102 may have a first lateral insulation wall 104 , a second lateral insulation wall 106 disposed oppositely thereof, a rear insulation wall 108 , a front insulation wall 110 , and a roof insulation wall 112 .
- the first lateral insulation wall 104 may comprise one or more first lateral insulation panels 116 .
- the second lateral insulation wall may comprise one or more a second lateral insulation panels 118 .
- the rear insulation wall 108 may comprise one or more rear insulation panels 120 .
- the front insulation wall 110 may comprise one or more front insulation panels 122 .
- the room insulation wall 112 may comprise one or more roof insulation panels 124 .
- the insulation panels may comprise, for example, a conventional thermal insulation material.
- the insulated compartment 128 may be defined within the main enclosure 102 .
- the main enclosure 102 may be configured to thermally insulate the insulated compartment 128 from an ambient environment 130 external to the main enclosure 10 .
- the insulated compartment 128 may include a first shelf refrigeration zone 144 , a second shelf refrigeration zone 146 , a walk-in zone 148 , a first wall plenum 150 , a second wall plenum 152 , and a supply plenum 154 .
- One or more lateral shelves 138 may be supportedly mounted within the first and second shelf refrigeration zones. Referring o FIG. 15 , the shelves 138 may preferably include shelf base apertures 168 .
- the main door 132 may be disposed between the walk-in zone 148 and the ambient environment 130 , and may be configured to be opened (e.g., by way of hinged or slidable movement of the main door 132 with respect to the front insulation wall 110 ) to enable a person (i.e., the person's complete body) to pass entirely between the ambient environment 130 and the walk-in zone 148 .
- the main door 132 may be mounted in the front insulation wall, and may include a main door handle 162
- the front door 132 may have a transparent portion which allows the insulated compartment 128 to be viewable from a viewing position outside the main door 132 while the main door 132 is closed.
- the main door 132 may include an inner window panel 156 and outer window panel 158 , with spacing (e.g., gas compartment) therebetween to facilitate the insulative characteristics of the main door 132 .
- This spacing may sealingly house a gas such as, for example, air or Argon.
- the system 100 may include a floor portion 114 .
- the floor portion 114 may include a floor ramp portion 164 disposed between the main door 132 and the walk-in zone 148 .
- a floor trough 160 may be disposed within the floor portion 114 , for example toward the bottom of the floor ramp portion 164 .
- the supply plenum 154 may be disposed between the roof insulation wall 112 and a ceiling panel 246 , and may be configured to retain an evaporator 226 of a heat exchange subsystem 224 therein.
- the heat exchange subsystem 224 may include the evaporator 226 , an evaporator fan 228 , a condenser 230 , a condenser fan 232 , a compressor 234 and an expansion valve 236 .
- the evaporator fan 228 may include a variable-speed motor.
- a remote portion 238 of the heat exchange subsystem 224 may be defined by at least the condenser 230 , the condenser fan 232 and the compressor 234 .
- the remote portion 238 may be placed at a selected distance from the main enclosure 102 . Remoting the refrigeration reduces the internal BTU/H heat load of a house within which the system 100 operates.
- the first wall plenum 150 may be defined between the first lateral insulation wall 104 and a first interface wall 248 .
- the second wall plenum 152 may be defined between the second lateral insulation wall 106 and a second interface wall 250 .
- the first wall plenum 150 may be in airflow communication between the supply plenum 154 and the first shelf refrigeration zone 144 .
- the second wall plenum 152 may be in airflow communication between the supply plenum 154 and the second shelf refrigeration zone 146 .
- the walk-in zone 148 may be disposed between the first shelf refrigeration zone 144 and the second shelf refrigeration zone 146 .
- Example system 100 airflow is illustrated in FIG. 41 , which includes wall plenum airflow 268 , discharge airflow 270 and return airflow 272 .
- the first interface wall 248 may include a plurality of flow discharge ports 176 configured to direct airflow from the first wall plenum 150 to the first shelf refrigeration zone 144 .
- the second interface wall 250 may include a plurality of flow discharge ports 176 configured to direct airflow from the second wall plenum 152 to the second shelf refrigeration zone 146 .
- the flow discharge ports may be of various shapes and sizes, such as circular or elongated.
- preferred implementations of the walk-in refrigeration system 100 comprise one or more air movement devices, such as wall plenum blower fans 184 , to move air from the supply plenum 154 to the respective wall plenums.
- one or more wall plenum blower fans 184 may be mounted in airflow communication between the supply plenum 154 and the first wall plenum 150 (example wall plenum airflow being shown at 268 ).
- one or more wall plenum blower fans 184 may be mounted in airflow communication between the supply plenum 154 and the second wall plenum 152 .
- the plenum blower fans 184 may include a blower shroud 186 to assist in directing air from the supply plenum 154 to the respective wall plenum.
- certain implementations of the walk-in refrigeration system 100 may comprise an auxiliary access door 142 in communication between the ambient environment 130 and the first shelf refrigeration zone 144 .
- Such an access door would allow a user to selectively reach into the first shelf refrigeration zone 144 without having to entirely enter the walk-in refrigeration system 100 through the main door 132 .
- the first interface wall 248 may be comprised of an array of first interface panels 134 .
- the second interface wall 250 may be comprised of an array of second interface panels 136 .
- the first interface panels 134 may be individually removable and replaceable with respect to the first interface wall 248 .
- the second interface panels 136 may be individually removable and replaceable with respect to the second interface wall 250 .
- the first interface panels 134 and second interface panels 136 may each include a vent segment 174 .
- the vent segments 174 of the first interface panels 134 may define flow discharge ports 176 in the first interface wall 248 configured to direct airflow from the first wall plenum 150 to the first shelf refrigeration zone 144 .
- the vent segments 174 of the second interface panels 136 may define flow discharge ports 176 in the second interface wall 250 configured to direct airflow from the second wall plenum 152 to the second shelf refrigeration zone 146 .
- the first interface wall 248 may be mounted at a distance inward of the first lateral insulation wall 104 by way of one or more standoff brackets 166 , thereby forming the first wall plenum 150 .
- the second interface wall 250 may be is mounted at a distance inward of the second lateral insulation wall 106 by way of one or more standoff brackets 166 , thereby forming the second wall plenum 152 .
- the standoff brackets 166 may be configured to be affixed to the respective insulation wall by way of, for example, self-tapping screws, adhesives, a combination thereof or the like. For example, with reference to FIG.
- the standoff bracket 166 may include one or more wall mount flanges 198 , which in turn may include several wall mounting apertures 200 for receiving self-tapping screws therethrough.
- this standoff bracket configuration could facilitate retrofitting of existing walk-in refrigerators, by enabling inboard wall assemblies such as those shown at 170 , 172 and 173 to be rapidly sized and affixed to respective interior walls of the existing refrigerator.
- the standoff brackets 166 may be elongated along standoff bracket axis 202 , and may include a multiplicity of panel mount apertures 194 .
- the first interface panels 134 and second interface panels 136 may each include panel mounting portions 192 configured to mountingly engage the panel mount apertures 194 .
- the panel mount apertures 194 may take the form of elongated vertical slots, and the panel mounting portions 192 may be in the form of planar hooks configured to be received by the slots 194 and thereafter moved into secured engagement with the standoff bracket 166 .
- the standoff brackets 166 may include a multiplicity of shelf mount apertures 196 .
- the system 100 may include shelf brackets 182 (see, for example, FIG. 32 ) having shelf bracket mounting portions 190 configured to mountingly engage the shelf mount aperture 196 .
- the system 100 may comprise a plurality of lateral shelves 138 supportedly mounted to respective shelf brackets 182 within the first refrigeration zone 144 and second shelf refrigeration zone 146 .
- the shelf mount apertures 196 may be disposed between the panel mount apertures 194 .
- the standoff brackets 166 may include air passthrough ports 262 . In such case, on each standoff bracket 166 , the panel mount apertures 194 may be disposed between the air passthrough ports 262 .
- the ceiling panel 246 may include a ceiling vent 126 in airflow communication between the walk-in zone 148 and the evaporator 226 . Most preferably, the ceiling vent 126 is disposed directly above (e.g., in lateral alignment with) the walk-in zone 148 . Referring to FIGS. 28 - 30 , an example of a ceiling panel assembly 244 is shown.
- particular implementations of the walk-in refrigeration system 100 may further comprise one or more wall plenum blower fans 184 mounted in airflow communication between the supply plenum 154 and an air curtain plenum 252 above the main door 132 .
- An air curtain discharge vent 254 may be disposed between the air curtain plenum 252 and the area directly inside the main door 132 , to generate an air curtain 188 across the main door 132 .
- the plenum blower fans 184 corresponding to the air curtain plenum 252 may be configured to turn on only when the main door 132 is opened.
- certain implementations of the system 100 may further comprise a light reflector element 256 disposed within the air curtain plenum 252 .
- the light reflector element 256 may be configured to reflect light from a light source horizontally (e.g., parallel to light direction 258 ) toward the walk-in zone 148 .
- the light source may be, for example, an LED fixture or the like. Referring to FIG. 9 , the LED fixture may be mounted in, for example, an LED fixture mount 260 .
- the insulated compartment 128 may include a rear shelf refrigeration zone 147 and a rear wall plenum 153 .
- the rear wall plenum 153 may be defined between the rear insulation wall 108 and a rear interface wall 251 .
- the rear wall plenum 153 may be in airflow communication between the supply plenum 154 and the rear shelf refrigeration zone 147 .
- the rear shelf refrigeration zone 147 may be disposed between the rear interface wall 251 and the walk-in zone 148 .
- One or more rear shelves 140 may be supportedly mounted within the rear shelf refrigeration zone 147 .
- the rear interface wall may be defined by an array of third interface panels 137 .
- a walk-in refrigeration system 100 may further comprise one or more intermediate panels 204 .
- the intermediate panels 204 may have one or more light fixture mounts 264 and one or more light emission apertures 266 .
- the intermediate panels 204 may also include a plurality of panel mounting portions 192 configured to mountingly engage the panel mount apertures 194 in the standoff brackets.
- the vent segment 174 may each include one or more capture inlet ports 178 and a flow deflection portion 180 disposed in airflow communication between the one or more capture inlet ports 178 and the flow discharge port 176 of the vent segment 178 .
- the flow deflection portion 180 may be configured to change the direction of airflow entering the one or more capture inlet ports 178 as it flows toward the flow discharge port 176 .
- the flow deflection portion 180 may present a ramp angle of, for example, between 30-60 degrees, and preferably 45 degrees, to the incoming wall plenum airflow.
- the interface panels may be formed from an interface panel blank 242 , which may be comprised of a sheet metal. The interface panel blank 242 may be cut out, then bent as indicated to form the interface panel shown in FIG. 22 .
- one or more of the interface panels may include an actuatable metering element 208 .
- Actuation of the metering element 208 (e.g., in direction 240 ) may be configured to selectably restrict the airflow through the one or more capture inlet ports 178 .
- each metering element 208 may include a meter actuation tab 212 configured to extend through a respective one of the one or more capture inlet ports 178 .
- the selectable restriction of the airflow through the capture inlet ports 178 may be by way of adjustable alignment offset between metering apertures 210 in the metering element 208 , and respective capture inlet ports 178 .
- a capture face 206 on the upper edge of the vent segment 174 may provide a guiding surface for slidable engagement between the metering element 208 and the vent segment 174 .
- the metering element 208 may be slidably attached to the vent segment 174 by way of a metering element fastener 214 (e.g., a threaded bolt) extending through a fastener aperture 222 in the vent segment 174 , through a transportation guide slot 220 in the metering element 208 , and secured by a fastener detent 216 (e.g., a threaded nut) on the other side.
- a washer 218 may also be implemented as shown.
- the particular removable interface panels shown at 134 , 136 and 137 provide aesthetic advantages, for example by hiding the flow discharge ports 176 from a user standing within the walk-in zone 148 . Also, the configuration of these interface panels direct air to and across product placed on adjacent shelves to optimize product cooling. These interface panels can be removed by hand for easy cleaning, and the flow discharge ports 176 are hidden (laterally and from above) to prevent food or liquids from entering the respective wall plenum in the event of spillage.
- the system 100 implementations shown in the several figures provide lock-in shelving to prevent accidental dislodging of the shelves from the respective walls. Certain aspects of the system 100 , including plenum configuration and fan placements, help minimize the noise experienced by a user standing within the walk-in zone. Conventional commercial walk-in boxes tend to have uneven temperatures due to poor air circulation throughout the entire refrigeration compartment.
- the supply plenum 154 of the disclosed system 100 serves as a cooling reservoir feeding multiple wall plenums.
- the blower fans pull from the supply plenum to enable the wall plenums to efficiently and quietly circulate the cooled air throughout the environment in which the product is stored.
- the distributed airflow configuration of the system 100 also increases the comfort of the user within the walk-in zone, in part by preventing evaporator fans from blowing large, concentrated volumes of cold air into the walk-in space.
- the inboard wall assemblies are made up of onboard air panels (otherwise referred to herein as interface panels) held, for example, 1.5 inches off the insulated wall which creates an air plenum.
- onboard air panels alsowise referred to herein as interface panels
- a series of hidden sensor controlled, silent secondary squirrel cage fans which are mounted where side walls meet ceiling. Secondary fans push condensed refrigerated air down the backside of panels. Plenums build pressure forcing the air out the elongated vents that are across each air wall panel. Air then pulled back up to the return in the ceiling and then repeats 360 vortex cycle.
- Onboard air panels can easily be removed in seconds without the use of tools, for cleaning and/or to change out to a different color for aesthetic transformation.
- Each airwall vent segment may have an independent adjustable damper (metering element) to infinitely control the rate of speed air can flow, going full discharge when completely open, to zero when completely closed. This will allow moisture control preventing dryness of produce and or other unpackaged foods.
- the inboard wall assemblies work as an intervening refrigerated air supply, discharging cold air from ceiling to floor through concealed slots that blow air down to a 45° angle which deflects air across shelves. This allows for optimal cold air distribution throughout every square inch of the walk-in cooler.
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Abstract
An exemplary walk-in refrigeration system comprises an insulated compartment. A supply plenum is disposed between a roof insulation wall and a ceiling panel. A pair of opposing wall plenums are respectively defined between a corresponding lateral insulation wall and a corresponding interface wall. Each wall plenum is in airflow communication between the supply plenum and a respective shelf refrigeration zone. A walk-in zone is disposed between the shelf refrigeration zones. The interface walls each include a plurality of flow discharge ports which direct airflow from the respective wall plenum to the respective shelf refrigeration zone. Each interface wall may comprise an array of removable and replaceable interface panels. The interface panels may each include a vent segment with one or more capture inlet ports. An actuatable metering element on the vent segment may allow a user to selectably restrict airflow through the capture inlet ports independently for each interface panel.
Description
- This application claims the benefit of U.S. Provisional Application No. 63/296,709 filed Jan. 5, 2022, the content of which is incorporated by this reference in its entirety for all purposes as if fully set forth herein.
- The disclosure herein relates generally to walk-in refrigerators, including walk-in freezers and coolers.
- Historically, walk-in coolers and freezers are typically designed and used primarily in the commercial food service industry. While demand for walk-in refrigerators for residential use has recently risen, simply placing a commercial system into a residential environment raises numerous issues related, for example, to noise, user comfort and temperature management. These issues, among others, are addressed by implementations of the systems disclosed herein.
- One or more deficiencies of the prior art are solved by way of embodiments of a walk-in refrigeration system, and components, subassemblies and methods thereof, in accordance with the present disclosure.
- Further advantages of the present invention may become apparent to those skilled in the art with the benefit of the following detailed description of the preferred embodiments and upon reference to the accompanying drawings in which:
-
FIG. 1 is a diagrammatic perspective view illustrating one example walk-in refrigeration system in accordance with the present disclosure; -
FIG. 2 is a further diagrammatic perspective view of the example walk-in refrigeration system ofFIG. 1 ; -
FIG. 3 is diagrammatic side view of the example walk-in refrigeration system ofFIG. 1 ; -
FIG. 4 is diagrammatic front view of the example walk-in refrigeration system ofFIG. 1 ; -
FIG. 5 is diagrammatic cross-sectional view taken along lines 5-5 inFIG. 3 ; -
FIG. 6 is magnified view ofdetail 6 inFIG. 5 ; -
FIG. 7 is diagrammatic cross-sectional view taken along lines 7-7 inFIG. 4 ; -
FIG. 8 is magnified view of a portion ofFIG. 7 ; -
FIG. 9 is magnified view ofdetail 9 inFIG. 8 ; -
FIG. 10 is diagrammatic perspective view of the walk-in refrigeration system ofFIG. 1 subjected to the cross-sectional cut applied inFIG. 7 ; -
FIG. 11 is magnified view ofdetail 11 inFIG. 10 , illustrating details of an example air curtain plenum and associate features; -
FIG. 12 is diagrammatic partial cross-sectional view taken along lines 12-12 inFIG. 3 , illustrating example air flow and temperature control of the system; -
FIG. 13 is magnified view ofdetail 13 inFIG. 12 ; -
FIG. 14 is diagrammatic perspective view of the walk-in refrigeration system ofFIG. 1 subjected to the cross-sectional cut along lines 14-14 inFIG. 3 ; -
FIG. 15 is magnified view ofdetail 15 inFIG. 14 , illustrating an example interface panel with vent segment, and associated components and features; -
FIG. 16 is magnified view ofdetail 16 inFIG. 14 , further illustrating an example interface panel with vent segment, and associated components and features; -
FIG. 17 is a diagrammatic partial perspective view illustrating an initial unlocking movement of an example interface panel out of its secured engagement with associated standoff brackets, thereby allowing the interface panel to be removed from the associated interface wall; -
FIG. 18 is a diagrammatic partial perspective view similar to that ofFIG. 17 , but wherein the interface panel is shown having been removed from the associated interface wall; -
FIG. 19 is a partial perspective view of an example standoff bracket; -
FIG. 20 is a partial front view of the example standoff bracket ofFIG. 19 ; -
FIG. 21 is a diagrammatic plan view of an example interface panel blank cut out of sheet metal stock; -
FIG. 22 is a diagrammatic perspective view of an example interface panel formed from the interface panel blank ofFIG. 21 after undergoing the requisite bending operations; -
FIG. 23 is a diagrammatic partial perspective view of an example interface panel with metering element in disassembled configuration; -
FIG. 24 is a diagrammatic partial perspective view similar to that ofFIG. 23 , but wherein the example interface panel with metering element is shown in an assembled configuration; -
FIG. 25 is a diagrammatic partial perspective view of the walk-in refrigeration system, showing details of an interface panel with metering element, and associated components and features; -
FIG. 26 is a diagrammatic perspective view of the example walk-in refrigeration system ofFIG. 1 , but with the insulation walls and associated outer panels shown removed from the remainder of the system; -
FIG. 27 is a further diagrammatic perspective view of the example walk-in refrigeration system ofFIG. 1 , but without the insulation walls and associated outer panels; -
FIG. 28 is a diagrammatic partial perspective view of the example walk-in refrigeration system ofFIG. 1 , but without the roof insulation wall so as to reveal details of the ceiling panel assembly and supply plenum; -
FIG. 29 is a diagrammatic top view of the example walk-in refrigeration system ofFIG. 1 , but without the roof insulation wall so as to reveal details of the ceiling panel assembly and supply plenum; -
FIG. 30 is a diagrammatic perspective view of an example ceiling panel assembly; -
FIG. 31 is a diagrammatic partial perspective view of an example intermediate panel; -
FIG. 32 is a diagrammatic partial perspective view of an example intermediate shelf bracket; -
FIG. 33 is a diagrammatic perspective view of an example first inboard wall assembly, shown in a disassembled configuration; -
FIG. 34 is a diagrammatic perspective view of the example first inboard wall assembly ofFIG. 33 , but shown in an assembled configuration; -
FIG. 35 is a further diagrammatic perspective view of the example first inboard wall assembly ofFIG. 34 ; -
FIG. 36 is a diagrammatic perspective view of an example second inboard wall assembly, shown in an assembled configuration; -
FIG. 37 is a further diagrammatic perspective view of the example second inboard wall assembly ofFIG. 36 ; -
FIG. 38 is a diagrammatic perspective view of an example third inboard wall assembly, shown in an assembled configuration; -
FIG. 39 is a further diagrammatic perspective view of the example third inboard wall assembly ofFIG. 38 ; -
FIG. 40 is diagrammatic cross-sectional view taken along lines 5-5 inFIG. 3 , but wherein the walk-in refrigeration system further includes a third inboard wall assembly disposed at the rear of the insulated compartment; and -
FIG. 41 is diagrammatic cross-sectional view of a further example implementation of a walk-in refrigeration system, illustrating example airflow and temperature control aspects of the system. - Referring now to the drawings, like reference numerals designate identical or corresponding features throughout the several views.
- With reference to the several drawings, example implementations of a walk-in refrigeration system are shown generally at 100. Referring to
FIGS. 1, 5 and 40 , thesystem 100 may comprise amain enclosure 102, an insultedcompartment 128, amain door 132, and one or more inboard wall assemblies (such as shown at 170, 172, 173). - Referring to
FIGS. 5, 7 and 26 , themain enclosure 102 may have a firstlateral insulation wall 104, a secondlateral insulation wall 106 disposed oppositely thereof, arear insulation wall 108, afront insulation wall 110, and aroof insulation wall 112. The firstlateral insulation wall 104 may comprise one or more firstlateral insulation panels 116. The second lateral insulation wall may comprise one or more a secondlateral insulation panels 118. Therear insulation wall 108 may comprise one or morerear insulation panels 120. Thefront insulation wall 110 may comprise one or morefront insulation panels 122. Theroom insulation wall 112 may comprise one or moreroof insulation panels 124. The insulation panels may comprise, for example, a conventional thermal insulation material. - Referring to
FIGS. 5 and 7 , theinsulated compartment 128 may be defined within themain enclosure 102. Themain enclosure 102 may be configured to thermally insulate theinsulated compartment 128 from anambient environment 130 external to the main enclosure 10. Referring toFIGS. 5 and 41 , theinsulated compartment 128 may include a firstshelf refrigeration zone 144, a secondshelf refrigeration zone 146, a walk-inzone 148, afirst wall plenum 150, asecond wall plenum 152, and asupply plenum 154. One or morelateral shelves 138 may be supportedly mounted within the first and second shelf refrigeration zones. Referring oFIG. 15 , theshelves 138 may preferably includeshelf base apertures 168. - Referring to
FIG. 5 , themain door 132 may be disposed between the walk-inzone 148 and theambient environment 130, and may be configured to be opened (e.g., by way of hinged or slidable movement of themain door 132 with respect to the front insulation wall 110) to enable a person (i.e., the person's complete body) to pass entirely between theambient environment 130 and the walk-inzone 148. Themain door 132 may be mounted in the front insulation wall, and may include amain door handle 162 Thefront door 132 may have a transparent portion which allows theinsulated compartment 128 to be viewable from a viewing position outside themain door 132 while themain door 132 is closed. For example, themain door 132 may include aninner window panel 156 andouter window panel 158, with spacing (e.g., gas compartment) therebetween to facilitate the insulative characteristics of themain door 132. This spacing may sealingly house a gas such as, for example, air or Argon. Referring toFIGS. 5 and 7 , thesystem 100 may include afloor portion 114. Thefloor portion 114 may include afloor ramp portion 164 disposed between themain door 132 and the walk-inzone 148. Afloor trough 160 may be disposed within thefloor portion 114, for example toward the bottom of thefloor ramp portion 164. - Referring to
FIGS. 7 and 12 , thesupply plenum 154 may be disposed between theroof insulation wall 112 and aceiling panel 246, and may be configured to retain anevaporator 226 of aheat exchange subsystem 224 therein. Theheat exchange subsystem 224 may include theevaporator 226, anevaporator fan 228, acondenser 230, acondenser fan 232, acompressor 234 and anexpansion valve 236. Theevaporator fan 228 may include a variable-speed motor. Aremote portion 238 of theheat exchange subsystem 224 may be defined by at least thecondenser 230, thecondenser fan 232 and thecompressor 234. Theremote portion 238 may be placed at a selected distance from themain enclosure 102. Remoting the refrigeration reduces the internal BTU/H heat load of a house within which thesystem 100 operates. - Referring to
FIGS. 5 and 41 , thefirst wall plenum 150 may be defined between the firstlateral insulation wall 104 and afirst interface wall 248. Similarly, thesecond wall plenum 152 may be defined between the secondlateral insulation wall 106 and asecond interface wall 250. - Referring to
FIGS. 12 and 41 , thefirst wall plenum 150 may be in airflow communication between thesupply plenum 154 and the firstshelf refrigeration zone 144. Similarly, thesecond wall plenum 152 may be in airflow communication between thesupply plenum 154 and the secondshelf refrigeration zone 146. Referring toFIGS. 5 and 41 , the walk-inzone 148 may be disposed between the firstshelf refrigeration zone 144 and the secondshelf refrigeration zone 146.Example system 100 airflow is illustrated inFIG. 41 , which includeswall plenum airflow 268,discharge airflow 270 and returnairflow 272. - Referring to
FIGS. 35 and 41 , thefirst interface wall 248 may include a plurality offlow discharge ports 176 configured to direct airflow from thefirst wall plenum 150 to the firstshelf refrigeration zone 144. Similarly, referring toFIGS. 35 and 41 , thesecond interface wall 250 may include a plurality offlow discharge ports 176 configured to direct airflow from thesecond wall plenum 152 to the secondshelf refrigeration zone 146. Depending upon the particular implementation of thesystem 100, the flow discharge ports may be of various shapes and sizes, such as circular or elongated. - Referring to
FIGS. 12 and 41 , preferred implementations of the walk-inrefrigeration system 100 comprise one or more air movement devices, such as wallplenum blower fans 184, to move air from thesupply plenum 154 to the respective wall plenums. More example, one or more wallplenum blower fans 184 may be mounted in airflow communication between thesupply plenum 154 and the first wall plenum 150 (example wall plenum airflow being shown at 268). Similarly, one or more wallplenum blower fans 184 may be mounted in airflow communication between thesupply plenum 154 and thesecond wall plenum 152. Theplenum blower fans 184 may include ablower shroud 186 to assist in directing air from thesupply plenum 154 to the respective wall plenum. - Referring to
FIGS. 1 and 5 , certain implementations of the walk-inrefrigeration system 100 may comprise anauxiliary access door 142 in communication between theambient environment 130 and the firstshelf refrigeration zone 144. Such an access door would allow a user to selectively reach into the firstshelf refrigeration zone 144 without having to entirely enter the walk-inrefrigeration system 100 through themain door 132. - Referring to
FIGS. 33 and 35 , thefirst interface wall 248 may be comprised of an array offirst interface panels 134. Similarly, referring toFIG. 36 , thesecond interface wall 250 may be comprised of an array ofsecond interface panels 136. - Referring to
FIGS. 17 and 18 , thefirst interface panels 134 may be individually removable and replaceable with respect to thefirst interface wall 248. Similarly, thesecond interface panels 136 may be individually removable and replaceable with respect to thesecond interface wall 250. - Referring to
FIGS. 15, 16 and 41 , thefirst interface panels 134 andsecond interface panels 136 may each include avent segment 174. Thevent segments 174 of thefirst interface panels 134 may define flowdischarge ports 176 in thefirst interface wall 248 configured to direct airflow from thefirst wall plenum 150 to the firstshelf refrigeration zone 144. Similarly, thevent segments 174 of thesecond interface panels 136 may define flowdischarge ports 176 in thesecond interface wall 250 configured to direct airflow from thesecond wall plenum 152 to the secondshelf refrigeration zone 146. - Referring to
FIGS. 5 and 6 , thefirst interface wall 248 may be mounted at a distance inward of the firstlateral insulation wall 104 by way of one ormore standoff brackets 166, thereby forming thefirst wall plenum 150. Similarly, thesecond interface wall 250 may be is mounted at a distance inward of the secondlateral insulation wall 106 by way of one ormore standoff brackets 166, thereby forming thesecond wall plenum 152. Thestandoff brackets 166 may be configured to be affixed to the respective insulation wall by way of, for example, self-tapping screws, adhesives, a combination thereof or the like. For example, with reference toFIG. 19 , thestandoff bracket 166 may include one or morewall mount flanges 198, which in turn may include severalwall mounting apertures 200 for receiving self-tapping screws therethrough. Referring toFIGS. 33-39 , it is envisioned that this standoff bracket configuration could facilitate retrofitting of existing walk-in refrigerators, by enabling inboard wall assemblies such as those shown at 170, 172 and 173 to be rapidly sized and affixed to respective interior walls of the existing refrigerator. - Referring to
FIGS. 17-20 , thestandoff brackets 166 may be elongated alongstandoff bracket axis 202, and may include a multiplicity ofpanel mount apertures 194. Correspondingly, thefirst interface panels 134 andsecond interface panels 136 may each includepanel mounting portions 192 configured to mountingly engage thepanel mount apertures 194. For example, as illustrated inFIGS. 17-20 , thepanel mount apertures 194 may take the form of elongated vertical slots, and thepanel mounting portions 192 may be in the form of planar hooks configured to be received by theslots 194 and thereafter moved into secured engagement with thestandoff bracket 166. - Referring to
FIGS. 19 and 20 , thestandoff brackets 166 may include a multiplicity ofshelf mount apertures 196. Correspondingly, thesystem 100 may include shelf brackets 182 (see, for example,FIG. 32 ) having shelfbracket mounting portions 190 configured to mountingly engage theshelf mount aperture 196. Referring toFIGS. 15 and 41 , thesystem 100 may comprise a plurality oflateral shelves 138 supportedly mounted torespective shelf brackets 182 within thefirst refrigeration zone 144 and secondshelf refrigeration zone 146. Referring toFIG. 20 , in particular implementations of thesystem 100, on eachstandoff bracket 166, theshelf mount apertures 196 may be disposed between thepanel mount apertures 194. Moreover, referring toFIG. 19 , thestandoff brackets 166 may includeair passthrough ports 262. In such case, on eachstandoff bracket 166, thepanel mount apertures 194 may be disposed between the air passthroughports 262. - Referring to
FIGS. 12 and 41 , in preferred implementation of thesystem 100, theceiling panel 246 may include aceiling vent 126 in airflow communication between the walk-inzone 148 and theevaporator 226. Most preferably, theceiling vent 126 is disposed directly above (e.g., in lateral alignment with) the walk-inzone 148. Referring toFIGS. 28-30 , an example of aceiling panel assembly 244 is shown. - Referring to
FIGS. 8-11 , particular implementations of the walk-inrefrigeration system 100 may further comprise one or more wallplenum blower fans 184 mounted in airflow communication between thesupply plenum 154 and anair curtain plenum 252 above themain door 132. An aircurtain discharge vent 254 may be disposed between theair curtain plenum 252 and the area directly inside themain door 132, to generate anair curtain 188 across themain door 132. Theplenum blower fans 184 corresponding to theair curtain plenum 252 may be configured to turn on only when themain door 132 is opened. Referring toFIG. 11 , certain implementations of thesystem 100 may further comprise alight reflector element 256 disposed within theair curtain plenum 252. Thelight reflector element 256 may be configured to reflect light from a light source horizontally (e.g., parallel to light direction 258) toward the walk-inzone 148. The light source may be, for example, an LED fixture or the like. Referring toFIG. 9 , the LED fixture may be mounted in, for example, anLED fixture mount 260. - Referring to
FIGS. 38 and 40 , in certain implementations of the walk-inrefrigeration system 100, theinsulated compartment 128 may include a rearshelf refrigeration zone 147 and arear wall plenum 153. Therear wall plenum 153 may be defined between therear insulation wall 108 and arear interface wall 251. Therear wall plenum 153 may be in airflow communication between thesupply plenum 154 and the rearshelf refrigeration zone 147. The rearshelf refrigeration zone 147 may be disposed between therear interface wall 251 and the walk-inzone 148. One or morerear shelves 140 may be supportedly mounted within the rearshelf refrigeration zone 147. The rear interface wall may be defined by an array ofthird interface panels 137. - Referring to
FIGS. 31 and 33 , particular implementations of a walk-inrefrigeration system 100 may further comprise one or moreintermediate panels 204. Theintermediate panels 204 may have one or more light fixture mounts 264 and one or morelight emission apertures 266. Theintermediate panels 204 may also include a plurality ofpanel mounting portions 192 configured to mountingly engage thepanel mount apertures 194 in the standoff brackets. - Referring to
FIGS. 15 and 16 , in particular implementations of the walk-inrefrigeration system 100 in which the interface panels includevent segments 174, thevent segment 174 may each include one or morecapture inlet ports 178 and aflow deflection portion 180 disposed in airflow communication between the one or morecapture inlet ports 178 and theflow discharge port 176 of thevent segment 178. In such case, theflow deflection portion 180 may be configured to change the direction of airflow entering the one or morecapture inlet ports 178 as it flows toward theflow discharge port 176. Theflow deflection portion 180 may present a ramp angle of, for example, between 30-60 degrees, and preferably 45 degrees, to the incoming wall plenum airflow. As illustrated inFIGS. 21 and 22 , the interface panels may be formed from an interface panel blank 242, which may be comprised of a sheet metal. The interface panel blank 242 may be cut out, then bent as indicated to form the interface panel shown inFIG. 22 . - Moreover, referring to
FIGS. 23 and 24 , one or more of the interface panels (for example, interface panel 136) may include anactuatable metering element 208. Actuation of the metering element 208 (e.g., in direction 240) may be configured to selectably restrict the airflow through the one or morecapture inlet ports 178. Referring toFIG. 25 , eachmetering element 208 may include ameter actuation tab 212 configured to extend through a respective one of the one or morecapture inlet ports 178. The selectable restriction of the airflow through thecapture inlet ports 178 may be by way of adjustable alignment offset betweenmetering apertures 210 in themetering element 208, and respectivecapture inlet ports 178. Acapture face 206 on the upper edge of thevent segment 174 may provide a guiding surface for slidable engagement between themetering element 208 and thevent segment 174. As illustrated inFIGS. 23 and 24 , themetering element 208 may be slidably attached to thevent segment 174 by way of a metering element fastener 214 (e.g., a threaded bolt) extending through afastener aperture 222 in thevent segment 174, through atransportation guide slot 220 in themetering element 208, and secured by a fastener detent 216 (e.g., a threaded nut) on the other side. Awasher 218 may also be implemented as shown. - The particular removable interface panels shown at 134, 136 and 137 provide aesthetic advantages, for example by hiding the
flow discharge ports 176 from a user standing within the walk-inzone 148. Also, the configuration of these interface panels direct air to and across product placed on adjacent shelves to optimize product cooling. These interface panels can be removed by hand for easy cleaning, and theflow discharge ports 176 are hidden (laterally and from above) to prevent food or liquids from entering the respective wall plenum in the event of spillage. - The
system 100 implementations shown in the several figures provide lock-in shelving to prevent accidental dislodging of the shelves from the respective walls. Certain aspects of thesystem 100, including plenum configuration and fan placements, help minimize the noise experienced by a user standing within the walk-in zone. Conventional commercial walk-in boxes tend to have uneven temperatures due to poor air circulation throughout the entire refrigeration compartment. Thesupply plenum 154 of the disclosedsystem 100 serves as a cooling reservoir feeding multiple wall plenums. The blower fans pull from the supply plenum to enable the wall plenums to efficiently and quietly circulate the cooled air throughout the environment in which the product is stored. The distributed airflow configuration of thesystem 100 also increases the comfort of the user within the walk-in zone, in part by preventing evaporator fans from blowing large, concentrated volumes of cold air into the walk-in space. - In certain preferred embodiments of the
system 100, the inboard wall assemblies are made up of onboard air panels (otherwise referred to herein as interface panels) held, for example, 1.5 inches off the insulated wall which creates an air plenum. A series of hidden sensor controlled, silent secondary squirrel cage fans, which are mounted where side walls meet ceiling. Secondary fans push condensed refrigerated air down the backside of panels. Plenums build pressure forcing the air out the elongated vents that are across each air wall panel. Air then pulled back up to the return in the ceiling and then repeats 360 vortex cycle. Onboard air panels can easily be removed in seconds without the use of tools, for cleaning and/or to change out to a different color for aesthetic transformation. Each airwall vent segment may have an independent adjustable damper (metering element) to infinitely control the rate of speed air can flow, going full discharge when completely open, to zero when completely closed. This will allow moisture control preventing dryness of produce and or other unpackaged foods. The inboard wall assemblies work as an intervening refrigerated air supply, discharging cold air from ceiling to floor through concealed slots that blow air down to a 45° angle which deflects air across shelves. This allows for optimal cold air distribution throughout every square inch of the walk-in cooler. This design slows down the velocity of air making for a comfortable and non-obtrusive experience when inside, whereas typical walk-in refrigerators have a blower coil evaporator with high powered fan mounted to the ceiling, which produces a powerful blast of air with little or no control of its coverage. And since cold falls, this can leave inconsistent temperatures throughout the interior. Bright interior LED lighting with white translucent polycarbonate lens diffusers over the light emission apertures allows for optimal illumination throughout. RGB app-controlled multi-colored adjustable color LED light strips may be disposed behind same polycarbonate lenses. The inboard wall assemblies may substantially reduce the dBA noise level compared to a standard walk-in cooler. A pressure equalization system may be provided for safety, to eliminate negative air pressure vacuum, so the main door opens freely with no restriction. - The following listing matches certain terminology used within this disclosure with corresponding reference numbers used in the non-limiting embodiments illustrated in the several figures.
-
- 100 walk-in refrigeration system
- 102 main enclosure
- 104 first lateral insulation wall
- 106 second lateral insulation wall
- 108 rear insulation wall
- 110 front insulation wall
- 112 roof insulation wall
- 114 floor portion
- 116 first lateral insulation panel
- 118 second lateral insulation panel
- 120 rear insulation panel
- 122 front insulation panel
- 124 roof insulation panel
- 126 ceiling vent (e.g., disposed between walk-in zone and supply plenum)
- 128 insulated compartment
- 130 ambient environment (external to main housing)
- 132 main door
- 134 first interface panel
- 136 second interface panel
- 137 third interface panel
- 138 lateral shelf
- 140 rear shelf
- 142 auxiliary access door
- 144 first shelf refrigeration zone
- 146 second shelf refrigeration zone
- 147 rear shelf refrigeration zone
- 148 walk-in zone
- 150 first wall plenum
- 152 second wall plenum
- 153 rear wall plenum
- 154 supply plenum
- 156 inner window panel
- 158 outer window panel
- 160 floor trough
- 162 main door handle
- 164 floor ramp portion
- 166 standoff bracket
- 168 shelf base aperture
- 170 first inboard wall assembly
- 172 second inboard wall assembly
- 173 third inboard wall assembly
- 174 vent segment (e.g., of interface panels)
- 176 flow discharge port (e.g. defined within or between interface panels)
- 178 capture inlet port
- 180 flow deflection portion (e.g., deflection ramp)
- 182 shelf bracket
- 184 wall plenum blower fan
- 186 blower shroud
- 188 door air curtain
- 190 shelf bracket mounting portions (e.g., hook members)
- 192 panel mounting portions (e.g., hook members)
- 194 panel mount apertures (e.g., elongated slots)
- 196 shelf mount apertures (e.g., elongated slots)
- 198 wall mount flange
- 200 wall mount aperture (e.g., for receiving mounting screws)
- 202 standoff bracket axis
- 204 intermediate panel
- 206 capture face
- 208 metering element
- 210 metering aperture
- 212 meter actuation tab
- 214 metering element fastener (e.g., bolt)
- 216 fastener detent (e.g., nut)
- 218 washer
- 220 transport guide slot
- 222 fastener aperture
- 224 heat exchange subsystem
- 226 evaporator
- 228 evaporator fan
- 230 condenser
- 232 condenser fan
- 234 compressor
- 236 expansion valve
- 238 remote portion (of heat exchange subsystem)
- 240 meter actuation direction
- 242 interface panel blank
- 244 ceiling panel assembly
- 246 ceiling panel
- 248 first interface wall
- 250 second interface wall
- 251 third interface wall
- 252 air curtain plenum
- 254 air curtain discharge vent
- 256 light reflector element
- 258 light direction (of emitted or reflected light)
- 260 light fixture mount (e.g., for waterproof LED fixture)
- 262 air passthrough port
- 264 light fixture mount
- 266 light emission aperture
- 268 wall plenum airflow
- 270 discharge airflow
- 272 return airflow
- While embodiments of the invention have been illustrated and described, it is not intended that these embodiments illustrate and describe all possible forms of the invention. Rather, the words used in the specification are words of description rather than limitation, and it is understood that various changes may be made without departing from the spirit and scope of the invention.
Claims (21)
1. A walk-in refrigeration system comprising:
a main enclosure having a first lateral insulation wall, a second lateral insulation wall disposed oppositely thereof, a rear insulation wall, a front insulation wall, and a roof insulation wall;
an insulated compartment defined within the main enclosure, the main enclosure being configured to thermally insulate the insulated compartment from an ambient environment external to the main enclosure, the insulated compartment including a first shelf refrigeration zone, a second shelf refrigeration zone, a walk-in zone, a first wall plenum, a second wall plenum, and a supply plenum; and
a main door disposed between the walk-in zone and the ambient environment, and configured to be opened to enable a person to pass entirely between the ambient environment and the walk-in zone;
wherein
(a) the supply plenum is disposed between the roof insulation wall and a ceiling panel, and is configured to retain an evaporator of a heat exchange subsystem therein;
(b) the first wall plenum is defined between the first lateral insulation wall and a first interface wall;
(c) the second wall plenum is defined between the second lateral insulation wall and a second interface wall;
(d) the first wall plenum is in airflow communication between the supply plenum and the first shelf refrigeration zone;
(e) the second wall plenum is in airflow communication between the supply plenum and the second shelf refrigeration zone; and
(f) the walk-in zone is disposed between the first shelf refrigeration zone and the second shelf refrigeration zone.
2. The walk-in refrigeration system of claim 1 , wherein the main door is mounted in the front insulation wall.
3. The walk-in refrigeration system of claim 1 , wherein
(a) the first interface wall includes a plurality of flow discharge ports configured to direct airflow from the first wall plenum to the first shelf refrigeration zone; and
(b) the second interface wall includes a plurality of flow discharge ports configured to direct airflow from the second wall plenum to the second shelf refrigeration zone.
4. The walk-in refrigeration system of claim 1 , wherein
(a) the first interface wall is comprised of an array of first interface panels; and
(b) the second interface wall is comprised of an array of second interface panels.
5. The walk-in refrigeration system of claim 4 , wherein
(a) the first interface panels are individually removable and replaceable with respect to the first interface wall; and
(b) the second interface panels are individually removable and replaceable with respect to the second interface wall.
6. The walk-in refrigeration system of claim 5 , wherein
(a) the first interface panels and second interface panels each include a vent segment;
(b) the vent segments of the first interface panels define flow discharge ports in the first interface wall configured to direct airflow from the first wall plenum to the first shelf refrigeration zone; and
(c) the vent segments of the second interface panels define flow discharge ports in the second interface wall configured to direct airflow from the second wall plenum to the second shelf refrigeration zone.
7. The walk-in refrigeration system of claim 6 , wherein
(a) the first interface wall is mounted at distance inward of the first lateral insulation wall by way of one or more standoff brackets, thereby forming the first wall plenum; and
(b) the second interface wall is mounted at a distance inward of the second lateral insulation wall by way of one or more standoff brackets, thereby forming the second wall plenum.
8. The walk-in refrigeration system of claim 7 , wherein
(a) the standoff brackets include a multiplicity of panel mount apertures; and
(b) the first interface panels and second interface panels each include panel mounting portions configured to mountingly engage the panel mount apertures.
9. The walk-in refrigeration system of claim 8 , wherein
(a) the standoff brackets include a multiplicity of shelf mount apertures; and
(b) the system includes shelf brackets having shelf bracket mounting portions configured to mountingly engage the shelf mount aperture.
10. The walk-in refrigeration system of claim 9 , further comprising a plurality of lateral shelves supportedly mounted to respective said shelf brackets within the first and second shelf refrigeration zones.
11. The walk-in refrigeration system of claim 9 , wherein on each standoff bracket, the shelf mount apertures are disposed between the panel mount apertures.
12. The walk-in refrigeration system of claim 11 , wherein
(a) the standoff brackets include air passthrough ports; and
(b) on each standoff bracket, the panel mount apertures are disposed between the air passthrough ports.
13. The walk-in refrigeration system of claim 1 , wherein the ceiling panel includes a ceiling vent disposed directly above the walk-in zone and in airflow communication between the walk-in zone and the evaporator.
14. The walk-in refrigeration system of claim 1 , further comprising
(a) one or more wall plenum blower fans mounted in airflow communication between the supply plenum and the first wall plenum; and
(b) one or more wall plenum blower fans mounted in airflow communication between the supply plenum and the second wall plenum.
15. The walk-in refrigeration system of claim 1 , further comprising an auxiliary access door in communication between the ambient environment and the first shelf refrigeration zone.
16. The walk-in refrigeration system of claim 1 , wherein a floor ramp portion is disposed between the main door and the walk-in zone.
17. The walk-in refrigeration system of claim 1 , further comprising one or more wall plenum blower fans mounted in airflow communication between the supply plenum and an air curtain plenum above the main door.
18. The walk-in refrigeration system of claim 17 , wherein
(a) the insulated compartment includes a rear shelf refrigeration zone and a rear wall plenum;
(b) the rear wall plenum is defined between the rear insulation wall and a rear interface wall;
(c) the rear wall plenum is in airflow communication between the supply plenum and the rear shelf refrigeration zone; and
(d) the rear shelf refrigeration zone is disposed between the rear interface wall and the walk-in zone.
19. The walk-in refrigeration system of claim 17 , further comprising a light reflector element disposed within the air curtain plenum, the light reflector element being configured to reflect light from a light source horizontally toward the walk-in zone.
20. The walk-in refrigeration system of claim 8 , further comprising one or more intermediate panels, wherein the intermediate panels have
(a) one or more light fixture mounts and one or more light emission apertures; and
(b) a plurality of panel mounting portions configured to mountingly engage the panel mount apertures.
21-23. (canceled)
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| US18/829,020 US20240426537A1 (en) | 2022-01-05 | 2024-09-09 | Walk-in refrigeration system |
Applications Claiming Priority (4)
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| US202263296709P | 2022-01-05 | 2022-01-05 | |
| PCT/US2022/052583 WO2023132914A1 (en) | 2022-01-05 | 2022-12-12 | Walk-in refrigeration system |
| US202318032340A | 2023-04-18 | 2023-04-18 | |
| US18/829,020 US20240426537A1 (en) | 2022-01-05 | 2024-09-09 | Walk-in refrigeration system |
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| US18/032,340 Continuation US12098877B2 (en) | 2022-01-05 | 2022-12-12 | Walk-in refrigeration system |
| PCT/US2022/052583 Continuation WO2023132914A1 (en) | 2022-01-05 | 2022-12-12 | Walk-in refrigeration system |
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| US18/829,020 Pending US20240426537A1 (en) | 2022-01-05 | 2024-09-09 | Walk-in refrigeration system |
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-
2022
- 2022-12-12 US US18/032,340 patent/US12098877B2/en active Active
- 2022-12-12 CA CA3246807A patent/CA3246807A1/en active Pending
- 2022-12-12 WO PCT/US2022/052583 patent/WO2023132914A1/en not_active Ceased
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2024
- 2024-09-09 US US18/829,020 patent/US20240426537A1/en active Pending
Also Published As
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|---|---|
| US12098877B2 (en) | 2024-09-24 |
| WO2023132914A1 (en) | 2023-07-13 |
| US20240271852A1 (en) | 2024-08-15 |
| CA3246807A1 (en) | 2023-07-13 |
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