VARIABLE CLIMATE ZONE COMPARTMENT
20220341648 · 2022-10-27
Inventors
- Rodrigo Marge PAGNOZZI (Curitiba, BR)
- Israel MERCER NETO (Curitiba, BR)
- Guilherme Rissatto PICANÇO (Curitiba, BR)
- Augusto Biscaia DA SILVA (Curitiba, BR)
- Alexandre SAUER (Curitiba, BR)
- Alcione Colecha (Curitiba, BR)
- Aguilar DA SILVA (Curitiba, BR)
Cpc classification
F25D2400/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2317/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D17/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D17/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2317/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A refrigeration appliance including a compartment for storing food items. A partition divides the compartment into a first and a second compartments. The first compartment is disposed horizontally adjacent the second compartment and has a user-selectable target freezer temperature. An evaporator is disposed in the first compartment. An evaporator fan is disposed in the first compartment for conveying cooling air from the evaporator to the first and the second compartments. A temperature control module positioned in the second compartment. The temperature control module includes a body having front and rear surfaces. An air passage is formed in the body and extends between a side inlet opening of the body to at least one outlet opening on the front surface of the body. A heater assembly is disposed between the front and the rear surfaces of the body for heating air in the air passage.
Claims
1. A refrigeration appliance comprising: a compartment for storing food items in a refrigerated environment; a partition dividing said compartment into a first compartment and a second compartment, said first compartment disposed horizontally adjacent said second compartment, said first compartment having a user-selectable target freezer temperature, said second compartment having a user-selectable target variable climate zone temperature between a predetermined temperature below 0 degrees Centigrade and a predetermined temperature above 0 degrees Centigrade; an evaporator disposed in the first compartment; an evaporator fan disposed in the first compartment for conveying cooling air from the evaporator to the first compartment and the second compartment; and a temperature control module positioned in the second compartment, the temperature control module comprising: a body having a front surface and a rear surface, the rear surface facing a rear wall of the second compartment and the front surface facing an open end of the second compartment, an air passage formed in the body extending between a side inlet opening of the body to at least one outlet opening on the front surface of the body, and a heater assembly disposed between the front surface and the rear surface of the body proximate the air passage wherein air in the air passage is heated by the heater assembly when the heater assembly is energized.
2. The refrigeration appliance according to claim 1, wherein the heater assembly includes an electrical coil.
3. The refrigeration appliance according to claim 1, wherein the heater assembly is overmolded into the body.
4. The refrigeration appliance according to claim 1, wherein the body includes a front portion and a rear portion and at least a portion of the air passage is defined between the rear portion and the front portion.
5. The refrigeration appliance according to claim 4, wherein the at least a portion of the air passage is defined by a recess formed in at least one of the front portion and the rear portion.
6. The refrigeration appliance according to claim 4, wherein the heater assembly is embedded within at least one of the front portion and the rear portion.
7. The refrigeration appliance according to claim 1, wherein the air passage includes a second inlet opening extending through the front surface of the body.
8. The refrigeration appliance according to claim 1, further comprising a circulation fan positioned in the air passage for conveying air therealong.
9. The refrigeration appliance according to claim 1, wherein the air passage defines a closed loop circulation path with the second compartment.
10. The refrigeration appliance according to claim 1, further comprising: a fresh food compartment disposed above the compartment, the fresh food compartment for storing food items in a refrigerated environment having a target temperature above zero degrees Centigrade.
11. A refrigeration appliance comprising: a compartment for storing food items in a refrigerated environment; a partition dividing said compartment into a first compartment and a second compartment, said first compartment disposed horizontally adjacent said second compartment, said first compartment having a user-selectable target freezer temperature, said second compartment having a user-selectable target variable climate zone temperature between a predetermined temperature below 0 degrees Centigrade and a predetermined temperature above 0 degrees Centigrade, the partition defining a through passage between the first compartment and the second compartment; an evaporator disposed in the first compartment; an evaporator fan disposed in the first compartment for conveying cooling air from the evaporator to the first compartment and the second compartment; and a temperature control module positioned in the second compartment, the temperature control module comprising: a body having a front surface and a rear surface, the rear surface facing a rear wall of the second compartment and the front surface facing an open end of the second compartment, an air passage formed in the body extending between a side inlet opening of the body and at least one outlet opening on the front surface of the body, the side inlet opening of the air passage aligned with the through passage in the partition between the first compartment and the second compartment, a second inlet opening extending through the front surface of the body to the air passage, and a damper assembly positioned proximate the air passage, the damper assembly comprising: a frame assembly defining a damper air passage through the damper assembly fluidly communicating with the air passage formed in the partition, and a door rotatably attached to the frame assembly, the door moveable between a first position and a second position, wherein when the door is in the first position the door fluidly isolates the through passage in the partition from the first compartment while allowing the second inlet opening in the body to fluidly communicate with the air passage in the body, and when the door is in the second position the door fluidly isolates the second inlet opening in the body from the air passage in the body while allowing the through passage in the partition to fluidly communicate with the first compartment.
12. The refrigeration appliance according to claim 11, wherein the air passage forms a closed loop circulation path within the second compartment when the door is in the first position.
13. The refrigeration appliance according to claim 11, wherein the air passage directs cooled air into the second compartment from the evaporator when the door is in the second position.
14. The refrigeration appliance according to claim 11, wherein the air passage is a single conduit extending between the first compartment and the second compartment.
15. The refrigeration appliance of claim 11, wherein the partition is not part of a uniform expanding foam material applied to a space between a liner and a metal shell of the refrigeration appliance.
16. The refrigeration appliance according to claim 11, further comprising: a liner defining the compartment for storing food items in a refrigerated environment, a rear wall of the liner contoured to define a first horizontal recess therein; and the partition including: a protrusion extending from a rear edge of the partition, the protrusion disposed in the first horizontal recess in the liner when the partition is positioned in the compartment, an opening extending through the protrusion between opposite side surfaces of the partition, the opening aligned with the first horizontal recess in the liner, and the side inlet opening of the body fluidly communicating with the first horizontal recess in the liner and the opening extending through the partition, wherein the evaporator fan disposed in the first compartment conveys cooling air from the evaporator through the opening extending through the partition, through the side inlet opening in the body, through the air passage in the body, through the at least one outlet opening in the body and exhausts the cooling air into the second compartment.
17. The refrigeration appliance of claim 16, wherein the liner is contoured to define a second horizontal recess fluidly connecting the first compartment and the second compartment, wherein air drawn by the evaporator fan in the first compartment is drawn from the second compartment through the second horizontal recess.
18. A refrigeration appliance comprising: a compartment for storing food items in a refrigerated environment; a vertical partition dividing said compartment into a first compartment and a second compartment, said first compartment disposed horizontally adjacent said second compartment, said first compartment having a user-selectable target freezer temperature, said second compartment having a user-selectable target variable climate zone temperature between a predetermined temperature below 0 degrees Centigrade and a predetermined temperature above 0 degrees Centigrade, the vertical partition defining a through passage between the first compartment and the second compartment; and a temperature control module positioned in the second compartment, the temperature control module comprising: a body having a front surface and a rear surface, the rear surface facing a rear wall of the second compartment and the front surface facing an open end of the second compartment, an air passage formed in the body extending between a side inlet opening of the body and at least one outlet opening on the front surface of the body, the side inlet opening of the air passage aligned with the through passage in the vertical partition between the first compartment and the second compartment, a second inlet opening extending through the front surface of the body to the air passage, and a damper assembly positioned proximate the air passage, the damper assembly comprising: a door moveable between a first position and a second position, wherein when the door is in the first position the door fluidly isolates the through passage in the vertical partition from the first compartment while allowing the second inlet opening in the body to fluidly communicate with the air passage in the body.
19. The refrigeration appliance of claim 18, wherein when the door is in the second position the door fluidly isolates the second inlet opening in the body from the air passage in the body while allowing the through passage in the vertical partition to fluidly communicate with the first compartment.
20. The refrigeration appliance of claim 18, further comprising: a heater assembly disposed between a front surface and a rear surface of the body proximate the air passage wherein air in the air passage is heated by the heater assembly when the heater assembly is energized.
21. A refrigerator comprising: an inner liner defining an upper fresh food compartment and a lower compartment, a vertical mullion partitioning said lower compartment into a freezer compartment and a convertible temperature compartment; an evaporator cover arranged within the freezer compartment to define an evaporator chamber, an evaporator arranged in the evaporator chamber between the inner liner and the evaporator cover, an evaporator fan fluidly communicates with the evaporator chamber; a through passage disposed in the vertical mullion and a damper selectively opening and closing the through passage; the evaporator cover comprising a plurality of outlets for conveying cooling air from the evaporator chamber to the freezer compartment, a lower surface to guide air from the freezer compartment into the evaporator chamber, an upper duct fluidly connected to an outlet of the evaporator fan for conveying cooling air from the evaporator to the through passage of the vertical mullion; and a bottom portion of the evaporator chamber comprising an opening fluidly connecting the convertible temperature compartment to the evaporator chamber, the evaporator cover and the inner liner defining an air duct for drawing air from the convertible temperature compartment to the evaporator when the damper opens the through passage.
22. The refrigerator according to claim 21, wherein the evaporator cover comprises: a front partition facing an open end of freezer compartment, a radial fan fixed to a rear side of the front partition, a fan shroud fixed to the rear side of the front partition and defining an inlet for the radial fan, and a back element arranged between the fan shroud and rear side of the front partition to form an air passage to guide cooling air from the evaporator to the plurality of outlets and the upper duct.
23. The refrigerator according to claim 22, wherein the front partition is made of plastic.
24. The refrigerator according to claim 22, wherein the back element is made from expanded polystyrene (EPS).
25. A refrigerator comprising an inner liner defining an upper fresh food compartment and a lower compartment, a vertical mullion partitioning said lower compartment into a freezer compartment and a convertible temperature compartment; a through passage formed in the vertical mullion and a damper selectively opening and closing the through passage, an evaporator arranged within the freezer compartment and an evaporator fan arranged in the freezer compartment for conveying cooling air from the evaporator to the through passage of the vertical mullion to cool the convertible temperature compartment; the convertible temperature compartment comprising a vertical partition having a front side facing an open end of the convertible temperature compartment and a rear side facing the inner liner, a first air passage chamber formed in a rear side of the vertical partition; a fan arranged in the first air passage chamber and fluidly connected to the through passage of the vertical mullion; a second air passage chamber formed in a rear side of vertical partition and fluidly connected to the evaporator fan of the freezer compartment, the second air passage chamber being positioned below the first air passage chamber and fluidly separated from the first air passage chamber within the convertible temperature compartment; the vertical partition comprising on the front side a plurality of outlets fluidly connected to the first air passage chamber for conveying cooling air from the evaporator of the freezer compartment to the convertible temperature compartment; and a lower surface extending to a bottom portion of the convertible temperature compartment and fluidly connected to the second air passage chamber for drawing air from the convertible temperature compartment to the evaporator of the freezer compartment.
26. A refrigerator comprising: a compartment defining laterals walls, a rear wall and a front opening associated to a door, the compartment including an airflow assembly comprising a front cover with an inlet and an outlet in fluidly communication with the compartment, a radial fan fixed behind the front cover, a fan shroud fixed to the front cover and defining an inlet for the radial fan, a first heat-insulating element arranged between the fan shroud and the front cover, the airflow assembly further comprising a second heat-insulating element arranged between the first heat-insulating element and the rear wall of the compartment, the first heat-insulating element and the second heat-insulating element forming an air passage for conveying cooling air to the compartment.
27. The refrigerator according to claim 26, wherein at least one of the first heat-insulating element and the second heat-insulating element is made from expanded polystyrene (EPS).
28. The refrigerator according to claim 26, wherein the first heat-insulating element is sandwiched between the fan shroud and the front cover.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF EXAMPLE EMBODIMENTS
[0064] Referring now to the drawings,
[0065] Two doors 54 shown in
[0066] A dispenser 56 (
Refrigerator Liner 72
[0067] The refrigerator 10 includes an inner liner 72. Referring to
[0068] The upper compartment 74 defines the fresh food compartment 52 which serves to minimize spoiling of articles of food stored therein. The fresh food compartment 52 accomplishes this by maintaining the temperature in the fresh food compartment 52 at a cool temperature that is typically above 0° C., so as not to freeze the articles of food in the fresh food compartment 52. It is contemplated that the cool temperature is a user-selectable target fresh food temperature, preferably between 0° C. and 10° C., more preferably between 0° C. and 5° C. and even more preferably between 0.25° C. and 4.5° C. A fresh food evaporator (not shown) is dedicated to separately maintaining the temperature within the fresh food compartment 52 independent of the freezer compartment 120. According to an embodiment, the temperature in the fresh food compartment 52 can be maintained at a cool temperature within a close tolerance of a range between 0° C. and 4.5° C., including any subranges and any individual temperatures falling with that range. For example, other embodiments can optionally maintain the cool temperature within the fresh food compartment 52 within a reasonably close tolerance of a temperature between 0.25° C. and 4° C.
[0069] The upper compartment 74 and the lower compartment 76 of the liner 72 are configured such that the air circulated in the upper compartment 74 is maintained separated from the air circulated in the lower compartment 76. The lower compartment 76 defines the freezer compartment 120 and the VCZ compartment 200. In this respect, the air circulated in the fresh food compartment 52 is maintained separated from the air circulated in the VCZ compartment 200 and the freezer compartment 120.
[0070] Referring to
[0071] Referring to
[0072] A corner portion of the liner 72 where the rear wall 76d meets the bottom wall 76c is contoured to define a gully or channel 94 that extends between the side walls 76a of the lower compartment 76. As described in detail below, the gully or channel 94 extends between the freezer compartment 120 and the VCZ compartment 200 for allowing fluid communication therebetween.
[0073] The bottom wall 76c includes a generally sloped portion 96. Mounting holes 98 extend through the sloped portion 96 of the bottom wall 76c and are positioned and dimensioned as described in detail below. An elongated recess 99 is formed in the top wall 76b (
Partition 100
[0074] Referring to
[0075] The partition 100 includes a rear 104c and a top 104d and a bottom 104e. The rear 104c is contoured to match the contour of the rear wall 76d of the lower compartment 76. As shown, the rear 104c of the partition 100 includes a protrusion 108. The opening 102 aligns with the protrusion 108. It is contemplated that the opening 102 may at least partially extend through the protrusion 108. The protrusion 108 is dimensioned and positioned as described in detail below. A notch 112 is formed in the corner between the rear 104c and the bottom 104e of the partition 100 and is contoured to match the sloped portion of 96 of the liner 72.
[0076] As shown in
[0077] It is contemplated that the partition 100 may be a “not foamed” element. The term “not foamed” is used herein with reference to the injected, flowing expanding foam used elsewhere in the refrigerator cabinet to mean that the partition 100 may not be permanently attached to the liner 72. Conventional partition walls or mullion walls in refrigerators are foamed insulations that cannot be removed, i.e., the partition wall or the mullion wall is a permanent structural wall of the refrigerator. It is contemplated that the partition 100 may be a “not foamed” element that is separate from the remainder of the injected, flowing expanding foam and may be removed from the refrigerator, if desired, so that the freezer compartment 120 occupies the entire lower compartment 76. However, it is to be appreciated that the interior of the partition 100 may still include an insulating material of various types, including an insulating foam material, so as to help maintain the desired temperatures of the freezer compartment 120 and the VCZ compartment 200.
[0078] Referring to
[0079] Further, the drawer supports 114 and the ledges 116 on the partition 100 are positioned and dimensioned to align with respective receivers 82 and ledges 84 on the side walls 76a of the respective freezer compartment 120 or the VCZ compartment 200. The receivers 82, the drawer supports 114 and ledges 84, 116 are positioned and dimensioned to support shelves 12 and bins 14 thereon, as illustrated in
Freezer Compartment 120
[0080] Referring to
[0081] The freezer compartment 120 is used to freeze and/or maintain articles of food stored in the freezer compartment 120 in a frozen condition. For this purpose, the freezer compartment 120 includes an evaporator cover or freezer cooling module 130 (
Freezer Cooling Module 130
[0082] Referring to
[0083] Referring to
[0084] The flange portion 136b extends from a lower front portion of the cover 134 at a location below the lower openings 138b. As shown, the flange portion 136b is a curved elongated element that is dimensioned and positioned as described in detail below. A mounting hole 142 extends through the flange portion 136b. The mounting hole 142 is positioned and dimensioned as described in detail below.
[0085] A plurality of tabs 143 (
[0086] Referring to
[0087] A divider 154 extends from the front surface 144a of the body 144. In the embodiment shown, the divider 154 includes a base portion 154a and a center protruding portion 154b. The center protruding portion 154b is generally triangular in shape to divide an air path into two paths, as described in detail below.
[0088] The cover 134 is attached to the body 144 to close the recessed cavity 146 and thereby define in internal air path “A” of the freezer cooling module 130. It is contemplated that the cover 134 may be attached to the body 144 using elements such as, but not limited to, fasteners, adhesives, snap-fit features and combinations of the foregoing. As shown, the recessed cavity 146 is formed in the body 144 and the cover 134 closes an open side of the recessed cavity 146 to define the internal air path “A” into the freezer compartment 120, as described in detail below. As shown in
[0089] The raised portion 136c of the cover 134 is positioned over the divider 154 of the body 144 when the cover 134 is attached to the body 144. In particular, the center protruding portion 154b of the divider 154 extends into the raised portion 136c of the cover 134 to divide the corresponding area between the cover 134 and the body 144 into two flow paths “A1” and “A2” (
[0090] As illustrated, the body 144 is contoured to define recesses and raised surfaces that cooperate with contoured raised surfaces of the cover 134 to define various flow paths therebetween. It is contemplated that contoured features may be reversed so long as there are flow paths defined between the cover 134 and the body 144. It is also contemplated that the cover 134 and the body 144 may be replaced with a single monolithic body (e.g., a single molded component) and the internal passage may be formed, e.g., molded or machined into the single monolithic body.
[0091] Referring to
[0092] Referring to
[0093] The frame member 166 includes a lower horizontal portion 166a that extends under the freezer evaporator 158 and a vertical portion 166b that extends along a rear side of the freezer evaporator 158. The lower horizontal portion 166a is spaced from a bottom of the freezer evaporator 158 to define an opening or gap 168 therebetween. The gap 168 defines a portion of a return flow path “B1” from the VCZ compartment 200 to the freezer evaporator 158, as described in detail below.
[0094] The cover 134 may include a plurality of fins 137 that extend into the outlet 152 formed in the body 144. The fins 137 may be contoured to direct the air exiting the outlet 152 into a predetermined direction.
[0095] A fan shroud or mounting plate 172 may be mounted to the rear surface 144b of the body 144. An opening 172a in the mounting plate 172 may be dimensioned to define an inlet of the freezer fan 156.
[0096] Referring to
[0097] When the freezer cooling module 130 is positioned within the lower compartment 76, the horizontal portion 166a of the frame member 166 extends into the gully or channel 94 formed in the liner 72. The gully or channel 94 and the gap 168 together define a portion of a flow path “B1” from the VCZ compartment 200 to the freezer cooling module 130. The flow path “B1” allows air to flow from the gully or channel 94 in the liner 72 to the gap 168 below the freezer evaporator 158. Thus, flow paths “B1” and “B2” allow air to flow into the freezer cooling module 130. The outlet 152 is positioned and dimensioned to at least partially extend into the recess 99 in the rear wall 76d of the lower compartment 76. The outlet 152 defines a portion of a flow path “C” for allowing air to exit or be exhausted from the freezer cooling module 130 and into the VCZ compartment 200, as described in detail below. Additionally, the openings 138a, 138b, 138c in the cover 134 also allow air from the air path “A” to exit or be exhausted from the freezer cooling module 130 into the freezer compartment 120.
[0098] Although not shown, it is contemplated that one or more gasket elements may be positioned along the rear surface of the freezer cooling module 130 to define seal between the freezer cooling module 130 and the rear wall 76d of the lower compartment 76.
VCZ Compartment 200
[0099] Referring back to
[0100] A control unit or user interface 204 (
Temperature Control Module 220
[0101] Referring to
[0102] Referring to
[0103] An inlet 224 extends through the cover 222. In the embodiment shown, the inlet 224 is a grated opening having a plurality of rectangular openings. It is contemplated that the inlet 224 may be a single opening or the grated opening may be defined by an insert that is positioned in or over a single opening. In the embodiment shown. The cover 222 includes a lower (guide) surface or cover element 226. The cover element 226 is an awning-shaped element that extends downwardly from a lower edge of the cover 222. It is contemplated that the cover element 226 may have other shapes and/or sizes. In the embodiment shown, the cover element 226 is integral with the cover 22. It is contemplated that the cover element 226 may be a separate part that is attached to the cover 222. A mounting hole 226a extends through the cover element 226 for securing the temperature control module 220 to the liner 72, as described in detail below.
[0104] Referring to
[0105] Referring to
[0106] The front body portion 244 also includes a ramped portion 254 that extends from the recess 246. The ramped portion 254 extends to an outlet 252c. The outlet 252c is dimensioned and positioned to align with the outlet 222c of the cover 222. The front body portion 244 also includes an opening 256 that aligns with the inlet 224 in the cover 222.
[0107] Referring to
[0108] Referring to
[0109] In the embodiment shown, the temperature control module 220 is shown as including the cover 222, the front body portion 244 and the heater 272 captured therebetween. It is contemplated that the cover 22 and the front body portion 244 may be formed as a single monolithic body (e.g., a single molded component) that is overmolded around the heater 272. Alternatively, the heater 272 may be inserted into a slot formed, e.g., molded or machined into the single monolithic body.
[0110] Referring to
[0111] A fan shroud or mounting plate 284 is provided for attachment to the rear surface 244a of the front body portion 244. The mounting plate 284 includes four mounting holes 286 that are dimensioned and positioned to align with the four bosses 236 of the cover 222. In particular, the bosses 236 extend through corresponding holes 249 (
[0112] The damper assembly 292 includes a frame 294 and a damper door 298. The frame 294 includes an opening 296 extending through the frame 294. The damper door 298 is attached to the frame 294 to pivot relative to the opening 296. The damper door 298 has a shape that closely matches the shape of the opening 296 for closing the opening.
[0113] The damper door 298 may include a seal element 299 on a first side 298a of the damper door 298. Preferably, the seal element 299 may be made of an elastic element, e.g., rubber or foam, although a rigid plastic material could also be used. It is contemplated that the seal element 299 may be attached to the first side 298a of the damper door 298 using a fastening means, such as, but not limited to adhesives, fasteners, etc. In the embodiment shown, the seal element 299 is a single element that is attached to the first side 298a of the damper door 298. It is contemplated that the seal element 299 may be formed by encasing or surrounding the entire damper door 298 such that the seal element covers the first side 298a and a second side 298b of the damper door 298.
[0114] A motor (not shown) may be provided for moving the damper door 298. The damper door 298 may be moveable between a first or closed position (not shown) and a second or open position (
[0115] It is contemplated that the motor may pivot the damper door 298 to a plurality of positions between, and including, the open position and the closed position for controlling and adjusting the flow of air to the VCZ compartment 200. It is also contemplated that a damper door heater element (not shown) may be disposed in/on the frame 294 and/or the damper door 298 for heating the frame 294 and/or the damper door 298. The heat applied to the frame 294 and/or the damper door 298 by the damper door heater element may be sufficient to prevent the damper door 298 from freezing to the frame 294 and/or the formation of frost that prevents the damper door 298 from fully closing.
[0116] In one embodiment, the temperature control module 220 is assembled by first placing the heater 272 on the front surface 244b of the front body portion 244. Referring to
[0117] For clarity and discussion purposes, the rear body portion 262 is not shown in
[0118] Referring to
[0119] Referring to
[0120] Referring back to
[0121] Referring back to
Operation
[0122] The VCZ compartment 200 will now be described with respect to the operation of the same. As described above, the freezer cooling module 130 is configured to supply cold air to the both the freezer compartment 120 and the VCZ compartment 200, hereinafter referred to as a Dual Cooling Mode of the refrigerator 10. In the Dual Cooling Mode, the control unit (not shown) of the refrigerator 10 causes the damper door 298 to be in the second or open position (
[0123] Referring initially to
[0124] Referring back to
[0125] Referring back to
[0126] The air in the VCZ compartment 200 is returned back to the freezer evaporator 158 along the flow path “B1,” as described in detail above. The air continues to be circulated as described above until each of the freezer compartment 120 and VCZ compartment 200 are cooled to their respective desired temperatures.
[0127] Referring to
[0128] The control unit may also continue to energize the freezer fan 156 and convey the refrigerant through the freezer evaporator 158 to maintain the freezer compartment 120 at a lower temperature than the VCZ compartment 200. The operation of the freezer fan 156 causes the air in the freezer compartment 120 to circulate in a closed loop path between the freezer compartment 120 and the freezer evaporator 158.
[0129] During another mode of operation, hereinafter referred to as the Heat VCZ Compartment Mode, the control unit may cause both the heater 272 and the fan 274 of the temperature control module 220 to be energized. When energized, the heater 272 causes the temperature of the front body portion 244 to increase. This increase in temperature, in turn, causes an increase in the temperature of the air within the front body portion 244 of the temperature control module 220. This heated air is then conveyed into VCZ compartment 200 by the fan 274. The heater 272, and optionally the fan 274 may remain energized until the temperature in the VCZ compartment 200 is warmed to the desired temperature. Optionally, the damper door 298 may be in the closed position to obstruct cold air from the freezer compartment 120. If desired, the temperature in the VCZ compartment 200 may be reduced by implementing the Dual Cooling Mode, as described in detail above. It is contemplated that the control unit may be programmed to alternate between the Dual Cooling Mode and the Heat VCZ Compartment Mode to maintain the VCZ compartment at the desired temperature. It is also contemplated that the Heat VCZ Compartment Mode may find particular application in raising the temperature of the VCZ compartment 200 quickly, if desired.
[0130] The invention has been described with reference to the example embodiments described above. Modifications and alterations will occur to others upon a reading and understanding of this specification. Examples embodiments incorporating one or more aspects of the invention are intended to include all such modifications and alterations insofar as they come within the scope of the appended claims and their equivalents.