TECHNICAL FIELD
[0001] The present disclosure relates to a household appliance such as a refrigerator or
a refrigerated storage cabinet.
BACKGROUND
[0002] Refrigerators must maintain a low temperature to prevent food and beverages from
spoiling while being stored within a food storage space. The food storage space may
be insulated to block or mitigate heat from outside air from penetrating the food
storage space. The food storage space may be formed of an insulative structure and
may include one or more heat exchangers that may absorb heat inside the food storage
space or dissipate heat to an area external to the food storage area.
SUMMARY
[0003] A storage assembly includes a vacuum insulated cabinet, a refrigeration system, and
a drawer. The vacuum insulated cabinet may be formed by a number of insulated panels.
The vacuum insulated cabinet and the refrigeration system may collectively form a
refrigerated compartment. The drawer may be configured to move between an open position,
in which an interior portion of the drawer is accessible, and a closed position, in
which the drawer is disposed in the refrigerated compartment and the interior portion
of the drawer is inaccessible. The refrigeration system may include a first heat exchanger,
that may be disposed between the drawer and a rear portion of the insulated cabinet,
and a second heat exchanger that may be disposed in a machine compartment adjacent
to the refrigerated compartment.
[0004] According to at least one embodiment, a base is disposed beneath the vacuum insulated
cabinet and partially defines the machine compartment.
[0005] In one or more embodiments, the first heat exchanger is a thermoelectric cooling
plate configured to refrigerate the refrigerated compartment.
[0006] In one or more embodiments, a fan is fixed to the thermoelectric cooling plate and
is configured to direct air towards the drawer.
[0007] In at least one embodiment, the second heat exchanger is a thermoelectric heating
plate configured to dissipate heat away from the refrigerated compartment.
[0008] According to at least one embodiment, a fan is fixed to the thermoelectric heating
plate and is configured to direct air away from the insulated cabinet.
[0009] According to some embodiments, the rear portion is formed by a rear insulated panel
of the number of insulated panels.
[0010] In one or more embodiments, the rear insulated panel defines an aperture configured
to receive at least one of the first heat exchanger or the second heat exchanger.
[0011] In at least one embodiment, the storage assembly further comprises a first sealing
member lying along an outer periphery of the second heat exchanger.
[0012] In one or more embodiments, the storage assembly further comprises a second sealing
member lying along the first sealing member.
[0013] According to at least one embodiment, a first insulated panel of the number of insulated
panels forces the second sealing member into contact with the first sealing member.
[0014] According to some embodiments, the second sealing member includes a first vertical
leg, a second vertical leg, and a horizontal leg extending therebetween.
[0015] In one or more embodiments, the first insulated panel includes a liner sheet fixed
to the first leg of the sealing member.
[0016] According to at least one embodiment, the first insulated panel includes a wrapper
sheet and a portion of the wrapper sheet lies along the second leg.
[0017] In one or more embodiments, an adhesive is disposed between and fixes the liner sheet
to the first leg of the sealing member.
[0018] In at least one embodiment, the first sealing member includes a lip disposed between
the first heat exchanger and the first leg of the second sealing member.
[0019] According to at least one embodiment, the lip is formed of an elastomeric material.
[0020] In one or more embodiments, the first leg of the second sealing member and the liner
sheet are positioned to contact the lip such that the lip elastically deforms from
a nominal position.
[0021] A storage assembly includes a vacuum insulated cabinet, a base, a refrigeration system,
and a drawer. The vacuum insulated cabinet may be formed by a number of insulated
panels. The vacuum insulated cabinet and the refrigeration system may collectively
form a refrigerated compartment. The base may be disposed beneath the vacuum insulated
cabinet and may partially define a machine compartment. The refrigeration system may
include an evaporator that may be disposed in the refrigerated compartment and a condenser
that may be disposed between the base and the vacuum insulated cabinet.
[0022] In at least one embodiment, a compressor is disposed in the machine compartment.
[0023] According to at least one embodiment, the number of insulated panels includes a rear
insulated panel provided with a first side and a second side, where the first side
is disposed closer to the drawer than the second side, and where a portion of the
machine compartment is formed by the second side.
[0024] According to some embodiments, the base includes a first portion and a second portion.
[0025] In one or more embodiments, the first portion carries the compressor and the second
portion carries the condenser.
[0026] In at least one embodiment, a drain pan is disposed in the machine compartment and
is carried by the second portion.
[0027] A storage assembly includes a vacuum insulated cabinet, a refrigeration system, and
a drawer. The vacuum insulated cabinet may be formed by a number of insulated panels.
The vacuum insulated cabinet and the refrigeration system may collectively form a
refrigerated compartment. The drawer may be configured to move between an open position,
in which an interior portion of the drawer is accessible, and a closed position, in
which the drawer is disposed in the refrigerated compartment and the interior portion
of the drawer is inaccessible. The refrigeration system may include a first thermoelectric
device, that may be disposed between the drawer and a rear portion of the insulated
cabinet, and a second thermoelectric device that may be disposed in a machine compartment
adjacent to the refrigerated compartment.
[0028] In one or more embodiments, the storage assembly further comprises a sealing member
that is disposed along and between an outer periphery of at least one of the first
thermoelectric device or the second thermoelectric device and an inner periphery of
an aperture formed by a rear insulated panel of the number of insulated panels.
[0029] According to some embodiments, the storage assembly further comprises a drain catchment
assembly including a funnel and a spout, where the funnel is disposed beneath the
first thermoelectric device and the spout extends through at least one of the rear
insulated panel or the sealing member and terminates in the machine compartment.
[0030] Under certain circumstances, it may be desirable for a storage assembly to have a
compartment with a dedicated refrigeration system. As an example, a storage assembly
may include a number of drawers, one or more of which may be intended to store food
or beverage items and the others for storing non-perishable goods in a non-refrigerated
portion. While refrigerating the entire assembly may be feasible, doing so is not
efficient and requires additional energy that would not otherwise be required. As
such, it may be desirable to provide a compact refrigeration system that is specifically
configured to only refrigerate a portion of the storage assembly, such as a drawer.
One of the challenges associated with such a refrigeration assembly is integrating
and insulating the drawer while maintaining useful storage space. The present disclosure
aims to resolve this issue among others.
BRIEF DESCRIPTION OF THE DRAWINGS
[0031]
Fig. 1 illustrates a perspective view of an exemplary storage assembly;
Fig. 1A illustrates a detailed-perspective view of the exemplary storage assembly;
Fig. 2 illustrates a schematic view of an exemplary drawer assembly according to one
or more embodiments;
Fig. 3 illustrates a perspective view of the exemplary drawer assembly according to
one or more embodiments;
Fig. 4 illustrates an exploded-perspective view of the exemplary drawer assembly depicted
in Fig. 3;
Fig. 5 illustrates a perspective of a portion of an exemplary drawer assembly according
to one or more embodiments;
Fig. 6 illustrates a partial-perspective-cross-sectional view of the drawer assembly
depicted in Fig. 5 taken along line 6-6 in Figure 5;
Fig. 6A illustrates a magnified view of area A-A in Fig. 6;
Fig. 7 illustrates an exploded view of a portion of the drawer assembly according
to one or more embodiments;
Fig. 8 illustrates a perspective of a portion of an exemplary thermoelectric cooling
device for use in one or more of the drawer assemblies;
Fig. 9 illustrates a schematic-top view of an exemplary drawer assembly;
Fig. 10 illustrates a schematic-side view of the exemplary drawer assembly depicted
in Fig. 9;
Fig. 11 illustrates a side-plan view of the drawer assembly depicted in Fig. 9;
Fig. 12 illustrates a partial-perspective view of the drawer assembly depicted in
Fig. 11;
Fig. 13 illustrates a top-plan view of the drawer assembly depicted in Fig. 11;
Fig. 14 illustrates a schematic view of a refrigeration system according to one or
more embodiments; and
Fig. 15 illustrates a partial-perspective-cross-sectional view of the drawer assembly
depicted in Figs. 11-13 taken along line 15-15 in Figure 13.
DETAILED DESCRIPTION
[0032] As required, detailed embodiments of the present invention are disclosed herein;
however, it is to be understood that the disclosed embodiments are merely exemplary
of the invention that may be embodied in various and alternative forms. The figures
are not necessarily to scale; some features may be exaggerated or minimized to show
details of particular components. Therefore, specific structural and functional details
disclosed herein are not to be interpreted as limiting, but merely as a representative
basis for teaching one skilled in the art to variously employ the present invention.
[0033] Referring to Figs. 1 - 1A, a storage structure 10 including a body 12 and a number
of drawers 14 is provided. The body 12 may be formed of non-insulated walls or panels
that form a cavity that may receive the drawers 14. One or more of the drawers 14
may be a refrigerated drawer assembly 16 that may include an insulated cabinet 22
disposed in the cavity of the storage structure 10. The insulated cabinet 22 may define
a refrigerated compartment and 24 a drawer 26 of the drawer assembly 16 may be selectively
disposed in the refrigerated compartment 24. As an example, the drawer 26 may move
from a retracted or closed position (e.g., see position 27 in Figure 15), in which
the drawer 26 is disposed in the refrigerated compartment 24, and a deployed or open
position (e.g., see position 29 in Figure 15), in which the drawer 26 is positioned
outside of the refrigerated compartment 24 to allow access to a storage space 28 (Fig.
2) formed by the drawer 26. The drawer assembly 16 may include a front insulated panel
20 that may be fixed to a portion, such as a front wall 32, (Fig. 2) of the drawer
26. Additionally or alternatively, the drawer assembly 16 may include an aesthetic
or decorative panel 18 that may be fixed to the front insulated panel 20.
[0034] Fig. 2 illustrates a schematic view of the drawer assembly 16 according to one or
more embodiments. The drawer assembly 16 may include a machine compartment 30 that
may be positioned adjacent to the insulated cabinet 22. In one or more embodiments,
the machine compartment 30 may house one or more heat exchangers or components that
make up portions of a heat exchange system, including but not limited to a compressor,
a fan, a thermoelectric device 34 and a drain catchment.
[0035] Fig. 3 illustrates a perspective view of a drawer assembly 100 according to one or
more embodiments. The drawer assembly 100 includes the insulated cabinet 22 formed
by insulated side panels 36, a rear insulated panel 38, and the front insulated panel
20. The thermoelectric device 34 may be fixed to the rear insulated panel 38 and one
or more portions of the thermoelectric device 34 may extend into the refrigerated
compartment 24 and the machine compartment 30. As an example, the thermoelectric device
34 may include a cold plate 40 that may be disposed in the refrigerated compartment
24 and a heat plate 42 that may be disposed in the machine compartment 30. The cold
plate 40 and the heat plate 42 may operate by the Peltier effect in which an electric
current flows through the device 34, so that the cool plate decreases in temperature
and the hot plate increases in temperature. The heat plate 42 may be attached to a
heat sink to absorb the excess heat from the heat plate. Additionally or alternatively,
a first fan 44 may be fixed to the heat plate 42 and the first fan 44 may be configured
to move hot air away from the refrigerated compartment 24.
[0036] Fig. 4 illustrates a perspective-exploded view of the drawer assembly 100. One or
more sealing members such as passthrough grommet 46 and a passthrough gasket 48 may
be provided between the rear insulated panel 38 and the thermoelectric device 34.
As an example, the passthrough gasket 48 may be formed of one or more polymeric materials
such as dynamically vulcanized polymer alloy composed of cured EPDM (ethylene propylene
diene monomer) rubber (also known as Santoprene), polyvinyl chloride (PVC), or thermoplastic
elastomer (TPE), or other material(s) as required.
[0037] Fig. 5 illustrates a perspective view of a portion of the drawer assembly 100. For
purposes of clarity, the drawer 26 is not illustrated. In one or more embodiments,
the thermoelectric device 34 may be fixed to the rear insulated panel 38 by one or
more straps 56 that may be fixed, such as fastened, to the rear insulated panel 38.
A bottom portion of the thermoelectric device 34 may be supported by a portion 50
of the passthrough grommet 46. The bottom portion 50 of the passthrough grommet 46
may define an opening that may receive a spout 52 of a drain funnel 54 that may be
configured to collect condensation from the thermoelectric device 34. The spout 52
may extend into the machine compartment 30 and may be arranged to expel collected
condensation to a drain catchment or drain pan 58 that may stow the collected condensation.
[0038] An insulated cabinet gasket 62 may be fixed to front portions of the insulated side
panels 36 and insulated top and bottom panels 64, 66 that extend between the insulated
side panels 36. When the drawer 26 (not illustrated) is in the retracted or closed
position, the cabinet gasket 62 may surround an outer periphery of the front insulated
panel 20. The insulated cabinet gasket 62 may be formed by one or more plastic or
polymeric materials including but not limited to a thermoplastic elastomer material.
One or more vents such as an air grille 68 may be fixed to a front portion of the
drain pan 58. The air grille 68 may be configured to permit air flow into the drain
pan 58 to prevent water or fluid held in the drain pan 58 from being stagnate. As
another example, the air grille 68 may be configured to provide an outlet path in
which heated air from the machine compartment 30, or the hot plate 42, or both may
travel through.
[0039] One or more guides such as glide rails 60 may be fixed to one or more of the insulated
side panels 36 and the drawer 26 may be fixed to a moveable portion of the glide rails
so that the drawer may move, after application of a required force applied to the
drawer, between the deployed or open position and the retracted or closed position.
[0040] Fig. 6 illustrates a partial cross-sectional view of the insulated drawer assembly
100. The insulated panels, including the insulated top panel 64 and the insulated
bottom panel 66, may each be formed by an inner member such as a liner 70 and an outer
member such as a wrapper 72 that may collectively form an insulating cavity 74 in
which one or more insulating materials 76 may be disposed. It is generally contemplated
that the insulation materials may be a glass-type material, a carbon-based powder,
silicon oxide-based materials, fumed silica insulating gasses, and other insulation
as required. The insulation materials 76 substantially fill the insulating cavity
74 forming a substantially continuous layer between the liner 70 and the wrapper 72.
In one or more embodiments, the insulated cabinet gasket 62 may be fixed to an inner
gasket 78 that may be fixed to the wrapper 72 of the insulated top panel 64. A bottom
portion of the inner gasket 78 may be fixed to the liner 70 of the insulated bottom
panel 66. The inner gasket 78 may define an opening and the insulated cabinet gasket
62 may be fixed to the inner gasket 78.
[0041] The insulated panels may be formed by creating or pulling a vacuum through the liner
70 and the wrapper 72 and the insulation material 76 disposed therebetween. This process
removes air between the liner 70 and the wrapper 72 that may otherwise permit cold
air to escape and hot air to enter in the refrigerated compartment. The passthrough
grommet 46, passthrough gasket 48, and inner gasket 78, the liner 70, and wrapper
72 may be collectively configured to provide a sealed vacuum insulated structure for
each of the insulated panels.
[0042] Fig. 6A illustrates a detailed magnified view taken of area A-A in Fig. 6. As stated
above, the insulated top panel 64 may be formed of the liner 70 and the wrapper 72.
A rear portion of the liner 70 may include a liner flange 80 and a rear portion of
the wrapper 72 may include a wrapper flange 82. The passthrough grommet 46 may include
a main body portion 84 and a lip 86 that may extend from the main body portion 84
towards the front insulated panel 20. The liner flange 80 may be disposed on the lip
86 to sandwich the lip 86 to the thermoelectric device 34 (e.g., the liner flange
80 may force the lip 86 into contact with the thermoelectric device 34. More specifically,
the liner flange 80 may sandwich the lip 86 (e.g., force the lip into contact with)
to the cold plate 40 of the thermoelectric device 34. As an example, the passthrough
grommet 46 may be formed of an elastic material such as an elastomer so that the lip
86 compresses when the liner flange 80 is disposed on the lip 86.
[0043] In one or more embodiments, the passthrough gasket 48 may include a horizontal wall
88, a first vertical wall 90, and a second vertical wall 92. A protrusion 94 may extend
from the horizontal wall 88 and the protrusion 94 may be spaced apart from the first
vertical wall 90 to form a space configured to receive the flange 82 of the wrapper
72 to fix the position of the wrapper 72 with respect to the thermoelectric device
34. The second vertical wall 92 may be fixed to the liner flange 80 by an adhesive
such as an adhesive tape 96. The liner flange 80 may be fixed to the second vertical
wall 92 prior to installing the insulation materials 76 or more specifically prior
to applying a vacuum to install the insulation materials 76.
[0044] Fig. 7 illustrates an exploded view of the thermoelectric device 34 and the straps
56. As stated above, the first fan 44 may be fixed to a portion of the thermoelectric
device 34 such as the heat plate 42. The straps 56 may engage an outer periphery of
the cold plate 40 so that the thermoelectric device 34 is fixed to a portion of the
insulated cabinet 22.
[0045] Fig. 8 illustrates a perspective view of an exemplary thermoelectric device 98 according
to one or more embodiments. The thermoelectric device 98 may include the cold plate
40 and a heat plate 102, where the heat plate 102 is relatively wider than the cold
plate 40. In one or more embodiments, a second fan 104 may be fixed to the cold plate
40. The thermoelectric device 98 may be fixed to the rear insulated panel 38 in a
manner similarly described and illustrated in reference to Figs. 6 and 6A.
[0046] Fig. 9 illustrates a top-schematic view of an exemplary drawer assembly 106. The
drawer assembly 106 may include a refrigeration system 109 that may be provided with
an evaporator 108. Generally, the evaporator 108 may be disposed between the rear
insulated panel 38 and the drawer 26 (also shown in Fig. 15). In one or more embodiments,
the evaporator 108 may be a roll-bond evaporator. The roll-bond evaporator 108 may
be a plate cooler formed in such a way that a refrigerant tube, through which a refrigerant
flows, is provided in an aluminum plate. The roll-bond evaporator 108 may include
a refrigerant inlet through which a refrigerant is introduced and a refrigerant outlet
through which the refrigerant is discharged. The roll-bond evaporator 108 may generate
cold air to cool the insulated cabinet 22.
[0047] The drawer assembly 106 may include a base 116 that may support the insulated cabinet
22 and may form portions of the machine compartment 30 disposed rearward of the insulated
cabinet 22. The base 116 may be configured to support a compressor 110, a drain pan
112, and a fan 114 each of which constitute portions of the refrigerator system 109.
[0048] Fig. 10 illustrates a schematic-side view of the drawer assembly 106 and Fig. 11
illustrates a side-plan view of the drawer assembly 106. In one or more embodiments,
the refrigeration system 109 may include a condenser 118 that may be disposed between
the base 116 and the drawer 26. As will be described in greater detail below, the
condenser 118 may form a cold air supply path and a warm air return bath for the drawer
assembly 106. The refrigeration system 109 may include a controller 122 that may be
operatively coupled to the compressor 110 and the fan 114. As an example, the controller
122 may be configured to actuate one or more components of the refrigeration system
109 in response to input from a sensor e.g., a temperature sensor, drawer sensor,
or any other sensor.
[0049] The controller 122 may include a memory provided with stored instructions that may
be used to actuate the compressor 110, the fan 114 or other components of the refrigeration
system 109, as required. As an example, the controller 122 may be configured to control
the activation, duty cycle, and operation of the compressor 110.
[0050] The compressor 110 is configured to circulate and change refrigerant from a liquid
state to a gas state by routing the refrigerant through the evaporator 108 so that
the refrigerant undergoes an evaporation process in order to cool the air within the
refrigerated space 24. During the evaporation process, heat is transferred to the
refrigerant. After evaporating, the compressor 110 increases the pressure, an in turn,
the temperature of the refrigerant. The gas refrigerant is then routed to the condenser
118 so that it is condensed into a liquid and the excess heat is rejected to the ambient
surroundings. The process then repeats.
[0051] Fig. 12 illustrates a top-perspective view of the drawer assembly 106. As previously
mentioned, the insulated cabinet 22 forms a refrigerated space 24 in which the drawer
26 (not illustrated) is stowed. The rear insulated wall 38 of the insulated cabinet
22 may be adjacent to the machine compartment 30. The evaporator 108 may be fixed
to the rear insulated wall 38 of the insulated cabinet. In order to properly cool
the refrigerated space 24, heat needs to be rejected to the ambient surroundings.
This is accomplished by drawing air into the machine compartment 30 as well as the
space between the drawer 26 and the base 116, across the compressor 110 and condenser
118 (Fig. 11). The fan 114 provides the driving force to move air through the machine
compartment 30 and the space beneath the drawer 26 and above the base 116 where the
condenser 118 is located.
[0052] The compressor 110 may be supported by the base 116 and positioned adjacent to the
drain pain 112 and the fan 114. By positioning the compressor 110, drain pan 112,
and the fan 114 in the machine compartment 30 and by positioning the evaporator 108
on the rear insulated panel 38 and the condenser 118 beneath the drawer 26, relatively
little space is required from the refrigeration system 109. By minimizing space required
for the refrigeration system 109 permits a larger refrigerated space 24.
[0053] Fig. 13 illustrates a top view of a portion of the drawer assembly 106. As mentioned
above, the compressor 110 and drain pan 112 may each be disposed on the base 116 behind
the rear insulated panel 38 of the insulated cabinet 22. In one or more embodiments,
the controller 122 may be fixed to the rear insulated panel 38.
[0054] Fig. 14 illustrates a top-schematic view of the refrigeration system 109. The base
116 may include a first side 116a and a second side 116b. The compressor 110 may be
arranged on the first side 116a of the base 116. Whereas the drain pan 112 and condenser
118 may be disposed on the second side 116b of the base 116. The arrangement of the
compressor 110 and condenser 118 may form a warm air return pathway 126 and a cold
air supply 128. Warm air may be directed from the compressor along the warm air return
pathway 126 through the air grille 68. Cold air may be directed from ambient surroundings,
through the air grille 68 (Fig. 5), past the condenser 118 to the drain pan 112. In
one or more embodiments, a sound barrier such as sound insulation 124 may positioned
adjacent to the condenser 118 and configured to mitigate noise generated by the condenser
118.
[0055] Fig. 15 illustrates a cross-sectional view of the drawer assembly 106. In one or
more embodiments, the controller 122 may be fixed to the outer wrapper 72 by bracket
130. The bracket 130 may be L-shaped including a first leg and a second leg. The second
leg may include an aperture and a portion of the controller 122 may extend through
the aperture so that the controller 122 is fixed to the L-shaped bracket 130. As an
example, the liner 70 may include a rear wall 132 that may extend in a vertical direction.
The evaporator 108 may be fixed to the rear wall 132. The drawer 26 may include sidewalls
136 (only one of which is shown) that are connected to a rear wall 134 and a bottom
wall 138. Because the drawer 26 is disposed in the refrigerated space 24, the sidewalls
136, rear wall 134 and the bottom wall 138 may be formed of a non-insulative material
to permit refrigerated air to flow into the storage space 28 formed by the drawer
26.
1. A storage assembly (10) comprising:
a vacuum insulated cabinet (22) formed by a number of insulated panels (20, 36, 38,
64, and 66);
a refrigeration system (109), wherein the vacuum insulated cabinet (22) and the refrigeration
system (109) collectively form a refrigerated compartment (24);
a drawer (26) configured to move between an open position (29), in which an interior
portion of the drawer (26) is accessible, and a closed position (27), in which the
drawer (26) is disposed in the refrigerated compartment (24) and the interior portion
of the drawer (26) is inaccessible, wherein the refrigeration system (109) includes
a first heat exchanger (40, 108), disposed between the drawer (26) and a rear portion
of the insulated cabinet (22), and a second heat exchanger (42, 118) disposed in a
machine compartment (30) adjacent to the refrigerated compartment (24); and
a base (116) disposed beneath the vacuum insulated cabinet (22) and partially defining
the machine compartment (30).
2. The storage assembly (10) of claim 1, wherein the first heat exchanger (40, 108) is
an evaporator (108).
3. The storage assembly (10) of claim 2, wherein the second heat exchanger (42, 118)
is a condenser (118), and wherein the condenser (118) is located in a space beneath
the drawer (26) and above the base (116).
4. The storage assembly (10) of anyone of claims 1 to 3, wherein the rear portion of
the insulated cabinet (22) is formed by a rear insulated panel (38), of the number
of insulated panels (20, 36, 38, 64, and 66), defining an aperture configured to receive
at least one of the first heat exchanger (40, 108) or the second heat exchanger (42,
118).
5. The storage assembly (10) of anyone of claims 1 to 4, further comprising:
a first sealing member (46) lying along an outer periphery of the second heat exchanger
(42, 118); and
a second sealing member (48) lying along the first sealing member (46), wherein a
first insulated panel (38) of the number of insulated panels (20, 36, 38, 64, and
66) forces the second sealing member (48) into contact with the first sealing member
(46).
6. The storage assembly (10) of claim 5, wherein the second sealing member (48) includes
a first vertical leg (90), a second vertical leg (92), and a horizontal leg (88) extending
therebetween, and the first insulated panel (38) includes a liner sheet (70) fixed
to the second leg (92) of the second sealing member (48).
7. The storage assembly (10) of anyone of claims 4 to 6, wherein the first insulated
panel (38) includes a wrapper sheet (72) and a portion of the wrapper sheet (72) lies
along the first leg (90).
8. The storage assembly (10) of anyone of claims 5 to 7, further comprising:
an adhesive (96) disposed between and fixing the liner sheet (70) to the second leg
(92) of the second sealing member (48).
9. The storage assembly (10) of anyone of claims 5 to 8, wherein the first sealing member
(46) includes a lip (86) disposed between the first heat exchanger (40, 108) and the
second leg (92) of the second sealing member (48).
10. The storage assembly (10) of claim 9, wherein the lip (86) is formed of an elastomeric
material, and the second leg (92) of the second sealing member (48) and the liner
sheet (70) are positioned to contact the lip (86) such that the lip (86) elastically
deforms from a nominal position.