Refrigeration device

By setting up a plug-in card connection structure and a multi-layer heat transfer barrier between the cabinets of the display cabinet, the problem of heat transfer between independent cabinets is solved, and the thermal insulation performance and temperature stability are improved.

CN223403591UActive Publication Date: 2025-10-03HISENSE RONSHEN (GUANGDONG) FREEZER CO LTD +1
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Patent Information

Application Number
CN202422953371.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-10-03
Estimated Expiration
2034-11-29

AI Technical Summary

Technical Problem

The existing display cabinet's cabinet and partition installation structure causes heat to be easily transferred between independent cabinets, affecting the thermal insulation performance.

Method used

The partition module adopts a plug-in card structure. By setting connectors and plug-in slots between the back plate, top plate and bottom plate of the box, combining the center beam assembly and the partition module, a multi-layer heat transfer barrier is formed to prevent the lateral transfer of heat.

Benefits of technology

It effectively reduces the heat transfer between independent refrigeration compartments, improves the thermal insulation performance, and ensures the temperature stability and independence of the refrigeration compartments.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223403591U_ABST
Patent Text Reader

Abstract

The utility model provides a refrigerating device which comprises a box body forming a shell of the refrigerating device. The refrigerator container is arranged in the refrigerator body, and the refrigerator container is provided with a front side opening; the refrigerator container comprises a first back plate arranged on the back of the refrigerator body. The second back plate is arranged on the back of the box body, and the first back plate and the second back plate are adjacently arranged at intervals; the first connecting piece is vertically arranged between the first back plate and the second back plate, one side of the first connecting piece is connected with the first back plate, the other side of the first connecting piece is connected with the second back plate, and a first inserting groove is formed in the front side wall of the first connecting piece; the middle beam assembly is arranged in the vertical direction and is arranged on the front side of the box body; the separation modules are vertically arranged and extend in the refrigerator container in the front-back direction, the rear ends of the separation modules are inserted into the first insertion grooves, and the front ends of the separation modules are connected with the middle beam assembly; wherein the separation module is used for separating the inner space of the refrigerator container, so that a first refrigeration chamber and a second refrigeration chamber are formed on the two opposite sides of the separation module correspondingly.
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Description

Technical Field

[0001] The utility model relates to the technical field of household appliances, mainly to a refrigeration device. Background Art

[0002] There are many types of display cabinets on the market, such as refrigerated display cabinets, frozen display cabinets, heated display cabinets, single-door refrigerated and heated conversion cabinets, double-door refrigerated and heated cabinets, etc.

[0003] In current display cabinets, a partition is installed by directly forming an installation position in a recess inside the cabinet, and the partition then separates the interior of the cabinet into two independent cabinets on the left and right, thereby achieving independent insulation of the left and right cabinets.

[0004] However, since the installation structure of the cabinet and the partition of the display cabinet in the prior art causes heat to be easily transferred between the two independent cabinets, the installation design structure of the cabinet and the partition still needs to be improved. Utility Model Content

[0005] Based on the problem in the prior art that the installation structure of the display cabinet and the partition causes heat to be easily transferred between the two independent cabinets, a refrigeration device is provided.

[0006] In order to solve the above technical problems, the present invention adopts the following technical solutions:

[0007] 20. The refrigeration device of claim 19, wherein the cooling fan is constructed so that the cooling fan can be easily installed in an off-center position and can be easily retracted when the cooling fan is in a closed position.

[0008] The above technical solution has the following advantages or beneficial effects: a first connector is vertically provided between the first back plate and the second back plate, and the first connector is provided with a first insertion slot, so that the partition module can be inserted into the first insertion slot, and the partition assembly is arranged in the cabinet and divides the interior of the cabinet into a first refrigeration compartment and a second refrigeration compartment. The first connector not only connects the first back plate and the second back plate together, but also has a first insertion slot on the first connector, so that the installation between the partition module and the cabinet adopts a plug-in clamping structure, which not only simplifies the installation steps between the partition module and the cabinet, but also further prevents heat from being transferred laterally between the first refrigeration compartment and the second refrigeration compartment through the first back plate and the second back plate, effectively reducing direct heat conduction at the partition between the first refrigeration compartment and the second refrigeration compartment. At the same time, the arrangement of the partition module further reduces the heat transfer path between the two independent refrigeration compartments, thereby improving the independent thermal insulation performance of the first refrigeration compartment and the second refrigeration compartment.

[0009] In some embodiments of the present application, a refrigeration device is provided, wherein the front side walls of the first connecting member are respectively provided with a first snap-in groove and a second snap-in groove; the first snap-in groove is arranged at intervals on a side of the first plug-in slot close to the first back panel, and the second snap-in groove is arranged at intervals on a side of the first plug-in slot close to the second back panel; a first flange bent backward is provided on a side of the first back panel close to the first connecting member, and the first flange is snapped into the first snap-in groove; a second flange bent backward is provided on a side of the second back panel close to the first connecting member, and the second flange is snapped into the second snap-in groove.

[0010] Another technical solution of the above technical solution has the following advantages or beneficial effects: by providing a first snap-in slot and a second snap-in slot on the first connector, the first back panel is provided with a first flange bent backward, and after the first flange is inserted into the first snap-in slot, it tightly fits with the inner wall of the first snap-in slot, making the installation process of the first back panel and the first connector more convenient. Correspondingly, the second back panel is provided with a second flange bent backward, and after the second flange is inserted into the second snap-in slot, it tightly fits with the inner wall of the second snap-in slot, making the installation process of the second back panel and the first connector more convenient. Moreover, after the first and second back panels are respectively snapped into the first connector, they form an additional heat transfer barrier. The heat between the first and second back panels needs to be transferred in a roundabout way through the multi-layer structure rather than in a straight line, which helps to reduce the heat transfer rate between the first and second refrigeration compartments and further improve the thermal insulation effect between the refrigeration compartments.

[0011] In some embodiments of the present application, a refrigeration device is provided, wherein the first connecting member includes a first partition plate, which is arranged on the front side wall of the first connecting member; a second partition plate, which is arranged on the front side wall of the first connecting member, the second partition plate is spaced apart from the first partition plate, and the first plug-in slot is formed between the second partition plate and the first partition plate; a first clamping portion, which is arranged on a side of the first partition plate away from the first plug-in slot, the first clamping slot is formed between the first clamping portion and the first partition plate, and the first flange is clamped between the first clamping portion and the first partition plate; a second clamping portion, which is arranged on a side of the second partition plate away from the first plug-in slot, the second clamping slot is formed between the second clamping portion and the second partition plate, and the second flange is clamped between the second clamping portion and the second partition plate.

[0012] Another technical solution among the above technical solutions has the following advantages or beneficial effects: by providing a first clamping portion and a first spacer on one side of the first connector to clamp the first flange between the two, and providing a second clamping portion and a second spacer on the other side of the first connector to clamp the second flange between the two, the clamping structure formed between the first connector and the first flange and the second flange respectively can reduce the gap between the connection area between the first connector and the first back plate and the second back plate, effectively preventing heat or cold air from leaking through the connection area between the first back plate and the first connector. On the other hand, it makes the first back plate and the second back plate less likely to loosen or fall off under the action of external force, especially when the refrigerator is used for a long time or is affected by temperature changes, and can still maintain a stable connection.

[0013] In some embodiments of the present application, a refrigeration device is provided, wherein a second plug-in slot is recessed on the back side of the center beam assembly, and the front end of the partition module is plugged into the second plug-in slot; the upper and lower ends of the center beam assembly are respectively fixed on the box body, and the front and rear ends of the partition module are clamped between the first plug-in slot and the second plug-in slot.

[0014] Another technical solution of the above technical solution has the following advantages or beneficial effects: the front end of the partition module is inserted into the second insertion slot of the center beam assembly, and the front and rear ends are clamped between the first insertion slot and the second insertion slot. Because the front and rear ends of the partition module are respectively clamped by the first connecting member and the center beam assembly, the partition module can be firmly fixed to the inner chamber. Furthermore, the first and second insertion slots not only provide a stable connection for the partition module, but also effectively reduce the gap between the partition module and the center beam assembly and the inner chamber, thereby reducing gaps and heat leakage, thereby improving the independent thermal insulation performance of the first and second refrigeration compartments within the box and preventing interference between cold and hot air.

[0015] In some embodiments of the present application, a refrigeration device is provided, wherein the center beam assembly includes a center beam shell, which is arranged vertically and provided on the front side of the box body, and the inner surface of the center beam shell forms a foaming space; a reinforcement member, which is provided in the foaming space, and the reinforcement member is fixed on the rear wall of the center beam shell; and the second plug-in slot is located on the back side of the reinforcement member.

[0016] Another technical solution of the above-mentioned technical solution has the following advantages or beneficial effects: the inner surface of the center beam shell encloses a foam space that can be filled with foam material, which not only increases the strength of the center beam assembly but also isolates the heat exchange between the first and second refrigeration compartments. Furthermore, by wrapping the reinforcement member around the outer periphery of the insertion slot, when the partition module is inserted into the second insertion slot, the reinforcement member also serves to enhance the structural strength of the connection point between the partition module and the center beam assembly, making the connection between the partition module and the center beam assembly more stable and reliable, thereby improving the stability of the partition module.

[0017] In some embodiments of the present application, a refrigeration device is provided, wherein the box shell includes a first top plate, which is arranged on the top of the first back plate; a second top plate, which is arranged on the top of the second back plate, and the first top plate and the second top plate are adjacent to each other and spaced apart; the refrigeration device includes a second connecting member, which is arranged between the first top plate and the second top plate in the front-to-back direction, one side of the second connecting member is connected to the first top plate, and the other side of the second connecting member is connected to the second top plate; a third plug-in slot is recessed at the lower end of the second connecting member, and the top of the partition module is plugged into the third plug-in slot.

[0018] Another technical solution of the above technical solution has the following advantages or beneficial effects: a second connector is vertically provided between the first and second top plates, and the second connector is provided with a third insertion slot, so that the upper end of the partition module can be inserted into the third insertion slot. The provision of the second connector provides additional support, making the first and second top plates more structurally stable and enhancing the connection strength between the top of the partition module and the liner. Furthermore, the provision of the third insertion slot on the second connector enables a plug-in, snap-fit ​​connection between the top of the partition module and the liner. This not only simplifies the installation process between the partition module and the liner, but also effectively prevents heat from being transferred laterally between the first and second refrigeration compartments through the first and second top plates, thereby reducing direct heat conduction at the partition between the first and second refrigeration compartments. Furthermore, the provision of the partition module further reduces the heat transfer path between the two independent refrigeration compartments, enhancing the thermal insulation effect on both sides and improving the independent thermal insulation performance of the first and second refrigeration compartments.

[0019] In some embodiments of the present application, a refrigeration device is provided, and the bottom wall of the second connecting member is respectively provided with a third clamping groove and a fourth clamping groove; the third clamping groove is arranged at intervals on the side of the third plug-in slot close to the first top plate, and the fourth clamping groove is arranged at intervals on the side of the third plug-in slot close to the second top plate; the side of the first top plate close to the second connecting member is provided with a third flange bent upward, and the third flange is clamped in the third clamping groove; the side of the second top plate close to the second connecting member is provided with a fourth flange bent upward, and the fourth flange is clamped in the fourth clamping groove.

[0020] Another technical solution among the above technical solutions has the following advantages or beneficial effects: by providing a third and a fourth snap-in slot on the second connecting member, the first top plate is provided with a third flange that is bent upward. After the third flange is inserted into the third snap-in slot, it tightly fits with the inner wall of the third snap-in slot, making the installation process of the first top plate and the second connecting member more convenient. Correspondingly, the second top plate is provided with a fourth flange that is bent upward. After the fourth flange is inserted into the fourth snap-in slot, it tightly fits with the inner wall of the fourth snap-in slot, making the installation process of the second top plate and the second connecting member more convenient. Moreover, after the first and second top plates are respectively snap-into the second connecting member, they form an additional heat transfer barrier. Heat between the first and second top plates needs to be transferred in a roundabout way through the multi-layer structure rather than in a straight line, which helps to reduce the heat transfer rate between the first and second refrigeration compartments and further improve the thermal insulation effect between the refrigeration compartments.

[0021] In some embodiments of the present application, a refrigeration device is provided, wherein the second connecting member includes a third partition plate, which is arranged on the bottom wall of the second connecting member; a fourth partition plate, which is arranged on the bottom wall of the second connecting member, the fourth partition plate and the third partition plate are spaced apart, and the third plug-in slot is formed between the fourth partition plate and the third partition plate; a third clamping portion, which is arranged on a side of the third partition plate away from the third plug-in slot, the third clamping slot is formed between the third clamping portion and the third partition plate, and the third flange is clamped between the third clamping portion and the third partition plate; a fourth clamping portion, which is arranged on a side of the fourth partition plate away from the third plug-in slot, the fourth clamping slot is formed between the fourth clamping portion and the fourth partition plate, and the fourth flange is clamped between the fourth clamping portion and the fourth partition plate.

[0022] Another technical solution among the above technical solutions has the following advantages or beneficial effects: by providing a third clamping portion and a third partition plate on one side of the second connector to clamp the third flange between the two, and providing a fourth clamping portion and a fourth partition plate on the other side of the second connector to clamp the fourth flange between the two, the clamping structure formed between the second connector and the third flange and the fourth flange can reduce the gap between the connection area between the second connector and the first top plate and the second top plate, respectively, and effectively prevent heat or cold air from leaking through the connection area between the second connector and the first top plate and the second top plate. On the other hand, it makes the first top plate and the second top plate less likely to loosen or fall off under the action of external force, especially when the refrigerator is used for a long time or is affected by temperature changes, the first top plate and the second top plate can still maintain a stable connection.

[0023] In some embodiments of the present application, a refrigeration device is provided, wherein the box shell includes a first bottom plate, which is arranged at the bottom of the first back plate; a second bottom plate, which is arranged at the bottom of the second back plate, and the first bottom plate and the second bottom plate are adjacently spaced apart; the refrigeration device includes: a third connecting member, which is arranged between the first bottom plate and the second bottom plate in the front-to-back direction, one side of the third connecting member is connected to the first bottom plate, and the other side of the third connecting member is connected to the second bottom plate; a fourth plug-in slot is recessed in the top of the third connecting member, and the top of the partition module is plugged into the fourth plug-in slot.

[0024] Another technical solution of the above technical solution has the following advantages or beneficial effects: a third connector is provided between the first and second bottom plates, and the third connector has a fourth insertion slot, so that the lower end of the partition module can be inserted into the fourth insertion slot. The provision of the third connector provides additional support for the bottom of the liner, making the first and second bottom plates more structurally stable and strengthening the connection between the bottom end of the partition module and the liner. Furthermore, the provision of the fourth insertion slot on the third connector enables a plug-in, snap-fit ​​connection between the bottom end of the partition module and the liner. This not only simplifies the installation process between the partition module and the liner, but also effectively prevents heat from being transferred laterally between the first and second refrigeration compartments through the first and second bottom plates, reducing direct heat conduction at the partition between the first and second refrigeration compartments. Furthermore, the provision of the partition module further reduces the heat transfer path between the two independent refrigeration compartments, enhancing the insulation effect on both sides and improving the independent thermal insulation performance of the first and second refrigeration compartments.

[0025] In some embodiments of the present application, a refrigeration device is provided, wherein the top wall of the third connecting member is respectively provided with a fifth clamping groove and a sixth clamping groove; the fifth clamping groove is arranged at intervals on the side of the fourth plug-in slot close to the first bottom plate, and the sixth clamping groove is arranged at intervals on the side of the fourth plug-in slot close to the second bottom plate; the side of the first bottom plate close to the third connecting member is provided with a fifth flange bent downward, and the fifth flange is clamped in the fifth clamping groove; the side of the second bottom plate close to the third connecting member is provided with a sixth flange bent downward, and the sixth flange is clamped in the sixth clamping groove.

[0026] Another technical solution of the above technical solution has the following advantages or beneficial effects: by providing the third connecting member with a fifth and sixth snap-in slots, the first top plate is provided with an upwardly bent fifth flange. After the fifth flange is inserted into the fifth snap-in slot, it tightly fits with the inner wall of the fifth snap-in slot, making the installation process of the first bottom plate and the third connecting member more convenient. Correspondingly, the second bottom plate is provided with a downwardly bent sixth flange. After the sixth flange is inserted into the sixth snap-in slot, it tightly fits with the inner wall of the sixth snap-in slot, making the installation process of the second bottom plate and the third connecting member more convenient. Moreover, after the first and second bottom plates are respectively snap-into the third connecting member, they form an additional heat transfer barrier. Heat between the first and second bottom plates needs to be transferred in a roundabout way through the multi-layer structure rather than in a straight line, which helps to reduce the heat transfer rate between the first and second refrigeration compartments and further improve the thermal insulation effect between the refrigeration compartments.

[0027] In some embodiments of the present application, a refrigeration device is provided, wherein the third connecting member includes a fifth partition plate, which is arranged on the top wall of the third connecting member; a sixth partition plate, which is arranged on the top wall of the third connecting member, the sixth partition plate and the fifth partition plate are spaced apart, and the fourth plug-in slot is formed between the sixth partition plate and the fifth partition plate; a fifth clamping portion, which is arranged on a side of the fifth partition plate away from the fourth plug-in slot, the fifth clamping slot is formed between the fifth clamping portion and the fifth partition plate, and the fifth flange is clamped between the fifth clamping portion and the fifth partition plate; a sixth clamping portion, which is arranged on a side of the sixth partition plate away from the fourth plug-in slot, the sixth clamping slot is formed between the sixth clamping portion and the sixth partition plate, and the sixth flange is clamped between the sixth clamping portion and the sixth partition plate.

[0028] Another technical solution among the above technical solutions has the following advantages or beneficial effects: by providing a fifth clamping portion and a fifth spacer on one side of the third connecting member to clamp the fifth flange between the two, and providing a sixth clamping portion and a sixth spacer on the other side of the third connecting member to clamp the sixth flange between the two, the clamping structure formed between the third connecting member and the fifth flange and the sixth flange can reduce the gap between the connection areas between the third connecting member and the first bottom plate and the second bottom plate, respectively, and effectively prevent heat or cold air from leaking through the connection areas between the third connecting member and the first bottom plate and the second bottom plate. On the other hand, it makes the first bottom plate and the second bottom plate less likely to loosen or fall off under the action of external force, especially when the refrigerator is used for a long time or is affected by temperature changes, and can still maintain a stable connection.

[0029] In some embodiments of the present application, a refrigeration device is provided, wherein the partition module includes a first partition plate, which is arranged on one side of the first refrigeration compartment; a second partition plate, which is arranged on one side of the second refrigeration compartment, and the second partition plate is arranged parallel to and spaced apart from the first partition plate; a fourth connecting member, which is arranged between the top ends of the first partition plate and the second partition plate; a fifth connecting member, which is arranged between the bottom ends of the first partition plate and the second partition plate, and the fifth connecting member and the fourth connecting member are spaced apart from each other in upper and lower directions; a sixth connecting member, which is arranged between the front ends of the first partition plate and the second partition plate; a seventh connecting member, which is arranged between the rear ends of the first partition plate and the second partition plate, and the seventh connecting member and the sixth connecting member are spaced apart from each other in front and back directions; wherein a foaming space is enclosed by the first partition plate, the second partition plate, the fourth connecting member, the fifth connecting member, the sixth connecting member, and the seventh connecting member.

[0030] The above technical solution has the following advantages or beneficial effects: the first partition plate, the second partition plate, the fourth connector, the fifth connector, the sixth connector, and the seventh connector together enclose a foam space, and the cooperation of each connector with the first partition plate and the second partition plate enables the partition module to form a closed structure as a whole. The foam material can effectively reduce the heat transfer at the connection between the first refrigeration compartment and the second refrigeration compartment, so that the partition module plays a role of insulation, and can effectively maintain the stability of the temperature inside the box.

[0031] 20. The refrigeration device of claim 19, wherein the cooling fan is constructed so that the refrigeration device can be easily installed in an off-center position and can be easily retracted. The cooling fan is constructed so that the cooling fan can be easily installed in an off-center position.

[0032] The above technical solution has the following advantages or beneficial effects: by providing a second plug-in slot on the back side of the center beam assembly, the front end of the partition module can be plugged into the back side of the center beam assembly. Furthermore, the rear end of the partition module can be connected to the first connecting piece, so that the partition module can be firmly fixed on the box liner, which not only simplifies the installation structure between the partition module and the center beam assembly, but also the front and rear sides of the partition module are respectively connected between the center beam assembly and the first connecting piece, which can effectively reduce the direct heat conduction at the partition between the first refrigeration compartment and the second refrigeration compartment, and prevent the heat of the first refrigeration compartment and the second refrigeration compartment from being directly transferred laterally through the first back plate and the second back plate. At the same time, with the arrangement of the partition module, the heat transfer path between the two independent refrigeration compartments is further reduced, thereby improving the independent thermal insulation performance of the first refrigeration compartment and the second refrigeration compartment.

[0033] A third aspect of the present application provides a refrigeration device, comprising a box body, which forms an outer shell of the refrigeration device; a box liner, which is arranged in the box body, and the box liner has a front opening; the box liner includes: a first top plate, which is arranged at the top of the box body; a second top plate, which is arranged at the top of the box body, and the first top plate and the second top plate are arranged adjacent to each other; a second connecting member, which is arranged between the first top plate and the second top plate in the front-to-back direction, one side of the second connecting member is connected to the first top plate, and the other side of the second connecting member is connected to the second top plate, and the lower end of the second connecting member is recessed with a third plug-in slot; a center beam assembly, which is arranged vertically and arranged at the front side of the box body; a partition module, which is arranged vertically and extends in the front-to-back direction and is arranged in the box liner, the top end of the partition module is plugged into the third plug-in slot, and the front end of the partition module is connected to the center beam assembly; wherein the partition module is used to divide the internal space of the box liner to form a first refrigeration compartment and a second refrigeration compartment on opposite sides of the partition module.

[0034] The above technical solution has the following advantages or beneficial effects: a second connector is vertically provided between the first and second top plates, and the second connector is provided with a third insertion slot, so that the upper end of the partition module can be inserted into the third insertion slot. The second connector provides additional support for the top of the liner, making the first and second top plates more structurally stable and enhancing the connection strength between the top of the partition module and the liner. Furthermore, the third insertion slot on the second connector enables a plug-in, snap-fit ​​connection between the top of the partition module and the liner. This not only simplifies the installation process between the partition module and the liner, but also effectively prevents heat from being transferred laterally between the first and second refrigeration compartments through the first and second top plates, thereby reducing direct heat conduction at the partition between the first and second refrigeration compartments. Furthermore, the provision of the partition module further reduces the heat transfer path between the two independent refrigeration compartments, enhancing the thermal insulation effect on both sides and improving the independent thermal insulation performance of the first and second refrigeration compartments.

[0035] A fourth aspect of the present application provides a refrigeration device, comprising a housing forming an outer shell of the refrigeration device; a housing arranged in the housing, the housing having a front opening; the housing comprising: a first bottom plate arranged at the bottom of the housing; a second bottom plate arranged at the bottom of the housing, the first bottom plate and the second bottom plate being adjacently spaced apart; a third connecting member arranged between the first bottom plate and the second bottom plate in a front-to-back direction, one side of the third connecting member being connected to the first bottom plate, the other side of the third connecting member being connected to the second bottom plate, and a fourth plug-in slot being recessed at the top of the third connecting member; a center beam assembly arranged vertically and arranged at the front side of the housing; a partition module arranged vertically and extending in the front-to-back direction within the housing, the bottom end of the partition module being plugged into the fourth plug-in slot, and the front end of the partition module being connected to the center beam assembly; wherein the partition module is used to partition the internal space of the housing to form a first refrigeration compartment and a second refrigeration compartment on opposite sides of the partition module, respectively.

[0036] The above technical solution has the following advantages or beneficial effects: By providing a third connector between the first and second bottom plates, and having a fourth insertion slot on the third connector, the lower end of the partition module can be inserted into the fourth insertion slot. The provision of the third connector provides additional support for the bottom of the liner, making the first and second bottom plates more structurally stable and strengthening the connection between the bottom end of the partition module and the liner. Furthermore, the provision of the fourth insertion slot on the third connector enables a plug-in, snap-fit ​​connection between the bottom end of the partition module and the liner. This not only simplifies the installation process between the partition module and the liner, but also effectively transfers heat between the first and second refrigeration compartments laterally through the first and second bottom plates, reducing direct heat conduction at the partition between the first and second refrigeration compartments. Furthermore, the provision of the partition module further reduces the heat transfer path between the two independent refrigeration compartments, enhancing the insulation effect on both sides and improving the independent thermal insulation performance of the first and second refrigeration compartments. BRIEF DESCRIPTION OF THE DRAWINGS

[0037] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and, together with the description, serve to explain the principles of the present application.

[0038] Figure 1 A schematic diagram of a refrigeration device according to an embodiment of the present application;

[0039] Figure 2 for Figure 1 Schematic diagram from another perspective;

[0040] Figure 3 for Figure 2 An exploded view of

[0041] Figure 4 for Figure 1 A cross-sectional view of

[0042] Figure 5 for Figure 4 A local enlarged view of point A;

[0043] Figure 6 for Figure 3 Exploded view of the center beam assembly;

[0044] Figure 7 for Figure 4 A partial enlarged view of point B;

[0045] Figure 8 for Figure 1 Another cross-sectional view of

[0046] Figure 9 for Figure 8 A partial enlarged view of point C;

[0047] Figure 10 for Figure 8 A partial enlarged view of point D;

[0048] Figure 11 for Figure 1 Schematic diagram of the middle partition module;

[0049] Figure 12 for Figure 11 An exploded view of .

[0050] The corresponding relationship between the reference numerals and component names is as follows:

[0051] 100. Foaming space;

[0052] 1. Box body;

[0053] 2. Cabinet; 201. First refrigeration compartment; 202. Second refrigeration compartment; 21. First back panel; 211. First flange; 22. Second back panel; 221. Second flange; 23. First top panel; 231. Third flange; 24. Second top panel; 241. Fourth flange; 25. First bottom panel; 251. Fifth flange; 26. Second bottom panel; 261. Sixth flange;

[0054] 3. First connector, 301. First insertion slot; 302. First clamping slot; 303. Second clamping slot; 31. First partition plate; 32. Second partition plate; 33. First clamping portion; 34. Second clamping portion; 35. First abutting plate; 36. Second abutting plate; 37. First buffer portion;

[0055] 4. Center beam assembly; 401. Second insertion slot; 402. Matching slot; 41. Center beam shell; 42. Reinforcement member; 421. Vertical plate; 422. Support arm; 43. Boss;

[0056] 5. Separation module; 51. First separation plate; 52. Second separation plate; 53. Fourth connecting member; 531. Connecting plate; 532. First clamping portion; 533. Second clamping portion; 54. Fifth connecting member; 55. Sixth connecting member; 56. Seventh connecting member;

[0057] 6. Second connector; 601. Third insertion slot; 602. Third clamping slot; 603. Fourth clamping slot; 61. Third partition plate; 62. Fourth partition plate; 63. Third clamping portion; 64. Fourth clamping portion; 65. Third abutting plate; 66. Fourth abutting plate; 67. Second buffer portion;

[0058] 7. Third connecting member; 701. Fourth insertion slot; 702. Fifth clamping slot; 703. Sixth clamping slot; 71. Fifth partition plate; 72. Sixth partition plate; 73. Fifth clamping portion; 74. Sixth clamping portion; 75. Fifth abutting plate; 76. Sixth abutting plate; 77. Third buffer portion;

[0059] 81. First adsorption component; 82. Second adsorption component. DETAILED DESCRIPTION

[0060] The present invention provides a refrigeration device. To make the purpose, technical solution, and effects of the present invention more clear and explicit, the present invention is further described in detail below with reference to the accompanying drawings and examples. It should be understood that the specific examples described herein are only intended to illustrate the present invention and are not intended to limit the scope of protection of the present invention.

[0061] In the description of the present invention, it should be understood that the terms "upper", "lower", "inside", "outside", etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present invention.

[0062] In the description of this utility model, it should be noted that, unless otherwise expressly specified or limited, the terms "installed," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; mechanical connections, electrical connections, or mutual communication; direct connections or indirect connections through an intermediate medium; and internal communication between two components or interaction between two components. Those skilled in the art will understand the specific meanings of the above terms in this utility model based on specific circumstances.

[0063] The refrigeration device of the embodiment of the present invention can be a refrigeration cabinet such as a freezer, a refrigerator, a hall bar cabinet, etc. The following takes a refrigerator as an example to describe in detail the technical solution for improving the refrigeration device of the embodiment of the present invention.

[0064] Figure 1 FIG. 1 is a schematic diagram of a refrigeration device according to an embodiment of the present application.

[0065] like Figure 1 As shown, the refrigerator provided by the embodiment of the present invention may include a housing 1. The housing 1 may be a hollow structure such as a rectangular parallelepiped. The housing 1 forms the outer shell of the refrigerator. It should be noted that the housing 1 may also be a hollow shell structure of other shapes.

[0066] In some embodiments, a refrigeration compartment with an open front side can be formed inside the box body 1. There can be multiple refrigeration compartments.

[0067] In some embodiments, the refrigerator may include a cabinet 2. The cabinet 2 may be disposed in the cabinet body 1. The cabinet 2 may form a refrigeration compartment.

[0068] In some embodiments, the refrigeration compartment can function as an independent storage space, such as a freezer, refrigerator, or temperature-controlled room. This allows for different cooling requirements, such as freezing, refrigeration, and temperature-controlled storage, depending on the type of food being consumed. This allows for storage of items requiring refrigeration or freezing. Multiple refrigeration compartments can be arranged vertically or horizontally.

[0069] In some embodiments, the refrigerator may include a door. The door may be hinged to the front side of the cabinet 1 for opening and closing the refrigeration compartment.

[0070] It should be noted that multiple doors can be provided. Doors can be provided one-to-one with refrigeration compartments. Multiple doors can simultaneously open and close a refrigeration compartment. One door can also simultaneously open and close multiple refrigeration compartments.

[0071] In some embodiments, the refrigerator may include a refrigeration system. The refrigeration system may be arranged inside the box body 1. The refrigeration system may be used to provide cold air inside the refrigerator to maintain a low temperature environment in each refrigeration compartment.

[0072] In some embodiments, the refrigeration system may include a compressor (not shown). The compressor can serve as the power source of the refrigeration cycle, sucking in low-temperature, low-pressure refrigerant gas and compressing it into high-temperature, high-pressure gas. The compressor can deliver the high-temperature, high-pressure refrigerant to the condenser.

[0073] In some embodiments, the refrigeration system may include a condenser (not shown). The condenser may receive refrigerant flowing out of the compressor and cool the high-temperature, high-pressure refrigerant gas from the compressor into a liquid state. The condenser may transfer heat from the refrigerant to the surrounding air, thereby lowering the refrigerant temperature.

[0074] In some embodiments, the refrigeration system may include a throttling device (not shown). The condenser may deliver the condensed refrigerant to the throttling device. The throttling device may be a capillary tube. The throttling device may be used to throttle and reduce the pressure of the refrigerant.

[0075] In some embodiments, the refrigeration system may include an evaporator (not shown). A throttling device may deliver the throttled and depressurized refrigerant to the evaporator. The evaporator may be used to evaporate and boil the refrigerant vapor to absorb heat from the surrounding medium.

[0076] In some embodiments, the compressor, condenser, throttling device, and evaporator may be sequentially connected to form a refrigeration circuit, in which a refrigerant may circulate to cool the interior of the tank 2.

[0077] Figure 2 for Figure 1 Schematic diagram from another perspective; Figure 3 for Figure 2 An exploded view of .

[0078] like Figure 2 and Figure 3 As shown, in some embodiments, the box liner 2 may include a first back plate 21. The first back plate 21 may be provided at the back of the box body 1. The first back plate 21 may be spaced apart from the back of the box body 1 to form a foaming space 100.

[0079] In some embodiments, the box 2 may include a second back plate 22. The second back plate 22 may be disposed on the back of the box body 1. The second back plate 22 may be spaced apart from the back of the box body 1 to form a foaming space 100. The first back plate 21 and the second back plate 22 may be spaced apart adjacent to each other.

[0080] Figure 4 for Figure 1 A cross-sectional view of Figure 5 for Figure 4 A partial enlarged view of point A.

[0081] like Figure 4 and Figure 5 As shown, in some embodiments, the refrigerator may include a first connector 3. The first connector 3 may be vertically arranged between the first back panel 21 and the second back panel 22. One side of the first connector 3 may be connected to the first back panel 21. The other side of the first connector 3 may be connected to the second back panel 22. The front side wall of the first connector 3 may be provided with a first insertion slot 301. The first connector 3 further connects the first back panel 21 and the second back panel 22.

[0082] like Figure 2 As shown, in some embodiments, the refrigerator may include a center beam assembly 4. The center beam assembly 4 may be arranged vertically and disposed on the front side of the refrigerator body 1. The center beam assembly 4 may be supported at the front opening of the refrigerator liner 2, providing additional structural support for the refrigerator liner 2, thereby enhancing the overall structural stability of the refrigerator body 1.

[0083] like Figure 2 As shown, Figure 2 As shown, in some embodiments, the refrigerator may include a partition module 5. The partition module 5 can be used to partition the space inside the box 2.

[0084] In some embodiments, a foaming space 100 may be provided in the partition module 5. The foaming space 100 may be filled with foam material to partition the space inside the box 2 and reduce heat conduction at the partition.

[0085] In some embodiments, the partition module 5 can be arranged vertically and extended in the front-to-back direction within the box 2. The rear end of the partition module 5 can be plugged into the first plug slot 301. The front end of the partition module can be connected to the center beam assembly 4.

[0086] like Figure 1 and Figure 2 As shown, the partition module 5 is used to partition the inner space of the box 2 to form a first refrigeration compartment 201 and a second refrigeration compartment 202 on opposite sides of the partition module 5 .

[0087] Specifically, a first connecting member 3 is vertically provided between the first back panel 21 and the second back panel 22, and a first plug-in slot 301 is provided on the first connecting member 3, so that the partition module 5 can be inserted into the first plug-in slot 301, and the partition assembly is arranged in the box liner 2 and divides the interior of the box liner 2 into a first refrigeration compartment 201 and a second refrigeration compartment 202.

[0088] Among them, such as Figure 4 and Figure 5As shown, the first connecting member 3 not only connects the first back plate 21 and the second back plate 22 together, but also is provided with a first plug-in slot 301 on the first connecting member 3, so that the installation between the partition module 5 and the box liner 2 adopts a plug-in card connection structure, which not only simplifies the installation steps between the partition module 5 and the box liner 2, but also the first connecting member 3 can further prevent the heat of the first refrigeration compartment 201 and the second refrigeration compartment 202 from being transferred laterally through the first back plate 21 and the second back plate 22, effectively reducing the direct heat conduction at the partition between the first refrigeration compartment 201 and the second refrigeration compartment 202. At the same time, with the arrangement of the partition module 5, the heat transfer path between the two independent refrigeration compartments is further reduced, thereby improving the independent thermal insulation performance of the first refrigeration compartment 201 and the second refrigeration compartment 202.

[0089] In some embodiments, the first connecting member 3 may be made of a heat-insulating material, thereby reducing heat transfer between the first refrigeration compartment 201 and the second refrigeration compartment 202 at the connection between the first back plate 21 and the second back plate 22 .

[0090] like Figure 5 As shown, in some embodiments, the front side wall of the first connector 3 may be provided with a first snap-in groove 302. The first snap-in groove 302 may be spaced apart and disposed on a side of the first insertion groove 301 close to the first back plate 21. In this way, the first back plate 21 may be inserted into the first snap-in groove 302 and thereby connected to the first connector 3.

[0091] like Figure 5 As shown, in some embodiments, a first flange 211 bent backwards may be provided on one side of the first back plate 21 close to the first connector 3. The first flange 211 may be snapped into the first snapping groove 302.

[0092] The first flange 211 is bent backward and, after being inserted into the first engaging groove 302, closely fits against the inner wall of the first engaging groove 302, making the installation process of the first back panel 21 and the first connector 3 more convenient. Furthermore, the engaging structure between the first flange 211 and the first engaging groove 302 of the first back panel 21 forms an additional heat transfer barrier, forcing heat to be transferred in a circuitous manner through the multi-layer structure rather than in a straight line. This helps reduce the heat transfer rate between the first refrigeration compartment 201 and the second refrigeration compartment 202, further improving the thermal insulation effect between the refrigeration compartments.

[0093] like Figure 5 As shown, in some embodiments, the front side wall of the first connector 3 may be provided with a second snap-in groove 303. The second snap-in groove 303 may be spaced apart and disposed on a side of the first insertion groove 301 close to the second back plate 22. In this way, the second back plate 22 may be inserted into the first snap-in groove 302 and thereby connected to the first connector 3.

[0094] like Figure 5 As shown, in some embodiments, a side of the second back plate 22 close to the first connector 3 may be provided with a second flange 221 bent backwards. The second flange 221 may be snapped into the second snap-fitting groove 303 .

[0095] The second flange 221 is bent backward and, after being inserted into the second engaging groove 303, fits tightly against the inner wall of the second engaging groove 303, making the installation process of the second back plate 22 and the first connector 3 more convenient. Furthermore, the engaging structure between the second flange 221 and the second engaging groove 303 of the second back plate 22 forms an additional heat transfer barrier. Heat is transferred in a circuitous manner through the multi-layer structure rather than in a straight line, thereby reducing the heat transfer rate between the second refrigeration compartment 202 and the first refrigeration compartment 201 and further improving the thermal insulation effect between the refrigeration compartments.

[0096] like Figure 5 As shown, in some embodiments, the first connecting member 3 may include a first partition plate 31. The first partition plate 31 may be provided on the front side wall of the first connecting member 3.

[0097] like Figure 5 As shown, in some embodiments, the first connector 3 may include a second spacer 32. The second spacer 32 may be disposed on the front side wall of the first connector 3. The second spacer 32 may be spaced apart from the first spacer 31. A first insertion slot 301 may be formed between the second spacer 32 and the first spacer 31.

[0098] The first insertion slot 301 formed by the first and second partition plates 31, 32 provides a stable insertion position for the partition module 5. Furthermore, the spacing between the first and second partition plates 31, 32 disperses stress in the connection structure between the first connector 3 and the partition module 5, preventing deformation of the first connector 3 due to concentrated stress.

[0099] like Figure 5 As shown, in some embodiments, the first connector 3 may include a first clamping portion 33. The first clamping portion 33 may be disposed on a side of the first partition plate 31 away from the first insertion slot 301. The first clamping portion 33 may form a first clamping slot 302 with the first partition plate 31. The first flange 211 may be clamped between the first clamping portion 33 and the first partition plate 31.

[0100] In this way, the first clamping portion 33 provides a fixing point for the first back panel 21 and the first connecting member 3, so that the first flange 211 is clamped between the first clamping portion 33 and the first partition plate 31. The clamping structure makes the first flange 211 fit tightly with the first connecting member 3. On the one hand, it reduces the gap in the connection area between the first back panel 21 and the first connecting member 3, and effectively prevents heat or cold air from leaking through the connection area between the first back panel 21 and the first connecting member 3. On the other hand, the clamping structure of the first flange 211 in the first clamping groove 302 makes the first back panel 21 less likely to loosen or fall off under the action of external force, especially when the refrigerator is used for a long time or is affected by temperature changes, it can still maintain a stable connection.

[0101] like Figure 5 As shown, in some embodiments, the opening size of the first engaging slot 302 gradually decreases from the back to the front of the refrigerator. This can prevent the first flange 211 from being separated from the opening of the first engaging slot 302 due to external forces or temperature changes.

[0102] like Figure 5 As shown, in some embodiments, a first abutment plate 35 may be bent and extended from the front end of the first engaging portion 33 toward the first back plate 21. The first abutment plate 35 may be located at the opening of the first engaging slot 302. The first abutment plate 35 may abut against the first back plate 21, further improving the connection stability between the first back plate 21 and the first connector 3.

[0103] like Figure 5 As shown, in some embodiments, the first connector 3 may include a second clamping portion 34. The second clamping portion 34 may be disposed on a side of the second partition plate 32 away from the first insertion slot 301. A second clamping slot 303 may be formed between the second clamping portion 34 and the second partition plate 32. The second flange 221 may be clamped between the second clamping portion 34 and the second partition plate 32.

[0104] In this way, the second clamping portion 34 provides a fixing point for the second back panel 22 and the first connector 3, so that the second flange 221 is clamped between the second clamping portion 34 and the second partition plate 32. The clamping structure ensures a tight fit between the second flange 221 and the second connector 6. On the one hand, this reduces the gap in the connection area between the second back panel 22 and the first connector 3, effectively preventing heat or cold air from leaking through the connection area between the second back panel 22 and the first connector 3. On the other hand, the clamping structure of the second flange 221 in the second clamping groove 303 makes the second back panel 22 less likely to loosen or fall off under external forces, especially when the refrigerator is used for a long time or is affected by temperature changes.

[0105] In some embodiments, the opening size of the second engaging slot 303 gradually decreases from the back to the front of the refrigerator, thereby preventing the second flange 221 from being disengaged from the opening of the second inserting slot 401 due to external forces or temperature changes.

[0106] like Figure 5 As shown, in some embodiments, a second abutment plate 36 may be bent and extended from the front end of the second engaging portion 34 toward the second back plate 22. The second abutment plate 36 may be located at the opening of the second engaging slot 303. The second abutment plate 36 may abut against the second back plate 22, further improving the connection stability between the second back plate 22 and the first connector 3.

[0107] like Figure 5 As shown, in some embodiments, the first connector 3 may be provided with a first buffer portion 37. The first buffer portion 37 may be curved. The first buffer portion 37 may be provided between the first spacer 31 and the second spacer 32. The first buffer portion 37 may prevent deformation of the first connector 3 and affect the stability of the connection after the first back plate 21 and the second back plate 22 are connected to the first connector 3.

[0108] Figure 6 for Figure 3 Exploded view of the center beam assembly; Figure 7 for Figure 4 A partial enlarged view of point B.

[0109] like Figure 6 and Figure 7 As shown, in some embodiments, the center beam assembly 4 can be used as an independent foaming assembly. The center beam assembly 4 is first filled with foaming material and then connected to the box 2.

[0110] like Figure 6 As shown, in some embodiments, the back side of the center beam assembly 4 may be recessed with a second insertion slot 401. The front end of the partition module 5 may be inserted into the second insertion slot 401. The upper and lower ends of the center beam assembly 4 may be fixed to the inner box 2. The front and rear ends of the partition module 5 may be clamped between the first insertion slot 301 and the second insertion slot 401.

[0111] In this way, the front end of the partition module 5 is inserted into the second insertion slot 401 of the center beam assembly 4, and the front and rear ends are clamped between the first insertion slot 301 and the second insertion slot 401. Because the front and rear ends of the partition module 5 are respectively clamped by the first connecting member 3 and the center beam assembly, the partition module 5 can be firmly fixed to the box 2. Moreover, the upper and lower ends of the center beam assembly 4 are fixed to the box 2, further enhancing the supporting function of the center beam assembly 4, so that the connection structure of the box 2, the center beam assembly 4 and the partition module 5 remains stable in the vertical direction.

[0112] Furthermore, the partition module 5 is clamped between the first plug-in slot 301 and the second plug-in slot 401 at the front and rear. The first plug-in slot 301 and the second plug-in slot 401 not only provide a stable connection for the partition module 5, but also effectively reduce the gap between the partition module 5 and the center beam assembly 4 and the box 2, thereby reducing the gap and heat leakage, thereby improving the independent thermal insulation performance of the first refrigeration compartment 201 and the second refrigeration compartment 202 in the box, and avoiding mutual interference between cold and hot air.

[0113] like Figure 6 As shown, in some embodiments, the center beam assembly 4 may include a center beam shell 41. The center beam shell 41 may be arranged vertically and disposed on the front side of the box body 1. The inner surface of the center beam shell 41 may be surrounded by a foaming space 100.

[0114] The inner surface of the center beam shell 41 forms a foam space 100, which can be filled with foam material. This not only increases the strength of the center beam assembly 4, but also, because the center beam assembly 4 is arranged at the front opening of the box 2 and is located in front of the partition module 5, it can isolate the heat exchange between the first refrigeration compartment 201 and the second refrigeration compartment 202, thereby reducing energy loss.

[0115] like Figure 6 As shown, in some embodiments, the center beam assembly 4 may include a reinforcement 42. The reinforcement 42 may be disposed within the foaming space 100. The reinforcement 42 may improve the structural stability of the center beam shell 41. The provision of the reinforcement 42 may enable the center beam assembly 4 to withstand greater loads, reduce deformation or damage that may occur during prolonged use, and ensure that the device remains stable during use.

[0116] like Figure 5 and Figure 6 As shown, in some embodiments, the reinforcement member 42 can be fixed to the rear wall of the center beam shell 41. The second insertion slot 401 can be located on the back side of the reinforcement member 42.

[0117] In this way, the reinforcement member 42 can be wrapped around the outside of the second insertion slot, further strengthening the structure of the area around the second insertion slot 401. Since the load-bearing capacity of the second insertion slot 401 may be limited, especially when the refrigerator needs to withstand large shear or bending forces during production and actual use, by wrapping the reinforcement member 42 around the periphery of the insertion slot, when the partition module 5 is inserted into the second insertion slot 401, the reinforcement member 42 also serves to enhance the structural strength of the connection point between the partition module 5 and the center beam assembly 4, making the connection between the partition module 5 and the center beam assembly 4 more stable and reliable, and improving the stability of the partition module 5.

[0118] like Figure 5 and Figure 6As shown, in some embodiments, a boss 43 may be provided on the back side of the center beam shell 41, facing the front side. A second insertion slot 401 may be provided on the back side of the boss 43. A mating slot 402 may be provided on the side of the reinforcement member 42 facing the boss 43. The boss 43 may extend into the mating slot 402 and abut against the sidewall of the mating slot 402. The boss 43, by extending into the mating slot 402 and abutting against the sidewall of the mating slot 402, makes the connection between the center beam shell 41 and the reinforcement member 42 tighter and more stable. The provision of the boss 43 creates a more secure fit between the reinforcement member 42 and the center beam shell 41, enhancing the stability of the insertion portion between the center beam shell 41 and the partition module 5.

[0119] like Figure 5 and Figure 6 As shown, in some embodiments, the reinforcement 42 may include a vertical plate 421. The vertical plate 421 may extend vertically along the length direction of the center beam shell 41. The vertical plate 421 may be disposed close to the boss 43 of the center beam shell 41.

[0120] like Figure 6 As shown, in some embodiments, the reinforcement member 42 may include a support arm 422. The support arm 422 may include two support arms 422. The support arms 422 may be disposed on both sides of the vertical plate 421. The support arms 422 may be closely attached to two opposite side walls of the boss 43.

[0121] In some embodiments, the door may include a first door body (not shown). The first door body may cover the front opening of the first refrigeration compartment 201. The back side of the first door body may be in close contact with the front side of the center beam assembly 4.

[0122] like Figure 1 and Figure 6 As shown, in some embodiments, a first adsorption member 81 may be provided on the front side of the center beam assembly 4. The first adsorption member 81 may be magnetically connected to the back side of the first door body.

[0123] In some embodiments, the refrigerator may include a first door. The first door may cover the front opening of the first refrigerating compartment 201. The back of the first door may be in close contact with the front of the center beam assembly 4. Thus, when the first door is closed in front of the first refrigerating compartment 201, cooling energy may be effectively prevented from leaking through the gap between the first door and the center beam assembly 4.

[0124] In some embodiments, the refrigerator may include a second door (not shown). The second door may cover the front opening of the second refrigeration compartment 202. The back side of the second door may be in close contact with the front side of the center beam assembly 4. The second door may be disposed adjacent to the first door.

[0125] like Figure 1 and Figure 6As shown, in some embodiments, a second adsorption member 82 may be provided on the front side of the center beam assembly 4. The second adsorption member 82 may be magnetically connected to the back side of the second door. This effectively prevents cooling from leaking through the gap between the second door and the center beam assembly 4 when the second door is closed in front of the second refrigeration compartment 202.

[0126] Figure 8 for Figure 1 Another cross-sectional view of .

[0127] like Figure 8 As shown, in some embodiments, the box 2 may include a first top plate 23. The first top plate 23 may be disposed on top of the first back plate 21. The first top plate 23 may be spaced apart from the top of the box body 1 to form a foaming space 100.

[0128] like Figure 8 As shown, in some embodiments, the box 2 may include a second top plate 24. The second top plate 24 may be disposed on top of the second back plate 22. The second top plate 24 may be spaced apart from the top of the box body 1 to form a foaming space 100. The first top plate 23 may be spaced apart from the second top plate 24.

[0129] Figure 9 for Figure 8 A partial enlarged view of point C.

[0130] like Figure 3 and Figure 9 As shown, in some embodiments, the refrigerator may include a second connector 6. The second connector 6 may be disposed between the first top plate 23 and the second top plate 24 in a front-to-back direction. One side of the second connector 6 may be connected to the first top plate 23. The other side of the second connector 6 may be connected to the second top plate 24. The second connector 6 further connects the first top plate 23 and the second top plate 24.

[0131] like Figure 9 As shown, in some embodiments, the lower end of the second connecting member 6 may be recessed with a third inserting slot 601 , into which the top of the partition module 5 may be inserted.

[0132] Specifically, a second connector 6 is vertically provided between the first top plate 23 and the second top plate 24, and a third insertion slot 601 is provided on the second connector 6, so that the upper end of the partition module 5 can be inserted into the third insertion slot 601. The provision of the second connector 6 provides additional support, making the first top plate 23 and the second top plate 24 more structurally stable, and strengthening the connection between the top end of the partition module 5 and the box 2. Furthermore, a third plug-in slot 601 is provided on the second connecting member 6, so that the installation between the top of the partition module 5 and the box liner 2 adopts a plug-in card connection structure, which not only simplifies the installation steps between the partition module 5 and the box liner 2, but also the second connecting member 6 can further prevent the heat of the first refrigeration compartment 201 and the second refrigeration compartment 202 from being transferred laterally through the first top plate 23 and the second top plate 24, effectively reducing the direct heat conduction at the partition between the first refrigeration compartment 201 and the second refrigeration compartment 202. At the same time, in conjunction with the setting of the partition module 5, the heat transfer path between the two independent refrigeration compartments is further reduced, the thermal insulation effect on both sides is enhanced, and the independent thermal insulation performance of the first refrigeration compartment 201 and the second refrigeration compartment 202 is improved.

[0133] like Figure 9 As shown, in some embodiments, the bottom wall of the second connector 6 may be provided with a third snap-fitting groove 602. The third snap-fitting groove 602 may be spaced apart and disposed on a side of the third insertion groove 601 that is close to the first top plate 23. In this way, the first top plate 23 may be inserted into the third snap-fitting groove 602 and thereby connected to the second connector 6.

[0134] like Figure 9 As shown, in some embodiments, a third flange 231 bent upward may be provided on one side of the first top plate 23 close to the second connector 6. The third flange 231 may be engaged in the third engaging groove 602.

[0135] The third flange 231 is bent upward and, after being inserted into the third engaging groove 602, tightly fits against the inner wall of the third engaging groove 602, making the installation process of the first top plate 23 and the second connector 6 more convenient. Furthermore, the engaging structure between the third flange 231 and the third engaging groove 602 of the first top plate 23 forms an additional heat transfer barrier, forcing heat to be transferred in a circuitous manner through the multi-layer structure rather than in a straight line. This helps reduce the heat transfer rate between the first refrigeration compartment 201 and the second refrigeration compartment 202, further improving the thermal insulation effect between the refrigeration compartments.

[0136] like Figure 9As shown, in some embodiments, the bottom wall of the second connector 6 may be provided with a fourth engaging groove 603. The fourth engaging groove 603 may be spaced apart and disposed on a side of the third insertion groove 601 that is close to the second top plate 24. In this way, the second top plate 24 may be inserted into the fourth engaging groove 603 and thereby connected to the second connector 6.

[0137] like Figure 9 As shown, in some embodiments, a fourth flange 241 bent upward may be provided on one side of the second top plate 24 close to the second connector 6 . The fourth flange 241 may be engaged in the fourth engaging groove 603 .

[0138] The fourth flange 241 is bent upward and, after being inserted into the fourth engaging groove 603, is tightly fitted against the inner wall of the fourth engaging groove 603, facilitating the installation of the second top plate 24 and the second connector 6. Furthermore, the engaging structure between the fourth flange 241 and the fourth engaging groove 603 of the second top plate 24 effectively forms an additional heat transfer barrier, forcing heat to be transferred in a circuitous manner through the multi-layer structure rather than in a straight line. This, in turn, helps reduce the heat transfer rate between the second refrigeration compartment 202 and the first refrigeration compartment 201, further enhancing the thermal insulation between the refrigeration compartments.

[0139] like Figure 9 As shown, in some embodiments, the second connecting member 6 may include a third partition plate 61. The third partition plate 61 may be provided on the bottom wall of the second connecting member 6.

[0140] like Figure 9 As shown, in some embodiments, the second connector 6 may include a fourth partition plate 62. The fourth partition plate 62 may be disposed on the bottom wall of the second connector 6. The fourth partition plate 62 may be spaced apart from the third partition plate 61. A third insertion slot 601 may be formed between the fourth partition plate 62 and the third partition plate 61.

[0141] The third insertion slot 601 formed by the third and fourth partition plates 61, 62 provides a stable insertion position for the partition module 5. Furthermore, the spacing between the third and fourth partition plates 61, 62 disperses stress in the connection structure between the second connector 6 and the partition module 5, preventing deformation of the second connector 6 due to concentrated stress.

[0142] like Figure 9 As shown, in some embodiments, the second connector 6 may include a third clamping portion 63. The third clamping portion 63 may be disposed on a side of the third partition plate 61 away from the third insertion slot 601. A third clamping slot 602 may be formed between the third clamping portion 63 and the third partition plate 61. The third flange 231 may be clamped between the third clamping portion 63 and the third partition plate 61.

[0143] In this way, the third clamping portion 63 provides a fixing point for the first top plate 23 and the second connecting member 6, so that the third flange 231 is clamped between the third clamping portion 63 and the third partition plate 61. The clamping structure makes the third flange 231 fit tightly with the second connecting member 6. On the one hand, it reduces the gap in the connection area between the first top plate 23 and the second connecting member 6, and effectively prevents heat or cold air from leaking through the connection area between the first top plate 23 and the second connecting member 6. On the other hand, the clamping structure of the third flange 231 in the third clamping groove 602 makes the first top plate 23 less likely to loosen or fall off under the action of external force, especially when the refrigerator is used for a long time or is affected by temperature changes, it can still maintain a stable connection.

[0144] In some embodiments, the opening size of the third engaging slot 602 gradually decreases from top to bottom along the refrigerator, thereby preventing the third flange 231 from being disengaged from the opening of the third engaging slot 602 due to external forces or temperature changes.

[0145] like Figure 9 As shown, in some embodiments, a third abutment plate 65 may be bent and extended from the front end of the third engaging portion 63 toward the first top plate 23. The third abutment plate 65 may be located at the opening of the third engaging groove 602. The third abutment plate 65 may abut against the outer side of the first top plate 23, further improving the connection stability between the first top plate 23 and the second connector 6.

[0146] like Figure 9 As shown, in some embodiments, the second connector 6 may include a fourth clamping portion 64. The fourth clamping portion 64 may be disposed on a side of the fourth partition plate 62 away from the third insertion slot 601. A fourth clamping slot 603 may be formed between the fourth clamping portion 64 and the fourth partition plate 62. The fourth flange 241 may be clamped between the fourth clamping portion 64 and the fourth partition plate 62.

[0147] Thus, the fourth clamping portion 64 provides a fixing point for the second top plate 24 and the second connector 6, so that the fourth flange 241 is clamped between the fourth clamping portion 64 and the fourth partition plate 62. The clamping structure ensures a tight fit between the fourth flange 241 and the second connector 6. On the one hand, this reduces the gap in the connection area between the second top plate 24 and the second connector 6, effectively preventing heat or cold air from leaking through the connection area between the second top plate 24 and the second connector 6. On the other hand, the clamping structure of the fourth flange 241 in the fourth clamping groove 603 makes the second top plate 24 less likely to loosen or fall off under external forces, especially when the refrigerator is used for a long time or is affected by temperature changes, and can still maintain a stable connection.

[0148] In some embodiments, the opening size of the fourth engaging slot 603 gradually decreases from top to bottom along the refrigerator, thereby preventing the fourth flange 241 from being disengaged from the opening of the fourth engaging slot 603 due to external forces or temperature changes.

[0149] like Figure 9 As shown, in some embodiments, a fourth abutment plate 64 may be bent and extended from the front end of the fourth engaging portion 64 toward the second top plate 24. The fourth abutment plate 64 may be located at the opening of the fourth engaging slot 603. The fourth abutment plate 64 may abut against the outer side of the second top plate 24, further improving the connection stability between the second top plate 24 and the second connector 6.

[0150] like Figure 9 As shown, in some embodiments, the second connector 6 may be provided with a second buffer portion 67. The second buffer portion 67 may be curved. The second buffer portion 67 may be provided between the third spacer plate 61 and the fourth spacer plate 62. The second buffer portion 67 may prevent deformation of the second connector 6 after the first top plate 23 and the second top plate 24 are connected to the second connector 6, thereby affecting the stability of the connection.

[0151] Figure 10 for Figure 8 A partial enlarged view of point D.

[0152] like Figure 8 and Figure 10 As shown, in some embodiments, the box 2 may include a first bottom plate 25. The first bottom plate 25 may be provided at the bottom of the first back plate 21. The first bottom plate 25 may be spaced apart from the bottom of the box body 1 to form a foaming space 100.

[0153] like Figure 8 and Figure 10 As shown, in some embodiments, the box 2 may include a second bottom plate 26. The second bottom plate 26 may be disposed at the bottom of the second back plate 22. The second bottom plate 26 may be spaced apart from the bottom of the box body 1 to form a foaming space 100. The first bottom plate 25 may be spaced apart from the second bottom plate 26;

[0154] like Figure 10 As shown, in some embodiments, the refrigerator may include a third connector 7. The third connector 7 may be disposed between the first bottom plate 25 and the second bottom plate 26 along the front-to-back direction. One side of the third connector 7 may be connected to the first bottom plate 25. The other side of the third connector 7 may be connected to the second bottom plate 26. A fourth insertion slot 701 may be recessed in the top of the third connector 7. The top of the partition module 5 may be inserted into the fourth insertion slot 701.

[0155] Specifically, a third connector 7 is vertically provided between the first bottom plate 25 and the second bottom plate 26, and a fourth insertion slot 701 is provided on the third connector 7, so that the lower end of the partition module 5 can be inserted into the fourth insertion slot 701. The provision of the third connector 7 provides additional support, making the first bottom plate 25 and the second bottom plate 26 more structurally stable, and strengthening the connection between the bottom end of the partition module 5 and the box 2. Furthermore, a fourth plug-in slot 701 is provided on the third connecting member 7, so that the installation between the bottom end of the partition module 5 and the box liner 2 adopts a plug-in clamping structure, which not only simplifies the installation steps between the partition module 5 and the box liner 2, but also the third connecting member 7 can further prevent the heat of the first refrigeration compartment 201 and the second refrigeration compartment 202 from being transferred laterally through the first bottom plate 25 and the second bottom plate 26, effectively reducing the direct heat conduction at the partition between the first refrigeration compartment 201 and the second refrigeration compartment 202. At the same time, in conjunction with the arrangement of the partition module 5, the heat transfer path between the two independent refrigeration compartments is further reduced, the thermal insulation effect on both sides is enhanced, and the independent thermal insulation performance of the first refrigeration compartment 201 and the second refrigeration compartment 202 is improved.

[0156] like Figure 10 As shown, in some embodiments, the rear end of the separation module 5 is inserted into the first insertion slot 301 of the first connecting member 3, the front end of the separation module 5 is inserted into the second insertion slot 401 of the center beam assembly 4, the top end of the separation module 5 is inserted into the third insertion slot 601 of the second connecting member 6, and the bottom end of the separation module 5 is inserted into the fourth insertion slot 701 of the third connecting member 7.

[0157] Specifically, each end of the partition module 5 is correspondingly inserted into the insertion slots of the liner 2 and the center beam assembly 4, providing the partition module 5 with fixed points in four directions, thereby enhancing the stability of the overall structure and preventing the partition module 5 from loosening or misaligning during use. Furthermore, the connection between the liner 2 and the partition module 5 at various locations via corresponding connectors effectively reduces direct heat conduction at the partition between the first refrigeration compartment 201 and the second refrigeration compartment 202, reducing the heat transfer path between the two independent refrigeration compartments, thereby improving the independent thermal insulation performance of the first refrigeration compartment 201 and the second refrigeration compartment 202.

[0158] like Figure 10 As shown, in some embodiments, the top wall of the third connector 7 may be provided with a fifth engaging groove 702. The fifth engaging groove 702 may be spaced apart and disposed on a side of the fourth inserting groove 701 that is close to the first bottom plate 25. In this way, the first bottom plate 25 may be inserted into the fourth engaging groove 603 and further connected to the third connector 7.

[0159] like Figure 10As shown, in some embodiments, a side of the first bottom plate 25 close to the third connecting member 7 may be provided with a fifth flange 251 bent downward. The fifth flange 251 may be engaged in the fifth engaging groove 702 .

[0160] The fifth flange 251 is bent downward and, after being inserted into the fifth engaging groove 702, is tightly fitted against the inner wall of the fifth engaging groove 702, facilitating the installation of the first base plate 25 and the third connector 7. Furthermore, the engaging structure between the fifth flange 251 and the fifth engaging groove 702 of the first base plate 25 effectively forms an additional heat transfer barrier, forcing heat to be transferred in a circuitous manner through the multi-layer structure rather than in a straight line. This, in turn, helps reduce the heat transfer rate between the first refrigeration compartment 201 and the second refrigeration compartment 202, further enhancing the thermal insulation between the refrigeration compartments.

[0161] like Figure 10 As shown, in some embodiments, the top wall of the third connector 7 may be provided with a sixth engaging groove 703. The sixth engaging groove 703 may be spaced apart and disposed on a side of the fourth inserting groove 701 that is close to the second bottom plate 26. In this way, the second bottom plate 26 may be inserted into the sixth engaging groove 703 and thereby connected to the third connector 7.

[0162] like Figure 10 As shown, in some embodiments, a sixth flange 261 bent downward is provided on one side of the second bottom plate 26 close to the third connecting member 7 , and the sixth flange 261 is snapped into the sixth snap-fitting groove 703 .

[0163] The sixth flange 261 is bent downward and, after being inserted into the sixth engaging groove 703, closely adheres to the inner wall of the sixth engaging groove 703, facilitating the installation of the second base plate 26 and the third connector 7. Furthermore, the engaging structure between the sixth flange 261 and the sixth engaging groove 703 of the second base plate 26 effectively forms an additional heat transfer barrier, forcing heat to be transferred in a circuitous manner through the multi-layer structure rather than in a straight line. This, in turn, helps reduce the heat transfer rate between the second refrigeration compartment 202 and the first refrigeration compartment 201, further enhancing the thermal insulation between the refrigeration compartments.

[0164] like Figure 10 As shown, in some embodiments, the third connecting member 7 may include a fifth spacer 71. The fifth spacer 71 may be provided on the top wall of the third connecting member 7.

[0165] like Figure 10 As shown, in some embodiments, the third connector 7 may include a sixth spacer 72. The sixth spacer 72 may be disposed on the top wall of the third connector 7. The sixth spacer 72 may be spaced apart from the fifth spacer 71. A fourth insertion slot 701 may be formed between the sixth spacer 72 and the fifth spacer 71.

[0166] The fourth insertion slot 701 formed by the fifth and sixth partition plates 71, 72 provides a stable insertion position for the partition module 5. Furthermore, the spacing between the fifth and sixth partition plates 71, 72 disperses stress in the connection structure between the third connector 7 and the partition module 5, preventing deformation of the third connector 7 due to concentrated stress.

[0167] like Figure 10 As shown, in some embodiments, the third connector 7 may include a fifth clamping portion 73. The fifth clamping portion 73 may be disposed on a side of the fifth spacer 71 away from the fourth insertion slot 701. A fifth clamping slot 702 may be formed between the fifth clamping portion 73 and the fifth spacer 71. The fifth flange 251 may be clamped between the fifth clamping portion 73 and the fifth spacer 71.

[0168] In this way, the fifth clamping portion 73 provides a fixing point for the first bottom plate 25 and the third connecting member 7, so that the fifth flange 251 is clamped between the fifth clamping portion 73 and the fifth partition plate 71. The clamping structure makes the fifth flange 251 fit tightly with the third connecting member 7. On the one hand, it reduces the gap in the connection area between the first bottom plate 25 and the third connecting member 7, and effectively prevents heat or cold air from leaking through the connection area between the first bottom plate 25 and the third connecting member 7. On the other hand, the clamping structure of the fifth flange 251 in the fifth clamping groove 702 makes the first bottom plate 25 less likely to loosen or fall off under the action of external force, especially when the refrigerator is used for a long time or is affected by temperature changes, it can still maintain a stable connection.

[0169] In some embodiments, the opening size of the fifth engaging slot 702 gradually decreases from bottom to top along the refrigerator, thereby preventing the fifth flange 251 from being disengaged from the opening of the fifth engaging slot 702 due to external forces or temperature changes.

[0170] like Figure 10 As shown, in some embodiments, a fifth abutment plate 75 may be bent and extended from the front end of the fifth engaging portion 73 toward the first bottom plate 25. The fifth abutment plate 75 may be located at the opening of the fifth engaging slot 702. The fifth abutment plate 75 may abut against the outer side of the first bottom plate 25, further improving the connection stability between the first bottom plate 25 and the third connecting member 7.

[0171] like Figure 10 As shown, in some embodiments, the third connector 7 may include a sixth clamping portion 74. The sixth clamping portion 74 may be disposed on a side of the sixth partition plate 72 away from the fourth insertion slot 701. A sixth clamping slot 703 may be formed between the sixth clamping portion 74 and the sixth partition plate 72. The sixth flange 261 may be clamped between the sixth clamping portion 74 and the sixth partition plate 72.

[0172] Thus, the sixth clamping portion 74 provides a fixing point for the second bottom plate 26 and the third connecting member 7, allowing the sixth flange 261 to be clamped between the sixth clamping portion 74 and the sixth partition plate 72. The clamping structure ensures a tight fit between the sixth flange 261 and the third connecting member 7. On the one hand, this reduces the gap in the connection area between the second bottom plate 26 and the third connecting member 7, effectively preventing heat or cold air from leaking through the connection area between the second bottom plate 26 and the third connecting member 7. On the other hand, the clamping structure of the sixth flange 261 in the sixth clamping groove 703 makes the second bottom plate 26 less likely to loosen or fall off under external forces, especially when the refrigerator is used for a long time or is affected by temperature fluctuations.

[0173] In some embodiments, the opening size of the sixth engaging slot 703 gradually decreases from bottom to top along the refrigerator, thereby preventing the flange of the sixth engaging slot 703 from detaching from the opening of the sixth engaging slot 703 due to external force or temperature changes.

[0174] like Figure 10 As shown, in some embodiments, a sixth abutment plate 76 may be bent and extended from the front end of the sixth engaging portion 74 toward the second bottom plate 26. The sixth abutment plate 76 may be located at the opening of the sixth engaging slot 703. The sixth abutment plate 76 may abut against the outer side of the second bottom plate 26, further improving the connection stability between the second bottom plate 26 and the third connecting member 7.

[0175] like Figure 10 As shown, in some embodiments, the third connector 7 may be provided with a third buffer portion 77. The third buffer portion 77 may be curved. The third buffer portion 77 may be provided between the fifth spacer 71 and the sixth spacer 72. The third buffer portion 77 may prevent deformation of the third connector 7 and affect the stability of the connection after the first base plate 25 and the second base plate 26 are connected to the third connector 7.

[0176] In some embodiments, the partition module 5 can be used as an independent foaming component. The interior of the center beam component 4 is first filled with foaming material and then spliced ​​with the box liner 2.

[0177] Figure 11 for Figure 1 Schematic diagram of the middle partition module; Figure 12 for Figure 11 An exploded view of .

[0178] like Figure 10 and Figure 11As shown, in some embodiments, the partition module 5 may include a first partition plate 51. The first partition plate 51 may be provided on one side of the first refrigeration compartment 201. The first partition plate 51 may be enclosed with one side of the cabinet 2 to form the first refrigeration compartment 201.

[0179] like Figure 11 As shown, in some embodiments, the partition module 5 may include a second partition plate 52. The second partition plate 52 may be provided on one side of the second refrigeration compartment 202. The second partition plate 52 may be enclosed with one side of the cabinet 2 to form the second refrigeration compartment 202.

[0180] In some embodiments, the second partition plate 52 may be spaced apart and parallel to the first partition plate 51. The first partition plate 51 and the second partition plate 52 spaced apart and parallel to each other can effectively separate the interior space of the refrigerator 2 into two independent refrigeration compartments.

[0181] like Figure 11 As shown, in some embodiments, the partition module 5 may include a fourth connector 53. The fourth connector 53 may be provided between the top ends of the first partition plate 51 and the second partition plate 52. The fourth connector 53 may connect the top ends of the first partition plate 51 and the second partition plate 52 together.

[0182] like Figure 11 As shown, in some embodiments, the partition module 5 may include a fifth connector 54. The fifth connector 54 may be disposed between the bottom ends of the first partition plate 51 and the second partition plate 52. The fifth connector 54 and the fourth connector 53 may be spaced apart vertically. The fifth connector 54 may connect the top ends of the first partition plate 51 and the second partition plate 52 together.

[0183] like Figure 11 As shown, in some embodiments, the partition module 5 may include a sixth connector 55. The sixth connector 55 may be provided between the front ends of the first partition plate 51 and the second partition plate 52. The sixth connector 55 may connect the front ends of the first partition plate 51 and the second partition plate 52 together.

[0184] like Figure 11 As shown, in some embodiments, the partition module 5 may include a seventh connector 56. The seventh connector 56 may be disposed between the rear ends of the first partition plate 51 and the second partition plate 52. The seventh connector 56 and the sixth connector 55 may be spaced apart in front of each other. The seventh connector 56 may connect the rear ends of the first partition plate 51 and the second partition plate 52 together.

[0185] In some embodiments, the first partition plate 51 , the second partition plate 52 , the fourth connecting member 53 , the fifth connecting member 54 , the sixth connecting member 55 , and the seventh connecting member 56 may enclose a foaming space 100 .

[0186] Among them, the cooperation of each connecting member with the first partition plate 51 and the second partition plate 52 enables the partition module 5 to form a closed structure as a whole. The first partition plate 51, the second partition plate 52, the fourth connecting member 53, the fifth connecting member 54, the sixth connecting member 55, and the seventh connecting member 56 together enclose a foaming space 100. The foaming material can effectively reduce the heat transfer at the connection between the first refrigeration chamber 201 and the second refrigeration chamber 202, so that the partition module 5 plays a role in insulation, which can effectively maintain the stability of the temperature inside the box 2.

[0187] In some embodiments, the fourth connecting member 53 , the fifth connecting member 54 , the sixth connecting member 55 and the seventh connecting member 56 may have the same structure.

[0188] like Figure 9 As shown, in some embodiments, the fourth connecting member 53 may include a connecting plate 531. The connecting plate 531 may be provided on the edges of the first partition plate 51 and the second partition plate 52. The connecting plate 531 may be used to cover the openings at the top ends of the first partition plate 51 and the second partition plate 52.

[0189] like Figure 9 As shown, in some embodiments, the fourth connector 53 may include a first clamping portion 532. The first clamping portion 532 is disposed on a side of the connecting plate 531 proximal to the first partition plate 51. A seventh engaging groove may be provided between the first clamping portion 532 and the connecting plate 531. A seventh flange may be provided on the side of the first partition plate 51 facing the foaming space 100. The seventh flange may be inserted into the seventh engaging groove, thereby securing the top end of the first partition plate 51 to the fourth connector 53.

[0190] like Figure 9 As shown, in some embodiments, the fourth connector 53 may include a second clamping portion 533. The second clamping portion 533 is disposed on a side of the connecting plate 531 proximal to the second partition plate 52. An eighth engaging groove may be provided between the second clamping portion 533 and the connecting plate 531. The second partition plate 52 may have an eighth flange on the side facing the foaming space 100. The eighth flange may be inserted into the eighth engaging groove, thereby securing the top end of the second partition plate 52 to the fourth connector 53.

[0191] The fifth connecting member 54 , the sixth connecting member 55 and the seventh connecting member 56 may have the same structure as the fourth connecting member 53 , and will not be described in detail here.

[0192] The above are merely specific embodiments of the present application, but the scope of protection of this application is not limited thereto. Any modifications or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of this application is limited only by the appended claims.

Claims

1. A refrigeration device, characterized in that: include: a housing forming an outer shell of the refrigeration device; A box liner is provided in the box body, and the box liner has a front opening; The box liner includes: A first back plate, provided on the back of the box; A second back plate is provided on the back of the box body, and the first back plate and the second back plate are adjacently spaced apart; a first connector, arranged vertically between the first back plate and the second back plate, one side of the first connector being connected to the first back plate, the other side of the first connector being connected to the second back plate, and a first insertion slot being provided on a front side wall of the first connector; A center beam assembly is arranged vertically and provided on the front side of the box body; A partition module is arranged vertically and extends in the front-to-back direction within the box, wherein the rear end of the partition module is plugged into the first plug-in slot, and the front end of the partition module is connected to the center beam assembly; The partition module is used to partition the inner space of the box to form a first refrigeration compartment and a second refrigeration compartment on opposite sides of the partition module.

2. The refrigeration device according to claim 1, characterized in that The front side wall of the first connector is provided with a first clamping groove and a second clamping groove respectively; the first clamping groove is provided at intervals on a side of the first plugging slot close to the first back plate, and the second clamping groove is provided at intervals on a side of the first plugging slot close to the second back plate; A first flange bent backward is provided on one side of the first back plate close to the first connecting member, and the first flange is engaged in the first engaging groove; A second flange bent backward is provided on one side of the second back plate close to the first connecting member, and the second flange is clamped in the second clamping groove.

3. The refrigeration device according to claim 2, characterized in that The first connecting member includes: a first partition plate, provided on the front side wall of the first connecting member; a second partition plate, provided on the front side wall of the first connector, the second partition plate being spaced apart from the first partition plate, and the first insertion slot being formed between the second partition plate and the first partition plate; a first clamping portion, provided on a side of the first partition plate away from the first insertion slot, the first clamping slot being formed between the first clamping portion and the first partition plate, the first flange being clamped between the first clamping portion and the first partition plate; The second clamping portion is provided on a side of the second partition plate away from the first insertion slot. The second clamping slot is formed between the second clamping portion and the second partition plate. The second flange is clamped between the second clamping portion and the second partition plate.

4. The refrigeration device according to claim 1, wherein: A second insertion slot is recessed on the back side of the center beam assembly, and the front end of the partition module is inserted into the second insertion slot; The upper and lower ends of the center beam assembly are respectively fixed on the box liner, and the front and rear ends of the partition module are clamped between the first plug-in slot and the second plug-in slot.

5. The refrigeration device according to claim 4, characterized in that The center beam assembly includes: A center beam shell is arranged vertically and provided on the front side of the box body, wherein the inner surface of the center beam shell encloses a foaming space; A reinforcement member is provided in the foaming space and is fixed on the rear wall of the center beam shell; and the second plug-in slot is located on the back side of the reinforcement member.

6. The refrigeration device according to claim 1, characterized in that The box liner includes: a first top plate, disposed on top of the first back plate; a second top plate, disposed on the top of the second back plate, wherein the first top plate and the second top plate are adjacently spaced apart; The refrigeration device comprises: The second connecting member is arranged between the first top plate and the second top plate along the front-to-back direction, one side of the second connecting member is connected to the first top plate, and the other side of the second connecting member is connected to the second top plate; the lower end of the second connecting member is recessed with a third plug-in slot, and the top of the partition module is plugged into the third plug-in slot.

7. The refrigeration device according to claim 6, characterized in that The bottom wall of the second connecting member is provided with a third clamping groove and a fourth clamping groove respectively; the third clamping groove is provided at intervals on a side of the third plugging slot close to the first top plate, and the fourth clamping groove is provided at intervals on a side of the third plugging slot close to the second top plate; A third flange bent upward is provided on one side of the first top plate close to the second connecting member, and the third flange is engaged in the third engaging groove; A fourth flange bent upward is provided on one side of the second top plate close to the second connecting member, and the fourth flange is clamped in the fourth clamping groove.

8. The refrigeration device according to claim 7, characterized in that The second connecting member includes: a third partition plate, provided on the bottom wall of the second connecting member; a fourth partition plate, disposed on the bottom wall of the second connector, the fourth partition plate being spaced apart from the third partition plate, and the third insertion slot being formed between the fourth partition plate and the third partition plate; a third clamping portion, provided on a side of the third partition plate away from the third insertion slot, the third clamping slot being formed between the third clamping portion and the third partition plate, the third flange being clamped between the third clamping portion and the third partition plate; The fourth clamping portion is provided on a side of the fourth partition plate away from the third insertion slot. The fourth clamping slot is formed between the fourth clamping portion and the fourth partition plate. The fourth flange is clamped between the fourth clamping portion and the fourth partition plate.

9. The refrigeration device according to claim 1, wherein: The box liner includes: a first bottom plate, provided at the bottom of the first back plate; a second bottom plate, provided at the bottom of the second back plate, wherein the first bottom plate and the second bottom plate are adjacently spaced apart; The refrigeration device comprises: The third connecting member is arranged between the first bottom plate and the second bottom plate in the front-to-back direction, one side of the third connecting member is connected to the first bottom plate, and the other side of the third connecting member is connected to the second bottom plate; the top of the third connecting member is recessed with a fourth plug-in slot, and the top of the partition module is plugged into the fourth plug-in slot.

10. The refrigeration device according to claim 9, characterized in that The top wall of the third connecting member is provided with a fifth clamping slot and a sixth clamping slot respectively; the fifth clamping slot is provided at intervals on a side of the fourth plugging slot close to the first bottom plate, and the sixth clamping slot is provided at intervals on a side of the fourth plugging slot close to the second bottom plate; A fifth flange bent downward is provided on one side of the first bottom plate close to the third connecting member, and the fifth flange is engaged in the fifth engaging groove; A sixth flange bent downward is provided on one side of the second bottom plate close to the third connecting member, and the sixth flange is clamped in the sixth clamping groove.

11. The refrigeration device according to claim 10, characterized in that The third connecting member includes: a fifth partition plate, provided on the top wall of the third connecting member; a sixth partition plate, disposed on the top wall of the third connecting member, the sixth partition plate being spaced apart from the fifth partition plate, and the fourth insertion slot being formed between the sixth partition plate and the fifth partition plate; a fifth clamping portion, provided on a side of the fifth partition plate away from the fourth insertion slot, the fifth clamping slot being formed between the fifth clamping portion and the fifth partition plate, the fifth flange being clamped between the fifth clamping portion and the fifth partition plate; The sixth clamping portion is provided on a side of the sixth partition plate away from the fourth insertion slot. The sixth clamping slot is formed between the sixth clamping portion and the sixth partition plate. The sixth flange is clamped between the sixth clamping portion and the sixth partition plate.

12. The refrigeration device according to claim 1, wherein: The separation module comprises: a first partition plate, provided on one side of the first refrigeration compartment; A second partition plate is provided on one side of the second refrigeration compartment, and the second partition plate is arranged parallel to and spaced apart from the first partition plate; a fourth connecting member, disposed between the top ends of the first partition plate and the second partition plate; a fifth connecting member, disposed between the bottom ends of the first partition plate and the second partition plate, the fifth connecting member being spaced apart from the fourth connecting member; a sixth connecting member, provided between the front ends of the first partition plate and the second partition plate; a seventh connecting member, disposed between the rear ends of the first partition plate and the second partition plate, the seventh connecting member being spaced apart from the sixth connecting member in front and rear; The first partition plate, the second partition plate, the fourth connecting piece, the fifth connecting piece, the sixth connecting piece, and the seventh connecting piece enclose a foaming space.

13. A refrigeration device, characterized in that: include: a housing forming an outer shell of the refrigeration device; A box liner is provided in the box body, and the box liner has a front opening; The box liner includes: A first back plate, provided on the back of the box; A second back plate is provided on the back of the box body, and the first back plate and the second back plate are adjacently spaced apart; a first connecting member, arranged vertically between the first back plate and the second back plate, wherein one side of the first connecting member is connected to the first back plate, and the other side of the first connecting member is connected to the second back plate; A center beam assembly is arranged vertically and provided on the front side of the box body, and a second plug-in slot is provided on the back side of the center beam assembly; A partition module is arranged vertically and extends in the front-to-back direction within the box, wherein the front end of the partition module is plugged into the second plug-in slot, and the rear end of the partition module is connected to the first connector; The partition module is used to partition the inner space of the box to form a first refrigeration compartment and a second refrigeration compartment on opposite sides of the partition module.

14. A refrigeration device, characterized in that: include: a housing forming an outer shell of the refrigeration device; A box liner is provided in the box body, and the box liner has a front opening; The box liner includes: A first top plate, provided on the top of the box body; A second top plate is provided on the top of the box body, wherein the first top plate and the second top plate are adjacently spaced apart; A second connecting member is provided between the first top plate and the second top plate in the front-to-back direction, one side of the second connecting member is connected to the first top plate, the other side of the second connecting member is connected to the second top plate, and a third plug-in slot is recessed at the lower end of the second connecting member; A center beam assembly is arranged vertically and provided on the front side of the box body; A partition module is arranged vertically and extends in the front-to-back direction within the box, wherein the top end of the partition module is plugged into the third plug-in slot, and the front end of the partition module is connected to the center beam assembly; The partition module is used to partition the inner space of the box to form a first refrigeration compartment and a second refrigeration compartment on opposite sides of the partition module.

15. A refrigeration device, characterized in that: include: a housing forming an outer shell of the refrigeration device; A box liner is provided in the box body, and the box liner has a front opening; The box liner includes: A first bottom plate, provided at the bottom of the box; A second bottom plate is provided at the bottom of the box body, wherein the first bottom plate and the second bottom plate are adjacently spaced apart; a third connecting member disposed between the first bottom plate and the second bottom plate in a front-to-back direction, one side of the third connecting member being connected to the first bottom plate, and the other side of the third connecting member being connected to the second bottom plate, and a fourth plugging slot being recessed on a top of the third connecting member; A center beam assembly is arranged vertically and provided on the front side of the box body; a partition module, arranged vertically and extending in the front-to-back direction within the box, wherein the bottom end of the partition module is plugged into the fourth plug-in slot, and the front end of the partition module is connected to the center beam assembly; The partition module is used to partition the inner space of the box to form a first refrigeration compartment and a second refrigeration compartment on opposite sides of the partition module.