Cabinet body assembly and freezer

By arranging the plug-in part and the plug-in matching part on the inner wall of the freezer cabinet, and using the anti-drop-off part to squeeze and fix the seal, the problem that the freezer seal is easy to fall off is solved, and better sealing effect and thermal insulation performance are achieved.

CN223319378UActive Publication Date: 2025-09-09QINGDAO HAIER SPECIAL ICEBOX +1
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Patent Information

Application Number
CN202422321289.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-23
Publication Date
2025-09-09
Estimated Expiration
2034-09-23

AI Technical Summary

Technical Problem

The seals of freezers are prone to falling off, resulting in poor sealing and frosting, affecting the user experience.

Method used

A plug-in portion and a plug-in matching portion are provided on the inner wall of the cabinet body of the freezer, and the sealing member is fixed by squeezing the anti-slip portion, thereby improving the connection stability and reliability between the sealing member and the cabinet body.

Benefits of technology

It effectively prevents seals from falling off, improves the sealing effect of the freezer, reduces cold leakage and frosting, and enhances the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a freezer body assembly and a freezer. The cabinet body assembly comprises a cabinet body and a sealing piece. The cabinet body is provided with a containing cavity and an inner side wall extending in the depth direction of the containing cavity, and the inner side wall is provided with an inserting part. And the sealing piece is provided with an insertion matching part which is matched and connected with the insertion part. Wherein any one of the insertion part and the insertion matching part is provided with an anti-falling part, and in the insertion process of the insertion part and the insertion matching part, the anti-falling part is extruded to form fixed insertion. According to the cabinet body assembly provided by the invention, the sealing element can be conveniently mounted on the cabinet body, and the connection stability between the sealing element and the cabinet body is improved, so that cold leakage of a freezer is avoided, and the sealing effect of the freezer is improved.
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Description

Technical Field

[0001] The present application relates to the technical field of refrigeration equipment, and in particular to a cabinet assembly and a freezer. Background Art

[0002] A freezer primarily stores food or other items by keeping them in a constant, cold state. Typically, a freezer consists of a door and a cabinet. The door is mounted on an opening of the cabinet and reciprocates relative to the opening to open or close the cabinet's storage cavity.

[0003] In the prior art, a door seal or other sealing member is typically installed between the door and the opening of a freezer. This seal is used to seal the gap between the door and the opening by squeezing the door and the opening against the seal. However, these door seals are typically mounted on the door and move with the door as it opens and closes. This can easily cause the seal to fall off between the door and the opening, resulting in poor sealing and frosting of the freezer, which can negatively impact the user experience. Utility Model Content

[0004] In view of this, the present application provides a cabinet assembly and a freezer, which can prevent the sealing member from falling off, thereby improving the connection reliability of the sealing member and further improving the sealing effect of the freezer.

[0005] Specifically, the present disclosure is achieved through the following technical solutions:

[0006] According to a first aspect of an embodiment of the present disclosure, a cabinet assembly is provided, comprising a cabinet and a sealing member. The cabinet has a receiving cavity, an inner sidewall extending along the depth of the receiving cavity, and a plug-in portion provided on the inner sidewall. The sealing member has a plug-in mating portion that mates with the plug-in portion.

[0007] Wherein, either the plug-in portion or the plug-fitting portion is provided with an anti-slip portion. During the plug-in connection process between the plug-in portion and the plug-fitting portion, the anti-slip portion is squeezed to form a fixed plug-in connection.

[0008] The cabinet assembly provided by this application has the following beneficial effects:

[0009] When assembling the cabinet assembly provided by the present application, the seal can be fixed to the inner side wall of the cabinet through the plug-in connection between the plug-in portion and the plug-in fitting portion, so as to increase the plug-in fitting area between the seal and the cabinet through plug-in fitting, thereby improving the connection stability between the seal and the cabinet. At the same time, during the plug-in fitting between the cabinet and the seal, the anti-slip portion can be squeezed between the plug-in portion and the plug-in fitting portion, further providing squeezing force for the connection between the plug-in portion and the plug-in fitting portion, so that the plug-in portion and the plug-in fitting portion are better fixed to each other, thereby reducing the loosening and falling off of the seal due to external forces during use, and improving the connection reliability between the cabinet and the seal.

[0010] According to a second aspect of an embodiment of the present disclosure, a refrigerator is provided, comprising a cabinet door and the cabinet body assembly, wherein the cabinet door is connected to the cabinet body and is configured to reciprocate relative to the cabinet body to open and close a storage cavity. When the cabinet door closes the storage cavity, the cabinet door is pressed against the sealing member to form a sealed connection.

[0011] The freezer provided by this application has the following beneficial effects:

[0012] When the freezer provided by the present application is in use, the seal is fixedly connected to the inner side wall of the cabinet body through the plug-in portion. When the cabinet door closes the accommodating cavity of the cabinet body, the cabinet door and the seal are squeezed to seal the closed gap between the cabinet door and the cabinet body. In the process of the cabinet door moving back and forth relative to the cabinet body, the seal is always fixed to the inner side wall of the cabinet door and does not move with the cabinet door, thereby avoiding frequent movement of the seal and reducing the risk of the seal falling off. In this way, during the use of the freezer, the seal can be firmly installed on the inside of the cabinet body, so that an effective closed seal can be formed between the cabinet door and the cabinet body, thereby reducing the leakage of cold in the freezer, improving the heat preservation effect of the freezer, and preventing the freezer from frosting.

[0013] In addition, it should be noted that the cabinet assembly provided in this application is not limited to use in freezers. The cabinet assembly provided in this application can also be applied to other furniture, home appliances or equipment, such as wardrobes, storage cabinets or other equipment housings, etc., and this application does not impose any restrictions. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] BRIEF DESCRIPTION OF THE DRAWINGS The accompanying drawings, which constitute a part of the present disclosure, are used to provide a further understanding of the present disclosure. The exemplary embodiments of the present disclosure and their descriptions are used to explain the present disclosure and do not constitute an improper limitation to the present disclosure.

[0015] In order to more clearly illustrate the technical solutions in the embodiments of the present disclosure, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present disclosure. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0016] Figure 1 This is a structural diagram of a freezer in one embodiment of the present application.

[0017] Figure 2 for Figure 1 Cross-sectional view of AA in the figure.

[0018] Figure 3 for Figure 2 Enlarged view of point B in the middle.

[0019] Figure 4 for Figure 3 Schematic diagram of the structure of the cabinet components in the uninstalled state.

[0020] Figure 5 This is a structural diagram of a cabinet assembly in an uninstalled state according to an embodiment of the present application.

[0021] Figure 6 This is a structural diagram of a cabinet in another embodiment of the present application.

[0022] Figure 7 This is a schematic structural diagram of a seal according to an embodiment of the present application.

[0023] Figure 8 This is a schematic structural diagram of a seal according to another embodiment of the present application.

[0024] Figure 9 This is a schematic structural diagram of a seal according to another embodiment of the present application.

[0025] Figure 10 This is a structural diagram of a cabinet assembly in an installed state in one embodiment of the present application.

[0026] Figure 11 This is a schematic structural diagram of the sealing member of this application being configured as a strip.

[0027] Reference numerals:

[0028] 10. Freezer; 100. Cabinet assembly; 110. Cabinet; 111. Accommodating cavity; 112. Plug-in portion; 120. Cabinet door; 130. Sealing member; 131. Plug-in fitting portion; 132. Sealing side; 132a. First inner wall; 132b. Second inner wall; 133. Connecting side; 140. Anti-slip portion; 141. Root of anti-slip fin; 142. Top of anti-slip fin; 150. Sealing groove; 160. Elastomer; 161. First fin; 162. Second fin. DETAILED DESCRIPTION

[0029] Here, the technical solutions in the embodiments (or "implementations") of the present application will be clearly and completely described in conjunction with the accompanying drawings. When the following description refers to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements.

[0030] If there are terms related to directional indications or positional relationships in the embodiments of this application (such as up, down, left, right, front, back, inside, outside, top, bottom, center, vertical, horizontal, longitudinal, transverse, length, height, counterclockwise, clockwise, axial, radial, circumferential, etc.), such terms are only used to explain the relative positional relationship, movement, etc. between the components in a specific posture (as shown in the accompanying drawings); if the specific posture changes, the directional indication or positional relationship will also change accordingly. In addition, the terms "first" and "second" in the embodiments of this application are only used for the purpose of convenience of description and should not be understood as indicating or implying relative importance.

[0031] With the development of society and the improvement of people's living standards, refrigeration equipment (such as refrigerators and freezers) has become an indispensable household appliance in people's daily lives. However, with a wide variety of types and brands of refrigeration equipment, consumers are overwhelmed with choices. How to win consumer favor and improve product competitiveness has become an increasingly important issue for refrigeration equipment manufacturers.

[0032] Freezers are refrigeration appliances with light-transmitting doors, allowing people to easily see the items stored inside. They are widely used in commercial settings such as supermarkets, convenience stores, and shopping malls. Typically, a freezer consists of a door and a cabinet body. The door is mounted on the cabinet opening and reciprocates relative to the opening to open and close the cabinet's storage cavity.

[0033] In the prior art, a door seal or other sealing member is typically installed between the door and the opening of a freezer. This seal is used to seal the gap between the door and the opening by squeezing the door and the opening against the seal. However, these door seals are typically mounted on the door and move with the door as it opens and closes. This can easily cause the seal to fall off between the door and the opening, resulting in poor sealing and frosting of the freezer, which can negatively impact the user experience.

[0034] Therefore, the present application provides a freezer 10 that can prevent the seal 130 between the cabinet door 120 and the cabinet body 110 from falling off, thereby improving the heat preservation effect of the freezer 10 and preventing the freezer 10 from frosting, thereby improving the user experience.

[0035] The freezer 10 provided in this application will be described below with reference to the accompanying drawings.

[0036] See also Figures 1 to 3The present application provides a freezer 10, comprising a cabinet assembly 100 and a cabinet door 120. The cabinet assembly 100 comprises a cabinet 110 and a sealing member 130. The cabinet 110 has a receiving cavity 111 and an inner sidewall extending in the depth direction of the receiving cavity 111. The sealing member 130 is fixed to the inner sidewall of the cabinet 110. The cabinet door 120 is connected to the cabinet 110 and is configured to reciprocate relative to the cabinet 110 to open and close the receiving cavity 111. When the cabinet door 120 closes the receiving cavity 111, the cabinet door 120 is squeezed against the sealing member 130 to form a sealed connection.

[0037] It should be noted that the cabinet body 110 of the freezer 10 can be formed by enclosing and splicing a plurality of side panels. The storage cavity 111 of the cabinet body 110 can be used to form a refrigerator or freezer compartment for users to store items. The storage cavity 111 of the freezer 10 can be opened along the Y direction in the figure, and the cabinet door 120 can be connected to the opening of the cabinet body 110 by sliding or rotating, so that the user can move the cabinet door 120 by sliding, pushing, or rotating to open and close the storage cavity 111 of the freezer 10 and store and retrieve items.

[0038] Taking the sliding connection between the cabinet door 120 and the cabinet body 110 as an example, the seal 130 can be arranged on the inner side wall extending along the depth direction of the accommodating cavity 111. When the cabinet door 120 slides closed relative to the cabinet body 110, the side wall of the cabinet door 120 can be squeezed with the seal 130 on the side wall of the cabinet body 110 to form a sealed connection, thereby sealing the closed gap between the cabinet door 120 and the cabinet opening, preventing cold air from leaking out of the accommodating cavity 111 of the freezer 10, and achieving heat preservation of the freezer 10.

[0039] In this way, during the reciprocating movement of the cabinet door 120 relative to the cabinet body 110, the seal 130 is always fixed to the inner wall of the cabinet door 120 and does not move with the cabinet door 120, thereby avoiding frequent movement of the seal 130 and reducing the risk of the seal 130 falling off, so that the seal 130 can be firmly installed on the inner side of the cabinet body 110, and then an effective closed seal can be formed between the cabinet door 120 and the cabinet body 110, reducing the cold leakage of the freezer 10, and avoiding frost on the freezer 10, thereby improving the user's use effect.

[0040] See also Figure 3 and Figure 4In some embodiments, in order to further improve the connection stability between the seal 130 and the cabinet 110, the present application also provides a cabinet assembly 100. The cabinet assembly 100 includes a cabinet 110 and a seal 130. The inner side wall of the cabinet 110 extending along the depth direction of the accommodating cavity 111 is provided with a plug-in portion 112; the seal 130 is provided with a plug-in fitting portion 131 that is connected to the plug-in portion 112. Wherein, either the plug-in portion 112 or the plug-in fitting portion 131 is provided with an anti-slip portion 140, and during the plug-in connection process between the plug-in portion 112 and the plug-in fitting portion 131, the anti-slip portion 140 is squeezed to form a fixed connection.

[0041] It should be noted that the seal 130 can be configured in any shape, such as a strip or block, and this application does not impose any limitation. As an example, the seal 130 may have a thickness direction arranged along the X-direction in the figure, with opposite sides of the seal 130 along the thickness direction being a sealing side 132 and a connecting side 133. The plug-in mating portion 131 may be provided on the connecting side 133 of the seal 130. The sealing side 132 of the seal 130 can be used to form a compression seal with the cabinet door 120 when the cabinet door 120 is closed.

[0042] The plug-in portion 112 can be a convex portion protruding from the inner side wall of the cabinet 110, and the corresponding plug-in fitting portion 131 can be a concave portion recessed in the sealing member 130. The plug-in portion 112 can also be a concave portion recessed in the inner side wall of the cabinet 110, and the corresponding plug-in fitting portion 131 can be a convex portion protruding from the sealing member 130, so as to form a plug-in fit between the plug-in portion 112 and the plug-in fitting portion 131. In this way, when assembling the cabinet 110 and the sealing member 130, the sealing member 130 can be fixed to the inner side wall of the cabinet 110 through the plug-in connection between the plug-in portion 112 and the plug-in fitting portion 131, so as to increase the plug-in fit area between the sealing member 130 and the cabinet 110 through the plug-in fit, thereby improving the connection stability between the sealing member 130 and the cabinet 110.

[0043] At the same time, the anti-slip portion 140 can be configured as a component such as a bump, a rib, or a fin, and the anti-slip portion 140 can be fixed to either the plug-in portion 112 or the plug-in fitting portion 131, and this application does not impose any restrictions. In this way, during the plug-in fit between the cabinet 110 and the seal 130, the anti-slip portion 140 can be squeezed between the plug-in portion 112 and the plug-in fitting portion 131, further providing an extrusion force for the connection between the plug-in portion 112 and the plug-in fitting portion 131, so that the plug-in portion 112 and the plug-in fitting portion 131 are better fixed to each other, thereby reducing the loosening and falling off of the seal 130 due to external forces during use, and improving the connection reliability between the cabinet 110 and the seal 130.

[0044] In some embodiments, in order to facilitate the anti-slip portion 140 to provide extrusion pressure to the plug-in portion 112 and the plug-fitting portion 131, the anti-slip portion may be elastic, and the anti-slip portion 140 is squeezed between the plug-in portion 112 and the plug-fitting portion 131 to undergo elastic deformation, so as to provide extrusion pressure to the plug-in portion 112 and the plug-fitting portion 131 through the elastic recovery force of the anti-slip portion 140 to prevent the seal 130 from falling off.

[0045] See also Figure 3 Taking the anti-slip portion 140 as an elastic anti-slip fin as an example, the extension length of the anti-slip fin from the root to the top is not less than the installation gap between the plug-in fitting portion 131 and the plug-in portion 112. The root 141 of the anti-slip fin can be connected to the plug-in fitting portion 131. In this way, during the plug-in connection between the plug-in fitting portion 131 and the plug-in fitting portion 131, the top 142 of the anti-slip fin is squeezed by the plug-in portion 112 and elastically deformed to form surface contact with the plug-in portion 112, thereby increasing the friction between the top 142 of the anti-slip fin and the plug-in portion 112, thereby further preventing the seal 130 from falling out.

[0046] In order to facilitate the surface contact between the anti-slip fin and the plug-in portion 112, the cross-sectional area of ​​the root portion 141 of the anti-slip fin can be set to be larger than the cross-sectional area of ​​the top portion 142 of the anti-slip fin, so that when the anti-slip fin is squeezed, the elastic deformation of the top portion of the anti-slip fin is greater than the elastic deformation of the root portion of the anti-slip fin, thereby facilitating the surface contact between the anti-slip fin and the plug-in portion 112. At the same time, when the surface contact is formed, the root portion 141 of the anti-slip fin can also support the top portion 142 of the anti-slip fin, so that the anti-slip fin maintains a certain squeezing force between the plug-in portion 112 and the plug-in fitting portion 131, thereby preventing the seal 130 from falling out.

[0047] In some embodiments, a plurality of anti-detachment fins may be provided to form multiple barriers during the detachment process of the sealing member 130 , thereby preventing the sealing member 130 from detaching.

[0048] like Figure 4 As shown, in some embodiments, to facilitate plugging and assembling the seal 130 to the inner side wall of the cabinet opening, the anti-drop fins can be arranged at an angle relative to the plug-fitting portion 131. For example, the anti-drop fins are arranged at an acute angle from the direction from the root to the top and from the direction from the connecting side 133 to the sealing side 132.

[0049] In this way, when installing the plug-in fitting portion 131 and the plug-in portion 112, the anti-slip fin can be rotated clockwise, so that the overall outer diameter of the anti-slip fin and the plug-in fitting portion 131 shows a gradually decreasing trend, thereby reducing the friction between the top 142 of the anti-slip fin and the plug-in fitting portion 112, so that the plug-in fitting portion 131 can be smoothly plugged into the plug-in fitting portion 112, thereby completing the installation of the seal 130 and the cabinet 110. At the same time, when the plug-in fitting portion 131 is disengaged from the plug-in fitting portion 112, the anti-slip fin can be rotated counterclockwise, so that the overall outer diameter of the anti-slip fin and the plug-in fitting portion 131 shows a continuously increasing trend, thereby increasing the extrusion force between the plug-in fitting portion 131 and the plug-in fitting portion 112, thereby preventing the plug-in fitting portion 131 from disengaging from the plug-in fitting portion 112 and preventing the seal 130 from falling off from the cabinet 110. Therefore, the anti-drop fins provided in this way can not only facilitate the installation and fixation of the seal 130 and the cabinet 110, but also prevent the seal 130 from falling off from the cabinet 110, so that the cabinet assembly 100 has good connection reliability.

[0050] In other examples, such as Figure 5 As shown, the anti-slip fins can also be set on the plug-in part 112 of the cabinet body 110. At this time, the anti-slip fins are set at an obtuse angle along the inclined direction from the root to the top and the direction from the connecting side 133 to the sealing side 132. This can also achieve easy installation and anti-slip effects between the seal 130 and the cabinet body 110, which will not be elaborated in this application.

[0051] In other examples, such as Figure 6 As shown, when the plug-in portion 112 is protruding from the inner side wall of the cabinet 110, the anti-slip fin can be provided on the outer wall of the plug-in portion 112, and the corresponding plug-in mating portion 131 is recessed on the connecting side 133 of the sealing member 130 to cooperate with the plug-in portion 112. Of course, in this case, the anti-slip fin can also be provided on the inner wall of the plug-in mating portion 131 recessed in the sealing member 130 to cooperate with the plug-in portion 112 protruding from the inner side wall of the cabinet 110, and this application does not limit this.

[0052] For other examples, see Figure 7 The anti-slip portion 140 can also be set as an arc-shaped convex rib protruding from the plug-in fitting portion 131 to provide extrusion force to the plug-in portion 112 and the plug-in fitting portion 131 through the elastic deformation of the arc-shaped convex rib, which will not be elaborated in this application.

[0053] See also Figure 8 In some embodiments, in order to improve the sealing between the sealing member 130 and the cabinet door 120 , a sealing portion is provided on the sealing side 132 of the sealing member 130 , and the sealing portion is used for extrusion sealing with the cabinet door 120 .

[0054] As an example, the sealing portion includes a sealing groove 150, which is recessed from the sealing side 132 toward the connecting side 133 and is used to cooperate with the cabinet door 120 for plugging and sealing. The sealing groove 150 can be an L-shaped groove or a U-shaped groove, etc., and this application does not impose any restrictions. In this way, the sealing groove 150 is used to increase the sealing connection area between the cabinet door 120 and the sealing member 130, and a portion of the cabinet opening is wrapped within the sealing groove 150, thereby improving the sealing effect between the cabinet door 120 and the sealing member 130.

[0055] To facilitate the formation of the sealing groove 150 , the sealing member 130 may be elastic and bend along the connecting side 133 toward the sealing side 132 to form the sealing groove 150 on the sealing side 132 for plugging with the cabinet door 120 .

[0056] In addition, when the seal 130 is bent along the direction of the connection side 133 pointing to the sealing side 132, the connection side 133 also forms a bending surface. In this way, when the seal 130 is installed, an avoidance groove can be formed on the inner wall of the cabinet 110, and the seal 130 as a whole can be embedded in the inner wall of the cabinet door 120 through the bending surface, so as to hide and protect the seal 130, and further prevent the seal 130 from being damaged by foreign objects or falling off by impact. At the same time, the bending surface of the connection side 133 and the plug-in fitting part 131 can also work together to form at least a double fit between the seal 130 and the inner wall of the cabinet 110 to improve the connection reliability. In some embodiments, the bending surface formed on the connection side can also be fixed by bonding, that is, it is fixed by bonding with the outer wall of the sealing groove. In this way, the double cooperation of bonding and the anti-slip part can also further improve the connection reliability of the seal and the cabinet.

[0057] In some embodiments, the sealing portion may further include an elastomer 160 , which is disposed on the inner wall of the sealing groove 150 and is used to squeeze with the cabinet door 120 to generate elastic deformation to seal the insertion gap between the cabinet door 120 and the sealing groove 150 .

[0058] As an example, the sealing groove 150 includes a first inner wall 132a and a second inner wall 132b connected to the first inner wall 132a. The mating portion 131 can be connected to the outer wall corresponding to the first inner wall 132a. The elastic body 160 can be configured as a sealing fin, the root of which is connected to the second inner wall 132b. When the cabinet door 120 is inserted into the sealing groove 150, the sealing fin elastically deforms and abuts between the cabinet door 120 and the second inner wall 132b, thereby sealing the insertion gap between the cabinet door 120 and the sealing groove 150. Multiple sealing fins can be provided, each spaced apart on the second inner wall 132b, to form a multiple seal between the cabinet door 120 and the sealing groove 150.

[0059] See also Figure 9 The plurality of sealing fins may also be connected to the first inner wall 132a and the second inner wall 132b, respectively. For example, the plurality of sealing fins include a first fin 161 and a second fin 162, with the first fin 161 connected to the first inner wall 132a and the second fin 162 connected to the second inner wall 132b, such that the first fin 161 and the second fin 162 are located on either side of the opening of the sealing groove 150. Thus, when the cabinet door 120 is inserted into the sealing groove 150, the first fin 161 and the second fin 162 can swing toward the interior of the sealing groove 150, closing the opening of the sealing groove 150 and abutting between the sealing groove 150 and the cabinet door 120, thereby sealing the insertion gap between the cabinet door 120 and the sealing groove 150.

[0060] See also Figure 9 and Figure 10 In some embodiments, the first fins 161 and the second fins 162 may be staggered along the X-direction. As the cabinet door 120 is inserted into the sealing groove 150 along the X-direction, the cabinet door 120 first contacts the second fins 162, causing the second fins 162 to swing and press between the sealing groove 150 and the cabinet door 120, forming a first layer of sealing. As the cabinet door 120 continues to be inserted into the sealing groove 150, the cabinet door 120 presses against the inner wall of the sealing groove 150, causing the inner wall of the sealing groove 150 to deform, thereby driving the first fins 161 to swing into the sealing groove 150, forming a second layer of sealing between the cabinet door 120 and the sealing groove 150, thereby improving the sealing effect between the cabinet door 120 and the sealing groove 150.

[0061] Furthermore, in some embodiments, to facilitate the entry and exit of the cabinet door 120 into and out of the sealing groove 150, the first fin 161 and the second fin 162 may be inclined in different directions. Specifically, the top of the first fin 161 is inclined toward the outside of the sealing groove 150 relative to the root of the first fin 161, and the top of the second fin 162 is inclined toward the inside of the sealing groove 150 relative to the root of the second fin 162. For example, the inclination direction of the first fin 161 from the root to the top may be set at an obtuse angle of no more than 180 degrees with the direction in which the cabinet door 120 is inserted into the sealing groove 150 (e.g., the X direction). The inclination direction of the second fin 162 from the root to the top may be set at an acute angle with the direction in which the cabinet door 120 is inserted into the sealing groove 150 (e.g., the X direction).

[0062] Thus, when the cabinet door 120 is inserted into the sealing groove 150 and contacts the second fin 162, the second fin 162 can swing clockwise to approach the inner wall of the sealing groove 150, thereby reducing friction between the cabinet door 120 and the cabinet door 120, allowing the cabinet door 120 to continue to be inserted into the sealing groove 150. This, in turn, compresses the inner wall of the sealing groove 150, driving the first fin 161 to swing. Simultaneously, after the cabinet door 120 and the sealing groove 150 are properly inserted, the second fin 162 can elastically rebound and press against the inner wall of the sealing groove 150 and the cabinet door 120, forming an effective seal. Furthermore, the first fin 161 extending outward from the sealing groove 150 avoids blocking the opening of the sealing groove 150 and guides the cabinet door 120 into the sealing groove 150, reducing resistance to the movement of the cabinet door 120 and ensuring smooth entry of the cabinet door 120 into the sealing groove 150.

[0063] At the same time, the first fin 161 and the second fin 162 are as follows Figure 9 After tilting in this manner, as the cabinet door 120 moves out of the sealing groove 150, the cabinet door 120 separates from the inner wall of the sealing groove 150, causing the inner wall of the sealing groove 150 to recover its deformation, thereby driving the first fin 161 to recover its deformation, opening the opening of the sealing groove 150 and providing space for the cabinet door 120 to move out. Furthermore, the removal space provided by the first fin 161 can also prevent the second fin 162 from swinging counterclockwise and interfering with the cabinet door 120 when the cabinet door 120 moves relative to the second fin 162, thereby allowing the cabinet door 120 to move out of the sealing groove 150 smoothly. In addition, by avoiding the movement interference caused by the cabinet door 120 moving out of the sealing groove 150, it is also possible to prevent the cabinet door 120 from driving the seal 130 away from the inner wall of the cabinet body 110 when moving out of the sealing groove 150, thereby preventing the seal 130 from falling off during the movement of the cabinet door 120, so that the sealing groove 150 can always be fixed to the inner wall of the cabinet door 120 during the opening and closing process of the cabinet door 120, so as to form an effective closed seal between the cabinet door 120 and the cabinet body 110.

[0064] Of course, in other embodiments, the elastic body 160 can also be configured as a variety of elastic members such as an air bag, a rib or a rubber block, and this application does not limit this. In addition, the elastic body 160 can also be set on any inner wall of the sealing groove 150, and this application does not limit this.

[0065] See also Figure 11In some embodiments, to accommodate the connection requirements of doors 120 or cabinet bodies 110 of varying shapes, the seal 130 can be configured in a variety of shapes. For example, if the cabinet door 120 is curved, the seal 130 can be configured in a curved shape that matches the cabinet door 120, and the sealing groove 150 extending along the length of the seal 130 can also be configured in a curved shape for installation between the cabinet body 110 and the door 120 of the refrigerator 10. Furthermore, the seal 130 can also be configured in a variety of shapes, such as a straight bar or a combination of a straight bar and a curved bar, without limitation in this application.

[0066] It should be noted that the technical solutions or technical features described in the above embodiments can be combined or supplemented with each other without conflict. The scope of protection of this application is not limited to the precise structures described in the above embodiments and shown in the accompanying drawings; all modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of this application shall be included in the scope of protection of this application.

Claims

1. A cabinet assembly, characterized in that: include: A cabinet body is provided with a receiving cavity, the cabinet body is provided with an inner side wall extending along the depth direction of the receiving cavity, and the inner side wall is provided with an inserting portion; and A sealing member provided with a plug-in fitting portion that is cooperatively connected with the plug-in fitting portion; Wherein, either the plug-in portion or the plug-fitting portion is provided with an anti-slip portion, and during the plug-in connection between the plug-in portion and the plug-fitting portion, the anti-slip portion is squeezed to form a fixed plug-in connection.

2. The cabinet assembly according to claim 1, wherein: The anti-slip portion is elastic and is elastically deformed when squeezed so as to abut between the plug-in portion and the plug-fitting portion.

3. The cabinet assembly according to claim 2, wherein: The anti-slip portion includes an anti-slip fin, the root of the anti-slip fin is connected to one of the plug-in portion and the plug-fitting portion, and the top of the anti-slip fin abuts against the other of the plug-in portion and the plug-fitting portion.

4. The cabinet assembly according to claim 3, characterized in that: The top of the anti-slip fin is arranged obliquely relative to the root of the anti-slip fin.

5. The cabinet assembly according to claim 4, characterized in that: The sealing member has a sealing side and a connecting side arranged opposite to each other, and the plug-fitting portion is arranged on the connecting side; When the anti-slip fin is provided on the plug-fitting portion, the anti-slip fin is provided at an acute angle along the inclined direction from the root portion to the top portion and the direction from the connecting side to the sealing side; When the anti-slip fin is provided on the plug-in portion, the anti-slip fin is provided at an obtuse angle along an inclined direction from the root portion to the top portion and a direction from the connecting side to the sealing side.

6. The cabinet assembly according to claim 3, characterized in that: The top of the anti-dropping fin forms a surface contact with one of the plug-in portion and the plug-fitting portion when it abuts against the plug-in portion.

7. The cabinet assembly according to claim 1, wherein: One of the plug-in portion and the plug-fitting portion is configured as a recessed portion, and the other is configured as a protruding portion that fits with the recessed portion.

8. The cabinet assembly according to claim 1, wherein: The sealing member has a sealing side and a connecting side arranged opposite to each other, the plug-in fitting portion is arranged on the connecting side, and the sealing side is provided with a sealing portion, and the sealing portion is used to cooperate with the cabinet door; When the cabinet door closes the accommodating cavity, the sealing portion is pressed against the cabinet door to form a sealing connection.

9. The cabinet assembly according to claim 8, characterized in that: The sealing portion includes a sealing groove, which is recessed from the sealing side toward the connecting side and is used to cooperate with the cabinet door for plugging and sealing.

10. The cabinet assembly according to claim 9, characterized in that: The sealing portion further includes an elastic body, which is arranged on the inner wall of the sealing groove and is used to be squeezed with the cabinet door to generate elastic deformation so as to seal the insertion gap between the cabinet door and the sealing groove.

11. The cabinet assembly according to claim 10, characterized in that: The elastic body includes at least two sealing fins, and the roots of the sealing fins are connected to the inner wall of the sealing groove at intervals; When the cabinet door is inserted into the sealing groove, the top of each sealing fin abuts against the cabinet door and undergoes elastic deformation.

12. The cabinet assembly according to claim 11, wherein: The at least two sealing fins include a first fin and a second fin, the first fin and the second fin are respectively located on both sides of the opening of the sealing groove, and are spaced apart from each other in a direction from the sealing side to the connecting side; And / or, the top of the first fin is inclined toward the outside of the sealing groove relative to the root of the first fin, and the top of the second fin is inclined toward the inside of the sealing groove relative to the root of the second fin.

13. The cabinet assembly according to claim 9, wherein: The sealing member is arranged in a strip shape, and the sealing groove extends along the length direction of the sealing member in a straight strip shape and / or an arc strip shape.

14. A freezer, characterized in that: The cabinet assembly comprises a cabinet door and the cabinet assembly according to any one of claims 1 to 13, wherein the cabinet door is connected to the cabinet and is configured to reciprocate relative to the cabinet to open and close the accommodating cavity; When the cabinet door closes the accommodating cavity, the cabinet door and the sealing member are pressed to form a sealing connection.