Refrigerator

By using the adjustment components of heat conduction parts and heat insulation parts in the refrigerator, the problem of poor cooling effect in other variable temperature compartments is solved, the cooling efficiency is improved and the energy consumption is reduced, which improves the user experience and production efficiency.

CN223319348UActive Publication Date: 2025-09-09HISENSE(SHANDONG)REFRIGERATOR CO LTD
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Patent Information

Application Number
CN202422479185.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-14
Publication Date
2025-09-09
Estimated Expiration
2034-10-14

AI Technical Summary

Technical Problem

In existing refrigerators, other variable temperature compartments have poor cooling effects when set at low temperatures, resulting in a poor user experience.

Method used

The heat exchange between the freezer compartment and other compartments is adjusted by using an adjustment component that combines heat-conducting parts with heat-insulating parts. This improves refrigeration efficiency and reduces energy consumption by moving the heat-insulating parts between different positions.

Benefits of technology

It improves the cooling efficiency of other compartments, reduces energy consumption, enhances user experience, and increases flexibility and production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a refrigerator which comprises a cabinet body and a door body, the door body and the cabinet body jointly define a containing cavity, the containing cavity comprises a freezing chamber and at least one other compartment, and a gap is formed between the freezing chamber and the other compartment; the refrigerator further comprises an adjusting assembly, at least one part of the adjusting assembly is located between the freezing chamber and the other chambers, the adjusting assembly comprises a heat conduction part and a heat preservation part, the heat conduction part is arranged between the freezing chamber and the other chambers, and the heat preservation part is located on the side, away from the freezing chamber, of the heat conduction part. The heat preservation part completely covers the heat conduction part so as to cut off heat exchange between the freezing chamber and other chambers. And when the heat preservation part is located at the second position, the heat preservation part and the heat conduction part are not overlapped in the arrangement direction of the freezing chamber and the other chambers, so that heat exchange between the freezing chamber and the other chambers is completely opened. According to the refrigerator, the heat preservation piece and the heat conduction piece are matched, the refrigerating efficiency of other chambers is improved, and the experience feeling of a user is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of refrigerators, in particular to a refrigerator. Background Art

[0002] A refrigerator is a refrigeration device that maintains a constant low temperature. It is also a civilian product that keeps food or other items at a constant low temperature.

[0003] In related art, refrigerators include a freezer compartment, other variable-temperature compartments, and a refrigerated compartment arranged in sequence. However, the refrigerator's evaporator is located in the freezer compartment. When the temperature of the other variable-temperature compartments is set to a lower level, the other variable-temperature compartments experience slow cooling or poor cooling, which degrades the user experience. Utility Model Content

[0004] The present application aims to solve at least one of the technical problems existing in the prior art. To this end, one object of the present invention is to provide a refrigerator in which a heat-insulating component and a heat-conducting component cooperate to improve the cooling efficiency of other compartments, reduce energy consumption, and enhance the user experience.

[0005] The refrigerator according to the first embodiment of the present invention includes:

[0006] a cabinet body, wherein the cabinet body is formed with an opening;

[0007] A door body is provided at the opening and is used to open and close the opening. The door body and the cabinet body together define an accommodating cavity, and the accommodating cavity includes:

[0008] a freezer compartment and at least one other compartment, wherein a partition is provided between the freezer compartment and the other compartment;

[0009] The refrigerator further comprises:

[0010] a regulating assembly, at least a portion of which is located between the freezing chamber and the other compartments, for regulating heat exchange between the freezing chamber and the other compartments, the regulating assembly comprising:

[0011] a heat conducting member, the heat conducting member being arranged between the freezing chamber and the other compartments;

[0012] a heat-insulating element, the heat-insulating element being located on a side of the heat-conducting element away from the freezing chamber, the heat-insulating element being movable between a first position and a second position,

[0013] When the heat-insulating member is in the first position, the heat-insulating member completely covers the heat-conducting member to block the heat exchange between the freezer compartment and the other compartments; when the heat-insulating member is in the second position, the heat-insulating member and the heat-conducting member do not overlap along the arrangement direction of the freezer compartment and the other compartments, so as to fully open the heat exchange between the freezer compartment and the other compartments.

[0014] The refrigerator of the present invention can be adjusted between a first and second position based on the temperature setting of other compartments, thereby improving the cooling efficiency of the other compartments, reducing energy consumption, and enhancing the user experience. The heat exchange function can also be turned on and off, allowing for convenient adjustment based on the actual usage of the other compartments, thus increasing flexibility. Furthermore, the adjustment assembly has a simple structure and is easy to manufacture, thereby improving production efficiency.

[0015] According to some embodiments of the present invention, a mounting groove is formed on the bottom wall of the other compartment, and the thermal insulation component is arranged in the mounting groove.

[0016] The specific advantages or beneficial effects of the above solution are as follows: it is easy to assemble the thermal insulation component with other compartments, thereby improving assembly efficiency, reducing the height of the upper side of the thermal insulation component, and avoiding affecting the placement of other objects.

[0017] According to some embodiments of the present invention, the adjustment component further includes:

[0018] a cover plate, the cover plate being arranged on a side of the heat-insulating element away from the heat-conducting element, and having a guide hole formed on the cover plate;

[0019] The thermal insulation component comprises:

[0020] a body, wherein a bottom surface of the body contacts a bottom wall of the mounting groove;

[0021] A guide structure, one end of which is connected to a side of the body facing the cover plate, and the other end of which extends into the guide hole.

[0022] The specific advantages or beneficial effects of the above solution are as follows: the cover plate can protect the thermal insulation component and also shield the components in the installation slot, thereby extending the service life of the thermal insulation component and improving the aesthetics. In addition, the thermal insulation component is more convenient to move.

[0023] According to some embodiments of the present invention, a surface of one side of the cover plate away from the heat-insulating component is flush with the bottom wall of the other compartment.

[0024] The specific advantages or beneficial effects of the above solution are as follows: the flatness of the bottom walls of other compartments is improved, so that when other objects (such as drawers) are placed in other compartments, the space in other compartments can be rationally utilized.

[0025] According to some embodiments of the present invention, at least one heat dissipation hole is formed on a portion of the cover plate opposite to the heat conducting member, and the heat dissipation hole penetrates both side surfaces of the cover plate along the thickness direction of the cover plate.

[0026] The specific advantages or beneficial effects of the above solution are as follows: the cold energy is directly transferred to other compartments through the heat dissipation holes, thereby improving the efficiency of cold energy diffusion, thereby further improving the cooling efficiency of other compartments.

[0027] According to some embodiments of the present invention, there are multiple heat dissipation holes, and the multiple heat dissipation holes constitute multiple heat dissipation hole groups. The multiple heat dissipation hole groups are distributed on both sides of the guide hole, and the multiple heat dissipation holes in each heat dissipation hole group are arranged at intervals along the extension direction of the guide hole.

[0028] The specific advantages or beneficial effects of the above solution are as follows: the heat dissipation hole group further improves the efficiency of cooling diffusion and also improves the structural strength of the cover plate.

[0029] According to some embodiments of the present invention, a side of the heat-insulating element facing the heat-conducting element is formed with an escape portion;

[0030] The adjustment component also includes:

[0031] A fan is provided on the bottom wall of the mounting groove, the fan is located between the heat conducting member and the heat dissipation hole, and when the heat insulation member moves to the first position, the fan is located in the avoidance portion.

[0032] The specific advantages or beneficial effects of the above solution are as follows: the fan cooperates with the heat dissipation holes to further improve the efficiency of cooling diffusion.

[0033] According to some embodiments of the present invention, the heat conducting member includes:

[0034] Two first heat conducting plates, the two first heat conducting plates being opposite to each other along the arrangement direction of the freezing chamber and the other compartments, and the two first heat conducting plates being respectively in contact with the outer wall surface of the freezing chamber and the outer wall surface of the other compartments;

[0035] A second heat conducting plate, wherein two sides of the second heat conducting plate are respectively connected to the same end of the two first heat conducting plates.

[0036] The specific advantages or beneficial effects of the above scheme are as follows: the contact area and contact effect between the heat conducting member and the outer wall surface of the freezing chamber and the outer wall surfaces of other compartments are increased, thereby improving the heat transfer effect and the heat exchange efficiency.

[0037] According to some embodiments of the present invention, the thickness of the thermal insulation member is d1, wherein d1 satisfies: 20 mm ≤ d1 ≤ 30 mm; and / or,

[0038] The thickness of the heat conducting member is d2, wherein d2 satisfies: 1.5 mm ≤ d2 ≤ 2.0 mm.

[0039] The specific advantages or beneficial effects of the above solution are as follows: it effectively ensures the isolation of cold energy, enhances the structural strength of the heat conducting member, and reduces production costs.

[0040] A refrigerator according to an embodiment of the second aspect of the present invention includes:

[0041] a cabinet body, wherein the cabinet body is formed with an opening;

[0042] A door body is provided at the opening and is used to open and close the opening. The door body and the cabinet body together define an accommodating cavity, and the accommodating cavity includes:

[0043] A freezer compartment and another compartment, wherein there is a partition between the freezer compartment and the other compartment;

[0044] The refrigerator further comprises:

[0045] A heat conducting member is provided between the freezing chamber and the other compartments and is used for heat conduction between the freezing chamber and the other compartments.

[0046] The specific advantages or beneficial effects of the above solution are as follows: the coldness of the freezer compartment is transferred to other compartments through the heat conducting member, thereby improving the refrigeration effect of other compartments, reducing energy consumption, and improving the user experience.

[0047] Additional aspects and advantages of the present invention will be given in part in the following description and will become apparent from the following description or learned through practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0048] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the description of the embodiments in conjunction with the following drawings, in which:

[0049] Figure 1 is a schematic diagram of a refrigerator according to an embodiment of the present utility model;

[0050] Figure 2 is a schematic diagram of a refrigerator according to an embodiment of the present invention from another angle, wherein the drawer is not shown;

[0051] Figure 3 is a cross-sectional view of a refrigerator according to an embodiment of the present utility model;

[0052] Figure 4 yes Figure 3 The enlarged view of section A shown in the middle circle;

[0053] Figure 5 is a cross-sectional view of a refrigerator according to an embodiment of the present invention, wherein the cover plate is not shown;

[0054] Figure 6 is a cross-sectional view of a refrigerator according to an embodiment of the present invention from another angle;

[0055] Figure 7 yes Figure 6 The enlarged view of the part B shown in the middle circle;

[0056] Figure 8 is a schematic diagram of an adjustment assembly of a refrigerator according to an embodiment of the present utility model;

[0057] Figure 9 is a schematic diagram of a heat conducting member of a refrigerator according to an embodiment of the present utility model;

[0058] Figure 10 Schematic diagram of a heat preservation component of a refrigerator according to an embodiment of the present utility model;

[0059] Figure 11 Schematic diagram of a refrigerator cover according to an embodiment of the present invention.

[0060] Reference numerals:

[0061] 100. Refrigerator;

[0062] 1. Cabinet; 11. Opening; 12. Accommodation cavity; 121. Freezer compartment;

[0063] 122. Other compartments; 1221. Installation slots; 13. Drawers;

[0064] 2. Adjustment assembly; 21. Heat conducting member; 211. First heat conducting plate; 212. Second heat conducting plate;

[0065] 22. Insulation member; 221. Main body; 222. Guide structure; 223. Avoidance portion;

[0066] 23. Cover plate; 231. Guide hole; 232. Heat dissipation hole; 233. Heat dissipation hole group; 234. Support plate;

[0067] 24. Fan. DETAILED DESCRIPTION

[0068] The embodiments of the present invention are described in detail below. The embodiments described with reference to the accompanying drawings are exemplary. Figures 1-11 A refrigerator 100 according to an embodiment of the first aspect of the present invention is described.

[0069] like Figure 1 and Figure 3 As shown, the refrigerator 100 according to the embodiment of the first aspect of the present invention includes a cabinet body 1 and a door body (not shown in the figure).

[0070] Specifically, the cabinet body 1 is formed with an opening 11, and a door body is provided at the opening 11 for opening and closing the opening 11. The door body and the cabinet body 1 together define a receiving chamber 12, which includes a freezer compartment 121 and at least one other compartment 122. The freezer compartment 121 and the other compartment 122 are separated by a partition.

[0071] For example, in Figure 1 、 Figure 3 and Figure 4 In the example shown, the cabinet 1 is the main structural component of the refrigerator 100. The cabinet 1 has an opening 11 for storing and accessing food and other items. A door is located at the opening 11 of the cabinet 1 and can be opened and closed. The storage chamber 12 is used to store items (such as food, drinks, and facial masks). The freezer 121 and other compartments 122 are set to different temperatures to accommodate items with different temperature requirements. The freezer 121 and other compartments 122 are separated by a gap, adjacent to each other, and relatively close to each other. However, this is not limiting. For example, when the gap between the freezer 121 and other compartments 122 is large, additional compartments (such as a variable temperature chamber) may also be provided. It should be noted that the temperature of the other compartments 122 is adjustable and can be used for either refrigeration or freezing, allowing for flexible configuration based on actual usage.

[0072] Combine Figure 2 、 Figure 3 and Figure 4 The refrigerator 100 further includes a regulating assembly 2, at least a portion of which is located between the freezer compartment 121 and the other compartment 122, and is used to regulate the heat exchange between the freezer compartment 121 and the other compartment 122. The regulating assembly 2 includes a heat conductor 21 and a heat insulating member 22. The heat conductor 21 is located between the freezer compartment 121 and the other compartment 122. The heat insulating member 22 is located on a side of the heat conductor 21 away from the freezer compartment 121, and the heat insulating member 22 is movable between a first position and a second position. When the heat insulating member 22 is located in the first position, the heat insulating member 22 completely covers the heat conductor 21 to block the heat exchange between the freezer compartment 121 and the other compartment 122. When the heat insulating member 22 is located in the second position, the heat insulating member 22 and the heat conductor 21 do not overlap along the arrangement direction of the freezer compartment 121 and the other compartment 122, thereby fully enabling the heat exchange between the freezer compartment 121 and the other compartment 122.

[0073] For example, in Figure 2 、 Figure 3 and Figure 4 In the example, the outer wall surface of the freezing chamber 121 and the outer wall surface of the other compartment 122 are in contact with the heat-conducting member 21, the thermal insulation member 22 is located above the heat-conducting member 21, the other compartment 122 is located above the other compartment 122, and the thermal insulation member 22 is located on the side of the other compartment 122 close to the heat-conducting member 21, that is, the thermal insulation member 22 is located inside the other compartment 122. When the thermal insulation member 22 is in the first position, the thermal insulation member 22 completely covers the heat-conducting member 21 in the up-down direction. When the thermal insulation member 22 is in the second position, there is no overlap between the thermal insulation member 22 and the heat-conducting member 21 in the up-down direction. When the thermal insulation member 22 is between the first position and the second position, the thermal insulation member 22 partially overlaps with the heat-conducting member 21 in the up-down direction. The overlapping area of ​​the thermal insulation member 22 and the heat-conducting member 21 can be controlled according to actual usage. If the cooling efficiency required by other compartments 122 is relatively low, the overlapping area of ​​the heat preservation member 22 and the heat conduction member 21 is relatively large. If the cooling efficiency required by other compartments 122 is relatively high, the overlapping area of ​​the heat preservation member 22 and the heat conduction member 21 is relatively small.

[0074] With this arrangement, when the temperature set in the other compartments 122 is lower (for example, a freezing temperature), the heat-insulating component 22 is moved to the second position, and the heat-insulating component 22 and the heat-conducting component 21 are misaligned (that is, the heat-insulating component 22 and the heat-conducting component 21 are misaligned in the up and down directions). The coldness in the freezing compartment 121 can be transferred to the other compartments 122 through the heat-conducting component 21, thereby improving the refrigeration efficiency of the other compartments 122, thereby reducing the energy consumption of the refrigerator 100 and improving the user experience.

[0075] Furthermore, when the temperature set in the other compartments 122 is higher (e.g., a refrigeration temperature), the heat-insulating element 22 is moved to the first position, where it covers the heat-conducting element 21 (i.e., the heat-insulating element 22 and the heat-conducting element 21 are vertically opposed). This isolates the cold air from the freezer compartment 121, preventing it from transferring cold air through the heat-conducting element 21. This facilitates flexible adjustment of the position of the heat-insulating element 22 based on the set temperature in the other compartments 122, improving the flexibility of the refrigerator 100. Furthermore, the heat-conducting element 21 provides heat conduction, and the adjustment assembly 2 has a simple structure and is easy to manufacture, thereby improving the production efficiency of the refrigerator 100.

[0076] According to the refrigerator 100 of the present invention, the heat-insulating element 22 can be moved between a first position and a second position according to the temperature setting in the other compartments 122. This improves the cooling efficiency of the other compartments 122, reduces energy consumption, and enhances the user experience. The heat exchange function can also be turned on and off, allowing for convenient settings based on the actual usage of the other compartments 122, increasing operational flexibility. Furthermore, the adjustment assembly 2 has a simple structure and is easy to manufacture, thereby improving production efficiency.

[0077] According to some embodiments of the present invention, referring to Figure 5, a mounting groove 1221 is formed on the bottom wall of the other compartment 122, and the heat-insulating member 22 is arranged in the mounting groove 1221. For example, Figure 5 In the example shown, mounting groove 1221 is formed on the sidewall of the other compartment 122, adjacent to the freezer compartment 121. Mounting groove 1221 is recessed downward. This configuration simplifies the mounting groove 1221, facilitating assembly of the insulation element 22 with the other compartment 122 and improving assembly efficiency. Furthermore, placing the insulation element 22 in mounting groove 1221 reduces the height of its upper surface, preventing other items (such as the drawer 13) from being affected when placed in the other compartment 122, thereby ensuring normal operation of the refrigerator 100.

[0078] According to some embodiments of the present invention, referring to Figure 6 and Figure 7 The adjustment assembly 2 further includes a cover plate 23, which is disposed on a side of the heat-insulating element 22 away from the heat-conducting element 21. A guide hole 231 is formed in the cover plate 23. The heat-insulating element 22 includes a body 221 and a guide structure 222. The bottom surface of the body 221 contacts the bottom wall of the mounting groove 1221. One end of the guide structure 222 is connected to the side of the body 221 facing the cover plate 23, and the other end of the guide structure 222 extends into the guide hole 231.

[0079] For example, in Figure 6 、 Figure 7 and Figure 8 In the example shown in FIG, the cover plate 23 is located above the thermal insulation member 22, covering the thermal insulation member 22. That is, the thermal insulation member 22 can be covered by the cover plate 23 when in both the first and second positions. The lower end of the guide structure 222 is connected to the upper side of the body 221, and the upper end of the guide structure 222 passes through the guide hole 231 and protrudes from the upper side of the cover plate 23.

[0080] With this arrangement, the cover plate 23 protects the insulation element 22, preventing other objects in the compartment 122 from scratching it, thereby extending the service life of the insulation element 22. Furthermore, the cover plate 23 conceals the components within the mounting slot 1221 (e.g., the insulation element 22 and the fan 24), thereby enhancing the aesthetics of the refrigerator 100's interior. Furthermore, during use, the user can push the guide structure 222 to move the main body 221 along the extension direction of the guide hole 231, allowing the insulation element 22 to reciprocate between the first and second positions. This reduces the difficulty of moving the insulation element 22 and improves user convenience. Furthermore, the insulation element 22 has a simple structure and is easy to process, thereby improving production efficiency.

[0081] Further, refer to Figure 6 and Figure 7 , the surface of the side of the cover plate 23 away from the heat-insulating member 22 is flush with the bottom wall of the other compartment 122. Figure 6 and Figure 7 In the example shown, the upper surface of the cover plate 23 is in the same horizontal plane as the lower wall of the other compartment 122. This arrangement improves the flatness of the bottom wall of the other compartment 122, making it easier to rationally utilize the space in the other compartment 122 when placing other objects (such as drawers 13) in the other compartment 122, thereby avoiding space waste.

[0082] According to some embodiments of the present invention, referring to Figure 6 and Figure 7 At least one heat dissipation hole 232 is formed on the portion of the cover plate 23 opposite to the heat conducting member 21. The heat dissipation hole 232 penetrates both sides of the cover plate 23 along the thickness direction of the cover plate 23. Figure 6 and Figure 7 In the example shown, the heat dissipation holes 232 extend vertically through the cover plate 23 and face the heat conducting element 21 in the vertical direction. When the cover plate 23 covers the thermal insulation element 22, the heat dissipation holes 232 connect the other compartments 122 and the mounting slot 1221. Thus, when the thermal insulation element 22 is in the second position (i.e., when the regulating assembly 2 is in heat exchange mode), the heat conducting element 21 can transfer the excess cooling energy directly to the other compartments 122 through the heat dissipation holes 232, improving the efficiency of cooling energy diffusion and further enhancing the cooling efficiency of the other compartments 122.

[0083] Among them, reference Figure 4 and Figure 11 A plurality of support plates 234 are provided at the outer peripheral edge of the cover plate 23. In the description of the present utility model, "plurality" means two or more. For example, there are four support plates 234. The upper sides of the four support plates 234 are respectively connected to the four edges of the cover plate 23. The four support plates 234 are connected in sequence. The lower sides of the support plates 234 are abutted against the bottom wall of the mounting groove 1221. The side of the support plate 234 away from the center of the cover plate 23 is in contact with the side wall of the mounting groove 1221. Thus, the support plates 234 support the cover plate 23, thereby facilitating the movement of the thermal insulation component 22 between the first position and the second position under the cover plate 23, effectively ensuring the normal use of the adjustment assembly 2.

[0084] According to some embodiments of the present invention, referring to Figure 4 and Figure 11 There are multiple heat dissipation holes 232, and the multiple heat dissipation holes 232 constitute multiple heat dissipation hole groups 233. The multiple heat dissipation hole groups 233 are distributed on both sides of the guide hole 231. The multiple heat dissipation holes 232 of each heat dissipation hole group 233 are arranged at intervals along the extension direction of the guide hole 231.

[0085] For example, in Figure 4 and Figure 11In this example, two heat dissipation hole groups 233 are provided, each including three heat dissipation holes 232 extending in the left-right direction. One heat dissipation hole group 233 is located to the right of the guide hole 231, with the three heat dissipation holes 232 in this heat dissipation hole group 233 spaced apart along the extension direction of the guide hole 231 (i.e., the front-to-back direction). The other heat dissipation hole group 233 is located to the left of the guide hole 231, with the three heat dissipation holes 232 in this other heat dissipation hole group 233 spaced apart along the extension direction of the guide hole 231. This arrangement of the heat dissipation hole groups 233 further improves the efficiency of cooling diffusion and heat exchange, thereby further improving the cooling efficiency of other compartments 122. Furthermore, this arrangement of the guide holes 231 and heat dissipation hole groups 233 enhances the structural strength of the cover plate 23 and extends its service life. However, this is not limiting. It should be noted that the number and arrangement of the heat dissipation holes 232 and heat dissipation hole groups 233 can be customized based on actual usage.

[0086] According to some embodiments of the present invention, referring to Figure 5 and Figure 10 The heat-insulating element 22 has a relief portion 223 formed on one side thereof facing the heat-conducting element 21. The regulating assembly 2 further includes a fan 24 disposed on the bottom wall of the mounting slot 1221 and positioned between the heat-conducting element 21 and the heat-dissipating holes 232. When the heat-insulating element 22 moves to the first position, the fan 24 is positioned within the relief portion 223.

[0087] For example, in Figure 5 and Figure 10 In the example, the avoidance portion 223 is formed on the lower side of the thermal insulation component 22, and the avoidance portion 223 is opposite to the fan 24 in the front-to-back direction. When the thermal insulation component 22 is in the first position, the fan 24 is turned off. When the thermal insulation component 22 is in the second position, the fan 24 is turned on. With this arrangement, when heat exchange is turned on between the other compartments 122 and the freezer compartment 121, the fan 24 is turned on, and the fan 24 forms convection with the air in the other compartments 122 through the heat dissipation holes 232, further improving the efficiency of heat exchange, thereby further improving the cooling efficiency of the other compartments 122. In addition, the avoidance portion 223 prevents the fan 24 from blocking the thermal insulation component 22 during its movement, thereby improving the smoothness of the use of the thermal insulation component 22. It should be noted that the fan 24 is fixedly connected to the bottom wall of the mounting groove 1221 by a plurality of fasteners (not shown). For example, the fasteners can be bolts.

[0088] According to some embodiments of the present invention, referring to Figure 4 and Figure 9The heat conducting member 21 includes two first heat conducting plates 211 and a second heat conducting plate 212. The two first heat conducting plates 211 are opposite to each other along the arrangement direction of the freezing chamber 121 and the other compartments 122. The two first heat conducting plates 211 are respectively attached to the outer wall surface of the freezing chamber 121 and the outer wall surface of the other compartments 122. The two sides of the second heat conducting plate 212 are respectively connected to the same end of the two first heat conducting plates 211.

[0089] For example, in Figure 4 and Figure 9 In the example, the second heat conducting plate 212 is located between the two first heat conducting plates 211, the upper side of the second heat conducting plate 212 is connected to the left end of one first heat conducting plate 211, and the lower side of the second heat conducting plate 212 is connected to the left end of the other first heat conducting plate 211. The above-mentioned one first heat conducting plate 211 is in contact with the outer wall surface of the freezer compartment 121, and the above-mentioned other first heat conducting plate 211 is in contact with the outer wall surface of the other compartment 122.

[0090] During the heat exchange process, the cold within the freezer compartment 121 is transferred along the sidewalls of the freezer compartment 121 to the aforementioned first heat conducting plate 211. The cold is then transferred along the second heat conducting plate 212 to the aforementioned other first heat conducting plate 211. The cold is then transferred along the aforementioned other first heat conducting plate 211 to the sidewalls of the other compartment 122. The cold reaches the mounting groove 1221 and is directly transferred to the other compartment 122. With this arrangement, the two first heat conducting plates 211 adhere to the outer walls of the freezer compartment 121 and the outer walls of the other compartment 122, respectively. This increases the contact area and contact effectiveness between the heat conducting member 21 and the outer walls of the freezer compartment 121 and the outer walls of the other compartment 122, thereby improving heat transfer and the efficiency of heat exchange. Furthermore, the second heat conducting plate 212 facilitates heat transfer between the two first heat conducting plates 211. In addition, the provision of the heat conducting member 21 also facilitates filling of materials between the two first heat conducting plates 211 during the production of the refrigerator 100, thereby improving the structural strength of the heat conducting member 21 and enabling the heat conducting member 21 to be used normally for a long time. However, the present invention is not limited thereto. It should be noted that the second heat conducting plate 212 may be provided in plurality, for example, Figure 4 and Figure 9 As shown, two second heat conducting plates 212 are provided. The upper side of the other second heat conducting plate 212 is connected to the right end of the first heat conducting plate 211, and the lower side of the second heat conducting plate 212 is connected to the right end of the other first heat conducting plate 211. The heat conducting member 21 has a barrel-shaped structure with a rectangular cross-section. The heat conducting member 21 has a simple structure and is easy to process.

[0091] According to some embodiments of the present invention, referring to Figure 10The thickness of the thermal insulation part 22 is d1, where d1 satisfies: 20mm≤d1≤30mm. For example, when the thickness of the thermal insulation part 22 is less than 20mm, the thickness of the thermal insulation part 22 is small, and the thermal insulation part 22 has a poor effect in isolating the transmission of cold energy, and cannot effectively isolate the transmission of cold energy. As a result, when the temperature set in other compartments 122 is high, the temperature of other compartments 122 is low, thereby reducing the performance of other compartments 122. When the thickness of the thermal insulation part 22 is greater than 30mm, the thickness of the thermal insulation part 22 is large, which increases the height of the thermal insulation part 22 in the vertical direction, that is, increases the space occupied by the thermal insulation part 22 in the vertical direction, which is inconvenient for the arrangement of other components. Moreover, the material consumption of the thermal insulation part 22 is increased, which increases the production cost of the thermal insulation part 22.

[0092] Therefore, by setting the thickness d1 of the insulation member 22 to satisfy the following conditions: 20 mm ≤ d1 ≤ 30 mm, the thickness of the insulation member 22 is appropriately set. This effectively ensures the cooling effect, thereby preventing the transfer of cooling energy when the temperature set in other compartments 122 is higher, allowing the other compartments 122 to function normally. Furthermore, this reduces the vertical space occupied by the insulation member 22, facilitating the arrangement of other components. Furthermore, this reduces the material usage of the insulation member 22, lowering its production cost.

[0093] According to other embodiments of the present invention, referring to Figure 9 The thickness of the heat conducting member 21 is d2, where d2 satisfies the following: 1.5 mm ≤ d2 ≤ 2.0 mm. For example, when the thickness of the heat conducting member 21 is less than 1.5 mm, the thickness of the heat conducting member 21 is too small, which reduces the structural strength of the heat conducting member 21 and makes the heat conducting member 21 easily deformable, which is not conducive to the normal use of the heat conducting member 21 for a long time. When the thickness of the heat conducting member 21 is greater than 2.0 mm, the thickness of the heat conducting member 21 is too large, which increases the material consumption of the heat conducting member 21 and increases the production cost of the heat conducting member 21.

[0094] Therefore, by setting the thickness d2 of the heat conducting member 21 to satisfy the following relationship: 1.5 mm ≤ d2 ≤ 2.0 mm, the thickness of the heat conducting member 21 is reasonably set, thereby enhancing the structural strength of the heat conducting member 21 and making it less susceptible to deformation, thereby enabling the heat conducting member 21 to be used normally for a long time. In addition, the material consumption of the heat conducting member 21 is reduced, thereby lowering the production cost of the heat conducting member 21.

[0095] According to some further embodiments of the present invention, referring to Figure 9 and Figure 10The thickness of the thermal insulation member 22 is d1, and the thickness of the heat-conducting member 21 is d2, where d1 and d2 respectively satisfy the following conditions: 20 mm ≤ d1 ≤ 30 mm, and 1.5 mm ≤ d2 ≤ 2.0 mm. Thus, the thickness of the thermal insulation member 22 and the thickness of the heat-conducting member 21 are reasonably set, effectively ensuring the insulation effect of the cold. Thus, when the temperature set in other compartments 122 is higher, the transfer of cold is avoided, allowing the other compartments 122 to be used normally. Furthermore, the space occupied by the thermal insulation member 22 in the vertical direction is reduced, facilitating the arrangement of other components. Furthermore, the structural strength of the heat-conducting member 21 is enhanced, making it less prone to deformation, allowing it to be used normally for a long time. Furthermore, the material usage of the thermal insulation member 22 and the heat-conducting member 21 is reduced, reducing the production costs of the thermal insulation member 22 and the heat-conducting member 21, thereby reducing the production cost of the refrigerator 100.

[0096] Optionally, the heat conducting member 21 is aluminum, the insulation member 22 is foam or polyethylene foam, and the cover plate 23 is polystyrene foam (EPS) or polystyrene (PS). Aluminum offers excellent thermal conductivity and ductility, improving its thermal conductivity and facilitating its processing. Foam or polyethylene foam provides lightweight, thermal insulation, and corrosion resistance, providing excellent insulation and extending its service life. Polyethylene foam offers lightweight, soft, corrosion-resistant, heat-insulating, and easy processing, providing excellent insulation and extending its service life, improving its production efficiency. When the cover plate 23 is polystyrene foam or PS, heat exchange between the other compartments 122 and the freezer compartment 121 is not affected. This is not limiting.

[0097] According to the refrigerator 100 of the second embodiment of the present invention, Figure 1 、 Figure 3 and Figure 4 The cabinet 1 includes a cabinet body 1 and a door body. The cabinet body 1 is formed with an opening 11. The door body is provided at the opening 11 and is used to open and close the opening 11. The door body and the cabinet body 1 together define a receiving chamber 12. The receiving chamber 12 includes a freezing chamber 121 and other compartments 122, wherein the freezing chamber 121 and the other compartments 122 are separated by a partition.

[0098] For example, in Figure 1 、 Figure 3 and Figure 4In the example, the cabinet 1 is the main structural part of the refrigerator 100. The cabinet 1 is formed with an opening 11, which is suitable for storing and accessing food and other items. The door body is provided at the opening 11 of the cabinet 1, and the opening 11 can be opened and closed. The accommodating cavity 12 is used to place items (such as food, drinks, and facial masks, etc.). Different temperatures are set in the freezer compartment 121 and the other compartments 122, which can be used to place items with different temperature requirements. The freezer compartment 121 and the other compartments 122 are spaced apart, and the freezer compartment 121 and the other compartments 122 are adjacent, and the distance between the freezer compartment 121 and the other compartments 122 is small. However, it is not limited to this. For example, when the distance between the freezer compartment 121 and the other compartments 122 is large, other chambers (such as a variable temperature chamber) may also be formed.

[0099] According to some embodiments of the present invention, referring to FIG. Figure 3 and Figure 4 Refrigerator 100 further includes a heat conductor 21, which is disposed between freezer compartment 121 and other compartments 122 and is used for heat conduction between freezer compartment 121 and other compartments 122. For example, heat conductor 21 directly contacts the sidewalls of freezer compartment 121 and other compartments 122 for heat conduction. This arrangement allows the heat conductor 21 to transfer cooling energy from freezer compartment 121 to other compartments 122, thereby improving the cooling efficiency of other compartments 122, reducing energy consumption, and enhancing the user experience.

[0100] Other structures and operations of the refrigerator 100 according to the embodiment of the present invention are known to those skilled in the art and will not be described in detail here.

[0101] In the description of the present invention, it should be understood that the terms "center", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like to indicate orientations or positional relationships 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, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as a limitation on the present invention.

[0102] Throughout this specification, reference to terms such as "one embodiment," "some embodiments," "illustrative embodiments," "example," "specific example," or "some examples" means that a specific feature, structure, material, or characteristic described in conjunction with the embodiment or example is included in at least one embodiment or example of the present invention. In this specification, illustrative expressions of the above terms do not necessarily refer to the same embodiment or example.

[0103] Although the embodiments of the present invention have been shown and described, those skilled in the art will appreciate that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and purpose of the present invention, and that the scope of the present invention is defined by the claims and their equivalents.

Claims

1. A refrigerator comprising: a cabinet body, wherein the cabinet body is formed with an opening; A door body is provided at the opening and is used to open and close the opening. The door body and the cabinet body jointly define an accommodating cavity, and the accommodating cavity includes: a freezer compartment and at least one other compartment, wherein a partition is provided between the freezer compartment and the other compartment; Characterized in that the refrigerator further comprises: a regulating assembly, at least a portion of which is located between the freezing chamber and the other compartments, for regulating heat exchange between the freezing chamber and the other compartments, the regulating assembly comprising: a heat conducting member, the heat conducting member being arranged between the freezing chamber and the other compartments; a heat-insulating element, the heat-insulating element being located on a side of the heat-conducting element away from the freezing chamber, the heat-insulating element being movable between a first position and a second position, When the heat-insulating member is in the first position, the heat-insulating member completely covers the heat-conducting member to block the heat exchange between the freezer compartment and the other compartments; when the heat-insulating member is in the second position, the heat-insulating member and the heat-conducting member do not overlap along the arrangement direction of the freezer compartment and the other compartments, so as to fully open the heat exchange between the freezer compartment and the other compartments.

2. The refrigerator according to claim 1, wherein: An installation groove is formed on the bottom wall of the other compartment, and the heat-insulating component is arranged in the installation groove.

3. The refrigerator according to claim 2, characterized in that The adjustment component also includes: a cover plate, the cover plate being arranged on a side of the heat-insulating element away from the heat-conducting element, and having a guide hole formed on the cover plate; The thermal insulation component comprises: a body, wherein a bottom surface of the body contacts a bottom wall of the mounting groove; A guide structure, one end of which is connected to a side of the body facing the cover plate, and the other end of which extends into the guide hole.

4. The refrigerator according to claim 3, characterized in that A surface of one side of the cover plate away from the heat-insulating component is flush with the bottom wall of the other compartment.

5. The refrigerator according to claim 3, characterized in that At least one heat dissipation hole is formed on a portion of the cover plate opposite to the heat conducting member, and the heat dissipation hole penetrates through both side surfaces of the cover plate along the thickness direction of the cover plate.

6. The refrigerator according to claim 5, characterized in that There are multiple heat dissipation holes, and the multiple heat dissipation holes constitute multiple heat dissipation hole groups. The multiple heat dissipation hole groups are distributed on both sides of the guide hole, and the multiple heat dissipation holes in each heat dissipation hole group are arranged at intervals along the extension direction of the guide hole.

7. The refrigerator according to claim 5, characterized in that A relief portion is formed on one side of the heat-insulating component facing the heat-conducting component; The adjustment component also includes: A fan is provided on the bottom wall of the mounting groove, the fan is located between the heat conducting member and the heat dissipation hole, and when the heat insulation member moves to the first position, the fan is located in the avoidance portion.

8. The refrigerator according to claim 1, wherein The heat conducting member comprises: Two first heat conducting plates, the two first heat conducting plates being opposite to each other along the arrangement direction of the freezing chamber and the other compartments, and the two first heat conducting plates being respectively in contact with the outer wall surface of the freezing chamber and the outer wall surface of the other compartments; A second heat conducting plate, wherein two sides of the second heat conducting plate are respectively connected to the same end of the two first heat conducting plates.

9. The refrigerator according to any one of claims 1 to 8, characterized in that: The thickness of the thermal insulation member is d1, wherein d1 satisfies: 20 mm ≤ d1 ≤ 30 mm; and / or The thickness of the heat conducting member is d2, wherein d2 satisfies: 1.5 mm ≤ d2 ≤ 2.0 mm.

10. A refrigerator comprising: a cabinet body, wherein the cabinet body is formed with an opening; A door body is provided at the opening and is used to open and close the opening. The door body and the cabinet body jointly define an accommodating cavity, and the accommodating cavity includes: A freezer compartment and another compartment, wherein there is a partition between the freezer compartment and the other compartment; Characterized in that the refrigerator further comprises: A heat conducting member is provided between the freezing chamber and the other compartments and is used for heat conduction between the freezing chamber and the other compartments.