Refrigerator structure and refrigerator thereof

By setting a guide part inside the refrigerator and using the heat conduction part to conduct heat, the condensation problem caused by the temperature difference in the freezer chamber is solved, ensuring the normal switching function of the refrigerator door.

CN222925814UActive Publication Date: 2025-05-30TOSHIBA HA MANUFACTURING (NANHAI) CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202421815079.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-29
Publication Date
2025-05-30
Estimated Expiration
2034-07-29

AI Technical Summary

Technical Problem

In existing refrigerators, the temperature difference between the internal and external freezer is large, resulting in condensation on the guide seat, affecting the opening and closing effect of the refrigerator door.

Method used

A guide part is provided inside the refrigerator, and heat is transmitted from the heat source to the guide part by using the heat conduction part. Heat is radiated to the guide part through the heat radiation end, ensuring that the temperature of the guide part is higher than the dew point and freezing point, and preventing condensation and icing.

Benefits of technology

Effectively prevent condensation and icing on the guide and flip beams, ensuring the normal switching function of the refrigerator door.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222925814U_ABST
    Figure CN222925814U_ABST
Patent Text Reader

Abstract

The utility model belongs to the field of household appliances, and discloses a refrigerator structure and a refrigerator thereof. The refrigerator structure comprises a main body part and a heat conduction part, the heat conduction part is provided with a heat taking end and a heat radiation end, the heat taking end is used for being connected to the heat source body in a heat conduction mode, and the heat radiation end is arranged on the main body part, extends to be opposite to the guide part and is used for radiating conducted heat to the guide part. According to the refrigerator structure provided by the utility model, the refrigerator structure comprises the heat conduction part, the heat extraction section is connected to the heat source in the refrigerator in a heat conduction manner, heat generated by the heat source body is guided to the heat radiation section, and the heat radiation section and the guide part are oppositely arranged, so that the heat radiation section is not prone to falling off. And the heat is transferred to the guide part to heat the guide part, so that the temperature of the guide part is higher than a dew point and a freezing point, and the guide part and the overturning beam are prevented from being condensed and frozen to influence the opening and closing of a door of the refrigerator.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of household appliances, in particular to a refrigerator structure and a refrigerator thereof. Background Art

[0002] At present, multi-door refrigerators are becoming more and more popular among domestic and foreign consumers. Its product structure mainly includes a box body, a double-freezing door body, and a double-refrigerating door body. In order to ensure the sealing performance between the double door bodies, a turning beam is currently added at the refrigerating door body, and a guide seat is added on the inner liner. However, after adding a freezing turning beam and a guide seat at the freezing chamber, due to the large temperature difference between the inside and outside of the freezing chamber, condensation will occur on the turning beam and the guide seat, resulting in the failure of the product to open and close the door. To sum up, condensation is likely to occur on the guide seat in the prior art. Summary of the Utility Model

[0003] The main purpose of the utility model is to provide a refrigerator structure and a refrigerator thereof, aiming to solve the problem that condensation is likely to occur on the guide seat in the prior art.

[0004] To achieve the above purpose, the utility model provides a refrigerator structure for a refrigerator. A heat source body is arranged inside the refrigerator, and a guiding part is spaced from the heat source body. The guiding part is used for cooperating with a matching part arranged on a turning beam of the refrigerator. The refrigerator structure includes:

[0005] A main body part; and

[0006] A heat conducting part, which is formed with a heat taking end and a heat radiation end. The heat taking end is used for thermally connecting to the heat source body. The heat radiation end is arranged on the main body part and extends to be oppositely arranged with the guiding part, and is used for radiating the conducted heat to the guiding part.

[0007] Optionally, the refrigerator structure includes a guide seat structure, and the guide seat structure includes a guide seat;

[0008] The main body part includes the guide seat, the guiding part is formed on the guide seat, and the heat radiation end is arranged on the guide seat.

[0009] Optionally, the guide seat has opposite first and second end faces, and the guiding part is arranged on the first end face;

[0010] An installation groove is arranged on the second end face, and at least part of the heat radiation end is arranged in the installation groove, and the heat taking end extends out of the installation groove.

[0011] Optionally, the installation groove has a bottom wall opposite to its groove opening, and at least part of the heat radiation end is attached to the bottom wall.

[0012] Optionally, a first buckle portion is formed in the installation groove, and the first buckle portion is formed with a first clamping surface facing the guiding portion;

[0013] The heat conducting portion is arranged in a plate shape so that the tail of the heat radiation end can be bent to form a folded edge portion extending along the depth direction of the installation groove, and the end surface of the folded edge portion is used for abutting and limiting against the first clamping surface.

[0014] Optionally, a connecting arm protrudes at the second end surface. The connecting arm has a second side surface connected to the second end surface, and a second buckle portion is arranged on the second side surface. The second buckle portion is formed with a second clamping surface facing the guiding portion, and is used for abutting and limiting against a step surface arranged on the refrigerator liner.

[0015] Optionally, a connecting hole is arranged on the guiding seat for a screw member to pass through and be fixed on the refrigerator inner liner.

[0016] Optionally, the heat conducting portion is arranged in a plate shape so that the heat conducting portion can be locally bent at the heat taking end to form a first accommodating groove for attaching and accommodating a heat source body arranged in the refrigerator.

[0017] Optionally, the refrigerator structure includes a box body structure, and the box body structure includes a box body inner liner;

[0018] The main body portion includes the box body inner liner, and the heat radiation end is arranged on the box body inner liner.

[0019] Optionally, the refrigerator structure further includes a box body structure and a guiding seat structure. The box body structure includes a box body inner liner, the guiding seat structure includes a guiding seat, a heat source body is arranged in the box body structure, the guiding seat is arranged on the box body inner liner, and the guiding portion is formed on the guiding seat;

[0020] The heat taking end extends into the box body structure and is thermally connected to the heat source body.

[0021] Optionally, a receiving groove with a notch facing the guiding seat is formed on the box body inner liner;

[0022] Both the heat source body and the heat taking end are arranged in the receiving groove.

[0023] Optionally, the box body inner liner includes an inner liner plate and an outer shell plate. The receiving groove is formed in the outer shell plate, and the guiding seat is arranged on the inner liner plate;

[0024] The end of the inner liner plate extends into the receiving groove and abuts between the side wall of the receiving groove and the heat taking end of the heat conducting portion.

[0025] Optionally, the groove sidewall of the accommodation groove includes a first groove sidewall and a second groove sidewall that are arranged opposite to each other;

[0026] The portion of the inner liner plate disposed in the accommodating groove is bent and extended so as to abut partially against the first groove side wall and partially against the second groove side wall.

[0027] Optionally, the portion of the inner liner plate disposed in the accommodating groove is bent and extended to form a second accommodating groove;

[0028] At least a portion of the heat extraction end of the heat conducting portion is accommodated in the second accommodating groove.

[0029] Optionally, the portion of the inner liner plate disposed in the receiving groove is bent and extended to form a step surface;

[0030] The guide seat partially extends into the accommodating groove, and a second buckle portion is provided on the guide seat. The second buckle portion is formed with a second holding surface facing the guide portion, and the second holding surface abuts against the step surface to limit position.

[0031] Optionally, the box structure includes a shell plate, the shell plate includes a first plate segment extending along the thickness direction of the box structure, the first plate segment is bent away from the guide seat to form a first bent plate segment, and an end of the first bent plate segment is bent toward the guide seat to form a second bent plate segment, and the first bent plate segment and the second bent plate segment are arranged opposite to each other;

[0032] The accommodating groove is defined between the first bent plate segment and the second bent plate segment.

[0033] Optionally, a bending convex portion is formed at a connection between the first plate segment and the first bent plate segment, and the bending convex portion is convexly arranged toward the heat source body to abut against the heat conducting portion.

[0034] Optionally, the guide seat is provided with a connecting hole, the box structure comprises an inner liner plate and an outer shell plate, and the inner liner plate is provided with a through hole;

[0035] An embedded part is provided between the inner liner plate and the outer shell plate, and a threaded hole corresponding to the through hole is formed on the embedded part;

[0036] The refrigerator structure also includes a screw connection member, which is inserted into the connecting hole and the through hole and is threadedly installed in the threaded hole.

[0037] Optionally, the heat conducting part includes a heat conducting plate or a heat conducting layer.

[0038] The utility model also provides a refrigerator, comprising the refrigerator structure according to any one of the above descriptions.

[0039] The present utility model provides a refrigerator structure. Since a flipping beam is provided on the refrigerator, in order to cooperate with the flipping beam, a guiding portion is provided inside the refrigerator, such that the flipping beam can move along the guiding portion. Among them, the refrigerator structure includes the heat conducting portion, and the heat taking section is thermally connected to the heat source inside the refrigerator, guiding the heat generated by the heat source body to the heat radiation section. Since the heat radiation section and the guiding portion are oppositely arranged, the heat is further transferred to the guiding portion, heating the guiding portion, ensuring that the temperature on the guiding portion is higher than the dew point and the freezing point, preventing condensation and icing on the guiding portion and the flipping beam, and affecting the opening and closing of the refrigerator door. Description of the Drawings

[0040] Figure 1 is a front cross-sectional structural schematic diagram of the refrigerator structure provided by the embodiment solution of the present utility model;

[0041] Figure 2 is Figure 1 the front cross-sectional structural schematic diagram of the refrigerator structure in ;

[0042] Figure 3 is Figure 1 the front cross-sectional structural schematic diagram of the refrigerator structure in with different depths;

[0043] Figure 4 is a front structural schematic diagram of the refrigerator provided by the embodiment solution of the present utility model.

[0044] Explanation of the Reference Numerals in the Drawings:

[0045] 100, refrigerator structure; 200, heat source body; 300, guiding portion; 1, main body portion; 11, guiding seat; 111, first buckle portion; 112, connecting arm; 1121, second buckle portion; 12, inner liner of the refrigerator; 121, inner liner plate; 1211, second accommodation groove; 1212, stepped surface; 122, outer shell plate; 122a, first plate segment; 122b, first bent plate segment; 122c, second bent plate segment; 1221, first groove side wall; 1222, second groove side wall; 1223, bent convex portion; 123, embedded part; 2, heat conducting portion; 21, folded edge portion; 22, first accommodation groove; 3, screw connector.

[0046] The realization, functional features and advantages of the purpose of the present utility model will be further described with reference to the embodiments and the accompanying drawings. Detailed Embodiments

[0047] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0048] It should be noted that if there are directional indications (such as up, down, left, right, front, back,...) involved in the embodiments of the present utility model, the directional indications are only used to explain the relative position relationship, movement conditions, etc. between components in a specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indications will also change accordingly.

[0049] In addition, if there are descriptions involving "first", "second", etc. in the embodiments of the present utility model, the descriptions of "first", "second", etc. are only for descriptive purposes and cannot be understood as indicating or implying their relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include at least one such feature. In addition, the meaning of "and / or" appearing throughout the text includes three parallel solutions. Taking "A and / or B" as an example, it includes solution A, solution B, or a solution where A and B are satisfied simultaneously. In addition, the technical solutions between the various embodiments can be combined with each other, but it must be based on the ability of those of ordinary skill in the art to implement. When the combination of technical solutions results in contradictions or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the protection scope required by the present utility model.

[0050] At present, multi-door refrigerators are becoming more and more popular among domestic and foreign consumers. Its product structure mainly includes a box body, a double-freezing door body, and a double-refrigerating door body. In order to ensure the sealing performance between the double door bodies, a flip beam is currently added at the refrigerating door body, and a guide seat is added on the inner liner. However, after adding a freezing flip beam and a guide seat at the freezing chamber, due to the large temperature difference between the inside and outside of the freezing chamber, condensation will occur on the flip beam and the guide seat, resulting in the failure of the product to open and close the door. In summary, condensation is likely to occur on the guide seat in the prior art.

[0051] Please refer to Figure 1, the present utility model provides a refrigerator structure 100 for a refrigerator. Inside the refrigerator, there is a heat source body 200 and a guiding portion 300 spaced from the heat source body 200. The guiding portion 300 is used to cooperate with a cooperating portion provided on a turning beam of the refrigerator. The refrigerator structure 100 includes a main body portion 1 and a heat conducting portion 2; the heat conducting portion 2 is formed with a heat taking end and a heat radiation end. The heat taking end is used for thermally connecting to the heat source body 200, and the heat radiation end is provided on the main body portion 1 and extends to be oppositely arranged with the guiding portion 300 for radiating the conducted heat to the guiding portion 300.

[0052] In the refrigerator structure 100 provided by the present utility model, since a turning beam is provided on the refrigerator, in order to cooperate with the turning beam, a guiding portion 300 is provided inside the refrigerator, such that the turning beam can move along the guiding portion 300. Among them, the refrigerator structure 100 includes the heat conducting portion 2. The heat taking section is thermally connected to the heat source 200 inside the refrigerator, guiding the heat generated by the heat source body 200 to the heat radiation section. Since the heat radiation section is oppositely arranged with the guiding portion 300, the heat is further transferred to the guiding portion 300 to heat the guiding portion 300, ensuring that the temperature on the guiding portion 300 is higher than the dew point and the freezing point, preventing condensation and icing on the guiding portion 300 and the turning beam, which may affect the opening and closing of the refrigerator door.

[0053] It should be noted that the heat conducting portion 2 is provided on the main body portion 1. The main body portion 1 has various implementation manners. The main body portion is one of the structures inside the refrigerator, as long as it can be used to set the heat conducting portion 2 and can make the heat radiation section oppositely arranged with the guiding portion 300.

[0054] Please refer to Figure 2 , in the first embodiment provided by the present utility model, the refrigerator structure 100 includes a guiding seat structure. The guiding seat structure includes a guiding seat 11; the main body portion 1 includes the guiding seat 11. The guiding portion 300 is formed on the guiding seat 11, and the heat radiation end is provided on the guiding seat 11. In this embodiment, the main body portion 1 includes the guiding seat 11, and the guiding portion 300 is formed on the guiding seat 11, such that the guiding seat 11 can cooperate with the turning beam to realize the rotation of the turning beam. Among them, the heat radiation section of the heat conducting portion 2 is provided on the guiding seat 11, transferring the heat generated on the heat source body 200 to the guiding seat 11, such that the temperature of the guiding portion on the guiding seat 11 is higher than the dew point and the freezing point, avoiding condensation and icing on the guiding seat 11, which may cause the cooperation between the guiding seat 11 and the turning beam to fail.

[0055] Further, the guiding seat 11 has opposite first and second end faces, and the guiding portion 300 is disposed on the first end face; an installation groove is provided on the second end face, at least part of the heat radiation end is disposed in the installation groove, and the heat extraction end extends out of the installation groove. In this embodiment, at least part of the heat radiation section is disposed in the installation groove, which is convenient for installing the heat conduction portion 2, reduces the space occupied by the heat conduction portion 2, and at the same time, can reduce the end face thickness between the first end face and the second end face, facilitating heat transfer to the first end face, and further facilitating heating of the guiding portion 300 to ensure that no ice dew is generated on the guiding portion 300.

[0056] Furthermore, the installation groove has a bottom wall opposite to its notch, and at least part of the heat radiation end is in contact with the bottom wall. In this embodiment, part of the heat radiation end is attached to the bottom wall surface, so that the direct contact area between the heat radiation end and the guiding seat 11 is larger, facilitating heat transfer and facilitating heating of the guiding seat 11.

[0057] It should be noted that in order to ensure the stable connection between the heat conduction portion 2 and the guiding seat 11, a fixing structure needs to be provided between the heat conduction portion 2 and the guiding seat 11 to ensure that the heat conduction portion 2 can be stably installed in the guiding seat 11. Among them, there are various implementation manners of the fixing structure. For example, the heat radiation end of the heat conduction portion 2 is directly fixed in the installation groove by gluing.

[0058] Specifically, a first buckle portion 111 is formed in the installation groove, and the first buckle portion 111 forms a first clamping surface facing the guiding portion; the heat conduction portion 2 is arranged in a plate shape so that the tail of the heat radiation end can be bent to form a folded edge portion 21 extending along the depth direction of the installation groove, and the end face of the folded edge portion 21 is used to abut against and limit the first clamping surface. In this embodiment, the heat conduction portion 2 is arranged in a plate shape, so that the heat radiation end can be closely attached to the bottom wall surface of the installation groove, the tail of the heat radiation end is bent to form the folded edge portion 21, and the folded edge portion 21 is pressed against the first clamping surface, so that one end of the heat conduction portion 2 can be clamped in the installation groove, and the structure is simple and reliable.

[0059] In addition, please refer to Figure 3, a connecting arm 112 protrudes from the second end face. The connecting arm 112 has a second side face connected to the second end face, and a second buckle portion 1121 is provided on the second side face. The second buckle portion 1121 forms a second clamping surface facing the guiding portion 300 for abutting and limiting against a stepped surface provided on the inner liner of the refrigerator. In this embodiment, in order to facilitate the installation of the guiding seat 1 onto the refrigerator, the connecting arm 112 protrudes from the second end face of the guiding seat, and the second buckle portion 1121 is provided on the connecting arm 112, which can facilitate hanging the guiding seat on the inner liner of the refrigerator in the direction of the second end face. The structure is simple and reliable, and it is convenient to install the guiding seat 1.

[0060] On the other hand, a connecting hole is provided on the guiding seat 1 for a screw member to pass through and be fixed to the inner liner of the refrigerator. In this embodiment, the guiding seat 1 is used to cooperate with the flipping beam, and it is necessary to install the guiding seat onto the inner liner of the refrigerator. Among them, the guiding seat 1 is bolted to the inner liner of the refrigerator through the connecting hole, and the connection method is stable, improving the firmness of the connection between the guiding seat 1 and the inner liner.

[0061] It should be noted that in this embodiment, the connecting hole is a counterbore to facilitate hiding the bolt head of the bolt member.

[0062] On the other hand, the heat conducting portion 2 is arranged in a plate shape so that the heat conducting portion 2 can be locally bent at the heat taking end to form a first accommodating groove 22 for attaching and accommodating a heat source body arranged in the refrigerator. In this embodiment, in order to facilitate the fitting of the heat conducting portion 2 and the heat source body, the first accommodating groove 22 is formed at the heat taking end to facilitate semi-surrounding the heat source body, increasing the heat receiving area and enhancing the heat transfer efficiency.

[0063] It should be noted that in this embodiment, the guiding portion 300 is arranged on the guiding seat 11. The guiding portion 300 has various implementation manners, such as a guiding groove. In this embodiment, the guiding portion 300 is a guiding protrusion.

[0064] In another embodiment provided by the present utility model, the refrigerator structure 100 includes a box body structure, and the box body structure includes a box body inner liner 12; the main body portion 1 includes the box body inner liner 12, and the heat radiation end is arranged on the box body inner liner 12. In another embodiment provided by the present utility model, the box body inner liner 12 forms the main body portion 1, the heat conducting portion 2 is installed on the box body inner liner 12, guiding the heat inside the refrigerator to the box body inner liner 12, and corresponding to the guiding portion, so that the guiding portion 300 can be directly heated by the box body inner liner 12, which can avoid the switch failure caused by condensation and icing between the guiding portion 300 and the flipping beam.

[0065] In this embodiment, the heat conducting part 2 is directly installed on the inner liner 12 of the box body. There are various installation methods for the heat conducting part 2, such as bonding, snap fastening, etc., and no specific limitations are made here.

[0066] It should be noted that there are various implementation manners for the heat conducting part 2, as long as the heat conduction and transfer can be realized. Metal materials such as copper can be used. In this embodiment, the material of the heat conducting part 2 includes aluminum, which has a low cost, good thermal conductivity, and excellent comprehensive performance.

[0067] In the embodiment provided by the present utility model, the refrigerator structure 100 further includes a box body structure and a guide seat structure. The box body structure includes an inner liner 12 of the box body, and the guide seat structure includes a guide seat 11. A heat source body 200 is provided in the box body structure. The guide seat 11 is provided on the inner liner 12 of the box body, and the guiding part 300 is formed on the guide seat 11; the heat absorption end extends into the box body structure and is thermally connected to the heat source body 200. In this embodiment, the refrigerator structure 100 includes both the inner liner 12 of the box body and the guide seat 11 at the same time. Through the heat conducting part 2, the heat on the heat source body 200 in the box body structure is guided to the guiding part 300 on the guide seat 11, which is convenient for the cooperative use between the guide seat 11 and the turning beam, and prevents condensation from occurring on the guide seat 11.

[0068] Further, a receiving groove with a notch facing the guide seat 11 is formed on the inner liner 12 of the box body; both the heat source body 200 and the heat absorption end are provided in the receiving groove. In this embodiment, through the receiving groove, the heat source body 200 and the heat absorption end are provided in the receiving groove, which is convenient for hiding the heat source body 200 and the heat absorption end, avoiding the structure being exposed outside the inner liner 12 of the box body, and facilitating the safety and aesthetics of the structure inside the refrigerator.

[0069] Specifically, the inner liner 12 of the box body includes an inner liner plate 121 and an outer shell plate 122. The receiving groove is formed on the outer shell plate 122, and the guide seat 11 is provided on the inner liner plate 121; the end of the inner liner plate 121 extends into the receiving groove and abuts between the groove side wall of the receiving groove and the heat absorption end of the heat conducting part 2. In this embodiment, through the inner liner plate 121 and the outer shell plate 122, an enclosing structure is formed. The heat source body 200 and the heat absorption end are provided in the receiving groove of the outer shell plate 122, and the heat absorption end is limited in the receiving groove through the inner liner plate 121, ensuring the structural stability between the inner liner 12 of the box body and the heat conducting part 2. The heat conducting part 2 is covered in the receiving groove through the mutual intersection of multiple plate members, avoiding the detachment of the heat absorption end of the heat conducting part 2.

[0070] Further, the groove side walls of the accommodating groove include a first groove side wall 1221 and a second groove side wall 1222 which are oppositely arranged; the part of the inner liner plate 121 arranged in the accommodating groove is bent and extended so as to partially abut against the first groove side wall 1221 and partially abut against the second groove side wall 1222. In this embodiment, the bent part of the inner liner plate 121 abuts against the first groove side wall 1221 and the second groove side wall 1222, so that one end of the inner liner plate 121 can be fixed in the accommodating groove by the outer shell plate 122, preventing it from falling off and ensuring the stability of the connection.

[0071] In addition, the part of the inner liner plate 121 arranged in the accommodating groove is bent and extended to form a second accommodating groove 1211; at least part of the heat-taking end of the heat-conducting part 2 is accommodated in the second accommodating groove. In this embodiment, the heat-taking end of the heat-conducting part 2 is accommodated through the second accommodating groove 1211, facilitating the installation and cooperation between the inner liner plate 121 and the heat-conducting part 2, and preventing interference in the positions of the two in the accommodating groove, which may cause deformation and inconvenience in installation.

[0072] Similarly, the part of the inner liner plate 121 arranged in the accommodating groove is bent and extended to form a step surface 1212; part of the guiding seat 11 extends into the accommodating groove, and a second buckle part 1121 is arranged on the guiding seat 11. The second buckle part 1121 forms a second clamping surface facing the guiding part, and the second clamping surface abuts against and limits the step surface 1212. In this embodiment, the inner liner plate 121 and the guiding seat 11 are buckled and connected through the protruding buckle part and the step surface, facilitating the mutual position fixation between the part of the inner liner plate 121 arranged in the accommodating groove and the part of the guiding seat 11 extending into the accommodating groove to form positioning.

[0073] In addition, the box body structure includes an outer shell plate 122. The outer shell plate 122 includes a first plate segment 122a extending along the thickness direction of the box body structure, a first bent plate segment 122b bent from the first plate segment 122a away from the guiding seat 11, and a second bent plate segment 122c bent from the end of the first bent plate segment 122b towards the guiding seat 11. The first bent plate segment 122b and the second bent plate segment 122c are oppositely arranged; the accommodating groove is defined between the first bent plate segment 122b and the second bent plate segment 122c. In this embodiment, by bending the outer shell plate 122, the accommodating groove is formed on the outer shell plate 122. The forming method is simple, and an elastic structure can be formed between the bent plate segments, facilitating the clamping of the heat source body 200 and the heat-taking end by the accommodating groove.

[0074] Furthermore, a bent convex portion 1223 is formed at the connection between the first plate segment 122a and the first bent plate segment 122b, and the bent convex portion 1223 is convexly arranged toward the heat source body 200 to abut against the heat conducting portion 2. In this embodiment, since the heat source body 200 and the heat extraction end are in the receiving groove, a convex portion is formed on the side wall of the receiving groove by the bent convex portion 1223 to abut against the heat conducting portion 2, so that the heat conducting portion 2 cannot be directly separated from the receiving groove, thereby improving the stability of the connection between the heat conducting portion 2 and the receiving groove.

[0075] On the other hand, the guide seat 11 is provided with a connecting hole, the box structure includes an inner liner plate 121 and an outer shell plate 122, and the inner liner plate 121 is provided with a through hole; an embedded part 123 is provided between the inner liner plate 121 and the outer shell plate 122, and a threaded hole corresponding to the through hole is formed on the embedded part 123; the refrigerator structure 100 also includes a screw connection 3, the screw connection 3 is passed through the connecting hole and the through hole, and is threadedly installed in the threaded hole. In this embodiment, the guide seat 11 is installed on the inner liner plate 121 by bolting the screw connection 3, and the structure is simple and reliable, and it is easy to set up.

[0076] In the embodiment provided by the present invention, the heat conducting part 2 includes a heat conducting plate or a heat conducting layer, so that the heat conducting part 2 can transfer heat.

[0077] It should be noted that, in this embodiment, the heat source 200 has a variety of implementations, as long as it can generate heat. Specifically, the heat source 200 is an anti-condensation tube.

[0078] See also Figure 4 Based on the above-mentioned refrigerator structure, the utility model also provides a refrigerator, including the above-mentioned refrigerator structure 100, that is, it has all the technical features of the above-mentioned refrigerator structure 100, and therefore, it also has the technical effects brought by all the above-mentioned technical features, which will not be described one by one here.

[0079] In the refrigerator provided by the utility model, since a flip beam is provided on the refrigerator, a guide portion 300 is provided inside the refrigerator to cooperate with the flip beam, so that the flip beam can move along the guide portion 300, wherein the refrigerator structure 100 includes the heat conduction portion 2, and the heat extraction section is thermally connected to the heat source 200 in the refrigerator, and the heat generated by the heat source 200 is guided to the heat radiation section. Since the heat radiation section and the guide portion 300 are arranged relative to each other, the heat is transferred to the guide portion 300, and the guide portion 300 is heated to ensure that the temperature on the guide portion 300 is higher than the dew point and the freezing point, so as to prevent condensation and ice on the guide portion 300 and the flip beam, which will affect the opening and closing of the refrigerator door.

[0080] The above are only the preferred embodiments of the present utility model, and do not limit the patent scope of the present utility model accordingly. Any equivalent structure or equivalent process transformation made by using the content of the specification and drawings of the present utility model, or directly or indirectly applied in other related technical fields, shall be equally included in the patent protection scope of the present utility model.

Claims

1. A refrigerator structure, used for a refrigerator, wherein a heat source body and a guide portion spaced apart from the heat source body are provided inside the refrigerator, wherein the guide portion is used to cooperate with a matching portion provided on a turning beam of the refrigerator, wherein: The refrigerator structure comprises: a main body; and, The heat conducting part is formed with a heat taking end and a heat radiating end. The heat taking end is used for heat conduction connection to the heat source body. The heat radiating end is arranged on the main body and extends to be arranged opposite to the guide part to radiate the conducted heat to the guide part.

2. The refrigerator structure according to claim 1, characterized in that: The refrigerator structure includes a guide seat structure, and the guide seat structure includes a guide seat; The main body includes the guide seat, the guide portion is formed on the guide seat, and the heat radiation end is arranged on the guide seat.

3. The refrigerator structure according to claim 2, characterized in that: The guide seat has a first end surface and a second end surface opposite to each other, and the guide portion is arranged on the first end surface; A mounting groove is provided on the second end surface, the heat radiation end is at least partially provided in the mounting groove, and the heat extraction end extends out of the mounting groove.

4. The refrigerator structure according to claim 3, characterized in that: The installation slot has a bottom wall opposite to the slot opening, and the heat radiation end is at least partially attached to the bottom wall.

5. The refrigerator structure according to claim 3, characterized in that: A first buckle portion is formed in the mounting groove, and the first buckle portion is formed with a first holding surface facing the guide portion; The heat conducting portion is plate-shaped so that the tail of the heat radiating end can be bent to form a folded edge portion extending along the groove depth direction of the installation groove, and the end surface of the folded edge portion is used to abut against the first holding surface for limiting position.

6. The refrigerator structure according to claim 3, characterized in that: A connecting arm is protruding from the second end surface, and the connecting arm has a second side surface connected to the second end surface. A second buckle portion is provided on the second side surface, and the second buckle portion is formed with a second holding surface facing the guide portion for abutting and limiting against a step surface provided on the box body of the refrigerator.

7. The refrigerator structure according to claim 2, characterized in that: The guide seat is provided with a connecting hole for the threaded member to pass through and be fixed on the inner container of the refrigerator.

8. The refrigerator structure according to claim 2, characterized in that: The heat conducting part is arranged in a plate shape, so that the heat conducting part can be partially bent at the heat extraction end to form a first accommodating groove for adhering and accommodating a heat source body arranged in the refrigerator.

9. The refrigerator structure according to claim 1, characterized in that: The refrigerator structure comprises a box structure, and the box structure comprises a box inner liner; The main body includes the box body, and the heat radiation end is arranged in the box body.

10. The refrigerator structure according to claim 1, characterized in that: The refrigerator structure further comprises a box structure and a guide seat structure, wherein the box structure comprises a box inner shell, the guide seat structure comprises a guide seat, a heat source is arranged in the box structure, the guide seat is arranged on the box inner shell, and the guide portion is formed on the guide seat; The heat extraction end extends into the box structure and is thermally connected to the heat source.

11. The refrigerator structure according to claim 10, characterized in that: A receiving groove with a notch facing the guide seat is formed on the inner shell of the box body; The heat source and the heat extraction end are both arranged in the accommodating groove.

12. The refrigerator structure according to claim 11, characterized in that: The inner liner of the box body comprises an inner liner plate and an outer shell plate, the receiving groove is formed on the outer shell plate, and the guide seat is arranged on the inner liner plate; The end of the inner tank plate extends into the accommodating groove and abuts between the groove side wall of the accommodating groove and the heat extraction end of the heat conducting part.

13. The refrigerator structure according to claim 12, characterized in that: The groove sidewall of the accommodation groove comprises a first groove sidewall and a second groove sidewall which are arranged opposite to each other; The portion of the inner liner plate disposed in the accommodating groove is bent and extended so as to abut partially against the first groove side wall and partially against the second groove side wall.

14. The refrigerator structure according to claim 12, characterized in that: The portion of the inner liner plate disposed in the receiving groove is bent and extended to form a second receiving groove; At least a portion of the heat extraction end of the heat conducting portion is accommodated in the second accommodating groove.

15. The refrigerator structure according to claim 12, characterized in that: The portion of the inner liner plate disposed in the receiving groove is bent and extended to form a step surface; The guide seat partially extends into the accommodating groove, and a second buckle portion is provided on the guide seat. The second buckle portion is formed with a second holding surface facing the guide portion, and the second holding surface abuts against the step surface to limit position.

16. The refrigerator structure according to claim 11, characterized in that: The box structure includes a shell plate, the shell plate includes a first plate segment extending along the thickness direction of the box structure, the first plate segment is bent away from the guide seat to form a first bent plate segment, and the end of the first bent plate segment is bent toward the guide seat to form a second bent plate segment, and the first bent plate segment and the second bent plate segment are arranged opposite to each other; The accommodating groove is defined between the first bent plate segment and the second bent plate segment.

17. The refrigerator structure according to claim 16, characterized in that: A bending convex portion is formed at a connection between the first plate segment and the first bent plate segment, and the bending convex portion is convexly arranged toward the heat source body to abut against the heat conducting portion.

18. The refrigerator structure according to claim 10, characterized in that: The guide seat is provided with a connecting hole, the box structure comprises an inner liner plate and an outer shell plate, and the inner liner plate is provided with a through hole; An embedded part is provided between the inner liner plate and the outer shell plate, and a threaded hole corresponding to the through hole is formed on the embedded part; The refrigerator structure also includes a screw connection member, which is inserted into the connecting hole and the through hole and is threadedly installed in the threaded hole.

19. The refrigerator structure according to claim 1, characterized in that: The heat conducting part includes a heat conducting plate or a heat conducting layer.

20. A refrigerator, characterized in that: Comprising the refrigerator structure according to any one of claims 1 to 19.