Refrigerator

By setting an opening at the end of the refrigerator guide cavity and installing shock absorbers on the flip beam assembly, the noise problem when the refrigerator door body is closed is solved, and noise reduction and sealing effect are improved.

CN120274487APending Publication Date: 2025-07-08HISENSE(SHANDONG)REFRIGERATOR CO LTD
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Patent Information

Application Number
CN202410031759.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-01-08
Publication Date
2025-07-08

AI Technical Summary

Technical Problem

When the refrigerator door body closes, the flip beam assembly collides with the end of the guide cavity to produce large noise.

Method used

An opening is provided at the end of the guide cavity, and a shock absorber is installed on the flip beam assembly, which is used to collide with the door body to reduce noise.

Benefits of technology

It effectively reduces the noise when the flip beam assembly collides with the door body and improves the sealing of the door body and the box body.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention belongs to the technology of household appliances, and provides a refrigerator which comprises a refrigerator body and a refrigerator cover. The door bodies comprise the first door body and the second door body, and the first door body comprises a body and an overturning beam assembly connected with the body; the guiding piece is connected with the box body and arranged at the top of the storage chamber, the guiding piece is provided with a guiding cavity, the bottom of the guiding piece is provided with a first opening, the first opening communicates with the guiding cavity, the guiding piece is provided with a second opening and a third opening, and the second opening and the third opening both communicate with the guiding cavity; in the door closing process of the first door body, part of the overturning beam assembly is located in the guide cavity through the first opening and the second opening and moves in the extending direction of the guide cavity so as to be close to the third opening. And the first damping piece is arranged on the overturning beam assembly, and after the first door body is closed, the first damping piece is located between the overturning beam assembly and the door body, and the first damping piece abuts against the door body. The air conditioner is low in noise.
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Description

Technical Field

[0001] The embodiments of the present application relate to the technical field of household appliances, and particularly to a refrigerator. Background Art

[0002] A refrigerator is a refrigeration device that maintains a constant low temperature, and is also a civilian product that keeps food or other items in a constant low temperature state.

[0003] In the related art, a refrigerator includes a box body and a door body. A storage chamber is defined in the box body. A guiding member is provided on the inner top wall of the box body. The door body is arranged on the front surface to close and open the storage chamber. Among them, the door body includes a first door body and a second door body that are relatively opened. The first door body includes a main body and a flip beam assembly rotatably connected to the main body. When the first door body is opened, the flip beam assembly is in a flipped state under the action of the guiding member. That is to say, the flip beam assembly rotates to be perpendicular to the door surface and adheres to the side surface of the first door body, facilitating users to access items. When the first door body is closed, the flip beam assembly rotates under the action of the guiding member and is parallel to the door surface of the first door body to seal the gap between the door body and the box body, thereby effectively avoiding cold leakage.

[0004] However, when the first door body is closed, the noise is relatively large. Summary of the Invention

[0005] The embodiments of the present application provide a refrigerator with relatively low noise.

[0006] In a first aspect, the embodiments of the present application provide a refrigerator, including:

[0007] A box body that defines a storage chamber;

[0008] A door body connected to the box body to open or close the storage chamber. The door body includes a first door body and a second door body that are relatively opened. The first door body includes a main body and a flip beam assembly connected to the main body;

[0009] A guiding member connected to the box body and arranged at the top of the storage chamber. The guiding member has a guiding cavity. The bottom of the guiding member has a first opening that communicates with the guiding cavity. The two ends of the guiding member along the extending direction of the guiding cavity are respectively provided with a second opening and a third opening, and both the second opening and the third opening communicate with the guiding cavity. During the closing process of the first door body, part of the flip beam assembly is located in the guiding cavity through the first opening and the second opening and moves along the extending direction of the guiding cavity to approach the third opening;

[0010] A first shock-absorbing member arranged on the flip beam assembly. After the first door body is closed, the first shock-absorbing member is located between the flip beam assembly and the door body, and the first shock-absorbing member abuts against the door body.

[0011] By providing the third opening, during the movement of the flipping beam assembly within the guiding cavity, it will not collide with the end of the guiding cavity in the extending direction, and no collision noise will be generated at this position. However, without the obstruction of the end of the guiding cavity, when the first door body closes, the flipping beam assembly will collide with the door body at full speed, resulting in a relatively loud impact sound. Therefore, a first shock-absorbing member is provided on the flipping beam assembly. After the first door body closes, the first shock-absorbing member is located between the flipping beam assembly and the door body, and the first shock-absorbing member abuts against the door body. In this way, by using the first shock-absorbing member to collide with the door body, the collision noise can be effectively reduced.

[0012] In some embodiments of the present application, the inner wall on the side of the guiding cavity facing away from the door body is a smoothly transitioning curved surface;

[0013] The width dimension of the guiding cavity is greater than the width dimension of the flipping beam assembly located within the guiding cavity.

[0014] In this way, the noise can be reduced.

[0015] In some embodiments of the present application, the flipping beam assembly has a first plane. After the first door body closes, the first plane faces away from the box body. The first shock-absorbing member is connected to the first plane, and the first shock-absorbing member protrudes from the first plane.

[0016] In this way, it is beneficial to ensure the abutment of the first shock-absorbing member against the door body.

[0017] In some embodiments of the present application, the first shock-absorbing member protrudes from the first plane by 0.5 mm - 1 mm.

[0018] When the dimension of the first shock-absorbing member protruding from the first plane is less than 0.5 mm, the effect of the first shock-absorbing member in reducing the collision noise is poor. When the dimension of the first shock-absorbing member protruding from the first plane is greater than 1 mm, the cost of the first shock-absorbing member is relatively high. Moreover, if the first shock-absorbing member protrudes too high, it is likely that after the first door body closes, the flipping beam assembly has not rotated to a parallel state, which is not conducive to the sealing between the door body and the box body.

[0019] In some embodiments of the present application, the first shock-absorbing member is located between the flipping beam assembly and the body, and the first shock-absorbing member abuts against the body.

[0020] In this way, while reducing the size of the first shock-absorbing member, the effect of reducing the collision noise can be ensured.

[0021] In some embodiments of the present application, the first shock-absorbing member includes a shock-absorbing portion. The extending direction of the shock-absorbing portion is consistent with the length direction of the box body. The shock-absorbing portion abuts against the body, and the dimension of the shock-absorbing portion in the width direction of the box body is not less than 5 mm.

[0022] In this way, it is beneficial to ensure the effect of reducing the collision noise.

[0023] In some embodiments of the present application, the flipping beam assembly includes a vertical beam, a rotating member, and a second shock-absorbing member. The rotating member is connected to the body and is rotatably connected to the vertical beam;

[0024] The second shock-absorbing member is connected to the vertical beam. After the first door is opened, the rotating member abuts against the second shock-absorbing member.

[0025] In this way, the collision noise between the rotating member and the vertical beam can be effectively reduced.

[0026] In some embodiments of the present application, the vertical beam has a first avoidance portion, and a second shock-absorbing member is provided on a side of the first avoidance portion facing away from the rotating member;

[0027] The second shock-absorbing member protrudes from the vertical beam.

[0028] In this way, it is beneficial to the compactness of the overall structure of the flipping beam assembly.

[0029] In some embodiments of the present application, the thickness of the second shock-absorbing member is 0.5-1 mm.

[0030] When the thickness of the second shock-absorbing member is less than 0.5 mm, the effect of the second shock-absorbing member in reducing the collision noise is poor. When the thickness of the second shock-absorbing member is greater than 1 mm, during the opening process of the first door, the elastic force of the second shock-absorbing member easily causes the vertical plate to rotate in the reverse direction, so that after the first door is opened, the vertical plate is not in a state perpendicular to the door surface.

[0031] In a second aspect, an embodiment of the present application provides a refrigerator, including:

[0032] A box body that defines a storage compartment;

[0033] A door body that is connected to the box body to open or close the storage compartment. The door body includes a first door body and a second door body that are relatively opened. The first door body includes a body and a flipping beam assembly connected to the body;

[0034] A guiding member that is connected to the box body and is provided at the top of the storage compartment. The guiding member has a guiding cavity, and a second avoidance portion is provided at the end of the guiding member along the extending direction of the guiding cavity;

[0035] When the first door is closed, a part of the flipping beam assembly is located in the guiding cavity and moves along the extending direction of the guiding cavity to approach the second avoidance portion;

[0036] A first shock-absorbing member that is provided on the flipping beam assembly. After the first door is closed, the first shock-absorbing member is located between the flipping beam assembly and the door body, and the first shock-absorbing member abuts against the door body.

[0037] In this way, by providing the second avoidance portion to avoid the flipping beam assembly, the collision noise between the flipping beam assembly and the guiding member can be effectively avoided. Description of the Drawings

[0038] To more clearly illustrate the embodiments of the present application or the implementation manners in the related art, the following will briefly introduce the drawings required for use in the description of the embodiments or the related art. Obviously, the drawings in the following description are some embodiments of the present application. For those of ordinary skill in the art, other drawings can also be obtained based on these drawings.

[0039] Figure 1 Structural schematic diagram of the guide member of the refrigerator in the related art;

[0040] Figure 2 Structural schematic diagram of the refrigerator provided by the embodiment of the present application;

[0041] Figure 3 Structural schematic diagram of the door body and the guide member in the refrigerator provided by the embodiment of the present application;

[0042] Figure 4 Structural schematic diagram of the door body and the guide member in the refrigerator provided by the embodiment of the present application from another angle;

[0043] Figure 5 Structural schematic diagram of the guide member, the flipping beam assembly and the first shock absorber in the refrigerator provided by the embodiment of the present application;

[0044] Figure 6 For Figure 5 Local enlarged view at position A in

[0045] Figure 7 Structural schematic diagram of the guide member in the refrigerator provided by the embodiment of the present application;

[0046] Figure 8 Another angle structural schematic diagram of the guide member in the refrigerator provided by the embodiment of the present application;

[0047] Figure 9 Structural schematic diagram of the flipping beam assembly in the refrigerator provided by the embodiment of the present application;

[0048] Figure 10 For Figure 9 Local enlarged view at position B in

[0049] Figure 11 Structural schematic diagram of the first shock absorber in the refrigerator provided by the embodiment of the present application;

[0050] Figure 12 Another angle structural schematic diagram of the flipping beam assembly in the refrigerator provided by the embodiment of the present application;

[0051] Figure 13 For Figure 12 Local enlarged view at position C in

[0052] Explanation of reference numerals:

[0053] 100- cabinet;

[0054] 200-door body; 210-first door body; 211-body; 212-flip beam assembly; 2121-vertical beam; 2121a-first plane; 2121b-first avoidance portion; 2121c-installation groove; 2122-rotating member; 2123-second shock absorbing member; 2124-guide column; 220-second door body;

[0055] 300 - guide member; 310 - guide cavity; 320 - first opening; 330 - second opening; 340 - third opening;

[0056] 400 - first shock absorbing member; 410 - shock absorbing portion; 420 - sealing portion. DETAILED DESCRIPTION

[0057] As described in the background technology, the refrigerator includes a box body and a door body, a storage room is defined in the box body, a guide is provided on the inner top wall of the box body, and the door body is provided on the front surface to close and open the storage room. The door body includes a first door body and a second door body that are relatively open, and the first door body includes a body and a flip beam assembly that is rotatably connected to the body. Figure 1 As shown, when the first door is closed, part of the flip beam assembly slides in the guide cavity of the guide member until the flip beam assembly hits the end of the guide cavity, at which time the flip beam assembly is parallel to the door surface of the first door. However, when the flip beam assembly hits the end of the guide cavity, a large noise is generated.

[0058] In order to solve the above technical problems, the refrigerator in the present application effectively prevents the flip beam assembly from colliding with the end of the guide cavity by setting an opening at the end of the guide cavity of the guide member. However, without the obstruction of the end of the guide cavity, when the first door body is closed, the flip beam assembly will collide with the door body at full speed, resulting in a loud impact sound. Therefore, a first shock absorber is set on the flip beam assembly, and the first shock absorber is used to collide with the door body, so as to effectively reduce the collision noise.

[0059] In order to make the purpose, implementation mode and advantages of the present application clearer, the exemplary implementation mode of the present application will be clearly and completely described below in conjunction with the drawings in the exemplary embodiments of the present application. Obviously, the described exemplary embodiments are only part of the embodiments of the present application, rather than all the embodiments.

[0060] It should be noted that the brief description of terms in this application is only for the convenience of understanding the embodiments described below, and is not intended to limit the embodiments of this application. Unless otherwise specified, these terms should be understood according to their common and usual meanings.

[0061] In addition, the terms "comprising", "having" and any variations thereof are intended to cover inclusion without exclusivity. For example, a product or device comprising a series of components need not be limited to those components clearly listed, but may include other components not clearly listed or inherent to such product or device.

[0062] In the description of the present application, it should be understood that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present application.

[0063] The terms "first" and "second" are only used for descriptive purposes and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present application, unless otherwise stated, the meaning of "a plurality" is two or more.

[0064] In the description of the present application, it should be noted that unless otherwise clearly specified and limited, the terms "installed", "connected" and "coupled" should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection or an integral connection; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.

[0065] Next, the technical solutions in the embodiments of the present application will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present application without creative efforts shall fall within the scope of protection of the present application.

[0066] See Figures 2 to 7 As shown, this embodiment provides a refrigerator, including a box body 100, a door body 200, a guide member 300, a refrigeration system (not shown in the figure) and a first shock absorber 400.

[0067] Among them, a storage room and a press compartment can be defined within the box body 100. There can be at least one storage room. When the number of storage rooms is one, the storage room can be any one of a refrigerating chamber, a freezing chamber, or a variable temperature chamber. When the number of storage rooms is two or more, the multiple storage rooms can include at least one or more of a refrigerating chamber, a freezing chamber, or a variable temperature chamber.

[0068] Among them, the refrigeration system can include a compressor, a condenser, a throttling device, and an evaporator. The compressor, the condenser, the throttling device, and the evaporator are sequentially connected in series through pipelines, and a refrigerant flows in the pipelines. The compressor and the condenser can be arranged in the press compartment, and the evaporator is arranged in the storage room.

[0069] When the compressor operates, the low-temperature and low-pressure refrigerant is sucked into the compressor, compressed into a high-temperature and high-pressure superheated gas in the compressor cylinder, and then discharged into the condenser. The high-temperature and high-pressure refrigerant gas dissipates heat through the condenser, and its temperature continuously drops, gradually being cooled into a normal-temperature and high-pressure saturated vapor, and further cooled into a saturated liquid. The pressure of the refrigerant remains almost unchanged during the entire condensation process. The throttling device can include a decompression tube or an electronic expansion valve. In this application, the case where the throttling device includes a decompression tube is taken as an example for description. The decompression tube has a low cost and is not prone to abnormal failures. The condensed refrigerant saturated liquid undergoes throttling and pressure reduction through the decompression tube, and the refrigerant becomes a normal-temperature and low-pressure wet vapor. Then, the normal-temperature and low-pressure wet vapor absorbs heat and vaporizes through the evaporator, not only reducing the temperature of the evaporator and its surroundings, but also turning the refrigerant into a low-temperature and low-pressure gas. The evaporator cools the air in the storage room so that the temperature of the storage room decreases. The refrigerant coming out of the evaporator returns to the compressor again, repeating the above process, so that the evaporator can continuously cool the air in the storage room, and thus the storage room can be maintained at a set temperature.

[0070] In some embodiments, the refrigeration system can further include a dryer filter. The dryer filter is connected between the condenser and the throttling device through a pipeline, and the dryer filter can filter out moisture and impurities in the refrigerant.

[0071] See Figure 3 and Figure 4As shown, the door body 200 is connected to the box body 100 to open or close the storage room. The door body 200 includes a first door body 210 and a second door body 220 that are relatively opened. Specifically, the first door body 210 and the second door body 220 are arranged side by side along the width direction of the box body 100 (the direction shown by the X-axis in the figure). Both the first door body 210 and the second door body 220 are hinged to the box body 100. One side of the first door body 210 facing away from the second door body 220 is hinged to the box body 100, and one side of the second door body 220 facing away from the first door body 210 is hinged to the box body 100. Among them, the first door body 210 includes a main body 211 and a turning beam assembly 212 connected to the main body 211. During the opening process of the first door body 210, the turning beam assembly 212 rotates from a state parallel to the door surface of the main body 211 to a vertical state. During the closing process of the first door body 210, the turning beam assembly 212 rotates from a state perpendicular to the door surface of the main body 211 to a parallel state, which is beneficial to the sealing of the door body 200 and the box body 100.

[0072] Among them, the guide member 300 is connected to the box body 100 and is arranged at the top of the storage room. The guide member 300 has a guide cavity 310, and a second avoidance portion is provided at the end of the guide member 300 along the extending direction of the guide cavity 310. In this way, by providing the second avoidance portion to avoid the turning beam assembly 212, the collision noise between the turning beam assembly 212 and the guide member 300 is effectively avoided. Exemplarily, the second avoidance portion can be an avoidance cavity.

[0073] Specifically, referring to Figure 7 and Figure 8 As shown, the bottom of the guide member 300 has a first opening 320, the first opening 320 is communicated with the guide cavity 310, and a second opening 330 and a third opening 340 are respectively provided at both ends of the guide member 300 along the extending direction of the guide cavity 310. Both the second opening 330 and the third opening 340 are communicated with the guide cavity 310. It should be noted that the direction shown by the arrow is the moving direction of the turning beam assembly 212 during the closing process of the first door body 210. Referring to Figures 5 to 8 As shown, during the closing process of the first door body 210, a part of the turning beam assembly 212 is located in the guide cavity 310 through the first opening 320 and the second opening 330, and moves along the extending direction of the guide cavity 310 to approach the third opening 340.

[0074] It can be understood that by setting the third opening 340, during the movement of the flipping beam assembly 212 within the guiding cavity 310, it will not collide with the end of the guiding cavity 310 in the extending direction, and the noise generated by the collision at this position can be avoided. However, without the obstruction of the end of the guiding cavity 310, when the first door body 210 closes, the flipping beam assembly 212 will collide with the door body 200 at full speed, resulting in a relatively large impact sound. Therefore, a first shock-absorbing member 400 is provided on the flipping beam assembly 212. After the first door body 210 closes, the first shock-absorbing member 400 is located between the flipping beam assembly 212 and the door body 200, and the first shock-absorbing member 400 abuts against the door body 200. In this way, by using the collision between the first shock-absorbing member 400 and the door body 200, the collision noise can be effectively reduced.

[0075] Exemplarily, the first shock-absorbing member 400 can be a sponge member or a rubber member. It should be noted that the first shock-absorbing member 400 can abut against the body 211, or the first shock-absorbing member 400 can abut against both the body 211 and the second door body 220 simultaneously, or the first shock-absorbing member 400 can abut against the second door body 220.

[0076] In some embodiments, the length direction of the flipping beam assembly 212 is consistent with the length direction of the box body 100 (the direction shown by the Z-axis in the figure), and the length direction of the first shock-absorbing member 400 is consistent with the length direction of the flipping beam assembly 212. In order to improve the shock-absorbing effect, the dimension of the first shock-absorbing member 400 along the length direction is not less than the dimension of the flipping beam assembly 212 along the length direction.

[0077] See Figure 9 and Figure 10 As shown, the flipping beam assembly 212 includes a vertical beam 2121 and a guiding column 2124. The guiding column 2124 is arranged on the top of the vertical beam 2121 and is used to be inserted into the guiding cavity 310 of the guiding member 300. During the closing process of the first door body 210, under the guiding action of the inner wall of the guiding cavity 310, the guiding column 2124 drives the vertical beam 2121 to rotate.

[0078] See Figures 7 to 10 As shown, in some embodiments of the present application, the inner wall on the side of the guiding cavity 310 facing away from the door body 200 is a smoothly transitioning curved surface, that is, there is no stepped surface on the inner wall on the side of the guiding cavity 310 facing away from the door body 200, so as to reduce the collision noise between the guiding column 2124 and the guiding member 300.

[0079] In some embodiments, the first derivative of the curve formed by the orthogonal projection of the inner wall on the side of the guiding cavity 310 facing away from the door body 200 onto the ground is continuous.

[0080] In this embodiment, both the second opening 330 and the third opening 340 are located on the side of the guide member 300 away from the box body 100. Both the second opening 330 and the third opening 340 communicate with the outside. In this way, the processing difficulty is relatively small.

[0081] In some embodiments, the width dimension of the guide cavity 310 is greater than the width dimension of the flipping beam assembly 212 located in the guide cavity 310. That is to say, the minimum value of the width dimension of the guide cavity 310 is d, and the maximum value of the width dimension of the guide post 2124 is e, and d is greater than e. In this way, the guide post 2124 can slide smoothly in the guide cavity 310 and is not likely to generate noise.

[0082] See Figure 5 、 Figure 6 、 Figure 9 and Figure 10 As shown in

[0083] It should be noted that the first shock absorber 400 protruding from the first plane 2121a is beneficial to ensure the abutment of the first shock absorber 400 with the body 211 and / or the second door body 220.

[0084] In order to facilitate the connection between the first shock absorber 400 and the vertical beam 2121, an installation groove 2121c may be provided on the vertical beam 2121, and the first shock absorber 400 is embedded in the installation groove 2121c. At the same time, for the firmness of installation, the first shock absorber 400 may be bonded to the vertical beam 2121.

[0085] It can be understood that the reliability of the connection between the first shock absorber 400 and the vertical beam 2121 can be improved through the installation groove 2121c and the adhesive, so that the first shock absorber 400 is not likely to fall off.

[0086] In some embodiments of the present application, the dimension of the first shock absorber 400 protruding from the first plane 2121a is 0.5 mm - 1 mm. Exemplarily, the dimension of the first shock absorber 400 protruding from the first plane 2121a is 0.8 mm, or the dimension of the first shock absorber 400 protruding from the first plane 2121a is 0.6 mm.

[0087] It can be understood that when the dimension of the first shock absorber 400 protruding from the first plane 2121a is less than 0.5 mm, the effect of the first shock absorber 400 in reducing collision noise is poor.

[0088] When the dimension by which the first shock absorber 400 protrudes from the first plane 2121a is greater than 1 mm, the cost of the first shock absorber 400 is relatively high. Moreover, if the first shock absorber 400 protrudes too much, it is likely that after the first door body 210 is closed, the turning beam assembly 212 does not rotate to a parallel state, which is not conducive to the sealing between the door body 200 and the box body 100.

[0089] In some embodiments of the present application, the first shock absorber 400 is located between the turning beam assembly 212 and the body 211, and the first shock absorber 400 abuts against the body 211.

[0090] It can be understood that during the closing process of the first door body 210, the turning beam assembly 212 first collides with the body 211 and then contacts the second door body 220. Therefore, by disposing the first shock absorber 400 between the turning beam assembly 212 and the body 211 and making the first shock absorber 400 abut against the body 211, the size of the first shock absorber 400 can be reduced while ensuring the effect of reducing the collision noise.

[0091] See Figure 11 As shown, the first shock absorber 400 includes a shock-absorbing portion 410 and sealing portions 420 located at both ends of the shock-absorbing portion 410 along the extending direction. Among them, the shock-absorbing portion 410 is used to abut against the body 211. The extending direction of the shock-absorbing portion 410 is consistent with the length direction of the box body 100 (the direction shown by the Y axis), and the extending directions of the two sealing portions 420 are consistent with the width direction of the box body 100 (the direction shown by the X axis). The sealing portions 420 are used to abut against both the body 211 and the second door body 220 at the same time. The shock-absorbing portion 410 and the sealing portions 420 are integrally provided, thereby improving the connection reliability.

[0092] In this embodiment, the dimension f of the shock-absorbing portion 410 of the first shock absorber 400 along the width direction of the box body 100 is not less than 5 mm. It can be understood that when the dimension f of the shock-absorbing portion 410 along the width direction of the box body 100 is less than 5 mm, the effect of the first shock absorber 400 in reducing the collision noise is poor.

[0093] See Figure 12 and Figure 13 As shown, the turning beam assembly 212 includes a vertical beam 2121 and a rotating member 2122. The rotating member 2122 is connected to the body 211, and the rotating member 2122 is rotatably connected to the vertical beam 2121.

[0094] The inventor's research found that during the opening process of the first door body 210, the reason for the relatively large noise is that when the vertical beam 2121 rotates relative to the rotating member 2122 to a state perpendicular to the door surface, the vertical beam 2121 collides with the rotating member 2122, thereby generating noise.

[0095] In order to solve the above technical problems, in the refrigerator provided by the present application, the flip beam assembly 212 also includes a second shock absorbing member 2123, and the second shock absorbing member 2123 is connected to the vertical beam 2121. After the first door body 210 is opened, the rotating member 2122 abuts against the second shock absorbing member 2123. In this way, the collision noise between the rotating member 2122 and the vertical beam 2121 can be effectively reduced.

[0096] Exemplarily, the second shock absorbing member 2123 may be a sponge member or a rubber member.

[0097] It should be noted that, in some embodiments, the number of the rotating members 2122 is at least two, the number of the second shock absorbing members 2123 is at least two, and the rotating members 2122 and the second shock absorbing members 2123 are arranged in a one-to-one correspondence.

[0098] In some embodiments of the present application, the vertical beam 2121 has a first avoidance portion 2121 b , and a second shock absorbing member 2123 is disposed on a side of the first avoidance portion 2121 b away from the rotating member 2122 . The second shock absorbing member 2123 protrudes from the vertical beam 2121 .

[0099] Specifically, the second shock absorbing member 2123 may be disposed on the side wall and the top wall of the first avoiding portion 2121 b away from the rotating member 2122 .

[0100] It is understandable that by providing the first avoidance portion 2121b, part of the rotating member 2122 can be located in the first avoidance portion 2121b during the rotation of the vertical beam 2121, thereby facilitating the compactness of the overall structure of the flip beam assembly 212. The second shock absorbing member 2123 protrudes from the vertical beam 2121, thereby facilitating the abutment between the second shock absorbing member 2123 and the rotating member 2122.

[0101] Exemplarily, the first avoidance portion 2121b may be an avoidance groove.

[0102] In some embodiments of the present application, the thickness of the second shock absorber 2123 is 0.5-1 mm.

[0103] Exemplarily, the thickness of the second shock absorbing member 2123 may be 0.6 mm, or the thickness of the second shock absorbing member 2123 may be 0.8 mm.

[0104] It is understandable that when the thickness of the second shock absorbing member 2123 is less than 0.5 mm, the second shock absorbing member 2123 has a poor effect in reducing collision noise. When the thickness of the second shock absorbing member 2123 is greater than 1 mm, during the opening process of the first door body 210, the elastic force of the second shock absorbing member 2123 easily causes the vertical plate to rotate in the opposite direction, so that after the first door body 210 is opened, the vertical plate is not in a state perpendicular to the door surface.

[0105] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some or all of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the various embodiments of the present application.

[0106] For convenience of explanation, the above description has been made in conjunction with specific embodiments. However, the above exemplary discussions are not intended to be exhaustive or to limit the embodiments to the specific forms disclosed above. According to the above teachings, various modifications and variations can be obtained. The selection and description of the above embodiments are for the purpose of better explaining the principles and practical applications, so that those skilled in the art can better use the embodiments and various different embodiments suitable for specific use considerations.

Claims

1. A refrigerator, characterized in that, Comprising: A box body, the box body defining a storage chamber; A door body, the door body being connected to the box body to open or close the storage chamber, the door body comprising a first door body and a second door body that are relatively opened, the first door body comprising a body and a flipping beam assembly connected to the body; A guiding member, the guiding member being connected to the box body and disposed at the top of the storage chamber, the guiding member having a guiding cavity, the bottom of the guiding member having a first opening, the first opening communicating with the guiding cavity, both ends of the guiding member along the extending direction of the guiding cavity being respectively provided with a second opening and a third opening, both the second opening and the third opening communicating with the guiding cavity; during the closing process of the first door body, a part of the flipping beam assembly is located in the guiding cavity through the first opening and the second opening and moves along the extending direction of the guiding cavity to approach the third opening; A first shock-absorbing member, the first shock-absorbing member being disposed on the flipping beam assembly, after the first door body is closed, the first shock-absorbing member is located between the flipping beam assembly and the body, and the first shock-absorbing member abuts against the door body.

2. The refrigerator according to claim 1, characterized in that, The inner wall of the side of the guiding cavity facing away from the door body is a smoothly transitioning curved surface; The width dimension of the guiding cavity is greater than the width dimension of the flipping beam assembly located in the guiding cavity.

3. The refrigerator according to claim 1, characterized in that, The flipping beam assembly has a first plane, after the first door body is closed, the first plane faces away from the box body, the first shock-absorbing member is connected to the first plane, and the first shock-absorbing member protrudes from the first plane.

4. The refrigerator according to claim 3, characterized in that, The first shock-absorbing member protrudes from the first plane by 0.5 mm - 1 mm.

5. The refrigerator according to claim 3, wherein The first shock-absorbing member is located between the flipping beam assembly and the body, and the first shock-absorbing member abuts against the body.

6. The refrigerator according to claim 5, characterized in that, The first shock-absorbing member comprises a shock-absorbing portion, the extending direction of the shock-absorbing portion is consistent with the length direction of the box body, the shock-absorbing portion abuts against the body, and the dimension of the shock-absorbing portion along the width direction of the box body is not less than 5 mm.

7. The refrigerator according to any one of claims 1 to 6, characterized in that, The flipping beam assembly comprises a vertical beam, a rotating member and a second shock-absorbing member, the rotating member is connected to the body, and the rotating member is rotatably connected to the vertical beam; The second shock-absorbing member is connected to the vertical beam, after the first door body is opened, the rotating member abuts against the second shock-absorbing member.

8. The refrigerator according to claim 7, characterized in that, The vertical beam has a first avoiding portion, and the second shock-absorbing member is disposed on the side of the first avoiding portion facing away from the rotating member; The second shock-absorbing member protrudes from the vertical beam.

9. The refrigerator according to claim 8, characterized in that, The thickness of the second shock-absorbing member is 0.5 - 1 mm.

10. A refrigerator, characterized in that, Comprising: A box body, the box body defining a storage chamber; A door body, the door body being connected to the box body to open or close the storage chamber, the door body comprising a first door body and a second door body that are relatively opened, the first door body comprising a body and a flipping beam assembly connected to the body; A guiding member, the guiding member being connected to the box body and disposed at the top of the storage chamber, the guiding member having a guiding cavity, and a second avoiding portion being provided at the end of the guiding member along the extending direction of the guiding cavity; When the first door body is closed, part of the flipping beam assembly is located in the guiding cavity and moves along the extending direction of the guiding cavity to approach the second avoidance part; A first shock absorber, which is arranged on the flipping beam assembly. After the first door body is closed, the first shock absorber is located between the flipping beam assembly and the door body, and the first shock absorber abuts against the door body.