Door body device and refrigeration equipment

The door assembly for refrigerators with a sliding mechanism addresses interference issues between decor panels and cabinetry by allowing the cabinet door to move alongside the main door, maintaining aesthetics and user convenience.

CN223106382UActive Publication Date: 2025-07-15TOSHIBA HA MANUFACTURING (NANHAI) CO LTD
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Patent Information

Application Number
CN202422083236.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-26
Publication Date
2025-07-15
Estimated Expiration
2034-08-26

AI Technical Summary

Technical Problem

When the existing refrigerator is placed in a built-in place, the decorative panel interferes with the cabinet when opening the door, affecting coordination and aesthetics, and the user experience is poor.

Method used

A sliding mechanism and a sliding door mechanism are adopted. The sliding mechanism includes a pulley assembly and a slide rail assembly. The sliding door mechanism includes a sliding door assembly and a traction assembly. The cabinet door is slidably arranged on the outside of the box door through the sliding mechanism. The sliding door mechanism drives the cabinet door to move during the opening or closing of the box door to avoid interference.

Benefits of technology

While ensuring coordination and aesthetics, the interference between cabinet doors and cabinets is avoided and the user experience is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of refrigeration equipment, and provides a door body device and refrigeration equipment, and the door body device comprises a box door, a cabinet door, a sliding mechanism and a sliding door mechanism. The box door is rotationally connected to the box body and is suitable for opening or closing the storage space of the box body; the cabinet door is slidably arranged on the outer side of the box door through a sliding mechanism; the sliding door mechanism is configured to drive the cabinet door to move relative to the box door in the opening or closing process of the box door. In actual use, after the door body device is installed on the box body of the refrigeration equipment, when the box door rotates relative to the box body in the process of opening or closing the storage space of the box body, the sliding door mechanism can drive the cabinet door to move relative to the box door in the width direction of the box door, and therefore the cabinet door can be driven by the sliding door mechanism to move relative to the box door when the refrigeration equipment and the cabinet are placed in an embedded mode. Under the condition that coordination and attractiveness are ensured and the use experience of a user is not affected, interference between the cabinet door and the cabinet can be avoided in the process of opening the box door.
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Description

Technical Field

[0001] The utility model relates to the technical field of refrigeration equipment, in particular to a door body device and a refrigeration equipment. Background Art

[0002] Currently, refrigerators are essential appliances for almost every household. Most of the existing refrigerators are upright cabinets. Whether in the kitchen or the living room, etc., the placement of the refrigerator requires a certain amount of space. To save space, some of the existing refrigerators are placed in an embedded manner together with cabinets, etc.

[0003] As Figure 1 shown, in order to further increase the coordination and aesthetics, some refrigerators 10 placed in an embedded manner will hang a decorative panel 30 outside the refrigerator door 11 and make the decorative panel 30 flush with the cabinet 20 on the side of the refrigerator 10. However, in actual use, as Figure 2 shown, the gap between the refrigerator 10 and the cabinet 20 is small, and interference will occur between the decorative panel 30 and the cabinet 20 during the process of opening the refrigerator door 11. In order to avoid interference, in the general treatment method, the opening angle is usually reduced or the distance between the cabinet 20 and the side of the refrigerator 10 is increased to solve the problem, but these methods affect the coordination and aesthetic effect, and also affect the user experience. Summary of the Utility Model

[0004] In order to solve the problems existing in the above background art, a door body device and a refrigeration equipment are provided in the utility model to avoid the problem that interference will occur between the decorative panel and the cabinet during the process of opening the refrigerator door under the condition of ensuring coordination and aesthetics and without affecting the user experience.

[0005] According to the first aspect of the utility model, a door body device is provided, including:

[0006] A box door, rotatably connected to the box body and adapted to open or close the storage space of the box body;

[0007] A cabinet door and a sliding mechanism, the cabinet door is slidably arranged outside the box door through the sliding mechanism;

[0008] A sliding door mechanism, configured to drive the cabinet door to move relative to the box door during the process of opening or closing the box door.

[0009] According to a door body device provided by the present utility model, the sliding mechanism includes a pulley assembly and a slide rail assembly. One of the pulley assembly and the slide rail assembly is arranged on the box door, and the other is arranged on the cabinet door. The pulley assembly includes a pulley, and the slide rail assembly is provided with a linear slide cavity. The rotation axis of the pulley is perpendicular to the axis of the linear slide cavity, so that the pulley and the linear slide cavity cooperate to form a rolling connection.

[0010] According to a door body device provided by the present utility model, the slide rail assembly includes a track member and a first mounting member. The linear slide cavity is formed on the track member; the first mounting member is arranged at a position of the track member other than the linear slide cavity, and the first mounting member is connected to the box door.

[0011] According to a door body device provided by the present utility model, the pulley assembly further includes a mounting seat, a pin shaft and a second mounting member; the second mounting member is arranged on the mounting seat, and the second mounting member is connected to the cabinet door; a shaft hole is arranged on the mounting seat, the pin shaft is rotatably inserted into the shaft hole, the pin shaft is inserted through the center of the pulley, so that the pulley is rotatably arranged on the mounting seat through the pin shaft, and the pin shaft is the rotation axis of the pulley.

[0012] According to a door body device provided by the present utility model, the mounting seat includes a first plate portion and a second plate portion, the first plate portion and the second plate portion are arranged at an angle, the second mounting member is arranged on the first plate portion, and the shaft hole is arranged on the second plate portion.

[0013] According to a door body device provided by the present utility model, the first plate portion is connected to the inner side of the cabinet door through the second mounting member.

[0014] According to a door body device provided by the present utility model, a recessed portion is arranged on the inner side of the cabinet door, the recessed portion is adapted to the first plate portion, and the first plate portion is arranged in the recessed portion.

[0015] According to a door body device provided by the present utility model, the slide rail assembly is arranged on at least one of the top and the bottom of the box door.

[0016] A door body device provided by the present utility model, the sliding door mechanism includes a sliding door assembly and a traction assembly, the sliding door assembly includes a sliding member, a wire winding assembly and a rope assembly, the wire winding assembly includes a wire winding disc and a commutation wheel, and the wire winding disc and the commutation wheel are arranged at intervals; the sliding member is arranged between the wire winding disc and the commutation wheel; the rope assembly includes a first rope and a second rope, the first rope is wound around the wire winding disc along a first direction, the free end of the first rope bypasses the commutation wheel and is fixed to the sliding member, the second rope is wound around the wire winding disc along a second direction, the first direction and the second direction are opposite, the free end of the second rope is fixed to the sliding member, and the sliding member is connected to the cabinet door;

[0017] The traction assembly is configured to drive the wire winding disc to rotate during the opening or closing process of the box door.

[0018] According to a second aspect of the present utility model, there is provided a refrigeration device, including:

[0019] A box body, forming a storage space;

[0020] The door body device according to any one of the first aspects of the present utility model, the box door is rotatably connected to the box body and is adapted to open or close the storage space of the box body.

[0021] The door body device provided by the present utility model includes a box door, a cabinet door, a sliding mechanism and a sliding door mechanism. Among them, the box door can be rotatably connected to the box body, the cabinet door is slidably arranged on the outside of the box door through the sliding mechanism, and the sliding door mechanism can drive the cabinet door to move along the width direction of the box door during the opening or closing process of the box door. In actual use, when the door body device is installed on the box body of the refrigeration device, when the box door rotates relative to the box body to open or close the storage space of the box body, the sliding door mechanism can drive the cabinet door to move relative to the box door in the width direction of the box door, so that in the embedded placement method of the refrigeration device and the cabinet, without affecting the user experience, it can avoid interference between the cabinet door and the cabinet during the process of opening the box door while ensuring coordination and aesthetics.

[0022] In addition to the technical problems solved by the present utility model described above, the technical features of the technical solutions constituted, and the advantages brought by the technical solutions with these technical features, the other technical features of the present utility model and the advantages brought by these technical features will be further described in conjunction with the accompanying drawings. Description of the Drawings

[0023] To more clearly illustrate the technical solutions in the embodiments of the present invention or 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 only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0024] Figure 1 It is a schematic structural diagram of a refrigerator in the related art placed together with a cabinet in an embedded manner. Among them, a decorative panel is provided outside the refrigerator door, and the refrigerator door is in the closed position.

[0025] Figure 2 It is a schematic structural diagram of a refrigerator in the related art placed together with a cabinet in an embedded manner. Among them, a decorative panel is provided outside the refrigerator door, and the refrigerator door is in the open position.

[0026] Figure 3 It is a schematic structural diagram of a refrigeration device provided with a door body device according to an embodiment of the present invention.

[0027] Figure 4 It is a schematic structural diagram when the door body device is installed according to an embodiment of the present invention.

[0028] Figure 5 It is an installation schematic diagram of the sliding mechanism of the door body device according to an embodiment of the present invention.

[0029] Figure 6 It is a schematic structural diagram from another perspective when the door body device is installed according to an embodiment of the present invention.

[0030] Figure 7 It is a partial structural schematic diagram of the door body device according to an embodiment of the present invention.

[0031] Figure 8 It is a schematic structural diagram of the sliding door mechanism in the door body device according to an embodiment of the present invention.

[0032] Figure 9 It is a partial structural schematic diagram of the sliding door mechanism in the door body device according to an embodiment of the present invention.

[0033] Figure 10 It is an exploded schematic diagram of a partial structure of the sliding door mechanism in the door body device according to an embodiment of the present invention.

[0034] Figure 11 It is a schematic structural diagram from another perspective of a partial structure of the sliding door mechanism in the door body device according to an embodiment of the present invention.

[0035] Figure 12 It is a schematic structural diagram of the upper housing in the guide rail of the door body device according to an embodiment of the present utility model.

[0036] Figure 13 It is a schematic structural diagram of the lower housing in the guide rail of the door body device according to an embodiment of the present utility model.

[0037] Figure 14 It is a schematic structural diagram of the sliding part in the sliding member of the sliding door assembly of the door body device according to an embodiment of the present utility model.

[0038] Figure 15 It is a schematic structural diagram of the protective shell of the door body device according to an embodiment of the present utility model.

[0039] Reference numerals:

[0040] 10, refrigerator; 11, refrigerator door; 20, cabinet; 30, decorative panel;

[0041] 100, box door; 110, box body; 111, hinge plate; 120, base; 130, protective shell; 131, through groove; 200, cabinet door; 210, avoidance groove; 220, recessed part; 300, sliding door mechanism; 310, traction assembly; 311, driving tooth part; 3111, driving gear; 3112, connecting shaft; 312, fixed tooth part; 313, transmission gear set; 3131, first gear; 3132, second gear; 3133, third gear; 320, sliding door assembly; 331, wire winding disc; 3311, first wire winding disc; 3312, second wire winding disc; 3313, first partition; 3314, second partition; 3315, third partition; 3316, fastener; 332, reversing wheel; 340, sliding member; 341, sliding part; 3411, installation groove; 3412, guide through hole section; 3413, limiting hole section; 3414, receiving groove; 342, connecting part; 351, first rope; 352, second rope; 400, guide rail; 410, upper housing; 411, guide groove; 420, lower housing; 500, connecting component; 510, first connecting piece; 520, second connecting piece; 521, connecting plate; 522, mating plate; 600, sliding mechanism; 610, pulley assembly; 611, pulley; 612, mounting seat; 6121, first plate part; 6122, second plate part; 6123, third plate part; 613, pin shaft; 620, slide rail assembly; 621, track member; 710, first cabinet body; 720, second cabinet body. Detailed implementation manners

[0042] The following further describes in detail the embodiments of the present utility model in conjunction with the accompanying drawings and examples. The following examples are used to illustrate the present utility model, but cannot be used to limit the scope of the present utility model.

[0043] In the description of the embodiments of the present utility model, it should be noted that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings. It is only for the convenience of describing the embodiments of the present utility model 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 thus cannot be understood as a limitation on the embodiments of the present utility model. In addition, the terms "first", "second", "third" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance. In addition, in the description of the present utility model, unless otherwise specified, the meanings of "multiple", "multiple roots", "multiple groups" are two or more.

[0044] In the description of the embodiments of the present utility model, it should be noted that unless otherwise clearly specified and limited, the terms "connected" and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the embodiments of the present utility model can be understood according to specific situations.

[0045] In the embodiments of the present utility model, unless otherwise clearly specified and limited, the first feature being "above" or "below" the second feature may be that the first and second features are in direct contact, or the first and second features are indirectly in contact through an intermediate medium. Moreover, the first feature being "above", "over" and "on" the second feature may be that the first feature is directly above or obliquely above the second feature, or merely indicates that the first feature has a higher horizontal height than the second feature. The first feature being "below", "beneath" and "under" the second feature may be that the first feature is directly below or obliquely below the second feature, or merely indicates that the first feature has a lower horizontal height than the second feature.

[0046] In the description of this specification, the descriptions referring to terms such as "one embodiment", "some embodiments", "example", "specific example", or "some examples" mean that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the embodiments of the present utility model. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. In addition, without contradiction, those skilled in the art can combine and combine the different embodiments or examples described in this specification and the features of different embodiments or examples.

[0047] In one embodiment according to the present utility model, a door body device and a refrigeration device are provided. The door body device is used for the refrigeration device. The door body device includes a cabinet door, a compartment door, a sliding mechanism, and a sliding door mechanism. When the refrigeration device is placed together with a cabinet in an embedded manner or directly placed in a cabinet, the compartment door is slidably provided with the cabinet door on the outside. When the compartment door is closed, the cabinet door can be flush with the door panel of the cabinet, which can ensure coordination and aesthetics. When the compartment door is opened, the sliding door mechanism can drive the cabinet door to move to avoid interference between the cabinet door and the door panel of the cabinet, and can improve the user experience. The following further describes the door body device and the refrigeration device in this embodiment with reference to Figures 3 to 15 the figures shown.

[0048] Specifically, as Figure 3 shown, the door body device in this embodiment includes: a compartment door 100, a cabinet door 200, a sliding mechanism 600, and a sliding door mechanism 300.

[0049] Among them, the compartment door 100 is rotatably connected to the box body 110 and is adapted to open or close the storage space of the box body 110; the cabinet door 200 is slidably provided on the outside of the compartment door 100 through the sliding mechanism 600; the sliding door mechanism 300 is configured to drive the cabinet door 200 to move relative to the compartment door 100 during the opening or closing process of the compartment door 100.

[0050] It can be understood that the door body device in this embodiment can be used for refrigeration devices such as refrigerators. Among them, the refrigeration device includes a box body 110, and the box body 110 forms a storage space, and items such as vegetables and fruits that need to be refrigerated or frozen can be placed in the storage space. Optionally, a refrigeration device and the like are also provided in the box body 110 of the refrigeration device, and the refrigeration device can perform refrigeration treatment on the storage space.

[0051] In this embodiment, the cabinet door 100 in the door body device is rotatably arranged on the cabinet body 110 of the refrigeration device. The cabinet door 100 can be used to open or close the storage space in the cabinet body 110. When the cabinet door 100 is in the closed position for closing the storage space, the storage space is in a closed state, and the items in the storage space can be refrigerated. When the cabinet door 100 is in the open position for opening the storage space, the storage space is in an open state, and the user can take out the items in the storage space.

[0052] For the convenience of describing the positional relationship between the various components, in this embodiment, as Figure 3 shown, the cabinet body 110 is generally constructed as a cuboid structure with a certain height. The cabinet body 110 can be placed on a horizontal plane. The cabinet body 110 has a height direction, a width direction, and a thickness direction that are perpendicular to each other. Among them, the height direction of the cabinet body 110 is parallel to the vertical direction, and the width direction and the thickness direction are located in the horizontal plane and are perpendicular to each other.

[0053] A storage space is provided inside the cabinet body 110. An opening is provided on the side of the cabinet body 110 in the thickness direction, and this opening communicates with the storage space. The cabinet door 100 is connected to the side of the cabinet body 110 in the thickness direction where this opening is provided. The cabinet door 100 extends along the width direction of the cabinet body 110. A hinge shaft extending in the vertical direction is connected to one side of the cabinet door 100 in the width direction of the cabinet body 110. The cabinet door 100 can be rotatably connected to the cabinet body 110 via this hinge shaft, so that the cabinet door 100 can open or close the storage space of the cabinet body 110.

[0054] Moreover, the cabinet door 100 is generally constructed as a flat plate-like structure with a certain thickness. The cabinet body 110 has a height direction, a width direction, and a thickness direction that are perpendicular to each other. Among them, the height direction of the cabinet body 110 is parallel to the vertical direction, and the width direction and the length direction are located in the horizontal plane and are perpendicular to each other. One side of the cabinet door 100 in the width direction can be connected to the cabinet body 110 via a hinge shaft. For example, as Figure 3 shown, a hinge shaft is connected to the right side of the cabinet door 100 in the width direction of the cabinet body 110, and the cabinet door 100 can be rotatably connected to the cabinet body 110 via this hinge shaft.

[0055] In the position state where the cabinet door 100 is in the position of closing the storage space of the cabinet body 110, the width direction of the cabinet door 100 is parallel to the width direction of the cabinet body 110, and the thickness direction of the cabinet door 100 is parallel to the thickness direction of the cabinet body 110.

[0056] Further, the cabinet door 200 can be a decorative door panel. The cabinet door 200 is configured as a flat plate-like structure with a certain thickness. The cabinet door 200 is connected to the outer side of the door 100 of the refrigerator that faces away from the cabinet body 110. When the refrigeration device is placed together with the cabinet in an embedded manner or directly placed in the cabinet, after the door 100 of the refrigerator is in the closed position, the cabinet door 200 can be flush with the door panel of the cabinet. That is, the outer wall surface of the cabinet door 200 that faces away from the door 100 of the refrigerator can be flush with the outer wall surface of the cabinet.

[0057] In an actual use scenario, the outer wall surface of the cabinet door 200 can be selected to have the same material and shape as the outer wall surface of the cabinet, and the same decoration can be attached to make the refrigeration device have sufficient coordination with the cabinet and ensure the aesthetics.

[0058] After the door device in this embodiment is installed on the cabinet body 110 of the refrigeration device, when the door 100 of the refrigerator rotates relative to the cabinet body 110 to open or close the storage space of the cabinet body 110, the sliding door mechanism 300 can drive the cabinet door 200 to move relative to the door 100 in the width direction of the door 100. Thus, in the case of an embedded placement method of the refrigeration device and the cabinet, without affecting the coordination, aesthetics, and user experience, interference between the cabinet door 200 and the cabinet can be avoided during the process of opening the door 100.

[0059] In this embodiment, the sliding mechanism 600 can be a structure such as a linear slide rail. For example, the sliding mechanism 600 can be arranged to extend along the width direction of the door 100 of the refrigerator, so that the cabinet door 200 can move along the width direction of the door 100 of the refrigerator. The sliding door mechanism 300 can drive the cabinet door 200 to move relative to the door 100 during the process of the door 100 rotating relative to the cabinet body 110.

[0060] The sliding door mechanism 300 can generate a translational driving force according to the rotation of the door 100 relative to the cabinet body 110, and this translational driving force can drive the cabinet door 200 to move relative to the door 100.

[0061] In one embodiment, the sliding door mechanism 300 includes a traction component 310 and a sliding door component 320. The sliding door component 320 is arranged on the door 100 of the refrigerator and is connected to the cabinet door 200. The traction component 310 is configured to drive the sliding door component 320 to act during the process of opening or closing the door 100 of the refrigerator, and then drive the cabinet door 200 to move relative to the door 100.

[0062] In the sliding door mechanism 300 of the present embodiment, the traction assembly 310 is connected between the cabinet door 100 and the sliding door assembly 320. The sliding door assembly 320 is disposed on the cabinet door 100 and is connected between the cabinet door 100 and the door 200. During the rotation of the cabinet door 100 relative to the cabinet body 110, the traction assembly 310 can drive the sliding door assembly 320 to act, and thereby drive the door 200 to move relative to the cabinet door 100.

[0063] As a specific implementation manner, the hinge includes a hinge plate and a hinge shaft disposed on the hinge plate. The hinge plate is disposed on the cabinet body 110, and the cabinet door 100 is rotatably disposed on the cabinet body through the hinge shaft; the traction assembly 310 includes a traction rod, a first rotating shaft fixing seat, and a second rotating shaft fixing seat; the first rotating shaft fixing seat is connected to the sliding door assembly, the second rotating shaft fixing seat is connected to the hinge plate, one end of the traction rod is rotatably connected to the first rotating shaft fixing seat, and the other end of the traction rod is rotatably connected to the second rotating shaft fixing seat; during the opening or closing of the cabinet door 100, the traction rod drives the sliding door assembly to act, and further drives the door 200 to move in the width direction of the cabinet door 100.

[0064] Wherein, the sliding door assembly includes: a first base, a first slider, a second slider, and a connecting member. A first guide rail is formed on one side of the first base, and a second guide rail is formed on the other side; the first slider is slidably disposed on the first guide rail, and the first rotating shaft fixing seat is connected to the first slider; the second slider is slidably disposed on the second guide rail and is connected to the door 200; both ends of the connecting member are respectively connected to the first slider and the second slider; during the opening or closing of the cabinet door 100, the traction rod drives the first slider to move on the first guide rail, and the first slider drives the second slider to move in the opposite direction on the second guide rail through the connecting member. Wherein, the connecting member includes: a first connecting member and a second connecting member. The first connecting member bypasses one end of the first base, and both ends are respectively connected to one end of the first slider and the second slider; the second connecting member bypasses the other end of the first base, and both ends are respectively connected to the other end of the first slider and the second slider.

[0065] Exemplarily, the traction assembly 310 can generate a rotational driving force based on the rotation of the cabinet door 100 relative to the cabinet body 110. The sliding door assembly 320 can receive the rotational driving force and generate a translational driving force, and then the sliding door assembly 320 uses the translational driving force to drive the door 200 to translate relative to the cabinet door 100.

[0066] Optionally, the door 200 can be slidably connected to the cabinet door 100 by means of a linear guide rail 400 and the like, and can move along the width direction of the cabinet door 100.

[0067] As a specific implementation, the traction assembly 310 may include a driving member and a driving wheel, the sliding door assembly 320 includes a driven wheel and a rack. The driving wheel is disposed on the driving member, the driving wheel and the driven wheel mesh with each other, the driven wheel meshes with the rack, the driving member is disposed on the cabinet door 100, the driven wheel is rotatably disposed on the cabinet door 100, and the rack extends along the width direction of the cabinet door 100 and is disposed on the cabinet door 200. During the rotation of the cabinet door 100 relative to the cabinet body 110, the driving member may be configured to drive the driving wheel to rotate according to the rotation angle of the cabinet door 100. During the rotation of the driving wheel, the driving wheel drives the driven wheel to rotate, and the driven wheel drives the rack to move in the width direction of the cabinet door 100, so that the cabinet door 200 moves relative to the cabinet door 100.

[0068] In addition to the above-mentioned electrically controlled implementation, the movement of the cabinet door 200 relative to the cabinet door 100 can also be achieved by means of a mechanical structure.

[0069] As a specific implementation, the cabinet door 100 is rotatably connected to the cabinet body 110 via a hinge shaft, and moreover, the hinge shaft is fixedly connected to the cabinet body 110. The traction assembly 310 may include a gear set, the sliding door assembly 320 includes a driven wheel and a rack. The gear set includes a plurality of meshing gears. One gear in the gear set is fixedly disposed on the hinge shaft, and this gear is coaxially disposed with the hinge shaft. Several other gears in the gear set are rotatably disposed on the cabinet door 100 and also mesh with the driven wheel. The driven wheel is rotatably disposed on the cabinet door 100, and the rack extends along the width direction of the cabinet door 100 and is disposed on the cabinet door 200. At this time, during the rotation of the cabinet door 100 relative to the cabinet body 110, the cabinet door 100 also rotates synchronously relative to the rotation axis. The gear set can rotate relative to the rotation axis and can drive the driven wheel to rotate. The driven wheel drives the rack to move in the width direction of the cabinet door 100, so that the cabinet door 200 moves relative to the cabinet door 100.

[0070] It can be understood that the above implementations are only exemplary descriptions. The traction assembly 310 can mainly obtain a rotational driving force according to the rotation of the cabinet door 100, and the sliding door assembly 320 can obtain this rotational driving force and convert it into a translational driving force for driving the cabinet door to move. Other methods can also be adopted in actual applications.

[0071] In actual use, when the door device in this embodiment is installed on the cabinet body 110 of the refrigeration device, during the rotation of the cabinet door 100 relative to the cabinet body 110, the sliding door mechanism 300 can drive the cabinet door 200 to move relative to the cabinet door 100. Thus, in the case of an embedded placement method of the refrigeration device and the cabinet, without affecting the coordination, aesthetics and the user experience, the interference between the cabinet door 200 and the cabinet can be avoided during the opening of the cabinet door 100.

[0072] To achieve the sliding connection between the cabinet door 200 and the box door 100, as Figure 4 shown, the sliding mechanism 600 includes a pulley assembly 610 and a slide rail assembly 620. One of the pulley assembly 610 and the slide rail assembly 620 is disposed on the box door 100, and the other is disposed on the cabinet door 200. The pulley assembly 610 includes a pulley 611. The slide rail assembly 620 is provided with a linear slide cavity. The rotation axis of the pulley 611 is perpendicular to the axis of the linear slide cavity, so that the pulley 611 and the linear slide cavity cooperate to form a rolling connection.

[0073] Exemplarily, the pulley assembly 610 is disposed on the cabinet door 200, and the slide rail assembly 620 is disposed on the box door 100.

[0074] More specifically, the pulley 611 in the pulley assembly 610 can be connected to the cabinet door 200. The slide rail assembly 620 is disposed on the top of the box door 100. The linear slide cavity in the slide rail assembly 620 extends along the width direction of the box door 100. The pulley 611 has a rotation axis that extends along the thickness direction of the box door 100. At this time, the rotation axis is perpendicular to the axis of the linear slide cavity. The pulley 611 is disposed in the linear slide cavity, and the pulley 611 can roll along the axis direction of the linear slide cavity.

[0075] Thus, through the above setting method, by using the cooperation structure of the pulley 611 and the slide rail, the cabinet door 200 can be slidably disposed outside the box door 100, and moreover, the cabinet door 200 can move in the width direction of the box door 100.

[0076] Of course, in other embodiments, according to the usage requirements, the pulley assembly 610 can also be disposed on the box door 100, and the slide rail assembly 620 can be disposed on the cabinet door 200.

[0077] Furthermore, as Figure 5 and Figure 6 shown, the slide rail assembly 620 includes a rail member 621 and a first mounting member. A linear slide cavity is formed on the rail member 621; the first mounting member is disposed at a position other than the linear slide cavity on the rail member 621, and the first mounting member is connected to the box door 100.

[0078] Exemplarily, the rail member 621 can be fixedly disposed on the top of the box door 100. The rail member 621 extends along the width direction of the box door 100. The rail member 621 can be configured as a U-shaped groove, and the opening of the U-shaped groove faces away from the cabinet door 200 in the thickness direction of the box door 100.

[0079] Specifically, the rail member 621 may include a vertical plate and two horizontal plates. The vertical plate and the two horizontal plates are both arranged to extend along the width direction of the cabinet door 100. The two horizontal plates are respectively vertically connected to the opposite two sides of the vertical plate in the height direction of the cabinet door 100. The linear sliding cavity is located between the two horizontal plates. At the same time, the pulley 611 in the pulley assembly 610 is also arranged between the two horizontal plates.

[0080] The first mounting member may be a structure such as a bolt. The rail member 621 can be fixed to the top of the cabinet door 100 by means of the first mounting member.

[0081] Optionally, extension plates are respectively arranged on one side of the two horizontal plates away from the vertical plate, and the two extension plates extend towards each other. Thus, after the pulley 611 is placed in the linear sliding cavity, the two extension plates and the vertical plate can limit the pulley 611 in the thickness direction of the cabinet door 100 to prevent the pulley 611 from falling off the linear sliding cavity.

[0082] In one embodiment, as Figure 5 and Figure 6 shown, the pulley assembly 610 further includes a mounting seat 612, a pin shaft 613 and a second mounting member; a second mounting member is arranged on the mounting seat 612, and the second mounting member is connected to the cabinet door 200; a shaft hole is arranged on the mounting seat 612, and the pin shaft 613 is rotatably inserted through the shaft hole. The pin shaft 613 is inserted through the center of the pulley 611, so that the pulley 611 is rotatably arranged on the mounting seat 612 through the pin shaft 613, and the pin shaft 613 is the rotation shaft of the pulley 611.

[0083] Exemplarily, the second mounting member may be a structure such as a bolt. The mounting seat 612 can be fixedly connected to the cabinet door 200 by means of the second mounting member. The mounting seat 612 is also provided with a shaft hole. The pin shaft 613 can extend and be inserted into the shaft hole along the thickness direction of the cabinet door 100. Moreover, the pin shaft 613 is inserted into the pulley 611, and the pulley 611 can rotate around the pin shaft 613.

[0084] Thus, through the above setting method, the effective installation of the pulley 611 can be realized.

[0085] Further, the pin shaft 613 is rotatably inserted through the shaft hole, that is, the pin shaft 613 can rotate in the shaft hole. At this time, in order to position the pin shaft 613, snap rings can be respectively arranged on both sides of the shaft hole on the pin shaft 613. Through the two snap rings, when the pin shaft 613 rotates relative to the shaft hole, the pin shaft 613 is prevented from falling off the shaft hole in the axial direction of the shaft hole. In this setting method, the roller can be fixedly connected to the pin shaft 613 or rotatably connected to the pin shaft 613.

[0086] Alternatively, the pin 613 can also be fixedly inserted in the shaft hole, in which case the pin 613 cannot move in the shaft hole. Accordingly, in this arrangement, the roller needs to be rotatably connected to the pin 613.

[0087] In one embodiment, Figure 5 and Figure 6 As shown, the mounting seat 612 includes a first plate portion 6121 and a second plate portion 6122 . The first plate portion 6121 and the second plate portion 6122 are arranged at an angle. The first plate portion 6121 is provided with a second mounting member, and the second plate portion 6122 is provided with an axial hole.

[0088] Exemplarily, the first plate portion 6121 can be extended along the thickness direction of the cabinet door 100, and the second plate portion 6122 can be extended along the height direction of the cabinet door 100. The first plate portion 6121 and the second plate portion 6122 are vertically connected. At this time, the mounting seat 612 is roughly formed as an L-shaped plate, and the second mounting member can be a structure such as a bolt. The first plate portion 6121 can be connected to the cabinet door 200 with the aid of the second mounting member. The second plate portion 6122 is provided with an axial hole, and the pin shaft 613 is inserted into the axial hole along the thickness direction of the cabinet door 100.

[0089] The second mounting member may also be a structure such as a bolt. In this case, the first plate portion 6121 is connected to the inner side of the cabinet door 200 through the second mounting member.

[0090] Correspondingly, a recessed portion 220 is provided on the inner side of the cabinet door 200 , and the recessed portion 220 is matched with the first plate portion 6121 , and the first plate portion 6121 is disposed in the recessed portion 220 .

[0091] Exemplarily, in the thickness direction of the cabinet door 100, a recessed portion 220 is provided on the inner side of the cabinet door 200 facing the cabinet door 100, the recessed portion 220 is sunken in the surface of the cabinet door 200, and the first plate portion 6121 is fixed in the recessed portion 220 by a second mounting member.

[0092] It can be understood that by providing a recessed portion 220 on the cabinet door 200, sufficient installation space can be reserved for the connection between the first plate portion 6121 and the cabinet door 200, so that when the cabinet door 200 is arranged on the outer side of the box door 100, the cabinet door 200 can better fit the box door 100, thereby reducing the gap between the cabinet door 200 and the box door 100 and achieving a better installation effect.

[0093] Furthermore, in order to allow the second plate portion 6122 to be more effectively connected to the cabinet door 200, as shown in FIG. Figure 6 As shown, a third plate portion 6123 is provided on a side of the first plate portion 6121 away from the second plate portion 6122 , and the third plate portion 6123 can be fitted in the recessed portion 220 on the inner side of the cabinet door 200 .

[0094] Optionally, the third plate portion 6123 may extend in the same direction as the second plate portion 6122. At this time, the first plate portion 6121, the second plate portion 6122, and the third plate portion 6123 can jointly form a U-shaped frame, and the rail member 621 can be disposed in the slot of the U-shaped frame.

[0095] Alternatively, the third plate portion 6123 may extend in a direction opposite to that of the second plate portion 6122. At this time, the first plate portion 6121, the second plate portion 6122, and the third plate portion 6123 can jointly form a Z-shaped frame.

[0096] Moreover, the slide rail assembly 620 is disposed on at least one of the top and the bottom of the box door 100.

[0097] It can be understood that the slide rail assembly 620 can be disposed on the top of the box door 100, or on the bottom of the box door 100, or the slide rail assemblies 620 are disposed on both the top and the bottom of the box door 100.

[0098] Moreover, when the slide rail assembly 620 is disposed on the box door 100, a pulley assembly 610 is correspondingly disposed on the top or the bottom of the cabinet door 200.

[0099] In one embodiment, as Figure 3 shown, the door body device, the box body 110, and the cabinet door 200 are configured to be disposed in the installation space formed between the first cabinet body 710 and the second cabinet body 720; during the opening or closing process of the box door 100, the sliding door mechanism 300 is configured to drive the cabinet door 200 to move a preset distance on the box door 100 so that the cabinet door 200 can avoid the side walls of the first cabinet body 710 and the second cabinet body 720;

[0100] Alternatively, the door body device and the box body 110 are configured to be disposed in the cabinet body; during the opening or closing process of the box door 100, the sliding door mechanism 300 is configured to drive the cabinet door 200 to move a preset distance on the box door 100 so that the cabinet door 200 can avoid the side walls of the cabinet body.

[0101] It can be understood that the refrigeration device includes the door body device and the box body 110.

[0102] In practice, as Figure 3As shown, when the refrigeration device with the door device and the cabinet 110 is placed between the adjacent first cabinet 710 and the second cabinet 720, a cabinet door 200 can be arranged on the outer side of the cabinet door 100 in the door device, and the cabinet door 200 can move relative to the cabinet door 100 along the width direction of the cabinet door 100. Optionally, when the cabinet door 100 is in the state of closing the storage space of the cabinet 110, the outer wall surface of the cabinet door 200 facing away from the cabinet door 100 can be flush with the outer wall surfaces of the first cabinet 710 and the second cabinet 720, and the outer wall surfaces of the first cabinet 710 and the second cabinet 720 and the outer wall surface of the cabinet door 200 facing away from the cabinet door 100 are in the same direction in the thickness direction of the cabinet 110.

[0103] At this time, during the rotation of the cabinet door 100 relative to the cabinet 110, the sliding door mechanism 300 can drive the cabinet door 200 to move, so that the cabinet door 200 can avoid the side walls of the first cabinet 710 and the second cabinet 720.

[0104] Alternatively, after the refrigeration device is placed in the cabinet, a cabinet door 200 can be arranged on the outer side of the cabinet door 100 of the door device, and the cabinet door 200 can move relative to the cabinet door 100. Optionally, when the cabinet door 100 is in the state of closing the storage space of the cabinet 110, the outer wall surface of the cabinet door 200 facing away from the cabinet door 100 can be flush with the outer wall surface of the cabinet, and the outer wall surface of the cabinet and the outer wall surface of the cabinet door 200 facing away from the cabinet door 100 are in the same direction in the thickness direction of the cabinet 110.

[0105] At this time, during the rotation of the cabinet door 100 relative to the cabinet 110, the sliding door mechanism 300 can drive the cabinet door 200 to move, so that the cabinet door 200 can avoid the side walls of the cabinet.

[0106] As described above, the sliding door mechanism 300 includes a traction component 310 and a sliding door component 320. In order to effectively drive the cabinet door 200 to move relative to the cabinet door 100, in one embodiment, as Figure 7 and Figure 8 shown, the traction component 310 includes a driving tooth part 311 and a fixed tooth part 312. The fixed tooth part 312 is adapted to be arranged on the cabinet 110, the driving tooth part 311 is arranged on the sliding door component 320, and the fixed tooth part 312 is meshed and connected with the driving tooth part 311.

[0107] Exemplarily, in order to enable the traction component 310 to drive the sliding door component 320 to act normally, the fixed tooth part 312 is fixedly arranged on the cabinet 110. The fixed tooth part 312 has a plurality of gears, the driving tooth part 311 is arranged on the sliding door component 320, and the driving tooth part 311 also has a plurality of gears. The gears in the fixed tooth part 312 are meshed and connected with the gears in the driving tooth part 311.

[0108] In actual use, after the door body device in this embodiment is installed on the box body 110 of the refrigeration device, during the rotation of the box door 100 relative to the box body 110, the fixed tooth portion 312 remains stationary, and the driving tooth portion 311 can move along with the box door 100. At the same time, under the meshing relationship between the fixed tooth portion 312 and the driving tooth portion 311, the driving tooth portion 311 can also rotate. At this time, during the rotation of the driving tooth portion 311, the sliding door assembly 320 can obtain a translational driving force by using the rotational driving force generated when the driving tooth portion 311 rotates, so as to drive the box door 100 to move relative to the cabinet door 200.

[0109] In one embodiment, as Figure 7 and Figure 8 shown, the traction assembly 310 further includes a transmission gear set 313. The transmission gear set 313 is rotatably arranged on the box door 100, and the fixed tooth portion 312 is meshed and connected with the driving tooth portion 311 through the transmission gear set 313.

[0110] Exemplarily, in order to ensure that the fixed tooth portion 312 can effectively drive the driving tooth portion 311 to rotate, the fixed tooth portion 312, the transmission gear set 313 and the driving tooth portion 311 are sequentially formed in a meshing connection. During the rotation of the fixed tooth portion 312, it can drive the driving tooth portion 311 to rotate through the transmission gear set 313. After that, the driving tooth portion 311 can generate a rotational driving force to drive the sliding door assembly 320 to move, so as to drive the cabinet door 200 to move relative to the box door 100.

[0111] Furthermore, as Figure 3 and Figure 7 shown, the box door 100 is adapted to be rotatably connected to the box body 110 through a hinge. The hinge includes a hinge plate 111, and the fixed tooth portion 312 is arranged on the side of the hinge plate 111 facing the box door 100.

[0112] Exemplarily, a plurality of mounting holes are provided at the first end of the hinge plate 111, and the fixed tooth portion 312 is provided at the second end. During actual installation, the first end of the hinge plate 111 can be fixed to the top or bottom of the box body 110 by means of bolts. The second end of the hinge plate 111 extends toward the box door 100 along the thickness direction of the box body 110, and the fixed tooth portion 312 is arranged at the second end of the hinge plate 111 facing the box door 100.

[0113] Moreover, the rotation axis of the box door 100 rotatably connected to the box body 110 can also be arranged at the second end of the hinge plate 111.

[0114] In one embodiment, the box door 100 is rotatably connected to the box body 110 through a rotating shaft. One end of the rotating shaft can be fixedly arranged at the second end of the hinge plate 111 by welding or the like, and the other end extends vertically and is inserted into the box door 100. Thus, the box door 100 can be rotated relative to the box body 110.

[0115] In one embodiment, as Figure 8 and Figure 9 shown, the fixed tooth portion 312 is an arc-shaped rack, and teeth are arranged at the concave surface of the arc-shaped rack. The driving tooth portion 311 is meshed and connected with the teeth.

[0116] Exemplarily, the concave surface of the arc-shaped rack can extend along the circumferential direction of the hinge shaft connecting the box door 100 and the box body 110. A plurality of teeth are sequentially arranged on the concave surface, and the driving tooth portion 311 is meshed and connected to the plurality of teeth on the concave surface.

[0117] Thus, during the rotation of the box door 100 relative to the box body 110, the transmission gear set 313 can rotate on the fixed tooth portion 312. The transmission gear set 313 transmits the rotational driving force to the driving tooth portion 311, so that the driving tooth portion 311 drives the sliding door assembly 320 to move.

[0118] To achieve transmission connection, as Figure 8 and Figure 9 shown, the transmission gear set 313 includes a first gear 3131, a second gear 3132 and a third gear 3133. The first gear 3131 is meshed and connected with the fixed tooth portion 312. The second gear 3132 and the third gear 3133 are coaxially connected, and the second gear 3132 is meshed and connected with the first gear 3131. The third gear 3133 is meshed and connected with the driving tooth portion 311.

[0119] Exemplarily, the box door 100 has a certain width. To achieve installation, the sliding door mechanism 300 includes a base 120. The base 120 is configured as a plate-like structure with a certain length. The base 120 is arranged on the box door 100 and extends along the width direction of the box door 100. The base 120 can be located near the hinge plate 111. For example, as Figure 7 shown, in this embodiment, the hinge plate 111 is connected to the top of the box body 110, and the fixed tooth portion 312 is arranged on the hinge plate 111, then the base 120 can be correspondingly arranged on the top of the box door 100. In other embodiments, when the fixed tooth portion 312 is arranged at the bottom of the box body 110, the base 120 also needs to be correspondingly arranged on the top of the box door 100.

[0120] In this embodiment, both the transmission gear set 313 and the driving tooth portion 311 in the traction assembly 310 are arranged on the base 120.

[0121] As an implementation, a plurality of hinge shafts extending in the vertical direction are provided on the base 120, and the first gear 3131 and the second gear 3132 are arranged on these hinge shafts and can rotate around their respective hinge shafts. As shown in Figure 8 and Figure 9 shown, the first gear 3131 meshes with the gear of the fixed tooth portion 312, the second gear 3132 meshes with the first gear 3131, the third gear 3133 is coaxially arranged and fixedly connected with the second gear 3132, and the third gear 3133 meshes with the driving tooth portion 311.

[0122] Thus, during the rotation of the door 100 relative to the box body 110, the first gear 3131 can rotate on the fixed tooth portion 312, the second gear 3132 can rotate driven by the first gear 3131, the third gear 3133 rotates synchronously with the second gear 3132, and the driving tooth portion 311 can also rotate driven by the third gear 3133, and finally the sliding door assembly 320 can be driven to move.

[0123] In order to adjust the rotation speed of the driving tooth portion 311, the tooth number ratio between the second gear 3132 and the third gear 3133 can be reasonably adjusted. For example, as shown in Figures 7 to 9 shown, during the rotation of the door 100, in order to increase the rotation speed of the driving tooth portion 311, the number of teeth of the second gear 3132 can be made less than the number of teeth of the third gear 3133.

[0124] Among them, the sliding door assembly 320 includes a rack, the rack is slidably arranged on the door 100 and is connected to the cabinet door 200, and the driving tooth portion 311 is meshed and connected with the rack. In addition, the rack can be slidably arranged on the door 100 through a guide rail.

[0125] Furthermore, in order to convert the rotational driving force transmitted by the traction assembly 310 into a translational driving force for driving the cabinet door 200 to move, in addition to the gear-rack structure that can be adopted as described above, a method of driving the sliding door assembly 320 to move by a rotating member driving a pulling rope can also be adopted.

[0126] Specifically, in this embodiment, as shown in Figure 8 and Figure 9 shown, the sliding door assembly 320 includes: a wire winding assembly, a sliding member 340 and a rope assembly.

[0127] Among them, the winding assembly includes a winding disk 331 and a reversing wheel 332, and the winding disk 331 and the reversing wheel 332 are arranged at intervals; a sliding member 340 is arranged between the winding disk 331 and the reversing wheel 332; the rope assembly includes a first rope 351 and a second rope 352, the first rope 351 is wound around the winding disk 331 along a first direction, the free end of the first rope 351 bypasses the reversing wheel 332 and is fixed to the sliding member 340, the second rope 352 is wound around the winding disk 331 along a second direction, the first direction and the second direction are opposite, and the free end of the second rope 352 is fixed to the sliding member 340; the traction assembly 310 is connected to the winding disk 331, and the sliding member 340 is connected to the cabinet door 200. During the opening or closing process of the box door 100, the traction assembly 310 drives the winding disk 331 to rotate, and then drives the cabinet door 200 to move relative to the box door 100 through the sliding member 340.

[0128] Exemplarily, for the convenience of installation, in the present embodiment, the sliding door assembly 320 can also be arranged on the base 120.

[0129] Such as Figure 8 and Figure 9 As shown, the winding disk 331 and the reversing wheel 332 can be arranged at intervals on the base 120 in the width direction of the box door 100. Among them, one end of the box door 100 in the width direction is rotatably connected to the box body 110 via a hinge shaft, and then the winding disk 331 can be located on the side close to the hinge shaft relative to the reversing wheel 332.

[0130] To achieve installation, a plurality of rotating shafts extending in the vertical direction are arranged on the base 120. The winding disk 331 and the reversing wheel 332 are respectively arranged on these rotating shafts and can rotate around their respective rotating shafts. The sliding member 340 is arranged between the winding disk 331 and the reversing wheel 332. The sliding member 340 is connected to the cabinet door 200, and the sliding member 340 can drive the cabinet door 200 to move in the width direction of the box door 100 during the movement process.

[0131] The first rope 351 is wound around the winding disk 331 along the first direction. Moreover, the free end of the first rope 351 extends from the winding disk 331. After this free end bypasses the reversing wheel 332, it is fixedly connected to the sliding member 340. At this time, when the winding disk 331 rotates in the second direction, the first rope 351 can be wound onto the winding disk 331, and at the same time, the free end of the first rope 351 will drive the sliding member 340 to move towards the reversing wheel 332.

[0132] The second rope 352 is wound around the winding disc 331 in the second direction, and the free end of the second rope 352 extends from the winding disc 331 and is directly fixedly connected to the sliding member 340. At this time, when the winding disc 331 rotates in the first direction, the second rope 352 can be wound onto the winding disc 331. At the same time, the free end of the second rope 352 will drive the sliding member 340 to move towards the winding disc 331.

[0133] Further, when the door 100 of the box rotates from the closed position closing the storage space towards the open position opening the storage space, the traction assembly 310 can drive the winding disc 331 to rotate in the second direction. At this time, the first rope 351 is wound onto the winding disc 331 and drives the sliding member 340 to move towards the reversing wheel 332. When the door 100 of the box rotates from the open position opening the storage space towards the closed position closing the storage space, the traction assembly 310 can drive the winding disc 331 to rotate in the first direction. At this time, the second rope 352 is wound onto the winding disc 331 and drives the sliding member 340 to move towards the winding disc 331.

[0134] It can be understood that since the winding disc 331 and the reversing wheel 332 are arranged at intervals in the width direction of the door 100 of the box, by the above setting method, during the rotation of the door 100 of the box relative to the box body 110, the cabinet door 200 can be driven to move relative to the door 100 of the box in the width direction of the door 100 of the box.

[0135] Exemplarily, in a specific usage scenario, as Figure 3 and Figure 7 shown, the first direction is the counterclockwise direction, and the second direction is the clockwise direction. At this time, the first rope 351 is wound around the winding disc 331 in the counterclockwise direction, and the second rope 352 is wound around the winding disc 331 in the clockwise direction.

[0136] Thus, in actual use, when the door 100 of the box rotates from the closed position closing the storage space towards the open position opening the storage space, the traction assembly 310 can drive the winding disc 331 to rotate in the clockwise direction. During the rotation of the winding disc 331 in the clockwise direction, the first rope 351 is wound onto the winding disc 331, the second rope 352 is unwound from the winding disc 331, and the sliding member 340 moves towards the reversing wheel 332, thereby driving the cabinet door 200 to move in the width direction of the door 100 of the box in a direction away from the winding disc 331;

[0137] When the door 100 of the box rotates from the open position for opening the storage space towards the closed position for opening the storage space, the traction assembly 310 can drive the winding disc 331 to rotate counterclockwise. During the counterclockwise rotation of the winding disc 331, the second rope 352 is wound onto the winding disc 331, the first rope 351 is unwound from the winding disc 331, and the sliding member 340 moves towards the winding disc 331, thereby driving the cabinet door 200 to move in the width direction of the box door 100 away from the reversing wheel 332.

[0138] In other embodiments, according to the installation position and usage requirements, the first direction can also be the clockwise direction and the second direction can be the counterclockwise direction.

[0139] Furthermore, in the present embodiment, when the traction assembly 310 includes the driving tooth portion 311, the driving tooth portion 311 is coaxially and fixedly connected to the winding disc 331. Of course, in other embodiments, in addition to the embodiment including the driving tooth portion 311, the traction assembly 310 can also take other forms.

[0140] Exemplarily, as Figure 10 shown, the driving tooth portion 311 includes a driving gear 3111 and a connecting shaft 3112. The winding disc 331 and the driving gear 3111 are coaxially connected via the connecting shaft 3112, and the winding disc 331 can rotate synchronously with the driving gear 3111.

[0141] As a way of implementation, the winding disc 331 and the driving gear 3111 can be arranged on the connecting shaft 3112 through a keyway structure, or the driving tooth portion 311 can also include a positioning pin, and the positioning pin is inserted into the winding disc 331 and the driving gear 3111 in parallel with the extending direction of the connecting shaft 3112. Thus, under the connection action of the keyway structure or the positioning pin, the winding disc 331 can rotate synchronously with the driving gear 3111.

[0142] In order to facilitate the installation of the first rope 351 and the second rope 352, as Figure 10 shown, the winding disc 331 includes a first winding disc 3311 and a second winding disc 3312 arranged in a stacked manner. The first rope 351 is wound around the first winding disc 3311 in the first direction, and the second rope 352 is wound around the second winding disc 3312 in the second direction.

[0143] Exemplarily, as Figure 10 shown, the first winding disc 3311, the second winding disc 3312 and the driving gear 3111 are coaxially connected via the connecting shaft 3112. Thus, driven by the driving gear 3111, the first winding disc 3311 and the second winding disc 3312 can rotate synchronously.

[0144] As a specific implementation, the traction assembly 310 includes a drive motor and a drive gear 3111. A gear is provided on the output shaft of the drive motor, and the gear is meshed and connected to the drive gear 3111. The first winding disc 3311, the second winding disc 3312 and the drive gear 3111 are coaxially connected via a connecting shaft 3112. Thus, driven by the drive motor, the first winding disc 3311 and the second winding disc 3312 can rotate synchronously.

[0145] As a specific implementation, the cabinet door 100 is rotatably connected to the cabinet body 110 via a hinge shaft. Moreover, the hinge shaft is fixedly connected to the cabinet body 110. The traction assembly 310 may include a gear set. The gear set includes a plurality of meshing gears. One gear in the gear set is fixedly provided on the hinge shaft, and this gear is coaxially arranged with the hinge shaft. Several other gears in the gear set are rotatably provided on the cabinet door 100. One gear in the gear set is fixedly provided on the winding disc 331. During the rotation of the cabinet door 100 relative to the cabinet body 110, the cabinet door 100 also rotates synchronously relative to the rotation axis. The gear set can drive the winding disc 331 to rotate in the first direction or the second direction. During the rotation of the winding disc 331, the sliding member 340 can be moved by pulling the first rope 351 or the second rope 352.

[0146] In one embodiment, the first rope 351 and the second rope 352 are spaced apart from each other along the height direction of the winding disc 331. The free end connection position of the first rope 351 on the sliding member 340 and the free end connection position of the second rope 352 on the sliding member 340 are at different heights.

[0147] It can be understood that the first winding disc 3311 and the second winding disc 3312 are spaced apart along the height direction of the connecting shaft 3112. At this time, the first rope 351 and the second rope 352 respectively connected to the first winding disc 3311 and the second winding disc 3312 can also be spaced apart along the axial direction of the connecting shaft 3112. By placing the first rope 351 and the second rope 352 at different heights respectively, the interference between the first rope 351 and the second rope 352 during the storage or unwinding process can be avoided.

[0148] In one embodiment, a first winding groove is provided on the outer periphery of the first winding disc 3311. The first winding disc 3311 is further provided with a first fixing groove. The first winding groove communicates with the first fixing groove through the notch of the first fixing groove. The fixed end of the first rope 351 is provided in the first fixing groove, and the first rope 351 is wound around the first winding groove in the first direction; and / or,

[0149] The outer periphery of the second winding disc 3312 is provided with a second winding groove, and the second winding disc 3312 is further provided with a second fixing groove. The second winding groove communicates with the second fixing groove through the notch of the second fixing groove. The fixed end of the second rope 352 is arranged in the second fixing groove, and the second rope 352 is wound around the second winding groove in the second direction.

[0150] Exemplarily, as Figure 7 shown, the first winding disc 3311 is configured as a circular plate-like structure with a certain thickness. The outer side wall of the first winding disc 3311 is provided with a first winding groove extending along its circumferential direction. Moreover, the first winding disc 3311 is further provided with a first fixing groove extending from the circumferential outer wall towards the radial inner part. The notch of the first fixing groove communicates with the first fixing groove. The fixed end of the first rope 351 is arranged in the first fixing groove, and the first rope 351 is wound around the first winding groove in the first direction. For example, the first direction is the counterclockwise direction.

[0151] Optionally, in order to achieve fixation, the fixed end of the first rope 351 is provided with a first clamping block, and this first clamping block can be clamped in the first fixing groove. By means of this first clamping block, it is possible to prevent the first rope 351 from falling off during the rotation of the first winding disc 3311.

[0152] Similarly, as Figure 7 shown, the second winding disc 3312 is configured as a circular plate-like structure with a certain thickness. The outer side wall of the second winding disc 3312 is provided with a second winding groove extending along its circumferential direction. Moreover, the second winding disc 3312 is provided with a second fixing groove extending from the circumferential outer wall towards the radial inner part. The notch of the second fixing groove communicates with the second fixing groove. The fixed end of the second rope 352 is arranged in the second fixing groove, and the second rope 352 is wound around the second winding groove in the second direction.

[0153] Optionally, in order to achieve fixation, the fixed end of the second rope 352 is provided with a second clamping block, and this second clamping block can be clamped in the second fixing groove. By means of this second clamping block, it is possible to prevent the second rope 352 from falling off during the rotation of the second winding disc 3312.

[0154] In one embodiment, in order to effectively avoid interference between the first rope 351 and the second rope 352, and at the same time facilitate the storage of the first rope 351 and the second rope 352, as Figure 10 shown, the winding assembly further includes a first partition 3313, a second partition 3314 and a third partition 3315.

[0155] Among them, the first partition plate 3313, the first winding disc 3311, the second partition plate 3314, the second winding disc 3312 and the third partition plate 3315 are stacked. The first partition plate 3313 and the second partition plate 3314 can form a first annular accommodating groove for accommodating the first rope 351 on the outer periphery of the first winding disc 3311; the second partition plate 3314 and the third partition plate 3315 can form a second annular accommodating groove for accommodating the second rope 352 on the outer periphery of the second winding disc 3312.

[0156] Exemplarily, the first partition plate 3313, the first winding disc 3311, the second partition plate 3314, the second winding disc 3312 and the third partition plate 3315 are sequentially stacked and attached. At this time, the first winding disc 3311 is clamped between the first partition plate 3313 and the second partition plate 3314, and the second winding disc 3312 is clamped between the second partition plate 3314 and the third partition plate 3315.

[0157] In actual use, during the process of the driving gear 3111 driving the first winding disc 3311 and the second winding disc 3312 to rotate, the first rope 351 and the second rope 352 connected thereto can be respectively received in the first annular accommodating groove and the second annular accommodating groove.

[0158] Exemplarily, the first partition plate 3313, the second partition plate 3314 and the third partition plate 3315 can all have a circular plate-like structure with a certain thickness. Moreover, the dimensions of the first partition plate 3313 and the second partition plate 3314 in the radial direction are both larger than the dimensions of the first partition plate 3313 in the radial direction, and the dimensions of the second partition plate 3314 and the third partition plate 3315 in the radial direction are both larger than the dimensions of the second partition plate 3314 in the radial direction.

[0159] Furthermore, in order to ensure the effective fixation between the first partition plate 3313, the first winding disc 3311, the second partition plate 3314, the second winding disc 3312 and the third partition plate 3315, the first partition plate 3313, the first winding disc 3311, the second partition plate 3314, the second winding disc 3312 and the third partition plate 3315 can be simultaneously arranged on the connecting shaft 3112.

[0160] Moreover, as Figure 10 shown, the winding assembly further includes a fastener 3316, and the fastener 3316 is sequentially inserted through the first partition plate 3313, the first winding disc 3311, the second partition plate 3314, the second winding disc 3312 and the third partition plate 3315.

[0161] Exemplarily, the fastener 3316 can be a positioning pin. The fastener 3316 is sequentially inserted through the first partition plate 3313, the first winding disc 3311, the second partition plate 3314, the second winding disc 3312, and the third partition plate 3315 along the axial direction of the winding disc 331. Thus, during the process of the driving tooth portion 311 driving the winding disc 331 to rotate, the first partition plate 3313, the first winding disc 3311, the second partition plate 3314, the second winding disc 3312, and the third partition plate 3315 can rotate synchronously.

[0162] Optionally, the number of the fasteners 3316 can be two, and the two fasteners 3316 are spaced apart in the circumferential direction of the connecting shaft 3112.

[0163] In one embodiment, in order to effectively guide and limit the movement of the sliding member 340, as Figure 7 and Figure 8 shown, the door body device further includes a guide rail 400. The guide rail 400 is arranged on the cabinet door 100, and the sliding member 340 is movably arranged on the guide rail 400.

[0164] Exemplarily, as Figure 8 shown, the guide rail 400 is fixedly arranged on the base 120. The guide rail 400 extends along the width direction of the cabinet door 100. The sliding member 340 is arranged in the guide rail 400. The sliding member 340 can move along the extending direction of the guide rail 400. Moreover, the cabinet door 200 is connected to the sliding member 340. Thus, when the sliding member 340 moves on the guide rail 400, the cabinet door 200 can also move relative to the cabinet door 100.

[0165] In one embodiment, as Figure 9 and Figure 11 shown, the sliding member 340 includes a sliding portion 341 and a connecting portion 342 which are connected. The free ends of the first rope 351 and the second rope 352 are both connected to the sliding portion 341. The connecting portion 342 is connected to the cabinet door 200. The guide rail 400 is formed with a guiding space and a guiding groove 411 communicating with the guiding space. The sliding portion 341 is slidably arranged in the guiding space. The connecting portion 342 is partially exposed outside the guide rail 400 through the guiding groove 411 and slides along the length direction of the guiding groove 411.

[0166] Exemplarily, the inside of the guide rail 400 has a guiding space. The sliding portion 341 in the sliding member 340 is arranged in the guiding space. The first rope 351 and the second rope 352 are both connected to the sliding portion 341. Under the pulling of the first rope 351 or the second rope 352, the sliding portion 341 can move along the extending direction of the guide rail 400 in the guiding space.

[0167] As Figure 8As shown, the guide rail 400 is further provided with a guide groove 411. One end of the connecting portion 342 is inserted into the guiding space through the guide groove 411 and fixedly connected to the sliding portion 341, and the other end of the connecting portion 342 is connected to the cabinet door 200.

[0168] In actual use, during the rotation of the winding disc 331 to drive the movement of the first rope 351 or the second rope 352, the first rope 351 or the second rope 352 can pull the sliding portion 341 to move in the guiding space, and the connecting portion 342 can move synchronously in the guide groove 411 along with the guiding portion, thereby driving the cabinet door 200 to move relative to the box door 100.

[0169] In one embodiment, the guide rail 400 has opposite first and second sides. The first side is connected to the box door 100, and the guide groove 411 is provided on the second side.

[0170] Exemplarily, as Figure 8 shown, the guide rail 400 includes an upper housing 410 and a lower housing 420. As Figure 12 and Figure 13 shown, the upper housing 410 and the lower housing 420 can be respectively formed by stamping and folding a metal sheet. The upper housing 410 and the lower housing 420 can be connected to each other to form a guide rail 400 with a certain length. A guiding space can be formed between the upper housing 410 and the lower housing 420, and moreover, the upper housing 410 is provided with the guide groove 411.

[0171] During actual installation, the lower housing 420 can be first arranged on the base 120, then the sliding member 340 is arranged on the upper housing 410, and then the upper housing 410 is connected to the top of the lower housing 420, while enabling the connecting portion 342 of the sliding member 340 to be inserted into the guide groove 411 of the upper housing 410. Finally, the connecting portion 342 is connected to the cabinet door 200.

[0172] Thus, the sliding member 340 can move in the guiding space formed between the upper housing 410 and the lower housing 420, and moreover, the connecting portion 342 of the sliding member 340 can extend to the outside of the guiding space to drive the cabinet door 200 to move.

[0173] In one embodiment, the sliding portion 341 includes a mounting surface and a guiding surface connected to the mounting surface. The mounting surface faces the winding disc 331 or the reversing wheel 332, the guiding surface is attached to the inner wall of the guiding space, and the free ends of both the first rope 351 and the second rope 352 are fixed to the mounting surface.

[0174] Exemplarily, as Figure 11 and Figure 14As shown, in the width direction of the box door 100, the mounting surface is located on the side of the sliding part 341 facing the winding disc 331, and the guiding surface extends in the width direction of the box door 100 and is located on the circumferential side of the sliding part 341 facing the inner wall of the track.

[0175] During actual installation, after the sliding part 341 is installed in the guiding space formed by the upper housing 410 and the lower housing 420, the guiding surface of the sliding part 341 extending parallel to the width direction of the box door 100 can be attached to the inner walls of the upper housing 410 and the lower housing 420 located in the guiding space. Moreover, the free ends of the first rope 351 and the second rope 352 are simultaneously connected to the mounting surface.

[0176] In other embodiments, in the width direction of the box door 100, the mounting surface can also be located on the side of the sliding part 341 facing the reversing wheel 332, and the free ends of the first rope 351 and the second rope 352 are fixedly connected to this mounting surface.

[0177] Alternatively, in the width direction of the box door 100, the number of mounting surfaces is two. In the width direction of the box door 100, the two mounting surfaces are respectively located on both sides of the sliding part 341 facing the winding disc 331 and the reversing wheel 332, and the free ends of the first rope 351 and the second rope 352 can be respectively fixedly connected to the two mounting surfaces.

[0178] In one embodiment, as Figure 11 and Figure 14 shown, the mounting surface is provided with a mounting groove 3411. The height direction of the mounting groove 3411 is the same as the height direction of the winding disc 331. The free ends of the first rope 351 and the second rope 352 are both inserted into the mounting groove 3411, and the free end of the first rope 351 is located above the free end of the second rope 352.

[0179] It can be understood that by providing the mounting groove 3411 and making the free ends of the first rope 351 and the second rope 352 located at different heights respectively, it is convenient to fix the first rope 351 and the second rope 352. At the same time, under the combined action of the first winding disc 3311 and the second winding disc 3312, it can be ensured that the first rope 351 and the second rope 352 are located at different positions in the height direction of the box door 100, further avoiding interference.

[0180] In order to be able to fix the free ends of the first rope 351 and the second rope 352 to the sliding part 341, as Figure 14As shown, the installation groove 3411 includes a through-hole section 3412 and a limiting-hole section 3413. The extending direction of the limiting-hole section 3413 is consistent with the height direction of the installation groove 3411. The extending direction of the limiting-hole section 3413 is arranged at an angle with the extending direction of the through-hole section 3412. The opening degree of the through-hole section 3412 is greater than that of the limiting-hole section 3413. The free ends of the first rope 351 and the second rope 352 can both move within the through-hole section 3412 and are limited within the limiting-hole section 3413.

[0181] Exemplarily, the through-hole section 3412 can be perpendicular to the limiting-hole section 3413. At this time, the through-hole section 3412 and the limiting-hole section 3413 together form a T-shaped groove.

[0182] For convenient fixation, a first limiting block is provided at the free end of the first rope 351. The first limiting block can be integrally formed with the first rope 351, or the first limiting block can be sleeved on the free end of the first rope 351 and be restricted to the free end of the first rope 351 when knotted at the free end of the first rope 351. The dimension in the radial direction of the first limiting block is greater than the diameter of the first rope 351, and the dimension in the radial direction of the first limiting block is less than the opening degree of the limiting-hole section 3413 and greater than the opening degree of the through-hole section 3412.

[0183] During actual installation, the free end of the first rope 351 can be connected to the sliding part 341 by means of the through-hole section 3412 first, and the first limiting block is placed on the side close to the free end of the first rope 351 relative to the installation surface. Then, the first rope 351 is moved from the through-hole section 3412 to the limiting-hole section 3413, and the first limiting block is snapped into the sliding part 341. After that, the first rope 351 can be used to pull the sliding part 341.

[0184] Similarly, a second limiting block is provided at the free end of the second rope 352. The second limiting block can be integrally formed with the second rope 352, or the second limiting block can be sleeved on the free end of the second rope 352 and be restricted to the free end of the second rope 352 when knotted at the free end of the second rope 352. The dimension in the radial direction of the second limiting block is greater than the diameter of the second rope 352, and the dimension in the radial direction of the second limiting block is less than the opening degree of the limiting-hole section 3413 and greater than the opening degree of the through-hole section 3412.

[0185] During actual installation, the free end of the second rope 352 can be connected to the sliding part 341 by means of the through-hole section 3412 first, and the second limiting block is placed on the side close to the free end of the second rope 352 relative to the installation surface. Then, the second rope 352 is moved from the through-hole section 3412 to the limiting-hole section 3413, and the second limiting block is snapped into the sliding part 341. After that, the second rope 352 can be used to pull the sliding part 341.

[0186] It can be understood that the first rope 351 and the second rope 352 need to pull the sliding part 341 in opposite directions respectively. Therefore, the free ends of the first rope 351 and the second rope 352 are respectively located on both sides of the limiting hole section 3413. Moreover, the limiting blocks connected to the free ends of the first rope 351 and the second rope 352 are also respectively located on both sides of the limiting hole section 3413.

[0187] Furthermore, in order to enable the limiting block to be easily snapped into the installation groove 3411, as Figure 14 shown, a receiving groove 3414 is also provided on the sliding part 341. The receiving groove 3414 is located on the side of the installation surface. For example, the receiving groove 3414 can be provided on the guiding surface of the sliding part 341. The receiving groove 3414 communicates with the limiting hole section 3413, and the opening degree of the receiving groove 3414 is larger than the size of the limiting block.

[0188] During actual installation, for example, when connecting the free end of the first rope 351 to the sliding part 341, the limiting block provided at the free end of the first rope 351 can be placed in the receiving groove 3414, then the first rope 351 is placed in the guiding through-hole section 3412, and finally the first rope 351 is moved to the limiting hole section 3413, so as to realize the installation of the first rope 351.

[0189] After the free ends of the first rope 351 and the second rope 352 are respectively placed in the limiting hole section 3413, the free ends of the first rope 351 and the second rope 352 can be respectively toggled up and down, so that the free ends of the first rope 351 and the second rope 352 are located at both ends of the limiting hole section 3413 in the height direction of the box door 100, so as to be located at different positions in the height direction of the box door 100.

[0190] It can be understood that by providing the receiving groove 3414 as described above, the limiting block can be installed more conveniently. Moreover, since the receiving groove 3414 can accommodate the first limiting block and the second limiting block, at this time, the opening degrees of the guiding through-hole section 3412 and the limiting hole section 3413 only need to be slightly larger than the diameters of the first rope 351 and the second rope 352.

[0191] Moreover, as Figure 7 shown, the winding disc 331 is rotatably arranged on the top of the box door 100, and the reversing wheel 332 and the guide rail 400 are both fixed on the top of the box door 100. At this time, the base 120 is also correspondingly arranged on the top of the box door 100. The winding disc 331 is rotatably arranged on the base 120, and the reversing wheel 332 and the guide rail 400 are also arranged on the base 120.

[0192] In other embodiments, according to the actual installation requirements, the wire reel 331 can be rotatably arranged at the bottom of the cabinet door 100 correspondingly, and the reversing wheel 332 and the guide rail 400 are both fixed at the bottom of the cabinet door 100.

[0193] Alternatively, to ensure the connection effect and ensure that the cabinet door 200 can move in the width direction of the cabinet door 100, wire reels 331 are provided at both the top and bottom of the cabinet door 100, as well as other structures such as reversing wheels 332 and guide rails 400 corresponding to the wire reels 331.

[0194] In one embodiment, to achieve the connection between the sliding member 340 and the cabinet door 200, as Figure 7 and Figure 8 shown, the door body device further includes a connection assembly 500. The connection portion 342 and the cabinet door 200 are connected together through the connection assembly 500. The connection assembly 500 is switchable between a combined state and a separated state. Among them, the connection assembly 500 includes a first connecting member 510 provided on the connection portion 342 and a second connecting member 520 provided on the cabinet door 200. In the combined state, the first connecting member 510 cooperates with the second connecting member 520. In the separated state, the first connecting member 510 is disengaged from the second connecting member 520.

[0195] Exemplarily, the connection assembly 500 includes a first connecting member 510 and a second connecting member 520. Among them, the first connecting member 510 can be connected to the sliding portion 341. When the sliding portion 341 moves along the width direction of the cabinet door 100, the sliding portion 341 can drive the first connecting member 510 to move, thereby driving the cabinet door 200 to move. The second connecting member 520 can be connected to the cabinet door 200, and the first connecting member 510 and the second connecting member 520 can cooperate with each other through structures such as pins or magnetic members.

[0196] In actual use, in the state where the first connecting member 510 and the second connecting member 520 cooperate with each other, the first connecting member 510 and the second connecting member 520 are combined with each other. At this time, the second connecting member 520 can move synchronously with the first connecting member 510, thereby driving the cabinet door 200 to move relative to the cabinet door 100. In the state where the first connecting member 510 and the second connecting member 520 are disengaged from each other, the first connecting member 510 and the second connecting member 520 are separated from each other. At this time, the cabinet door 200 can be disassembled from the outside of the cabinet door 100.

[0197] Exemplarily, the connection portion 342 of the sliding member 340 can be connected to the first connection member 510 in a snap-fit manner. For example, the first connection member 510 is provided with a snap-fit groove extending along the height direction or thickness direction of the door 100, and the connection portion 342 can be directly snap-fitted into the snap-fit groove, so that when the sliding member 340 moves along the width direction of the door 100, the first connection member 510 can be driven to move, and the first connection member 510 can also be easily separated from the sliding member 340.

[0198] For example, in order to save installation space, Figure 6 and Figure 8 As shown, the second connecting member 520 includes a connecting plate 521 and a matching plate 522 connected to the connecting plate 521 at an angle, the connecting plate 521 is connected to the inner side of the cabinet door 200, and the matching plate 522 is detachably connected to the first connecting member 510.

[0199] Exemplarily, the connecting plate 521 is extended along the thickness direction of the box door 100, and the mating plate 522 is extended along the height direction of the box door 100. The connecting plate 521 and the mating plate 522 are vertically connected to each other, and the two together form an L-shaped plate. The connecting plate 521 can be connected to the first connecting member 510 by means of structures such as pins or magnetic parts, and the mating plate 522 is fixedly connected to the cabinet door 200 on the side facing away from the box door 100 by means of structures such as bolts.

[0200] Therefore, through the above-mentioned setting method, an effective connection between the sliding member 340 and the cabinet door 200 can be achieved, and the second connecting member 520 is constructed as an L-shaped structure, which can save space.

[0201] Furthermore, in order to facilitate the installation of the second connecting member 520, as Figure 7 As shown, an avoidance groove 210 is provided on the inner side of the cabinet door 200 , and the connecting plate 521 is disposed in the avoidance groove 210 .

[0202] Exemplarily, in the thickness direction of the cabinet door 200, an avoidance groove 210 is provided on the inner side of the cabinet door 200 facing the box door 100, and the avoidance groove 210 is recessed in the surface of the cabinet door 200. The avoidance groove 210 can also be extended along the height direction of the cabinet door 200. The matching plate 522 in the second connecting member 520 is fixed in the avoidance groove 210 by means of bolts and other structures.

[0203] In practice, by setting the avoidance groove 210 on the cabinet door 200, sufficient installation space can be reserved for the connection between the second connecting member 520 and the cabinet door 200, so that when the cabinet door 200 is set on the outside of the box door 100, the cabinet door 200 can better fit the box door 100, so as to reduce the gap between the cabinet door 200 and the box door 100 and achieve a better installation effect.

[0204] Furthermore, to prevent external debris from entering the sliding door mechanism 300 and the guide rail 400, as Figure 3 and Figure 4 shown, the door body device further includes a protective housing 130. The protective housing 130 is disposed on top of the base 120, and an accommodation space can be formed between the protective housing 130 and the base 120. The sliding door mechanism 300 and the guide rail 400 are both disposed in this accommodation space.

[0205] Exemplarily, as Figure 15 shown, the protective housing 130 can be made by stamping sheet metal parts, or can be made by injection molding using plastic materials. The protective housing 130 is provided with a through groove 131, and the position and size of the through groove 131 correspond to the position and size of the guiding groove 411 in the guide rail 400.

[0206] During actual use, the protective housing 130 can be fixedly connected to the base 120 by means of structures such as bolts. The connecting portion 342 of the sliding member 340 can extend to the outside of the accommodation space through the through groove 131 on the protective housing 130, so as to be connected to the connecting assembly 500. Moreover, since the through groove 131 corresponds to the guiding groove 411, it can be ensured that the sliding member 340 can move along the width direction of the box door 100, thereby driving the cabinet door 200 to move.

[0207] Furthermore, to achieve the sliding connection between the cabinet door 200 and the box door 100, as Figure 3 and Figure 4 shown, the door body device further includes a sliding mechanism 600. The cabinet door 200 is slidably disposed outside the box door 100 through the sliding mechanism 600.

[0208] Exemplarily, the sliding mechanism 600 can be a structure such as a linear slide rail. For example, the sliding mechanism 600 can extend along the width direction of the box door 100, so that the cabinet door 200 can move along the width direction of the box door 100.

[0209] As described above, in this embodiment, a refrigeration device is further provided. The refrigeration device includes a box body 110 and the door body device in the above embodiment. The box door 100 is rotatably connected to the box body 110 and is adapted to open or close the storage space of the box body 110.

[0210] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention 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 for some of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A door body device, characterized in that, Comprising: A box door (100), rotatably connected to a box body (110), adapted to open or close a storage space of the box body (110); A cabinet door (200) and a sliding mechanism (600), the cabinet door (200) being slidably disposed outside the box door (100) through the sliding mechanism (600); A sliding door mechanism (300), configured to drive the cabinet door (200) to move relative to the box door (100) during the opening or closing process of the box door (100).

2. The door body device according to claim 1, characterized in that, The sliding mechanism (600) includes a pulley assembly (610) and a slide rail assembly (620). One of the pulley assembly (610) and the slide rail assembly (620) is disposed on the box door (100), and the other is disposed on the cabinet door (200). The pulley assembly (610) includes a pulley (611). The slide rail assembly (620) is provided with a linear slide cavity. The rotation axis of the pulley (611) is perpendicular to the axis of the linear slide cavity, so that the pulley (611) and the linear slide cavity cooperate to form a rolling connection.

3. The door body device according to claim 2, characterized in that, The slide rail assembly (620) includes a rail member (621) and a first mounting member. The linear slide cavity is formed on the rail member (621). The first mounting member is disposed at a position of the rail member (621) other than the linear slide cavity, and the first mounting member is connected to the box door (100).

4. The door body device according to claim 2, characterized in that, The pulley assembly (610) further includes a mounting seat (612), a pin shaft (613), and a second mounting member. The second mounting member is disposed on the mounting seat (612), and the second mounting member is connected to the cabinet door (200). A shaft hole is disposed on the mounting seat (612). The pin shaft (613) is rotatably disposed through the shaft hole. The pin shaft (613) is disposed through the center of the pulley (611), so that the pulley (611) is rotatably disposed on the mounting seat (612) through the pin shaft (613), and the pin shaft (613) is the rotation axis of the pulley (611).

5. The door body device according to claim 4, characterized in that, The mounting seat (612) includes a first plate portion (6121) and a second plate portion (6122). The first plate portion (6121) and the second plate portion (6122) are disposed at an angle. The second mounting member is disposed on the first plate portion (6121), and the shaft hole is disposed on the second plate portion (6122).

6. The door body device according to claim 5, characterized in that, The first plate portion (6121) is connected to the inner side of the cabinet door (200) through the second mounting member.

7. The door body device according to claim 6, characterized in that, A recessed portion (220) is disposed on the inner side of the cabinet door (200). The recessed portion (220) is adapted to the first plate portion (6121), and the first plate portion (6121) is disposed in the recessed portion (220).

8. The door body device according to claim 2, characterized in that, The slide rail assembly (620) is disposed on at least one of the top and the bottom of the box door (100).

9. The door body device according to claim 1, characterized in that The sliding door mechanism (300) includes a sliding door assembly (320) and a traction assembly (310). The sliding door assembly (320) includes a sliding member (340), a wire winding assembly, and a rope assembly. The wire winding assembly includes a wire winding disc (331) and a reversing pulley (332). The wire winding disc (331) and the reversing pulley (332) are arranged at intervals. The sliding member (340) is arranged between the wire winding disc (331) and the reversing pulley (332). The rope assembly includes a first rope (351) and a second rope (352). The first rope (351) is wound around the wire winding disc (331) in a first direction. The free end of the first rope (351) bypasses the reversing pulley (332) and is fixed to the sliding member (340). The second rope (352) is wound around the wire winding disc (331) in a second direction. The first direction and the second direction are opposite. The free end of the second rope (352) is fixed to the sliding member (340). The sliding member (340) is connected to the cabinet door (200). The traction assembly (310) is configured to drive the wire winding disc (331) to rotate during the opening or closing process of the box door (100).

10. A refrigeration device, characterized in that, Comprising: A box body (110) forming a storage space; The door device according to any one of claims 1 to 9, wherein the box door (100) is rotatably connected to the box body (110) and is adapted to open or close the storage space of the box body (110).