Bottle holder assembly and refrigerator
Patent Information
- Application Number
- CN202521789748.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-21
- Publication Date
- 2026-09-25
- Estimated Expiration
- 2035-08-21
AI Technical Summary
[0003]本实用新型的主要目的是提出一种瓶托组件及冰箱,旨在解决现有的瓶托组件内瓶体容易倾倒或者掉落的问题
[0026]本实用新型提供的瓶托组件,在冰箱门体的内侧面设置瓶托,以形成储物空间,瓶托的顶部呈敞开设置,以供用户自所述储物空间内取放物品。通过在瓶托的储物空间内设置可沿门体厚度方向活动的第一夹持部,能够根据放入物品的大小灵活调整夹持状态。当活动远离冰箱门体内侧面时,第一夹持部可将物品抵紧于相对的第一侧壁,有效避免物品在冰箱门体开关过程中因晃动而倾倒、碰撞,大大提升了物品存放的稳定性,尤其适合存放瓶装饮料、酱料等易倾倒的物品。其次,当第一夹持部活动靠近内侧面时,能松开对物品的夹持,方便用户轻松取放物品,操作便捷,提升了用户使用的便利性。同时,这种设计无需对瓶托的整体结构进行大幅改动,仅通过增设可活动的夹持结构,就在保证瓶托原有储物功能的基础上,增强了对不同尺寸物品的适配性,适用范围更广,为用户提供了更灵活、可靠的储物解决方案。
Smart Images

Figure CN224801938U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of refrigerator technology, and in particular to a bottle holder assembly and a refrigerator. Background Technology
[0002] Refrigerators are common household appliances. To increase storage space and make it easier to access items, refrigerator door interiors typically have bottle trays. Existing bottle trays generally have an opening at the top and are fixed to the refrigerator door interior using hooks or similar structures. Because refrigerator bottle trays are usually not designed to be very tall, and to accommodate bottles of various sizes, their width is often slightly larger. Therefore, vibrations generated when opening and closing the refrigerator door can easily cause bottles to tip over or fall out, causing inconvenience to the user. Utility Model Content
[0003] The main purpose of this utility model is to propose a bottle holder assembly and a refrigerator, which aims to solve the problem that bottles in existing bottle holder assemblies are prone to tipping over or falling off.
[0004] To achieve the above objectives, this utility model proposes a bottle holder assembly, disposed on the inner side of a refrigerator door, comprising:
[0005] A bottle holder, disposed on the inner side and forming a storage space, the bottle holder having a first sidewall opposite to the inner side, and the top of the bottle holder being open to allow a user to retrieve or place items from the storage space; and,
[0006] The clamping structure includes a first clamping part disposed within the storage space. The first clamping part is movable along the thickness direction of the door body, and when it moves away from the inner side, it presses the item against the first side wall, and when it moves closer to the inner side, it releases the item.
[0007] Preferably, the storage space has two opposing second sidewalls in the width direction of the door;
[0008] The first clamping part extends along the width direction of the door body, and at least one end of it is slidably mounted on the corresponding second side wall.
[0009] Preferably, the first clamping part includes a frame and a rib. The frame extends along the width direction of the door body, and a protrusion is provided on at least one side of the frame in the width direction of the door body. The protrusion is slidably installed on the corresponding second side wall. The rib is provided on the frame and extends along the width direction of the door body and connects the two frame edges of the frame.
[0010] Preferably, the clamping structure further includes a clamping plate located in the storage space. The clamping plate is disposed on the side of the frame away from the inner side and is slidably installed on the frame. The clamping plate can move along the width direction of the door.
[0011] Preferably, the bottle holder includes a base plate and a surrounding plate. The surrounding plate is disposed on one side of the base plate and surrounds the three sides of the base plate to form an opening at the exposed side of the base plate. When the bottle holder is disposed on the inner side, the opening faces the inner side so that the surrounding plate, the base plate and the inner side can together enclose the storage space.
[0012] The first sidewall is formed on the surface of the enclosure facing the inner side.
[0013] Preferably, the enclosure includes a first side panel disposed opposite to the inner side panel, and two second side panels connected to the first side panel, wherein the two second side panels are disposed opposite to each other in the width direction of the door body;
[0014] The refrigerator door has two protruding ribs on its inner side surface. The two protruding ribs are arranged side by side with a gap in the width direction of the door. The two surfaces opposite to the two protruding ribs are respectively provided with snap-fit parts.
[0015] In the two second side plates, the two sides away from the first side plate are bent relative to each other to form two third side plates. The third side plates are arranged parallel to the first side plates, and each third side plate has a protruding plate on the side facing the inner side. The two opposite sides of the two protruding plates are respectively provided with mating parts. The two protruding plates are inserted between the two protruding ribs so that the mating parts on them are engaged with the snap-fit parts on the protruding ribs.
[0016] Preferably, the bottle holder assembly further includes a drive structure, the drive structure including a movable drive part, the drive part being driven to connect to the first clamping part, so as to drive the first clamping part to move along the thickness direction of the door body.
[0017] Preferably, the drive structure includes a motor and a transmission unit, the output axis of the motor is arranged along the width direction of the door body, and the transmission unit drives the motor and the first clamping part to drive the first clamping part to move along the thickness direction of the door body;
[0018] The drive unit includes the output shaft of the motor.
[0019] Preferably, the transmission part includes a gear and a rack that mesh with each other. The gear is sleeved on the output shaft of the motor and rotates coaxially with the output shaft. The rack is disposed on an inner wall of the storage space in the width direction of the door and can slide along the thickness direction of the door.
[0020] One end of the first clamping part is connected to the rack, and the other end is slidably mounted on the other inner wall of the storage space in the width direction of the door.
[0021] This utility model also proposes a refrigerator, comprising:
[0022] main body;
[0023] The door body is pivotally connected to the main body; and,
[0024] The aforementioned bottle holder assembly is located on the inner side of the door body.
[0025] The technical solution provided by this utility model has at least the following advantages:
[0026] This utility model provides a bottle holder assembly with a bottle holder installed on the inner side of the refrigerator door to form a storage space. The top of the bottle holder is open, allowing users to retrieve and place items from the storage space. A first clamping part, movable along the thickness of the door, is provided within the storage space of the bottle holder, allowing for flexible adjustment of the clamping state according to the size of the items placed inside. When the clamping part moves away from the inner side of the refrigerator door, it holds the items firmly against the opposite first side wall, effectively preventing items from tipping over or colliding due to shaking during the opening and closing of the refrigerator door, greatly improving the stability of the stored items. This is especially suitable for storing bottled beverages, sauces, and other easily tipped-over items. Furthermore, when the first clamping part moves closer to the inner side, it releases the clamp, allowing users to easily retrieve and place items, improving ease of use and convenience. Simultaneously, this design does not require significant modifications to the overall structure of the bottle holder; simply by adding a movable clamping structure, it enhances the adaptability to items of different sizes while maintaining the original storage function of the bottle holder, broadening its applicability and providing users with a more flexible and reliable storage solution. Attached Figure Description
[0027] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0028] Figure 1A schematic diagram of the structure of an embodiment of a bottle holder assembly provided by this utility model;
[0029] Figure 2 for Figure 1 A schematic diagram of the motion of the drive structure and the first clamping part when the bottle holder assembly is pressed against the item;
[0030] Figure 3 for Figure 1 A schematic diagram of the motion of the bottle holder assembly, driving structure, and first clamping part when releasing the item;
[0031] Figure 4 for Figure 1 A schematic diagram of the bottle holder assembly (from another perspective).
[0032] Explanation of icon numbers:
[0033] 100 Bottle holder assembly; 1 bottle holder; 11 Storage space; 12 First side wall; 13 Second side wall; 14 Base plate; 15 Enclosure; 151 First side plate; 152 Second side plate; 153 Third side plate; 154 Protruding plate; 16 Opening; 2 Clamping structure; 21 First clamping part; 211 Frame; 212 Rib; 213 Protrusion; 22 Second clamping part; 221 Clamping plate; 3 Mating part; 4 Drive structure; 41 Motor; 42 Transmission part; 421 Gear; 422 Rack; F1 Thickness direction; F2 Width direction; F3 Height direction.
[0034] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0035] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0036] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicators will also change accordingly.
[0037] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the meaning of "and / or" throughout the text includes three parallel solutions; for example, "A and / or B" includes solution A, solution B, or a solution where both A and B are satisfied simultaneously. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.
[0038] Refrigerators are common household appliances. To increase storage space and make it easier to access items, refrigerator door interior walls are typically equipped with bottle trays for storage. To prevent bottles from tipping over or falling out due to vibrations when the refrigerator door is opened or closed, this invention improves the bottle tray assembly. The following description, in conjunction with the accompanying drawings, will primarily focus on the bottle tray assembly.
[0039] Please see Figures 1 to 3 The bottle holder assembly 100 includes a bottle holder 1, which is disposed on the inner side and forms a storage space 11. The top of the bottle holder 1 is open to allow the user to take items from or place them in the storage space 11. This increases the storage capacity of the refrigerator.
[0040] The bottle holder 1 has a first sidewall 12 opposite to the inner side. The bottle holder 1 also includes a clamping structure 2, which includes a first clamping part 21 disposed within the storage space 11. The first clamping part 21 is movable along the thickness direction F1 of the door body, and when it moves away from the inner side, it presses the item against the first sidewall 12, and when it moves closer to the inner side, it releases the item.
[0041] In the bottle holder assembly 100 provided by this utility model, a first clamping part 21 that can move along the thickness direction F1 of the door is provided in the storage space 11 of the bottle holder 1, which can flexibly adjust the clamping state according to the size of the item placed in. When the movement is away from the inner side of the refrigerator door, the first clamping part 21 can press the item against the opposite first side wall 12, effectively preventing the item from tipping over or colliding due to shaking during the opening and closing of the refrigerator door, greatly improving the stability of the item storage, and is especially suitable for storing bottled beverages, sauces and other items that are easy to tip over.
[0042] Secondly, when the first clamping part 21 moves closer to the inner side, it can release the clamp on the item, making it easy for the user to pick up and put down the item, which is convenient and improves the user's convenience. At the same time, this design does not require major changes to the overall structure of the bottle holder 1. By simply adding the movable clamping structure 2, it enhances the adaptability to items of different sizes while ensuring the original storage function of the bottle holder 1, making it more applicable and providing users with a more flexible and reliable storage solution.
[0043] This utility model does not impose specific limitations on the structure of the first clamping part 21. In one embodiment, multiple independent placement positions are formed within the storage space 11, and the first clamping part 21 includes multiple independent clamping members, each of which is provided corresponding to one of the placement positions for clamping and fixing the items within the placement position.
[0044] In another embodiment, the storage space 11 is a single unit without separate placement positions. In this case, the first clamping part 21 is also integral. The storage space 11 has two opposing second sidewalls 13 along the width direction F2 of the door. The first clamping part 21 extends along the width direction F2 of the door, and at least one end is slidably mounted on the corresponding second sidewall 13.
[0045] Specifically, the first clamping part 21 includes a frame 211 and a rib 212. The frame 211 extends along the width direction F2 of the door body. At least one side of the frame 211 in the width direction F2 of the door body has a protrusion 213. The protrusion 213 is slidably installed on the corresponding second side wall 13. The rib 212 is provided on the frame 211. The rib 212 extends along the width direction F2 of the door body and connects the two frame edges of the frame 211.
[0046] In other words, the first clamping part 21 adopts a design that combines a frame 211 and a rib 212. The frame 211 extends along the width direction F2 of the door, and the rib 212 also extends along the same direction and connects the two frame edges of the frame 211. This structure can significantly enhance the overall rigidity of the first clamping part 21, prevent it from deforming during the clamping of items or activities, and ensure the structural reliability for long-term use.
[0047] The frame 211 has a protrusion 213 on at least one side in the width direction F2 of the door body that is slidably installed on the corresponding second side wall 13. The cooperation between the protrusion 213 and the second side wall 13 forms a stable sliding guide structure, which makes the movement of the first clamping part 21 along the thickness direction F1 of the door body more stable and smooth, reduces jamming, and improves the user's operating experience.
[0048] In some applications, after placing items in the storage space 11, the first clamping part 21 can move away from the inner side of the refrigerator door, pressing the items against the opposite first side wall 12, thereby achieving the pressing of the items in the door thickness direction F1. However, when the width of the items in the storage space 11 is smaller than the width of the storage space 11, the items still have room to move within the storage space 11.
[0049] To prevent items in storage space 11 from swaying or tipping over in the width direction F2 of the door when the user opens or closes the door, please refer to one embodiment. Figure 4 The clamping structure 2 further includes a second clamping part 22 located in the storage space 11. The second clamping part 22 is located on the side of the first clamping part 21 away from the inner side and can move along the width direction F2 of the door.
[0050] In this embodiment, the first clamping part 21 mainly clamps the item along the thickness direction F1 of the door, while the second clamping part 22 can be adapted to the size difference of the item in the width direction F2 by moving along the width direction F2. When storing a narrower item, the second clamping part 22 is folded inward to reduce the gap; when storing a wider item, it is pulled outward to increase the gap. The operation is simple and the adaptation range is wider.
[0051] The first clamping part 21 and the second clamping part 22 form a bidirectional clamping system in the thickness direction F1 and the width direction F2. This allows the bottle holder assembly 100 to more accurately fix items of different shapes and sizes. The first clamping part 21 prevents the items from shaking along the thickness direction F1 of the door, while the second clamping part 22 prevents them from shifting in the width direction F2. When the refrigerator door is frequently opened and closed, causing the items inside to shake, the bidirectional clamping can offset the impact force from multiple directions, reducing collisions and friction between items, lowering the risk of bottle breakage and packaging damage, and better protecting the integrity of the stored items.
[0052] Furthermore, this bidirectional adjustable structure does not interfere with each other. The first clamping part 21 and the second clamping part 22 function independently in their respective directions, which not only ensures the specificity of clamping but also improves the overall ease of use.
[0053] Specifically, the first clamping part 21 includes a frame 211 that extends along the width direction F2 of the door. The second clamping part 22 includes a clamping plate 221 that is slidably mounted on the frame 211 and can slide along the width direction F2 of the door.
[0054] Continuing from the above, the first clamping part 21 adopts a design combining a frame 211 and a rib 212. The frame 211 extends along the width direction F2 of the door, and the rib 212 also extends along the same direction and connects the two sides of the frame 211. The frame 211 structure of the first clamping part 21 provides an installation base for the clamping plate 221. The design of the clamping plate 221 slidingly installed on the frame 211 makes the two form an organic whole, which not only ensures the stability of the second clamping part 22 moving along the width direction F2, but also makes the realization of the bidirectional clamping function more compact and efficient, avoiding the complex structure of setting up an independent slide rail, and saving the storage space 11 occupied.
[0055] In one embodiment, please refer to Figure 1 and Figure 4 The bottle holder 1 includes a base plate 14 and a surrounding plate 15. The surrounding plate 15 is disposed on one side of the base plate 14 and surrounds the three sides of the base plate 14, forming an opening 16 at the exposed side of the base plate 14. When the bottle holder 1 is disposed on the inner side, the opening 16 faces the inner side, so that the surrounding plate 15, the base plate 14, and the inner side can together enclose and form the storage space 11. The surface of the surrounding plate 15 facing the inner side forms the first sidewall 12.
[0056] In other words, in this embodiment, the bottle holder 1 includes a base plate 14 and a surrounding plate 15. The surrounding plate 15 is disposed on one side of the base plate 14 and surrounds the three sides of the base plate 14. When the bottle holder 1 is installed on the inner side, the surrounding plate 15, the base plate 14, and the inner side can together enclose and form the storage space 11.
[0057] Specifically, please refer to Figure 1 The enclosure 15 includes a first side plate 151 disposed opposite to the inner side surface, and two second side plates 152 connecting the first side plate 151. The two second side plates 152 are disposed opposite to each other in the width direction F2 of the door body. The bottle holder assembly 100 includes a snap-fit part and a mating part 3, one of which is disposed on the inner side surface, and the other is disposed on the second side plate 152.
[0058] Please see Figure 1 The bottle holder assembly 100 includes two protruding ribs (not shown in the figure) protruding from the inner side. The two ribs are arranged side by side at intervals in the width direction F2 of the door body, and the snap-fit portion is provided on the two opposite surfaces of the two ribs.
[0059] Of the two second side plates 152, the two sides away from the first side plate 151 are bent relative to each other to form two third side plates 153. The third side plates 153 are arranged parallel to the first side plates 151, and each third side plate 153 has a protruding plate 154 on the side facing the inner side. The mating parts 3 are provided on the opposite side surfaces of the two protruding plates 154. The two protruding plates 154 are inserted between the two protruding ribs so that the mating parts 3 on them engage with the snap-fit parts on the protruding ribs.
[0060] In this embodiment, please refer to Figure 1 Two ribs protrude from the inner side to form a receiving groove. The two sides of the two second side plates 152 are bent relative to each other to form two third side plates 153. Each third side plate 153 has a protruding plate 154 protruding from its side facing the inner side. The two protruding plates 154 are inserted into the receiving groove. Simultaneously, snap-fit parts and mating parts 3 are correspondingly provided on the ribs and the protruding plates 154. When the two protruding plates 154 are inserted into the receiving groove, the snap-fit parts and mating parts 3 engage, thereby allowing the bottle holder 1 to be installed on the inner side.
[0061] This invention does not specifically limit the movement of the first clamping part 21. In one embodiment, the first clamping part 21 can be manually adjusted. After the user places an item in the storage space 11, the user can manually adjust the first clamping part 21 so that the first clamping part 21 moves away from the inner side of the refrigerator door, and the first clamping part 21 can hold the item against the opposite first side wall 12. After the user removes the item from the storage space 11, the user can manually adjust the first clamping part 21 so that the first clamping part 21 moves closer to the inner side of the refrigerator door, and the first clamping part 21 can release its grip on the item.
[0062] In another embodiment, please refer to Figure 1 and Figure 2 The bottle holder assembly 100 further includes a drive structure 4, which includes a movable drive part. The drive part is connected to the first clamping part 21 to drive the first clamping part 21 to move along the thickness direction F1 of the door body.
[0063] Specifically, the first clamping part 21 extends along the width direction F2 of the door body, and its two ends are slidably mounted on the inner wall of the storage space 11. The driving structure 4 includes a motor 41 and a transmission part 42. The output axis of the motor 41 is arranged along the width direction F2 of the door body. The transmission part 42 drives the motor 41 and the first clamping part 21 to drive the first clamping part 21 to move along the thickness direction F1 of the door body. The driving part includes the output shaft of the motor 41.
[0064] In this embodiment, the bottle holder assembly 100 further includes a motor 41 and a transmission part 42. The motor 41 is mounted on the inner wall of the storage space 11, and the output shaft of the motor 41 is arranged along the width direction F2 of the door. The transmission part 42 drives the motor 41 and the first clamping part 21. When the output shaft of the motor 41 rotates clockwise, the transmission part 42 drives the first clamping part 21 to move away from the inner side of the refrigerator door, and the first clamping part 21 can press the item against the opposite first side wall 12. When the output shaft of the motor 41 rotates counterclockwise, the transmission part 42 drives the first clamping part 21 to move closer to the inner side of the refrigerator door, and the first clamping part 21 can release the clamp on the item.
[0065] This invention does not impose specific limitations on the structure of the transmission part 42. The transmission part 42 only needs to be able to convert the rotation of the output shaft of the motor 41 into the linear motion of the first clamping part 21. For example, the transmission part 42 can be a worm gear structure, a screw and nut structure, or a gear 421 and rack 422 structure.
[0066] In one embodiment, the transmission unit 42 includes a gear 421 and a rack 422 that mesh with each other. The gear 421 is sleeved on the output shaft of the motor 41 and rotates coaxially with the output shaft. The rack 422 is disposed on one of the inner walls and can slide along the thickness direction F1 of the door body. One end of the first clamping part 21 is connected to the rack 422, and the other end is slidably mounted on the other inner wall.
[0067] In this embodiment, the bottle holder assembly 100 further includes a motor 41, and a meshing gear 421 and rack 422. The gear 421 is sleeved on the output shaft of the motor 41, and the rack 422 is slidably mounted on the inner side of the door. When the output shaft of the motor 41 rotates clockwise, it drives the gear 421 to rotate, thereby causing the rack 422 to slide along the thickness direction F1 of the door, which in turn allows the first clamping part 21 to move away from the inner side of the refrigerator door, and the first clamping part 21 can press the item against the opposite first sidewall 12.
[0068] When the output shaft of the motor 41 reverses, it drives the gear 421 to rotate, thereby causing the rack 422 to slide along the thickness direction F1 of the door body, so that the first clamping part 21 moves closer to the inner side of the refrigerator door body, and the first clamping part 21 can release the clamping of the item.
[0069] This utility model also provides a refrigerator. The refrigerator includes a main body, a door, and a bottle holder assembly 100. The main body forms a cavity with an opening on one side in its thickness direction F1. The door is located on the opening side of the main body and is pivotally connected to the main body, and the pivot axis of the door is set along the height direction F3 of the main body. When the door rotates relative to the main body, it can open or close the opening. The door has an inner side surface near the opening. The bottle holder assembly 100 is disposed on the inner side surface.
[0070] It should be noted that the bottle tray assembly 100 is configured as described above, which includes all the technical features of the bottle tray assembly 100. Therefore, the refrigerator also includes all the technical features of the bottle tray assembly 100, and thus has the technical effects brought about by all the technical features described above.
[0071] By providing a first clamping part 21 that can move along the thickness direction F1 of the door within the storage space 11 of the bottle holder 1, the clamping state can be flexibly adjusted according to the size of the items placed inside. When the movement moves away from the inner side of the refrigerator door, the first clamping part 21 can press the items firmly against the opposite first side wall 12, effectively preventing items from tipping over or colliding due to shaking during the opening and closing of the refrigerator door, greatly improving the stability of the stored items, and is especially suitable for storing bottled beverages, sauces and other easily tipped-over items.
[0072] Secondly, when the first clamping part 21 moves closer to the inner side, it can release the clamp on the item, making it easy for the user to pick up and put down the item, which is convenient and improves the user's convenience. At the same time, this design does not require major changes to the overall structure of the bottle holder 1. By simply adding the movable clamping structure 2, it enhances the adaptability to items of different sizes while ensuring the original storage function of the bottle holder 1, making it more applicable and providing users with a more flexible and reliable storage solution.
[0073] The above description is only a preferred embodiment of the present utility model and does not limit the patent scope of the present utility model. All equivalent structural transformations made under the concept of the present utility model and using the contents of the present utility model specification and drawings, or direct / indirect applications in other related technical fields, are included in the patent protection scope of the present utility model.
Claims
1. A bottle holder assembly, disposed on the inner side of a refrigerator door, characterized in that, include: A bottle holder is provided on the inner side and forms a storage space. The bottle holder has a first sidewall opposite to the inner side and the top of the bottle holder is open to allow the user to take items out of the storage space. as well as, The clamping structure includes a first clamping part disposed within the storage space. The first clamping part is movable along the thickness direction of the door body, and when it moves away from the inner side, it presses the item against the first side wall, and when it moves closer to the inner side, it releases the item.
2. The bottle holder assembly according to claim 1, characterized in that, The storage space has two opposing second side walls in the width direction of the door; The first clamping part extends along the width direction of the door body, and at least one end of it is slidably mounted on the corresponding second side wall.
3. The bottle holder assembly according to claim 2, characterized in that, The first clamping part includes a frame and a rib. The frame extends along the width direction of the door body. The frame has a protrusion on at least one side of the door body in the width direction. The protrusion is slidably mounted on the corresponding second side wall. The rib is provided on the frame and extends along the width direction of the door body and connects the two frame edges of the frame.
4. The bottle holder assembly according to claim 3, characterized in that, The clamping structure also includes a clamping plate located in the storage space. The clamping plate is located on the side of the frame away from the inner side and is slidably installed on the frame. The clamping plate can move along the width direction of the door.
5. The bottle holder assembly according to claim 1, characterized in that, The bottle holder includes a base plate and a surrounding plate. The surrounding plate is located on one side of the base plate and surrounds the three sides of the base plate to form an opening at the exposed side of the base plate. When the bottle holder is located on the inner side, the opening faces the inner side so that the surrounding plate, the base plate and the inner side can together enclose the storage space. The first sidewall is formed on the surface of the enclosure facing the inner side.
6. The bottle holder assembly according to claim 5, characterized in that, The enclosure includes a first side panel disposed opposite to the inner side panel, and two second side panels connected to the first side panel, the two second side panels being disposed opposite to each other in the width direction of the door body; The refrigerator door has two protruding ribs on its inner side surface. The two protruding ribs are arranged side by side with a gap in the width direction of the door. The two surfaces opposite to the two protruding ribs are respectively provided with snap-fit parts. In the two second side plates, the two sides away from the first side plate are bent relative to each other to form two third side plates. The third side plates are arranged parallel to the first side plates, and each third side plate has a protruding plate on the side facing the inner side. The two opposite sides of the two protruding plates are respectively provided with mating parts. The two protruding plates are inserted between the two protruding ribs so that the mating parts on them are engaged with the snap-fit parts on the protruding ribs.
7. The bottle holder assembly according to claim 1, characterized in that, The bottle holder assembly further includes a drive structure, which includes a movable drive unit that drives the first clamping unit to move along the thickness direction of the door body.
8. The bottle holder assembly according to claim 7, characterized in that, The drive structure includes a motor and a transmission unit. The output axis of the motor is arranged along the width direction of the door body. The transmission unit drives the motor and the first clamping part to drive the first clamping part to move along the thickness direction of the door body. The drive unit includes the output shaft of the motor.
9. The bottle holder assembly according to claim 8, characterized in that, The transmission unit includes a gear and a rack that mesh with each other. The gear is sleeved on the output shaft of the motor and rotates coaxially with the output shaft. The rack is located on an inner wall of the storage space in the width direction of the door and can slide along the thickness direction of the door. One end of the first clamping part is connected to the rack, and the other end is slidably mounted on the other inner wall of the storage space in the width direction of the door.
10. A refrigerator, characterized in that, include: main body; The door body is pivotally connected to the main body; and, The bottle holder assembly as described in any one of claims 1-9, wherein the bottle holder assembly is disposed on the inner side of the door body.