A baffle device applied to a refrigerator drawer, a refrigerator drawer and a vehicle

CN224730921UActive Publication Date: 2026-09-08YINWANG INTELLIGENT TECHNOLOGIES CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202521893353.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-02
Publication Date
2026-09-08
Estimated Expiration
2035-09-02

AI Technical Summary

Technical Problem

车载冰箱包括用于盛装物品的冰箱抽屉,在将物品放置到冰箱抽屉内后,如果物品未放满,冰箱抽屉内还存在剩余空间,则在行车过程中,物品容易在车辆行驶振动的影响下发生移动或滚动,或者因相互碰撞或与冰箱抽屉的内壁碰撞而产生异响,影响乘员的乘坐体验

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224730921U_ABST
    Figure CN224730921U_ABST
Patent Text Reader

Abstract

The utility model relates to vehicle technical field discloses a kind of grid blocking device, refrigerator drawer, vehicle applied to refrigerator drawer.The grid blocking device includes slide rail, first grid blocking piece and first locking mechanism.Slide rail is set to the inner wall of refrigerator drawer and extends along first direction;First grid blocking piece is slidably arranged in slide rail, and first grid blocking piece can extend along second direction.First grid blocking piece can cut off refrigerator drawer in first direction.First locking mechanism is arranged between first grid blocking piece and slide rail, and the first locking mechanism includes locking state and unlocking device, which can lock first grid blocking piece with slide rail in locking state, and first grid blocking piece can slide relative to slide rail in unlocking state.The grid blocking device can separate the space in refrigerator drawer, and adjust the size of the separated space to adapt to the size of article, so as to limit the movement of article, reduce the abnormal sound of article due to movement or rolling, or collision, etc., improve the ride experience of occupant.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of vehicle technology, and in particular to a divider device for a refrigerator drawer, a refrigerator drawer, and a vehicle. Background Technology

[0002] To meet the multi-functional needs of vehicle users, equipping vehicles with in-vehicle refrigerators has become a standard option for some vehicles. In-vehicle refrigerators provide refrigeration and freezing functions for passengers while the vehicle is in motion, meeting their needs for keeping items fresh during the journey. In-vehicle refrigerators include drawers for storing items. If the drawer is not full after items are placed inside, and there is still space inside, items are prone to moving or rolling due to vibrations from the vehicle's movement, or causing noise due to collisions with each other or the inner walls of the drawer, affecting the passenger experience. Utility Model Content

[0003] This utility model provides a divider device for refrigerator drawers, refrigerator drawers, and vehicles to restrict the movement of items stored in the refrigerator drawer and reduce abnormal noises caused by the items moving, rolling, or colliding.

[0004] In a first aspect, this utility model provides a divider device for a refrigerator drawer, comprising a slide rail, a first divider member, and a first locking mechanism. The slide rail extends along a first direction and can be disposed on the inner wall of the refrigerator drawer; the first divider member extends along a second direction, intersecting the first direction; the first divider member is slidably disposed on the slide rail and can be used to divide the refrigerator drawer in the first direction; the first locking mechanism is disposed between the first divider member and the slide rail, and includes a locking state and an unlocking device. The first locking mechanism is used to lock the first divider member to the slide rail in the locked state and to allow the first divider member to slide relative to the slide rail in the unlocked state.

[0005] In this invention, the first divider can divide the internal space of the refrigerator drawer. In the unlocked state of the first locking mechanism, the first divider can slide relative to the slide rail to change the size of the divided storage space, adapting the storage space to the size of different items. Furthermore, by utilizing the locking function of the first locking mechanism in the locked state, the first divider can confine items within the divided storage space. That is, the first divider can restrict the movement of items in the first direction, thereby reducing abnormal noises caused by movement, rolling, or collisions, and improving the passenger experience.

[0006] In some implementations, there are two slide rails arranged opposite each other, and the two ends of the first stop can be slidably mounted on the two slide rails respectively to improve the sliding stability of the first stop.

[0007] In some embodiments, the first locking mechanism may include a first elastic element. The slide rail includes a first inner wall and a second inner wall disposed opposite to each other, extending along a first direction; the end of a first blocking member is disposed between the first and second inner walls, and the first blocking member is spaced from the second inner wall by the first elastic element, and the first blocking member is fixedly connected to the first elastic element. When the first elastic element is in a released or partially released state, the first blocking member abuts against the first inner wall under the elastic force of the first elastic element, and the static friction generated between the first blocking member and the first inner wall can lock the first blocking member in the slide rail; when the first blocking member is subjected to a pressing force towards the second inner wall and moves away from the first inner wall, the first elastic element is compressed, the first blocking member separates from the first inner wall, and the first blocking member can slide along the first direction under pushing or pulling action.

[0008] In some implementations, the roughness of the first inner wall is greater than that of the second inner wall. Thus, when the first locking mechanism is in the locked state, there is a relatively large static friction between the first inner wall and the first stop member, allowing the first stop member to be reliably locked to the slide rail; while when the first locking mechanism is in the unlocked state, the sliding friction between the second inner wall and the first elastic member is relatively small, allowing the first stop member and the first elastic member to slide smoothly relative to the slide rail.

[0009] In some implementations, there are multiple first dividers arranged along a first direction, and each first divider is slidably mounted on a slide rail. Multiple first dividers can divide the refrigerator drawer into more storage spaces, thus allowing various items to be contained within different spaces and improving the containment effect.

[0010] In some embodiments, the divider device further includes a second divider extending along a first direction and slidably connected to the first divider along a second direction. The second divider is used to divide the refrigerator drawer in the second direction. The second divider can further divide the storage space separated by the first divider into at least two sub-spaces, and the second divider can slide relative to the first divider to change the size of the sub-spaces it divides, making the sub-spaces more adaptable to the size of the items.

[0011] In some embodiments, the blocking device further includes a second locking mechanism disposed between the second blocking member and the first blocking member. The second locking mechanism is used to lock the second blocking member to the first blocking member in a locked state and to allow the second blocking member to slide relative to the first blocking member in an unlocked state. In the unlocked state of the second locking mechanism, the second blocking member can change the size of the sub-space it divides by sliding relative to the first blocking member, allowing the sub-space to accommodate different item sizes. In the locked state of the second locking mechanism, the second blocking member is fixed relative to the first blocking member, thus the second blocking member can restrict the movement of the item in a second direction to reliably confine the item within the sub-space.

[0012] In some embodiments, the second locking mechanism may include a second elastic member. The second blocking member is provided with a through hole extending in a second direction, and the first blocking member is slidably disposed in the through hole; along the first direction, one inner wall of the through hole is spaced from the first blocking member by the second elastic member, and the second elastic member is fixedly connected to the second blocking member; the other inner wall of the through hole is provided with a protrusion extending in the first direction; the peripheral surface of the first blocking member is provided with a first groove, and the first groove is slidably connected to the protrusion in the first direction. When the second elastic element is in a state of energy release or partial energy release, the first blocking element abuts against the inner wall of the other side of the through hole under the elastic force of the second elastic element, and the protrusion of the second blocking element is accommodated in the first groove of the first blocking element. The static friction generated between the first groove and the protrusion, and between the first blocking element and the inner wall of the through hole, can lock the second blocking element in the first blocking element, restricting the sliding of the second blocking element. When the second blocking element moves under the tension in the first direction, the second elastic element is compressed, the contact area between the first blocking element and the inner wall of the through hole decreases, and the protrusion of the second blocking element also comes out of the first groove. Therefore, the second blocking element can slide relative to the first blocking element in the second direction under the pushing or pulling action.

[0013] In some implementations, the second stop is a telescopic rod. Based on this design, the telescopic length of the second stop can be adjusted according to the specific dimensions of the item, enabling it to achieve good restraint for items of various sizes.

[0014] In some implementations, there can be multiple second compartments, which can be arranged along a second direction and slidably disposed on the first compartment. The multiple second compartments can further divide the storage space separated by the first compartment into more sub-spaces, allowing different items to be stored in different sub-spaces.

[0015] Secondly, this utility model also provides a refrigerator drawer, which includes the divider device described in any of the embodiments of the first aspect. The divider device is disposed inside the refrigerator drawer, and the slide rail of the divider device is disposed on the inner wall of the refrigerator drawer. The divider device can divide the internal space of the refrigerator drawer into sizes suitable for the dimensions of the items, thereby restricting the movement or rolling of items inside the refrigerator drawer, and thus reducing abnormal noises caused by the movement or rolling of items, or collisions.

[0016] In some implementations, the dividers are detachably mounted on the inner wall of the refrigerator drawer. This design allows users to choose whether to use the dividers or remove them from the drawer, enabling the drawer to meet different storage needs in various scenarios.

[0017] In some implementations, the inner wall of the refrigerator drawer is provided with a groove extending in a first direction, the groove forming a slide rail. In this design, the slide rail does not occupy space inside the refrigerator drawer, thus allowing more items to be stored inside the drawer.

[0018] Thirdly, this utility model also provides a refrigerator, which includes a housing and a refrigerator drawer as described in any of the embodiments of the second aspect above, the refrigerator drawer being slidably installed in the housing. By applying the aforementioned refrigerator drawer, the refrigerator can reduce the risk of abnormal noise from items stored inside, thereby improving the user experience.

[0019] Fourthly, this utility model also provides a vehicle, which includes a vehicle body and the refrigerator described in the third aspect above, with the refrigerator disposed within the vehicle body. By equipping the vehicle with the aforementioned refrigerator, the vehicle can provide a better riding experience for its occupants. Attached Figure Description

[0020] Figure 1 A schematic diagram of the vehicle structure provided for an embodiment of this utility model;

[0021] Figure 2 A schematic diagram of the structure of a refrigerator provided in an embodiment of this utility model;

[0022] Figure 3 A top view of a refrigerator drawer provided for an embodiment of this utility model;

[0023] Figure 4 A side view of a refrigerator drawer provided for an embodiment of this utility model;

[0024] Figure 5 A cross-sectional schematic diagram of a refrigerator drawer provided for an embodiment of this utility model;

[0025] Figure 6 A cross-sectional schematic diagram of another refrigerator drawer provided for an embodiment of this utility model;

[0026] Figure 7a for Figure 6 Enlarged view of point A in the middle;

[0027] Figure 7b for Figure 7a A schematic diagram of the first locking mechanism in the unlocked state;

[0028] Figure 8a A partial structural schematic diagram of another blocking device provided in an embodiment of this utility model;

[0029] Figure 8b for Figure 8a A schematic diagram of the first locking mechanism of the blocking device in the unlocked state;

[0030] Figure 9a A partial structural schematic diagram of another blocking device provided in an embodiment of this utility model;

[0031] Figure 9b for Figure 9a A schematic diagram of the first locking mechanism of the blocking device in the unlocked state;

[0032] Figure 10a Top views of two other refrigerator drawers provided for embodiments of this utility model;

[0033] Figure 10b Top views of two other refrigerator drawers provided for embodiments of this utility model;

[0034] Figure 11a for Figure 10a A schematic diagram of the local cross-sectional structure at point aa;

[0035] Figure 11b for Figure 11a A schematic diagram of the second locking mechanism in the unlocked state;

[0036] Figure 12a A partial structural schematic diagram of another blocking device provided in an embodiment of this utility model;

[0037] Figure 12b for Figure 12a A schematic diagram of the second locking mechanism of the blocking device in the unlocked state;

[0038] Figure 13a A partial structural schematic diagram of another blocking device provided in an embodiment of this utility model;

[0039] Figure 13b for Figure 13a A schematic diagram of the second locking mechanism of the blocking device in the unlocked state;

[0040] Figure 14 This is a schematic diagram of another refrigerator drawer provided in an embodiment of the present utility model;

[0041] Figure 15 for Figure 14 A schematic diagram of the cross-sectional structure of the refrigerator drawer shown;

[0042] Figure 16 A diagram illustrating the usage state of a refrigerator drawer provided in an embodiment of this utility model;

[0043] Figure 17 for Figure 16 The image shows a top view of a refrigerator drawer.

[0044] Figure label:

[0045] 100 - Vehicle; 110 - Chassis; 120 - Body; 121 - Cabin; 122 - Trunk; 130 - Refrigerator; 131 - Refrigerator drawer; 1311 - Part 1;

[0046] 1312 - Second part; 1313 - Connecting part; 132 - Housing; 200 - Barrier device; 210 - Slide rail; 211 - First inner wall; 212 - Second inner wall;

[0047] 213 - Third inner wall; 220 - First baffle; 221 - Receiving groove; 222 - First groove; 223 - Second groove; 224 - Sliding hole;

[0048] 230 - First locking mechanism; 231 - First elastic element; 232 - First moving element; 233 - First bayonet; 234 - Paddle; 235 - First protrusion;

[0049] 240 - Second blocking component; 241 - Through hole; 242 - Protrusion; 250 - Second locking mechanism; 251 - Second elastic component; 252 - Second moving component;

[0050] 253 - Second protrusion; 254 - Second bayonet; 255 - Second rib; 256 - Sliding member; 260 - First connecting rod; 270 - Second connecting rod;

[0051] 300 - Beverages. Detailed Implementation

[0052] To make the objectives, technical solutions, and advantages of this utility model clearer, the embodiments of this utility model will be described in further detail below with reference to the accompanying drawings. However, the exemplary embodiments can be implemented in many forms and should not be construed as limited to the embodiments set forth herein. The same reference numerals in the figures denote the same or similar structures, and therefore repeated descriptions of them will be omitted. The terms describing position and direction in the embodiments of this utility model are illustrative based on the accompanying drawings, but changes can be made as needed, and all such changes are included within the protection scope of this utility model. The accompanying drawings of the embodiments of this utility model are for illustrating relative positional relationships only and do not represent actual proportions.

[0053] It should be noted that specific details are set forth in the following description to facilitate understanding of the present invention. However, embodiments of the present invention can be implemented in many ways different from those described herein, and those skilled in the art can make similar extensions without departing from the spirit of the embodiments of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0054] As an important in-vehicle appliance for enhancing the driving and riding experience, a car refrigerator provides refrigeration and freezing functions during vehicle travel, meeting the needs of passengers to keep their belongings fresh during the journey. A car refrigerator includes a drawer for storing items. If the drawer is not full after items are placed inside, and there is still space inside, items are prone to moving or rolling due to vibrations from the vehicle's movement, or causing noise due to collisions with each other or the inner walls of the drawer, affecting the passenger experience. This is especially true during acceleration, deceleration, or braking, when the collisions of items are more severe.

[0055] In related technologies, to reduce the movement of items in a car refrigerator, a fixing device is typically installed inside the refrigerator drawer. This device has several specifically shaped fixing slots, each designed to accommodate items of a corresponding shape, thus restricting the movement of the items within. However, the applicability of this fixing device is relatively limited, only accommodating items of a specific size, offering only a limited improvement to the passenger experience. Furthermore, the fixing device occupies a significant amount of space inside the refrigerator drawer, thereby substantially reducing the usable volume of the car refrigerator.

[0056] To address the aforementioned problems, this utility model provides a divider device for a refrigerator drawer. This divider device can partition the space inside the refrigerator drawer and adjust the partitioned space to fit the size of items, thereby restricting the movement of items, reducing noise caused by movement, rolling, or collisions, and improving the passenger experience. The divider device provided in this utility model, as well as the refrigerator drawer, refrigerator, and vehicle using this divider device, will be described in detail below with reference to the accompanying drawings and specific embodiments.

[0057] First refer to Figure 1 , Figure 1 This is a schematic diagram of the structure of a vehicle 100 provided in an embodiment of the present invention. The vehicle 100 can be any type of vehicle, including but not limited to: pure electric vehicles (pure electric vehicles / battery electric vehicles, pure EVs / battery EVs), hybrid electric vehicles (HEVs), range-extended electric vehicles (REEVs), plug-in hybrid electric vehicles (PHEVs), other new energy vehicles (NEVs), or gasoline-powered vehicles. These vehicles 100 can be applied to fields such as intelligent driving, assisted driving, or connected vehicles.

[0058] Vehicle 100 may include a chassis 110 and a body 120. The chassis 110 integrates components such as the transmission system, running system, steering system, and braking system to ensure that vehicle 100 can drive normally. The body 120 is mounted on the chassis 110. Exemplarily, the body 120 includes a passenger compartment 121 and a trunk 122. The passenger compartment 121 can be used to carry passengers, and the trunk 122 is used to load cargo.

[0059] refer to Figure 2 In this embodiment of the invention, the vehicle 100 also includes a refrigerator 130, which is disposed within the vehicle body 120 to provide refrigeration and freezing functions for occupants. In one implementation, the refrigerator 130 may be disposed within the cabin 121, for example, in the position of the sub-dashboard, the rear center console, or the middle position of the rear seats, etc., to facilitate occupants in accessing and storing items.

[0060] In another implementation, the refrigerator 130 can also be installed in the trunk 122, which reduces the space occupied in the passenger compartment 121. In specific applications, the appropriate placement of the refrigerator 130 can be selected based on the space inside the vehicle 120 and the needs of the target user.

[0061] In some embodiments, the refrigerator 130 includes a refrigerator drawer 131 and a housing 132. The refrigerator drawer 131 is used to hold items and is slidably mounted in the housing 132 so that it can be pulled out of or pushed into the housing 132 by means of a pull-out mechanism. Additionally, the refrigerator 130 includes a refrigeration device that maintains a low-temperature environment inside the housing to meet the preservation requirements of the items. Exemplarily, the refrigeration device may be a compressor or a thermoelectric cooler; this invention is not limited thereto.

[0062] Figure 3 This is a top view of a refrigerator drawer 131 provided in an embodiment of the present invention. Figure 4 A side view of a refrigerator drawer 131 provided for an embodiment of this utility model. See also: Figure 3 and Figure 4 As shown, a divider device 200 is provided inside the refrigerator drawer 131. The divider device 200 includes a slide rail 210, a first divider member 220, and a first locking mechanism 230. The slide rail 210 can be disposed on the inner wall of the refrigerator drawer 131 and extends along a first direction. The first divider member 220 is slidably disposed on the slide rail 210 and can extend along a second direction, which intersects with the first direction. Based on the arrangement of the slide rail 210 and the first divider member 220 inside the refrigerator drawer 131, the first divider member 220 can divide the refrigerator drawer 131 into at least two storage spaces arranged along the first direction. The first locking mechanism 230 is disposed between the first stop 220 and the slide rail 210. The first locking mechanism 230 includes a locking state and an unlocking device. In the locking state, it can lock the first stop 220 and the slide rail 210, and in the unlocking state, it can allow the first stop 220 to slide relative to the slide rail 210.

[0063] In some embodiments, the angle between the first direction and the second direction can be greater than 0° and less than 180°, that is, the angle between the first direction and the second direction can be an acute angle, a right angle, or an obtuse angle, and the present invention does not limit this. In one specific implementation, the first direction and the second direction are perpendicular to each other, so that the storage space divided by the first divider 220 has a relatively regular shape, which can meet the storage needs of most items, thereby reducing space waste.

[0064] For example, the first direction can be the longitudinal direction x of the refrigerator drawer 131, and correspondingly, the second direction can be the transverse direction y of the refrigerator drawer 131; or, the first direction can be the transverse direction y of the refrigerator drawer 131, and correspondingly, the second direction can be the longitudinal direction x of the refrigerator drawer 131; specifically, it can be determined according to the cross-sectional shape and size of the refrigerator drawer. In the following embodiments and figures, the first direction is described as the longitudinal direction x and the second direction as the transverse direction y.

[0065] In this embodiment, the first divider 220 can divide the internal space of the refrigerator drawer 131. In the unlocked state of the first locking mechanism 230, the first divider 220 can slide relative to the slide rail 210 to change the size of the storage space it divides, allowing the storage space to accommodate different item sizes. Furthermore, by utilizing the locking function of the first locking mechanism 230 in the locked state, the first divider 220 can confine items within the storage space it divides. That is, the first divider 220 can restrict the movement of items in the first direction, thereby reducing abnormal noises caused by movement, rolling, or collisions, and improving the passenger experience.

[0066] It should be noted that when the divider device 200 is not required to partition the interior of the refrigerator drawer 131, the first divider 220 can be placed against the inner wall of the refrigerator drawer 131 to reduce its occupation of the interior volume of the refrigerator drawer 131.

[0067] For example, the barrier device 200 provided in this embodiment of the present invention is not limited to being applied to vehicle refrigerators, but can also be applied to refrigerators 130 of other mobile devices (such as airplanes, trains, ships, etc.), or can also be applied to household refrigerators 130. The present invention does not limit this application.

[0068] In some embodiments, there are two slide rails 210, which are arranged opposite to each other. For example, the two slide rails 210 can be respectively arranged on the inner walls of opposite sides of the refrigerator drawer 131. The two ends of the first divider 220 can be slidably fitted to the two slide rails 210 to improve the sliding stability of the first divider 220. In this embodiment, the divider device 200 may include two first locking mechanisms 230, one of which is disposed between the slide rails 210 on the corresponding side of one end of the first divider 220, and the other is disposed between the other end of the first divider 220 and the corresponding slide rail 210. When both first locking mechanisms 230 are in the locked state, the first divider 220 can be locked to the slide rails 210 on both sides respectively, so that the first divider 220 can be reliably fixed in the desired position, improving the restraint effect on items.

[0069] In one embodiment, the first barrier 220 can be a rigid structural component, such as a lever, baffle, etc. This allows the first barrier 220 to provide a more reliable restraining effect on stored items, further reducing the risk of item movement. Exemplarily, the cross-sectional shape of the first barrier 220 perpendicular to the second direction y can be approximately circular, or it can be rectangular, squarish-circular, or other regular or irregular shapes; this invention does not limit this.

[0070] In another embodiment, the first barrier 220 can be a flexible structural component such as a baffle strip. With this design, the first barrier 220 not only restrains the item but also reduces rigid compression, lowering the risk of damage. Furthermore, the first barrier 220 can be an elastic baffle strip, allowing it to adapt to the shape of the item (e.g., a bottled beverage) through slight deformation, making the blocking more flexible.

[0071] In some embodiments, there may be multiple first dividers 220, which may be arranged along a first direction x, and each first divider 220 may be slidably disposed on a slide rail 210. Multiple first dividers 220 can divide the refrigerator drawer 131 into more storage spaces, thus restricting various items to different storage spaces and improving the restraint effect on the items.

[0072] Figure 5 A cross-sectional schematic diagram of a refrigerator drawer 131 provided for an embodiment of this utility model. (Reference) Figure 5 As shown, in this embodiment, the inner wall of the refrigerator drawer 131 is provided with a slot extending along the first direction x, which can be formed into the aforementioned slide rail 210. With this design, the slide rail 210 does not occupy the space inside the refrigerator drawer 131, so more items can be stored inside the refrigerator drawer 131.

[0073] In some embodiments, the refrigerator drawer 131 may include a first portion 1311, a second portion 1312, and a connecting portion 1313. Along the height direction of the refrigerator drawer 131, the first portion 1311, the connecting portion 1313, and the second portion 1312 are sequentially connected. The first portion 1311 forms the lower part of the refrigerator drawer 131, and the second portion 1312 forms the upper part of the refrigerator drawer 131. A slot is provided in the connecting portion 1313. Exemplarily, the connecting portion 1313 is approximately a U-shaped groove structure; the U-shaped groove of the connecting portion 1313 is the slot in this embodiment.

[0074] In the above embodiment, the first part 1311 may include two side panels arranged opposite each other along the second direction y, a front panel and a back panel arranged opposite each other along the first direction x, and a bottom panel. The second part 1312 may include two side panels arranged opposite each other along the second direction y, a front panel and a back panel arranged opposite each other along the first direction x. The two side panels of the first part 1311 are respectively connected to the two side panels of the second part 1312 through the connecting part 1313. The front panel of the first part 1311 is connected to the front panel of the second part 1312. The back panel of the first part 1311 is connected to the back panel of the second part 1312, thereby enclosing and forming the interior of the refrigerator drawer 131.

[0075] For example, the first part 1311 and the connecting part 1313, the first part 1311 and the second part 1312, and the second part 1312 and the connecting part 1313 can be connected by means of welding, snap-fitting, bonding or threaded connection.

[0076] Figure 6 A cross-sectional schematic diagram of another refrigerator drawer 131 provided in an embodiment of this utility model. (See reference) Figure 6 As shown, in this embodiment, the slide rail 210 can be a strip-shaped structural component disposed on the inner wall of the refrigerator drawer 131. In this embodiment, the slide rail 210 is formed independently, so the slide rail 210 can be assembled to its inner wall after the refrigerator drawer 131 is manufactured. This simplifies the overall product design of the refrigerator drawer 131 and reduces the difficulty of manufacturing and assembly.

[0077] Figure 7a for Figure 6 A magnified view of point A in the middle. Please refer to this as well. Figure 6 and Figure 7a As shown, in this embodiment, the first locking mechanism 230 includes a first elastic member 231. The slide rail 210 includes a first inner wall 211 and a second inner wall 212 disposed opposite to each other. The extending directions of the first inner wall 211 and the second inner wall 212 are the same as the extending direction of the slide rail 210, that is, the first inner wall 211 and the second inner wall 212 both extend along the first direction x. The end of the first stop member 220 is disposed between the first inner wall 211 and the second inner wall 212, so that the first inner wall 211 and the second inner wall 212 can be used to restrict the movement trajectory of the first stop member 220. In addition, the height direction of the refrigerator drawer 131 is defined as the third direction z. The first inner wall 211 and the second inner wall 212 can be disposed opposite to each other along the third direction z. In this way, when the first stop member 220 is slidably assembled on the slide rail 210, the first stop member 220 can be approximately parallel to the bottom wall of the refrigerator drawer 131. Therefore, the height of the first stop member 220 at different positions is basically the same, which helps to improve the restraint effect on items.

[0078] The first barrier 220 and the second inner wall 212 are separated by a first elastic member 231, and the first elastic member 231 is fixedly connected to the first barrier 220. For example, the first barrier 220 has a receiving groove 221 on the side facing the second inner wall 212, and a portion of the first elastic member 231 is located within the receiving groove 221. This allows the receiving groove 221 to restrict the deformation direction of the first elastic member 231, reducing the risk of displacement of the first elastic member 231 during elastic deformation.

[0079] refer to Figure 7a When the first elastic member 231 is in a state of energy release or partial energy release, the first blocking member 220 abuts against the first inner wall 211 under the action of the elastic force of the first elastic member 231, and static friction is generated between the first blocking member 220 and the first inner wall 211. This static friction can lock the first blocking member 220 to the slide rail 210 and restrict the sliding of the first blocking member 220.

[0080] refer to Figure 7b , Figure 7b for Figure 7a The diagram shows the structure after the first elastic element 231 is compressed. When the first blocking element 220 is pressed towards the second inner wall 212 and moves away from the first inner wall 211, the first elastic element 231 is compressed, and the first blocking element 220 separates from the first inner wall 211. At this time, there is no friction between the first blocking element 220 and the first inner wall 211, so the first blocking element 220 can slide along the first direction x under the action of pushing or pulling, and the first elastic element 231 also slides synchronously. After the first blocking element 220 slides to the target position, the pressing force on the first blocking element 220 is released, and the first blocking element 220 can move towards the first inner wall 211 under the action of the restoring force of the first elastic element 231 until it re-abuts against the first inner wall 211.

[0081] In the above scheme, when the first elastic member 231 is in a released or partially released state, it can lock the first blocking member 220 to the slide rail 210. When the first elastic member 231 is in a compressed, stored state, the first blocking member 220 can slide relative to the slide rail 210. Therefore, the released or partially released state of the first elastic member 231 can be considered as the locked state of the first locking mechanism 230, and the stored state of the first elastic member 231 can be considered as the unlocked state of the first locking mechanism 230.

[0082] In some embodiments, the roughness of the first inner wall 211 is greater than that of the second inner wall 212. Thus, when the first locking mechanism 230 is in the locked state, there is a relatively large static friction between the first inner wall 211 and the first stop member 220, allowing the first stop member 220 to be reliably locked to the slide rail 210; while when the first locking mechanism 230 is in the unlocked state, the sliding friction between the second inner wall 212 and the first elastic member 231 is relatively small, allowing the first stop member 220 and the first elastic member 231 to slide smoothly relative to the slide rail 210.

[0083] In some embodiments, the first locking mechanism 230 may further include a first moving member 232, which is connected to the end of the first elastic member 231 near the second inner wall 212, so as to stably support the first elastic member 231 through the first moving member 232. When the first blocking member 220 drives the first elastic member 231 to slide along the first direction x, the end of the first elastic member 231 moves relative to the second inner wall 212 through the first moving member 232. In this way, on the one hand, the supporting effect of the first moving member 232 on the first elastic member 231 can reduce the risk of the first elastic member 231 getting stuck, and on the other hand, it can reduce the friction between the first locking mechanism 230 and the second inner wall 212, thereby improving the sliding convenience of the first blocking member 220.

[0084] In one implementation, the first moving member 232 can be a roller. Using this roller, the sliding friction between the first elastic member 231 and the second inner wall 212 can be changed to rolling friction, thereby helping to further reduce the friction between the first locking mechanism 230 and the second inner wall 212.

[0085] In another implementation, the first moving member 232 can also be a slider, so that the end of the first elastic member 231 can slide relative to the second inner wall 212 through the first moving member 232. In this case, the surface of the slider facing the second inner wall 212 can be machined to have a relatively small roughness, thereby reducing the sliding friction between the slider and the second inner wall 212.

[0086] The above describes the structural form of a first locking mechanism 230 provided by an embodiment of the present invention. In other embodiments, the first locking mechanism 230 may also be implemented in other forms.

[0087] For example, refer to Figure 8a and Figure 8bIn one example, the first stop 220 is at least retractable near the slide rail 210. The slide rail 210 includes a third inner wall 213, which is disposed opposite to the end of the first stop 220 along the extending direction of the first stop 220. The first locking mechanism 230 includes a plurality of first latches 233 disposed on the third inner wall 213, which are arranged and spaced apart along a first direction. The first locking mechanism 230 also includes a first elastic member 231 disposed within the first stop 220, which is retractable along a second direction y, and one end of the first elastic member 231 abuts against the end of the first stop 220. In addition, the first locking mechanism 230 also includes a paddle 234 disposed on the peripheral surface of the first blocking member 220. The paddle 234 can slide relative to the first blocking member 220 in the second direction y, and the paddle 234 can extend into the first blocking member 220 and abut against the other end of the first elastic member 231 to control the extension and retraction of the first elastic member 231.

[0088] refer to Figure 8a When the first elastic member 231 is in a compressed, energy-storing state, the first blocking member 220 is constrained at its end within the first bayonet 233 by the elastic force of the first elastic member 231.

[0089] refer to Figure 8b When the lever 234 is moved toward the side opposite to the first elastic member 231, the first elastic member 231 is released from its compressed state. At this time, the force exerted by the first elastic member 231 on the end of the first blocking member 220 is greatly reduced. Therefore, the length of the first blocking member 220 can be retracted, allowing it to disengage from the current limiting effect of the first latch 233 and slide along the first direction under pushing or pulling. After the first blocking member 220 slides to the target position, the lever 234 is reset, the first elastic member 231 is recompressed, and a force is applied to the end of the first blocking member 220, confining the end of the first blocking member 220 within other first latches 233. Furthermore, the distance between adjacent first latches 233 can be relatively small, allowing the first blocking member 220 to achieve a relatively small minimum movement distance, thus enabling more flexible control of the volume of the storage space separated by the first blocking member 220.

[0090] In the above example, when the first elastic element 231 is in an energy-storing state, it can lock the first blocking element 220 to the slide rail 210. When the first elastic element 231 is released or partially released, the first blocking element 220 can slide relative to the slide rail 210. Therefore, the energy-storing state of the first elastic element 231 can be considered as the locking state of the first locking mechanism 230, and the energy-released or partially released state of the first elastic element 231 can be considered as the unlocking state of the first locking mechanism 230.

[0091] For example, refer to Figure 9a and Figure 9b In another example shown, the first locking mechanism 230 includes a first elastic member 231, which is located between the first blocking member 220 and the second inner wall 212, and one end of the first elastic member 231 is fixedly connected to the first blocking member 220. The first locking mechanism also includes a plurality of first latches 233 and a first protrusion 235. The plurality of first latches 233 are disposed on the first inner wall 211, and are arranged along a first direction and spaced apart. Adjacent first latches 233 are connected by a first rib (not shown in the figure). The first protrusion 235 is disposed on the side of the first blocking member 220 facing the first inner wall 211, and the first protrusion 235 can be engaged in the first latches 233.

[0092] refer to Figure 9a As shown, when the first elastic member 231 is in a state of energy release or partial energy release, the first blocking member 220 can limit the first protrusion 235 to be located within the first bayonet 233 under the elastic force of the first elastic member 231.

[0093] refer to Figure 9b As shown, when the first blocking member 220 is pulled or pushed in the first direction, the first protrusion 235 can pass through one or more first ribs in sequence. When the first protrusion 235 passes through the first rib, the first blocking member 220 moves slightly towards the second inner wall 212, and the first elastic member 231 is compressed at this time. After the first blocking member 220 slides to the target position, under the restoring force of the first elastic member 231, the first blocking member 220 causes the first protrusion 235 to be locked in other first slots 233, and the other first slots 233 continue to restrict the position of the first blocking member 220.

[0094] To reduce the risk of jamming during the sliding of the first divider 220, the surfaces of the first protrusion 235 and the first latch 233 can both be designed as curved surfaces. Furthermore, the distance between adjacent first latches 233 can be relatively small, allowing the first divider 220 to achieve a relatively small minimum movement distance, thus enabling more flexible control over the volume of the storage space divided by the first divider 220.

[0095] In the above example, when the first elastic element 231 is in a released or partially released state, it can lock the first blocking element 220 to the slide rail 210. When the first elastic element 231 is in a compressed, stored state, the first blocking element 220 can slide relative to the slide rail 210. Therefore, the released or partially released state of the first elastic element 231 can be considered as the locked state of the first locking mechanism 230, and the stored state of the first elastic element 231 can be considered as the unlocked state of the first locking mechanism 230.

[0096] In addition, in this example, the first locking mechanism 230 may also include a first moving part 232 such as a roller or slider, which is connected to the end of the first elastic member 231 near the second inner wall 212, so as to support the first elastic member 231 by means of the first moving part 232 and reduce the friction between the first locking mechanism 230 and the second inner wall 212.

[0097] Figure 10a and Figure 10b Top views of two other refrigerator drawers 131 provided for embodiments of this utility model. (See reference) Figure 10a and Figure 10b As shown, in this embodiment, the divider device 200 further includes a second divider 240, which extends along a first direction x and is slidably connected to the first divider 220 along a second direction y. Thus, the second divider 240 can partition the refrigerator drawer 131 in the second direction y, meaning it can further divide the storage space separated by the first divider 220 into at least two sub-spaces. The second divider 240 can slide relative to the first divider 220 to change the size of the sub-spaces it divides, making the sub-spaces more suitable for the size of the items.

[0098] In one implementation, the second divider 240 is located on one side of the first divider 220, thus the second divider 240 can further partition the storage space on one side of the first divider 220, for example... Figure 10a As shown, the second divider 240 can further divide the storage space C separated by the first divider 220 into two subspaces, C1 and C2.

[0099] In another implementation, the second divider 240 is disposed on both sides of the first divider 220, so the second divider 240 can further divide the storage space on both sides of the first divider 220, for example... Figure 10b As shown, the second divider 240 can further divide the storage space C separated by the first divider 220 into two subspaces C1 and C2, and further divide the storage space D separated by the first divider 220 into two subspaces D1 and D2.

[0100] In some embodiments, the second divider 240 is a telescopic rod, meaning that the length of the second divider 240 is adjustable along its extension direction. Based on this design, in practical use, the telescopic length of the second divider 240 can be adjusted according to the specific size of the items, enabling the second divider 240 to achieve a good restraining effect on items of various sizes. Furthermore, when the divider device 200 is not needed to partition the interior of the refrigerator drawer 131, the second divider 240 can be shortened to its shortest possible position, thereby reducing the space occupied by the divider device 200 within the refrigerator drawer 131.

[0101] In some embodiments, there may be multiple second dividers 240, which may be arranged along a second direction y, and each of the multiple second dividers 240 may be slidably disposed on a first divider 220. The multiple second dividers 240 may further divide the storage space separated by the first divider 220 into more subspaces, so as to use different subspaces to store different items.

[0102] In some embodiments, the second stop 240 can be a rigid structural component, such as a stop bar, a baffle, etc., so that the second stop can maintain a stable shape even when suspended at one end, and achieve a reliable limiting effect on the item. Exemplarily, the cross-sectional shape of the second stop 240 perpendicular to the first direction x can be approximately circular, or it can be rectangular, squarish-circular, or other regular or irregular shapes, and the present invention does not limit it in this way.

[0103] Figure 11a for Figure 10a A schematic diagram of the local cross-sectional structure at point aa. (For reference only.) Figure 10a and Figure 11a As shown, in this embodiment, the second barrier member 240 is provided with a through hole 241, which penetrates the second barrier member 240 along the second direction y. The first barrier member 220 is slidably disposed within the through hole 241, thereby realizing a sliding connection between the first barrier member 220 and the second barrier member 240.

[0104] The blocking device 200 also includes a second locking mechanism 250, which is disposed between the second blocking member 240 and the first blocking member 220. The second locking mechanism 250 includes a locked state and an unlocked state. In the locked state, it can lock the second blocking member 240 and the first blocking member 220 together, and in the unlocked state, the second blocking member 240 can slide relative to the first blocking member 220.

[0105] In the unlocked state of the second locking mechanism 250, the second blocking member 240 can slide relative to the first blocking member 220 to change the size of the sub-space it divides, so that the sub-space can adapt to the size of different items. In the locked state of the second locking mechanism 250, the second blocking member 240 is fixed relative to the first blocking member 220. Therefore, the second blocking member 240 can restrict the movement of items in the second direction y. Together with the constraint effect of the first blocking member 220 on the items in the first direction x, the blocking device 200 can reliably restrict the items within the sub-space, further reducing the abnormal noise caused by the items moving, rolling, or colliding, and improving the riding experience of the occupants.

[0106] The second locking mechanism 250 may include a second elastic member 251. Along the first direction x, one inner wall of the through hole 241 is spaced from the first blocking member 220 by the second elastic member 251, and the second elastic member 251 is fixedly connected to the inner wall of the through hole 241; that is, the second elastic member 251 is fixedly connected to the second blocking member 240. A protrusion 242 is provided on the other inner wall of the through hole 241, extending along the first direction x. The first blocking member 220 is provided with a first groove 222, which is opposite to the protrusion 242, and the first groove 222 and the protrusion 242 are slidably connected along the first direction x. When the protrusion 242 is accommodated within the first groove 222, the outer surface of the protrusion 242 contacts the inner surface of the first groove 222.

[0107] refer to Figure 11a When the second elastic member 251 is in a state of energy release or partial energy release, the second elastic member 251 applies a force in the first direction x to the first blocking member 220. Under this force, the first blocking member 220 abuts against the inner wall of the other side of the through hole 241, and the protrusion 242 of the second blocking member 240 is accommodated in the first groove 222 of the first blocking member 220. Static friction is generated between the first groove 222 and the protrusion 242, and between the first blocking member 220 and the inner wall of the through hole 241. This static friction can lock the second blocking member 240 to the first blocking member 220, restricting the sliding of the second blocking member 240.

[0108] refer to Figure 11b , Figure 11b for Figure 11aThe diagram shows the structure after the second elastic element 251 is compressed. When the second stop 240 moves under the tension in the first direction x, the second elastic element 251 is compressed, the contact area between the first stop 220 and the inner wall of the through hole 241 decreases, and the protrusion 242 of the second stop 240 also disengages from the first groove 222. At this time, the friction between the second stop 240 and the first stop 220 is greatly reduced. Therefore, the second stop 240 can slide relative to the first stop 220 in the second direction y under the action of pushing or pulling, and the second elastic element 251 slides synchronously. After the second stop 240 slides to the target position, the tension on the second stop 240 is released, and the second stop 240 can move in the first direction x under the action of the restoring force of the second elastic element 251 until the protrusion 242 is re-accommodated in the first groove 222.

[0109] In the above scheme, when the second elastic member 251 is in a released or partially released state, it can lock the second blocking member 240 to the first blocking member 220. When the second elastic member 251 is in a compressed, stored state, the second blocking member 240 can slide relative to the first blocking member 220. Therefore, the released or partially released state of the second elastic member 251 can be considered as the locked state of the second locking mechanism 250, and the stored state of the second elastic member 251 can be considered as the unlocked state of the second locking mechanism 250.

[0110] In some embodiments, along the circumferential direction of the first stop 220, the surface roughness of the side of the first stop 220 where the first groove 222 is provided is greater than the surface roughness of the other side of the first stop 220. Thus, when the second locking mechanism 250 is in a stationary state, there is a relatively large static friction between the first stop 220 and the inner wall of the through hole 241, and between the first groove 222 and the protrusion 242, thereby enabling the second stop 240 to be reliably locked to the first stop 220; while when the second locking mechanism 250 is in an unlocked state, the sliding friction between the first stop 220 and the second elastic member 251 is relatively small, thus allowing the second stop 240 and the second elastic member 251 to slide smoothly relative to the first stop 220.

[0111] In some embodiments, the first barrier 220 is further provided with a second groove 223, which is disposed opposite to the first groove 222 along a first direction x. A portion of the second elastic member 251 is accommodated within the second groove 223, thereby limiting the deformation direction of the second elastic member 251 by means of the second groove 223, reducing the risk of the second elastic member 251 moving when elastic deformation occurs.

[0112] In some embodiments, the second locking mechanism 250 may further include a second moving member 252, which is connected to one end of the second elastic member 251 near the first blocking member 220. For example, when the first blocking member 220 is provided with a second groove 223, the second moving member 252 can be accommodated in the second groove 223. When the second blocking member 240 drives the second elastic member 251 to slide in the second direction, the end of the second elastic member 251 moves relative to the first blocking member 220 through the second moving member 252. This reduces the risk of the second elastic member 251 getting stuck by utilizing the supporting effect of the second moving member 252 on the second elastic member 251, and also reduces the friction between the second locking mechanism 250 and the first blocking member 220, thereby improving the sliding convenience of the second blocking member 240.

[0113] For example, the second moving part 252 can be a roller, slider, etc.

[0114] Of course, the second locking mechanism 250 is not limited to the structural form described in the above embodiments, and it can also be implemented in other forms.

[0115] For example, in Figure 12a and Figure 12b In one example shown, the second stop 240 is provided with a through hole 241, and the first stop 220 is slidably disposed within the through hole 241. The second locking mechanism 250 includes a second elastic member 251. Along the first direction x, one side inner wall of the through hole 241 is spaced from the first stop 220 by the second elastic member 251, and the second elastic member 251 is fixedly connected to the inner wall of the through hole 241. The second locking mechanism 250 also includes a second protrusion 253 disposed on the other side inner wall of the through hole 241, and a plurality of second latches 254 disposed on the first stop 220. The plurality of second latches 254 are arranged along the second direction and spaced apart, and adjacent second latches 254 are connected by a second rib (not shown in the figure). The second protrusion 253 can be engaged in any of the second latches 254.

[0116] refer to Figure 12a As shown, when the second elastic member 251 is in a state of energy release or partial energy release, the second elastic member 251 applies a force in the first direction x to the first blocking member 220, and under this force, the second protrusion 253 can be locked in the second slot 254.

[0117] refer to Figure 12bAs shown, when the second stop 240 is pulled or pushed in the second direction, the second protrusion 253 can pass through one or more second ribs in sequence. When the second protrusion 253 passes through the second ribs, the second stop 240 moves slightly along the first direction x, and the second elastic member 251 is compressed at this time. After the second stop 240 slides to the target position, under the restoring force of the second elastic member 251, the second protrusion 253 is locked in other second slots 254, and the other second slots 254 continue to restrict the position of the second stop 240.

[0118] To reduce the possibility of the second stop 240 getting stuck during sliding, the surfaces of the second protrusion 253 and the second latch 254 can both be designed as curved surfaces. Furthermore, the distance between adjacent second latches 254 can be relatively small, allowing the second stop 240 to achieve a relatively small minimum movement distance, thus enabling more flexible control over the volume of the subspaces separated by the second stop 240.

[0119] In the above example, when the second elastic member 251 is in a released or partially released state, it can lock the second blocking member 240 to the first blocking member 220. When the second elastic member 251 is in a compressed, stored state, the second blocking member 240 can slide relative to the first blocking member 220. Therefore, the released or partially released state of the second elastic member 251 can be considered as the locked state of the second locking mechanism 250, and the stored state of the second elastic member 251 can be considered as the unlocked state of the second locking mechanism 250.

[0120] In addition, in this example, the second locking mechanism 250 may also include a second moving part 252 such as a roller or slider, which is connected to the end of the second elastic member 251 near the first blocking member 220, so as to support the second elastic member 251 by means of the second moving part 252 and reduce the friction between the second locking mechanism 250 and the first blocking member 220.

[0121] For example, refer to Figure 13a and Figure 13b Another example shown, Figure 13a and Figure 13b for Figure 10aCross-sectional views of two different states at point bb. The first blocking member 220 is provided with a sliding hole 224, which extends along the second direction y, and the second blocking member 240 is slidably disposed within the sliding hole 224. The second locking mechanism 250 includes a plurality of second latches 254 disposed on the inner wall of the sliding hole. The plurality of second latches 254 are arranged along the second direction y and spaced apart, and adjacent second latches 254 are connected by second protrusions 255. The second locking mechanism 250 also includes a second elastic member 251 and a sliding member 256. The second elastic member 251 is disposed within the second blocking member 240, and the second elastic member 251 extends and retracts along the third direction z, and one end of the second elastic member 251 is fixedly connected to the second blocking member 240; the sliding member 256 is slidably disposed on the second blocking member 240 along the third direction z, one end of the sliding member 256 abuts against the second elastic member 251, and the other end of the sliding member 256 can protrude from the surface of the second blocking member 240.

[0122] refer to Figure 13a As shown, when the second elastic member 251 is in a state of energy release or partial energy release, the sliding member 256 can protrude from the surface of the second blocking member 240 under the elastic force of the second elastic member 251 and be locked in any of the second slots 254.

[0123] refer to Figure 13b As shown, when the second blocking member is pulled or pushed in the second direction y, the sliding member 256 can slide inward into the second blocking member 240 and pass through one or more second protrusions 255 in sequence. The second elastic member 251 is compressed during the sliding of the sliding member 256 into the second blocking member 240. After the second blocking member 240 slides to the target position, the sliding member 256 slides outward under the restoring force of the second elastic member 251. The end of the sliding member 256 away from the second elastic member 251 is locked in another second latch 254, which continues to restrict the position of the second blocking member 240.

[0124] To reduce the possibility of the second stop 240 getting stuck during sliding, the surface of the second latch 254 and the surface of the sliding member 256 facing away from the second elastic member 251 can both be designed as arc-shaped surfaces.

[0125] In the above example, when the second elastic member 251 is in a released or partially released state, it can lock the second blocking member 240 to the first blocking member 220. When the second elastic member 251 is in a compressed, stored state, the second blocking member 240 can slide relative to the first blocking member 220. Therefore, the released or partially released state of the second elastic member 251 can be considered as the locked state of the second locking mechanism 250, and the stored state of the second elastic member 251 can be considered as the unlocked state of the second locking mechanism 250.

[0126] Figure 14 This is a schematic diagram of another refrigerator drawer 131 provided in an embodiment of the present invention. Figure 15 for Figure 14 A schematic cross-sectional view of the refrigerator drawer 131 shown. (See also...) Figure 14 and Figure 15 As shown, in this embodiment, based on the independently formed slide rail 210, since the first divider 220 slides on the slide rail 210, and the second divider 240 is slidably assembled on the first divider 220, neither the first divider 220 nor the second divider 240 has a direct connection with the refrigerator drawer 131. Therefore, the divider device 200 can be independently of the refrigerator drawer 131. Based on this, the divider device 200 can be detachably installed on the inner wall of the refrigerator drawer 131. Thus, the user can choose to use the divider device 200 or remove it from the refrigerator drawer 131 according to the actual situation, allowing the refrigerator drawer 131 to meet the storage needs of items in different scenarios.

[0127] In this embodiment, "detachable" means that the divider device 200 and the inner wall of the refrigerator drawer 131 can be flexibly disassembled and reassembled multiple times without damaging themselves. In one implementation, the cross-section of the refrigerator drawer 131 perpendicular to the first direction x is trapezoidal. Thus, when the divider device 200 is placed inside the refrigerator drawer 131, the gradually narrowing width of the drawer 131 can be used to hold and fix the divider device 200 in place. When the divider device 200 is no longer needed, it can be directly removed from inside the refrigerator drawer 131.

[0128] Of course, the detachable connection between the divider device 200 and the inner wall of the refrigerator drawer 131 is not limited to this. For example, the divider device 200 can also be detachably connected to the inner wall of the refrigerator drawer 131 by means of snap-fit, threaded connection, etc.

[0129] In some embodiments, the barrier device 200 includes two slide rails 210, and may also include a first connecting rod 260 and a second connecting rod 270. One end of each of the two slide rails 210 is connected by the first connecting rod 260, and the other end of each of the two slide rails 210 is connected by the second connecting rod 270. In this way, the two slide rails 210 and the two connecting rods can form a frame structure, thereby improving the structural stability of the barrier device 200.

[0130] In addition, this embodiment may also include a first locking mechanism and a second locking mechanism. The structure of the first locking mechanism and the second locking mechanism can be designed with reference to the foregoing embodiment, and will not be repeated here.

[0131] Figure 16 This is a diagram illustrating one usage state of the refrigerator drawer 131 provided in an embodiment of the present invention. Figure 17 for Figure 16 The image shows a top view of refrigerator drawer 131. Taking bottled beverage 300 stored in refrigerator drawer 131 as an example, the contents are as follows: Figure 16 and Figure 17 As can be seen, the beverage 300 is confined within the sub-space formed by the inner wall of the refrigerator drawer 131, the first partition 220, and the second partition 240. The first partition 220 and the second partition 240 can restrict the movement of the beverage 300 up, down, left, and right, thereby reducing the abnormal noise caused by the beverage moving, rolling, or colliding, and improving the passenger's riding experience.

[0132] The above are merely specific embodiments of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the scope of the claims.

Claims

1. A baffle device applied to a drawer of a refrigerator, characterized in that, It includes a slide rail, a first stop, and a first locking mechanism, wherein: The slide rail extends along a first direction and is disposed on the inner wall of the refrigerator drawer; The first divider extends along the second direction and is slidably disposed on the slide rail. The first divider is used to divide the refrigerator drawer in the first direction. The first locking mechanism is disposed between the first blocking member and the slide rail. The first locking mechanism is used to lock the first blocking member to the slide rail in the locked state, and to allow the first blocking member to slide relative to the slide rail in the unlocked state. The first direction intersects with the second direction.

2. The barrier according to claim 1, wherein The first locking mechanism includes a first elastic element; The slide rail includes a first inner wall and a second inner wall disposed opposite to each other, the first inner wall and the second inner wall extending along the first direction respectively; The end of the first barrier is disposed between the first inner wall and the second inner wall, the first barrier and the second inner wall are separated by the first elastic member, and the first barrier and the first elastic member are fixedly connected.

3. A barrier according to claim 1 or 2, characterised in that There are multiple first blocking components, which are arranged along the first direction and are slidably disposed on the slide rail.

4. A barrier according to any one of claims 1 to 3, wherein The first blocking component includes either a blocking lever or a blocking band.

5. A barrier according to any one of claims 1 to 4, wherein The divider device further includes a second divider extending along a first direction and slidably connected to the first divider along a second direction. The second divider is used to divide the refrigerator drawer in the second direction.

6. The fender of claim 5, wherein The blocking device further includes a second locking mechanism, which is disposed between the second blocking member and the first blocking member. The second locking mechanism is used to lock the second blocking member and the first blocking member in a locked state, and to allow the second blocking member to slide relative to the first blocking member in an unlocked state.

7. The fender of claim 6, wherein The second locking mechanism includes a second elastic element; The second barrier is provided with a through hole extending along the second direction, and the first barrier is slidably disposed within the through hole; Along the first direction, one side of the inner wall of the through hole is separated from the first barrier by the second elastic member, and the second elastic member is fixedly connected to the second barrier member; a protrusion is provided on the other side of the inner wall of the through hole, and the protrusion extends along the first direction; The first barrier has a first groove on its peripheral surface, and the first groove is slidably connected to the protrusion along the first direction.

8. A barrier according to any one of claims 5 to 7, wherein, The second barrier is a telescopic rod.

9. A refrigerator drawer characterized by, Includes the divider device as described in any one of claims 1-8, wherein the divider device is disposed inside the refrigerator drawer, and the slide rail is disposed on the inner wall of the refrigerator drawer.

10. The refrigerator drawer of claim 9, wherein, The divider is detachably mounted on the inner wall of the refrigerator drawer.

11. The refrigerator drawer of claim 9, wherein, The inner wall of the refrigerator drawer is provided with a groove extending along the first direction, and the groove forms the slide rail.

12. A refrigerator characterized by comprising: It includes a housing and a refrigerator drawer as described in any one of claims 9-11, wherein the refrigerator drawer is slidably mounted in the housing.

13. A vehicle characterized by comprising: A refrigerator as claimed in claim 12 is included in a vehicle body, and is disposed in the vehicle body.