Partition assembly and dish rack
By setting limits and sliding parts between the partitions and the support frame of the dish rack, the problem of unstable position adjustment of the partitions is solved, and a stable and convenient position adjustment is achieved.
Patent Information
- Application Number
- CN202422454695.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-10
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-10-10
AI Technical Summary
The partitions of existing dishes racks are easily displaced when adjusting positions, resulting in unstable stacking and inconvenient adjustment operation.
By providing a limiting part and a sliding part between the partition and the support frame, the limiting fit and disengagement of the connector can be achieved by using the stable sliding and position adjustment of the partition.
When the position of the partition is not required to be adjusted, the limiting part cooperates to limit sliding to prevent displacement. During adjustment, the limiting part is separated to achieve smooth sliding, which improves the stability and operation convenience of the stacking structure.
Smart Images

Figure CN223169385U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of dish racks, in particular to a partition component and a dish rack. Background Art
[0002] With the progress of society and the development of technology, people have higher and higher requirements for the variety and structure of household items on the basis of the rapid improvement of their material living standards. In order to meet the consumer group, merchants have made great improvements in the functions and structures of household cabinets, etc., to make it more convenient to load and take kitchen utensils and tableware, etc. Kitchen utensils and tableware are placed separately on the cabinet pull-out basket, which is both hygienic and convenient.
[0003] On the existing dish racks, there are mainly multiple dish partition members provided on the dish rack, and multiple partition members form stacking spaces on the dish rack, and the partition members are used to separate and stack dishes. According to different dish sizes, the intervals between the partition members need to be adjusted. The conventional method is to directly slide-fit the partition members with the support rods of the dish rack, or directly disassemble and adjust. If it is adjusted by sliding, it is easy to shift during the stacking process, resulting in an unstable structure for placing dishes. If the position is adjusted directly after disassembly, such operation is not convenient enough. Summary of the Utility Model
[0004] In order to overcome at least one of the above-mentioned defects of the prior art, the utility model provides a partition component and a dish rack. When the position of the partition member is adjusted, the second limiting portion of the connecting member is forced to disengage from the first limiting portion by the force on the partition member, and the partition member can slide smoothly through the connecting member and the support frame. After the position of the partition member is adjusted in place, the second limiting portion of the connecting member is forced to be in limiting cooperation with the first limiting portion by the force on the partition member to limit the sliding, so that the separated stacking structure is stable.
[0005] The technical solution adopted by the utility model to solve its problems is:
[0006] A partition component includes a support frame and a partition member. The support frame is provided with a first sliding portion and a first limiting portion. The partition member is provided with a connecting member. The connecting member is provided with a second sliding portion and a second limiting portion. The second sliding portion is slidably connected with the first sliding portion to guide the connecting member to slide relative to the support frame; the second limiting portion is used to move to be in limiting cooperation with or disengage from the first limiting portion when the connecting member is stressed; after the second limiting portion is in limiting cooperation with the first limiting portion, the sliding of the connecting member and the support frame is restricted.
[0007] Further, a sliding groove is provided on the support frame, and a guiding groove is provided on the side wall of the sliding groove; the connecting member is provided with a guiding post, and the connecting member is inserted through the sliding groove so that the guiding post slides and is inserted into the guiding groove; the guiding groove forms the first sliding portion, and the guiding post forms the second sliding portion.
[0008] Further, a limiting groove is provided on the side wall of the sliding groove, and a limiting convex block is provided on the connecting member. The limiting convex block is used to be inserted into or withdrawn from the limiting groove when the connecting member is stressed and rotated; the limiting groove forms the first limiting portion; the limiting convex block forms the second limiting portion.
[0009] Further, the limiting groove is an arc-shaped groove, and the limiting convex block is provided with a guiding surface, and the guiding surface is used to slidably cooperate with the arc surface of the arc-shaped groove when the connecting member rotates.
[0010] Further, the guiding surface is an arc surface or an inclined surface.
[0011] Further, a first locking surface is provided on the connecting member, and the first locking surface is used to cooperate with the top wall and / or the bottom wall of the sliding groove after the limiting convex block is inserted into the limiting groove.
[0012] Further, a second locking surface is further provided on the connecting member, and the second locking surface is used to cooperate with the top wall and / or the bottom wall of the sliding groove after the limiting convex block withdraws from the limiting groove.
[0013] Further, the first locking surface and the second locking surface are connected by an avoiding surface, and the avoiding surface is used to avoid the cooperation with the top wall and / or the bottom wall of the sliding groove when the connecting member rotates.
[0014] Further, the avoiding surface is an arc surface or an inclined surface.
[0015] A dish rack includes the partition assembly described above; a plurality of partition members are provided, and a stacking interval is formed between adjacent two partition members.
[0016] In summary, the present utility model has the following technical effects:
[0017] When the position of the partition member does not need to be adjusted, a force can be applied to the partition member. When the partition member is stressed, it can drive the connecting member connected to the support frame to move, and drive the second limiting portion on the connecting member to be in limiting cooperation with the first limiting portion on the support frame. In this state, the sliding of the connecting member of the partition member and the support frame can be restricted by the first limiting portion and the second limiting portion, preventing the partition member from shifting when supporting dishes, and the stacking structure is more stable.
[0018] When the position of the partition on the support frame needs to be adjusted, the second limiting portion on the connecting member of the partition is separated from the first limiting portion on the support frame, so that the partition can slide smoothly under the guidance of the sliding fit between the second sliding portion and the first sliding portion. Brief Description of the Drawings
[0019] Figure 1 It is a schematic structural diagram of a state of the partition assembly of the present utility model;
[0020] Figure 2 is Figure 1 a sectional view of a state of the partition assembly in
[0021] Figure 3 is Figure 1 a state structure of the partition in
[0022] Figure 4 It is a schematic structural diagram of another state of the partition assembly of the present utility model;
[0023] Figure 5 is Figure 4 a sectional view of another state of the partition assembly in
[0024] Figure 6 is Figure 4 another state structure of the partition in
[0025] Figure 7 It is a schematic structural diagram of the support frame of the present utility model; [[ID=;39]]
[0026] Figure 8 Schematic structural diagram of the dish rack of the present utility model.
[0027] Among them, the meanings of the reference numerals are as follows: 10, support frame; 11, sliding groove; 12, guiding groove; 13, limiting groove; 20, partition; 21, connecting member; 211, guiding post; 212, limiting convex block; 213, first locking surface; 214, second locking surface; 215, avoiding surface. Detailed Embodiment
[0028] For better understanding and implementation, the technical solutions in the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present utility model.
[0029] In the description of the present utility model, it should be noted that the orientation or positional relationship indicated by the terms "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present utility model.
[0030] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the technical field to which the present utility model belongs. The terms used in the description of the present utility model herein are only for the purpose of describing specific embodiments and are not intended to limit the present utility model.
[0031] Referring to Figures 1 - 7 , the present utility model discloses a partition assembly, which includes a support frame 10 and a partition member 20. A first sliding portion and a first limiting portion are provided on the support frame 10, and a connecting member 21 is provided on the partition member 20. The connecting member 21 is provided with a second sliding portion and a second limiting portion. The second sliding portion is slidably connected to the first sliding portion to guide the connecting member 21 to slide relative to the support frame 10. In addition, when the connecting member 21 is stressed, the second limiting portion can be in limiting cooperation with or separated from the first limiting portion, and after the second limiting portion and the first limiting portion are in limiting cooperation, the sliding of the connecting member 21 and the support frame 10 is restricted.
[0032] Based on the above structure, when using the partition assembly of the present utility model, the partition assembly can be used for utensils such as dish racks, cabinets, or storage cabinets that require partition stacking.
[0033] Specifically, taking the application of the partition assembly to a dish rack as an example, the partition member 20 can achieve sliding cooperation with the first sliding portion of the support frame 10 through the second sliding portion. By arranging the partition member 20 on the support frame 10, different stacking intervals are formed on the support frame 10, and dishes can be placed between two adjacent partition members 20 for support.
[0034] When sliding is required, the second sliding portion on the connecting member 21 of the partition member 20 can be slidably mated with the first sliding portion on the support frame 10. Thus, the partition member 20 and the support frame 10 can slide, enabling the position of the partition member 20 on the support frame 10 to be adjusted by sliding. In this state, the second limiting portion on the connecting member 21 of the partition member 20 is separated from the first limiting portion on the support frame 10. Therefore, the partition member 20 can be smoothly slid by guiding the sliding cooperation between the second sliding portion and the first sliding portion.
[0035] However, if the separator 20 always remains in a sliding state, when the separator 20 supports the dishes, it is easy to push the separator 20 to slide when the dishes are tilted, resulting in an unstable stacking structure of the dishes. Therefore, when the position of the separator 20 does not need to be adjusted, a force can be applied to the separator 20. When the separator 20 is stressed, it can drive the movement of the connecting member 21 connected to the support frame 10, and drive the second limiting portion on the connecting member 21 to be in limiting cooperation with the first limiting portion on the support frame 10. In this state, the sliding of the connecting member 21 of the separator 20 and the support frame 10 can be restricted by the first limiting portion and the second limiting portion, preventing the separator 20 from shifting when supporting the dishes, and making the stacking structure more stable.
[0036] Of course, if the position of the separator 20 needs to be adjusted again, a force can be applied to the separator 20 again to drive the second limiting portion of the connecting member 21 of the separator 20 to disengage from the first limiting portion. At this time, the separator 20 can be slidably engaged with the first sliding portion through the second sliding portion, and the position of the separator 20 can be smoothly adjusted by sliding.
[0037] Further, in this embodiment, a sliding groove 11 can be provided on the support frame 10, a guiding groove 12 can be provided on the side wall of the sliding groove 11, and a guiding post 211 can be correspondingly provided on the connecting member 21. The connecting member 21 is inserted into the sliding groove 11, and after the connecting member 21 is inserted into the sliding groove 11, the guiding post 211 on the connecting member 21 can be slidably inserted into the guiding groove 12 on the side wall of the sliding groove 11. In this way, the sliding cooperation between the separator 20 and the support frame 10 can be realized by the sliding cooperation between the guiding post 211 and the guiding groove 12, making the sliding between the separator 20 and the support frame 10 smooth.
[0038] Since the connecting member 21 is arranged in the sliding groove 11, the left - right yaw of the separator 20 and the support frame 10 can be prevented from yawing by the limiting of the connecting member 21 and the sliding groove 11, and the sliding process of the separator 20 is more stable.
[0039] On the basis of this structure, the above - mentioned guiding groove 12 forms the first sliding portion, and the guiding post 211 forms the second sliding portion. Of course, the sliding groove 11 can also not be provided, and the guiding groove 12 can be directly provided on the side of the support frame 10, and the guiding post 211 can be provided on the connecting member 21 corresponding to the separator 20, and sliding guidance can also be realized.
[0040] Further, a limiting groove 13 is provided on the side wall of the sliding groove 11, and a limiting convex block 212 is correspondingly provided on the connecting member 21. Since the connecting member 21 is connected in the sliding groove 11 of the support frame 10 and the connecting member 21 has a rotation space, the above - mentioned separator 20 can have a rotation angle when stressed, and can drive the connecting member 21 to swing in the sliding groove 11.
[0041] In this way, when the separator 20 slides in position, the separator 20 can be rotated. The connecting member 21 of the separator 20 can swing to drive the limiting projection 212 on the connecting member 21 to withdraw from the limiting groove 13. In this way, the connecting member 21 is slidably engaged with the guiding groove 12 in the sliding groove 11 through the guiding post 211.
[0042] After the adjustment is in place, the separator 20 is rotated in the reverse direction again. The connecting member 21 on the separator 20 swings in the reverse direction, driving the limiting projection 212 to snap into the limiting groove 13. In this way, the sliding of the connecting member 21 with the support frame 10 is restricted.
[0043] On the basis of this structure, the limiting groove 13 is formed as the first limiting portion; the limiting projection 212 is formed as the second limiting portion.
[0044] In addition, in addition to using the limiting cooperation method of the limiting projection 212 and the limiting groove 13, the method of a spring pin and a positioning hole can also be used to achieve limiting. When sliding is required, the separator 20 is stressed to drive the spring pin to withdraw from the positioning hole and slide again.
[0045] Of course, it is also possible to provide a guiding post on the support frame and a guiding groove corresponding to the connecting member of the separator. On the basis of this structure, the above-mentioned limiting projection is provided on the support frame, and a limiting groove is provided on the connecting member. In this way, the sliding restriction and sliding guidance of the separator can also be achieved. Of course, the setting forms of the above-mentioned first sliding portion, second sliding portion, first limiting portion, and second limiting portion will not be exemplified one by one here. Specifically, any structure that can achieve sliding guidance or sliding limiting is acceptable.
[0046] In this embodiment, the above-mentioned limiting groove 13 can be provided below the guiding groove 12. Therefore, by rotating the connecting member 21, the limiting projection 212 on the connecting member 21 can move up and down, so that the limiting projection 212 can withdraw from or snap into the limiting groove 13 to achieve limiting cooperation or withdrawal.
[0047] Specifically, when the separator 20 slides normally, the user drives the separator 20 to rotate upward, driving the connecting member 21 to swing upward. In this way, the limiting projection 212 on the connecting member 21 can withdraw upward from the limiting groove 13. At this time, the limiting projection 212 corresponds to the guiding groove 12. Therefore, when the guiding post 211 slides with the guiding groove 12, it can avoid the limiting projection 212 and will not interfere with the sliding.
[0048] After the position of the separator 20 is adjusted in place, the user drives the separator 20 to rotate upward, driving the connecting member 21 to swing downward. In this way, the limiting projection 212 on the connecting member 21 can snap downward into the limiting groove 13. At this time, the limiting projection 212 is in snap-fit with the limiting groove 13. Therefore, the sliding of the separator 20 and the support frame 10 can be restricted.
[0049] In other embodiments, the above-mentioned limiting groove may also be provided above the guiding groove, and the user can make an adaptive adjustment to the swinging direction of the connecting member of the partition member according to the setting range of the limiting groove.
[0050] More specifically, the above-mentioned limiting groove 13 is an arc groove, and a guiding surface is correspondingly provided on the limiting convex block 212. When the connecting member 21 rotates, the guiding surface can be in sliding fit with the arc surface of the arc groove, and the guiding and limiting convex block 212 can be smoothly engaged or disengaged from the arc groove through the cooperation of the arc surface and the guiding surface, reducing the situation of jamming.
[0051] On the basis of the above structure, the guiding surface is an arc surface or an inclined surface, which can make the surface of the limiting convex block 212 form an uneven structure, facilitating the formation of a stable limiting structure after the limiting convex block 212 is engaged. Moreover, the guiding surface adopts an inclined surface or an arc surface to cooperate with the arc surface of the arc groove, and the guiding process is smoother.
[0052] Furthermore, a first locking surface 213 is provided on the connecting member 21. After the limiting convex block 212 is engaged in the limiting groove 13, the first locking surface 213 can cooperate with the top wall and / or the bottom wall of the sliding groove 11. That is to say, after the connecting member 21 swings by an angle, the limiting convex block 212 is engaged in the limiting groove 13. In order to prevent the connecting member 21 from rotating under non-artificial action, the first locking surface 213 of the connecting member 21 cooperates with the top wall or the bottom wall of the sliding groove 11. In this way, the planar cooperation prevents rotation. Only when the external force acting on the partition member 20 is large enough can the first locking surface 213 be driven to disengage from the top wall or the bottom wall of the sliding groove 11 to realize the re-rotation of the connecting member 21.
[0053] Similarly, a second locking surface 214 may also be provided on the connecting member 21. That is, when the partition member 20 needs to slide, in order to also prevent the connecting member 21 from rotating under non-artificial action and reduce the sliding jamming of the connecting member 21 in the sliding groove 11, the second locking surface 214 of the connecting member 21 cooperates with the top wall or the bottom wall of the sliding groove 11. In this way, the planar cooperation prevents rotation. Only when the external force acting on the partition member 20 is large enough can the second locking surface 214 be driven to disengage from the top wall or the bottom wall of the sliding groove 11 to realize the re-rotation of the connecting member 21.
[0054] Of course, since the first locking surface 213 and the second locking surface 214 are planes, and the connecting member 21 needs to rotate to drive the second limiting portion to engage or disengage with the first limiting portion, an avoidance surface 215 needs to be provided between the first locking surface 213 and the second locking surface 214 on the connecting member 21. The avoidance surface 215 can avoid the top wall and / or bottom wall of the sliding groove 11 when the connecting member 21 rotates, thereby preventing the connecting member 21 from being interfered with by the top wall or bottom wall of the sliding groove 11 during rotation and being unable to rotate.
[0055] In order to enable the connecting member 21 to rotate under the action of external force after the first locking surface 213 and the second locking surface 214 are set, the above-mentioned avoidance surface 215 is an arc surface or an inclined surface, which can slide with the top wall or bottom wall of the sliding groove 11 to guide the connecting member 21 to rotate.
[0056] It should also be noted that the above-mentioned connecting member 21 can adopt a cam structure, and the above-mentioned second sliding part and the second limiting part can be eccentrically arranged. In this way, when the connecting member 21 rotates, after rotating with the second sliding part as the rotation center, the second limiting part can move up and down relative to the first limiting part, realizing the switching between the two states of limiting engagement or disengagement.
[0057] Based on this structure, the first locking surface 213 , the second locking surface 214 and the avoidance surface 215 can be arranged on the contour line of the cam.
[0058] Example 2,
[0059] See also Figures 1 - 8 The dish rack shown includes the divider assembly of Example 1. A plurality of dividers 20 are provided, with the spacing between adjacent dividers 20 forming a stacking interval. The dividers 20 are provided on the support frame 10 to form different stacking intervals, and dishes can be placed between adjacent dividers 20 for support.
[0060] When sliding is required, the second sliding portion on the connecting member 21 of the separator 20 can be slidably matched with the first sliding portion on the support frame 10, so that the separator 20 and the support frame 10 can slide, so that the position of the separator 20 on the support frame 10 can be slid for position adjustment. In this state, the second limiting portion on the connecting member 21 of the separator 20 is separated from the first limiting portion on the support frame 10, so that the separator 20 can achieve smooth sliding guided by the sliding cooperation between the second sliding portion and the first sliding portion.
[0061] However, if the partition 20 always remains in a sliding state, when the partition 20 supports the dishes, the dishes are prone to pushing the partition 20 to slide when they are toppled over, resulting in an unstable stacking structure of the dishes. Therefore, when the position of the partition 20 does not need to be adjusted, a force can be applied to the partition 20. When the partition 20 is stressed, it can drive the movement of the connecting member 21 connected to the support frame 10, and drive the second limiting portion on the connecting member 21 to be in limiting cooperation with the first limiting portion on the support frame 10. In this state, the sliding of the connecting member 21 of the partition 20 and the support frame 10 can be restricted by the first limiting portion and the second limiting portion, preventing the partition 20 from shifting when supporting the dishes, and making the stacking structure more stable.
[0062] Of course, if it is necessary to adjust the position of the partition 20 again, a force can be applied to the partition 20 again to drive the second limiting portion of the connecting member 21 of the partition 20 to disengage from the first limiting portion. At this time, the partition 20 can be slidably engaged with the first sliding portion through the second sliding portion, and the partition 20 can be smoothly adjusted in position by sliding.
[0063] The other structures of the above-mentioned partition assembly, as well as the principle and effect of acting on the dish rack, are the same as those in Embodiment 1, and the other structures of the dish rack are the prior art and will not be elaborated in detail here.
[0064] The technical means disclosed in the solution of the present invention are not limited to the technical means disclosed in the above embodiments, but also include technical solutions composed of any combination of the above technical features. It should be noted that for those of ordinary skill in the art in this technical field, without departing from the principle of the present invention, several improvements and refinements can be made, and these improvements and refinements are also regarded as the protection scope of the present invention.
Claims
1. A separating component, characterized in that, It includes a support frame and a separator. A first sliding part and a first limiting part are provided on the support frame. A connecting part is provided on the separator. The connecting part is provided with a second sliding part and a second limiting part. The second sliding part is slidably connected to the first sliding part to guide the relative sliding of the connecting part with respect to the support frame. The second limiting part is used to move when the connecting part is stressed to be in limiting cooperation with or disengaged from the first limiting part. After the second limiting part and the first limiting part are in limiting cooperation, the sliding of the connecting part and the support frame is restricted.
2. The separation component according to claim 1, characterized in that, A sliding groove is provided on the support frame, and a guiding groove is provided on the side wall of the sliding groove. The connecting part is provided with a guiding post. The connecting part is inserted through the sliding groove so that the guiding post is slidably inserted into the guiding groove. The guiding groove forms the first sliding part, and the guiding post forms the second sliding part.
3. The separating component according to claim 2, characterized in that, A limiting groove is provided on the side wall of the sliding groove, and a limiting convex block is provided on the connecting part. The limiting convex block is used to be clamped into or withdrawn from the limiting groove when the connecting part is stressed and rotated. The limiting groove forms the first limiting part. The limiting convex block forms the second limiting part.
4. The separation component according to claim 3, characterized in that The limiting groove is an arc groove, and the limiting convex block is provided with a guiding surface. The guiding surface is used to slidably cooperate with the arc surface of the arc groove when the connecting part rotates.
5. The separation component according to claim 4, characterized in that, The guiding surface is an arc surface or an inclined surface.
6. The separating component according to claim 3, characterized in that The connecting part is provided with a first locking surface. The first locking surface is used to cooperate with the top wall and / or the bottom wall of the sliding groove after the limiting convex block is clamped into the limiting groove.
7. The separating component according to claim 6, wherein The connecting part is further provided with a second locking surface. The second locking surface is used to cooperate with the top wall and / or the bottom wall of the sliding groove after the limiting convex block withdraws from the limiting groove.
8. The separating component according to claim 7, wherein The first locking surface and the second locking surface are connected by an avoidance surface. The avoidance surface is used to avoid the cooperation with the top wall and / or the bottom wall of the sliding groove when the connecting part rotates.
9. The separation component according to any one of claims 1-8, characterized in that, The connecting part is a cam structure, and the second sliding part and the second limiting part are eccentrically arranged.
10. A dish rack, characterized in that, It includes a separating component according to any one of claims 1-9. A plurality of the separators are provided, and the space between adjacent two of the separators forms a stacking space.