Intelligent storage drawer cabinet

The locking pin and the matching structure stabilize the opening of the push-pull slot, and combined with the design of the detachable partition plate, the problem of unstable drawer sliding is solved, and a drawer cabinet design with stable opening and flexible storage space is achieved.

CN223323200UActive Publication Date: 2025-09-12JIANGSU XICANG INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202421961880.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-13
Publication Date
2025-09-12
Estimated Expiration
2034-08-13

AI Technical Summary

Technical Problem

Existing drawer cabinets are prone to uncontrolled sliding when pushed or pulled, resulting in unstable opening, especially when the load is uneven under the cantilever structure.

Method used

The locking pin and matching structure are adopted, and the locking pin cooperates with the matching hole on the push-pull trough body to provide movement resistance to stabilize the opening; the partition plate is detachable to achieve classified storage and adjustable placement space.

Benefits of technology

The push-pull trough body can be kept stable at a certain position, providing a classified storage function, and the size and number of the placement space can be adjusted as needed.

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Abstract

The utility model relates to an intelligent storage drawer cabinet, and belongs to the field of storage equipment, the intelligent storage drawer cabinet comprises a cabinet body and a push-and-pull groove body, the push-and-pull groove body is slidably connected relative to the cabinet body, the push-and-pull groove body is provided with a placing groove, the cabinet body is slidably provided with a locking pin, the sliding direction of the locking pin is perpendicular to the sliding direction of the push-and-pull groove body, and the sliding direction of the locking pin is perpendicular to the sliding direction of the push-and-pull groove body. A plurality of matching structures are arranged on the push-and-pull groove body, the matching structures are arranged in an array mode in the sliding direction of the push-and-pull groove body, the matching structures are used for being matched with locking pins, and when the locking pins are matched with the single matching structures, the locking pins generate resistance in the moving direction on the push-and-pull groove body. According to the invention, the push-pull groove body can be kept in a stable static state for a long time at a certain position with a fixed opening degree.
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Description

Technical Field

[0001] The present application relates to the field of storage equipment, and in particular to an intelligent storage drawer cabinet. Background Art

[0002] A chest of drawers is a cabinet formed by a combination of multiple drawers, each of which can store items individually and can be pulled out and moved.

[0003] In related art, drawer cabinets used in factories include multiple, independent drawers arranged in an array. The space within the drawers is used to store tools, materials, small equipment, etc. To ensure smooth sliding and pulling of each drawer, the frictional resistance of the slide rails between the drawer and the cabinet is reduced. However, since the drawer is a cantilever structure when opened, for drawers with a long total opening and uneven internal load, uncontrolled sliding is prone to occur when maintaining a fixed opening for a long time, resulting in unstable opening. Utility Model Content

[0004] In order to improve the above problems, the present application provides a smart storage drawer cabinet.

[0005] The present application provides a smart storage drawer cabinet that adopts the following technical solution:

[0006] A smart storage drawer cabinet includes a cabinet body and a push-pull trough body, the push-pull trough body is slidably connected to the cabinet body, the push-pull trough body is provided with a placement slot, a locking pin is slidably provided on the cabinet body, the sliding direction of the locking pin is perpendicular to the sliding direction of the push-pull trough body, the push-pull trough body is provided with a plurality of matching structures, and the plurality of matching structures are arranged in an array along the sliding direction of the push-pull trough body, the matching structures are used to match with the locking pin, and when the locking pin matches with a single matching structure, the locking pin generates resistance to the push-pull trough body in the moving direction.

[0007] By adopting the above technical solution, when the push-pull trough body moves to a certain position, the locking pin moves and cooperates with the matching structure to generate movement resistance to the push-pull trough body, making it impossible for the push-pull trough body to move easily, thereby being able to maintain a relatively stable static state under this opening condition.

[0008] Preferably, a matching strip is fixedly connected to the push-pull slot body, the length direction of the matching strip is parallel to the length direction of the push-pull slot body, the matching structure is a matching hole, and a plurality of the matching holes are opened on the matching strip.

[0009] By adopting the above technical solution, the push-pull slot body is moved to different position points, and the corresponding matching holes can be correspondingly inserted by the locking pins.

[0010] Preferably, the cabinet body is provided with a detection sensor and a driving source, the driving source is used to control the sliding of the locking pin, the push-pull trough body is fixedly connected with a detection strip, the detection strip is provided with a plurality of detection notches, and the plurality of detection notches are arranged in an array along the moving direction of the push-pull trough body. When the push-pull trough body moves, each of the detection notches passes through the detection point of the detection sensor in turn, and the detection sensor and the driving source are electrically connected.

[0011] By adopting the above technical solution, the detection sensor detects the detection notch passed by, thereby determining the specific moving position of the push-pull slot body, and thus controlling whether the locking pin moves or not.

[0012] Preferably, a plurality of partition plates are provided on the push-pull trough body and in the placement groove, and the plurality of partition plates are arranged along the moving direction of the push-pull trough body. The plate surface of the partition plates is perpendicular to the moving direction of the push-pull trough body, and the edges of the partition plates are in contact with the groove wall and groove bottom of the placement groove.

[0013] By adopting the above technical solution, the placement slot is divided into multiple independent placement spaces, and different items can be stored in different categories and zones.

[0014] Preferably, the partition plate and the push-pull trough body are detachably connected.

[0015] By adopting the above technical solution, the size and number of the placement spaces formed can be adjusted according to the position and number of the partition plates installed as needed.

[0016] Preferably, a mounting edge is fixedly connected to one side of the partition plate, and a mounting hole for inserting the mounting edge is provided at the bottom of the placement slot. The mounting hole passes through to the side of the push-pull slot body away from the placement slot, and the extension length of the mounting edge relative to the partition plate is greater than the length of the mounting hole.

[0017] By adopting the above technical solution, the portion of the mounting edge extending from the mounting hole is bent to be plastically deformed, thereby forming a blocking position, and the partition plate cannot be removed from the placement groove.

[0018] Preferably, a positioning groove is provided on the groove wall at the groove opening of the placement groove, and a positioning portion inserted into the positioning groove is integrally formed on the edge of the partition plate, and the positioning portion abuts against the groove wall of the positioning groove.

[0019] By adopting the above technical solution, the push-pull trough body relatively positions the edge of the grid plate, thereby improving the state stability of the grid plate.

[0020] Preferably, a reinforcing rib is fixedly connected to the push-pull trough body, and the length direction of the reinforcing rib is consistent with the moving direction of the push-pull trough body.

[0021] By adopting the above technical solution, the reinforcing ribs are used to improve the bending strength of the push-pull trough body.

[0022] Preferably, an axis hole is provided on the mounting edge, and a stop pin is slidingly provided on the side of the push-pull slot body away from the placement slot, and the stop pin passes through the axis hole. A magnetic block is fixedly connected to the push-pull slot body, and when the end of the stop pin abuts the magnetic block, the stop pin passes through the axis hole.

[0023] By adopting the above technical solution, when the retaining pin passes through the shaft hole, the partition plate cannot be withdrawn from the placement groove. This retaining method improves the convenience of taking and placing the partition plate.

[0024] In summary, this application includes at least one of the following beneficial technical effects:

[0025] 1. Through the setting of the locking pin and the matching structure, when the push-pull trough moves to a certain position, the locking pin moves and cooperates with the matching structure to generate movement resistance to the push-pull trough, making it unable to move easily, thereby maintaining a relatively stable static state at this opening;

[0026] 2. Through the setting of the partition board, the placement slot is divided into multiple independent placement spaces, and different items can be classified and stored in different areas. The partition board is detachable relative to the push-pull slot body, that is, the size and number of the placement space can be adjusted. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 This is a schematic diagram of the overall structure of the smart storage drawer cabinet in Example 1 of the present application.

[0028] Figure 2 It is a schematic cross-sectional view of the structure of the push-pull trough body in the first embodiment of the present application.

[0029] Figure 3 It is a schematic diagram of the bottom structure of the push-pull trough body in Example 1 of the present application.

[0030] Figure 4 It is a structural diagram used to reflect the anti-retraction pin in Example 2 of the present application.

[0031] Explanation of the accompanying reference numerals: 1. Cabinet body; 11. Locking pin; 12. Driving source; 13. Detection sensor; 14. Push-pull handle; 2. Push-pull slot; 21. Placement slot; 22. Mounting hole; 23. Positioning slot; 24. Reinforcing rib; 25. Matching slat; 251. Matching hole; 26. Detection slat; 261. Detection notch; 27. Stop pin; 271. Magnetic block; 3. Partition plate; 31. Mounting edge; 311. Axis hole; 32. Positioning part. DETAILED DESCRIPTION

[0032] The following is combined with Figure 1-4 This application is described in further detail.

[0033] Example 1:

[0034] The embodiment of the present application discloses a smart storage drawer cabinet, such as Figure 1 As shown, the cabinet comprises a cabinet body 1 and a plurality of push-pull trough bodies 2. Each push-pull trough body 2 is connected to the cabinet body 1 in a transverse sliding manner. A slide rail is installed between the push-pull trough body 2 and the cabinet body 1. A placement groove 21 is provided on the push-pull trough body 2. The placement groove 21 is located above the push-pull trough body 2. A push-pull handle 14 is provided at the end of the push-pull trough body 2. The operator can push and pull the push-pull trough body 2 through the push-pull handle 14.

[0035] like Figure 2 and 3 As shown, a locking pin 11 is slidably provided on the cabinet 1 and a detection sensor 13 is fixedly provided. Both are located below the push-pull trough 2. The sliding direction of the locking pin 11 is horizontal and perpendicular to the moving direction of the push-pull trough 2. A driving source 12 for controlling the sliding of the locking pin 11 is installed on the cabinet 1. In this embodiment, the driving source 12 is a cylinder, and one end of the locking pin 11 is fixedly connected to the piston rod of the cylinder. Several matching structures are provided below the push-pull trough 2. The matching structures are used to match the locking pin 11. When the locking pin 11 matches a single matching structure, the locking pin 11 generates resistance to the push-pull trough 2 in the moving direction, making it difficult for the push-pull trough 2 to move easily. The mating structure is a mating hole 251. A mating strip 25 is fixedly connected to the bottom of the push-pull trough 2. The length of the mating strip 25 is parallel to the length of the push-pull trough 2. Several mating holes 251 are provided on the mating strip 25. Each mating hole 251 allows the locking pin 11 to pass through, thereby achieving the braking and limiting effect of the locking pin 11 on the mating strip 25 and the push-pull trough 2. A detection strip 26 is also fixedly connected to the push-pull trough 2 next to the mating strip 25. The length of the detection strip 26 is consistent with the length of the mating strip 25. The detection strip 26 is arrayed with a plurality of detection notches 261 along its own length. When the push-pull trough 2 moves, each detection notch 261 sequentially passes through the detection point of the detection sensor 13. The detection sensor 13 is electrically connected to the drive source 12. It detects the active position of the push-pull trough 2 by the number of detection notches 261 passed through, thereby issuing a command to the drive source 12 to control the movement of the locking pin 11.

[0036] like Figure 1 、 2As shown in Figure 3, a plurality of partition plates 3 are provided on the push-pull trough 2 and within the placement trough 21. The plurality of partition plates 3 are arranged along the direction of movement of the push-pull trough 2, with the surface of the partition plates 3 perpendicular to the direction of movement of the push-pull trough 2. Each partition plate 3 is detachably connected to the push-pull trough 2. A plurality of mounting holes 22 are provided in the middle of the bottom of the placement trough 21. The plurality of mounting holes 22 are arranged in an array along the length of the push-pull trough 2, and the mounting holes 22 extend to the side of the push-pull trough 2 facing away from the placement trough 21. A mounting edge 31 is integrally formed on the lower edge of the partition plate 3. The extension length of the mounting edge 31 relative to the partition plate 3 is greater than the length of the mounting hole 22. Positioning grooves 23 are provided on both groove walls at the notch of the placement trough 21. A positioning portion 32 is integrally formed on the edge of the partition plate 3 for insertion into the positioning groove 23. The positioning portion 32 abuts against the groove wall of the positioning groove 23. When the positioning portion 32 is inserted into the positioning groove 23, the mounting edge 31 passes through the mounting hole 22. The portion of the mounting edge 31 extending from the mounting hole 22 can be bent and plastically deformed to form a locking position, so that the partition plate 3 cannot be removed from the placement slot 21. The placement slot 21 is divided into multiple independent placement spaces, which can be classified and stored in different areas. The partition plate 3 is detachable relative to the push-pull slot body 2, that is, the size and number of the placement spaces can be adaptively adjusted.

[0037] like Figure 2 and 3 As shown, a reinforcing rib 24 is integrally formed on the push-pull trough body 2 by bending. The length direction of the reinforcing rib 24 is consistent with the moving direction of the push-pull trough body 2. The reinforcing rib 24 is used to improve the bending strength of the push-pull trough body 2.

[0038] Example 2:

[0039] like Figure 4 As shown, the difference from the above embodiment is that the temporary fixation of the grid strips in this embodiment does not rely on plastic deformation. A through-axis hole 311 is provided on the mounting edge 31, and the through-axis hole 311 is located at the portion of the mounting edge 31 that extends from the mounting hole 22; a stop pin 27 is provided on the side of the push-pull trough 2 that is away from the placement slot 21. The sliding direction of the stop pin 27 is perpendicular to the plate surface of the grid plate 3, and the stop pin 27 can pass through the through-axis hole 311. A magnetic block 271 is fixedly connected to the push-pull trough 2. When the end of the stop pin 27 abuts the magnetic block 271, the stop pin 27 passes through the through-axis hole 311. At this time, the grid plate 3 cannot be withdrawn from the placement slot 21. This stop method improves the convenience of taking and placing the grid plate 3.

[0040] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.

Claims

1. An intelligent storage drawer cabinet, comprising a cabinet body (1) and a push-pull trough body (2), wherein the push-pull trough body (2) is slidably connected relative to the cabinet body (1), and a placement groove (21) is provided on the push-pull trough body (2), characterized in that: A locking pin (11) is slidably provided on the cabinet body (1), the sliding direction of the locking pin (11) is perpendicular to the sliding direction of the push-pull slot body (2), a plurality of matching structures are provided on the push-pull slot body (2), and the matching structures are arranged in an array along the sliding direction of the push-pull slot body (2), and the matching structures are used to match with the locking pin (11). When the locking pin (11) matches with a single matching structure, the locking pin (11) generates resistance to the push-pull slot body (2) in the moving direction; The cabinet (1) is provided with a detection sensor (13) and a driving source (12), the driving source (12) is used to control the sliding of the locking pin (11), the push-pull slot (2) is fixedly connected with a detection strip (26), the detection strip (26) is provided with a plurality of detection notches (261), the plurality of detection notches (261) are arranged in an array along the moving direction of the push-pull slot (2), when the push-pull slot (2) moves, each of the detection notches (261) passes through the detection point of the detection sensor (13) in sequence, the detection sensor (13) and the driving source (12) are electrically connected, the driving source (12) is selected from a cylinder, and one end of the locking pin (11) is fixedly connected to the piston rod of the cylinder.

2. The intelligent storage drawer cabinet according to claim 1, characterized in that: A matching strip (25) is fixedly connected to the push-pull slot body (2), the length direction of the matching strip (25) is parallel to the length direction of the push-pull slot body (2), the matching structure is a matching hole (251), and a plurality of the matching holes (251) are opened on the matching strip (25).

3. The intelligent storage drawer cabinet according to claim 1 or 2, characterized in that: A plurality of partition plates (3) are provided on the push-pull trough body (2) and in the placement groove (21); the plurality of partition plates (3) are arranged along the moving direction of the push-pull trough body (2); the plate surfaces of the partition plates (3) are perpendicular to the moving direction of the push-pull trough body (2); and the edges of the partition plates (3) are in contact with the groove walls and groove bottom of the placement groove (21).

4. The intelligent storage drawer cabinet according to claim 3, characterized in that: The partition plate (3) and the push-pull trough body (2) are detachably connected.

5. The intelligent storage drawer cabinet according to claim 4, characterized in that: A mounting edge (31) is fixedly connected to one side of the partition plate (3); a mounting hole (22) for inserting the mounting edge (31) is provided at the bottom of the placement groove (21); the mounting hole (22) passes through the side of the push-pull groove body (2) facing away from the placement groove (21); and the extension length of the mounting edge (31) relative to the partition plate (3) is greater than the length of the mounting hole (22).

6. The intelligent storage drawer cabinet according to claim 5, characterized in that: A positioning groove (23) is provided on the groove wall at the groove opening of the placement groove (21); a positioning portion (32) inserted into the positioning groove (23) is integrally formed on the edge of the partition plate (3); the positioning portion (32) abuts against the groove wall of the positioning groove (23).

7. The intelligent storage drawer cabinet according to claim 1 or 2, characterized in that: A reinforcing rib (24) is fixedly connected to the push-pull trough body (2), and the length direction of the reinforcing rib (24) is consistent with the moving direction of the push-pull trough body (2).

8. The intelligent storage drawer cabinet according to claim 5, characterized in that: A through-axis hole (311) is provided on the installation edge (31), and a stop pin (27) is slidably provided on the side of the push-pull slot (2) away from the placement slot (21), and the stop pin (27) passes through the through-axis hole (311). A magnetic block (271) is fixedly connected to the push-pull slot (2), and when the end of the stop pin (27) abuts against the magnetic block (271), the stop pin (27) passes through the through-axis hole (311).