Efficient storage device for ceramic tiles

By using a mobile trolley and a linear drive mechanism in conjunction with chains and sprockets, ceramic tiles can be stored efficiently, solving the problem of insufficient warehouse space utilization and improving storage efficiency and security.

CN223792261UActive Publication Date: 2026-01-13LESHAN KENANTAI NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202520099148.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-16
Publication Date
2026-01-13
Estimated Expiration
2035-01-16

AI Technical Summary

Technical Problem

When ceramic tiles are manually stacked after manufacturing, the vertical space of the warehouse cannot be effectively utilized, resulting in a waste of storage space.

Method used

The system employs a mobile trolley, mounting column, storage and retrieval platform, first linear drive mechanism, and second linear drive mechanism. Through the cooperation of chain and sprocket, the storage and retrieval platform can slide vertically in the height direction and the baffle can be vertically disengaged, utilizing the warehouse height space to store tiles.

Benefits of technology

It effectively utilizes the vertical space of the warehouse, reduces storage space waste, improves access efficiency, adapts to the access needs of tiles of different sizes, and enhances security and stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an efficient ceramic tile storage device which comprises a moving trolley, a mounting column, a storing and taking table, a first linear driving mechanism and a second linear driving mechanism, the mounting column is arranged on a base of the moving trolley, the storing and taking table is arranged on the mounting column in a sliding mode, the first linear driving mechanism comprises a coil winder, a chain wheel and a chain, the coil winder is arranged on the base, and the chain wheel is arranged on the chain. The chain wheel is arranged on the upper portion of the installation column and sleeved with the chain, one end of the chain is connected with a connecting rope of the coiling machine, the other end of the chain is connected with the storing and taking table, the first linear driving mechanism drives the storing and taking table to slide in the height direction of the installation column, and a baffle is arranged on the periphery of the storing and taking table. According to the device, the height space of a warehouse can be effectively utilized, and waste of storage space is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of storage device technology, specifically to a high-efficiency storage device for ceramic tiles. Background Technology

[0002] Ceramic tiles are an important roofing waterproofing material. They are generally made of clay and fired, but some are made of cement and other materials. They are mostly arched in shape and are used to build houses, especially in antique-style buildings. After manufacturing, ceramic tiles are bundled and then manually stacked in warehouses for storage. Due to the limited height of manual stacking, the height of the warehouse cannot be effectively utilized, resulting in a waste of storage space. Utility Model Content

[0003] This invention provides an efficient storage device for ceramic tiles, which can solve the above-mentioned technical problems.

[0004] This utility model is achieved through the following technical solution:

[0005] A high-efficiency ceramic tile storage device includes a mobile trolley, a mounting column, a storage and retrieval platform, a first linear drive mechanism, and a second linear drive mechanism.

[0006] The mounting column is set on the base of the mobile trolley, and the access platform is slidably mounted on the mounting column. The first linear drive mechanism includes a winding machine, a sprocket, and a chain. The winding machine is set on the base, the sprocket is set on the upper part of the mounting column, and the chain is sleeved on the sprocket. One end of the chain is connected to the connecting rope of the winding machine, and the other end of the chain is connected to the access platform. The first linear drive mechanism drives the access platform to slide along the height direction of the mounting column.

[0007] The storage platform is equipped with baffles along its perimeter. The baffles away from the mounting column are provided with openings. A telescopic plate that moves toward the opening is provided in the center of the upper surface of the storage platform. Several rollers are symmetrically arranged on the storage platform and on the outer side of the two ends of the telescopic plate in the lateral direction. The second linear drive mechanism drives the baffles and the telescopic plate to simultaneously detach from the storage platform in a direction perpendicular to the rollers.

[0008] Furthermore, the baffle away from the opening is the first baffle, and the baffle adjacent to the first baffle is the second baffle. The first baffle has a built-in telescopic rod that drives the second baffle to move closer or further apart.

[0009] Furthermore, the second linear drive mechanism is a ball screw, and the ball screw is sequentially connected to the baffle and the telescopic plate.

[0010] Furthermore, the telescopic plates are provided in one or more ways, and the multiple telescopic plates are arranged parallel to each other at intervals. Each telescopic plate is connected to a second linear drive mechanism. The storage and retrieval platform is provided with a limiting plate perpendicular to its surface between adjacent telescopic plates. The end of the limiting plate away from the opening is connected to a baffle.

[0011] Furthermore, it also includes a bracket for supporting the winding reel of the winding machine.

[0012] Furthermore, a slider is provided on the mounting column along its height direction, and a corresponding slide groove is provided on the access platform. The slide groove is a T-shaped groove.

[0013] Furthermore, the top of the telescopic plate is an upward-convex arc shape.

[0014] A high-efficiency ceramic tile storage device includes a mobile trolley, a mounting column, a storage and retrieval platform, a first linear drive mechanism, and a second linear drive mechanism. When storing tiles, workers place them on the storage and retrieval platform. At this time, the top surface of the telescopic plate is in contact with the inner bottom wall of the tile, and the two bottom edges of the tile contact the rollers on both sides of the telescopic plate. A baffle limits the movement of the tile. The mobile trolley moves to the shelf, the winding machine rotates, and one end of the chain connected to the winding machine descends. The sprocket and chain work together to drive the storage and retrieval platform connected to the other end of the chain to rise to the target height. The second linear drive mechanism simultaneously drives the baffle and the telescopic plate containing the tile to detach from the storage and retrieval platform in a direction perpendicular to the rollers, moving the tile onto the shelf. Subsequently, the second linear drive mechanism simultaneously drives the baffle and the telescopic plate back to the storage platform. When the stacked tiles need to be retrieved, the winding machine rotates, and one end of the chain connected to the winding machine descends. The sprocket and chain work together to raise the retrieval platform connected to the other end of the chain to the target height. At the same time, the second linear drive mechanism drives the baffle and telescopic plate to disengage from the retrieval platform in a direction perpendicular to the roller to a certain position. At this time, the telescopic plate inserts into the gap under the tile and fits against the inner bottom wall of the tile. The baffle limits the tile. The second linear drive mechanism drives the baffle and telescopic plate to move the tile to the storage platform at the same time. The winding machine rotates, and one end of the chain connected to the winding machine rises. The sprocket and chain work together to lower the retrieval platform connected to the other end of the chain. The operator unloads the tile from the retrieval platform. This device can effectively utilize the height space of the warehouse and reduce the waste of storage space. Attached Figure Description

[0015] The accompanying drawings, which are included to provide a further understanding of the embodiments of the present invention and form part of this application, do not constitute a limitation thereof. In the drawings:

[0016] Figure 1 This is a schematic diagram of the structure of an efficient ceramic tile storage device according to an embodiment of the present invention;

[0017] Figure 2 This is a schematic diagram of the access station according to an embodiment of the present utility model;

[0018] Figure 3 This is a schematic diagram of the storage and retrieval platform with multiple telescopic plates according to an embodiment of the present invention.

[0019] The attached diagram shows the markings and corresponding component names:

[0020] 10-Mobile trolley, 101-Base, 11-Mounting column, 111-Sprocket, 1111-Chain, 12-Winding machine, 121-Winding reel, 122-Connecting rope, 123-Bracket;

[0021] 20-Storage platform, 21-Telescopic plate, 22-Roller, 23-First baffle, 231-Telescopic rod, 24-Second baffle, 25-Limiting plate, 26-Screw. Detailed Implementation

[0022] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the embodiments and accompanying drawings. The illustrative embodiments and descriptions of this utility model are only used to explain this utility model and are not intended to limit this utility model.

[0023] Example

[0024] A high-efficiency ceramic tile storage device includes a mobile trolley 10, a mounting column 11, a storage and retrieval platform 20, a first linear drive mechanism, and a second linear drive mechanism. The mobile trolley 10 drives the base 101 to move. The mobile trolley 10 includes wheels, a motor, and a battery that provides power to the motor. The drive end of the motor is connected to a gear. The motor drives the gear to rotate, and the gear drives the wheels to rotate. This is achieved through conventional technical means, such as an electric trolley.

[0025] Mounting post 11 is mounted on base 101 of mobile trolley 10. Access platform 20 is slidably mounted on mounting post 11. For example, mounting post 11 has a slider, and access platform 20 has a corresponding groove. The groove is a T-groove. The T-groove and T-block have good guiding accuracy, rigidity, and stability, improving the stability and accuracy of access platform 20 sliding along mounting post 11. The first linear drive mechanism includes a winding machine 12, sprocket 111, and chain 1111. The winding machine is mounted on the base. For example, a support bracket 123 is provided below the winding reel 121 of the winding machine 12 to increase its stability. Sprocket 111 is located on the upper part of mounting post 11, and chain 1111. 111 is sleeved on sprocket 111. One end of chain 1111 is connected to the connecting rope 122 of winding machine 12, and the other end of chain 1111 is connected to storage platform 20. The first linear drive mechanism drives storage platform 20 to slide along the height direction of mounting column 11. For example, storage platform 20 is provided with screw for connecting chain 1111 to increase the strength of the connection between chain 1111 and storage platform 20. It should be noted that the number of first drive mechanisms is not limited to one, and multiple sets can be set. For example, the number of first linear drive mechanisms is two sets. Two sets of first linear drive mechanisms can generate greater output force and provide better balance and stability, especially when bearing heavy tiles.

[0026] The access platform 20 is provided with a baffle along its periphery. The baffle away from the mounting column 11 is provided with an opening. A telescopic plate 21 that moves toward the opening is provided in the center of the upper surface of the access platform 20. Several rollers 22 are symmetrically arranged on the access platform 20 and on the outer side of the two ends of the telescopic plate 21 in the lateral direction. A second linear drive mechanism drives the baffle and the telescopic plate 21 to simultaneously disengage from the access platform 20 in a direction perpendicular to the rollers 22. For example, the second linear drive mechanism can be a ball screw 26, and the screw 26 of the ball screw 26 is sequentially connected to the baffle and the telescopic plate 21.

[0027] A high-efficiency ceramic tile storage device includes a mobile trolley 10, a mounting column 11, a storage and retrieval platform 20, a first linear drive mechanism, and a second linear drive mechanism. When storing tiles, workers place them on the storage and retrieval platform 20. At this time, the top surface of the telescopic plate 21 is in contact with the inner bottom wall of the tile, and the two bottom edges of the tile contact the rollers 22 on both sides of the telescopic plate 21. A baffle limits the tile's position. The mobile trolley moves to the shelf, the winding machine 12 rotates, and one end of the chain 1111 connected to the connecting rope 122 of the winding machine 12 descends. The sprocket 111, in cooperation with the chain 1111, drives the storage and retrieval platform 20, connected to the other end of the chain 1111, to rise to the target height. The second linear drive mechanism simultaneously drives the baffle and the telescopic plate 21 containing the tiles to detach from the storage and retrieval platform 20 in a direction perpendicular to the rollers 22, moving the tiles onto the shelf. Subsequently, the second linear drive mechanism simultaneously drives the baffle and the telescopic plate 21 back to the storage platform, where the stacked tiles can be retrieved. When the winding machine 12 rotates, one end of the chain 1111 connected to the connecting rope 122 of the winding machine 12 descends. The sprocket 111 and the chain 1111 work together to drive the storage platform 20 connected to the other end of the chain 1111 to rise to the target height. When the second linear drive mechanism drives the baffle and the telescopic plate 21 to simultaneously disengage from the storage platform 20 to a position in a direction perpendicular to the roller 22, at this time, the telescopic plate 21 inserts into the gap under the tile and fits against the inner bottom wall of the tile. The baffle limits the tile. The second linear drive mechanism drives the baffle and the telescopic plate 21 to move the tile to the storage platform at the same time. The winding machine 12 rotates, one end of the chain 1111 connected to the connecting rope 122 of the winding machine 12 rises, and the sprocket 111 and the chain 1111 work together to drive the storage platform 20 connected to the other end of the chain 1111 to descend. The operator unloads the tile from the storage platform 20. This device can effectively utilize the height space of the warehouse and reduce the waste of storage space.

[0028] In another embodiment, the baffle away from the opening is the first baffle 23, and the baffle adjacent to the first baffle 23 is the second baffle 231. The first baffle 23 has a built-in telescopic rod 231 that drives the second baffle 231 to move closer or further away from each other. When it is necessary to access smaller tiles, the telescopic rod 231 drives the second baffle 231 to move closer to each other and press against the smaller tiles, thereby improving the applicability of the access platform 20.

[0029] In another embodiment, the corner of the second baffle 231 near the opening is rounded off, which eliminates sharp edges and improves safety.

[0030] In another embodiment, the number of telescopic plates 21 is one or more, and the multiple telescopic plates 21 are arranged parallel to each other at intervals. One telescopic plate 21 is connected to a second linear drive mechanism. The access table 20 is provided with a limiting plate 25 perpendicular to its surface between adjacent telescopic plates 21. The end of the limiting plate 25 away from the opening is connected to a baffle, which can increase the number of items accessed at one time and improve access efficiency.

[0031] In another embodiment, the baffle is provided with a movable block, and the access platform 20 is provided with a movable slot corresponding to the movable block, thereby improving the stability of the baffle during movement.

[0032] In another embodiment, the telescopic plate 21 is an upwardly convex arc shape, which can effectively fit the inner bottom wall of the tile and increase the stability of the tile on the telescopic plate 21.

[0033] In another embodiment, anti-slip pads are provided on the side of the baffle facing the telescopic plate 21 and on the upper surface of the telescopic plate 21 to increase the friction coefficient of the contact surface and increase the stability of the tile on the access platform 20.

[0034] The specific embodiments described above further illustrate the purpose, technical solution, and beneficial effects of this utility model. It should be understood that the above description is only a specific embodiment of this utility model and is not intended to limit the scope of protection of this utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the scope of protection of this utility model.

Claims

1. A high-efficiency storage device for ceramic tiles, characterized in that, It includes a mobile trolley, mounting column, storage and retrieval platform, first linear drive mechanism and second linear drive mechanism. The mounting column is mounted on the base of the mobile trolley, and the access platform is slidably mounted on the mounting column. The first linear drive mechanism includes a winding machine, a sprocket, and a chain. The winding machine is mounted on the base, the sprocket is mounted on the upper part of the mounting column, and the chain is sleeved on the sprocket. One end of the chain is connected to the connecting rope of the winding machine, and the other end of the chain is connected to the access platform. The first linear drive mechanism drives the access platform to slide along the height direction of the mounting column. The access platform is provided with a baffle along its periphery, and the baffle away from the mounting column is provided with an opening. A telescopic plate that moves toward the opening is provided at the center of the upper surface of the access platform. Several rollers are symmetrically arranged on the access platform and on the outer side of the two ends of the telescopic plate in the lateral direction. The second linear drive mechanism drives the baffle and the telescopic plate to simultaneously disengage from the access platform in a direction perpendicular to the rollers.

2. The high-efficiency ceramic tile storage device according to claim 1, characterized in that, The baffle on the side away from the opening is the first baffle, and the baffle adjacent to the first baffle is the second baffle. The first baffle has a built-in telescopic rod that drives the second baffle to move closer or further away from each other.

3. The high-efficiency ceramic tile storage device according to claim 1, characterized in that, The second linear drive mechanism is a ball screw, and the ball screw is sequentially connected to the baffle and the telescopic plate.

4. The high-efficiency ceramic tile storage device according to claim 1, characterized in that, The telescopic plates are provided in one or more ways, and the multiple telescopic plates are arranged parallel to each other at intervals. Each telescopic plate is connected to a second linear drive mechanism. The access platform is provided with a limiting plate perpendicular to its surface between adjacent telescopic plates. The end of the limiting plate away from the opening is connected to the baffle.

5. A high-efficiency ceramic tile storage device according to claim 1 or 2, characterized in that, It also includes a bracket that supports the winding reel of the winding machine.

6. A high-efficiency ceramic tile storage device according to claim 1 or 3, characterized in that, A slider is provided on the mounting column along its height direction, and a sliding groove corresponding to the slider is provided on the access platform. The sliding groove is a T-shaped groove.

7. The high-efficiency ceramic tile storage device according to claim 6, characterized in that, The top of the telescopic plate is an upward-convex arc shape.