A storage and stacking device for steel mesh with a limiting structure

By designing a storage and palletizing device with a limiting structure, the device utilizes omnidirectional stop wheels and a transmission mechanism to flexibly limit and fix the steel mesh, solving the problem that existing devices cannot adapt to storage needs of different sizes, and enhancing the stability and flexibility of storage.

CN224278984UActive Publication Date: 2026-05-26TIANJIN ANGUYUAN METAL PRODUCTS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TIANJIN ANGUYUAN METAL PRODUCTS CO LTD
Filing Date
2025-06-23
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing steel mesh storage and stacking devices lack effective limiting structures, cannot adapt to storage needs of different sizes, and the mesh sheets are prone to slipping when stacked, causing the mesh stack to collapse when the device is tilted, affecting storage stability.

Method used

Design a storage and stacking device with a limiting structure. Through universal stop wheels, control panel, bidirectional transmission mechanism, slider, support column, adjustment component and lifting transmission mechanism, it realizes flexible limiting and fixing of steel mesh. The pressure plate is used to press down and fix the mesh to enhance stability.

Benefits of technology

This allows for flexible adjustment and fixing based on the actual size of the steel mesh, improving the device's usability and storage stability, and avoiding the risk of mesh slippage and collapse.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model relates to the field of steel mesh storage technology, and in particular to a storage and stacking device for steel mesh with a limiting structure. It includes a base, a bidirectional transmission mechanism at the top of the base, two sets of sliders symmetrically arranged on the outer side of the bidirectional transmission mechanism, a support column at the top of the slider, a lifting transmission mechanism behind the support column, and a pressure plate on the outer side of the lifting transmission mechanism. A through hole is opened on one side of the pressure plate. During stacking, the bidirectional transmission mechanism is controlled to adjust the spacing between the support columns on the two sets of sliders according to the actual size of the steel mesh, so that the support columns support and fix the steel mesh from a diagonal position. Then, the lifting transmission mechanism drives the pressure plate to move downwards, allowing the through hole on the pressure plate to pass through the support column, and the pressure plate presses down on the stacked mesh, thereby limiting its position according to the actual size of the steel mesh, improving the flexibility of the device, and pressing and fixing the mesh onto the device to ensure stable placement.
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Description

Technical Field

[0001] This utility model relates to the field of steel mesh storage technology, and in particular to a storage and stacking device for steel mesh with a limiting structure. Background Technology

[0002] Steel mesh is an important material in modern construction and is widely used in concrete structures. On construction sites, steel mesh usually needs to be stored and stacked in large quantities. To ensure the stability of the stacking, appropriate stacking devices are needed to place multiple steel mesh sheets.

[0003] Most current steel mesh storage and stacking devices have relatively simple structures and lack effective limiting structures. They cannot adapt to the storage and stacking needs of steel mesh of different sizes, have poor flexibility of use, and the mesh is prone to slippage when stacked. When the device is tilted, the mesh stack is prone to collapse, affecting the stability of steel mesh storage.

[0004] Therefore, given the poor flexibility and stacking stability of existing steel mesh stacking devices, a storage and stacking device for steel mesh with a limiting structure can be designed. By using diagonal limiting and downward pressure protection, the device can limit the actual size of the steel mesh, improve its flexibility, and press and fix the mesh onto the device to ensure stable placement, thereby effectively enhancing the practical value of the device. Utility Model Content

[0005] In order to overcome the problems that most steel mesh storage and stacking devices lack effective limiting structures, cannot adapt to the storage and stacking needs of steel mesh of different sizes, and are prone to slippage between meshes during stacking, and the mesh stack is prone to collapse when the device is tilted, affecting the stability of steel mesh storage, this utility model is proposed.

[0006] The technical solution of this utility model is as follows: a storage and stacking device for steel mesh with a limiting structure, comprising a base, universal stop wheels, a control panel, a two-way transmission mechanism, sliders, support columns, an adjustment component, a lifting transmission mechanism, a pressure plate, and a through hole. Multiple sets of universal stop wheels are symmetrically arranged at the four corners of the bottom of the base. A control panel is located at the top of the base. A two-way transmission mechanism is located at the top of the base. Two sets of sliders are symmetrically arranged on the outer side of the two-way transmission mechanism. A support column is located at the top of the sliders. An adjustment component is located at the top of the sliders and is positioned behind the support columns. A lifting transmission mechanism is located behind the support columns. A pressure plate is located on the outer side of the lifting transmission mechanism, and a through hole is opened on one side of the pressure plate.

[0007] Preferably, the universal stop wheel is rotated to flexibly move the base position, and the control panel is used to control the operation of the bidirectional transmission mechanism to adjust the distance between the two sets of sliders. The sliders are used to fix the support columns, thereby adjusting the distance between the two sets of support columns according to the actual size of the steel mesh, so that the support columns support and fix the steel mesh from the diagonal position. The position of the lifting transmission mechanism is flexibly adjusted by the adjustment component, and the operation of the lifting transmission mechanism is controlled by the control panel. The lifting transmission mechanism drives the pressure plate to move up and down, so that the through hole on the pressure plate passes through the support column. The pressure plate presses down on the mesh stack, thereby limiting the steel mesh according to the actual size of the steel mesh and pressing and fixing the mesh on the device, ensuring the stable placement of the mesh and enhancing the practical value of the device.

[0008] Preferably, the bidirectional transmission mechanism and the lifting transmission mechanism are electrically connected to the control panel, and the through hole is connected to the support column.

[0009] Preferably, the slider moves via a bidirectional transmission mechanism, and the pressure plate moves via a lifting transmission mechanism. The bidirectional transmission mechanism and the lifting transmission mechanism can be any one of a ball screw, an electric push rod, an electric cylinder, a linear motor, a pneumatic cylinder mechanism, or a hydraulic cylinder.

[0010] Preferably, the adjustment assembly includes a support plate, an electric telescopic rod, and a fixed plate. The top of the slider is provided with a support plate, one side of the support plate is provided with an electric telescopic rod, and the outer telescopic end of the electric telescopic rod is provided with a fixed plate.

[0011] Preferably, the electric telescopic rod is electrically connected to the control panel, and the lifting transmission mechanism is located inside the fixed plate.

[0012] Preferably, the top of the base is symmetrically provided with two sets of guide grooves, and the bottom of the fixed plate is symmetrically provided with two sets of guide blocks, which are fitted and slidably connected with the guide grooves.

[0013] Preferably, two sets of sliding grooves are symmetrically provided on one side of the fixed plate, and two sets of protrusions are symmetrically provided at the rear end of the pressure plate, with the protrusions engaging and slidingly connected with the sliding grooves.

[0014] The beneficial effects of this utility model are:

[0015] During stacking, the universal casters are rotated to flexibly move the base position. The control panel controls the bidirectional transmission mechanism to adjust the spacing between the support columns on the two sets of sliders according to the actual size of the rebar mesh. This allows the support columns to support and fix the rebar mesh from a diagonal position. The control panel then controls the lifting transmission mechanism to move the pressure plate downwards, allowing the through holes on the pressure plate to pass through the support columns. The pressure plate then presses down on the mesh stack, solving the problem that most rebar mesh storage and stacking devices lack effective limiting structures, cannot adapt to the storage and stacking needs of rebar mesh of different sizes, and are prone to slippage between meshes during stacking. This enhances the stability of rebar mesh storage. Attached Figure Description

[0016] Figure 1 The diagram shown is a three-dimensional structural schematic of a storage and stacking device for steel mesh with a limiting structure according to this utility model.

[0017] Figure 2 The diagram shown is a three-dimensional structural schematic of a bidirectional transmission mechanism for a storage and stacking device for steel mesh with a limiting structure according to this utility model.

[0018] Figure 3 The diagram shown is a three-dimensional structural schematic of the adjustment component of a storage and stacking device for steel mesh with a limiting structure according to this utility model.

[0019] Figure 4 The diagram shown is a three-dimensional structural schematic of the lifting transmission mechanism of a storage and stacking device for steel mesh with a limiting structure according to this utility model.

[0020] Explanation of reference numerals in the attached drawings: 1. Base; 2. Universal caster wheel; 3. Control panel; 4. Two-way transmission mechanism; 5. Slider; 501. Support plate; 502. Electric telescopic rod; 503. Fixed plate; 504. Guide groove; 505. Guide block; 6. Support column; 7. Lifting transmission mechanism; 8. Pressure plate; 801. Slide groove; 802. Protrusion; 9. Through hole. Detailed Implementation

[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0022] Please see Figure 1 and Figure 2This utility model provides an embodiment: a storage and stacking device for steel mesh with a limiting structure, including a base 1, universal stop wheels 2, a control panel 3, a bidirectional transmission mechanism 4, sliders 5, support columns 6, an adjustment assembly, a lifting transmission mechanism 7, a pressure plate 8, and a through hole 9. Multiple sets of universal stop wheels 2 are symmetrically arranged at the four corners of the bottom end of the base 1. The control panel 3 is located at the top of the base 1. The bidirectional transmission mechanism 4 is located at the top of the base 1. Two sets of sliders 5 are symmetrically arranged on the outer side of the bidirectional transmission mechanism 4. The support columns 6 are located at the top of the sliders 5, and are positioned at the inner corners of the steel mesh at opposite diagonal positions. On the side, an adjustment component is provided at the top of the slider 5. The adjustment component is located behind the support column 6. A lifting transmission mechanism 7 is provided behind the support column 6. The bidirectional transmission mechanism 4 and the lifting transmission mechanism 7 are electrically connected to the control panel 3. A pressure plate 8 is provided on the outside of the lifting transmission mechanism 7. The slider 5 moves through the bidirectional transmission mechanism 4, and the pressure plate 8 moves through the lifting transmission mechanism 7. The bidirectional transmission mechanism 4 and the lifting transmission mechanism 7 are any one of ball screw, electric push rod, electric cylinder, linear motor, pneumatic cylinder mechanism or hydraulic cylinder. A through hole 9 is provided on one side of the pressure plate 8, and the through hole 9 is connected to the support column 6.

[0023] Please see Figure 3 and Figure 4 In this embodiment, the adjustment assembly includes a support plate 501, an electric telescopic rod 502, and a fixed plate 503. The top of the slider 5 is provided with a support plate 501, and an electric telescopic rod 502 is provided on one side of the support plate 501. The electric telescopic rod 502 is electrically connected to the control panel 3. The outer telescopic end of the electric telescopic rod 502 is provided with a fixed plate 503. The lifting transmission mechanism 7 is located inside the fixed plate 503. The electric telescopic rod 502 is supported and fixed by the support plate 501. The control panel 3 sends a telescopic command to the electric telescopic rod 502. The telescopic electric telescopic rod 502 flexibly adjusts the distance between the two sets of fixed plates 503 to move the pressure plate 8 away from the support column 6.

[0024] Two sets of guide grooves 504 are symmetrically provided at the top of the base 1, and two sets of guide blocks 505 are symmetrically provided at the bottom of the fixed plate 503. The guide blocks 505 are engaged and slidably connected with the guide grooves 504. When the fixed plate 503 moves, the guide blocks 505 move synchronously along the guide grooves 504, thereby ensuring the stable displacement of the fixed plate 503. Two sets of sliding grooves 801 are symmetrically provided on one side of the fixed plate 503, and two sets of protrusions 802 are symmetrically provided at the rear end of the pressure plate 8. The protrusions 802 are engaged and slidably connected with the sliding grooves 801. When the pressure plate 8 is raised and lowered, the protrusions 802 slide synchronously along the sliding grooves 801, thereby ensuring the stable raising and lowering of the pressure plate 8.

[0025] When stacking steel mesh, rotate the universal stop wheel 2 to move the base 1 to the designated steel mesh stacking position. Control the bidirectional transmission mechanism 4 through the control panel 3 to adjust the spacing of the support columns 6 on the two sets of sliders 5 according to the actual size of the steel mesh, so that the support columns 6 support and fix the steel mesh from the diagonal position, and stack the steel mesh in sequence.

[0026] Subsequently, a retraction command is sent to the electric telescopic rod 502 on the support plate 501 via the control panel 3. The electric telescopic rod 502 retracts to shorten the distance between the two sets of fixed plates 503, so that the guide block 505 moves synchronously along the guide groove 504, aligning the through hole 9 of the pressure plate 8 with the top of the support column 6.

[0027] Finally, the control panel 3 is used to control the lifting transmission mechanism 7 to move the pressure plate 8 down, so that the through hole 9 on the pressure plate 8 passes through the support column 6, and the pressure plate 8 presses down the mesh stack.

[0028] Through the above steps, the universal stop wheel 2 is rotated to flexibly move the position of the base 1. The control panel 3 is used to control the operation of the bidirectional transmission mechanism 4 to adjust the distance between the two sets of sliders 5. The sliders 5 are used to fix the support column 6, thereby adjusting the distance between the two sets of support columns 6 according to the actual size of the steel mesh, so that the support column 6 supports and fixes the steel mesh from the diagonal position. The position of the lifting transmission mechanism 7 is flexibly adjusted by the adjustment component. The control panel 3 is used to control the operation of the lifting transmission mechanism 7, which drives the pressure plate 8 to move up and down, so that the through hole 9 on the pressure plate 8 passes through the support column 6. The pressure plate 8 is used to press down the mesh stack, thereby limiting it according to the actual size of the steel mesh and pressing and fixing the mesh on the device to ensure stable placement of the mesh.

[0029] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.

Claims

1. A storage and stacking device for steel mesh with a limiting structure, comprising a base (1), universal casters (2), and a control panel (3), characterized in that: It also includes a bidirectional transmission mechanism (4), a slider (5), a support column (6), an adjustment component, a lifting transmission mechanism (7), a pressure plate (8), and a through hole (9). Multiple sets of universal stop wheels (2) are symmetrically arranged at the four corners of the bottom end of the base (1). A control panel (3) is arranged at the top of the base (1). A bidirectional transmission mechanism (4) is arranged at the top of the base (1). Two sets of sliders (5) are symmetrically arranged on the outside of the bidirectional transmission mechanism (4). A support column (6) is arranged at the top of the slider (5). An adjustment component is arranged at the top of the slider (5). The adjustment component is located behind the support column (6). A lifting transmission mechanism (7) is arranged behind the support column (6). A pressure plate (8) is arranged on the outside of the lifting transmission mechanism (7). A through hole (9) is opened on one side of the pressure plate (8).

2. The storage and stacking device for steel mesh with a limiting structure according to claim 1, characterized in that: The bidirectional transmission mechanism (4) and the lifting transmission mechanism (7) are electrically connected to the control panel (3), and the through hole (9) is connected to the support column (6).

3. A storage and stacking device for steel mesh with a limiting structure according to claim 1, characterized in that: The slider (5) moves through the bidirectional transmission mechanism (4), and the pressure plate (8) moves through the lifting transmission mechanism (7). The bidirectional transmission mechanism (4) and the lifting transmission mechanism (7) can be any one of ball screw, electric push rod, electric cylinder, linear motor, cylinder mechanism or hydraulic cylinder.

4. A storage and stacking device for steel mesh with a limiting structure according to claim 1, characterized in that: The adjustment assembly includes a support plate (501), an electric telescopic rod (502), and a fixed plate (503). The top of the slider (5) is provided with a support plate (501), one side of the support plate (501) is provided with an electric telescopic rod (502), and the outer telescopic end of the electric telescopic rod (502) is provided with a fixed plate (503).

5. A storage and stacking device for steel mesh with a limiting structure according to claim 4, characterized in that: The electric telescopic rod (502) is electrically connected to the control panel (3), and the lifting transmission mechanism (7) is located inside the fixed plate (503).

6. A storage and stacking device for steel mesh with a limiting structure according to claim 4, characterized in that: The top of the base (1) is symmetrically provided with two sets of guide grooves (504), and the bottom of the fixed plate (503) is symmetrically provided with two sets of guide blocks (505). The guide blocks (505) are engaged and slidably connected with the guide grooves (504).

7. A storage and stacking device for steel mesh with a limiting structure according to claim 4, characterized in that: Two sets of sliding grooves (801) are symmetrically provided on one side of the fixed plate (503), and two sets of protrusions (802) are symmetrically provided at the rear end of the pressure plate (8). The protrusions (802) are engaged and slidably connected with the sliding grooves (801).