Stacking platform for typesetting of multiple layers of glass

By using a combination of electric push rods and cylinders on the multi-layer glass layout platform, the precise limit of the glass width is solved, the problem of glass instability during transmission is solved, the damage and safety risks are reduced, and the operational safety and efficiency are improved.

CN223133461UActive Publication Date: 2025-07-22SICHUAN HAIGRA TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202421876869.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-05
Publication Date
2025-07-22
Estimated Expiration
2034-08-05

AI Technical Summary

Technical Problem

Existing multi-layer glass typesetting platforms fail to ensure smoothness when transmitting glass of different widths, resulting in glass breakage and risk of operator injury.

Method used

A stacking platform including a mounting frame, a defining part and a driving part is designed. Through the use of electric push rods and cylinders, the precise definition of the glass width is achieved and the stability of the glass is ensured during the transmission process.

Benefits of technology

It effectively avoids the shaking and damage of the glass during transmission, reduces the risk of operator injury, and improves the efficiency and safety of glass typesetting.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a stacking platform for multi-layer glass typesetting, which comprises a mounting frame and a limiting part, wherein the limiting part is arranged on one side of the mounting frame; the limiting part comprises a mounting groove formed in one side of the mounting frame, an electric push rod detachably and fixedly arranged at the bottom of the mounting groove, a sliding plate fixedly arranged at the top end of the electric push rod, an air cylinder detachably and fixedly arranged at the upper end of the sliding plate, and a pushing pipe fixedly arranged at the output end of the air cylinder. By arranging the limiting part, when the glass is transferred, the electric push rod is firstly started to drive the sliding plate to slide in the mounting groove, so that the sliding plate moves to the height where the glass needs to be transferred, and then the air cylinder is started to push the push pipe to move, so that the sliding block mounted in the mounting plate is attached to the glass; therefore, the risks that the glass is damaged and operators are injured due to the fact that the widths of different pieces of glass are different and stability cannot be guaranteed when the glass is transferred by the platform can be avoided.
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Description

Technical Field

[0001] The utility model relates to the technical field of glass stacking platforms, and specifically relates to a stacking platform for multi-layer glass typesetting. Background Technique

[0002] A stacking platform for multi-layer glass typesetting is undoubtedly an important and indispensable equipment in the glass production process. The design and application of this platform play a crucial role in the production process of the glass products industry. The core design concept of this platform is to optimize the glass storage and typesetting process through innovative structural design and material selection, thereby reducing the possible damage that glass may suffer during storage and transportation, and ensuring the quality of glass products. In practical applications, through its multi-level structure and adjustable support structure, this platform provides a stable and flexible storage space for glass of different sizes and thicknesses. This design not only ensures the stability of the glass during stacking but also greatly improves the space utilization efficiency, enabling glass products to be typeset and stored orderly and efficiently in a limited space. In addition, by adopting advanced materials and processes, the load-bearing capacity and durability of this platform are enhanced, enabling it to maintain stable performance during long-term use. At the same time, by introducing an intelligent control system and a safety protection mechanism, this platform can also achieve precise control and safety protection during the storage process, reducing operation risks and improving production efficiency. In summary, a stacking platform for multi-layer glass typesetting is an important and indispensable equipment in the glass production process. It optimizes the glass storage and typesetting process, reduces the damage of glass during storage and transportation, improves production efficiency, and provides strong support for the development of the glass products industry.

[0003] In an existing stacking platform for multi-layer glass typesetting, during the parallel transmission of glass, due to the different widths of different glasses, the platform cannot ensure stability when transferring the glass, which results in the glass shaking left and right during transmission. This not only affects the efficiency of glass typesetting but also increases the risks of glass breakage and operator injury. Specifically, when the stacking platform attempts to move glasses of different widths, due to the lack of an effective adaptation mechanism for glasses of different sizes, it is difficult for the platform to ensure the stability of the glass during transmission. This shaking not only causes the glass to shift positions during typesetting but also breaks due to collisions, resulting in production losses. At the same time, the shaking glass also poses a threat to the operator, increasing the safety hazards in the workplace. Content of the Utility Model

[0004] The purpose of the present utility model is to provide an overlapping platform for multi-layer glass typesetting, so as to solve the problem raised in the above-mentioned background technology that in an existing overlapping platform for multi-layer glass typesetting, during the parallel transmission of glass, due to the different widths of different glasses, the platform cannot ensure stability when transferring the glass, which results in the situation that the glass sways left and right during the transmission process, not only affecting the efficiency of glass typesetting, but also increasing the risks of glass breakage and operator injury.

[0005] To achieve the above purpose, the present utility model provides the following technical solutions: An overlapping platform for multi-layer glass typesetting, including an installation frame and a limiting part: The limiting part is arranged on one side of the installation frame. The limiting part includes an installation groove opened on one side of the installation frame, an electric push rod detachably fixed at the bottom of the installation groove, a sliding plate fixed at the top of the electric push rod, a cylinder detachably fixed at the upper end of the sliding plate, a pushing tube fixed at the output end of the cylinder, a mounting plate welded to the top of the pushing tube, fixing plates welded to both ends of the mounting plate, and a sliding block welded to one side of the mounting plate. The sliding block is located on the side of the mounting plate opposite to the pushing tube.

[0006] By adopting the above technical solution, when transferring the glass, first start the electric push rod to drive the sliding plate to slide in the installation groove, so that the sliding plate moves to the height where the glass needs to be transferred, and then start the cylinder, so that the cylinder pushes the pushing tube to move, so that the sliding block installed in the mounting plate fits the glass, thereby limiting the width of the glass, and thus being able to avoid the risks of glass breakage and operator injury caused by the inability to ensure stability when the platform transfers the glass due to the different widths of different glasses.

[0007] Preferably, a placing part is arranged inside the installation frame. The placing part includes a fixing groove opened at the upper end of the installation frame and an installation ring welded to the inner wall of the installation frame.

[0008] By adopting the above technical solution, the fixing groove is used for light transmission, so that light irradiates the glass, and the installation ring is used for installing the rotating tube.

[0009] Preferably, the placing part further includes a rotating tube detachably fixed inside the installation ring and a moving ring sleeved outside the rotating tube.

[0010] By adopting the above technical solution, the rotating tube is used to drive the moving ring to rotate, and the moving ring is used to drive the glass to move.

[0011] Preferably, a driving part is arranged on the outer wall of the installation frame. The driving part includes a rotating shaft welded to one end of the rotating tube and a belt sleeved outside the rotating shaft.

[0012] By adopting the above technical solution, the rotating shaft is used to drive the rotating tube to rotate, and the inner wall of the belt is provided with gears meshing with the rotating shaft, which is used to drive multiple rotating shafts to rotate synchronously.

[0013] Preferably, the driving part further includes a rotating shaft detachably fixed to one end of the rotating axle, an output end of a motor detachably fixed to one end of the rotating shaft, and a support plate welded to one side of the mounting bracket.

[0014] By adopting the above technical solution, the rotating axle is used to drive the rotation of the rotating shaft, the motor is used to provide driving force for the rotation of the rotating shaft, and the support plate is used to support the motor.

[0015] Preferably, fixing blocks are welded to both sides of the mounting bracket, and a mounting hole is formed at one end of the mounting bracket.

[0016] By adopting the above technical solution, the fixing blocks are used to form the mounting hole, and the mounting hole is used to insert a bolt to fix the equipment.

[0017] Preferably, moving feet are welded to the lower end of the mounting bracket, and a control console is welded to the outer wall of the mounting bracket.

[0018] By adopting the above technical solution, the moving feet are used to move the equipment to a suitable position, and the control console is used to control the switch of the motor.

[0019] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0020] By providing a limiting part, when transferring the glass, first start the electric push rod to drive the sliding plate to slide in the mounting groove, so that the sliding plate moves to the height where the glass needs to be transferred, and then start the cylinder, so that the cylinder pushes the push tube to move, so that the sliding block installed in the mounting plate fits the glass, thereby limiting the width of the glass. In this way, it is possible to avoid the risk of glass breakage and operator injury caused by the inability to ensure the stability of the platform when transferring glass due to the different widths of different glasses. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 is a schematic structural diagram of the main body of the equipment of the present utility model;

[0022] Figure 2 is a schematic structural diagram of the limiting part of the present utility model;

[0023] Figure 3 is a schematic structural diagram of the placing part of the present utility model;

[0024] Figure 4 is a schematic structural diagram of the mounting bracket and the driving part of the present utility model;

[0025] Figure 5 is a schematic structural diagram of the driving part of the present utility model.

[0026] In the figure: 1, mounting bracket; 2, limiting part; 201, mounting groove; 202, electric push rod; 203, sliding plate; 204, air cylinder; 205, push tube; 206, mounting plate; 207, fixing plate; 208, sliding block; 3, placing part; 301, fixing groove; 302, mounting ring; 303, rotating tube; 304, moving ring; 4, driving part; 401, belt; 402, rotating shaft; 403, rotating axis; 404, motor; 405, support plate; 5, fixing block; 6, mounting hole; 7, moving foot; 8, control console. Detailed implementation mode

[0027] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts belong to the scope of protection of the present invention.

[0028] Example 1, please refer to Figure 1 and Figure 2, the present utility model provides a technical solution: a stacking platform for multi-layer glass typesetting, including a mounting frame 1, a limiting part 2, a placing part 3 and a driving part 4: the mounting frame 1 is of a rectangular structure, and its interior is designed to be hollow, providing installation conditions for the components of the stacking platform for multi-layer glass typesetting. The limiting part 2 is arranged on one side of the mounting frame 1. The limiting part 2 includes a mounting groove 201 opened on one side of the mounting frame 1. The mounting groove 201 is of a rectangular design and is used to install an electric push rod 202. The electric push rod 202 is detachably fixed to the bottom of the mounting groove 201. The electric push rod 202 is powered by an electric motor. When in use, it is externally powered. The electric motor is decelerated by a first-stage gear and drives a lead screw nut mechanism. This mechanism can convert the rotational motion of the electric motor into the linear motion of the push rod along the guide rail. Through the forward and reverse rotation of the electric motor, the push rod can achieve reciprocating forward and backward movements. The above is the public technology of the electric push rod 202 and will not be elaborated below. A sliding plate 203 fixed to the top of the electric push rod 202. The sliding plate 203 is of a rectangular structure and is used to install a cylinder 204. The cylinder 204 is detachably fixed to the upper end of the sliding plate 203. The working principle of the cylinder 204 is mainly based on pneumatic transmission. When compressed air is input into the rodless cavity, the rod chamber exhausts. The pressure difference between the two chambers of the cylinder 204 acts on the piston, forming a force to push the piston to move and extend the piston rod. On the contrary, when the rod chamber intakes air and the rodless cavity exhausts air, the piston rod will retract. If the rod chamber and the rodless cavity intake and exhaust air alternately, the piston can achieve reciprocating linear motion. A push tube 205 fixed to the output end of the cylinder 204. The push tube 205 is of a rectangular structure and is used to push the mounting plate 206 to move. The mounting plate 206 welded to the top of the push tube 205. The mounting plate 206 is of a rectangular structure and is used to install a fixing plate 207. The fixing plates 207 welded to both ends of the mounting plate 206. The fixing plates 207 are of a rectangular design and are used to limit the height of the glass. And a sliding block 208 welded to one side of the mounting plate 206. The sliding block 208 is of a rectangular structure and its surface is smooth, and is used for the glass to move. The sliding block 208 is located on the side of the mounting plate 206 opposite to the push tube 205.

[0029] When transferring the glass, first start the electric push rod 202 to drive the sliding plate 203 to slide in the mounting groove 201, so that the sliding plate 203 moves to the height where the glass needs to be transferred. Then start the cylinder 204, so that the cylinder 204 pushes the push tube 205 to move, making the sliding block 208 installed in the mounting plate 206 fit the glass, thereby limiting the width of the glass. In this way, it can avoid the risks of glass breakage and operator injury caused by the inability to ensure the stability of the platform when transferring glass due to the different widths of different glasses.

[0030] Example two, please refer to Figure 3, A stacking platform for multi-layer glass typesetting, comprising a fixed groove 301, an installation ring 302, a rotating tube 303 and a moving ring 304: There is a placement part 3 inside the installation frame 1. The placement part 3 includes a fixed groove 301 opened at the upper end of the installation frame 1. The fixed groove 301 is rectangular in design and is used for light transmission so that light can shine on the glass. The installation ring 302 welded to the inner wall of the installation frame 1 is arc-shaped in design and is used for installing the rotating tube 303. The placement part 3 further includes a rotating tube 303 detachably fixed inside the installation ring 302. The rotating tube 303 is cylindrical in design and is used to drive the moving ring 304 to rotate. The moving ring 304 sleeved outside the rotating tube 303 is arc-shaped in design and is used to drive the glass to move.

[0031] By rotating the rotating tube 303 within the installation ring 302, the moving ring 304 is driven to rotate, causing the glass to move, thereby transferring the glass.

[0032] Embodiment Three, please refer to Figure 4 and Figure 5 , A stacking platform for multi-layer glass typesetting, comprising a belt 401, a rotating shaft 402, a rotating axis 403, a motor 404, a support plate 405, a fixed block 5, an installation hole 6, a moving foot 7 and a control console 8: There is a driving part 4 on the outer wall of the installation frame 1. The driving part 4 includes a rotating shaft 402 welded to one end of the rotating tube 303. The rotating shaft 402 is cylindrical in design and is used to drive the rotating tube 303 to rotate. The belt 401 sleeved outside the rotating shaft 402 has gears meshed with the rotating shaft 402 on its inner wall and is used to drive multiple rotating shafts 402 to rotate synchronously. The driving part 4 further includes a rotating axis 403 detachably fixed to one end of the rotating shaft 402. The rotating axis 403 is cylindrical in design and is used to drive the rotating shaft 402 to rotate. The output end of the motor 404 detachably fixed to one end of the rotating axis 403 is used to provide driving force for the rotation of the rotating axis 403, and the support plate 405 welded to one side of the installation frame 1 is rectangular in structure and is used to support the motor 404. Fixed blocks 5 are welded to both sides of the installation frame 1. The fixed blocks 5 are rectangular in design and are used to open installation holes 6. Installation holes 6 are opened at one end of the installation frame 1. The installation holes 6 are arc-shaped in design and are used to insert bolts to fix the equipment. Moving feet 7 are welded to the lower end of the installation frame 1 and are used to move the equipment to a suitable position. A control console 8 is welded to the outer wall of the installation frame 1 and is used to control the switch of the motor 404.

[0033] First, move the equipment to a suitable position through the moving feet 7, then insert the bolts into the installation holes 6 to fix the equipment, and then start the motor 404 to drive the rotating axis 403 to rotate, causing the rotating tube 303 to rotate.

[0034] Working principle: First, move the device to a suitable position by moving the foot 7, and then insert the bolt into the mounting hole 6 to fix the device. Secondly, start the motor 404 to drive the rotation of the rotating shaft 403, so that the rotating tube 303 rotates. By the rotation of the rotating tube 303 within the mounting ring 302, the moving ring 304 is driven to rotate, causing the glass to move, thereby transferring the glass. Finally, when transferring the glass, first start the electric push rod 202 to drive the sliding plate 203 to slide within the mounting groove 201, so that the sliding plate 203 moves to the height where the glass needs to be transferred. Then start the cylinder 204, so that the cylinder 204 pushes the push tube 205 to move, causing the sliding block 208 installed within the mounting plate 206 to fit against the glass, thereby limiting the width of the glass. This can avoid the risks of glass breakage and operator injury caused by the inability to ensure the stability of the platform during glass transfer due to the different widths of different glasses.

[0035] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A stacking platform for multi-layer glass typesetting, characterized in that, Comprising: Mounting bracket; Limiting part, the limiting part is arranged on one side of the mounting bracket, and the limiting part includes a mounting groove opened on one side of the mounting bracket, an electric push rod detachably fixed to the bottom of the mounting groove, a sliding plate fixed to the top of the electric push rod, a cylinder detachably fixed to the upper end of the sliding plate, a pushing tube fixed to the output end of the cylinder, a mounting plate welded to the top of the pushing tube, fixing plates welded to both ends of the mounting plate, and a sliding block welded to one side of the mounting plate. The sliding block is located on the side opposite to the mounting plate and the pushing tube.

2. The stacking platform for multi-layer glass layout according to claim 1, characterized in that: A placing part is arranged inside the mounting bracket, and the placing part includes a fixing groove opened at the upper end of the mounting bracket and a mounting ring welded to the inner wall of the mounting bracket.

3. A stacking platform for multi-layer glass typesetting according to claim 2, characterized in that: The placing part further includes a rotating tube detachably fixed inside the mounting ring and a moving ring sleeved outside the rotating tube.

4. A stacking platform for multi-layer glass layout according to claim 1, characterized in that: A driving part is arranged on the outer wall of the mounting bracket. The driving part includes a rotating shaft welded to one end of the rotating tube and a belt sleeved outside the rotating shaft.

5. A stacking platform for multi-layer glass layout according to claim 4, characterized in that: The driving part further includes a rotating shaft detachably fixed to one end of the rotating shaft, an output end of a motor detachably fixed to one end of the rotating shaft, and a support plate welded to one side of the mounting bracket.

6. A stacking platform for multi-layer glass layout according to claim 1, characterized in that: Fixing blocks are welded on both sides of the mounting bracket, and a mounting hole is opened at one end of the mounting bracket.

7. A stacking platform for multi-layer glass layout according to claim 1, characterized in that: Moving feet are welded to the lower end of the mounting bracket, and a console is welded to the outer wall of the mounting bracket.