Modularized splicing axle conveying line structure

The modular splicing axle conveyor line structure enables rapid adjustment and stable connection, solving the problems of complex installation and difficult adjustment of traditional axle conveyor lines. This improves the flexibility and stability of the production line, reduces maintenance costs, and increases production efficiency.

CN223792299UActive Publication Date: 2026-01-13YANCHENG HAINUOSI AUTOMATION EQUIP CO LTD
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Patent Information

Application Number
CN202520341188.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-28
Publication Date
2026-01-13
Estimated Expiration
2035-02-28

AI Technical Summary

Technical Problem

Traditional axle conveyor lines are complex to install and difficult to adjust, making them hard to adapt to changing production line layouts and costly to maintain.

Method used

It adopts a modular splicing structure, utilizing the precise alignment and stable connection of the mounting box and mounting block, combined with a variable frequency motor and remote control system, to achieve rapid splicing and reassembly. The anti-slip silicone pad at the bottom of the support rod increases stability, the anti-slip texture on the surface of the conveyor belt increases friction, and the conveyor belt is made of wear-resistant material.

Benefits of technology

It improves the flexibility and adaptability of the production line, reduces maintenance and time costs, and enhances production efficiency and product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of axle conveying lines, in particular to a modular splicing axle conveying line structure which comprises a supporting plate, a conveying belt and a mounting device, a groove without a front side wall and a rear side wall is formed in the supporting plate, and supporting rods are arranged at the four corners of the bottom wall of the supporting plate. Corresponding mounting boxes and mounting blocks are arranged on the outer side walls of the supporting rods, mounting grooves are formed in the mounting boxes, the mounting device comprises a limiting box, a control rod, a lifting block and a fixing rod, a cavity without a bottom wall is formed in the limiting box, a rotating motor is arranged on the upper side wall of the limiting box, a sliding hole is formed in the upper side wall of the mounting block, and the fixing rod is arranged in the cavity. The fixing rods penetrate through the sliding holes and are in sliding connection with the sliding holes, so that the conveying line can be quickly spliced and recombined according to actual requirements, the flexibility and adaptability of the production line are improved, and the production efficiency and the product quality are improved.
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Description

Technical Field

[0001] This utility model relates to the field of axle conveyor technology, specifically a modular splicing axle conveyor structure. Background Technology

[0002] As is well known, in existing industrial production, efficient, flexible and easy-to-maintain conveyor systems are crucial for improving production efficiency, especially in the field of axle manufacturing and assembly. Due to the variety of axle specifications and the variability of production line layouts, traditional fixed conveyor lines often cannot meet the needs of flexible adjustment.

[0003] Specifically, traditional axle conveyor lines typically consist of a combination of fixed supports and conveyor belts. The problem is that they are complex to install and difficult to adjust. Furthermore, once the layout of the production line changes, a lot of manpower and resources are often required for modification, making it difficult to adapt to different conveying needs and causing great inconvenience. Utility Model Content

[0004] (a) Technical problems to be solved

[0005] To address the shortcomings of existing technologies, this utility model provides a modular splicing axle conveyor line structure.

[0006] (II) Technical Solution

[0007] To achieve the above objectives, this utility model provides the following technical solution: a modular splicing axle conveyor line structure, including a support plate, a conveyor belt, and an installation device. The support plate has grooves without front and rear side walls. The conveyor belt is located within and adapted to the grooves. Support rods are provided at the four corners of the bottom wall of the support plate. Corresponding mounting boxes and mounting blocks are provided on the outer walls of the support rods. Mounting grooves are provided within the mounting boxes. Mounting blocks penetrate the mounting grooves and are slidably connected to them. The installation device is located on the upper side wall of the mounting boxes. The installation device includes a limiting box, a control rod, a lifting block, and a fixed... The limiting box has a bottomless cavity. The control rod and the lifting block are both inside the cavity. The control rod passes through the cavity, and the lifting block is inside the cavity and fits against it. A rotating motor is provided on the upper side wall of the limiting box. The control rod passes through the upper side wall of the limiting box and is connected to the output end of the rotating motor. The lifting block is on the control rod and is threadedly connected to it. A fixing rod is on the bottom wall of the lifting block and is slidably connected to the control rod. A sliding hole is provided on the upper side wall of the mounting block, and the fixing rod passes through the sliding hole and is slidably connected to it.

[0008] To facilitate flexible gripping and placement of the axle, the present invention is improved as follows: a rotating rod is provided on the upper side wall of one end of the support plate, and an auxiliary motor is provided on the bottom wall. The rotating rod passes through the support plate and is connected to the output end of the auxiliary motor. A mechanical arm is provided at the upper end of the rotating rod, and an electric gripper is provided at one end of the mechanical arm.

[0009] To enhance the stability of the conveyor line structure, the present invention includes the following improvement: the bottom wall of the support rod is provided with an anti-slip silicone pad.

[0010] To increase the friction between the axle and the conveyor belt, the present invention is improved by providing anti-slip textures on the surface of the conveyor belt.

[0011] In order to enable real-time monitoring and control of the device from a location far from the conveyor line, the present invention includes an improvement: the device is equipped with a remote control system.

[0012] To reduce the frictional resistance of the lifting block during movement, the present invention includes an improvement: a lubricating layer is provided between the lifting block and the inner wall of the cavity.

[0013] In order to withstand greater loads and more frequent friction, the present invention has the following improvement: the conveyor belt is made of wear-resistant material.

[0014] In order to adjust the speed of the motor according to actual needs, the present invention is improved by making the rotating motor a variable frequency motor.

[0015] (III) Beneficial Effects

[0016] Compared with the prior art, this utility model provides a modular splicing axle conveyor line structure, which has the following advantages:

[0017] This modular axle conveyor structure features mounting boxes and mounting blocks, enabling precise alignment and stable connection between modules. This meets the requirements of various production environments and axle conveying needs. With the mounting device, the mounting block passes through the mounting box. A rotating motor then drives a control rod to rotate. Limited by a limit box, the lifting block moves with the control rod, causing a fixed rod to move as well. The fixed rod locks the mounting box and mounting block together, allowing the conveyor line to be quickly assembled and reassembled according to actual needs. This enhances the flexibility and adaptability of the production line, improves its stability, and allows for quick positioning and disassembly of relevant modules when maintenance or component replacement is required. This reduces maintenance and time costs, thereby improving production efficiency and product quality. Attached Figure Description

[0018] Figure 1 This is a first-view schematic diagram of the structure of this utility model;

[0019] Figure 2This is a second-view schematic diagram of the structure of this utility model;

[0020] Figure 3 This is an exploded view of the structural installation device of this utility model;

[0021] Figure 4 This is a schematic diagram of the internal cross-section of the structural limiting box of this utility model.

[0022] In the diagram: 1. Support plate; 2. Conveyor belt; 3. Support rod; 4. Mounting block; 5. Mounting box; 6. Limiting box; 7. Rotating motor; 8. Robotic arm; 9. Electric gripper; 10. Rotating rod; 11. Auxiliary motor; 12. Fixed rod; 13. Sliding hole; 14. Control rod; 15. Lifting block. Detailed Implementation

[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0024] Please see Figure 1-4A modular splicing axle conveyor line structure includes a support plate 1, a conveyor belt 2, and an installation device. The support plate 1 has grooves without front or rear side walls. The conveyor belt 2 is located within and fitted to these grooves. Support rods 3 are located at the four corners of the bottom wall of the support plate 1. Corresponding mounting boxes 5 and mounting blocks 4 are located on the outer walls of the support rods 3. The mounting boxes 5 have mounting grooves, and the mounting blocks 4 penetrate these grooves and are slidably connected to them. The installation device is located on the upper side wall of the mounting boxes 5. The installation device includes a limiting box 6, a control rod 14, a lifting block 15, and a fixing rod 12. The limiting box 6 has a cavity without a bottom wall. The control rod 14 and the lifting block 15 are both located within this cavity. The control rod 14 penetrates the cavity, and the lifting block 15 is located within and attached to the cavity. The device comprises a limiting box 6 with a rotating motor 7 on its upper side wall, a control rod 14 passing through the upper side wall of the limiting box 6 and connected to the output end of the rotating motor 7, a lifting block 15 on the control rod 14 and threadedly connected to it, a fixing rod 12 on the bottom wall of the lifting block 15 and slidably connected to the control rod 14, a sliding hole 13 on the upper side wall of the mounting block 4, the fixing rod 12 passing through the sliding hole 13 and slidably connected to it, a rotating rod 10 on the upper side wall of one end of the support plate 1 and an auxiliary motor 11 on the bottom wall, the rotating rod 10 passing through the support plate 1 and connected to the output end of the auxiliary motor 11, a robotic arm 8 on the upper end of the rotating rod 10, an electric gripper 9 on one end of the robotic arm 8, and a remote control system within the device.

[0025] During use, the support plate 1 is installed as needed, so that the corresponding mounting block 4 passes through the corresponding mounting box 5 (e.g., front-to-back installation or left-to-right diagonal installation). The number of support plates 1 can be increased or decreased according to actual needs to meet different production angles or conveyor line lengths. After assembly, the rotary motor 7 is started via a remote control device. The rotary motor 7 outputs power to rotate the control rod 14. Under the limit of the limit box 6, the lifting block 15 descends with the rotation of the control rod 14, causing the fixing rod 12 to descend until the fixing rod 12 passes through the sliding hole 13, locking the mounting box 5 and the mounting block 4. This ensures the stability and reliability of the conveyor line. After fixing, the staff places the axle on the first conveyor belt 2. The remote control system sends a command to the drive motor in the conveyor belt 2 to start working. The conveyor belt 2 runs smoothly in the groove of the support plate 1, transporting the axle from one end to the other. Then, the auxiliary motor 11 outputs to drive the rotating rod 10 to rotate, and the robotic arm 8 rotates accordingly. At the same time, the robotic arm 8 and the electric gripper 9 are started. The electric gripper 9 transfers the axle from one conveyor belt 2 to another conveyor belt 2 connected to it. The above operation is repeated to move the axle, thus forming a complete conveyor line.

[0026] In actual use, it is necessary to enhance the stability of the conveyor line structure. In order to meet the above requirements, in this embodiment, the bottom wall of the support rod 3 is provided with an anti-slip silicone pad.

[0027] In actual use, it is necessary to increase the friction between the axle and the conveyor belt 2 to prevent the axle from sliding or shifting during the conveying process. In order to meet the above requirements, in this embodiment, the surface of the conveyor belt 2 is provided with anti-slip texture.

[0028] In practical use, it is necessary to improve the smoothness and efficiency of the lifting action. In order to meet the above requirements, in this embodiment, a lubricating layer is provided between the lifting block 15 and the inner wall of the cavity.

[0029] In actual use, higher wear resistance and durability are required. In order to meet the above requirements, in this embodiment, the conveyor belt 2 is made of wear-resistant material.

[0030] In actual use, it is necessary to be able to adjust the speed of the motor according to actual needs. In order to meet the above requirements, in this embodiment, the rotating motor 7 is a variable frequency motor.

[0031] To illustrate the possible application scenarios, technical principles, implementable specific solutions, and achievable objectives and effects of this application in detail, the following description, in conjunction with the listed specific embodiments and accompanying drawings, provides a detailed explanation. The embodiments described herein are merely illustrative of the technical solutions of this application and are therefore intended to limit the scope of protection of this application.

[0032] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A modular splicing axle conveyor line structure, comprising a support plate (1), a conveyor belt (2), and an installation device, characterized in that: The support plate (1) is provided with a groove without front and rear side walls. The conveyor belt (2) is located in the groove and adapted to it. Support rods (3) are provided at the four corners of the bottom wall of the support plate (1). The outer side walls of the support rods (3) are provided with corresponding mounting boxes (5) and mounting blocks (4). The mounting box (5) is provided with a mounting groove. The mounting block (4) passes through the mounting groove and is slidably connected to it. The mounting device is located on the upper side wall of the mounting box (5). The mounting device includes a limiting box (6), a control rod (14), a lifting block (15), and a fixing rod (12). The limiting box (6) is provided with a cavity without a bottom wall. The control rod (14) and the lifting block (15) are located in the cavity. All are located within the cavity. The control rod (14) passes through the cavity. The lifting block (15) is located within the cavity and fits against it. A rotating motor (7) is provided on the upper side wall of the limiting box (6). The control rod (14) passes through the upper side wall of the limiting box (6) and is connected to the output end of the rotating motor (7). The lifting block (15) is on the control rod (14) and is threadedly connected to it. The fixing rod (12) is on the bottom wall of the lifting block (15). The fixing rod (12) is slidably connected to the control rod (14). A sliding hole (13) is provided on the upper side wall of the mounting block (4). The fixing rod (12) passes through the sliding hole (13) and is slidably connected to it.

2. The modular splicing axle conveyor line structure according to claim 1, characterized in that: A rotating rod (10) is provided on the upper side wall of one end of the support plate (1), and an auxiliary motor (11) is provided on the bottom wall. The rotating rod (10) passes through the support plate (1) and is connected to the output end of the auxiliary motor (11). A mechanical arm (8) is provided on the upper end of the rotating rod (10), and an electric gripper (9) is provided on one end of the mechanical arm (8).

3. The modular splicing axle conveyor line structure according to claim 2, characterized in that: The bottom wall of the support rod (3) is provided with an anti-slip silicone pad.

4. The modular splicing axle conveyor line structure according to claim 3, characterized in that: The surface of the conveyor belt (2) is provided with anti-slip texture.

5. The modular splicing axle conveyor line structure according to claim 4, characterized in that: The device is equipped with a remote control system.

6. The modular splicing axle conveyor line structure according to claim 5, characterized in that: A lubricating layer is provided between the lifting block (15) and the inner wall of the cavity.

7. The modular splicing axle conveyor line structure according to claim 6, characterized in that: The conveyor belt (2) is made of wear-resistant material.

8. The modular splicing axle conveyor line structure according to claim 7, characterized in that: The rotating motor (7) is a variable frequency motor.