A transfer pusher mechanism for conveying dusty cargo

By setting a drive assembly and a push rod assembly at the top of the frame, and using a dual-output shaft geared motor to drive the chain, the carbon blocks can be smoothly reversed and accurately pushed, solving the equipment reliability and maintenance problems caused by dust pollution, and improving conveying efficiency and maintenance convenience.

CN224547346UActive Publication Date: 2026-07-24QINGDAO DESIREE AUTOMOBILE INSPECTION DEVICE
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
QINGDAO DESIREE AUTOMOBILE INSPECTION DEVICE
Filing Date
2025-09-11
Publication Date
2026-07-24

AI Technical Summary

Technical Problem

Existing lifting and transplanting mechanisms are easily contaminated in dusty environments, leading to reduced equipment reliability, maintenance difficulties, and reduced conveying efficiency.

Method used

Design a transfer push rod mechanism, with the drive assembly and push rod assembly set at the top of the frame. Use a dual-output shaft geared motor to drive the transmission chain to achieve smooth reversal of the carbon block, and use photoelectric sensors to control precise pushing.

Benefits of technology

It improves the commutation and transfer efficiency of carbon blocks, reduces the risk of equipment contamination, simplifies the maintenance process, and enhances equipment reliability and ease of maintenance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a kind of for conveying dust goods'shifting push rod mechanism, belong to warehousing logistics technical field, including the narrow roller conveyor and wide roller conveyor of vertical distribution, narrow roller conveyor and the wide roller conveyor confluence place are provided with rack, rack includes stand, crossbeam and, crossbeam is transversely fixedly connected in the top of two stands, common fixed with the longitudinal beam of being located in the middle of crossbeam between two crossbeams, longitudinal beam is slidably connected with transplanting push rod assembly;The utility model is pushed by transplanting push rod assembly and advances carbon block to move, to push carbon block to narrow roller conveyor, the reversing conversion operation of carbon block is quickly completed, and the safe transport of carbon block has been guaranteed, it is convenient to overhaul and maintain transplanting push rod assembly and driving component, reduce the pollution of dust to transplanting push rod assembly and driving component, to effectively solve the problem that existing jacking transplanting mechanism is not good maintenance and maintenance.
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Description

Technical Field

[0001] This utility model relates to the field of warehousing and logistics technology, and in particular to a transfer push rod mechanism for conveying dusty goods. Background Technology

[0002] In production line docking scenarios within the warehousing and logistics industry, goods often need to change direction between conveyor lines of different specifications to meet storage or sorting requirements. Wide roller conveyors, with their larger roller spacing and load-bearing capacity, are suitable for transferring irregularly sized or large-volume goods; while narrow roller conveyors, due to their compact roller layout, are more suitable for precise positioning and space optimization in high-density warehousing systems. In scenarios involving the transport of large dust particles and heavy-duty goods such as carbon blocks, transfer devices are needed to switch the direction of goods between wide and narrow roller conveyor lines. These transfer devices adjust the posture or direction of the goods to meet the needs of organized storage in automated warehouses.

[0003] While the currently widely used lifting and transplanting mechanisms have sufficient lifting force (capable of carrying approximately 1 ton of carbon blocks), their drive motors and transmission components are usually located at the bottom of the equipment. During the transport of carbon blocks, a large amount of dust is generated, which can easily penetrate the bottom of the equipment, causing contamination or even blockage of core components such as motors and guide rails. This seriously affects the reliability of the equipment's operation. At the same time, the bottom-mounted motors and mechanical structures require disassembly of the entire machine or deep access to the bottom of the equipment for troubleshooting or routine maintenance. The confined space and dust-rich environment greatly increase the difficulty of maintenance and downtime, reducing the overall transport efficiency.

[0004] Therefore, it is necessary to provide a transfer push rod mechanism for conveying dusty goods to solve the above-mentioned technical problems. Utility Model Content

[0005] The purpose of this invention is to provide a transfer push rod mechanism for conveying dusty goods, so as to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, the present invention provides the following solution to the aforementioned technical problems: A transfer pusher mechanism for conveying dusty goods includes a narrow roller conveyor and a wide roller conveyor distributed perpendicularly. A frame is provided at the intersection of the narrow roller conveyor and the wide roller conveyor. The frame includes columns, crossbeams, and side beams. The crossbeams are horizontally fixed to the tops of the two columns. The side beams are fixed between the two columns and arranged perpendicularly to the crossbeams. A longitudinal beam located in the middle of the two crossbeams is fixed between them. A transfer pusher assembly for pushing carbon blocks is slidably connected to the longitudinal beam. A drive assembly for driving the transfer pusher assembly is provided on the frame. Both the transfer pusher assembly and the drive assembly are located at the top of the frame.

[0007] As a further embodiment of this utility model, the transplanting pusher assembly includes a slide table, which is slidably connected to the longitudinal beam and slides along the length of the longitudinal beam. A transplanting push plate is fixed on the slide table, and the transplanting push plate is located at the bottom end of the slide table.

[0008] As a further embodiment of this utility model, the drive assembly includes a transmission chain disposed on the longitudinal beam and arranged along the length of the longitudinal beam. One end of the transmission chain is fixed to the front end of the slide table and the other end is fixed to the rear end of the slide table. A drive motor is mounted on the frame, and a sprocket that meshes with the transmission chain is fixed on the output end of the drive motor.

[0009] As a further embodiment of this invention, the drive motor is located at the top of the frame.

[0010] As a further embodiment of this utility model, the drive motor is a dual-output shaft reduction motor, with each of its two output shafts connected to a sprocket, and two sets of transmission chains are provided, which are symmetrically arranged on the left and right sides of the longitudinal beam.

[0011] As a further embodiment of this utility model, a photoelectric sensing limit switch is fixed on the longitudinal beam, and a baffle that cooperates with the photoelectric sensor is fixed on the slide.

[0012] Compared with the prior art, the beneficial effects of this utility model are:

[0013] 1. The carbon block is moved forward by the set transplanting pusher assembly, thereby conveniently pushing the carbon block onto the narrow roller conveyor. Then the narrow roller conveyor operates to transport the carbon block away, quickly completing the reversal operation of the carbon block, effectively improving the reversal and transfer efficiency of the carbon block, and ensuring the safe transport of the carbon block. In this utility model, since both the drive assembly and the transplanting pusher assembly are set on the top of the frame, it is convenient to inspect and maintain the transplanting pusher assembly and the drive assembly, reducing dust pollution to the transplanting pusher assembly and the drive assembly, thus effectively solving the problem of difficult maintenance and upkeep of the existing lifting and transplanting mechanism when the carbon block is transported and reversed.

[0014] 2. The drive motor adopts a dual-output shaft design, which drives two transmission chains simultaneously. This design distributes the force on the transmission chains and balances the force on the slide, allowing a smaller transmission chain to move a heavier carbon block. Attached Figure Description

[0015] The present invention will be further described below with reference to the accompanying drawings and embodiments:

[0016] Figure 1 This is a three-dimensional view of the overall structure of this utility model;

[0017] Figure 2 This is a schematic diagram of the transplanting push rod assembly and drive assembly of this utility model.

[0018] The attached diagram lists the components represented by each number as follows:

[0019] 1. Column; 2. Horizontal beam; 3. Longitudinal beam; 4. Frame; 5. Transplanting push rod assembly; 501. Transplanting push plate; 502. Slide table; 6. Drive assembly; 601. Drive motor; 602. Sprocket; 603. Transmission chain; 7. Narrow roller conveyor; 8. Wide roller conveyor; 10. Baffle; 11. Carbon block; 12. Side beam. Detailed Implementation

[0020] The present invention will be further described below with reference to the embodiments.

[0021] Please see Figure 1-2 This utility model provides a transfer pusher mechanism for conveying dusty goods, including a narrow roller conveyor 7 and a wide roller conveyor 8 perpendicularly distributed. A frame 4 is provided at the intersection of the narrow roller conveyor 7 and the wide roller conveyor 8. The frame 4 includes columns 1, crossbeams 2 and side beams 12. The crossbeams 2 are horizontally fixed to the top of the two columns 1. The side beams 12 are fixed between the two columns 1 and arranged perpendicular to the crossbeams 2. A longitudinal beam 3 located in the middle of the two crossbeams 2 is fixed between them. A transfer pusher assembly 5 for pushing carbon blocks is slidably connected to the longitudinal beam 3. A drive assembly 6 for driving the transfer pusher assembly 5 is provided on the frame 4. Both the transfer pusher assembly 5 and the drive assembly 6 are located at the top of the frame 4. When the carbon block 11 is moved to the working area of ​​the transfer pusher assembly 5 by the wide roller conveyor 8, it is detected by the incoming goods detection photoelectric sensor and a positioning signal is sent. The system uses a PLC programmable logic controller to stop the wide roller conveyor 8 and pushes the carbon block 11 forward via the transfer pusher assembly 5, thus conveniently transferring the carbon block 11 onto the narrow roller conveyor 7. The narrow roller conveyor 7 then operates, transporting the carbon block 11 away and quickly completing the reversal operation of the carbon block 11. This effectively improves the reversal and transfer efficiency of the carbon block 11 and ensures its safe transport. In this invention, both the drive assembly 6 and the transfer pusher assembly 5 are placed on top of the frame 4, facilitating the inspection and maintenance of the transfer pusher assembly 5 and the drive assembly 6, reducing dust pollution to the transfer pusher assembly 5 and the drive assembly 6. This effectively solves the problem of difficult maintenance and upkeep of existing lifting and transfer mechanisms when transporting and reversing carbon blocks 11.

[0022] Further as Figure 1 and Figure 2As shown, it is worth noting that the transplanting pusher assembly 5 includes a slide table 502, which is slidably connected to the longitudinal beam 3 and slides along the length of the longitudinal beam 3. A transplanting push plate 501 is fixed on the slide table 502, and the transplanting push plate 501 is located at the bottom of the slide table 502. In specific operation, the slide table 502 is driven to slide and adjust on the longitudinal beam 3 by the drive assembly 6, so that the slide table 502 drives the transplanting push plate 501 to push the carbon block 11 located inside the frame 4 onto the narrow roller conveyor 7. Then the narrow roller conveyor 7 operates to transport the carbon block 11 away, quickly completing one reversal operation of the carbon block 11 and effectively improving the reversal and transfer efficiency of the carbon block 11.

[0023] Further as Figure 2 As shown, it is worth noting that the drive assembly 6 includes a transmission chain 603 arranged on the longitudinal beam 3 along the length of the longitudinal beam 3. One end of the transmission chain 603 is fixed to the front end of the slide table 502 and the other end is fixed to the rear end of the slide table 502. A drive motor 601 is mounted on the frame 4 and is located at the top of the frame 4. A sprocket 602 that meshes with the transmission chain 603 is fixed on the output end of the drive motor 601. The drive motor 601 is started to work. When the drive motor 601 is working, the output end of the drive motor 601 drives the sprocket 602 to rotate. Thus, the cooperation between the sprocket 602 and the transmission chain 603 drives the slide table 502 to slide and adjust on the longitudinal beam 3. In turn, the carbon block 11 is moved and pushed by the transfer push plate 501.

[0024] Further as Figure 2 As shown, it is worth noting that the drive motor 601 is a dual-output shaft geared motor, with each output shaft connected to a sprocket 602. There are two sets of transmission chains 603, which are symmetrically arranged on the left and right sides of the longitudinal beam 3. To ensure the smooth operation of the carbon block 11, the drive motor 601 adopts a dual-output shaft design, which drives the two transmission chains 603 simultaneously. This design distributes the force on the transmission chains 603 and balances the force on the slide 502, allowing the smaller transmission chain 603 to move the heavier carbon block 11 forward.

[0025] The solution has the following working process: When the carbon block 11 is moved to the working area of ​​the transplanting pusher assembly 5 by the wide roller conveyor 8, it is detected by the incoming material detection photoelectric sensor and a positioning signal is sent. The wide roller conveyor 8 is stopped by the PLC programmable logic controller. When the drive motor 601 is working, the output end of the drive motor 601 drives the sprocket 602 to rotate. Thus, the cooperation between the sprocket 602 and the transmission chain 603 drives the slide table 502 to slide and adjust on the longitudinal beam 3. The slide table 502 drives the transplanting pusher plate 501 to push the carbon block 11 located inside the frame 4 onto the narrow roller conveyor 7. Then the narrow roller conveyor 7 works to transport the carbon block 11 away, quickly completing the reversal operation of the carbon block 11.

[0026] Further as Figure 2 As shown, it is worth noting that a photoelectric sensor limit switch is fixed on the longitudinal beam 3, and a baffle 10 that cooperates with the photoelectric sensor is fixed on the slide table 502. In actual operation, the baffle 10 moves together with the slide table 502. When the carbon block 11 moves to the correct position, the baffle 10 blocks the photoelectric sensor limit switch. The photoelectric sensor limit switch controls the transplanting push rod assembly 5 to stop running, so that the transplanting push plate 501 can accurately push the carbon block 11 into the correct position.

[0027] In summary: The carbon block 11 is propelled forward by the transplanting pusher assembly 5, thus conveniently transferring the carbon block 11 onto the narrow roller conveyor 7. The narrow roller conveyor 7 then operates, transporting the carbon block 11 away, quickly completing the reversal operation of the carbon block 11. This effectively improves the reversal and transfer efficiency of the carbon block 11, ensuring its safe transport. Furthermore, the design of placing both the drive assembly 6 and the transplanting pusher assembly 5 on the top of the frame 4 facilitates maintenance and repair of both components, reducing dust contamination. This effectively solves the problem of difficult maintenance and repair of existing lifting and transplanting mechanisms during the reversal of carbon block transport.

[0028] The drive motor 601 can be purchased from the market. The drive motor 601 is equipped with a power supply. It is a mature technology in this field and has been fully disclosed. Therefore, it will not be described again in the specification.

Claims

1. A transfer pusher mechanism for conveying dusty goods, comprising a narrow roller conveyor (7) and a wide roller conveyor (8) perpendicularly distributed, characterized in that, A frame (4) is provided at the intersection of the narrow roller conveyor (7) and the wide roller conveyor (8). The frame (4) includes columns (1), crossbeams (2) and side beams (12). The crossbeams (2) are horizontally fixed to the top of the two columns (1). The side beams (12) are fixed between the two columns (1) and arranged perpendicular to the crossbeams (2). A longitudinal beam (3) located in the middle of the crossbeams (2) is fixed between the two crossbeams (2). A transplanting push rod assembly (5) for pushing carbon blocks is slidably connected on the longitudinal beam (3). A drive assembly (6) for driving the transplanting push rod assembly (5) is provided on the frame (4). The transplanting push rod assembly (5) and the drive assembly (6) are both located at the top of the frame (4).

2. The transfer push rod mechanism for conveying dusty goods according to claim 1, characterized in that, The transplanting push rod assembly (5) includes a slide (502), which is slidably connected to the longitudinal beam (3) and slides along the length of the longitudinal beam (3). A transplanting push plate (501) is fixed on the slide (502) and the transplanting push plate (501) is located at the bottom of the slide (502).

3. The transfer push rod mechanism for conveying dusty goods according to claim 2, characterized in that, The drive assembly (6) includes a transmission chain (603) arranged on the longitudinal beam (3) and along the length of the longitudinal beam (3). One end of the transmission chain (603) is fixed to the front end of the slide table (502) and the other end is fixed to the rear end of the slide table (502). A drive motor (601) is installed on the frame (4). A sprocket (602) that meshes with the transmission chain (603) is fixed on the output end of the drive motor (601).

4. The transfer push rod mechanism for conveying dusty goods according to claim 3, characterized in that, The drive motor (601) is located at the top of the frame (4).

5. The transfer push rod mechanism for conveying dusty goods according to claim 3, characterized in that, The drive motor (601) is a dual-output shaft reduction motor, with each output shaft connected to a sprocket (602). There are two sets of transmission chains (603), which are symmetrically arranged on the left and right sides of the longitudinal beam (3).

6. The transfer push rod mechanism for conveying dusty goods according to claim 2, characterized in that, A photoelectric sensor limit switch is fixed on the longitudinal beam (3), and a baffle (10) that cooperates with the photoelectric sensor is fixed on the slide (502).