Transfer machine
By using laser cutting and welding of profiles and sheet metal parts to manufacture guide rails and frames, and combining this with adjusting bolts to connect wheel frames and wheels, the complex processing and high cost of existing parallel machine material transfer devices have been solved, resulting in a longer service life and greater stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-07
- Publication Date
- 2026-04-03
AI Technical Summary
Existing parallel processing material transfer devices suffer from problems such as complex processing, large deformation, high cost, unstable movement, and short service life.
The guide rails and frame are made by laser cutting and welding of profiles and sheet metal parts, and the wheel frame and wheels are connected by adjusting bolts, which simplifies the process and improves positioning accuracy. It is combined with standard light rail guide rails to reduce the production time and improve the versatility of parts.
It achieves stability and improves service life during material transfer, reduces costs, and simplifies the manufacturing process.
Smart Images

Figure CN224076376U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of parallel machine material transfer technology, specifically to a transfer machine. Background Technology
[0002] When using parallel conveyors to transport materials, in order to facilitate the transfer of materials during the movement process, it is necessary to quickly transfer the materials between two parallel conveyors.
[0003] Currently, when transferring materials between two parallel machines, a track made of flat steel and square tubing is first installed between the machines. Then, a frame made of profiles and sheet metal is installed on the track. Finally, two translation drive mechanisms are used to move the materials. Although the guide rails, frame, and translation drive mechanisms can realize the material transport between the two parallel machines, the track made of flat steel and square tubing has problems such as complex processing, large deformation, poor wear resistance (short service life, and the impact of cutting off iron slag on environmental cleanliness), and insufficient track straightness and load-bearing capacity. On the other hand, the frame made of profiles and sheet metal is not only complex in process, but also requires manual positioning of each component and control of processing accuracy, resulting in high labor costs, large processing errors, and low efficiency. As a result, the existing transfer machines used for material transfer between parallel machines have the disadvantages of unstable movement, high cost, and short service life. Summary of the Invention
[0004] (a) Technical problems to be solved
[0005] The technical problem to be solved by this utility model is to provide a transfer machine with good mobility, long service life and low cost, in light of the current state of the technology.
[0006] (II) Technical Solution
[0007] This utility model is achieved through the following technical solution: This utility model proposes a transfer machine, including two guide rails arranged in parallel. A track beam is installed on the lower side of each of the two guide rails. Multiple support plates, no fewer than five, are installed below the two track beams. A first moving mechanism is installed between the two guide rails. The first moving mechanism includes a first drive motor, a first chain, and a slide block. There are two slide blocks, and a second moving mechanism is installed between the two slide blocks. The second moving mechanism includes a chain-driven slider, a second chain, a second drive motor, and a drive shaft. Each slide block has two wheel frames installed on it, and each wheel frame has a wheel that contacts the track groove on the guide rail. An adjusting bolt is installed between the wheel frame and the wheel.
[0008] Furthermore, the drive motor is mounted on one side of the guide rail, the chain is mounted on the power output shaft of the drive motor, and the chain is connected to the drive sprocket on the slide.
[0009] Furthermore, a tensioning assembly is installed on the side of the guide rail away from the drive motor. The tensioning assembly consists of a mounting plate that can be moved and adjusted at the end of the rail and a sprocket shaft mounted on the mounting plate that cooperates with the chain.
[0010] Furthermore, the second drive motor is bolted to the corresponding slide block, the second chain is sleeved between the second drive motor and the drive shaft, the drive shaft is installed between the two slide blocks, and the chain-driven slider is installed on the slide block at the part connected to the drive shaft.
[0011] Furthermore, the guide rail is bolted to the track beam, and the slide block is connected to the guide rail via the wheel.
[0012] Furthermore, the wheel frame is connected to the wheel via the adjusting bolt.
[0013] Furthermore, the adjusting bolt passes through the side wall of the wheel frame and is bolted to the side wall of the wheel frame, and an adjusting hole is reserved on the wheel frame at the location of the adjusting bolt.
[0014] (III) Beneficial Effects
[0015] Compared with the prior art, this utility model has the following advantages:
[0016] This utility model replaces the original frame with a laser-welded frame made of profiles and sheet metal parts, and makes splicing joints at the cutting position to increase strength and provide positioning during assembly. At the same time, the wheel frame and wheels are connected by adjusting bolts, and the height of the wheels is adjustable to avoid the four wheels not being on the same plane due to welding deformation and other problems, thereby increasing the stability of the transfer machine used for material transfer between parallel machines.
[0017] This utility model simplifies the manual assembly and welding of various profiles and plates to using standard light rails as guide rails, requiring only the fabrication of track beams. This reduces the manufacturing period while increasing the versatility of accessories and the performance of guide rails (straightness, strength, lifespan, etc.). Consequently, the cost of using transfer machines for material transfer between parallel machines is reduced, and their service life is extended. Attached Figure Description
[0018] Figure 1 This is a front view of the transfer machine described in this utility model;
[0019] Figure 2 This is a top view of the transfer machine described in this utility model;
[0020] Figure 3 This is a top left view of the transfer machine described in this utility model;
[0021] Figure 4 The transfer machine described in this utility model Figure 1 Enlarged view of point A in the middle.
[0022] The annotations in the attached figures are explained as follows:
[0023] 1. Moving mechanism one; 101. Drive motor one; 102. Chain one; 103. Slide; 2. Moving mechanism two; 201. Chain-driven slider; 202. Chain two; 203. Drive motor two; 204. Drive shaft; 3. Track beam; 4. Guide rail; 5. Wheel frame; 6. Wheel; 7. Adjusting bolt; 8. Support plate; 9. Tensioning assembly. Detailed Implementation
[0024] 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 accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0025] like Figures 1-4 As shown, the transfer machine in this embodiment includes two guide rails 4, which are arranged in parallel. A track beam 3 is installed on the lower side of each guide rail 4. Multiple support plates 8 are installed below the two track beams 3, with no fewer than five support plates 8. A moving mechanism 1 is installed between the two guide rails 4. The moving mechanism 1 includes a drive motor 101, a chain 102, and a slide block 103. There are two slide blocks 103, and a moving mechanism 2 is installed between them. The drive motor 101 drives the chain 102 to rotate, allowing the slide block 103 to slide along the guide rails 4, thus achieving longitudinal movement adjustment of the moving mechanism 2. The moving mechanism 2 includes... The system includes a chain-driven slider 201, a second chain 202, a second drive motor 203, and a drive shaft 204. The second drive motor 203 drives the second chain 202 to rotate, which in turn causes the chain-driven slider 201 to move laterally along the slide block 103 under the action of the drive shaft 204, thereby realizing the transfer of materials between two parallel machines. There are two slide blocks 103, and each slide block 103 is equipped with two wheel frames 5. Each wheel frame 5 is equipped with a wheel 6 that contacts the track groove on the guide rail 4. An adjusting bolt 7 is installed between the wheel frame 5 and the wheel 6. Changing the position of the adjusting bolt 7 on the wheel frame 5 can adjust the height of the wheel 6 to ensure the overall stability of the slide block 103.
[0026] like Figures 1-4As shown, in this embodiment, drive motor 101 is mounted on one side of guide rail 4, and chain 102 is sleeved on the power output shaft of drive motor 101. Chain 102 is connected to the drive sprocket on slide block 103. Tensioning assembly 9 is mounted on the side of guide rail 4 away from drive motor 101. Tensioning assembly 9 consists of a mounting plate that can be moved and adjusted at the end of the rail and a sprocket shaft mounted on the mounting plate that cooperates with chain 102. Tensioning assembly 9 is mainly used to ensure the tension of chain 102, so as to ensure the chain 102 is tensioned. 102 rotates stably under the action of drive motor 101. Drive motor 203 is bolted to the corresponding slide 103. Chain 202 is sleeved between drive motor 203 and drive shaft 204. Drive shaft 204 is installed between two slides 103. Chain-driven slider 201 is installed on the part of slide 103 connected to drive shaft 204. Guide rail 4 is bolted to track beam 3. Slide 103 and guide rail 4 are connected by wheel 6. Wheel 6 can ensure convenient sliding of slide 103 relative to guide rail 4.
[0027] like Figures 1-4 As shown, in this embodiment, the wheel frame 5 and the wheel 6 are connected by an adjusting bolt 7. The adjusting bolt 7 passes through the side wall of the wheel frame 5 and is bolted to the side wall of the wheel frame 5. An adjusting hole is reserved on the wheel frame 5 at the location of the adjusting bolt 7.
[0028] The specific implementation process of this embodiment is as follows: When transferring materials between two parallel machines, the device is first arranged as follows: Figure 1 The transfer machine is installed between two parallel machines as shown, and then put into use. During use, the original frame is replaced with a laser-welded frame made of profiles and sheet metal parts, with joints made at the cutting points to increase strength and provide positioning during assembly. Adjustable bolts 7 connect the wheel frame 5 and the wheels 6, making the wheels 6 height adjustable to prevent the four wheels 6 from being misaligned due to welding deformation, thus increasing the stability of the transfer machine when transferring materials between parallel machines. The manual assembly and welding of various profiles and sheet metal is simplified to using standard light rails as guide rails 4, requiring only the fabrication of track beams 3. This reduces manufacturing time and increases the versatility of parts and the performance of guide rails 4 (straightness, strength, lifespan, etc.), resulting in lower operating costs and a longer service life for the transfer machine used when transferring materials between parallel machines.
[0029] The above description of the disclosed embodiments enables those skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. A transfer machine characterized by: Including guide rail (4), the guide rail (4) has two, and two the guide rail (4) parallelly arranged, two the guide rail (4) lower side installs one track beam (3) respectively, two the track beam (3) below common installation multiple support plate (8), the support plate (8) is not less than five, two the guide rail (4) between still install moving mechanism one (1), the moving mechanism one (1) includes drive motor one (101), chain one (102) and sliding seat (103);The sliding seat (103) has two, two the sliding seat (103) between common installation one moving mechanism two (2), the moving mechanism two (2) includes chain drive type slider (201), chain two (202), drive motor two (203) and drive shaft (204), wherein the sliding seat (103) has two, every the sliding seat (103) on all install two wheel bracket (5), every the wheel bracket (5) place installs one and the guide rail (4) on the track groove contact car wheel (6), the wheel bracket (5) with the car wheel (6) between installation adjustment bolt (7).
2. The transfer machine of claim 1, wherein: The drive motor one (101) is installed on one side of the guide rail (4), the chain one (102) is sleeved on the power output shaft of the drive motor one (101), and the chain one (102) is connected with the driving sprocket on the sliding seat (103).
3. The transfer machine of claim 2, wherein: The guide rail (4) is installed with a tensioning assembly (9) away from the drive motor one (101) side, the tensioning assembly (9) is composed of an installation plate movable at the track end and a sprocket shaft installed on the installation plate and matched with the chain one (102).
4. The transfer machine of claim 1, wherein: The drive motor two (203) is bolted with the corresponding sliding seat (103), the chain two (202) is sleeved between the drive motor two (203) and the drive shaft (204), the drive shaft (204) is installed between the two sliding seats (103), and the chain drive type slider (201) is installed on the sliding seat (103) connected with the drive shaft (204).
5. The transfer machine of claim 1, wherein: The guide rail (4) is bolted with the track beam (3), and the sliding seat (103) is connected with the guide rail (4) through the car wheel (6).
6. The transfer machine of claim 1, wherein: The wheel bracket (5) is connected with the car wheel (6) through the adjustment bolt (7).
7. The transfer machine of claim 6, wherein: The adjustment bolt (7) penetrates the side wall of the wheel bracket (5) and is bolted with the side wall of the wheel bracket (5), and the wheel bracket (5) is reserved with an adjustment hole at the position of the adjustment bolt (7).