Anti-deviation guiding device for conveying and transferring formed resin synthetic tiles
By combining the conveyor rollers with the pressing rollers, along with the side guide mechanism and the top plate guide, the problems of deviation and edge deformation during the resin tile conveying process are solved, achieving efficient and stable resin tile conveying and stacking.
Patent Information
- Application Number
- CN202520806120.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-26
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2035-04-26
AI Technical Summary
Existing resin tiles are prone to deviation, edge deformation, and uneven stacking during the conveying process, and the conveying efficiency is low, posing safety hazards.
The system employs a combination of conveyor rollers and pressing rollers, and is equipped with multiple sets of side guide mechanisms and top plate guides. The guide wheels are adjusted to fit the resin tiles via an electric telescopic rod, increasing the contact area. The telescopic motor drives the top plate to align with the resin tiles, achieving guidance and stacking.
It effectively prevents resin tiles from shifting, avoids edge deformation, improves conveying efficiency and stacking aesthetics, and ensures safety.
Smart Images

Figure CN223792406U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of resin synthetic tile production technology, and specifically relates to a guide device for preventing deviation during the conveying and transfer of resin synthetic tiles after molding. Background Technology
[0002] During the production process of resin tiles, they need to be conveyed and transported. However, due to the unevenness of the resin tiles, the small and unstable contact area, the existing conveying and guiding devices have the following problems during use: 1) Vertical rollers are added to both sides of the conveying device to prevent deviation. However, because the resin tiles are thin and the side contact area is small, the resin tiles are easily squeezed and deformed when they come into contact with the vertically installed rollers, causing edge damage; 2) Manual alignment is performed by hand during the stacking of resin tiles. This is not only labor-intensive, but also makes the tiles very easy to be scratched by the tiles during conveying, posing a significant safety hazard.
[0003] A search revealed that prior art CN217021380U discloses a conveyor belt for producing synthetic resin tiles. The conveyor belt has a side plate on one side of the base plate, and a support plate on the side of the base plate adjacent to the side plate. Two protruding strips are located on the top of the base plate, each with a groove. A support rod is connected within the groove. Multiple limiting holes are evenly distributed on the sidewall of the groove, and these holes are bolted to the support rod. A running platform is connected to the top of the support plate via a rotating shaft. The running platform has a central opening, and a running block is connected to its bottom. A running groove is formed on the sidewall of the running block, and multiple sliding strips are movably connected within the groove. Multiple rollers are rotatably connected to the sliding strips. A slide rail is also provided at the bottom of the running block. The end of the support rod furthest from the groove is movably connected to the slide rail. A top plate is located on the top of the side plate, above the running platform. This technical solution achieves the conveying of resin tiles through the cooperation of rollers and sliding strips. However, only one side contacts the resin tile. Since the surface of the resin tile is relatively smooth after treatment, single-sided contact conveying easily leads to slippage, affecting the conveying speed of the resin tile.
[0004] For example, existing technology CN213568047U discloses a conveying device for producing synthetic resin tiles, including a conveying frame. The bottom of the conveying frame is welded with equally spaced support columns, and adjacent support columns are connected by reinforcing rods. Fixed columns are welded to the four corners of the top of the conveying frame, and a canopy is welded to the top of each of the four fixed columns. Equally spaced telescopic rods are welded to the bottom of the canopy, and an automatically adjusting pressure roller is connected to the bottom of the telescopic rod. The automatically adjusting pressure roller includes a mounting block, and a mounting groove is opened at the center of the bottom of the mounting block. This technical solution uses the telescopic rod and the pressure roller connected to the bottom of the telescopic rod to squeeze the synthetic resin tiles, increasing the friction between the synthetic resin tiles and the rubber conveying roller, thus improving conveying efficiency. However, the automatically adjusting pressure roller can only adjust vertically; it still cannot fit the side of the resin tile groove horizontally. During conveying, the resin tiles will still experience a small range of horizontal displacement, failing to guarantee stable conveying of the resin tiles. Summary of the Invention
[0005] The purpose of this utility model is to overcome the shortcomings of the existing technology and provide a guide device for preventing the resin synthetic tile from deviating during the conveying and transfer process. It is equipped with pressing rollers corresponding to the conveying rollers and multiple sets of side guide mechanisms to effectively prevent the resin tile from deviating during the conveying process. At the same time, multiple sets of top plates are added during stacking to ensure the alignment and aesthetics of the stacking process.
[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0007] A resin synthetic tile molding and conveying anti-deviation guiding device includes a frame I, conveying rollers, a motor I, a support frame, an electric telescopic rod I, a movable seat, an adjusting rod, a spring, a movable frame, a pressing wheel, a fixed crossbeam, a side guide mechanism, a frame II, and a limiting groove. The frame I is equipped with several conveying rollers, one end of which is fixedly connected to the output end of the motor I. A support frame is located above the frame I, and a movable seat is installed inside the support frame. One side of the movable seat is fixedly connected to one end of the electric telescopic rod I, and the other end of the electric telescopic rod I is fixedly installed on the support frame. An adjusting rod is movably installed on the movable seat, one end of which is fixedly connected to the movable frame. A pressing wheel is located at the bottom of the movable frame. A spring is wound around the adjusting rod between the movable frame and the movable seat. A fixed crossbeam is fixedly installed on the frame I, and a limiting groove is formed on the fixed crossbeam. A side guide mechanism is located within the limiting groove. Frame II is fixedly connected to one side of the frame I.
[0008] The side guide mechanism includes a connecting frame, an electric telescopic rod II, an electric telescopic rod III, a mounting plate, and guide wheels. The connecting frame is movably installed in the limiting groove. One end of the electric telescopic rod II is fixedly connected to both sides of the connecting frame, and the other end of the electric telescopic rod II is fixedly installed on the fixed crossbeam. A mounting plate is movably installed on one end of the connecting frame, and guide wheels are movably installed on the mounting plate. One end of the electric telescopic rod III is movably connected to one side of the mounting plate, and the other end of the electric telescopic rod III is movably installed on the connecting frame.
[0009] Several telescopic motors are symmetrically installed on the two side beams of the frame II. Guide rods are provided on the upper and lower sides of the telescopic motors. The telescopic end of the telescopic motor on the side closer to the frame I passes through the through holes on the two side beams of the frame II and connects to the top plate I. The telescopic end of the telescopic motor on the side farther from the frame I passes through the through holes on the two side beams of the frame II and connects to the top plate II.
[0010] One side of the top plate I is bent, and the two sets of top plates I cooperate to form a funnel shape, which can play a good guiding role for the resin tile, facilitate its centering and conveyance, and effectively improve the problem of hitting the edge and corner.
[0011] The advantages of this utility model compared with the prior art are as follows:
[0012] 1) The resin tiles that have been extruded are first conveyed forward by the cooperation of the conveyor roller and the pressing roller. The pressing roller, under the action of the adjusting rod and the spring, can be used to convey and transport resin tiles of different thicknesses. At the same time, it can also increase the friction between the resin tiles and the conveyor roller, prevent slippage during the conveying process, ensure the conveying effect, and improve the conveying efficiency.
[0013] 2) When the resin tile passes the side guide mechanism, first adjust the electric telescopic rod III to adjust the guide wheel at a certain angle so that it can fit the side curvature of the resin tile as much as possible, thereby increasing the contact area. Then, according to the width of the resin tile, adjust the electric telescopic rod II to extend and retract, causing the connecting frame to slide in the limiting groove on the fixed crossbeam, so that the guide wheel contacts the edge of the resin tile, realizing the side guidance of the resin tile. By adjusting the angle of the guide wheel, the contact area between the guide wheel and the resin tile is increased, thereby avoiding edge deformation caused by line contact, greatly improving the product qualification rate, and effectively preventing the resin tile from deviating.
[0014] 3) After the resin tiles enter the frame II, the two sets of top plates I cooperate to form a flared shape, which can play a good guiding role for the resin tiles, making it easy to transport them in the center and avoiding the problem of impact at the corners. The telescopic motor drives the top plate II to press and adjust inward along the guide rod synchronously, so that multiple sets of resin tiles are aligned and stacked in the center, preventing the resin tiles from running off-center and misaligned during the stacking process, thus improving the efficiency and aesthetics of stacking. Attached Figure Description
[0015] Appendix Figure 1 This is a schematic diagram of a guide device for preventing deviation during the conveying and transfer of resin synthetic tiles after molding, according to this utility model.
[0016] Appendix Figure 2 This is a schematic diagram of the movable seat structure of a resin synthetic tile molding and conveying anti-deviation guide device.
[0017] Appendix Figure 3 This is a schematic diagram of the side guide mechanism structure;
[0018] Appendix Figure 4 This is a schematic diagram of the frame II structure;
[0019] In the diagram: 10. Frame I; 11. Conveyor roller; 12. Motor I; 13. Support frame; 14. Electric telescopic rod I; 15. Movable seat; 16. Adjusting rod; 17. Spring; 18. Movable frame; 19. Pressing wheel; 20. Fixed crossbeam; 21. Side guide mechanism; 22. Frame II; 23. Telescopic motor; 24. Guide rod; 25. Top plate I; 26. Top plate II; 27. Resin tile; 201. Limiting groove; 211. Connecting frame; 212. Electric telescopic rod II; 213. Electric telescopic rod III; 214. Mounting plate; 215. Guide wheel. Detailed Implementation
[0020] To facilitate understanding by those skilled in the art, the following is in conjunction with the appendix. Figure 1-4 The technical solution of this utility model will be further described in detail below.
[0021] A resin synthetic tile molding and conveying anti-deviation guiding device includes a frame I 10, conveying rollers 11, a motor I 12, a support frame 13, an electric telescopic rod I 14, a movable seat 15, an adjusting rod 16, a spring 17, a movable frame 18, a pressing wheel 19, a fixed crossbeam 20, a side guide mechanism 21, a frame II 22, and a limiting groove 201. The frame I 10 is equipped with several conveying rollers 11, one end of the shaft of each conveying roller 11 is fixedly connected to the output end of the motor I 12. A support frame 13 is located above the frame I 10, and a movable seat 15 is installed inside the support frame 13. One side of the movable seat 15 is fixedly connected to one end of the electric telescopic rod I 14, and the other end of the electric telescopic rod I 14 is fixedly installed on the support frame 13. An adjusting rod 16 is movably mounted on the movable seat 15. One end of the frame 16 is fixedly connected to the movable frame 18. The bottom of the movable frame 18 is provided with a pressing wheel 19. A spring 17 is wound around the adjusting rod 16 between the movable frame 18 and the movable seat 15. A fixed crossbeam 20 is fixedly installed on the frame I 10. A limit groove 201 is opened on the fixed crossbeam 20. A side guide mechanism 21 is provided in the limit groove 201. A frame II 22 is fixedly connected to one side of the frame I 10. The resin tile 27, after being extruded and formed, is first conveyed forward by the cooperation of the conveying roller 11 and the pressing wheel 19. Under the action of the adjusting rod 16 and the spring 17, the pressing wheel 19 can be used to convey and transport resin tiles 27 of different thicknesses. After being conveyed forward and guided by multiple sets of side guide mechanisms 21, the resin tile 27 enters the range of the frame II 22 for stacking and collection.
[0022] The side guide mechanism 21 includes a connecting frame 211, an electric telescopic rod II 212, an electric telescopic rod III 213, a mounting plate 214, and guide wheels 215. The connecting frame 211 is movably installed in the limiting groove 201. One end of the electric telescopic rod II 212 is fixedly connected to both sides of the connecting frame 211, and the other end of the electric telescopic rod II 212 is fixedly installed on the fixed crossbeam 20. The mounting plate 214 is movably installed at one end of the connecting frame 211, and guide wheels 215 are movably installed on the mounting plate 214. One end of the electric telescopic rod III 213 is movably connected to one side of the mounting plate 214. The other end of the telescopic rod Ⅲ213 is movably mounted on the connecting frame 211. When the resin tile 27 passes the side guide mechanism 21, the electric telescopic rod Ⅲ213 is first adjusted so that the guide wheel 215 is adjusted at a certain angle so that it can fit as close as possible to the side curvature of the resin tile 27 and increase the contact area. Then, according to the width of the resin tile 27, the electric telescopic rod Ⅱ212 is adjusted to extend and retract, which drives the connecting frame 211 to slide in the limiting groove 201 on the fixed crossbeam 20, so that the guide wheel 215 contacts the edge of the resin tile 27, thereby realizing the side guidance of the resin tile 27.
[0023] Several telescopic motors 23 are symmetrically installed on the beams on both sides of the frame II 22. Guide rods 24 are provided on the upper and lower sides of the telescopic motors 23. The telescopic end of the telescopic motor 23 on the side closer to the frame I 10 passes through the through holes on the beams on both sides of the frame II 22 and connects to the top plate I 25. The telescopic end of the telescopic motor 23 on the side farther from the frame I 10 passes through the through holes on the beams on both sides of the frame II 22 and connects to the top plate II 26. After the resin tiles 27 enter the range of the frame II 22, the telescopic motors 23 will drive multiple sets of top plates I 25 and top plates II 26 to be synchronously squeezed and adjusted inward along the guide rods 24, so that the multiple sets of resin tiles 27 are centered and aligned for stacking, preventing the resin tiles 27 from being misaligned during the stacking process, which would affect the final transportation and use.
[0024] The top plate I25 is bent on one side, and the two sets of top plates I25 cooperate to form a flared mouth, which can play a good guiding role for the resin tile 27, facilitate its centering and conveyance, and effectively improve the problem of hitting the corners.
[0025] A resin synthetic tile forming and conveying anti-deviation guiding device operates as follows: The resin tile 27, after being extruded and formed, is first conveyed forward by the cooperation of the conveying roller 11 and the pressing roller 19. Under the action of the adjusting rod 16 and the spring 17, the pressing roller 19 can be used to convey and transport resin tiles 27 of different thicknesses. After being conveyed forward, the resin tile 27 is guided by multiple sets of side guiding mechanisms 21 and then enters the frame II 22. After being aligned by multiple sets of top plates, it is stacked and collected.
[0026] The above description is merely an example and illustration of the structure of this utility model. Those skilled in the art can make various modifications or additions to the specific embodiments described or use similar methods to replace them, as long as they do not deviate from the structure of the utility model or exceed the scope defined in the claims, they should all fall within the protection scope of this utility model.
Claims
1. A guide device for preventing deviation during the conveying and transfer of resin synthetic tiles after molding, comprising a frame I, a conveying roller, a motor I, a support frame, an electric telescopic rod I, a movable seat, an adjusting rod, a spring, a movable frame, a pressing wheel, a fixed crossbeam, a side guide mechanism, a frame II, and a limiting groove, characterized in that... The frame I is equipped with several conveying rollers. One end of the conveying roller shaft is fixedly connected to the output end of motor I. A support frame is provided above the frame I. A movable seat is installed inside the support frame. One end of an electric telescopic rod I is fixedly connected to one side of the movable seat. The other end of the electric telescopic rod I is fixedly installed on the support frame. An adjusting rod is movably installed on the movable seat. One end of the adjusting rod is fixedly connected to the movable frame. A pressing wheel is provided at the bottom of the movable frame. A spring is wound around the adjusting rod between the movable frame and the movable seat. A fixed crossbeam is fixedly installed on the frame I. A limit groove is opened on the fixed crossbeam. A side guide mechanism is provided in the limit groove. Frame II is fixedly connected to one side of the frame I. The side guide mechanism includes a connecting frame, an electric telescopic rod II, an electric telescopic rod III, a mounting plate, and guide wheels. The connecting frame is movably installed in the limiting groove. One end of the electric telescopic rod II is fixedly connected to both sides of the connecting frame, and the other end of the electric telescopic rod II is fixedly installed on the fixed crossbeam. A mounting plate is movably installed on one end of the connecting frame, and guide wheels are movably installed on the mounting plate. One end of the electric telescopic rod III is movably connected to one side of the mounting plate, and the other end of the electric telescopic rod III is movably installed on the connecting frame.
2. The resin synthetic tile forming and conveying anti-deviation guiding device according to claim 1, characterized in that... Several telescopic motors are symmetrically installed on the two side beams of the frame II. Guide rods are provided on the upper and lower sides of the telescopic motors. The telescopic end of the telescopic motor on the side closer to the frame I passes through the through holes on the two side beams of the frame II and connects to the top plate I. The telescopic end of the telescopic motor on the side farther from the frame I passes through the through holes on the two side beams of the frame II and connects to the top plate II.
3. The resin synthetic tile forming and conveying anti-deviation guiding device according to claim 2, characterized in that... One side of the top plate I is bent, and the two sets of top plates I fit together to form a funnel shape.
Citation Information
Patent Citations
Conveying device for synthetic resin tile production
CN213568047U
Conveyor belt for synthetic resin tile production
CN217021380U