Crystal hot-fix rhinestone coating equipment with screening function

The conical feed inlet and dust collector structure ensure that the hot-fix rhinestones are positioned correctly. Combined with scraper cleaning and baffle assembly, the problems of manual alignment and coating plate adhesion before hot-fix rhinestone coating are solved, achieving a highly efficient and stable coating effect.

CN224057741UActive Publication Date: 2026-03-31PUJIANG JINJIE CRYSTAL ARTS & CRAFTS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-15
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing hot-fix rhinestone coating equipment requires manual alignment of the rhinestones before coating, resulting in low coating efficiency and easy adhesion of coating material to the coating plate, affecting the effect.

Method used

The conical feed inlet and dust collector structure ensure that the hot-fixing rhinestones slide vertically into the fixing hole, and the scraper cleans the coating plate. The combination of baffle and moving plate assembly achieves stable fixing of the hot-fixing rhinestones and cleaning of the coating plate.

Benefits of technology

It improves the stability and efficiency of hot-fix rhinestone coating, ensures coating effect, prevents coating plates from sticking together, and improves the overall coating quality.

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Abstract

The utility model belongs to the field of hot-fix rhinestone coating, in particular to crystal hot-fix rhinestone coating equipment with a screening function, which is characterized in that the upper end face of a worktable is provided with a material distributing component and a plurality of slideways, a coating plate is arranged in each slideway in a sliding manner, and the upper end face of each coating plate is provided with a plurality of fixing holes; a sealing box is arranged on the lower end face of each film coating plate, a dust remover is arranged at the lower end opening of each sealing box, a material distributing plate is arranged above each film coating plate in a sliding mode, and a conical discharging opening is formed in the position, above each fixing hole, of the upper end face of the material distributing plate. According to the crystal hot-fix rhinestone coating device disclosed by the utility model, due to the arrangement of structures such as the conical discharging opening, only crystal hot-fix rhinestones in a vertical state can vertically slide into the fixing hole through the conical discharging opening, so that the position of the crystal hot-fix rhinestones before coating is ensured to be straightened, and meanwhile, the pressure intensity in the sealing box is reduced through the dust remover, so that the quality of the crystal hot-fix rhinestones is improved. And therefore, each hot fix rhinestone is firmly adsorbed in each fixing hole.
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Description

Technical Field

[0001] This utility model belongs to the field of hot-fix rhinestone coating technology, and in particular relates to a crystal hot-fix rhinestone coating equipment with a screening function. Background Technology

[0002] In our daily lives, clothing and other fabric products are often covered with various shapes and colors of hot-fix rhinestones. Among them, crystal hot-fix rhinestones are the most widely used. Before using crystal hot-fix rhinestones, they need to be coated to make them last longer and have a shinier and more beautiful appearance.

[0003] Patent application CN202421233246.9 discloses a crystal rhinestone coating device with a screening component, comprising a support platform, a coating machine body, a screening mechanism, and a storage mechanism. The screening mechanism includes a fixed component, a drive component, and a screening box. The screening box is fixedly installed with the drive component, which is slidably connected to the outer wall of the fixed component. Inside the screening box, from top to bottom, are arranged a first filter plate, a second filter plate, and a bottom plate. The surfaces of the first filter plate, the second filter plate, and the bottom plate are all inclined. The two side walls of the screening box have a first discharge port and a second discharge port at the bottom ends of the inclined surfaces of the first and second filter plates, respectively. The bottom surface of the screening box has a through groove at the bottom end of the inclined surface of the bottom plate, and the bottom end of the inclined surface of the bottom plate does not contact the inner wall of the screening box. This invention can collect rhinestones of different specifications, facilitating worker recycling and allowing workers to easily retrieve rhinestones of the correct specifications from the storage box for coating by the coating machine body.

[0004] Existing technologies use multiple filter plates to classify hot-fix rhinestones of different sizes before coating, but there are still shortcomings:

[0005] First, existing hot-fix rhinestone coating equipment requires manual alignment of the rhinestones before coating, which results in low overall coating efficiency. Furthermore, it cannot fix each rhinestone individually, making them prone to deviation during coating and affecting the overall coating effect.

[0006] Secondly, after each coating process, the end face of the existing coated board will have coating material adhering to it. If the coated board is not cleaned in time, it will affect the coating effect of subsequent hot-fix rhinestones. Summary of the Invention

[0007] To overcome the shortcomings of existing technologies, this invention provides a crystal rhinestone coating device with a screening function. Through the design of a conical feeding port and other structures, this invention ensures that only vertically positioned crystal rhinestones can slide vertically into the fixed holes, guaranteeing that the rhinestones are properly positioned before coating. Simultaneously, a dust collector reduces the pressure inside the sealed chamber, ensuring that each rhinestone is firmly adhered to the inside of its respective fixed hole.

[0008] To achieve the above objectives, this utility model provides the following technical solution: a crystal hot-fix rhinestone coating equipment with screening function, comprising a workbench, a material distribution component on the upper surface of the workbench, multiple slide rails on the upper surface of the workbench, a coating plate slidably disposed inside each slide rail, multiple fixing holes on the upper surface of each coating plate, a sealing box on the lower surface of each coating plate, a dust collector at the lower port of each sealing box, a material distribution plate slidably disposed above each coating plate, a conical feeding port on the upper surface of each material distribution plate above each fixing hole, a scraper on one side of the lower surface of each material distribution plate between every two adjacent coating plates and material distribution plates, the lower end of each scraper slidably abutting against the upper surface of its adjacent coating plate, and a coating machine disposed above each material distribution plate.

[0009] Optionally, a movable frame is slidably disposed inside each of the sealed boxes, and a protrusion is provided below the upper end surface of the movable frame at the bottom of each of the fixed holes, and a groove is provided on the upper end surface of each protrusion.

[0010] Optionally, a crossbar is provided on one side of each of the sealed boxes inside the slide, and an arc-shaped feeding rod is provided on the lower end face of each crossbar. A feeding frame is provided below the multiple arc-shaped feeding rods on the lower end face of the worktable.

[0011] Optionally, each of the slide rails has a first slide groove on both sides of the coating plate on its inner sidewall. One end of each coating plate is slidably connected to its adjacent first slide groove. A first lead screw is rotatably installed inside each first slide groove. Each first lead screw is drively connected to its adjacent coating plate. A second slide groove is provided on the inner sidewall of the slide rail above each first slide groove. One end of each material distribution plate is slidably connected to its adjacent second slide groove. A baffle is provided on one side of each material distribution plate at one end of the coating plate. Each baffle abuts against its adjacent material distribution plate.

[0012] Optionally, a limiting block is provided above each of the baffles on the inner wall of the slide, the limiting block can block the material distribution plate and prevent the material distribution plate from moving below the coating machine.

[0013] Optionally, a movable plate is slidably disposed on one side of each coating plate inside the slide rail, and a slide rod is disposed on one side of each movable plate. One end of each slide rod passes through the worktable and is fixedly connected to one side wall of its adjacent movable plate. A spring is disposed on the outside of each slide rod between the slide rod and the worktable.

[0014] Optionally, the material distribution component includes a storage frame disposed on the upper surface of the workbench, a sieve plate is inclinedly disposed inside the storage frame, abutment blocks are disposed at both ends of the sieve plate on the inner side wall of the storage frame, a discharge port is disposed on one side of the sieve plate on the inner side wall of the storage frame, and a sieve frame is disposed on one side of the discharge port on the lower surface of the workbench.

[0015] Optionally, a brush plate is slidably disposed below the sieve plate inside the storage frame, and the lower end surface of the brush plate is provided with multiple bristles.

[0016] In summary, compared with existing technologies, the beneficial effects of this solution are as follows:

[0017] This invention, through the design of a dust collector, a material distribution plate, and a conical feeding port, allows only vertically positioned crystal rhinestones to slide vertically into the fixed holes through the conical feeding port, thus ensuring that the crystal rhinestones are properly positioned before coating. At the same time, the dust collector reduces the pressure inside the sealed box, ensuring that each rhinestone is firmly adsorbed into each fixed hole, thereby ensuring the stability of the crystal rhinestones during coating and improving the coating effect.

[0018] This invention, through the arrangement of components such as baffles, scrapers, and moving plates, enables the scraper to promptly scrape and clean the upper surface of the coating plate, thereby ensuring the cleanliness of the upper surface of the coating plate and improving the effect of hot-fix rhinestone coating. Attached Figure Description

[0019] Figure 1 This is a perspective view of the present utility model;

[0020] Figure 2 This is a side view of the present invention;

[0021] Figure 3 for Figure 2 A three-dimensional cross-sectional view at point AA;

[0022] Figure 4 for Figure 3 A magnified view of a section at point B in the middle;

[0023] Figure 5 for Figure 3 A magnified view of a section at point C.

[0024] Figure 6 for Figure 3Enlarged view of a section at point D;

[0025] Figure 7 for Figure 3 A magnified view of a section at point E in the middle;

[0026] Figure 8 for Figure 3 A magnified view of a section at point E in the middle.

[0027] In the diagram: 10. Workbench, 11. Storage frame, 12. Screen plate, 13. Discharge port, 14. Abutment block, 15. Slide rail, 16. Coating plate, 17. Fixing hole, 18. Sealing box, 19. Dust collector, 20. Moving frame, 21. Protrusion, 22. First slide rail, 23. First lead screw, 24. Material distribution plate, 25. Conical discharge port, 26. Baffle, 27. Limiting block, 28. Scraper, 29. Second slide rail, 30. Moving plate, 31. Slide rod, 32. Spring, 33. Support frame, 34. Coating machine, 35. Vision sensor, 36. Crossbar, 37. Arc-shaped discharge rod, 38. Discharge frame, 39. Screening frame, 40. Brush plate, 41. Second lead screw, 42. Groove, 43. Position monitor. Detailed Implementation

[0028] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Example

[0029] like Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 and Figure 6 As shown, a crystal hot-fix rhinestone coating device with screening function includes a worktable 10. A material distribution component is provided on the upper surface of the worktable 10. Multiple slides 15 are provided on the end face of the worktable 10. A coating plate 16 is slidably disposed inside each slide 15. Multiple fixing holes 17 are provided on the upper surface of each coating plate 16. The fixing holes 17 are funnel-shaped, with the upper end slightly larger than the lower end. Since the hot-fix rhinestone has a multi-faceted three-dimensional shape, the multiple fixing holes 17 ensure that the sharpest parts of each hot-fix rhinestone are evenly coated. It can be inserted into the fixing hole 17 to facilitate the vertical placement of hot-fixing rhinestones. Each coating plate 16 has a sealing box 18 on its lower end face. Each sealing box 18 has a dust collector 19 at its lower port. The dust collector 19 is a common dust collector that can suck impurities into the dust collector 19 and store them by wind. After the dust collector 19 is started, it can extract some of the air inside the sealing box 18, thereby creating an air pressure difference inside and outside the sealing box 18, which in turn makes the hot-fixing rhinestones inside each fixing hole 17 firmly fixed.

[0030] A distribution plate 24 is slidably disposed above each coating plate 16. A conical discharge port 25 is provided above each fixing hole 17 on the upper end face of the distribution plate 24. The overall shape of the conical discharge port 25 is also conical, with its upper end slightly larger than its lower end. The lower end can pass through hot-drilling. A scraper 28 is provided on one side of the lower end face of the distribution plate 24 between every two adjacent coating plates 16 and distribution plates 24. The lower end of each scraper 28 slides against the upper end face of its adjacent coating plate 16. The scraper 28 is provided to allow for hot-drilling coating on the coating plate 16 and subsequent material discharge. At this time, when the coating plate 16 and the distribution plate 24 slide relative to each other, the coating plate 16 is subjected to hot-drilling. The upper surface of the coating plate 16 is scraped and cleaned to ensure its cleanliness. Simultaneously, a dust collector 19 is used to absorb and store the cleaned impurities through multiple fixing holes 17. Each material distribution plate 24 is equipped with a coating machine 34, a standard spray coating machine, which is existing technology and can coat hot-fix rhinestones via spraying. A vision sensor 35 is installed between every two adjacent coating machines 34 on the upper surface of the worktable 10. The vision sensor 35 detects when the coating plate 16 moves from the storage box 11 and controls the coating machine 34 to coat the multiple hot-fix rhinestones on the upper surface of the coating plate 16, preventing secondary coating. A support frame 33 is installed on the upper surface of the worktable 10, and multiple coating machines 34 are fixedly connected to the inner top surface of the support frame 33. An intelligent controller is also installed on one side of the support frame 33 for intelligent control of the entire coating equipment.

[0031] Furthermore, such as Figure 3 and Figure 8 As shown, the material distribution component includes a storage frame 11 disposed on the upper surface of the workbench 10. A sieve plate 12 is inclinedly disposed inside the storage frame 11. Abutment blocks 14 are disposed at both ends of the sieve plate 12 on the inner side wall of the storage frame 11. A discharge port 13 is disposed on one side of the sieve plate 12 on the inner side wall of the storage frame 11. A sieving frame 39 is disposed on one side of the discharge port 13 on the lower surface of the workbench 10. By using the inclined arrangement of the sieve plate 12, hot-fix rhinestones that are poured into the storage frame 11 and are too large can be discharged into the sieving frame 39 through the discharge port 13, thereby screening the hot-fix rhinestones.

[0032] Furthermore, such as Figure 3 and Figure 4As shown, a movable frame 20 is slidably arranged inside each sealing box 18. A protrusion 21 is provided below the upper end face of the movable frame 20 below each fixing hole 17. A groove 42 is provided on the upper end face of each protrusion 21. Multiple push cylinders are provided on the outer side wall of the sealing box 18. These are all existing technologies. The output ends of the multiple push cylinders pass through the side wall of the sealing box 18 and are fixedly connected to the lower end face of the movable frame 20, thereby driving the movable frame 20 to slide vertically inside the sealing box 18, which in turn drives the multiple protrusions 21 to slide vertically. After hot-drilling, each protrusion 21 can extend into the fixing hole 17 above it, thereby pushing out the hot-drill inside the fixing hole 17. With the horizontal movement of the coating plate 16 and the setting of the crossbar 36 and the arc-shaped unloading bar 37, the unloading process of the hot-drill after coating is completed.

[0033] Meanwhile, when placing hot-fixed rhinestones inside each fixing hole 17, each protrusion 21 can move upward to the lower end of each conical feeding port 25, so that each conical feeding port 25 can only store one hot-fixed rhinestone. As the protrusion 21 moves vertically downward, it drives the hot-fixed rhinestone inside each conical feeding port 25 to move vertically into each fixing hole 17. During this process, due to the setting of the groove 42, the bottom of each hot-fixed rhinestone is further fixed, making the hot-fixed rhinestone more stable when it moves into each fixing hole 17.

[0034] Furthermore, such as Figure 1 As shown, each sealed box 18 has a crossbar 36 inside the slide 15 on one side, and an arc-shaped feeding rod 37 is provided on the lower end face of each crossbar 36. Below the multiple arc-shaped feeding rods 37, a feeding frame 38 is provided on the lower end face of the worktable 10. The crossbar 36 and the arc-shaped feeding rod 37 can collect the hot-drilled pieces that have been coated and placed on the coated plate 16 into the feeding frame 38. The arc shape of the feeding rod 37 can effectively prevent the hot-drilled pieces from falling during feeding. During feeding, the lower end face of the arc-shaped feeding rod 37 will slide and abut against the upper end face of the coated plate 16.

[0035] Furthermore, such as Figure 1As shown, a movable plate 30 is slidably disposed on one side of each coating plate 16 inside the slide rail 15. A slide rod 31 is disposed on one side of each movable plate 30. One end of each slide rod 31 passes through the worktable 10 and is fixedly connected to one side wall of its adjacent movable plate 30. A spring 32 is connected between the slide rod 31 and the worktable 10. The elastic tension of the spring 32, combined with the slide rod 31, forms an elastic support for one side of the movable plate 30. This allows the moving plate 30 to slide horizontally along with the dividing plate 24 and move to the lower port of the storage frame 11 after the dividing plate 24 is filled with material, thus preventing leakage of hot-drills inside the storage frame 11. When the dividing plate 24 moves horizontally along with the coating plate 16 to the lower port of the storage frame 11 for filling, the dividing plate 24 will support one end of the moving plate 30 under the action of the coating plate 16, thus allowing the moving plate 30 to slide horizontally to one side of the storage frame 11, facilitating the coating of hot-drills.

[0036] Furthermore, such as Figure 3 , Figure 5 and Figure 7 As shown, each slide rail 15 has a first groove 22 on both sides of the coating plate 16 on its inner sidewall. One end of each coating plate 16 is slidably connected to its adjacent first groove 22. A first lead screw 23 is rotatably installed inside each first groove 22. A motor is installed on one side of each first lead screw 23 on the sidewall of the worktable 10. The motor is a common motor, which is existing technology. The motor can drive the first lead screw 23 to rotate, thereby driving the coating plate 16 to slide horizontally along the first groove 22. Each first lead screw 23 is connected to its adjacent coating plate 16. A second slide groove 29 is provided on the inner wall of the slide 15 above the slide groove 22. One end of each material distribution plate 24 is slidably connected to its adjacent second slide groove 29. A baffle 26 is provided on one side of each material distribution plate 24 at one end of the coating plate 16. Each baffle 26 abuts against its adjacent material distribution plate 24. The baffle 26 can drive the material distribution plate 24 to move horizontally when the components such as the coating plate 16 coat the hot-hot rhinestones and unload them, so that the material distribution plate 24 can cooperate with the coating plate 16 again for loading.

[0037] Furthermore, such as Figure 5 As shown, each baffle 26 is provided with a limiting block 27 on the inner wall of the slide 15 above it. The limiting block 27 is located on one side of the material distribution plate 24, so that the limiting block 27 can block the material distribution plate 24 and prevent the material distribution plate 24 from moving to the bottom of the coating machine 34 and blocking the hot-drilling coating process inside the fixing hole 17.

[0038] Furthermore, such as Figure 1 , Figure 3 and Figure 8As shown, a brush plate 40 is slidably disposed below the sieve plate 12 inside the storage frame 11. Multiple bristles are disposed on the lower end face of the brush plate 40. A second lead screw 41 is rotatably disposed inside the storage frame 11, and the second lead screw 41 is slidably connected to the brush plate 40. A guide rod is disposed on one side of the second lead screw 41 inside the worktable 10. A motor drives the second lead screw 41 to rotate, thereby causing the brush plate 40 to move horizontally. This allows the hot drill inside the storage frame 11 to roll horizontally, making it easier for the hot drill to enter the multiple conical feeding ports 25. It also helps to prevent misalignment within each conical feeding port 25. The hot-fix rhinestones are horizontally moved by the angled and caliper to disengage them from the conical feed port 25 or correct their position. At the same time, a position monitor 43 is installed on the inner wall of the storage frame 11 above the brush plate 40. The position monitor 43 is existing technology and can detect whether there are hot-fix rhinestones inside each conical feed port 25 on the upper surface of the distribution plate 24 and whether the hot-fix rhinestones are in the correct position. The intelligent control system of the equipment can control the rotation of the second lead screw 41, thereby driving the brush plate 40 to move repeatedly until there are hot-fix rhinestones inside each conical feed port 25 and the position of the hot-fix rhinestones meets the requirements of coating.

[0039] When the crystal needs to be coated, firstly, the multiple first lead screws 23 are rotated to move the coating plate 16 horizontally to the lower port of the storage frame 11. The coating plate 16, through the setting of the baffle 26, moves the distributing plate 24 to the lower port of the storage frame 11. As the distributing plate 24 moves horizontally to the lower port of the storage frame 11, it will squeeze the moving plate 30, causing the moving plate 30 to disengage from the partition at the lower port of the storage frame 11. During this process, because the moving plate 30 will form a reverse supporting force on one end of the distributing plate 24, the scraper 28 on the lower end face of the distributing plate 24 will scrape the upper end face of the coating plate 16. Then the moving frame 20 moves horizontally upward. This causes multiple protrusions 21 to move to the lower end of each conical feeding port 25, so that only one hot-drill can be placed inside each conical feeding port 25. Then, the coating plate 16 is controlled to move towards the position of the coating machine 34. When the material distribution plate 24 is completely detached from the bottom of the storage frame 11, the moving frame 20 is controlled again to drive multiple protrusions 21 to move downward, thereby driving multiple hot-drills to move into the interior of multiple fixing holes 17. Through the setting of the dust collector 19, each hot-drill is firmly fixed inside the interior of each fixing hole 17. The coating plate 16 continues to move to the bottom of the coating machine 34. During this process, the material distribution plate 24 will be blocked by the limiting block 27 on one side of the coating machine 34.

[0040] Then, after the coating plate 16 passes under the coating machine 34, the coating machine 34 will coat the multiple hot-fix rhinestones placed on the coating plate 16. Then, the coating plate 16 will continue to move to one side of the unloading frame 38. During this process, multiple protrusions 21 will push out the hot-fix rhinestones inside each fixing hole 17, and the arc-shaped unloading rod 37 will unload the pushed-out hot-fix rhinestones.

[0041] It should be noted that the coating machine 34 is not an innovative feature of this utility model; it is entirely based on conventional existing technology. It only needs to be able to complete the coating of hot-fix rhinestones normally. Furthermore, the electrical control method and specific structure (signal transmission method, electrical connection between various sensors) of the vision sensor 35 and the position monitor 43 will not be elaborated in detail in this solution.

[0042] The specification and claims use certain terms to refer to specific components. Those skilled in the art will understand that hardware manufacturers may use different names to refer to the same component. This specification and claims do not distinguish components based on differences in name, but rather on differences in function. The term "comprising" throughout the specification and claims is an open-ended term and should be interpreted as "comprising but not limited to." "Approximately" means that within an acceptable margin of error, those skilled in the art can solve the technical problem and substantially achieve the technical effect within a certain margin of error.

[0043] It should be noted that the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a product or system comprising a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a product or system. Without further limitation, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the product or system that includes said element.

[0044] The foregoing description illustrates and describes several preferred embodiments of this application. However, as previously stated, it should be understood that this application is not limited to the forms disclosed herein and should not be construed as excluding other embodiments. It can be used in various other combinations, modifications, and environments, and can be altered within the scope of the application concept described herein through the foregoing teachings or techniques or knowledge in related fields. Any modifications and variations made by those skilled in the art that do not depart from the spirit and scope of this application should be within the protection scope of the appended claims.

Claims

1. A water crystal hot diamond plating film equipment with screening function, comprising a workbench (10), characterized in that, The upper end face of the workbench (10) is provided with a distribution assembly, the upper end face of the workbench (10) is provided with a plurality of slides (15), the inside of each slide (15) is slidably provided with a coated plate (16), the upper end face of each coated plate (16) is provided with a plurality of fixed holes (17), the lower end face of each coated plate (16) is provided with a sealed box (18), the lower end of each sealed box (18) is provided with a dust collector (19), the upper side of each coated plate (16) is slidably provided with a distribution plate (24), the upper end face of each fixed hole (17) is provided with a tapered discharge port (25) on the upper end face of the distribution plate (24), each two adjacent coated plates (16) and distribution plates (24) are provided with scrapers (28) on one side of the lower end face of the distribution plate (24), the lower end of each scraper (28) is in sliding abutment with the upper end face of its adjacent coated plate (16), and the upper side of each distribution plate (24) is provided with a coating machine (34).

2. The water crystal hot diamond plating film equipment with screening function according to claim 1, characterized in that, The inside of each sealed box (18) is slidably provided with a moving frame (20), the lower side of each fixed hole (17) is provided with a protrusion (21) on the upper end face of the moving frame (20), and the upper end face of each protrusion (21) is provided with a groove (42).

3. The water crystal hot diamond plating film equipment with screening function according to claim 2, characterized in that, One side of each sealed box (18) is provided with a cross rod (36) in the inside of the slide (15), and the lower end face of each cross rod (36) is provided with an arc-shaped discharge rod (37). The lower side of a plurality of arc-shaped discharge rods (37) is provided with a discharge frame (38) on the lower end face of the workbench (10).

4. The water crystal hot diamond plating film equipment with screening function according to claim 1, characterized in that, The inner side wall of each slide (15) is provided with a first sliding groove (22) on both sides of the coated plate (16), one end of each coated plate (16) is slidably connected with the adjacent first sliding groove (22), the inside of each first sliding groove (22) is rotatably provided with a first lead screw (23), each first lead screw (23) is in driving connection with the adjacent coated plate (16), the upper side of each first sliding groove (22) is provided with a second sliding groove (29) on the inner side wall of the slide (15), one end of each distribution plate (24) is slidably connected with the adjacent second sliding groove (29), one side of each distribution plate (24) is provided with a baffle (26) at one end of the coated plate (16), and each baffle (26) is in abutment with the adjacent distribution plate (24).

5. The water crystal hot diamond plating film equipment with screening function according to claim 4, characterized in that, The upper side of each baffle (26) is provided with a limiting block (27) on the inner side wall of the slide (15), and the limiting block (27) can block the distribution plate (24) to prevent the distribution plate (24) from moving below the coating machine (34).

6. The water crystal hot diamond plating film equipment with screening function according to claim 1, characterized in that, One side of each coated plate (16) is slidably provided with a moving plate (30) inside the slide (15), one side of each moving plate (30) is provided with a slide rod (31), one end of each slide rod (31) is fixedly connected with the side wall of the adjacent moving plate (30) of the workbench (10), and the outside of each slide rod (31) is connected with a spring (32) between the slide rod (31) and the workbench (10).

7. The water crystal hot diamond plating film equipment with screening function according to claim 1, characterized in that, The material distribution assembly comprises a storage frame (11) arranged on the upper end face of the workbench (10), an inclined sieve plate (12) is arranged inside the storage frame (11), abutting blocks (14) are arranged on the inner side walls of the storage frame (11) at both ends of the sieve plate (12), a discharge port (13) is arranged on one side of the sieve plate (12) on the inner side wall of the storage frame (11), and a sieve frame (39) is arranged on one side of the discharge port (13) on the lower end face of the workbench (10).

8. The water crystal hot diamond plating film equipment with screening function according to claim 7, characterized in that, A brush plate (40) is slidably arranged inside the storage frame (11) below the sieve plate (12), and a plurality of bristles are arranged on the lower end face of the brush plate (40).

Citation Information

Patent Citations

  • Crystal hot-fix rhinestone coating device with screening assembly

    CN222490957U