Conveyor belt magnetic attraction machine

By designing a conveyor belt magnetic attractor, a continuous magnetic field is generated using a hollow shaft motor and magnetic components. Combined with a curing mechanism, this achieves efficient curing, solving the problem of traditional devices being unable to attract magnets without gaps, and improving production efficiency and product quality.

CN224257522UActive Publication Date: 2026-05-19GUANGDONG BOMINGRUI INTELLIGENT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG BOMINGRUI INTELLIGENT TECH CO LTD
Filing Date
2025-03-31
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

Traditional magnetic attraction devices for wearable armor cannot magnetize wearable armor without gaps, resulting in slow production speed, high operational complexity, and high defect rate, making it difficult to meet the needs of large-scale production.

Method used

A conveyor belt magnetizer is used, which uses a hollow shaft motor to drive the magnetic components to rotate and generate a continuously changing magnetic field to precisely magnetize the surface of the wearable armor. Combined with a curing mechanism, the armor is efficiently cured through the light-transmitting part of the light-shielding plate, achieving continuous and uninterrupted magnetization and curing processes.

Benefits of technology

It enables continuous, uninterrupted magnetic attraction and curing of wearable armor, improving production efficiency and economic benefits, reducing defect rates, and meeting the needs of large-scale production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of wearable armor processing equipment, and provides a conveyor belt magnetic attraction machine which comprises a working table, a conveying mechanism is installed on the working table and comprises a conveyor belt, a magnetic attraction shaping mechanism is arranged above the conveying mechanism and comprises a box body, and the box body is arranged on the conveying mechanism. A light shielding plate is installed at the bottom of the box body, the light shielding plate is provided with a light transmitting part, and an executing mechanism is installed in the box body. According to the utility model, the magnetic attraction mechanism utilizes the hollow shaft motor to drive the magnetic piece to rotate to generate a continuously changing magnetic field, the magnetic nail polish on the surface of the wearing nail is accurately attracted to form a required pattern or effect, and the curing mechanism is used for efficiently curing the magnetically attracted wearing nail through the light transmitting part on the light shielding plate. The effect is lasting and stable. The whole process is completed in continuous conveying of the conveying belt, continuous non-interval magnetic attraction and curing treatment of the wearable armor are achieved, and the production efficiency and economic benefits are greatly improved.
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Description

Technical Field

[0001] This utility model relates to the field of wearable armor processing equipment technology, and in particular to a conveyor belt magnetic attractor. Background Technology

[0002] After applying cat-eye glue to the surface of fingernails or nail tips, waving a magnetic stick can attract the cat-eye glue with magnetic force, creating a cat-eye effect. This effect is then cured by a UV lamp, which is the origin of handmade nail art. However, due to its manual operation, the production efficiency is low, making it difficult to meet the needs of large-scale production.

[0003] Later, with mechanized production, a process emerged where entire strips of wearable nails were sprayed or printed and then placed on a cat-eye machine for magnetic attraction, producing a cat-eye effect. While this process was quite mature, it had a persistent drawback: slow speed. Traditional equipment required frequent pauses during the magnetic attraction process to ensure each piece of wearable nail received sufficient magnetic attraction. This intermittent operation not only reduced production speed but also increased operational complexity and the defect rate, failing to meet the user's desire for both a strong cat-eye effect and rapid production.

[0004] The purpose of this invention is to solve the problem that traditional armor magnetic devices cannot magnetically attract armor without gaps. Utility Model Content

[0005] The purpose of this invention is to solve the problem that traditional magnetic attraction devices for wearable armor cannot attract magnets to wearable armor without gaps. This invention adopts the following technical solution:

[0006] A conveyor belt magnetic attraction machine includes a workbench with a conveying mechanism mounted on it. The conveying mechanism includes a conveyor belt. A magnetic attraction and shaping mechanism is disposed above the conveying mechanism. The magnetic attraction and shaping mechanism includes a housing with a light-shielding plate installed at the bottom of the housing. The light-shielding plate has a light-transmitting portion. An execution mechanism is installed inside the housing. The execution mechanism includes a magnetic attraction mechanism and a curing mechanism. The magnetic attraction mechanism applies a magnetic field to the wearable armor to form an effect, and the curing mechanism is used to cure the effect of the wearable armor.

[0007] As described above, the magnetic attraction mechanism of the conveyor belt includes a hollow shaft motor, the rotor of which is mounted on a cylinder, one end of which is open and a magnetic component is mounted on the other end.

[0008] As described above, in a conveyor belt magnetic attractor, the curing mechanism is disposed inside the cylinder, the inner cavity of the cylinder is not in contact with the curing mechanism, the curing mechanism is fixedly connected to a connecting rod, one end of the connecting rod passes through the rotor of the hollow shaft motor and is fixedly connected to the housing.

[0009] In the conveyor belt magnetic attractor described above, the magnetic component is either a permanent magnet or an electromagnet.

[0010] As described above, in a conveyor belt magnetic attractor, the curing mechanism is one of an LED UV curing lamp source, a thermal energy radiation curing source, or an electron beam curing source.

[0011] As described above, in a conveyor belt magnetic attractor, at least one limiting mechanism is installed on both sides of the conveyor belt. The limiting mechanism includes a first L-shaped plate, which has at least one through groove. A first bolt is slidably disposed in the through groove. A second L-shaped plate connected to the conveyor belt is installed at the bottom of the first L-shaped plate. The second L-shaped plate is threadedly connected to the first bolt.

[0012] As described above, in a conveyor belt magnetic attractor, a slider is provided on one side of the second L-shaped plate, a second bolt is sleeved inside the slider, and grooves for installing the slider are provided on both sides of the conveyor belt.

[0013] As described above, a conveyor belt magnetic attractor has a lifting mechanism installed at the bottom of the conveyor belt. The lifting mechanism is used to lift the conveyor belt. The lifting mechanism includes a base, a base plate is fixedly connected to the base, a lead screw is sleeved inside the base plate, the lead screw is threaded to the base plate, and a crossbar is rotatably connected to one end of the lead screw.

[0014] As described above, in a conveyor belt magnetic attractor, at least one positioning rod is fitted inside the base plate, the positioning rod is slidably connected to the base plate, and one end of the positioning rod is fixedly connected to the crossbar.

[0015] As described above, in a conveyor belt magnetic attracting machine, a support is installed at the bottom of the magnetic attracting and shaping mechanism, and the top of the support is higher than the height of the limiting mechanism.

[0016] Implementing the embodiments of this utility model has the following beneficial effects:

[0017] 1. In this invention, the magnetic attraction mechanism utilizes a hollow shaft motor to drive the rotation of magnetic components, generating a continuously changing magnetic field to precisely attract magnetic nail polish onto the surface of the wearable nail, forming the desired pattern or effect. The curing mechanism efficiently cures the magnetized wearable nail through the light-transmitting portion of the light-shielding plate, ensuring a long-lasting and stable effect. The entire process is completed during continuous conveying on a conveyor belt, achieving continuous, uninterrupted magnetization and curing of the wearable nail, significantly improving production efficiency and economic benefits.

[0018] In summary, this invention solves the problem that traditional wearable armor magnetic devices cannot magnetically attract wearable armor without gaps. Attached Figure Description

[0019] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0020] Figure 1 This is a schematic diagram of the overall structure of a conveyor belt magnetic attractor according to this utility model.

[0021] Figure 2 This is a schematic diagram of the conveying mechanism of a conveyor belt magnetic attractor according to this utility model.

[0022] Figure 3 This is a schematic diagram of the conveyor belt structure of a conveyor belt magnetizer according to this utility model.

[0023] Figure 4 This is a schematic diagram of the limiting mechanism of a conveyor belt magnetic attractor according to this utility model.

[0024] Figure 5 This is an exploded view of the magnetic attraction and shaping mechanism of a conveyor belt magnetic attractor according to this utility model.

[0025] Figure 6 This is an exploded view of the actuator of a conveyor belt magnetic attractor according to this utility model.

[0026] Figure 7 This is a schematic diagram of the structure of the light-shielding plate in this embodiment 2.

[0027] As shown in the figure:

[0028] 1. Workbench; 2. Conveying mechanism; 21. Conveyor belt; 22. Limiting mechanism; 221. First L-shaped plate; 222. Through groove; 223. First bolt; 224. Second L-shaped plate; 225. Second bolt; 226. Slider; 23. Lifting mechanism; 231. Base plate; 232. Lead screw; 233. Base; 234. Crossbar; 235. Positioning rod; 3. Magnetic shaping mechanism; 31. Box body; 32. Actuating mechanism; 321. Hollow shaft motor; 322. Connecting rod; 323. Curing mechanism; 324. Cylinder body; 325. Magnetic component; 33. Light shield; 331. Light-transmitting part; 332. Through hole; 333. Slot; 334. Baffle; 4. Support. Detailed Implementation

[0029] 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.

[0030] like Figures 1 to 6 As shown, this utility model proposes a conveyor belt magnetic attractor, including a workbench 1. The workbench 1 is characterized by having a conveying mechanism 2 installed on it. The conveying mechanism 2 includes a conveyor belt 21. At least one limiting mechanism 22 is installed on both sides of the conveyor belt 21. A lifting mechanism 23 is installed at the bottom of the conveyor belt 21. The lifting mechanism 23 is used to lift the conveyor belt 21.

[0031] A magnetic shaping mechanism 3 is provided above the conveying mechanism 2. The magnetic shaping mechanism 3 includes a housing 31, a light-shielding plate 33 is installed at the bottom of the housing 31, and the light-shielding plate 33 is provided with a light-transmitting part 331. An execution mechanism 32 is installed inside the housing 31. The execution mechanism 32 includes a magnetic attraction mechanism and a curing mechanism 323. A support 4 is installed at the bottom of the magnetic shaping mechanism 3, and the top height of the support 4 is higher than the height of the limiting mechanism 22.

[0032] The conveyor belt magnetic magnetizer is designed to achieve continuous, uninterrupted magnetic treatment of wearable nail polish. During operation, a complete plate of wearable nail polish, prepared through spraying or printing, is placed on the conveyor belt 21. A limiting mechanism 22 ensures that the nail polish maintains its correct position and orientation during transport, preventing misalignment and effectively reducing the defect rate caused by misalignment. A lifting mechanism 23 can raise the conveyor belt 21, adjusting the distance between the wearable nail polish and the magnetic shaping mechanism 3 to achieve the best magnetic effect. The flexibility of the lifting mechanism 23 allows the equipment to adapt to wearable nail polish of different thicknesses and sizes, improving its versatility and adaptability. When the wearable nail polish is conveyed to the magnetic shaping mechanism 3, the magnetic mechanism magnetizes the magnetic nail polish on the surface of the wearable nail polish, forming the desired pattern or effect. Subsequently, the curing mechanism 323 cures the magnetized wearable nail polish through the light-transmitting portion 331 on the light-shielding plate 33, ensuring a long-lasting and stable effect. Finally, the cured wearable armor continues to be conveyed forward by the conveyor belt 21 and leaves the workbench 1. The entire process is completed during the conveying process of the conveyor belt 21, thus solving the problem that traditional wearable armor magnetic attraction devices cannot achieve continuous and uninterrupted processing, while also greatly improving production efficiency and economic benefits.

[0033] Furthermore, as a preferred embodiment of this utility model and not a limitation, the magnetic attraction mechanism includes a hollow shaft motor 321. A cylinder 324 is mounted on the rotor of the hollow shaft motor 321. One end of the cylinder 324 is open, and a magnetic element 325 is mounted on one end of the cylinder 324. The curing mechanism 323 is disposed inside the cylinder 324, and the inner cavity of the cylinder 324 does not contact the curing mechanism 323. A connecting rod 322 is fixedly connected to the curing mechanism 323, and one end of the connecting rod 322 passes through the rotor of the hollow shaft motor 321 and is fixedly connected to the housing 31. When the wearable nail polish is transported below the magnetic attraction and shaping mechanism 3, the hollow shaft motor 321 starts. The hollow shaft motor 321 drives the cylinder 324 mounted on its rotor to rotate, and a magnetic element 325 is mounted on one end of the cylinder 324. The rotation of the magnetic element 325 generates a continuously changing magnetic field, which acts on the cat-eye gel (i.e., magnetic nail polish) coated on the surface of the wearable nail polish. Tiny magnetic particles in the cat-eye gel align with the direction of a magnetic field, creating a unique visual effect. The magnetization time is automatically adjusted according to the conveyor belt 21 to ensure that each piece of wearable nail receives sufficient magnetization. After magnetization, the curing mechanism 323 immediately cures the magnetized wearable nail. The curing mechanism 323 is fixedly connected to the connecting rod 322, which passes through the rotor of the hollow shaft motor 321 and is fixedly connected to the housing 31, ensuring stable operation during cylinder rotation. The curing mechanism evenly illuminates the wearable nail through the light-transmitting part 331 on the light-shielding plate 33, ensuring the formed pattern and effect are durable and stable.

[0034] Optionally, in some embodiments, the magnetic element 325 is either a permanent magnet or an electromagnet. Using a permanent magnet simplifies device design, as it provides a stable and continuous magnetic field, reducing power consumption. An electromagnet offers greater flexibility because its magnetic field strength can be dynamically adjusted by regulating the current. Combining permanent magnets and electromagnets allows for dynamic adjustment of the local magnetic field while maintaining magnetic field stability, further enhancing the device's versatility and adaptability.

[0035] Optionally, the curing mechanism 323 is one of an LED UV curing lamp source, a thermal energy radiation curing source, or an electron beam curing source.

[0036] Furthermore, as a preferred embodiment of this utility model and not a limitation thereof, the limiting mechanism 22 includes a first L-shaped plate 221, the first L-shaped plate 221 having at least one through groove 222, a first bolt 223 slidably disposed within the through groove 222, a second L-shaped plate 224 mounted on the bottom of the first L-shaped plate 221, the second L-shaped plate 224 being threadedly connected to the first bolt 223, a slider 226 disposed on one side of the second L-shaped plate 224, a second bolt 225 sleeved within the slider 226, and grooves for mounting the slider 226 being provided on both sides of the conveyor belt 21. The slider 226 can slide freely in the grooves on both sides of the conveyor belt 21. By rotating the second bolt 225, the second bolt 225 presses against the groove, limiting the position of the slider 226 in the groove, further limiting the position of the limiting mechanism 22 relative to the conveyor belt 21, thereby enhancing the flexibility and adjustability of the limiting mechanism 22. The position of the first L-shaped plate 221 can be adjusted relative to the second L-shaped plate 224. By tightening the first bolt 223, the position of the first L-shaped plate 221 relative to the second L-shaped plate 224 can be limited, so that the limiting mechanism can be precisely adjusted according to different sizes of armor.

[0037] Furthermore, as a preferred embodiment of this utility model and not a limitation, the lifting mechanism 23 includes a base 233, a base plate 231 fixedly connected to the base 233, a lead screw 232 sleeved inside the base plate 231, the lead screw 232 being threadedly connected to the base plate 231, a crossbar 234 rotatably connected to one end of the lead screw 232, and at least one positioning rod 235 sleeved inside the base plate 231, the positioning rod 235 being slidably connected to the base plate 231, and one end of the positioning rod 235 being fixedly connected to the crossbar 234. The threaded connection between the lead screw 232 and the base plate 231 allows the lifting mechanism to adjust the height of the conveyor belt 21 by rotating the lead screw 232, achieving the optimal distance between the wearable armor and the magnetic shaping mechanism 3, thereby achieving the best magnetic attraction effect. The slidable connection between the positioning rod 235 and the base plate 231 ensures that the crossbar 234 does not shift or tilt during vertical movement, maintaining a smooth lifting action.

[0038] Example 1:

[0039] This utility model proposes a conveyor belt magnetic attractor, including a workbench 1. The workbench 1 is characterized by having a conveying mechanism 2 installed on it. The conveying mechanism 2 includes a conveyor belt 21. At least one limiting mechanism 22 is installed on both sides of the conveyor belt 21. A lifting mechanism 23 is installed at the bottom of the conveyor belt 21. The lifting mechanism 23 is used to lift the conveyor belt 21.

[0040] A magnetic shaping mechanism 3 is provided above the conveying mechanism 2. The magnetic shaping mechanism 3 includes a housing 31, a light-shielding plate 33 is installed at the bottom of the housing 31, and the light-shielding plate 33 is provided with a light-transmitting part 331. An execution mechanism 32 is installed inside the housing 31. The execution mechanism 32 includes a magnetic attraction mechanism and a curing mechanism 323. A support 4 is installed at the bottom of the magnetic shaping mechanism 3, and the top height of the support 4 is higher than the height of the limiting mechanism 22.

[0041] The conveyor belt magnetic magnetizer is designed to achieve continuous, uninterrupted magnetic treatment of wearable nail polish. During operation, a complete plate of wearable nail polish, prepared through spraying or printing, is placed on the conveyor belt 21. A limiting mechanism 22 ensures that the nail polish maintains its correct position and orientation during transport, preventing misalignment and effectively reducing the defect rate caused by misalignment. A lifting mechanism 23 can raise the conveyor belt 21, adjusting the distance between the wearable nail polish and the magnetic shaping mechanism 3 to achieve the best magnetic effect. The flexibility of the lifting mechanism 23 allows the equipment to adapt to wearable nail polish of different thicknesses and sizes, improving its versatility and adaptability. When the wearable nail polish is conveyed to the magnetic shaping mechanism 3, the magnetic mechanism magnetizes the magnetic nail polish on the surface of the wearable nail polish, forming the desired pattern or effect. Subsequently, the curing mechanism 323 cures the magnetized wearable nail polish through the light-transmitting portion 331 on the light-shielding plate 33, ensuring a long-lasting and stable effect. Finally, the cured wearable armor continues to be conveyed forward by the conveyor belt 21 and leaves the workbench 1. The entire process is completed during the conveying process of the conveyor belt 21, thus solving the problem that traditional wearable armor magnetic attraction devices cannot achieve continuous and uninterrupted processing, while also greatly improving production efficiency and economic benefits.

[0042] The magnetic attraction mechanism includes a hollow shaft motor 321. A cylinder 324 is mounted on the rotor of the hollow shaft motor 321. One end of the cylinder 324 is open, and a magnetic element 325 is mounted on one end of the cylinder 324. A curing mechanism 323 is disposed inside the cylinder 324, but the inner cavity of the cylinder 324 does not contact the curing mechanism 323. A connecting rod 322 is fixedly connected to the curing mechanism 323, and one end of the connecting rod 322 passes through the rotor of the hollow shaft motor 321 and is fixedly connected to the housing 31. When the wearable nail polish is transported below the magnetic attraction and shaping mechanism 3, the hollow shaft motor 321 starts. The hollow shaft motor 321 drives the cylinder 324 mounted on its rotor to rotate. The magnetic element 325 is mounted on one end of the cylinder 324. The rotation of the magnetic element 325 generates a continuously changing magnetic field, which acts on the cat-eye gel (i.e., magnetic nail polish) coated on the surface of the wearable nail polish. Tiny magnetic particles in the cat-eye adhesive align with the direction of a magnetic field, creating a unique visual effect. The magnetization time is automatically adjusted based on the conveyor belt 21's speed to ensure each piece of wearable armor receives sufficient magnetization. After magnetization, the curing mechanism 323 immediately cures the magnetized wearable armor. The curing mechanism 323 is fixedly connected to a connecting rod 322, which passes through the rotor of the hollow shaft motor 321 and is fixedly connected to the housing 31, ensuring stable operation during cylinder rotation. The curing mechanism evenly illuminates the wearable armor through the light-transmitting portion 331 on the light-shielding plate 33, ensuring the resulting pattern and effect are durable and stable. The magnetic component 325 is a permanent magnet or an electromagnet. Using a permanent magnet simplifies equipment design and provides a stable and continuous magnetic field, reducing power consumption. The curing mechanism 323 uses an LED UV curing lamp source.

[0043] The limiting mechanism 22 includes a first L-shaped plate 221 with at least one through groove 222. A first bolt 223 is slidably disposed within the through groove 222. A second L-shaped plate 224 is mounted on the bottom of the first L-shaped plate 221 and is threadedly connected to the first bolt 223. A slider 226 is disposed on one side of the second L-shaped plate 224, and a second bolt 225 is fitted inside the slider 226. Slots for mounting the slider 226 are provided on both sides of the conveyor belt 21. The slider 226 can slide freely in the slots on both sides of the conveyor belt 21. By rotating the second bolt 225, the second bolt 225 presses against the slot, limiting the position of the slider 226 in the slot, further limiting the position of the limiting mechanism 22 relative to the conveyor belt 21, thereby enhancing the flexibility and adjustability of the limiting mechanism 22. The position of the first L-shaped plate 221 can be adjusted relative to the second L-shaped plate 224. By tightening the first bolt 223, the position of the first L-shaped plate 221 relative to the second L-shaped plate 224 can be limited, so that the limiting mechanism can be precisely adjusted according to different sizes of armor.

[0044] The lifting mechanism 23 includes a base 233, to which a base plate 231 is fixedly connected. A lead screw 232 is fitted inside the base plate 231 and threadedly connected to it. One end of the lead screw 232 is rotatably connected to a crossbar 234. At least one positioning rod 235 is fitted inside the base plate 231 and slidably connected to it. One end of the positioning rod 235 is fixedly connected to the crossbar 234. The threaded connection between the lead screw 232 and the base plate 231 allows the lifting mechanism to adjust the height of the conveyor belt 21 by rotating the lead screw 232, achieving the optimal distance between the wearable armor and the magnetic shaping mechanism 3 for optimal magnetic attraction. The slidable connection between the positioning rod 235 and the base plate 231 ensures that the crossbar 234 does not shift or tilt during vertical movement, maintaining smooth lifting action.

[0045] The implementation method of Example 2 is as follows:

[0046] The difference between Embodiment 2 and Embodiment 1 is that the light-shielding plate 33 has a through hole 332, and the side wall of the light-shielding plate 33 has a slot 333. A baffle 334 is disposed in the slot 333, and the baffle 334 is slidably connected to the slot 333. According to the specific design requirements of the wearable armor, the operator or automated system adjusts the position of the baffle 334 on the light-shielding plate 33. The baffle 334 slides within the slot 333 until the desired light-shielding position is reached. By adjusting the position of the baffle 334, the irradiation area of ​​the curing light source can be precisely controlled, ensuring that the light only acts on the part that needs to be cured, avoiding unnecessary impact on other areas.

[0047] Specifically, the working principle of this utility model is as follows:

[0048] At the start of the operation, the complete wearable armor, prepared through spraying or printing, is placed on the conveyor belt 21. A limiting mechanism 22 ensures the wearable armor maintains the correct position and orientation during transport, preventing deviation. Specifically, the first L-shaped plate 221 is fine-tuned using the first bolt 223 within the through groove 222, and its position is fixed by the second L-shaped plate 224. A slider 226 is installed in grooves on both sides of the conveyor belt 21, and the grooves are pressed by the second bolt 225 to limit the position of the slider 226, further enhancing the flexibility and adjustability of the limiting mechanism 22. This ensures that each piece of wearable armor accurately enters the magnetic attraction area, effectively reducing the defect rate caused by deviation. The lifting mechanism 23 adjusts the height of the conveyor belt 21 as needed to achieve the optimal distance between the wearable armor and the magnetic shaping mechanism 3. The lifting mechanism 23 adjusts the height of the base plate 231 by rotating the lead screw 232, which is threadedly connected to the base plate 231, making the lifting action precise and stable. The positioning rod 235 is slidably connected to the base plate 231 to ensure that the crossbar 234 will not deviate or tilt during the up and down movement, and maintain a smooth lifting action.

[0049] When the wearable nails are conveyed to the magnetic shaping mechanism 3, the hollow shaft motor 321 drives the cylinder 324 and its magnetic components 325 to rotate, generating a continuously changing magnetic field. This magnetic field acts on the cat-eye gel (i.e., magnetic nail polish) coated on the surface of the wearable nails, causing the tiny magnetic particles within to align with the direction of the magnetic field, creating a unique visual effect. The magnetic attraction time is automatically adjusted according to the conveyor belt 21's conveying speed, ensuring that each piece of wearable nail receives sufficient magnetic attraction.

[0050] After magnetization, the curing mechanism 323 immediately cures the magnetized wearable armor. The curing mechanism 323 is an LED UV curing lamp source, fixedly connected to the connecting rod 322. The connecting rod 322 passes through the rotor of the hollow shaft motor 321 and is fixedly connected to the housing 31, ensuring stable operation during cylinder rotation. The light-transmitting portion 331 on the light-shielding plate 33 allows the curing light source to evenly illuminate the surface of the wearable armor, ensuring the resulting pattern and effect are durable and stable. The cured wearable armor continues to be conveyed forward by the conveyor belt 21, eventually leaving the worktable 1, completing the entire processing. The entire process is completed via continuous conveying on the conveyor belt 21, thus solving the problem that traditional wearable armor magnetization devices cannot achieve continuous, uninterrupted processing, significantly improving production efficiency and economic benefits.

[0051] In summary, this invention solves the problem that traditional magnetic attraction devices for wearable armor cannot attract magnets to wearable armor without any gaps.

[0052] It should be understood that the terms "first," "second," etc., are used in this utility model to describe various information, but this information should not be limited to these terms. These terms are only used to distinguish information of the same type from each other. For example, without departing from the scope of this utility model, "first" information can also be referred to as "second" information, and similarly, "second" information can also be referred to as "first" information. In addition, the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0053] The above description is the preferred embodiment of this utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of this utility model, and these improvements and modifications are also considered to be within the protection scope of this utility model.

Claims

1. A conveyor belt magnetic attractor, comprising a worktable (1), characterized in that, A conveying mechanism (2) is installed on the workbench (1). The conveying mechanism (2) includes a conveyor belt (21). A magnetic shaping mechanism (3) is provided above the conveying mechanism (2). The magnetic shaping mechanism (3) includes a housing (31). A light shield (33) is installed at the bottom of the housing (31). The light shield (33) is provided with a light-transmitting part (331). An execution mechanism (32) is installed inside the housing (31). The execution mechanism (32) includes a magnetic attraction mechanism and a curing mechanism (323). The magnetic attraction mechanism is used to apply a magnetic field to the armor to form an effect. The curing mechanism (323) is used to cure the effect of the armor.

2. The conveyor belt magnetic attractor according to claim 1, characterized in that, The magnetic attraction mechanism includes a hollow shaft motor (321), the rotor of which is mounted with a cylinder (324), one end of which is open, and a magnetic component (325) is mounted on one end of which.

3. The conveyor belt magnetic attractor according to claim 2, characterized in that, The curing mechanism (323) is located inside the cylinder (324). The inner cavity of the cylinder (324) does not contact the curing mechanism (323). The curing mechanism (323) is fixedly connected to a connecting rod (322). One end of the connecting rod (322) passes through the rotor of the hollow shaft motor (321) and is fixedly connected to the housing (31).

4. A conveyor belt magnetic attractor according to claim 2, characterized in that, The magnetic component (325) is one or a combination of permanent magnets or electromagnets.

5. A conveyor belt magnetic attractor according to claim 1, characterized in that, The curing mechanism (323) is one or more combinations of LED UV curing lamp source, thermal energy radiation curing source, and electron beam curing source.

6. A conveyor belt magnetic attractor according to claim 1, characterized in that, At least one limiting mechanism (22) is installed on both sides of the conveyor belt (21). The limiting mechanism (22) includes a first L-shaped plate (221). The first L-shaped plate (221) has at least one through groove (222). A first bolt (223) is slidably disposed in the through groove (222). A second L-shaped plate (224) connected to the conveyor belt (21) is installed at the bottom of the first L-shaped plate (221). The second L-shaped plate (224) is threadedly connected to the first bolt (223).

7. A conveyor belt magnetic attractor according to claim 6, characterized in that, A slider (226) is provided on one side of the second L-shaped plate (224), and a second bolt (225) is fitted inside the slider (226). Slide grooves for installing the slider (226) are provided on both sides of the conveyor belt (21).

8. A conveyor belt magnetic attractor according to claim 1, characterized in that, A lifting mechanism (23) is installed at the bottom of the conveyor belt (21). The lifting mechanism (23) is used to lift the conveyor belt (21). The lifting mechanism (23) includes a base (233). A base plate (231) is fixedly connected to the base (233). A lead screw (232) is sleeved inside the base plate (231). The lead screw (232) is threadedly connected to the base plate (231). A crossbar (234) is rotatably connected to one end of the lead screw (232).

9. A conveyor belt magnetic attractor according to claim 8, characterized in that, At least one positioning rod (235) is fitted inside the base plate (231). The positioning rod (235) is slidably connected to the base plate (231), and one end of the positioning rod (235) is fixedly connected to the crossbar (234).

10. A conveyor belt magnetic attractor according to claim 6, characterized in that, The bottom of the magnetic shaping mechanism (3) is equipped with a support (4), and the top of the support (4) is higher than the height of the limiting mechanism (22).