Magnetic shoe pasting device

By designing a detachable tile-cutting scraper and tile-supporting component combination, and combining it with components such as cylinders, guide rails, and X-axis linear modules, the magnetic tile application device solves the problems of poor versatility and low efficiency of manual operation in large-size motor rotor automatic magnetic tile application equipment, achieving efficient and stable magnetic tile application and improving equipment flexibility.

CN224154103UActive Publication Date: 2026-04-21JSCC AUTOMATION XIAMEN
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JSCC AUTOMATION XIAMEN
Filing Date
2025-04-29
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing technologies for automatic magnet tile application equipment for large-size motor rotors have poor versatility, high changeover costs, low efficiency of manual operation, and fragile magnet tiles that are difficult to position accurately, resulting in high production costs and insufficient flexibility.

Method used

A magnetic tile applicator was designed, comprising a machine base, turntable, placement plate, mounting frame, hopper assembly, tile cutting assembly, and tile loading assembly. It employs a detachable tile cutting scraper, hopper body, and tile support component, combined with components such as cylinders, guide rails, sliders, and X-axis linear modules, to achieve precise control of the magnetic tile ejection distance and height difference, adapting to the feeding of magnetic tiles of different specifications, and improving the equipment's versatility and production flexibility.

Benefits of technology

It enables rapid adaptation and precise installation of magnetic tiles of different specifications, reduces equipment debugging and maintenance costs, improves production efficiency and magnetic tile yield, ensures stable material supply and smooth operation, and reduces magnetic tile damage and production costs.

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Abstract

The utility model discloses a magnetic tile pasting device, which belongs to the field of magnetic tile pasting, and comprises a machine table, a rotary table, a placing plate, a mounting rack, a stock bin assembly, a tile cutting assembly and a tile feeding assembly, the rotary table is fixed at the top of the machine table, and the placing plate is fixed at the rotary end of the rotary table; mounting frames and tile feeding assemblies are fixed to the positions, on the left side and the right side of the rotary table, of the top of the machine table, stock bin assemblies and tile cutting assemblies are arranged at the tops of the mounting frames, the tile cutting assemblies are provided with detachable tile cutting scrapers, the stock bin assemblies are provided with detachable stock bin bodies, the tile feeding assemblies are provided with detachable tile bearing pieces, and the tile cutting scrapers are located above the stock bin bodies. The stock bin body is located above the tile bearing piece, and the tile bearing piece is located above the rotary table. By means of the detachable design of the tile cutting scraper, the stock bin body and the tile bearing piece, the magnetic tile pushing-out distance is accurately controlled, the height difference between the magnetic tiles and a rotor is adjusted, feeding of the magnetic tiles of different specifications is compatible, and different magnetic tile pasting requirements can be met.
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Description

Technical Field

[0001] This utility model belongs to the field of applying magnetic tiles, and in particular relates to a device for applying magnetic tiles. Background Technology

[0002] Electric motors are widely used in modern industry. As the core component of a motor system, the rotor's performance plays a decisive role in the motor's output torque, output efficiency, and operating noise. The mounting of magnets onto the rotor is a crucial process for ensuring motor performance.

[0003] In the production of large-size motor rotors, the application of pre-charged magnet tiles faces numerous challenges. Due to the strong magnetic force and fragile nature of the magnet tiles, precise positioning during manual operation is difficult and they are prone to collisions and breakage, resulting in low efficiency and increased production costs.

[0004] Currently, besides the traditional manual method of applying magnetic tiles, most automatic magnetic tile application machines for large-size motor rotors on the market use a dividing tray for inserting magnetic tiles. However, this method can only be used for motor rotors of specific sizes. Every time a motor rotor size is changed, the entire machine needs to be redesigned and manufactured, resulting in poor equipment versatility, high changeover costs, and long cycles, which seriously restricts the flexibility and market responsiveness of motor manufacturers. Utility Model Content

[0005] The purpose of this invention is to provide a magnetic tile applicator to overcome at least one of the aforementioned defects in the prior art.

[0006] To achieve this objective, the present invention adopts the following technical solution:

[0007] This utility model provides a tile-applying device, including a machine base, a turntable, a placement plate, a mounting frame, a hopper assembly, a tile-cutting assembly, and a tile-laying assembly. The turntable is fixed to the top of the machine base, and the placement plate is fixed to the rotating end of the turntable. Mounting frames and tile-laying assemblies are fixed to the top of the machine base on both the left and right sides of the turntable. The hopper assembly and the tile-cutting assembly are set on the top of the mounting frame. The tile-cutting assembly has a detachable tile-cutting scraper, the hopper assembly has a detachable hopper body, and the tile-laying assembly has a detachable tile-supporting component. The tile-cutting scraper is located above the hopper body, the hopper body is located above the tile-supporting component, and the tile-supporting component is located above the placement plate.

[0008] Preferably, the hopper assembly further includes a first cylinder, a guide rail, a slider, a first bolt, and a mounting plate. The first cylinder and the guide rail are both fixed to the top of the mounting frame. The slider is slidably connected to the guide rail. The top of the slider is fixed with the mounting plate. The telescopic end of the first cylinder is fixedly connected to the mounting plate. The top of the mounting plate is detachably connected to two spaced hopper bodies by the first bolt.

[0009] Preferably, the hopper body includes a tile storage channel, a first iron block, and a partition. The discharge end of the tile storage channel is provided with a partition. The first iron block is provided on the side of the partition away from the tile storage channel, and a part of the first iron block extends into the partition. There is a tile lowering channel between the partition and the tile storage channel.

[0010] Preferably, the silo body also includes a cover plate, and the top of the storage tunnel is fixed with a cover plate. The cover plate has a first perforation, which is located above the lower tunnel.

[0011] Preferably, the tile cutting assembly further includes a support frame, a sliding cylinder, a second bolt, and a mounting strip. The support frame is fixed to the top of the mounting frame, the sliding cylinder is fixed to the support frame, and the mounting strip is fixed to the sliding end of the sliding cylinder. The mounting strip is provided with a number of threaded grooves that are screwed to the second bolt from top to bottom. The tile cutting scraper is detachably connected to the mounting strip through the second bolt.

[0012] Preferably, the tile-cutting scraper has a guide strip, and the partition has a guide channel that cooperates with the guide strip.

[0013] Preferably, the upper tile assembly further includes an X-axis linear module, a moving stage, a second cylinder, and a second iron block. The moving end of the X-axis linear module is fixed with the moving stage, the top of the moving stage is fixed with the second cylinder, the telescopic end of the second cylinder is detachably connected to the second iron block, and the tile support is detachably connected to the end of the moving stage and is arranged opposite to the second iron block.

[0014] Preferably, the upper tile assembly further includes a third bolt, one end of the second iron block is detachably connected to the telescopic end of the second cylinder by the third bolt, and the other end of the second iron block has a protrusion, with partitions on both the upper and lower sides of the protrusion, and the end face of the partition is set close to the turntable relative to the end face of the protrusion.

[0015] Preferably, the tile support has a tile support groove and a second through hole. The tile support groove is located on one side of the tile support, one end of the second through hole is connected to the tile support groove, and the other end of the second through hole penetrates the other side wall of the tile support. The second iron block is arranged opposite to the second through hole.

[0016] Preferably, the upper tile assembly further includes a fourth bolt, through which the tile support is detachably connected to the end of the movable platform.

[0017] The beneficial effects of this utility model are as follows:

[0018] 1. Through the detachable design of the tile cutting scraper, hopper body, and tile bearing components, the magnetic tile ejection distance can be precisely controlled, the height difference between the magnetic tile and the rotor can be adjusted, and the magnetic tile feeding of different specifications can be compatible, thus adapting to different magnetic tile application requirements.

[0019] 2. The unobstructed rotor placement area facilitates manual loading and unloading, effectively improving the accuracy, stability, and versatility of tile application.

[0020] 3. The hopper assembly adopts a precision transmission system consisting of a dual hopper body, a first cylinder, a guide rail, and a slider. This allows for quick switching between different specifications of magnetic tiles. Combined with the convenient replacement of the tile cutting scraper and the tile support, it greatly simplifies the product changeover process, improves the equipment's versatility and production flexibility, significantly reduces equipment debugging, tooling replacement, and maintenance costs, and ensures accurate and stable magnetic tile feeding.

[0021] 4. The magnetic tile is attracted by the first iron block, ensuring its stability after being pushed into the lower tile channel. The magnetic tile only enters the tile-supporting component when the tile-cutting scraper applies external force, achieving precise and orderly material feeding. The partition prevents the magnetic tile from breaking due to excessive magnetic force, and the moderately weakened magnetic force ensures stable positioning of the magnetic tile while facilitating its use, thus improving the finished product rate, feeding efficiency, and operational smoothness.

[0022] 5. The cover plate, partition plate, and storage channel together form a closed space, which further strengthens the positioning function of the magnetic tile, ensures that the magnetic tile is always in the preset feeding position, and improves the reliability of feeding.

[0023] 6. The tile cutting scraper is detachably connected to the threaded groove on the mounting strip via the second bolt. It can stably complete the tile cutting action under the drive of the slide cylinder, and its position can be easily and quickly adjusted up and down to meet different tile cutting needs.

[0024] 7. The guide strip of the tile cutting scraper works in conjunction with the guide channel of the partition plate to provide precise guidance for the tile cutting process, ensuring smooth tile cutting action, effectively avoiding damage to the tile during the tile cutting process, and improving the quality and stability of tile processing.

[0025] 8. Through the coordinated operation of the X-axis linear module, the second cylinder and the second iron block, the magnetic tile is radially attached to the rotor. Compared with the axial insertion method, the glue distribution is more uniform. The detachable second iron block and tile support design can flexibly adapt to different magnetic tiles, ensuring accurate and efficient tile installation.

[0026] 9. The spacers prevent the protruding parts from directly contacting the magnetic tiles, reducing the magnetic force. While ensuring the function of adsorption and tile application, they also prevent damage to the magnetic tiles due to excessive contact pressure, thus ensuring the reliability of the tile application process and the integrity of the magnetic tiles. Attached Figure Description

[0027] Figure 1 This is a three-dimensional structural diagram of the present invention (with a rotor placed on it).

[0028] Figure 2 This is a top view of the mounting frame, hopper assembly, and tile cutting assembly of this utility model.

[0029] Figure 3 This is a right-side structural schematic diagram of the mounting frame, hopper assembly, and tile cutting assembly of this utility model.

[0030] Figure 4 This is a three-dimensional exploded structural diagram of the silo body of this utility model.

[0031] Figure 5 This is a three-dimensional exploded structural diagram of the mounting strip and tile cutting scraper of this utility model.

[0032] Figure 6 This is a schematic diagram of the main structure of the roof tile assembly of this utility model.

[0033] Figure 7 This is a right-side structural schematic diagram of the roof tile assembly of this utility model.

[0034] Figure 8 This is a three-dimensional structural diagram of the bearing component of this utility model.

[0035] The labels in the attached diagram are as follows: 1-Machine base, 2-Turntable, 3-Placement plate, 4-Mounting frame, 5-Hopper assembly, 6-Roller cutting assembly, 7-Roller mounting assembly, 61-Roller cutting scraper, 51-Hopper body, 71-Roller bearing component, 52-First cylinder, 53-Guide rail, 54-Slider, 55-First bolt, 56-Mounting plate, 511-Roller storage channel, 512-First iron block, 513-Baffle plate, 514-Roller lowering channel, 51 5-Cover plate, 516-First through hole, 62-Upright frame, 63-Slide cylinder, 64-Second bolt, 65-Mounting strip, 66-Threaded groove, 67-Guide strip, 517-Guide channel, 72-X-axis linear module, 73-Moving table, 74-Second cylinder, 75-Second iron block, 76-Third bolt, 77-Protrusion, 711-Bearing groove, 712-Second through hole, 78-Fourth bolt, 79-Spacer. Detailed Implementation

[0036] The present invention will now be further described in conjunction with the accompanying drawings and specific embodiments.

[0037] Contents not described in detail in this specification are existing technologies known to those skilled in the art. In the description of this utility model, it should be understood that terms such as "center," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," and "counterclockwise," indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are used only for the convenience of describing this utility model and simplifying the description. They 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, and therefore should not be construed as limiting this utility model. Furthermore, terms such as "first," "second," and "third," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.

[0038] like Figures 1 to 8As shown, the tile-applying device provided in this embodiment includes a machine base 1, a turntable 2, a placement plate 3, a mounting frame 4, a hopper assembly 5, a tile-cutting assembly 6, and a tile-laying assembly 7. The turntable 2 is fixed to the top of the machine base 1, and the placement plate 3 is fixed to the rotating end of the turntable 2. The mounting frame 4 and the tile-laying assembly 7 are fixed to the top of the machine base 1 on both the left and right sides of the turntable 2. The hopper assembly 5 and the tile-cutting assembly 6 are provided on the top of the mounting frame 4. The tile-cutting assembly 6 has a detachable tile-cutting scraper 61. The hopper assembly 5 has a detachable hopper body 51. The tile-laying assembly 7 has a detachable tile-supporting component 71. The tile-cutting scraper 61 is located above the hopper body 51, the hopper body 51 is located above the tile-supporting component 71, and the tile-supporting component 71 is located above the placement plate 3. In use, the rotor is placed on the placement plate 3. The tile cutting scraper 61 of the tile cutting assembly 6 pushes the magnetic tile in the hopper body 51 of the hopper assembly 5 downwards, allowing the magnetic tile to enter the tile support 71 of the tile mounting assembly 7. Then, the tile mounting assembly 7 moves the tile support 71 closer to the rotor, completing the tile mounting operation. Since the tile cutting scraper 61, hopper body 51, and tile support 71 are all detachable, different lengths of the tile cutting scraper 61 or changes in its position can be made according to the requirements of different specifications of magnetic tiles. This allows for precise control of the distance the magnetic tile is pushed out of the hopper body 51, ensuring the magnetic tile smoothly enters the tile support 71 and prepares for subsequent mounting work. By changing the tile support 71 with different limit heights, the corresponding height difference between the magnetic tile and the rotor can be precisely adjusted. This allows the device to adapt to different magnetic tile mounting requirements, ensuring the accuracy and stability of magnetic tile mounting. Different hopper bodies 51 can be replaced as needed to accommodate magnetic tiles of different lengths and widths. Furthermore, the area above where the rotor is placed is shielded to facilitate manual loading and unloading.

[0039] The hopper assembly 5 includes a first cylinder 52, a guide rail 53, a slider 54, a first bolt 55, and a mounting plate 56. The first cylinder 52 and guide rail 53 are fixed to the top of the mounting frame 4. The slider 54 is slidably connected to the guide rail 53, and the mounting plate 56 is fixed to the top of the slider 54. The telescopic end of the first cylinder 52 is fixedly connected to the mounting plate 56. The top of the mounting plate 56 is detachably connected to two spaced-apart hopper bodies 51 via the first bolt 55. The hopper assembly 5 adopts a dual-hopper body 51 design, which can hold different specifications of magnetic tiles. Through the coordinated operation of the first cylinder 52, guide rail 53, and slider 54, the switching between the two hopper bodies 51 can be precisely controlled without stopping the machine to change materials, enabling rapid retrieval of different specifications of magnetic tiles and greatly improving production efficiency. During the application of magnetic tiles, if a product needs to be switched, only the tile cutting scraper 61 and the tile support 71 need to be replaced. Combined with the dual-hopper rapid switching function of the hopper assembly 5, the adaptation of different specifications of magnetic tiles to the rotor can be completed. Compared to traditional equipment that requires a complete replacement of tooling or equipment, this device significantly simplifies the changeover process and greatly improves the equipment's versatility and production flexibility. It reduces equipment debugging and tooling change time caused by product switching, shortens the production preparation cycle, and lowers labor and time costs. Simultaneously, it eliminates the need for dedicated equipment for different product specifications, effectively reducing equipment investment and maintenance costs and improving the company's economic efficiency. The first cylinder 52, guide rail 53, slider 54, and other components in the hopper assembly 5 constitute a precision transmission system, ensuring accurate and stable switching movements of the hopper body 51. This prevents problems such as magnetic tile offset and collision during switching, guaranteeing the reliability and stability of the magnetic tile feeding process and providing assurance for high-quality magnetic tile application.

[0040] The hopper body 51 includes a tile storage channel 511, a first iron block 512, and a partition 513. The discharge end of the tile storage channel 511 is equipped with the partition 513. The first iron block 512 is located on the side of the partition 513 away from the tile storage channel 511, with a portion of the first iron block 512 extending into the partition 513. A tile lowering channel 514 is provided between the partition 513 and the tile storage channel 511. The hopper body 51 uses the adsorption force between the first iron block 512 and the magnetic tile to keep the magnetic tile stable after it is pushed into the tile lowering channel 514, preventing it from falling due to gravity or external vibration and ensuring that the magnetic tile is always ready for use. Only when the tile cutting scraper 61 applies external force will the magnetic tile detach from the tile lowering channel 514 and enter the tile supporting component 71, thereby achieving precise and orderly material supply and providing a reliable guarantee for the stable operation of the automated magnetic tile application process. The partition 513 creates a buffer distance between the first iron block 512 and the magnetic tile, effectively preventing excessive magnetic force from being generated by direct attraction between the first iron block 512 and the magnetic tile. This design prevents the magnetic tile from breaking due to excessive force, greatly reducing the loss rate of the magnetic tile during storage and feeding, significantly improving the yield of magnetic tiles, and reducing production costs. The partition 513 increases the magnetic attraction distance between the magnetic tile and the first iron block 512, moderately weakening the magnetic force, so that the magnetic tile can be stably attracted and positioned, but will not be difficult to push out by the tile cutting scraper 61 due to excessive magnetic force. This balanced design ensures the stability of the magnetic tile positioning while taking into account the convenience of retrieval, improving the overall feeding efficiency and operational smoothness.

[0041] The hopper body 51 also includes a cover plate 515. The top of each tile storage channel 511 is fixed with a cover plate 515, which has a first through hole 516 located above the tile lowering channel 514. During operation, the cover plate 515 restricts the movement of the magnetic tiles within the tile storage channel 511, preventing accidental slippage or positional displacement due to vibration, equipment shaking, or other factors. Simultaneously, the cover plate 515, together with the partition plate 513 and the tile storage channel 511, forms a closed space, further enhancing the positioning of the magnetic tiles and ensuring they remain in the preset feeding position, thus improving feeding reliability.

[0042] The tile cutting assembly 6 includes a support frame 62, a sliding cylinder 63, a second bolt 64, and a mounting strip 65. The support frame 62 is fixed to the top of the mounting frame 4, and the sliding cylinder 63 is fixed to the support frame 62. The sliding end of the sliding cylinder 63 is fixed to the mounting strip 65. The mounting strip 65 has several threaded grooves 66 spaced from top to bottom that are screwed to the second bolt 64. The tile cutting scraper 61 is detachably connected to the mounting strip 65 via the second bolt 64. When tile cutting is required, the sliding cylinder 63 drives the mounting strip 65 downward, causing the tile cutting scraper 61 to move downward to perform the tile cutting action. When the position of the tile cutting scraper 61 needs to be changed, the second bolt 64 is loosened away from the threaded grooves 66, and then the position of the tile cutting scraper 61 is adjusted up and down. After adjustment, the second bolt 64 is inserted into the corresponding threaded groove 66. The tile cutting scraper 61 is detachably connected to the threaded groove 66 on the mounting strip 65 via the second bolt 64. It can stably complete the tile cutting action under the drive of the slide cylinder 63, and its position can be easily and quickly adjusted up and down to meet different tile cutting needs.

[0043] The tile-cutting scraper 61 has a guide strip 67, and the partition plate 513 has a guide channel 517 that cooperates with the guide strip 67. The guide strip 67 of the tile-cutting scraper 61 cooperates with the guide channel 517 of the partition plate 513 to provide precise guidance for the tile-cutting process, ensure that the tile-cutting action is carried out smoothly, effectively avoid damage to the tile during the tile-cutting process, and improve the quality and stability of the tile processing.

[0044] The tile-laying assembly 7 includes an X-axis linear module 72, a moving platform 73, a second cylinder 74, and a second iron block 75. The moving end of the X-axis linear module 72 is fixed to the moving platform 73, and the top of the moving platform 73 is fixed to the second cylinder 74. The telescopic end of the second cylinder 74 is detachably connected to the second iron block 75. The tile-bearing component 71 is detachably connected to the end of the moving platform 73 and is positioned opposite to the second iron block 75. During tile laying, the X-axis linear module 72 drives the moving platform 73 to move towards the rotor. When it approaches the rotor, it stops moving. Then, the second cylinder 74 extends, driving the second iron block 75 to approach the magnetic tile at the tile-bearing component 71, attracting the magnetic tile and pushing it to the right to the outer surface of the rotor, where it is fixed to the outer surface of the rotor with glue. The upper tile assembly 7 achieves radial bonding of the magnetic tile to the rotor through the coordinated operation of the X-axis linear module 72, the second cylinder 74 and the second iron block 75. Compared with the axial insertion method, the glue distribution is more uniform. The design of the detachable second iron block 75 and the tile support 71 can flexibly adapt to different magnetic tiles, ensuring accurate and efficient tile installation.

[0045] The tile-mounting assembly 7 also includes a third bolt 76. One end of the second iron block 75 is detachably connected to the telescopic end of the second cylinder 74 via the third bolt 76. The other end of the second iron block 75 has a protrusion 77, and both the upper and lower sides of the protrusion 77 have partitions 79. The end face of the partitions 79 is positioned closer to the turntable 2 than the end face of the protrusion 77. The partitions 79 prevent the protrusion 77 from directly contacting the magnetic tile, reducing the magnetic force. While ensuring the tile-mounting function, this avoids damage to the magnetic tile due to excessive contact pressure, ensuring the reliability of the tile-mounting process and the integrity of the magnetic tile.

[0046] The tile-supporting component 71 has a tile-supporting groove 711 and a second through hole 712. The tile-supporting groove 711 is located on one side of the tile-supporting component 71. One end of the second through hole 712 communicates with the tile-supporting groove 711, and the other end of the second through hole 712 penetrates through the other side wall of the tile-supporting component 71. A second iron block 75 is disposed opposite to the second through hole 712. The tile-supporting groove 711 of the tile-supporting component 71 can effectively receive and limit the magnetic tile, ensuring the stability of the magnetic tile position during the tile-laying process. The second through hole 712, which communicates with the tile-supporting groove 711, can cooperate with the oppositely disposed second iron block 75, allowing it to pass through, which facilitates the second iron block 75 to attract the magnetic tile, making the tile-laying operation more precise and efficient.

[0047] The upper tile assembly 7 also includes a fourth bolt 78, through which the tile support 71 is detachably connected to the end of the movable platform 73, making disassembly and assembly convenient.

[0048] The above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this utility model.

Claims

1. A device for applying magnetic tiles, characterized in that: This includes the machine base, turntable, placement plate, mounting frame, hopper assembly, tile cutting assembly, and tile mounting assembly; A turntable is fixed to the top of the machine base, and a placement plate is fixed to the rotating end of the turntable; Mounting brackets and roof tile assemblies are fixed on the top of the machine base on both the left and right sides of the turntable. The hopper assembly and the tile-cutting assembly are mounted on the top of the mounting frame; The tile cutting assembly has a detachable tile cutting scraper, the hopper assembly has a detachable hopper body, and the tile mounting assembly has a detachable tile supporting component; The tile-cutting scraper is located above the hopper body, the hopper body is located above the tile-supporting component, and the tile-supporting component is located above the placement plate.

2. The magnetic tile applicator according to claim 1, characterized in that: The hopper assembly also includes a first cylinder, a guide rail, a slider, a first bolt, and a mounting plate; The first cylinder and the guide rail are both fixed to the top of the mounting bracket; The slider is slidably connected to the guide rail, and a mounting plate is fixed to the top of the slider. The telescopic end of the first cylinder is fixedly connected to the mounting plate. The top of the mounting plate is detachably connected to two spaced-apart hopper bodies via a first bolt.

3. The magnetic tile applicator according to claim 2, characterized in that: The silo body includes a storage channel, a first iron block, and a partition; The discharge end of the tile storage channel is provided with a baffle plate. A first iron block is provided on the side of the baffle plate away from the tile storage channel, and a part of the first iron block extends into the baffle plate. There is a tile lowering channel between the baffle plate and the tile storage channel.

4. The magnetic tile applicator according to claim 3, characterized in that: The silo body also includes a cover plate; Each of the tile storage channels is fixed with a cover plate at the top, and the cover plate has a first through hole located above the tile lowering channel.

5. The magnetic tile applicator according to claim 4, characterized in that: The tile-cutting assembly also includes a support frame, a slide cylinder, a second bolt, and a mounting strip; A vertical frame is fixed to the top of the mounting bracket, the slide cylinder is fixed to the vertical frame, and a mounting strip is fixed to the sliding end of the slide cylinder. The mounting strip is provided with several threaded grooves at intervals from top to bottom for screwing with the second bolt; The tile-cutting scraper is detachably connected to the mounting strip via a second bolt.

6. The magnetic tile applicator according to claim 3, characterized in that: The tile-cutting scraper has a guide bar; The partition has a guide channel that cooperates with the guide strip.

7. The magnetic tile applicator according to claim 1, characterized in that: The upper tile assembly also includes an X-axis linear module, a moving stage, a second cylinder, and a second iron block; The moving end of the X-axis linear module is fixed with a moving platform; A second cylinder is fixed to the top of the mobile platform, and a second iron block is detachably connected to the telescopic end of the second cylinder. The bearing plate is detachably connected to the end of the moving platform and is positioned opposite to the second iron block.

8. The magnetic tile applicator according to claim 7, characterized in that: The upper tile assembly also includes a third bolt; One end of the second iron block is detachably connected to the telescopic end of the second cylinder by a third bolt; The other end of the second iron block has a protrusion, and there are partitions on both the upper and lower sides of the protrusion. The end face of the partition is set close to the turntable relative to the end face of the protrusion.

9. The magnetic tile applicator according to claim 7, characterized in that: The tile-bearing component has a tile-bearing groove and a second through hole; The tile support groove is located on one side of the tile support member, one end of the second through hole is connected to the tile support groove, and the other end of the second through hole penetrates the other side wall of the tile support member; The second iron block is positioned opposite to the second perforation.

10. The magnetic tile applicator according to claim 7, characterized in that: The upper tile assembly also includes a fourth bolt; The bearing plate is detachably connected to the end of the movable platform via the fourth bolt.