Magnetic suspension horizontal head alignment device

CN224601864UActive Publication Date: 2026-08-07NANXING MACHINERY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
NANXING MACHINERY CO LTD
Filing Date
2025-08-19
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

然而,现有技术存在以下显著缺陷:切割组件在高速切断封边条时会产生强烈机械冲击与振动,导致切割刀体末端抖动

Benefits of technology

[0016] The drive mechanism of this invention can drive the head cutting mechanism and the tail cutting mechanism to move towards each other to achieve position adjustment, adapting to different sizes of boards and improving the flexibility of use. The buffer component is located on the front face of the load-bearing plate, and the lifting drive component is installed on the buffer plate of the buffer component. The lifting drive component drives the pallet to move up and down to drive the cutting component to move up and down to adjust its position and adapt to different board cutting needs. The cutting component is used to cut the excess edge banding strips at the front and rear ends of the board. Furthermore, under the action of the buffer component, it can play a shock absorption and buffering role. When subjected to a large impact force, the buffer component can absorb this part of the energy through internal buffering, reducing the end vibration of the cutting component during operation, avoiding mechanical wear or component deformation caused by rigid collision, which helps to extend the service life of this invention and ensures a reliable structure.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224601864U_ABST
    Figure CN224601864U_ABST
Patent Text Reader

Abstract

The utility model relates to the edge banding machine equipment technical field especially is a kind of magnetic suspension horizontal head device, it includes horizontal base, drive mechanism, head cutting mechanism and tail cutting mechanism, drive mechanism is used to drive head cutting mechanism and tail cutting mechanism to move towards each other;Head cutting mechanism and tail cutting mechanism all include support base, load-bearing plate, buffer assembly, lifting drive assembly, slidingly arranged on the load-bearing plate front end face buffer assembly, the support base on load-bearing plate, the support plate on buffer assembly and the cutting assembly on support plate are equipped, buffer assembly is used to buffer and reduce the impact force of cutting assembly when processing. The utility model can adapt to different size of board, improve use flexibility, under the action of buffer assembly, it can play the effect of shock absorption, reduce the end shaking generated when cutting assembly works, avoid rigid impact to cause mechanical wear or component deformation, it is favorable for prolonging the service life of the utility model, and structure is reliable.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the technical field of edge banding machine equipment, and in particular to a magnetic levitation horizontal alignment device. Background Technology

[0002] In the field of panel furniture manufacturing, after edge banding, the excess edge banding strips at both ends need to be precisely cut (i.e., "trimming") to ensure a smooth and aesthetically pleasing joint. Traditional horizontal trimming devices typically consist of a head-cutting mechanism and a tail-cutting mechanism, driven by a drive mechanism to move them in opposite directions to accommodate different panel sizes. However, existing technologies have the following significant drawbacks: the cutting components generate strong mechanical impact and vibration when cutting the edge banding strip at high speed, causing the cutting blade tip to vibrate. Traditional rigid connection structures cannot effectively absorb impact energy, easily leading to problems such as edge chipping and uneven cuts, severely affecting processing quality. In addition, because long-term impact loads are directly transmitted to drive components (such as lead screws and guide rails) and support structures, mechanical damage such as rigid collisions, guide rail deformation, and loosening of connectors occurs, significantly reducing equipment reliability and service life. To address these issues, there is an urgent need to develop a horizontal trimming device with high-precision position adjustment, multiple impact buffering mechanisms, and stable operation. Summary of the Invention

[0003] This invention addresses the problems of existing technologies by providing a magnetic levitation horizontal cutting device that can adapt to plates of different sizes, improving its flexibility of use. With the help of the buffer component, it can achieve shock absorption and buffering, reducing the end vibration of the cutting component during operation, avoiding mechanical wear or component deformation caused by rigid collisions, thus extending the service life of this invention. The structure is reliable.

[0004] To solve the above-mentioned technical problems, the present invention adopts the following technical solution:

[0005] This utility model provides a magnetic levitation horizontal cutting device, which includes a horizontal base, a drive mechanism mounted on the horizontal base, a head cutting mechanism slidably mounted on the horizontal base, and a tail cutting mechanism slidably mounted on the horizontal base. The drive mechanism is used to drive the head cutting mechanism and the tail cutting mechanism to move towards each other. The head cutting mechanism is used to cut the edge banding strip at the front end of the board, and the tail cutting mechanism is used to cut the edge banding strip at the rear end of the board. Both the head cutting mechanism and the tail cutting mechanism include a support base, a load-bearing plate mounted on the support base, a buffer assembly mounted on the front end of the load-bearing plate, a lifting drive assembly mounted on the buffer assembly, a support plate slidably mounted on the buffer assembly, and a cutting assembly mounted on the support plate. The support base is slidably mounted on the horizontal base, the lifting drive assembly is used to drive the support plate to move up and down, and the buffer assembly is used to buffer and reduce the impact force of the cutting assembly during processing.

[0006] The buffer assembly includes a buffer plate, a first buffer cylinder, and a second buffer cylinder. The output ends of the first buffer cylinder and the second buffer cylinder are arranged facing each other from left to right. The buffer plate is slidably disposed on the front end face of the load-bearing plate. The first buffer cylinder and the second buffer cylinder are respectively connected to the rear end face of the buffer plate.

[0007] The front end face of the load-bearing plate is provided with a buffer slide rail, and the rear end face of the buffer plate is provided with a buffer slider, which is slidably connected to the buffer slide rail.

[0008] The output end of the first buffer cylinder is connected to a first connecting block, which is detachably connected to one side of the load-bearing plate. The output end of the second buffer cylinder is connected to a second connecting block, which is detachably connected to the other side of the load-bearing plate.

[0009] The lifting drive assembly includes a lifting drive component and a lifting transmission screw. A lifting sleeve is provided in the middle of the back side of the pallet. The lifting sleeve is threaded onto the outer periphery of the lifting transmission screw. The lifting drive component is mounted on the buffer plate. The output end of the lifting drive component is drivenly connected to one end of the lifting transmission screw, and the other end of the lifting transmission screw is rotatably connected to the buffer plate.

[0010] The pallet has lifting sliders on both sides of its back, and the buffer plate has lifting rails on both sides of its front face. The lifting sliders correspond one-to-one with the lifting rails and are slidably connected to them.

[0011] The magnetic levitation horizontal alignment device further includes a template assembly, which includes a front template, a rear template base, a rear fixed base, and a template adjustment cylinder. The rear template base and the template adjustment cylinder are respectively installed at the front end of the rear fixed base. The rear end of the rear fixed base is detachably connected to the buffer plate. The front template is vertically slidably disposed on the front end face of the rear template base. The template adjustment cylinder is connected to the front template. A template slider is provided on the rear end face of the front template, and a template slide rail is provided on the front end face of the rear template base. The template slider is slidably connected to the template slide rail.

[0012] The tray has a bracket on its front end and a sliding mounting seat rotatably mounted on its bottom. The bracket has a limiting groove through it and limiting blocks are provided on both sides of the limiting groove. The upper end of the sliding mounting seat has a positioning adjustment block. The positioning adjustment block slides through the limiting groove and is located between the two limiting blocks. The cutting assembly is mounted on the bottom of the sliding mounting seat.

[0013] The cutting assembly includes a connecting bracket, a third buffer cylinder, a cutting drive component, and a cutting blade. The cutting drive component is mounted on the bottom of the connecting bracket, and its output end is connected to the cutting blade. A linear guide rail is mounted on the connecting bracket, and a linear slider is provided at the bottom of the sliding mounting base. The linear slider is slidably connected to the linear guide rail. The third buffer cylinder is mounted on one side of the bottom of the sliding mounting base, and its output end is connected to the connecting bracket.

[0014] The driving mechanism includes a head-cutting drive and a tail-cutting drive. The head-cutting drive is used to drive the head-cutting mechanism to move back and forth on the horizontal base, and the tail-cutting drive is used to drive the tail-cutting mechanism to move back and forth on the horizontal base. Both the head-cutting drive and the tail-cutting drive are magnetic levitation linear motors.

[0015] The beneficial effects of this utility model are:

[0016] The drive mechanism of this invention can drive the head cutting mechanism and the tail cutting mechanism to move towards each other to achieve position adjustment, adapting to different sizes of boards and improving the flexibility of use. The buffer component is located on the front face of the load-bearing plate, and the lifting drive component is installed on the buffer plate of the buffer component. The lifting drive component drives the pallet to move up and down to drive the cutting component to move up and down to adjust its position and adapt to different board cutting needs. The cutting component is used to cut the excess edge banding strips at the front and rear ends of the board. Furthermore, under the action of the buffer component, it can play a shock absorption and buffering role. When subjected to a large impact force, the buffer component can absorb this part of the energy through internal buffering, reducing the end vibration of the cutting component during operation, avoiding mechanical wear or component deformation caused by rigid collision, which helps to extend the service life of this invention and ensures a reliable structure. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the structure of a magnetic levitation horizontal alignment device according to the present invention.

[0018] Figure 2 This is a partial structural diagram showing the combination of the horizontal base, support plate, and buffer assembly of this utility model.

[0019] Figure 3 This is a schematic diagram of the head-cutting mechanism or tail-cutting mechanism of this utility model.

[0020] Figure 4 This is a schematic diagram of the structure of the support base, load-bearing plate and buffer assembly of this utility model.

[0021] Figure 5This is a schematic diagram showing the structure of the buffer plate, lifting drive assembly, tray, bracket, sliding mounting base, processing parts, and template assembly of this utility model.

[0022] Figure 6 This is a schematic diagram from another perspective showing the combination of the buffer plate, lifting drive assembly, tray, bracket, sliding mounting base, processing parts, and template assembly of this utility model.

[0023] Figure 7 This is a schematic diagram showing the structure of the lifting drive assembly, tray, bracket, sliding mounting base, processing parts, and template assembly of this utility model.

[0024] Figure 8 This is a structural schematic diagram of the tray, bracket, sliding mounting base, and processing components of this utility model.

[0025] Figure 9 This is a structural schematic diagram of the bracket, sliding mounting base, and processing components of this utility model.

[0026] Figure 10 This is a schematic diagram of the sliding mounting base and the processed components of this utility model.

[0027] Figure 11 This is a schematic diagram of the structure of the template assembly and the buffer plate of this utility model.

[0028] exist Figures 1 to 11 The reference numerals in the figures include:

[0029] 100. Horizontal base; 200. Head cutting mechanism; 300. Tail cutting mechanism;

[0030] 1. Support base; 2. Load-bearing plate; 3. Buffer assembly; 4. Lifting drive assembly; 5. Pallet; 6. Cutting assembly; 7. Buffer plate; 8. First buffer cylinder; 9. Second buffer cylinder; 10. First connecting block; 11. Second connecting block; 12. Buffer slide rail; 13. Buffer slider; 14. Lifting drive component; 15. Lifting transmission screw; 16. Lifting sleeve block; 17. Lifting slider; 18. Lifting slide rail; 19. Lifting bracket; 20. Lifting buffer 21. Cylinder; 22. Template assembly; 23. Front template; 24. Rear template base; 25. Rear fixed base; 26. Template adjustment cylinder; 27. Template slider; 28. Template slide rail; 29. ​​Bracket; 30. Sliding mounting base; 31. Limit groove; 32. Limit block; 33. Positioning adjustment block; 34. Arc-shaped guide block; 35. Connecting bracket; 36. Third buffer cylinder; 37. Cutting drive component; 38. Cutting blade body; 39. Linear guide rail; 30. Linear slider. Detailed Implementation

[0031] To facilitate understanding by those skilled in the art, the present invention will be further described below with reference to embodiments and accompanying drawings. The content mentioned in the embodiments is not intended to limit the present invention. The present invention will be described in detail below with reference to the accompanying drawings.

[0032] A magnetic levitation horizontal alignment device, such as Figures 1 to 11 As shown, it includes a horizontal base 100, a drive mechanism (not shown) mounted on the horizontal base 100, a head-cutting mechanism 200 slidably mounted on the horizontal base 100, and a tail-cutting mechanism 300 slidably mounted on the horizontal base 100. The drive mechanism is used to drive the head-cutting mechanism 200 and the tail-cutting mechanism 300 to move towards each other. The head-cutting mechanism 200 is used to cut the edge banding strip at the front end of the board, and the tail-cutting mechanism 300 is used to cut the edge banding strip at the rear end of the board. Preferably, the structure of the head-cutting mechanism 200 and the tail-cutting mechanism 300 in the embodiment of this application is... Both the head cutting mechanism 200 and the tail cutting mechanism 300 are symmetrically arranged about the center of the horizontal base 100. Each of them includes a support base 1, a load-bearing plate 2 mounted on the support base 1, a buffer assembly 3 mounted on the front end of the load-bearing plate 2, a lifting drive assembly 4 mounted on the buffer assembly 3, a tray 5 slidably mounted on the buffer assembly 3, and a cutting assembly mounted on the tray 5. The support base 1 is slidably mounted on the horizontal base 100. The lifting drive assembly 4 is used to drive the tray 5 to move up and down. The buffer assembly 3 is used to buffer and reduce the impact force of the cutting assembly during processing. Specifically, the driving mechanism of this application embodiment can drive the head cutting mechanism 200 and the tail cutting mechanism 300 to move towards each other to achieve position adjustment, which can adapt to different sizes of boards and improve the flexibility of use; the buffer component 3 is located on the front end face of the load-bearing plate 2, and the lifting drive component 4 is installed on the buffer plate 7 of the buffer component 3. The lifting drive component 4 drives the support plate 5 to move up and down to drive the cutting component to move up and down to adjust its position and adapt to different board cutting needs. The cutting component is used to cut the excess edge banding strips at the front and rear ends of the board; furthermore, under the action of the buffer component 3, it can play a shock absorption and buffering effect. When subjected to a large impact force, the buffer component 3 can absorb this part of the energy through internal buffering, reduce the end vibration generated by the cutting component during operation, avoid rigid collisions that cause mechanical wear or component deformation, and help extend the service life of this application embodiment, making the structure reliable.

[0033] In this embodiment, the buffer assembly 3 includes a buffer plate 7, a first buffer cylinder 8, and a second buffer cylinder 9. The output ends of the first buffer cylinder 8 and the second buffer cylinder 9 are arranged facing each other from left to right. The buffer plate 7 is slidably disposed on the front end face of the load-bearing plate 2. The first buffer cylinder 8 and the second buffer cylinder 9 are respectively connected to the rear end face of the buffer plate 7. A buffer slide rail 12 is provided on the front end face of the load-bearing plate 2, and a buffer slider 13 is provided on the rear end face of the buffer plate 7. The buffer slider 13 is slidably connected to the buffer slide rail 12. A first connecting block 10 is connected to the output end of the first buffer cylinder 8, and the first connecting block 10 is detachably connected to one side of the load-bearing plate 2. A second connecting block 11 is connected to the output end of the second buffer cylinder 9, and the second connecting block 11 is detachably connected to the other side of the load-bearing plate 2. Specifically, the output ends of the first buffer cylinder 8 and the second buffer cylinder 9 are arranged facing each other from left to right, so that the position of the buffer plate 7 on the front end face of the load-bearing plate 2 can be finely adjusted on both sides to play a buffering role. When it is necessary to process the plate, the lifting drive assembly 4 drives the pallet 5 to move to the corresponding position for processing. The buffer assembly 3 is installed on the load-bearing plate 2. When subjected to a large impact force, the first buffer cylinder 8 and the second buffer cylinder 9 can absorb this part of the energy through internal buffering, reduce the vibration of the buffer plate 7 and the end of the cutting assembly, avoid rigid collisions that cause mechanical wear or component deformation, and help extend the service life of the embodiment of this application. The structure is reliable.

[0034] The system includes two buffer sliders 13 and two buffer slide rails 12. The two buffer sliders 13 are respectively located at the upper and lower ends of the rear end face of the buffer plate 7, and the two buffer slide rails 12 are respectively located at the upper and lower ends of the front end face of the load-bearing plate 2. Specifically, with the above configuration, the sliding cooperation between the buffer sliders 13 and the buffer slide rails 12 achieves the effect of precise guiding movement, which can further reduce the end vibration of the buffer plate 7 and the cutting assembly, and avoid mechanical wear or component deformation caused by rigid collisions.

[0035] In this embodiment, the lifting drive assembly 4 includes a lifting drive component 14 and a lifting transmission screw 15. A lifting sleeve 16 is provided in the middle of the back side of the support plate 5. The lifting sleeve 16 is threaded onto the outer periphery of the lifting transmission screw 15. The lifting drive component 14 is mounted on the buffer plate 7. The output end of the lifting drive component 14 is drivenly connected to one end of the lifting transmission screw 15, and the other end of the lifting transmission screw 15 is rotatably connected to the buffer plate 7. Lifting sliders 17 are provided on both sides of the back side of the support plate 5, and lifting slide rails 18 are provided on both sides of the front side of the buffer plate 7. The lifting sliders 17 and lifting slide rails 18 correspond one-to-one and are slidably connected. The lifting drive component 14 is a servo motor. Specifically, under the above configuration, the support plate 5 uses the cooperation of the lifting sliders 17 and the lifting slide rails 18 to guide and stabilize movement. The lifting drive component 14 drives the lifting transmission screw 15 to rotate, which in turn moves the lifting sleeve 16 up and down, thereby moving the support plate 5 up and down.

[0036] In this embodiment, the lifting drive assembly 4 further includes a lifting bracket 19, which is mounted on the upper end of the buffer plate 7. The lifting drive component 14 is mounted on the lifting bracket 19, and a lifting buffer cylinder 20 is mounted on the bottom of the lifting bracket 19. The output end of the lifting buffer cylinder 20 is connected to the support plate 5. Specifically, the lifting buffer cylinder 20 also serves to reduce shock and provide cushioning.

[0037] In this embodiment, the magnetic levitation horizontal alignment device further includes a template assembly 21. The template assembly 21 includes a front template 22, a rear template base 23, a rear fixed base 24, and a template adjustment cylinder 25. The rear template base 23 and the template adjustment cylinder 25 are respectively installed at the front end of the rear fixed base 24. The rear end of the rear fixed base 24 is detachably connected to the buffer plate 7. The front template 22 is vertically slidably disposed on the front end face of the rear template base 23. The template adjustment cylinder 25 is connected to the front template 22. A template slider 26 is provided on the rear end face of the front template 22, and a template slide rail 27 is provided on the front end face of the rear template base 23. The template slider 26 and the template slide rail 27 are slidably connected. Specifically, the template slide rail 27 is installed on the rear template base 23, and the template slide rail 27 is fixed together with the buffer plate 7 by the rear fixing seat 24. When the sheet metal passes the top of the front template 22, the front template 22 is subjected to a large impact force. The template adjusting cylinder 25 installed between the side of the front template 22 and the rear fixing seat 24 absorbs the energy of the impact force through internal buffering. The front template 22 reduces end vibration through the up and down buffering movement of the template slider 26, avoids mechanical wear or component deformation caused by rigid collision, and extends the service life of the equipment.

[0038] In this embodiment, a bracket 28 is mounted on the front end face of the tray 5, and a sliding mounting seat 29 is rotatably mounted on the bottom of the bracket 28. A limiting groove 30 is provided through the bracket 28, and limiting blocks 31 are respectively provided on both sides of the limiting groove 30. A positioning adjustment block 32 is provided on the upper end of the sliding mounting seat 29. The positioning adjustment block 32 slides through the limiting groove 30 and is located between the two limiting blocks 31. The cutting component is mounted on the bottom of the sliding mounting seat 29. Specifically, the limiting groove 30 is arc-shaped, and the position of the sliding mounting seat 29 can be adjusted by pulling the position of the positioning adjustment block 32. An arc-shaped guide block 33 is also provided on the upper end face of the sliding mounting seat 29, and an arc-shaped groove is provided on the lower end face of the bracket 28 to slide and connect with the arc-shaped guide block 33, which serves to limit the sliding. The limiting blocks 31 and the limiting groove 30 serve to limit the position. After the positioning adjustment block 32 is adjusted to the correct position, it can be fixed by screws, set screws, or locking pins for easy locking.

[0039] In this embodiment, the cutting assembly includes a connecting bracket 34, a third buffer cylinder 35, a cutting drive component, and a cutting blade. The cutting drive component is mounted on the bottom of the connecting bracket 34, and its output end is connected to the cutting blade. A linear guide rail 38 is mounted on the connecting bracket 34, and a linear slider 39 is provided at the bottom of the sliding mounting base 29. The linear slider 39 is slidably connected to the linear guide rail 38. The third buffer cylinder 35 is mounted on one side of the bottom of the sliding mounting base 29, and its output end is connected to the connecting bracket 34. Specifically, under the above configuration, the sliding mounting base 29 is rotatable, and the cutting assembly mounted on the bracket 28 can process the plate at multiple angles. When the cutting assembly is subjected to a large impact force, the third buffer cylinder 35 mounted on the slider mounting base absorbs this energy through internal buffering. The cutting assembly achieves left and right buffering movement through the cooperation of the linear slider 39 and the linear guide rail 38, reducing end vibration, avoiding mechanical wear or component deformation caused by rigid collision, and extending the service life of the equipment. In this embodiment, the cutting drive is a motor, which drives the cutting blade to rotate in order to cut off the excess edge banding at the front and rear ends of the plate.

[0040] Preferably, the driving mechanism in this embodiment includes a head-cutting drive and a tail-cutting drive. The head-cutting drive is used to drive the head-cutting mechanism 200 to move back and forth on the horizontal base 100, and the tail-cutting drive is used to drive the tail-cutting mechanism 300 to move back and forth on the horizontal base 100. Both the head-cutting drive and the tail-cutting drive are magnetic levitation linear motors.

[0041] Of course, the drive mechanism can also be a conventional cylinder or servo drive mechanism. In the embodiments of this application, it is preferred that both the head-cutting drive and the tail-cutting drive are magnetic levitation linear motors.

[0042] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any way. Although the present utility model has been disclosed above with reference to a preferred embodiment, it is not intended to limit the present utility model. Any person skilled in the art can make some changes or modifications to the above-disclosed technical content to create equivalent embodiments without departing from the scope of the present utility model. Any simple modifications, equivalent changes, and modifications made to the above embodiments based on the present utility model without departing from the scope of the present utility model shall fall within the scope of the present utility model.

Claims

1. A magnetic levitation horizontal alignment device, characterized in that: The device includes a horizontal base, a drive mechanism mounted on the horizontal base, a head cutting mechanism slidably mounted on the horizontal base, and a tail cutting mechanism slidably mounted on the horizontal base. The drive mechanism drives the head cutting mechanism and the tail cutting mechanism to move towards each other. The head cutting mechanism cuts the edge banding strip at the front end of the board, and the tail cutting mechanism cuts the edge banding strip at the rear end of the board. Both the head cutting mechanism and the tail cutting mechanism include a support base, a load-bearing plate mounted on the support base, a buffer assembly mounted on the front end of the load-bearing plate, a lifting drive assembly mounted on the buffer assembly, a tray slidably mounted on the buffer assembly, and a cutting assembly mounted on the tray. The support base is slidably mounted on the horizontal base, the lifting drive assembly drives the tray to move up and down, and the buffer assembly buffers and reduces the impact force of the cutting assembly during processing.

2. The magnetic levitation horizontal alignment device according to claim 1, characterized in that: The buffer assembly includes a buffer plate, a first buffer cylinder, and a second buffer cylinder. The output ends of the first buffer cylinder and the second buffer cylinder are arranged facing each other from left to right. The buffer plate is slidably disposed on the front end face of the load-bearing plate from left to right. The first buffer cylinder and the second buffer cylinder are respectively connected to the rear end face of the buffer plate.

3. The magnetic levitation horizontal alignment device according to claim 2, characterized in that: The front end face of the load-bearing plate is provided with a buffer slide rail, and the rear end face of the buffer plate is provided with a buffer slider, which is slidably connected to the buffer slide rail.

4. A magnetic levitation horizontal alignment device according to claim 2, characterized in that: The output end of the first buffer cylinder is connected to a first connecting block, which is detachably connected to one side of the load-bearing plate. The output end of the second buffer cylinder is connected to a second connecting block, which is detachably connected to the other side of the load-bearing plate.

5. A magnetic levitation horizontal alignment device according to claim 2, characterized in that: The lifting drive assembly includes a lifting drive component and a lifting transmission screw. A lifting sleeve block is provided in the middle of the back side of the pallet. The lifting sleeve block is threaded onto the outer periphery of the lifting transmission screw. The lifting drive component is mounted on the buffer plate. The output end of the lifting drive component is drivenly connected to one end of the lifting transmission screw, and the other end of the lifting transmission screw is rotatably connected to the buffer plate.

6. A magnetic levitation horizontal alignment device according to claim 2, characterized in that: The back of the pallet is provided with lifting sliders on both sides, and the front side of the buffer plate is provided with lifting rails on both sides. The lifting sliders correspond one-to-one with the lifting rails, and the lifting sliders are slidably connected to the lifting rails.

7. A magnetic levitation horizontal alignment device according to claim 2, characterized in that: The magnetic levitation horizontal alignment device also includes a template assembly, which includes a front template, a rear template base, a rear fixed base, and a template adjustment cylinder. The rear template base and the template adjustment cylinder are respectively installed at the front end of the rear fixed base. The rear end of the rear fixed base is detachably connected to the buffer plate. The front template is vertically slidably disposed on the front end face of the rear template base. The template adjustment cylinder is connected to the front template. A template slider is provided on the rear end face of the front template, and a template slide rail is provided on the front end face of the rear template base. The template slider is slidably connected to the template slide rail.

8. A magnetic levitation horizontal alignment device according to claim 2, characterized in that: The front end of the tray is equipped with a bracket, and the bottom of the bracket is rotatably provided with a sliding mounting seat. The bracket is provided with a limiting groove, and limiting blocks are provided on both sides of the limiting groove. The upper end of the sliding mounting seat is provided with a positioning adjustment block, which slides through the limiting groove and is located between the two limiting blocks. The cutting component is installed at the bottom of the sliding mounting seat.

9. A magnetic levitation horizontal alignment device according to claim 8, characterized in that: The cutting assembly includes a connecting bracket, a third buffer cylinder, a cutting drive component, and a cutting blade. The cutting drive component is mounted on the bottom of the connecting bracket, and its output end is connected to the cutting blade. A linear guide rail is mounted on the connecting bracket, and a linear slider is provided at the bottom of the sliding mounting base. The linear slider is slidably connected to the linear guide rail. The third buffer cylinder is mounted on one side of the bottom of the sliding mounting base, and its output end is connected to the connecting bracket.

10. A magnetic levitation horizontal alignment device according to claim 1, characterized in that: The drive mechanism includes a head-cutting drive and a tail-cutting drive. The head-cutting drive is used to drive the head-cutting mechanism to move back and forth on the horizontal base, and the tail-cutting drive is used to drive the tail-cutting mechanism to move back and forth on the horizontal base. Both the head-cutting drive and the tail-cutting drive are magnetic levitation linear motors.