Ion release mechanism based on edge band surface treatment

By designing an ion release mechanism including a transmission shaft, a rotor and a sliding arm, the problem that the ion release mechanism in the prior art is difficult to match the movement speed and range, and the comprehensive coverage of edge sealing strips of different widths is achieved, and processing efficiency and operation convenience are improved.

CN120038162AInactive Publication Date: 2025-05-27GUANGDONG GREENO IND CO LTD
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Patent Information

Application Number
CN202510216886.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-26
Publication Date
2025-05-27
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

When the existing ion release mechanism handles edge strips of different widths, the horizontal transverse speed is difficult to match the moving range, resulting in incomplete coverage of the outer end surface of the edge strip, reducing processing efficiency, and requiring staff to adjust the operating speed of the conveying mechanism to increase operational complexity.

Method used

An ion release mechanism including a base, conveyor wheel, equipment frame, sliding frame and ion releaser is designed. Through the cooperation of the transmission shaft, rotor, sliding arm and driven rod, the horizontal movement range and speed of the ion releaser are adjusted to ensure full coverage of edge sealing strips of different widths.

Benefits of technology

The ion releaser is matched with the range of the movement speed and range in the horizontal direction, ensuring the comprehensive coverage and processing of edge strips of different widths, making it easy to operate and use, and at the same time improving the efficiency of edge strip processing.

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Abstract

The invention discloses an ion release mechanism based on edge band surface treatment, the ion release mechanism comprises a base and conveying wheels mounted on the base, an equipment frame is fixedly arranged on the base through a frame plate, a sliding connection frame is slidably arranged at the side end of the equipment frame, an ion releaser is mounted on the sliding connection frame, and the ion releaser is connected with the equipment frame. The inner side of the rotating disc is slidably connected with a sliding arm controlling the strip-shaped frame to reciprocate in the vertical direction, and the transmission component controls the sliding sleeve to transversely move and meanwhile adjusts the operation power of the first motor. According to the device, firstly, by controlling rotation of the rotary sleeve, the moving range of the strip-shaped frame in the vertical direction is controlled, then the moving range of the ion releaser in the horizontal direction is controlled, machining of edge sealing strips with different widths is met, secondly, by arranging the transmission component, rotation of the rotary sleeve and transverse movement of the push button are controlled at the same time, and machining efficiency is improved. The ion release mechanism can cover and process the edge bands with different widths, so that the processing efficiency of the edge bands is guaranteed while the ion release mechanism is convenient to operate and use.
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Description

Technical Field

[0001] The present invention relates to the technical field of edge banding surface treatment equipment, and particularly to an ion release mechanism based on edge banding surface treatment. Background Art

[0002] Edge banding is a material for protecting, decorating, and beautifying the cross-section of furniture boards and other boards. It is divided into wood edge banding, PVC edge banding, melamine edge banding, etc., and is the most basic lining material in cabinets.

[0003] By using an ion release mechanism for surface treatment of the edge banding, the residual dust on the surface of the edge banding can be reduced, which is beneficial to the adhesion of the colloid on the surface of the edge banding. To ensure that the ion release mechanism can process edge bandings with different widths, during the transportation of the edge banding, it is necessary to control the reciprocating horizontal translation of the ion release mechanism to achieve covering processing of the surface of the edge banding. In the prior art, the horizontal translation speed of the ion release mechanism is difficult to match its horizontal movement range, resulting in the speed of the small-range horizontal reciprocating movement of the ion release mechanism being basically the same as its speed of large-range horizontal reciprocating movement. When an edge banding with a large width is being transported and processed, due to the slow horizontal movement speed of the ion release mechanism, its outer end surface coverage of the edge banding will be incomplete. The staff can only adjust the running speed of the conveying mechanism to reduce the conveying speed of the edge banding, so that after the ion release mechanism makes a horizontal reciprocating movement in one cycle, it can still cover and process the surface of the edge banding during transportation. This adjustment method not only reduces the processing efficiency of the edge banding, but also requires the staff to control the running speed of the conveying mechanism to a certain extent, so that the transmission rate of the conveying mechanism matches the width of the edge banding, thus there is a problem that is not conducive to the operation and use of the staff.

[0004] Based on the above defects, an ion release mechanism based on edge banding surface treatment is provided. Summary of the Invention

[0005] The purpose of the present invention is to propose an ion release mechanism based on edge banding surface treatment in order to solve the above problems.

[0006] To achieve the above purpose, the present invention adopts the following technical solution: An ion release mechanism based on edge banding surface treatment, including a base and a conveying wheel installed on the base. An equipment frame is fixedly provided on the base through a frame plate. A sliding frame is slidably arranged at the side end of the equipment frame, and an ion release device is installed on the sliding frame.

[0007] A horizontal plate is slidably arranged inside the equipment rack. A driven rod penetrating through the equipment rack is fixedly installed on the back of the sliding connection rack. A horizontal groove for the driven rod to penetrate and slide is formed on the equipment rack. A strip-shaped groove for the driven rod to slide is formed inside the horizontal plate;

[0008] A strip-shaped rack is slidably arranged on the back of the equipment rack. A support rod penetrating through the equipment rack is fixedly installed between the horizontal plate and the strip-shaped rack. A vertical groove for the support rod to penetrate and slide is formed on the equipment rack;

[0009] A shell cover is fixedly installed on the back of the equipment rack. A transmission shaft is rotatably connected to the inner end of the shell cover. A first motor for controlling the rotation of the transmission shaft is installed at the outer end of the shell cover. A rotating disk is fixedly installed at the output end of the transmission shaft. A sliding arm for controlling the vertical reciprocating movement of the strip-shaped rack is slidably connected to the inner side of the rotating disk;

[0010] A sliding sleeve is slidably sleeved on the outer side of the transmission shaft. A support arm is rotatably connected between the sliding sleeve and the sliding arm. A transmission component for controlling the movement of the sliding sleeve along the transmission shaft is arranged on the shell cover. While controlling the lateral movement of the sliding sleeve, the transmission component adjusts the operating power of the first motor.

[0011] Preferably, rollers for cooperating with the lateral movement of the sliding connection rack are installed on the shell cover. A track for the rollers to roll is formed on the equipment rack.

[0012] Preferably, a side connection rack is fixedly installed at the side end of the horizontal plate. A vertical rod for cooperating with the sliding of the side connection rack is fixedly installed inside the equipment rack.

[0013] Preferably, a convex block is fixedly installed at the inner end of the sliding arm. A sliding track for the convex block to slide is formed inside the strip-shaped rack.

[0014] Preferably, the transmission component includes a rotary connection rack rotatably connected to the outer side of the sliding sleeve. A shaft rod is fixedly installed at the side end of the rotary connection rack. A rotary sleeve for acting on the shaft rod is rotatably connected to the inner end of the shell cover. A component for controlling the rotation of the rotary sleeve is arranged on the shell cover.

[0015] Preferably, a protrusion is formed at the inner end of the rotary sleeve. A spiral sliding track for the protrusion to slide is formed inside the shaft rod.

[0016] Preferably, a support is fixedly installed at the side end of the rotary sleeve. A cross bar is fixedly installed at the outer end of the support. An arc-shaped groove for the cross bar to penetrate and slide is formed on the shell cover.

[0017] Preferably, the component for controlling the rotation of the rotary sleeve includes a slider slidably arranged on the outer side of the shell cover and a combined part for controlling the horizontal movement of the slider. A transmission rack is fixedly installed at the upper end of the slider. A sliding groove for the cross bar to slide is formed inside the transmission rack.

[0018] Preferably, the assembly for controlling the horizontal movement of the slider includes a baffle fixed to the outer end of the housing cover. A screw rod is rotatably connected to the inner side of the baffle, and the screw rod is in threaded connection with the slider. A second motor for controlling the rotation of the screw rod is installed at the outer end of the baffle.

[0019] Preferably, a control panel is installed at the outer end of the housing cover. A push button for controlling the operating power of the first motor is slidably installed in the control panel, and the push button is embedded in a sliding groove.

[0020] In summary, due to the adoption of the above technical solutions, the beneficial effects of the present invention are as follows:

[0021] 1. In this application, by controlling the rotation of the rotating sleeve, the position of the sliding sleeve on the transmission shaft is adjusted, thereby adjusting the distance between the convex block and the axis of the rotating disc. When the sliding arm rotates with the rotating disc, the range of the vertical movement of the strip-shaped frame is controlled, and then the purpose of adjusting the horizontal movement range of the ion release device is achieved, meeting the processing requirements for edge strips of different widths.

[0022] 2. In this application, through the arrangement of the transmission components, the rotation of the rotating sleeve and the lateral movement of the push button are controlled simultaneously, so that the speed of the reciprocating horizontal movement of the ion release mechanism is adapted to the distance of its reciprocating horizontal movement. Thus, when edge strips of different widths are transported by a conveying mechanism at the same speed, the ion release mechanism can cover and process edge strips of different widths, facilitating the operation of the staff and ensuring the efficiency of edge strip processing. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 Shows the external structural schematic diagram of the plasma release mechanism provided by an embodiment of the present invention;

[0024] Figure 2 Shows the rear sectional view of the equipment rack provided by an embodiment of the present invention;

[0025] Figure 3 Shows the rear structural schematic diagram of the housing cover provided by an embodiment of the present invention;

[0026] Figure 4 Shows the inner structural schematic diagram of the housing cover provided by an embodiment of the present invention;

[0027] Figure 5 Shows the side sectional view of the equipment rack provided by an embodiment of the present invention.

[0028] LEGEND DESCRIPTION:

[0029] 1. Base; 2. Conveyor wheel; 3. Shelf board; 4. Equipment rack; 401. Horizontal groove; 402. Vertical groove; 5. Sliding connection rack; 6. Ion release device; 7. Roller; 8. Driven rod; 9. Horizontal board; 901. Strip-shaped groove; 10. Support rod; 11. Vertical rod; 12. Side connection rack; 13. Strip-shaped rack; 1301. Slideway; 14. Housing cover; 1401. Arc-shaped groove; 15. Transmission shaft; 16. First motor; 17. Rotary disk; 18. Slide arm; 19. Slide sleeve; 20. Support arm; 21. Rotary connection rack; 22. Shaft rod; 2201. Spiral slideway; 23. Rotary sleeve; 2301. Protrusion; 24. Bracket; 25. Cross bar; 26. Baffle; 27. Screw; 28. Second motor; 29. Slide block; 30. Transmission rack; 3001. Slide groove; 31. Control panel; 32. Push button; 33. Convex block. Detailed implementation manner

[0030] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0031] Please refer to Figures 1 - 5 , the present invention provides a technical solution: an ion release mechanism for edge banding surface treatment, including a base 1 and a conveyor wheel 2 installed on the base 1. The equipment rack 4 is fixedly provided on the base 1 through the shelf board 3. A sliding connection rack 5 is slidably arranged at the side end of the equipment rack 4, and an ion release device 6 is installed on the sliding connection rack 5. The edge banding is laid on the conveyor wheel 2, and the conveyor wheel 2 transports the edge banding. When the edge banding is transported past the ion release device 6, the ion release device 6 will release ions to the end face of the edge banding, realizing the cleaning of the surface of the edge banding, which is beneficial to the adhesion of the colloid on the surface of the edge banding.

[0032] A horizontal board 9 is slidably arranged inside the equipment rack 4. A driven rod 8 penetrating through the equipment rack 4 is fixedly provided on the back of the sliding connection rack 5. A horizontal groove 401 for the driven rod 8 to penetrate and slide is formed on the equipment rack 4. A strip-shaped groove 901 for the driven rod 8 to slide is formed inside the horizontal board 9. When the horizontal board 9 reciprocates in the vertical direction, the driven rod 8 fixed on the equipment rack 4 will slide along the strip-shaped groove 901. Through the pressing transmission of the strip-shaped groove 901 on the driven rod 8, the sliding connection rack 5 fixed to the driven rod 8 is driven to drive the ion release device 6 to reciprocate horizontally, realizing the covering treatment of the surface of the edge banding.

[0033] A strip-shaped rack 13 is slidably arranged on the back of the equipment rack 4. A support rod 10 passing through the equipment rack 4 is fixedly arranged between the horizontal plate 9 and the strip-shaped rack 13. A vertical groove 402 is formed on the equipment rack 4 for the support rod 10 to pass through and slide. The strip-shaped rack 13 will drive the horizontal plate 9 to move synchronously in the vertical direction through the support rod 10. During this process, the support rod 10 connecting the horizontal plate 9 and the strip-shaped rack 13 will slide along the vertical groove 402.

[0034] A housing 14 is fixedly arranged on the back of the equipment rack 4. A transmission shaft 15 is rotatably connected to the inner end of the housing 14. A first motor 16 for controlling the rotation of the transmission shaft 15 is installed at the outer end of the housing 14. A rotating disk 17 is fixedly arranged at the output end of the transmission shaft 15. A sliding arm 18 for controlling the strip-shaped rack 13 to reciprocate in the vertical direction is slidably connected to the inner side of the rotating disk 17. Start the first motor 16 to control the rotation of the transmission shaft 15, so that the rotating disk 17 fixed to the transmission shaft 15 drives the sliding arm 18 to rotate. During the rotation of the sliding arm 18, the convex block 33 will slide along the slideway 1301. Through the pressing transmission of the convex block 33 on the slideway 1301, the strip-shaped rack 13 is driven to reciprocate in the vertical direction.

[0035] A sliding sleeve 19 is slidably sleeved on the outer side of the transmission shaft 15. A support arm 20 is rotatably connected between the sliding sleeve 19 and the sliding arm 18. A transmission component for controlling the sliding sleeve 19 to move along the transmission shaft 15 is arranged on the housing 14. While the transmission component controls the sliding sleeve 19 to move horizontally, it adjusts the operating power of the first motor 16. During the sliding process of the sliding sleeve 19, it will pull the sliding arm 18 through the support arm 20, driving the sliding arm 18 to slide along the rotating disk 17, adjusting the distance between the convex block 33 and the axis of the rotating disk 17, so as to achieve the purpose of adjusting the reciprocating movement range of the strip-shaped rack 13. By adjusting the reciprocating movement range of the strip-shaped rack 13 in the vertical direction, the reciprocating movement range of the ion release device 6 fixed to the sliding connection rack 5 in the horizontal direction is adjusted, so that the action range of the ion release device 6 can cover edge strips of different widths.

[0036] Specifically, as Figures 1 - 5 shown, a roller 7 for cooperating with the sliding connection rack 5 to move horizontally is installed on the housing 14. A track for cooperating with the roller 7 to roll is formed on the equipment rack 4. When the sliding connection rack 5 drives the ion release device 6 to reciprocate in the horizontal direction, the roller 7 installed on the sliding connection rack 5 will roll along the equipment rack 4, which is beneficial to the transmission of the sliding connection rack 5.

[0037] A side connection rack 12 is fixedly arranged at the side end of the horizontal plate 9. A vertical rod 11 for cooperating with the side connection rack 12 to slide is fixedly arranged inside the equipment rack 4. When the horizontal plate 9 moves in the vertical direction, the side connection rack 12 fixed to the horizontal plate 9 will slide along the vertical rod 11. Through the sliding cooperation between the side connection rack 12 and the vertical rod 11, the stability of the horizontal plate 9 moving in the vertical direction is ensured.

[0038] Specifically, as Figure 4 and Figure 5As shown, a convex block 33 is fixedly provided at the inner end of the sliding arm 18, and a sliding track 1301 for the convex block 33 to slide is formed inside the strip-shaped frame 13; when the sliding arm 18 rotates with the rotating disk 17, the convex block 33 fixed on the sliding arm 18 will drive the strip-shaped frame 13 to reciprocate vertically by acting on the sliding track 1301.

[0039] Specifically, as Figures 3 - 5 shown, the transmission component includes a rotary connection frame 21 rotatably connected to the outside of the sliding sleeve 19. A shaft rod 22 is fixedly provided at the side end of the rotary connection frame 21. A rotary sleeve 23 for acting on the shaft rod 22 is rotatably connected to the inner end of the housing cover 14. A component for controlling the rotation of the rotary sleeve 23 is provided on the housing cover 14; a protrusion 2301 is formed at the inner end of the rotary sleeve 23, and a spiral sliding track 2201 for the protrusion 2301 to slide is formed inside the shaft rod 22; by controlling the rotation of the rotary sleeve 23, the protrusion 2301 fixed to the rotary sleeve 23 slides along the spiral sliding track 2201, and through the pressing transmission of the protrusion 2301 on the spiral sliding track 2201, the rotary connection frame 21 fixed to the shaft rod 22 drives the sliding sleeve 19 to move horizontally.

[0040] A support 24 is fixedly provided at the side end of the rotary sleeve 23, and a cross bar 25 is fixedly provided at the outer end of the support 24. An arc-shaped groove 1401 for the cross bar 25 to penetrate and slide is formed on the housing cover 14; the component for controlling the rotation of the rotary sleeve 23 includes a slider 29 slidably provided on the outside of the housing cover 14, and a combined part for controlling the horizontal movement of the slider 29. A transmission frame 30 is fixedly provided at the upper end of the slider 29, and a sliding groove 3001 for the cross bar 25 to slide is formed inside the transmission frame 30; when the slider 29 drives the transmission frame 30 to move horizontally, the transmission frame 30 will act on the cross bar 25 through the sliding groove 3001, driving the cross bar 25 to slide along the arc-shaped groove 1401, thereby realizing the control of the rotation of the rotary sleeve 23.

[0041] The combined part for controlling the horizontal movement of the slider 29 includes a baffle 26 fixedly provided at the outer end of the housing cover 14. A screw rod 27 is rotatably connected to the inner side of the baffle 26, and the screw rod 27 is in threaded connection with the slider 29. A second motor 28 for controlling the rotation of the screw rod 27 is installed at the outer end of the baffle 26; by starting the second motor 28 to control the rotation of the screw rod 27, the slider 29 in threaded connection with the screw rod 27 drives the transmission frame 30 to move horizontally.

[0042] Specifically, as Figure 3 and Figure 5As shown, a control panel 31 is installed at the outer end of the housing cover 14. A push knob 32 for controlling the operating power of the first motor 16 is slidably installed in the control panel 31, and the push knob 32 is embedded in the chute 3001. The control panel 31 uses the existing method of adjusting the gear by sliding the push knob 32 to adjust the current amount by adjusting the resistance size, so as to achieve the purpose of adjusting the operating power of the first motor 16. When the transmission frame 30 moves horizontally, it will act on the push knob 32 through the chute 3001 to adjust the operating power of the first motor 16, so that the operating speed of the first motor 16 is associated with the horizontal movement range of the sliding connection frame 5. The larger the horizontal movement range of the ion release device 6, the faster the rotation speed of the control dial 17 of the first motor 16. When the horizontal movement range of the ion release device 6 is smaller, the rotation speed of the control dial 17 of the first motor 16 slows down accordingly, which is beneficial to the overall coverage of edge bands with different widths during the conveying process, and when treating the surface of the wide-edge band, the corresponding treatment speed can be maintained to ensure the efficiency of the surface processing of the edge band.

[0043] The above description of the embodiments enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be obvious to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention will not be limited to these embodiments shown herein, but rather to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. An ion release mechanism based on edge strip surface treatment, comprising a base (1) and a conveying wheel (2) mounted on the base (1), characterized in that: The base (1) is fixedly provided with an equipment frame (4) via a frame plate (3); a sliding frame (5) is slidably provided at a side end of the equipment frame (4); and an ion releaser (6) is installed on the sliding frame (5); The equipment frame (4) is internally provided with a horizontal plate (9) for sliding, the back of the sliding frame (5) is fixedly provided with a driven rod (8) penetrating the equipment frame (4), the equipment frame (4) is formed with a horizontal groove (401) for cooperating with the driven rod (8) to slide through, and the interior of the horizontal plate (9) is formed with a strip groove (901) for cooperating with the driven rod (8) to slide; A strip frame (13) is slidably provided on the back of the equipment frame (4); a support rod (10) penetrating the equipment frame (4) is fixedly provided between the horizontal plate (9) and the strip frame (13); and a vertical groove (402) is formed on the equipment frame (4) to cooperate with the support rod (10) to slide through. A shell cover (14) is fixedly provided on the back of the equipment frame (4), the inner end of the shell cover (14) is rotatably connected to a transmission shaft (15), the outer end of the shell cover (14) is installed with a first motor (16) for controlling the rotation of the transmission shaft (15), a rotary disk (17) is fixedly provided on the output end of the transmission shaft (15), and a sliding arm (18) for controlling the reciprocating movement of the strip frame (13) in the vertical direction is slidably connected to the inner side of the rotary disk (17); The outer sliding sleeve of the transmission shaft (15) is provided with a sliding sleeve (19), and a support arm (20) is rotatably connected between the sliding sleeve (19) and the sliding arm (18). The shell cover (14) is provided with a transmission component for controlling the sliding sleeve (19) to move along the transmission shaft (15), and the transmission component controls the lateral movement of the sliding sleeve (19) and adjusts the operating power of the first motor (16) at the same time.

2. The ion release mechanism based on the surface treatment of the edge banding according to claim 1, characterized in that: The shell cover (14) is provided with a roller (7) which cooperates with the sliding frame (5) to move laterally, and the equipment frame (4) is provided with a track which cooperates with the rolling of the roller (7).

3. The ion release mechanism based on the surface treatment of the edge banding according to claim 1, characterized in that: A side frame (12) is fixedly provided at the side end of the transverse plate (9), and a vertical rod (11) that cooperates with the side frame (12) to slide is fixedly provided inside the equipment frame (4).

4. The ion release mechanism based on the surface treatment of the edge banding according to claim 1, characterized in that: A protrusion (33) is fixedly provided at the inner end of the sliding arm (18), and a slideway (1301) for cooperating with the protrusion (33) to slide is formed inside the strip frame (13).

5. The ion release mechanism based on the surface treatment of the edge banding according to claim 1, characterized in that: The transmission component comprises a rotating frame (21) rotatably connected to the outside of the sliding sleeve (19), a shaft (22) is fixedly arranged at the side end of the rotating frame (21), a rotating sleeve (23) acting on the shaft (22) is rotatably connected to the inner end of the shell cover (14), and a component for controlling the rotation of the rotating sleeve (23) is arranged on the shell cover (14).

6. The ion release mechanism based on the surface treatment of the edge banding according to claim 5, characterized in that: A protrusion (2301) is formed at the inner end of the rotary sleeve (23), and a spiral slide rail (2201) that slides in cooperation with the protrusion (2301) is formed inside the shaft rod (22).

7. The ion release mechanism based on the surface treatment of the edge banding according to claim 6, characterized in that: A bracket (24) is fixedly provided at the side end of the rotary sleeve (23), a cross bar (25) is fixedly provided at the outer end of the bracket (24), and an arc groove (1401) is formed on the shell cover (14) to cooperate with the cross bar (25) to slide through.

8. The ion release mechanism based on the surface treatment of the edge banding according to claim 7, characterized in that: The assembly for controlling the rotation of the rotary sleeve (23) comprises a slider (29) slidably arranged on the outside of the shell cover (14), and a joint member for controlling the horizontal movement of the slider (29). A transmission frame (30) is fixedly arranged on the upper end of the slider (29), and a sliding groove (3001) is formed inside the transmission frame (30) for cooperating with the sliding of the cross bar (25).

9. The ion release mechanism based on the surface treatment of the edge banding according to claim 8, characterized in that: The assembly for controlling the horizontal movement of the slider (29) comprises a baffle (26) fixedly arranged at the outer end of the housing (14); a screw rod (27) is rotatably connected to the inner side of the baffle (26); the screw rod (27) is screwed to the slider (29); and a second motor (28) for controlling the rotation of the screw rod (27) is installed at the outer end of the baffle (26).

10. The ion release mechanism based on the surface treatment of the edge banding according to claim 9, characterized in that: The outer end of the shell cover (14) is installed with a control panel (31), and a push knob (32) for controlling the operating power of the first motor (16) is slidably installed in the control panel (31), and the push knob (32) is embedded in the slide groove (3001).