Lock groove processing machine for door plate preparation
The high-pressure airflow cleaning and clamping mechanism controlled by infrared sensors solves the problem of dust accumulation in the slotting machine, achieving efficient cleaning and plate fixing, and improving production efficiency and processing accuracy.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- WANHUA HEXIANG DOOR IND (HUAIYUAN) CO LTD
- Filing Date
- 2025-12-27
- Publication Date
- 2026-05-08
AI Technical Summary
Existing slotting machines have difficulty cleaning up dust accumulation during drilling in real time, resulting in low production efficiency and dust spread. Manual dust removal is also uncontrollable.
Infrared sensors are used to detect the penetration depth of the drill bit into the plate, and the blower is activated to start high-pressure airflow to clean up the dust. The airbag ring and nozzle combination structure realizes automated dust removal, and the clamping plate and material clamping mechanism ensure that the plate is fixed and avoids displacement.
It enables real-time dust removal during the drilling process, improving production efficiency, preventing dust diffusion, and ensuring processing accuracy and installation fit.
Smart Images

Figure CN121989328A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of door panel manufacturing technology, specifically to a lock groove processing machine for door panel manufacturing. Background Technology
[0002] In the field of door panel manufacturing, the lock groove processing machine is a core piece of equipment used to process the grooves and through holes required for lock installation on the surface or side of door panels, especially those made of particleboard. Particleboard is widely used in door panel production due to its low cost and uniform material. However, its internal fiber structure is loose, which easily generates a large amount of wood chips and dust during the drilling process in the lock groove processing.
[0003] To address the aforementioned issues, the industry largely relies on manual dust removal, such as having operators use hand brushes or portable blowers to clean the equipment surface and processing area during processing breaks.
[0004] However, the above-mentioned conventional methods still have obvious defects and are difficult to meet the needs of efficient slotting processing: on the one hand, manual dust removal cannot achieve real-time cleaning during the processing, and the operation of the equipment must be stopped, which not only interrupts the processing flow and reduces production efficiency, but also the airflow intensity of the portable blower is uncontrollable, which can easily cause fine dust to spread into the equipment.
[0005] Therefore, in order to address the existing shortcomings, we conducted research and improvements and proposed a lock groove processing machine for door panel manufacturing. Summary of the Invention
[0006] The purpose of this invention is to provide a lock groove processing machine for door panel manufacturing, so as to solve the problems mentioned in the background art.
[0007] To achieve the above objectives, the present invention provides the following technical solution: a lock groove processing machine for door panel preparation, comprising: a rear frame, a drive shaft provided at the front end of the rear frame, a vertical motor provided on one side of the front of the rear frame, a drive shaft provided at one end of the vertical motor, a three-jaw chuck provided at one end of the drive shaft, and a drill bit provided at one end of the three-jaw chuck. An electric turntable is provided at the lower end of the front of the frame, and a transverse moving shaft frame is provided at the top of the electric turntable. The transverse moving shaft frame is composed of a throttle, a lead screw, an adapter bearing and a base plate. A fixing clamp is provided at one end of the top of the transverse moving shaft frame near the rear frame, and a sliding clamp is provided at the other end of the top of the transverse moving shaft frame. A plate is provided between the sliding clamp and the fixed clamp. A front frame plate is provided at one end of the plate near the rear frame. Gas-generating mechanisms are provided on both sides of the front of the front frame plate. The gas-generating mechanism includes a micro motor, which is located at the middle of the upper part of the front of the front frame plate. A material clamping mechanism is provided at the lower end of the front side of the front frame plate. The material clamping mechanism includes a vertical shaft, which is located in the middle of the front side of the front frame plate. An auxiliary mechanism is provided on the side of the top of the transverse moving shaft frame near the front frame plate. The auxiliary mechanism includes a shifting seat plate, which is located on both sides of the top of the electric turntable. A dust removal mechanism is provided on the upper outer side of the electric turntable. The dust removal mechanism includes an airbag ring, which wraps around the upper outer side of the electric turntable.
[0008] Furthermore, the gas generation mechanism also includes a side-mounted gas supply pipe, an external sealing cylinder, a gas distribution pipe, an infrared sensor body, a rectangular gas chamber, and a fan. The infrared sensor body is located on the back of the micro motor, and the fan is located at the front end of the micro motor. An external sealing cylinder is fitted around the fan, and gas distribution pipes are located on both sides of the top of the external sealing cylinder. The rectangular gas chamber is symmetrically arranged on both sides of the upper end of the front frame plate. A side-mounted gas supply pipe is located on one side of the rectangular gas chamber, and a gas distribution pipe is located on the front of the rectangular gas chamber.
[0009] Furthermore, the infrared sensor body is used to emit infrared light toward the mating area between the drill bit and the plate to detect the degree of penetration between the drill bit and the plate.
[0010] Furthermore, the blower is used to perform preset working actions. The signal output terminal of the infrared sensor body is electrically connected to the signal input terminal of the blower. The infrared sensor body transmits the detected penetration degree signal to the blower. The infrared sensor body determines whether the drill bit has reached the preset penetration threshold based on the penetration degree signal. If it has, it controls the blower to start and perform the work.
[0011] Furthermore, the clamping mechanism also includes a stop bar, a convex arc plate, a lightweight toothed roller, a lower horizontal rack, an upper vertical rack, a clamping plate, a second spring, a horizontal shaft, a horizontal frame plate, and a first spring. The horizontal frame plate is sleeved on the outside of the vertical shaft, and the first spring is sleeved on the lower end of the outside of the horizontal frame plate. The horizontal shaft is horizontally arranged at the front end of the inner side of the horizontal frame plate. The clamping plate is symmetrically arranged in the middle of the horizontal shaft, and the second spring is sleeved on one end of the clamping plate. The convex arc plate is symmetrically arranged on the outside of the horizontal frame plate, and the upper vertical rack is arranged on one end of the convex arc plate. The lightweight toothed roller is arranged outside the fixed clamping block. The lower horizontal rack is arranged at the bottom of the lightweight toothed roller, and a stop bar is arranged on one end of the lower horizontal rack. The back of the lower horizontal rack is also provided with a matching sleeve, a sliding tube, and a matching spring. The lower horizontal rack and the matching sleeve are fixedly connected, and the matching sleeve and the sliding tube form a sliding structure.
[0012] Furthermore, a sliding structure is formed between the horizontal frame plate and the vertical axis, and a sliding structure is formed between the clamping piece and the horizontal frame plate.
[0013] Furthermore, the auxiliary mechanism also includes an arc-shaped push plate, a third spring, a slide bar, an inclined locking plate, a built-in rotating plate, and a vertical bar. The slide bar is sleeved on the outside of the shifting seat plate. A third spring is provided at the middle of one end of the slide bar and the top of the shifting seat plate. A vertical bar is provided at one end of the slide bar. An inclined locking plate is provided on the front of the vertical bar. A built-in rotating plate is provided on the inner side of the inclined locking plate. An arc-shaped push plate is provided on one side of the slide bar. The arc-shaped push plate is composed of a vertical part and an arc-shaped part. The slide bar is composed of a concave-convex slider, a hollow frame, and an L-shaped plate.
[0014] Furthermore, the slider and the vertical bar are fixedly connected, the inclined plate has a hook-shaped cross-sectional structure, and the slider with concave and convex shapes forms a sliding structure with the displacement seat plate.
[0015] Furthermore, the dust removal mechanism also includes nozzles, and multiple nozzles are arranged in a ring at the top of the airbag ring, with a pressure valve provided between the nozzles and the airbag ring.
[0016] Furthermore, the inner side of the airbag ring is in contact with the arc-shaped push plate, and the center point of the airbag ring coincides with the center point of the sliding clamp block.
[0017] Compared with the prior art, the beneficial effects of the present invention are: 1. This invention uses an infrared sensor to emit infrared light towards the mating area between the drill bit and the plate to detect the degree of penetration. Its signal output is electrically connected to the fan signal input, transmitting the penetration signal to the fan to determine if the drill bit has reached a preset penetration threshold. If so, the fan is activated. The gas generated by the fan enters the rectangular air chamber through a distribution pipe, and then is introduced into the airbag ring through a side air supply pipe. After the airbag ring is inflated, it presses against the bottom of the plate. Simultaneously, the pressure valve between the nozzle and the airbag ring opens, and the nozzle sprays gas to remove dust from the transverse moving shaft and the outside of the plate. 2. This invention uses an upward-pulling horizontal frame plate to slide along the vertical axis to the top of the plate, and a pulling clamp to slide along the horizontal axis and adhere to the outside of the plate. A second spring and a first spring provide opposing forces to the clamp and the horizontal frame plate. When the horizontal frame plate moves, it drives the upper vertical rack to move, which in turn drives the lightweight toothed roller to rotate, causing the lower horizontal rack to slide along the slide tube. As the lower horizontal rack moves, it moves the abutment bar closer to and against the outside of the plate, thus achieving multiple fixations of the plate in conjunction with the clamp, preventing displacement of the plate during processing. 3. In this invention, when the airbag ring inflates, its inner edge abuts against the arc-shaped pusher. The arc-shaped pusher drives the concave-convex slider of the slide bar to slide along the shifting seat plate. The slide bar moves towards the plate body and drives the vertical bar. The vertical bar drives the inclined clamping plate to extend into the gap between the plate body and the shifting clamping block. The outer side of the bottom of the shifting seat plate abuts against the built-in rotating plate, causing it to rotate within the inclined clamping plate and face outwards from the plate body, forming a herringbone structure. This increases the connection strength between the plate body and the shifting clamping block. The third spring can assist the slide bar in resetting after it loses power. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the overall appearance structure of the lock groove processing machine used for door panel manufacturing according to the present invention; Figure 2 This invention relates to a lock groove processing machine for door panel manufacturing. Figure 1 A magnified structural diagram at point A; Figure 3 This is a schematic diagram of the lock groove processing machine used in door panel manufacturing from another axial perspective. Figure 4 This invention relates to a lock groove processing machine for door panel manufacturing. Figure 3 A magnified structural diagram at point B; Figure 5 This invention relates to a lock groove processing machine for door panel manufacturing. Figure 3 A magnified structural diagram at point C; Figure 6 This is a top view schematic diagram of the lock groove processing machine used in door panel manufacturing according to the present invention; Figure 7 This invention relates to a lock groove processing machine for door panel manufacturing. Figure 6 A magnified structural diagram at point D; Figure 8 This invention relates to a lock groove processing machine for door panel manufacturing. Figure 6 A magnified structural diagram at point E; Figure 9 This is a top view schematic diagram of the lock groove processing machine used in door panel manufacturing according to the present invention; Figure 10 This invention relates to a lock groove processing machine for door panel manufacturing. Figure 9 A magnified structural diagram at point F.
[0019] In the diagram: 1. Frame; 2. Vertical motor; 3. Drive shaft; 4. Rear frame; 5. Side air supply pipe; 6. Front frame plate; 7. Micro motor; 8. External sealing cylinder; 9. Air distribution pipe; 10. Plate; 11. Sliding clamp; 12. Horizontal moving shaft frame; 13. Electric turntable; 14. Drill bit; 15. First spring; 16. Horizontal frame plate; 17. Vertical shaft; 18. Horizontal shaft; 19. Second spring; 20. Clamping plate; 2 1. Three-jaw chuck; 22. Infrared sensor body; 23. Nozzle; 24. Airbag ring; 25. Arc-shaped push plate; 26. Shifting seat plate; 27. Third spring; 28. Sliding bar; 29. Fixing clamp; 30. Upper vertical rack; 31. Lower horizontal rack; 32. Lightweight toothed roller; 33. Rectangular air chamber; 34. Inclined clamping plate; 35. Built-in rotating plate; 36. Protruding arc plate; 37. Fan; 38. Abutment bar; 39. Vertical bar. Detailed Implementation
[0020] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0021] Example: like Figures 1 to 10 As shown, a lock groove processing machine for door panel preparation includes: a rear frame 4, a drive shaft 3 is provided at the front end of the rear frame 4, a vertical motor 2 is provided on one side of the front of the rear frame 4, a drive shaft 3 is provided at one end of the vertical motor 2, a three-jaw chuck 21 is provided at one end of the drive shaft 3, and a drill bit 14 is provided at one end of the three-jaw chuck 21. An electric turntable 13 is provided at the lower end of the front of the frame 1. A transverse moving shaft frame 12 is provided at the top of the electric turntable 13. The transverse moving shaft frame 12 is composed of a throttle, a lead screw, a matching bearing and a base plate. A fixing clamp 29 is provided at one end of the top of the transverse moving shaft frame 12 near the rear frame 4, and a sliding clamp 11 is provided at the other end of the top of the transverse moving shaft frame 12. A plate 10 is provided between the sliding clamp 11 and the fixed clamp 29. A front frame plate 6 is provided at one end of the plate 10 near the rear frame 4. Gas-control mechanisms are provided on both sides of the front of the front frame plate 6. The gas-control mechanism includes a micro motor 7, which is located at the middle of the upper part of the front of the front frame plate 6. A material clamping mechanism is provided at the lower end of the front side of the front frame plate 6. The material clamping mechanism includes a vertical shaft 17, which is located in the middle of the front side of the front frame plate 6. An auxiliary mechanism is provided on the side of the top of the transverse moving shaft frame 12 near the front frame plate 6. The auxiliary mechanism includes a shifting seat plate 26, which is located on both sides of the top of the electric turntable 13. A dust removal mechanism is provided on the upper outer side of the electric turntable 13. The dust removal mechanism includes an airbag ring 24, which wraps around the upper outer side of the electric turntable 13. The user places the plate 10 between the sliding clamp 11 and the fixed clamp 29. Since the transverse moving shaft frame 12 is composed of a throttle, a lead screw, an adapter bearing, and a base plate, the user rotates the throttle, which drives the lead screw to rotate. The adapter bearing is sleeved on the outside of the lead screw. When the lead screw rotates, the adapter bearing on its outside drives the sliding clamp 11 to move toward the fixed clamp 29. Then the sliding clamp 11 and the fixed clamp 29 clamp the plate 10. The vertical motor 2 is started again. The vertical motor 2 drives its external adapter gear to rotate. Then these adapter gears drive the drive shaft 3 to rotate. The drive shaft 3 drives the three-jaw chuck 21 and the drill bit 14 to rotate. The drill bit 14 begins to drill holes in the outside of the plate 10. When the electric turntable 13 is started, an adapter motor is installed on the outside of the electric turntable 13. The adapter motor drives the electric turntable 13 to rotate, so the electric turntable 13 will drive the transverse moving shaft frame 12 to rotate, thereby adjusting the angle at which the plate 10 is slotted.
[0022] Example 1: As Figures 1 to 10 As shown, the gas generation mechanism also includes a side gas supply pipe 5, an external sealing cylinder 8, a gas distribution pipe 9, an infrared sensor body 22, a rectangular gas chamber 33, and a fan 37. The infrared sensor body 22 is located on the back of the micro motor 7, and the fan 37 is located at the front end of the micro motor 7. The external sealing cylinder 8 is sleeved on the outside of the fan 37. The gas distribution pipes 9 are located on both sides of the top of the external sealing cylinder 8. The rectangular gas chamber 33 is symmetrically arranged on both sides of the upper end of the front frame plate 6. The side gas supply pipe 5 is located on one side of the rectangular gas chamber 33, and the gas distribution pipe 9 is located on the front of the rectangular gas chamber 33. The infrared sensor body 22 is used to emit infrared light toward the mating area between the drill bit 14 and the plate 10 to detect the degree of penetration between the drill bit 14 and the plate 10. The blower 37 is used to perform preset working actions. The signal output terminal of the infrared sensor body 22 is electrically connected to the signal input terminal of the blower 37. The infrared sensor body 22 transmits the detected penetration signal to the blower 37. The infrared sensor body 22 determines whether the drill bit 14 has reached the preset penetration threshold based on the penetration signal. If it has, it controls the blower 37 to start and perform the work. The dust removal mechanism also includes nozzles 23. Multiple nozzles 23 are arranged in a ring on the top of the airbag ring 24. A pressure valve is provided between the nozzles 23 and the airbag ring 24. The inner side of the airbag ring 24 is in contact with the arc-shaped pusher 25, and the center point of the airbag ring 24 coincides with the center point of the sliding clamp 11. When the slotting machine performs slotting drilling on the plate 10, the infrared sensor body 22 first enters the working state. Its emitting end continuously emits directional infrared light into the processing area between the drill bit 14 and the plate 10. After the infrared light is reflected by the outer wall of the drill bit and the inner wall of the hole in the plate, the sensor receiving end captures the reflected signal. By analyzing the intensity and phase change of the reflected signal, the infrared sensor body 22 can accurately calculate the depth of the drill bit 14 into the plate 10, and then determine whether the penetration degree of the two reaches the preset processing threshold. When the infrared sensor body 22 detects that the penetration degree meets the preset threshold, it will immediately convert the detection result into an electrical signal and transmit it to the control unit of the device. The control unit then sends a start command to the micro motor 7. The micro motor 7 starts to run as a power source. Its output shaft directly drives the fan 37 connected to the front end to rotate synchronously. At this time, the speed of the micro motor 7 will be stably output according to the preset processing parameters to ensure that the airflow intensity generated by the fan 37 matches the processing requirements and avoid the airflow being too strong or too weak, which will affect subsequent operations. After the blower 37 starts operating, a high-pressure airflow is formed inside the externally sealed cylinder 8. The externally sealed cylinder 8 can effectively prevent the airflow from spreading, so that the high-pressure airflow is concentrated and delivered to the rectangular air chambers 33 on both sides of the upper end of the front frame plate 6 through the air distribution pipes 9 on both sides of its top. The rectangular air chambers 33 play a role in stabilizing pressure and distributing the airflow. After stabilizing the airflow, it is evenly introduced into the airbag ring 24 on the outside of the electric turntable 13 through the side air supply pipe 5. As the airflow continues to be injected, the pressure inside the airbag ring 24 gradually increases and begins to swell. When the pressure reaches the preset value, the top of the airbag ring 24 rings out. The pressure valve connected to the nozzle 23 of the cloth opens automatically, and the inflated airbag ring 24 will press tightly against the bottom of the plate 10, providing additional vertical support for the plate and preventing the plate from shifting due to uneven force in the later stage of drilling. At the same time, the directional airflow ejected from the nozzle 23 will fully cover the lead screw, guide rail and machined surface of the transverse moving shaft 12, and blow away the wood chips and dust generated during the drilling process in time, avoiding the accumulation of impurities that affect the sliding accuracy of the transverse moving shaft 12, or that adhere to the machined surface of the plate 10, causing a decrease in the fit of the subsequent locking groove installation.
[0023] Example 2: Figures 1 to 10As shown, the clamping mechanism also includes a stop bar 38, a convex arc plate 36, a lightweight toothed roller 32, a lower horizontal toothed rack 31, an upper vertical toothed rack 30, a clamping plate 20, a second spring 19, a horizontal shaft 18, a horizontal frame plate 16, and a first spring 15. The horizontal frame plate 16 is sleeved on the outside of the vertical shaft 17, and the lower end of the horizontal frame plate 16 is sleeved with the first spring 15. The horizontal shaft 18 is horizontally arranged at the front end of the inner side of the horizontal frame plate 16, and clamping plates 20 are symmetrically arranged in the middle of the horizontal shaft 18. One end of the clamping plate 20 is sleeved with a second spring 19. Spring 19, convex arc plates 36 are symmetrically arranged on the outside of the horizontal frame plate 16, one end of the convex arc plate 36 is provided with an upper vertical toothed rack 30, lightweight toothed roller 32 is arranged on the outside of the fixed clamping block 29, the bottom of the lightweight toothed roller 32 is provided with a lower horizontal toothed rack 31, one end of the lower horizontal toothed rack 31 is provided with a stop bar 38, the back of the lower horizontal toothed rack 31 is also provided with an adapter sleeve, a slide tube and an adapter spring, the lower horizontal toothed rack 31 and the adapter sleeve are fixedly connected, and the adapter sleeve and the slide tube form a sliding structure; A sliding structure is formed between the horizontal frame plate 16 and the vertical shaft 17, and a sliding structure is formed between the clamping piece 20 and the horizontal frame plate 16; The user pulls up the horizontal frame plate 16, causing the horizontal frame plate 16 to move to the top of the plate body 10, and then pulls open the clamping piece 20, causing the clamping piece 20 to slide outside the horizontal axis 18. Then the clamping piece 20 sticks to the outside of the plate body 10, while the second spring 19 and the first spring 15 provide a counterforce between the clamping piece 20 and the horizontal frame plate 16. When the horizontal frame plate 16 moves, the horizontal frame plate 16 drives the shifting seat plate 26 to move, the shifting seat plate 26 drives the upper vertical rack 30 to move, the upper vertical rack 30 drives the lightweight toothed roller 32 to rotate, the lightweight toothed roller 32 drives the lower horizontal rack 31 to move, the lower horizontal rack 31 moves outside the slide tube in conjunction with its matching sliding sleeve, and when the lower horizontal rack 31 moves, it drives the abutment strip 38 to approach the outside of the plate body 10, and the outside of the plate body 10 is abutted by the abutment strip 38.
[0024] Example 3: Figures 1 to 10 As shown, the auxiliary mechanism also includes an arc-shaped push plate 25, a third spring 27, a slide bar 28, an inclined plate 34, an internal rotating plate 35, and a vertical bar 39. The slide bar 28 is sleeved on the outside of the shifting seat plate 26. A third spring 27 is provided at the middle of one end of the slide bar 28 and the top of the shifting seat plate 26. A vertical bar 39 is provided at one end of the slide bar 28. An inclined plate 34 is provided on the front of the vertical bar 39. An internal rotating plate 35 is provided on the inner side of the inclined plate 34. An arc-shaped push plate 25 is provided on one side of the slide bar 28. The arc-shaped push plate 25 is composed of a vertical part and an arc-shaped part. The slide bar 28 is composed of a concave-convex slider, a hollow frame, and an L-shaped plate. The slider 28 and the vertical bar 39 are fixedly connected. The inclined plate 34 has a hook-shaped cross-section. The slider 28 and the displacement seat 26 form a sliding structure. When the airbag ring 24 inflates due to inflation, the inner edge of the airbag ring 24 abuts against the arc-shaped push plate 25. The arc-shaped push plate 25, under force, drives the concave-convex slider of the slide bar 28 to slide at the middle of the outside of the shifting seat plate 26. The sliding direction of the slide bar 28 is closer to the outside of the plate body 10. At the same time, the third spring 27 helps the slide bar 28 to reset after losing power. When the slide bar 28 moves, it can drive the vertical bar 39 to move. The vertical bar 39 drives the inclined clamping plate 34 to extend into the gap between the plate body 10 and the sliding clamping block 11. The surface of the built-in rotating plate 35 is abutted by the outer side of the bottom of the shifting seat plate 26. The built-in rotating plate 35 will rotate on the inclined clamping plate 34. The rotation direction of the built-in rotating plate 35 is towards the outside of the plate body 10. At this time, the overall structure of the built-in rotating plate 35 and the inclined clamping plate 34 is a herringbone structure, which increases the connection between the plate body 10 and the sliding clamping block 11.
[0025] The embodiments of the present invention are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the invention to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described in order to better illustrate the principles and practical application of the invention, and to enable those skilled in the art to understand the invention and to design various embodiments with various modifications suitable for a particular purpose.
Claims
1. A lock groove processing machine for door panel manufacturing, comprising: The rear frame (4) is characterized in that a drive shaft (3) is provided at the front end of the rear frame (4), a vertical motor (2) is provided on one side of the front of the rear frame (4), a drive shaft (3) is provided at one end of the vertical motor (2), a three-jaw chuck (21) is provided at one end of the drive shaft (3), and a drill bit (14) is provided at one end of the three-jaw chuck (21). An electric turntable (13) is provided at the lower end of the front of the frame (1). A transverse moving shaft frame (12) is provided at the top of the electric turntable (13). The transverse moving shaft frame (12) is composed of a throttle, a lead screw, a matching bearing and a base plate. A fixing clamp (29) is provided at one end of the top of the transverse moving shaft frame (12) near the rear frame (4), and a sliding clamp (11) is provided at the other end of the top of the transverse moving shaft frame (12). A plate (10) is provided between the sliding clamp (11) and the fixed clamp (29). A front frame plate (6) is provided at one end of the plate (10) near the rear frame (4). Gas-generating mechanisms are provided on both sides of the front of the front frame plate (6). The gas-generating mechanism includes a micro motor (7). The micro motor (7) is located at the middle of the upper part of the front of the front of the front frame plate (6). A material clamping mechanism is provided at the lower end of the front side of the front frame plate (6). The material clamping mechanism includes a vertical shaft (17), which is located in the middle of the front side of the front frame plate (6). An auxiliary mechanism is provided on the side of the top of the transverse moving shaft frame (12) near the front frame plate (6). The auxiliary mechanism includes a shifting seat plate (26), which is located on both sides of the top of the electric turntable (13). A dust removal mechanism is provided on the upper outer side of the electric turntable (13). The dust removal mechanism includes an airbag ring (24), which wraps around the upper outer side of the electric turntable (13).
2. The lock groove processing machine for door panel manufacturing according to claim 1, characterized in that, The gas generating mechanism also includes a side gas supply pipe (5), an external sealing cylinder (8), a gas distribution pipe (9), an infrared sensor body (22), a rectangular gas chamber (33), and a fan (37). The back of the micro motor (7) is provided with an infrared sensor body (22), the front end of the micro motor (7) is provided with a fan (37), the fan (37) is covered with an external sealing cylinder (8), the top of the external sealing cylinder (8) is provided with gas distribution pipes (9) on both sides, the rectangular gas chamber (33) is symmetrically arranged on both sides of the upper end of the front frame plate (6), the side gas supply pipe (5) is provided on one side of the rectangular gas chamber (33), and the gas distribution pipe (9) is provided on the front of the rectangular gas chamber (33).
3. A lock groove processing machine for door panel manufacturing according to claim 2, characterized in that, The infrared sensor body (22) is used to emit infrared light toward the mating area of the drill bit (14) and the plate (10) to detect the degree of penetration between the drill bit (14) and the plate (10).
4. A lock groove processing machine for door panel manufacturing according to claim 2, characterized in that, The blower (37) is used to perform preset working actions. The signal output terminal of the infrared sensor body (22) is electrically connected to the signal input terminal of the blower (37). The infrared sensor body (22) transmits the detected penetration degree signal to the blower (37). The infrared sensor body (22) determines whether the drill bit (14) has reached the preset penetration threshold based on the penetration degree signal. If it has, it controls the blower (37) to start and perform work.
5. A lock groove processing machine for door panel manufacturing according to claim 1, characterized in that, The clamping mechanism also includes a stop bar (38), a convex arc plate (36), a lightweight toothed roller (32), a lower horizontal toothed rack (31), an upper vertical toothed rack (30), a clamping plate (20), a second spring (19), a horizontal shaft (18), a horizontal frame plate (16), and a first spring (15). The horizontal frame plate (16) is sleeved on the outside of the vertical shaft (17), and the first spring (15) is sleeved on the lower end of the outside of the horizontal frame plate (16). The horizontal shaft (18) is horizontally arranged at the front end of the inner side of the horizontal frame plate (16), and the clamping plate (20) is symmetrically arranged in the middle of the horizontal shaft (18). One end of the clamping plate (20) is sleeved with... There is a second spring (19), and convex arc plates (36) are symmetrically arranged on the outside of the horizontal frame plate (16). One end of the convex arc plate (36) is provided with an upper vertical rack (30). The lightweight toothed roller (32) is arranged outside the fixed clamping block (29). The bottom of the lightweight toothed roller (32) is provided with a lower horizontal rack (31). One end of the lower horizontal rack (31) is provided with a stop bar (38). The back of the lower horizontal rack (31) is also provided with a matching sleeve, a sliding tube, and a matching spring. The lower horizontal rack (31) and the matching sleeve are fixedly connected. The matching sleeve and the sliding tube form a sliding structure.
6. A lock groove processing machine for door panel manufacturing according to claim 5, characterized in that, The horizontal frame plate (16) and the vertical axis (17) form a sliding structure, and the clamping piece (20) and the horizontal frame plate (16) form a sliding structure.
7. A lock groove processing machine for door panel manufacturing according to claim 1, characterized in that, The auxiliary mechanism also includes an arc-shaped push plate (25), a third spring (27), a slide bar (28), an inclined plate (34), a built-in rotating plate (35), and a vertical bar (39). The slide bar (28) is sleeved on the outside of the shifting seat (26). A third spring (27) is provided at the middle of one end of the slide bar (28) and the top of the shifting seat (26). A vertical bar (39) is provided at one end of the slide bar (28). An inclined plate (34) is provided on the front of the vertical bar (39). A built-in rotating plate (35) is provided on the inner side of the inclined plate (34). An arc-shaped push plate (25) is provided on one side of the slide bar (28). The arc-shaped push plate (25) is composed of a vertical part and an arc-shaped part. The slide bar (28) is composed of a concave-convex slider, a hollow frame, and an L-shaped plate.
8. A lock groove processing machine for door panel manufacturing according to claim 7, characterized in that, The slider (28) and the vertical bar (39) are fixedly connected. The inclined plate (34) has a hook-shaped cross-sectional structure. The concave and convex slider of the slider (28) and the displacement seat plate (26) form a sliding structure.
9. A lock groove processing machine for door panel manufacturing according to claim 1, characterized in that, The dust removal mechanism also includes a nozzle (23), and a plurality of nozzles (23) are arranged in a ring at the top of the airbag ring (24), and a pressure valve is provided between the nozzle (23) and the airbag ring (24).
10. A lock groove processing machine for door panel manufacturing according to claim 9, characterized in that, The inner side of the airbag ring (24) is in contact with the arc-shaped push plate (25), and the center point of the airbag ring (24) coincides with the center point of the sliding clamp (11).