Raw material cutting and grinding equipment for solid wood door processing
Through the combination of three-dimensional moving mechanism and vibration heat dissipation components, the problems of high temperature burns and sandpaper clogging of solid wood door polishing equipment are solved, and automated and efficient solid wood door polishing is achieved, ensuring processing quality and safety.
Patent Information
- Application Number
- CN202511202628.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-27
- Publication Date
- 2025-10-03
AI Technical Summary
The existing solid wood door polishing equipment has problems such as high temperature burns, low degree of automation, and easy clogging of sandpaper, which affects the processing quality and efficiency.
It adopts a three-dimensional moving mechanism combined with vibration and heat dissipation components, provides vibration and airflow through the rotation of the eccentric block and fan blades, realizes automatic polishing, and removes wood chips through the design of the air duct and suction hood to ensure the roughness of the sandpaper and cooling.
It realizes efficient and automated polishing of solid wood doors, avoids high temperature burns, improves processing quality and safety, and extends the service life of sandpaper.
Smart Images

Figure CN120734845A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of furniture polishing, in particular to a raw material cutting and polishing device for processing solid wood doors. Background Art
[0002] Solid wood doors refer to wooden doors made of natural logs or solid wood integrated materials taken from the forest. After processing, they have excellent characteristics such as no deformation, corrosion resistance, no cracks, and heat insulation. They are widely used in the furniture field.
[0003] For solid wood doors that have been cut and assembled, in order to improve the subsequent painting effect and the aesthetics of the finished product, their surfaces must first be sanded and polished. At present, precision polishing is mostly completed by selecting sandpaper of different mesh sizes, but in the actual processing process, the existing technology has many limitations: First, for solid wood doors made of wood with higher hardness, the sanding time of the same position needs to be extended accordingly, and the heat generated during the friction process will continue to accumulate, causing the surface temperature of the wooden door to rise, which can easily cause burns to the solid wood door and affect the quality of the finished product; second, the polishing angle of traditional polishing equipment is fixed, and it can only complete the polishing of the plane of the solid wood door. For the pattern bevels engraved on the surface of the solid wood door, manual polishing is often required. Not only is the degree of automation low, but manual operation also has safety hazards and low polishing efficiency; third, the wood chips generated during the polishing process are easy to fill the gaps between the sandpaper particles, resulting in a decrease in the friction of the sandpaper, which in turn causes polishing to be blocked, affecting the polishing effect and the service life of the sandpaper. Summary of the Invention
[0004] In order to overcome the shortcomings of the prior art that the polishing temperature cannot be reduced, the polishing conditions are harsh, and the sandpaper lacks the function of removing impurities, the technical problem to be solved by the present invention is a raw material cutting and polishing device for solid wood door processing.
[0005] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a raw material cutting and polishing device for processing solid wood doors, comprising a cabinet, a controller, and a control panel, wherein the controller is installed inside the cabinet, the control panel is installed at the upper left corner of the front face of the cabinet, and the control panel is electrically connected to the controller, and the controller control mode is set via the control panel. A three-dimensional moving mechanism electrically connected to the controller is installed on the top of the cabinet, a vibration mechanism is installed at the output end of the three-dimensional moving mechanism, and a polishing mechanism is installed at the bottom of the vibration mechanism. The three-dimensional moving mechanism is controlled by the controller to move, so that the polishing mechanism polishes the solid wood door placed on the cabinet; The vibration mechanism includes a base installed at the moving end of the three-dimensional moving mechanism, a plurality of springs are installed around the outer edge of the lower surface of the base, a box body is installed at the bottom of the spring, and the box body has a vibration space under the elastic action of the spring, and a rotating component and a heat dissipation component are installed on the upper surface and inner cavity of the box body respectively.
[0006] Preferably, the rotating assembly includes a first motor mounted at the center of the upper surface of the box body, and the first motor is electrically connected to the controller. A rotating shaft is mounted on the output end of the first motor, and an eccentric block and a fan blade are mounted on the upper and lower ends of the outer wall of the rotating shaft, respectively. The eccentric block is driven by the first motor to rotate eccentrically, and the direction of the centrifugal force changes periodically with the rotation angle, thereby causing vibration. When the eccentric block and the fan blades rotate, they provide both vibration and heat dissipation.
[0007] Preferably, the heat dissipation assembly includes a base plate installed in the middle of the upper cavity of the box body, a fan cover is installed on the upper surface of the base plate, and the rotating shaft and the top of the fan cover are installed through bearings. When the fan blades rotate in the fan cover, wind force is generated from bottom to top, and exhaust holes are opened on the top of the left and right sides of the fan cover.
[0008] Preferably, the polishing mechanism includes a sliding assembly installed on the lower surface of the base plate, a driving assembly is installed in the middle of the sliding assembly, and the sliding assembly is driven to move by the driving assembly, and two left-right symmetrical air ducts are installed on the outer wall of the sliding assembly.
[0009] Preferably, the shape of the inner top of the air duct is consistent with the curvature of the outer wall of the fan cover, and the air outlet of the air duct is inclined inward.
[0010] Preferably, the sliding assembly includes vertical pipes installed at the front and rear ends of the lower surface of the bottom plate, a horizontal pipe is installed horizontally at the bottom end of the vertical pipe, and telescopic pipes are inserted at both ends of the inner cavity of the horizontal pipe. Air suction hoods are installed on the outer sides of the two groups of telescopic pipes on the left and right sides, and the air duct is installed with the air suction hood. A fixing plate is installed on the lower surface of the air suction hood through a pin, and the two fixing plates are connected by a pin. As the two air suction hoods gradually move away from or approach each other, the angle between the two fixing plates increases or decreases. The lower surface of the fixing plate is used for sandpaper to be pasted and fixed, and the vibration of the sandpaper is used to rub against the solid wood door to polish the solid wood door. By utilizing the telescopic ability of the telescopic tube, the suction hood can move laterally, adjust the tilt angle of the fixed plate, and change the grinding direction.
[0011] Preferably, heat sinks are evenly arranged on the upper surface of the fixing plate.
[0012] Preferably, the drive assembly includes reinforcing ribs installed between the transverse tubes, which enhance the stability of the two transverse tubes. A second motor electrically connected to the controller is installed at the bottom of the reinforcing ribs, and a gear is installed at the output end of the second motor. Racks are meshed and connected on the front and rear sides of the outer wall of the gear, and the racks are installed on the top of the air intake hood.
[0013] Compared with the prior art, the present invention has the following beneficial effects: 1. The eccentric block and the fan blades are driven by the first motor to rotate synchronously. The eccentric block uses the periodic vibration generated by centrifugal motion to provide power for polishing, ensuring sufficient friction between the sandpaper and the solid wood door to achieve polishing. At the same time, the fan blades rotate in the fan cover to form airflow, which cooperates with the heat sink on the bottom plate to expand the heat dissipation area, accelerate the air flow around the fixed plate and sandpaper, and significantly reduce the temperature generated by friction, avoiding surface burns of the solid wood door due to high temperature, and ensuring processing quality.
[0014] 2. With the help of the second motor-driven gear and rack meshing transmission, the telescopic tube in the sliding assembly is driven to expand and contract within the horizontal tube, so that the left and right suction hoods move away from or closer to each other. Since the two fixed plates are connected by a pin shaft, their angle changes flexibly with the movement of the suction hoods. They can be flattened to adapt to the horizontal polishing of solid wood doors, and the inclination can be adjusted to cope with the bevel polishing of surface patterns. It completely replaces the traditional manual polishing method, improves polishing efficiency and operational safety, and broadens the scope of application of the equipment.
[0015] 3. When the suction hood moves to the extreme position, the air duct fits tightly against the fan cover. The wind generated by the fan blades enters the air duct through the exhaust holes of the fan cover and blows toward the sandpaper on the lower surface of the fixed plate. At the same time, the vibration generated by the eccentric block loosens the wood chips in the gaps of the sandpaper, which are effectively removed by the airflow, ensuring that the sandpaper always maintains a good roughness. This not only reduces the frequency of sandpaper replacement to avoid waste, but also continuously ensures the stability of the polishing effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a three-dimensional diagram of the present invention; Figure 2 for Figure 1 Enlarged view of point A in the middle; Figure 3 It is a three-dimensional diagram of the vibration mechanism; Figure 4 This is the exploded diagram of the vibration mechanism; Figure 5 It is a three-dimensional diagram of the grinding mechanism; Figure 6 It is a three-dimensional diagram of the sliding assembly; Figure 7 A perspective view of the drive assembly.
[0017] In the figure: 1. cabinet; 2. controller; 3. control panel; 4. three-dimensional moving mechanism; 5. vibration mechanism; 6. grinding mechanism; 41. first guide rail slider module; 42. second guide rail slider module; 43. lifter; 44. rotating cylinder; 51. base; 52. spring; 53. box body; 54. rotating assembly; 55. heat dissipation assembly; 541. first motor; 542. rotating shaft; 543. eccentric block; 544. fan blade; 551. bottom plate; 552. fan cover; 553. exhaust hole; 61. sliding assembly; 62. driving assembly; 63. air duct; 611. vertical pipe; 612. horizontal pipe; 613. telescopic pipe; 614. suction hood; 615. fixing plate; 621. reinforcing rib; 622. second motor; 623. gear; 624. rack. DETAILED DESCRIPTION
[0018] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0019] The present invention provides a technical solution: a raw material cutting and polishing device for solid wood door processing, such as Figure 1-7 As shown, it includes a cabinet 1, a controller 2 and a control panel 3. The controller 2 is installed inside the cabinet 1, and the control panel 3 is installed at the upper left corner of the front of the cabinet 1. The control panel 3 is electrically connected to the controller 2. The control mode of the controller 2 is set through the control panel 3. A three-dimensional moving mechanism 4 electrically connected to the controller 2 is installed on the top of the cabinet 1, a vibration mechanism 5 is installed at the output end of the three-dimensional moving mechanism 4, and a polishing mechanism 6 is installed at the bottom of the vibration mechanism 5. The three-dimensional moving mechanism 4 is controlled by the controller 2 to move, so that the polishing mechanism 6 can polish the solid wood door placed on the cabinet 1.
[0020] The three-dimensional moving mechanism 4 includes a first guide rail slider module 41 installed on the upper surface of the cabinet 1, and the first guide rail slider module 41 is electrically connected to the controller 2. The moving end of the first guide rail slider module 41 is laterally installed with a second guide rail slider module 42 electrically connected to the controller 2, and the moving end of the second guide rail slider module 42 is installed with a lifter 43 electrically connected to the controller 2. The first guide rail slider module 41 is responsible for moving forward and backward, and the second guide rail slider module 42 is responsible for moving forward and backward, and the lifter 43 controls the lifting and lowering to realize the three-dimensional movement of the vibration mechanism 5 and achieve the purpose of automatic polishing. The moving end of the lifter 43 is installed with a rotating cylinder 44 electrically connected to the controller 2. The rotating cylinder 44 adjusts the polishing angle to realize all-round polishing of the solid wood door.
[0021] As a preferred solution, further, the vibration mechanism 5 includes a base 51 installed at the moving end of the rotating cylinder 43, and a number of springs 52 are installed around the outer edge of the lower surface of the base 51. A box body 53 is installed at the bottom of the spring 52. Under the elastic action of the spring 52, the box body 53 has a vibration space. Through holes are provided on the left and right sides of the box body 53, which have an exhaust function. A rotating component 54 and a heat dissipation component 55 are respectively installed on the upper surface and the inner cavity of the box body 53. The rotating component 54 provides two kinds of power for grinding and heat dissipation, and the heat dissipation component 55 is responsible for cooling the sandpaper.
[0022] More specifically, dual power output is achieved through the rotating component 54, which, in conjunction with the elastic support of the spring 52 and the directional airflow of the heat dissipation component 55, can not only provide stable high-frequency vibration for polishing, but also effectively reduce the polishing temperature, providing core guarantee for high-quality polishing of solid wood doors.
[0023] As a preferred solution, further, the rotating component 54 includes a first motor 541 installed at the center position of the upper surface of the box body 53, and the first motor 541 is electrically connected to the controller 2. A rotating shaft 542 is installed at the output end of the first motor 541, and an eccentric block 543 and a fan blade 544 are respectively installed at the upper and lower ends of the outer wall of the rotating shaft 542. The eccentric block 543 is driven to rotate eccentrically by the first motor 541, and the direction of the centrifugal force will change periodically with the rotation angle, thereby causing vibration.
[0024] As a preferred solution, further, the heat dissipation assembly 55 includes a base plate 551 installed in the middle of the inner cavity of the box body 53, a fan cover 552 is installed on the upper surface of the base plate 551, and the rotating shaft 542 and the top of the fan cover 552 are installed through a bearing, and when the fan blades 544 rotate in the fan cover 552, wind force is generated from bottom to top, and exhaust holes 553 are opened on the top of the left and right sides of the fan cover 552, and the exhaust holes 553 are used for exhaust.
[0025] As a preferred solution, further, the grinding mechanism 6 includes a sliding component 61 installed on the lower surface of the base plate 551, and a driving component 62 is installed in the middle of the sliding component 61, which drives the sliding component 61 to move. Two symmetrical air ducts 63 are installed on the outer wall of the sliding component 61. The shape of the inner top of the air duct 63 is consistent with the curvature of the outer wall of the fan cover 552. When the air duct 63 moves inward, the air duct 63 and the fan cover 552 can be completely fitted together, allowing air flow to enter the air duct 63, and the air outlet of the air duct 63 is inclined inward, and the air outlet direction of the air duct 63 is parallel to the fixed plate 615, which can blow away the wood chips on the surface of the sandpaper.
[0026] When the driving assembly 62 drives the suction hood 614 to move, the telescopic tube 613 expands and contracts along the inner cavity of the horizontal tube 612, thereby changing the distance between the two suction hoods 614: If the two suction hoods 614 gradually move away from each other, the two fixing plates 615 rotate around the central pin, and the included angle increases to a maximum of 60 degrees. At this time, the sandpaper on the lower surface of the fixing plate 615 is tilted, which is suitable for polishing the inclined surface of the solid wood door surface pattern. If the two suction hoods 614 gradually approach each other, the angle between the two fixing plates 615 decreases until they are in contact (the angle is 0°). At this time, the sandpaper is flattened and suitable for grinding the horizontal surface of the solid wood door.
[0027] During the polishing process, the vibration of the vibration mechanism 5 is transmitted to the fixed plate 615 through the base plate 551, the vertical pipe 611, the horizontal pipe 612, and the air hood 614, causing high-frequency friction between the sandpaper and the solid wood door to achieve polishing; at the same time, the heat sink on the upper surface of the fixed plate 615 expands the heat dissipation area, quickly conducts the heat generated by friction into the air, and cooperates with the airflow of the vibration mechanism 5 to significantly reduce the temperature of the sandpaper and the surface of the solid wood door, avoiding high-temperature burns.
[0028] As a preferred solution, further, the sliding assembly 61 includes a vertical pipe 611 installed at the front and rear ends of the lower surface of the bottom plate 551, a horizontal pipe 612 is installed horizontally at the bottom end of the vertical pipe 611, and telescopic pipes 613 are inserted at both ends of the inner cavity of the horizontal pipe 612. An air hood 614 is installed on the outer side of the two sets of telescopic pipes 613 on the left and right sides, and the air duct 63 is installed with the air hood 614. A fixing plate 615 is installed on the lower surface of the air hood 614 through a pin shaft, and the two fixing plates 615 are connected by a pin shaft, and are matched with the telescopic pipe 613 through the horizontal pipe 612. The suction hoods 614 are limited together. As the two suction hoods 614 gradually move away from or closer to each other, the angle between the two fixed plates 615 becomes larger or smaller, changing the polishing angle. Heat sinks are evenly arranged on the upper surface of the fixed plate 615 to expand the surface area of the fixed plate 615 and thereby enhance the heat dissipation effect. The lower surface of the fixed plate 615 is used for sandpaper pasting and fixing. The vibration of the sandpaper is used to rub against the solid wood door to polish the solid wood door. The scissor-type angle adjustment of the two fixed plates 615 realizes the automatic polishing of flat and inclined surfaces and has the capability of polishing highly difficult surfaces.
[0029] More specifically, when the grinding angle needs to be adjusted, the controller 2 sends a control signal to the second motor 622: if the second motor 622 drives the gear 623 to rotate clockwise, the gear 623 drives the racks 624 on the front and rear sides to move in the opposite direction, with the front rack forward and the rear rack backward, thereby pulling the two suction hoods 614 outward at the same time, and the angle of the fixed plate 615 becomes larger; if the second motor 622 drives the gear 623 to rotate counterclockwise, the rack 624 moves in the opposite direction, with the front rack backward and the rear rack forward, pushing the two suction hoods 614 inward at the same time, and the angle of the fixed plate 615 becomes smaller.
[0030] As a preferred solution, further, the drive assembly 62 includes a reinforcing rib 621 installed between the transverse tubes 612, and the stability of the two transverse tubes 612 is enhanced by the reinforcing rib 621. A second motor 622 electrically connected to the controller 2 is installed at the bottom of the reinforcing rib 621, and a gear 623 is installed at the output end of the second motor 622. The front and rear sides of the outer wall of the gear 623 are meshed with racks 624, and the rack 624 is installed on the top of the air hood 614. As the second motor 622 drives the gear 623 to rotate clockwise or counterclockwise, under the transmission condition of the gear 623 and the rack 624, the two air hoods 614 can move outward or inward at the same time.
[0031] More specifically, when the sandpaper has been used for a period of time and the surface gaps are filled with sawdust, causing the friction to decrease, the controller 2 controls the drive assembly 62 to drive the suction hood 614 to move inward to the extreme position. At this time, the air duct 63 is completely in contact with the fan cover 552, and the bottom-up airflow generated by the rotation of the fan blades 544 in the vibration mechanism 5 enters the air duct 63 through the exhaust holes 553 on both sides of the fan cover 552; the airflow is guided along the arc-shaped channel of the air duct 63 and blown from the air outlet toward the sandpaper on the lower surface of the fixed plate 615; at the same time, the high-frequency vibration of the vibration mechanism 5 loosens the sawdust in the gaps of the sandpaper, and is completely blown away from the sandpaper surface under the action of the airflow (wind speed ≥ 5m / s), thereby restoring the roughness of the sandpaper.
[0032] Working principle: In step 1, the first guide rail slider module 41 controls the vibration mechanism 5 to move forward and backward, the second guide rail slider module 42 controls the vibration mechanism 5 to move left and right, and the lifter 43 realizes the vibration mechanism 5, so that the vibration mechanism 5 can move in three dimensions, and the rotating cylinder 44 can change the polishing direction, thereby polishing different positions of the solid wood door; Step 2: During polishing, the eccentric block 543 and the fan blades 544 are driven to rotate by the first motor 541. The centrifugal motion of the eccentric block 543 causes the box body 53 to vibrate. The vibration can cause the sandpaper to rub against the solid wood door, thereby achieving a polishing effect on the solid wood door. The fan blades 544 rotate in the fan cover 552, and negative pressure is formed in the vertical pipe 611. The bottom of the suction cover 614 sucks away the air around the fixed plate 615, increasing the air flow rate at the top of the fixed plate 615, cooling the fixed plate 615, and the air is discharged from the exhaust hole 553, which not only provides polishing power but also reduces the polishing temperature. Step 3: During selective polishing, the second motor 622 drives the gear 623 to rotate clockwise or counterclockwise. Under the transmission condition of the gear 623 and the rack 624, the two suction hoods 614 move outward or inward at the same time, causing the angle between the two fixed plates 615 to increase or decrease. When the fixed plates 615 are flattened, the sandpaper on the fixed plates 615 polishes the flat surface of the solid wood door. When the fixed plates 615 are tilted, the sandpaper polishes the inclined surface of the pattern on the solid wood door, and polishing of any inclined surface can be achieved. Step 4: When the suction hood 614 moves inward to the extreme position, the air duct 63 covers the exhaust hole 553, and the air flow is blown out from the bottom of the air duct 63. The blowing direction is consistent with the discharge direction of the sandpaper on the fixed plate 615. As the fixed plate 615 vibrates, the impurities on the sandpaper are loosened, and then the impurities are blown away by the air flow, so that the sandpaper has a good roughness, ensuring the polishing effect of the sandpaper.
[0033] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A material cutting and polishing device for processing solid wood doors, comprising a cabinet (1), a controller (2) and a control panel (3), wherein the controller (2) is installed inside the cabinet (1), the control panel (3) is installed at the upper left corner of the front of the cabinet (1), and the control panel (3) is electrically connected to the controller (2), and the control mode of the controller (2) is set through the control panel (3), characterized in that: A three-dimensional moving mechanism (4) electrically connected to the controller (2) is installed on the top of the cabinet (1); a vibration mechanism (5) is installed at the output end of the three-dimensional moving mechanism (4); a polishing mechanism (6) is installed at the bottom of the vibration mechanism (5); the three-dimensional moving mechanism (4) is controlled by the controller (2) to move, so that the polishing mechanism (6) polishes and polishes the solid wood door placed on the cabinet (1); The vibration mechanism (5) includes a base (51) installed at the moving end of the three-dimensional moving mechanism (4), a plurality of springs (52) are installed around the outer edge of the lower surface of the base (51), a box body (53) is installed at the bottom of the spring (52), and the box body (53) has a vibration space under the elastic action of the spring (52), and a rotating component (54) and a heat dissipation component (55) are installed on the upper surface and inner cavity of the box body (53), respectively.
2. The raw material cutting and polishing equipment for solid wood door processing according to claim 1, characterized in that: The rotating assembly (54) includes a first motor (541) installed at the center of the upper surface of the box body (53), and the first motor (541) is electrically connected to the controller (2). A rotating shaft (542) is installed at the output end of the first motor (541), and an eccentric block (543) and a fan blade (544) are installed at the upper and lower ends of the outer wall of the rotating shaft (542). The eccentric block (543) is driven to rotate eccentrically by the first motor (541), and the direction of the centrifugal force changes periodically with the rotation angle, thereby causing vibration.
3. The raw material cutting and polishing equipment for solid wood door processing according to claim 2, characterized in that: The heat dissipation assembly (55) includes a bottom plate (551) installed in the middle of the inner cavity of the box body (53), a fan cover (552) is installed on the upper surface of the bottom plate (551), and the rotating shaft (542) and the top of the fan cover (552) are installed through a bearing. When the fan blades (544) rotate in the fan cover (552), wind force is generated from bottom to top. Exhaust holes (553) are opened on the tops of the left and right sides of the fan cover (552).
4. The raw material cutting and polishing equipment for solid wood door processing according to claim 3, characterized in that: The polishing mechanism (6) comprises a sliding assembly (61) mounted on the lower surface of the base plate (551), a driving assembly (62) being mounted in the middle of the sliding assembly (61), and the sliding assembly (61) is driven to move by the driving assembly (62), and two symmetrical air ducts (63) are mounted on the outer wall of the sliding assembly (61).
5. The raw material cutting and polishing equipment for solid wood door processing according to claim 4, characterized in that: The shape of the inner top of the air duct (63) is consistent with the curvature of the outer wall of the fan cover (552), and the air outlet of the air duct (63) is inclined inward.
6. The raw material cutting and polishing equipment for solid wood door processing according to claim 5, characterized in that: The sliding assembly (61) includes a vertical tube (611) installed at the front and rear ends of the lower surface of the base plate (551), a horizontal tube (612) is installed horizontally at the bottom end of the vertical tube (611), and telescopic tubes (613) are inserted at both ends of the inner cavity of the transverse tube (612). Air suction hoods (614) are installed on the outside of the two groups of telescopic tubes (613) on the left and right sides, and the air duct (63) is installed with the air suction hood (614). A fixing plate (615) is installed on the lower surface of the air suction hood (614) through a pin shaft, and the two fixing plates (615) are connected by a pin shaft. As the two air suction hoods (614) gradually move away from or closer to each other, the angle between the two fixing plates (615) increases or decreases. The lower surface of the fixing plate (615) is used for sandpaper pasting and fixing, and the sandpaper is used to vibrate and rub against the solid wood door to polish the solid wood door.
7. The raw material cutting and polishing equipment for solid wood door processing according to claim 6, characterized in that: The upper surface of the fixing plate (615) is evenly provided with heat sinks.
8. The raw material cutting and polishing equipment for solid wood door processing according to claim 7, characterized in that: The driving assembly (62) includes a reinforcing rib (621) installed between the transverse tubes (612), and the stability of the two transverse tubes (612) is enhanced by the reinforcing rib (621). A second motor (622) electrically connected to the controller (2) is installed at the bottom of the reinforcing rib (621), and a gear (623) is installed at the output end of the second motor (622). The outer wall of the gear (623) is meshed with a rack (624) on both the front and rear sides, and the rack (624) is installed on the top of the suction hood (614).