Intelligent multi-axis linkage precise cutting device
By using guide noise reduction wheels to replace the traditional rubber sleeve in the cutting device, the vibration and noise problems caused by the reduction of elasticity of the clamp rubber sleeve is solved, and higher cutting accuracy and production efficiency are achieved.
Patent Information
- Application Number
- CN202510458121.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-14
- Publication Date
- 2025-06-17
AI Technical Summary
The rubber sleeve of the clamp of the existing cutting device is repeatedly extruded, and the elasticity is reduced, resulting in increased vibration and increased noise during the cutting process, and needs to be replaced frequently.
An intelligent multi-axis linkage precision cutting device is designed, and a guide noise reduction wheel is used to replace the traditional rubber sleeve. The guide noise reduction wheel changes the contact surface through rotation, maintains elasticity and reduces vibration and noise.
It effectively avoids the problem of noise increase caused by elastic attenuation, reduces the need for frequent replacement of guide noise reduction wheels, reduces maintenance costs, and improves the continuity and production efficiency of wood processing.
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Figure CN120155975A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of wood cutting, and particularly relates to an intelligent multi-axis linkage precise cutting device. Background Art
[0002] Building timbers and wood components refer to natural or artificial wood materials used in construction projects, usually processed to meet structural, decorative or functional requirements. During the processing of building timbers, cutting devices are needed to cut the length or angle of the wood to meet the requirements of construction projects.
[0003] When the cutting device in the prior art cuts building timbers, the cutting device usually uses a fixture to stabilize the wood. In order to enhance the friction between the fixture and the wood, a rubber sleeve is often sleeved on the fixture. However, when the cutting device is in a working state for a long time, the rubber sleeve on the fixture is repeatedly squeezed, and it is very easy to have the problem of reduced elasticity. If it is not replaced in time, during the subsequent clamping of the wood, there will be problems of increased vibration and noise during the cutting process. Summary of the Invention
[0004] Embodiments of the present disclosure relate to an intelligent multi-axis linkage precise cutting device to solve the problem that when the cutting device is in a working state for a long time, the rubber sleeve on the fixture is repeatedly squeezed, and it is very easy to have the problem of reduced elasticity. If it is not replaced in time, during the subsequent clamping of the wood, there will be problems of increased vibration and noise during the cutting process.
[0005] In the first aspect of the present disclosure, an intelligent multi-axis linkage precise cutting device is provided, which specifically includes: a fixed frame, the fixed frame is a rectangular frame structure, and fixed legs are installed on both sides of the bottom of the fixed frame; a positioning frame is installed inside the fixed legs; the positioning frame is a rectangular structure, and driving cylinders are installed at the middle positions of both ends of the positioning frame, and a movable frame is installed on the output end of the driving cylinder; the movable frame is slidably installed inside the positioning frame, and springs are installed at the positions of the inner edge angles of the movable frame, and a movable bracket is installed inside the movable frame through the springs; a wood support plate is installed inside the movable bracket; the wood support plate is a rectangular frame structure, and a movable clamping plate is installed on the top of the wood support plate; a guiding and noise-reducing wheel is rotatably installed inside the movable clamping plate, wherein the outer side of the guiding and noise-reducing wheel is made of rubber.
[0006] Furthermore, a support frame is installed on the outer side of the fixed legs; the support frame is an inclined structure, and the top of the support frame is installed at the bottom ends of both ends of the positioning frame; positioning grooves are opened at the middle positions of both sides inside the support frame; a stabilizing plate is installed at the bottom of the fixed legs.
[0007] Further, a driving cylinder is installed on the top of the stabilizing plate, and a movable supporting plate is installed on the output end of the driving cylinder; the movable supporting plate is slidably installed inside the positioning groove, and a plurality of uniformly distributed positioning rods are installed on the top of the movable supporting plate, and the movable supporting plate is also slidably installed inside the movable frame, and the movable supporting plate is movably installed at the bottom of the movable bracket.
[0008] Further, positioning holes are formed at both ends inside the movable bracket; positioning rods are slidably installed inside the positioning holes; a driving plate is installed at the bottom of the movable clamping plate; the driving plate is slidably installed inside the wood supporting plate, and springs are installed between a plurality of driving plates.
[0009] Further, a driving cylinder is installed at the inner top of the fixed leg, and a pressing plate is installed on the output end of the driving cylinder; both ends of the pressing plate are slidably installed outside the movable clamping plate.
[0010] Further, fixed supporting plates are installed on the outside of the fixed frame and the top of the fixed leg; guide rails are installed on the top of the fixed supporting plates; driving members are installed inside the guide rails, and guide blocks are slidably installed inside the guide rails.
[0011] Further, a guide rod is installed between the two guide blocks, and a driving cylinder is installed on the side of one guide block; a guide slider is slidably installed on the guide rod; the side of the guide slider is connected to the driving cylinder on the side of one guide block, and a driving slide rail is provided on the side of the guide slider, and a driving assembly is slidably installed on the driving slide rail.
[0012] Further, driving cylinders are installed on both sides of the driving assembly, and a rotary adjustment assembly is installed at the bottom of the driving assembly; a connecting rod is installed at the bottom of the rotary adjustment assembly, a rotary saw blade is installed at the bottom of the connecting rod, and two relatively positioned support plates are also installed on the outside of the connecting rod; the output ends of the driving cylinders on both sides of the driving assembly penetrate through the side ends of the support plates and are installed with positioning rings.
[0013] Further, the positioning ring is of an annular structure, and a flow guiding cover and a collection cover are respectively installed at the bottom of the positioning ring, wherein the flow guiding cover and the collection cover are distributed at relative positions; a collection box is installed on the outside of the fixed supporting plate and the guide rail.
[0014] Further, an air suction pump is installed on the top of the collection box, and a collection pipe is installed on the output end of the air suction pump; the side end of the collection pipe is connected to the outside of the collection cover; an air pump is installed on the side of the collection box, and a flow guiding pipe is installed on the output end of the air pump; the side end of the flow guiding pipe is connected to the outside of the flow guiding cover.
[0015] The present invention provides an intelligent multi-axis linkage precise cutting device, which has the following beneficial effects:
[0016] When the present invention is in use, when the guiding and noise-reducing wheel takes out the wood, it rotates in contact with the wood to change the contact surface. Compared with the traditional clamping device, due to the single-sided contact, local wear is likely to be aggravated. The rotating design of the guiding and noise-reducing wheel disperses the wear to multiple contact surfaces. The rotation of the guiding and noise-reducing wheel makes the new elastic contact surface fit the wood surface again, ensuring that even after multiple uses, the guiding and noise-reducing wheel can still maintain high elasticity, avoiding the problem of increased noise caused by elastic attenuation, reducing the frequent replacement requirement for the guiding and noise-reducing wheel, reducing the maintenance cost, and improving the continuity and production efficiency of wood processing.
[0017] In addition, the airflow ejected by the air deflector forces the wood chips generated during the cutting process to the rear collection area. The wood chips flow to the collection hood along with the suction and pushing airflow, and then enter the collection box through the collection pipe for centralized treatment. It can directly intercept the splashing trajectory of the wood chips, avoid their diffusion into the operation area or equipment gaps, effectively reduce potential safety hazards, while reducing the cleaning workload, significantly reducing the concentration of suspended particulate matter in the air, reducing the risk of operators inhaling dust, and improving the overall operation safety level. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments will be briefly introduced below.
[0019] The drawings in the following description only relate to some embodiments of the present invention and do not limit the present invention.
[0020] In the drawings:
[0021] Figure 1 A schematic diagram showing the overall structure of the present application is shown;
[0022] Figure 2 A schematic cross-sectional structure diagram of the fixed frame of the present application is shown;
[0023] Figure 3 A schematic three-dimensional structure diagram of the movable frame of the present application is shown;
[0024] Figure 4 A schematic three-dimensional structure diagram of the wood pallet of the present application is shown;
[0025] Figure 5 A schematic cross-sectional structure diagram of the movable clamping plate of the present application is shown;
[0026] Figure 6 A schematic cross-sectional structure diagram of the guide rail of the present application is shown;
[0027] Figure 7 A schematic three-dimensional structure diagram of the positioning ring of the present application is shown;
[0028] Figure 8 A schematic cross-sectional structure diagram of the collection hood of the present application is shown.
[0029] List of reference numerals
[0030] 1. Fixed frame; 101. Fixed leg; 102. Positioning frame; 103. Support frame; 104. Positioning groove; 105. Stabilizing plate; 106. Movable support plate; 107. Positioning rod; 108. Movable frame;
[0031] 2. Movable bracket; 201. Positioning hole; 202. Wood support plate; 203. Movable clamping plate; 204. Guided noise reduction wheel; 205. Driving plate; 206. Pressing plate;
[0032] 3. Fixed support plate; 301. Guide rail; 302. Guide block; 303. Guide rod; 304. Guide slider; 305. Driving assembly; 306. Rotary adjustment assembly; 307. Support plate; 308. Positioning ring; 309. Flow guide cover; 3010. Collection cover; 3011. Collection box; 3012. Collection pipe; 3013. Flow guide pipe. Detailed implementation manners
[0033] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are some but not all of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the described embodiments of the present invention without creative efforts shall fall within the scope of protection of the present invention.
[0034] Please refer to Figures 1 to 8 : Embodiment 1:
[0035] The present invention provides an intelligent multi-axis linkage precision cutting device, including: a fixed frame 1, the fixed frame 1 is a rectangular frame structure, and fixed legs 101 are installed on both sides of the bottom of the fixed frame 1; a positioning frame 102 is installed inside the fixed legs 101; the positioning frame 102 is a rectangular structure, and driving cylinders are installed at the middle positions of both ends of the positioning frame 102, and a movable frame 108 is installed on the output end of the driving cylinder; the movable frame 108 is slidably installed inside the positioning frame 102; a support frame 103 is installed outside the fixed legs 101; the support frame 103 is an inclined structure, and the top of the support frame 103 is installed at the bottom ends of both ends of the positioning frame 102; positioning grooves 104 are provided at the middle positions of both sides inside the support frame 103; a stabilizing plate 105 is installed at the bottom of the fixed legs 101; a driving cylinder is installed on the top of the stabilizing plate 105, and a movable support plate 106 is installed on the output end of the driving cylinder; the movable support plate 106 is slidably installed inside the positioning groove 104, and a plurality of uniformly distributed positioning rods 107 are installed on the top of the movable support plate 106, and the movable support plate 106 is also slidably installed inside the movable frame 108, and the movable support plate 106 is movably installed at the bottom of the movable support bracket 2.
[0036] In the embodiment of the present disclosure, when cutting building timber, the fixed legs 101 and the support frame 103 support and position the position of the positioning frame 102, and can lift heavier wood. The wood is placed inside the movable support bracket 2, then the driving cylinders at both ends of the positioning frame 102 work, and the output ends of the driving cylinders drive the movable frame 108 to move. The inside of the movable frame 108 drives the two movable support brackets 2 to be respectively under the fixed frame 1 through springs, so that the two movable support brackets 2 can stagger and move under the fixed frame 1, which is convenient for disassembling the cut wood and installing the wood to be cut again. When one movable support bracket 2 moves under the fixed frame 1, the output end of the driving cylinder on the top of the stabilizing plate 105 drives the movable support plate 106 to move upward, so that the positioning rod 107 is inserted into the positioning hole 201. The upward movement of the movable support plate 106 away from the positioning groove 104 drives the movable support bracket 2 to be inside the fixed frame 1, which is convenient for cutting the wood, reducing the downtime of the cutting device and greatly improving the cutting effect on a large number of woods.
[0037] Embodiment 2, based on Embodiment 1, springs are installed at the positions of the inner edge angles of the movable frame 108, and a movable bracket 2 is installed inside the movable frame 108 through the springs; a wood support plate 202 is installed inside the movable bracket 2; the wood support plate 202 is of a rectangular frame structure, and a movable clamping plate 203 is installed on the top of the wood support plate 202; a guiding noise reduction wheel 204 is rotatably installed inside the movable clamping plate 203, wherein the outer side of the guiding noise reduction wheel 204 is made of rubber material; positioning holes 201 are formed at both ends inside the movable bracket 2; positioning rods 107 are slidably installed inside the positioning holes 201; a driving plate 205 is installed at the bottom of the movable clamping plate 203; the driving plate 205 is slidably installed inside the wood support plate 202, and springs are installed between multiple driving plates 205; a driving cylinder is installed at the inner top of the fixed leg 101, and a pressing plate 206 is installed at the output end of the driving cylinder; both ends of the pressing plate 206 are slidably installed outside the movable clamping plate 203. When cutting building wood, the wood to be cut is placed on the wood support plate 202 inside the movable bracket 2. The movable support plate 106 drives the positioning rod 107 to be inserted into the positioning hole 201, then the movable bracket 2 is pushed upward inside the fixed frame 1. The driving cylinder at the inner top of the fixed leg 101 drives the pressing plate 206 to move, and both ends of the pressing plate 206 push the driving plate 205 to move along the inside of the wood support plate 202. The driving plate 205 drives the movable clamping plate 203 to clamp and fix the wood. The guiding noise reduction wheel 204 inside the movable clamping plate 203 increases the friction force in contact with the wood, preventing the problem of reduced vibration. When the wood is cut, the springs push multiple driving plates 205 to spread out to reduce the clamping force on the wood. The removed wood will push the guiding noise reduction wheel 204 to rotate inside the movable clamping plate 203, causing the clamped side of the guiding noise reduction wheel 204 to change, so that the guiding noise reduction wheel 204 is fixed outside the wood again to ensure the elasticity during contact. After multiple uses, it still maintains a large elasticity to reduce vibration noise, improve the precision of wood processing, reduce the replacement frequency, and greatly improve the wood processing efficiency.
[0038] Embodiment 3, on the basis of Embodiment 1, a fixed support plate 3 is installed on the outer side of the fixed frame 1 and the top of the fixed support leg 101; a guide rail 301 is installed on the top of the fixed support plate 3; a driving member is installed on the inner side of the guide rail 301, and a guide block 302 is slidably installed on the inner side of the guide rail 301; a guide rod 303 is installed between the two guide blocks 302, and a driving cylinder is installed on the side of one of the guide blocks 302; a guide slider 304 is slidably installed on the guide rod 303; the side of the guide slider 304 is connected to the driving cylinder on the side of one of the guide blocks 302, and a driving slide rail is provided on the side of the guide slider 304, and a driving assembly 305 is slidably installed on the driving slide rail; driving cylinders are installed on both sides of the driving assembly 305, and a rotation adjustment assembly 306 is installed at the bottom of the driving assembly 305; a connecting rod is installed at the bottom of the rotation adjustment assembly 306, a rotary saw blade is installed at the bottom of the connecting rod, and two support plates 307 at relative positions are also installed on the outer side of the connecting rod; the output ends of the driving cylinders on both sides of the driving assembly 305 penetrate through the side ends of the support plate 307 and are installed with positioning rings 308; the positioning rings 308 are of an annular structure, and a flow guide cover 309 and a collection cover 3010 are respectively installed at the bottoms of the positioning rings 308, wherein, the flow guide cover 309 and the collection cover 3010 are distributed at relative positions; a collection box 3011 is installed on the outer sides of the fixed support plate 3 and the guide rail 301; an air suction pump is installed on the top of the collection box 3011, and a collection pipe 3012 is installed on the output end of the air suction pump; the side end of the collection pipe 3012 is connected to the outer side of the collection cover 3010; an air pump is installed on the side of the collection box 3011, and a flow guide pipe 3013 is installed on the output end of the air pump;The side end of the diversion pipe 3013 is connected to the outside of the diversion cover 309. When cutting building wood, the guide rail 301 at the top of the fixed support plate 3 can drive the guide block 302 to move in the front-back axis direction. The driving cylinder on one guide block 302 drives the guide slider 304 to move in the left-right axis direction along the guide rod 303. The driving assembly 305 moves in the up-down axis direction along the driving slide rail on the side of the guide slider 304. The rotation adjustment assembly 306 at the bottom of the driving assembly 305 can drive the rotary saw blade at the bottom to make adjustments at different angles, enabling the rotary saw blade to move in different directions. The multi-axis linkage of the rotary saw blade can better adjust the cutting position of the wood, making the wood cutting position more accurate and meeting the requirements of construction projects. When cutting the wood, the output ends of the driving cylinders on both sides of the driving assembly 305 penetrate the support plate 307 to drive the positioning ring 308 to be placed on the wood, which can fix the wood. And the suction pump and air pump at the top of the collection box 3011 work. The air pump absorbs the purified air flow in the collection box 3011 and flows it through the diversion pipe 3013 into the inside of the diversion cover 309. The diversion cover 309 is in the advancing direction of the rotary saw blade, so that the air flow blown out by the diversion cover 309 carries the sawdust generated by cutting and moves backward. Then the collection cover 3010 collects the sawdust. The air flow carrying the sawdust enters the inside of the collection box 3011 through the collection pipe 3012 for treatment, preventing the problem of sawdust splashing. Compared with the passive collection method of relative transmission, this can expand the collection area, enabling most of the sawdust to be completely collected and improving the cleanliness of the wood cutting environment.;
[0039] Working principle of this embodiment: The wood is placed on the wood pallet 202 inside the movable bracket 2. The output ends of the driving cylinders at both ends of the positioning frame 102 drive the movable frame 108 to slide. The movable frame 108 drives the two movable brackets 2 to stagger and move under the fixed frame 1. When one movable bracket 2 moves under the fixed frame 1, the output end of the driving cylinder at the top of the stabilizing plate 105 drives the movable pallet 106 to move upward. The positioning rod 107 is inserted into the positioning hole 201, and the movable pallet 106 pushes the movable bracket 2 upward into the inside of the fixed frame 1. The driving cylinder inside the top of the fixed leg 101 drives the pressing plate 206 to push the driving plate 205 to move along the inside of the wood pallet 202. The driving plate 205 drives the movable clamping plate 203 to clamp and fix the wood. The guiding and noise-reducing wheels 204 inside the movable clamping plate 203 reduce the problem of vibration. The guide rail 301 drives the guiding block 302 to move in the front and rear axis directions. The driving cylinder on one guiding block 302 drives the guiding slider 304 to move along the guiding rod 303 in the left and right axis directions. The driving assembly 305 moves in the up and down axis directions along the driving slide rail on the side of the guiding slider 304. The rotary adjustment assembly 306 at the bottom of the driving assembly 305 drives the rotary saw blade to make adjustments at different angles. The multi-axis linkage of the rotary saw blade better adjusts the cutting position of the wood. The output ends of the driving cylinders on both sides of the driving assembly 305 penetrate through the support plate 307 and drive the positioning ring 308 to be placed on the wood for fixation. The suction pump and air pump on the top of the collection box 3011 work. The air pump absorbs the purified air flow in the collection box 3011 and flows through the diversion pipe 3013 into the diversion hood 309. The air flow blown out by the diversion hood 309 carries the wood chips generated by cutting and moves backward. The collection hood 3010 collects the wood chips. The air flow carrying the wood chips enters the collection box 3011 through the collection pipe 3012 for processing. After the wood is cut, the spring pushes the driving plates 205 at multiple places to spread out to reduce the clamping of the wood. The taken-out wood will push the guiding and noise-reducing wheels 204 to rotate inside the movable clamping plate 203, causing the clamped surface on the guiding and noise-reducing wheels 204 to change. The guiding and noise-reducing wheels 204 are fixed on the outside of the wood again to ensure the elasticity during contact. After multiple uses, it still maintains a large elasticity to reduce vibration noise and improve the processing accuracy of the wood.
[0040] In this article, the following points need to be noted:
[0041] 1. The drawings of the embodiments of this disclosure only relate to the structures involved in the embodiments of this disclosure. Other structures can refer to the general design.
[0042] 2. Without conflict, the embodiments of this disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0043] The above are only specific embodiments of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present disclosure can easily think of changes or substitutions, which should all be covered within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure shall be subject to the protection scope of the claims.
Claims
1. An intelligent multi-axis linkage precision cutting device, comprising: A fixed frame (1), wherein fixed legs (101) are installed on both sides of the bottom of the fixed frame (1); characterized in that a positioning frame (102) is installed on the inner side of the fixed legs (101); a driving cylinder is installed at the middle position of the two ends of the positioning frame (102), and a movable frame (108) is installed on the output end of the driving cylinder; the movable frame (108) is slidably installed on the inner side of the positioning frame (102), and a spring is installed at the position of the inner edge angle of the movable frame (108), and a movable bracket (2) is installed on the inner side of the movable frame (108) through the spring; a wood support plate (202) is installed on the inner side of the movable bracket (2); a movable splint (203) is installed on the top of the wood support plate (202); a guide noise reduction wheel (204) is rotatably installed on the inner side of the movable splint (203), wherein the outer side of the guide noise reduction wheel (204) is made of rubber.
2. The intelligent multi-axis linkage precision cutting device according to claim 1, characterized in that: A support frame (103) is installed on the outer side of the fixed leg (101); the top of the support frame (103) is installed at the bottom of both ends of the positioning frame (102); positioning grooves (104) are provided at the middle positions of both sides of the inside of the support frame (103); and a stabilizing plate (105) is installed at the bottom of the fixed leg (101).
3. The intelligent multi-axis linkage precision cutting device according to claim 2, characterized in that: A driving cylinder is installed on the top of the stabilizing plate (105), and a movable support plate (106) is installed on the output end of the driving cylinder; the movable support plate (106) is slidably installed inside the positioning groove (104), and a plurality of evenly distributed positioning rods (107) are installed on the top of the movable support plate (106), and the movable support plate (106) is also slidably installed on the inner side of the movable frame (108), and the movable support plate (106) is movably installed at the bottom of the movable bracket (2).
4. The intelligent multi-axis linkage precision cutting device according to claim 3, characterized in that: Positioning holes (201) are provided at both ends of the inner side of the movable bracket (2); a positioning rod (107) is slidably installed on the inner side of the positioning hole (201); a driving plate (205) is installed at the bottom of the movable clamping plate (203); the driving plate (205) is slidably installed on the inner side of the wood support plate (202), and springs are installed between multiple driving plates (205).
5. The intelligent multi-axis linkage precision cutting device according to claim 4, characterized in that: A driving cylinder is installed on the inner top of the fixed leg (101), and a pressing plate (206) is installed on the output end of the driving cylinder; the two ends of the pressing plate (206) are slidably installed on the outer side of the movable clamping plate (203).
6. The intelligent multi-axis linkage precision cutting device according to claim 5, characterized in that: A fixed support plate (3) is installed on the outer side of the fixed frame (1) and on the top of the fixed support leg (101); a guide rail (301) is installed on the top of the fixed support plate (3); a driving member is installed on the inner side of the guide rail (301); and a guide block (302) is slidably installed on the inner side of the guide rail (301).
7. The intelligent multi-axis linkage precision cutting device according to claim 6, characterized in that: A guide rod (303) is installed between the two guide blocks (302), and a driving cylinder is installed on the side of one guide block (302); a guide slider (304) is slidably installed on the guide rod (303); the side of the guide slider (304) is connected to the driving cylinder on the side of one guide block (302), and a driving slide rail is provided on the side of the guide slider (304), and a driving assembly (305) is slidably installed on the driving slide rail.
8. The intelligent multi-axis linkage precision cutting device according to claim 7, characterized in that: Drive cylinders are installed on both sides of the drive assembly (305), and a rotation adjustment assembly (306) is installed at the bottom of the drive assembly (305); a connecting rod is installed at the bottom of the rotation adjustment assembly (306), a rotating saw blade is installed at the bottom of the connecting rod, and two supporting plates (307) at opposite positions are also installed on the outside of the connecting rod; the output ends of the drive cylinders on both sides of the drive assembly (305) pass through the side ends of the supporting plates (307) and are installed with positioning rings (308).
9. The intelligent multi-axis linkage precision cutting device according to claim 8, characterized in that: A flow guide cover (309) and a collection cover (3010) are respectively installed at the bottom of the positioning ring (308), wherein the flow guide cover (309) and the collection cover (3010) are distributed in relative positions; and a collection box (3011) is installed on the outer side of the fixed support plate (3) and the guide rail (301).
10. The intelligent multi-axis linkage precision cutting device according to claim 9, characterized in that: An air pump is installed on the top of the collection box (3011), and a collection pipe (3012) is installed on the output end of the air pump; the side end of the collection pipe (3012) is connected to the outside of the collection cover (3010); an air pump is installed on the side of the collection box (3011), and a guide pipe (3013) is installed on the output end of the air pump; the side end of the guide pipe (3013) is connected to the outside of the guide cover (309).
Citation Information
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