A laser automatic cutting all-in-one machine and method for dust-free cloth
By using PTFE fiber woven mesh and a conical chamber negative pressure adsorption system in a cleanroom laser cutting equipment, combined with a battering cleaning mechanism, the problem of cleaning laser cutting fumes and molten metal chips has been solved, achieving automated cleaning and improving equipment efficiency and ease of operation.
Patent Information
- Application Number
- CN202411711022.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-27
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2044-11-27
AI Technical Summary
In existing automatic laser cutting equipment for cleanroom cloths, the fumes and molten metal generated by laser cutting are difficult to clean effectively, resulting in low equipment efficiency and the need for manual intervention.
The system employs a polytetrafluoroethylene fiber woven mesh and a conical chamber negative pressure adsorption system, combined with a battering cleaning mechanism, to achieve automatic cleaning of flue gas and molten metal.
It effectively removes black smoke and molten metal generated by laser cutting, keeps the conveyor belt unobstructed, reduces manual intervention, and improves equipment efficiency and ease of operation.
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Figure CN119304385B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of laser cutting of dust-free cloth, in particular to a laser automatic cutting all-in-one machine and method for dust-free cloth. BACKGROUND
[0002] The laser automatic cutting of dust-free cloth is an automatic processing method that uses laser technology to precisely cut dust-free cloth. Dust-free cloth, also known as clean cloth or non-woven fabric, is a high-precision and high-cleanliness fabric commonly used in industries such as clean rooms, electronics manufacturing, medical care, and food processing, for cleaning, wiping, and dust prevention. In these fields, precise and pollution-free cutting technology is crucial for maintaining product quality and a clean working environment.
[0003] The problem with the automatic laser cutting machine for dust-free cloth is that this equipment generally lays the dust-free cloth on a honeycomb-shaped bottom plate (honeycomb-shaped bottom plate is a conveyor belt circulation mode), and there is negative pressure under the honeycomb-shaped bottom plate to hold the dust-free cloth, and then the laser starts cutting. However, when the laser sweeps across the honeycomb intersection, 1) the smoke from the laser cannot be immediately sucked away at the intersection, causing black spots at that location; 2) the dust-free cloth is made of polyester and nylon fibers mixed together, and after laser cutting, some molten debris sticks to the honeycomb intersection, which must be manually cleaned and removed after a period of time, which is time-consuming and labor-intensive, affecting the cutting efficiency of the dust-free cloth.
[0004] Therefore, we provide a laser automatic cutting all-in-one machine and method for dust-free cloth to solve the above problems. SUMMARY
[0005] (I) Technical problem to be solved
[0006] The problem to be solved by the present application is to provide a laser automatic cutting all-in-one machine and method for dust-free cloth to overcome the defects in the prior art.
[0007] (II) Technical solution
[0008] To solve the technical problem, the present application provides a laser automatic cutting all-in-one machine for dust-free cloth, which comprises a main body, a material feeding mechanism, a laser cutting mechanism, and a shaking and wiping cleaning mechanism are arranged on the main body, a cutting cabin accommodating the laser cutting mechanism is arranged on the main body, the material feeding mechanism is arranged between the cutting cabin and the main body, and a shaking and wiping cleaning mechanism is arranged below the material feeding mechanism in the main body.
[0009] The feeding mechanism comprises first and second supports arranged on both sides of the main body, a hollow area is arranged in the middle of the main body, first and third rotating rollers are rotatably connected to the first and second supports respectively, and second and fourth rotating rollers are rotatably arranged in the hollow area of the main body, a honeycomb-shaped conveying belt is arranged on the first and second rotating rollers, and a discharging belt is arranged on the third and fourth rotating rollers.
[0010] The laser cutting mechanism comprises two sliding tables mounted on the upper portion of the main body, a sliding seat is slidably connected to each of the sliding tables, a screw rod is matched with the sliding seat, the screw rod is drivingly connected with a transmission rod, a sliding frame is connected to the two sliding seats, a laser welding head is slidably connected to the sliding frame, and the laser welding head is located above the honeycomb-shaped conveying belt.
[0011] The shaking and wiping cleaning mechanism comprises a conical cabin arranged in the main body, two functional rollers are rotatably arranged on the conical cabin, a plurality of plastic rubber plates are arranged on the functional rollers, the plurality of plastic rubber plates are located in the conical cabin, and a collecting box is slidably connected to the bottom of the conical cabin.
[0012] Further, the honeycomb-shaped conveying belt is coated with a layer of polytetrafluoroethylene fiber woven grid, the polytetrafluoroethylene fiber woven grid is woven after twisting a plurality of fine fibers into a strand, and there is a gap between the fibers at the intersection of the polytetrafluoroethylene fiber woven grid.
[0013] Further, a partition plate is arranged on the main body and located in the honeycomb-shaped conveying belt, and the partition plate and the second rotating roller are located at the upper portion of the conical cabin.
[0014] Further, the first rotating roller and the third rotating roller extend out of the first support and the second support at both ends respectively, and the two functional rollers extend out of the conical cabin at both ends respectively.
[0015] Further, the first rotating roller and the adjacent functional roller are connected by a first transmission belt, the third rotating roller and the adjacent functional roller are connected by a second transmission belt, the first rotating roller is connected by a third transmission belt, and the third rotating roller is connected by a fourth transmission belt.
[0016] Further, the two functional rollers are symmetrically arranged on the conical cabin, and the plurality of plastic rubber plates are circumferentially arranged on the functional rollers.
[0017] Further, an air extraction fan is mounted on the side wall of the conical cabin, a small wheel disc is connected to the fan blade of the air extraction fan, a large wheel disc is connected to one end of the functional roller, a wheel belt is connected to the small wheel disc and the large wheel disc, and a flip cover is hinged to the cutting cabin.
[0018] Further, the wheel diameter ratio of the small wheel disc and the large wheel disc is:
[0019] A method of a laser automatic cutting all-in-one machine, comprising the following steps:
[0020] S1, start the first and second speed reducer motors to operate through the controller, the first roller drives the honeycomb conveyor belt to operate, the first roller drives the functional roller to operate through the first transmission belt, the large pulley on the functional roller drives the small pulley to operate through the wheel belt, the fan operates to suck the inside of the conical cabin, under the action of the partition plate and the third roller, the conical cabin is in a negative pressure state, the conical cabin extracts air at the cutting cabin through the honeycomb conveyor belt, and the dust-free cloth is adsorbed on the honeycomb conveyor belt;
[0021] S2, the controller controls the transmission motor in the laser cutting mechanism to drive the transmission rod to operate, so that the slide on the slide seat is displaced in the X-axis direction relative to the dust-free cloth, and the laser cutting head is displaced in the Y-axis direction relative to the dust-free cloth on the slide, so that the laser cutting head performs laser cutting processing on the dust-free cloth;
[0022] S3, the black smoke generated by the laser cutting of the dust-free cloth by the laser cutting head is sucked away through the gap between the fibers at the intersection of the polytetrafluoroethylene fiber woven grid by the negative pressure of the conical cabin, reducing the occurrence of black spots on the honeycomb conveyor belt; the molten slag melted after laser cutting is adhered to the intersection of the honeycomb conveyor belt, and when the honeycomb conveyor belt circulates to the bottom, the plurality of plastic plates on the functional roller that synchronously operates with the honeycomb conveyor belt are subjected to the shaking, knocking and vibrating operation of the honeycomb conveyor belt under the centrifugal force and the plasticity of the plastic plates, so that the molten slag at the intersection of the honeycomb conveyor belt is vibrated and falls into the conical cabin, and under the setting of the inclined conical wall of the conical cabin, the molten slag in the conical cabin slides into the collection box.
[0023] (Three) beneficial effects
[0024] The laser automatic cutting all-in-one machine and method for dust-free cloth provided by the application have the following effects compared with the prior art:
[0025] 1, the polytetrafluoroethylene woven cloth has low friction coefficient and high melting point, and the power of the laser cutting head can be adjusted to cut the dust-free cloth without damaging the polytetrafluoroethylene woven grid cloth, and the black smoke generated by the laser cutting of the dust-free cloth by the laser cutting head is sucked away through the gap between the fibers at the intersection of the polytetrafluoroethylene fiber woven grid by the negative pressure of the conical cabin, reducing the occurrence of black spots on the honeycomb conveyor belt.
[0026] 2. After laser cutting, the molten material adheres to the intersection of the honeycomb conveyor belt. When the honeycomb conveyor belt circulates to the bottom, multiple plastic plates on the functional rollers that operate synchronously with the honeycomb conveyor belt perform a slapping and tapping operation on the honeycomb conveyor belt under the action of centrifugal force and its own plasticity. This causes the molten material at the intersection of the honeycomb conveyor belt to be shaken off into the conical chamber. With the conical chamber set with an inclined conical wall, the molten material in the conical chamber slides into the collection box, eliminating the need for manual cleaning and keeping the intersection of the honeycomb conveyor belt in a good unobstructed state.
[0027] 3. This invention starts the first and second geared motors through a controller. The first rotating roller drives the honeycomb conveyor belt, which in turn drives the functional roller through the first transmission belt. The large disc on the functional roller drives the small disc through the belt, causing the fan blades to rotate and create a suction effect inside the conical chamber. Under the action of the partition and the third rotating roller, the conical chamber is in a negative pressure state. The conical chamber draws air from the cutting chamber through the honeycomb conveyor belt, causing the cleanroom cloth to be adsorbed onto the honeycomb conveyor belt. A single power mechanism can be used to simultaneously transport the cleanroom cloth, generate negative pressure in the conical chamber, and clean the honeycomb conveyor belt using a slapping mechanism. The overall structure is simple, without complex design, energy-saving and environmentally friendly, and easy for operators to inspect and maintain. Attached Figure Description
[0028] To more clearly illustrate the technical solutions of the embodiments of this application, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0029] Figure 1 This is a first perspective view of a laser automatic cutting integrated machine for cleanroom cloth according to the present invention;
[0030] Figure 2 This is a second perspective view of a laser automatic cutting machine for cleanroom cloth according to the present invention;
[0031] Figure 3 This is a third perspective view of an integrated laser automatic cutting machine for cleanroom cloth according to the present invention;
[0032] Figure 4 This is a cross-sectional perspective view of a laser automatic cutting machine for cleanroom cloth according to the present invention;
[0033] Figure 5 This is a cross-sectional front view of a laser automatic cutting machine for cleanroom cloth according to the present invention;
[0034] Figure 6It is a first side view of a laser automatic cutting integrated machine for dust-free cloth according to the present application;
[0035] Figure 7 It is a second side view of a laser automatic cutting integrated machine for dust-free cloth according to the present application;
[0036] Corresponding component names of various reference numerals in the figure are as follows: 1, main body; 101, conical cabin; 2, cutting cabin; 3, collection box; 4, flip cover; 5, cutting assembly; 501, transmission rod; 502, screw rod; 503, sliding seat; 504, laser cutting head; 6, first support; 601, first rotating roller; 602, second rotating roller; 7, second support; 701, third rotating roller; 702, fourth rotating roller; 8, honeycomb conveyor belt; 9, discharge belt; 10, functional roller; 1011, plastic rubber plate; 11, sliding carriage; 12, first speed reducer motor; 13, large wheel disc; 14, fan blade; 15, small wheel disc; 16, wheel belt; 17, partition plate. DETAILED DESCRIPTION
[0037] The present application will be described in detail below with reference to the drawings and specific embodiments.
[0038] The embodiments of this application are explained with reference to the drawings and specific embodiments, and those skilled in the art can easily understand other advantages and effects of this application from the disclosure. Obviously, the described embodiments are only a part of the embodiments of this application, not all. This application can also be implemented or applied by other different specific embodiments, and various modifications or changes can be made to the details in this specification without departing from the spirit of this application. It should be noted that the following embodiments and features in the embodiments can be combined with each other without conflict. Based on the embodiments in this application, all other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of this application.
[0039] It should be noted that the various aspects of the embodiments described below are within the scope of the appended claims. It should be apparent that the aspects described herein can be embodied in a wide variety of forms and that any specific structure and / or function described herein is merely illustrative. Based on the teachings herein one skilled in the art should appreciate that an aspect described herein can be implemented independently of any other aspects and that two or more of these aspects can be combined in various ways. For example, an apparatus can be implemented or a method can be practiced using any number of the aspects set forth herein. In addition, such an apparatus can be implemented or such a method can be practiced using other structure and / or functionality in addition to or other than one or more of the aspects set forth herein.
[0040] It should be noted that the drawings provided in the following embodiments only schematically illustrate the basic concepts of the present application, and only the components related to the present application are shown in the drawings, not the number, shape and size of the components when actually implemented. The actual implementation of each component may be a random change, and the component layout may be more complex.
[0041] In addition, in the following description, specific details are provided in order to facilitate a thorough understanding of the examples. However, one skilled in the art will understand that the examples can be practiced without these specific details.
[0042] The technical solutions provided by the embodiments of the present application are described below with reference to the drawings.
[0043] Referring to Figures 1 to 7 The present application provides a laser automatic cutting all-in-one machine for dust-free cloth, comprising a main body 1, a feeding mechanism, a laser cutting mechanism 5 and a shaking and wiping cleaning mechanism are arranged on the main body 1, a cutting cabin 2 accommodating the laser cutting mechanism 5 is arranged on the main body 1, the feeding mechanism is arranged between the cutting cabin 2 and the main body 1, and a shaking and wiping cleaning mechanism is arranged below the feeding mechanism 1 in the main body 1;
[0044] The feeding mechanism comprises first and second supports 6 and 7 arranged on both sides of the main body 1, a hollow area is arranged in the middle of the main body 1, first and third rotating rollers 601 and 701 are rotatably connected to the first and second supports 6 and 7 respectively, second and fourth rotating rollers 602 and 702 are rotatably arranged in the hollow area of the main body 1, a honeycomb-shaped conveying belt 8 is arranged on the first and second rotating rollers 601 and 602, and a discharging belt 9 is arranged on the third and fourth rotating rollers 701 and 702;
[0045] The laser cutting mechanism comprises two sliding tables mounted on the upper part of the main body 1, a sliding seat 503 is slidably connected to each sliding table, a lead screw 503 is matched with the sliding seat 503, the lead screw 503 is drivingly connected with a transmission rod 501, a sliding carriage 11 is connected to the two sliding seats 503, a laser welding head 504 is slidably connected to the sliding carriage 11, and the laser welding head 504 is located above the honeycomb-shaped conveying belt 8;
[0046] The shaking and wiping cleaning mechanism comprises a conical cabin 101 arranged in the main body 1, two functional rollers 10 are rotatably arranged on the conical cabin 101, a plurality of plastic rubber plates 1011 are arranged on the functional rollers 10, the plurality of plastic rubber plates 1011 are located in the conical cabin 101, and a collection box 3 is slidably connected to the bottom of the conical cabin 101.
[0047] The honeycomb conveying belt 8 is coated with a layer of polytetrafluoroethylene fiber woven grid, which is woven by twisting multiple fine fibers into a strand, leaving gaps between the fibers at the intersection points of the polytetrafluoroethylene fiber woven grid. The main body 1 is provided with a partition plate 17 located inside the honeycomb conveying belt 8, and the partition plate 17 and the second rotating roller 602 are located at the upper port of the conical cabin 101.
[0048] Referring to Figures 3 to 7 , the first rotating roller 601 and the third rotating roller 701 extend out of the first support 6 and the second support 7 respectively, and the two functional rollers 10 extend outside the conical cabin 101 respectively. The first rotating roller 601 is connected with the adjacent functional roller 10 by a first transmission belt, and the third rotating roller 701 is connected with the adjacent functional roller 10 by a second transmission belt. The first rotating roller 601 is connected with a first speed reducer motor 12 through a third transmission belt, and the third rotating roller 701 is connected with a second speed reducer motor through a fourth transmission belt. The two functional rollers 10 are symmetrically arranged on the conical cabin 101, and a plurality of plastic plates 1011 are arranged in a circular array on the functional roller 10. An air extraction fan is installed on the side wall of the conical cabin 101, and a small wheel disc 15 is connected to the fan blade 14 of the air extraction fan. A large wheel disc 16 is connected to one end of the functional roller 10, and a wheel belt 16 is connected to the small wheel disc 15 and the large wheel disc 16. The cutting cabin 2 is hinged with a flip cover 4, and the wheel diameter ratio of the small wheel disc 15 and the large wheel disc 16 is 1:4.
[0049] Referring to Figures 1 to 7 , a method of a laser automatic cutting all-in-one machine, comprising the following steps:
[0050] S1, start the first speed reducer motor 12 and the second speed reducer motor through the controller, the first rotating roller 601 drives the honeycomb conveying belt 8 to run, the first rotating roller 601 drives the functional roller 10 to run through the first transmission belt, the large wheel disc 13 on the functional roller 10 drives the small wheel disc 15 to run through the wheel belt 16, and the fan blade 14 runs to suck the inside of the conical cabin 101. Under the action of the partition plate 17 and the third rotating roller 701, the conical cabin 101 is in a negative pressure state, and the conical cabin 101 extracts air from the cutting cabin 2 through the honeycomb conveying belt 8, so that the dust-free cloth is adsorbed on the honeycomb conveying belt 8;
[0051] S2, the controller controls the transmission motor in the laser cutting mechanism to drive the transmission rod 501 to run, so that the lead screw 502 drives the slide 503 on the slide 11 to move in the X-axis direction relative to the dust-free cloth, and the laser cutting head 504 moves in the Y-axis direction relative to the dust-free cloth on the slide 11, so that the laser cutting head 504 performs laser cutting processing on the dust-free cloth;
[0052] S3, the laser cutting head 504 carries out laser cutting of the black smoke generated by the dust-free cloth, and the black smoke is sucked away by the negative pressure of the conical cabin 101 through the gap between the fibers at the intersection of the woven grid of polytetrafluoroethylene fibers, reducing the occurrence of black spots on the honeycomb conveyor belt 8; the molten slag melted after laser cutting sticks to the intersection of the honeycomb conveyor belt 8, and when the honeycomb conveyor belt 8 circulates to the bottom, the multiple plastic plates 1011 on the functional roller 10 that operates synchronously with the honeycomb conveyor belt 8 perform a shaking and knocking operation on the honeycomb conveyor belt 8 under the action of centrifugal force and their own plasticity, causing the molten slag at the intersection of the honeycomb conveyor belt 8 to be shaken off and fall into the conical cabin 101, and under the arrangement of the inclined conical wall of the conical cabin 101, the molten slag in the conical cabin 101 slides into the collection box 3.
[0053] In the specification, the same or similar parts among the various embodiments can be referred to each other, and each embodiment focuses on the difference from other embodiments.
[0054] The above merely illustrates the specific embodiments of the present application, but the protection scope of the present application is not limited to this. Any person skilled in the art can easily think of changes or replacements within the technical scope disclosed in the present application, which should be covered in the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A laser automatic cutting all-in-one machine for dust-free cloth, comprising a main body (1), characterized in that: The main body (1) is provided with a feeding mechanism, a laser cutting mechanism (5) and a shaking and wiping cleaning mechanism, the main body (1) is provided with a cutting cabin (2) accommodating the laser cutting mechanism (5), the cutting cabin (2) and the main body (1) are provided with the feeding mechanism, and the main body (1) is provided with the shaking and wiping cleaning mechanism below the feeding mechanism; The feeding mechanism comprises first supports (6) and second supports (7) arranged on both sides of the main body (1), the middle part of the main body (1) is provided with an empty area, the first supports (6) and the second supports (7) are respectively rotationally connected with first rotating rollers (601) and third rotating rollers (701), the empty area of the main body (1) is rotationally provided with second rotating rollers (602) and fourth rotating rollers (702), the first rotating rollers (601) and the second rotating rollers (602) are provided with honeycomb-shaped conveying belts (8), and the third rotating rollers (701) and the fourth rotating rollers (702) are provided with discharging belts (9). The laser cutting mechanism comprises two sliding tables mounted on the upper part of the main body (1), each sliding table is slidably connected with a sliding seat (503), the sliding seat (503) is matched with a lead screw (502), the lead screw (502) is transmissionally connected with a transmission rod (501), two sliding seats (503) are connected with a sliding frame (11), the sliding frame (11) is slidably connected with a laser cutting head (504), and the laser cutting head (504) is located above the honeycomb-shaped conveying belt (8). The shaking and wiping cleaning mechanism comprises a conical cabin (101) arranged in the main body (1), two functional rollers (10) are rotationally arranged on the conical cabin (101), a plurality of plastic rubber plates (1011) are arranged on the functional rollers (10), the plurality of plastic rubber plates (1011) are located in the conical cabin (101), and a collecting box (3) is slidably connected to the bottom of the conical cabin (101). The two functional rollers (10) are symmetrically arranged on the conical cabin (101), and the plurality of plastic rubber plates (1011) are arranged in a circumferential array on the functional rollers (10). A suction fan is mounted on the side wall of the conical cabin (101), a small wheel disc (15) is connected to the fan blade (14) of the suction fan, a large wheel disc (13) is connected to one end of the functional roller (10), a wheel belt (16) is connected to the small wheel disc (15) and the large wheel disc (13), and a flip cover (4) is hinged to the cutting cabin (2).
2. The laser automatic cutting all-in-one machine for dust-free cloth according to claim 1, characterized in that: The honeycomb-shaped conveying belt (8) is coated with a layer of polytetrafluoroethylene fiber woven grid, the polytetrafluoroethylene fiber woven grid is woven after twisting a plurality of fine fibers into a strand, so that there is a gap between the fibers at the intersection of the polytetrafluoroethylene fiber woven grid.
3. The laser automatic cutting all-in-one machine for dust-free cloth according to claim 2, characterized in that: A partition (17) is arranged on the main body (1) and located in the honeycomb-shaped conveying belt (8), and the partition (17) and the second rotating roller (602) are located at the upper end of the conical cabin (101).
4. The laser automatic cutting all-in-one machine for dust-free cloth according to claim 3, characterized in that: The first rotating roller (601) and the third rotating roller (701) extend out of the first support (6) and the second support (7) respectively, and the two ends of the two functional rollers (10) extend outside the conical cabin (101).
5. The laser automatic cutting all-in-one machine for dust-free cloth according to claim 4, characterized in that: The first rotating roller (601) is connected with the adjacent functional roller (10) through a first transmission belt, the third rotating roller (701) is connected with the adjacent functional roller (10) through a second transmission belt, the first rotating roller (601) is connected with a first speed reducer motor (12) through a third transmission belt, and the third rotating roller (701) is connected with a second speed reducer motor through a fourth transmission belt.
6. The laser automatic cutting all-in-one machine for dust-free cloth according to claim 5, characterized in that: The wheel diameter ratio of the small wheel disc (15) and the large wheel disc (13) is 1:
4.
7. A method of a laser automatic cutting all-in-one machine, applied to the laser automatic cutting all-in-one machine of claim 6, characterized in that, The method comprises the following steps: S1, the first speed reducer motor (12) and the second speed reducer motor are started to run through the controller, the first rotating roller (601) drives the honeycomb-shaped conveying belt (8) to run, the first rotating roller (601) drives the functional roller (10) to run through the first transmission belt, the large wheel disc (13) on the functional roller (10) drives the small wheel disc (15) to run through the wheel belt (16), the fan blade (14) runs to suck the inside of the conical cabin (101), under the action of the baffle (17) and the third rotating roller (701), the conical cabin (101) is in a negative pressure state, the conical cabin (101) extracts the air at the cutting cabin (2) through the honeycomb-shaped conveying belt (8), and the dust-free cloth is adsorbed on the honeycomb-shaped conveying belt (8); S2, the controller controls the transmission motor in the laser cutting mechanism to drive the transmission rod (501) to run, so that the lead screw (502) drives the slide (11) on the sliding seat (503) to displace in the X-axis direction compared with the dust-free cloth, and the laser cutting head (504) displaces in the Y-axis direction compared with the dust-free cloth on the slide (11), so that the laser cutting head (504) performs laser cutting processing on the dust-free cloth; S3, the black smoke generated by the laser cutting of the dust-free cloth by the laser cutting head (504) is sucked away by the negative pressure of the conical cabin (101) through the gap between the fibers at the intersection of the polytetrafluoroethylene fiber woven grid, reducing the occurrence of black spots on the honeycomb-shaped conveying belt (8); the spatter melted after laser cutting is adhered to the intersection of the honeycomb-shaped conveying belt (8), when the honeycomb-shaped conveying belt (8) circulates to the bottom, the multiple plastic plates (1011) on the functional roller (10) which synchronously runs with the honeycomb-shaped conveying belt (8) perform the shaking, knocking and vibrating operation on the honeycomb-shaped conveying belt (8) under the action of the centrifugal force and the plasticity of the plastic plates (1011), so that the spatter at the intersection of the honeycomb-shaped conveying belt (8) is vibrated and falls into the conical cabin (101), and under the setting of the inclined conical wall of the conical cabin (101), the spatter in the conical cabin (101) slides into the collecting box (3).
Citation Information
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