A smart automated edge-sealing device and method for thermoplastic honeycomb panels
By designing an intelligent automated edge banding device for honeycomb panels, the device utilizes support and control components to achieve automated conveying and spacing control of the honeycomb panels, solving the problem of difficulty in controlling panel spacing through manual operation, and improving edge banding quality and storage efficiency.
Patent Information
- Application Number
- CN202311151495.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-09-07
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2043-09-07
AI Technical Summary
In the existing technology, during the edge sealing process of honeycomb panels, it is difficult to control the panel spacing manually, which affects the edge sealing quality and storage efficiency, and the panel spacing is inconsistent after edge sealing.
Design an intelligent automated edge-sealing device for thermoplastic honeycomb panels. Through the cooperation of support components and control components, the device realizes automated conveying and spacing control of honeycomb panels, ensuring that the honeycomb panels fall regularly on the conveyor belt and that the panel spacing is consistent.
It improves the edge banding quality and storage efficiency of honeycomb panels, reduces the labor intensity of workers, and enhances edge banding efficiency and neatness.
Smart Images

Figure CN117067606B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of honeycomb panel production technology, specifically to an intelligent automated edge-sealing device and method for thermoplastic honeycomb panels. Background Technology
[0002] Honeycomb panels are made by firmly bonding two thinner panels to both sides of a thicker honeycomb core material. Honeycomb panels are widely used in building decoration, aerospace, automobile manufacturing, shipbuilding, as well as electronic products and packaging materials. After the honeycomb panels are produced and processed, they need to be edge-banded. Traditional edge-banding is done manually by applying glue, applying strips, sanding and polishing, or by using some auxiliary equipment for semi-automatic edge-banding.
[0003] In existing technologies, although semi-automatic edge sealing has been achieved when sealing honeycomb panels, in actual operation, most of the honeycomb panels are manually fed into the edge sealing machine one by one. It is difficult to control the spacing between the honeycomb panels, which affects the edge sealing quality. Furthermore, when removing the honeycomb panels from the edge sealing machine after edge sealing, the different spacing between adjacent honeycomb panels affects the storage rhythm and the storage efficiency of the honeycomb panels after edge sealing. Summary of the Invention
[0004] The purpose of this invention is to provide an intelligent automated edge-sealing device and method for thermoplastic honeycomb panels to overcome the above-mentioned shortcomings in the prior art.
[0005] To achieve the above objectives, the present invention provides the following technical solution:
[0006] A thermoplastic honeycomb panel intelligent automated edge sealing equipment includes a base plate, a fixed platform fixedly mounted on the base plate, a sliding platform slidably mounted on the base plate, multiple pulleys rotatably mounted on both the fixed platform and the sliding platform, and a conveyor belt is arranged between the multiple pulleys. A stop bar is fixedly mounted on both the fixed platform and the sliding platform.
[0007] It also includes support components, which are used to support the honeycomb panels and drive the honeycomb panels to rise and fall;
[0008] The control component, when the pulley drives the conveyor belt for transmission, periodically causes the support component to lower the honeycomb panel, so that the honeycomb panel comes into frictional contact with the conveyor belt and is conveyed.
[0009] Preferably, the support assembly includes a support platform slidably mounted on a base plate, a plurality of square tubes slidably mounted on the support platform, a second spring being mounted between the square tubes and the support platform, the two ends of the second spring being fixedly connected to the square tubes and the support platform respectively, and ball bearings being rolled on the square tubes.
[0010] Preferably, a first inclined block is slidably disposed on the support platform, and a second inclined block is fixedly disposed on the square tube, with the first inclined block and the second inclined block abutting against each other;
[0011] A first spring is provided between the first inclined block and the support platform, and the two ends of the first spring are fixedly connected to the support platform and the first inclined block, respectively.
[0012] Preferably, a rotating tube is rotatably mounted on the support platform, a scroll is fixedly mounted on the rotating tube, a pull rope is provided between the scroll and the first inclined block, and the two ends of the pull rope are fixedly connected to the scroll and the first inclined block respectively, and are wound around the scroll.
[0013] Preferably, the control component includes two rotating rods, which are rotatably connected to a fixed platform and a sliding platform, respectively. Each of the two rotating rods has a polygonal block fixedly mounted on it, and both polygonal blocks are slidably connected to the rotating tube.
[0014] Preferably, a second gear is fixedly mounted on the rotating rod, and a rubber rack is fixedly mounted on the conveyor belt. The second gear meshes with the rubber rack for transmission, and a circular groove is provided on the pulley, which is adapted to the rubber rack.
[0015] Preferably, a first rack is fixedly provided on both the fixed platform and the sliding platform, and a first gear is rotatably provided on the support platform, with both first racks meshing with the first gear for transmission.
[0016] Preferably, a hydraulic rod is fixedly installed on the base plate, and the telescopic end of the hydraulic rod is fixedly connected to the sliding table;
[0017] The sliding platform is provided with multiple guide wheels, the base plate is fixedly provided with guide rails corresponding to the guide wheels, the guide wheels are provided on the guide rails, and the support platform is provided with multiple rollers.
[0018] Preferably, a drive motor is fixedly mounted on the fixed platform, and a polygonal rod is fixedly sleeved on the motor shaft of the drive motor. The polygonal rod is slidably connected to a pulley and is slidably and rotatably connected to the sliding platform.
[0019] A method for intelligent automated edge banding of thermoplastic honeycomb panels, comprising the following steps, using the aforementioned intelligent automated edge banding equipment for thermoplastic honeycomb panels:
[0020] S1: By sliding the sliding table, the distance between the sliding table and the fixed table can be adjusted to use honeycomb panels of different widths;
[0021] S2: The bottom honeycomb panel is then transported using a conveyor belt. During the transport, the support components support the honeycomb panels above.
[0022] S3: After the transfer is completed, the control component moves the support component with the honeycomb panel downwards and into contact with the conveyor belt, so that the conveyor belt can transfer the bottom honeycomb panel in sequence.
[0023] In the above technical solution, the intelligent automated edge-sealing equipment and method for thermoplastic honeycomb panels provided by the present invention have the following beneficial effects:
[0024] 1. In this embodiment, a support component is set to support the honeycomb panel. When the pulley drives the conveyor belt to transport the honeycomb panel, the rotation of the conveyor belt causes the control component to periodically lower the support component. The honeycomb panel on the support component falls and slides onto the conveyor belt in a regular manner and is transported by the conveyor belt. This controls the distance between the honeycomb panels, making it easier to store the honeycomb panels after edge sealing and improving efficiency.
[0025] It should be understood that the foregoing general description and the following detailed description are exemplary and illustrative only, and are not intended to limit this disclosure.
[0026] This application provides an overview of various implementations or examples of the technology described in this disclosure, and is not a full disclosure of the entire scope or all features of the disclosed technology. Attached Figure Description
[0027] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this invention. For those skilled in the art, other drawings can be obtained based on these drawings.
[0028] Figure 1 This is a schematic diagram of the overall structure provided for an embodiment of the present invention;
[0029] Figure 2 This is a schematic diagram of the overall front view structure provided in an embodiment of the present invention;
[0030] Figure 3 This is a schematic diagram of the internal structure of the support platform provided in an embodiment of the present invention;
[0031] Figure 4 This is a side cross-sectional view of a square tube provided in an embodiment of the present invention;
[0032] Figure 5 A cross-sectional view of the rotating tube provided in an embodiment of the present invention;
[0033] Figure 6 A cross-sectional view of the pulley provided in an embodiment of the present invention;
[0034] Figure 7This is a schematic diagram of a conveyor belt structure provided in an embodiment of the present invention;
[0035] Figure 8 This is a schematic diagram of a pulley structure provided in an embodiment of the present invention.
[0036] Explanation of reference numerals in the attached figures:
[0037] 1. Base plate; 11. Guide rail; 12. Hydraulic rod; 2. Fixed platform; 21. Drive motor; 22. Polygonal rod; 23. Stop bar; 24. First rack; 3. Sliding platform; 31. Guide wheel; 4. Support platform; 41. First gear; 42. Rotating tube; 43. Reel; 44. Pull rope; 45. First inclined block; 46. First spring; 47. Roller; 5. Square tube; 51. Ball bearing; 52. Second inclined block; 53. Second spring; 6. Pulley; 61. Circular groove; 62. Conveyor belt; 63. Rubber rack; 7. Rotating rod; 71. Polygonal block; 72. Second gear. Detailed Implementation
[0038] To make the objectives, technical solutions, and advantages of the embodiments of this disclosure clearer, the technical solutions of the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this disclosure. All other embodiments obtained by those skilled in the art based on the described embodiments of this disclosure without creative effort are within the scope of protection of this disclosure.
[0039] Please refer to 1-8. A smart automated edge-sealing device for thermoplastic honeycomb panels includes a base plate 1, a fixed platform 2 fixedly mounted on the base plate 1, and a sliding platform 3 slidably mounted on the base plate 1. Multiple pulleys 6 are rotatably mounted on both the fixed platform 2 and the sliding platform 3, and a conveyor belt 62 is arranged between the multiple pulleys 6. Stop bars 23 are fixedly mounted on both the fixed platform 2 and the sliding platform 3. The device also includes a support assembly for supporting the honeycomb panel and driving the honeycomb panel to rise and fall; and a control assembly that, when the pulleys 6 drive the conveyor belt 62, periodically lowers the support assembly carrying the honeycomb panel via the control assembly. The honeycomb panel is brought into frictional contact with the conveyor belt 62, and the honeycomb panel is conveyed. In this embodiment, a sliding table 3 is slidably provided on the base plate 1 to convey honeycomb panels of different widths. A pulley 6 is provided so that the pulley 6 drives the conveyor belt 62 when it rotates. After the conveyor belt 62 conveys the bottom honeycomb panel, the support component can be slid downward by the control component, so that the next honeycomb panel comes into frictional contact with the conveyor belt 62, so that the conveyor belt 62 can convey the next honeycomb panel. During the conveying process, the conveyor belt 62 works... The constant speed state ensures that the interaction with the control components is periodic, resulting in uniform spacing between adjacent honeycomb panels after conveying. This facilitates easier removal and storage of the honeycomb panels after edge sealing, improving storage efficiency and neatness, and enhancing edge sealing efficiency. The baffles 23 on both the fixed platform 2 and the sliding platform 3 allow the bottommost individual honeycomb panel to be conveyed via friction between the baffle and the conveyor belt 62 when the stacked honeycomb panels are placed on the support components. Furthermore, during the entire process of feeding the honeycomb panel into the edge banding machine for edge banding, it is only necessary to place the stacked honeycomb panels on the support assembly, which reduces the labor intensity of workers and improves the edge banding efficiency. In this embodiment, during the conveying process, one side of the fixed platform 2 is aligned with the edge banding side of the edge banding machine, so that after the honeycomb panel is conveyed into the edge banding machine, the side of the honeycomb panel that needs to be edge banded fits against the edge banding side of the edge banding machine, improving its edge banding quality. Moreover, the edge banding machine mentioned in this embodiment is existing technology, and its working principle and usage method are common knowledge and conventional technical means known to those skilled in the art, and will not be elaborated further.
[0040] Specifically, the support assembly includes a support platform 4 slidably mounted on the base plate 1. Multiple square tubes 5 are slidably mounted on the support platform 4. A second spring 53 is installed between the square tubes 5 and the support platform 4. The two ends of the second spring 53 are fixedly connected to the square tubes 5 and the support platform 4, respectively. Ball bearings 51 are rolled on the square tubes 5. In this embodiment, by using the square tubes 5 slidably mounted on the support platform 4 and the second springs 53, the honeycomb panels are supported by the force of the second springs 53 during transport, preventing the bottom honeycomb panels from collapsing. When the conveyor belt 62 is conveyed out, the upper stacked support plates tilt. Specifically, when the bottom honeycomb panel slides with the conveyor belt 62, it first disengages from the ball bearing 51 on the square tube 5 on the side furthest from the baffle. At this time, under the action of the second spring 53, the square tube 5 and the ball bearing 51 slide upward, and the ball bearing 51 contacts and supports the upper honeycomb panel. Then, it disengages from the ball bearing 51 on the side closer to the baffle. After disengagement, under the action of the second spring 53, it supports the other side of the upper honeycomb panel, so that the honeycomb panel can remain stable.
[0041] In a further embodiment of the present invention, a first inclined block 45 is slidably disposed on the support platform 4, and a second inclined block 52 is fixedly disposed on the square tube 5, with the first inclined block 45 abutting against the second inclined block 52; a first spring 46 is disposed between the first inclined block 45 and the support platform 4, and the two ends of the first spring 46 are respectively fixedly connected to the support platform 4 and the first inclined block 45. In this embodiment, the lifting and lowering of the square tube 5 is controlled by setting the first inclined block 45 and the second inclined block 52. Specifically, when the first inclined block 45 slides to compress the first spring 46, the first inclined block 45 and the second inclined block 52 disengage, so that the square tube 5, after being subjected to the gravity of the honeycomb panel, compresses the second spring 53 and slides downward, causing the honeycomb panel to slide downward, contact the conveyor belt 62, and move with the conveyor belt 62. When the bottom honeycomb panel slides, it still supports the upper honeycomb panel until it disengages from the ball bearing 51. After the push, the ball bearing 51 and the square tube 5 are not subjected to any pressure. Under the reset action of the second spring 53, the inclined surface of the second inclined block 52 interacts with the inclined surface of the first inclined block 45, compressing the first spring 46 and sliding upward so that the ball bearing 51 contacts the honeycomb panel and provides support. After the square tube 5 slides upward, the second inclined block 52 rises above the first inclined block 45. Under the reset action of the first spring 46, the first inclined block 45 abuts against the bottom of the second inclined block 52 to support it. This prevents the square tube 5 from sliding downward and squeezing the second spring 53 under the weight of the honeycomb panel, ensuring the stability of the square tube 5's support for the honeycomb panel.
[0042] Furthermore, a rotating tube 42 is rotatably mounted on the support platform 4, and a scroll 43 is fixedly mounted on the rotating tube 42. A pull rope 44 is provided between the scroll 43 and the first inclined block 45. The two ends of the pull rope 44 are fixedly connected to the scroll 43 and the first inclined block 45 respectively, and are wound around the scroll 43. In this embodiment, by setting the rotating tube 42 and the scroll 43 on the rotating tube 42, the scroll 43 can pull the first inclined block 45 to slide by winding the pull rope 44 when rotating, so that it is separated from the second inclined block 52. At this time, under the pressure of the honeycomb plate, the square tube 5 can squeeze the second spring 53 and slide downward, so that the honeycomb plate can make frictional contact with the conveyor belt 62, and the honeycomb plate can be conveyed by the conveyor belt 62.
[0043] Furthermore, the control component includes two rotating rods 7, which are rotatably connected to the fixed platform 2 and the sliding platform 3, respectively. Each of the two rotating rods 7 is fixedly provided with a polygonal block 71, and both polygonal blocks 71 are slidably connected to the rotating tube 42. In this embodiment, by fixing the polygonal block 71 on the rotating rod 7, the rotating rod 7 can drive the rotating tube 42 to rotate when it rotates. Furthermore, by rotatably setting the two rotating rods 7 on the fixed platform 2 and the sliding platform 3, the rotating tube 42 can still be driven to rotate through the polygonal block 71 after adjusting the distance between the fixed platform 2 and the sliding platform 3.
[0044] In a further embodiment of the present invention, a second gear 72 is fixedly mounted on the rotating rod 7, and a rubber rack 63 is fixedly mounted on the conveyor belt 62. The second gear 72 and the rubber rack 63 mesh and drive each other. A circular groove 61 is provided on the pulley 6, and the circular groove 61 is adapted to the rubber rack 63. In this embodiment, after the conveyor belt 62 rotates for one cycle, the rubber rack 63 and the second gear 72 mesh and drive each other again to drive the rotating rod 7 to rotate. The first inclined block 45 and the second inclined block 52 are separated by the winding of the pull rope 44 through the rotating tube 42 and the winding shaft 43, so that the square tube 5 descends and the honeycomb plate comes into contact with the conveyor belt 62.
[0045] In the embodiments provided by the present invention, a first rack 24 is fixedly provided on both the fixed platform 2 and the sliding platform 3, and a first gear 41 is rotatably provided on the support platform 4. Both first racks 24 mesh with the first gear 41 for transmission. In this embodiment, when the sliding platform 3 slides, the transmission is achieved through the first rack 24 on the sliding platform 3 and the first gear 41, and through the first gear 41 and the first rack 24 on the fixed platform 2. This allows the support platform 4 to always be located in the middle position between the sliding platform 3 and the fixed platform 2 when it slides with the sliding platform 3, making the support platform 4 more stable in supporting the honeycomb panel.
[0046] Specifically, a hydraulic rod 12 is fixedly installed on the base plate 1, and the telescopic end of the hydraulic rod 12 is fixedly connected to the sliding table 3; multiple guide wheels 31 are provided on the sliding table 3, and a guide rail 11 corresponding to the guide wheels 31 is fixedly installed on the base plate 1. The guide wheels 31 are installed on the guide rail 11, and multiple rollers 47 are provided on the support platform 4. In this embodiment, the sliding of the sliding table 3 is controlled by the hydraulic rod 12, which saves time and effort, and the sliding distance is easy to control. By setting the guide wheels 31 and the slide rail, the sliding direction of the sliding table 3 is restricted to prevent it from deviating. The rollers 47 are used to reduce the friction between the support platform 4 and the base plate 1 when the platform slides.
[0047] In a further embodiment of the present invention, a drive motor 21 is fixedly mounted on the fixed platform 2, and a polygonal rod 22 is fixedly sleeved on the motor shaft of the drive motor 21. The polygonal rod 22 is slidably connected to the pulley 6, and the polygonal rod 22 is slidably and rotatably connected to the sliding platform 3. In this embodiment, the polygonal rod 22 enables the pulley 6 to rotate even after the sliding platform 3 has slid, thereby improving the stability of the drive motor 21 driving the conveyor belt 62.
[0048] This invention also provides an intelligent automated edge banding method for thermoplastic honeycomb panels. The method, which involves edge banding using the aforementioned intelligent automated edge banding equipment for thermoplastic honeycomb panels, includes the following steps:
[0049] S1: By sliding the sliding table, the distance between the sliding table and the fixed table can be adjusted to use honeycomb panels of different widths;
[0050] S2: The bottom honeycomb panel is then transported using a conveyor belt. During the transport, the support components support the honeycomb panels above.
[0051] S3: After the transfer is completed, the control component moves the support component with the honeycomb panel downwards and into contact with the conveyor belt, so that the conveyor belt can transfer the bottom honeycomb panel in sequence.
[0052] Working principle: When sealing the edges of the honeycomb panel, the sliding table 3 is first slidable by the hydraulic rod 12. The distance between the sliding table 3 and the fixed table 2 is adjusted to accommodate honeycomb panels of different widths. Then, the honeycomb panels are stacked on the support table 4. At this time, the first inclined block 45 is below the second inclined block 52, so that the square tube 5 supports the honeycomb panel through the ball bearing 51. The honeycomb panel is not in contact with the conveyor belt 62. Then, the drive motor 21 is started, which makes the polygonal rod 22 rotate, driving the pulley 6 to rotate, thus rotating the conveyor belt 62. When the conveyor belt 62 rotates to the position of the rubber rack 63 and the second gear 72, the rubber rack 63 and the second gear 72 mesh and transmit, so that the rotating rod 7 passes through the multi-... The angular block 71 drives the rotating tube 42 to rotate. At this time, the roller 43 rotates with the rotating tube 42 and retracts the pull rope 44. The pull rope 44 pulls the first inclined block 45 to compress the first spring 46. At this time, the second inclined block 52 loses the limit of the first inclined block 45. Under the action of the gravity of the honeycomb panel, the square tube 5 slides downward and squeezes the second spring 53. At this time, the honeycomb panel moves down and the bottom honeycomb panel contacts the conveyor belt 62. Under the action of the stop bar 23, the bottom honeycomb panel is conveyed to the edge sealing machine with the conveyor belt 62. When the bottom honeycomb panel slides with the conveyor belt 62, the rubber rack 63 disengages from the second gear 72. The first spring 46 returns to its original position. When the first inclined block 45 is reset, its inclined surface contacts the inclined surface of the second inclined block 52. As the honeycomb panel slides with the conveyor belt 62, it first disengages from the ball bearing 51 on the side farther from the stop bar 23. At this time, under the reset action of the second spring 53, the second inclined block 52 on the square tube 5 pushes the first inclined block 45 through its inclined surface, causing the square tube 5 to rise. This allows the square tube 5 and the ball bearing 51 to support the upper honeycomb panel. Subsequently, the bottom honeycomb panel continues to slide, disengaging from the ball bearing 51 on the side closer to the stop bar 23. Simultaneously, under the action of the second spring 53, the square tube 5 and the ball bearing 51 on this side also support the upper honeycomb panel. This allows the upper honeycomb panels to remain stable while the conveyor belt 62 moves the bottom honeycomb panel. Subsequently, the bottom honeycomb panel is completely fed into the edge banding machine, and the conveyor belt 62 continues to work, once again engaging with the second gear 72 via the rubber rack 63 to transport the honeycomb panel. The principle is the same as above. Because the rotational speed of the conveyor belt 62 is constant, the engagement of the rubber rack 63 and the second gear 72 on the conveyor belt 62 is also periodic, which can fix the interval between the honeycomb panels being transported into the edge banding machine. This greatly improves the portability of the honeycomb panels after edge banding when they are removed from the edge banding machine.
[0053] The foregoing has only described certain exemplary embodiments of the present invention by way of illustration. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the foregoing drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.
Claims
1. A thermoplastic honeycomb panel intelligent automatic edge sealing device, comprising a bottom plate (1), characterized in that, The bottom plate (1) is fixedly provided with a fixed table (2), and the bottom plate (1) is slidably provided with a sliding table (3), a plurality of pulleys (6) are rotatably arranged on the fixed table (2) and the sliding table (3), and a conveyor belt (62) is arranged between the plurality of pulleys (6); the fixed table (2) and the sliding table (3) are both fixedly provided with a blocking rod (23); It also includes a support assembly for supporting the honeycomb plate and driving the honeycomb plate to rise and fall; The control assembly periodically drives the support assembly to lower the honeycomb plate with the conveyor belt (62) passing through the control assembly, so that the honeycomb plate is in frictional contact with the conveyor belt (62) and is conveyed. The support assembly includes a support table (4) slidably arranged on the bottom plate (1), a plurality of square tubes (5) slidably arranged on the support table (4), and a second spring (53) arranged between the square tube (5) and the support table (4). The support table (4) is slidably provided with a first inclined block (45), and the square tube (5) is fixedly provided with a second inclined block (52). The first inclined block (45) and the support table (4) are provided with a first spring (46), and the two ends of the first spring (46) are fixedly connected with the support table (4) and the first inclined block (45). The support table (4) is rotatably provided with a rotating tube (42), the rotating tube (42) is fixedly provided with a reel (43), the reel (43) and the first inclined block (45) are provided with a pull rope (44), and the two ends of the pull rope (44) are fixedly connected with the reel (43) and the first inclined block (45) and are wound on the reel (43). The control assembly includes two rotating rods (7), the two rotating rods (7) are rotatably connected with the fixed table (2) and the sliding table (3), and the two rotating rods (7) are fixedly provided with polygonal blocks (71). The rotating rod (7) is fixedly provided with a second gear (72), the conveyor belt (62) is fixedly provided with a rubber rack (63), the second gear (72) and the rubber rack (63) are in meshing transmission, the pulley (6) is provided with a circular groove (61), and the circular groove (61) is matched with the rubber rack (63).
2. The intelligent automatic edge sealing device for thermoplastic honeycomb panel according to claim 1, characterized in that, The fixed table (2) and the sliding table (3) are both fixedly provided with a first rack (24), and the support table (4) is rotatably provided with a first gear (41).
3. The intelligent automatic edge banding apparatus for thermoplastic honeycomb panel according to claim 1, characterized in that, The bottom plate (1) is fixedly provided with a hydraulic rod (12), and the telescopic end of the hydraulic rod (12) is fixedly connected with the sliding table (3). A plurality of guide wheels (31) are arranged on the sliding table (3), a plurality of guide rails (11) corresponding to the guide wheels (31) are fixedly arranged on the bottom plate (1), the guide wheels (31) are arranged on the guide rails (11), and a plurality of rollers (47) are arranged on the support table (4).
4. The intelligent automatic edge banding apparatus for thermoplastic honeycomb panel according to claim 1, characterized in that, A driving motor (21) is fixedly arranged on the fixed table (2), a polygonal rod (22) is fixedly sleeved on a motor shaft of the driving motor (21), the polygonal rod (22) is slidably connected with the belt wheel (6), and the polygonal rod (22) is slidably and rotatably connected with the sliding table (3).
5. A method of intelligent and automatic edge sealing of thermoplastic honeycomb panels by means of the intelligent and automatic edge sealing device according to any one of claims 1 to 4, characterized in that The method for intelligently and automatically sealing edges of thermoplastic honeycomb plates comprises the following steps: S1: adjusting the distance between the sliding table and the fixed table by sliding the sliding table, so as to use honeycomb plates with different widths; S2: conveying the bottommost honeycomb plate by using the conveying belt, and supporting the upper honeycomb plate by using the supporting assembly while conveying; S3: after the conveying is completed, the supporting assembly is controlled to move downward with the honeycomb plate and contact the conveying belt, so that the conveying belt can convey the bottommost honeycomb plate in sequence.
Citation Information
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