Cutting device for diffusion plate machining

By designing a cutting device including a fixed-distance segmented unit and a multi-stage cutting unit, the problem of inefficient cutting in the prior art is solved, and multi-segment equidistant cutting of the diffuser plate is realized, and cutting efficiency and accuracy are improved.

CN120170819AInactive Publication Date: 2025-06-20HUNAN HONGYANG ELECTRIC TECH CO LTD
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Patent Information

Application Number
CN202510621879.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-15
Publication Date
2025-06-20
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing diffusion plate cutting device can only perform a single cutting at a time during the cutting process, and the cutting efficiency is inefficient and cannot meet the multi-stage isometric cutting requirements in practical applications.

Method used

A cutting device including a fixed-distance segmentation unit and a multi-stage cutting unit is designed, and multi-stage equidistance cutting of the diffuser plate is achieved through a combination of end fixing components, mobile drive control components, segmented support components and synchronous distance adjustment components.

Benefits of technology

Multi-stage equidistance cutting of the diffuser plate is achieved, which significantly improves the cutting efficiency and ensures the accuracy and reliability of the cutting.

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Abstract

The invention relates to the technical field of diffusion plate machining, in particular to a cutting device for diffusion plate machining. The fixed-distance segmenting unit is connected with the cutting workbench and used for being matched with the cutting workbench to complete segmented supporting of the diffusion plate and completing transverse fixing of one end of the diffusion plate; the multi-section type cutting unit is arranged on the outer side of the fixed-distance segmentation unit, is in sliding connection with the cutting workbench and is connected with the fixed-distance segmentation unit; wherein the fixed-distance segmentation unit comprises an end fixing assembly, a movable driving control assembly, a segmented supporting assembly and a synchronous distance adjusting assembly, the fixed-distance segmentation unit is arranged and matched with the positioning cutting unit, a diffusion plate to be cut can be supported and fixed, the supporting distance and the cutting position are synchronously adjusted according to requirements, and the fixed-distance segmentation unit is arranged and matched with the positioning cutting unit; and therefore, multi-section equidistant cutting of the diffusion plate is completed at a time, the cutting efficiency is greatly improved, and the cutting accuracy and reliability are guaranteed.
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Description

Technical Field

[0001] The present invention relates to the technical field of diffusion plate processing, and particularly to a cutting device for diffusion plate processing. Background Art

[0002] The biggest feature of the diffusion plate is that it causes great interference to light. No matter what the original designed light distribution curve is, as long as the light passes through the diffusion plate, it will change the beam angle to 160 - 176°. According to different uses, the materials used for the diffusion plate are also different, and it can be composed of glass, polystyrene (PS), polycarbonate (PC), polyethylene (PE), polypropylene (PP), polyvinyl chloride (PVC), polyethylene terephthalate (PET), acrylic (PMMA), methyl methacrylate (MMA), and so on.

[0003] During the production process of the diffusion plate, a cutting device is needed to cut the large-sized diffusion plate into specific sizes. The existing cutting devices can only perform single cutting each time during the cutting process, resulting in low cutting efficiency. Therefore, in view of the above current situation, there is an urgent need to develop a cutting device for diffusion plate processing to overcome the deficiencies in current practical applications. Summary of the Invention

[0004] The purpose of the present invention is to provide a cutting device for diffusion plate processing to solve the problems raised in the above background art.

[0005] To achieve the above purpose, the present invention provides the following technical solutions: A cutting device for diffusion plate processing, comprising: a cutting workbench; a fixed-distance segmentation unit, which is connected to the cutting workbench and is used to cooperate with the cutting workbench to complete the segmented support of the diffusion plate and complete the lateral fixation of one end of the diffusion plate; a multi-segment cutting unit, which is arranged outside the fixed-distance segmentation unit, is slidably connected to the cutting workbench, and is connected to the fixed-distance segmentation unit, and is used to cooperate with the fixed-distance segmentation unit to complete the multi-segment equidistant cutting of the diffusion plate; wherein, the fixed-distance segmentation unit includes: a head-end fixing component, a moving driving and controlling component, a segmented supporting component, and a synchronous distance adjustment component. The head-end fixing component is fixedly connected to the outside of the cutting workbench and is connected to the moving driving and controlling component arranged inside the cutting workbench, and is used to cooperate with the moving driving and controlling component to fix one end of the diffusion plate. A segmented supporting component slidably connected to the cutting workbench is arranged outside the head-end fixing component. The segmented supporting component is connected to the head-end fixing component and is connected to the multi-segment cutting unit, and is used to cooperate with the cutting workbench to complete the segmented support of the diffusion plate. The segmented supporting component is connected to the moving driving and controlling component through the synchronous distance adjustment component, and is used to cooperate with the moving driving and controlling component to synchronously complete the adjustment of the support distance and the cutting position.

[0006] As a further solution of the present invention: The end fixing assembly includes: an installation side box, a energy conduction cavity, an energy transmission pipe, a control board, a communication branch pipe, a spacing adjuster, a C-shaped support seat, an induction support pipe, a sensing air cavity and a clamping plate. The installation side box is fixedly connected to the side wall of the cutting table. On the inner side of the end shell wall of the installation side box away from the cutting table, energy conduction cavities are symmetrically arranged. Between both energy conduction cavities and the cutting table, energy transmission pipes fixedly connected to the installation side box are arranged. The energy transmission pipes are communicated with the energy conduction cavities. A control board is arranged on the outer side of the energy transmission pipes. One side of the control board is connected to the moving drive and control assembly, and the other end is connected to an energy transmission device slidably connected to the inner side of the energy transmission pipe, which is used to cooperate with the moving drive and control assembly to realize the diversion of the air inside the energy conduction cavity. Communication branch pipes are arranged on the outer sides of both energy conduction cavities. The communication branch pipes are fixedly connected to the installation side box. One end of the communication branch pipe is communicated with the energy conduction cavity, and the other end is communicated with a sensing air cavity arranged inside the C-shaped support seat. The C-shaped support seat is fixedly connected to the outer side of the top of the cutting table. The sensing air cavities are symmetrically arranged inside the C-shaped support seat. Clamping plates are also symmetrically arranged inside the C-shaped support seat. An induction support pipe is arranged between the clamping plate and the sensing air cavity on the same side. The induction support pipe is fixedly connected to the C-shaped support seat and is communicated with the sensing air cavity. A sensing device fixedly connected to the clamping plate is slidably connected to the inner side of the induction support pipe. A spacing adjuster fixedly connected to the C-shaped support seat is arranged between both clamping plates. The other end of the spacing adjuster is connected to the segmented support assembly.

[0007] As a further solution of the present invention: The moving drive and control assembly includes: a servo motor, a threaded rod, a connecting sliding seat, a control slider, a linking block and a top push rod. The servo motor is fixedly connected to the inside of the cutting table. The output end of the servo motor is fixedly connected to the threaded rod. A control slider is threadedly connected to the outer side of the threaded rod. A connecting sliding seat is slidably connected to the outer side of the control slider. The connecting sliding seat is slidably connected to the inner wall of the cutting table and is fixedly connected to a linking block slidably connected to the inner side of the connecting sliding seat. A spring is fixedly connected between the connecting sliding seat and the linking block. A top push rod is fixedly connected to the outer wall of the connecting sliding seat close to the installation side box. The other end of the top push rod is fixedly connected to the control board.

[0008] As a further solution of the present invention: The segmented support assembly includes: a support base, a directional guide plate, a supporting platform, conveying rollers, a distance control circular tube, an energy conversion tube, a connecting rod, a positioning block and a control piston. A plurality of the support bases are slidably connected and arranged inside the cutting table, and are slidably connected with the directional guide plate fixedly connected inside the cutting table. The outer wall of one side of the support base is fixedly connected with a distance adjuster. A distance control circular tube connected to the multi-segment cutting unit is arranged between adjacent support bases. Piston grooves are symmetrically arranged inside the distance control circular tube. Control pistons are slidably connected inside both piston grooves on both sides. Energy conversion tubes fixedly connected with the distance control circular tube are arranged on the outer sides of the opposite ends of both control pistons. One end of the energy conversion tube is communicated with the piston groove on the same side, and the other end is connected with the synchronous distance adjustment assembly. Connecting rods are fixedly connected to the outer sides of the other ends of both control pistons. A positioning groove is arranged on the rod wall of the connecting rod, and a positioning block fixedly connected with the distance control circular tube is slidably connected inside the positioning groove. A supporting platform is fixedly connected to the outer side of the top end of the support base. A plurality of conveying rollers are rotatably connected inside the supporting platform and are used to cooperate with the support base to complete the support of the diffusion plate.

[0009] As a further solution of the present invention: The synchronous distance adjustment assembly includes: an energy transmission frame, an energy driving tube, a transfer box, a control tube, a limiting plate, a cooperative control plate, a T-shaped slider and a guiding block. The transfer box is fixedly connected and arranged inside the cutting table. An energy driving tube is fixedly connected to the bottom box wall of the transfer box. A transmission control piston is slidably connected inside the energy driving tube. An energy transmission frame is fixedly connected to the outer side of the transmission control piston close to the control slider. The energy transmission frame is slidably connected with the guiding block fixedly connected inside the energy driving tube. A control tube is also fixedly connected to the box wall of the transfer box. A connecting device is slidably connected inside the control tube. The other end of the connecting device is fixedly connected with a cooperative control plate arranged outside the transfer box. A T-shaped slider is slidably connected to the plate wall of the cooperative control plate. The T-shaped slider is fixedly connected with a pressure guiding device. The pressure guiding device is slidably connected with the energy conversion tube. A positioning spring is also fixedly connected between the pressure guiding device and the energy conversion tube.

[0010] As a further solution of the present invention: The multi-segment cutting unit includes: an L-shaped support rod, a connecting seat, an electric telescopic device, a support frame, a control motor, an adjusting rotating rod, a mounting seat, a cutting machine and an auxiliary locking assembly. One end of the L-shaped support rod is fixedly connected with the distance control circular tube, and the other end is fixedly connected with a connecting seat slidably connected to the cutting table. An electric telescopic device is fixedly connected to the outer side of the bottom end of the connecting seat. The other end of the electric telescopic device is fixedly connected with the support frame. A control motor is fixedly connected inside the support frame. The output end of the control motor is fixedly connected with the adjusting rotating rod. The adjusting rotating rod is threadedly connected with a mounting seat. The mounting seat is slidably connected with the inner wall of the support frame. A cutting machine is fixedly connected to the mounting seat. An auxiliary locking assembly connected to the support base is also arranged outside the support frame and is used to cooperate with the lifting of the support frame to realize the longitudinal fixation of the diffusion plate located on the conveying rollers.

[0011] As a further solution of the present invention: The auxiliary locking assembly includes: a synchronous slide plate, a collaborative guide plate, a fixing frame, a rhombic slide column, a locking pressure plate and a synchronous seat. The collaborative guide plate is fixedly connected and arranged on the outside of the support frame. The outside of the collaborative guide plate is slidably connected with a fixing frame. The inside of the bottom end of the fixing frame is slidably connected with a rhombic slide column. A spring is fixedly connected between the rhombic slide column and the fixing frame. The outside of the bottom end of the rhombic slide column is fixedly connected with a locking pressure plate. The locking pressure plate is arranged opposite to the supporting table. The outside of the bottom end of the locking pressure plate is fixedly connected with a synchronous slide plate. The synchronous slide plate is slidably connected with the synchronous seat fixedly connected to the outside of the support base, so as to realize the synchronous lateral movement of the locking pressure plate and the support base.

[0012] Compared with the prior art, the beneficial effects of the present invention are: When the device is running, the diffusion plate is placed on the segmented support assembly and one end abuts against the end fixing assembly. According to the requirements of the cutting size, the distance between the end fixing assembly and the segmented support assembly is adjusted by using the end fixing assembly. The moving drive and control assembly can first drive the end fixing assembly to fix one end of the diffusion plate. Subsequently, the moving drive and control assembly completes the adjustment of the segmented support assembly through the synchronous distance adjustment assembly. The segmented support assembly can not only adjust the support distance, but also drive the multi-segment cutting unit to move synchronously during the adjustment process. Cooperating with the adjusted segmented support assembly, multi-segment equidistant cutting of the diffusion plate is completed. After taking out the cut diffusion plate, by setting the fixed-distance segmentation unit and cooperating with the multi-segment cutting unit, the diffusion plate to be cut can be supported and fixed, and the support distance and cutting position can be synchronously adjusted according to the requirements, so as to complete the multi-segment equidistant cutting of the diffusion plate at one time, greatly improving the cutting efficiency and ensuring the accuracy and reliability of the cutting. Description of the Drawings

[0013] Figure 1 It is a schematic structural diagram of a cutting device for diffusion plate processing.

[0014] Figure 2 It is a cross-sectional view of a cutting device for diffusion plate processing.

[0015] Figure 3 It is a schematic structural diagram of a multi-segment cutting unit in a cutting device for diffusion plate processing.

[0016] Figure 4 It is a schematic structural diagram of an end fixing assembly in a cutting device for diffusion plate processing.

[0017] Figure 5 It is a cross-sectional view of an end fixing assembly in a cutting device for diffusion plate processing.

[0018] Figure 6The schematic diagram is a structural diagram of a mobile drive control component in a cutting device for processing a diffusion plate.

[0019] Figure 7 It is a schematic diagram of the structure of the segmented support assembly in the cutting device for processing the diffusion plate.

[0020] Figure 8 for Figure 7 Schematic diagram of the enlarged structure at point A in the middle.

[0021] Figure 9 The schematic diagram is a structural diagram of a synchronous distance adjustment component in a cutting device for processing a diffusion plate.

[0022] Figure 10 The present invention is a cross-sectional view of a synchronous distance adjustment component in a cutting device for processing a diffusion plate.

[0023] Figure 11 It is a schematic diagram of the structure of a multi-stage cutting unit in a cutting device for processing a diffusion plate.

[0024] Figure 12 It is a schematic diagram of the structure of the auxiliary locking assembly in the cutting device for processing the diffusion plate.

[0025] In the figure: 1. cutting table; 2. diffusion plate; 3. multi-section cutting unit; 4. fixed distance segmentation unit; 5. end fixing assembly; 6. mobile drive control assembly; 7. segmented support assembly; 8. synchronous distance adjustment assembly; 9. installation side box; 10. energy guiding cavity; 11. energy transmission pipe; 12. transmission control board; 13. energy transmission device; 14. connecting branch pipe; 15. spacing adjuster; 16. 匚-shaped support seat; 17. induction support pipe; 18. induction control air cavity; 19. clamping plate; 20. induction control device; 21. servo motor; 22. threaded rod; 23. connecting slide seat; 24. control slide block; 25. carrying block; 26. synchronous slide plate; 27. push rod; 28. support base; 29. ​​directional guide plate; 30. Support table; 31. Conveyor roller; 32. Distance control round tube; 33. Energy transfer tube; 34. Connecting rod; 35. Positioning block; 36. Control piston; 37. Energy transmission frame; 38. Drive tube; 39. Adapter box; 40. Control tube; 41. Limit plate; 42. Pressure-conducting device; 43. Connecting device; 44. Coordinating plate; 45. T-shaped slider; 46. Guide block; 47. L-shaped support rod; 48. Connecting seat; 49. Electric telescope; 50. Support frame; 51. Control motor; 52. Adjusting rotating rod; 53. Mounting seat; 54. Cutting machine; 55. Auxiliary locking assembly; 56. Cooperative guide plate; 57. Fixed frame; 58. Prismatic sliding column; 59. Locking pressure plate; 60. Synchronous seat. DETAILED DESCRIPTION

[0026] The technical solution of the present application is further described in detail below in conjunction with specific implementation methods.

[0027] Embodiments of the present application will be described in detail below. Examples of the embodiments are shown in the accompanying drawings, where the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present application and should not be construed as a limitation of the present application.

[0028] Please refer to Figure 1 , Figure 2 and Figure 3 , in an embodiment of the present invention, a cutting device for processing a diffusion plate includes: a cutting workbench 1; a fixed-distance segmentation unit 4, which is connected to the cutting workbench 1 and is used to cooperate with the cutting workbench 1 to complete the segmented support of the diffusion plate 2 and complete the lateral fixation of one end of the diffusion plate 2; a multi-segment cutting unit 3, which is arranged outside the fixed-distance segmentation unit 4, is slidably connected to the cutting workbench 1, and is connected to the fixed-distance segmentation unit 4, and is used to cooperate with the fixed-distance segmentation unit 4 to complete the multi-segment equidistant cutting of the diffusion plate 2; wherein, the fixed-distance segmentation unit 4 includes: a head fixing component 5, a moving driving and controlling component 6, a segmented support component 7 and a synchronous distance adjustment component 8. The head fixing component 5 is fixedly connected and arranged outside the cutting workbench 1 and is connected to the moving driving and controlling component 6 arranged inside the cutting workbench 1, and is used to cooperate with the moving driving and controlling component 6 to realize the fixation of one end of the diffusion plate 2. A segmented support component 7 slidably connected to the cutting workbench 1 is arranged outside the head fixing component 5. The segmented support component 7 is connected to the head fixing component 5 and is connected to the multi-segment cutting unit 3, and is used to cooperate with the cutting workbench 1 to complete the segmented support of the diffusion plate 2. The segmented support component 7 is connected to the moving driving and controlling component 6 through the synchronous distance adjustment component 8, and is used to cooperate with the moving driving and controlling component 6 to synchronously complete the adjustment of the support spacing and the cutting position.

[0029] In this embodiment, when the device is running, the diffusion plate 2 is placed on the segmented support assembly 7, and one end thereof abuts against the end fixing assembly 5. According to the requirements of the cutting size, the distance between the end fixing assembly 5 and the segmented support assembly 7 is adjusted by using the end fixing assembly 5. The moving drive and control assembly 6 can first drive the end fixing assembly 5 to fix one end of the diffusion plate 2. Subsequently, the moving drive and control assembly 6 completes the adjustment of the segmented support assembly 7 through the synchronous distance adjustment assembly 8. The segmented support assembly 7 can not only adjust the support distance, but also drive the multi-segment cutting unit 3 to move synchronously during the adjustment process. Cooperating with the adjusted segmented support assembly 7, multi-segment equidistant cutting of the diffusion plate 2 is completed. After taking out the cut diffusion plate 2, by setting the fixed-distance segmentation unit 4 and cooperating with the multi-segment cutting unit 3, the diffusion plate 2 to be cut can be supported and fixed, and the support distance and cutting position can be synchronously adjusted according to the requirements, thereby completing the multi-segment equidistant cutting of the diffusion plate 2 at one time, greatly improving the cutting efficiency, and ensuring the accuracy and reliability of the cutting.

[0030] In one embodiment of the present invention, please refer to Figure 2 , Figure 3 , Figure 4 and Figure 5, the end fixing assembly 5 includes: an installation side box 9, an energy conduction cavity 10, an energy transmission pipe 11, a transmission and control board 12, a communication branch pipe 14, a spacing adjuster 15, a C-shaped support base 16, an induction support pipe 17, a sensing air cavity 18 and a clamping plate 19. The installation side box 9 is fixedly connected and arranged on the side wall of the cutting workbench 1. Inside the shell wall at one end of the installation side box 9 away from the cutting workbench 1, energy conduction cavities 10 are symmetrically arranged. Between both energy conduction cavities 10 and the cutting workbench 1, energy transmission pipes 11 fixedly connected to the installation side box 9 are arranged. The energy transmission pipes 11 are communicated with the energy conduction cavities 10. A transmission and control board 12 is arranged outside the energy transmission pipes 11. One side of the transmission and control board 12 is connected to the moving drive and control assembly 6, and the other end is connected to an energy transmission device 13 slidably connected inside the energy transmission pipe 11, which is used to cooperate with the moving drive and control assembly 6 to realize the diversion of the air inside the energy conduction cavity 10. Communication branch pipes 14 are arranged outside both energy conduction cavities 10. The communication branch pipes 14 are fixedly connected to the installation side box 9. One end of the communication branch pipe 14 is communicated with the energy conduction cavity 10, and the other end is communicated with a sensing air cavity 18 arranged inside the C-shaped support base 16. The C-shaped support base 16 is fixedly connected and arranged outside the top of the cutting workbench 1. The sensing air cavities 18 are symmetrically arranged inside the C-shaped support base 16. Clamping plates 19 are also symmetrically arranged inside the C-shaped support base 16. An induction support pipe 17 is arranged between the clamping plate 19 and the sensing air cavity 18 on the same side. The induction support pipe 17 is fixedly connected to the C-shaped support base 16 and is communicated with the sensing air cavity 18. A sensing device 20 fixedly connected to the clamping plate 19 is slidably connected inside the induction support pipe 17. A spacing adjuster 15 fixedly connected to the C-shaped support base 16 is arranged between both clamping plates 19. The other end of the spacing adjuster 15 is connected to the segmented support assembly 7.

[0031] In this embodiment, the energy transmission device 13 includes a first piston slidably connected to the inner side of the energy transmission pipe 11 and a first push rod fixedly connected to the first piston. The other end of the first push rod is fixedly connected to the transmission control board 12. Additionally, the sensing control device 20 includes a second piston slidably connected to the inner side of the induction support pipe 17 and a second push rod fixedly connected to the second piston. The other end of the second push rod is fixedly connected to the clamping plate 19. The spacing adjuster 15 is an electric push rod. The spacing adjuster 15 can cooperate with the U-shaped support base 16 to drive the segmented support assembly 7 to move as a whole and adjust the segmented support assembly 7, so that the multi-segment cutting unit 3 can accurately perform multi-segment equidistant cutting on the diffusion plate 2. Furthermore, the lengths of the cut diffusion plates 2 are kept consistent. The movement driving and control assembly 6 can cooperate with the transmission control board 12 to drive the first piston to move inside the energy transmission pipe 11, and drive the air inside the energy conduction cavity 10 to enter the corresponding sensing air cavity 18 inside along the communication branch pipe 14, realizing the synchronous movement of the second pistons inside the two induction support pipes 17. The second pistons cooperate with the second push rods to drive the two clamping plates 19 to move relatively, completing the lateral clamping and fixing of one end of the diffusion plate 2. Additionally, the fixed end of the diffusion plate 2 abuts against the inner wall of the U-shaped support base 16, further ensuring the accuracy of the distance control. By setting the end fixing assembly 5, one end of the diffusion plate 2 to be processed can be laterally clamped and fixed. Furthermore, during the adjustment of the segmented support assembly 7, the diffusion plate 2 can be kept stable, thus ensuring the effectiveness of the adjustment, enabling the multi-segment cutting unit 3 to accurately perform multi-segment equidistant cutting on the diffusion plate 2, and ensuring the reliability and accuracy of the cutting.

[0032] In one embodiment of the present invention, please refer to Figure 2 , Figure 3 and Figure 6 , the movement driving and control assembly 6 includes: a servo motor 21, a threaded rod 22, a connection sliding seat 23, a control slider 24, a linking block 25 and a top push rod 27. The servo motor 21 is fixedly connected to the inside of the cutting workbench 1. The output end of the servo motor 21 is fixedly connected to the threaded rod 22. The control slider 24 is threadedly connected to the outside of the threaded rod 22. The outside of the control slider 24 is slidably connected to the connection sliding seat 23. The connection sliding seat 23 is slidably connected to the inner wall of the cutting workbench 1 and is fixedly connected to the linking block 25 slidably connected to the inside of the connection sliding seat 23. A spring is fixedly connected between the connection sliding seat 23 and the linking block 25. A top push rod 27 is fixedly connected to the outer wall of the connection sliding seat 23 close to the installation side box 9. The other end of the top push rod 27 is fixedly connected to the transmission control board 12.

[0033] In this embodiment, the top push rod 27 is symmetrically arranged outside the threaded rod 22, with one end fixedly connected to the connecting sliding seat 23 and the other end fixedly connected to the transmission control board 12. The top push rod 27 is slidably connected to the shell wall of the cutting workbench 1. The servo motor 21 drives the threaded rod 22 to rotate, and the threaded rod 22 drives the control slider 24 to move. The control slider 24 drives the connecting sliding seat 23 to move synchronously through the linkage block 25 and the spring. The connecting sliding seat 23 realizes the movement of the transmission control board 12 through the top push rod 27, thereby realizing the clamping and fixing of the diffusion plate 2 by the clamping plate 19. When the clamping plate 19 completes the fixing of the diffusion plate 2, the control slider 24 is not yet connected to the synchronous distance adjustment component 8. As the control slider 24 continues to move, on the one hand, the spring between the control slider 24 and the connecting sliding seat 23 is stretched, enabling the clamping plate 19 to more effectively fix the diffusion plate 2. On the other hand, it can complete the driving of the synchronous distance adjustment component 8, and the synchronous distance adjustment component 8 can drive the segmented support component 7, thereby completing the multi-segment equal-distance cutting of the diffusion plate 2 at one time. By setting the moving drive control component 6, it can drive the end fixing component 5 and the synchronous distance adjustment component 8 successively, thus quickly completing the segmented cutting of the diffusion plate 2 and greatly improving the cutting efficiency.

[0034] In one embodiment of the present invention, please refer to Figure 2 、 Figure 7 and Figure 8 , the segmented support component 7 includes: a support base 28, a directional guide plate 29, a supporting platform 30, a conveying roller 31, a distance control circular tube 32, a energy conversion tube 33, a connecting rod 34, a positioning block 35 and a control piston 36. A plurality of the support bases 28 are slidably connected and arranged inside the cutting workbench 1, and are slidably connected to the directional guide plate 29 fixedly connected inside the cutting workbench 1. The outer wall of one side of the support base 28 is fixedly connected to the distance adjuster 15. A distance control circular tube 32 connected to the multi-segment cutting unit 3 is arranged between adjacent support bases 28. Piston grooves are symmetrically arranged inside the distance control circular tube 32, and control pistons 36 are slidably connected to the inner sides of both piston grooves. On the outer sides of the opposite ends of both control pistons 36, energy conversion tubes 33 fixedly connected to the distance control circular tube 32 are arranged. One end of the energy conversion tube 33 is connected to the piston groove on the same side, and the other end is connected to the synchronous distance adjustment component 8. Connecting rods 34 are fixedly connected to the outer sides of the other ends of both control pistons 36. A positioning groove is arranged on the rod wall of the connecting rod 34, and a positioning block 35 fixedly connected to the distance control circular tube 32 is slidably connected to the inner side of the positioning groove. A supporting platform 30 is fixedly connected to the outer side of the top of the support base 28, and a plurality of conveying rollers 31 are rotatably connected to the inside of the supporting platform 30 for cooperating with the support base 28 to complete the support of the diffusion plate 2.

[0035] In this embodiment, a plurality of the support bases 28 are equidistantly arranged inside the cutting table 1. The support base 28 close to the C-shaped support 16 is fixedly connected to the spacing adjuster 15. The synchronous distance adjustment assembly 8 realizes the synchronous and equal flow of the air inside each energy conversion tube 33 under the drive of the control slider 24. The air inside the energy conversion tube 33 enters the corresponding piston groove, realizing the movement of the control piston 36 inside the piston groove. The control piston 36 drives the connecting rod 34 to move. The positioning block 35 cooperates with the positioning groove to complete the guiding of the connecting rod 34. The connecting rods 34 at both ends inside the distance control circular tube 32 move at equal distances. The connecting rod 34 drives the support base 28 to move, adjusting the distance between the two support bases 28. And the multi-segment cutting unit 3 on the distance control circular tube 32 can always be at the center between the two support bases 28, thus ensuring the accuracy of subsequent cutting. By setting the segmented support assembly 7, it can cooperate with the synchronous distance adjustment assembly 8 and the moving drive and control assembly 6 to simultaneously complete the synchronous adjustment of the distances between the support bases 28. And during the adjustment process, it can ensure that the multi-segment cutting unit 3 is always at the center between the two support bases 28, so that the diffusion plate 2 can be accurately and effectively cut in multiple segments at equal distances.

[0036] In one embodiment of the present invention, please refer to Figure 9 and Figure 10 , the synchronous distance adjustment assembly 8 includes: an energy transfer frame 37, an energy drive tube 38, a transfer box 39, a control tube 40, a limit plate 41, a cooperative control plate 44, a T-shaped slider 45 and a guide block 46. The transfer box 39 is fixedly connected and arranged inside the cutting table 1. The drive energy tube 38 is fixedly connected to the bottom wall of the transfer box 39. A transfer control piston is slidably connected inside the drive energy tube 38. An energy transfer frame 37 is fixedly connected to the outer side of the transfer control piston close to the control slider 24. The energy transfer frame 37 is slidably connected to the guide block 46 fixedly connected inside the drive energy tube 38. The control tube 40 is also fixedly connected to the wall of the transfer box 39. A connecting device 43 is slidably connected inside the control tube 40. The other end of the connecting device 43 is fixedly connected to the cooperative control plate 44 arranged outside the transfer box 39. A T-shaped slider 45 is slidably connected to the wall of the cooperative control plate 44. The T-shaped slider 45 is fixedly connected to the pressure guide device 42. The pressure guide device 42 is slidably connected to the energy conversion tube 33. A positioning spring is also fixedly connected between the pressure guide device 42 and the energy conversion tube 33.

[0037] In this embodiment, the positioning spring disposed between the pressure guiding device 42 and the energy transfer tube 33 can position the energy transfer frame 37 before the control slider 24 and the energy transfer frame 37 come into contact. The pressure guiding device 42 includes a third piston slidably connected to the inner side of the energy transfer tube 33 and a third push rod fixedly connected to the third piston. The other end of the third push rod is fixedly connected to the T-shaped slider 45. A positioning spring is fixedly connected between the third piston and the inner wall of the energy transfer tube 33. The connecting device 43 includes a fourth piston slidably connected to the inner side of the control tube 40 and a fourth push rod fixedly connected to the fourth piston. The other end of the fourth push rod is fixedly connected to the co-control plate 44. During the movement of the control slider 24, it can cooperate with the energy transfer frame 37 to realize the movement of the transmission control piston inside the energy driving tube 38, drive the air inside the driving adapter box 39 to enter the inside of the control tube 40, realize the movement of the fourth piston inside the control tube 40, and the fourth piston cooperates with the fourth push rod to realize the movement of the co-control plate 44. The co-control plate 44 drives the third piston to move inside the energy transfer tube 33 through the third push rod, realizing the synchronous movement of the connecting rods 34 on both inner sides of the distance control circular tube 32. By setting the synchronous distance adjustment component 8, it can cooperate with the moving driving and control component 6 to realize the synchronous adjustment of the distance between the support bases 28, thereby ensuring the smooth progress of the segmented cutting process.

[0038] In one embodiment of the present invention, please refer to Figure 1 , Figure 2 , Figure 3 and Figure 11 , the multi-segment cutting unit 3 includes: an L-shaped support rod 47, a connection seat 48, an electric telescopic device 49, a support frame 50, a control motor 51, an adjustment rotating rod 52, a mounting seat 53, a cutting machine 54 and an auxiliary locking component 55. One end of the L-shaped support rod 47 is fixedly connected to the distance control circular tube 32, and the other end is fixedly connected to the connection seat 48 slidably connected to the cutting table 1. The outer side of the bottom end of the connection seat 48 is fixedly connected with an electric telescopic device 49, and the other end of the electric telescopic device 49 is fixedly connected to the support frame 50. The control motor 51 is fixedly connected to the inner side of the support frame 50, the output end of the control motor 51 is fixedly connected to the adjustment rotating rod 52, the outer side of the adjustment rotating rod 52 is threadedly connected with the mounting seat 53, the mounting seat 53 is slidably connected to the inner wall of the support frame 50, the cutting machine 54 is fixedly connected to the mounting seat 53, and an auxiliary locking component 55 connected to the support base 28 is further arranged on the outer side of the support frame 50, which is used to longitudinally fix the diffusion plate 2 located on the conveying roller 31 in cooperation with the lifting of the support frame 50.

[0039] In this embodiment, the connecting seat 48 is arranged on the outer side of the top end of the supporting base 28. The L-shaped support rod 47 is fixedly connected to the outer wall of the center of the distance control circular tube 32, so that the cutting machine 54 can always be located in the middle of two adjacent supporting bases 28. The electric telescopic device 49 is fixedly connected to the outer side of the bottom end of the connecting seat 48, and the other end is fixedly connected to the outer wall of the top end of the support frame 50. The electric telescopic device 49 is an electric push rod. When the synchronous distance adjustment assembly 8 controls the distance between two adjacent supporting bases 28, the supporting base 28 can drive the auxiliary locking assembly 55 connected thereto to move synchronously. When the electric telescopic device 49 drives the support frame 50 to move towards the diffusion plate 2, the support frame 50 can drive the auxiliary locking assembly 55 to longitudinally clamp the diffusion plate 2 located on the conveying roller 31. As the support frame 50 continues to move downward, the cutting machine 54 abuts against the diffusion plate 2. The control motor 51 drives the mounting seat 53 to move along the inner wall of the support frame 50 through the adjusting rod 52, and the mounting seat 53 drives the cutting machine 54 to move, thus completing the cutting of the diffusion plate 2. By setting the multi-segment cutting unit 3, it can cooperate with the moving supporting base 28 to synchronously control the cutting size, and cooperate with the segmented support assembly 7 to complete the multi-segment equidistant cutting of the diffusion plate 2 at one time, greatly improving the cutting efficiency and ensuring the accuracy and reliability of the cutting.

[0040] In one embodiment of the present invention, please refer to Figure 12 , the auxiliary locking assembly 55 includes: a synchronous sliding plate 26, a cooperative guide plate 56, a fixing frame 57, a rhombic sliding column 58, a locking pressing plate 59 and a synchronous seat 60. The cooperative guide plate 56 is fixedly connected to the outside of the support frame 50. A fixing frame 57 is slidably connected to the outside of the cooperative guide plate 56. A rhombic sliding column 58 is slidably connected to the inner side of the bottom end of the fixing frame 57. A spring is fixedly connected between the rhombic sliding column 58 and the fixing frame 57. A locking pressing plate 59 is fixedly connected to the outside of the bottom end of the rhombic sliding column 58. The locking pressing plate 59 is arranged opposite to the supporting table 30. A synchronous sliding plate 26 is fixedly connected to the outside of the bottom end of the locking pressing plate 59. The synchronous sliding plate 26 is slidably connected to the synchronous seat 60 fixedly connected to the outside of the supporting base 28, so as to realize the synchronous lateral movement of the locking pressing plate 59 and the supporting base 28.

[0041] In this embodiment, when the supporting base 28 moves, it will drive the synchronous seat 60 to move synchronously. The synchronous seat 60 can cooperate with the synchronous sliding plate 26 to drive the locking pressing plate 59 to move synchronously. When the support frame 50 moves downward, the support frame 50 can cooperate with the cooperative guide plate 56 to drive the fixing frame 57 to move downward synchronously. The fixing frame 57 cooperates with the rhombic sliding column 58 to drive the locking pressing plate 59 to move towards the conveying roller 31 to longitudinally clamp the diffusion plate 2 located on the conveying roller 31, and cooperate with the end fixing assembly 5 to complete the multiple fixing of the diffusion plate 2, ensuring the stability of the diffusion plate 2 during cutting, and thus ensuring the cutting quality.

[0042] For the cutting device used for processing the diffusion plate, the diffusion plate 2 is placed on the conveying roller 31 and abuts against the inner wall of the U-shaped support base 16. The servo motor 21 drives the threaded rod 22 to rotate, and the threaded rod 22 drives the control slider 24 to move. The control slider 24 drives the connecting slider 23 to move synchronously through the linkage block 25 and the spring. The connecting slider 23 drives the transmission control plate 12 to move through the top push rod 27. The transmission control plate 12 drives the first piston to move inside the energy transmission pipe 11, and drives the air inside the energy guiding cavity 10 to enter the corresponding sensing air cavity 18 inside along the communication branch pipe 14, realizing the synchronous movement of the second pistons inside the two induction support pipes 17. The second pistons cooperate with the second push rods to drive the two clamping plates 19 to move relatively, completing the lateral clamping and fixing of one end of the diffusion plate 2, so that the diffusion plate 2 can remain stable when the support base 28 moves; When the clamping plate 19 completes the fixation of the diffusion plate 2, the control slider 24 is not yet connected to the energy transmission frame 37. As the control slider 24 continues to move, on the one hand, the spring between the control slider 24 and the connecting slider 23 is stretched, enabling the clamping plate 19 to more effectively fix the diffusion plate 2. On the other hand, it can cooperate with the energy transmission frame 37 to realize the movement of the transmission control piston inside the energy driving pipe 38, driving the air inside the transfer box 39 to enter the control pipe 40 inside, realizing the movement of the fourth piston inside the control pipe 40. The fourth piston cooperates with the fourth push rod to realize the movement of the coordination control plate 44. The coordination control plate 44 drives the third piston to move inside the energy conversion pipe 33 through the third push rod, realizing the synchronous and equal flow of the air inside each energy conversion pipe 33. The air inside the energy conversion pipe 33 enters the corresponding piston groove inside, realizing the movement of the control piston 36 inside the piston groove. The control piston 36 drives the connecting rod 34 to move. The positioning block 35 cooperates with the positioning groove to complete the guiding of the connecting rod 34. The connecting rods 34 inside the two ends of the control distance round pipe 32 move at equal distances, and the connecting rods 34 drive the support base 28 to move, adjusting the distance between the two support bases 28; The L-shaped support rod 47 is fixedly connected to the outer wall at the center of the distance control circular tube 32, so that the cutting machine 54 can always be located in the middle of the adjacent two support bases 28. When the support base 28 moves, it will drive the synchronous seat 60 to move synchronously. The synchronous seat 60 can cooperate with the synchronous slide plate 26 to drive the locking pressing plate 59 to move synchronously. When the electric telescopic device 49 drives the support frame 50 to move towards the side close to the diffusion plate 2, the support frame 50 can cooperate with the collaborative guide plate 56 to drive the fixed frame 57 to move downward synchronously. The fixed frame 57 cooperates with the rhombic slide column 58 to drive the locking pressing plate 59 to move towards the side close to the conveying roller 31, longitudinally clamping the diffusion plate 2 located on the conveying roller 31. As the support frame 50 continues to move downward, the cutting machine 54 abuts against the diffusion plate 2. The control motor 51 drives the mounting seat 53 to move along the inner wall of the support frame 50 through the adjusting rod 52, and the mounting seat 53 drives the cutting machine 54 to move, thereby completing the cutting of the diffusion plate 2.

[0043] The above are only the preferred embodiments of the present invention. It should be noted that for those skilled in the art, without departing from the concept of the present invention, several deformations and improvements can be made, which should also be regarded as the protection scope of the present invention, and these will not affect the implementation effect of the present invention and the practicability of the patent.

Claims

1. A cutting device for processing a diffusion plate, characterized in that: Including: Cutting workbench; Fixed-distance segmentation unit, which is connected to the cutting workbench and is used to cooperate with the cutting workbench to complete the segmented support of the diffusion plate and complete the lateral fixation of one end of the diffusion plate; Multi-segment cutting unit, which is arranged outside the fixed-distance segmentation unit, is slidably connected to the cutting workbench, and is connected to the fixed-distance segmentation unit, and is used to cooperate with the fixed-distance segmentation unit to complete the multi-segment equidistant cutting of the diffusion plate; Among them, the fixed-distance segmentation unit includes: a head-end fixing component, a moving driving and controlling component, a segmented support component and a synchronous distance adjustment component. The head-end fixing component is fixedly connected and arranged outside the cutting workbench and is connected to the moving driving and controlling component arranged inside the cutting workbench, and is used to cooperate with the moving driving and controlling component to realize the fixation of one end of the diffusion plate. A segmented support component slidably connected to the cutting workbench is arranged outside the head-end fixing component. The segmented support component is connected to the head-end fixing component and is connected to the multi-segment cutting unit, and is used to cooperate with the cutting workbench to complete the segmented support of the diffusion plate. The segmented support component is connected to the moving driving and controlling component through the synchronous distance adjustment component, and is used to cooperate with the moving driving and controlling component to synchronously complete the adjustment of the support distance and the cutting position.

2. The cutting device for processing a diffusion plate according to claim 1, characterized in that: The head-end fixing component includes: an installation side box, a conduction energy cavity, an energy transmission pipe, a transmission control board, a communication branch pipe, a distance adjuster, a U-shaped support seat, an induction support pipe, a sensing air cavity and a clamping plate. The installation side box is fixedly connected and arranged on the side wall of the cutting workbench. Inside the shell wall at one end of the installation side box away from the cutting workbench, conduction energy cavities are symmetrically arranged. Between each of the two conduction energy cavities and the cutting workbench, an energy transmission pipe fixedly connected to the installation side box is arranged. The energy transmission pipe is communicated with the conduction energy cavity. A transmission control board is arranged outside the energy transmission pipe. One side of the transmission control board is connected to the moving driving and controlling component, and the other end is connected to an energy transmission device slidably connected inside the energy transmission pipe, and is used to cooperate with the moving driving and controlling component to realize the diversion of the air inside the conduction energy cavity. Communication branch pipes are arranged outside each of the two conduction energy cavities. The communication branch pipes are fixedly connected to the installation side box. One end of the communication branch pipe is communicated with the conduction energy cavity, and the other end is communicated with a sensing air cavity arranged inside the U-shaped support seat. The U-shaped support seat is fixedly connected and arranged outside the top end of the cutting workbench. The sensing air cavities are symmetrically arranged inside the U-shaped support seat. Clamping plates are also symmetrically arranged inside the U-shaped support seat. An induction support pipe is arranged between the clamping plate on the same side and the sensing air cavity. The induction support pipe is fixedly connected to the U-shaped support seat and is communicated with the sensing air cavity. A sensing device fixedly connected to the clamping plate is slidably connected inside the induction support pipe. A distance adjuster fixedly connected to the U-shaped support seat is arranged between the two clamping plates. The other end of the distance adjuster is connected to the segmented support component.

3. The cutting device for processing a diffusion plate according to claim 2, characterized in that: The mobile drive control component includes: a servo motor, a threaded rod, a connecting slide, a control slider, a connecting block and a push rod. The servo motor is fixedly connected to the inner side of the cutting table, the output end of the servo motor is fixedly connected to the threaded rod, the outer side of the threaded rod is threadedly connected to a control slider, the outer side of the control slider is slidably connected to a connecting slide, the connecting slide is slidably connected to the inner wall of the cutting table, and is fixedly connected to the connecting block slidably connected to the inner side of the connecting slide, a spring is fixedly connected between the connecting slide and the connecting block, a push rod is fixedly connected to the outer wall of the connecting slide close to the installation side box, and the other end of the push rod is fixedly connected to the transmission control plate.

4. The cutting device for processing a diffusion plate according to claim 3, characterized in that: The segmented support assembly includes: a support base, a directional guide plate, a support table, a conveying roller, a distance control tube, a transfer tube, a connecting rod, a positioning block and a control piston. Some of the support bases are slidably connected to the inner side of the cutting table and are slidably connected to the directional guide plate fixedly connected to the inner side of the cutting table. The outer wall of the support base on one side is fixedly connected to the spacing adjuster. A distance control tube connected to the multi-segment cutting unit is arranged between adjacent support bases. Piston grooves are symmetrically arranged on the inner side of the distance control tube. Control pistons are slidably connected to the inner sides of the piston grooves on both sides. Piston, the outer sides of the opposite ends of the control pistons on both sides are provided with a conversion tube fixedly connected to the distance control circular tube, one end of the conversion tube is connected to the piston groove on the same side, and the other end is connected to the synchronous distance adjustment component, the outer sides of the other ends of the control pistons on both sides are fixedly connected with a connecting rod, a positioning groove is provided on the rod wall of the connecting rod, a positioning block fixedly connected to the distance control circular tube is slidingly connected on the inner side of the positioning groove, a supporting platform is fixedly connected to the outer side of the top end of the supporting base, and a number of conveying rollers are rotatably connected on the inner side of the supporting platform, which are used to cooperate with the supporting base to complete the support of the diffuser plate.

5. The cutting device for processing a diffusion plate according to claim 4, characterized in that: The synchronous distance adjustment component includes: an energy transmission frame, an energy driving tube, an adapter box, a control tube, a limit plate, a cooperative control plate, a T-shaped slider and a guide block. The adapter box is fixedly connected to the inner side of the cutting table, and the energy driving tube is fixedly connected to the bottom box wall of the adapter box. A transmission control piston is slidably connected to the inner side of the energy driving tube. The energy transmission frame is fixedly connected to the outer side of one end of the transmission control piston close to the control slider. The energy transmission frame is slidably connected to the guide block fixedly connected to the inner side of the energy driving tube. The control tube is also fixedly connected to the box wall of the adapter box, and a connecting device is slidably connected to the inner side of the control tube. The other end of the connecting device is fixedly connected to the cooperative control plate arranged on the outer side of the adapter box. A T-shaped slider is slidably connected to the plate wall of the cooperative control plate. The T-shaped slider is fixedly connected to the pressure-conducting device, and the pressure-conducting device is slidably connected to the energy transfer tube. A positioning spring is also fixedly connected between the pressure-conducting device and the energy transfer tube.

6. The cutting device for processing a diffusion plate according to claim 4, characterized in that: The multi-stage cutting unit includes: an L-shaped support rod, a connecting seat, an electric telescope, a support frame, a control motor, an adjusting rotating rod, a mounting seat, a cutting machine and an auxiliary locking assembly. One end of the L-shaped support rod is fixedly connected to the distance control round tube, and the other end is fixedly connected to the connecting seat slidably connected to the cutting table. The outer side of the bottom end of the connecting seat is fixedly connected with an electric telescope, and the other end of the electric telescope is fixedly connected to the support frame. The inner side of the support frame is fixedly connected with a control motor, and the output end of the control motor is fixedly connected to the adjusting rotating rod. The outer side of the adjusting rotating rod is threadedly connected with a mounting seat, which is slidably connected to the inner wall of the support frame, and the cutting machine is fixedly connected to the mounting seat. An auxiliary locking assembly connected to the support base is also provided on the outer side of the support frame, which is used to cooperate with the lifting of the support frame to achieve longitudinal fixation of the diffusion plate on the conveying roller.

7. The cutting device for processing a diffusion plate according to claim 6, characterized in that: The auxiliary locking assembly includes: a synchronous slide, a cooperative guide plate, a fixed frame, a prismatic sliding column, a locking pressure plate and a synchronous seat. The cooperative guide plate is fixedly connected to the outside of the support frame, and the cooperative guide plate is slidingly connected to the outside of the fixed frame. The inner side of the bottom end of the fixed frame is slidingly connected to a prismatic sliding column. A spring is fixedly connected between the prismatic sliding column and the fixed frame. The outer side of the bottom end of the prismatic sliding column is fixedly connected to a locking pressure plate. The locking pressure plate is arranged opposite to the supporting platform. The outer side of the bottom end of the locking pressure plate is fixedly connected to a synchronous slide, and the synchronous slide is slidably connected to the synchronous seat fixedly connected to the outside of the support base, so as to realize the synchronous lateral movement of the locking pressure plate and the support base.