CNC (computer numerical control) glass machining center with positioning structure deviation prevention function

By introducing components such as clamping movable frames and hydraulic telescopic cylinders into the CNC glass machining center, automatic loading clamping and anti-offset calibration is achieved, which solves the problem of insufficient clamping capacity of the existing devices and improves processing quality and efficiency.

CN223074076UActive Publication Date: 2025-07-08SHANDONG BLUE CRYSTAL GLASS TECH CO LTD
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Patent Information

Application Number
CN202422133965.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-02
Publication Date
2025-07-08
Estimated Expiration
2034-09-02

AI Technical Summary

Technical Problem

The existing CNC CNC glass processing equipment is insufficient in terms of clamping and fixing capabilities and anti-offset calibration capabilities, which affects processing efficiency and quality.

Method used

Components such as clamping movable frame, hydraulic telescopic cylinder, clamping movable plate, drive clamping roller and anti-offset push roller shaft are adopted, combined with elastic support components and drive components to achieve automated feed clamping and anti-offset calibration.

Benefits of technology

It improves the stability and efficiency of glass processing, and ensures the positioning accuracy and anti-displacement ability of glass during processing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of glass processing positioning structures, and discloses a CNC (computer numerical control) glass processing center with an anti-deviation positioning structure, which comprises a CNC glass machine tool, a machine tool production platform is arranged on the CNC glass machine tool, and clamping movable frames are arranged on two sides of the top of the CNC glass machine tool. According to the glass clamping device, displacement adjustment can be conducted according to different sizes and models of glass by operating the hydraulic telescopic cylinders, the driving clamping rollers and the anti-deviation pushing roller shafts, the two rows of driving clamping rollers on the two sides clamp and drive the two sides of the glass, and the driving assembly can drive stable clamping and transmission; the anti-deviation pushing roll shaft is elastically borne and supported by the elastic supporting assembly, auxiliary elastic calibration and correction are conducted on glass in a clamping transmission mode, the centering clamping and calibration effect is achieved, the device is provided with an automatic positioning and anti-deviation structure, automatic feeding and clamping can be achieved, meanwhile, the anti-deviation calibration capacity can be achieved, and the machining quality and efficiency are excellent.
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Description

Technical Field

[0001] The utility model relates to the technical field of glass processing positioning structures, in particular to a CNC numerical control glass processing center with a positioning structure to prevent deviation. Background Technique

[0002] CNC generally refers to computer numerical control machine tools, also known as numerical control machine tools. It is an automated machine tool equipped with a program control system. The control system can logically process programs with control codes or other symbolic instruction regulations, and decode them so that the machine tool can produce and process parts. During the deep processing of glass, CNC numerical control processing is required. When glass is processed numerically, a positioning device is usually needed to perform positioning and clamping operations on the glass to be processed, so that the glass is not prone to tilting and deviation during production and processing.

[0003] When the existing glass is processed, it is usually directly transmitted to the processing lathe by a transmission device for numerical control processing. However, in actual use, the clamping and fixing ability of numerical control processing is relatively insufficient, and it cannot be stably clamped and fixed during automated feeding and processing. The positioning and clamping ability is relatively insufficient, and the overall anti-deviation calibration ability is relatively insufficient. The automated clamping and calibration ability is not good enough, which affects the production efficiency and quality of glass processing. Therefore, we propose a CNC numerical control glass processing center with a positioning structure to prevent deviation to solve the above problems. Content of the Utility Model

[0004] (1) Solved Technical Problem

[0005] Aiming at the deficiencies of the prior art, the utility model provides a CNC numerical control glass processing center with a positioning structure to prevent deviation, which has the advantages of automatic positioning and anti-deviation structure, can perform anti-deviation calibration while automatically feeding and clamping, and has excellent processing quality and efficiency. It solves the problems that the clamping ability of the existing numerical control processing device is relatively general and the automated clamping and calibration ability is not good enough.

[0006] (2) Technical Solution

[0007] To achieve the above-mentioned purpose of automatic positioning and anti-deviation structure, and to be able to perform anti-deviation calibration while automatically feeding and clamping, and to have excellent processing quality and efficiency, the utility model provides the following technical solution: A CNC numerical control glass processing center with a positioning structure to prevent deviation, including a CNC numerical control glass machine tool, and a machine tool production platform is arranged on the CNC numerical control glass machine tool;

[0008] Both sides of the top of the CNC glass machine tool are provided with clamping movable frames, and the two clamping movable frames are provided with hydraulic telescopic cylinders on opposite sides, and the telescopic ends of the hydraulic telescopic cylinders are provided with clamping movable plates, and the two clamping movable plates are provided with two rows of corresponding driving clamping rollers on opposite sides, and anti-deviating pushing rollers are provided on opposite sides of the two clamping movable plates;

[0009] Among them, the anti-deviation pushing roller and the driving clamping roller are staggered, an elastic support component is provided between the anti-deviation pushing roller and the clamping movable plate, and a driving component is provided on the opposite side of the two clamping movable plates, and the driving component drives the driving clamping roller to rotate in the same direction.

[0010] Preferably, no less than two hydraulic telescopic cylinders are provided between adjacent clamping movable frames and clamping movable plates, and the driving clamping roller comprises a supporting guide rod and a clamping wheel, and the supporting guide rod is located between the clamping wheel and the clamping movable plate.

[0011] Preferably, the clamping wheel is a rubber anti-slip roller, the spacing between the left and right adjacent driving clamping rollers is smaller than the spacing between the left and right adjacent anti-deviation pushing rollers, and the plurality of driving clamping rollers are evenly located on both sides above the machine tool production platform.

[0012] Preferably, the elastic support assembly includes a V-shaped articulated arm and an elastic movable spring, the V-shaped articulated arm is hingedly installed between the clamping movable plate and the anti-deviation pushing roller, the V-shaped articulated arm is composed of two movable articulated arms combined in a V shape, and the elastic movable spring is arranged on the inner side of the V-shaped articulated arm.

[0013] Preferably, the anti-deviation pushing roller includes a bearing mounting seat and an anti-deviation calibration roller, the bearing mounting seat is hingedly mounted on a side of the elastic support component away from the clamping movable plate, and the anti-deviation calibration roller is rotatably connected to the inner side of the bearing mounting seat.

[0014] Preferably, the driving assembly includes a driving motor, a driving disk and a driving belt, the driving clamping roller passes through the clamping movable plate, the driving disk is connected to the output end of the driving motor and the end of the driving clamping roller, the driving belt is transmission-connected to two adjacent driving disks, and the driving clamping roller is driven by the driving motor.

[0015] Preferably, two baffle plates are provided at the top edge of the CNC glass machine tool, and the baffle plates are located on both sides of the machine tool production platform.

[0016] Preferably, a magnetic block is provided at the bottom of the baffle plate, and the magnetic block is magnetically attracted to the top of the CNC glass machine tool, and the baffle plate is magnetically attracted to the top of the CNC glass machine tool by the magnetic block.

[0017] (III) Beneficial effects

[0018] Compared with the prior art, the utility model provides a CNC numerical control glass processing center with a positioning structure to prevent deviation, which has the following beneficial effects:

[0019] 1. For the CNC numerical control glass processing center with a positioning structure to prevent deviation, the clamping movable frame can support the hydraulic telescopic cylinder and the clamping moving plate. Operating the hydraulic telescopic cylinder can drive the clamping moving plate to displace. The clamping moving plate is provided with driving clamping rollers and anti-deviation pushing roller shafts, which can be adjusted for displacement according to different sizes and models of glass. Two adjacent rows of driving clamping rollers clamp one side of the glass, and two rows of driving clamping rollers on both sides clamp both sides of the glass, which can clamp and drive the glass. The driving component can drive the whole row of driving clamping rollers to rotate, with equal speed and the same direction, which can stably clamp and drive, enabling the device to have an automatic transmission and positioning structure, and can automatically load and clamp, with relatively high processing efficiency.

[0020] 2. For the CNC numerical control glass processing center with a positioning structure to prevent deviation, the anti-deviation pushing roller shafts are elastically supported by the elastic support components. The anti-deviation pushing roller shafts cooperate with the elastic support components, which can perform auxiliary elastic pushing during the clamping and driving of the glass to achieve the calibration and correction effect. There are two rows of anti-deviation pushing roller shafts on both sides, and both sides of the glass are driven and pushed by the anti-deviation pushing roller shafts to achieve the effect of centering clamping and calibration, thereby automatically calibrating the glass. It has excellent performance, enabling the device to have an automatic anti-deviation structure and can automatically perform anti-deviation calibration, with excellent processing quality. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 It is a front three-dimensional schematic diagram of the structure of the present utility model;

[0022] Figure 2 It is a top cross-sectional three-dimensional schematic diagram of the structure of the present utility model;

[0023] Figure 3 It is a side cross-sectional three-dimensional schematic diagram of the structure of the present utility model;

[0024] Figure 4 It is a side three-dimensional schematic diagram of the connection structure between the driving motor and the driving disc of the present utility model;

[0025] Figure 5 It is a top three-dimensional schematic diagram of the connection structure between the V-shaped articulated arm and the elastic movable spring of the present utility model.

[0026] In the figure: 1. CNC numerical control glass machine tool; 2. Machine tool production platform; 3. Clamping movable frame; 4. Hydraulic telescopic cylinder; 5. Clamping moving plate; 6. Driving clamping roller; 61. Support guiding rod; 62. Clamping wheel; 7. Anti-offset pushing roller shaft; 71. Bearing mounting seat; 72. Anti-offset calibration roller shaft; 8. Elastic support assembly; 81. V-shaped articulated arm; 82. Elastic movable spring; 9. Driving assembly; 91. Driving motor; 92. Driving disc; 93. Driving belt; 10. Material baffle; 11. Magnetic attraction block. Specific implementation manner

[0027] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work shall fall within the protection scope of the present invention.

[0028] Please refer to Figures 1 - 5 , a CNC numerical control glass processing center with a positioning structure for anti-offset, including a CNC numerical control glass machine tool 1, and a machine tool production platform 2 is provided on the CNC numerical control glass machine tool 1;

[0029] Clamping movable frames 3 are provided on both sides of the top of the CNC numerical control glass machine tool 1. Hydraulic telescopic cylinders 4 are provided on the opposite sides of the two clamping movable frames 3. The telescopic ends of the hydraulic telescopic cylinders 4 are provided with clamping moving plates 5. Two rows of corresponding driving clamping rollers 6 are provided on the opposite sides of the two clamping moving plates 5. An anti-offset pushing roller shaft 7 is provided on the opposite sides of the two clamping moving plates 5;

[0030] Among them, the anti-offset pushing roller shaft 7 and the driving clamping roller 6 are arranged in an alternating manner. An elastic support assembly 8 is provided between the anti-offset pushing roller shaft 7 and the clamping moving plate 5. Driving assemblies 9 are provided on the opposite sides of the two clamping moving plates 5, and the driving assemblies 9 drive the driving clamping rollers 6 to rotate in the same direction;

[0031] The beneficial effects to be expressed by this solution: By providing a machine tool production platform 2 on the top of the CNC numerical control glass machine tool 1, the CNC numerical control glass machine tool 1 performs CNC numerical control processing on the machine tool production platform 2. The clamping movable frame 3 can support the hydraulic telescopic cylinder 4 and the clamping moving plate 5. The hydraulic telescopic cylinder 4 is operated to drive the clamping moving plate 5 to displace. The driving clamping rollers 6 and the anti-offset pushing roller shaft 7 are provided on the clamping moving plate 5, and the displacement can be adjusted according to different glass sizes and models. The two rows of driving clamping rollers 6 on both sides clamp the two sides of the glass in a roller manner, and can clamp and drive the glass. The driving assembly 9 can drive the whole row of driving clamping rollers 6 to rotate, with equal speed and the same direction, and can stably clamp and drive;

[0032] The anti-offset driving roller shaft 7 is elastically supported by an elastic support assembly 8. The anti-offset driving roller shaft 7 cooperates with the elastic support assembly 8 to assist in elastic pushing during the clamping and driving of the glass, achieving a calibration and correction effect. For the two rows of anti-offset driving roller shafts 7 on both sides, there are anti-offset driving roller shafts 7 on both sides of the glass for driving and pushing, achieving a centered clamping and calibration effect, thereby automatically calibrating the glass. It has excellent performance, enabling the device to have an automatic positioning and anti-offset structure. While being able to automatically load and clamp, it can also perform anti-offset calibration, with excellent processing quality and efficiency.

[0033] Further, there are at least two hydraulic telescopic cylinders 4 provided between the adjacent clamping movable frames 3 and the clamping moving plates 5. The driving clamping rollers 6 include a support guiding rod 61 and a clamping wheel 62. The support guiding rod 61 is located between the clamping wheel 62 and the clamping moving plate 5;

[0034] By providing at least two hydraulic telescopic cylinders 4 between the clamping movable frames 3 and the clamping moving plates 5, the two hydraulic telescopic cylinders 4 can stably support and carry the clamping moving plate 5, stably push the clamping moving plate 5 to displace, with stable loading and not easily shifting or tilting. And the driving clamping rollers 6 include a support guiding rod 61 and a clamping wheel 62. The clamping wheel 62 can clamp and drive the glass, and the support guiding rod 61 plays a role of support and guidance, which can be driven by a driving assembly 9. Moreover, the support guiding rod 61 gives an elastic space to the anti-offset driving roller shaft 7. The overall design is well-matched and stable, with good structural innovation effect.

[0035] Further, the clamping wheel 62 is a rubber anti-slip roller. The distance between adjacent left and right driving clamping rollers 6 is less than the distance between adjacent left and right anti-offset driving roller shafts 7. A plurality of driving clamping rollers 6 are evenly located on both sides above the machine tool production platform 2;

[0036] By setting the clamping wheel 62 as a rubber anti-slip roller, while clamping and fixing, the clamping wheel 62 plays a role of anti-slip driving. The driving clamping rollers 6 are located outside the anti-offset driving roller shafts 7, so that after the glass is clamped by the driving clamping rollers 6, it is then calibrated and driven by the anti-offset driving roller shafts 7, with excellent driving adaptability.

[0037] Further, the elastic support assembly 8 includes a V-shaped articulated arm 81 and an elastic movable spring 82. The V-shaped articulated arm 81 is articulated and installed between the clamping moving plate 5 and the anti-offset driving roller shaft 7. The V-shaped articulated arm 81 is composed of two movable articulated arms combined in a V shape, and the elastic movable spring 82 is arranged inside the V-shaped articulated arm 81;

[0038] By setting the elastic support component 8 to include a V-shaped articulated arm 81 and an elastic movable spring 82, the V-shaped articulated arm 81 plays an articulated support role and can stably carry the anti-offset push roller 7. The elastic movable spring 82 can play an elastic support role, and the V-shaped articulated arm 81 has an elastic movable effect, which can stably carry and support the anti-offset push roller 7 for elastic offset, and the elastic support effect is good.

[0039] Furthermore, the anti-offset push roller 7 includes a load-bearing mounting seat 71 and an anti-offset calibration roller 72. The load-bearing mounting seat 71 is hingedly installed on the side of the elastic support component 8 away from the clamping moving plate 5, and the anti-offset calibration roller 72 is rotatably connected to the inside of the load-bearing mounting seat 71;

[0040] By setting the anti-offset push roller 7 to include a load-bearing mounting seat 71 and an anti-offset calibration roller 72, the load-bearing mounting seat 71 plays a role of installation and support, and the anti-offset calibration roller 72 plays a rolling calibration effect, so that the load-bearing mounting seat 71 can stably carry and support the anti-offset calibration roller 72, with stable driving and good adaptability.

[0041] Furthermore, the driving component 9 includes a driving motor 91, a driving disk 92 and a driving belt 93. The driving clamping roller 6 penetrates through the clamping moving plate 5. The driving disk 92 is connected to the output end of the driving motor 91 and the end of the driving clamping roller 6, and the driving belt 93 is drivingly connected to adjacent two driving disks 92. The driving clamping roller 6 is driven by the driving motor 91;

[0042] By setting the driving component 9 to include a driving motor 91, a driving disk 92 and a driving belt 93, the driving motor 91 can drive the driving disk 92, and adjacent driving disks 92 can be cross-driven by the driving belt 93, so that multiple driving belts 93 can respectively cross-drive multiple driving disks 92. Thus, multiple driving disks 92 can all be driven by the driving motor 91. When the driving motor 91 is running, the single-row driving clamping roller 6 can be stably driven to rotate as a whole by the driving disk 92. The multi-row driving clamping rollers 6 are driven by multiple driving components 9, and the rotation speeds are equal and the directions are the same, which can stably drive the glass. Thus, while clamping and fixing, it can be driven.

[0043] Furthermore, two baffle plates 10 are provided at the top edge of the CNC numerical control glass machine tool 1, and the baffle plates 10 are located on both sides of the machine tool production platform 2;

[0044] By setting two baffle plates 10, the waste chips on both sides of the machine tool can be blocked, playing a role of shielding and collecting, and the baffle effect is excellent.

[0045] Furthermore, a magnetic attraction block 11 is provided at the bottom of the baffle plate 10, and the magnetic attraction block 11 is magnetically attracted to the top of the CNC numerical control glass machine tool 1. The baffle plate 10 is magnetically attracted to the top of the CNC numerical control glass machine tool 1 by the magnetic attraction block 11;

[0046] By setting the magnetic attraction block 11, the material baffle 10 is magnetically attracted to the top of the CNC numerical control glass machine tool 1 by the magnetic attraction block 11, making the disassembly and assembly of the material baffle 10 relatively simple and having good adaptability.

[0047] It should be noted that each device in this application is a common device in the market, which can be selected according to needs during specific use. And the circuit connection relationships of each device all belong to simple series and parallel connection circuits, and there is no innovation point in the circuit connection. Those skilled in the art can easily implement it, which belongs to the prior art and will not be elaborated here.

[0048] Working principle: By arranging a machine tool production platform 2 on the top of the CNC numerical control glass machine tool 1, the glass can be subjected to CNC numerical control processing by the CNC numerical control glass machine tool 1 on the machine tool production platform 2;

[0049] The clamping movable frame 3 is arranged on both sides of the machine tool production platform 2 and can support the hydraulic telescopic cylinder 4 and the clamping movable plate 5. The hydraulic telescopic cylinder 4 is a hydraulic drive cylinder body, which can be telescoped under the action of hydraulic pressure. Operating the hydraulic telescopic cylinder 4 can drive the clamping movable plate 5 to displace, so that the two clamping movable plates 5 can displace closer to or away from each other. The clamping movable plate 5 is provided with driving clamping rollers 6 and anti-offset pushing roller shafts 7. Two adjacent rows of driving clamping rollers 6 can perform transmission clamping on the glass, so that the driving clamping rollers 6 can be adjusted in displacement according to different sizes and models of the glass;

[0050] Two adjacent rows of driving clamping rollers 6 clamp one side of the glass. There are two rows of driving clamping rollers 6 on both sides, which can stably clamp both sides of the glass. And the roller-shaped clamping can clamp and drive the glass. The driving assembly 9 can drive the whole row of driving clamping rollers 6 to rotate. Multiple rows of driving clamping rollers 6 are driven by multiple driving assemblies 9, and the rotation speeds are equal and the directions are the same, which can stably drive the glass, so that while clamping and fixing, it can be driven in transmission;

[0051] The anti-offset pushing roller shaft 7 is elastically supported by the elastic support assembly 8. The anti-offset pushing roller shaft 7 can perform auxiliary elastic pushing when the glass is clamped and driven, achieving a calibration and correction effect, and performing centering clamping calibration on the clamped and driven glass. There are anti-offset pushing roller shafts 7 on both sides of the glass for transmission and pushing, and elastic calibration is performed by the elastic support assembly 8, so as to automatically calibrate the glass. The use performance is excellent, making the device have an automatic positioning and anti-offset structure. It can perform automatic feeding and clamping, and at the same time, it can have the ability of anti-offset calibration. The processing quality and efficiency are excellent, solving the problems that the clamping ability of the existing numerical control processing device is relatively general and the automatic clamping and calibration ability is not good enough.

[0052] It should be noted that, in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variant thereof are intended to cover non-exclusive inclusion, such that a process, method, article or device comprising a series of elements not only includes those elements but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "comprising an..." does not exclude the presence of additional identical elements in the process, method, article or device comprising the said element.

[0053] Although the embodiments of the present utility model have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present utility model, and the scope of the present utility model is defined by the appended claims and their equivalents.

Claims

1. A CNC numerical control glass processing center with a positioning structure to prevent deviation, including a CNC numerical control glass machine tool (1), characterized in that: A machine tool production platform (2) is provided on the CNC numerical control glass machine tool (1). Clamping movable frames (3) are provided on both sides of the top of the CNC numerical control glass machine tool (1). Hydraulic telescopic cylinders (4) are provided on the opposite sides of the two clamping movable frames (3). A clamping moving plate (5) is provided at the telescopic end of the hydraulic telescopic cylinder (4). Two rows of corresponding driving clamping rollers (6) are provided on the opposite sides of the two clamping moving plates (5). An anti-offset pushing roller shaft (7) is provided on the opposite sides of the two clamping moving plates (5). Among them, the anti-offset pushing roller shaft (7) and the driving clamping rollers (6) are arranged in a staggered manner. An elastic support assembly (8) is provided between the anti-offset pushing roller shaft (7) and the clamping moving plate (5). Driving assemblies (9) are provided on the opposite sides of the two clamping moving plates (5). The driving assemblies (9) drive the driving clamping rollers (6) to rotate in the same direction.

2. The CNC numerical control glass processing center with a positioning structure for preventing deviation according to claim 1, wherein: Not less than two hydraulic telescopic cylinders (4) are provided between the adjacent clamping movable frames (3) and the clamping moving plates (5). The driving clamping roller (6) includes a support guide rod (61) and a clamping wheel (62). The support guide rod (61) is located between the clamping wheel (62) and the clamping moving plate (5).

3. A CNC numerical control glass processing center with a positioning structure to prevent deviation according to claim 2, characterized in that: The clamping wheel (62) is a rubber anti-slip roller. The distance between the left and right adjacent driving clamping rollers (6) is less than the distance between the left and right adjacent anti-offset pushing roller shafts (7). The multiple driving clamping rollers (6) are evenly located on both sides above the machine tool production platform (2).

4. A CNC numerical control glass processing center with a positioning structure to prevent deviation according to claim 1, characterized in that: The elastic support assembly (8) includes a V-shaped articulated arm (81) and an elastic movable spring (82). The V-shaped articulated arm (81) is articulated and installed between the clamping moving plate (5) and the anti-offset pushing roller shaft (7). The V-shaped articulated arm (81) is composed of two movable articulated arms combined in a V shape. The elastic movable spring (82) is arranged inside the V-shaped articulated arm (81).

5. A CNC numerical control glass processing center with a positioning structure to prevent deviation according to claim 1, characterized in that: The anti-offset pushing roller shaft (7) includes a bearing mounting seat (71) and an anti-offset calibration roller shaft (72). The bearing mounting seat (71) is articulated and installed on the side of the elastic support assembly (8) away from the clamping moving plate (5). The anti-offset calibration roller shaft (72) is rotatably connected to the inside of the bearing mounting seat (71).

6. A CNC numerical control glass processing center with a positioning structure to prevent deviation according to claim 1, characterized in that: The driving assembly (9) includes a driving motor (91), a driving disc (92), and a driving belt (93). The driving clamping roller (6) penetrates through the clamping moving plate (5). The driving disc (92) is connected to the output end of the driving motor (91) and the end of the driving clamping roller (6). The driving belt (93) is drivingly connected to the adjacent two driving discs (92). The driving clamping roller (6) is driven by the driving motor (91).

7. A CNC numerical control glass processing center with a positioning structure to prevent deviation according to claim 1, characterized in that: Two baffle plates (10) are provided at the edge of the top of the CNC numerical control glass machine tool (1). The baffle plates (10) are located on both sides of the machine tool production platform (2).

8. A CNC numerical control glass processing center with a positioning structure to prevent deviation according to claim 7, characterized in that: The bottom of the material baffle (10) is provided with a magnetic attraction block (11), and the magnetic attraction block (11) is magnetically attracted to the top of the CNC glass machine tool (1). The material baffle (10) is magnetically attracted to the top of the CNC glass machine tool (1) by the magnetic attraction block (11).