Vertical double-laser-head grinding machine for glass processing

By adopting a dual-laser-head design in the glass processing grinding machine, combined with a drive and suction cup mechanism, efficient longitudinal grinding of glass is achieved, solving the problem of low efficiency of a single laser head and improving the production efficiency of frosted glass.

CN223588533UActive Publication Date: 2025-11-25BEIJING GEEN QINGTENG TECH CO LTD
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Patent Information

Application Number
CN202423116366.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-17
Publication Date
2025-11-25
Estimated Expiration
2034-12-17

AI Technical Summary

Technical Problem

Existing glass processing and grinding machines use a single laser head for grinding, which results in low processing efficiency and reduces the production efficiency of frosted glass.

Method used

Design a vertical dual-laser-head glass grinding machine. By setting two lasers inside a protective shell, the glass is fixed and longitudinally ground using a drive mechanism and a suction cup mechanism. The two lasers can simultaneously perform sandblasting on the glass.

Benefits of technology

It improves the processing efficiency of glass frosting and enhances the production efficiency of frosted glass, especially when processing small-format glass, the efficiency can reach twice that of a single-head machine.

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Abstract

The utility model is applicable to the technical field of glass dull polish processing, and provides a vertical double-laser-head dull polish machine for glass processing, which comprises a protective shell, bases are transversely arranged on both sides of the bottom of an inner cavity of the protective shell, and the other ends of the bases extend to the outside of the protective shell. A plurality of supporting wheels are rotatably arranged at the top of the base through a chain wheel transmission assembly, back plates are fixedly connected to the two side faces of the protective shell, and a plurality of first rotating wheels are rotatably connected to the front side faces of the back plates. According to the vertical double-laser-head grinding machine for glass processing, the driving mechanism drives the two laser devices to descend, so that one longitudinal area of glass can be ground, after processing of one area is completed, the riding wheels drive the glass to move, the two laser devices move to the next longitudinal column to continue processing, operation is repeated, and then processing of the whole glass can be completed; and the two lasers can be used for sanding the glass at the same time, so that the grinding efficiency of the glass is improved.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to glass frosted processing technical field especially relates to a glass processing vertical double laser head frosted machine. BACKGROUND

[0002] Glass frosted refers to the surface treatment of ordinary flat glass into rough uneven state, thereby forming a kind of frosted glass, due to the rough surface, frosted glass makes light produce diffuse reflection, light is reflected to all directions after passing through frosted glass, and when being refracted to the retina, already form incomplete image, so the thing behind the glass cannot be seen.

[0003] In the prior art, the glass after frosted is stronger than ordinary glass, is safer to use, reduces the risk brought by glass breakage, but the existing glass processing frosted machine mostly adopts single laser head to frosted processing, and the processing efficiency is low, and the production and processing efficiency of frosted glass is reduced. UTILITY MODEL CONTENTS

[0004] The utility model provides a glass processing vertical double laser head frosted machine, aims at solving the problems of the existing glass processing frosted machine, single laser head frosted processing, low processing efficiency and reduced production and processing efficiency of frosted glass.

[0005] The utility model is realized in this way, a glass processing vertical double laser head frosted machine, including the protection shell, the both sides of the bottom of the protection shell inner chamber are horizontally provided with the base, the other end of the base extends to the outside of the protection shell, the top of the base is rotatably provided with a plurality of supporting rollers through sprocket drive assembly;

[0006] The both sides of the protection shell are fixedly connected with backboards, the front side of the backboard is rotatably connected with a plurality of first rotating wheels, and the both sides of the protection shell are provided with feed ports.

[0007] The inner chamber of the protection shell is vertically fixedly connected with a supporting frame, the both sides of the supporting frame are provided with mounting plates moving along the vertical direction through drive mechanisms, the surface of the mounting plate is provided with a laser device moving along the horizontal direction and located between the two bases through a transmission mechanism, and the lower parts of the both sides of the protection shell are provided with suction disc mechanisms.

[0008] Preferably, the suction disc mechanism includes a pneumatic telescopic rod and a vacuum suction disc, the pneumatic telescopic rod is fixedly connected to the lower part of the side wall of the protection shell, and the vacuum suction disc is fixedly connected to the front end of the pneumatic telescopic rod.

[0009] Preferably, the surface of the supporting frame is fixedly connected with a supporting frame, and the surface of the supporting frame is rotatably provided with a plurality of second rotating wheels.

[0010] Preferably, the bottom of the base is provided with a plurality of supporting legs, and a reinforcing frame is fixedly connected between the rear side of the back plate and the rear side of the base.

[0011] Preferably, the driving mechanism comprises two first lead screws and a second servo motor, the two first lead screws are rotatably connected to one side and the other side of the inner part of the supporting frame respectively, the second servo motor is fixedly connected to one side of the top of the supporting frame, the output shaft of the second servo motor extends into the inner cavity of the supporting frame, and the top end of one of the first lead screws is fixedly connected, the top end of the surface of each of the first lead screws is fixedly connected with a synchronous pulley, the two synchronous pulleys are drivingly connected through a synchronous belt, the surface of the first lead screw is threadedly connected with a first lead screw sleeve, the surface of the first lead screw sleeve is slidingly connected with the inner wall surface of the supporting frame, and the side wall of the first lead screw sleeve is fixedly connected with the surface of the mounting plate on the same side.

[0012] Preferably, the driving mechanism comprises a first servo motor, a second lead screw, a second lead screw sleeve and a connecting rod, the first servo motor is fixedly connected to the side wall of the mounting plate, the second lead screw is fixedly connected to the output shaft of the first servo motor, the second lead screw sleeve is threadedly connected to the surface of the second lead screw, the surface of the second lead screw sleeve is slidingly connected with the side wall of the mounting plate, and the connecting rod is fixedly connected to the surface of the second lead screw sleeve, and the front end of the connecting rod is fixedly connected with the surface of the laser on the same side.

[0013] Beneficial effects

[0014] Compared with the prior art, the glass processing vertical double-laser-head frosted glass machine has the beneficial effects that: the glass processing surface faces the rear side and is sent into the input end, the glass is moved by the supporting wheel and enters the inside of the protective shell, the glass processing surface is fixed by the suction cup mechanism after the glass enters the inner cavity of the protective shell, the rear side of the glass can be frosted after the two lasers work, the two lasers can be lowered by the driving mechanism during the frosted processing, the longitudinal area of the glass can be frosted, the glass is moved by the supporting wheel after the processing of one area is completed, the two lasers are moved to the next column for continuous processing, and the whole glass can be processed through repeated operation, the two lasers can simultaneously frost the glass, the frosted processing efficiency of the glass is improved, and the production efficiency of the frosted glass is improved. BRIEF DESCRIPTION OF DRAWINGS

[0015] Figure 1 It is a three-dimensional structure schematic view of the utility model;

[0016] Figure 2 It is a structure schematic view of the supporting frame and the supporting frame in the utility model;

[0017] Figure 3It is the structure schematic view of the first screw rod and the mounting plate in the utility model.

[0018] Figure 4 It is the structure schematic view of the transmission mechanism in the utility model.

[0019] Figure 5 It is the structure schematic view of the first screw rod and the synchronous pulley in the utility model.

[0020] In the drawing: 1, protective shell; 2, base; 3, supporting wheel; 4, reinforcing frame; 5, back plate; 6, first rotating wheel; 7, material port; 8, supporting leg; 9, supporting frame; 10, pneumatic telescopic rod; 11, vacuum chuck; 12, supporting frame; 13, second rotating wheel; 14, first screw rod; 15, first screw rod sleeve; 16, mounting plate; 17, first servo motor; 18, laser; 19, second screw rod sleeve; 20, connecting rod; 21, chain wheel transmission assembly; 22, second servo motor; 23, synchronous pulley; 24, second screw rod. DETAILED DESCRIPTION

[0021] In order to make the purpose, technical scheme and advantages of the utility model more clearly, the following will be further described in detail in combination with the drawings and examples. It should be understood that the specific examples described here are only used to explain the utility model, and are not used to limit the utility model.

[0022] Please refer to Figures 1-5 The utility model provides a kind of technical scheme: a glass processing vertical double laser head frosted machine, including protective shell 1, the two sides of the bottom of the inner cavity of protective shell 1 are all transversely provided with base 2, another end of base 2 extends to the outside of protective shell 1, and the top of base 2 is rotatably provided with a plurality of supporting wheels 3 by chain wheel transmission assembly 21, and chain wheel transmission assembly 21 is prior art, which will not be described here.

[0023] The two side surfaces of protective shell 1 are fixedly connected with back plate 5, and back plate 5 is inclined to the rear side from bottom to top, and the front side of back plate 5 is rotatably connected with a plurality of first rotating wheels 6, and the two side surfaces of protective shell 1 are both provided with material port 7.

[0024] The inner cavity of protective shell 1 is vertically fixedly connected with supporting frame 9, and the two side surfaces of supporting frame 9 are both provided with mounting plate 16 moving along vertical direction by driving mechanism, and the surface of mounting plate 16 is provided with laser 18 moving along horizontal direction and located between two bases 2 by transmission mechanism, and the lower part of the two side surfaces of protective shell 1 is provided with vacuum chuck mechanism.

[0025] Glass processing surface is sent into input end towards rear side, and glass is moved by supporting wheel 3 and enters the inside of protective shell 1, and glass processing surface is fixed by vacuum chuck mechanism after glass enters the inner cavity of protective shell 1.

[0026] After the transmission mechanism drives the laser 18 to approach the glass, the two lasers 18 work to perform frosting processing on the back side of the glass.

[0027] During processing, the two lasers 18 are driven to descend by the driving mechanism, so that frosting processing can be performed on a longitudinal area of the glass. When the processing of one area is completed, the glass is moved by the supporting wheel 3, the two lasers 18 are moved to the next column for continuous processing, and the operation is repeated, so that the entire glass is processed.

[0028] The two lasers 18 can simultaneously perform sanding processing on the glass, thereby improving the frosting processing efficiency of the glass and improving the production efficiency of the frosted glass.

[0029] The distance between the two lasers 18 is 200 mm. This design can maximize the simultaneous processing of the two laser heads, so that the processing efficiency is doubled even when processing a small area of the glass.

[0030] The laser 18 is equipped with a customized large-size field lens, which can perform sanding processing on a square area containing a plurality of circular dots to be sanded.

[0031] Further, the suction cup mechanism includes a pneumatic telescopic rod 10 and a vacuum suction cup 11. The pneumatic telescopic rod 10 is fixedly connected to the lower part of the side wall of the protective shell 1, and the vacuum suction cup 11 is fixedly connected to the front end of the pneumatic telescopic rod 10.

[0032] In this embodiment, when the pneumatic telescopic rod 10 is extended, the vacuum suction cup 11 can be moved. When the vacuum suction cup 11 contacts the back side of the glass, the support frame 12 can be fixed to the glass by the vacuum device in communication with the support frame 12, thereby improving the stability of the glass during frosting.

[0033] Further, the surface of the support frame 9 is fixedly connected with a support frame 12, and the surface of the support frame 12 is rotatably provided with a plurality of second rotating wheels 13.

[0034] In this embodiment, the plurality of second rotating wheels 13 facilitate supporting and positioning the glass entering the inner cavity of the protective shell 1, and the second rotating wheels 13 rotate when the glass moves, thereby reducing the friction during the movement of the glass.

[0035] Further, the bottom of the base 2 is provided with a plurality of supporting legs 8, and the rear side of the back plate 5 and the rear side of the base 2 are fixedly connected with a reinforcing frame 4.

[0036] In this embodiment, the reinforcing frame 4 enhances the connection strength between the back plate 5 and the base 2, thereby improving the service life of the plurality of first rotating wheels 6 for supporting the glass.

[0037] Further, the driving mechanism comprises two first lead screws 14 and a second servo motor 22, the two first lead screws 14 are rotationally connected to one side and the other side of the inner part of the support frame 9 respectively, the second servo motor 22 is fixedly connected to one side of the top of the support frame 9, the output shaft of the second servo motor 22 rotationally extends to the inner cavity of the support frame 9, and the top end of one first lead screw 14 is fixedly connected.

[0038] The top end of the surface of each of the two first lead screws 14 is fixedly connected with a synchronous pulley 23, the two synchronous pulleys 23 are drivingly connected through a synchronous belt, the surface of the first lead screw 14 is threadedly connected with a first lead screw sleeve 15, the surface of the first lead screw sleeve 15 is slidingly connected with the inner wall surface of the support frame 9, and the side wall of the first lead screw sleeve 15 is fixedly connected with the surface of the same side mounting plate 16.

[0039] In the embodiment, after the second servo motor 22 drives one first lead screw 14 to rotate, the two first lead screws 14 can be simultaneously driven to rotate through the transmission of the two synchronous pulleys 23 and the chain, in the process of the rotation of the two first lead screws 14, the first lead screw sleeve 15 can move along the surface of the first lead screw 14, and then the laser 18 can be driven to move through the connection of the mounting plate 16, and the inclination angle of the vertical movement of the laser 18 is consistent with the inclination angle of the back plate 5.

[0040] Further, the transmission mechanism comprises a first servo motor 17, a second lead screw 24, a second lead screw sleeve 19 and a connecting rod 20, the first servo motor 17 is fixedly connected to the side wall of the mounting plate 16, the second lead screw 24 is fixedly connected to the output shaft of the first servo motor 17, the second lead screw sleeve 19 is threadedly connected to the surface of the second lead screw 24, the surface of the second lead screw sleeve 19 is slidingly connected with the side wall of the mounting plate 16, and the connecting rod 20 is fixedly connected to the surface of the second lead screw sleeve 19, and the front end of the connecting rod 20 is fixedly connected with the surface of the same side laser 18.

[0041] In the embodiment, after the first servo motor 17 drives the second lead screw 24 to rotate, the second lead screw sleeve 19 can move along the surface of the laser 18, and the distance between the laser 18 and the glass can be adjusted through the connection of the connecting rod 20.

[0042] The working principle and use process of the utility model: after the utility model is installed, the glass processing surface is sent into the input end with the rear side, the glass is driven to move by the carrier wheel 3 and enters the inside of the protective shell 1, the glass processing surface is fixed by the suction cup mechanism after the glass enters the inner cavity of the protective shell 1, the rear surface of the glass can be ground and polished after the two lasers 18 work, the two lasers 18 are driven to descend by the driving mechanism during the processing, the longitudinal area of the glass can be ground and polished, the glass is moved by the carrier wheel 3 after the processing of one area is completed, the two lasers 18 are moved to the next column for continuous processing, and the whole glass can be processed through repeated operation.

[0043] The above merely describes the preferred embodiments of the present application and is not intended to limit the present application, and any modification, equivalent replacement, and improvement within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. A glass processing vertical double laser head froster comprising a protective casing (1), characterized in that: Both sides of the bottom of the inner cavity of the protective shell (1) are transversely provided with bases (2), the other end of the base (2) extends to the outside of the protective shell (1), and the top of the base (2) is rotatably provided with a plurality of supporting wheels (3) through a chain wheel transmission assembly (21). Both sides of the protective shell (1) are fixedly connected with back plates (5), the front side of the back plate (5) is rotatably connected with a plurality of first rotating wheels (6), and both sides of the protective shell (1) are provided with feed openings (7). The inner cavity of the protective shell (1) is vertically fixedly connected with a supporting frame (9), both sides of the supporting frame (9) are provided with mounting plates (16) moving in the vertical direction through a driving mechanism, the surface of the mounting plate (16) is provided with a laser (18) moving in the horizontal direction and located between the two bases (2) through a transmission mechanism, and the lower part of both sides of the protective shell (1) is provided with a suction disc mechanism.

2. A glass processing vertical double laser head froster as described in claim 1, wherein: The suction disc mechanism comprises a pneumatic telescopic rod (10) and a vacuum suction disc (11), the pneumatic telescopic rod (10) is fixedly connected to the lower part of the side wall of the protective shell (1), and the vacuum suction disc (11) is fixedly connected to the front end of the pneumatic telescopic rod (10).

3. A glass processing vertical double laser head froster as described in claim 1, wherein: The surface of the supporting frame (9) is fixedly connected with a supporting frame (12), and the surface of the supporting frame (12) is rotatably provided with a plurality of second rotating wheels (13).

4. A glass processing vertical double laser head froster as described in claim 1, wherein: The bottom of the base (2) is provided with a plurality of supporting feet (8), and the rear side of the back plate (5) and the rear side of the base (2) are fixedly connected with a reinforcing frame (4).

5. A glass processing vertical double laser head froster as described in claim 1, wherein: The driving mechanism comprises two first lead screws (14) and a second servo motor (22), the two first lead screws (14) are rotatably connected to one side and the other side inside the supporting frame (9) respectively, the second servo motor (22) is fixedly connected to one side of the top of the supporting frame (9), the output shaft of the second servo motor (22) rotatably extends into the inner cavity of the supporting frame (9), the top end of one of the first lead screws (14) is fixedly connected, the top ends of the surfaces of the two first lead screws (14) are fixedly connected with synchronous pulleys (23), the two synchronous pulleys (23) are drivingly connected through a synchronous belt, the surface of the first lead screw (14) is threadedly connected with a first lead screw sleeve (15), the surface of the first lead screw sleeve (15) is slidingly connected with the inner wall surface of the supporting frame (9), and the side wall of the first lead screw sleeve (15) is fixedly connected with the surface of the mounting plate (16) on the same side.

6. A glass processing vertical double laser head froster as described in claim 1, wherein: The transmission mechanism comprises a first servo motor (17), a second lead screw (24), a second lead screw sleeve (19) and a connecting rod (20), the first servo motor (17) is fixedly connected to the side wall of the mounting plate (16), the second lead screw (24) is fixedly connected to the output shaft of the first servo motor (17), the second lead screw sleeve (19) is threadedly connected to the surface of the second lead screw (24), the surface of the second lead screw sleeve (19) is slidably connected with the side wall of the mounting plate (16), and the connecting rod (20) is fixedly connected to the surface of the second lead screw sleeve (19), and the front end of the connecting rod (20) is fixedly connected with the surface of the same side laser (18).