Round corner gluing mechanism for glass production line and use method of round corner gluing mechanism

By designing a rounded corner glue applicator for a glass production line, and utilizing a motor drive and sliding groove structure, the glass rotation and glue tube linear movement are achieved. Combined with adjustable extrusion pressure and glue output, the problems of uneven glue application and glue overflow at the rounded corners of the glass are solved, thus improving glue application quality and work efficiency.

CN121945355APending Publication Date: 2026-05-01QUZHOU OUCHEN GLASS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
QUZHOU OUCHEN GLASS CO LTD
Filing Date
2023-06-08
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

In existing technologies, the thickness of the adhesive applied to the rounded corners of the glass is not uniform, and the adhesive is prone to overflow, resulting in poor adhesive application quality, increased workload, and low efficiency.

Method used

A rounded corner glue application mechanism for a glass production line was designed, including a support component, a glue application moving component, an extrusion glue dispensing device, and an adjustment auxiliary component. Through motor drive and sliding groove structure, the glass is rotated and the glue tube moves linearly. Combined with adjustable extrusion pressure and glue dispensing volume, the glue is evenly applied at the rounded corners, and the overflow glue is cleaned up by a flexible scraper.

Benefits of technology

This method achieves uniform and full application of adhesive at the rounded corners of the glass, improves the quality of adhesive application, reduces the cleaning burden on staff, and increases work efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of gluing. The invention discloses a fillet gluing mechanism for a glass production line and a use method of the fillet gluing mechanism, and aims to solve the problems that when the side end of glass is glued, a worker usually completes gluing work by adjusting the direction of the output end of a gluing machine to move along the side end of the gluing machine, and when facing the glass with an arc angle, the glue cannot be sprayed on the side end of the glass. A gluing machine cannot adjust the glue output amount according to different angles of an arc, meanwhile, an output end cannot be always attached to the arc by hand holding, so that the gluing effect is influenced, meanwhile, in the gluing process, glue is extremely easy to overflow from the upper side and the lower side of glass and needs to be scraped by workers, and the working efficiency is low. According to the invention, the extrusion glue outlet device and the adjusting auxiliary assembly work, so that the glue outlet amount of the glue pipe can be synchronously adjusted according to the angle of the arc of the glass when the side end of the glass is glued, and meanwhile, glue overflowing from the two sides of the glass is cleaned, so that the gluing effect and the working efficiency are greatly improved.
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Description

A rounded corner glue applicator for a glass production line and its usage method Technical Field

[0001] This invention relates to the field of adhesive application technology, specifically to a rounded corner adhesive application mechanism for a glass production line and its application method. Background Technology

[0002] Glass is an amorphous inorganic non-metallic material, generally made from a variety of inorganic minerals (such as quartz sand, borax, boric acid, barite, barium carbonate, limestone, feldspar, soda ash, etc.) as the main raw materials, with the addition of a small amount of auxiliary materials. Its main components are silicon dioxide and other oxides. Due to its excellent transparency and the hardness of tempered glass, it is often used in the exterior walls of office buildings, libraries and other buildings to increase the light transmission inside the building.

[0003] In existing technologies, during the glass manufacturing process, glass shapes are categorized into right-angled quadrilaterals, rounded quadrilaterals, frayed glass, and irregularly shaped glass. When applying sealant to the side of right-angled glass, workers typically control a sealant applicator, moving it handheld along the glass side to apply the sealant. When encountering rounded corners, the direction of the applicator's output end is adjusted to conform to the glass side, completing the sealant application and ensuring a sufficiently uniform sealant thickness. However, when dealing with glass with rounded corners, the angle of the rounded corners prevents the sealant applicator's output end from adjusting the sealant dispensing amount according to the angle. Furthermore, the handheld nature of the process also contributes to the problem. Furthermore, the output end of the glue applicator cannot always be in contact with the side of the glass, resulting in insufficient thickness of the glue applied at the curved edges. This leads to incomplete glue application at the curved edges, resulting in poor glue application quality and affecting the glue application effect. At the same time, the glue is also very easy to overflow from the top and bottom sides of the glass during the glue application process. After the glue application is completed, the staff needs to clean the top and bottom sides of the glass, which increases the workload and reduces work efficiency. Therefore, there is a need for a device that can make the glue application at the curved edges of the glass full and uniform, and can scrape off the glue that overflows from the top and bottom sides of the glass to avoid insufficient glue application effect and low work efficiency. Summary of the Invention

[0004] The purpose of this invention is to provide a rounded corner gluing mechanism for a glass production line and its usage method, to solve the problems mentioned in the background art. To achieve the above objective, this invention provides the following technical solution: A rounded corner gluing mechanism for a glass production line includes an operating table, which is set on a horizontal plane and is hollow. A support component for placing glass is provided on the top of the operating table and is located on one side of the top of the operating table. A gluing moving component is provided on the side end of the support component and is located on the operating table. A glue tube is provided on the gluing moving component, with the output end of the glue tube facing the support component. An extrusion glue dispensing device is provided on the gluing moving component and is located on the side end of the glue tube. The extrusion glue dispensing device is provided with an adjustment auxiliary component for adjusting the gluing thickness. The extrusion glue dispensing device includes an extrusion trigger component and a glue dispensing component. The extrusion trigger component is located on the side end of the support component and on the gluing moving component, and the glue dispensing component is located on the side end of the extrusion trigger component.

[0005] Preferably, the supporting assembly includes a supporting platform, an extrusion component, an adsorption platform, and a first motor. The supporting platform is circular and horizontally positioned on the top of the operating table, with its center rotatably connected to the operating table. The supporting platform is located on one side of the top of the operating table, and a slot is formed at the side end of the supporting platform. Several extrusion components are provided, evenly distributed within the slot, with their extrusion ends all facing away from the center of the supporting platform. The adsorption platform is positioned on the supporting platform, with its bottom connected to the center of the top of the supporting platform. The first motor is vertically positioned on the bottom of the operating table, with its bottom fixedly connected to the bottom of the operating table. The output end of the first motor faces upward and is connected to the center of the supporting platform.

[0006] Preferably, the glue-applying moving assembly includes a moving base plate, a connecting block, a driving drum, a curved sliding groove, a locking component, a second motor, a slide rail, a first sliding seat, and a second sliding seat. The moving base plate is positioned on the top of the operating table and located at the side end of the supporting platform. The bottom of the moving base plate is slidably engaged with the top of the operating table. The connecting block is positioned at the bottom of the moving base plate, and its top is fixedly connected to the bottom of the moving base plate. The bottom of the connecting block passes through the top of the operating table and is slidably engaged with it. The driving drum is horizontally positioned inside the operating table, and both ends of the driving drum are rotatably connected to the inner wall of the operating table. A wavy curved sliding groove is provided on the driving drum. The locking component is vertically positioned at the bottom of the connecting block and located inside the operating table. The top of the locking component is engaged with the top of the connecting block. The bottom is fixedly connected, and the bottom of the locking component is embedded in the curved sliding groove opened on the drive drum and slides with it. The second motor is located on the outside of the operating table, and the output end of the second motor is connected to the center of the drive drum. The slide rail is located on the top of the movable base plate, and the bottom of the slide rail is fixedly connected to the top of the movable base plate. The sliding direction of the slide rail is set towards the support platform. The first sliding seat and the second sliding seat are both set on the slide rail, and the bottom of the first sliding seat and the second sliding seat are slidably engaged with the slide rail. The rubber tube is horizontally set in the first sliding seat and the second sliding seat. One end of the rubber tube is set in the second sliding seat and fixedly connected to it. The other end of the rubber tube is set in the first sliding seat and slides with it. The output end of the rubber tube is set towards the support platform.

[0007] Preferably, the extrusion triggering assembly includes a fixed frame, a sliding shaft, a first abutment, a second abutment, a connecting member, and a return spring. The fixed frame is disposed on the top of the movable base plate and located at the side end of the glue applicator. The bottom of the fixed frame is fixedly connected to the top of the movable base plate. The sliding shaft is disposed on the fixed frame and slides in cooperation with the fixed frame. The first abutment is disposed on the end of the sliding shaft near the supporting platform and is fixedly connected to it. The abutting end of the first abutment is embedded in the sliding groove at the side end of the supporting platform and abuts against the side end of the extrusion member adjacent to it. The second abutment is disposed on... The first abutment is placed on and parallel to it. The bottom of the second abutment is fixedly connected to the top of the first abutment. The abutting end of the second abutment is located above the support platform and at the side end of the adsorption platform. The connecting member is disposed on the sliding shaft and fixedly connected to it. The side end of the connecting member is fixedly connected to the side end of the first sliding seat. The return spring is horizontally disposed on the sliding shaft and located on the side of the connecting member away from the first abutment. One end of the return spring is fixedly connected to the side end of the connecting member, and the other end of the return spring is fixedly connected to the side end of the adjacent fixing frame.

[0008] Preferably, the dispensing assembly includes a mounting frame, an auxiliary frame, drive rods, a rotating shaft, a clamping component, a sliding frame, a sliding groove, a protrusion, and a movable component. Two mounting frames are provided, symmetrically arranged on the left and right sides of the dispensing tube, with the bottom of each frame fixedly connected to the top of the movable floor. Two auxiliary frames are provided, symmetrically arranged on the upper and lower sides of the dispensing tube, with both ends of each auxiliary frame fixedly connected to the side ends of their adjacent mounting frames. Four drive rods are provided, arranged in pairs parallel to each other on the four sides of the dispensing tube. Each pair of drive rods forms a group, with one group's side end slidingly engaged with the side end of the mounting frame, and the other group's side end slidingly engaged with the side end of the auxiliary frame. Each pair of drive rods within each group is arranged at 90 degrees to each other. Four rotating shafts are provided, each located on the side end of an auxiliary frame, with one end of each shaft rotatably connected thereto. Each pair of rotating shafts forms a group symmetrically arranged near the auxiliary frame. Four clamping members are provided at both ends of one side of the hose. Each clamping member is respectively disposed on the end of a rotating shaft away from the auxiliary frame and is eccentrically disposed thereto. The side of each clamping member near the hose is semi-circular and abuts against it. The side of each clamping member away from the hose is rotatably connected to the adjacent ends of two drive rods arranged at 90 degrees to each other in two sets of drive rods. A sliding frame is disposed on the top of the connector and located at the side end of one of the mounting frames. The bottom of the sliding frame is fixedly connected to the top of the connector. One end of the sliding frame passes through the mounting frame and slides with it. A sliding groove is opened on the top of the sliding frame. Several protrusions are provided in the sliding groove. The bottom of several protrusions is fixedly connected to the bottom of the sliding groove. A movable member is vertically disposed at the bottom of one of the drive rods on the mounting frame. One end of the movable member is fixedly connected to the bottom of the drive rod. The other end of the movable member abuts against the protrusions, and the side end of the movable member slides with the inner wall of the sliding groove.

[0009] Preferably, the adjustment auxiliary component includes an adjustment member, a locking member, a locking hole, a scale line, a mating moving frame, and a flexible scraper. The adjustment member is disposed on the side end of the second sliding seat and fixedly connected thereto. The bottom of the adjustment member is slidably engaged with the top of the movable base plate. The top of the movable base plate is evenly provided with a plurality of locking holes located near the adjustment member. The adjustment member is provided with a locking member, and the bottom of the locking member passes through the adjustment member and is located in one of the locking holes. The bottom of the locking member is threadedly connected to the inner wall of the locking hole. The movable base plate is provided with a scale line on the side end near the adjustment member. The mating moving frame is disposed on the side of the movable base plate near the support platform, and the bottom of the mating moving frame is fixedly connected to the top of the operating table. The output end of the hose passes through the mating moving frame and is slidably engaged with it. Two flexible scrapers are provided, and the two flexible scrapers are symmetrically disposed on the upper and lower sides of the output end of the hose, and the sides of the two flexible scrapers are fixedly connected to the side end of the mating moving frame near the support platform.

[0010] Preferably, the output end of the hose is fitted with a dispensing nozzle, and the dispensing nozzle has a horizontally V-shaped notch.

[0011] Preferably, the method of using the rounded corner glue applicator in a glass production line includes the following steps:

[0012] S1: Before the staff needs to apply glue to the side of the glass, the glass to be glued is first placed horizontally on the adsorption platform. The adsorption platform allows the glass to be stably placed above the support platform, and the side of the glass is positioned at the side of the glue tube output end, which facilitates the application of glue to the side of the glass. After the side of the glass is glued, the first motor is controlled to rotate the support platform on the top of the operating table, which in turn rotates the entire adsorption platform, causing the entire piece of glass placed on the adsorption platform to rotate, so that the other side of the glass faces the glue tube output end, thereby improving the convenience of this device.

[0013] S2: After the worker places the glass to be glued horizontally on the adsorption platform with the side to be glued located at the output end of the glue tube, the second motor is controlled to drive the drive drum to rotate within the operating table. Under the action of the wavy curved sliding groove, the connecting block moves linearly back and forth on the top of the operating table through the set locking component. This causes the moving base plate to move linearly back and forth on the top of the operating table, making it easier to move the glue tube linearly along the side of the glass. This further facilitates the glue application to the flat side of the glass, thus avoiding the need for the worker to hold the glue applicator and move it back and forth linearly to complete the glue application, thereby improving the convenience of the worker.

[0014] S3: After the worker places the glass to be glued horizontally on the adsorption platform, ensuring that the side of the glass is positioned at the side of the glue tube output end and the side of the second contact member's contact end, the second motor is controlled to operate. This causes the moving base plate to move linearly back and forth on the top of the operating table. A first contact member, embedded in a sliding groove on the side of the supporting platform and abutting against the side of an adjacent extruder, along with several extruders, causes the first contact member to continuously slide the sliding shaft on the fixed frame. This, in turn, causes the connecting piece on the sliding shaft to continuously reciprocate, thus causing the first sliding seat to slide on the slide rail. The movement causes the sliding bracket, which is fixedly connected to it, to slide back and forth on the mounting frame. Through the sliding groove, several protrusions within the groove cause the movable part to move up and down reciprocally. This, in turn, causes the drive rod, fixedly connected to the movable part, to slide up and down on the side of the mounting frame. Under the action of four clamping members, three other drive rods slide on the sides of the mounting frame and auxiliary frame, respectively. This causes the four clamping members to rotate eccentrically and synchronously, continuously clamping the adhesive tube around it. This allows the adhesive inside the tube to be dispensed at a uniform speed according to the pressure applied by the four clamping members, thus evenly dispensing adhesive onto the flat glass side. When applying sealant to the glass side, after the initial sealant application, the rounded corners of the glass side need to be sealed. By controlling the support assembly, the entire glass rotates. During this rotation, the rounded corners of the glass press tightly against the contact end of the second contact member. Depending on the angle of the rounded corners, the force applied to the second contact member by the glass side changes, thus changing the distance the sliding shaft slides on the fixed frame. This, in turn, causes the sliding frame to slide a different distance within the mounting frame via the connector and the first sliding seat. This, in turn, changes the movement distance of the moving parts, ultimately driving the four drive rods. The change in displacement distance further changes the eccentric rotation angle of the four clamping parts. When the eccentric rotation angle of the four clamping parts is too large, the amount of adhesive dispensed from the tube will also increase. When the eccentric rotation angle of the four clamping parts is small, the amount of adhesive dispensed from the tube will also decrease. Furthermore, under the action of the return spring, the contact end of the second contacting part can always be attached to the side of the glass. The glass as a whole will not shift its position under the action of the adsorption platform, thus uniformly applying adhesive to the rounded corner surface of the glass. This ensures that the thickness of the adhesive applied by the adhesive applicator is uniform at the rounded corner, making the adhesive at the rounded corner sufficiently full, thereby improving the adhesive application quality and further enhancing the adhesive application effect.

[0015] S4: Before applying sealant to the side of the glass, the operator can move the adjustment piece on the movable base plate, thereby moving the second sliding seat on the slide rail. This causes the sealant tube to slide on the first sliding seat and the matching movable frame, allowing the operator to adjust the distance between the sealant tube output end and the glass side according to the scale lines, thus adjusting the sealant thickness. After adjustment, the position of the adjustment piece is locked by the threaded connection between the locking piece and the locking hole, preventing changes in the distance between the sealant tube output end and the glass side during the sealant application process, thereby further improving the sealant application quality. During the sealant application process, two flexible scraping pieces are used to scrape and clean the sealant overflowing from the top and bottom sides of the glass, thus avoiding the need for the operator to clean the glass side again after the sealant application is completed, reducing workload and improving work efficiency.

[0016] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0017] In this invention, when using this device, the operator first places the glass to be coated with sealant horizontally on the operating table above the support assembly. The support assembly allows the glass to be stably placed on it, with the side of the glass positioned at the outlet end of the sealant tube. When the side of the glass is flat, the sealant application component is controlled to move linearly along the side of the glass. Under the action of the pressure trigger component, the dispensing component is activated, allowing the sealant in the tube to be dispensed at a uniform speed according to the pressure applied by the pressure trigger component, thus uniformly coating the flat side of the glass. When the side of the glass needs to be coated, the support assembly is controlled to rotate the entire glass. During the rotation, the pressure applied to the pressure trigger component varies depending on the angle of the rounded corners. The change in pressure causes a change in the amount of adhesive dispensed from the tube under the action of the dispensing component. This results in uniform adhesive application to the rounded corners of the glass, ensuring a consistent thickness of adhesive at the rounded edges and a full, even application. This improves the overall quality and effectiveness of the adhesive application. Furthermore, before applying adhesive to the sides of the glass, the adjustable auxiliary components can be used to adjust the distance between the tube output and the glass side, thus adjusting the adhesive thickness. Excess adhesive overflowing from the top and bottom of the glass during application can be scraped away, eliminating the need for manual cleaning after application. This reduces workload and increases efficiency, achieving a full and even application of adhesive to the rounded corners while removing excess adhesive from the top and bottom to prevent insufficient application and low efficiency.

[0018] In this invention, before applying sealant to the side of the glass, the glass to be sealed is first placed horizontally on the adsorption platform. The adsorption platform allows the glass to be stably placed above the support platform, with the side of the glass positioned at the end of the adhesive tube output. This facilitates the application of sealant to the side of the glass. After the sealant is applied to one side of the glass, the first motor is controlled to rotate the support platform on top of the operating table, which in turn rotates the entire adsorption platform. This causes the entire piece of glass placed on the adsorption platform to rotate, so that the other side of the glass faces the end of the adhesive tube output, thereby improving the convenience of the device.

[0019] In this invention, after the worker places the glass to be glued horizontally on the adsorption platform with the side to be glued located at the output end of the glue tube, the second motor is controlled to drive the drive drum to rotate within the operating table. Under the action of the wavy curved sliding groove, the connecting block moves linearly back and forth on the top of the operating table through the set locking component, thereby driving the moving base plate to move linearly back and forth on the top of the operating table. This facilitates the linear movement of the glue tube along the side of the glass, further facilitating the glue application to the flat side of the glass. This avoids the need for the worker to manually move the glue applicator back and forth linearly to complete the glue application, thus improving the convenience of the worker.

[0020] In this invention, the operator places the glass to be glued horizontally on the adsorption platform, positioning the side of the glass at the side of the glue tube output end and the side of the second contact member's contact end. Then, by controlling the second motor, the moving base plate reciprocates linearly on the top of the operating table. A first contact member, embedded in a sliding groove on the side of the supporting platform and abutting against the side of an adjacent extruder, along with several extruders, causes the first contact member to continuously slide the sliding shaft on the fixed frame. This, in turn, causes the connecting piece on the sliding shaft to reciprocate continuously, thus moving the first sliding seat on the slide rail. The sliding mechanism causes the sliding bracket, which is fixedly connected to it, to slide back and forth on the mounting frame. Through the sliding groove, several protrusions within the groove cause the movable part to move up and down reciprocally. This, in turn, causes the drive rod, fixedly connected to the movable part, to slide up and down on the side of the mounting frame. Under the action of four clamping members, three other drive rods slide on the sides of the mounting frame and auxiliary frame, respectively. This causes the four clamping members to rotate eccentrically and synchronously, continuously clamping the adhesive tube around it. This allows the adhesive inside the tube to be dispensed at a uniform speed according to the pressure applied by the four clamping members, thus uniformly dispensing adhesive onto the flat glass side. When applying sealant evenly to the glass side, after applying sealant to the rounded corners, the supporting assembly is controlled to rotate the entire glass. During this rotation, the rounded corners of the glass press tightly against the contact end of the second contact member. Depending on the angle of the rounded corners, the force applied to the second contact member by the glass side changes, thus changing the distance the sliding shaft slides on the fixed frame. This, in turn, causes the sliding frame to slide a different distance within the mounting frame via the connecting piece and the first sliding seat. This, in turn, changes the movement distance of the moving parts, ultimately affecting the four drive rods. The change in displacement distance further alters the eccentric rotation angle of the four clamping components. When the eccentric rotation angle of the four clamping components is too large, the amount of adhesive dispensed from the tube will increase accordingly. Conversely, when the eccentric rotation angle of the four clamping components is small, the amount of adhesive dispensed from the tube will decrease accordingly. Furthermore, under the action of the return spring, the contact end of the second contacting component remains in contact with the side of the glass. The glass as a whole will not shift position under the action of the adsorption platform, thus ensuring uniform adhesive application on the rounded corner surface of the glass. This results in a uniform thickness of adhesive applied by the adhesive applicator at the rounded corner, ensuring sufficient adhesive coverage and improving the adhesive application quality and effect.

[0021] In this invention, before applying sealant to the side of the glass, the operator can move the adjustment component on the movable base plate, thereby moving the second sliding seat on the slide rail. This causes the sealant tube to slide on the first sliding seat and the cooperating movable frame, allowing the operator to adjust the distance between the sealant tube output end and the glass side end according to the scale lines, thus adjusting the sealant thickness. After adjustment, the position of the adjustment component is locked by the threaded connection between the locking component and the locking hole, preventing changes in the distance between the sealant tube output end and the glass side end during the sealant application process, thereby further improving the sealant application quality. During the sealant application process, two flexible scraping components are used to scrape and clean the sealant overflowing from the top and bottom sides of the glass, thus avoiding the need for the operator to clean the glass side end again after the sealant application is completed, reducing workload and improving work efficiency.

[0022] In this invention, the V-shaped notch facilitates a greater amount of adhesive dispensed from the adhesive tube during the application of adhesive to the glass side, ensuring sufficient adhesive coverage on the glass side and preventing bulging due to insufficient adhesive, thereby further improving the adhesive application quality. Attached Figure Description

[0023] Figure 1 is a three-dimensional structural schematic diagram of the present invention;

[0024] Figure 2 is a two-dimensional structural schematic diagram of the present invention;

[0025] Figure 3 is a cross-sectional view of the operating table in this invention;

[0026] Figure 4 is a second cross-sectional view of the operating table in this invention;

[0027] Figure 5 is a partial three-dimensional structural schematic diagram of the present invention;

[0028] Figure 6 is a partial three-dimensional structural schematic diagram of the glue dispensing moving component and the extrusion glue dispensing device in this invention;

[0029] Figure 7 is an enlarged schematic diagram of region A in Figure 6;

[0030] Figure 8 is a partial three-dimensional structural schematic diagram of the present invention;

[0031] Figure 9 is a partial three-dimensional structural schematic diagram of the glue dispensing moving component and the extrusion glue dispensing device in this invention;

[0032] Figure 10 is an enlarged schematic diagram of region B in Figure 9;

[0033] Figure 11 is a partial three-dimensional structural diagram of the glue-applying moving component and the glue-extrusion device in this invention.

[0034] In the diagram: 1. Operating table; 2. Supporting assembly; 21. Supporting platform; 22. Extrusion component; 23. Adsorption platform; 24. First motor; 3. Glue dispensing moving assembly; 31. Moving base plate; 32. Connecting block; 33. Drive drum; 34. Curved sliding groove; 35. Locking component; 36. Second motor; 37. Slide rail; 38. First sliding seat; 39. Second sliding seat; 4. Glue hose; 5. Extrusion dispensing device; 51. Extrusion triggering assembly; 511. Fixing frame; 512. Sliding shaft; 513. ... 514. First contact element; 515. Second contact element; 516. Connecting element; 517. Return spring; 52. Dispensing assembly; 521. Mounting bracket; 522. Auxiliary bracket; 523. Drive rod; 524. Rotating shaft; 525. Clamping element; 526. Sliding bracket; 527. Sliding groove; 528. Protrusion; 529. Movable element; 6. Adjustment auxiliary assembly; 61. Adjusting element; 62. Locking element; 63. Locking hole; 64. Scale line; 65. Matching moving bracket; 66. Flexible scraping element; 7. Dispensing nozzle. Detailed Implementation

[0035] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0036] Please refer to Figures 1 to 11. This invention provides a technical solution: a rounded corner glue applicator for a glass production line, comprising an operating table 1, which is set on a horizontal plane and is hollow. The top of the operating table 1 is provided with a support component 2 for placing glass and is located on one side of the top of the operating table 1. The side end of the support component 2 is provided with a glue applicator moving component 3 and is located on the operating table 1. The glue applicator moving component 3 is provided with a glue tube 4, the output end of which is set towards the support component 2. The glue applicator moving component 3 is provided with a glue extrusion device 5 and is located on the side end of the glue tube 4. The glue extrusion device 5 is provided with an adjustment auxiliary component 6 for adjusting the glue thickness. The glue extrusion device 52 includes a pressure trigger component 51 and a glue dispensing component 52. The pressure trigger component 51 is located on the side end of the support component 2 and on the glue applicator moving component 3, and the glue dispensing component 52 is located on the side end of the pressure trigger component 51.

[0037] In this embodiment, as shown in Figures 1, 2, and 3, the supporting assembly 2 includes a supporting platform 21, an extrusion member 22, an adsorption platform 23, and a first motor 24. The supporting platform 21 is circular and is horizontally arranged on the top of the operating table 1, with its center rotatably connected to the operating table 1. The supporting platform 21 is located on one side of the top of the operating table 1, and a slot is provided on the side end of the supporting platform 21. Several extrusion members 22 are provided, and they are evenly arranged in the slot, with the extrusion ends of the extrusion members 22 all facing away from the center of the supporting platform 21. The adsorption platform 23 is arranged on the supporting platform 21, and its bottom is connected to the top center of the supporting platform 21. The first motor 24 is vertically arranged on the bottom of the operating table 1, and its bottom is fixedly connected to the bottom of the operating table 1. The output end of the first motor 24 faces upward and is connected to the center of the supporting platform 21.

[0038] Before applying sealant to the side of the glass, the glass to be sealed is first placed horizontally on the adsorption platform 23. The adsorption platform 23 allows the glass to be stably placed above the support platform 21, with the side of the glass positioned at the output end of the adhesive tube 4. This facilitates the application of sealant to the side of the glass. After the side of the glass is sealed, the first motor 24 is controlled to rotate the support platform 21 on the top of the operating table 1, which in turn rotates the entire adsorption platform 23. This causes the entire piece of glass placed on the adsorption platform 23 to rotate, so that the other side of the glass faces the output end of the adhesive tube 4, thereby improving the convenience of the device.

[0039] In this embodiment, as shown in Figures 3, 4, and 6, the glue-applying moving assembly 3 includes a moving base plate 31, a connecting block 32, a driving drum 33, a curved sliding groove 34, a locking member 35, a second motor 36, a slide rail 37, a first sliding seat 38, and a second sliding seat 39. The moving base plate 31 is located on the top of the operating table 1 and at the side end of the supporting platform 21. The bottom of the moving base plate 31 is slidably engaged with the top of the operating table 1. The connecting block 32 is located at the bottom of the moving base plate 31, and the top of the connecting block 32 is fixedly connected to the bottom of the moving base plate 31. The bottom of the connecting block 32 passes through the top of the operating table 1 and is slidably engaged with it. The driving drum 33 is horizontally arranged inside the operating table 1, and both ends of the driving drum 33 are rotatably connected to the inner wall of the operating table 1. The driving drum 33 has a wavy curved sliding groove 34. The locking member 35 is vertically arranged at the bottom of the connecting block 32 and located inside the operating table 1. The top of the connecting block 32 is fixedly connected to the bottom of the connecting block 32. The bottom of the locking member 35 is embedded in the curved sliding groove 34 opened on the drive rotating cylinder 33 and slides with it. The second motor 36 is set on the outside of the operating table 1 and the output end of the second motor 36 is connected to the center of the drive rotating cylinder 33. The slide rail 37 is set on the top of the movable base plate 31 and the bottom of the slide rail 37 is fixedly connected to the top of the movable base plate 31. The sliding direction of the slide rail 37 is set towards the support platform 21. The first sliding seat 38 and the second sliding seat 39 are both set on the slide rail 37 and the bottom of the first sliding seat 38 and the second sliding seat 39 are both slidably connected to the slide rail 37. The rubber tube 4 is horizontally set in the first sliding seat 38 and the second sliding seat 39. One end of the rubber tube 4 is set in the second sliding seat 39 and fixedly connected to it. The other end of the rubber tube 4 is set in the first sliding seat 38 and slides with it. The output end of the rubber tube 4 is set towards the support platform 21.

[0040] After the worker places the glass to be glued horizontally on the adsorption platform 23 with the side to be glued positioned at the output end of the glue tube 4, the second motor 36 is controlled to drive the drive drum 33 to rotate within the operating table 1. Under the action of the wave-shaped curved sliding groove 34, the connecting block 32 moves linearly back and forth on the top of the operating table 1 through the set locking component 35. This causes the moving base plate 31 to move linearly back and forth on the top of the operating table 1, facilitating the linear movement of the glue tube 4 along the side of the glass. This further facilitates the glue application to the flat side of the glass, eliminating the need for the worker to manually move the glue applicator back and forth to complete the glue application, thus improving the worker's convenience.

[0041] In this embodiment, as shown in Figures 5, 6, 7, 9, and 10, the extrusion trigger assembly 51 includes a fixed frame 511, a sliding shaft 512, a first abutment 513, a second abutment 514, a connecting member 515, and a return spring 516. The fixed frame 511 is disposed on the top of the movable base plate 31 and located at the side end of the glue applicator. The bottom of the fixed frame 511 is fixedly connected to the top of the movable base plate 31. The sliding shaft 512 is disposed on the fixed frame 511 and slides in cooperation with the fixed frame 511. The first abutment 513 is disposed on the end of the sliding shaft 512 near the supporting platform 21 and is fixedly connected to it. The abutting end of the first abutment 513 is embedded in the sliding groove 527 at the side end of the supporting platform 21 and abuts against the adjacent extrusion member 22. The second abutment 514 is disposed on the first abutment 513 and is disposed parallel to it. The bottom of the second abutment 514 is fixedly connected to the top of the first abutment 513. The abutting end of the second abutment 514 is located above the support platform 21 and at the side end of the adsorption platform 23. The connecting member 515 is disposed on the sliding shaft 512 and is fixedly connected to it. The side end of the connecting member 515 is fixedly connected to the side end of the first sliding seat 38. The return spring 516 is horizontally disposed on the sliding shaft 512 and is located on the side of the connecting member 515 away from the first abutment 513. One end of the return spring 516 is fixedly connected to the side end of the connecting member 515, and the other end of the return spring 516 is fixedly connected to the side end of the adjacent fixing frame 511.

[0042] The dispensing assembly 52 includes a mounting bracket 521, an auxiliary bracket 522, a drive rod 523, a rotating shaft 524, a clamping component 525, a sliding bracket 526, a sliding groove 527, a protrusion 528, and a movable component 529. Two mounting brackets 521 are provided, symmetrically arranged on the left and right sides of the dispensing tube 4, with the bottom of each bracket fixedly connected to the top of the movable floor. Two auxiliary brackets 522 are provided, symmetrically arranged on the upper and lower sides of the dispensing tube 4, with both ends of each auxiliary bracket fixedly connected to the side ends of the adjacent mounting bracket 521. The drive rod 523 has four... Four drive rods 523 are arranged in pairs parallel to each other on the four sides of the hose 4. Each pair of drive rods 523 forms a group. The side end of one group of drive rods 523 is slidably engaged with the side end of the mounting bracket 521, and the side end of the other group of drive rods 523 is slidably engaged with the side end of the auxiliary bracket 522. Each pair of drive rods 523 within the two groups is arranged at 90 degrees to each other. Four rotating shafts 524 are provided, each located on the side end of the auxiliary bracket 522, and one end of each shaft is rotatably connected to it. Each pair of rotating shafts 524 forms a symmetrical group located near the auxiliary bracket 522. Four clamping members 525 are provided at both ends of one side of the hose 4. Each clamping member 525 is respectively disposed on the end of a rotating shaft 524 away from the auxiliary frame 522 and is eccentrically disposed thereto. The side of each clamping member 525 near the hose 4 is semi-circular and abuts against it. The side of each clamping member 525 away from the hose 4 is rotatably connected to the adjacent ends of two drive rods 523 arranged at 90 degrees to each other in the two sets of drive rods 523. The sliding frame 526 is disposed on the top of the connector 515 and located at the side end of one of the mounting frames 521. The bottom of the sliding frame 526 is connected to the connector 515. The top of the connector 515 is fixedly connected. One end of the sliding frame 526 passes through the mounting frame 521 and slides with it. The top of the sliding frame 526 is provided with a sliding groove 527. The sliding groove 527 is provided with a plurality of protrusions 528. The bottom of the plurality of protrusions 528 is fixedly connected to the bottom of the sliding groove 527. The movable part 529 is vertically arranged at the bottom of one of the drive rods 523 on the mounting frame 521. One end of the movable part 529 is fixedly connected to the bottom of the drive rod 523. The other end of the movable part 529 abuts against the protrusion 528 and the side end of the movable part 529 slides with the inner wall of the sliding groove 527.

[0043] After the worker places the glass to be glued horizontally on the adsorption platform 23, with the side end of the glass positioned at the output end of the glue tube 4 and at the side end of the second contact member 514, the second motor 36 is controlled to operate, thereby driving the moving base plate 31 to move linearly back and forth on the top of the operating table 1. A first contact member 513, embedded in the sliding groove 527 on the side end of the supporting platform 21 and abutting against the side end of the adjacent extrusion member 22, along with several extrusion members 22, causes the first contact member 513 to continuously slide the sliding shaft 512 on the fixed frame 511. This, in turn, causes the connecting member 515 on the sliding shaft 512 to continuously reciprocate, thereby driving the first sliding seat 3... 8 slides on the slide rail 37, thereby driving the slide frame 526 fixedly connected to it to slide back and forth on the mounting frame 521. Through the provided sliding groove 527, under the action of several protrusions 528 in the sliding groove 527, the movable part 529 is driven to move up and down reciprocally, thereby driving the drive rod 523 fixedly connected to the movable part 529 to slide up and down on the side end of the mounting frame 521. Under the action of the four clamping parts 525, the other three drive rods 523 are driven to slide on the side ends of the mounting frame 521 and the auxiliary frame 522 respectively, thereby driving the four clamping parts 525 to rotate synchronously and eccentrically, thereby continuously and synchronously clamping the rubber tube 4 around it, so that the rubber in the rubber tube 4 can be adjusted according to the four clamping parts 525. The applied pressure causes the adhesive to be dispensed at a uniform speed, thus evenly applying adhesive to the flat glass side. After applying adhesive to the glass side, when it is necessary to apply adhesive to the rounded corner surface of the glass side, the supporting component 2 is controlled to rotate the entire glass. During the rotation of the glass, the rounded corner surface of the glass will tightly abut against the abutting end of the second abutting member 514. Subsequently, depending on the different angles of the rounded corner surface of the glass, the force applied to the second abutting member 514 by the side of the glass changes, thereby changing the sliding distance of the sliding shaft 512 on the fixed frame 511. As a result, the sliding distance of the sliding frame 526 within the mounting frame 521, driven by the connecting member 515 and the first sliding seat 38, also changes accordingly. The movement distance of the moving part 529 changes, which in turn causes a change in the displacement distance of the four drive rods 523, further causing a change in the eccentric rotation angle of the four clamping parts 525. When the eccentric rotation angle of the four clamping parts 525 is too large, the amount of adhesive dispensed from the tube 4 will also increase. When the eccentric rotation angle of the four clamping parts 525 is small, the amount of adhesive dispensed from the tube 4 will also decrease. Furthermore, under the action of the return spring 516, the contact end of the second contacting part 514 can always be in contact with the side of the glass. The glass as a whole will not shift its position under the action of the adsorption platform 23, thus achieving uniform adhesive application on the rounded corner surface of the glass. This ensures that the thickness of the adhesive applied by the adhesive applicator is uniform at the rounded corner, resulting in a sufficiently full application of adhesive at the rounded corner.This improves the quality of the adhesive application and further enhances the application effect.

[0044] In this embodiment, as shown in Figures 8 and 11, the adjustment auxiliary component 6 includes an adjustment member 61, a locking member 62, a locking hole 63, a scale line 64, a moving frame 65, and a flexible scraping member 66. The adjustment member 61 is disposed on the side end of the second sliding seat 39 and fixedly connected thereto. The bottom of the adjustment member 61 slides in conjunction with the top of the moving base plate 31. The top of the moving base plate 31 has a plurality of locking holes 63 evenly distributed and located near one end of the adjustment member 61. The adjustment member 61 is provided with a locking member 62, and the bottom of the locking member 62 passes through the adjustment member 61 and is located in one of the locking holes 63. The bottom of the fixed part 62 is threaded to the inner wall of the locking hole 63. The movable base plate 31 is provided with a scale line 64 on the side end near the adjusting part 61. The mating movable frame 65 is provided on the side of the movable base plate 31 near the supporting platform 21 and the bottom of the mating movable frame 65 is fixedly connected to the top of the operating table 1. The output end of the rubber tube 4 passes through the mating movable frame 65 and slides with it. There are two flexible scraping parts 66. The two flexible scraping parts 66 are symmetrically arranged on the upper and lower sides of the output end of the rubber tube 4 and the side ends of the two flexible scraping parts 66 are fixedly connected to the side end of the mating movable frame 65 near the supporting platform 21.

[0045] Before applying sealant to the side of the glass, the worker can move the adjustment piece 61 on the movable base plate 31, thereby moving the second sliding seat 39 on the slide rail 37. This causes the sealant tube 4 to slide on the first sliding seat 38 and the cooperating movable frame 65, allowing the worker to adjust the distance between the output end of the sealant tube 4 and the side of the glass according to the scale line 64, thus adjusting the sealant thickness. After adjustment, the position of the adjustment piece 61 is locked by the threaded connection between the locking piece 62 and the locking hole 63, preventing changes in the distance between the output end of the sealant tube 4 and the side of the glass during the sealant application process, thereby further improving the sealant application quality. During the sealant application process, the two flexible scraping pieces 66 scrape and clean the sealant overflowing from the top and bottom sides of the glass, thus avoiding the need for the worker to clean the side of the glass again after the sealant application is completed, reducing workload and improving work efficiency.

[0046] In this embodiment, as shown in Figure 7, a glue nozzle 7 is fitted onto the output end of the glue tube 4, and a V-shaped notch is horizontally opened on the glue nozzle 7. The V-shaped notch facilitates the increase of glue output from the glue tube 4 during the glue application process on the glass side, thereby ensuring that the glue on the glass side is sufficiently full and avoiding the problem of bulging due to insufficient glue, thus further improving the glue application quality.

[0047] The method of use and advantages of the present invention: The working process of the rounded corner glue applicator for a glass production line is as follows:

[0048] As shown in Figures 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, and 11:

[0049] S1: Before the staff needs to apply glue to the side of the glass, the glass to be glued is first placed horizontally on the adsorption platform 23. The adsorption platform 23 allows the glass to be stably placed above the support platform 21, and the side of the glass is positioned at the side of the glue tube 4 output end, which facilitates the application of glue to the side of the glass. After the side of the glass is glued, the first motor 24 is controlled to rotate the support platform 21 on the top of the operating table 1, which in turn rotates the adsorption platform 23 as a whole, thereby rotating the entire piece of glass placed on the adsorption platform 23, so that the other side of the glass faces the output end of the glue tube 4, thereby improving the convenience of this device.

[0050] S2: After the worker places the glass to be glued horizontally on the adsorption platform 23 and positions the side to be glued at the output end of the glue tube 4, the second motor 36 is controlled to drive the drive drum 33 to rotate within the operating table 1. Under the action of the wave-shaped curved sliding groove 34, the connecting block 32 moves linearly back and forth on the top of the operating table 1 through the set locking piece 35. This causes the moving base plate 31 to move linearly back and forth on the top of the operating table 1, which facilitates the linear movement of the glue tube 4 along the side of the glass. This further facilitates the glue application to the flat side of the glass, thus avoiding the need for the worker to hold the glue applicator and move it back and forth linearly to complete the glue application, thereby improving the convenience of the worker.

[0051] S3: After the worker places the glass to be glued horizontally on the adsorption platform 23, and positions the side of the glass at the output end of the glue tube 4 and the side of the contact end of the second contact member 514, the worker then controls the second motor 36 to operate, thereby driving the moving base plate 31 to move linearly back and forth on the top of the operating table 1. A first contact member 513, embedded in the sliding groove 527 on the side of the supporting platform 21 and abutting against the side of the adjacent extrusion member 22, along with several extrusion members 22, causes the first contact member 513 to continuously slide the sliding shaft 512 on the fixed frame 511. This, in turn, causes the connecting member 515 on the sliding shaft 512 to continuously reciprocate, thereby driving the first sliding... The seat 38 slides on the slide rail 37, thereby driving the sliding frame 526, which is fixedly connected to it, to slide back and forth on the mounting frame 521. Through the sliding groove 527, under the action of several protrusions 528 in the sliding groove 527, the movable part 529 is driven to move up and down reciprocally, thereby driving the drive rod 523, which is fixedly connected to the movable part 529, to slide up and down on the side end of the mounting frame 521. Under the action of the four clamping parts 525, the other three drive rods 523 are driven to slide on the side ends of the mounting frame 521 and the auxiliary frame 522 respectively, thereby driving the four clamping parts 525 to rotate synchronously and eccentrically, thereby continuously and synchronously clamping the hose 4 around it, so that the glue in the hose 4 can be adjusted according to the four clamping parts 525. The pressure applied by component 25 causes the adhesive to be dispensed at a uniform speed, thus evenly applying adhesive to the flat glass side. After applying adhesive to the glass side, when it is necessary to apply adhesive to the rounded corner surface of the glass side, the supporting component 2 is controlled to rotate the entire glass. During the rotation of the glass, the rounded corner surface of the glass will tightly abut against the abutting end of the second abutting member 514. Subsequently, depending on the different angles of the rounded corner surface of the glass, the force applied to the second abutting member 514 by the side of the glass changes, thereby changing the sliding distance of the sliding shaft 512 on the fixed frame 511. Consequently, the sliding distance of the sliding frame 526 within the mounting frame 521, driven by the connecting member 515 and the first sliding seat 38, also changes accordingly. The movement distance of the movable part 529 changes, which in turn changes the displacement distance of the four drive rods 523, further causing a change in the eccentric rotation angle of the four clamping parts 525. When the eccentric rotation angle of the four clamping parts 525 is too large, the amount of adhesive dispensed from the adhesive tube 4 will also increase. When the eccentric rotation angle of the four clamping parts 525 is small, the amount of adhesive dispensed from the adhesive tube 4 will also decrease. Furthermore, under the action of the return spring 516, the contact end of the second contacting part 514 can always be in contact with the side of the glass. The glass as a whole will not shift its position under the action of the adsorption platform 23, thus achieving uniform adhesive application on the rounded corner surface of the glass. This ensures that the thickness of the adhesive applied by the adhesive applicator is uniform at the rounded corner, resulting in a sufficiently full adhesive application at the rounded corner.This improves the quality of glue application and further enhances the glue application effect;

[0052] S4: Before applying sealant to the side of the glass, the operator can move the adjustment piece 61 on the moving base plate 31, thereby moving the second sliding seat 39 on the slide rail 37. This causes the sealant tube 4 to slide on the first sliding seat 38 and the cooperating moving frame 65, allowing the operator to adjust the distance between the output end of the sealant tube 4 and the side of the glass according to the scale line 64, thus adjusting the sealant thickness. After adjustment, the position of the adjustment piece 61 is locked by the threaded connection between the locking piece 62 and the locking hole 63, preventing changes in the distance between the output end of the sealant tube 4 and the side of the glass during the sealant application process, thereby further improving the sealant application quality. During the sealant application process, the two flexible scraping pieces 66 scrape and clean the sealant overflowing from the top and bottom sides of the glass, thus avoiding the need for the operator to clean the side of the glass again after the sealant application is completed, reducing workload and improving work efficiency.

[0053] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.

Claims

1. A rounded corner glue applicator for a glass production line, characterized in that: The system includes an operating table (1) which is set on a horizontal plane and is hollow. The top of the operating table (1) is provided with a support component (2) for placing glass and is located on one side of the top of the operating table (1). The side end of the support component (2) is provided with a glue-applying moving component (3) and is located on the operating table (1). The glue-applying moving component (3) is provided with a glue tube (4) and the output end of the glue tube (4) is set towards the support component (2). The glue-applying moving component (3) is provided with a glue-extrusion device (5) and is located on the side end of the glue tube (4). The glue-extrusion device (5) is provided with an adjustment auxiliary component (6) for adjusting the glue thickness. The glue-extrusion component (52) includes a pressure trigger component (51) and a glue-extrusion component (52). The pressure trigger component (51) is set on the side end of the support component (2) and is located on the glue-applying moving component (3). The glue-extrusion component (52) is set on the side end of the pressure trigger component (51).

2. The rounded corner glue applicator for a glass production line according to claim 1, characterized in that: The supporting assembly (2) includes a supporting platform (21), an extruder (22), an adsorption platform (23), and a first motor (24). The supporting platform (21) is circular and is horizontally positioned on the top of the operating table (1), with its center rotatably connected to the operating table (1). The supporting platform (21) is located on one side of the top of the operating table (1), and a slot is provided on the side end of the supporting platform (21). Several extruders (22) are provided, and the extruders (22) are evenly distributed in the slot. The extrusion ends of several extrusion components (22) are all set away from the center of the support platform (21). The adsorption platform (23) is set on the support platform (21) and the bottom of the adsorption platform (23) is connected to the center of the top of the support platform (21). The first motor (24) is vertically set on the bottom of the operating table (1) and the bottom of the first motor (24) is fixedly connected to the bottom of the operating table (1). The output end of the first motor (24) is set upward and the output end of the first motor (24) is connected to the center of the support platform (21).

3. The rounded corner glue applicator for a glass production line according to claim 1, characterized in that: The glue-applying moving assembly (3) includes a moving base plate (31), a connecting block (32), a drive drum (33), a curved sliding groove (34), a locking component (35), a second motor (36), a slide rail (37), a first sliding seat (38), and a second sliding seat (39). The moving base plate (31) is located on the top of the operating table (1) and at the side end of the supporting platform (21). The bottom of the moving base plate (31) is slidably engaged with the top of the operating table (1). The connecting block (32) is located at the bottom of the moving base plate (31) and the connecting block... The top of (32) is fixedly connected to the bottom of the movable base plate (31). The bottom of the connecting block (32) passes through the top of the operating table (1) and slides with it. The driving drum (33) is horizontally set inside the operating table (1) and both ends of the driving drum (33) are rotatably connected to the inner wall of the operating table (1). A wave-shaped curved sliding groove (34) is opened on the driving drum (33). The locking member (35) is vertically set at the bottom of the connecting block (32) and located inside the operating table (1). The top of the locking member (35) is connected to the connecting block. (32) is fixedly connected to the bottom. The bottom of the locking member (35) is embedded in the curved sliding groove (34) opened on the drive drum (33) and slides with it. The second motor (36) is set on the outside of the operating table (1) and the output end of the second motor (36) is connected to the center of the drive drum (33). The slide rail (37) is set on the top of the movable base plate (31) and the bottom of the slide rail (37) is fixedly connected to the top of the movable base plate (31). The sliding direction of the slide rail (37) is set towards the supporting platform (21). The first sliding seat (38) and the second sliding seat (39) are both mounted on the slide rail (37), and the bottoms of the first sliding seat (38) and the second sliding seat (39) are slidably engaged with the slide rail (37). The rubber tube (4) is horizontally mounted inside the first sliding seat (38) and the second sliding seat (39). One end of the rubber tube (4) is mounted inside the second sliding seat (39) and is fixedly connected to it. The other end of the rubber tube (4) is mounted inside the first sliding seat (38) and is slidably engaged with it. The output end of the rubber tube (4) is positioned towards the support platform (21).

4. The rounded corner glue applicator for a glass production line according to claim 1, characterized in that: The extrusion trigger assembly (51) includes a fixed frame (511), a sliding shaft (512), a first abutment (513), a second abutment (514), a connecting member (515), and a return spring (516). The fixed frame (511) is located on the top of the movable base plate (31) and at the side of the glue applicator. The bottom of the fixed frame (511) is fixedly connected to the top of the movable base plate (31). The sliding shaft (512) is mounted on the fixed frame (511) and slides with it. The first abutment (513) is mounted on the end of the sliding shaft (512) near the support platform (21) and is fixedly connected thereto. The abutting end of the first abutment (513) is embedded in the sliding groove (527) at the side of the support platform (21) and abuts against the side of the extrusion member (22) adjacent thereto. The second abutment... The component (514) is disposed on the first abutment (513) and is disposed parallel to it. The bottom of the second abutment (514) is fixedly connected to the top of the first abutment (513). The abutting end of the second abutment (514) is located above the support platform (21) and at the side end of the adsorption platform (23). The connecting component (515) is disposed on the sliding shaft (512) and is fixedly connected to it. The side end of the connecting component (515) is fixedly connected to the side end of the first sliding seat (38). The return spring (516) is horizontally disposed on the sliding shaft (512) and is located on the side of the connecting component (515) away from the first abutment (513). One end of the return spring (516) is fixedly connected to the side end of the connecting component (515), and the other end of the return spring (516) is fixedly connected to the side end of the adjacent fixing frame (511).

5. The rounded corner glue applicator for a glass production line according to claim 1, characterized in that: The dispensing assembly (52) includes a mounting bracket (521), an auxiliary bracket (522), a drive rod (523), a rotating shaft (524), a clamping member (525), a sliding bracket (526), ​​a sliding groove (527), a protrusion (528), and a movable member (529). Two mounting brackets (521) are provided, symmetrically arranged on the left and right sides of the dispensing tube (4), with the bottoms of both brackets fixedly connected to the top of the movable floor. Two auxiliary brackets (522) are provided, symmetrically arranged on the upper and lower sides of the dispensing tube (4), with the ends of each auxiliary bracket (522) respectively positioned on the sides of the adjacent mounting bracket (521). The drive rods (523) are fixedly connected at both ends. Four drive rods (523) are arranged in pairs parallel to each other on the four sides of the hose (4). Each pair of drive rods (523) forms a group. The side end of one group of drive rods (523) is slidably engaged with the side end of the mounting bracket (521), and the side end of the other group of drive rods (523) is slidably engaged with the side end of the auxiliary bracket (522). Each pair of drive rods (523) within the two groups is arranged at 90 degrees to each other. Four rotating shafts (524) are provided. All four rotating shafts (524) are located on the side end of the auxiliary bracket (522), and one end of each rotating shaft (524) is rotatably connected to it. Two rotating shafts (524) are symmetrically arranged at both ends of the auxiliary frame (522) near the rubber tube (4) and located at the side end of the rubber tube (4). Four clamping members (525) are provided, each clamping member (525) being respectively disposed on the end of a rotating shaft (524) away from the auxiliary frame (522) and eccentrically disposed therefrom. The side of each clamping member (525) near the rubber tube (4) is semi-circular and abuts against it. The side of each clamping member (525) away from the rubber tube (4) is rotatably connected to the adjacent ends of two drive rods (523) arranged at 90 degrees to each other within the two sets of drive rods (523). The sliding frame (526) is disposed on the connecting member (5... The top of the sliding bracket (526) is located at the side end of one of the mounting brackets (521). The bottom of the sliding bracket (526) is fixedly connected to the top of the connector (515). One end of the sliding bracket (526) passes through the mounting bracket (521) and slides with it. The top of the sliding bracket (526) is provided with a sliding groove (527). The sliding groove (527) is provided with a plurality of protrusions (528). The bottom of the plurality of protrusions (528) is fixedly connected to the bottom of the sliding groove (527). The movable part (529) is vertically arranged at the bottom of one of the drive rods (523) on the mounting bracket (521). One end of the movable part (529) is fixedly connected to the bottom of the drive rod (523).The other end of the movable member (529) abuts against the protrusion (528), and the side end of the movable member (529) slides in cooperation with the inner wall of the sliding groove (527).

6. The rounded corner gluing mechanism for a glass production line according to claim 1, characterized in that: The adjustment auxiliary component (6) includes an adjustment member (61), a locking member (62), a locking hole (63), a scale line (64), a moving frame (65), and a flexible scraper (66). The adjustment member (61) is disposed on the side end of the second sliding seat (39) and fixedly connected thereto. The bottom of the adjustment member (61) is slidably engaged with the top of the moving base plate (31). The top of the moving base plate (31) is evenly provided with a plurality of locking holes (63) located near one end of the adjustment member (61). The adjustment member (61) is provided with a locking member (62), and the bottom of the locking member (62) passes through the adjustment member (61) and is located in one of the locking holes (63). The bottom is threaded to the inner wall of the locking hole (63). The movable base plate (31) is provided with a scale line (64) on the side end near the adjusting member (61). The matching movable frame (65) is set on the side of the movable base plate (31) near the supporting platform (21) and the bottom of the matching movable frame (65) is fixedly connected to the top of the operating table (1). The output end of the rubber tube (4) passes through the matching movable frame (65) and slides with it. There are two flexible scraping members (66). The two flexible scraping members (66) are symmetrically arranged on the upper and lower sides of the output end of the rubber tube (4) and the side ends of the two flexible scraping members (66) are fixedly connected to the side end of the matching movable frame (65) near the supporting platform (21).

7. The rounded corner glue applicator for a glass production line according to claim 1, characterized in that: The output end of the tubing (4) is fitted with a dispensing nozzle (7), and the dispensing nozzle (7) has a horizontally V-shaped notch.

8. A method of using a rounded corner gluing mechanism for a glass production line, comprising the following steps: S1: Before the worker needs to apply glue to the side of the glass, the glass to be glued is first placed horizontally on the adsorption platform (23). The adsorption platform (23) allows the glass to be stably placed above the support platform (21), and the side of the glass is positioned at the side of the glue tube (4) output end, thus facilitating the application of glue to the side of the glass. After the side of the glass is glued, the first motor (24) is controlled to rotate the support platform (21) on the top of the operating table (1), thereby rotating the adsorption platform (23) as a whole, thereby rotating the glass placed on the adsorption platform (23). S1: The entire piece of glass on the device is rotated so that the other end of the glass faces the output end of the glue tube (4), thereby improving the convenience of the device; S2: After the worker places the glass to be glued horizontally on the adsorption platform (23) and makes the side to be glued located at the output end of the glue tube (4), the second motor (36) is controlled to work, thereby driving the drive drum (33) to rotate in the operating table (1). Under the action of the wave-shaped curved sliding groove (34), the connecting block (32) is driven to move linearly back and forth on the top of the operating table (1) by the set locking part (35), thereby driving the moving base plate (31) to move linearly back and forth on the top of the operating table (1), thereby facilitating the glue to be glued. The tube (4) moves linearly along the side of the glass, which further facilitates the application of glue to the flat side of the glass, thereby avoiding the need for the staff to hold the glue applicator and move it back and forth linearly to complete the glue application, thus improving the convenience of the staff during work; S3: After the staff places the glass to be glued horizontally on the adsorption platform (23), and makes the side of the glass located at the side of the output end of the glue tube (4) and at the side of the contact end of the second contact member (514), then by controlling the second motor (36) to work, the moving base plate (31) is driven to move linearly back and forth on the top of the operating table (1). During this process, the sliding groove (527) embedded in the side of the supporting platform (21) is set and The first contact member (513) abuts against the side end of the adjacent extrusion member (22). Through the arrangement of several extrusion members (22), the first contact member (513) drives the sliding shaft (512) to slide continuously on the fixed frame (511), thereby driving the connecting member (515) located on the sliding shaft (512) to move back and forth continuously, thereby driving the first sliding seat (38) to slide on the slide rail (37), thereby driving the sliding frame (526) fixedly connected to it to slide back and forth on the mounting frame (521). Through the arrangement of the sliding groove (527), under the action of several protrusions (528) in the sliding groove (527), the movable member (529) is driven to move up and down reciprocally.This causes the drive rod (523) fixedly connected to the movable part (529) to slide up and down on the side of the mounting frame (521). Under the action of the four clamping parts (525), the other three drive rods (523) slide on the side of the mounting frame (521) and the auxiliary frame (522) respectively. This causes the four clamping parts (525) to rotate eccentrically in sync, thereby continuously clamping the glue tube (4) around it. This allows the glue in the glue tube (4) to be dispensed at a uniform speed according to the squeezing force applied by the four clamping parts (525), thus uniformly applying glue to the flat glass side. When the glass side is glued and the rounded corner surface of the glass side needs to be glued after the glue application is completed, the support assembly ( 2) The glass rotates as a whole. During the rotation, the rounded corner surface of the glass presses tightly against the contact end of the second contacting member (514). Then, depending on the angle of the rounded corner surface of the glass, the force applied to the second contacting member (514) by the side of the glass changes, which in turn changes the distance the sliding shaft (512) slides on the fixed frame (511). As a result, the sliding frame (526) is driven to slide within the mounting frame (521) by the connecting member (515) and the first sliding seat (38), which in turn changes the distance the moving part (529) moves. This, in turn, changes the displacement distance of the four driving rods (523), further causing the four clamping members (529) to move. 5) The eccentric rotation angle changes. When the eccentric rotation angle of the four clamping parts (525) is too large, the amount of glue in the tube (4) will also increase. When the eccentric rotation angle of the four clamping parts (525) is small, the amount of glue in the tube (4) will also decrease. Under the action of the return spring (516), the contact end of the second contacting part (514) can always be attached to the side of the glass. The glass as a whole will not shift its position under the action of the adsorption platform (23), so that the glue is applied evenly on the rounded arc surface of the glass, so that the thickness of the glue applied by the glue applicator is uniform at the arc, so that the glue at the arc is full enough, thereby improving the glue application quality and further improving the glue application effect; S4: Apply glue to the side of the glass. Previously, the operator could move the adjustment piece (61) on the moving base plate (31), thereby moving the second sliding seat (39) on the slide rail (37), which in turn caused the glue tube (4) to slide on the first sliding seat (38) and the matching moving frame (65). This made it easier for the operator to adjust the distance between the output end of the glue tube (4) and the glass side according to the scale line (64), thereby adjusting the glue thickness. After adjustment, the position of the adjustment piece (61) was locked by the threaded connection between the locking piece (62) and the locking hole (63), thereby preventing the distance between the output end of the glue tube (4) and the glass side from changing during the glue application process, thus further improving the glue application quality.By using two flexible scraping components (66), the excess adhesive overflowing from the top and bottom sides of the glass is scraped away, thus avoiding the need for workers to clean the sides of the glass again after the adhesive application is complete, reducing workload and improving efficiency.