Novel shaping mechanism of vacuum glass continuous production equipment

The automated shaping mechanism solves the problems of time-consuming and inaccurate alignment in traditional vacuum glass production, achieving efficient and precise alignment and stable transport of glass sheets, improving production efficiency and product quality, and reducing energy consumption and maintenance costs.

CN224280100UActive Publication Date: 2026-05-26VIG (XIAMEN) TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
VIG (XIAMEN) TECH CO LTD
Filing Date
2025-05-22
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

In traditional vacuum glass production, manual alignment is time-consuming and prone to errors, resulting in low production efficiency, unstable product quality, and existing equipment is difficult to adapt to glass of different sizes and thicknesses, limiting product diversification. At the same time, it also consumes a lot of energy and has high maintenance costs.

Method used

An automated shaping mechanism is adopted, including side shaping and rear shaping transmission mechanisms. Utilizing components such as cylinders, linear bearings, synchronous belts and bevel gears, it achieves precise alignment and efficient movement of glass sheets. Combined with pressure sensors to monitor the alignment force, it ensures perfect alignment and stable delivery of the glass sheets.

Benefits of technology

It enables rapid and accurate alignment of glass sheets, improves production efficiency and product quality, reduces energy consumption, reduces operational complexity and maintenance costs, and ensures the sealing and visual quality of the glass sheets.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to the technical field of glass processing and manufacturing, and discloses a novel shaping mechanism of vacuum glass continuous production equipment, which comprises a box body, a side shaping mechanism is arranged in the box body, the side shaping mechanism comprises a first air cylinder, the output end of the first air cylinder is fixedly connected with a first linear bearing, and the output end of the first linear bearing is fixedly connected with a second linear bearing. A shaping fixing block is fixedly connected to the interior of the first linear bearing, a side shaping plate is fixedly connected to the lower surface of the shaping fixing block, a shaping fixing block is fixedly connected to one side of the outer wall of the side shaping plate, and a first shaping fixing plate is fixedly connected to the lower surface of the shaping fixing block; and one side of the outer wall of the first shaping fixing plate is fixedly connected with a second linear guide rail. According to the automatic shaping mechanism, the two pieces of overlapped glass can be quickly and accurately aligned, so that the manual operation time is shortened, and possible errors are reduced. The efficient automatic alignment greatly improves the speed and efficiency of the whole production process.
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Description

Technical Field

[0001] This utility model relates to the field of glass processing and manufacturing technology, and in particular to a shaping mechanism for a novel vacuum glass continuous production equipment. Background Technology

[0002] In traditional vacuum glass production, aligning and bonding glass sheets typically relies on manual operation, which is not only time-consuming and prone to errors, but also affects production efficiency and product quality. Inaccuracies in manual alignment can lead to poor mating of the glass sheets in subsequent brazing processes, resulting in sealing and visual quality issues. Furthermore, the low energy efficiency and high maintenance costs common in traditional equipment are also problems that urgently need to be addressed.

[0003] Most existing vacuum glass production equipment employs simple mechanical or semi-automatic systems. While these systems improve production efficiency to some extent, they still have many limitations. For example, the alignment mechanisms in existing technologies often cannot flexibly adapt to glass of different sizes and thicknesses, limiting product diversification. At the same time, the energy consumption and operational complexity of these devices remain high, increasing the overall production cost. Utility Model Content

[0004] To overcome the above shortcomings, this utility model provides a new type of shaping mechanism for continuous vacuum glass production equipment, which aims to improve the problem that the existing alignment mechanism often cannot flexibly adapt to glass of different sizes and thicknesses, thus limiting product diversification.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a shaping mechanism for a novel vacuum glass continuous production equipment, comprising a housing, wherein a side shaping mechanism is provided inside the housing, the side shaping mechanism comprising a first cylinder, a first linear bearing fixedly connected to the output end of the first cylinder, a shaping fixing block fixedly connected inside the first linear bearing, a side shaping plate fixedly connected to the lower surface of the shaping fixing block, a shaping fixing block fixedly connected to one side of the outer wall of the side shaping plate, a first shaping fixing plate fixedly connected to the lower surface of the shaping fixing block, a second linear guide rail fixedly connected to one side of the outer wall of the first shaping fixing plate, a second linear guide rail slider slidably connected to the upper surface of the second linear guide rail, a side shaping screw nut fixedly connected to the upper surface of the first shaping fixing plate, a side shaping screw rod rotatably connected inside the side shaping screw nut, a connecting shaft fixedly connected to one end of the side shaping screw rod, a screw rod bearing seat fixedly connected to the upper surface of the second linear guide rail, and the outer wall of the side shaping screw rod rotatably connected inside the screw rod bearing seat.

[0006] Furthermore, the housing is equipped with a rear shaping transmission mechanism, which includes a seated linear bearing. A push rod connecting plate is fixedly connected to the upper end of the seated linear bearing, and a positioning wheel plate is fixedly connected to the other end of the seated linear bearing. A spring is fixedly connected to the upper surface of the positioning wheel plate, and a guide rod is fixedly connected to the upper end of the spring. A pressure sensor is fixedly connected inside the guide rod, and multiple positioning wheels are fixedly connected to the lower surface of the guide rod.

[0007] Furthermore, the rear shaping transmission mechanism also includes a first linear guide slider, one side of the outer wall of the first linear guide slider is fixedly connected to one side of the outer wall of the push rod connecting plate, a first linear guide is provided inside the first linear guide slider, a rear transmission nut is provided on the upper surface of the first linear guide, a rear transmission screw is rotatably connected inside the first linear guide, a rear transmission bearing seat is fixedly connected to one side of the outer wall of the first linear guide, a seated bearing is fixedly connected to one side of the outer wall of the rear transmission bearing seat, and a rear shaping push plate is fixedly connected to the lower surface of the rear shaping transmission mechanism.

[0008] Furthermore, a rear transmission gear is fixedly connected to one end of the rear transmission lead screw, a rear transmission seat is provided on one side of the outer wall of the first linear guide, a first rear transmission shaft is rotatably connected inside the rear transmission seat, a bevel gear is fixedly connected to one end of the first rear transmission shaft, the bevel gear meshes with the rear transmission gear, and a second rear transmission shaft is fixedly connected inside the bevel gear.

[0009] Furthermore, a rear push rod lifting mechanism is provided on the lower surface of the housing. The rear push rod lifting mechanism includes a second cylinder. A connecting plate is fixedly connected to the upper surface of the second cylinder. A cylinder sealing adapter rod is fixedly connected to the upper surface of the connecting plate. A housing bottom plate is fixedly connected to the upper surface of the cylinder sealing adapter rod. A second linear bearing is fixedly connected to the upper surface of the housing bottom plate. A T-shaped rod is fixedly connected inside the second linear bearing.

[0010] Furthermore, the rear push rod lifting mechanism also includes a bellows, the output end of the second cylinder is fixedly connected to the inside of the bellows, an O-ring is provided on the outer wall of the bellows, a cylinder sealing plate is fixedly connected to the upper end of the bellows, a cylinder sealing push rod is provided inside the cylinder sealing plate, and the outer wall of the cylinder sealing push rod is fixedly connected to the inside of the second linear bearing.

[0011] Furthermore, the upper surface of the box is provided with an upper cover plate, and the lower surface of the box is fixedly connected with a lifting mechanism.

[0012] Furthermore, the lifting mechanism includes a front positioning plate, the upper surface of which is fixedly connected to the lower surface of the positioning wheel.

[0013] Furthermore, the lifting mechanism also includes a timing pulley, the outer wall of which is provided with a timing belt.

[0014] Furthermore, a conveying roller is fixedly connected inside the synchronous pulley.

[0015] This utility model has the following beneficial effects:

[0016] 1. In this invention, an automated shaping mechanism allows for quick and accurate alignment of two stacked glass pieces, reducing manual operation time and potential errors. This highly efficient automatic alignment significantly improves the speed and efficiency of the overall production process.

[0017] 2. In this invention, the equipment utilizes precise mechanical components—a side-shaping plate and a shaping pusher—to ensure perfect alignment of the two glass panes. This is crucial for the final product's sealing performance and visual quality. Good alignment also facilitates the subsequent brazing process, preventing production defects.

[0018] 3. In this invention, by employing a high-efficiency motor, synchronous belt, and bevel gear coordination, the equipment can complete high-load operations while consuming relatively low energy. Furthermore, the efficient operation of the shaping mechanism reduces running time, thereby lowering energy consumption. Attached Figure Description

[0019] Figure 1 This is a three-dimensional structural diagram of the shaping mechanism of a novel vacuum glass continuous production equipment proposed in this utility model.

[0020] Figure 2 This is a schematic diagram of the synchronous belt section of the shaping mechanism in a novel vacuum glass continuous production equipment proposed in this utility model.

[0021] Figure 3 This is a schematic diagram of the lead screw bearing seat of the shaping mechanism in a novel vacuum glass continuous production equipment proposed in this utility model.

[0022] Figure 4 This is a schematic diagram of the spring portion of the shaping mechanism in a novel vacuum glass continuous production equipment proposed in this utility model.

[0023] Figure 5 for Figure 4 Enlarged at point A in the middle;

[0024] Figure 6 This is a schematic diagram of the cylinder sealing plate part of the shaping mechanism of a novel vacuum glass continuous production equipment proposed in this utility model.

[0025] Figure 7This is a schematic diagram of the cylinder sealing top rod part of the shaping mechanism of a novel vacuum glass continuous production equipment proposed in this utility model.

[0026] Legend:

[0027] 1. Housing; 2. Rear shaping push plate; 3. Lifting mechanism; 4. Top cover plate; 5. Rear shaping transmission mechanism; 501. Linear bearing with seat; 502. First rear drive shaft; 503. Rear drive seat; 504. Guide rod; 505. Rear drive gear; 506. Second rear drive shaft; 507. Spring; 508. Positioning wheel plate; 509. Push rod connecting plate; 510. Positioning wheel; 511. Bevel gear; 512. First linear guide slider; 513. Rear drive screw nut; 514. First linear guide; 515. Rear drive screw; 516. Pressure sensor; 517. Bearing with seat; 518. Rear drive bearing seat; 6. Side shaping mechanism; 601. First cylinder 602. First linear bearing; 603. First shaping fixing plate; 604. Second linear guide rail; 605. Side shaping plate; 606. Connecting shaft; 607. Side shaping screw nut; 608. Shaping fixing block; 609. Second linear guide rail slider; 610. Side shaping screw; 611. Screw bearing seat; 7. Synchronous pulley; 8. Synchronous belt; 9. Rear push rod lifting mechanism; 901. Second cylinder; 902. Connecting plate; 903. Cylinder sealing adapter rod; 904. O-ring; 905. Cylinder sealing plate; 906. Second linear bearing; 907. T-shaped rod; 908. Cylinder sealing top rod; 909. Bellows; 10. Conveying roller; 11. Box bottom plate. Detailed Implementation

[0028] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0029] Please see the appendix Figure 1 - Appendix Figure 3This invention provides a shaping mechanism for a novel vacuum glass continuous production equipment, comprising a housing 1, inside which a side shaping mechanism 6 is disposed. The side shaping mechanism 6 includes a first cylinder 601, the output end of which is fixedly connected to a first linear bearing 602. Inside the first linear bearing 602, a shaping fixing block 608 is fixedly connected. The lower surface of the shaping fixing block 608 is fixedly connected to a side shaping plate 605, and one side of the outer wall of the side shaping plate 605 is fixedly connected to the shaping fixing block 608. The lower surface of the shaping fixing block 608 is fixedly connected to the first shaping fixing plate 605. 03. A second linear guide 604 is fixedly connected to one side of the outer wall of the first shaping fixing plate 603. A second linear guide slider 609 is slidably connected to the upper surface of the second linear guide 604. A side shaping nut 607 is fixedly connected to the upper surface of the first shaping fixing plate 603. A side shaping screw 610 is rotatably connected inside the side shaping nut 607. A connecting shaft 606 is fixedly connected to one end of the side shaping screw 610. A screw bearing seat 611 is fixedly connected to the upper surface of the second linear guide 604. The outer wall of the side shaping screw 610 is rotatably connected to the inside of the screw bearing seat 611.

[0030] In one embodiment, the first cylinder 601 in the shaping mechanism serves as a power source, with its output end fixedly connected to a first linear bearing 602. When the cylinder is activated, it pushes the linear bearing to move along a predetermined path. The shaping fixing block 608, fixedly connected inside the linear bearing, stably supports the side shaping plate 605 through its structure. The shaping plate is used to actually contact and adjust the position of the glass sheet. The first shaping fixing plate 603 works in conjunction with the side shaping screw nut 607, achieving precise control through the rotation of the side shaping screw 610. The rotation of the screw is supported by the connecting shaft 606 and the screw bearing seat 611, ensuring smooth movement and accurate position adjustment of the screw. When the side shaping screw 610 rotates, it drives the side shaping plate 605 to move linearly along the second linear guide rail 604, achieving precise left-right alignment of the stacked glass sheets.

[0031] Please see the appendix Figure 4 - Appendix Figure 5The housing 1 contains a rear shaping transmission mechanism 5, which includes a mounted linear bearing 501. A push rod connecting plate 509 is fixedly connected to the upper end of the mounted linear bearing 501, and a positioning wheel plate 508 is fixedly connected to the other end of the mounted linear bearing 501. A spring 507 is fixedly connected to the upper surface of the positioning wheel plate 508, and a guide rod 504 is fixedly connected to the upper end of the spring 507. A pressure sensor 516 is fixedly connected inside the guide rod 504, and multiple positioning wheels 510 are fixedly connected to the lower surface of the guide rod 504. The rear shaping transmission mechanism 5 also includes a first linear guide slider 512. One side of the outer wall of the first linear guide slider 512 is fixedly connected to one side of the outer wall of the push rod connecting plate 509. A first linear guide 514 is provided inside the first linear guide slider 512. The upper surface of the guide rail 514 is provided with a rear drive nut 513. The rear drive screw 515 is rotatably connected inside the first linear guide rail 514. A rear drive bearing seat 518 is fixedly connected to one side of the outer wall of the first linear guide rail 514. A seated bearing 517 is fixedly connected to one side of the outer wall of the rear drive bearing seat 518. A rear shaping push plate 2 is fixedly connected to the lower surface of the rear shaping transmission mechanism 5. A rear drive gear 505 is fixedly connected to one end of the rear drive screw 515. A rear drive seat 503 is provided on one side of the outer wall of the first linear guide rail 514. A first rear drive shaft 502 is rotatably connected inside the rear drive seat 503. A bevel gear 511 is fixedly connected to one end of the first rear drive shaft 502. The bevel gear 511 meshes with the rear drive gear 505. A second rear drive shaft 506 is fixedly connected inside the bevel gear 511.

[0032] In one embodiment, the rear shaping transmission mechanism 5 utilizes a mounted linear bearing 501 as the main support structure, enabling the push rod connecting plate 509 to move smoothly along a straight line. The stability of the mounted linear bearing 501 is crucial for the precise operation of the entire rear shaping mechanism. The push rod connecting plate 509 is connected to the first linear guide rail 514 via the first linear guide slider 512, ensuring precise movement of the entire mechanism along a predetermined path. The rear transmission screw 515 is supported by the rear transmission bearing seat 518 and the mounted bearing 517, ensuring smooth rotation. The rear transmission gear 505 meshes with the bevel gear 511, effectively transmitting power from the first rear transmission shaft 502 to the rear transmission screw 515. Through this gear engagement, the rear shaping transmission mechanism 5 can accurately control the position of the rear shaping push plate 2, achieving precise rearward alignment of the glass. The pressure sensor 516 installed inside the guide rod 504 can monitor the pressure applied during the glass alignment process in real time, providing important feedback information for the shaping process, ensuring the appropriate alignment force, and preventing glass breakage.

[0033] Please see the appendix Figure 6 - Appendix Figure 7The lower surface of the housing 1 is provided with a rear push rod lifting mechanism 9. The rear push rod lifting mechanism 9 includes a second cylinder 901. A connecting plate 902 is fixedly connected to the upper surface of the second cylinder 901. A cylinder sealing adapter rod 903 is fixedly connected to the upper surface of the connecting plate 902. A housing bottom plate 11 is fixedly connected to the upper surface of the cylinder sealing adapter rod 903. A second linear bearing 906 is fixedly connected to the upper surface of the housing bottom plate 11. A T-shaped rod 907 is fixedly connected inside the second linear bearing 906. The rear push rod lifting mechanism 9 also includes a bellows 909. The output end of the second cylinder 901 is fixedly connected to the inside of the bellows 909. An O-ring 904 is provided on the outer wall of the bellows 909. A cylinder sealing plate 905 is fixedly connected to the upper end of the bellows 909. A cylinder sealing top rod 908 is provided inside the cylinder sealing plate 905. The outer wall of the cylinder sealing top rod 908 is fixedly connected to the inside of the second linear bearing 906.

[0034] In one embodiment, the rear push rod lifting mechanism 9 is controlled by a second cylinder 901, whose main function is to adjust the vertical position of the glass. The output end of the second cylinder is connected to the bottom plate 11 of the housing via a cylinder sealing adapter rod 903, ensuring the stability and accuracy of the entire lifting process. A T-shaped rod 907 is fixed inside the second linear bearing 906 to support and guide the linear lifting of the glass. The T-shaped rod ensures the vertical alignment of the glass during the production process through precise linear movement. The cylinder sealing adapter rod 903 is combined with a bellows 909, which has excellent elasticity and sealing performance. An O-ring 904 is installed inside the bellows to further enhance the overall sealing effect, preventing dust and other particles from the production environment from entering the machine and protecting the cylinder and internal parts. The cylinder sealing plate 905 is fixed above the bellows and works with the cylinder sealing push rod 908 to maintain stability during lifting or lowering, ensuring smooth operation.

[0035] The upper surface of the housing 1 is provided with an upper cover plate 4, and the lower surface of the housing 1 is fixedly connected with a lifting mechanism 3. The lifting mechanism 3 includes a front positioning plate, the upper surface of which is fixedly connected to the lower surface of the positioning wheel 510. The lifting mechanism 3 also includes a synchronous pulley 7, the outer wall of which is provided with a synchronous belt 8, and the inner surface of the synchronous pulley 7 is fixedly connected with a conveying roller 10.

[0036] In one embodiment, the lifting mechanism 3 includes a front positioning plate, the upper surface of which is fixedly connected to the lower surface of the positioning wheel 510. This design allows the glass sheet to be precisely supported and guided by the positioning wheel 510 during the lifting process, ensuring accurate vertical alignment of the glass sheet. The positioning wheel 510 reduces the swaying of the glass sheet during lifting, ensuring its stable position and maintaining its accuracy in subsequent processing. The synchronous pulley 7 is connected to the conveyor roller 10 via an internal synchronous belt 8, forming an efficient drive mechanism. This design allows the synchronous pulley 7 to smoothly transmit power to the conveyor roller, achieving smooth movement of the glass. The conveyor roller 10 is a key component in the entire equipment used to move the glass sheet to different workstations. Through its cooperation with the synchronous pulley 7, the continuity and consistency of the conveying process are ensured.

[0037] Working principle: Conveying rollers 10 are arranged inside the housing 1. After stacking, the two glass pieces are driven by a motor through a synchronous belt 8 and a synchronous pulley 7. The side shaping mechanism 6 aligns the two stacked glass pieces left and right. The rear shaping transmission mechanism 5 and the rear shaping push plate 2 align the two stacked glass pieces front and back. The side shaping mechanism 6 consists of two identical parts. When the motor is started, the side shaping plate 6051 and the shaping fixing block 608 fixed on it move linearly along the linear guide rail through the side shaping lead screw 610 and the side shaping lead screw 607. The cylinder extension and retraction drive the first side shaping plate 605 and the shaping fixing block 608 fixed on it to move linearly along the linear guide rail. The above movements align the two stacked glass pieces left and right through the shaping fixing block 608. The cylinder model is SIJ80x25-20SFA(0020). The linear guide rail is fixed to the side plate of housing 1. The shaping push rod includes a push rod connecting plate 509, a guide rod 504, a spring 507, a seated linear bearing 501, and a positioning wheel 510 plate 508. A positioning wheel 510 and a pressure sensor 516 are installed below the positioning wheel. The shaping push rod is fixed to the shaping transmission mechanism via a rear transmission nut 513. In the shaping transmission mechanism, the motor drives the rear transmission shaft, which transmits power to the rear transmission screw through two pairs of bevel gears 511. The rear transmission screw rotates; the transmission nut is fixed to the linear guide rail slider, and the transmission screw rotates. This causes the rear transmission nut 513 and the shaping transmission mechanism fixed to the transmission nut to move linearly along the linear guide rail. The above movements align the two stacked glass pieces laterally. Eleven positioning wheels 510 are installed on the front positioning base plate. The front positioning base plate is connected to the cylinder assembly via a stroke cylinder with a lifting stroke of 30mm. The rear push rod lifting mechanism 9 consists of a cylinder seal, a cylinder seal adapter rod, a connecting plate 902, and an F-SA8IJ-80×50-30S adjustable stroke cylinder. The cylinder seal lifting stroke is 30mm. The cylinder seal comprises a cylinder seal top rod, a cylinder seal plate, and a bellows 909 integrated into one unit. An O-ring 904 is installed on the cylinder seal. The cylinder seal plate is tightly attached to the bottom surface of the housing 1. A linear bearing fixing block is welded to the upper part of the bottom plate of housing 1, and the linear bearing is fixed to the bearing fixing block. A T-shaped rod 907 is screwed into the cylinder seal top rod. When the cylinder shaft extends, it drives the T-shaped rod 907 to rise, and the bellows 909 is stretched. When the cylinder shaft retracts, the bellows 909 compresses, causing the T-shaped rod 907 to descend. Before shaping, the cylinder shafts of the lifting mechanism 3 and the rear push rod mechanism extend, respectively driving the positioning wheel 510 and the T-shaped rod 907 to rise, raising the two stacked glass pieces. After shaping, the cylinder shafts of the lifting mechanism 3 and the rear push rod mechanism retract, respectively driving the positioning wheel 510 and the T-shaped rod 907 to descend, and the double glass pieces fall back onto the conveyor roller 10.

[0038] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A shaping mechanism for a novel vacuum glass continuous production equipment, comprising a housing (1), characterized in that, The housing (1) is equipped with a side shaping mechanism (6). The side shaping mechanism (6) includes a first cylinder (601). The output end of the first cylinder (601) is fixedly connected to a first linear bearing (602). The interior of the first linear bearing (602) is fixedly connected to a shaping fixing block (608). The lower surface of the shaping fixing block (608) is fixedly connected to a side shaping plate (605). The outer wall of the side shaping plate (605) is fixedly connected to the shaping fixing block (608). The lower surface of the shaping fixing block (608) is fixedly connected to a first shaping fixing plate (603). A second linear guide rail (604) is fixedly connected to one side of the outer wall. A second linear guide rail slider (609) is slidably connected to the upper surface of the second linear guide rail (604). A side shaping nut (607) is fixedly connected to the upper surface of the first shaping fixing plate (603). A side shaping screw (610) is rotatably connected inside the side shaping nut (607). A connecting shaft (606) is fixedly connected to one end of the side shaping screw (610). A screw bearing seat (611) is fixedly connected to the upper surface of the second linear guide rail (604). The outer wall of the side shaping screw (610) is rotatably connected to the inside of the screw bearing seat (611).

2. The shaping mechanism of a novel vacuum glass continuous production equipment according to claim 1, characterized in that, The housing (1) is equipped with a rear shaping transmission mechanism (5). The rear shaping transmission mechanism (5) includes a seated linear bearing (501). A push rod connecting plate (509) is fixedly connected to the upper end of the seated linear bearing (501). A positioning wheel plate (508) is fixedly connected to the other end of the seated linear bearing (501). A spring (507) is fixedly connected to the upper surface of the positioning wheel plate (508). A guide rod (504) is fixedly connected to the upper end of the spring (507). A pressure sensor (516) is fixedly connected inside the guide rod (504). Multiple positioning wheels (510) are fixedly connected to the lower surface of the guide rod (504).

3. The shaping mechanism of a novel vacuum glass continuous production equipment according to claim 2, characterized in that, The rear shaping transmission mechanism (5) further includes a first linear guide slider (512). One side of the outer wall of the first linear guide slider (512) is fixedly connected to one side of the outer wall of the push rod connecting plate (509). The first linear guide slider (512) is provided with a first linear guide (514). The upper surface of the first linear guide (514) is provided with a rear transmission nut (513). The rear transmission screw (515) is rotatably connected inside the first linear guide (514). The outer wall of the first linear guide (514) is fixedly connected with a rear transmission bearing seat (518). The outer wall of the rear transmission bearing seat (518) is fixedly connected with a seated bearing (517). The lower surface of the rear shaping transmission mechanism (5) is fixedly connected with a rear shaping push plate (2).

4. The shaping mechanism of a novel vacuum glass continuous production equipment according to claim 3, characterized in that, A rear drive gear (505) is fixedly connected to one end of the rear drive screw (515). A rear drive seat (503) is provided on one side of the outer wall of the first linear guide (514). A first rear drive shaft (502) is rotatably connected inside the rear drive seat (503). A bevel gear (511) is fixedly connected to one end of the first rear drive shaft (502). The bevel gear (511) meshes with the rear drive gear (505). A second rear drive shaft (506) is fixedly connected inside the bevel gear (511).

5. The shaping mechanism of a novel vacuum glass continuous production equipment according to claim 1, characterized in that, The lower surface of the housing (1) is provided with a rear push rod lifting mechanism (9). The rear push rod lifting mechanism (9) includes a second cylinder (901). A connecting plate (902) is fixedly connected to the upper surface of the second cylinder (901). A cylinder sealing adapter rod (903) is fixedly connected to the upper surface of the connecting plate (902). A housing bottom plate (11) is fixedly connected to the upper surface of the cylinder sealing adapter rod (903). A second linear bearing (906) is fixedly connected to the upper surface of the housing bottom plate (11). A T-shaped rod (907) is fixedly connected inside the second linear bearing (906).

6. The shaping mechanism of a novel vacuum glass continuous production equipment according to claim 5, characterized in that, The rear push rod lifting mechanism (9) also includes a bellows (909), the output end of the second cylinder (901) is fixedly connected to the inside of the bellows (909), the outer wall of the bellows (909) is provided with an O-ring (904), the upper end of the bellows (909) is fixedly connected with a cylinder sealing plate (905), the inside of the cylinder sealing plate (905) is provided with a cylinder sealing push rod (908), and the outer wall of the cylinder sealing push rod (908) is fixedly connected to the inside of the second linear bearing (906).

7. The shaping mechanism of a novel vacuum glass continuous production equipment according to claim 1, characterized in that, The upper surface of the box (1) is provided with an upper cover plate (4), and the lower surface of the box (1) is fixedly connected with a lifting mechanism (3).

8. The shaping mechanism of a novel vacuum glass continuous production equipment according to claim 7, characterized in that, The lifting mechanism (3) includes a front positioning plate, the upper surface of which is fixedly connected to the lower surface of the positioning wheel (510).

9. The shaping mechanism of a novel vacuum glass continuous production equipment according to claim 7, characterized in that, The lifting mechanism (3) also includes a synchronous pulley (7), and the outer wall of the synchronous pulley (7) is provided with a synchronous belt (8).

10. The shaping mechanism of a novel vacuum glass continuous production equipment according to claim 9, characterized in that, The synchronous pulley (7) is internally fixedly connected to a conveyor roller (10).