Glass conveying equipment and glass processing system

By setting a second synchronous pulley at the center position in the glass conveying equipment and utilizing structures such as a third synchronous pulley and a fifth synchronous pulley, the transmission stability problem of the conveying equipment is solved, and the smoothness of the conveyor belt and processing efficiency are improved.

CN223851699UActive Publication Date: 2026-01-30GUANGXI NANBO NEW ENERGY MATERIAL TECH CO LTD +1
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Patent Information

Application Number
CN202520367743.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-04
Publication Date
2026-01-30
Estimated Expiration
2035-03-04

AI Technical Summary

Technical Problem

Existing conveying equipment has problems with transmission stability, leading to issues such as broken synchronous pulleys, roller shifting, and conveyor belt misalignment, which affect overall processing efficiency.

Method used

A glass conveying device was designed, wherein the second synchronous wheel is located at the center of the second side wall. Through the cooperation of the third synchronous wheel and the fifth synchronous wheel, the force balance and tight connection of the conveyor belt between the synchronous wheels are ensured, slippage is prevented, and the conveying smoothness and continuity of the conveyor belt are improved.

Benefits of technology

This achieves balanced force distribution on the conveyor belt, prevents slippage, and improves the conveying accuracy and overall processing efficiency of the conveying equipment.

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Abstract

The utility model relates to the technical field of solar glass deep processing, in particular to glass conveying equipment and a glass processing system. The glass conveying equipment comprises a frame body, a roller way and a conveying belt device, the frame body is provided with a first side wall and a second side wall which are perpendicular to each other, the roller way is arranged on the first side wall, a first synchronous wheel is arranged at one end of the roller way and can drive the roller way to rotate, and the conveying belt device is arranged on the second side wall. The conveying belt device comprises a second synchronizing wheel and a third synchronizing wheel, the second synchronizing wheel is suitable for being connected with the driving part and can be driven by the driving part to rotate, and the center line of the third synchronizing wheel and the center line of the first synchronizing wheel are located on the same straight line. And the second synchronizing wheel is arranged at the central position of the second side wall. The glass processing system comprises the glass conveying equipment. The glass conveying equipment and the glass processing system are high in conveying efficiency.
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Description

TECHNICAL FIELD

[0001] The utility model relates to solar glass deep processing technical field, especially relate to a glass conveying equipment and glass processing system. BACKGROUND

[0002] With the increasing demand of clean energy, photovoltaic technology is continuously developed and applied, and glass has the advantages of high light transmittance, low reflectivity, high pressure resistance and the like, is widely used in photovoltaic material field. The wide application of glass promotes the development and popularization of various glass processing technologies, and drilling glass as a double-glass assembly back plate glass becomes one of the mainstream products in the market, and the transmission stability of the drilling glass chamfer conveying equipment affects the overall processing efficiency.

[0003] In the solar glass deep processing drilling process, due to the accurate requirement of CCD positioning and chamfer spindle device on the transmission parking position, the chamfer conveying equipment needs to be frequently started and stopped and high-speed motion, which puts forward higher requirements on the transmission ratio and stress of the transmission synchronous wheel. Each transmission synchronous wheel needs to balance and accommodate the force generated by the high-speed running and brake acceleration of the conveying belt, so as to avoid the problems of excessive stress of single transmission synchronous wheel, transmission synchronous wheel fracture, roller displacement and conveying belt displacement. The above problems will affect the transmission stability of the conveying equipment, resulting in low overall processing efficiency. SUMMARY

[0004] The main purpose of the utility model is to provide a glass conveying equipment and glass processing system, which aims to solve the technical problem of poor transmission stability of the existing conveying equipment.

[0005] To achieve the above purpose, the utility model provides a glass conveying equipment, which comprises:

[0006] A frame body, the frame body has a first side wall and a second side wall perpendicular to each other;

[0007] A roller way, the roller way is arranged on the first side wall, one end of the roller way is provided with a first synchronous wheel, and the first synchronous wheel can drive the roller way to rotate;

[0008] A conveying belt device, the conveying belt device is arranged on the second side wall, the conveying belt device comprises a second synchronous wheel and a third synchronous wheel, the second synchronous wheel is suitable for connecting a driving member, the second synchronous wheel can be driven to rotate by the driving member, and the center line of the third synchronous wheel and the center line of the first synchronous wheel are on the same straight line;

[0009] The second synchronous wheel is arranged at the center of the second side wall, the first synchronous wheel, the second synchronous wheel and the third synchronous wheel are arranged with a conveyor belt, the conveyor belt transmits power between the first synchronous wheel, the second synchronous wheel and the third synchronous wheel, so as to rotate the roller bed and convey the workpiece to be processed.

[0010] In some embodiments, the surfaces of the first synchronous wheel, the second synchronous wheel and the third synchronous wheel are provided with first engaging parts, and the side of the conveyor belt close to the first synchronous wheel, the second synchronous wheel and the third synchronous wheel is provided with second engaging parts, the second engaging parts and the first engaging parts are engaged with each other.

[0011] In some embodiments, the glass conveying device comprises a plurality of roller beds, one end of each roller bed is provided with the first synchronous wheel, and a fourth synchronous wheel is arranged between two adjacent first synchronous wheels, the fourth synchronous wheel contacts with the side of the conveyor belt away from the second engaging part, and the fourth synchronous wheel is used to compress the conveyor belt between the two adjacent first synchronous wheels.

[0012] In some embodiments, the fourth synchronous wheel and the two adjacent first synchronous wheels form a triangular structure, and the included angle α between the fourth synchronous wheel and the two adjacent first synchronous wheels satisfies: 70°≤α≤110°.

[0013] In some embodiments, the conveyor belt device comprises at least two fifth synchronous wheels, the two fifth synchronous wheels are arranged on the two sides of the second synchronous wheel respectively, the fifth synchronous wheel contacts with the side of the conveyor belt away from the second engaging part, and the fifth synchronous wheel is used to compress the conveyor belt on the two sides of the second synchronous wheel.

[0014] In some embodiments, the second synchronous wheel and the two adjacent fifth synchronous wheels form a triangular structure, and the included angle β between the second synchronous wheel and the two adjacent fifth synchronous wheels satisfies: 100°≤β≤120°.

[0015] In some embodiments, the conveyor belt device comprises a sixth synchronous wheel, the sixth synchronous wheel is arranged between the third synchronous wheel and the fifth synchronous wheel, the sixth synchronous wheel contacts with the side of the conveyor belt away from the second engaging part, and the sixth synchronous wheel is used to lift the conveyor belt between the third synchronous wheel and the fifth synchronous wheel.

[0016] The center lines of the third synchronous wheel, the fifth synchronous wheel and the sixth synchronous wheel are in the same straight line.

[0017] In some embodiments, the roller bed is provided with a bearing at the end away from the first synchronous wheel.

[0018] In some embodiments, the glass conveying device comprises a support framework arranged on the second side wall, the support framework comprising a support beam for supporting the driving member.

[0019] Correspondingly, the utility model also provides a glass processing system comprising the glass conveying device of any one of the above embodiments.

[0020] Compared with the prior art, the utility model has the beneficial effects that:

[0021] In the technical scheme of the utility model, when it is needed to convey the workpiece to be processed by the glass conveying device, the driving member is started to drive the second synchronous wheel (i.e. the second synchronous wheel is a power wheel), under the action of the conveying belt, the second synchronous wheel drives the third synchronous wheel and the first synchronous wheel to rotate, and the first synchronous wheel can drive the roller bed to rotate. When the roller bed rotates, the workpiece to be processed can be conveyed, so that the workpiece to be processed is transmitted between various workstations.

[0022] The second synchronous wheel as a power source is arranged at the center position of the second side wall, and when the second synchronous wheel drives the conveying belt, the force balance of the conveying belt on both sides of the second synchronous wheel can be ensured, so that the phenomenon of slippage of the conveying belt during rapid operation, emergency braking and transmission between various synchronous wheels is prevented, and the conveying accuracy and conveying effect of the conveying belt are affected.

[0023] Since the second synchronous wheel is arranged at the center position of the second side wall and the distance between the first synchronous wheel arranged at the end of the first side wall and the second synchronous wheel is far, the third synchronous wheel is arranged between the first synchronous wheel and the second synchronous wheel. Through the third synchronous wheel, the connection compactness of the conveying belt between the first synchronous wheel and the second synchronous wheel is improved, the slippage of the conveying belt during transmission between the first synchronous wheel and the second synchronous wheel is prevented, the transmission stability and continuity of the conveying belt between the first synchronous wheel and the second synchronous wheel are ensured, and the overall processing efficiency is improved.

[0024] The glass processing system applying the above glass conveying device has good stability during conveying the workpiece to be processed and high processing efficiency. BRIEF DESCRIPTION OF DRAWINGS

[0025] In order to more clearly illustrate the technical scheme in the embodiments of the utility model or the prior art, the drawings needed to be used in the embodiment or the prior art description will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the utility model, and those skilled in the art can also obtain other drawings from the structures shown in the drawings without creating creative labor.

[0026] Figure 1 Figure 2 is an overall structure axial side view of the glass conveying equipment provided by an embodiment of the present application;

[0027] Figure 2 Figure 3 is an overall structure front view of the glass conveying equipment provided by an embodiment of the present application;

[0028] Figure 3 Figure 4 is a partial enlarged view of A in Figure 2; Figure 2

[0029] Figure 4 Figure 5 is a partial enlarged view of B in Figure 2. Figure 2

[0030] Brief Description of the Drawings

[0031] 100, frame body;

[0032] 110, first side wall; 120, second side wall;

[0033] 200, roller way;

[0034] 210, first synchronous wheel; 220, bearing;

[0035] 300, conveying belt device;

[0036] 310, second synchronous wheel; 320, third synchronous wheel; 330, fourth synchronous wheel; 340, fifth synchronous wheel; 350, sixth synchronous wheel;

[0037] 400, conveying belt;

[0038] 500, driving member;

[0039] 600, support frame structure;

[0040] 610, support cross beam.

[0041] The realization, functional features and advantages of the present application will be further described with reference to the embodiments and the accompanying drawings. DETAILED DESCRIPTION

[0042] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all the other embodiments obtained by those skilled in the art without any creative work fall within the protection scope of the present application.

[0043] ​​It should be noted that if the embodiment of the utility model has directionality indication (such as up, down, left, right, front, back), the directionality indication is only used to explain the relative position relationship, movement condition and the like between components in a certain posture, if the certain posture changes, the directionality indication also changes accordingly.

[0044] In addition, if the embodiment of the utility model has the description of "first", "second" and the like, the description of "first", "second" and the like is only for the purpose of description, and cannot be understood as indicating or implying the relative importance or implicitly indicating the number of indicated technical features. Therefore, the features limited by "first", "second" can be explicitly or implicitly included at least one feature. In addition, if "and / or", "and / or" or "and / or" appears in the whole text, it means that the three parallel schemes include "A and / or B", including A scheme, or B scheme, or A and B scheme. In addition, the technical solutions of each embodiment can be combined with each other, but it must be based on the realization of ordinary skilled in the art, when the combination of technical solutions appears contradictory or unachievable, it should be considered that the combination of technical solutions does not exist, and is not within the protection scope required by the utility model.

[0045] With the increasing demand for clean energy, photovoltaic technology continues to develop and apply, and glass has the advantages of high light transmittance, low reflectivity, high pressure resistance and the like, and is widely used in the field of photovoltaic materials. The wide application of glass promotes the development and popularization of various glass processing technologies. As one of the mainstream products in the market, the drilling glass becomes one of the backboard glasses of double glass assembly. The transmission stability of the drilling glass chamfer conveying equipment affects the overall processing efficiency.

[0046] In the deep processing drilling process of solar glass, due to the accurate requirement of CCD positioning and chamfer spindle device on the transmission parking position, the chamfer conveying equipment needs to be frequently started and stopped and high-speed motion, which puts forward higher requirements on the transmission ratio and stress of the transmission synchronous wheel. Each transmission synchronous wheel needs to balance and absorb the force generated by the high-speed running and brake acceleration of the conveying belt, so as to avoid the problems of excessive stress of single transmission synchronous wheel, transmission synchronous wheel fracture, roller displacement and conveying belt displacement. The above problems will affect the transmission stability of the conveying equipment, resulting in low overall processing efficiency.

[0047] Therefore, in order to solve the technical problem of poor transmission stability of the existing conveying equipment, with reference to Figure 1 and Figure 2The utility model discloses an embodiment provides a kind of glass conveying equipment, which comprises frame body 100, roller 200 and conveyor belt device 300.Frame body 100 has mutually perpendicular first side wall 110 and second side wall 120.Roller 200 is arranged in first side wall 110 (for example, first side wall 110 can be horizontal side wall, for the horizontal transmission glass of roller 200), and one end of roller 200 is provided with first synchronous wheel 210, and first synchronous wheel 210 can drive roller 200 to rotate.Conveyor belt device 300 is arranged in second side wall 120 (for example, second side wall 120 can be the vertical side wall close to first synchronous wheel 210, facilitate conveyor belt device 300 and first synchronous wheel 210 belt connection), and conveyor belt device 300 includes second synchronous wheel 310 and third synchronous wheel 320, second synchronous wheel 310 is suitable for connecting driving member 500 (for example, driving member 500 can be rotary motor, and second synchronous wheel 310 is suitable for and the output shaft of rotary motor is connected), and second synchronous wheel 310 can be driven by driving member 500 and rotate, and the center line of third synchronous wheel 320 and the center line of first synchronous wheel 210 are in the same straight line.Second synchronous wheel 310 is arranged at the center position of second side wall 120, and conveyor belt 400 is arranged between first synchronous wheel 210, second synchronous wheel 310 and third synchronous wheel 320, and conveyor belt 400 transmits power between first synchronous wheel 210, second synchronous wheel 310 and third synchronous wheel 320, to make roller 200 rotate and convey workpiece (for example, workpiece can be glass).

[0048] Specifically, in the embodiment, when it is needed to convey workpiece by using the glass conveying equipment, driving member 500 is started, so that driving member 500 drives second synchronous wheel 310 to rotate (i.e., second synchronous wheel 310 is a power wheel), under the action of conveyor belt 400, second synchronous wheel 310 drives third synchronous wheel 320 and first synchronous wheel 210 to rotate, and first synchronous wheel 210 can drive roller 200 to rotate.When roller 200 rotates, workpiece can be conveyed, so that workpiece is transmitted between various stations.

[0049] Second synchronous wheel 310 as a power source is arranged at the center position of second side wall 120, when second synchronous wheel 310 drives conveyor belt 400, it can ensure that the forces of left and right conveyor belts 400 are balanced on both sides of second synchronous wheel 310, prevent the forces of left and right conveyor belts 400 from being uneven due to the position offset of second synchronous wheel 310, cause the phenomenon that conveyor belt 400 is easy to slip when rapidly running, braking, and conveying between various synchronous wheels, affect the conveying accuracy and conveying efficiency of conveyor belt 400.

[0050] Since the second synchronous wheel 310 is arranged at the center of the second side wall 120, and the distance between the first synchronous wheel 210 arranged at the end of the first side wall 110 is far, a third synchronous wheel 320 is arranged between the first synchronous wheel 210 and the second synchronous wheel 310. Through the third synchronous wheel 320, it is beneficial to improve the compactness of the connection of the conveying belt 400 between the first synchronous wheel 210 and the second synchronous wheel 310, prevent the conveying belt 400 from slipping when conveying between the first synchronous wheel 210 and the second synchronous wheel 310, ensure the conveying stability and continuity of the conveying belt 400 between the first synchronous wheel 210 and the second synchronous wheel 310, and further improve the overall processing efficiency.

[0051] In some embodiments, the surfaces of the first synchronous wheel 210, the second synchronous wheel 310, and the third synchronous wheel 320 are provided with first engagement parts, and the side of the conveying belt 400 close to the first synchronous wheel 210, the second synchronous wheel 310, and the third synchronous wheel 320 is provided with second engagement parts, and the second engagement parts and the first engagement parts are engaged with each other. For example, the first engagement parts can be grooves, and the second engagement parts can be belt calipers, that is, the surfaces of the first synchronous wheel 210, the second synchronous wheel 310, and the third synchronous wheel 320 are provided with groove(s), and the side of the conveying belt 400 close to the first synchronous wheel 210, the second synchronous wheel 310, and the third synchronous wheel 320 is provided with belt calipers. Through the cooperation between the belt calipers and the grooves, the conveying belt 400 and the first synchronous wheel 210, the second synchronous wheel 310, and the third synchronous wheel 320 can be tightly connected. Alternatively, the first engagement parts can be synchronous wheel calipers, and the second engagement parts can be grooves, that is, the surfaces of the first synchronous wheel 210, the second synchronous wheel 310, and the third synchronous wheel 320 are provided with synchronous wheel calipers, and the side of the conveying belt 400 close to the first synchronous wheel 210, the second synchronous wheel 310, and the third synchronous wheel 320 is provided with groove(s). Through the cooperation between the synchronous wheel calipers and the grooves, the conveying belt 400 and the first synchronous wheel 210, the second synchronous wheel 310, and the third synchronous wheel 320 can be tightly connected.

[0052] Specifically, in the present embodiment, through the mutual engagement between the first engagement parts and the second engagement parts, the conveying belt 400 can be stably fixed to the surfaces of the first synchronous wheel 210, the second synchronous wheel 310, and the third synchronous wheel 320, preventing the conveying belt 400 from slipping between the first synchronous wheel 210, the second synchronous wheel 310, and the third synchronous wheel 320, or even falling off from the first synchronous wheel 210, the second synchronous wheel 310, and the third synchronous wheel 320 when the glass conveying device frequently starts and stops or operates at high speed, affecting the conveying efficiency of the workpiece to be processed.

[0053] In addition, through the mutual engagement between the first engagement portion and the second engagement portion, the contact area between the conveying belt 400 and each synchronous wheel can be increased, so that the conveying belt 400 reduces the sliding on the surface of each synchronous wheel, and the transmission efficiency of the conveying belt 400 is improved. Moreover, the greater the contact area between the conveying belt 400 and each synchronous wheel, the better the impact force of the conveying belt 400 acting on each synchronous wheel can be dispersed, and the wear between the conveying belt 400 and each synchronous wheel is reduced.

[0054] In some embodiments, with reference to Figure 1 and Figure 2 , the glass conveying device comprises a plurality of roller tables 200, each roller table 200 is provided with a first synchronous wheel 210 at one end, and a fourth synchronous wheel 330 is arranged between two adjacent first synchronous wheels 210, the fourth synchronous wheel 330 contacts the conveying belt 400 away from the side of the second engagement portion, and the fourth synchronous wheel 330 is used to compress the conveying belt 400 between the two adjacent first synchronous wheels 210.

[0055] Specifically, in the present embodiment, the fourth synchronous wheel 330 is used to compress the conveying belt 400 between the two adjacent first synchronous wheels 210, which is conducive to increasing the contact area between the first synchronous wheel 210 and the conveying belt 400, ensuring the connection stability of the conveying belt 400 on the first synchronous wheel 210, and preventing the conveying belt 400 from slipping when conveying on the first synchronous wheel 210. At the same time, the fourth synchronous wheel 330 can balance the downward stretching angle of the conveying belt 400 and balance the transmission ratio of the first synchronous wheel 210.

[0056] In some embodiments, with reference to Figure 2 and Figure 3 , the fourth synchronous wheel 330 and the two adjacent first synchronous wheels 210 form a triangular structure, and the included angle a between the fourth synchronous wheel 330 and the two adjacent first synchronous wheels 210 satisfies: 70°≤a≤110°. Exemplarily, for example, the value of a can be 70°, 80°, 90°, 100°, 110°, and the like.

[0057] Specifically, in the embodiment, the included angle between the fourth synchronization wheel 330 and the two adjacent first synchronization wheels 210 is set within the above range. On the one hand, it can prevent the included angle between the fourth synchronization wheel 330 and the two adjacent first synchronization wheels 210 from being too small (for example, the included angle a is 30°, 45°, 60°, etc.), which can cause the fourth synchronization wheel 330 to be unable to adapt to the rapid change of force when the conveying belt 400 is instantaneously started and stopped or when the conveying belt 400 is operated at high speed, resulting in the breakage of the fourth synchronization wheel 330, thereby increasing the maintenance cost and reducing the processing efficiency. On the other hand, it can prevent the included angle between the fourth synchronization wheel 330 and the two adjacent first synchronization wheels 210 from being too large (for example, the included angle a is 120°, 145°, 150°, etc.), which can cause the fourth synchronization wheel 330 to be unable to effectively compress the conveying belt 400 between the two adjacent first synchronization wheels 210, which is not conducive to increasing the contact area between the conveying belt 400 and the first synchronization wheel 210, causing the conveying belt 400 to easily slip on the surface of the first synchronization wheel 210, thereby not conducive to improving the transmission efficiency of the conveying belt 400, and easily causing wear of the conveying belt 400 and the first synchronization wheel 210.

[0058] In some embodiments, with reference to Figure 1 and Figure 2 The conveying belt device 300 includes at least two fifth synchronization wheels 340, which are respectively arranged on the two sides of the second synchronization wheel 310 (for example, the two fifth synchronization wheels 340 can be symmetrically arranged along the central axis of the second synchronization wheel 310). The fifth synchronization wheel 340 contacts the side of the conveying belt 400 away from the second meshing part, and the fifth synchronization wheel 340 is used to compress the conveying belt 400 on both sides of the second synchronization wheel 310.

[0059] Specifically, in the embodiment, by arranging one fifth synchronization wheel 340 on each of the left and right sides of the second synchronization wheel 310, the fifth synchronization wheel 340 is used to compress the conveying belt 400 on both sides of the second synchronization wheel 310, which can increase the contact area between the conveying belt 400 and the second synchronization wheel 310, ensure the connection stability of the conveying belt 400 on the second synchronization wheel 310, and prevent the conveying belt 400 from slipping when conveying on the second synchronization wheel 310, thereby being conducive to improving the overall conveying efficiency of the conveying belt 400. At the same time, the fifth synchronization wheel 340 can be subjected to the instantaneous force of the conveying belt 400 when the second synchronization wheel 310 is frequently started and stopped and operated at high speed, thereby ensuring that the second synchronization wheel 310 is not easily damaged.

[0060] In some embodiments, with reference to Figure 2 and Figure 4The second synchronizing wheel 310 and the two adjacent fifth synchronizing wheels 340 form a triangular structure, and the included angle β between the second synchronizing wheel 310 and the two adjacent fifth synchronizing wheels 340 satisfies 100°≤β≤120°. For example, the value of β can be 100°, 105°, 110°, 115°, 120°, etc.

[0061] Specifically, in the present embodiment, the included angle between the second synchronizing wheel 310 and the two adjacent fifth synchronizing wheels 340 is set within the above range. On the one hand, it can prevent the included angle between the second synchronizing wheel 310 and the two adjacent fifth synchronizing wheels 340 from being too small (for example, the included angle β is 60°, 80°, 90°, etc.), which causes the fifth synchronizing wheel 340 to be unable to adapt to the rapid change of force when the conveying belt 400 is instantaneously started or stopped or when the conveying belt 400 is operated at high speed, resulting in the breakage of the fifth synchronizing wheel 340, which increases the maintenance cost and reduces the processing efficiency. On the other hand, it can prevent the included angle between the second synchronizing wheel 310 and the two adjacent fifth synchronizing wheels 340 from being too large (for example, the included angle β is 130°, 145°, 150°, etc.), which causes the fifth synchronizing wheel 340 to be unable to effectively compress the conveying belt 400 on both sides of the second synchronizing wheel 310, which is not conducive to increasing the contact area between the conveying belt 400 and the second synchronizing wheel 310, causing the conveying belt 400 to easily slip on the surface of the second synchronizing wheel 310, which is not conducive to improving the transmission efficiency of the conveying belt 400 and is easy to cause wear of the conveying belt 400 and the second synchronizing wheel 310.

[0062] In some embodiments, referring to Figure 1 and Figure 2 The conveying belt device 300 comprises a sixth synchronizing wheel 350, which is arranged between the third synchronizing wheel 320 and the fifth synchronizing wheel 340. The sixth synchronizing wheel 350 contacts the side of the conveying belt 400 away from the second meshing part, and the sixth synchronizing wheel 350 is used to lift the conveying belt 400 between the third synchronizing wheel 320 and the fifth synchronizing wheel 340. The center lines of the third synchronizing wheel 320, the fifth synchronizing wheel 340, and the sixth synchronizing wheel 350 are on the same straight line.

[0063] Specifically, in the present embodiment, since the center line of the third synchronous wheel 320 and the center line of the first synchronous wheel 210 are in the same straight line, and the first synchronous wheel 210 is located close to the end of the first side wall 110, the third synchronous wheel 320 is located close to the end of the second side wall 120. Since the fifth synchronous wheel 340 is arranged on both sides of the second synchronous wheel 310, and the second synchronous wheel 310 is located at the center of the second side wall 120, the fifth synchronous wheel 340 is located close to the middle of the second side wall 120. Therefore, there is a long distance between the third synchronous wheel 320 and the fifth synchronous wheel 340. By arranging the sixth synchronous wheel 350 between the third synchronous wheel 320 and the fifth synchronous wheel 340, the sixth synchronous wheel 350 is used to lift the conveyor belt 400 between the third synchronous wheel 320 and the fifth synchronous wheel 340, which can effectively prevent the conveyor belt 400 between the third synchronous wheel 320 and the fifth synchronous wheel 340 from being loose, and ensure the transmission efficiency of the conveyor belt 400. Moreover, in the case of instantaneous start and stop or braking of the conveyor belt 400, by lifting the conveyor belt 400 through the sixth synchronous wheel 350, the conveyor belt 400 can be prevented from being pulled back, and the conveyor belt 400 can be kept in the normal transmission direction.

[0064] The center lines of the third synchronous wheel 320, the fifth synchronous wheel 340, and the sixth synchronous wheel 350 are in the same straight line (for example, the center lines of the third synchronous wheel 320, the fifth synchronous wheel 340, and the sixth synchronous wheel 350 can be in the same horizontal straight line), which can ensure the levelness of the conveyor belt 400 during operation, and improve the stability and transmission efficiency of the conveyor belt 400 during operation.

[0065] In some embodiments, referring to Figure 1 , the end of the roller 200 away from the first synchronous wheel 210 is provided with a bearing 220.

[0066] Specifically, in the present embodiment, through the bearing 220, the roller 200 can be fixed, and the friction when the roller 200 rotates can be reduced, and the load when the roller 200 rotates can be borne, thereby facilitating to improve the stability when the roller 200 rotates, and prolonging the service life of the roller 200.

[0067] In some embodiments, referring to Figure 2 , the glass conveying device comprises a support structure 600, the support structure 600 is arranged on the second side wall 120, and the support structure 600 comprises a support beam 610 for supporting the driving member 500.

[0068] Specifically, in the embodiment, the driving member 500 generates vibration during operation, the driving member 500 is supported and fixed by the support beam 610, the stability and reliability of the glass conveying device during operation can be improved, the glass conveying device during operation can be prevented from shaking or deviating, and the conveying precision and conveying efficiency of the glass conveying device on the workpiece to be processed can be improved.

[0069] Correspondingly, the utility model discloses another embodiment further provides a glass processing system, and the glass processing system comprises the glass conveying device in any one of the above embodiments.

[0070] Specifically, in the embodiment, the glass processing system applying the above glass conveying device has good stability when conveying the workpiece (for example, glass) and high processing efficiency.

[0071] Thanks to the improvement of the above glass conveying device, the glass processing system of the embodiment has the same technical effects as the above glass conveying device, which will not be repeated here.

[0072] It should be noted that other contents of the glass conveying device and the glass processing system disclosed by the utility model can be referred to the prior art, which will not be repeated here.

[0073] The above is only the preferred embodiment of the utility model, and does not limit the patent range of the utility model, and any equivalent structural transformation, direct / indirect application in other related technical fields under the utility model concept of the utility model, and the contents of the utility model specification and drawings are included in the patent protection range of the utility model.

Claims

1. Glass conveying apparatus, characterized in that, The glass conveying device comprises: a frame body having a first side wall and a second side wall perpendicular to each other; a roller track provided on the first side wall, one end of the roller track being provided with a first synchronous wheel capable of driving the roller track to rotate; a conveying belt device provided on the second side wall, the conveying belt device comprising a second synchronous wheel and a third synchronous wheel, the second synchronous wheel being adapted to be connected to a driving member and capable of rotating under the driving of the driving member, the center line of the third synchronous wheel being in the same straight line as the center line of the first synchronous wheel; wherein the second synchronous wheel is provided at the center position of the second side wall, a conveying belt being provided around the first synchronous wheel, the second synchronous wheel and the third synchronous wheel, the conveying belt transmitting power between the first synchronous wheel, the second synchronous wheel and the third synchronous wheel to drive the roller track to rotate and convey the workpiece.

2. The glass delivery apparatus of claim 1, wherein, The surface of the first synchronous wheel, the second synchronous wheel and the third synchronous wheel is provided with a first engaging portion, and the side of the conveying belt close to the first synchronous wheel, the second synchronous wheel and the third synchronous wheel is provided with a second engaging portion, the second engaging portion and the first engaging portion being engaged with each other.

3. The glass delivery apparatus of claim 2, wherein, The glass conveying device comprises a plurality of roller tracks, one end of each roller track being provided with the first synchronous wheel, a fourth synchronous wheel being provided between two adjacent first synchronous wheels, the fourth synchronous wheel and the conveying belt being in contact with the side away from the second engaging portion, the fourth synchronous wheel being used to compress the conveying belt between the two adjacent first synchronous wheels.

4. The glass delivery apparatus of claim 3, wherein, The fourth synchronous wheel and the two adjacent first synchronous wheels form a triangular structure, and the included angle α between the fourth synchronous wheel and the two adjacent first synchronous wheels satisfies 70°≤α≤110°.

5. The glass delivery apparatus of claim 2, wherein, The conveying belt device comprises at least two fifth synchronous wheels, the two fifth synchronous wheels being provided on the two sides of the second synchronous wheel respectively, the fifth synchronous wheel and the conveying belt being in contact with the side away from the second engaging portion, the fifth synchronous wheel being used to compress the conveying belt on the two sides of the second synchronous wheel.

6. The glass delivery apparatus of claim 5, wherein, The second synchronous wheel and the two adjacent fifth synchronous wheels form a triangular structure, and the included angle β between the second synchronous wheel and the two adjacent fifth synchronous wheels satisfies 100°≤β≤120°.

7. The glass delivery apparatus of claim 5, wherein, The conveying belt device comprises a sixth synchronous wheel provided between the third synchronous wheel and the fifth synchronous wheel, the sixth synchronous wheel and the conveying belt being in contact with the side away from the second engaging portion, the sixth synchronous wheel being used to lift the conveying belt between the third synchronous wheel and the fifth synchronous wheel; wherein the center line of the third synchronous wheel, the fifth synchronous wheel and the sixth synchronous wheel are in the same straight line.

8. The glass delivery apparatus of claim 1, wherein, The roller track is provided with a bearing at the end away from the first synchronous wheel.

9. The glass delivery apparatus of claim 1, wherein, The glass conveying device comprises a support frame provided on the second side wall, the support frame comprising a support beam for supporting the driving member.

10. A glass processing system characterized by, The glass conveying device comprises: the glass conveying device according to any one of claims 1 to 9.