Carrier plate glass rim charge conveying device

By designing a glass edge material conveying device, the edge material is directly transported from the breaking device to outside the fence using belt conveyor and lateral transport mechanism, which solves the problem of manual cleaning affecting production efficiency and achieves efficient and safe edge material processing.

CN224257776UActive Publication Date: 2026-05-19HENAN XINGYANG PHOTOELECTRIC TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HENAN XINGYANG PHOTOELECTRIC TECH CO LTD
Filing Date
2025-06-09
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

During the production of carrier glass, the edge material of the breaking device needs to be cleaned manually, which affects the equipment utilization rate and production efficiency, and also poses safety hazards.

Method used

Design a glass edge material conveying device for carrier plates, including a belt conveyor mechanism and a transverse transport mechanism, which directly transports the edge material from the receiving platform to outside the fence through an adsorption module, avoiding manual intervention.

Benefits of technology

It improved equipment uptime, reduced downtime, increased production efficiency, reduced dust pollution, and improved the production environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of glass production equipment, and discloses a carrier plate glass offcut conveying device. The carrier plate glass offcut conveying device comprises a belt conveying mechanism and a transverse moving carrying mechanism, and the belt conveying mechanism extends in the first direction, is arranged on one side of the edge pulling and breaking device and extends out of a fence of the edge pulling and breaking device; the transverse moving carrying mechanism comprises a transverse moving module, a lifting module connected to the output end of the transverse moving module and an adsorption module connected to the output end of the lifting module, the transverse moving module extends in the second direction, one end of the transverse moving module extends to the position above a material receiving platform of the edge pulling and breaking device, and the other end of the transverse moving module extends to the position above the belt conveying mechanism. And the transverse moving module and the lifting module can drive the adsorption module to move, so that the adsorption module adsorbs the rim charges from the material receiving platform and places the rim charges on the belt conveying mechanism. According to the carrier glass offcut conveying device, offcuts in an edge pulling and breaking device can be directly conveyed out of a fence, the utilization rate of equipment is increased, and the production efficiency of carrier glass is improved.
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Description

Technical Field

[0001] This utility model relates to the technical field of glass production equipment, and in particular to a carrier glass edge material conveying device. Background Technology

[0002] Carrier glass for new display materials is a key component in the electronic information display industry. During the processing of carrier glass, an edge-trimming device is required to trim the glass edges. The general process involves the edge-trimming device tracing lines along the edge of the conveyed carrier glass, then breaking off the edge. In related technologies, the broken edge material falls onto a receiving platform. In some cases, by setting this receiving platform to an inclined surface, the edge material can be guided to a recycling bin located next to the edge-trimming device.

[0003] In actual production, due to safety requirements, a safety fence is set up around the edge breaking device, and the recycling bin is set up inside the fence. When the recycling bin is full of edge material, it is necessary for personnel to enter the fence and transport the edge material to the recycling pool by a wheelbarrow. When personnel enter the fence to clean the edge material, the edge breaking device is required to stop, which affects the machine's utilization rate and thus affects the production efficiency of the carrier glass. Utility Model Content

[0004] The purpose of this invention is to provide a carrier glass edge material conveying device that can directly convey the edge material in the edge breaking device to the outside of the fence, thereby improving the equipment's utilization rate and increasing the production efficiency of carrier glass.

[0005] To achieve this objective, the present invention adopts the following technical solution:

[0006] A carrier glass edge conveying device includes:

[0007] A belt conveyor mechanism extends along a first direction and is configured to be located on one side of the edge-breaking device and extend outside the enclosure of the edge-breaking device;

[0008] The transverse conveying mechanism includes a transverse module, a lifting module connected to the output end of the transverse module, and an adsorption module connected to the output end of the lifting module. The transverse module extends along a second direction, with one end extending above the receiving platform of the edge-pulling and breaking device and the other end extending above the belt conveyor mechanism. The transverse module and the lifting module can jointly drive the adsorption module to move, so that the adsorption module adsorbs edge material from the receiving platform and places the edge material on the belt conveyor mechanism.

[0009] As an optional embodiment, the belt conveyor mechanism includes a frame, a belt assembly, and a drive assembly. The belt assembly is mounted on the frame and includes a belt body and two rollers. The two rollers are spaced apart along the first direction. The belt body is wound around the two rollers. The drive assembly is used to drive the rollers to rotate. The frame includes a support member, at least a portion of which is disposed between the two rollers and located within the belt body. The support member is used to support the belt body.

[0010] As an alternative, the support member extends from both ends of the belt body along the second direction.

[0011] As an alternative, the two ends of the roller are each constructed as a frustum structure, and the cross-section of the frustum structure gradually decreases from the midpoint of the roller along its length direction to the end.

[0012] As an optional solution, the belt conveyor mechanism further includes a first adjusting component, defining one of the two rollers as the first roller, the first roller being rotatably engaged with the first adjusting component and connected to the support member through the first adjusting component, the first adjusting component being able to adjust the distance between the first roller and the support member.

[0013] As an optional solution, the first adjustment component includes:

[0014] The fastener is fixedly connected to the support member;

[0015] A movable component, which is slidably engaged with the fixed component, and the first roller is rotatably mounted on the movable component;

[0016] An adjusting member is provided, which passes through the fixing member and rotates with the fixing member, and the adjusting member is threadedly engaged with the movable member.

[0017] As an optional solution, the belt conveyor mechanism further includes:

[0018] The transmission assembly includes a driving wheel, a driven wheel, and a flexible transmission element. The driving wheel is connected to the output end of the drive assembly, the driven wheel is connected to a roller, and the flexible transmission element is wound around the driving wheel and the driven wheel, and respectively engages in transmission with the driving wheel and the driven wheel.

[0019] A second adjustment component is configured to adjust the tension of the flexible transmission member.

[0020] As an optional solution, the second adjustment component includes:

[0021] Mounting block, which is slidably engaged with the frame;

[0022] The tensioning wheel is rotatably mounted on the mounting block and engages with the flexible transmission component.

[0023] A threaded component, which is rotatably fitted with the frame and threadedly connected to the mounting block.

[0024] As an optional solution, the adsorption module includes a mounting component and multiple suction cups. The mounting component is connected to the output end of the lifting module, and the multiple suction cups are all connected to the mounting component and arranged at intervals along the first direction.

[0025] As an optional solution, the lateral conveying mechanism further includes:

[0026] The first positioning detection component is configured to detect the position of the lifting module in the second direction and is electrically connected to the lateral movement module; and / or

[0027] The second positioning detection component is configured to detect the vertical position of the adsorption module and is electrically connected to the lifting module.

[0028] The beneficial effects of this utility model are:

[0029] The present invention relates to a carrier glass edge material conveying device, comprising a belt conveyor mechanism and a transverse conveying mechanism. The belt conveyor mechanism is located on one side of the edge-pulling and breaking device. The transverse conveying mechanism comprises a transverse module, a lifting module, and an adsorption module. One end of the transverse module extends above the receiving platform of the edge-pulling and breaking device, and the other end extends above the belt conveyor mechanism. In actual operation, the transverse module first drives the adsorption module to move directly above the receiving platform. Then, the lifting module drives the adsorption module to move downward to contact the edge material on the receiving platform. After the adsorption module adsorbs and fixes the edge material, the lifting module drives the adsorption module to rise a certain distance. Then, the transverse module drives the adsorption module to move directly above the belt conveyor mechanism. The lifting module drives the adsorption module to move downward until the edge material contacts the belt conveyor mechanism. After the adsorption module releases the edge material, the belt conveyor mechanism drives the edge material to move along the first direction to the outside of the fence of the edge-pulling and breaking device. This carrier glass edge material conveying device can continuously transport the edge material after the carrier glass is broken to the outside of the fence, so there is no need for manual entry into the fence to clean the edge material. Therefore, the edge breaking device does not need to stop and wait, which can improve the utilization rate of the edge breaking device, improve the production efficiency of the carrier glass, and ensure good safety. In addition, the handling of edge material is completed through the adsorption module, which can reduce dust and improve the production environment compared to edge material falling directly into the recycling bin. Attached Figure Description

[0030] Figure 1This is a schematic diagram of the structure of the carrier glass edge material conveying device provided in a specific embodiment of this utility model;

[0031] Figure 2 This is a schematic diagram of the transverse conveying mechanism provided in a specific embodiment of this utility model;

[0032] Figure 3 This is a partial structural schematic diagram of the belt conveyor mechanism provided in the specific implementation of this information from one perspective;

[0033] Figure 4 This is a partial structural schematic diagram of the belt conveyor mechanism provided in a specific embodiment of the present invention from another perspective.

[0034] In the picture:

[0035] 10. Belt conveyor mechanism; 11. Frame; 111. Support component; 112. First frame; 113. Connector; 12. Belt assembly; 121. Belt body; 122. Roller; 122a. First roller; 13. Drive assembly; 14. First adjustment assembly; 141. Fixing component; 142. Moving component; 143. Adjusting component; 15. Transmission assembly; 151. Drive wheel; 152. Driven wheel; 153. Flexible transmission component; 16. Second adjustment assembly; 161. Mounting block; 162. Tensioner wheel; 163. Threaded component; 17. Protective cover; 18. Guide assembly;

[0036] 20. Lateral transport mechanism; 21. Second frame; 22. Lateral transport module; 23. Lifting module; 24. Adsorption module; 241. Mounting component; 242. Suction cup; 25. First positioning detection component; 26. Second positioning detection component;

[0037] 30. Electrical control box;

[0038] 40. Edge material. Detailed Implementation

[0039] The present invention will now be described in further detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are for illustrative purposes only and are not intended to limit the scope of the invention. Furthermore, it should be noted that, for ease of description, the accompanying drawings show only the parts relevant to the present invention, and not the entire structure.

[0040] In the description of this utility model, unless otherwise explicitly specified and limited, the terms "connected," "linked," and "fixed" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0041] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.

[0042] In the description of this embodiment, the terms "upper," "lower," "right," etc., refer to the orientation or positional relationship shown in the accompanying drawings. They are used only for ease of description and simplification of operation, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. In addition, the terms "first" and "second" are only used for distinction in description and have no special meaning.

[0043] This embodiment provides a carrier glass edge material conveying device for conveying edge material 40 broken off by an edge-pulling and breaking device. In the following text, both the first direction and the second direction are horizontal and perpendicular to each other.

[0044] The edge-breaking device is an existing device. Its general structure and working principle are as follows: The edge-breaking device includes a conveying mechanism, a marking mechanism, a breaking mechanism, and a receiving platform. The conveying mechanism can convey the carrier glass along a first direction. The marking mechanism is used to mark lines on the carrier glass (the marking lines extend along the first direction). The breaking mechanism can press down on both sides of the marking lines on the carrier glass, so that the broken edge material falls onto the receiving platform. The edge-breaking device is surrounded by a fence. To ensure the safety of the operation, the edge-breaking device must be stopped before the operator enters the fence.

[0045] like Figure 1As shown, the carrier glass edge material conveying device includes a belt conveyor mechanism 10 and a transverse conveying mechanism 20. The belt conveyor mechanism 10 is located on one side of the edge-pulling and breaking device and extends along a first direction to the outside of the fence of the edge-pulling and breaking device. The transverse conveying mechanism 20 includes a transverse module 22, a lifting module 23, and an adsorption module 24. The transverse module 22 extends along a second direction, with one end extending above the receiving platform of the edge-pulling and breaking device and the other end extending above the belt conveyor mechanism 10. The lifting module 23 is connected to the output end of the transverse module 22, and the transverse module 22 can drive the lifting module 23 to move along the second direction. The adsorption module 24 is connected to the output end of the lifting module 23. The lifting module 23 can drive the adsorption module 24 to move up and down. The lateral module 22 and the lifting module 23 cooperate to drive the adsorption module 24 to move, so that the adsorption module 24 can adsorb the edge material 40 from the receiving platform and place the edge material 40 on the belt conveyor mechanism 10, so that the belt conveyor mechanism 10 can transport the edge material to the outside of the fence of the edge breaking device.

[0046] In actual operation, the lateral shift module 22 first drives the adsorption module 24 to move directly above the receiving platform. Then, the lifting module 23 drives the adsorption module 24 to move downwards until it contacts the edge material 40 on the receiving platform. After the adsorption module 24 adsorbs and fixes the edge material 40, the lifting module 23 drives the adsorption module 24 to rise a certain distance. Then, the lateral shift module 22 drives the adsorption module 24 to move directly above the belt conveyor mechanism 10. The lifting module 23 drives the adsorption module 24 to move downwards until the edge material 40 contacts the belt conveyor mechanism 10. After the adsorption module 24 releases the edge material 40, the belt conveyor mechanism 10 drives the edge material 40 to move along the first direction to the outside of the fence of the edge breaking device. The carrier glass edge material conveying device of this embodiment can continuously convey the edge material 40 after the carrier glass is broken to the outside of the fence. Therefore, it is not necessary for personnel to enter the fence to clean the edge material 40. Thus, the edge breaking device does not need to stop and wait, thereby improving the operating rate of the edge breaking device, improving the production efficiency of the carrier glass, and ensuring good safety. In addition, the handling of the edge material 40 is completed by the adsorption module 24. Compared with the edge material 40 falling directly into the recycling bin, it can reduce powder and dust and improve the production environment.

[0047] It is understandable that, in order to reliably and conveniently adsorb the edge material 40 onto the receiving platform, the existing inclined receiving platform can be set to a horizontal state. In some embodiments, a receiving box can be set at the end of the belt conveyor mechanism 10 after extending beyond the fence to receive the edge material 40. After the receiving box is full, it is manually transferred to the recycling pool. In some embodiments, where space permits, the belt output mechanism extends directly from the fence to the recycling pool, so that the edge material 40 directly reaches the recycling position, eliminating the need for manual transfer of the edge material 40 and reducing the amount of manual work.

[0048] like Figure 1As shown, in this embodiment, the carrier glass edge material 40 conveying mechanism also includes an electrical control box 30. The electrical control box 30 is equipped with a control component. The drive source, detection device, etc. in the belt conveyor mechanism 10 and the transverse conveying mechanism 20 are all electrically connected to the control component. The control component is used to control the belt conveyor mechanism 10 and the transverse conveying module to work together based on manual operation or a pre-stored program.

[0049] like Figure 1 and Figure 2 As shown, the lateral conveying module includes a second frame 21, and the lateral conveying module 22 can be fixedly mounted on the second frame 21 via a plate. The lifting module 23 is connected to the output end of the lateral conveying module 22 via a plate. Optionally, both the lateral conveying module 22 and the lifting module 23 can be existing linear drive modules, and their specific structures will not be described in detail here. In this embodiment, the bearing surface of the belt conveyor mechanism 10 is flush with the height of the receiving platform, thereby simplifying the operation of the lifting module 23.

[0050] like Figure 2 As shown, the transverse conveying mechanism 20 also includes a first positioning detection component 25, which is used to detect the position of the lifting module 23 in the second direction and is electrically connected to the transverse module 22. When the first positioning detection component 25 detects that the lifting module 23 has moved to the first position (at which the adsorption module 24 is located directly above the receiving platform), the transverse module 22 stops driving the lifting module 23, thereby ensuring that the adsorption module 24 can accurately adsorb the edge material 40 from the receiving platform; when the first positioning detection component 25 detects that the lifting module 23 has moved to the second position (at which the adsorption module 24 is located directly above the belt conveyor mechanism 10), the transverse module 22 also stops driving the lifting module 23, thereby ensuring that the adsorption module 24 can accurately place the adsorbed edge material 40 on the belt conveyor mechanism 10. Optionally, in this embodiment, the first positioning detection component 25 includes two photoelectric sensors, which are arranged at intervals along the second direction. One photoelectric sensor is used to detect whether the lifting module 23 has reached the first position, and the other photoelectric sensor is used to detect whether the lifting module 23 has reached the second position.

[0051] like Figure 2As shown, the transverse conveying mechanism 20 also includes a second positioning detection component 26, which is used to detect the vertical position of the adsorption module 24 and is electrically connected to the lifting module 23. When the lifting module 23 drives the adsorption module 24 to move downward, when the second positioning detection component 26 detects that the adsorption module 24 has moved to the third position (at which the adsorption module 24 can just contact the edge material 40 on the receiving platform or the edge material 40 just contacts the bearing surface of the belt conveyor 10), the lifting module 23 stops driving the adsorption module 24. After the adsorption module 24 adsorbs the edge material 40 or places the adsorbed edge material 40 on the belt conveyor 10, the lifting module 23 drives the adsorption module 24 to rise. When the second positioning detection component 26 detects that the adsorption module 24 has moved to the fourth position (at which the adsorption module 24 and the adsorbed edge material 40 will not interfere with the belt conveyor 10 or the receiving platform), the lifting module 23 also stops driving the adsorption module 24. Optionally, in this embodiment, the second positioning detection component 26 includes two photoelectric sensors arranged at intervals along the vertical direction. One photoelectric sensor is used to detect whether the adsorption module 24 has reached the third position, and the other photoelectric sensor is used to detect whether the adsorption module 24 has reached the fourth position. It is understood that when the heights of the receiving platform and the bearing surface of the belt conveyor mechanism 10 are different, an additional photoelectric switch can be added. That is, the height at which the adsorption module 24 contacts the edge material on the receiving platform and the height at which the edge material contacts the bearing surface of the belt conveyor mechanism 10 are detected by different photoelectric switches.

[0052] like Figure 2 As shown, the adsorption module 24 includes a mounting component 241 and multiple suction cups 242. The mounting component 241 is connected to the output end of the lifting module 23, and the multiple suction cups 242 are all connected to the mounting component 241 and are arranged at intervals along the first direction. Since the broken edge material 40 is a long strip extending along the first direction, by setting the multiple suction cups 242 to be arranged along the first direction, not only can the edge material 40 be adsorbed more reliably and stably, but also when the edge material 40 breaks into multiple segments on the bearing platform, the adsorption module 24 can also simultaneously adsorb multiple segments of the edge material 40, ensuring that the edge material 40 can be grabbed onto the belt conveyor mechanism 10 in one go.

[0053] like Figure 1 and Figure 3As shown, the belt conveyor mechanism 10 includes a frame 11, a belt assembly 12, and a drive assembly 13. The belt assembly 12 is mounted on the frame 11 and includes a belt body 121 and two rollers 122. The two rollers 122 are spaced apart along a first direction, and each roller 122 extends along a second direction and is rotatable relative to the frame 11. The belt body 121 is wound around the two rollers 122. The drive assembly 13 drives one roller 122 to rotate, thereby causing the belt body 121 to rotate. The belt body 121 then drives the edge material 40 placed on it to move. The frame 11 includes a support member 111, at least part of which is disposed between the two rollers 122 and within the belt body 121. The support member 111 supports the belt body 121. By providing the support member 111, the belt body 121 can be supported, preventing unevenness of its bearing surface due to excessive length, thus ensuring smooth conveying of the long, thin edge material 40.

[0054] In this embodiment, as Figure 3 As shown, the frame 11 also includes a first frame 112, which is a frame structure. The support member 111 is a plate-like member with a certain thickness, so that it can be inserted into the belt body 121 and support the belt body 121. The support member 111 is connected to the first frame 112 through a connector 113. In this embodiment, the two ends of the support member 111 extend out of the belt body 121 along the second direction. This arrangement allows the support member 111 to also prevent the edge material 40 from falling off the belt body 121, improving the reliability of the edge material 40 conveying. In this embodiment, two rollers 122 are respectively connected to the two ends of the support member 111 along the first direction.

[0055] In some embodiments, the two ends of the roller 122 are each constructed as a frustum, and the cross-section of the frustum gradually decreases from the midpoint of the roller 122 towards the end. That is, the circumferential surfaces at both ends of the roller 122 have a certain taper. Experiments have shown that this taper setting of the roller 122 can prevent the belt from shifting position along the length of the roller 122, thereby further ensuring the reliability of the conveyor. Optionally, the taper of the frustum structure can be 2° to 8°, specifically 2°, 3°, 4°, 5°, 6°, 7°, or 8°.

[0056] like Figure 3As shown, to ensure the stable conveying of edge material 40 by the belt body 121, the belt conveyor mechanism 10 also includes a first adjusting component 14. One of the two rollers 122 is defined as the first roller 122a. The first roller 122a is rotatably engaged with the first adjusting component 14 and connected to the support member 111 through the first adjusting component 14. The first adjusting component 14 can adjust the distance between the first roller 122a and the support member 111. By adjusting the distance between the first roller 122a and the support member 111 through the first adjusting component 14, the distance between the two rollers 122 can be indirectly adjusted, thereby adjusting the tension of the belt body 121. This prevents the belt body 121 from slipping and affecting normal conveying, and also prevents the belt body 121 from experiencing excessive tension and severe wear, ensuring the reliability of conveying and improving the service life of the belt assembly 12. In this embodiment, the other roller 122 besides the first roller 122a is fixedly connected to the support member 111, resulting in a simple structure and low cost. In some embodiments, the two rollers 122 may be connected to the support 111 via a first adjustment component 14.

[0057] like Figure 3 As shown, the first adjustment assembly 14 includes a fixed member 141, a movable member 142, and an adjusting member 143. The fixed member 141 is fixedly connected to the support member 111. The movable member 142 is slidably engaged with the fixed member 141 along a first direction. The first roller 122a is rotatably mounted on the movable member 142. The adjusting member 143 passes through the fixed member 141 and is rotatably engaged with the fixed member 141. The adjusting member 143 is threadedly engaged with the movable member 142. Therefore, when the adjusting member 143 is rotated, the movable member 142 can move relative to the fixed member 141 along the first direction, thereby adjusting the distance between the first roller 122a mounted on the movable member 142 and the support member 111, thus realizing the adjustment of the tension of the belt body 121. The structure is simple and the operation is convenient.

[0058] In this embodiment, the fixing member 141 is generally constructed as a U-shaped structure, with the opening of the U-shaped structure facing the first roller 122a. The movable member 142 is inserted into the fixing member 141, thereby slidingly engaging with the fixing member 141. The first roller 122a is rotatably mounted on the movable member 142 via a bearing. In some embodiments, the fixing member 141 and the movable member 142 can also achieve a sliding engagement via a guide rail slider or similar structure. In this embodiment, the adjusting member 143 can be a bolt, which is rotatably engaged with the fixing member 141 via a bearing, and its end is threadedly connected to the movable member 142. Optionally, both ends of the first roller 122a along the second direction are respectively connected to the support member 111 via a first adjusting assembly 14 to ensure reliable connection of the first roller 122a.

[0059] like Figure 1 and Figure 4As shown, the belt conveyor mechanism 10 also includes a transmission assembly 15, which includes a drive wheel 151, a driven wheel 152, and a flexible transmission member 153. The drive wheel 151 is connected to the output end of the drive assembly 13, and the driven wheel 152 is connected to a roller 122. The flexible transmission member 153 is wound around the drive wheel 151 and the driven wheel 152, and is in transmission cooperation with the drive wheel 151 and the driven wheel 152 respectively. When the drive assembly 13 drives the drive wheel 151 to rotate, the flexible transmission member 153 drives the driven wheel 152 to rotate, which in turn drives the roller 122 to rotate. By setting this transmission assembly 15, the roller 122 and the drive assembly 13 can be arranged in an up-down configuration, thereby improving the structural compactness of the carrier glass edge material 40 conveying device. Optionally, the drive assembly 13 can be a geared motor. The drive assembly 13 can also be a structure of a motor and a gearbox. In this embodiment, both the driving wheel 151 and the driven wheel 152 are sprockets, and correspondingly, the flexible transmission component 153 is a chain. Chain drive is a low-cost and durable method. In other embodiments, both the driving wheel 151 and the driven wheel 152 can be pulleys, in which case the flexible transmission component 153 is a belt. In this embodiment, the driven wheel 152 is connected to the first roller 122a. In other embodiments, the driven wheel 152 can also be connected to another roller 122, which is not limited here.

[0060] To ensure the reliability of the transmission, the belt conveyor mechanism 10 also includes a second adjusting component 16, which is configured to adjust the tension of the flexible transmission component 153. This prevents the flexible transmission component 153 from slipping due to insufficient tension or from having a shortened service life due to excessive tension.

[0061] like Figure 4 As shown, the second adjustment component 16 includes a mounting block 161, a tensioning wheel 162, and a threaded component 163. The mounting block 161 is slidably engaged with the frame 11. The tensioning wheel 162 is rotatably mounted on the mounting block 161 and is in a transmission engagement with the flexible transmission component 153. The threaded component 163 is rotatably engaged with the frame 11 and threadedly connected to the mounting block 161. Therefore, when the threaded component 163 is rotated, the mounting block 161 can slide relative to the frame 11, and the tensioning wheel 162 on the mounting block 161 will press against or move away from the flexible transmission component 153, thereby achieving tension adjustment of the flexible transmission component 153. In this embodiment, the mounting block 161 is slidably engaged with the first frame 112 through a guide component 18, which can be a guide rail slider structure. The threaded component 163 is directly or indirectly rotatably engaged with the first frame 112 through a bearing. Since the flexible transmission component 153 is a chain, the tensioning wheel 162 is a sprocket. Understandably, threaded part 163 can be a threaded rod with a handle, thus facilitating adjustment.

[0062] like Figure 1 and Figure 3As shown, the belt conveyor mechanism 10 also includes two protective covers 17, which are respectively disposed at both ends of the belt assembly 12 along the second direction. On the one hand, the protective covers 17 are used to cover the sides of the belt assembly 12 to prevent the edge material 40 from falling off the belt assembly 12; on the other hand, the protective covers 17 are also used to cover the top of the transmission assembly 15, thereby protecting the transmission assembly 15.

[0063] Obviously, the above embodiments of this utility model are merely examples for clearly illustrating the present utility model, and are not intended to limit the implementation of the present utility model. For those skilled in the art, based on the concept of this utility model, there will be changes in the specific implementation methods and application scope. The content of this specification should not be construed as a limitation of this utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the protection scope of the claims of this utility model.

Claims

1. A carrier glass edge material conveying device, characterized in that, include: A belt conveyor (10) extends in a first direction and is configured to be located on one side of the edge-breaking device and extend outside the enclosure of the edge-breaking device; The transverse conveying mechanism (20) includes a transverse module (22), a lifting module (23) connected to the output end of the transverse module (22), and an adsorption module (24) connected to the output end of the lifting module (23). The transverse module (22) extends along a second direction, with one end extending above the receiving platform of the edge-breaking device and the other end extending above the belt conveyor mechanism (10). The transverse module (22) and the lifting module (23) can jointly drive the adsorption module (24) to move, so that the adsorption module (24) adsorbs the edge material from the receiving platform and places the edge material on the belt conveyor mechanism (10).

2. The carrier glass edge conveying device as described in claim 1, characterized in that, The belt conveyor mechanism (10) includes a frame (11), a belt assembly (12), and a drive assembly (13). The belt assembly (12) is disposed on the frame (11) and includes a belt body (121) and two rollers (122). The two rollers (122) are arranged at intervals along the first direction. The belt body (121) is wound around the two rollers (122). The drive assembly (13) is used to drive the rollers (122) to rotate. The frame (11) includes a support member (111). At least a portion of the support member (111) is disposed between the two rollers (122) and located within the belt body (121). The support member (111) is used to support the belt body (121).

3. The carrier glass edge conveying device as described in claim 2, characterized in that, The support member (111) extends out of the belt body (121) at both ends along the second direction.

4. The carrier glass edge conveying device as described in claim 2, characterized in that, The two ends of the roller (122) are respectively constructed as frustum structures, and the cross-section of the frustum structure gradually decreases from the midpoint of the roller (122) along the length direction to the end.

5. The carrier glass edge conveying device as described in claim 2, characterized in that, The belt conveyor mechanism (10) further includes a first adjustment component (14), defining one of the two rollers (122) as the first roller (122a). The first roller (122a) is rotatably engaged with the first adjustment component (14) and connected to the support member (111) through the first adjustment component (14). The first adjustment component (14) can adjust the distance between the first roller (122a) and the support member (111).

6. The carrier glass edge conveying device as described in claim 5, characterized in that, The first adjustment component (14) includes: A fastener (141) is fixedly connected to the support member (111); The movable part (142) is slidably engaged with the fixed part (141), and the first roller (122a) is rotatably mounted on the movable part (142). An adjusting member (143) passes through the fixing member (141) and is rotatably engaged with the fixing member (141). The adjusting member (143) is threadedly engaged with the movable member (142).

7. The carrier glass edge conveying device as described in claim 2, characterized in that, The belt conveyor mechanism (10) further includes: The transmission assembly (15) includes a drive wheel (151), a driven wheel (152), and a flexible transmission member (153). The drive wheel (151) is connected to the output end of the drive assembly (13), the driven wheel (152) is connected to a roller (122), and the flexible transmission member (153) is wound around the drive wheel (151) and the driven wheel (152), and is in transmission cooperation with the drive wheel (151) and the driven wheel (152) respectively. A second adjustment component (16) is configured to adjust the tension of the flexible transmission member (153).

8. The carrier glass edge conveying device as described in claim 7, characterized in that, The second adjustment component (16) includes: Mounting block (161), which is slidably engaged with the frame (11); The tensioning wheel (162) is rotatably mounted on the mounting block (161) and is in transmission engagement with the flexible transmission member (153); Threaded component (163) is rotatably engaged with the frame (11) and threadedly connected to the mounting block (161).

9. The carrier glass edge conveying device according to any one of claims 1-8, characterized in that, The adsorption module (24) includes a mounting component (241) and a plurality of suction cups (242). The mounting component (241) is connected to the output end of the lifting module (23). The plurality of suction cups (242) are all connected to the mounting component (241) and are arranged at intervals along the first direction.

10. The carrier glass edge conveying device according to any one of claims 1-8, characterized in that, The lateral transport mechanism (20) further includes: The first positioning detection component (25) is configured to detect the position of the lifting module (23) in the second direction and is electrically connected to the lateral module (22); and / or The second positioning detection component (26) is configured to detect the vertical position of the adsorption module (24) and is electrically connected to the lifting module (23).