Conveying structure for glass production and processing
The movable frame driven by electromagnetic slide rails and telescopic rods uses rubber rollers to lift the glass, solving the problem of damage caused by friction between the conveyor rollers and the bottom of the glass, and achieving efficient, damage-free glass conveying and uniform drying.
Patent Information
- Application Number
- CN202511723659.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-22
- Publication Date
- 2026-02-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing conveyor structure causes surface damage to the glass by friction between the conveyor rollers and the bottom of the glass when the glass is fed into the oven, which affects production efficiency.
The movable frame, driven by electromagnetic slide rails and telescopic rods, lifts the glass with rubber rollers to prevent the conveyor rollers from contacting the bottom of the glass, and achieves stable glass conveying through transmission components and synchronous belts.
It effectively avoids wear and tear on the glass surface, improves work efficiency, and ensures that the glass coating dries evenly in the oven.
Smart Images

Figure CN121470197A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of conveying structures, specifically a conveying structure for glass production and processing. Background Technology
[0002] In the glass production and processing process, the conveying structure plays a crucial role, mainly responsible for the efficient and safe transportation of raw materials, semi-finished products, and finished products between various process stages. Glass processing requires spraying a coating onto the glass surface. The coating sprayed onto the glass surface can improve the physical properties, chemical stability, visual effects, and functionality in certain applications. The sprayed coating not only enhances the aesthetics of the glass but also endows it with specific functions, such as UV resistance, anti-reflection, anti-fouling, heat insulation, and scratch resistance. After the coating is sprayed, the conveying structure is used to send the glass into the oven to dry the coating on the glass surface.
[0003] The existing conveying structure uses conveyor rollers for transport. In order to improve production efficiency, two sets of glass are simultaneously transported into the oven. The glass moves slowly inside the oven to ensure that the surface coating is dried.
[0004] However, during use, the glass is transported by a conveyor. The glass is transported to the top of the conveying structure, and then moved to one end of the conveyor roller by the conveyor moving component. The glass then falls onto the conveyor roller, and the conveyor roller moves the glass. The glass is then located at the entrance of the oven, at which point one end of the glass contacts the conveyor roller, but the glass does not continue to move forward. Another piece of glass continues to be transported, transported to the other end of the conveyor roller by the conveyor moving component. The conveyor roller rotates to transport the glass. At this point, the other piece of glass stops moving, but it will still contact the conveyor roller. The rotating conveyor roller will rub against the bottom of the glass, which will cause damage to the glass surface. Summary of the Invention
[0005] Therefore, the purpose of this invention is to provide a conveying structure for glass production and processing to solve the technical problems mentioned in the background section.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a conveying structure for glass production and processing, comprising a mounting frame, an electromagnetic slide rail disposed inside the mounting frame, a conveying moving assembly disposed above the electromagnetic slide rail, multiple sets of conveying rollers disposed on the top of the mounting frame, a fixed rod fixed inside the mounting frame, a telescopic rod mounted on the top of the fixed rod, a movable frame mounted on the output end of the telescopic rod, and vertical rods fixed on both sides of the movable frame, a connecting rod movably mounted inside the vertical rod, and multiple sets of rubber rollers sleeved on the outer wall of the connecting rod, and a conveying roller movably mounted on the top of the movable frame. The system includes a driving rod and a driven rod, with a fixed plate fixed to the end of the driving rod and a rubber pad fixed to one side of the fixed plate. An internal rod is fixed to the end of the driven rod, and a collar is fitted on the outer wall of the internal rod. A bearing is fitted on the outer wall of the collar, and multiple protrusions are fixed to one side of the collar. A drive motor is provided on one side of the bottom of the mounting frame, which drives the conveyor rollers to rotate. A transmission structure is provided between each set of conveyor rollers. The driving rod is connected to the end of the conveyor rollers through a first transmission assembly, and the driven rod is connected to the connecting rod through a second transmission assembly. A pushing assembly is provided at the bottom of the moving frame.
[0007] By adopting the above technical solution, the telescopic rod can drive the moving frame to move upward. When the moving frame moves upward, it will lift the glass above the conveyor roller, so that the conveyor roller does not contact the bottom of the glass, thus avoiding wear on the bottom of the glass. When lifting, it can wait for another piece of glass to arrive, so that they can enter the oven at the same time, thereby improving work efficiency.
[0008] The present invention is further configured such that the first transmission assembly includes a drive rod, a first mounting plate and a second mounting plate, a third bevel gear is fixed to the end of the drive rod, a first bevel gear is fixed to the end of a set of conveying rollers and the first bevel gear meshes with the third bevel gear, a limit rod is fixed to one end of the drive rod and a rotating rod is fixed to the end of the limit rod, and a fourth bevel gear is sleeved on the outer wall of the limit rod, a first mounting plate and a second mounting plate are fixed to one side of the mounting frame, a second bevel gear is fixed to the end of the transmission rod and the second bevel gear meshes with the fourth bevel gear.
[0009] Preferably, the first transmission component can drive the first bevel gear to rotate when the conveyor roller rotates. When the first bevel gear rotates, it drives the third bevel gear meshing with it to rotate. When the third bevel gear rotates, it drives the drive rod to rotate. When the drive rod rotates, it drives the limit rod to rotate. When the limit rod rotates, it drives the fourth bevel gear sleeved on its outer wall to rotate. When the fourth bevel gear rotates, it drives the second bevel gear meshing with it to rotate. When the second bevel gear rotates, it drives the transmission rod to rotate. The first mounting plate can limit the drive rod, and the second mounting plate can limit the rotating rod, so that the rotating rod can only rotate inward.
[0010] The present invention is further configured such that a side frame is fixed on one side of the movable frame, and the side frame is movably connected to the transmission rod. A through hole is provided inside the side frame, and the diameter of the inner wall of the through hole is larger than that of the limiting rod.
[0011] Preferably, the side frame can support the end of the transmission rod, avoiding the problem of the end of the transmission rod shaking, and the through hole can prevent the limit rod from contacting the side frame.
[0012] The present invention is further configured such that a plurality of support plates are fixed on one side of the mounting frame, and a movable rod is installed inside the support plate. A plurality of rubber rollers are sleeved on the outer wall of the movable rod, and a second synchronous pulley is fixed at the end of both the movable rod and the conveying roller. A second synchronous belt is sleeved on the outer wall of the two sets of second synchronous pulleys.
[0013] Preferably, the movable rod can be installed using a support plate to avoid the problem of the movable rod being suspended in the air. When the conveyor roller rotates, the movable rod will be driven to rotate by the second synchronous belt. Therefore, the rubber roller sleeved on the outer wall of the movable rod will also rotate. The rotation of the rubber roller can enable the glass to be better transferred to the inner wall of the oven, avoiding the problem of the glass slipping when it comes into contact with the conveyor roller.
[0014] The present invention is further configured such that the pushing component includes a toothed rod, a locking block, a lead screw, and a locking block is fixed to the bottom of the movable frame, and a lead screw is movably installed inside the locking block. A gear is fixed to the outer wall of the lead screw, and a movable block is sleeved on the outer wall of the lead screw. A locking plate is fixed to the end of the movable block, and a groove is formed on the top of the locking plate. A toothed rod is fixed to the top of the fixed rod, and the toothed rod meshes with the gear.
[0015] Preferably, when the movable frame moves upward, it drives the locking block at its bottom to move upward. When the locking block moves upward, it drives the lead screw upward, and the gear sleeved on the outer wall of the lead screw also moves upward. At this time, the gear engages with the meshing rack, thereby driving the gear to rotate. The rotation of the gear drives the lead screw to rotate. According to the lead screw principle, the rotation of the lead screw drives the movable block to move. The movement of the movable block drives the locking plate to move. The bearing located inside the locking plate moves with the locking plate. When the bearing moves, it drives the collar to move. The collar slides on the outer wall of the inner rod. The outer ring of the bearing is located inside the groove. The inner ring of the bearing is fixed to the collar. The bearing can reduce the friction between the collar and the locking plate. The locking plate can drive the collar to move.
[0016] The present invention is further configured such that the interior of the movable frame has multiple sets of through holes, and a guide post is fixed to the inner wall of one set of the through holes, and the movable block is slidably connected to the guide post.
[0017] Preferably, the weight of the movable frame can be reduced by the through holes, and the guide posts can limit the movement of the movable block so that the movable block can only slide on its outer wall.
[0018] The invention is further configured such that a diagonal bar is fixed to the top of the fixed rod, and the end of the diagonal bar is fixed to the toothed rod.
[0019] Preferably, the inclined rod can support the rack and prevent deformation at the end of the rack.
[0020] The present invention is further configured such that the second transmission assembly includes a first synchronous pulley and a first synchronous belt, a locking rod is movably installed on one side of the vertical rod, and the ends of the locking rod, the connecting rod and the driven rod are all equipped with the first synchronous pulley, and the outer wall of the first synchronous pulley is fitted with the first synchronous belt.
[0021] Preferably, the second transmission component enables the driven rod to rotate and the connecting rod to rotate as well. The rotation of the connecting rod will drive the rubber roller to rotate, thereby achieving the purpose of conveying the glass. Both the first and second synchronous belts are in a taut state.
[0022] The invention is further configured such that multiple sets of rollers are mounted on the top of the side frame, and the rollers are in contact with the bottom of the fourth bevel gear.
[0023] Preferably, the bottom of the fourth bevel gear is supported by the rollers, which prevents the fourth bevel gear from contacting the side frame and reduces the friction between the fourth bevel gear and the side frame.
[0024] The present invention is further configured such that connecting blocks are fixed on both sides of the fixed rod, and a guide rod is provided through the inner wall of the connecting block, and the guide rod is fixedly connected to the bottom of the movable frame.
[0025] Preferably, the guide rod can cooperate with the connecting block to limit the movement of the mobile frame, allowing it to move up and down and preventing it from tilting.
[0026] In summary, the present invention has the following main beneficial effects: 1. This invention is equipped with a telescopic rod, a movable frame, and a rubber roller. The telescopic rod can drive the movable frame to move upward. When the movable frame moves upward, it will lift the glass located above the conveyor roller, so that the conveyor roller does not contact the bottom of the glass, thus avoiding wear on the bottom of the glass. When lifting, it can wait for another piece of glass to arrive, so that they can enter the oven at the same time, thereby improving work efficiency.
[0027] 2. The present invention is provided with a first conveying component, a second transmission component, and a pushing component. When the telescopic rod drives the moving frame to move downward, the gear and rack cooperate to drive the moving block to move, so that the collar is close to the fixed plate, thereby driving the driven rod to rotate. The second transmission component drives the rubber roller to rotate, thereby achieving the purpose of conveying glass and avoiding the problem of glass staying above the conveying roller due to its own weight and causing wear. Attached Figure Description
[0028] Figure 1 This is a schematic diagram of the structure of the present invention; Figure 2 This is a side view of the present invention; Figure 3 This is a schematic diagram showing the connection between the movable rod and the second synchronous wheel of the present invention; Figure 4 This is a schematic diagram showing the connection between the side frame and the movable frame of the present invention; Figure 5 This is a schematic diagram of the bottom structure of the mobile frame of the present invention; Figure 6 This is a perspective view of the transmission rod of the present invention; Figure 7 This is a perspective view of the movable block of the present invention; Figure 8 This is a perspective view of the drive rod of the present invention; Figure 9 This is a perspective view of the collar of the present invention.
[0029] Explanation of reference numerals in the attached figures: 1. Mounting frame; 2. Conveying moving assembly; 3. Electromagnetic slide rail; 4. Drive motor; 5. Conveying roller; 51. First bevel gear; 6. Fixed rod; 61. Connecting block; 62. Telescopic rod; 63. Toothed rod; 64. Diagonal rod; 7. Moving frame; 71. Vertical rod; 72. Through hole; 73. Connecting rod; 74. Rubber roller; 75. First synchronous pulley; 76. First synchronous belt; 77. Transmission rod; 771. Second bevel gear; 772. Fixed disc; 773. Rubber pad; 78. Driven rod; 781. Internal rod; 782. Collar; 783. Bearing 784. Slot; 785. Protrusion; 79. Locking rod; 710. Guide rod; 711. Lead screw; 712. Locking block; 713. Guide column; 714. Gear; 8. Side frame; 81. Through hole; 82. Roller; 9. Drive rod; 91. Limiting rod; 92. Rotating rod; 93. Third bevel gear; 10. Movable rod; 11. First mounting plate; 12. Second mounting plate; 13. Fourth bevel gear; 14. Protective cover; 15. Second synchronous pulley; 16. Second synchronous belt; 17. Moving block; 18. Locking plate; 19. Groove; 20. Support plate. Detailed Implementation
[0030] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0031] The embodiments of the present invention will now be described.
[0032] Please see Figures 1-9 The system includes a mounting frame 1, an electromagnetic slide rail 3 inside the mounting frame 1, a conveying moving assembly 2 above the electromagnetic slide rail 3, multiple sets of conveying rollers 5 on the top of the mounting frame 1, a fixed rod 6 fixed inside the mounting frame 1, a telescopic rod 62 mounted on the top of the fixed rod 6, a moving frame 7 mounted at the output end of the telescopic rod 62, vertical rods 71 fixed on both sides of the moving frame 7, a connecting rod 73 movably mounted inside the vertical rod 71, and multiple sets of rubber rollers 74 sleeved on the outer wall of the connecting rod 73, a transmission rod 77 and a driven rod 78 movably mounted on the top of the moving frame 7, a fixed plate 772 fixed at the end of the transmission rod 77, a rubber pad 773 fixed on one side of the fixed plate 772, and an internal rod 781 fixed at the end of the driven rod 78. A collar 782 is fitted on the outer wall of the built-in rod 781, and a bearing 783 is fitted on the outer wall of the collar 782. Multiple sets of protrusions 785 are fixed on one side of the collar 782. A slot 784 is opened inside the collar 782, and the inner wall of the slot 784 fits against the outer wall of the built-in rod 781. A drive motor 4 is provided on one side of the bottom of the mounting frame 1. The drive motor 4 drives the conveyor roller 5 to rotate. A transmission structure is provided between each set of conveyor rollers 5. A protective cover 14 is provided on the top of the mounting frame 1 to protect the transmission structure and prevent it from being exposed. The transmission rod 77 is connected to the end of the conveyor roller 5 through the first transmission assembly. The driven rod 78 is connected to the connecting rod 73 through the second transmission assembly. A pushing assembly is provided at the bottom of the moving frame 7.
[0033] For details regarding the above embodiments, please refer to [link / reference]. Figure 1 , Figure 4 and Figure 8The first transmission assembly includes a drive rod 9, a first mounting plate 11, and a second mounting plate 12. A third bevel gear 93 is fixed to the end of the drive rod 9, and a first bevel gear 51 is fixed to the end of a set of conveying rollers 5, with the first bevel gear 51 meshing with the third bevel gear 93. A limit rod 91 is fixed to one end of the drive rod 9, and a rotating rod 92 is fixed to the end of the limit rod 91. A fourth bevel gear 13 is sleeved on the outer wall of the limit rod 91. The first mounting plate 11 and the second mounting plate 12 are fixed to one side of the mounting frame 1. A second bevel gear 771 is fixed to the end of the transmission rod 77, and the second bevel gear 771 meshes with the fourth bevel gear 13. The first transmission assembly is configured to... The transmission assembly can drive the first bevel gear 51 to rotate when the conveyor roller 5 rotates. When the first bevel gear 51 rotates, it will drive the third bevel gear 93 meshing with it to rotate. When the third bevel gear 93 rotates, it will drive the drive rod 9 to rotate. When the drive rod 9 rotates, it will drive the limit rod 91 to rotate. When the limit rod 91 rotates, it will drive the fourth bevel gear 13 sleeved on its outer wall to rotate. When the fourth bevel gear 13 rotates, it will drive the second bevel gear 771 meshing with it to rotate. When the second bevel gear 771 rotates, it will drive the transmission rod 77 to rotate. The first mounting plate 11 can limit the drive rod 9, and the second mounting plate 12 can limit the rotating rod 92, so that the rotating rod 92 can only rotate inward.
[0034] For details regarding the above embodiments, please refer to [link / reference]. Figure 1 and Figure 4 A side frame 8 is fixed on one side of the movable frame 7, and the side frame 8 is movably connected to the transmission rod 77. A through hole 81 is provided inside the side frame 8, and the diameter of the inner wall of the through hole 81 is larger than that of the limiting rod 91. The side frame 8 can support the end of the transmission rod 77 to avoid the problem of the end of the transmission rod 77 shaking. The through hole 81 can prevent the limiting rod 91 from contacting the side frame 8.
[0035] For details regarding the above embodiments, please refer to [link / reference]. Figure 1 and Figure 3 Multiple sets of support plates 20 are fixed on one side of the mounting frame 1, and a movable rod 10 is installed inside the support plate 20. Multiple sets of rubber rollers 74 are sleeved on the outer wall of the movable rod 10, and a second synchronous wheel 15 is fixed to the end of both the movable rod 10 and the conveying roller 5. A second synchronous belt 16 is sleeved on the outer wall of the two sets of second synchronous wheels 15. The movable rod 10 can be installed by the support plate 20 to avoid the problem of the movable rod 10 being suspended. When the conveying roller 5 rotates, the movable rod 10 will be driven to rotate by the second synchronous belt 16. Therefore, the rubber rollers 74 sleeved on the outer wall of the movable rod 10 will also rotate. The rotation of the rubber rollers 74 can make the glass better transferred to the inner wall of the oven and avoid the glass from contacting the conveying roller 5 and slipping.
[0036] For details regarding the above embodiments, please refer to [link / reference]. Figure 2 , Figure 4 , Figure 5 and Figure 7 The driving assembly includes a rack 63, a locking block 712, a lead screw 711, and a 17. The bottom of the movable frame 7 is fixed with the locking block 712, and the lead screw 711 is movably mounted inside the locking block 712. A gear 714 is fixed to the outer wall of the lead screw 711, and a movable block 17 is sleeved on the outer wall of the lead screw 711. A locking plate 18 is fixed to the end of the movable block 17, and a groove 19 is formed on the top of the locking plate 18. The top of the fixed rod 6 is fixed with the rack 63, and the rack 63 meshes with the gear 714. When the movable frame 7 moves upward, it drives the locking block 712 at its bottom to move upward. When the locking block 712 moves upward, it drives the lead screw upward, and the gear 714 sleeved on the outer wall of the lead screw 711 also moves upward. At this time, the gear... 714 engages with its meshing rack 63, thereby driving the gear 714 to rotate. The rotation of the gear 714 drives the lead screw 711 to rotate. According to the lead screw principle, the rotation of the lead screw 711 drives the moving block 17 to move. The movement of the moving block 17 drives the clamping plate 18 to move. The bearing 783 located inside the clamping plate 18 moves with the clamping plate 18. When the bearing 783 moves, it drives the collar 782 to move. The collar 782 slides on the outer wall of the inner rod 781. The outer ring of the bearing 783 is located inside the groove 19. The inner ring of the bearing 783 is fixed to the collar 782. The bearing can reduce the friction between the collar 782 and the clamping plate 18. The clamping plate 18 can drive the collar 782 to move.
[0037] For details regarding the above embodiments, please refer to [link / reference]. Figure 3 and Figure 4 The movable frame 7 has multiple sets of through holes 72 inside. A guide post 713 is fixed to the inner wall of one set of through holes 72. The movable block 17 is slidably connected to the guide post 713. The weight of the movable frame 7 can be reduced by the through holes 72. The guide post 713 can limit the movable block 17 so that the movable block 17 can only slide on its outer wall.
[0038] For details regarding the above embodiments, please refer to [link / reference]. Figure 5 and Figure 7 The top of the fixed rod 6 is fixed with a diagonal rod 64, and the end of the diagonal rod 64 is fixed to the toothed rod 63. The diagonal rod 64 can support the toothed rod 63 and prevent the end of the toothed rod 63 from easily deforming.
[0039] For details regarding the above embodiments, please refer to [link / reference]. Figures 4-6The second transmission assembly includes a first synchronous pulley 75 and a first synchronous belt 76. A locking rod 79 is movably installed on one side of the vertical rod 71, and the ends of the locking rod 79, the connecting rod 73, and the driven rod 78 are all equipped with the first synchronous pulley 75. The outer wall of the first synchronous pulley 75 is fitted with the first synchronous belt 76. The second transmission assembly enables the driven rod 78 to rotate and also drive the connecting rod 73 to rotate. The rotation of the connecting rod 73 will drive the rubber roller 74 to rotate, thereby achieving the purpose of conveying the glass. The first synchronous belt 76 and the second synchronous belt 76 are both in a taut state.
[0040] For details regarding the above embodiments, please refer to [link / reference]. Figure 4 Multiple sets of rollers 82 are installed on the top of the side frame 8, and the rollers 82 are in contact with the bottom of the fourth bevel gear 13. The rollers 82 can support the bottom of the fourth bevel gear 13, prevent the fourth bevel gear 13 from contacting the side frame 8, and reduce the friction between the fourth bevel gear 13 and the side frame 8.
[0041] For details regarding the above embodiments, please refer to [link / reference]. Figure 4 and Figure 5 Connecting blocks 61 are fixed on both sides of the fixed rod 6, and a guide rod 710 is provided through the inner wall of the connecting block 61. The guide rod 710 is fixedly connected to the bottom of the movable frame 7. The guide rod 710 can cooperate with the connecting block 61 to achieve the purpose of limiting the movable frame 7, so that the movable frame 7 can move up and down and avoid the problem of the movable frame 7 tilting.
[0042] In practical operation, the present invention works as follows: During operation, the conveyor transports the glass. The glass leaves the inside of the conveyor and falls above the conveying moving component 2. Then, the electromagnetic slide rail 3 drives the conveying moving component 2 to move. The conveying moving component 2 moves to one end of the electromagnetic slide rail. Then, the hydraulic rod at the bottom of the conveying moving component 2 works and drives the conveying moving component 2 to move downward. The glass also falls as the conveying moving component 2 descends until it falls above the conveying roller 5. Then, the drive motor 4 works and drives multiple sets of conveying rollers 5 to rotate simultaneously through the transmission structure. The conveying rollers 5 transport the glass. Then, the conveying moving component 2 moves upward to reset. The electromagnetic slide rail 3 drives the conveying moving component 2 to reset. When the glass is transported to the entrance of the oven, the drive motor 4 stops working. Then, the telescopic rod 62 works. When the telescopic rod 62 is working, it drives the movable frame 7 to move upward. When the movable frame 7 moves upward, it drives the vertical rod 71 to move upward. When the vertical rod 71 moves upward, it drives the connecting rod 73 connected to it to move upward. The rubber roller 74 sleeved on the outer wall of the connecting rod 73 also moves upward. The rubber roller 74 contacts the glass, thereby lifting the glass so that the bottom of the glass no longer contacts the conveyor roller 5. When the movable frame 7 moves upward, the side frame 8 located on one side of it also moves upward. The upward movement of the side frame 8 drives the fourth bevel gear 13 sleeved on the outer wall of the limit rod 91 to move upward. When the movable frame 7 moves upward, it drives the locking block 712 at its bottom to move upward. When block 712 moves upward, it will drive the lead screw upward. The gear 714 sleeved on the outer wall of lead screw 711 will also move upward. At this time, gear 714 engages with rack 63, which can drive gear 714 to rotate. The rotation of gear 714 will drive lead screw 711 to rotate. According to the lead screw principle, the rotation of lead screw 711 will drive moving block 17 to move. The movement of moving block 17 will drive clamping plate 18 to move. The bearing 783 located inside clamping plate 18 will move with clamping plate 18. When bearing 783 moves, it will drive collar 782 to move. Collar 782 slides on the outer wall of inner rod 781. At this time, collar 782 moves away from rubber pad 773. When the conveyor roller 5 rotates, it drives the first bevel gear 51 and the second synchronous pulley 15 at both ends to rotate. When the first bevel gear 51 rotates, it drives the third bevel gear 93 meshing with it to rotate. When the third bevel gear 93 rotates, it drives the drive rod 9 to rotate. When the drive rod 9 rotates, it drives the limit rod 91 to rotate. When the limit rod 91 rotates, it drives the fourth bevel gear 13 sleeved on its outer wall to rotate. When the fourth bevel gear 13 rotates, it drives the second bevel gear 771 meshing with it to rotate. When the second bevel gear 771 rotates, it drives the transmission rod 77 to rotate. When the second synchronous pulley 15 rotates, it drives another set of second synchronous pulleys 15 to rotate through the second synchronous belt 16. When the second synchronous pulley 15 rotates, it drives the movable rod 10 to rotate. When the movable rod 10 rotates, the rubber roller 74 located on its outer wall will rotate. The conveyor transports the next piece of glass, which falls above the conveyor moving assembly 2. Then, the electromagnetic slide rail 3 drives the conveyor moving assembly 2 to transport the glass to the other end of the conveyor roller 5, where it falls above the roller 5. The drive motor 4 continues to drive the conveyor roller 5 to rotate, and the roller 5 continues to transport the glass. When the ends of both sets of glass are on the same horizontal line, the drive motor stops. At this time, the telescopic rod 62 drives the moving frame 7 to move downwards. When the moving frame 7 moves downwards, it drives the gear 714 to rotate in the opposite direction. According to the screw principle, the rotation of the gear 714 drives the moving block 17 to move. The movement of the moving block 17 then drives... When the clamping plate 18 moves, it will drive the bearing 783 to move, which will cause the collar 782 fitted inside the bearing 783 to move. The collar 782 slides on the outer wall of the inner rod 781. When the collar 782 gradually approaches the rubber pad 773, the protrusion 785 on one side of the collar 782 will squeeze the rubber pad 773. At this time, the glass falls above the conveying roller 5, and the bottom of the glass contacts the rubber roller 74, waiting for the glass coating inside the oven to dry. When the coating is dried, the conveying roller inside the oven and the conveying roller 5 outside the oven work at the same time. The conveying roller inside the oven will transport the glass after the coating is dried out and send the glass located at the entrance into the oven. When the conveyor roller 5 rotates, it will drive the rubber roller 74 located at the tail end of the mounting frame 1 to rotate. The rotation of the rubber roller 74 can better convey the glass.
[0043] Although embodiments of the present invention have been shown and described, these specific embodiments are merely explanations of the invention and are not intended to limit it. The specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions, and variations to the embodiments as needed without departing from the principles and spirit of the invention, but such modifications, substitutions, and variations are protected by patent law as long as they are within the scope of the claims of the present invention.
Claims
1. A conveying structure for glass production and processing, comprising a mounting frame (1), characterized in that: The inside of the mounting frame (1) is provided with an electromagnetic slide rail (3), and the upper side of the electromagnetic slide rail (3) is provided with a conveying moving assembly (2), the top of the mounting frame (1) is provided with a plurality of conveying rollers (5), the inside of the mounting frame (1) is fixedly provided with a fixed rod (6), and the top of the fixed rod (6) is provided with a telescopic rod (62), the output end of the telescopic rod (62) is provided with a moving frame (7), and the two sides of the moving frame (7) are fixedly provided with vertical rods (71), the inside of the vertical rod (71) is movably provided with a connecting rod (73), and the outer wall of the connecting rod (73) is sleeved with a plurality of rubber rollers (74), the top of the moving frame (7) is movably provided with a transmission rod (77) and a driven rod (78), and the end of the transmission rod (77) is fixedly provided with a fixed disc (772), and the side of the fixed disc (772) is fixedly provided with a rubber pad (773), the end of the driven rod (78) is fixedly provided with an internal rod (781), and the outer wall of the internal rod (781) is sleeved with a sleeve ring (782), the outer wall of the sleeve ring (782) is sleeved with a bearing (783), and the side of the sleeve ring (782) is fixedly provided with a plurality of protrusions (785), and the bottom of the mounting frame (1) is provided with a driving motor (4), the driving motor (4) drives the conveying roller (5) to rotate, and a transmission structure is arranged between each group of conveying rollers (5), the transmission rod (77) is connected with the end of the conveying roller (5) through a first transmission assembly, the driven rod (78) is connected with the connecting rod (73) through a second transmission assembly, and the bottom of the moving frame (7) is provided with a pushing assembly.
2. The conveying structure for glass production and processing according to claim 1, characterized in that: The first transmission assembly comprises a driving rod (9), a first mounting plate (11) and a second mounting plate (12), the end of the driving rod (9) is fixedly provided with a third bevel gear (93), the end of a group of conveying rollers (5) is fixedly provided with a first bevel gear (51), the first bevel gear (51) is connected with the third bevel gear (93) in meshing connection, one end of the driving rod (9) is fixedly provided with a limiting rod (91), the end of the limiting rod (91) is fixedly provided with a rotating rod (92), and the outer wall of the limiting rod (91) is sleeved with a fourth bevel gear (13), one side of the mounting frame (1) is fixedly provided with the first mounting plate (11) and the second mounting plate (12), the end of the transmission rod (77) is fixedly provided with a second bevel gear (771), and the second bevel gear (771) is connected with the fourth bevel gear (13) in meshing connection.
3. The conveying structure for glass production and processing according to claim 2, characterized in that: One side of the moving frame (7) is fixedly provided with a side frame (8), and the side frame (8) is movably connected with the transmission rod (77), the inside of the side frame (8) is provided with a through hole (81), and the diameter of the inner wall of the through hole (81) is greater than that of the limiting rod (91).
4. The conveying structure for glass production and processing according to claim 1, characterized in that: One side of the mounting frame (1) is fixedly provided with a plurality of supporting plates (20), and the inside of the supporting plate (20) is provided with a movable rod (10), the outer wall of the movable rod (10) is sleeved with a plurality of rubber rollers (74), and the end of the movable rod (10) and the conveying roller (5) is fixedly provided with a second synchronous wheel (15), the outer wall of the two groups of second synchronous wheels (15) is sleeved with a second synchronous belt (16).
5. The conveying structure for glass production and processing according to claim 1, characterized in that: The pushing assembly comprises a rack (63), a clamping block (712), a lead screw (711) and 17, the bottom of the moving frame (7) is fixed with the clamping block (712), the inside of the clamping block (712) is movably provided with the lead screw (711), the outer wall of the lead screw (711) is fixed with a gear (714), the outer wall of the lead screw (711) is sleeved with a moving block (17), the end of the moving block (17) is fixed with a clamping plate (18), the top of the clamping plate (18) is provided with a groove (19), the top of the fixing rod (6) is fixed with the rack (63), and the rack (63) is in meshing connection with the gear (714).
6. The delivery structure for glass processing according to claim 5, wherein: The inside of the moving frame (7) is provided with a plurality of groups of through holes (72), the inner wall of one group of the through holes (72) is fixed with a guide column (713), and the moving block (17) is in sliding connection with the guide column (713).
7. The delivery structure for glass processing according to claim 5, wherein: The top of the fixing rod (6) is fixed with an inclined rod (64), and the end of the inclined rod (64) is fixed with the rack (63).
8. The delivery structure for glass manufacturing processes according to claim 1, wherein: The second transmission assembly comprises a first synchronous wheel (75) and a first synchronous belt (76), one side of the vertical rod (71) is movably provided with a clamping rod (79), the end of the clamping rod (79), the connecting rod (73) and the driven rod (78) are all provided with the first synchronous wheel (75), and the outer wall of the first synchronous wheel (75) is sleeved with the first synchronous belt (76).
9. The delivery structure for glass processing according to claim 3, wherein: The top of the side frame (8) is provided with a plurality of groups of rollers (82), and the rollers (82) are in contact with the bottom of the fourth bevel gear (13).
10. The delivery structure for glass manufacturing processes according to claim 3, wherein: The two sides of the fixing rod (6) are fixed with connecting blocks (61), the inner wall of the connecting block (61) is provided with a guide rod (710) penetrating through, and the guide rod (710) is fixedly connected with the bottom of the moving frame (7).