A stabilizing device for a glass gluing machine
Patent Information
- Application Number
- CN202522061539.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-24
- Publication Date
- 2026-09-15
- Estimated Expiration
- 2035-09-24
AI Technical Summary
[0004]由于传送平台需要频繁传送质量较大的玻璃,传送平台两端的动力轴承需要承担大部分的重量,使得动力轴承长期使用后容易受到较大的损坏,可能导致断轴的情况发生,因此会对生产过程造成影响,导致生产效率降低
1.当玻璃从一个传送带传送到另一个传送带上时,通过动力组件将加固组件转动至和传送带同一水平面上,使得加固组件能够对玻璃起到支撑作用,减小玻璃对动力轴承施加的重量,从而减轻对动力轴承的负担,减少动力轴承由于频繁传送质量较大的玻璃而受损的可能性,进一步延长动力轴承的使用寿命,减少设备的维修成本。
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Figure CN224749408U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of glass glue applicators, and in particular to a stabilizing device for glass glue applicators. Background Technology
[0002] A glass glue applicator is an automated device used for applying glue, sealing, and filling glass products. It is widely used in the production process of hot melt adhesive insulated glass. After the hot melt adhesive is heated and melted, it is evenly applied to the outer surface of the glass through a glue applicator to achieve the insulated seal of the glass. During the glue applicator process, the glass needs to be conveyed by a conveying device.
[0003] In related technologies, a glass glue applicator includes a glue applicator and a conveyor platform. The conveyor platform is used to place the glass vertically, and the glue applicator is used to apply glue to the outer surface of the glass. The conveyor platform includes multiple sets of power bearings, and the power bearings are equipped with conveyor belts for placing the glass.
[0004] Because the conveyor platform needs to frequently transport large-weight glass, the power bearings at both ends of the conveyor platform need to bear most of the weight. This makes the power bearings susceptible to damage after long-term use, which may lead to shaft breakage. Therefore, it will affect the production process and reduce production efficiency. Utility Model Content
[0005] To improve the stability of the power bearing in a glass glue applicator, this application provides a stabilizing device for the glass glue applicator.
[0006] This application provides a stabilizing device for a glass glue applicator, which adopts the following technical solution: A stabilizing device for a glass glue applicator includes a glue applicator and a conveyor platform. The conveyor platform is used for vertically placing the glass. The glue applicator is used for applying glue to the outer surface of the glass. The conveyor platform includes multiple sets of drive bearings, and a conveyor belt for placing the glass is mounted on the drive bearings. A reinforcing component is rotatably connected to the conveyor platform. A power component is provided on the conveyor platform, and the power component drives the reinforcing component to rotate. The reinforcing component and the drive bearings are on the same axis of rotation. When the glass needs to be conveyed, the reinforcing component rotates to the same horizontal plane as the conveyor belt.
[0007] By adopting the above technical solution, when glass is conveyed from one conveyor belt to another, the power component rotates the reinforcement component to the same horizontal plane as the conveyor belt, so that the reinforcement component can support the glass, reduce the weight of the glass on the power bearing, thereby reducing the burden on the power bearing, reducing the possibility of damage to the power bearing due to frequent conveying of heavy glass, further extending the service life of the power bearing, and reducing the maintenance cost of the equipment.
[0008] Optionally, the reinforcement component includes a rotating shaft and a fixing plate. Two fixing plates are provided, each located at one end of the rotating shaft. The two ends of the rotating shaft are rotatably connected to the corresponding fixing plates, and the fixing plates are rotatably connected to the conveying platform.
[0009] By adopting the above technical solution, the fixed plate is rotatably connected to the conveying platform, and the two ends of the rotating shaft are rotatably connected to the fixed plate respectively. The fixed plate can rotate the rotating shaft onto the glass's moving path to achieve the supporting role of the rotating shaft in the glass conveying process, thereby increasing the supporting force in the glass conveying process and reducing the possibility of damage to the power bearing.
[0010] Optionally, external threads are provided on the end faces of both opposite sides of the rotating shaft, a mounting shell is provided on the rotating shaft, a mounting groove for inserting the rotating shaft is provided on the mounting shell, an internal thread is provided on the inner wall of the mounting groove, and a fixing hole for inserting the mounting shell is provided on the fixing plate.
[0011] By adopting the above technical solution, the staff first places the rotating shaft between two fixed plates, then passes the mounting shell through the mounting hole and threaded the mounting shell onto the rotating shaft, so as to fix the rotating shaft to the fixed plate. This allows the staff to replace the damaged rotating shaft, providing convenience for the staff to replace the rotating shaft.
[0012] Optionally, a protruding ring is provided on the outer surface of the mounting shell, the protruding ring being located on the side of the fixing plate away from the rotating shaft, the protruding ring being used to restrict the mounting shell from detaching from the two fixing plates.
[0013] By adopting the above technical solution, the convex ring is located on the side of the fixing plate away from the rotating shaft, which allows the convex ring to restrict the mounting shell from moving excessively towards the other mounting shell. Since both ends of the rotating shaft are threaded with mounting shells, the convex ring can fix the rotating shaft between the two fixing plates, reducing the possibility of the mounting shell coming off the fixing hole.
[0014] Optionally, an elastic ring is provided on the wall of the fixing hole, and the elastic ring is used to buffer the impact between the mounting shell and the fixing plate.
[0015] By adopting the above technical solution, an elastic ring is provided on the wall of the fixing hole, which can buffer the impact between the mounting shell and the fixing plate, reduce the possibility of damage to the mounting shell, thereby extending the service life of the mounting shell and enhancing the overall stability of the stabilizing device.
[0016] Optionally, the mounting housing has a sliding groove, a sliding rod is slidably connected in the sliding groove, the sliding rod has a protrusion, the rotating shaft has a groove for the protrusion to be inserted, and the groove wall of the sliding groove has a through hole for the protrusion to slide; when the mounting housing is threaded onto the rotating shaft, the through hole is aligned with the groove, and the sliding rod can drive the protrusion to be inserted into the groove.
[0017] By adopting the above technical solution, when the mounting shell is threaded onto the rotating shaft, the sliding rod can be moved closer to the axis of the mounting shell by aligning the through hole with the groove. This allows the sliding rod to drive the protrusion into the groove, thereby reinforcing the mounting shell and the rotating shaft and reducing the possibility of the threads loosening due to the rotation of the rotating shaft.
[0018] Optionally, a guide slope is provided on the surface of the protrusion away from the sliding rod. The distance from the guide slope to the bottom wall of the groove gradually increases along the direction of the mounting shell near the rotating shaft. The guide slope is used to guide the protrusion back into the through hole.
[0019] By adopting the above technical solution, the distance from the guide slope to the bottom wall of the groove gradually increases along the direction of the mounting shell towards the rotating shaft. This allows the rotating shaft to drive the protrusion back into the through hole during the insertion of the rotating shaft into the mounting shell, preventing the protrusion from interfering with the threaded connection between the rotating shaft and the mounting shell. The protrusion can automatically retract along the inclined direction of the guide slope, providing convenience for the installation process.
[0020] Optionally, a locking block is slidably connected to the mounting shell, and a slot is provided on the sliding rod for the locking block to be inserted; when the protrusion is inserted into the groove, the locking block can be inserted into the slot.
[0021] By adopting the above technical solution, when the protrusion is inserted into the groove, the operator slides the locking block into the slot, thereby fixing the sliding rod and the mounting shell, reducing the possibility of the sliding rod sliding due to the rotation of the shaft and the mounting shell, so that the protrusion is more stably located in the groove.
[0022] In summary, this application includes at least one of the following beneficial technical effects: 1. When glass is transferred from one conveyor belt to another, the power assembly rotates the reinforcement assembly to the same horizontal plane as the conveyor belt. This allows the reinforcement assembly to support the glass, reducing the weight exerted by the glass on the power bearing. This reduces the burden on the power bearing, decreases the likelihood of damage due to frequent transfer of heavy glass, further extends the service life of the power bearing, and reduces equipment maintenance costs.
[0023] 2. The rotating shaft is rotatably connected to the conveying platform via a fixed plate, and both ends of the rotating shaft are rotatably connected to the fixed plate. The fixed plate can rotate the rotating shaft onto the glass's moving path to achieve the supporting role of the rotating shaft in the glass conveying process, thereby increasing the supporting force during the glass conveying process and reducing the possibility of damage to the power bearing. Attached Figure Description
[0024] Figure 1 This is a structural schematic diagram of Example 1; Figure 2 This is a structural schematic diagram of Example 2; Figure 3 This is a partial structural diagram highlighting the reinforced component in Embodiment 2; Figure 4 It is Example 2 Figure 3 A partial sectional view along line AA; Figure 5 This is a partial structural diagram highlighting the elastic ring in Example 2; Figure 6 yes Figure 4 Enlarged schematic diagram of part B; Figure 7 This is a partial structural diagram highlighting the card block and card slot in Embodiment 2.
[0025] Reference numerals: 1. Glue application device; 2. Conveying platform; 21. Power bearing; 22. Conveyor belt; 23. Power assembly; 3. Reinforcing assembly; 31. Rotating shaft; 311. Groove; 32. Fixing plate; 321. Fixing hole; 322. Elastic ring; 4. Mounting shell; 41. Mounting groove; 42. Protruding ring; 43. Sliding groove; 431. Through hole; 44. Sliding rod; 441. Protrusion; 442. Guide slope; 443. Slot; 45. Locking block. Detailed Implementation
[0026] The following is in conjunction with the appendix Figures 1-7 This application will be described in further detail.
[0027] Example 1 This embodiment discloses a stabilizing device for a glass sealant applicator. (Refer to...) Figure 1 A stabilizing device for a glass glue applicator includes a glue applicator 1 and a conveying platform 2. The conveying platform 2 is used for vertically placing and conveying the glass, and the glue applicator 1 is used for applying glue to the outer surface of the glass.
[0028] Reference Figure 1 The conveyor platform 2 includes multiple sets of power bearings 21, with two bearings in each set. Each set of power bearings 21 is fitted with a conveyor belt 22 for transporting glass. The glass moves through the multiple sets of conveyor belts 22 so that the adhesive applicator 1 can apply adhesive to the outer edge of the glass.
[0029] Reference Figure 1 A reinforcing component 3 is rotatably connected to the end face of the power bearing 21 near another set of power bearings 21. A power component 23, which is a cylinder, is provided on the conveyor platform 2. The power component 23 drives the reinforcing component 3 to rotate. The reinforcing component 3 and the power bearing 21 share the same axis of rotation. When glass needs to be transferred from one conveyor belt 22 to another, the power component 23 drives the reinforcing component 3 to rotate to the same horizontal plane as the conveyor belt 22.
[0030] Reference Figure 1 The reinforcement component 3 includes a rotating shaft 31 and a fixing plate 32. There are two fixing plates 32, which are located on opposite sides of the power bearing 21 and are rotatably connected to the power bearing 21. There are two rotating shafts 31, which are rotatably connected between the two fixing plates 32.
[0031] The implementation principle of Example 1 is as follows: When glass needs to be transferred from one conveyor belt 22 to another, the power unit will drive the reinforcement component 3 to rotate to the same horizontal plane as the conveyor belt 22. The glass is supported by the rotating shaft 31 and the power bearing 21 together, reducing the weight of the glass that the power bearing 21 needs to bear, thereby reducing the possibility of damage to the power bearing 21.
[0032] Example 2 Reference Figure 2 and Figure 3 The difference between this embodiment and embodiment 1 is that external threads are provided on the outer surfaces of both ends of the rotating shaft 31, and both ends of the rotating shaft 31 can be detachably connected to the mounting shell 4.
[0033] Reference Figure 3 and Figure 4 The mounting shell 4 has a mounting groove 41 on its surface near the rotating shaft 31 for the rotating shaft 31 to be inserted into. The inner wall of the mounting groove 41 has an internal thread that matches the external thread. The fixing plate 32 has two fixing holes 321 on its surface away from the other fixing plate 32 for the mounting shell 4 to be inserted into. The two fixing holes 321 are distributed along the length of the fixing plate 32.
[0034] Reference Figure 3A raised ring 42 is fixedly connected to the outer surface of the mounting shell 4. The inner diameter of the raised ring 42 is larger than the diameter of the fixing hole 321. The raised ring 42 is arranged circumferentially around the mounting shell 4, and is located on the side of the fixing plate 32 away from the other fixing plate 32. The operator inserts the rotating shaft 31 between the two fixing plates 32, then passes the mounting shell 4 through the fixing hole 321, and then threads the mounting shell 4 and the rotating shaft 31 together until the mounting shell 4 is installed on both ends of the rotating shaft 31. At this time, the raised ring 42 abuts against the fixing plate 32. By having the two raised rings 42 located on the side of the corresponding fixing plate 32 away from the other fixing plate 32, the raised rings 42 can restrict the rotating shaft 31 between the two fixing plates 32, reducing the possibility of the mounting shell 4 detaching from the mounting shell 4.
[0035] Reference Figure 5 An elastic ring 322 is fixedly connected to the wall of the fixing hole 321. The elastic ring 322 can buffer the impact between the mounting shell 4 and the mounting plate, thereby reducing the possibility of damage to the mounting shell 4 due to long-term rotation in the mounting hole.
[0036] Reference Figure 4 and Figure 6 A sliding groove 43 is provided on the end face of the mounting shell 4 away from the rotating shaft 31, and a sliding rod 44 is slidably connected in the sliding groove 43. A protrusion 441 is fixedly connected to the end face of the sliding rod 44 near the rotating shaft 31 and near the axis of the mounting shell 4. A groove 311 for the protrusion 441 to be inserted is provided on the outer surface of the part of the rotating shaft 31 that is inserted into the mounting groove 41. A through hole 431 for the protrusion 441 to slide is provided on the groove wall of the sliding groove 43 near the rotating shaft 31. When the mounting shell 4 is threaded onto the rotating shaft 31, the through hole 431 and the groove 311 are aligned. The operator can slide the sliding rod 44 in the direction close to the axis of the mounting shell 4, so that the protrusion 441 is inserted into the groove 311 through the through hole 431, thereby fixing the mounting shell 4 and the rotating shaft 31.
[0037] Reference Figure 4 and Figure 6 A guide slope 442 is formed on the surface of the protrusion 441 away from the sliding rod 44. The distance from the guide slope 442 to the bottom wall of the groove 311 gradually increases along the direction of the mounting shell 4 towards the rotating shaft 31. When the protrusion 441 abuts against the outer surface of the rotating shaft 31, the protrusion 441 can retract into the through hole 431 along the inclined direction of the guide slope 442, preventing the protrusion 441 from interfering with the threaded connection between the rotating shaft 31 and the mounting shell 4.
[0038] Reference Figure 6 and Figure 7A locking block 45 is slidably connected to the surface of the mounting housing 4 away from the rotating shaft 31. A slot 443 for the locking block 45 to be inserted is provided on the outer surface of the sliding rod 44 near the locking block 45. When the protrusion 441 is inserted into the groove 311, the locking block 45 can be inserted into the slot 443 to fix the sliding rod 44 and the sliding groove 43, reducing the possibility of the protrusion 441 dislodging from the groove 311.
[0039] The implementation principle of Example 2 is as follows: The operator places the rotating shaft 31 between two fixing plates 32 with one hand, then inserts the mounting shell 4 into the mounting hole to align it with the rotating shaft 31, and threads the mounting shell 4 onto the rotating shaft 31. Then, the operation is repeated to thread the other mounting shell 4 onto the other end face of the rotating shaft 31. At this time, the protrusions 441 on the two mounting shells 4 respectively abut against the corresponding fixing plates 32 to prevent the mounting shells 4 from detaching from the corresponding mounting holes. The operator then slides the sliding rod 44 towards the axis of the mounting shell 4, so that the protrusions 441 are inserted into the grooves 311, and then inserts the locking block 45 into the locking slot 443, thereby completing the installation of the rotating shaft 31.
[0040] Unless otherwise defined, the technical or scientific terms used in this application shall have the ordinary meaning understood by one of ordinary skill in the art to which this application pertains. The terms "first," "second," "third," and similar terms used in this application specification and claims do not indicate any order, quantity, or importance, but are merely used to distinguish different components. The terms "an" or "a" and similar terms do not indicate a quantity limitation, but rather indicate the presence of at least one. The terms "comprising" or "including" and similar terms mean that the elements or objects preceding "comprising" or "including" encompass the elements or objects listed following "comprising" or "including" and their equivalents, and do not exclude other elements or objects. "Above," "below," "left," "right," etc., are used only to indicate relative positional relationships; when the absolute position of the described object changes, the relative positional relationship may also change accordingly.
[0041] The above description is only a preferred embodiment of this application and is not intended to limit this application. Any modifications, equivalent substitutions, improvements, etc., made within the design concept of this application should be included within the protection scope of this application.
Claims
1. A stabilizing device for a glass glue applicator, comprising a glue applicator (1) and a conveyor platform (2), wherein the conveyor platform (2) is used for vertically placing the glass, the glue applicator (1) is used for applying glue to the outer surface of the glass, the conveyor platform (2) comprises multiple sets of power bearings (21), and the power bearings (21) are provided with a conveyor belt (22) for placing the glass, characterized in that: A reinforcing component (3) is rotatably connected to the conveying platform (2). A power component (23) is provided on the conveying platform (2). The power component (23) drives the reinforcing component (3) to rotate. The reinforcing component (3) and the power bearing (21) are on the same axis of rotation. When the glass needs to be conveyed, the reinforcing component (3) rotates to the same horizontal plane as the conveyor belt (22).
2. The stabilizing device for a glass glue applicator according to claim 1, characterized in that: The reinforcement component (3) includes a rotating shaft (31) and a fixing plate (32). There are two fixing plates (32), which are located at both ends of the rotating shaft (31). The two ends of the rotating shaft (31) are rotatably connected to the corresponding fixing plates (32), and the fixing plates (32) are rotatably connected to the conveying platform (2).
3. The stabilizing device for a glass glue applicator according to claim 2, characterized in that: External threads are provided on the opposite end faces of the rotating shaft (31). The rotating shaft (31) is provided with a mounting shell (4). The mounting shell (4) is provided with a mounting groove (41) for the rotating shaft (31) to be inserted. Internal threads are provided on the inner wall of the mounting groove (41). The fixing plate (32) is provided with a fixing hole (321) for the mounting shell (4) to be inserted.
4. A stabilizing device for a glass glue applicator according to claim 3, characterized in that: The mounting shell (4) has a protruding ring (42) on its outer surface. The protruding ring (42) is located on the side of the fixing plate (32) away from the rotating shaft (31). The protruding ring (42) is used to restrict the mounting shell (4) from detaching from the two fixing plates (32).
5. A stabilizing device for a glass glue applicator according to claim 3, characterized in that: The wall of the fixing hole (321) is provided with an elastic ring (322), which is used to buffer the impact between the mounting shell (4) and the fixing plate (32).
6. A stabilizing device for a glass glue applicator according to claim 3, characterized in that: The mounting housing (4) has a sliding groove (43), and a sliding rod (44) is slidably connected in the sliding groove (43). The sliding rod (44) has a protrusion (441), and the rotating shaft (31) has a groove (311) for the protrusion (441) to be inserted. The groove wall of the sliding groove (43) has a through hole (431) for the protrusion (441) to slide. When the mounting housing (4) is threadedly connected to the rotating shaft (31), the through hole (431) is aligned with the groove (311), and the sliding rod (44) can drive the protrusion (441) to be inserted into the groove (311).
7. A stabilizing device for a glass glue applicator according to claim 6, characterized in that: A guide slope (442) is provided on the surface of the protrusion (441) away from the sliding rod (44). The distance from the guide slope (442) to the bottom wall of the groove (311) gradually increases along the direction of the mounting shell (4) near the rotating shaft (31). The guide slope (442) is used to guide the protrusion (441) back into the through hole (431).
8. A stabilizing device for a glass glue applicator according to claim 6, characterized in that: A locking block (45) is slidably connected to the mounting shell (4), and a slot (443) for inserting the locking block (45) is provided on the sliding rod (44); when the protrusion (441) is inserted into the groove (311), the locking block (45) can be inserted into the slot (443).