Position adjusting device of scale plate system
By using longitudinally and transversely arranged linear modules and an angle adjustment mechanism, the problem of the label tray system being unable to adjust the label tilt has been solved, enabling multi-directional and multi-angle adaptable labeling of cans and improving labeling quality.
Patent Information
- Application Number
- CN202423143008.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-19
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2034-12-19
AI Technical Summary
The existing labeling system cannot adjust the tilt of the label, resulting in poor labeling quality on sloping cans.
The system employs a longitudinally and transversely arranged linear module and an angle adjustment mechanism. Through the combination of adjustment mechanism A and adjustment mechanism B, the translation and tilt adjustment of the standard plate system can be achieved, making it adaptable to tanks with various design structures.
The labeling system enables multi-directional and multi-angle position adjustment, ensuring high-quality labeling results on different cans.
Smart Images

Figure CN223479593U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of labeling machines, and in particular to a labeling disc system position adjustment device. Background Technology
[0002] Mineral water, carbonated beverages, and fruit juices in the food and beverage industry, as well as pesticides, paints, and cleaning agents in the chemical industry, are all required to have labels affixed to their containers.
[0003] Current technology typically involves automated labeling of cans using labeling machines. These machines separate cans using a bottle-separating mechanism to prepare them for labeling. Sensors detect the can's passage and transmit signals to a labeling tray system. This system then dispenses the label at the appropriate time and affixes it to the designated labeling area on the can. Finally, the can passes through a labeling applicator, where a labeling belt rotates the can, rolling the label over it and completing the label application. Existing labeling tray systems usually have a position adjustment function, allowing them to be adapted for labeling various can types and enabling fine-tuning. However, some product cans have angled sides, requiring the label to be applied at an angle. The labeling tray system, by simply adjusting the position, cannot adjust the angle of the label end, affecting labeling quality and requiring improvement. Utility Model Content
[0004] To address the aforementioned problems, this utility model proposes a position adjustment device for a label system.
[0005] The technical solution of this utility model is: a label system position adjustment device, including a longitudinal linear module, a transverse linear module, an adjustment mechanism A, and an adjustment mechanism B. The adjustment mechanisms A and B are arranged in a stacked manner. The longitudinal linear module is set on the transverse slide of the transverse linear module, and the adjustment mechanism A is set on the longitudinal slide of the longitudinal linear module. The linear module drives the adjustment mechanism to move longitudinally or laterally. The adjustment mechanism B is set on the upper surface of the adjustment mechanism A, and the label system is set on the upper surface of the adjustment mechanism B. Both the adjustment mechanism A and the adjustment mechanism B are angle adjustment mechanisms, thus they can adjust the tilt angle of the label system above them. The angle adjustment direction of the adjustment mechanism A is consistent with the direction of the transverse linear module, and the angle adjustment direction of the adjustment mechanism B is consistent with the direction of the longitudinal linear module.
[0006] Preferably, the adjustment mechanism A includes a lower seat plate A and an upper seat plate A that are hinged to each other at one end. The two seats have the same overall size. A lower rotating seat A is provided at the middle of the other end of the lower seat plate A, and an upper rotating seat A is provided at the middle of the other end of the upper seat plate A. Both rotating seats are square column seats. A notch is provided at the end face of the upper seat plate A, and the square column seat is matched and connected in the notch. A threaded hole is provided in the middle of the upper rotating seat A, and a lower screw is connected in the threaded hole. The lower end of the lower screw is rotatably connected to the lower seat plate A, and a handwheel is connected to the upper end of the lower screw.
[0007] Preferably, the lower base plate is hinged to a locking plate at its end, the locking plate has an adjustment hole in its middle, and the upper base plate has a screw at its end, the screw being slidably connected in the adjustment hole.
[0008] Preferably, the adjusting mechanism B includes a lower seat plate B and an upper seat plate B that are hinged to each other at one end. The two seats have the same overall size. A lower rotating seat B is provided at the middle of the other end of the lower seat plate B, and an upper rotating seat B is provided at the middle of the other end of the upper seat plate B. Both rotating seats are square column seats. A notch is provided at the end face of the upper seat plate B, and the square column seat is matched and connected in the notch. A threaded hole is provided in the middle of the upper rotating seat B, and an upper screw is connected in the threaded hole. The lower end of the upper screw is rotatably connected to the lower seat plate B, and a handwheel is provided at the upper end of the screw.
[0009] Preferably, the lower seat plate B is hinged to a locking plate at its end, and the locking plate has an adjustment hole in the middle. The upper seat plate B is provided with a screw at its end, which is connected to a threaded blind hole at the end of the upper seat plate B. The screw is slidably connected in the adjustment hole, which is an oblong hole.
[0010] Preferably, the upper base plate B has at least three arc-shaped grooves evenly distributed in the middle. The base of the label system is connected to the arc-shaped grooves by bolts. The lower end of the base of the label system is provided with a flange, and the size of the flange matches the size of each arc-shaped groove.
[0011] Preferably, both the longitudinal linear module and the transverse linear module are guide rail lead screw linear modules, and a double guide rod linear module is used to ensure the stability of the position adjustment of the label system.
[0012] The beneficial technical effects of this utility model are:
[0013] This invention uses a longitudinally and transversely arranged linear module to adjust the upper labeling system. Simultaneously, by turning the screw of the adjustment mechanism on the linear module, the upper base plate can be tilted and raised, thereby changing the tilt of the labeling system. With two adjustment mechanisms arranged vertically and crosswise, the tilt of the labeling system can be adjusted in two directions, realizing multi-directional and multi-angle position adjustment of the labeling system. This makes it suitable for labeling operations on tanks with various design structures, ensuring labeling quality. Attached Figure Description
[0014] Figure 1This is a three-dimensional structural schematic diagram of the present invention;
[0015] Figure 2 This is a top view of the structure of this utility model;
[0016] Figure 3 yes Figure 2 A schematic diagram of the AA-direction cross-section structure;
[0017] Figure 4 yes Figure 2 Schematic diagram of the BB-direction cross-section structure;
[0018] Figure 5 This is a three-dimensional structural diagram of the present invention after the adjustment mechanism B is removed;
[0019] Figure 6 This is a three-dimensional structural diagram of the adjusting mechanism B of this utility model;
[0020] Figure 7 This is a three-dimensional structural diagram of the present invention after the labeling system is installed.
[0021] In the diagram, 11. Longitudinal linear module, 111. Lead screw, 12. Transverse linear module, 121. Transverse slide, 13. Adjustment mechanism A, 14. Adjustment mechanism B, 15. Marker system, 21. Lower seat plate A, 22. Upper seat plate A, 23. Lower rotary seat A, 24. Upper rotary seat A, 25. Lower screw, 31. Lower seat plate B, 32. Upper seat plate B, 33. Lower rotary seat B, 34. Upper rotary seat B, 35. Upper screw, 41. Locking plate, 42. Adjustment hole, 43. Screw, 44. Arc groove. Detailed Implementation
[0022] Example 1, see appendix Figure 1-2 7. A positioning adjustment device for a calibration plate system, comprising a longitudinal linear module 11, a transverse linear module 12, an adjustment mechanism A 13, and an adjustment mechanism B 14. The longitudinal linear module is mounted on a transverse slide 121 of the transverse linear module. The adjustment mechanism A 13 is mounted on a longitudinal slide of the longitudinal linear module 11. The adjustment mechanism B 14 is mounted on the upper surface of the adjustment mechanism A 13. The calibration plate system 15 is mounted on the upper surface of the adjustment mechanism B 14. Both the adjustment mechanism A and the adjustment mechanism B are angle adjustment mechanisms. The translation and tilt adjustment of the calibration plate system 15 are achieved through the combination of the linear module and the angle adjustment mechanism. The angle adjustment direction of the adjustment mechanism A 13 is consistent with the direction of the transverse linear module 12, and the angle adjustment direction of the adjustment mechanism B 14 is consistent with the direction of the longitudinal linear module 11.
[0023] The adjustment device uses a longitudinally and transversely arranged linear module to translate and adjust the upper labeling system 15. At the same time, the tilt of the labeling system 15 can be adjusted to one side by the adjustment mechanism A 13, and to the other side by the adjustment mechanism B 14. The tilt of the labeling system 15 can be adjusted in two directions by the two adjustment mechanisms arranged vertically and crosswise, so as to realize the multi-directional and multi-angle position adjustment of the labeling system 15, making it suitable for labeling operations on tanks with various design structures.
[0024] Both the longitudinal linear module 11 and the transverse linear module 12 are guide rail and lead screw linear modules. The guide rail and lead screw linear modules drive the slider to move linearly through the combination of guide rail and lead screw.
[0025] Example 2, see appendix Figure 2-6 This embodiment is basically the same as Embodiment 1, and the similarities will not be repeated. The difference is that the adjusting mechanism A13 includes a lower seat plate A21 and an upper seat plate A22 that are hinged to each other at one end. The upper seat plate A can tilt and flip upward with the hinge point as support. The other end of the lower seat plate A21 is provided with a lower rotating seat A23, and the other end of the upper seat plate A22 is provided with an upper rotating seat A24. Both the upper rotating seat A and the lower rotating seat A can rotate freely. The upper rotating seat A24 is provided with a threaded hole in the middle, and a lower screw 25 is connected in the threaded hole. The lower end of the lower screw is rotatably connected to the lower seat plate A21.
[0026] When the lower screw 25 is rotated, the lower rotating seat 23 provides rotational support for the lower end of the screw. The lower screw 25 drives the upper rotating seat 24 to rise or fall along the lower screw 25 via a thread. During the rising and falling process, the lower rotating seat 23 and the upper rotating seat 24 will rotate accordingly, so that the upper rotating seat 24, along with the upper seat plate 22, tilts and rises or falls, thereby changing the tilt angle of the label system 15.
[0027] A locking plate 41 is hinged to the end of the lower base plate 21, and an adjustment hole 42 is provided in the middle of the locking plate. A screw 43 is provided at the end of the upper base plate 22, and the screw is slidably connected in the adjustment hole 42. During the tilting and lifting of the upper base plate 22, the screw 43 drives the locking plate 41 through the adjustment hole 42. The locking plate 41 rotates and moves synchronously with the upper base plate 22. After adjustment, the screw 43 is tightened to lock the locking plate 41 between the upper base plate 22 and the lower base plate 21, and the lower screw 25 is used to fix the upper base plate 22 to ensure that it has sufficient support stability for the calibration plate system 15.
[0028] The adjusting mechanism B14 includes a lower seat plate B31 and an upper seat plate B32 that are hinged to each other at one end. The upper seat plate B32 has at least three arc-shaped grooves 44 evenly distributed in the middle. The base of the index plate system 15 is connected to the arc-shaped grooves 44 by bolts. The upper seat plate B32 can tilt and flip upward with the hinge point as support. The other end of the lower seat plate B31 is provided with a lower rotating seat B33, and the other end of the upper seat plate B32 is provided with an upper rotating seat B34. Both the upper rotating seat B and the lower rotating seat B can rotate freely. The upper rotating seat B34 is provided with a threaded hole in the middle. An upper screw 35 is connected in the threaded hole. The lower end of the upper screw is rotatably connected to the lower seat plate B31.
[0029] When the upper screw 35 is rotated, the lower rotating seat 33 provides rotational support for the lower end of the screw. The upper screw 35 drives the upper rotating seat 34 to rise or fall along the upper screw 35 via a thread. During the rising and falling process, the lower rotating seat 33 and the upper rotating seat 34 will rotate accordingly, so that the upper rotating seat 34, along with the upper seat plate 32, tilts and rises or falls, thereby changing the tilt angle of the label system 15.
[0030] A locking plate 41 is hinged to the end of the lower base plate 31, and an adjustment hole 42 is provided in the middle of the locking plate. A screw 43 is provided at the end of the upper base plate 32, and the screw is slidably connected in the adjustment hole. During the tilting and lifting of the upper base plate 22, the screw 43 drives the locking plate 41 through the adjustment hole 42. The locking plate rotates and moves synchronously with the upper base plate 22. After adjustment, the screw 43 is tightened to lock the locking plate 41 between the upper base plate 22 and the lower base plate 22, and the lower screw 25 is used to fix the upper base plate 22 to ensure that it has sufficient support stability for the calibration plate system 15.
Claims
1. A position adjustment device for a dial system, characterized in that: It includes a longitudinal linear module, a transverse linear module, adjustment mechanism A, and adjustment mechanism B. The longitudinal linear module is mounted on the transverse slide of the transverse linear module, adjustment mechanism A is mounted on the longitudinal slide of the longitudinal linear module, and adjustment mechanism B is mounted on the upper surface of adjustment mechanism A. A dial system is mounted on the upper surface of adjustment mechanism B. Both adjustment mechanism A and adjustment mechanism B are angle adjustment mechanisms. The angle adjustment direction of adjustment mechanism A is consistent with the direction of the transverse linear module, and the angle adjustment direction of adjustment mechanism B is consistent with the direction of the longitudinal linear module.
2. The position adjustment device for a calibration plate system according to claim 1, characterized in that: The adjustment mechanism A includes a lower seat plate A and an upper seat plate A that are hinged to each other at one end. A lower rotating seat plate A is provided at the middle of the other end of the lower seat plate A, and an upper rotating seat plate A is provided at the middle of the other end of the upper seat plate A. A threaded hole is provided in the middle of the upper rotating seat plate A, and a lower screw rod is connected in the threaded hole. The lower end of the lower screw rod is rotatably connected to the lower seat plate A.
3. The position adjustment device for a calibration plate system according to claim 2, characterized in that: The lower base plate is hinged to a locking plate at its end, and the locking plate has an adjustment hole in the middle. The upper base plate is provided with a screw at its end, and the screw is slidably connected in the adjustment hole.
4. The position adjustment device for a calibration plate system according to claim 1, characterized in that: The adjustment mechanism B includes a lower seat plate B and an upper seat plate B that are hinged to each other at one end. A lower rotating seat B is provided at the middle of the other end of the lower seat plate B, and an upper rotating seat B is provided at the middle of the other end of the upper seat plate B. A threaded hole is provided in the middle of the upper rotating seat B, and an upper screw is connected in the threaded hole. The lower end of the upper screw is rotatably connected to the lower seat plate B.
5. The position adjustment device for a calibration plate system according to claim 4, characterized in that: The lower seat plate B is hinged to a locking plate at its end, and the locking plate has an adjustment hole in the middle. The upper seat plate B is provided with a screw at its end, and the screw is slidably connected in the adjustment hole.
6. The position adjustment device for a calibration plate system according to claim 4, characterized in that: The upper seat plate B has at least three arc-shaped grooves evenly distributed in the middle, and the base of the label system is connected to the arc-shaped grooves by bolts.
7. The position adjustment device for a calibration plate system according to claim 1, characterized in that: Both the longitudinal linear module and the transverse linear module are guide rail lead screw linear modules.