Novel nameplate self-adaptive positioning device
The nameplate adaptive positioning device driven by the three-axis component controller solves the problems of low nameplate positioning accuracy and low efficiency, realizes efficient and accurate nameplate positioning, adapts to complex shape processing, and improves production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WENLING VOCATIONAL TECH SCHOOL
- Filing Date
- 2025-04-21
- Publication Date
- 2026-04-28
AI Technical Summary
Existing nameplate positioning technologies suffer from low positioning accuracy, low efficiency, and a lack of versatility and flexibility, making it difficult to meet the high-efficiency, accurate, and flexible production requirements of diverse nameplate needs.
The nameplate adaptive positioning device, driven by a three-axis component controller, achieves precise positioning and fixation of the nameplate through the linkage of X-axis, Y-axis and Z-axis units, combined with adjustable positioning components and cylinder top blocks, and is suitable for processing complex shapes.
It improves the accuracy and efficiency of nameplate positioning, reduces downtime, adapts to rapid changes in different workpiece sizes, and ensures the stability of the nameplate during processing.
Smart Images

Figure CN224168658U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of mechanical technology, and specifically relates to a novel nameplate adaptive positioning device. Background Technology
[0002] Nameplates are used to affix to products after they are launched on the market, providing users with information such as manufacturer trademark identification, brand differentiation, and product parameter markings. The positioning and printing of nameplates mainly rely on manual operation or traditional simple positioning fixtures.
[0003] In the traditional nameplate installation process, manual operation or simple positioning fixtures have significant limitations. Manual positioning is easily affected by factors such as the operator's skill level and visual errors, resulting in low positioning accuracy and low efficiency. While traditional positioning fixtures can achieve a certain degree of automation, they are usually only applicable to nameplates of specific sizes, lacking versatility and flexibility. Faced with increasingly diverse nameplate needs, existing technologies are unable to meet the requirements of efficient, accurate, and flexible production. Summary of the Invention
[0004] The purpose of this invention is to address the aforementioned problems in the existing technology by providing a novel and efficient nameplate adaptive positioning device.
[0005] The objective of this utility model can be achieved through the following technical solution: A novel nameplate adaptive positioning device includes a housing and a frame around the housing. The housing is characterized by having a three-axis assembly consisting of an X-axis unit, a Y-axis unit, and a Z-axis unit. A controller for controlling the three-axis assembly is located on the housing. A Y-axis plate is positioned between the frames on the Y-axis unit, and a support plate is mounted on the Y-axis plate. A driven wheel shaft is located at one end of the Y-axis plate, and a synchronous driven wheel is mounted on the driven wheel shaft. A drive motor is located at the other end of the Y-axis plate, and a synchronous wheel is sleeved on the motor shaft of the drive motor. A conveyor belt is sleeved on the synchronous wheel and the synchronous driven wheel. A groove is formed on the Y-axis plate, and a guide rail with a track is mounted on the groove. Several [unclear - possibly a number of components] are mounted on the guide rail. A slider 1 is provided, and each slider 1 is provided with a connector 1. A meshing plate connected to a transmission belt 1 is provided on the connector 1. The meshing plate has a through hole for the installation of the transmission belt 1. A station plate is provided on the top of the connector 1, and a working cavity is formed between the station plate and the connector 1. A support plate passes through the working cavity and is fixed to the frame. Several bolt holes are provided on the station plate. An adjustable positioning component is installed on the station plate, and the positioning component is installed on the station plate by bolts. A cylinder adapter plate is installed on the support plate. A cylinder seat is provided on the cylinder adapter plate. A push rod is provided on the cylinder seat. A cylinder top block is provided on one side of the push rod. A drive cylinder is provided on the cylinder seat. A pressure bar is connected to the top of the drive cylinder through a piston rod. The pressure bar is installed above the station plate. An adjustable hexagonal screw is provided at the end of the pressure bar.
[0006] In the aforementioned novel nameplate adaptive positioning device, the X-axis unit has two symmetrical supports on one end of the frame. An X-axis plate is mounted on each support. A driven wheel shaft is mounted on one end of the X-axis plate, and a synchronous driven wheel is mounted on the driven wheel shaft. A drive motor is mounted on the other end of the X-axis plate, and a synchronous wheel is fitted onto the motor shaft of the drive motor. A conveyor belt is fitted onto the synchronous wheel and the synchronous driven wheel. A groove is formed on the X-axis plate, and a guide rail with a track is mounted on the groove. A slider is mounted on the guide rail. Blocking plates are located at both ends of the guide rail to limit the slider. A connector is mounted on the slider, and a meshing plate is located on the side face of the connector. A through hole for mounting the conveyor belt is formed on the meshing plate. A fixing plate is mounted on the connector. The X-axis unit is connected to the Z-axis unit through the fixing plate.
[0007] In the aforementioned novel nameplate adaptive positioning device, the Z-axis unit is provided with a Z-axis plate connected to a fixed plate. A driven wheel shaft is provided at one end of the Z-axis plate, and a synchronous driven wheel is installed on the driven wheel shaft. A drive motor is provided at the other end of the Z-axis plate, and a synchronous wheel is sleeved on the motor shaft of the drive motor. A conveyor belt is sleeved on the synchronous wheel and the synchronous driven wheel. A groove is provided on the Z-axis plate, and a guide rail with a track is installed on the groove. A slider is provided on the guide rail, and a connector is installed on the slider. A biting plate is provided on the side end face of the connector, and a through hole for installing the conveyor belt is provided on the biting plate. The Z-axis unit is vertically installed above the Y-axis unit.
[0008] In the aforementioned novel nameplate adaptive positioning device, a control button for starting and stopping the device is installed on the side of the controller on the housing.
[0009] Compared with existing technologies, this new high-efficiency nameplate adaptive positioning device features bolt holes on the workstation plate, with positioning components fixed by bolts, supporting rapid replacement according to workpiece size, reducing downtime, and improving processing efficiency. The cylinder top block applies pressure from the side of the workpiece to prevent horizontal displacement of the nameplate, and the drive cylinder drives the pressure bar downward through the piston rod. Hexagonal screws assist in positioning to ensure that the nameplate is fixed vertically. The three-axis unit achieves linkage control through the controller, and the riveting path can be programmed to adapt to the processing needs of complex nameplate shapes. Attached Figure Description
[0010] Figure 1 This is a three-dimensional view of the new high-efficiency nameplate adaptive positioning device.
[0011] Figure 2 This is a structural diagram of the new high-efficiency nameplate adaptive positioning device.
[0012] Figure 3 This is a schematic diagram of the new high-efficiency nameplate adaptive positioning device.
[0013] In the diagram, 1. Box body; 2. Frame; 3. X-axis unit; 4. Y-axis unit; 5. Z-axis unit; 6. Controller; 7. Y-axis plate; 8. Support plate; 9. Driven wheel shaft 1; 10. Synchronous driven wheel 1; 11. Drive motor 1; 12. Synchronous wheel 1; 13. Conveyor belt 1; 14. Groove 1; 15. Guide rail 1; 16. Slider 1; 17. Connector 1; 18. Engaging plate; 19. Workstation plate; 20. Bolt hole; 21. Positioning component; 22. Cylinder adapter plate; 23. Cylinder seat; 24. Push rod; 25. Cylinder top block; 26. Drive cylinder; 27. Pressure strip; 8. Hexagonal screw; 29. Bracket; 30. X-axis plate; 31. Driven wheel shaft two; 32. Synchronous driven wheel two; 33. Drive motor two; 34. Synchronous wheel two; 35. Conveyor belt two; 36. Groove two; 37. Guide rail two; 38. Slider two; 39. Blocking plate two; 40. Connector two; 41. Fixing plate; 42. Z-axis plate; 43. Driven wheel shaft three; 44. Synchronous driven wheel three; 45. Drive motor three; 46. Synchronous wheel three; 47. Conveyor belt three; 48. Groove three; 49. Guide rail three; 50. Slider three; 51. Connector three; 52. Control button. Detailed Implementation
[0014] The following are specific embodiments of the present invention, which are described in conjunction with the accompanying drawings. However, the present invention is not limited to these embodiments.
[0015] like Figure 1 , Figure 2 , Figure 3As shown, this novel nameplate adaptive positioning device includes a housing 1 and a frame 2 surrounding the housing 1. A three-axis assembly is mounted on the housing 1, consisting of an X-axis unit 3, a Y-axis unit 4, and a Z-axis unit 5. A controller 6 for controlling the three-axis assembly is located on the housing 1. A Y-axis plate 7 is mounted on the Y-axis unit 4 between the frames 2, and a support plate 8 is mounted on the Y-axis plate 7. A driven wheel shaft 9 is mounted on one end of the Y-axis plate 7, and a synchronous driven wheel 10 is mounted on the driven wheel shaft 9. A drive motor 11 is located on the other end of the Y-axis plate 7, and a synchronous wheel 12 is sleeved on the motor shaft of the drive motor 11. 2. A conveyor belt 13 is fitted onto the synchronous driven wheel 10. A groove 14 is formed on the Y-axis plate 7, and a guide rail 15 with a track is installed on the groove 14. Several sliders 16 are installed on the guide rail 15, and each slider 16 is provided with a connector 17. A meshing plate 18 connected to the conveyor belt is provided on the connector 17. The meshing plate 18 has a through hole for mounting the conveyor belt 13. It is mounted on the Y-axis plate 7 through a drive motor 11. The Y-axis plate 7 is arranged perpendicular to the X-axis unit 3. The connector 17 is fixed to the conveyor belt 13 through the meshing plate 18, realizing the longitudinal (Y-axis) movement of the slider 16. The connecting piece 17 has a workstation plate 19 on its top, forming a working cavity between the workstation plate 19 and the connecting piece 17. A support plate 8 passes through the working cavity and is fixed to the frame 2. The workstation plate 19 has several bolt holes 20, and an adjustable positioning piece 21 is installed on it. This positioning piece 21 is bolted to the workstation plate 19. The operator can adjust the positioning piece 21 on the workstation plate 19 according to the size of the workpiece. Simply loosen the bolts to remove the positioning piece 21, then select a suitable positioning piece 21 for the workpiece size for replacement, reducing the time spent changing the workstation plate 19 and improving processing efficiency. A cylinder adapter plate 22 is installed on the support plate 8. A cylinder seat 23 is provided on the plate 22, and a push rod 24 is provided on the cylinder seat 23. A cylinder top block 25 is provided on one side of the push rod 24. The cylinder top block 25 presses the workpiece placed on the workstation plate 19 from the side. A drive cylinder 26 is provided on the cylinder seat 23, and a pressure strip 27 is connected to the top of the drive cylinder 26 through a piston rod. The pressure strip 27 is installed above the workstation plate 19. An adjustable hexagonal screw 28 is provided at the end of the pressure strip 27. The hexagonal screw 28 can be adjusted by rotating. The workpiece and nameplate placed on the workstation plate 19 are fixed from the side and top of the workpiece by the cylinder top block 25 and the hexagonal screw 28 to prevent the nameplate from deviating during the riveting process.
[0016] To elaborate further, the X-axis unit 3 has two symmetrical supports 29 on one end of the frame 2. An X-axis plate 30 is mounted on each support 29. A driven wheel shaft 31 is mounted on one end of the X-axis plate 30, and a synchronous driven wheel 32 is mounted on this shaft. A drive motor 33 is mounted on the other end of the X-axis plate 30. A synchronous wheel 34 is fitted onto the motor shaft of the drive motor 33. A conveyor belt 35 is fitted onto the synchronous wheel 34 and the synchronous driven wheel 32. The X-axis plate 30 has a groove 36, and a guide rail 37 with a track is installed on the groove 36. A slider 38 is provided on the guide rail 37. A blocking plate 39 is provided at both ends of the guide rail 37 to limit the slider 38. A connector 40 is installed on the slider 38. A biting plate 18 is provided on the side end face of the connector 40. The connector 40 is fixed to the conveyor belt 35 through the biting plate 18 to realize the longitudinal (X-axis) movement of the slider 38. A through hole is provided on the biting plate 18 for the installation of the conveyor belt 35. A fixing plate 41 is installed on the connector 40. The X-axis unit 3 is connected to the Z-axis unit 5 through the fixing plate 41.
[0017] In further detail, the Z-axis unit 5 is equipped with a Z-axis plate 42 connected to the fixed plate 41. A driven wheel shaft 43 is located at one end of the Z-axis plate 42, and a synchronous driven wheel 44 is mounted on the driven wheel shaft 43. A drive motor 45 is located at the other end of the Z-axis plate 42. A synchronous wheel 46 is sleeved on the motor shaft of the drive motor 45. A conveyor belt 47 is sleeved on the synchronous wheel 46 and the synchronous driven wheel 44. A groove 48 is formed on the Z-axis plate 42, and a guide rail 49 with a track is mounted on the groove 48. A slider 50 is located on the guide rail 49, and a connector 51 is mounted on the slider 50. A meshing plate 18 is located on the side end face of the connector 51, and a through hole is formed on the meshing plate 18 for mounting the conveyor belt 47. The connector 51 is fixed to the conveyor belt 47 through the meshing plate 18, realizing the longitudinal (Z-axis) movement of the slider 38. Z-axis unit 5 is vertically mounted above Y-axis unit 4.
[0018] To elaborate further, a control button 52 for starting and stopping the device is installed on the side of the controller 6 on the housing 1. The green button 52 is for starting, and the red button 52 is for stopping.
[0019] The specific embodiments described herein are merely illustrative examples illustrating the spirit of this utility model. Those skilled in the art to which this utility model pertains may make various modifications or additions to the described specific embodiments or use similar methods to substitute them, without departing from the spirit of this utility model or exceeding the scope defined by the appended claims.
[0020] Although this paper extensively uses the following components: 1. Box body; 2. Frame; 3. X-axis unit; 4. Y-axis unit; 5. Z-axis unit; 6. Controller; 7. Y-axis plate; 8. Support plate; 9. Driven wheel shaft; 10. Synchronous driven wheel; 11. Drive motor; 12. Synchronous wheel; 13. Conveyor belt; 14. Groove; 15. Guide rail; 16. Slider; 17. Connector; 18. Engaging plate; 19. Station plate; 20. Bolt hole; 21. Positioning component; 22. Cylinder adapter plate; 23. Cylinder seat; 24. Push rod; 25. Cylinder push block; 26. Drive cylinder; 27. Pressure strip; 28. Hexagonal screw; 9. Support. The terminology used includes 29 (frame), 30 (X-axis plate), 31 (driven wheel shaft II), 32 (synchronous driven wheel II), 33 (drive motor II), 34 (synchronous wheel II), 35 (conveyor belt II), 36 (groove II), 37 (guide rail II), 38 (slider II), 39 (blocking plate II), 40 (connector II), 41 (fixed plate), 42 (Z-axis plate), 43 (driven wheel shaft III), 44 (synchronous driven wheel III), 45 (drive motor III), 46 (synchronous wheel III), 47 (conveyor belt III), 48 (groove III), 49 (guide rail III), 50 (slider III), 51 (connector III), and 52 (control button), but the possibility of using other terms is not excluded. The use of these terms is merely for the convenience of describing and explaining the essence of this utility model; interpreting them as any additional limitation would contradict the spirit of this utility model.
Claims
1. A novel nameplate adaptive positioning device, comprising a housing (1) and a frame (2) around the housing (1), characterized in that, The housing (1) is equipped with a three-axis assembly, which consists of an X-axis unit (3), a Y-axis unit (4), and a Z-axis unit (5). A controller (6) for controlling the three-axis assembly is located on the housing (1). A Y-axis plate (7) is located between the frames (2) on the Y-axis unit (4). A support plate (8) is located on the Y-axis plate (7). A driven wheel axle (9) is located at one end of the Y-axis plate (7), and a synchronous driven wheel (10) is installed on the driven wheel axle (9). The other end of the Y-axis plate (7) is located on the other end of the Y-axis plate (7). A drive motor (11) is provided at one end. A synchronous pulley (12) is sleeved on the motor shaft of the drive motor (11). A conveyor belt (13) is sleeved on the synchronous pulley (12) and the synchronous driven pulley (10). A groove (14) is provided on the Y-axis plate (7), and a guide rail (15) with a track is installed on the groove (14). Several sliders (16) are installed on the guide rail (15), and each slider (16) is provided with a connector (17). A connector (17) is provided on the connector (17). A meshing plate (18) is provided to connect with a transmission belt. The meshing plate (18) has through holes for mounting the transmission belt (13). A station plate (19) is provided on the top of the connector (17), and a working cavity is formed between the station plate (19) and the connector. The support plate (8) passes through the working cavity and is fixed on the frame (2). Several bolt holes (20) are provided on the station plate (19). An adjustable positioning element (21) is installed on the station plate (19), and the positioning element (21) is installed on the station plate (19) by bolts. A cylinder adapter plate (22) is installed on the support plate (8). A cylinder seat (23) is provided on the cylinder adapter plate (22). A push rod (24) is provided on the cylinder seat (23). A cylinder top block (25) is provided on one side of the push rod (24). A drive cylinder (26) is provided on the cylinder seat (23). A pressure strip (27) is connected to the top of the drive cylinder (26) through a piston rod. The pressure strip (27) is installed above the workstation plate (19). An adjustable hexagonal screw (28) is provided at the end of the pressure strip (27).
2. The novel nameplate adaptive positioning device according to claim 1, characterized in that, The X-axis unit (3) is provided with two symmetrical supports (29) on one side of the frame (2). An X-axis plate (30) is provided on the support (29). A driven wheel shaft (31) is provided on one end of the X-axis plate (30), and a synchronous driven wheel (32) is installed on the driven wheel shaft (31). A drive motor (33) is provided on the other end of the X-axis plate (30). A synchronous wheel (34) is sleeved on the motor shaft of the drive motor (33). A conveyor belt (35) is sleeved on the synchronous wheel (34) and the synchronous driven wheel (32). A groove is provided on the X-axis plate (30). 36), and a guide rail 2 (37) with a track is installed on the groove 2 (36), a slider 2 (38) is provided on the guide rail 2 (37), and a blocking plate 2 (39) for limiting the slider 2 (38) is provided at both ends of the guide rail 2 (37), a connector 2 (40) is installed on the slider 2 (38), a biting plate (18) is provided on the side end face of the connector 2 (40), a through hole for installing the conveyor belt 2 (35) is provided on the biting plate (18), a fixing plate (41) is installed on the connector 2 (40), and the X-axis unit (3) is connected to the Z-axis unit (5) through the fixing plate (41).
3. The novel nameplate adaptive positioning device according to claim 1, characterized in that, The Z-axis unit (5) is provided with a Z-axis plate (42) connected to the fixed plate (41). A driven wheel shaft three (43) is provided on one end of the Z-axis plate (42), and a synchronous driven wheel three (44) is installed on the driven wheel shaft three (43). A drive motor three (45) is provided on the other end of the Z-axis plate (42). A synchronous wheel three (46) is sleeved on the motor shaft three of the drive motor three (45). A conveyor belt three (47) is sleeved on the synchronous wheel three (46) and the synchronous driven wheel three (44). A groove three (48) is provided on the Z-axis plate (42), and a guide rail three (49) with a track is installed on the groove three (48). A slider three (50) is provided on the guide rail three (49). A connector three (51) is installed on the slider three (50). A meshing plate (18) is provided on the side end face of the connector three (51). The bite plate (18) is provided with a through hole for the installation of the conveyor belt (47), and the Z-axis unit (5) is vertically installed above the Y-axis unit (4).
4. The novel nameplate adaptive positioning device according to claim 1, characterized in that, The housing (1) is equipped with a control button (52) for starting and stopping the device located on one side of the controller (6).