Bubble cap plate servo feeding mechanism
The servo-driven bubble sheet board feeding mechanism addresses inefficiencies in existing systems by providing precise and cost-effective controlled dispensing with enhanced reliability and adaptability.
Patent Information
- Application Number
- CN202422452017.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-11
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-10-11
AI Technical Summary
The existing blister plate feeding mechanism has low control accuracy and high production costs, making it difficult to meet the high-precision packaging needs in the pharmaceutical field.
The blister plate servo feeding mechanism is adopted, including a mounting frame, a cutting channel, a cutting control assembly, a driving source and a linkage assembly. The linkage assembly drives the action of the cutting control assembly, and the orderly output of the blister plate is achieved by the staggered switching of the first and second cutting baffles, and the control accuracy is improved and production costs are reduced through the synchronous wheel and the synchronous belt structure.
The orderly feeding output of the blister plate is realized, the control accuracy is improved, and the production cost is reduced, and the needs of different working conditions and scenarios are adapted to the needs of different working conditions and scenarios.
Smart Images

Figure CN223101087U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to packaging equipment, in particular to a servo feeding mechanism for blister plates. Background Art
[0002] Packaging is often the last process in the product production process, and packaging equipment is required for the packaging process to maximize packaging efficiency. Packaging equipment is widely used in various fields, including the pharmaceutical field. One of the processes in pharmaceutical packaging equipment is to use a blister plate feeding mechanism to output blister plates in a predetermined quantity for subsequent packaging processes. In order to avoid the existing blister plate feeding mechanisms, this creation came into being. Content of the Utility Model
[0003] The purpose of the utility model is to provide a servo feeding mechanism for blister plates, which has higher control precision and lower production cost.
[0004] The above technical purpose of the utility model is achieved by the following technical solutions: A servo feeding mechanism for blister plates, comprising: a mounting frame; a blanking channel configured to stack and output blister plates; a blanking control component configured to form a blanking control area behind the output of the blanking channel for controlling the blanking output of blister plates in a predetermined quantity; a driving source configured to provide the source power; and a linkage component configured to form a linkage between the driving source and the blanking control component and used to control the action of the blanking control component.
[0005] By adopting the above technical solutions, the blister plates are transmitted through the blanking channel towards the blanking control area. The driving source drives the blanking control component to act through the linkage component, and the blanking control component is used to control the blanking output of blister plates in a predetermined quantity, so as to realize the orderly feeding output of blister plates. This setting structure has higher control precision and lower production cost.
[0006] It is further set that: the blanking control component includes a first blanking baffle and a second blanking baffle, the first blanking baffle and the second blanking baffle are spaced along the transmission direction of the blister plates to form the blanking control area, both the first blanking baffle and the second blanking baffle are formed with a material blocking part and a passing part, the material blocking part and the passing part on the first blanking baffle and the material blocking plate and the passing part on the second blanking baffle are mutually misaligned along the transmission direction of the blister plates, and at least part of the material blocking part of the first blanking baffle and the second blanking baffle is located in the blanking channel during the action process.
[0007] By adopting the above technical solution, when the passing part on the first blanking baffle allows the blister plate to pass through and enter the blanking control area, the material blocking part on the second blanking baffle blocks the passage of the blister plate; when the second blanking baffle switches from the material blocking part to the passing part to allow the blister plate to pass through and output, the first blanking baffle switches from the passing part to the material blocking part to block the next blister plate to prevent it from falling, so as to realize the orderly output of blister plates one by one.
[0008] It is further set that: the blanking control assembly further includes a blanking rotating shaft, and both the first blanking baffle and the second blanking baffle rotate with the blanking rotating shaft.
[0009] By adopting the above technical solution, the blanking rotating shaft drives the first blanking baffle and the second blanking baffle to act, so as to realize the staggered switching between the material blocking part and the passing part of the first blanking baffle and the second blanking baffle.
[0010] It is further set that: the blanking control assembly is symmetrically arranged in two groups along the transmission direction of the blister plate, and pressure reducing components are symmetrically arranged in front of the blanking control assembly along the transmission direction of the blister plate, and a pressure reducing area is formed between the pressure reducing components and the blanking control assembly in the blanking channel.
[0011] By adopting the above technical solution, the setting of the two groups of blanking control components can improve the smoothness of the blister plate blanking transmission, so as to improve the reliability of the mechanism; and cooperate with the set pressure reducing components to form a pressure reducing area to avoid the deformation of the lower blister plate caused by a large number of stacked blister plates, so as to further improve the reliability and feasibility of the blanking transmission structure.
[0012] It is further set that: the linkage assembly includes a first-stage transmission structure and two second-stage transmission structures, the two second-stage transmission structures respectively constitute the linkage of the two groups of blanking control components, and the first-stage transmission structure constitutes the linkage of the driving source and the two second-stage transmission structures.
[0013] By adopting the above technical solution, the driving source drives the two groups of blanking control components to achieve synchronous action through the cooperation of the first-stage transmission structure and the second-stage transmission structure.
[0014] It is further set that: the second-stage transmission structure includes two second-stage synchronous wheels and a second-stage synchronous belt connecting the two second-stage synchronous wheels, and the two second-stage synchronous wheels are respectively installed on the mounting frame and the blanking rotating shaft.
[0015] By adopting the above technical solution, the synchronous wheel and synchronous belt structure has low production cost and high control precision.
[0016] It is further set that: the first-stage transmission structure includes three first-stage synchronous wheels and a first-stage synchronous belt connecting the three first-stage synchronous wheels, and the three first-stage synchronous wheels are respectively installed on the two second-stage transmission structures and the driving source.
[0017] By adopting the above technical solution, the production cost of the synchronous pulley and synchronous belt structure is low and the control precision is high.
[0018] It is further set that: the blanking channel and the blanking control component are arranged on the mounting frame, a support frame is arranged below the mounting frame, and the mounting frame is arranged to be lifted and slid on the support frame, and a lifting screw rod threadedly connected to the mounting frame is rotatably arranged on the support frame.
[0019] By adopting the above technical solution, the lifting screw rod drives the mounting frame to move to adjust the output position height of the feeding mechanism to adapt to different operating conditions and application scenarios.
[0020] It is further set that: the mounting frame includes a mounting seat slidably arranged on the support frame and a mounting arm horizontally slidably arranged on the mounting seat, the blanking channel and the blanking control component are both arranged on the mounting arm, and an adjusting screw rod threadedly connected to the mounting arm is rotatably arranged on the mounting seat.
[0021] By adopting the above technical solution, the adjusting screw rod drives the mounting arm to move to adjust the horizontal output position of the feeding mechanism to adapt to different operating conditions and application scenarios.
[0022] It is further set that: a support arm is fixedly arranged on the blanking channel, and a locking structure is arranged between the support arm and the mounting seat.
[0023] By adopting the above technical solution, the support arm cooperates with the locking structure to further fix the blanking channel, so as to improve the stability of the structure.
[0024] In summary, the utility model has the following beneficial effects: the control precision of the utility model is higher and the production cost is low. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 It is a schematic structural diagram of the embodiment;
[0026] Figure 2 It is a partial exploded view of the embodiment;
[0027] Figure 3 It is a partial structural diagram of the embodiment;
[0028] Figure 4 It is a schematic structural diagram of the linkage component in the embodiment;
[0029] Figure 5 It is another partial structural diagram of the embodiment;
[0030] Figure 6 It is an exploded view of the blanking control component in the embodiment.
[0031] In the figure: 1. Mounting frame; 1.1 Mounting base; 1.2 Mounting arm; 2. Material discharging channel; 3. Material discharging control assembly; 31. First material discharging baffle; 32. Second material discharging baffle; 33. Material discharging rotating shaft; 4. Material discharging control area; 5. Driving source; 6. Linkage assembly; 61. First-stage transmission structure; 611. First-stage synchronous pulley; 612. First-stage synchronous belt; 62. Second-stage transmission structure; 621. Second-stage synchronous pulley; 622. Second-stage synchronous belt; 7. Material blocking part; 8. Passing part; 9. Pressure reducing assembly; 10. Pressure reducing area; 11. Support frame; 12. Lifting screw; 13. Adjusting screw; 14. Locking structure; 15. Support arm. Detailed implementation manners
[0032] The following further elaborates on the present utility model in conjunction with the accompanying drawings.
[0033] Refer to Figures 1 to 6 , a servo feeding mechanism for a blister plate, comprising: a mounting frame 1, the mounting frame 1 includes a mounting base 1.1 and two mounting arms 1.2 horizontally and slidably arranged on the mounting base 1.1; a material discharging channel 2, arranged for stacking and outputting the blister plate; a material discharging control assembly 3, arranged to form a material discharging control area 4 behind the output of the material discharging channel 2 for controlling the blister plate to be discharged and output in a predetermined quantity; a driving source 5, arranged to provide the source power; a linkage assembly 6, arranged to constitute the linkage between the driving source 5 and the material discharging control assembly 3 and used for controlling the action of the material discharging control assembly 3.
[0034] The material discharging control assembly 3 is symmetrically arranged in two groups along the blister plate transmission direction and is respectively arranged on the two mounting arms 1.2. The material discharging control assembly 3 includes a first material discharging baffle 31, a second material discharging baffle 32 and a material discharging rotating shaft 33. The first material discharging baffle 31 and the second material discharging baffle 32 are arranged at intervals along the blister plate transmission direction to form the material discharging control area 4. Both the first material discharging baffle 31 and the second material discharging baffle 32 are formed with a material blocking part 7 and a passing part 8. The material blocking part 7 and the passing part 8 on the first material discharging baffle 31 and the material blocking plate and the passing part 8 on the second material discharging baffle 32 are mutually staggered along the blister plate transmission direction. During the movement process, at least part of the material blocking part 7 of the first material discharging baffle 31 and the second material discharging baffle 32 is located in the material discharging channel 2. Both the first material discharging baffle 31 and the second material discharging baffle 32 are fixedly arranged on the material discharging rotating shaft 33, and the material discharging rotating shaft 33 is rotatably arranged on the mounting arm 1.2.
[0035] Pressure reducing assemblies 9 are symmetrically arranged in front of the material discharging control assembly 3 along the blister plate transmission direction. A pressure reducing area 10 is formed in the material discharging channel 2 between the pressure reducing assemblies 9 and the material discharging control assembly 3. The structure of the pressure reducing assembly 9 is the same as that of the material discharging control assembly 3. The specific structure is not elaborated here too much, and the pressure reducing rotating shaft of the pressure reducing assembly 9 is integrally connected with the material discharging rotating shaft 33.
[0036] The linkage assembly 6 includes a primary transmission structure 61 and two secondary transmission structures 62. The two secondary transmission structures 62 are respectively linked to form two blanking control assemblies 3, and the primary transmission structure 61 forms the linkage between the drive source 5 and the two secondary transmission structures 62. The secondary transmission structure 62 includes two secondary synchronous pulleys 621 and a secondary synchronous belt 622 sleeved and connected to the two secondary synchronous pulleys 621. One of the secondary synchronous pulleys 621 is rotatably arranged on the mounting arm 1.2, and the other is fixedly arranged on the blanking rotating shaft 33. The primary transmission structure 61 includes three primary synchronous pulleys 611 and a primary synchronous belt 612 sleeved and connected to the three primary synchronous pulleys 611. Two of the primary synchronous pulleys 611 are respectively fixedly installed on the secondary synchronous pulleys 621 of the two mounting arms 1.2, and the other primary synchronous pulley 611 is fixedly arranged on the output shaft of the drive source 5. The drive source 5 is a servo motor fixedly arranged on the mounting base 1.1.
[0037] The blanking channel 2 is fixedly arranged between the two mounting arms 1.2. A support frame 11 is provided below the mounting base 1.1, and the mounting base 1.1 is arranged to slide up and down on the support frame 11. A lifting screw rod 12 that passes through the mounting frame 1 and is threadedly connected thereto is rotatably arranged on the support frame 11. An adjusting screw rod 13 that passes through the mounting arm 1.2 and is threadedly connected thereto is rotatably arranged on the mounting base 1.1. A support arm 15 is fixedly arranged on the blanking channel 2, and a locking structure 14 is provided between the support arm 15 and the mounting base 1.1. The locking structure 14 is a bolt and a lock block. Waist-shaped holes are formed on both the support arm 15 and the mounting base 1.1, and the bolt passes through the two waist-shaped holes and is threadedly connected to the lock block.
[0038] This specific embodiment is only an explanation of the present invention, and it is not a limitation of the present invention. After reading this specification, those skilled in the art can make modifications to this embodiment without creative contributions as needed, but as long as it is within the scope of the claims of the present invention, it is protected by the patent law.
Claims
1. A blister plate servo feeding mechanism, characterized in that Comprising: An installation frame (1); a blanking channel (2) configured to stack and output blister plates; a blanking control assembly (3) configured to form a blanking control area (4) behind the output of the blanking channel (2) for controlling the blanking output of blister plates in a predetermined quantity; a drive source (5) configured to provide the source power; and a linkage assembly (6) configured to form a linkage between the drive source (5) and the blanking control assembly (3) and to control the operation of the blanking control assembly (3).
2. The blister plate servo feeding mechanism according to claim 1, wherein: The blanking control assembly (3) includes a first blanking baffle (31) and a second blanking baffle (32). The first blanking baffle (31) and the second blanking baffle (32) are spaced apart along the transmission direction of the blister plates to form the blanking control area (4). Both the first blanking baffle (31) and the second blanking baffle (32) are formed with a material blocking portion (7) and a passing portion (8). The material blocking portion (7) and the passing portion (8) on the first blanking baffle (31) and the material blocking plate and the passing portion (8) on the second blanking baffle (32) are mutually offset along the transmission direction of the blister plates. During the operation of the first blanking baffle (31) and the second blanking baffle (32), at least a part of the material blocking portion (7) is located within the blanking channel (2).
3. The blister plate servo feeding mechanism according to claim 2, wherein: The blanking control assembly (3) further includes a blanking rotating shaft (33). Both the first blanking baffle (31) and the second blanking baffle (32) rotate with the blanking rotating shaft (33).
4. The blister plate servo feeding mechanism according to claim 3, wherein: The blanking control assembly (3) is symmetrically arranged in two groups along the transmission direction of the blister plates. A pressure reducing assembly (9) is symmetrically arranged in front of the blanking control assembly (3) along the transmission direction of the blister plates. The blanking channel (2) forms a pressure reducing area (10) between the pressure reducing assembly (9) and the blanking control assembly (3).
5. The blister plate servo feeding mechanism according to claim 4, characterized in that: The linkage assembly (6) includes a primary transmission structure (61) and two secondary transmission structures (62). The two secondary transmission structures (62) respectively form the linkage of the two blanking control assemblies (3), and the primary transmission structure (61) forms the linkage between the drive source (5) and the two secondary transmission structures (62).
6. The blister plate servo feeding mechanism according to claim 5, characterized in that: The secondary transmission structure (62) includes two secondary synchronous pulleys (621) and a secondary synchronous belt (622) connecting the two secondary synchronous pulleys (621). The two secondary synchronous pulleys (621) are respectively installed on the installation frame (1) and the blanking rotating shaft (33).
7. The blister plate servo feeding mechanism according to claim 6, characterized in that: The primary transmission structure (61) includes three primary synchronous pulleys (611) and a primary synchronous belt (612) connecting the three primary synchronous pulleys (611). The three primary synchronous pulleys (611) are respectively installed on the two secondary transmission structures (62) and the drive source (5).
8. The blister plate servo feeding mechanism according to claim 1, characterized in that: The blanking channel (2) and the blanking control assembly (3) are arranged on the installation frame (1). A support frame (11) is provided below the installation frame (1), and the installation frame (1) is arranged to slide up and down on the support frame (11). A lifting screw rod (12) that is rotationally provided on the support frame (11) and is threadedly connected to the installation frame (1) is provided.
9. The blister plate servo feeding mechanism according to claim 8, wherein: The mounting bracket (1) includes a mounting base (1.1) slidably disposed on the support frame (11) and a mounting arm (1.2) horizontally slidably disposed on the mounting base (1.1). The blanking channel (2) and the blanking control assembly (3) are both disposed on the mounting arm (1.2). An adjusting screw rod (13) threadedly connected to the mounting arm (1.2) is rotatably disposed on the mounting base (1.1).
10. The blister plate servo feeding mechanism according to claim 9, characterized in that: A support arm (15) is fixedly disposed on the blanking channel (2). A locking structure (14) is provided between the support arm (15) and the mounting base (1.1).