Medicine bottle stacking device
By designing a bottle stacking device, the bottle stacking is automatically stacked using aggregate belts and jet discharge slides, solving the problems of manual operation and labor intensity during the bottle packing process, improving efficiency and reducing the risk of bottle damage.
Patent Information
- Application Number
- CN202421834249.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-31
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-07-31
AI Technical Summary
During the stacking and packing of medicine bottles, manual operation is inconvenient and labor-intensive, which leads to the medicine bottles being easily broken.
A bottle stacking device is designed, including a aggregate belt, a feeding slide and a lifting platform. The bottle is conveyed to the feeding slide through a conveyor belt and blown out the bottle into the packaging box by jet air, and automatic stacking is achieved by combining the movement of the lifting platform.
It reduces staff participation, improves the efficiency of stacking medicine bottles, and reduces the risk of bottle damage.
Smart Images

Figure CN223132459U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of oral liquid glass bottle packaging, in particular to a medicine bottle stacking device. Background Art
[0002] After the oral liquid is filled, it is capped and sealed, labeled, and inspected by light. The above steps all use a conveyor belt to continuously transport the medicine bottles to ensure production efficiency. However, in the subsequent boxing process, the vertically and closely placed medicine bottles need to be taken out one by one by the workers at the end of the production line, and then placed horizontally or vertically in the carton in turn. After laying one layer, a partition is placed, and then the next layer is laid; when a production line operates at full capacity, at least three workers are required for the boxing work. Not only is the work intensity high, but also due to the high labor intensity, there is a situation where the medicine bottles are accidentally dropped and broken during long-term work due to the need to hold them tightly. Summary of the Invention
[0003] The technical problem to be solved by the utility model is that the stacking and boxing of medicine bottles are carried out manually. The closely placed medicine bottles are not only inconvenient to take, but also the continuous transportation leads to high work intensity.
[0004] To solve the above technical problem, the technical solution adopted by the utility model is: a medicine bottle stacking device, including a support frame connected to the discharging end of a conveyor belt. A collecting belt is horizontally rotatably arranged on the support frame. Accommodating grooves with openings smaller than the outer diameter of the medicine bottles are equidistantly arranged on the collecting belt. A retaining ring is arranged at one end of the collecting belt, and an opening is arranged at the other end. A discharging chute is obliquely arranged at the discharging end of the collecting belt. A speed reduction module is arranged at the tail end of the discharging chute, and a lifting platform is vertically movably arranged at the bottom end of the discharging chute.
[0005] Preferably, a rotating roller is horizontally rotatably arranged in the support frame. The collecting belt is fixedly sleeved on the outer peripheral surface of the rotating roller. A discharging motor is fixedly arranged on the side wall of the support frame. The output shaft of the discharging motor is coaxially and fixedly connected to one end of the rotating roller.
[0006] Preferably, a through groove is opened at the inner bottom of the accommodating groove. A jet nozzle is fixedly arranged in the support frame, and the jet nozzle is located above the top end of the discharging chute.
[0007] Preferably, arc-shaped sliding grooves are equidistantly opened on the top surface of the discharging chute, and the distance between adjacent sliding grooves is equal to the outer diameter of the medicine bottle.
[0008] Preferably, the speed reduction module is a jet channel arranged at the bottom end of the discharging chute, and the jet channel is located in the sliding groove.
[0009] Preferably, the bottom end of the blanking chute is horizontally and fixedly connected with a mounting plate. A guide rod and a screw rod are vertically arranged at the bottom of the mounting plate. The screw rod is rotatably arranged, and a lifting motor for driving the screw rod to rotate is mounted on the mounting plate. Both the guide rod and the screw rod penetrate through the lifting table, and a connecting ring is arranged on the lifting table. The connecting ring is threadedly connected with the screw rod.
[0010] Preferably, the blanking chute includes an inclined section and a horizontal section, which are connected by an arc-shaped transition section. An opening adapted to the size of the packaging box of the medicine bottle is arranged in the horizontal section, and the lifting table is located directly below the opening.
[0011] The utility model provides a medicine bottle stacking device. By adopting an annular aggregate belt and arranging receiving grooves on the aggregate belt, during the conveying process of the medicine bottles in the conveyor belt, the medicine bottles are pushed into the receiving grooves, and the medicine bottles are conveyed to the blanking end by the rotation of the aggregate belt. Then, when the medicine bottles are at the blanking end, they are blown out by the air nozzles, enter the blanking chute, and then directly slide into the packaging box on the lifting table along the blanking chute to achieve stacking. Then, the lifting table is controlled to descend, and a partition board is laid on the placed medicine bottles to stack the next row of medicine bottles, thereby reducing the participation of workers in the process of packing and stacking medicine bottles and improving the efficiency of packing and stacking medicine bottles. Brief Description of the Drawings
[0012] The following further describes the present utility model in conjunction with the drawings and embodiments:
[0013] Figure 1 It is the main structural view of the embodiment of the present utility model.
[0014] Figure 2 It is the side view of the embodiment of the present utility model.
[0015] Figure 3 It is the structural schematic diagram of the blanking chute in the embodiment of the present utility model.
[0016] In the figure: 1, conveyor belt; 2, support frame; 3, retaining ring; 4, aggregate belt; 5, blanking motor; 6, through groove; 7, air nozzle; 8, blanking chute; 9, lifting table; 10, packaging box; 11, air jet channel. Detailed Description of the Embodiment
[0017] As Figures 1-3 shown, the utility model provides a medicine bottle stacking device, which includes a support frame 2 connected to the blanking end of the conveyor belt 1. An aggregate belt 4 is horizontally and rotatably arranged on the support frame 2. Receiving grooves with openings smaller than the outer diameter of the medicine bottles are equidistantly arranged on the aggregate belt 4. A retaining ring 3 is arranged at one end of the aggregate belt 4, and an opening is arranged at the other end. A blanking chute 8 is inclinedly arranged at the blanking end of the aggregate belt 4. A deceleration module is arranged at the tail end of the blanking chute 8. A lifting table 9 is vertically movably arranged at the bottom end of the blanking chute 8.
[0018] The medicine bottles are continuously conveyed by the conveyor belt 1, and the conveyed medicine bottles are close to each other. At the discharging end of the conveyor belt 1, a support frame 2 is connected. There is an annular aggregate belt 4 inside the support frame 2. Radial protrusions are provided on the outer side wall of the aggregate belt 4 to form a receiving groove. One end of the aggregate belt 4 is connected to a retaining ring 3. During the transportation of the medicine bottles, the aggregate belt 4 rotates to a state where the receiving groove communicates with the conveyor belt 1, and the medicine bottles in the conveyor belt 1 are pushed into the receiving groove. Due to the setting of the receiving groove opening, the rubber belt can generate a certain deformation to meet the stable accommodation requirements of the medicine bottles. After filling the medicine bottles in one receiving groove, the aggregate belt 4 continues to rotate, and the conveyor belt 1 continues to feed the next receiving groove. When the aggregate belt 4 rotates to the discharging end, that is, above the top end of the discharging chute 8, at this time, the medicine bottles in the receiving groove are in an inclined downward state, and the medicine bottles enter the discharging chute 8 under the action of gravity and move along the discharging chute 8 to the bottom end. A packing box 10 is placed on the top of the lifting platform 9. The medicine bottles that slide to the horizontal state enter the packing box 10 under the action of inertia. The staff arranges the medicine bottles neatly, then controls the lifting platform 9 to descend. The lifting platform 9 descends by one grid, that is, the outer diameter of one medicine bottle, and then a partition is placed in the packing box 10. The subsequent medicine bottles entering the packing box 10 fall on the partition, thus realizing the semi-automatic stacking of the medicine bottles.
[0019] As Figure 1 and Figure 2 shown. A rotating roller is horizontally rotatably arranged inside the support frame 2, and the aggregate belt 4 is fixedly sleeved on the outer peripheral surface of the rotating roller. A discharging motor 5 is fixedly arranged on the side wall of the support frame 2, and the output shaft of the discharging motor 5 is coaxially and fixedly connected to one end of the rotating roller. The discharging motor 5 adopts a stepping motor, and the rotating roller is driven to rotate by the discharging motor 5, thereby driving the aggregate belt 4 to rotate.
[0020] As Figure 1 shown. A through groove 6 is opened at the inner bottom of the receiving groove, and a jet nozzle 7 is fixedly arranged inside the support frame 2. The jet nozzle 7 is located above the top end of the discharging chute 8. When the medicine bottles in the receiving groove rotate to the discharging end of the aggregate belt 4 and after the discharging motor 5 drives the aggregate belt 4 to rotate in place, the jet nozzle 7 jets air, and the medicine bottles in the receiving groove are blown out through the through groove 6, so that the medicine bottles can smoothly enter the discharging chute 8.
[0021] As Figure 3 shown, to avoid collisions of the medicine bottles during the sliding process along the discharging chute 8. Arc-shaped sliding grooves are equidistantly opened on the top surface of the discharging chute 8, and the distance between adjacent sliding grooves is equal to the outer diameter of the medicine bottle. The medicine bottles slide along the sliding grooves, so that the medicine bottles can smoothly slide to the bottom end of the discharging chute 8.
[0022] As Figure 3As shown in the figure. The speed reducing module is a jet channel 11 arranged at the bottom end of the blanking chute 8, and the jet channel 11 is located within the chute. By blowing air upward through the jet channel 11, the medicine bottles sliding on the blanking chute 8 are decelerated to avoid damage caused by the impact of the sliding down of the medicine bottles.
[0023] As Figure 2 shown in the figure. A mounting plate is horizontally and fixedly connected to the bottom end of the blanking chute 8. A guide rod and a screw rod are vertically arranged at the bottom of the mounting plate. The screw rod is rotatably arranged, and a lifting motor for driving the screw rod to rotate is mounted on the mounting plate. Both the guide rod and the screw rod penetrate through the lifting platform 9, and a connecting ring is arranged on the lifting platform 9. The connecting ring is threadedly connected to the screw rod. By driving the screw rod to rotate through the lifting motor, the lifting platform 9 moves in the vertical direction during the rotation of the screw rod.
[0024] As Figure 1 shown in the figure. The blanking chute 8 includes an inclined section and a horizontal section, which are connected by an arc-shaped transition section. An opening adapted to the size of the packing box of the medicine bottle is arranged within the horizontal section, and the lifting platform 9 is located directly below the opening. The movement of the packing box 10 is limited through the opening, and the packing box 10 can be prevented from moving when the medicine bottle impacts the packing box 10.
Claims
1. A medicine bottle stacking device, characterized in that: It includes a support frame (2) connected to the discharging end of a conveyor belt (1). An aggregate belt (4) is horizontally rotatably arranged on the support frame (2). Accommodating grooves with openings smaller than the outer diameter of the medicine bottles are equidistantly arranged on the aggregate belt (4). A retaining ring (3) is arranged at one end of the aggregate belt (4), and an opening is arranged at the other end. A discharging chute (8) is inclinedly arranged at the discharging end of the aggregate belt (4). A speed reduction module is arranged at the tail end of the discharging chute (8). A lifting platform (9) is vertically movably arranged at the bottom end of the discharging chute (8).
2. The vial stacking device according to claim 1, wherein: A rotating roller is horizontally rotatably arranged inside the support frame (2). The aggregate belt (4) is fixedly sleeved on the outer peripheral surface of the rotating roller. A discharging motor (5) is fixedly arranged on the side wall of the support frame (2). The output shaft of the discharging motor (5) is coaxially and fixedly connected to one end of the rotating roller.
3. The stacking device for medicine bottles according to claim 1, characterized in that: A through groove (6) is opened at the inner bottom of the accommodating groove. A jet nozzle (7) is fixedly arranged inside the support frame (2). The jet nozzle (7) is located above the top end of the discharging chute (8).
4. The medicine bottle stacking device according to claim 1, characterized in that: Arc-shaped chutes are equidistantly opened on the top surface of the discharging chute (8), and the distance between adjacent chutes is equal to the outer diameter of the medicine bottle.
5. The stacking device for medicine bottles according to claim 4, characterized in that: The speed reduction module is a jet channel (11) arranged at the bottom end of the discharging chute (8), and the jet channel (11) is located inside the chute.
6. The medicine bottle stacking device according to claim 1, characterized in that: The bottom end of the discharging chute (8) is horizontally and fixedly connected with a mounting plate. A guide rod and a screw rod are vertically arranged at the bottom of the mounting plate. The screw rod is rotatably arranged. A lifting motor for driving the screw rod to rotate is installed on the mounting plate. Both the guide rod and the screw rod penetrate through the lifting platform (9). A connecting ring is arranged on the lifting platform (9), and the connecting ring is threadedly connected to the screw rod.
7. The stacking device for medicine bottles according to claim 1, characterized in that: The discharging chute (8) includes an inclined section and a horizontal section, which are connected by an arc-shaped transition section. An opening adapted to the size of the packing box of the medicine bottle is arranged inside the horizontal section. The lifting platform (9) is located directly below the opening.