Bin beating and vibrating mechanism
By designing a bin-tapping and vibration mechanism, a servo motor drives a transmission chain and cylinder to achieve automatic alignment and tapping vibration of bagged products, solving the problem of manual stacking of bagged products, improving packaging efficiency and reducing labor intensity.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HEFEI BOCHUANG INTELLIGENT PACKAGING EQUIP CO LTD
- Filing Date
- 2025-06-04
- Publication Date
- 2026-04-17
AI Technical Summary
Currently, bagged products require manual stacking during packaging, which affects packaging efficiency and increases labor intensity.
The design includes a tackling and vibration mechanism for the storage compartment, comprising a feeding component, a circulating conveying component, a tackling and vibration component, and a receiving component. A servo motor drives a transmission chain to rotate a baffle bar. Infrared sensors and cylinders are used to achieve automatic alignment and tackling vibration of bagged products. Finally, the receiving bar completes the automatic stacking.
It enables automatic alignment and stacking of bagged products, improving packaging efficiency and reducing the labor intensity of operators.
Smart Images

Figure CN224131518U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of packaging equipment, specifically to a warehouse tapping and vibration mechanism. Background Technology
[0002] Bagged packaging is a process of packaging products using flexible materials. Powdered, granular, liquid, or semi-liquid items are placed inside, and then the bag is vented (or inflated) and sealed to complete the product packaging process. Existing flat bags are usually rectangular. After the product is placed inside, three sides are heat-sealed or glued to form a bag that is sealed on three sides and open on one side. The opening can be sealed by zippers, self-adhesive strips, etc. It is commonly used for packaging snacks, tea, daily necessities, etc.
[0003] When packing bagged products, they are usually stacked manually, which affects packaging efficiency and increases the labor intensity of workers. Therefore, it is necessary to invent a tapping and vibration mechanism to automatically tap and align multiple bagged products. Utility Model Content
[0004] Therefore, this utility model provides a warehouse tapping and vibration mechanism to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a bin-beating vibration mechanism, including a bin frame, a feeding component fixedly installed at the front end of the bin frame, a circulating conveying component fixedly installed at the rear inner side of the bin frame, beating vibration components symmetrically fixed on both sides of the bin frame, and a receiving component fixedly installed at the bottom front end of the bin frame.
[0006] The feeding assembly includes an inclined feeding hopper, side baffles are symmetrically and vertically fixed on both sides of the front end of the hopper frame, a front baffle is fixed to the front end of the two side baffles, and the bottom end of the feeding hopper is fixed to the top of the two side baffles and the top of the front baffle.
[0007] Preferably, the circulating material conveying assembly includes a vertically arranged conveyor frame, which is vertically fixedly installed inside the rear of the silo frame. A reducer is fixed to the top of one side of the conveyor frame, and a servo motor is fixed to the front end of the reducer. The output shaft of the servo motor is fixedly connected to the input shaft of the reducer. A transmission shaft is fixed to the output shaft of the reducer, and transmission sprockets are symmetrically fixed on both sides of the surface of the transmission shaft.
[0008] Preferably, a driven shaft is rotatably mounted at the bottom of the conveyor frame, and driven sprockets are symmetrically fixed on both sides of the driven shaft surface. The two drive sprockets correspond one-to-one with the two driven sprockets, and the corresponding drive sprockets and driven sprockets are connected by a drive chain.
[0009] Preferably, the circulating material conveying assembly further includes several first connecting plates, with the two ends of the first connecting plates respectively fixed to the surfaces of two transmission chains, and several material stop bars fixed to the surfaces of the first connecting plates.
[0010] Preferably, the tapping vibration assembly includes an infrared sensor, which is fixedly installed below the front end of the conveyor frame.
[0011] Preferably, the slapping vibration assembly further includes two first cylinders, which are symmetrically fixed on both sides of the bin frame. The output shafts of the first cylinders all pass through the side baffles, and each first cylinder output shaft is fixed with a slapping plate. A plurality of the material blocking rods pass through the space between the two slapping plates.
[0012] Preferably, the receiving assembly includes a longitudinally arranged second cylinder, which is fixedly installed at the middle of the bottom front end of the silo frame. A second connecting plate is fixed to the rear end of the output shaft of the second cylinder, and a plurality of receiving rods are fixed to the rear end of the second connecting plate. The plurality of receiving rods are staggered from the plurality of blocking rods.
[0013] The beneficial effects of this utility model are: by using the combination of the set rack, feeding component, circulating conveying component, tapping and vibration component and receiving component, bagged products can be tapped and vibrated in batches, so that each batch of bagged products is aligned and stacked and unloaded, eliminating the need for manual stacking by operators, which greatly improves packaging efficiency and reduces the labor intensity of operators, making it suitable for promotion. Attached Figure Description
[0014] Figure 1 A three-dimensional structural view provided for this utility model;
[0015] Figure 2 A partial three-dimensional view of the structure provided for this utility model;
[0016] Figure 3 A partial three-dimensional view of the structure provided for this utility model;
[0017] Figure 4 A partial three-dimensional view of the structure provided for this utility model.
[0018] In the diagram: 1. Container frame; 2. Feed hopper; 3. Front baffle; 4. Side baffle; 5. Conveyor frame; 6. Reducer; 7. Servo motor; 8. Drive shaft; 9. Drive sprocket; 10. Driven shaft; 11. Driven sprocket; 12. Drive chain; 13. First connecting plate; 14. Material stop bar; 15. Infrared sensor; 16. First cylinder; 17. Beating plate; 18. Second cylinder; 19. Second connecting plate; 20. Receiving rod. Detailed Implementation
[0019] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.
[0020] Please refer to the appendix. Figures 1-4 The present invention provides a bin tapping vibration mechanism, including a bin frame 1, a feeding component fixedly installed at the front end of the bin frame 1, a circulating conveying component fixedly installed at the rear inner side of the bin frame 1, tapping vibration components symmetrically fixed on both sides of the bin frame 1, and a receiving component fixedly installed at the bottom front end of the bin frame 1.
[0021] The feeding assembly includes an inclined feeding hopper 2, side baffles 4 are symmetrically and vertically fixed on both sides of the front end of the frame 1, and a front baffle 3 is fixed to the front end of the two side baffles 4. The bottom end of the feeding hopper 2 is fixed to the top of the two side baffles 4 and the top of the front baffle 3. It should be noted that the feeding hopper 2 is connected to an external belt conveyor, and bagged products can be transported to the feeding hopper 2 and then fall between the front baffle 3 and the two side baffles 4 under the action of gravity.
[0022] The circulating material conveying assembly includes a vertically arranged conveyor frame 5, which is vertically fixed inside the rear of the bin frame 1. A reducer 6 is fixed to the top of one side of the conveyor frame 5. The reducer is a transmission device used for low-speed, high-torque transmission. It reduces the speed of the high-speed motor by having a gear with fewer teeth on the input shaft mesh with a large gear on the output shaft. A servo motor 7 is fixed to the front end of the reducer 6. The output shaft of the servo motor 7 is fixedly connected to the input shaft of the reducer 6. A drive shaft 8 is fixed to the output shaft of the reducer 6. Symmetrically fixed on both sides of the surface of the drive shaft 8 are... The drive sprocket 9 and the conveyor frame 5 are rotatably mounted on the bottom of the drive shaft 10. Driven sprockets 11 are symmetrically fixed on both sides of the surface of the driven shaft 10. The two drive sprockets 9 and the two driven sprockets 11 correspond to each other. The corresponding drive sprockets 9 and driven sprockets 11 are connected by a drive chain 12. Specifically, under the deceleration action of the reducer 6, when the servo motor 7 is running, it can drive the drive shaft 8 to rotate slowly, thereby driving the drive sprockets 9 to rotate synchronously. Thus, the driven shaft 10 can be driven to rotate synchronously through the driven sprockets 9 and the driven chain 12.
[0023] The circulating material conveying assembly also includes several first connecting plates 13. The two ends of the first connecting plates 13 are respectively fixed to the surfaces of two transmission chains 12. Several baffle rods 14 are fixed on the surfaces of the first connecting plates 13. Specifically, when the servo motor 7 runs and drives the two transmission chains 12 to rotate, it can drive several first connecting plates 13 to rotate cyclically, thereby driving several baffle rods 14 on each first connecting plate 13 to rotate cyclically. Under the action of gravity, the bagged products can fall onto the several baffle rods 14 on the corresponding first connecting plate 13. At this time, the batch of bagged products are randomly placed on the baffle rods 14.
[0024] The tack vibration assembly includes an infrared sensor 15, which is fixedly installed below the front end of the conveyor frame 5. The tack vibration assembly also includes two first cylinders 16, which are symmetrically fixed on both sides of the silo frame 1. The output shafts of the first cylinders 16 all pass through the side baffles 4, and each first cylinder 16 output shaft is fixed with a tack plate 17. Several baffle rods 14 pass through the space between the two tack plates 17. Specifically, when the bagged products that fall onto the corresponding baffle rod 14 move down onto the infrared sensor 15 as the baffle rod 14 rotates, the infrared sensor 15 can output a signal to the main controller (not shown in the figure). Then the main controller controls the first cylinders 16 to run. When the first cylinders 16 run, they can drive the tack plates 17 to move towards each other, thereby tack vibration of the batch of bagged products, so that the bagged products randomly placed on the baffle rods 14 are aligned and stacked.
[0025] The receiving assembly includes a longitudinally arranged second cylinder 18, which is fixedly installed at the middle of the bottom front end of the hopper frame 1. A second connecting plate 19 is fixed to the rear end of the output shaft of the second cylinder 18, and several receiving rods 20 are fixed to the rear end of the second connecting plate 19. The receiving rods 20 are staggered from the material blocking rods 14. Specifically, when the material blocking rod 14 continues to rotate and moves down to below the receiving rod 20, the bagged products that are aligned and stacked on it can be received by the receiving rod 20. Then the material blocking rod 14 continues to rotate to realize the function of circulating material feeding. Then the second cylinder 18 runs, controlling the receiving rod 20 to move forward, which can drive the aligned and stacked bagged products to move forward and be unloaded.
[0026] It should be noted that this utility model is electrically connected to an external main controller and 220V AC mains power, and the main controller can be an existing technology device such as a computer for control.
[0027] The usage process of this utility model is as follows: The feeding hopper 2 connects to an external belt conveyor, allowing bagged products to be transported to the feeding hopper 2. Under gravity, the products fall between the front baffle 3 and the two side baffles 4. With the deceleration effect of the reducer 6, when the servo motor 7 runs, it drives the transmission shaft 8 to rotate slowly, thereby driving the transmission sprocket 9 to rotate synchronously. This, in turn, drives the driven shaft 10 to rotate synchronously via the driven sprocket 9 and driven chain 12. When the servo motor 7 drives the two transmission chains 12 to rotate, it drives several first connecting plates 13 to rotate cyclically, thereby driving several baffle bars 14 on each first connecting plate 13 to rotate cyclically. Under gravity, the bagged products fall onto the corresponding baffle bars 14 on the first connecting plate 13. At this time, the batch of bagged products can be randomly placed on the baffle bars 14, allowing for batch conveying of the bagged products. When the bagged products fall onto the corresponding baffle bars 14, they move along with the baffle bars 14... When the rotating cylinder moves down to the infrared sensor 15, the infrared sensor 15 can output a signal to the main controller. Then, the main controller controls the first cylinder 16 to run. When the first cylinder 16 runs, it can drive the beater plate 17 to move towards each other, thereby beating and vibrating the batch of bagged products, so that several bagged products randomly placed on the baffle bar 14 are aligned and stacked. This allows the bagged products to be beaten and vibrated in batches, so that each batch of bagged products is aligned and stacked. When the baffle bar 14 continues to rotate down to below the receiving bar 20, the bagged products that have been aligned and stacked on it can be received by the receiving bar 20. Then, the baffle bar 14 continues to rotate to realize the function of circulating material feeding. Then, the second cylinder 18 runs, controlling the receiving bar 20 to move forward, which can drive the aligned and stacked bagged products forward to be unloaded. This ensures that each batch of bagged products is aligned, stacked and unloaded, eliminating the need for manual stacking by operators, greatly improving packaging efficiency and reducing the labor intensity of operators.
[0028] The above description is merely a preferred embodiment of this utility model. Any person skilled in the art can modify this utility model or modify it into an equivalent technical solution using the technical solution described above. Therefore, any simple modifications or equivalent substitutions made based on the technical solution of this utility model are within the scope of protection claimed by this utility model.
Claims
1. A bin rapping vibration mechanism comprising a bin frame (1), characterised in that: A feeding assembly is fixedly installed at the front end of the bin frame (1), a circulating conveying assembly is fixed at the rear inner side of the bin frame (1), a slapping vibration assembly is symmetrically fixed on both sides of the bin frame (1), and a receiving assembly is fixed at the bottom front end of the bin frame (1). The feeding assembly includes an inclined feeding hopper (2), and side baffles (4) are symmetrically and vertically fixed on both sides of the front end of the bin frame (1). A front baffle (3) is fixed to the front end of the two side baffles (4). The bottom end of the feeding hopper (2) is fixed to the top end of the two side baffles (4) and the top end of the front baffle (3).
2. The cartridge beater vibration mechanism according to claim 1, characterized by: The circulating material conveying assembly includes a vertically arranged conveyor frame (5), which is vertically fixedly installed inside the rear of the bin frame (1). A reducer (6) is fixed at the top of one side of the conveyor frame (5), and a servo motor (7) is fixed at the front end of the reducer (6). The output shaft of the servo motor (7) is fixedly connected to the input shaft of the reducer (6). A transmission shaft (8) is fixed to the output shaft of the reducer (6), and transmission sprockets (9) are symmetrically fixed on both sides of the surface of the transmission shaft (8).
3. A cartridge beater vibration mechanism according to claim 2, wherein: The bottom of the conveyor frame (5) is rotatably mounted with a driven shaft (10). Driven sprockets (11) are symmetrically fixed on both sides of the surface of the driven shaft (10). The two drive sprockets (9) and the two driven sprockets (11) correspond to each other. The corresponding drive sprockets (9) and driven sprockets (11) are connected by a drive chain (12).
4. A cartridge beater vibration mechanism according to claim 3, wherein: The circulating material conveying assembly also includes several first connecting plates (13), with the two ends of the first connecting plates (13) respectively fixed to the surfaces of two transmission chains (12), and several baffle rods (14) fixed to the surfaces of the first connecting plates (13).
5. A cartridge percussion mechanism according to claim 4, wherein: The slapping vibration assembly includes an infrared sensor (15), which is fixedly installed below the front end of the conveyor frame (5).
6. A cartridge percussion mechanism according to claim 5, wherein: The slapping vibration assembly also includes two first cylinders (16), which are symmetrically fixed on both sides of the bin frame (1). The output shafts of the first cylinders (16) all pass through the side baffles (4), and the output shafts of the first cylinders (16) are all fixed with slapping plates (17). Several of the material blocking rods (14) pass through the space between the two slapping plates (17).
7. A cartridge percussion mechanism according to claim 6, wherein: The receiving assembly includes a longitudinally arranged second cylinder (18), which is fixedly installed at the middle of the bottom front end of the bin frame (1). A second connecting plate (19) is fixed to the rear end of the output shaft of the second cylinder (18), and a plurality of receiving rods (20) are fixed to the rear end of the second connecting plate (19). The plurality of receiving rods (20) are staggered from the plurality of blocking rods (14).