Chain plate assembly line facilitating feeding and discharging

By designing a chain plate assembly line with a motor drive system, the problems of low stability and efficiency when loading spherical parts are solved, stable loading and speed control of spherical parts are achieved, and loading efficiency is improved.

CN223032153UActive Publication Date: 2025-06-27ZHUHAI TONGYUAN MECHANICAL & ELECTRICAL EQUIPMENT CO LTD
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Patent Information

Application Number
CN202422264451.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-18
Publication Date
2025-06-27
Estimated Expiration
2034-09-18

AI Technical Summary

Technical Problem

When loading spherical parts on the chain plate assembly line, it is difficult to place them stably, and it is easy to roll or bounce irregularly, resulting in low loading efficiency and difficult to control the loading speed.

Method used

A chain plate assembly line is designed to facilitate loading and unloading, including a shell, loading groove, conveying groove, rotating groove and motor drive system. The motor drives the rotation shaft, bevel teeth and pulleys to rotate, and power is transmitted to the feeding parts, control parts and quantitative parts to achieve stable feeding and speed control of spherical parts.

Benefits of technology

It effectively reduces the probability of spherical parts rolling or bounces irregularly during the loading process, improves loading efficiency, and achieves accurate control of loading speed.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN223032153U_ABST
    Figure CN223032153U_ABST
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Abstract

The utility model discloses a chain plate assembly line convenient for feeding and discharging, which relates to the technical field of feeding and comprises a chain plate assembly line body, a support frame, a shell, a feeding component, a quantifying component and a control component. When spherical parts need to be fed, the spherical parts are placed in the feeding port in the upper end of the shell, then the motor is started through external control equipment, and the motor transmits power to the feeding component, the control component and the quantifying component. The spherical parts are conveyed into the conveying groove from the feeding port through the feeding groove through the feeding part, then the passing amount of the spherical parts is controlled through the control part so that the feeding speed can be controlled, and after passing through the quantifying part, the spherical parts can be conveyed into the box body along the conveying groove and the connecting plate and buffered through the control part; and therefore, the probability of irregular rolling or bouncing of the spherical parts of the chain plate assembly line body is reduced, and the feeding efficiency is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of loading, in particular to a chain plate assembly line convenient for loading and unloading. Background Art

[0002] The chain plate assembly line uses standard chain plates as the bearing surface and is driven by a motor reducer to achieve fast and stable conveying of materials. This conveying method can bear a large load, is suitable for long-distance conveying, and the conveying speed can be adjusted to meet the needs of different production rhythms.

[0003] In current factory production, it is common to combine manual labor with a chain plate assembly line for product assembly. This method combines the flexibility of humans and the efficiency of machines, aiming to improve production efficiency and product quality. During the assembly process, manual labor is required to continuously load materials at one end of the chain plate assembly line for assembly.

[0004] However, during the loading process of spherical parts, due to their smooth outer shape characteristics, these parts are often difficult to place stably during loading, and are prone to irregular rolling or bouncing during loading, and then deviate from the predetermined area of the chain plate assembly line, significantly reducing the loading efficiency. In addition, the manual loading method is difficult to accurately control the loading speed, which not only increases the operation difficulty but also directly affects the subsequent assembly efficiency. Summary of the Utility Model

[0005] The purpose of the utility model is to provide a chain plate assembly line convenient for loading and unloading to solve the problems raised in the above background art.

[0006] To solve the above technical problems, the technical solution adopted by the utility model is:

[0007] A chain plate assembly line convenient for loading and unloading, comprising:

[0008] The chain plate assembly line body, a support frame is arranged at one end of the chain plate assembly line body, the support frame is fixedly connected with the chain plate assembly line body, a shell is fixedly connected above the support frame, a feed inlet is opened at the top of the shell, a loading groove, a conveying groove, a rotating groove and a cavity are respectively opened inside the shell, a motor is fixedly connected to one side of the shell, a rotating shaft is rotatably connected inside the shell, a bevel gear is fixedly connected to the end of the rotating shaft far away from the motor, a first belt pulley is fixedly connected to the end of the rotating shaft close to the motor, a box body is arranged above the chain plate assembly line body, the box body is fixedly connected with the chain plate assembly line body by bolts, a loading component for loading is connected inside the shell, the loading component is located inside the loading groove, a quantitative component for controlling the loading speed is connected inside the shell, a control component for buffering parts is connected inside the box body, a connecting plate is fixedly connected to one side of the shell close to the box body, the other end of the connecting plate is fixedly connected with the box body, and the connecting plate is hollow inside.

[0009] When feeding spherical parts, place the spherical parts into the feed port at the upper end of the housing. Then, start the motor through an external control device. The start of the motor will drive the rotating shaft fixedly connected to its output end to rotate. The rotation of the rotating shaft will drive the bevel gears and the first belt pulley fixedly connected to it to rotate, thereby transmitting power to the feeding component, the control component, and the metering component respectively. The feeding component conveys the spherical parts from the feed port to the conveying trough through the feeding trough, and then the control component controls the amount of spherical parts passing through to control the feeding speed. When the spherical parts pass through the metering component, they will be conveyed to the box body along the conveying trough and the connecting plate. The control component buffers the spherical parts, thereby reducing the probability of the spherical parts on the chain plate assembly line body rolling or bouncing randomly, and thus improving the feeding efficiency.

[0010] A further improvement of the technical solution of the present utility model lies in that: the feeding component includes a transmission shaft, the transmission shaft is rotatably connected to the housing, the transmission shaft is perpendicular to the rotating shaft, a bevel gear is fixedly connected to one end of the transmission shaft close to the bevel gear, the bevel gears are meshed with each other, and the meshed bevel gears are all located in the cavity. A auger is fixedly connected to the end of the transmission shaft away from the bevel gear, and the auger is located inside the feeding trough.

[0011] Adopting the above technical solution, in this solution, when the motor starts to drive the bevel gear to rotate, the power will be transmitted to the transmission shaft through the meshed bevel gears, thereby driving the auger fixedly connected to it to rotate. The rotation of the auger can convey the spherical parts from the feed port to the conveying trough. Because there is a large amount of feeding at the feed port at one time, the rotation of the auger can prevent the spherical parts from being blocked at the feed port, thereby improving the feeding efficiency.

[0012] A further improvement of the technical solution of the present utility model lies in that: the metering component includes a control component including a turntable, the turntable is fixedly connected to the transmission shaft, a plurality of through grooves are evenly arranged along the circumferential direction on the turntable, a plurality of sliding grooves are evenly arranged along the circumferential direction inside the turntable, a slider is slidably connected inside the sliding groove, the slider is used in cooperation with the through groove, one end of the slider is rotatably connected to a bolt, and the bolt is threadedly connected to the turntable.

[0013] Adopting the above technical solution, in this solution, when the spherical parts are conveyed to the conveying trough by the feeding component, at the same time, the transmission shaft drives the turntable fixedly connected to it to rotate. When the through groove of the turntable rotates to the lower part of the conveying trough, the spherical parts will continue to slide down through the turntable until they are conveyed to the box body through the connecting plate. At the same time, when it is necessary to improve the feeding efficiency, the bolt can be rotated. The rotation of the bolt will drive the slider to move, so that a plurality of through grooves are opened, increasing the amount of spherical parts passing through per unit time, and thus improving the feeding efficiency.

[0014] A further improvement of the technical solution of the present utility model lies in that: the control component includes a sliding shaft, the sliding shaft is rotatably connected to the box body, a concentric disk is fixedly connected to the outer side of the sliding shaft, a placement groove is provided on the concentric disk, a second pulley is fixedly connected to the sliding shaft, and the first pulley and the second pulley are connected by a belt for transmission, and a first empty groove and a second empty groove are respectively provided on the box body.

[0015] With the above technical solution, in this solution, when the spherical part is transported into the box body through the turntable, at this time the spherical part will be stored inside the first empty groove. At the same time, the rotation of the rotating shaft will drive the first pulley to rotate, and then the first pulley drives the second pulley to rotate through the belt, thereby driving the sliding shaft to rotate. The rotation of the sliding shaft will drive the concentric disk to rotate, so that the spherical part falls into the placement groove, and then the sliding shaft drives the concentric disk to rotate so that the spherical part falls into the second empty groove. By providing the placement groove, the quantity of the spherical parts can be quantitatively controlled, and at the same time the spherical parts are arranged under the action of the chain plate assembly line body.

[0016] A further improvement of the technical solution of the present utility model lies in that: the control component further includes a baffle plate, a moving groove is provided on the box body, the baffle plate is slidably connected to the moving groove, first support plates are respectively fixedly connected to both ends of the baffle plate, second support plates are symmetrically fixedly connected to both ends of the box body, a return spring is provided between the first support plate and the second support plate, one end of the return spring is fixedly connected to the first support plate, the other end of the return spring is fixedly connected to the second support plate, and lever rods are respectively fixedly connected to both ends of the sliding shaft, and the lever rods are symmetrically arranged and cooperate with the baffle plate.

[0017] With the above technical solution, in this solution, when the sliding shaft rotates, it can drive the lever rod to rotate, so that the lever rod squeezes the baffle plate. At this time, the baffle plate rises, so that the first support plate moves upward, and the return spring is in a compressed state. Originally, the spherical parts are arranged under the action of the chain plate assembly line body and the baffle plate. When the baffle plate rises, the spherical parts move under the action of the chain plate assembly line body, and then the baffle plate resets, thereby reducing the probability of the spherical parts on the chain plate assembly line body rolling or bouncing irregularly.

[0018] A further improvement of the technical solution of the present utility model lies in that: an anti-slip layer is provided inside the connecting plate, and the material of the anti-slip layer is rubber.

[0019] With the above technical solution, in this solution, by providing an anti-slip layer made of rubber, the rolling spherical parts can be buffered, so that the speed of the spherical parts is slowed down.

[0020] A further improvement of the technical solution of the present utility model lies in that: a plurality of placement grooves are evenly arranged along the circumferential direction.

[0021] With the above technical solution, in this solution, by providing a number of placement slots, the speed of spherical parts being transported from the first empty slot on the box body to the second empty slot per unit time can be increased, thereby improving the feeding efficiency of the spherical parts.

[0022] Due to the adoption of the above technical solution, the technical progress achieved by the present utility model compared with the prior art is as follows:

[0023] 1. The present utility model provides a chain plate assembly line that facilitates loading and unloading. When loading spherical parts, the spherical parts are placed into the feeding port at the upper end of the housing, and then the motor is started by an external control device. The start of the motor drives the rotating shaft fixedly connected to its output end to rotate. The rotation of the rotating shaft drives the bevel gear and the first belt pulley fixedly connected to it to rotate, thereby transmitting power to the feeding component, the control component, and the metering component respectively. The feeding component transports the spherical parts from the feeding port through the feeding slot to the conveying slot, and then the control component controls the amount of spherical parts passing through to control the feeding speed. When the spherical parts pass through the metering component, they are transported along the conveying slot and the connecting plate to the box body, and the control component buffers the spherical parts, thereby reducing the probability of the spherical parts on the chain plate assembly line body rolling or bouncing randomly, thereby improving the feeding efficiency.

[0024] 2. The present utility model provides a chain plate assembly line that facilitates loading and unloading. When the motor starts and drives the bevel gear to rotate, the power is transmitted to the transmission shaft through the meshing bevel gears, thereby driving the auger fixedly connected to it to rotate. By the rotation of the auger, the spherical parts can be transported from the feeding port to the conveying slot. Since there is a relatively large amount of feeding at the feeding port at one time, by providing the rotation of the auger, it can prevent the spherical parts from being blocked at the feeding port, thereby improving the feeding efficiency.

[0025] 3. The present utility model provides a chain plate assembly line that facilitates loading and unloading. When the spherical parts are transported to the conveying slot by the feeding component, at the same time, the transmission shaft drives the turntable fixedly connected to it to rotate. When the through slot of the turntable rotates to the lower part of the conveying slot, the spherical parts will continue to slide down through the turntable until they are transported to the box body through the connecting plate. At the same time, when it is necessary to improve the feeding efficiency, the bolt can be rotated. The rotation of the bolt drives the slider to move, so that a number of through slots are opened, increasing the amount of spherical parts passing through per unit time, thereby improving the feeding efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] The following further describes the present utility model with reference to the drawings.

[0027] Figure 1 is a schematic structural diagram of the present utility model;

[0028] Figure 2 is a schematic cross-sectional structure diagram of the first section of the present utility model;

[0029] Figure 3 This is a schematic diagram of the second cross-sectional structure of the present utility model;

[0030] Figure 4 This is a schematic diagram of the turntable structure of the present utility model;

[0031] Figure 5 This is a schematic diagram of a partial structure of the control component of the present utility model;

[0032] Figure 6 This is a schematic diagram of the box body structure of the present utility model;

[0033] Figure 7 This is an enlarged schematic diagram of part A of the present utility model;

[0034] Figure 8 This is an enlarged schematic diagram of part B of the present utility model.

[0035] In the figure: 1. Chain plate assembly line body; 2. Support frame; 3. Shell; 4. Feeding port; 5. Loading chute; 6. Conveyor chute; 7. Rotating chute; 8. Cavity; 9. Motor; 10. Rotating shaft; 11. Bevel gear; 12. First pulley; 13. Box body; 14. Connecting plate; 15. Transmission shaft; 16. Auger; 17. Turntable; 18. Through groove; 19. Slide groove; 20. Slide block; 21. Bolt; 22. Slide shaft; 23. Concentric disk; 24. Placing groove; 25. Second pulley; 26. First empty groove; 27. Second empty groove; 28. Baffle; 29. Moving groove; 30. First support plate; 31. Second support plate; 32. Return spring; 33. Poking rod; 34. Anti-slip layer. Specific embodiments

[0036] The following further describes the present utility model in detail with reference to embodiments:

[0037] Embodiment 1

[0038] As Figure 1 、 Figure 2 and Figure 3 shown, the present utility model provides a chain plate assembly line that facilitates loading and unloading, including:

[0039] The chain plate assembly line body 1 is provided with a support frame 2 at one end. The support frame 2 is fixedly connected to the chain plate assembly line body 1. Above the support frame 2, a housing 3 is fixedly connected. A feed inlet 4 is opened at the top of the housing 3. Inside the housing 3, a loading chute 5, a conveying chute 6, a rotating chute 7 and a cavity 8 are respectively opened. A motor 9 is fixedly connected to one side of the housing 3. A rotating shaft 10 is rotatably connected inside the housing 3. A bevel gear 11 is fixedly connected to the end of the rotating shaft 10 away from the motor 9. A first belt pulley 12 is fixedly connected to the end of the rotating shaft 10 close to the motor 9. Above the chain plate assembly line body 1, a box body 13 is provided. The box body 13 is fixedly connected to the chain plate assembly line body 1 through bolts 21. Inside the housing 3, a loading component for loading is connected. The loading component is located inside the loading chute 5. Inside the housing 3, a metering component for controlling the loading speed is connected. Inside the box body 13, a control component for buffering parts is connected. One side of the housing 3 close to the box body 13 is fixedly connected to a connecting plate 14. The other end of the connecting plate 14 is fixedly connected to the box body 13. The connecting plate 14 is hollow inside.

[0040] In this embodiment, when it is necessary to load spherical parts, the spherical parts are placed into the feed inlet 4 at the upper end of the housing 3, and then the motor 9 is started through an external control device. The start of the motor 9 will drive the rotating shaft 10 fixedly connected to its output end to rotate. The rotation of the rotating shaft 10 will drive the bevel gear 11 and the first belt pulley 12 fixedly connected to it to rotate, so as to transmit power to the loading component, the control component and the metering component respectively. The spherical parts are conveyed from the feed inlet 4 through the loading chute 5 to the conveying chute 6 by the loading component, and then the control component controls the amount of spherical parts passing through to control the loading speed. When the spherical parts pass through the metering component, they will be conveyed along the conveying chute 6 and the connecting plate 14 to the box body 13, and the control component buffers the spherical parts, so as to reduce the probability of random rolling or bouncing of the spherical parts on the chain plate assembly line body 1, thereby improving the loading efficiency.

[0041] As Figure 2 and Figure 3 shown, in this embodiment, preferably, the loading component includes a transmission shaft 15. The transmission shaft 15 is rotatably connected to the housing 3. The transmission shaft 15 is perpendicular to the rotating shaft 10. A bevel gear 11 is fixedly connected to the end of the transmission shaft 15 close to the bevel gear 11. The bevel gears 11 mesh with each other. The meshing bevel gears 11 are all located inside the cavity 8. A auger 16 is fixedly connected to the end of the transmission shaft 15 away from the bevel gear 11. The auger 16 is located inside the loading chute 5.

[0042] When the motor 9 starts to drive the bevel gear 11 to rotate, the power will be transmitted to the transmission shaft 15 through the meshing bevel gears 11, thereby driving the auger 16 fixedly connected thereto to rotate. By the rotation of the auger 16, the spherical parts can be conveyed from the feeding port 4 to the conveying trough 6. Since there is a relatively large amount of feeding at one time at the feeding port, the rotation of the auger 16 is provided to prevent the spherical parts from being blocked at the feeding port 4, thereby improving the feeding efficiency.

[0043] As Figure 3 and Figure 4 shown, preferably, the quantitative component includes a control component including a turntable 17. The turntable 17 is fixedly connected to the transmission shaft 15. A plurality of through grooves 18 are evenly arranged along the circumferential direction on the turntable 17. A plurality of sliding grooves 19 are evenly arranged along the circumferential direction inside the turntable 17. A slider 20 is slidably connected inside the sliding groove 19. The slider 20 is used in cooperation with the through groove 18. One end of the slider 20 is rotatably connected to a bolt 21. The bolt 21 is threadedly connected to the turntable 17.

[0044] When the spherical parts are conveyed to the conveying trough 6 by the feeding component, at the same time, the transmission shaft 15 drives the turntable 17 fixedly connected thereto to rotate. When the through groove 18 of the turntable 17 rotates to the lower part of the conveying trough 6, the spherical parts will continue to slide down through the turntable 17 until they are conveyed into the box body 13 through the connecting plate 14. At the same time, when it is necessary to improve the feeding efficiency, the bolt 21 can be rotated. The rotation of the bolt 21 will drive the slider 20 to move, so that a plurality of through grooves 18 are opened, increasing the amount of spherical parts passing through per unit time, thereby improving the feeding efficiency.

[0045] As Figure 6 shown, preferably, the control component includes a sliding shaft 22. The sliding shaft 22 is rotatably connected to the box body 13. A concentric disk 23 is fixedly connected to the outside of the sliding shaft 22. A placement groove 24 is opened on the concentric disk 23. A second pulley 25 is fixedly connected to the sliding shaft 22. The first pulley 12 and the second pulley 25 are connected by a belt drive. A first empty groove 26 and a second empty groove 27 are respectively opened on the box body 13.

[0046] When the spherical parts are conveyed into the box body 13 through the turntable 17, at this time, the spherical parts will be stored inside the first empty groove 26. At the same time, the rotation of the rotating shaft 10 will drive the first pulley 12 to rotate. Then the first pulley 12 drives the second pulley 25 to rotate through the belt, thereby driving the sliding shaft 22 to rotate. The rotation of the sliding shaft 22 will drive the concentric disk 23 to rotate, causing the spherical parts to fall into the placement groove 24. Then the sliding shaft 22 drives the concentric disk 23 to rotate so that the spherical parts fall into the second empty groove 27. By providing the placement groove 24, the quantity of the spherical parts can be quantitatively controlled. At the same time, the spherical parts are arranged under the action of the chain plate assembly line body 1.

[0047] AsFigure 7 As shown, preferably, the control component further includes a baffle plate 28. A moving groove 29 is formed on the box body 13. The baffle plate 28 is slidably connected to the moving groove 29. The two ends of the baffle plate 28 are respectively fixedly connected to a first support plate 30. The two ends of the box body 13 are symmetrically and fixedly connected with second support plates 31. A return spring 32 is arranged between the first support plate 30 and the second support plate 31. One end of the return spring 32 is fixedly connected to the first support plate 30, and the other end of the return spring 32 is fixedly connected to the second support plate 31. The two ends of the sliding shaft 22 are respectively fixedly connected with a lever 33. The levers 33 are symmetrically arranged and cooperate with the baffle plate 28.

[0048] When the sliding shaft 22 rotates, it can drive the lever 33 to rotate, so that the lever 33 presses the baffle plate 28. At this time, the baffle plate 28 rises, causing the first support plate 30 to move upward, and the return spring 32 is in a compressed state. The original spherical parts are arranged under the action of the chain plate assembly line body 1 and the baffle plate 28. When the baffle plate 28 rises, the spherical parts move under the action of the chain plate assembly line body 1, and then the baffle plate 28 resets, thereby reducing the probability of random rolling or bouncing of the spherical parts on the chain plate assembly line body 1.

[0049] As Figure 8 shown, preferably, an anti-slip layer 34 is arranged inside the connecting plate 14, and the material of the anti-slip layer 34 is rubber.

[0050] By arranging the anti-slip layer 34 made of rubber, the rolling spherical parts can be buffered, so that the speed of the spherical parts is slowed down.

[0051] As Figure 5 shown, preferably, a plurality of placing grooves 24 are evenly arranged along the circumferential direction.

[0052] By arranging a plurality of placing grooves 24, the speed of the spherical parts being conveyed from the first empty groove 26 on the box body 13 to the second empty groove 27 per unit time can be increased, thereby improving the feeding efficiency of the spherical parts.

[0053] The working principle of the chain plate assembly line for convenient loading and unloading will be specifically described below.

[0054] As Figures 1 - 8As shown in the figure, when feeding spherical parts, the spherical parts are placed into the feeding port 4 at the upper end of the housing 3, and then the motor 9 is started by an external control device. The start of the motor 9 drives the rotating shaft 10 fixedly connected to its output end to rotate. The rotation of the rotating shaft 10 drives the bevel gear 11 and the first belt pulley 12 fixedly connected to it to rotate, thereby transmitting power to the feeding component, the control component, and the metering component respectively. The feeding component conveys the spherical parts from the feeding port 4 through the feeding groove 5 to the conveying groove 6, and then the control component controls the amount of spherical parts passing through to control the feeding speed. When the spherical parts pass through the metering component, they will be conveyed along the conveying groove 6 and the connecting plate 14 into the box body 13, and the control component buffers the spherical parts, thereby reducing the probability of random rolling or bouncing of the spherical parts on the chain plate assembly line body 1, and thus improving the feeding efficiency. When the motor 9 starts to drive the bevel gear 11 to rotate, the power is transmitted to the transmission shaft 15 through the meshing bevel gears 11, thereby driving the auger 16 fixedly connected to it to rotate. The rotation of the auger 16 can convey the spherical parts from the feeding port 4 to the conveying groove 6. Because there is a large amount of feeding at the feeding port at one time, the rotation of the auger 16 is provided to prevent the spherical parts from being blocked at the feeding port 4, thereby improving the feeding efficiency. After the spherical parts are conveyed to the conveying groove 6 by the feeding component, at the same time, the transmission shaft 15 drives the turntable 17 fixedly connected to it to rotate. When the through groove 18 of the turntable 17 rotates to the lower part of the conveying groove 6, the spherical parts will continue to slide down through the turntable 17 until they are conveyed into the box body 13 through the connecting plate 14. At the same time, when it is necessary to improve the feeding efficiency, the bolt 21 can be rotated. The rotation of the bolt 21 drives the slider 20 to move, so that a number of through grooves 18 are opened, increasing the amount of spherical parts passing through per unit time, thereby improving the feeding efficiency. When the spherical parts are conveyed into the box body 13 through the turntable 17, the spherical parts are stored inside the first empty groove 26 at this time. At the same time, the rotation of the rotating shaft 10 drives the first belt pulley 12 to rotate, and then the first belt pulley 12 drives the second belt pulley 25 to rotate through the belt, thereby driving the sliding shaft 22 to rotate. The rotation of the sliding shaft 22 drives the concentric disc 23 to rotate, causing the spherical parts to fall into the placement groove 24. Then the sliding shaft 22 drives the concentric disc 23 to rotate, causing the spherical parts to fall into the second empty groove 27. By providing the placement groove 24, the quantity of the spherical parts can be quantitatively controlled, and at the same time, the spherical parts are arranged under the action of the chain plate assembly line body 1.When the sliding shaft 22 rotates, it can drive the lever 33 to rotate, so that the lever 33 squeezes the baffle 28. At this time, the baffle 28 rises, causing the first support plate 30 to move upward, and the return spring 32 is in a compressed state. The original spherical parts are arranged under the action of the chain plate assembly line body 1 and the baffle 28. When the baffle 28 rises, the spherical parts move under the action of the chain plate assembly line body 1, and then the baffle 28 resets, thereby reducing the probability of random rolling or bouncing of the spherical parts on the chain plate assembly line body 1. By providing an anti-slip layer 34 made of rubber material, the rolling spherical parts can be buffered, so that the speed of the spherical parts is slowed down. By providing a number of placement grooves 24, the speed of the spherical parts being conveyed from the first empty groove 26 on the box body 13 to the second empty groove 27 per unit time can be increased, thereby improving the feeding efficiency of the spherical parts.

[0055] The above has generally described the present invention in detail. However, based on the present invention, some modifications or improvements can be made, which are obvious to those of ordinary skill in the art. Therefore, modifications or improvements made without departing from the spirit of the present invention are within the protection scope of the present invention.

Claims

1. A chain plate assembly line that is convenient for loading and unloading, characterized by: A chain plate assembly line body (1), one end of the chain plate assembly line body (1) is provided with a support frame (2), the support frame (2) is fixedly connected to the chain plate assembly line body (1), a shell (3) is fixedly connected above the support frame (2), a feed port (4) is provided at the top of the shell (3), a loading trough (5), a conveying trough (6), a rotating trough (7) and a cavity (8) are respectively provided inside the shell (3), a motor (9) is fixedly connected to one side of the shell (3), a rotating shaft (10) is rotatably connected inside the shell (3), a bevel gear (11) is fixedly connected to the end of the rotating shaft (10) away from the motor (9), and a gear (11) is fixedly connected to the end of the rotating shaft (10) close to the motor (9). One end is fixedly connected with a first pulley (12); a box body (13) is arranged above the chain plate assembly line body (1); the box body (13) is fixedly connected to the chain plate assembly line body (1) by bolts (21); a loading component for loading is connected inside the shell (3); the loading component is located inside the loading trough (5); a quantitative component for controlling the loading speed is connected inside the shell (3); a control component for buffering parts is connected inside the box body (13); a connecting plate (14) is fixedly connected to one side of the shell (3) close to the box body (13); the other end of the connecting plate (14) is fixedly connected to the box body (13); and the connecting plate (14) is hollow.

2. The chain plate assembly line for convenient loading and unloading according to claim 1 is characterized in that: The feeding component comprises a transmission shaft (15), the transmission shaft (15) is rotatably connected to the housing (3), the transmission shaft (15) and the rotating shaft (10) are arranged vertically, one end of the transmission shaft (15) close to the bevel gear (11) is fixedly connected to the bevel gear (11), the bevel gears (11) are meshed with each other, and the meshed bevel gears (11) are all located in the cavity (8), and one end of the transmission shaft (15) away from the bevel gear (11) is fixedly connected to an auger (16), and the auger (16) is located inside the feeding trough (5).

3. The chain plate assembly line for convenient loading and unloading according to claim 2 is characterized in that: The quantitative component comprises a control component comprising a rotating disk (17), the rotating disk (17) is fixedly connected to the transmission shaft (15), a plurality of through grooves (18) are evenly arranged along the circumferential direction on the rotating disk (17), a plurality of slide grooves (19) are evenly arranged along the circumferential direction inside the rotating disk (17), a slider (20) is slidably connected inside the slide groove (19), the slider (20) is used in conjunction with the through groove (18), one end of the slider (20) is rotatably connected to a bolt (21), and the bolt (21) is threadedly connected to the rotating disk (17).

4. The chain plate assembly line for convenient loading and unloading according to claim 3 is characterized in that: The control component comprises a sliding shaft (22), the sliding shaft (22) is rotatably connected to the box body (13), a concentric disk (23) is fixedly connected to the outer side of the sliding shaft (22), a placement groove (24) is provided on the concentric disk (23), a second pulley (25) is fixedly connected to the sliding shaft (22), the first pulley (12) and the second pulley (25) are connected via a belt transmission, and a first empty groove (26) and a second empty groove (27) are respectively provided on the box body (13).

5. The chain plate assembly line for convenient loading and unloading according to claim 4 is characterized in that: The control component also includes a baffle (28), a movable groove (29) is provided on the box body (13), the baffle (28) is slidably connected to the movable groove (29), two ends of the baffle (28) are respectively fixedly connected to the first support plate (30), two ends of the box body (13) are symmetrically arranged and fixedly connected to the second support plate (31), a return spring (32) is arranged between the first support plate (30) and the second support plate (31), one end of the return spring (32) is fixedly connected to the first support plate (30), and the other end of the return spring (32) is fixedly connected to the second support plate (31), and two ends of the sliding shaft (22) are respectively fixedly connected to the shifting rod (33), and the shifting rod (33) is symmetrically arranged to cooperate with the baffle (28) for use.

6. The chain plate assembly line for convenient loading and unloading according to claim 5 is characterized in that: An anti-slip layer (34) is provided inside the connecting plate (14), and the material of the anti-slip layer (34) is rubber.

7. The chain plate assembly line for convenient loading and unloading according to claim 6 is characterized in that: A plurality of placement grooves (24) are evenly arranged along the circumferential direction.