Auxiliary blanking conveying belt structure

CN224753729UActive Publication Date: 2026-09-15广东卓迈智能机械有限公司
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202521900323.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-03
Publication Date
2026-09-15
Estimated Expiration
2035-09-03

AI Technical Summary

Benefits of technology

[0023] During processing, the robotic arm on the production line grips one end of the wire for processing, while the other end is placed on a conveyor belt. The conveyor belt moves away from the production line, causing the end of the wire to move until its length aligns with the length of the conveyor belt. This allows the wire to quickly maintain a perpendicular position to the length of the production line during multiple processing steps. When the robotic arm moves the wire to the end of the production line, the conveyor belt's movement causes the end of the wire away from the production line to have inertia in the same direction as the conveyor belt. This ensures that the length of the wire landing on the receiving plate at the end of the production line is close to the length of the receiving plate, thus ensuring that multiple wires landing on the receiving plate have nearly identical lengths and preventing tangling and confusion among the wires.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224753729U_ABST
    Figure CN224753729U_ABST
Patent Text Reader

Abstract

The utility model discloses an auxiliary unloading conveying belt structure, it includes conveying belt, is located in the assembly line processing side, the conveying direction of conveying belt and the conveying direction of assembly line are perpendicular to each other, and the assembly line is located in the feeding end of conveying belt, when the assembly line operation, the assembly line clamps wire one end, and wire other end is located on the conveying belt, the receiving plate is located in the one side of conveying belt width direction, and the length direction of receiving plate is identical with the length direction of conveying belt, and the one side of receiving plate width direction is attached with the one side of conveying belt close receiving plate, the frame is equipped with two support plates, and two support plates are used for supporting the both ends of driving wheel and driven wheel of conveying belt, the receiving plate is connected in one support plate, and the receiving plate forms the receiving part of receiving wire with support plate. The utility model has orderly guided the wire on the receiving plate near the surface of conveying belt, makes wire be neatly transported to the receiving part, and it is favorable to improve the collection and arrangement efficiency effect of wire.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of wire processing, and in particular to an auxiliary feeding conveyor belt structure. Background Technology

[0002] In the production and processing of wires and cables, after the terminal processing and assembly are completed at the end of the wire, the finished wire needs to be collected and transferred. That is, the wire is transported to the terminal processing assembly line for multi-step processing of the terminals. After the last process on the assembly line, the robotic arm releases the finished wire, causing the finished wire to fall into the collection box at the end of the assembly line.

[0003] However, this traditional collection method has significant drawbacks: the lack of orderly guidance during the free fall of the wires leads to a large number of wires becoming tangled and piled up haphazardly in the collection box, forming disordered clumps or knots. This chaotic collection not only requires workers to spend a lot of time and effort to straighten, classify, and neatly arrange the wires one by one, increasing labor costs and intensity, but may also cause quality problems such as sheath wear and loose terminals due to excessive tangling, affecting product yield. At the same time, it reduces the continuity and automation level of the production process, making it difficult to meet the efficient and precise production needs of modern manufacturing. Utility Model Content

[0004] This utility model provides an auxiliary feeding conveyor belt structure that can automatically stack multiple wires and arrange them neatly in the same direction after the wire terminals are processed.

[0005] This utility model provides a technical solution that adopts the following approach:

[0006] An auxiliary feeding conveyor belt structure includes:

[0007] A conveyor belt is located on the processing side of the assembly line. The conveying direction of the conveyor belt is perpendicular to the conveying direction of the assembly line. The assembly line is located at the feed end of the conveyor belt. When the assembly line is in operation, the assembly line clamps one end of the wire, and the other end of the wire is located on the conveyor belt.

[0008] A receiving plate is disposed on one side of the conveyor belt in the width direction. The length direction of the receiving plate is consistent with the length direction of the conveyor belt, and one side of the receiving plate in the width direction is attached to the side of the conveyor belt near the receiving plate.

[0009] The frame is provided with two support plates, which are used to support the two ends of the drive wheel and driven wheel of the conveyor belt; the receiving plate is connected to one of the support plates, and the receiving plate and the support plate form a receiving part for receiving the wire.

[0010] During processing, the robotic arm on the production line grips one end of the wire for processing, while the other end is placed on a conveyor belt. The conveyor belt moves away from the production line, causing the end of the wire to move until its length aligns with the length of the conveyor belt. This allows the wire to quickly maintain a perpendicular position to the length of the production line during multiple processing steps. When the robotic arm moves the wire to the end of the production line, the conveyor belt's movement causes the end of the wire away from the production line to have inertia in the same direction as the conveyor belt. This ensures that the length of the wire landing on the receiving plate at the end of the production line is close to the length of the receiving plate, thus ensuring that multiple wires landing on the receiving plate have nearly identical lengths and preventing tangling and confusion among the wires.

[0011] After processing, workers can remove the wires in batches from the receiving plate to complete the final unloading operation. Utilizing the movement of the robotic arms on the assembly line, combined with the inertia of the conveyor belt, the wires falling onto the receiving plate near the surface of the conveyor belt are guided in an orderly manner, ensuring that the wires are neatly transported to the receiving section, thus improving the efficiency of wire collection and sorting.

[0012] Preferably, the frame is further provided with a material collection trough, which is located on the same side of the frame as the receiving plate. The material collection trough is located on the side of the receiving plate away from the upper surface of the conveyor belt. There is a gap between the material collection trough and the receiving plate. The receiving plate is rotatably connected to the support plate. When the receiving plate rotates to point its width direction toward the inside of the material collection trough, the wire falls off.

[0013] Once a certain amount of wire has been collected in the receiving section, the receiving plate rotates, simultaneously pouring the wire into the collection trough. This allows workers to easily remove the wire together, completing the unloading operation. Simultaneously, the receiving plate also acts as a guide plate for the wire falling into the collection trough, ensuring the wire falls in a straight line and preventing it from becoming tangled.

[0014] Preferably, a baffle is also connected to the side of the receiving plate away from the support plate. The baffle is inclined and extends from the side connected to the receiving plate toward the direction away from the support plate. When the wire falls, the vertical projection of the side of the baffle away from the receiving plate is located in the collection trough.

[0015] The baffle can block the wire falling from the conveyor belt onto the receiving plate, preventing the wire from falling directly from the receiving plate into the collection trough and causing the wire to become tangled due to excessive drop. When the receiving plate rotates, it drives the baffle to rotate as well. The receiving plate and the baffle form a two-layer guiding structure, which guides the wire to slide more smoothly into the collection trough, making the wire transfer more stable.

[0016] Preferably, the frame is rotatably connected to a drive cylinder, the piston of the drive cylinder is rotatably connected to the bottom wall of the receiving plate, and the piston and the receiving part are respectively located on both sides of the thickness direction of the receiving plate.

[0017] The drive cylinder starts, driving the piston to extend and retract. The extending and retracting piston causes the receiving plate to rotate, and simultaneously, both ends of the cylinder rotate relative to their respective connection points. The piston, connected to the bottom of the receiving plate, also supports the receiving plate, reducing the load on the connection between the receiving plate and the connecting plate.

[0018] Preferably, the depth of the collection trough is greater than the distance from the end of the baffle to the bottom wall of the collection trough when the receiving plate is in the discharge state.

[0019] Limiting the depth of the collection trough can more effectively block wires from sliding off the baffle, preventing them from falling off the side wall of the collection trough and outside the trough.

[0020] Preferably, the bottom wall of the collecting trough is further provided with reinforcing ribs, and the two ends of the reinforcing ribs are respectively fixed to the bottom of the collecting trough and the side wall of the frame.

[0021] The reinforcing ribs can help support the material collection trough, making it more stable when collecting materials, and strengthen the connection between the material collection trough and the frame, making it less likely for the material collection trough to fall off the side wall of the frame.

[0022] In summary, this utility model has the following beneficial technical effects:

[0023] During processing, the robotic arm on the production line grips one end of the wire for processing, while the other end is placed on a conveyor belt. The conveyor belt moves away from the production line, causing the end of the wire to move until its length aligns with the length of the conveyor belt. This allows the wire to quickly maintain a perpendicular position to the length of the production line during multiple processing steps. When the robotic arm moves the wire to the end of the production line, the conveyor belt's movement causes the end of the wire away from the production line to have inertia in the same direction as the conveyor belt. This ensures that the length of the wire landing on the receiving plate at the end of the production line is close to the length of the receiving plate, thus ensuring that multiple wires landing on the receiving plate have nearly identical lengths and preventing tangling and confusion among the wires.

[0024] After processing, workers can remove the wires in batches from the receiving plate to complete the final unloading operation. Utilizing the movement of the robotic arms on the assembly line, combined with the inertia of the conveyor belt, the wires falling onto the receiving plate near the surface of the conveyor belt are guided in an orderly manner, ensuring that the wires are neatly transported to the receiving section, thus improving the efficiency of wire collection and sorting. Attached Figure Description

[0025] Figure 1This is a schematic diagram of the overall structure of an auxiliary feeding conveyor belt according to the present invention.

[0026] Figure 2 This is a schematic diagram used to illustrate the state of the receiving plate during material receiving.

[0027] Figure 3 This is a schematic diagram illustrating the state of the receiving plate during material cutting.

[0028] Explanation of reference numerals in the attached drawings: 1. Conveyor belt; 2. Receiving plate; 3. Frame; 4. Support plate; 5. Drive wheel; 6. Receiving part; 7. Collection trough; 8. Baffle; 9. Drive cylinder; 10. Piston; 11. Reinforcing rib. Detailed Implementation

[0029] The following is in conjunction with the appendix Figure 1-3 The present invention will be described in further detail below.

[0030] This utility model discloses an auxiliary feeding conveyor belt structure.

[0031] Reference Figure 1 as well as Figure 2 An auxiliary feeding conveyor belt 1 structure includes:

[0032] Conveyor belt 1 is located on the processing side of the assembly line. The conveying direction of conveyor belt 1 is perpendicular to the conveying direction of the assembly line. The assembly line is located at the feeding end of conveyor belt 1. When the assembly line is in operation, the assembly line clamps one end of the wire and the other end of the wire is located on conveyor belt 1.

[0033] The receiving plate 2 is located on one side of the conveyor belt 1 in the width direction. The length direction of the receiving plate 2 is consistent with the length direction of the conveyor belt 1. One side of the receiving plate 2 in the width direction is attached to the side of the conveyor belt 1 that is close to the receiving plate 2.

[0034] The frame 3 is provided with two support plates 4, which are used to support the two ends of the drive wheel 5 and the driven wheel of the conveyor belt 1; the receiving plate 2 is connected to one of the support plates 4, and the receiving plate 2 and the support plate 4 form the receiving part 6 for receiving the wire.

[0035] During processing, the robotic arm of the production line clamps one end of the wire for processing, while the other end of the wire is placed on conveyor belt 1. Conveyor belt 1 moves away from the production line, driving the end of the wire to move until the length direction of the wire is consistent with the length direction of conveyor belt 1. This allows the wire to quickly maintain a state perpendicular to the length of the production line during multiple processing steps. When the robotic arm moves the wire to the end of the production line, the end of the wire away from the production line has a motion inertia consistent with the direction of movement of conveyor belt 1 due to the driving effect of conveyor belt 1. This allows the length direction of the wire falling on the receiving plate 2 at the end of the production line to remain close to the length direction of the receiving plate 2. This ensures that the length directions of multiple wires falling on the receiving plate 2 are nearly consistent, preventing the wires from getting tangled or messy.

[0036] After processing, workers can remove the wires from the receiving plate 2 in batches to complete the final unloading operation. By utilizing the movement of the robotic arm on the assembly line, combined with the inertia of the wires provided by the conveyor belt 1, the wires falling onto the receiving plate 2 near the upper surface of the conveyor belt 1 are guided in an orderly manner, so that the wires are neatly transported to the receiving part 6, which helps to improve the efficiency of wire collection and sorting.

[0037] Reference Figure 2 as well as Figure 3 In this embodiment, the frame 3 is also provided with a material collection trough 7. The material collection trough 7 and the receiving plate 2 are located on the same side of the frame 3. The material collection trough 7 is located on the side of the receiving plate 2 away from the upper surface of the conveyor belt 1. There is a gap between the material collection trough 7 and the receiving plate 2. The receiving plate 2 is rotatably connected to the support plate 4. When the receiving plate 2 rotates to point its width direction into the material collection trough 7, the wire falls off.

[0038] Once a certain amount of wire has been collected in the receiving section 6, the receiving plate 2 rotates, simultaneously pouring the wire into the collecting trough 7. This allows workers to easily remove the wire together, thus completing the unloading operation. Simultaneously, the receiving plate 2 also acts as a guide plate for the wire falling into the collecting trough 7, ensuring the wire falls in a straight line and preventing it from becoming tangled.

[0039] Reference Figure 2 as well as Figure 3 In this embodiment, a baffle 8 is also connected to the side of the receiving plate 2 away from the support plate 4. The baffle 8 is inclined and extends from the side connected to the receiving plate 2 toward the direction away from the support plate 4. When the wire falls, the projection of the side of the baffle 8 away from the receiving plate 2 in the vertical direction is located in the material collection trough 7.

[0040] The baffle 8 can block the wire falling from the conveyor belt 1 onto the receiving plate 2, preventing the wire from falling directly from the receiving plate 2 into the collection trough 7, which would cause the wire to become tangled due to excessive drop. When the receiving plate 2 rotates, it drives the baffle 8 to rotate together. The receiving plate 2 and the baffle 8 form a two-layer guide structure, which guides the wire to slide more smoothly into the collection trough 7, making the transfer of the wire more stable.

[0041] Reference Figure 2 as well as Figure 3 In this embodiment, the frame 3 is rotatably connected to the drive cylinder 9, and the piston 10 of the drive cylinder 9 is rotatably connected to the bottom wall of the receiving plate 2. The piston 10 and the receiving part 6 are respectively located on both sides of the thickness direction of the receiving plate 2.

[0042] When the drive cylinder 9 is activated, it drives the piston 10 to extend and retract. The extending and retracting piston 10 causes the receiving plate 2 to rotate, and at the same time, both ends of the cylinder rotate relative to their respective connection points. The piston 10 is connected to the bottom of the receiving plate 2 and can also support the receiving plate 2, reducing the load on the connection point between the receiving plate 2 and the connecting plate.

[0043] Reference Figure 2 as well as Figure 3 In this embodiment, the depth of the collecting trough 7 is greater than the distance from the end of the baffle 8 to the bottom wall of the collecting trough 7 when the receiving plate 2 is in the discharge state.

[0044] Limiting the depth of the collection trough 7 can more effectively block the wires that slide off the baffle 8, preventing the wires from falling off the side wall of the collection trough 7 and outside the collection trough 7.

[0045] Reference Figure 2 as well as Figure 3 In this embodiment, the bottom wall of the material collection trough 7 is also provided with reinforcing ribs 11, and the two ends of the reinforcing ribs 11 are respectively fixed to the bottom of the material collection trough 7 and the side wall of the frame 3.

[0046] The reinforcing rib 11 can help support the material collection trough 7, making the material collection trough 7 more stable when collecting materials, and strengthening the connection between the material collection trough 7 and the frame 3, making the material collection trough 7 less likely to fall off the side wall of the frame 3.

[0047] The above are all preferred embodiments of this utility model, and are not intended to limit the scope of protection of this utility model. Therefore, all equivalent changes made to the structure, shape and principle of this utility model should be covered within the scope of protection of this utility model.

Claims

1. An auxiliary feeding conveyor belt structure, characterized in that, include: A conveyor belt is located on the processing side of the assembly line. The conveying direction of the conveyor belt is perpendicular to the conveying direction of the assembly line. The assembly line is located at the feed end of the conveyor belt. When the assembly line is in operation, the assembly line clamps one end of the wire, and the other end of the wire is located on the conveyor belt. A receiving plate is disposed on one side of the conveyor belt in the width direction. The length direction of the receiving plate is consistent with the length direction of the conveyor belt, and one side of the receiving plate in the width direction is attached to the side of the conveyor belt near the receiving plate. The frame is provided with two support plates, which are used to support the two ends of the drive wheel and driven wheel of the conveyor belt; the receiving plate is connected to one of the support plates, and the receiving plate and the support plate form a receiving part for receiving the wire.

2. The auxiliary feeding conveyor belt structure according to claim 1, characterized in that: The frame is also provided with a material collection trough, which is located on the same side of the frame as the receiving plate. The material collection trough is located on the side of the receiving plate away from the upper surface of the conveyor belt. There is a gap between the material collection trough and the receiving plate. The receiving plate is rotatably connected to the support plate. When the receiving plate rotates to point its width direction toward the inside of the material collection trough, the wire falls off.

3. The auxiliary feeding conveyor belt structure according to claim 2, characterized in that: A baffle is also connected to the side of the receiving plate away from the support plate. The baffle is inclined and extends from the side connected to the receiving plate toward the direction away from the support plate. When the wire falls, the vertical projection of the side of the baffle away from the receiving plate is located in the collection trough.

4. The auxiliary feeding conveyor belt structure according to claim 3, characterized in that: The frame is rotatably connected to a drive cylinder, and the piston of the drive cylinder is rotatably connected to the bottom wall of the receiving plate. The piston and the receiving part are respectively located on both sides of the thickness direction of the receiving plate.

5. The auxiliary feeding conveyor belt structure according to claim 3, characterized in that: The depth of the collection trough is greater than the distance from the end of the baffle to the bottom wall of the collection trough when the receiving plate is in the discharge state.

6. The auxiliary feeding conveyor belt structure according to claim 5, characterized in that: The bottom wall of the material collection trough is also provided with reinforcing ribs, and the two ends of the reinforcing ribs are respectively fixed to the bottom of the material collection trough and the side wall of the frame.