Drawing falling barrel pushing torsion arm
By adding roller contact points to the drawing sliver can pusher arm and utilizing nylon wheels and a long shaft design, the problems of tipping and wear caused by low pusher rollers are solved, achieving more stable and safer fiber sliver can push, improving drawing quality and production line continuity.
Patent Information
- Application Number
- CN202423286568.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-12-30
AI Technical Summary
The existing sliver drop pusher arm has a high center of gravity due to its low pusher roller, which makes it prone to tipping and tilting, causing contact and friction with the top plate, damaging the sliver and the top plate, and posing quality and safety hazards.
Design a torsion arm for pushing the strip into a bucket. By increasing the contact point of the rollers and utilizing the nylon wheel at the upper end of the roller and the long shaft, the contact position is improved, increasing stability and reliability, eliminating wear on the top plate, and preventing injury to workers or equipment.
It improves the stability and reliability of the pushing process, eliminates wear and tear on the top plate, improves the quality of the rolling mill, reduces manual operation, and enhances the continuity and safety of the production line.
Smart Images

Figure CN223620570U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of push torsion arms, and more particularly to a push torsion arm for rolling and dropping into a bucket. Background Technology
[0002] The drawing frame can pusher is an automated device in the textile industry used to automatically push the finished fiber sliver cans (cans) to the next work station or storage area during the production process of the drawing frame (used for finishing and combining fibers).
[0003] However, the existing sliver drop pusher arm is prone to tipping or tilting during use due to the low pusher rollers, resulting in a high center of gravity. This causes contact and friction with the top plate, which can damage the sliver, the sliver canister, and the top plate. It can also easily injure the operator's arm, posing quality and safety hazards.
[0004] Therefore, in response to the tendency of the aforementioned sliver drop pusher arm to tip over or tilt, a new sliver drop pusher arm can be designed to increase the contact points of the rollers, thereby improving the stability and reliability of the sliver drop process, eliminating wear on the top plate, and improving the sliver quality. Utility Model Content
[0005] To overcome the problem that the low center of gravity caused by the low pusher roller of the sliver drop pusher arm results in a high center of gravity, which is prone to tipping and tilting, causing contact and friction with the top plate, resulting in fraying of the sliver, damage to the sliver can and the top plate.
[0006] The technical solution of this utility model is as follows: a strip-feeding and pushing torsion arm, including a track ground, a U-shaped assembly positioning block, a U-shaped assembly engaging block, a torsion arm rod, a long shaft and a nylon wheel. The top of the assembly track is provided with a U-shaped assembly positioning block, and a U-shaped assembly engaging block is provided on one side of the U-shaped assembly positioning block. Two sets of torsion arm rods are installed on the outside of the assembly connecting column. A long shaft is fixedly welded to one side of the top of the torsion arm rod. A nylon wheel is engaged and assembled inside the slot block at the top of the long shaft.
[0007] Preferably, the use of rollers and nylon wheels at the upper end of the long shaft can increase the highest contact position of the pushing torsion arm, thereby increasing the stability and reliability of the fiber sliver canister pushing process, eliminating wear on the top plate, improving and enhancing the drawing quality, and preventing injury to workers or equipment during the torsion arm movement. It also automatically completes the pushing of the fiber sliver canister, reduces manual operation, reduces time waste caused by manual operation, and improves the continuity of the production line.
[0008] Preferably, a fixing bolt is rotatably installed between the U-shaped assembly positioning block and the assembly track. Two sets of screws are provided between the U-shaped assembly locking block and the U-shaped assembly positioning block. Positioning bolts are rotatably connected to both sides of the screws. An assembly connecting column is provided inside the U-shaped assembly locking block. Positioning rings are provided on both sides of the assembly connecting column. Anti-slip pads are provided on both sides of the assembly connecting column. A spring is provided on the outside of the assembly connecting column. A slot block is fixedly welded to the bottom end of the torsion arm. A roller is assembled inside the slot block.
[0009] Preferably, T-shaped protective rails are fixedly welded to both sides of the top of the track surface, and assembly rails are fixedly welded to the middle area of the top of the track surface.
[0010] As a preferred option, a long shaft with a diameter of φ mm and a length of mm is welded to the upper part of the concentric part of the roller.
[0011] Preferably, the two sets of torsion bar rods are positioned in the middle of the outer side of the assembly connecting column and between the two sets of springs.
[0012] Preferably, the nylon wheel and the roller are of the same type.
[0013] As a preferred option, a nylon wheel of the same diameter as the original vehicle is added to the top of the torsion bar.
[0014] The beneficial effects of this utility model are:
[0015] 1. This new type of machine utilizes rollers and nylon wheels at the upper end of the long shaft to increase the highest contact position of the pushing torsion arm, thereby increasing the stability and reliability of the pushing process of the fiber sliver can, eliminating the wear of the top plate, improving and enhancing the drawing quality, and preventing injury to workers or equipment during the movement of the torsion arm. It automatically completes the pushing of the fiber sliver can, reduces manual operation, reduces the time wasted due to manual operation, and improves the continuity of the production line. Attached Figure Description
[0016] Figure 1 The diagram shown is a schematic representation of the overall structure of this utility model.
[0017] Figure 2 The diagram shown is a schematic representation of the U-shaped assembly positioning block of this utility model.
[0018] Figure 3 The diagram shown is a schematic representation of the U-shaped assembly block structure of this utility model.
[0019] Figure 4 The diagram shown is a schematic representation of the nylon wheel structure of this utility model.
[0020] Explanation of reference numerals in the attached diagram: 1. Track ground; 2. T-shaped protective track; 3. Assembly track; 4. U-shaped assembly positioning block; 5. Fixing bolt; 6. U-shaped assembly locking block; 7. Screw; 8. Positioning bolt; 9. Assembly connecting column; 10. Positioning ring; 11. Anti-slip pad; 12. Spring; 13. Torsion arm; 14. Slot block; 15. Roller; 16. Long shaft; 17. Nylon wheel. Detailed Implementation
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] The draw frame can-pushing torsion arm is an automated device in the textile industry used to automatically push the finished fiber sliver cans (cans) to the next workstation or storage area during the draw frame (used for finishing and combining fibers) production process. Functions: Automated can-pushing: Automatically pushes fiber sliver cans, reducing manual operation. Increased production efficiency: Reduces time wasted due to manual operation and improves production line continuity. Reduced labor costs: Automated equipment can replace some manual operations, reducing labor costs. Importance: Increased production efficiency: Automated equipment can significantly increase the operating speed and efficiency of the production line. Reduced labor intensity: Reduces the labor intensity of workers and improves the working environment. Improved product quality: Automated equipment can reduce the impact of human factors on product quality. Precision mechanical structure: The precision mechanical structure ensures the accuracy and stability of the pushing action. Intelligent control system: Integrates an advanced control system to achieve precise control of the pushing position and force. Safety protection mechanism: Designed with safety protection mechanisms to prevent accidental injury and equipment damage. Required parts and their functions: Torsion arm: The key component that performs the pushing action. Drive system: Provides the power for the torsion arm's movement. Control System: Controls the movement and position of the torsion arm. Sensors: Monitor the position and status of the dropped bucket. Safety Protection Devices: Prevent accidental injury and equipment damage. Functions of Each Component: Torsion Arm: Performs the pushing action, moving the dropped bucket to the designated position. Drive System: Provides power for the torsion arm's movement; can be electric, pneumatic, or hydraulically driven. Control System: Controls the movement and position of the torsion arm based on information provided by the sensors. Sensors: Monitor the position and status of the dropped bucket to ensure accurate pushing. Safety Protection Devices: Prevent injury to workers or equipment during the torsion arm's movement. Achieved Effects: Increased Production Efficiency: Automated pushing reduces production line downtime. Reduced Labor Costs: Automated equipment replaces some manual operations. Improved Product Quality: Reduces the impact of human factors on product quality. Detailed Working Principle: Sensors detect the position of the dropped bucket. The control system controls the drive system based on the bucket's position information. The drive system drives the torsion arm to move, pushing the dropped bucket to the designated position. Advantages Compared to existing equipment: High degree of automation: Compared to traditional manual pushing, automated equipment increases the automation level of the production line. Precise Control: Achieves precise pushing actions through the control system. High safety: Safety protection devices reduce the risk of accidental injury. Potential problems during use include: Equipment failure: Mechanical equipment may malfunction, requiring regular maintenance and repair. Precision control: The control system needs precise adjustment to achieve accurate pushing motion. Environmental adaptability: The equipment needs to adapt to the environmental conditions of the production line, such as temperature and humidity. The technical background of the sliver can-feeding pusher includes: Automation technology: The development of automation technology has made production line automation possible. Mechanical design technology: Precise mechanical design ensures the accuracy and stability of the pushing motion. Control technology: Advanced control systems achieve precise control of the equipment.The purposes of its use are: Improving production efficiency: Automated push-out reduces production line downtime and increases production efficiency. Reducing labor costs: Automated equipment replaces some manual operations, reducing labor costs. Improving product quality: Reducing the impact of human factors on product quality and improving product consistency. Improving the working environment: Reducing the labor intensity of workers and improving the working environment.
[0023] Please see Figures 1-4 This utility model provides an embodiment of a sliver can-pushing torsion arm, including a track ground 1, a U-shaped assembly positioning block 4, a U-shaped assembly engaging block 6, a torsion arm 13, a long shaft 16, and a nylon wheel 17. The top of the assembly track 3 is provided with a U-shaped assembly positioning block 4, and a U-shaped assembly engaging block 6 is provided on one side of the U-shaped assembly positioning block 4. Two sets of torsion arm 13 are installed on the outside of the assembly connecting column 9. A long shaft 16 is fixedly welded to one side of the top of the torsion arm 13. A nylon wheel 17 is engaged and assembled inside the slot block 14 at the upper end of the top of the long shaft 16. By using the roller 15 and the nylon wheel 17 at the upper end of the long shaft 16, the highest contact position of the pushing torsion arm 13 can be increased, which increases the stability and reliability of the pushing process of the sliver can, eliminates the wear of the top plate, improves and enhances the sliver quality, and prevents injury to workers or equipment during the movement of the torsion arm. It automatically completes the pushing of the fiber sliver can, reduces manual operation, reduces the time waste caused by manual operation, and improves the continuity of the production line.
[0024] Please see Figures 2-3 In this embodiment, a fixing bolt 5 is rotatably installed between the U-shaped assembly positioning block 4 and the assembly track 3. Two sets of screws 7 are provided between the U-shaped assembly locking block 6 and the U-shaped assembly positioning block 4. Positioning bolts 8 are rotatably connected to both sides of the screws 7. An assembly connecting post 9 is provided inside the U-shaped assembly locking block 6. Positioning rings 10 are provided on both sides of the assembly connecting post 9. Anti-slip pads 11 are provided on both sides of the assembly connecting post 9. A spring 12 is provided on the outside of the assembly connecting post 9. A slot block 14 is fixedly welded to the bottom end of the torsion arm 13. A roller 15 is assembled inside the slot block 14. The U-shaped assembly positioning block 4 is attached to the assembly track 3 on the track ground 1, so that the fixing bolt 5 passes through the U-shaped assembly positioning block 4 and the assembly track 3 to limit and fix the U-shaped assembly positioning block 4. The U-shaped assembly locking block 6 is attached to one side of the U-shaped assembly positioning block 4.
[0025] Please see Figure 4In this embodiment, T-shaped protective rails 2 are fixedly welded to both sides of the top end of the track ground 1, and assembly rails 3 are fixedly welded to the middle area of the top end of the track ground 1. A long shaft 16 with a diameter of φ20mm and a length of 360mm is welded to the upper part of the concentric part of the roller 15. Two sets of torsion arm rods 13 are set in the middle outside the assembly connecting column 9 and between the two sets of springs 12. The nylon wheel 17 is of the same type as the roller 15. A nylon wheel 17 with the same diameter as the original vehicle is added to the top of the torsion arm rod 13. The screw 7 is passed through the U-shaped assembly positioning block 4 and the U-shaped assembly engaging block 6 and fixed with the positioning bolt 8. The roller 15 and the nylon wheel 17 are engaged and assembled in the slot block 14. The long shaft 16 can make the highest contact position of the contact point of the pushing torsion arm rod 13 500mm, which increases the stability and reliability of the pushing strip barrel process, eliminates the wear of the top plate, and improves and enhances the quality of the strip.
[0026] During operation, the U-shaped assembly positioning block 4 is attached to the assembly track 3 on the track ground 1, and the fixing bolt 5 passes through the U-shaped assembly positioning block 4 and the assembly track 3 to limit and fix the U-shaped assembly positioning block 4. The U-shaped assembly locking block 6 is attached to one side of the U-shaped assembly positioning block 4, and the screw 7 passes through the U-shaped assembly positioning block 4 and the U-shaped assembly locking block 6 and is fixed with the positioning bolt 8. The roller 15 and the nylon wheel 17 are locked and assembled in the slot block 14. The long shaft 16 can make the highest contact position of the push torsion arm 13 contact point 500mm, which increases the stability and reliability of the push bar barrel process, eliminates the wear of the top plate, and improves and enhances the drawing quality.
[0027] Through the above steps, the highest contact position of the contact point of the pushing torsion arm 13 can be increased by using the roller 15 and the nylon wheel 17 at the upper end of the long shaft 16, which increases the stability and reliability of the pushing process of the fiber sliver can, eliminates the wear of the top plate, improves and enhances the drawing quality, and at the same time prevents injury to workers or equipment during the movement of the torsion arm. It automatically completes the pushing of the fiber sliver can, reduces manual operation, reduces the time wasted due to manual operation, and improves the continuity of the production line.
Claims
1. A strip-feeding bucket-pushing torsion arm, comprising a tracked ground (1); characterized in that: It also includes a U-shaped assembly positioning block (4), a U-shaped assembly engaging block (6), a torsion arm (13), a long shaft (16) and a nylon wheel (17). The top of the assembly track (3) is provided with a U-shaped assembly positioning block (4), and a U-shaped assembly engaging block (6) is provided on one side of the U-shaped assembly positioning block (4). Two sets of torsion arms (13) are installed on the outside of the assembly connecting column (9). A long shaft (16) is fixedly welded to one side of the top of the torsion arm (13). A nylon wheel (17) is engaged and assembled inside the slot block (14) at the top of the long shaft (16).
2. The sliver unloading and pushing torsion arm according to claim 1, characterized in that: A fixing bolt (5) is rotatably installed between the U-shaped assembly positioning block (4) and the assembly track (3). Two sets of screws (7) are provided between the U-shaped assembly locking block (6) and the U-shaped assembly positioning block (4). Positioning bolts (8) are rotatably connected to both sides of the screws (7). An assembly connecting column (9) is provided inside the U-shaped assembly locking block (6). Positioning rings (10) are provided on both sides of the assembly connecting column (9). Anti-slip pads (11) are provided on both sides of the assembly connecting column (9). A spring (12) is provided on the outside of the assembly connecting column (9). A slot block (14) is fixedly welded to the bottom end of the torsion arm (13). A roller (15) is fitted inside the slot block (14).
3. The sliver unloading and pushing torsion arm according to claim 2, characterized in that: T-shaped protective rails (2) are fixedly welded to both sides of the top of the track ground (1), and assembly rails (3) are fixedly welded to the middle area of the top of the track ground (1).
4. The sliver unloading and pushing torsion arm according to claim 3, characterized in that: A long shaft (16) with a diameter of φ20mm and a length of 360mm is welded to the upper part of the concentric part of the roller (15).
5. A shearing and unloading torsion arm according to claim 4, characterized in that: Two sets of torsion bar (13) are set in the middle of the outside of the assembly connecting column (9) and between the two sets of springs (12).
6. The sliver unloading and pushing torsion arm according to claim 1, characterized in that: The nylon wheel (17) and the roller (15) are of the same type.
7. A shearing and unloading torsion arm according to claim 6, characterized in that: A nylon wheel (17) of the same diameter as the original vehicle is added to the top of the torsion arm (13).