Automatic angle pressing machine for spool

By designing an automatic angle press of the yarn barrel, the counter-engine mechanism between the upper yarn barrel and the lower yarn barrel is solved, and the edge corner treatment efficiency of the two ends of the yarn barrel after winding and spinning is achieved, efficient and precise chamfering operation is suitable for large-scale production.

CN222892643UActive Publication Date: 2025-05-23FOSHAN SANSHUI SHANLONG TEXTILE PRINTING & DYEING FAB CO LTD
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Patent Information

Application Number
CN202421799220.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-27
Publication Date
2025-05-23
Estimated Expiration
2034-07-27

AI Technical Summary

Technical Problem

The prior art is difficult to efficiently and accurately handle the sharp edges and corners of both ends of the yarn barrel after being wound and spinning, which affects the dyeing quality and efficiency and cannot meet the needs of large-scale production.

Method used

An automatic angle press of a yarn barrel is designed, and the countering mechanism between the upper yarn barrel and the lower yarn barrel is adopted, and the chamfering operation at both ends of the yarn barrel is realized through the first lifting driving mechanism and the first flip driving mechanism.

Benefits of technology

The chamfering efficiency of the yarn barrel is improved, the consistency and accuracy of the chamfering of each yarn barrel is ensured, the quality and efficiency of the dyeing process are improved, and it is suitable for large-scale production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of spinning, printing and dyeing, in particular to an automatic spool corner pressing machine which comprises a corner pressing rack, an upper spool and a lower spool are arranged in the corner pressing rack and correspond to each other, a first lifting driving mechanism is arranged at the top of the upper spool, and a first overturning driving mechanism is arranged at the bottom of the lower spool; a feeding port is formed in one side of the corner pressing rack, a feeding plate facing the interior of the corner pressing rack is arranged at the bottom of the feeding port, a discharging port is formed in the side, opposite to the feeding port, of the corner pressing rack, and a discharging plate facing the exterior of the corner pressing rack is arranged at the bottom of the discharging port. According to the device, the upper spool and the lower spool for loading the spools are folded, so that chamfering operation on the two ends of the spools is achieved, and compared with traditional manual chamfering, the stability of mechanical repeated work is high, processing is more accurate, and the chamfering efficiency is higher.
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Description

Technical Field

[0001] The present application relates to the field of spinning and dyeing, and in particular to an automatic angle pressing machine for yarn tubes. Background Art

[0002] In the spinning and dyeing industry, yarn cones are commonly used as a means of transport for spinning storage and spinning carriers.

[0003] At present, after the yarn is wound and spun, sharp corners are often formed at both ends of the yarn tube, which is not only not conducive to the stacking and transportation of the yarn tube, but may also affect the uniform penetration of the dye solution during the dyeing process, resulting in a decrease in dyeing quality. Existing solutions usually rely on manual or simple mechanical chamfering of the ends of the yarn tube, but manual or simple mechanical chamfering methods are not only cumbersome and inefficient, but also cannot guarantee the consistency and accuracy of the chamfering of each yarn tube. The processing effect is unstable, which in turn affects the quality and efficiency of the subsequent dyeing process, resulting in the inability to meet the needs of large-scale production. Therefore, further improvements can be made. Summary of the invention

[0004] In order to improve the chamfering efficiency of the two ends of the yarn tube after winding and spinning, the present application provides an automatic yarn tube angle pressing machine.

[0005] The present application provides an automatic angle pressing machine for yarn tubes, which adopts the following technical solution:

[0006] A yarn drum automatic angle pressing machine comprises an angle pressing frame, wherein an upper yarn drum and a lower yarn drum are arranged in the angle pressing frame, the upper yarn drum is located on the top of the lower yarn drum, and the upper yarn drum and the lower yarn drum are arranged correspondingly, the top of the upper yarn drum is provided with a first lifting drive mechanism, and the bottom of the lower yarn drum is provided with a first flipping drive mechanism; a feed port is provided on one side of the angle pressing frame, a feed plate facing the inside of the angle pressing frame is provided at the bottom of the feed port, a discharge port is provided on the opposite side of the angle pressing frame to the feed port, a discharge plate facing the outside of the angle pressing frame is provided at the bottom of the discharge port, the lower yarn drum is located at the bottom of the feed plate, and the lower yarn drum is located at the top of the discharge plate.

[0007] By adopting the above technical scheme, when the yarn tube after winding and spinning enters the feed plate through the feed port, and then enters the lower yarn tube through the feed plate, the upper yarn tube pushes the upper yarn tube downward under the action of the first lifting drive mechanism, and the upper yarn tube and the lower yarn tube loaded with the yarn tube are matched, thereby realizing the chamfering operation of the two ends of the yarn tube. After the matching action is completed, the upper yarn tube is lifted upward by the first lifting drive mechanism, and the lower yarn tube is flipped toward one end of the discharge port under the action of the first flipping drive mechanism, so that the yarn tube after the angle is moved out from the discharge port through the discharge plate. Compared with traditional manual chamfering, the machine has high stability in performing repetitive work and more precise processing, so the chamfering efficiency is higher.

[0008] Optionally, the first lifting drive mechanism includes a first lifting motor and a first connecting plate, the first lifting motor is installed on the top of the first connecting plate, and the bottom of the first connecting plate is connected to the top of the upper yarn drum.

[0009] By adopting the above technical solution, the yarn tube enters the lower yarn tube, and the upper yarn tube is downwardly aligned toward the lower yarn tube under the action of the first lifting motor. During the downward alignment of the upper yarn tube, the yarn tube end in the lower yarn tube is continuously squeezed while the first lifting motor is continuously driven downward, thereby realizing the angle pressing operation.

[0010] Optionally, the first flipping drive mechanism includes a first driving link, a first swinging motor, a second connecting plate and a first fixed block, the first driving link is installed inside the angle pressing frame, the first fixed block is installed at both ends of the first driving link, the first swinging motor is connected to one end of the first driving link, the second connecting plate is installed on the first driving link, and the top of the second connecting plate is connected to the bottom of the lower yarn tube.

[0011] By adopting the above technical scheme, the lower yarn drum is first swung under the action of the first swing motor and the first driving connecting rod to make the lower yarn drum face one end of the feed plate. When the yarn drum passes through the feed plate to enter the lower yarn drum, after the lower yarn drum receives the yarn drum, the first swing motor and the first driving connecting rod are used to make the lower yarn drum return to the center and align with the upper yarn drum, and then accept the engagement of the upper yarn drum, thereby realizing the angle pressing operation on the two ends of the yarn drum. After the angle pressing is completed, the first swing motor and the first driving connecting rod are finally used to rotate toward one end in the direction of the discharge port, thereby moving the yarn drum out of the discharge plate in the discharge port.

[0012] Optionally, both the feed plate and the discharge plate are provided with limit baffles.

[0013] By adopting the above technical solution, during the transportation of the yarn bobbin on the feed plate or the discharge plate, the limiting baffle is used to reduce the occurrence of the yarn bobbin falling during the transportation.

[0014] Optionally, a plurality of deceleration ribs are provided on the feed plate.

[0015] By adopting the above technical solution, the deceleration ribs are used to slow down the impact force of the yarn bobbin falling into the feed plate, thereby reducing damage to the yarn bobbin, and the deceleration ribs are used to slow down the falling speed of the yarn bobbin, so that it falls smoothly into the feed plate for transportation.

[0016] Optionally, a moving mechanism is provided at the bottom of the angle pressing frame, and the moving mechanism includes a base, supporting legs, a moving part, a recessed seat, a support rod and a support shell. The base is fixedly installed at the bottom of the angle pressing frame, the supporting legs are respectively installed at the bottoms at both ends of the base, the support rod is installed at the bottom of the middle part of the base, the tops at both ends of the recessed seat are respectively connected to the bottoms of the two supporting legs, the moving part is respectively installed at the bottoms at both ends of the recessed seat, the support shell is installed at the top of the middle part of the recessed seat, and the top of the support shell is slidably connected to the bottom of the support rod, and a shock-absorbing component is provided inside the support shell.

[0017] By adopting the above technical solution, the mobile mechanism can make the angle crimping machine easily move between different locations, which is convenient for installation, positioning and reconfiguration. During the installation process, the mobile mechanism can simplify the transportation of the angle crimping machine, reduce manpower requirements and installation time, and reduce damage to the equipment and the ground when transporting the angle crimping machine.

[0018] Optionally, the shock-absorbing assembly includes a first shock-absorbing unit and a second shock-absorbing unit, the first shock-absorbing unit is installed on both sides of the second shock-absorbing unit, the first shock-absorbing unit includes a first connecting column, a first strong spring, and a first support column, the first strong spring and the first support column are installed in the first connecting column; the second shock-absorbing unit includes a second connecting column, a second elastic pad, and a second support column, the second elastic pad and the second support column are installed in the first connecting column.

[0019] By adopting the above technical solution, when the equipment is in the process of pressing the angle, the angle pressing frame will vibrate due to the operation of the equipment. The first shock-absorbing unit and the second shock-absorbing unit in the supporting shell located at the bottom of the angle pressing frame cooperate to reduce the damage to the equipment caused by the vibration, and reduce the vibration directly acting on the equipment, thereby improving the stability of the entire structure.

[0020] Optionally, the shock-absorbing assembly includes a third shock-absorbing unit and a fourth shock-absorbing unit, the fourth shock-absorbing unit is installed on both sides of the third shock-absorbing unit, the third shock-absorbing unit includes a pair of upper connecting rods, a pair of lower connecting rods and a third strong spring, one upper connecting rod and one lower connecting rod are connected to each other one by one, and the third strong spring is installed between the two groups of upper connecting rods and lower connecting rods; the fourth shock-absorbing unit includes a fourth telescopic rod and a fourth strong spring, and the fourth strong spring is sleeved on the fourth telescopic rod.

[0021] By adopting the above technical solution, when the equipment is in the process of pressing the angle, the angle pressing frame will vibrate due to the operation of the equipment. The third shock-absorbing unit and the fourth shock-absorbing unit located in the supporting shell at the bottom of the angle pressing frame cooperate to reduce the damage to the equipment caused by the vibration, reduce the vibration directly acting on the equipment, and thus improve the stability of the entire structure.

[0022] Optionally, a first ejecting member is provided on the lower yarn drum, the first ejecting member is located at the bottom of the lower yarn drum, and a ejecting port is opened at the bottom of the lower yarn drum, and a movable end of the first ejecting member can be inserted into the ejecting port.

[0023] By adopting the above technical scheme, when the yarn tube in the lower yarn tube is discharged through the discharge port after the angle pressing processing, the first ejection member pushes the yarn tube in the lower yarn tube upward from the bottom of the lower yarn tube, thereby reducing the situation where the yarn tube gets stuck and cannot be discharged after the upper yarn tube and the lower yarn tube are matched, thereby affecting the subsequent processing of the yarn tube.

[0024] In summary, the present application includes at least one of the following beneficial technical effects:

[0025] 1. When the yarn drum after winding and spinning enters the feed plate through the feed port, and then enters the lower yarn drum through the feed plate, the upper yarn drum pushes the upper yarn drum downward under the action of the first lifting drive mechanism, and the upper yarn drum and the lower yarn drum loaded with the yarn drum are matched, thereby realizing the chamfering operation of the two ends of the yarn drum. After the matching action is completed, the upper yarn drum is lifted up by the first lifting drive mechanism, and the lower yarn drum is turned toward one end of the discharge port under the action of the first turning drive mechanism, so that the yarn drum after the angle is moved out from the discharge port through the discharge plate. Compared with the traditional manual chamfering, the mechanical repetitive work has high stability and more precise processing, so the chamfering efficiency is higher;

[0026] 2. Use the deceleration ribs to slow down the impact force of the yarn bobbin when it falls into the feed plate, reduce the damage to the yarn bobbin, and use the deceleration ribs to slow down the speed of the yarn bobbin so that it falls smoothly into the feed plate for transportation;

[0027] 3. The mobile mechanism allows the angle crimping machine to be easily moved between different locations, making it easier to install, position and reconfigure. During the installation process, the mobile mechanism can simplify the handling of the angle crimping machine, reduce manpower requirements and installation time, and reduce damage to the equipment and the ground when carrying the angle crimping machine. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 It is an overall schematic diagram of the upper yarn tube and the lower yarn tube during the angle pressing process in Example 1 of the present application.

[0029] Figure 2 It is an overall schematic diagram after the angle pressing processing of the upper yarn tube and the lower yarn tube in Example 1 of the present application is completed.

[0030] Figure 3 It is a schematic diagram of the front view of the structure of the angle pressing frame in Example 1 of the present application, which is partially cut away.

[0031] Figure 4 It is a schematic diagram of the side view of the partially cut-away structure of the angle pressing frame in Example 1 of the present application.

[0032] Figure 5 It is a schematic diagram of the structure of the moving mechanism in Example 1 of the present application.

[0033] Figure 6 It is a schematic diagram of the structure of the shock absorbing component in Example 1 of the present application.

[0034] Figure 7 It is a schematic diagram of the structure of the shock absorbing component in Example 2 of the present application.

[0035] Description of reference numerals:

[0036] 1. Angle pressing frame; 11. Feeding port; 12. Feeding plate; 13. Discharging port; 14. Discharging plate; 15. Limit baffle; 16. Speed ​​reduction rib; 2. Upper yarn drum; 3. Lower yarn drum; 31. Receiving rod; 32. First ejector; 33. First sensor; 34. Elastic pad; 4. First lifting drive mechanism; 41. First lifting motor; 42. First connecting plate; 43. First installation box; 5. First flipping drive mechanism; 51. First driving connecting rod; 52. First swing motor; 53. Second connecting plate; 54. First fixed block; 55. Second installation box; 6. Moving mechanism; 61. Base; 62. Support leg; 63. Moving member; 64 , recessed seat; 65, support rod; 66, support shell; 7, shock-absorbing assembly; 71, first shock-absorbing unit; 711, first connecting column; 712, first convex groove; 713, first strong spring; 714, first supporting column; 715, first limiting plate; 72, second shock-absorbing unit; 721, second connecting column; 722, second convex groove; 723, second elastic pad; 724, second supporting column; 725, second limiting plate; 73, third shock-absorbing unit; 731, upper connecting rod; 732, lower connecting rod; 733, connecting block; 734, third strong spring; 74, fourth shock-absorbing unit; 741, fourth telescopic rod; 742, fourth strong spring. DETAILED DESCRIPTION

[0037] The following is combined with Figure 1-7 This application is described in further detail.

[0038] The embodiment of the present application discloses an automatic angle pressing machine for yarn bobbins.

[0039] Embodiment 1:

[0040] Reference Figure 1 , 23. An automatic angle pressing machine for yarn drums comprises an angle pressing frame 1, in which an upper yarn drum 2 and a lower yarn drum 3 are arranged, the upper yarn drum 2 is located at the top of the lower yarn drum 3, and the upper yarn drum 2 and the lower yarn drum 3 are arranged correspondingly, a first lifting drive mechanism 4 is arranged at the top of the upper yarn drum 2, and a first flipping drive mechanism 5 is arranged at the bottom of the lower yarn drum 3; a feed port 11 is opened on one side of the angle pressing frame 1, a feed plate 12 facing the inside of the angle pressing frame 1 is arranged at the bottom of the feed port 11, a discharge port 13 is opened on the opposite side of the angle pressing frame 1 located at the feed port 11, a discharge plate 14 facing the outside of the angle pressing frame 1 is arranged at the bottom of the discharge port 13, the lower yarn drum 3 is located at the bottom of the feed plate 12, and the lower yarn drum 3 is located at the top of the discharge plate 14.

[0041] During actual use, when the yarn tube after winding and spinning enters the feed plate 12 through the feed port 11, and then enters the lower yarn tube 3 through the feed plate 12, the upper yarn tube 2 is pushed downward by the first lifting drive mechanism 4, and the upper yarn tube 2 is matched with the lower yarn tube 3 loaded with the yarn tube, thereby realizing the chamfering operation of the two ends of the yarn tube. After the matching action is completed, the upper yarn tube 2 is lifted upward by the first lifting drive mechanism 4, and the lower yarn tube 3 is turned toward one end of the discharge port 13 by the first turning drive mechanism 5, so that the yarn tube after the angle is pressed is moved out from the discharge port 13 via the discharge plate 14. Compared with traditional manual chamfering, the machine has high stability in performing repetitive work and more precise processing, so the chamfering efficiency is higher.

[0042] refer to Figure 3 , 4 Specifically, the lower yarn drum 3 is provided with a receiving rod 31, a first ejecting member 32, a first sensor 33 and an elastic pad 34. The receiving rod 31 is arranged at the middle position inside the lower yarn drum 3, and is used to fix the feeding yarn drum. The elastic pad 34 is laid on the bottom inside the lower yarn drum 3, and is used to absorb the impact caused by the engagement of the yarn drum in the lower yarn drum 3 with the upper yarn drum 2. The first ejecting member 32 and the first sensor 33 are both located at the bottom of the lower yarn drum 3, and a ejecting port and a sensing port are provided at the bottom of the lower yarn drum 3. The movable end of the first ejecting member 32 can be inserted into the ejecting port, so that the first ejecting member 32 can push the processed yarn drum, and the first sensor 33 can be inserted into the sensing port, so as to monitor whether the lower yarn drum 3 needs to be flipped.

[0043] In actual use, when the yarn tube in the lower yarn tube 3 is discharged through the discharge port 13 after the angle pressing process, the first sensor 33 monitors the completion of the angle pressing action, and controls the first ejection member 32 to push the yarn tube in the lower yarn tube 3 upward from the bottom of the lower yarn tube 3, thereby reducing the situation where the yarn tube gets stuck and cannot be discharged after the upper yarn tube 2 and the lower yarn tube 3 are matched, thereby affecting the subsequent yarn tube processing.

[0044] refer to Figure 1 ,3 4. Specifically, in the present embodiment, the first lifting drive mechanism 4 includes a first lifting motor 41 and a first connecting plate 42. The first connecting plate 42 is installed on the movable end at the bottom of the first lifting motor 41. The first lifting motor 41 is installed on the top of the angle pressing frame 1. The movable end of the first lifting motor 41 is passed through the angle pressing frame 1 and is connected to the top of the upper yarn tube 2 through the first connecting plate 42. The first lifting motor 41 is installed in the first installation box 43.

[0045] During actual use, the yarn drum enters the lower yarn drum 3, and the upper yarn drum 2 is downwardly aligned toward the lower yarn drum 3 under the action of the first lifting motor 41. During the downward alignment, the upper yarn drum 2 continuously squeezes the yarn drum end in the lower yarn drum 3 while the first lifting motor 41 is continuously driven downward, thereby realizing the angle pressing operation.

[0046] refer to Figure 1 , 3 , 4. Specifically, in the present embodiment, the first flipping drive mechanism 5 includes a first driving link 51, a first swinging motor 52, a second connecting plate 53 and a first fixed block 54. The first swinging motor 52 is installed on one side of the angle pressing frame 1, and the top of the second connecting plate 53 is installed on the bottom of the lower yarn tube 3. The first fixed blocks 54 are respectively installed on the two sides of the interior of the angle pressing frame 1 in an opposite manner. The two ends of the first driving link 51 are rotatably connected between the two first fixed blocks 54. The second connecting plate 53 is installed in the middle of the first driving link 51. One end of the first driving link 51 close to the first swinging motor 52 is penetrated through the side wall of the angle pressing frame 1 and connected with the first swinging motor 52. The first swinging motor 52 is installed in the second installation box 55.

[0047] During actual use, the lower yarn drum 3 is first swung under the action of the first swing motor 52 and the first driving connecting rod 51 to make the lower yarn drum 3 face one end of the feed plate 12. When the yarn drum passes through the feed plate 12 to enter the lower yarn drum 3, after the lower yarn drum 3 receives the yarn drum, the first swing motor 52 and the first driving connecting rod 51 are used to make the lower yarn drum 3 return to be aligned with the upper yarn drum 2, and then accept the engagement with the upper yarn drum 2, thereby realizing the angle pressing operation on the two ends of the yarn drum. After the angle pressing is completed, finally, under the action of the first swing motor 52 and the first driving connecting rod 51, one end is rotated toward the discharge port 13, thereby moving the yarn drum out of the discharge plate 14 in the discharge port 13.

[0048] refer to Figure 1 , 3Specifically, in this embodiment, both sides of the feed plate 12 and the discharge plate 14 are provided with limit baffles 15, and the side of the feed plate 12 facing the upper bobbin 2 is evenly spaced with a plurality of deceleration ribs 16. In actual use, on the one hand, during the transportation of the bobbin on the feed plate 12 or the discharge plate 14, the limit baffles 15 are used to reduce the occurrence of the bobbin falling during transportation. On the other hand, the deceleration ribs 16 are used to reduce the impact force of the bobbin falling into the feed plate 12, reduce the damage to the bobbin, and the deceleration ribs 16 are used to reduce the speed of the bobbin falling, so that it falls smoothly into the feed plate 12 for transportation.

[0049] refer to Figure 1 , 7 Specifically, in the present embodiment, a movable mechanism 6 is provided at the bottom of the angle pressing frame 1, and the movable mechanism 6 includes a base 61, a supporting leg 62, a movable member 63, a recessed seat 64, a supporting rod 65 and a supporting shell 66. The base 61 is fixedly installed at the bottom of the angle pressing frame 1, the supporting legs 62 are respectively installed at the bottoms of both ends of the base 61, the supporting rod 65 is installed at the bottom of the middle part of the base 61, the tops of both ends of the recessed seat 64 are respectively connected to the bottoms of the two supporting legs 62, the movable members 63 are respectively installed at the bottoms of both ends of the recessed seat 64, the supporting shell 66 is installed at the top of the middle part of the recessed seat 64, and the top of the supporting shell 66 is slidably connected to the bottom of the support rod 65, and a shock absorbing component 7 is arranged inside the supporting shell 66.

[0050] During actual use, the mobile mechanism 6 can make the angle crimping machine easily move between different locations, which is convenient for installation, positioning and reconfiguration. During the installation process, the mobile mechanism 6 can simplify the transportation of the angle crimping machine, reduce manpower requirements and installation time, and reduce damage to the equipment and the ground when transporting the angle crimping machine.

[0051] refer to Figure 6Specifically, in this embodiment, the shock absorbing assembly 7 includes a first shock absorbing unit 71 and a second shock absorbing unit 72. The first shock absorbing unit 71 is installed on both sides of the second shock absorbing unit 72. The first shock absorbing unit 71 includes a first connecting column 711. A first convex groove 712 is opened in the first connecting column 711. A first strong spring 713 and a first support column 714 are arranged in the first convex groove 712. The first support column 714 is located at the top of the first strong spring 713. A first limiting plate is arranged at the bottom of the first support column 714. 715, the top of the first support column 714 is connected to the bottom of the support rod 65; the second shock-absorbing unit 72 includes a second connecting column 721, in which a second convex groove 722 is provided, and the second convex groove 722 is provided with a second elastic pad 723 and a second support column 724, the second support column 724 is located at the top of the second elastic pad 723, and the bottom of the second support column 724 is provided with a second limiting plate 725, and the top of the second support column 724 is connected to the bottom of the support rod 65.

[0052] During actual use, the angle pressing frame 1 will vibrate due to the operation of the equipment. The first shock absorbing unit 71 and the second shock absorbing unit 72 in the support shell 66 at the bottom of the angle pressing frame 1 can reduce the damage to the equipment caused by the vibration. The first strong spring 713 in the first shock absorbing unit 71 and the first support column 714 cooperate in the first convex groove 712, and the second elastic pad 723 in the second shock absorbing unit 72 and the second support column 724 cooperate in the second convex groove 722 to reduce the vibration directly acting on the equipment, thereby improving the stability of the entire structure.

[0053] The implementation principle of Example 1 is as follows: when the yarn tube after winding and spinning enters the feed plate 12 through the feed port 11, and then enters the lower yarn tube 3 through the feed plate 12, the upper yarn tube 2 is pushed downward by the first lifting drive mechanism 4, and the upper yarn tube 2 is matched with the lower yarn tube 3 loaded with the yarn tube, thereby realizing the chamfering operation of the two ends of the yarn tube. After the matching action is completed, the upper yarn tube 2 is lifted upward by the first lifting drive mechanism 4, and the lower yarn tube 3 is flipped toward one end of the discharge port 13 under the action of the first flipping drive mechanism 5, so that the yarn tube after the angle is moved out from the discharge port 13 through the discharge plate 14.

[0054] Embodiment 2:

[0055] Reference Figure 7 The difference between this embodiment and embodiment 1 is that the structure of the shock absorbing component 7 is different.

[0056] refer to Figure 7Specifically, in the present embodiment, the shock absorbing assembly 7 comprises a third shock absorbing unit 73 and a fourth shock absorbing unit 74, the fourth shock absorbing unit 74 is installed on both sides of the third shock absorbing unit 73, the third shock absorbing unit 73 comprises a pair of upper connecting rods 731 and a pair of lower connecting rods 732, an upper connecting rod 731 and a lower connecting rod 732 are connected to each other one by one, the bottom of the upper connecting rod 731 is hinged to the top of the support shell 66, the top of the upper connecting rod 731 is hinged to the bottom of the support rod 65, the upper connecting rod 731 and the lower connecting rod 732 are hinged on the connecting block 733, and a third strong spring 734 is installed between the two relatively arranged connecting blocks 733; the fourth shock absorbing unit 74 comprises a fourth telescopic rod 741 and a fourth strong spring 742, the bottom of the fourth telescopic rod 741 is connected to the top of the support shell 66, and the top of the fourth telescopic rod 741 is connected to the bottom of the support rod 65.

[0057] During actual use, the angle pressing frame 1 will vibrate due to the operation of the equipment. The third shock-absorbing unit 73 and the fourth shock-absorbing unit 74 in the support shell 66 at the bottom of the angle pressing frame 1 can reduce the damage to the equipment caused by the vibration. The cooperation of a pair of upper connecting rods 731 and lower connecting rods 732 and the third strong spring 734 in the third shock-absorbing unit 73, as well as the cooperation of the fourth telescopic rod 741 and the fourth strong spring 742 in the fourth shock-absorbing unit 74, can reduce the vibration directly acting on the equipment, thereby improving the stability of the entire structure.

[0058] The embodiments of this specific implementation are all preferred embodiments of the present application, and are not intended to limit the protection scope of the present application. The same components are represented by the same figure marks. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the protection scope of the present application.

Claims

1. A yarn tube automatic angle pressing machine, characterized in that: The invention comprises a pressing angle frame (1), wherein an upper yarn drum (2) and a lower yarn drum (3) are arranged inside the pressing angle frame (1), wherein the upper yarn drum (2) is located on the top of the lower yarn drum (3), and the upper yarn drum (2) and the lower yarn drum (3) are arranged correspondingly, wherein a first lifting drive mechanism (4) is arranged on the top of the upper yarn drum (2), and a first turning drive mechanism (5) is arranged on the bottom of the lower yarn drum (3); a feed port is provided on one side of the pressing angle frame (1); (11), a feed plate (12) facing the inside of the angle pressing frame (1) is arranged at the bottom of the feed port (11), the angle pressing frame (1) is provided with a discharge port (13) on the side opposite to the feed port (11), a discharge plate (14) facing the outside of the angle pressing frame (1) is arranged at the bottom of the discharge port (13), the lower yarn drum (3) is located at the bottom of the feed plate (12), and the lower yarn drum (3) is located at the top of the discharge plate (14).

2. The automatic angle pressing machine for yarn tubes according to claim 1, characterized in that: The first lifting drive mechanism (4) comprises a first lifting motor (41) and a first connecting plate (42); the first lifting motor (41) is installed on the top of the first connecting plate (42); and the bottom of the first connecting plate (42) is connected to the top of the upper yarn drum (2).

3. The automatic angle pressing machine for yarn tubes according to claim 1, characterized in that: The first flip driving mechanism (5) comprises a first driving connecting rod (51), a first swinging motor (52), a second connecting plate (53) and a first fixing block (54); the first driving connecting rod (51) is installed inside the angle pressing frame (1); the first fixing block (54) is installed at both ends of the first driving connecting rod (51); the first swinging motor (52) is connected to one end of the first driving connecting rod (51); the second connecting plate (53) is installed on the first driving connecting rod (51); and the top of the second connecting plate (53) is connected to the bottom of the lower yarn drum (3).

4. The automatic angle pressing machine for yarn tubes according to claim 1, characterized in that: Limit baffles (15) are provided on both sides of the feed plate (12) and the discharge plate (14).

5. The automatic angle pressing machine for yarn tubes according to claim 1, characterized in that: A plurality of deceleration ribs (16) are arranged on the side of the feed plate (12) facing the upper yarn tube (2).

6. The automatic angle pressing machine for yarn tubes according to claim 1, characterized in that: A moving mechanism (6) is arranged at the bottom of the angle pressing frame (1), and the moving mechanism (6) comprises a base (61), supporting legs (62), a moving part (63), a recessed seat (64), a supporting rod (65) and a supporting shell (66). The base (61) is fixedly mounted on the bottom of the angle pressing frame (1), the supporting legs (62) are respectively mounted on the bottoms of both ends of the base (61), the supporting rod (65) is mounted on the bottom of the middle part of the base (61), the tops of both ends of the recessed seat (64) are respectively connected to the bottoms of the two supporting legs (62), the moving part (63) is respectively mounted on the bottoms of both ends of the recessed seat (64), the supporting shell (66) is mounted on the top of the middle part of the recessed seat (64), and the top of the supporting shell (66) is slidably connected to the bottom of the supporting rod (65), and a shock absorbing component (7) is arranged inside the supporting shell (66).

7. The automatic angle pressing machine for yarn tubes according to claim 6, characterized in that: The shock absorbing assembly (7) comprises a first shock absorbing unit (71) and a second shock absorbing unit (72); the first shock absorbing unit (71) is installed on both sides of the second shock absorbing unit (72); the first shock absorbing unit (71) comprises a first connecting column (711), a first strong spring (713), and a first supporting column (714); the first strong spring (713) and the first supporting column (714) are installed in the first connecting column (711); the second shock absorbing unit (72) comprises a second connecting column (721), a second elastic pad (723), and a second supporting column (724); the second elastic pad (723) and the second supporting column (724) are installed in the first connecting column (711).

8. The automatic angle pressing machine for yarn tubes according to claim 6, characterized in that: The shock absorbing assembly (7) comprises a third shock absorbing unit (73) and a fourth shock absorbing unit (74), wherein the fourth shock absorbing unit (74) is installed on both sides of the third shock absorbing unit (73), wherein the third shock absorbing unit (73) comprises a pair of upper connecting rods (731), a pair of lower connecting rods (732) and a third strong spring (734), wherein one upper connecting rod (731) and one lower connecting rod (732) are connected to each other in a one-to-one correspondence, and the third strong spring (734) is installed between the two groups of upper connecting rods (731) and the lower connecting rods (732); wherein the fourth shock absorbing unit (74) comprises a fourth telescopic rod (741) and a fourth strong spring (742), wherein the fourth strong spring (742) is sleeved on the fourth telescopic rod (741).

9. The automatic angle pressing machine for yarn tubes according to claim 1, characterized in that: The lower yarn cylinder (3) is provided with a first ejecting member (32), the first ejecting member (32) is located at the bottom of the lower yarn cylinder (3), and a ejecting port is opened at the bottom of the lower yarn cylinder (3), and the movable end of the first ejecting member (32) can be inserted into the ejecting port.