Yarn-breaking self-locking textile equipment

By designing a locking mechanism in the textile machine, using the wire to drive the guide protrusion wheel to lift up and lock it after breaking, the problem that the interrupted wire of the existing textile machine cannot be quickly and accurately positioned, achieving rapid locking of the wire position and improving the working quality of the textile machine.

CN120119386AInactive Publication Date: 2025-06-10JIANGSU KETENG TEXTILE TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510457755.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-14
Publication Date
2025-06-10
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The lack of a wire-breaking locking mechanism in existing textile machines, which leads to the inability to accurately locate quickly and conveniently after the wire is broken, affecting the practical effect of the textile machine.

Method used

A textile equipment for self-locking of broken wires is designed, and the locking mechanism includes a bottom bracket, a rotor, a side bracket, a guide protrusion and other components are used to drive the guide protrusion to lift up as a whole through the wire. After the wire is broken, the spring group and the meshing gear are used to complete the locking of the guide protrusion, thereby realizing the locking and precise position of the wire position.

Benefits of technology

By setting up a locking mechanism, the position of the broken wire can be quickly locked, which facilitates subsequent operators to perform maintenance and precise positioning, and improves the working quality and efficiency of the textile machine.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120119386A_ABST
    Figure CN120119386A_ABST
Patent Text Reader

Abstract

The invention discloses a broken yarn self-locking textile device, belongs to the technical field of textile machines, solves the problem that existing textile devices cannot stably react and lock broken yarns, and comprises a conveying part base, a first conveying roller, a middle end barrier part and a second conveying roller. A first conveying roller is installed on one side of the surface of the conveying piece base, a second conveying roller is installed on the other side of the surface of the conveying piece base, a second conveying roller is installed on the portion, between the first conveying roller and the second conveying roller, of the surface of the conveying piece base, and a locking mechanism for locking broken silk threads is installed on the middle end blocking piece. By arranging the locking mechanism, once the silk yarn is broken and the stress is changed, the guide protruding wheel is attached to the clamping protruding wheel again under the action of the spring set, the position of the guide protruding wheel is locked in cooperation with the meshing gear and the meshing annular plate, the position of the silk yarn is locked, and accurate positioning is completed.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention belongs to the technical field of textile machines, and particularly relates to a textile device with self-locking for broken wires. Background Art

[0002] A textile machine, also known as a spinning machine, a weaving machine, a cotton spinning machine, etc., is the full name of a tool that processes raw materials such as threads, silk, and hemp into silk threads and then weaves them into fabrics. The textile machine can stably convey multiple groups of silk threads, and then use the internal components of the textile machine to weave the silk threads. At present, multiple groups of conveying rollers for silk threads are installed in the textile machine to ensure the stable input of the silk threads into the specified components and assist the stable operation of the textile machine.

[0003] When the conveying rollers in the existing textile machine are in use, they can stably convey the silk threads. However, there are certain problems in actual use. Specifically, after the silk thread breaks, there is no corresponding wire-breaking locking mechanism installed on the conveying roller, resulting in the broken silk thread directly falling into the textile machine. Moreover, when the subsequent operator repairs the broken silk thread, it is impossible to quickly and conveniently accurately locate the broken part of the silk thread, which affects the overall practical effect of the textile machine. Summary of the Invention

[0004] The purpose of this part is to outline some aspects of the embodiments of the present invention and briefly introduce some preferred embodiments. Simplifications or omissions may be made in this part, as well as in the abstract and title of the present application, to avoid obscuring the purpose of this part, the abstract, and the title. However, such simplifications or omissions shall not be used to limit the scope of the present invention.

[0005] To solve the problems raised in the above background art, the present invention adopts the following technical solutions.

[0006] A textile device with self-locking for broken wires includes a conveying member base, a first conveying roller, a middle blocking member, and a second conveying roller. A first conveying roller is installed on one side of the surface of the conveying member base, and a second conveying roller is installed on the other side of the surface of the conveying member base. A second conveying roller is installed on the surface of the conveying member base between the first conveying roller and the second conveying roller. A locking mechanism for locking the broken silk thread is installed on the middle blocking member. The locking mechanism includes a bottom bracket, a rotating frame, side brackets, and a guiding convex wheel. Bottom brackets are symmetrically installed on the side surface of the middle blocking member. A rotating frame is rotatably installed on the bottom brackets. Side brackets are symmetrically installed at the end of the rotating frame. A guiding convex wheel is rotatably installed between the side brackets. The silk thread passes through the first conveying roller, adjusts its height through the middle blocking member, and then is conveyed along the outer surface of the guiding convex wheel.

[0007] As a preferred technical solution of the present invention, the locking mechanism further includes a mounting bracket, a clamping projection wheel, a mounting side plate and a spring group. A mounting bracket is fixedly installed on the side of the middle barrier member below the bottom bracket. A clamping projection wheel is installed at the top of the mounting bracket. A mounting side plate is installed at the lower end of the bottom bracket. A spring group is installed on the side of the mounting side plate, and the other end of the spring group is connected to the rotating frame. When the rotating frame rotates towards the side away from the mounting side plate, the spring group enters a state of storing energy.

[0008] As a preferred technical solution of the present invention, the locking mechanism further includes a meshing gear and a meshing ring plate. A transmission rod is installed on the side of the guiding projection wheel. The transmission rod penetrates through one of the side brackets. A meshing gear is installed at the end of the transmission rod. A meshing ring plate is installed on the side of the mounting bracket below the meshing gear. Multiple tooth blocks for meshing with the meshing gear are installed on the inner wall of the meshing ring plate.

[0009] As a preferred technical solution of the present invention, when the rotating frame is not pulled by the silk thread, the outer walls of the guiding projection wheel and the clamping projection wheel are in contact with each other. At this time, it is in the initial state, and the meshing gear and the meshing ring plate are meshed and connected at this time.

[0010] As a preferred technical solution of the present invention, the textile equipment further includes an adjusting mechanism. The adjusting mechanism includes a housing, a lead screw, a guiding rod, a mobile end and a driving motor. A housing is installed on one side of the upper surface of the conveying member base. A lead screw is rotatably installed in the housing. A guiding rod is fixedly installed in the housing. The lead screw and the guiding rod are parallel in position. A mobile end is threadedly engaged and installed on the outside of the lead screw. The mobile end is slidably connected to the guiding rod. A driving motor is installed on the housing. The end of the driving motor is connected to the end of the lead screw. The mobile end is connected to the side of the middle barrier member.

[0011] As a preferred technical solution of the present invention, the adjusting mechanism further includes a limiting side plate and a limiting block. A limiting side plate is installed on the surface of the conveying member base and on the side opposite to the housing. A limiting block is slidably installed in the limiting side plate. The limiting block is connected to the side wall of the middle barrier member.

[0012] As a preferred technical solution of the present invention, the middle barrier member includes a middle partition board, a calibration groove and a calibration column. A middle partition board is arranged on the upper surface of the conveying member base. A calibration groove is opened in the middle partition board. A calibration column is installed in the calibration groove.

[0013] As a preferred technical solution of the present invention, the middle barrier member further includes an electrostatic wire and a grounding block. An electrostatic wire is installed on the side of the middle partition board. The end of the electrostatic wire is connected to a grounding block.

[0014] As a preferred technical solution of the present invention, the textile equipment further includes a detection mechanism, and the detection mechanism includes an upper top plate and a detection camera. The upper top plate is fixedly installed on the side of the second conveying roller, and the detection camera is fixedly installed on the lower surface of the upper top plate.

[0015] As a preferred technical solution of the present invention, the detection mechanism further includes a guiding bottom plate and fluff claws. The guiding bottom plate is installed below the upper top plate on the side of the second conveying roller, and fluff claws are fixedly installed on the surface of the guiding bottom plate at equal intervals.

[0016] Compared with the prior art, the beneficial effects of the present invention are as follows: In the present invention, by setting the locking mechanism, the conveying path of the silk thread can be adjusted, and the guiding convex wheel can be driven to tilt up integrally by the silk thread, separating from the state of originally fitting with the clamping convex wheel. Once the silk thread breaks, the stress changes, and the guiding convex wheel fits with the clamping convex wheel again under the action of the spring group. Cooperating with the meshing gear and the meshing ring plate, the position of the guiding convex wheel is locked, the position of the silk thread is locked, and precise positioning is completed, facilitating subsequent operators to repair and precisely locate the broken silk thread.

[0017] In the present invention, by setting the adjusting mechanism and the detection mechanism, the height of the middle blocking member is stably adjusted by the rotation of the lead screw, the conveying path and trajectory of the silk thread are controlled, and sufficient stress and tension are generated on the silk thread by the height difference to drive the guiding convex wheel to tilt up integrally. And subsequently, the silk thread can be detected to observe the breaking condition of the silk thread and the number of external fluff on the silk thread, so as to accurately judge the overall quality of the silk thread and improve the overall working quality of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a schematic diagram of the overall structure of the present invention.

[0019] Figure 2 It is a schematic diagram of the overall structure of the present invention in the top view direction.

[0020] Figure 3 It is a schematic diagram of the structure of the locking mechanism of the present invention.

[0021] Figure 4 It is a schematic diagram of the structure of the locking mechanism of the present invention from another perspective.

[0022] Figure 5 It is a schematic diagram of the structure of the adjusting mechanism of the present invention.

[0023] Figure 6 It is a schematic diagram of the structure of the middle blocking member of the present invention.

[0024] Figure 7 It is a schematic diagram of the structure of the detection mechanism of the present invention.

[0025] Figure 8 This is a schematic view of the structure of the detection mechanism in the present invention from the upward view direction.

[0026] The corresponding relationship between the reference numerals and component names in the figure is as follows: 1. Conveyor base; 2. First conveyor roller; 3. Middle blocking member; 31. Middle partition; 32. Calibration groove; 33. Calibration post; 34. Static electricity wire; 35. Grounding block; 4. Second conveyor roller; 5. Locking mechanism; 51. Bottom bracket; 52. Rotating frame; 53. Side bracket; 54. Guide convex wheel; 55. Mounting bracket; 56. Positioning convex wheel; 57. Mounting side plate; 58. Spring group; 59. Meshing gear; 510. Meshing ring plate; 6. Adjusting mechanism; 61. Outer housing; 62. Lead screw; 63. Guide rod; 64. Mobile end; 65. Driving motor; 66. Limit side plate; 67. Limit block; 7. Detection mechanism; 71. Upper top plate; 72. Detection camera; 73. Guide bottom plate; 74. Fluffy claw. Detailed implementation manners

[0027] To make the above objects, features and advantages of the present invention more obvious and understandable, the following detailed description of the specific implementation manners of the present invention will be given in conjunction with the accompanying drawings of the specification.

[0028] In the following description, many specific details are set forth to fully understand the present invention. However, the present invention can also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the connotation of the present invention. Therefore, the present invention is not limited by the specific embodiments disclosed below.

[0029] Secondly, the so-called "one embodiment" or "embodiment" herein refers to a specific feature, structure or characteristic that can be included in at least one implementation manner of the present invention. The appearances of "in one embodiment" in different places in this specification do not all refer to the same embodiment, nor are they separate or alternative embodiments that exclude each other with other embodiments. The present invention provides the following embodiments.

[0030] As Figure 1 and Figure 2 shown, this is a schematic view of the structure of the textile equipment with wire-breaking self-locking in this embodiment. The equipment includes a conveyor base 1, a first conveyor roller 2, a middle blocking member 3 and a second conveyor roller 4. A first conveyor roller 2 is installed on one side of the surface of the conveyor base 1, and a second conveyor roller 4 is installed on the other side of the surface of the conveyor base 1. A middle blocking member 3 is installed on the surface of the conveyor base 1 between the first conveyor roller 2 and the second conveyor roller 4. A locking mechanism 5 for locking the broken silk thread is installed on the middle blocking member 3.

[0031] During use, the silk thread is passed through the first conveying roller 2 and the middle barrier 3. By taking advantage of the difference in height when the first conveying roller 2 and the middle barrier 3 come into contact with the silk thread, the silk thread is formed into an arc shape. Then, the silk thread is connected to the second conveying roller 4, and the silk thread is wound up to complete the stable conveying of the silk thread. The silk thread is input into the textile machine to achieve the stable conveying of the silk thread.

[0032] As shown by the appendix Figure 3 and Figure 4 shown, it is a schematic structural diagram of the locking mechanism 5 in this embodiment. The locking mechanism 5 includes a bottom bracket 51, a rotating frame 52, side brackets 53, a guiding convex wheel 54, a mounting bracket 55, a positioning convex wheel 56, a mounting side plate 57, a spring group 58, a meshing gear 59, and a meshing ring plate 510. The bottom brackets 51 are symmetrically installed on the side surface of the middle barrier 3. The rotating frame 52 is rotatably installed on the bottom brackets 51. The side brackets 53 are symmetrically installed at the ends of the rotating frame 52. The guiding convex wheel 54 is rotatably installed between the side brackets 53. The silk thread passes through the first conveying roller 2 and then adjusts its height through the middle barrier 3. Then, the silk thread is conveyed along the outer surface of the guiding convex wheel 54. The mounting bracket 55 is fixedly installed below the bottom brackets 51 on the side surface of the middle barrier 3. The positioning convex wheel 56 is installed at the top of the mounting bracket 55. The mounting side plate 57 is installed at the lower end of the bottom brackets 51. The spring group 58 is installed on the side surface of the mounting side plate 57, and the other end of the spring group 58 is connected to the rotating frame 52. When the rotating frame 52 rotates towards the side away from the mounting side plate 57, the spring group 58 enters the energy storage state. A transmission rod is installed on the side surface of the guiding convex wheel 54. The transmission rod penetrates through one of the side brackets 53, and the meshing gear 59 is installed at the end of the transmission rod. The meshing ring plate 510 is installed below the meshing gear 59 on the side surface of the mounting bracket 55. Multiple tooth blocks for meshing with the meshing gear 59 are installed on the inner wall of the meshing ring plate 510.

[0033] During use, after the silk thread passes through the middle barrier 3, at this time, the silk thread is pulled to make it fit on the lower surface of the guiding convex wheel 54. Then, the silk thread is continuously pulled so that the silk thread cooperates with the second conveying roller 4. As the angle of the silk thread and the difference in height when it contacts the second conveying roller 4, the silk thread will pull the guiding convex wheel 54, causing the rotating frame 52 to rotate inside the bottom bracket 51, driving the guiding convex wheel 54 to tilt upward as a whole, changing the angle of the guiding convex wheel 54 that was originally in contact with the positioning convex wheel 56, and separating the positioning convex wheel 56 from the guiding convex wheel 54. When the overall angle of the rotating frame 52 changes, the spring group 58 enters the energy storage state, pulling the rotating frame 52 to deflect towards the side close to the positioning convex wheel 56, and the silk thread is squeezed by the guiding convex wheel 54 at this time.

[0034] When the silk thread breaks, the stress received by the whole silk thread changes. At this time, the pulling force of the silk thread on the guiding convex wheel 54 is cancelled, and the guiding convex wheel 54 will deflect towards the clamping convex wheel 56 under the action of the spring group 58, driving the guiding convex wheel 54 and the clamping convex wheel 56 to fit together, clamping the silk thread between the guiding convex wheel 54 and the clamping convex wheel 56. The originally rotatable guiding convex wheel 54 is squeezed by the clamping convex wheel 56, and the overall position of the guiding convex wheel 54 is locked. Moreover, the meshing gear 59 connected by the transmission rod will enter the meshing ring plate 510. At this time, the meshing ring plate 510 and the meshing gear 59 are engaged, further realizing the locking of the guiding convex wheel 54 itself, preventing the broken silk thread from slipping out between the guiding convex wheel 54 and the clamping convex wheel 56, facilitating the subsequent operator to quickly find the broken silk thread and realizing precise positioning.

[0035] In this embodiment, when the rotating frame 52 is not pulled by the silk thread, the outer walls of the guiding convex wheel 54 and the clamping convex wheel 56 are in contact with each other. At this time, it is in the initial state, and the meshing gear 59 and the meshing ring plate 510 are meshed and connected at this time. During use, the silk thread is conveyed by the second conveying roller 4, so that the silk thread pulls the guiding convex wheel 54, driving the overall angle of the guiding convex wheel 54 to change, making the guiding convex wheel 54 that was originally in contact with the clamping convex wheel 56 separate from the clamping convex wheel 56. The tilted guiding convex wheel 54 pulls the silk thread under the action of the spring group 58, applying a certain stress to the silk thread. When the silk thread breaks, the stress disappears, and the guiding convex wheel 54 will fit with the clamping convex wheel 56 again, completing the positioning and clamping of the broken silk thread.

[0036] As shown in the attached Figure 2 and Figure 5 The textile equipment further includes an adjusting mechanism 6. The adjusting mechanism 6 includes a housing 61, a lead screw 62, a guide rod 63, a moving end 64, a driving motor 65, a limiting side plate 66 and a limiting block 67. One side of the upper surface of the conveying member base 1 is provided with a housing 61. A lead screw 62 is rotatably installed in the housing 61. A guide rod 63 is fixedly installed in the housing 61. The lead screw 62 and the guide rod 63 are parallel in position. A moving end 64 is threadedly engaged with the outside of the lead screw 62. The moving end 64 is slidably connected with the guide rod 63. A driving motor 65 is installed on the housing 61. The end of the driving motor 65 is connected to the end of the lead screw 62. The moving end 64 is connected to the side of the middle blocking member 3. A limiting side plate 66 is installed on the surface of the conveying member base 1 and on the side opposite to the housing 61. A limiting block 67 is slidably installed in the limiting side plate 66. The limiting block 67 is connected to the side wall of the middle blocking member 3.

[0037] During use, according to the difference in the heights of the wire input ports of both the first conveying roller 2 and the second conveying roller 4, the driving motor 65 is driven to operate, causing the lead screw 62 to rotate inside the outer housing 61. At this time, the moving end 64 installed outside the lead screw 62 moves along the thread of the lead screw 62 itself, thereby controlling the overall height of the middle barrier 3, defining the conveying trajectory and conveying curve during the wire conveying process, and enabling the wire to more stably pull the guiding convex wheel 54 to tilt up.

[0038] During the movement of the middle barrier 3, through the cooperation of the guiding rod 63 and the limiting side plate 66, it is ensured that the middle barrier 3 is in a state of vertical lifting and lowering, assisting the middle barrier 3 to stably adjust its height.

[0039] As shown by the attached Figure 6 As shown, it is a schematic structural diagram of the middle barrier 3 in this embodiment. The middle barrier 3 includes a middle partition 31, a calibration groove 32, a calibration column 33, an electrostatic wire 34 and a grounding block 35. A middle partition 31 is provided on the upper surface of the conveying member base 1. A calibration groove 32 is formed in the middle partition 31, and a calibration column 33 is installed in the calibration groove 32. The electrostatic wire 34 is installed on the side of the middle partition 31, and the end of the electrostatic wire 34 is connected to the grounding block 35.

[0040] During use, the wire passes through the first conveying roller 2 and then enters the calibration groove 32. At this time, the wire rolls along the outer surface of the calibration column 33, further controlling the conveying trajectory of the wire. Moreover, the horizontal height of the calibration column 33 needs to be the same as the horizontal height of the guiding convex wheel 54 to ensure that the wire can stably pull the guiding convex wheel 54. The operation of the electrostatic wire 34 can conduct the static electricity generated by friction during the wire transportation process. The static electricity is directly discharged into the ground through the electrostatic wire 34 and the grounding block 35, reducing the impact of static electricity on the wire.

[0041] As shown by the attached Figure 7 and Figure 8 As shown, it is a schematic structural diagram of the detection mechanism 7 in this embodiment. The textile equipment further includes a detection mechanism 7. The detection mechanism 7 includes an upper top plate 71, a detection camera 72, a guiding bottom plate 73 and fluff claws 74. The upper top plate 71 is fixedly installed on the side of the second conveying roller 4, and the detection camera 72 is fixedly installed on the lower surface of the upper top plate 71. The guiding bottom plate 73 is installed on the side of the second conveying roller 4 and below the upper top plate 71, and fluff claws 74 are fixedly installed on the surface of the guiding bottom plate 73 at equal intervals.

[0042] During use, through the installation of the guiding base plate 73, the movement trajectory of the silk thread is defined, enabling the silk thread to stably enter the interior of the second conveying roller 4 to assist in the conveyance of the silk thread. The detection camera 72 installed at the top of the guiding base plate 73 can perform real-time detection on the silk thread during the conveyance process, take pictures of the silk thread, and compare them with the pre-stored pictures of the silk thread that meet the specifications to prevent the situation of silk thread breakage. The installation of the fluff claw 74 is used to collect the fluff on the outside of the silk thread, and the detection camera 72 will synchronously detect the fluff collected by the fluff claw 74. When too much fluff is collected, it indicates that there are defects in the quality of the silk thread, and the operator needs to perform maintenance and adjustment.

[0043] The above content further elaborates on the present invention in combination with specific embodiments. It cannot be determined that the specific implementation of the present invention is only limited to these descriptions. For those of ordinary skill in the technical field to which the present invention pertains, without departing from the concept of the present invention, several simple deductions or substitutions can still be made, and all should be regarded as belonging to the protection scope determined by the claims submitted for the present invention.

Claims

1. A textile device with self-locking when the thread is broken, comprising a conveying member base (1), a first conveying roller (2), a middle end blocking member (3) and a second conveying roller (4), wherein the first conveying roller (2) is mounted on one side of the surface of the conveying member base (1), the second conveying roller (4) is mounted on the other side of the surface of the conveying member base (1), and the second conveying roller (4) is mounted on the surface of the conveying member base (1) between the first conveying roller (2) and the second conveying roller (4), characterized in that: The middle-end blocking member (3) is provided with a locking mechanism (5) for locking the broken wire. The locking mechanism (5) comprises a bottom bracket (51), a rotating frame (52), a side bracket (53) and a guide protrusion wheel (54). The middle-end blocking member (3) is symmetrically provided with a bottom bracket (51) on the side surface. The rotating frame (52) is rotatably provided on the bottom bracket (51). The side brackets (53) are symmetrically provided at the ends of the rotating frame (52). The guide protrusion wheels (54) are rotatably provided between the side brackets (53). After the wire passes through the first conveying roller (2), the height of the wire is adjusted by the middle-end blocking member (3). Then, the wire is conveyed along the outer surface of the guide protrusion wheel (54).

2. The thread-breaking self-locking textile equipment according to claim 1 is characterized in that: The locking mechanism (5) further comprises a mounting bracket (55), a locking convex wheel (56), a mounting side plate (57) and a spring group (58); the mounting bracket (55) is fixedly mounted on the side of the middle-end blocking member (3) located below the bottom bracket (51); the locking convex wheel (56) is mounted on the top of the mounting bracket (55); the mounting side plate (57) is mounted on the lower end of the bottom bracket (51); the spring group (58) is mounted on the side of the mounting side plate (57); the other end of the spring group (58) is connected to the rotating frame (52); when the rotating frame (52) rotates to a side away from the mounting side plate (57), the spring group (58) enters a force storage state.

3. The thread-breaking self-locking textile equipment according to claim 2 is characterized in that: The locking mechanism (5) further comprises a meshing gear (59) and a meshing ring plate (510); a transmission rod is mounted on the side of the guide protrusion wheel (54); the transmission rod passes through one of the side brackets (53); a meshing gear (59) is mounted on the end of the transmission rod; a meshing ring plate (510) is mounted on the side of the mounting bracket (55) below the meshing gear (59); and a plurality of groups of tooth blocks meshing with the meshing gear (59) are mounted on the inner wall of the meshing ring plate (510).

4. The thread-breaking self-locking textile equipment according to claim 3 is characterized in that: When the rotating frame (52) is not pulled by the wire, the outer walls of the guide cam wheel (54) and the locking cam wheel (56) are in contact with each other, and are in an initial state. The meshing gear (59) and the meshing ring plate (510) are meshed and connected.

5. The thread-breaking self-locking textile equipment according to claim 1, characterized in that: The textile equipment further comprises an adjusting mechanism (6), the adjusting mechanism (6) comprising an outer shell (61), a screw rod (62), a guide rod (63), a movable end (64) and a driving motor (65); the outer shell (61) is mounted on one side of the upper surface of the conveying member base (1); the screw rod (62) is rotatably mounted in the outer shell (61); the guide rod (63) is fixedly mounted in the outer shell (61); the screw rod (62) and the guide rod (63) are parallel in position; the movable end (64) is mounted on the outer thread of the screw rod (62); the movable end (64) is slidably connected to the guide rod (63); the driving motor (65) is mounted on the outer shell (61); the end of the driving motor (65) is connected to the end of the screw rod (62); and the movable end (64) is connected to the side of the middle-end blocking member (3).

6. The thread-breaking self-locking textile equipment according to claim 5, characterized in that: The adjustment mechanism (6) further comprises a limiting side plate (66) and a limiting block (67); the limiting side plate (66) is installed on the surface of the conveying member base (1) and on a side opposite to the outer shell (61); the limiting block (67) is slidably installed in the limiting side plate (66); and the limiting block (67) is connected to the side wall of the middle end blocking member (3).

7. The thread-breaking self-locking textile equipment according to claim 1, characterized in that: The middle-end blocking member (3) comprises a middle-end partition (31), a calibration groove (32) and a calibration column (33); the upper surface of the conveying member base (1) is provided with a middle-end partition (31); the calibration groove (32) is provided in the middle-end partition (31); and the calibration column (33) is installed in the calibration groove (32).

8. The thread-breaking self-locking textile equipment according to claim 7, characterized in that: The middle-end barrier (3) further comprises an electrostatic conductor (34) and a grounding block (35); the side of the middle-end partition (31) is provided with an electrostatic conductor (34); and the end of the electrostatic conductor (34) is connected to the grounding block (35).

9. The thread-breaking self-locking textile equipment according to claim 1, characterized in that: The textile equipment further comprises a detection mechanism (7), the detection mechanism (7) comprising an upper top plate (71) and a detection camera (72), the upper top plate (71) being fixedly mounted on the side of the second conveying roller (4), and the detection camera (72) being fixedly mounted on the lower surface of the upper top plate (71).

10. The thread-breaking self-locking textile equipment according to claim 9, characterized in that: The detection mechanism (7) further comprises a guide bottom plate (73) and a fluff hook (74); the guide bottom plate (73) is installed on the side of the second conveying roller (4) and below the upper top plate (71); and the fluff hooks (74) are fixedly installed at equal intervals on the surface of the guide bottom plate (73).