Anti-slip Surah spindle for spinning and preparation process thereof

By incorporating an auxiliary stabilizing mechanism and a Hall effect device to monitor the amount of lubricating oil, the problems of unstable spindle fixing and lubricating oil control are solved, enabling simple spindle fixing and precise lubrication, thereby improving the stability and service life of the equipment.

CN121363071APending Publication Date: 2026-01-20JIANGSU HUAYOU TEXTILE MASCH ACCESSORIES CO LTD
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Patent Information

Application Number
CN202511650858.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-12
Publication Date
2026-01-20

AI Technical Summary

Technical Problem

In existing technologies, the method of fixing the spindle and the bearing is prone to operational errors, and it is difficult to control the amount of lubricating oil added manually, which leads to problems with equipment stability and safety.

Method used

An auxiliary stabilizing mechanism is used to hold the spindle rod by a reciprocating lead screw and an arc plate, combined with Hall effect devices and magnets to monitor the amount of lubricating oil, and a soft brush is used to evenly apply an anti-slip coating.

Benefits of technology

It simplifies the process of fixing the spindle, improves the stability and safety of the equipment, ensures precise control of the amount of lubricating oil, reduces manual intervention and equipment wear, and extends service life.

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Abstract

The invention discloses an anti-slip Suraa spindle for spinning and a preparation process thereof, the anti-slip Suraa spindle comprises a base, a wharve body is arranged on the top surface of the base, a sleeve is arranged on the top surface of the wharve body, a spindle blade body is arranged in the sleeve, an auxiliary stabilizing mechanism is arranged in the sleeve, and the auxiliary stabilizing mechanism clamps the spindle blade body through a second arc-shaped plate. According to the mode, the spindle blade body is clamped and fixed, operation is easy, convenient and rapid, the clamping stability can be guaranteed through the design of a second arc-shaped plate, meanwhile, the tedious process that a traditional bolt or pin needs to be manually tightened or inserted is avoided, the surface of the spindle blade body is coated with an anti-skid coating through the spraying mechanism, and the spraying efficiency is improved. The anti-skid coating is arranged on the spindle blade body, it is ensured that the anti-skid coating is more uniform through the banister brush, the banister brush can adapt to the surface of the spindle blade body according to the shape and texture of the spindle blade body when making contact with the surface of the spindle blade body, and therefore comprehensive and uniform coating covering is achieved, and compared with spraying in the prior art, the banister brush can make contact with the surface of the spindle blade body gently, and damage to the surface is avoided.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of textile equipment, in particular to a textile anti-skid sulzer spindle and a preparation process thereof. BACKGROUND

[0002] The spindle is an important part of the twisting and winding machine in the spinning machine, and is widely used in textile machinery such as wool spinning machine, twisting machine and worsted spinning machine; the bobbin is a spinning container used in conjunction with the spindle, and the technical performance and operation quality of the spindle and the bobbin are closely related to the yarn quality, power consumption, environmental noise and labor productivity.

[0003] The spindle mainly consists of a spindle rod, a spindle disc, a spindle core and a spindle foot, the spindle disc fixed on the spindle rod is the driving part of the spindle, and the spindle foot is the supporting seat of the spindle, the spindle core is arranged in the spindle foot, and the spindle rod rotates at high speed with the spindle core as the bearing.

[0004] In the prior art, the spindle and the spindle seat are rotatably inserted and fixed inside the bearing, and are fixed in the bearing by screwing or inserting a pin, the bearing needs to be separately disassembled with the screw or the pin, which may cause operation errors during installation or disassembly, such as loose screw or falling pin, thereby affecting the stability and safety of the equipment, and the disassembly process is time-consuming and complicated, and if the disassembly is improper, the bearing or related parts may be damaged, which requires additional repair or replacement cost.

[0005] In addition, a large amount of lubricating oil is needed to lubricate the spindle during use, and manual addition of lubricating agent is mostly used in the prior art, it is difficult to ensure whether the amount of added lubricating oil is sufficient when manually adding lubricating oil, and the area with insufficient lubrication will be subjected to increased friction, which will cause the equipment to wear out, thereby affecting the performance and service life of the equipment, and during the manual oiling process, the lubricating oil will overflow or drip, which will pollute the working environment, and the overflowing lubricating oil may become a source of safety hazards such as fire, especially in high-temperature or open flame environments, the flammability of the lubricating oil may cause fire accidents.

[0006] Therefore, a textile anti-skid sulzer spindle and a preparation process thereof are proposed to solve the above problems. SUMMARY

[0007] Therefore, the technical problem to be solved by the present application is to provide a textile anti-skid sulzer spindle and a preparation process thereof to solve the problems that the spindle is fixed in the bearing by screwing or inserting a pin in the prior art, which may cause operation errors during installation or disassembly, and it is difficult to ensure whether the amount of added lubricating oil is sufficient when manually adding lubricating oil.

[0008] To achieve the above object, the present application provides the following technical scheme: a textile anti-skid sulax spindle, comprising: a base, the top surface of the base is provided with a spindle body, the top surface of the spindle body is provided with a sleeve, the inside of the sleeve is provided with a spindle rod body, the inside of the sleeve is provided with an auxiliary stabilizing mechanism. The auxiliary stabilizing mechanism is used to stabilize the operation of the spindle rod body.

[0009] As an improvement, the auxiliary stabilizing mechanism comprises a circular plate, the circular plate is fixedly connected to the inner wall of the sleeve, the top surface of the circular plate is rotatably connected with a reciprocating screw rod, the outer surface of the reciprocating screw rod is threadedly connected with a first circular ring, the top surface of the first circular ring is fixedly connected with a connecting block, and the end of the connecting block away from the first circular ring is fixedly connected with a second circular ring.

[0010] As an improvement, the top surface of the circular plate is circumferentially provided with a rotating rod, and the rotating rod is rotatably connected to the top surface of the circular plate, the top surface of the rotating rod is provided with an auxiliary block, the other end of the auxiliary block is rotatably connected with a first arc-shaped plate, and the auxiliary block is rotatably connected between the first circular ring and the second circular ring.

[0011] As an improvement, one side of the end of the first arc-shaped plate away from the rotating rod is fixedly connected with a return spring, the end of the return spring away from the first arc-shaped plate is fixedly connected with a second arc-shaped plate, the first arc-shaped plate and the second arc-shaped plate are fixedly connected with an arc-shaped auxiliary plate, and the arc-shaped auxiliary plate is located on the upper and lower surfaces of the first arc-shaped plate and the second arc-shaped plate.

[0012] As an improvement, the bottom surface of the circular plate is fixedly connected with a connecting plate, the bottom surface of the connecting plate is fixedly connected with a Hall device, the inner wall of the connecting plate is rotatably connected with two auxiliary cylinders, the outer surface of the two auxiliary cylinders is fixedly connected with a connecting rope, the inner wall of the auxiliary cylinder is provided with a torsion spring, and the end of the connecting rope away from the auxiliary cylinder is fixedly connected with a floating plate, and the inside of the floating plate is provided with a magnet.

[0013] As an improvement, the preparation process comprises: (1) Material selection: according to the use requirements and performance characteristics of the spindle, select appropriate steel as the raw material, usually select high-quality steel with high hardness, wear resistance and fatigue resistance; (2) Forging processing: the selected steel is forged, and through heating, forging and cooling processes, the steel is forged into the basic shape of the spindle, and the heating temperature and forging force during the forging process need to be strictly controlled to ensure that the internal organization and mechanical properties of the spindle meet the requirements; (3) Mechanical processing: After forging, the ingot is subjected to mechanical processing, including turning, milling, grinding and other processes, to achieve accurate size and shape requirements, and the surface of the ingot also needs to be polished to improve its surface finish and anti-skid performance; (4) Heat treatment: The processed ingot is subjected to heat treatment, including quenching and tempering processes, to improve its hardness and wear resistance. The heating temperature, holding time and cooling speed parameters need to be strictly controlled during the heat treatment process to ensure that the heat treatment effect of the ingot meets the requirements; (5) Anti-skid treatment: Anti-skid treatment is performed on the surface of the ingot, usually using a spraying mechanism or electroplating method to coat anti-skid material on the surface of the ingot. The choice of anti-skid material should be based on the material of the yarn and the requirements of the spinning process; (6) Quality detection: The prepared ingot is subjected to quality detection, including size measurement, hardness testing, wear resistance testing and other processes. Through quality detection, the performance and quality of the ingot can be ensured to meet the requirements, providing reliable protection for subsequent spinning production.

[0014] As an improvement, the spraying mechanism comprises a first cylinder, a circular hole is formed in the top surface of the first cylinder, and the size of the circular hole is matched with the size of the spindle body, the first cylinder is arranged on the top surface of the base, a first gear is rotatably connected to the inner wall bottom surface of the first cylinder, a second gear is engaged with the outer surface of the first gear, and the second gear is rotatably connected to the inner wall bottom surface of the first cylinder.

[0015] As an improvement, the top surface of the first cylinder is fixedly connected with a support table, the top surface of the first gear is fixedly connected with two telescopic rods, and the support table is located between the two telescopic rods, the top surface of the support table is fixedly connected with an auxiliary ring, and the inner wall of the auxiliary ring is provided with a soft brush.

[0016] As an improvement, the spindle body is located inside the auxiliary ring, the top surface of the second gear is fixedly connected with a first cylinder, the outer surface of the first cylinder is provided with a protrusion, the outer surface of the first cylinder is slidably connected with a second cylinder, the inside of the second cylinder is provided with an arc-shaped groove, and the arc-shaped groove is slidably connected with the protrusion, the auxiliary ring is rotatably connected to the top end outer surface of the second cylinder, the inner wall bottom surface of the first cylinder is fixedly connected with a feeding device, and a soft tube is fixedly connected between the auxiliary ring and the feeding device.

[0017] The following beneficial effects are achieved: 1. The rotation of the reciprocating screw drives the first ring to rotate, which in turn causes the first arc plate to move closer to the spindle body. The second arc plate then clamps the spindle body. This method of clamping and fixing the spindle body is simple and quick to operate. The design of the second arc plate ensures the stability of the clamping and avoids the tedious process of manually tightening or inserting traditional bolts or pins. The design of the second arc plate also makes it easy to maintain and replace. If the second arc plate wears or is damaged during long-term use, a new second arc plate can be easily replaced without large-scale repair or replacement of the entire equipment.

[0018] 2. By using a return spring positioned between the second and first arc-shaped plates, and an arc-shaped auxiliary plate also positioned between the second and first arc-shaped plates, the return spring can absorb and disperse vibrations and impacts generated by equipment operation or other external factors. This buffering effect helps reduce vibration and swaying of the spindle body during clamping, improving clamping stability and accuracy. The arc-shaped auxiliary plate also has excellent shock absorption and buffering performance. It can deform under pressure, thereby absorbing and dispersing vibration energy. The softness and elasticity of the arc-shaped auxiliary plate enable it to better adapt to vibrations of different frequencies and amplitudes, providing more comprehensive protection for the spindle body. This comprehensive shock absorption effect helps reduce the small displacement and deformation of the spindle during clamping, improving clamping stability and reliability. They can maintain the stability and accuracy of the clamping system, ensuring the reliability and durability of the spindle body during long-term operation.

[0019] 3. By using a Hall effect device located on the bottom of the connecting plate and a magnet inside the float plate, the dosage of lubricating oil in the sleeve can be controlled. The combination of the magnet and the Hall effect device enables precise measurement of the amount of lubricating oil added. The Hall effect device can sense changes in the magnetic field generated by the magnet and convert them into electrical signals for transmission and processing, thereby achieving precise monitoring of the lubricating oil level. This avoids human error, improves detection accuracy, and allows for real-time monitoring of lubricating oil level changes, automatically adding oil when needed. This significantly reduces the frequency and intensity of manual intervention, improving work efficiency. Because the device can monitor and adjust the lubricating oil dosage in real time, measures can be taken in time before insufficient or excessive lubrication occurs, preventing equipment downtime due to lubrication problems. This helps reduce downtime and improve equipment utilization and production efficiency.

[0020] 4、Through the arc slot opened on the outer surface of the spindle body and the anti-skid coating sprayed on the outer surface of the spindle body, the design of the circular slot can affect the flow pattern of the fluid (such as gas or liquid) on the surface of the spindle body, which helps to reduce the fluid resistance and improve the overall efficiency of the equipment, and the circular slot can also serve as a heat dissipation channel to increase the heat dissipation area of the spindle body surface, which helps to transfer the heat generated inside the spindle body to the external environment more quickly, thereby reducing the working temperature of the spindle body. The main function of the anti-skid coating is to increase the friction of the surface to prevent objects from sliding on the surface of the spindle body. The anti-skid coating is usually made of wear-resistant materials that can resist friction and wear, thereby prolonging the service life of the spindle body.

[0021] 5、Through the rotation and up-down movement of the auxiliary ring, the surface of the spindle body can be coated with an anti-skid coating, and the soft brush ensures that the anti-skid coating is more uniform. Because the soft brush can adapt to the shape and texture of the spindle body surface when it contacts the surface, it can achieve comprehensive and uniform coating coverage. In contrast, the spraying technique may result in uneven layers, thickness unevenness or missed coating due to factors such as spraying distance, angle and speed. The soft brush can gently contact the surface of the spindle body to avoid damaging the surface. At the same time, the soft brush can more effectively apply the anti-skid material to the surface of the spindle, forming a higher quality anti-skid coating. This avoids the impact and wear caused by high-pressure airflow and coating particles on the surface of the spindle during the spraying process, which affects the quality of the layer. Moreover, when the soft brush is used for coating, the amount and distribution of the coating can be accurately controlled to avoid unnecessary waste, thereby reducing the waste and pollution of the coating. BRIEF DESCRIPTION OF DRAWINGS

[0022] Figure 1 is a perspective view of the overall structure of the present application; Figure 2 is a schematic view of the internal structure of the sleeve of the present application; Figure 3 is a schematic view of the connection relationship structure of the connecting plate of the present application; Figure 2 is an enlarged schematic view of the structure at A in the present application; Figure 4 is a schematic view of the connection relationship structure of the reset spring of the present application; Figure 5 is a schematic view of the connection relationship structure of the connecting plate of the present application; Figure 6 is a schematic view of the internal structure of the auxiliary cylinder of the present application; Figure 7 is a schematic view of the internal structure of the first cylinder of the present application; Figure 8 is a schematic view of the internal structure of the second cylinder of the present application.

[0023] In the drawings: 1, base; 11, spindle body; 12, sleeve; 13, spindle body; 2, auxiliary stabilizing mechanism; 21, round plate; 22, reciprocating screw rod; 23, first circular ring; 24, connecting block; 25, second circular ring; 26, rotating rod; 27, first arc plate; 28, second arc plate; 29, return spring; 210, arc auxiliary plate; 211, connecting plate; 212, Hall device; 213, auxiliary cylinder; 214, connecting rope; 215, floating plate; 3, spraying mechanism; 31, first cylinder; 32, first gear; 33, second gear; 34, support table; 35, telescopic rod; 36, auxiliary circular ring; 37, first cylinder; 38, second cylinder; 39, feeding device. DETAILED DESCRIPTION

[0024] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of the present application.

[0025] The present application will be further described in detail below according to the drawings and embodiments.

[0026] Embodiment one The preparation process includes: (1) Material selection: according to the use requirements and performance characteristics of the spindle, select appropriate steel as raw material, usually select high-quality steel with high hardness, wear resistance and fatigue resistance; (2) Forging process: the selected steel is forged, through heating, forging and cooling processes, the steel is forged into the basic shape of the spindle, the heating temperature and forging force during forging process need to be strictly controlled to ensure that the internal organization and mechanical properties of the spindle meet the requirements; (3) Mechanical processing: the spindle after forging is mechanically processed, including turning, milling, grinding and other processes, to achieve accurate size and shape requirements, at the same time, the surface of the spindle needs to be polished to improve its surface finish and anti-skid performance; (4) Heat treatment: the processed spindle is heat treated, including quenching and tempering processes, to improve its hardness and wear resistance, the heating temperature, holding time and cooling speed and other parameters during heat treatment need to be strictly controlled to ensure that the heat treatment effect of the spindle meets the requirements; (5) Anti-skid treatment: anti-skid treatment is carried out on the surface of the spindle, usually using spraying mechanism 3 or electroplating method to coat anti-skid material on the surface of the spindle, the selection of anti-skid material should be determined according to the material of the yarn and the requirements of the spinning process; (6) Quality detection: the prepared spindle is subjected to quality detection, including size measurement, hardness test, wear resistance test and the like, so that the performance and quality of the spindle can meet the requirements, thereby providing reliable guarantee for subsequent spinning production.

[0027] Embodiment Two Please refer to Figures 1 to 6 The technical problems to be solved by the present application are shown in the following: To solve the problems mentioned in the technical scheme, the present application provides a textile anti-skid Surah spindle, comprising: a base 1, the top surface of the base 1 is provided with a spindle body 11, the top surface of the spindle body 11 is provided with a sleeve 12, the inside of the sleeve 12 is provided with a spindle rod body 13, the inside of the sleeve 12 is provided with an auxiliary stabilizing mechanism 2. The auxiliary stabilizing mechanism 2 is used to stabilize the operation of the spindle rod body 13.

[0028] The auxiliary stabilizing mechanism 2 comprises a circular plate 21, the circular plate 21 is fixedly connected to the inner wall of the sleeve 12, the top surface of the circular plate 21 is rotatably connected with a reciprocating screw rod 22, the outer surface of the reciprocating screw rod 22 is threadedly connected with a first circular ring 23, the top surface of the first circular ring 23 is fixedly connected with a connecting block 24, the end of the connecting block 24 away from the first circular ring 23 is fixedly connected with a second circular ring 25.

[0029] The top surface of the circular plate 21 is circumferentially provided with a rotating rod 26, and the rotating rod 26 is rotatably connected to the top surface of the circular plate 21, the top surface of the rotating rod 26 is provided with an auxiliary block, the other end of the auxiliary block is rotatably connected with a first arc-shaped plate 27, and the auxiliary block is rotatably connected between the first circular ring 23 and the second circular ring 25.

[0030] One side of the end of the first arc-shaped plate 27 away from the rotating rod 26 is fixedly connected with a return spring 29, the end of the return spring 29 away from the first arc-shaped plate 27 is fixedly connected with a second arc-shaped plate 28, the first arc-shaped plate 27 and the second arc-shaped plate 28 are fixedly connected with an arc-shaped auxiliary plate 210, and the arc-shaped auxiliary plate 210 is located on the upper and lower surfaces of the first arc-shaped plate 27 and the second arc-shaped plate 28.

[0031] The bottom surface of the circular plate 21 is fixedly connected with a connecting plate 211, the bottom surface of the connecting plate 211 is fixedly connected with a Hall device 212, the inner wall of the connecting plate 211 is rotatably connected with two connecting ropes 214, the outer surface of the two connecting ropes 214 is fixedly connected with the connecting rope 214, the inner wall of an auxiliary cylinder 213 is provided with a torsion spring, the end of the connecting rope 214 away from the auxiliary cylinder 213 is fixedly connected with a floating plate 215, and the inside of the floating plate 215 is provided with a magnet.

[0032] The top surface of the sleeve 12 is provided with a circular groove, and the spindle body 13 can slide in the circular groove, the top surface of the rotating rod 26 is provided with an auxiliary block, the inner wall of the auxiliary cylinder 213 is provided with a torsion spring, the inside of the floating plate 215 is provided with a magnet, the sleeve 12 can be externally connected with an automatic lubricating oil replenishing device, when the floating plate 215 approaches the Hall device 212, it indicates that the lubricating oil is sufficient, the automatic lubricating oil replenishing device stops injecting lubricating oil into the sleeve 12, otherwise, when the floating plate 215 is away from the Hall device 212, the automatic lubricating oil replenishing device injects lubricating oil into the sleeve 12.

[0033] Through the implementation of the embodiment, by arranging the Hall device 212 on the bottom surface of the connecting plate 211 and the magnet in the inside of the floating plate 215, the dosage of the lubricating oil in the sleeve 12 can be controlled, the cooperation of the magnet and the Hall device 212 can realize accurate measurement of the amount of lubricating oil, the Hall device 212 can sense the change of the magnetic field generated by the magnet and convert it into an electrical signal for transmission and processing, thereby realizing accurate monitoring of the liquid level of the lubricating oil and avoiding these human errors and improving the accuracy of detection.

[0034] Further embodiment: please refer to Figures 7 to 8 As shown in the figure: The spraying mechanism 3 comprises a first cylinder 31, the top surface of the first cylinder 31 is provided with a circular hole, and the size of the circular hole is matched with the spindle body 13, the first cylinder 31 is arranged on the top surface of the base 1, the inner wall bottom surface of the first cylinder 31 is rotationally connected with a first gear 32, the outer surface of the first gear 32 is engaged with a second gear 33, and the second gear 33 is rotationally connected with the inner wall bottom surface of the first cylinder 31.

[0035] The top surface of the first gear 32 is fixedly connected with a support table 34, the top surface of the first gear 32 is fixedly connected with two telescopic rods 35, and the support table 34 is located between the two telescopic rods 35, the top surface of the support table 34 is fixedly connected with an auxiliary ring 36, and the inner wall of the auxiliary ring 36 is provided with a soft brush, The spindle body 13 is located in the inside of the auxiliary ring 36, the top surface of the second gear 33 is fixedly connected with a first cylinder 37, the outer surface of the first cylinder 37 is provided with a protrusion, the outer surface of the first cylinder 37 is slidingly connected with a second cylinder 38, the inside of the second cylinder 38 is provided with an arc-shaped groove, and the arc-shaped groove is slidingly connected with the protrusion, the auxiliary ring 36 is rotationally connected with the top end outer surface of the second cylinder 38, the inner wall bottom surface of the first cylinder 31 is fixedly connected with a feeding device 39, and the auxiliary ring 36 and the feeding device 39 are fixedly communicated with a hose.

[0036] Wherein: the outer surface of the spindle body 13 is provided with a circular groove, the top surface of the first cylinder 31 is provided with a circular hole, and the size of the circular hole is matched with the spindle body 13, the inner wall of the auxiliary ring 36 is provided with a soft brush, the outer surface of the first cylinder 37 is provided with a protrusion, the inside of the second cylinder 38 is provided with an arc-shaped groove, and the arc-shaped groove is slidably connected with the protrusion, the auxiliary ring 36 and the feeding device 39 are fixedly connected with a hose, and the inside of the feeding device 39 is provided with a non-slip material.

[0037] Through the rotation and up-down movement of the auxiliary ring 36, the surface of the spindle body 13 can be coated with a non-slip coating, and the soft brush can ensure that the non-slip coating is more uniform. Because the soft brush can adapt to the shape and texture of the surface of the spindle body 13 when it contacts the surface, it can achieve comprehensive and uniform coating coverage. In contrast, the spraying technique can cause uneven layers due to factors such as spraying distance, angle, and speed, resulting in problems such as uneven thickness or missed coating. The soft brush can gently contact the surface of the spindle body 13 without causing damage to the surface. At the same time, the soft brush can more effectively and evenly apply the non-slip material to the surface of the spindle body 13, forming a non-slip coating with higher quality. This avoids the impact and wear caused by high-pressure airflow and coating particles on the surface of the spindle body 13 during the spraying process, which affects the quality of the layer. Moreover, when the soft brush is used for coating, it can accurately control the amount and distribution of the coating, avoiding unnecessary waste and reducing the waste and pollution of the coating.

[0038] The working principle of all the above embodiments is as follows: The following is the working process of the auxiliary stabilizing mechanism 2 to keep the spindle body 13 stable: In use, the spindle body 13 is inserted into the circular groove formed in the sleeve 12 by hand, and then the reciprocating screw rod 22 is driven to rotate. The rotation of the reciprocating screw rod 22 drives the first ring 23, the connecting block 24, and the second ring 25 to rotate together, thereby driving the rotating rod 26 to rotate. The rotation of the rotating rod 26 drives the first arc-shaped plate 27 fixedly connected thereto to rotate, and the first arc-shaped plate 27 drives the second arc-shaped plate 28 fixedly connected thereto to rotate together, thereby clamping the spindle body 13. The rotation of the reciprocating screw rod 22 drives the first ring 23 to rotate, thereby causing the first arc-shaped plate 27 to move towards the spindle body 13, and the spindle body 13 is clamped by the second arc-shaped plate 28. In this way, the spindle body 13 is clamped and fixed, which is simple and convenient to operate. The design of the second arc-shaped plate 28 can ensure the stability of clamping, and at the same time, it avoids the tedious process of manually tightening or inserting traditional bolts or pins. The design of the second arc-shaped plate 28 makes it easy to maintain and replace. In the long-term use process, if the second arc-shaped plate 28 is worn or damaged, a new second arc-shaped plate 28 can be easily replaced without the need for large-scale maintenance or replacement of the entire device. In addition, the reset spring 29 is arranged between the first arc-shaped plate 27 and the second arc-shaped plate 28, and can absorb and disperse the vibration and impact force generated from the operation of the device or other external factors. The buffering effect helps to reduce the vibration and shaking of the spindle body 13 during clamping, improves the stability and precision of clamping, the softness and elasticity of the arc-shaped auxiliary plate 210 can better adapt to vibrations of different frequencies and amplitudes, and provide more comprehensive protection for the spindle body 13. Through the cooperation between the reset spring 29 and the arc-shaped auxiliary plate 210, the small displacement and deformation of the spindle body 13 during clamping can be reduced, the stability and reliability of clamping can be improved, and the stability and precision of the clamping system can be maintained, so as to ensure the reliability and durability of the spindle body 13 during long-time operation, The automatic oil replenishing device is arranged outside the sleeve 12, and the floating plate 215 can float on the surface of the lubricating oil. When the automatic oil replenishing device injects lubricating oil into the sleeve 12, the floating plate 215 always floats on the surface of the lubricating oil, and the inside of the floating plate 215 is provided with a magnet. When the floating plate 215 approaches the Hall device 212, it indicates that the lubricating oil is sufficient, and the automatic oil replenishing device stops injecting lubricating oil into the sleeve 12. Conversely, when the floating plate 215 is away from the Hall device 212, the automatic oil replenishing device injects lubricating oil into the sleeve 12. In this way, the amount of lubricating oil in the sleeve 12 is controlled. The cooperation of the magnet and the Hall device 212 can realize accurate measurement of the amount of lubricating oil. The Hall device 212 can sense the change of the magnetic field generated by the magnet and convert it into an electric signal for transmission and processing, so as to realize accurate monitoring of the liquid level of the lubricating oil, avoid these human errors, improve the accuracy of detection, and monitor the liquid level of the lubricating oil in real time and automatically add when needed, which greatly reduces the frequency and intensity of manual intervention and improves the work efficiency.

[0039] The above working process please refer to Figures 1 to 6 .

[0040] The following is the working process of the spraying mechanism 3 for uniformly applying the anti-skid layer to the spindle body 13: In use, the spindle body 13 has been previously opened out of the circular arc groove, because the top surface of the first cylinder 31 is opened with a circular hole, and the size of the circular hole is matched with the spindle body 13, the staff inserts the spindle body 13 through the circular hole, and places it on the top surface of the support table 34, then the staff drives the first gear 32 to rotate, at the same time, the feeding device 39 injects the antiskid material in the inside through the hose, because the inner wall of the auxiliary ring 36 is provided with the soft brush, and the first gear 32 and the auxiliary ring 36 are fixedly connected with the telescopic rod 35, that is, the first gear 32 drives the auxiliary ring 36 to rotate, and then the antiskid material is coated on the outer surface of the spindle body 13 through the soft brush, in addition, because the outer surface of the first gear 32 is engaged with the second gear 33, that is, the first gear 32 drives the second gear 33 to rotate together, the top surface of the second gear 33 is fixedly connected with the first cylinder 37, because the outer surface of the first cylinder 37 is provided with the protrusion, the inside of the second cylinder 38 is opened with the arc-shaped groove, and the arc-shaped groove is slidably connected with the protrusion, that is, the first cylinder 37 drives the second cylinder 38 to move up and down, and the auxiliary ring 36 is rotatably connected to the outer surface of the second cylinder 38, then the auxiliary ring 36 moves up and down reciprocatingly through the rotation of the first gear 32 and the second gear 33, so that the antiskid coating is uniformly coated on the outer surface of the spindle body 13, when the soft brush contacts the surface of the spindle body 13, it can adapt to the shape and texture, so as to realize comprehensive and uniform coating coverage, compared with the spraying technology, the spraying distance, angle and speed and other factors can cause the layer to be uneven, and the problems of uneven thickness or missed coating can occur, the soft brush can gently contact the surface of the spindle body 13, avoiding damage to the surface, at the same time, the soft brush can more effectively uniformly coat the antiskid material on the surface of the spindle body 13, forming a higher quality antiskid coating, avoiding that the high-pressure airflow and coating particles cause certain impact and wear on the surface of the spindle body 13 in the spraying process, affecting the layer quality, and when the soft brush performs coating treatment, the soft brush can accurately control the amount and distribution of the coating, avoiding unnecessary waste, thereby reducing the waste and pollution of the coating.

[0041] The above working process please refer to Figures 7 to 8 .

[0042] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes the element.

[0043] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A non-slip sura spindle for use with textiles, comprising: Base (1), the top surface of the base (1) is provided with a spindle body (11), the top surface of the spindle body (11) is provided with a sleeve (12), the inside of the sleeve (12) is provided with a spindle body (13), characterized in that, the inside of the sleeve (12) is provided with an auxiliary stabilizing mechanism (2); The auxiliary stabilizing mechanism (2) is used to make the spindle body (13) run stably.

2. A non-slip sura spindle for use in textile processing as claimed in claim 1, wherein: The auxiliary stabilizing mechanism (2) comprises a circular plate (21), the circular plate (21) is fixedly connected to the inner wall of the sleeve (12), the top surface of the circular plate (21) is rotatably connected with a reciprocating screw rod (22), the outer surface of the reciprocating screw rod (22) is threadedly connected with a first circular ring (23), the top surface of the first circular ring (23) is fixedly connected with a connecting block (24), and the end, away from the first circular ring (23), of the connecting block (24) is fixedly connected with a second circular ring (25).

3. A non-slip sura spindle for use in textile arts as claimed in claim 2, wherein: The top surface of the circular plate (21) is circumferentially provided with rotating rods (26), and the rotating rods (26) are rotatably connected to the top surface of the circular plate (21); the top surface of each rotating rod (26) is provided with an auxiliary block, and the other end of the auxiliary block is rotatably connected with a first arc-shaped plate (27), and the auxiliary block is rotatably connected between the first circular ring (23) and the second circular ring (25).

4. A non-slip sura spindle for use in textile arts as claimed in claim 3, wherein: One side of the end, away from the rotating rod (26), of the first arc-shaped plate (27) is fixedly connected with a return spring (29), the end, away from the first arc-shaped plate (27), of the return spring (29) is fixedly connected with a second arc-shaped plate (28), and an arc-shaped auxiliary plate (210) is fixedly connected between the first arc-shaped plate (27) and the second arc-shaped plate (28), and the arc-shaped auxiliary plate (210) is located on the upper and lower surfaces of the first arc-shaped plate (27) and the second arc-shaped plate (28).

5. A non-slip sura spindle for use in textile arts as claimed in claim 4, wherein: The bottom surface of the circular plate (21) is fixedly connected with a connecting plate (211), the bottom surface of the connecting plate (211) is fixedly connected with a Hall device (212), the inner wall of the connecting plate (211) is rotatably connected with two auxiliary cylinders (213), the outer surfaces of the two auxiliary cylinders (213) are fixedly connected with connecting ropes (214), the inner wall of the auxiliary cylinder (213) is provided with a torsion spring, the end, away from the auxiliary cylinder (213), of the connecting rope (214) is fixedly connected with a floating plate (215), and the inside of the floating plate (215) is provided with a magnet.

6. The process for the preparation of anti-skid sulcatra for textile use, as claimed in claim 1-5, wherein, The preparation process comprises: (1) material selection: according to the use requirements and performance characteristics of the spindle, select appropriate steel as the raw material, usually select high-quality steel with high hardness, wear resistance and fatigue resistance; (2) forging processing: the selected steel is subjected to forging processing, and through heating, forging and cooling processes, the steel is forged into the basic shape of the spindle, and the heating temperature and forging force during the forging process need to be strictly controlled to ensure that the internal organization and mechanical properties of the spindle meet the requirements; (3) Mechanical processing: After forging, the ingot is subjected to mechanical processing, including turning, milling, grinding and other processes, to achieve accurate size and shape requirements. At the same time, the surface of the ingot needs to be polished to improve its surface finish and anti-skid performance; (4) Heat treatment: The processed ingot is subjected to heat treatment, including quenching and tempering, to improve its hardness and wear resistance. During the heat treatment process, parameters such as heating temperature, holding time and cooling speed need to be strictly controlled to ensure that the heat treatment effect of the ingot meets the requirements; (5) Anti-skid treatment: Anti-skid treatment is performed on the surface of the ingot, usually by spraying mechanism (3) or electroplating to coat anti-skid material on the surface of the ingot. The choice of anti-skid material should be based on the material of the yarn and the requirements of the spinning process; (6) Quality detection: The prepared ingot is subjected to quality detection, including size measurement, hardness test, wear resistance test and other processes. Through quality detection, the performance and quality of the ingot can be ensured to meet the requirements, providing reliable guarantee for subsequent spinning production.

7. Anti-slip sura spindle spraying device, according to the process for the preparation of anti-slip sura spindles for textile use according to claim 6, characterized by the fact that: The spraying mechanism (3) comprises a first cylinder (31), a circular hole is formed in the top surface of the first cylinder (31), and the size of the circular hole is matched with the size of the spindle body (13), the first cylinder (31) is arranged on the top surface of the base (1), the inner wall bottom surface of the first cylinder (31) is rotatably connected with a first gear (32), the outer surface of the first gear (32) is engaged with a second gear (33), and the second gear (33) is rotatably connected with the inner wall bottom surface of the first cylinder (31).

8. The anti-slip sura spindown spray device of claim 7, wherein: The top surface of the first cylinder (31) is fixedly connected with a supporting table (34), the top surface of the first gear (32) is fixedly connected with two telescopic rods (35), and the supporting table (34) is located between the two telescopic rods (35), the top surface of the supporting table (34) is fixedly connected with an auxiliary ring (36), and the inner wall of the auxiliary ring (36) is provided with a soft brush.

9. The anti-slip sura spindown spray device of claim 8, wherein: The spindle body (13) is located inside the auxiliary ring (36), the top surface of the second gear (33) is fixedly connected with a first cylinder (37), the outer surface of the first cylinder (37) is provided with a protrusion, the outer surface of the first cylinder (37) is slidably connected with a second cylinder (38), the inside of the second cylinder (38) is provided with an arc-shaped groove, and the arc-shaped groove is slidably connected with the protrusion, the auxiliary ring (36) is rotatably connected with the top end outer surface of the second cylinder (38), the inner wall bottom surface of the first cylinder (31) is fixedly connected with a feeding device (39), and the auxiliary ring (36) and the feeding device (39) are fixedly connected in communication with a hose.