Spinning yarn supporting device with radial adjusting structure

By introducing a combined structure of an electric-driven screw rod and a magnetic strip into the textile wire support device, the problem that the traditional device cannot adjust the radial size is solved, the uniformity of the wire tension is achieved, and the textile quality is improved.

CN223422136UActive Publication Date: 2025-10-10HANGZHOU QINGYE TEXTILE CO LTD
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Patent Information

Application Number
CN202423002106.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-06
Publication Date
2025-10-10
Estimated Expiration
2034-12-06

AI Technical Summary

Technical Problem

Traditional textile wire support devices are fixed structures and cannot adjust the radial dimensions according to the thickness of the wire. This causes the wire to loosen, shift or be over-extruded, affecting the textile quality and tension coordination.

Method used

The textile wire-supporting device adopts a radial adjustment structure. Through the combination of an electric-driven lead screw, an anti-static silicone sleeve and a magnetic strip, it can achieve dynamic adjustment of the radial distance of the wire. The magnetic field provided by the electro-generated magnetic rod core is used to adjust the expansion of the magnetic strip to ensure the uniformity of the wire tension.

Benefits of technology

It achieves uniform thread tension, avoids thread wear and fabric defects, and improves textile quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a spinning silk supporting device with a radial adjusting structure, which comprises a silk supporting disc which is of a disc structure, the silk supporting disc is connected with the output end of a motor, and the motor is arranged on one side of a positioning table. According to the spinning yarn supporting device with the radial adjusting structure, an electric drive lead screw installed in a strip-shaped opening formed in the surface of a yarn supporting disc provides adjustment for movement of a sliding table, and an anti-static silica gel sleeve installed on the surface of the sliding table and a mounting sleeve are installed in a sleeved mode to form a rod body for drawing a yarn; by adjusting the distance between the two anti-static silicon rubber cases in the vertical direction and the horizontal direction and the mounting sleeve, the radial distance between the multiple sets of anti-static silicon rubber cases and the mounting sleeve which are located on the surface of the wire supporting disc and are arranged in a circular mode is adjusted, so that the contact tension of the wire and the anti-static silicon rubber cases is appropriate, and it is guaranteed that the size of a coil is uniform; and the tension of each silk thread is uniform and accurate through the proper radial distance.
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Description

Technical Field

[0001] The utility model relates to the technical field of textile machinery, in particular to a textile wire-supporting device provided with a radial adjustment structure. Background Art

[0002] In the textile industry, silk thread is one of the most basic raw materials. Whether it is thread spun from natural fibers or made from chemical synthetic fibers, it needs to be well supported in multiple links of the textile process. Traditional textile wire support devices are usually simple fixed frames or roller structures. Their main function is to provide certain support for the silk thread during the textile process and maintain the basic direction of the silk thread. Common wire support frames are composed of multiple parallel metal rods. The silk thread passes through these metal rods. The support of the metal rods makes the silk thread run at a certain height and plane to ensure the correct, tight and smooth structure of the fabric.

[0003] Most traditional devices are fixed structures. When processing silk threads of different diameters, the radial size of the support cannot be changed according to the thickness of the silk threads, and the radial direction adjustment of the overall traction of the silk threads cannot be provided. As a result, the silk threads are prone to loosening, displacement or excessive squeezing during the support process, affecting the textile quality. In addition, due to the advancement of textile technology, the corresponding silk thread tension needs to be adjusted according to different silk thread types during the silk thread support process, and the traditional fixed silk thread support structure cannot meet this requirement. Utility Model Content

[0004] The purpose of the present utility model is to provide a textile wire supporting device provided with a radial adjustment structure, so as to solve the problems raised in the above background technology that most traditional wire supporting devices are fixed structures, cannot provide radial adjustment for the overall traction of the wire, and lack the ability to adjust the corresponding wire tension to suit different types of wires, resulting in uneven density, deformation and other quality problems of the fabric.

[0005] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a textile wire-supporting device with a radial adjustment structure, comprising a wire-supporting disk, which is configured as a disc structure, and the wire-supporting disk is connected to the output end of the motor, the motor is installed on one side of the positioning platform, and the other end of the positioning platform is rotatably connected to the wire-supporting disk, and the surface of the wire-supporting disk is slidably connected to an anti-static silicone sleeve, and the wire-supporting disk and the anti-static silicone sleeve are the main structures for supporting the textile wires;

[0006] The surface of the wire support disk is provided with strip-shaped chute at equal intervals in a circular shape, and an electrified slide rail is installed in the strip-shaped chute of the wire support disk. An adjustment structure is installed in the strip-shaped chute of the wire support disk for performing wire support operation in conjunction with the anti-static silicone sleeve;

[0007] A voltage converter is installed at the upper end of the positioning platform, and a cylindrical rod is provided at the port of the output end of the voltage converter. An annular slide rail is provided on the other surface of the wire support disk, and the cylindrical rod of the voltage converter is slidably connected in the annular slide rail of the wire support disk. A conductive metal ring is installed in the annular slide rail of the wire support disk, and the conductive metal ring is against the metal of the cylindrical rod port of the voltage converter.

[0008] The above technical solution facilitates adjustment of the radial distance of the support wires according to the needs of different wires.

[0009] Preferably, a platform structure is provided at the bottom end of the positioning platform, and a double-layer bearing structure is provided inside the positioning platform and is sleeved with the motor output end rod.

[0010] The above technical solution is adopted and the positioning platform is installed and set to assist the working process of the motor output end rod body.

[0011] Preferably, a powered cable is provided inside the cylindrical rod of the voltage converter, and a metal patch for connecting the cable is installed at the end of the cylindrical rod of the voltage converter, and the metal patch is connected to a conductive metal ring, and the conductive metal ring is connected to the powered slide rail through the cable.

[0012] By adopting the above technical solution, the metal sheet installed on the columnar rod of the voltage converter is connected to the conductive metal ring to flow electricity.

[0013] Preferably, the regulating structure comprises:

[0014] An electric drive screw is installed in the strip-shaped slide groove of the wire support coil, and a gap is left between the electric drive screw and the powered slide rail;

[0015] Magnetic strips are installed on the inner wall of the anti-static silicone sleeve, and the magnetic strips are arranged in a ring shape with equal distances;

[0016] The installation sleeve is located inside the anti-static silicone sleeve and is installed in a concentric circle shape, and a cavity is provided inside the installation sleeve;

[0017] The electromagnet rod core is installed in the inner cavity of the installation sleeve, and the metal wire of the electromagnet rod core passes through the installation sleeve.

[0018] By adopting the above technical solution, the adjustment structure is used to cooperate with the anti-static silicone sleeve to perform radial adjustment processing on the surface of the wire support disk.

[0019] Preferably, a slide is threadedly connected to the surface of the electric drive screw, and a contact metal block is provided at one end of the slide close to the powered slide rail.

[0020] By adopting the above technical solution, a ball screw structure is formed with the slide sleeved with the electric drive screw, which facilitates the adjustment of the radial distance of the support wire.

[0021] Preferably, the mounting sleeve is arranged in alignment with the center of the sliding table, and the sliding table is penetrated by the metal wire of the electro-magnetic rod core.

[0022] By the above technical solution, the mounting sleeve is stably installed with the sliding table, and the mounting sleeve is maintained stably.

[0023] Preferably, the metal wire of the electro-magnetic rod core is connected with a contact metal block, and the contact metal block is slidingly connected with the electrified sliding rail.

[0024] By the above technical solution, the internal power of the electrified sliding rail is connected with the contact metal block to provide power source for the metal wire of the electro-magnetic rod core.

[0025] Compared with the prior art, the textile wire supporting device with the radial adjustment structure has the following beneficial effects:

[0026] 1. The electric wire driving rod installed in the strip-shaped opening arranged on the surface of the wire supporting disc provides adjustment for the movement of the sliding table, the sleeve installation of the anti-static silica gel sleeve and the mounting sleeve installed on the surface of the sliding table constitutes the rod body for pulling the wire, the distance between the two anti-static silica gel sleeves and the mounting sleeves in the vertical direction and the horizontal direction is adjusted, the radial distance between the multiple groups of anti-static silica gel sleeves and the mounting sleeves arranged in a circular shape on the surface of the wire supporting disc is adjusted, the tension of the wire contacting the anti-static silica gel sleeve is appropriate, the size of the coil is uniform, the appropriate radial distance ensures that the tension of each wire is uniform and accurate, and fabric defects caused by uneven tension are prevented.

[0027] 2. The magnetic strip arranged on the outer wall surface of the mounting sleeve contacts the inner wall surface of the anti-static silica gel sleeve, the electro-magnetic rod core installed in the cavity of the mounting sleeve is provided with power by the voltage converter, after the electro-magnetic rod core generates a magnetic field, the magnetic field repels the magnetic strip, the magnetic strip pushes the anti-static silica gel sleeve to expand outward, and the magnetic strip is used for further pulling the tension of the yarn, the distance of the expansion of the magnetic strip is adjusted by the size of the magnetic field, the magnetic field generated by the electro-magnetic rod core is adjusted by the size of the current, the pulling force of the anti-static silica gel sleeve on the wire is adjusted, excessive friction or unreasonable extrusion between the wire and the device is avoided, and damage such as scratch and wear on the surface of the wire is reduced. BRIEF DESCRIPTION OF DRAWINGS

[0028] Figure 1 It is a schematic diagram of the overall external three-dimensional structure of the utility model;

[0029] Figure 2 It is a schematic diagram of the mounting three-dimensional structure of the wire supporting disc, the positioning table and the motor of the utility model;

[0030] Figure 3 It is a schematic diagram of the overall internal downward sectional three-dimensional structure of the utility model;

[0031] Figure 4 It is the three-dimensional structure schematic diagram of the supporting silk disc and the electric driving silk rod installation of the utility model;

[0032] Figure 5 It is the three-dimensional structure schematic diagram of the anti-static silica gel sleeve and the magnetic strip split of the utility model;

[0033] Figure 6 It is the three-dimensional structure schematic diagram of the anti-static silica gel sleeve and the magnetic strip inside section of the utility model.

[0034] In the drawing: 1, supporting silk disc;2, motor;3, positioning table;4, voltage converter;5, conductive metal ring;6, electrified sliding rail;7, contact metal block;8, sliding table;9, electric driving silk rod;10, anti-static silica gel sleeve;11, magnetic strip;12, mounting sleeve;13, electrically generated magnetic rod core. DETAILED DESCRIPTION

[0035] The technical scheme in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor belong to the scope of protection of the utility model.

[0036] Please refer to Figure 1-6 The utility model provides a kind of technical scheme: a textile supporting silk device with radial adjusting structure, including supporting silk disc 1, motor 2, positioning table 3, voltage converter 4, conductive metal ring 5, electrified sliding rail 6, contact metal block 7, sliding table 8, electric driving silk rod 9, anti-static silica gel sleeve 10, magnetic strip 11, mounting sleeve 12 and electrically generated magnetic rod core 13;

[0037] Among them, supporting silk disc 1 is set as disc structure, and supporting silk disc 1 is installed in motor 2 output end connection, motor 2 is installed in positioning table 3 one side, and positioning table 3 other end is rotatably connected with supporting silk disc 1, and supporting silk disc 1 surface is slidably connected with anti-static silica gel sleeve 10, and supporting silk disc 1 and anti-static silica gel sleeve 10 are the main structure of textile silk thread supporting;

[0038] Supporting silk disc 1 surface is annularly equidistantly provided with strip-shaped sliding groove, and electrified sliding rail 6 is installed in the strip-shaped sliding groove of supporting silk disc 1, adjusting structure is installed in the strip-shaped sliding groove of supporting silk disc 1, for cooperating anti-static silica gel sleeve 10 to implement silk thread supporting operation;

[0039] A voltage converter 4 is installed on the upper end of the positioning platform 3, and a cylindrical rod is provided at the port of the output end of the voltage converter 4. An annular slide rail is provided on the other surface of the wire support disk 1, and the cylindrical rod of the voltage converter 4 is slidably connected in the annular slide rail of the wire support disk 1. A conductive metal ring 5 is installed in the annular slide rail of the wire support disk 1, and the conductive metal ring 5 is abutted against the metal of the cylindrical rod end of the voltage converter 4. A platform structure is provided at the bottom end of the positioning platform 3, and a double-layer bearing structure is provided inside the positioning platform 3 and is sleeved with the output end rod body of the motor 2. An energized cable is provided in the cylindrical rod of the voltage converter 4, and a metal patch for connecting the cable is installed at the cylindrical rod end of the voltage converter 4, and the metal patch is connected to the conductive metal ring 5, and the conductive metal ring 5 is connected to the energized slide rail 6 through the cable;

[0040] Combined with the drawings in the specification Figure 1-6 As shown, when in use, the platform structure provided at the bottom end of the positioning platform 3 is as shown in FIG. Figure 1 As shown, it is used to support the positioning platform 3, which provides a limit for the installation of the wire support disk 1 and the motor 2. The through holes set inside the positioning platform 3 provide installation positions for the wire support disk 1 and the shaft body at the output end of the motor 2. The voltage converter 4 installed on the top of the positioning platform 3 is connected to the power system in the equipment installation area for voltage conversion, which is convenient for the connection work of the current suitable for the electromagnet core 13. The annular slide rail set on the surface of the wire support disk 1 provides an installation space for the conductive metal ring 5, as shown Figure 4 As shown, the powered slide rail 6 provided in the strip slide rail of the wire support disk 1 is connected to the power of the conductive metal ring 5, wherein the anti-static silicone sleeve 10 is located in the strip slide rail of the wire support disk 1 and slides. The anti-static silicone sleeve 10 moves with the center of the circle of the wire support disk 1 as the center, thereby adjusting the distance of the wire being stretched, which is convenient for regulating the tension of the wire;

[0041] The regulatory structure includes:

[0042] The electric drive screw 9 is installed in the strip-shaped slide groove of the wire support disk 1, and a gap is left between the electric drive screw 9 and the powered slide rail 6. The surface of the electric drive screw 9 is threadedly connected to a slide table 8, and a contact metal block 7 is provided at one end of the slide table 8 close to the powered slide rail 6;

[0043] Magnetic strips 11 are installed on the inner wall of the anti-static silicone sleeve 10, and the magnetic strips 11 are arranged in a ring shape and at equal intervals;

[0044] The mounting sleeve 12 is concentrically mounted inside the anti-static silicone sleeve 10, and a cavity is provided inside the mounting sleeve 12. The mounting sleeve 12 is aligned with the center of the slide 8, and the slide 8 is penetrated by the metal wire of the electromagnet core 13;

[0045] The electromagnet core 13 is installed in the inner cavity of the mounting sleeve 12, and the metal wire of the electromagnet core 13 passes through the mounting sleeve 12. The metal wire of the electromagnet core 13 is connected to the contact metal block 7, and the contact metal block 7 is slidably connected to the energized slide rail 6;

[0046] Combined with the drawings in the specification Figure 1-6 As shown, the slide 8 provides a limit for the nested installation of the mounting sleeve 12 and the anti-static silicone sleeve 10. The electromagnet core 13 installed in the cavity of the mounting sleeve 12 is composed of an iron core and a metal wire. When the metal wire of the electromagnet core 13 is connected to the contact metal block 7 and energized, magnetic force is generated, wherein the contact metal block 7 slides inside the energized slide rail 6, and the power inside the energized slide rail 6 is provided by the connected conductive metal ring 5, thereby realizing the provision of power to the electromagnet core 13. The magnetic strip 11 installed in a ring-shaped outer layer of the mounting sleeve 12 cooperates with the anti-static silicone sleeve 10. When the magnetic strip 11 receives the magnetic force generated in the mounting sleeve 12, the magnetic strip 11 is repelled by the magnetic force so as to scatter to the periphery with the center of the anti-static silicone sleeve 10 as the center, causing the anti-static silicone sleeve 10 to expand, further providing micro-adjustment of the tension of the surface supporting wire to prevent the wire from falling off during weaving.

[0047] Working principle: When using the textile wire supporting device with a radial adjustment structure, the anti-static silicone sleeve 10 installed in the wire supporting disk 1 provides radial tension adjustment of different diameters for the wire through the sliding position of the mounting sleeve 12 and the slide 8. The slide 8 and the electric drive screw 9 work together to realize reciprocating displacement adjustment. The electromagnet rod core 13 installed inside the mounting sleeve 12 is supplied with power by the voltage converter 4 so that the magnetic strip 11 is pushed outward of the anti-static silicone sleeve 10 to achieve fine-tuning of the wire tension. The contact metal block 7 installed at the port of the slide 8 is connected to the conductive metal ring 5 through the energized slide rail 6 to provide power supply for the metal wire of the electromagnet rod core 13 to realize the electromagnetism operation of the electromagnet rod core 13. The radial adjustment of the working of the wire supporting disk 1 and each electric drive screw 9 is regulated according to the wire tension needs, thereby increasing the overall practicality.

[0048] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A textile support device with a radial adjustment structure, comprising: A wire support disk (1) is provided in a disc structure, and the wire support disk (1) is mounted on the output end of a motor (2) and connected thereto; the motor (2) is mounted on one side of a positioning platform (3), and the other end of the positioning platform (3) is rotatably connected to the wire support disk (1); and an antistatic silicone sleeve (10) is slidably connected to the surface of the wire support disk (1); the wire support disk (1) and the antistatic silicone sleeve (10) are the main structures for supporting the textile wire; The invention is characterized in that: the surface of the wire support disk (1) is provided with strip-shaped slide grooves at equal intervals in an annular shape, and an electrified slide rail (6) is installed in the strip-shaped slide groove of the wire support disk (1), and an adjustment structure is installed in the strip-shaped slide groove of the wire support disk (1) for performing wire support operation in conjunction with an anti-static silicone sleeve (10); A voltage converter (4) is installed on the upper end of the positioning platform (3), and a cylindrical rod is provided at the port of the output end of the voltage converter (4); an annular slide rail is provided on the other surface of the wire support disk (1), and the cylindrical rod of the voltage converter (4) is located in the annular slide rail of the wire support disk (1) and is slidably connected; a conductive metal ring (5) is installed in the annular slide rail of the wire support disk (1), and the conductive metal ring (5) abuts against the metal of the cylindrical rod port of the voltage converter (4).

2. A textile wire support device with a radial adjustment structure according to claim 1, characterized in that: The bottom end of the positioning platform (3) is provided with a platform structure, and the interior of the positioning platform (3) is provided with a double-layer bearing structure sleeved and mounted with the output end rod of the motor (2).

3. The textile wire support device with a radial adjustment structure according to claim 1, characterized in that: An energized cable is provided in the cylindrical rod of the voltage converter (4), and a metal patch for connecting the cable is installed at the end of the cylindrical rod of the voltage converter (4), and the metal patch is connected to the conductive metal ring (5), and the conductive metal ring (5) is connected to the energized slide rail (6) through the cable.

4. The textile wire support device with a radial adjustment structure according to claim 1, characterized in that: The regulating structure comprises: An electric drive screw (9) is installed in the strip-shaped slide groove of the wire support disk (1), and a gap is left between the electric drive screw (9) and the energized slide rail (6); Magnetic strips (11) are mounted on the inner wall of the antistatic silicone sleeve (10), and the magnetic strips (11) are arranged in a ring shape and at equal intervals; An installation sleeve (12) is located inside the antistatic silicone sleeve (10) and is installed in a concentric circle shape, and a cavity is provided inside the installation sleeve (12); The electromagnet core (13) is installed in the inner cavity of the installation sleeve (12), and the metal wire of the electromagnet core (13) passes through the installation sleeve (12).

5. The textile support device with a radial adjustment structure according to claim 4, characterized in that: The surface of the electric drive screw rod (9) is threadedly connected to a slide table (8), and a contact metal block (7) is provided at one end of the slide table (8) close to the energized slide rail (6).

6. The textile wire support device with a radial adjustment structure according to claim 4, characterized in that: The mounting sleeve (12) is aligned with the center of the slide (8), and the slide (8) is penetrated by the metal wire of the electromagnet core (13).

7. The textile wire support device with a radial adjustment structure according to claim 4, characterized in that: The metal wire of the electromagnet core (13) is connected to the contact metal block (7), and the contact metal block (7) is slidably connected to the energized slide rail (6).