Blended stretched wool raw material false twisting shaping equipment
By designing an adjustable fake chassis module and wire feeding module, combined with heating and cooling functions, the equipment in the prior art cannot adapt to the safety hazards of multiple yarns, manual wire feeding, and the inability to heat or cool down the yarn, achieving the multifunctionality of the equipment and the reduction of production costs.
Patent Information
- Application Number
- CN202422237562.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-12
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2034-09-12
AI Technical Summary
In the prior art, the rotation shaft and friction disc of the stencil shaping equipment are fixed and cannot be adjusted, resulting in a single type of textile yarn; the lack of wire feeding equipment, which causes manual operation of the yarn to be fed into the stencil, which poses safety hazards; and the inability to heat or cool the stencil yarn, and the equipment needs to be purchased separately to increase production costs.
A blended stretched wool raw material fake shaping equipment is designed. By providing an adjustable fake shaping module and wire feeding module, the flexible feeding of yarn and the application of multiple yarns are achieved. At the same time, a heating module and a cooling module are integrated, which can heat and cool the yarn during the fake shaping process.
This equipment can not only be suitable for a variety of yarns, which improves market competitiveness; through the automatic wire feeding module, the stability and safety of the equipment are improved, and the risks of manual operation are reduced; the heating and cooling functions allow the yarn to be fixed faster after being faked, reducing production costs.
Smart Images

Figure CN222923351U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of false rolling and setting of wool raw materials, in particular to a false rolling and setting device for blended and stretched wool raw materials. Background Technique
[0002] The false rolling and setting of wool raw materials is a textile processing technology. It improves the performance of wool fibers through specific technological steps, thereby enhancing the quality and value of textiles. Its main purpose is to increase the elasticity and fluffiness of yarns, make the fabric feel soft and have a flat appearance; reduce the accidental elongation of yarns and enhance the strength of yarns; improve the surface properties of yarns; reduce the torque and twist during post-processing, thereby improving the quality of fabrics.
[0003] A high-stability false-twisting device disclosed in the Chinese utility model patent application publication specification CN219260325U includes a rotating shaft, a base, and friction disks. Three rotating shafts are rotatably inserted through the base; several friction disks are spaced apart on the rotating shaft; two vertical beams are oppositely arranged on the base, and sliding grooves are oppositely formed on both vertical beams. A limiting plate is slidably arranged in the sliding groove, and a limiting groove for inserting and mating with the rotating shaft is formed on the limiting plate; a sliding component for driving the limiting plate to move in the vertical direction is arranged on the vertical beam. Although the above device drives the limiting plate to slide in the sliding groove through the sliding component, so that the top of the rotating shaft is inserted into the limiting groove, at this time, both the upper and lower ends of the rotating shaft are restricted, and when the staff drives the rotating shaft to rotate, the rotation of the rotating shaft is more stable, and further the friction disks on the rotating shaft rotate more stably, effectively improving the problem that the false-twisting device is prone to jitter during operation and affecting the false-twisting effect on the rope; by the staff rotating the rocker, the rocker drives the driving bevel gear to rotate, the driving bevel gear drives the driven bevel gear to rotate, and the driven bevel gear drives the lead screw to rotate, so that the limiting plate slides in the sliding groove. While the rotating shaft can be inserted into the limiting groove to limit the shaking of the rotating shaft, it can also move away from the rotating shaft, facilitating the maintenance or replacement of the rotating shaft and the friction disks by the staff; by driving the driving motor to drive the driving gear to rotate, at this time, the driven member makes the other two rotating shafts rotate synchronously, effectively improving the convenience of driving the three rotating shafts to rotate and effectively improving the synchronism of the three rotating shafts rotating simultaneously. However, the above device still has certain drawbacks: First, after the above device is installed, the distances between the rotating shafts and between the friction disks cannot be flexibly adjusted, which means that the above device can only spin one type of yarn, reducing the practicability of the above device by a lot; Second, after the above device is installed, there is no tool for placing the yarn between the friction disks, which means that when the yarn needs to be false-twisted, the staff needs to manually place the yarn between the friction disks, and manually placing the yarn between the friction disks does not conform to the safety production specification and there are great safety hazards; Third, the above device is only designed for false-twisting of yarn, but ignores the steps of heating to offset the internal stress generated during false-twisting and cooling to help the yarn undergo plastic deformation during false-twisting, which means that the factory still needs to purchase special process machines, undoubtedly increasing the economic burden and production cost of the factory. Summary of the Utility Model
[0004] (1) Technical problems to be solved
[0005] Aiming at the deficiencies of the prior art, the utility model provides a false twisting and setting device for blended stretched wool raw materials, which solves the problems that the positions of the rotating shaft and the friction disc of the device are fixed and cannot be adjusted, resulting in a single type of textile yarn; the device is not designed with a device capable of feeding the yarn between the friction discs, so that the operation of the device requires workers to manually feed the yarn between the friction discs, which does not conform to the safety production specifications; and the device cannot heat or cool the falsely twisted yarn, and corresponding equipment needs to be purchased separately, increasing the economic burden of the factory and the production cost.
[0006] (2) Technical solution
[0007] To achieve the above objectives, the utility model is realized through the following technical solutions: A false twisting and setting device for blended stretched wool raw materials, including a bottom plate, the bottom of the bottom plate is fixedly connected with support legs, the side of the support legs is fixedly connected with a first motor seat, the top of the first motor seat is provided with a first threaded hole, the inner wall of the first threaded hole is threadedly connected with a first bolt, the first threaded hole is threadedly connected with a first motor through the first bolt, the inner wall of the first motor is provided with a first rotating rod, the side of the support legs is provided with a first rotating shaft hole, the inner wall of the first rotating shaft hole is provided with a first rotating shaft, and the first rotating shaft and the first rotating rod are mutually adapted. The top of the bottom plate is successively provided with a first sliding hole, a second sliding hole and a first wire feeding hole from left to right. The side wall of the first sliding hole is provided with a first sliding groove, the inner wall of the first sliding groove is provided with a second threaded hole, the inner wall of the second threaded hole is threadedly connected with a second bolt, and the second threaded hole is threadedly connected with a false twisting module through the second bolt. The side wall of the second sliding hole is provided with a second sliding groove, the bottom of the second sliding hole is provided with a third threaded hole, the inner wall of the third threaded hole is threadedly connected with a third bolt, and the third threaded hole is threadedly connected with a wire feeding module through the third bolt.
[0008] Optionally, the top of the bottom plate is fixedly connected with a machine box body, the front of the machine box body is provided with a fourth threaded hole, the inner wall of the fourth threaded hole is threadedly connected with a fourth bolt, the fourth threaded hole is threadedly connected with a hinge through the fourth bolt, the machine box body is installed with a visual door through the hinge, the side of the machine box body is provided with a heating module, the top of the machine box body is fixedly connected with a column, the side of the column is successively provided with a second motor seat and a cooling module from top to bottom, the top of the second motor seat is provided with a fifth threaded hole, the inner wall of the fifth threaded hole is threadedly connected with a fifth bolt, the fifth threaded hole is threadedly connected with a second motor through the fifth bolt, the inner wall of the second motor is provided with a second rotating rod, the side of the column is provided with a second rotating shaft hole, the inner wall of the second rotating shaft hole is provided with a second rotating shaft, and the second rotating shaft and the second rotating rod are mutually adapted. The top of the machine box body is provided with a second wire feeding hole.
[0009] Optionally, the false rolling module includes a first false rolling motor and a second false rolling motor. A sixth threaded hole is provided at the top of the first false rolling motor. A sixth bolt is threadedly connected to the inner wall of the sixth threaded hole. The sixth threaded hole is threadedly connected to a first sliding block through the sixth bolt. A first sliding tenon is provided on the side of the first sliding block. The first sliding tenon and the first sliding groove are adapted to each other. The first sliding groove is threadedly connected to the first sliding tenon through a second bolt. A first false rolling rod is provided inside the first false rolling motor. A seventh threaded hole is provided on the surface of the first false rolling rod. A seventh bolt is threadedly connected to the inner wall of the seventh threaded hole. The seventh threaded hole is threadedly connected to a first friction disc through the seventh bolt. A first hole is provided at the top of the first friction disc. The first hole and the first false rolling rod are adapted to each other. A second hole is provided at the top of the first sliding block. The second hole and the first false rolling rod are adapted to each other.
[0010] Optionally, for the second false rolling motor, an eighth threaded hole is provided at the top of the second false rolling motor. An eighth bolt is threadedly connected to the inner wall of the eighth threaded hole. The eighth threaded hole is threadedly connected to a second sliding block through the eighth bolt. A second sliding tenon is provided on the side of the second sliding block. The second sliding tenon and the first sliding groove are adapted to each other. The first sliding tenon is threadedly connected to the second sliding tenon through a second bolt. A second false rolling rod is provided inside the second false rolling motor. A ninth threaded hole is provided on the surface of the second false rolling rod. A ninth bolt is threadedly connected to the inner wall of the ninth threaded hole. The ninth threaded hole is threadedly connected to a second friction disc through the ninth bolt. A third hole is provided on the second friction disc. The third hole and the second false rolling rod are adapted to each other. A fourth hole is provided at the top of the second sliding block. The fourth hole and the second false rolling rod are adapted to each other.
[0011] Optionally, the wire feeding module includes a third sliding block. A third sliding tenon is provided on the side of the third sliding block. The third sliding tenon and the second sliding groove are adapted to each other. The third threaded hole is threadedly connected to the third sliding block through a third bolt. A third rotating shaft hole is provided at the top of the third sliding block. A third rotating shaft is provided inside the third rotating shaft hole. A third rotating rod is provided inside the third rotating shaft. A tenth threaded hole is provided on the surface of the third rotating rod. A tenth bolt is threadedly connected to the inner wall of the tenth threaded hole. The tenth threaded hole is threadedly connected to a rotating rod sleeve through the tenth bolt.
[0012] Optionally, a fifth hole is provided at the top of the rotating rod sleeve. The fifth hole and the third rotating rod are adapted to each other. A transverse plate is provided on the surface of the rotating rod sleeve. A third sliding groove is provided on one side of the transverse plate. A longitudinal plate is slidably connected to the inner wall of the third sliding groove. A rubber head is provided on the back of the longitudinal plate. A dial rod is provided on the surface of the third rotating rod.
[0013] Optionally, the heating module includes a heating motor, the back of the heating motor is fixedly connected to the machine box body, the front of the heating motor is fixedly connected to a plug connector, a hot air delivery pipe is inserted into the inner wall of the plug connector, the heating motor is provided with a hot air release device through the hot air delivery pipe, a sixth hole is opened on the side of the machine box body, and the sixth hole and the hot air delivery pipe are adapted to each other.
[0014] Optionally, the cooling module includes a cooling motor, the back of the cooling motor is fixedly connected to a column, a cold air delivery pipe is provided at the bottom of the cooling motor, the cooling motor is provided with a cold air release head through the cold air delivery pipe, a seventh hole is opened on the side of the column, and the seventh hole and the cold air delivery pipe are adapted to each other.
[0015] In summary, the technical effects and advantages of the present utility model are as follows:
[0016] 1. The structure of the present utility model is reasonable. By providing a false twisting module, through the use of the false twisting module, the device can be finely adjusted by the movement between the false twisting modules, so that the device can not only false twist fine yarn but also false twist thick yarn, which makes the object of false twisting of the device not single and can be applied to more textile objects, thus greatly increasing the market competitiveness of the device.
[0017] 2. In the present utility model, by providing a wire feeding module, through the use of the wire feeding module, when the yarn of the device is fed into the device, it is no longer necessary to manually feed the yarn into the device for false twisting, which ensures the overall stability and safety of the device to a certain extent, and also ensures the personal safety of workers, and also makes the factory production comply with the safety production specifications to a certain extent.
[0018] 3. In the present utility model, by providing a heating module and a cooling module, through the use of the heating module and the cooling module, when the yarn is false twisted, the yarn can be heated, and when the false twisted yarn is wound up, the cooling treatment can be used to accelerate the shaping of the yarn, which enables the device to false twist the yarn and also shape the yarn, so that a single machine can perform multiple functions, which reduces the economic burden of the factory and also reduces the production cost of the factory to a certain extent. Description of the Drawings
[0019] Figure 1 is a schematic structural diagram of the present utility model;
[0020] Figure 2 is a partial view schematic structural diagram of the present utility model;
[0021] Figure 3 is a partial view schematic diagram of the false twisting module of the present utility model;
[0022] Figure 4 This is a partial view schematic diagram of the wire feeding module of the present utility model;
[0023] Figure 5 This is a partial view schematic diagram of the heating module of the present utility model;
[0024] Figure 6 This is a schematic diagram of the cooling module of the present utility model.
[0025] In the figure: 1. Bottom plate; 2. Support legs; 3. First motor base; 4. First motor; 5. First rotating rod; 6. False rolling module; 601. First false rolling motor; 602. Second false rolling motor; 603. First sliding block; 604. First false rolling rotating rod; 605. First friction disc; 606. Second sliding block; 607. Second false rolling rotating rod; 608. Second friction disc; 7. Wire feeding module; 701. Third sliding block; 702. Third rotating rod; 703. Rotating rod sleeve; 704. Horizontal plate; 705. Vertical plate; 706. Rubber head; 707. Pushing rod; 8. Machine box body; 9. Hinge; 10. Visible door; 11. Heating module; 1101. Heating motor; 1102. Hot air delivery pipe; 1103. Hot air release device; 12. Column; 13. Second motor base; 14. Cooling module; 1401. Cooling motor; 1402. Cold air delivery pipe; 1403. Cold air release head; 15. Second motor; 16. Second rotating rod. Specific embodiments
[0026] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0027] Embodiment: Refer to Figures 1 - 3A false twisting and shaping device for blended stretched wool raw materials as shown, includes a bottom plate 1. A support leg 2 is fixedly connected to the bottom of the bottom plate 1. A first motor plate seat 3 is fixedly connected to the side of the support leg 2. A first threaded hole is opened at the top of the first motor plate seat 3. The inner wall of the first threaded hole is threadedly connected with a first bolt. The first threaded hole is threadedly connected with a first motor 4 through the first bolt. A first rotating rod 5 is provided inside the first motor 4. A first rotating shaft hole is opened on the side of the support leg 2. A first rotating shaft is provided on the inner wall of the first rotating shaft hole. The first rotating shaft and the first rotating rod 5 are mutually adapted. From left to right, a first sliding hole, a second sliding hole and a first wire feeding hole are successively opened on the top of the bottom plate 1. A first sliding groove is opened on the side wall of the first sliding hole. A second threaded hole is opened on the inner wall of the first sliding groove. The inner wall of the second threaded hole is threadedly connected with a second bolt. The second threaded hole is threadedly connected with a false twisting module 6 through the second bolt. A second sliding groove is opened on the side wall of the second sliding hole. A third threaded hole is opened at the bottom of the second sliding hole. The inner wall of the third threaded hole is threadedly connected with a third bolt. The third threaded hole is threadedly connected with a wire feeding module 7 through the third bolt.
[0028] A machine box body 8 is fixedly connected to the top of the bottom plate 1. A fourth threaded hole is opened on the front of the machine box body 8. The inner wall of the fourth threaded hole is threadedly connected with a fourth bolt. The fourth threaded hole is threadedly connected with a hinge 9 through the fourth bolt. The machine box body 8 is installed with a visible door 10 through the hinge 9. A heating module 11 is provided on the side of the machine box body 8. A column 12 is fixedly connected to the top of the machine box body 8. A second motor plate seat 13 and a temperature reduction module 14 are successively provided on the side of the column 12 from top to bottom. A fifth threaded hole is opened at the top of the second motor plate seat 13. The inner wall of the fifth threaded hole is threadedly connected with a fifth bolt. The fifth threaded hole is threadedly connected with a second motor 15 through the fifth bolt. A second rotating rod 16 is provided inside the second motor 15. A second rotating shaft hole is opened on the side of the column 12. A second rotating shaft is provided on the inner wall of the second rotating shaft hole. The second rotating shaft and the second rotating rod 16 are mutually adapted. A second wire feeding hole is opened on the top of the machine box body 8.
[0029] The support leg 2 is welded to the bottom of the bottom plate 1, and the first motor plate seat 3 is welded to the support leg 2. Place the first motor 4 on the first motor plate seat 3, then pass the first bolt through the first motor 4 and screw it into the first threaded hole of the bottom plate 1. Place the first rotating shaft in the first bearing hole on the support leg 2, and then pass the first rotating rod 5 through the first rotating shaft until it is inserted into the first motor 4. The first sliding hole, the second sliding hole and the first wire feeding hole are integrally formed with the bottom plate 1, and the first sliding groove is integrally formed with the first sliding hole. Slide the false twisting module 6 into the first sliding groove, then screw the second bolt into the second threaded hole of the bottom plate 1 and continue to rotate until it is screwed into the false twisting module 6. The second sliding groove is integrally formed with the second sliding hole. Screw the third bolt into the third threaded hole and continue to rotate until it is screwed into the wire feeding module 7 to complete the installation.
[0030] The machine box body 8 and the bottom plate 1 are integrally connected. Place the hinge 9 on the machine box body 8, then pass the fourth bolt through the hinge 9 and screw it into the fourth threaded hole of the machine box body 8. Then, install the visual door 10 on the hinge 9. The heating module 11 and the machine box body 8 are integrally connected. The column 12 is integrally connected with the machine box body 8. The second motor base 13 and the cooling module 14 are both integrally connected with the column 12. Place the second motor 15 on the second motor base 13, then pass the fifth bolt through the second motor 15 and screw it into the fifth threaded hole on the second motor base 13. Place the second rotating shaft into the second rotating shaft hole on the column 12, and pass the second rotating rod 16 through the second rotating shaft until it is inserted into the second motor 15. The second wire feeding hole is integrally formed with the machine box body 8, and the installation is completed.
[0031] During use, place the wool raw material cylinder on the first rotating rod 5, start the first motor 4, so that the first rotating rod 5 starts to rotate, make the yarn pass through the first wire feeding hole, and then completely feed the yarn into the false twisting module 6 through the rotating wire feeding module 7. Start the false twisting module 6 to start false twisting the yarn. At the same time, start the heating module 11 to heat the yarn being false twisted to offset the internal stress during false twisting. The false twisted yarn passes through the second wire feeding hole, and start the cooling module 14 to cool the yarn coming out of the second wire feeding hole, so that the yarn can be plastically deformed and shaped. Then start the second motor 15 so that the second rotating rod 16 can rotate to wind up the false twisted and shaped yarn, and the process operation is completed.
[0032] The false twisting module 6 includes a first false twisting motor 601 and a second false twisting motor 602. A sixth threaded hole is opened at the top of the first false twisting motor 601. The inner wall of the sixth threaded hole is threadedly connected with a sixth bolt. The sixth threaded hole is threadedly connected with a first sliding block 603 through the sixth bolt. A first sliding tenon is provided on the side of the first sliding block 603. The first sliding tenon and the first sliding groove are mutually adapted. The first sliding groove is threadedly connected with the first sliding tenon through a second bolt. The inner wall of the first false twisting motor 601 is provided with a first false twisting rotating rod 604. A seventh threaded hole is opened on the surface of the first false twisting rotating rod 604. The inner wall of the seventh threaded hole is threadedly connected with a seventh bolt. The seventh threaded hole is threadedly connected with a first friction disc 605 through the seventh bolt. A first hole is opened at the top of the first friction disc 605. The first hole and the first false twisting rotating rod 604 are mutually adapted. A second hole is opened at the top of the first sliding block 603. The second hole and the first false twisting rotating rod 604 are mutually adapted.
[0033] The second false rolling motor 602 has an eighth threaded hole opened at the top thereof. The inner wall of the eighth threaded hole is threadedly connected with an eighth bolt. The eighth threaded hole is threadedly connected with a second sliding block 606 through the eighth bolt. A second sliding tenon is provided on the side of the second sliding block 606. The second sliding tenon and the first sliding groove are adapted to each other. The first sliding tenon is threadedly connected with the second sliding tenon through a second bolt. The inner wall of the second false rolling motor 602 is provided with a second false rolling rod 607. A ninth threaded hole is opened on the surface of the second false rolling rod 607. The inner wall of the ninth threaded hole is threadedly connected with a ninth bolt. The ninth threaded hole is threadedly connected with a second friction disc 608 through the ninth bolt. The second friction disc 608 is provided with a third hole. The third hole and the second false rolling rod 607 are adapted to each other. A fourth hole is opened at the top of the second sliding block 606. The fourth hole and the second false rolling rod 607 are adapted to each other.
[0034] Place the first false rolling motor 601 under the first sliding block 603, then screw the sixth bolt into the sixth threaded hole and continue to rotate until it is screwed into the first sliding block 603. The first sliding tenon is integrally connected with the first sliding block 603. Screw the second bolt into the second threaded hole of the first sliding groove and continue to rotate until it is screwed into the first sliding block 603. Then place the first friction disc 605 on the first false rolling rod 604, and use the seventh bolt to pass through the first friction disc 605 and screw it into the seventh threaded hole on the first false rolling rod 604. Then pass the first false rolling rod 604 with the first friction disc 605 installed through the second hole on the first sliding block 603 until it enters the first false rolling motor 601 to complete the installation.
[0035] Place the second false rolling motor 602 under the second sliding block 606, then screw the eighth bolt into the eighth threaded hole on the second false rolling motor 602 and continue to rotate until it is screwed into the second sliding block 606. The second sliding tenon is integrally connected with the second sliding block 606. Screw the second bolt into the second threaded hole of the first sliding groove and continue to rotate until it is screwed into the second sliding tenon. Insert the second friction disc 608 onto the second false rolling rod 607, then pass the ninth bolt through the second friction disc 608 and screw it into the ninth threaded hole on the second false rolling rod 607. Then insert the second false rolling rod 607 with the second friction disc 608 installed into the fourth hole on the second sliding block 606 until it is inserted into the second false rolling motor 602 to complete the installation.
[0036] In use, the first sliding block 603 is pushed to move horizontally in the first chute, and at the same time, the second sliding block 606 is also pushed to move horizontally in the first chute, thereby driving the first false twisting motor 601, the first false twisting rod 604, the first friction disc 605, the second false twisting motor 602, the second false twisting rod 607 and the second friction disc 608 to move. Then, according to the type of the yarn, the distance between the first sliding block 603 and the second sliding block 606 is adjusted so that the horizontal distance between the first friction disc 605 and the second friction disc 608 is changed, so as to adapt to different yarns. At the same time, according to the required tension degree of the yarn, the vertical distance between the first friction disc 605 and the second friction disc 608 is changed, so as to change the tension degree of the yarn. After adjusting the horizontal and vertical distances between the first friction disc 605 and the second friction disc 608, the first false twisting motor 601 and the second false twisting motor 602 are started and the rotational speeds are adjusted to be the same, so that the first false twisting rod 604 and the second false twisting rod 607 start to rotate in opposite directions, and then the first friction disc 605 and the second friction disc 608 also start to rotate in opposite directions, completing the process operation.
[0037] The device is provided with a false twisting module 6. By using the false twisting module 6, the device can be finely adjusted by the movement between the false twisting modules 6, so that the device can not only false twist fine yarns but also false twist thick yarns, which makes the object of false twisting of the device not single, can be applied to more textile objects, and thus greatly increases the market competitiveness of the device.
[0038] As a preferred implementation manner in this embodiment, as Figure 4 shown, the wire feeding module 7 includes a third sliding block 701. A third sliding tenon is provided on the side of the third sliding block 701, and the third sliding tenon and the second chute are mutually adapted. The third threaded hole is threadedly connected with the third sliding block 701 through a third bolt. A third rotating shaft hole is provided at the top of the third sliding block 701. A third rotating shaft is provided on the inner wall of the third rotating shaft hole. A third rotating rod 702 is provided on the inner wall of the third rotating shaft. A tenth threaded hole is provided on the surface of the third rotating rod 702. A tenth bolt is threadedly connected to the inner wall of the tenth threaded hole. The tenth threaded hole is threadedly connected with a rotating rod sleeve 703 through the tenth bolt. A fifth hole is provided at the top of the rotating rod sleeve 703, and the fifth hole and the third rotating rod 702 are mutually adapted. A transverse plate 704 is provided on the surface of the rotating rod sleeve 703. A third chute is provided on one side of the transverse plate 704. A longitudinal plate 705 is slidably connected to the inner wall of the third chute. A rubber head 706 is provided on the back of the longitudinal plate 705. A dial rod 707 is provided on the surface of the third rotating rod 702.
[0039] The third sliding tenon is integrally connected to the third sliding block 701. The third sliding block 701 is placed in the second sliding hole and slides into the second sliding groove. The third bolt is then passed through the third sliding block 701 and screwed into the third threaded hole on the second sliding hole. The lever 707 is integrally connected to the third rotating rod 702. The third rotating shaft is placed in the third rotating shaft hole on the third sliding block 701, and the third rotating rod 702 is placed in the third rotating shaft. The rotating rod sleeve 703 and the transverse plate 704 are integrally formed. The rotating rod sleeve 703 is placed on the third rotating rod 702, and the tenth bolt is passed through the rotating rod sleeve 703 and screwed into the tenth threaded hole on the third rotating rod 702. The longitudinal plate 705 is then slid into the third sliding groove on the transverse plate 704, and the rubber head 706 is bonded to the longitudinal plate 705 to complete the installation.
[0040] When in use, the third sliding block 701 is pushed to move in the second sliding hole according to the position of the dummy chase module 6. After reaching the appropriate position, the rotating rod sleeve 703 is adjusted according to the height position of the dummy chase module 6, thereby driving the transverse plate 704 and the longitudinal plate 705 to adjust their height positions together. After the adjustment is completed, the third rotating rod 702 is driven to rotate by turning the lever 707 until the transverse plate 704 puts the yarn into the dummy chase module 6, completing the process operation.
[0041] The device is provided with a wire feeding module 7. Through the use of the wire feeding module 7, when the yarn of the device is fed into the device, it is no longer necessary to manually feed the yarn into the device for false feeding. This ensures the overall stability and safety of the device to a certain extent, while also ensuring the personal safety of the workers, and also makes the factory production comply with safety production regulations to a certain extent.
[0042] like Figure 5 and Figure 6 As shown, in this embodiment, the heating module 11 includes a heating motor 1101, the back of the heating motor 1101 is fixedly connected to the machine case 8, the front of the heating motor 1101 is fixedly connected to a plug connector, the inner wall of the plug connector is plugged with a hot air delivery pipe 1102, the heating motor 1101 is installed with a hot air releaser 1103 through the hot air delivery pipe 1102, and a sixth hole is opened on the side of the machine case 8, and the sixth hole and the hot air delivery pipe 1102 are adapted to each other.
[0043] The heating motor 1101 and the machine case 8 are integrally connected, and the plug connector and the heating motor 1101 are also integrally connected. Pass one end of the hot air delivery pipe 1102 through the sixth hole on the side of the machine case 8 and insert it into the plug connector on the heating motor 1101, and insert the other end into the hot air releaser 1103 to complete the installation.
[0044] During use, start the heating motor 1101. The hot air is transmitted through the hot air delivery pipe 1102 to the hot air release device 1103 and released into the machine housing 8 through the hot air release device 1103, thereby heating the yarn being false-twisted, offsetting the internal stress of the yarn caused by false-twisting, and fixing the false-twisted deformation.
[0045] The cooling module 14 includes a cooling motor 1401. A column 12 is fixedly connected to the back of the cooling motor 1401. A cold air delivery pipe 1402 is provided at the bottom of the cooling motor 1401. The cooling motor 1401 is equipped with a cold air release head 1403 through the cold air delivery pipe 1402. A seventh hole is formed in the side surface of the column 12, and the seventh hole and the cold air delivery pipe 1402 are mutually adapted.
[0046] The cooling motor 1401 and the column 12 are integrally connected. One end of the cold air delivery pipe 1402 is inserted into the cooling motor 1401 through the seventh hole on the side surface of the column 12, and the other end is inserted into the cold air release head 1403 to complete the installation.
[0047] During use, start the cooling motor 1401. The cold air is transmitted through the cold air delivery pipe 1402 to the cold air release head 1403 and released to the second wire feeding hole, thereby quickly cooling the false-twisted yarn, enabling the yarn to undergo plastic changes and better shaping the yarn.
[0048] By providing the heating module 11 and the cooling module 14, through the use of the heating module 11 and the cooling module 14, when the yarn is being false-twisted, the yarn can be heated. When the false-twisted yarn is wound up, the shaping of the yarn can be accelerated through cooling treatment. This enables the device to shape the yarn while false-twisting it, allowing a single machine to perform multiple functions, which reduces the economic burden and production costs of the factory to a certain extent.
[0049] The working principle of this utility model:
[0050] The support leg 2 is welded to the bottom of the bottom plate 1. The first motor plate seat 3 is welded to the support leg 2. Place the first motor 4 on the first motor plate seat 3, then pass the first bolt through the first motor 4 and screw it into the first threaded hole of the bottom plate 1. Place the first rotating shaft in the first bearing hole on the support leg 2, and then pass the first rotating rod 5 through the first rotating shaft until it is inserted into the first motor 4. The first sliding hole, the second sliding hole, and the first wire feeding hole are integrally formed with the bottom plate 1. The first sliding groove is integrally formed with the first sliding hole. Slide the false rolling module 6 into the first sliding groove, then screw the second bolt into the second threaded hole of the bottom plate 1 and continue to rotate until it is screwed into the false rolling module 6. The second sliding groove is integrally formed with the second sliding hole. Screw the third bolt into the third threaded hole and continue to rotate until it is screwed into the wire feeding module 7 to complete the installation. The machine box body 8 and the bottom plate 1 are integrally connected. Place the hinge 9 on the machine box body 8, then pass the fourth bolt through the hinge 9 and screw it into the fourth threaded hole of the machine box body 8, and then install the visual door 10 on the hinge 9. The heating module 11 and the machine box body 8 are integrally connected. The column 12 is integrally connected with the machine box body 8. The second motor plate seat 13 and the cooling module 14 are both integrally connected with the column 12. Place the second motor 15 on the second motor plate seat 13, then pass the fifth bolt through the second motor 15 and screw it into the fifth threaded hole on the second motor plate seat 13. Place the second rotating shaft in the second rotating shaft hole on the column 12, and pass the second rotating rod 16 through the second rotating shaft until it is inserted into the second motor 15. The second wire feeding hole is integrally formed with the machine box body 8 to complete the installation. Place the first false rolling motor 601 under the first sliding block 603, then screw the sixth bolt into the sixth threaded hole and continue to rotate until it is screwed into the first sliding block 603. The first sliding tenon is integrally connected with the first sliding block 603. Screw the second bolt into the second threaded hole of the first sliding groove and continue to rotate until it is screwed into the first sliding block 603. Then place the first friction disc 605 on the first false rolling rotating rod 604, and use the seventh bolt to pass through the first friction disc 605 and screw it into the seventh threaded hole on the first false rolling rotating rod 604. Then pass the first false rolling rotating rod 604 with the first friction disc 605 installed through the second hole on the first sliding block 603 until it enters the first false rolling motor 601 to complete the installation. Place the second false rolling motor 602 under the second sliding block 606, then screw the eighth bolt into the eighth threaded hole on the second false rolling motor 602 and continue to rotate until it is screwed into the second sliding block 606. The second sliding tenon is integrally connected with the second sliding block 606. Screw the second bolt into the second threaded hole of the first sliding groove and continue to rotate until it is screwed into the second sliding tenon. Insert the second friction disc 608 onto the second false rolling rotating rod 607, then pass the ninth bolt through the second friction disc 608 and screw it into the ninth threaded hole on the second false rolling rotating rod 607,Then insert the second false twisting rod 607 with the second friction disc 608 installed into the fourth hole in the second sliding block 606 until it is inserted into the second false twisting motor 602 to complete the installation. The third sliding tenon is integrally connected to the third sliding block 701. Place the third sliding block 701 into the second sliding hole and slide it into the second sliding groove. Then pass the third bolt through the third sliding block 701 and screw it into the third threaded hole on the second sliding hole. The lever 707 is integrally connected to the third rotating rod 702. Place the third rotating shaft into the third rotating shaft hole on the third sliding block 701 and place the third rotating rod 702 into the third rotating shaft. The rotating rod sleeve 703 and the transverse plate 704 are integrally formed. Place the rotating rod sleeve 703 on the third rotating rod 702 and pass the tenth bolt through the rotating rod sleeve 703 and screw it into the tenth threaded hole on the third rotating rod 702. Then slide the longitudinal plate 705 into the third sliding groove on the transverse plate 704, and the rubber head 706 is bonded to the longitudinal plate 705 to complete the installation. The heating motor 1101 is integrally connected to the machine box body 8, and the plug connector is also integrally connected to the heating motor 1101. Pass one end of the hot air delivery pipe 1102 through the sixth hole on the side of the machine box body 8 and insert it into the plug connector on the heating motor 1101, and insert the other end into the hot air release device 1103 to complete the installation. The cooling motor 1401 is integrally connected to the column 12. Pass one end of the cold air delivery pipe 1402 through the seventh hole on the side of the column 12 and insert it into the cooling motor 1401, and insert the other end into the cold air release head 1403 to complete the installation.
[0051] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A blended stretched wool raw material false shaping device, comprising a bottom plate (1), characterized in that: The bottom of the base plate (1) is fixedly connected to a support leg (2), the side of the support leg (2) is fixedly connected to a first motor plate seat (3), the top of the first motor plate seat (3) is provided with a first threaded hole, the inner wall of the first threaded hole is threadedly connected to a first bolt, the first threaded hole is threadedly connected to a first motor (4) via the first bolt, the inner wall of the first motor (4) is provided with a first rotating rod (5), the side of the support leg (2) is provided with a first rotating shaft hole, the inner wall of the first rotating shaft hole is provided with a first rotating shaft, the first rotating shaft and the first rotating rod (5) are adapted to each other, the The top of the bottom plate (1) is provided with a first sliding hole, a second sliding hole and a first wire feeding hole in sequence from left to right; the side wall of the first sliding hole is provided with a first sliding groove; the inner wall of the first sliding groove is provided with a second threaded hole; the inner wall of the second threaded hole is threadedly connected with a second bolt; the second threaded hole is threadedly connected with a false chase module (6) via the second bolt; the side wall of the second sliding hole is provided with a second sliding groove; the bottom of the second sliding hole is provided with a third threaded hole; the inner wall of the third threaded hole is threadedly connected with a third bolt; the third threaded hole is threadedly connected with a wire feeding module (7) via the third bolt.
2. The blended stretched wool raw material false shaping device according to claim 1, characterized in that: The top of the bottom plate (1) is fixedly connected to a machine box (8), a fourth threaded hole is provided on the front of the machine box (8), a fourth bolt is threadedly connected to the inner wall of the fourth threaded hole, a hinge (9) is threadedly connected to the fourth threaded hole via the fourth bolt, a visual door (10) is installed on the machine box (8) via the hinge (9), a heating module (11) is provided on the side of the machine box (8), a column (12) is fixedly connected to the top of the machine box (8), and a second motor plate seat (10) is provided on the side of the column (12) from top to bottom. 13) and a cooling module (14), a fifth threaded hole is provided on the top of the second motor plate seat (13), a fifth bolt is threadedly connected to the inner wall of the fifth threaded hole, a second motor (15) is threadedly connected to the fifth threaded hole through the fifth bolt, a second rotating rod (16) is provided on the inner wall of the second motor (15), a second rotating shaft hole is provided on the side of the column (12), a second rotating shaft is provided on the inner wall of the second rotating shaft hole, the second rotating shaft and the second rotating rod (16) are adapted to each other, and a second wire feeding hole is provided on the top of the machine housing (8).
3. The blended stretched wool raw material false shaping device according to claim 1, characterized in that: The dummy chase module (6) comprises a first dummy chase motor (601) and a second dummy chase motor (602), a sixth threaded hole is provided at the top of the first dummy chase motor (601), a sixth bolt is threadedly connected to the inner wall of the sixth threaded hole, a first sliding block (603) is threadedly connected to the sixth threaded hole via the sixth bolt, a first sliding tenon is provided on the side of the first sliding block (603), the first sliding tenon and the first sliding groove are adapted to each other, the first sliding groove is threadedly connected to the first sliding tenon via the second bolt, and the first dummy chase motor (601) is provided with a first sliding tenon. A first dummy rotating rod (604) is provided on the inner wall, a seventh threaded hole is provided on the surface of the first dummy rotating rod (604), a seventh bolt is threadedly connected to the inner wall of the seventh threaded hole, and the seventh threaded hole is threadedly connected to the first friction disk (605) through the seventh bolt, a first hole is provided on the top of the first friction disk (605), the first hole and the first dummy rotating rod (604) are adapted to each other, and a second hole is provided on the top of the first sliding block (603), the second hole and the first dummy rotating rod (604) are adapted to each other.
4. The device for shaping blended stretched wool raw material according to claim 3, characterized in that: The second dummy motor (602) has an eighth threaded hole on its top, an eighth bolt is threadedly connected to the inner wall of the eighth threaded hole, and a second sliding block (606) is threadedly connected to the eighth threaded hole through the eighth bolt. A second sliding tenon is provided on the side of the second sliding block (606), and the second sliding tenon and the first sliding groove are adapted to each other. The first sliding tenon is threadedly connected to the second sliding tenon through the second bolt. The inner wall of the second dummy motor (602) has a second dummy motor. Rod (607), a ninth threaded hole is provided on the surface of the second dummy rotating rod (607), a ninth bolt is threadedly connected to the inner wall of the ninth threaded hole, a second friction plate (608) is threadedly connected to the ninth threaded hole through the ninth bolt, a third hole is provided on the second friction plate (608), the third hole and the second dummy rotating rod (607) are mutually adapted, a fourth hole is provided on the top of the second sliding block (606), the fourth hole and the second dummy rotating rod (607) are mutually adapted.
5. The blended stretched wool material false shaping device according to claim 1, characterized in that: The wire feeding module (7) comprises a third sliding block (701), a third sliding tenon is provided on the side of the third sliding block (701), the third sliding tenon and the second sliding groove are adapted to each other, the third threaded hole is threadedly connected to the third sliding block (701) via a third bolt, a third rotating shaft hole is provided on the top of the third sliding block (701), a third rotating shaft is provided on the inner wall of the third rotating shaft hole, a third rotating rod (702) is provided on the inner wall of the third rotating shaft, a tenth threaded hole is provided on the surface of the third rotating rod (702), a tenth bolt is threadedly connected to the inner wall of the tenth threaded hole, and the tenth threaded hole is threadedly connected to the rotating rod sleeve (703) via the tenth bolt.
6. The device for shaping blended stretched wool raw material according to claim 5, characterized in that: A fifth hole is provided on the top of the rotating rod sleeve (703), and the fifth hole and the third rotating rod (702) are adapted to each other. A transverse plate (704) is provided on the surface of the rotating rod sleeve (703), and a third sliding groove is provided on one side of the transverse plate (704). A longitudinal plate (705) is slidably connected to the inner wall of the third sliding groove, and a rubber head (706) is provided on the back of the longitudinal plate (705). A shifting rod (707) is provided on the surface of the third rotating rod (702).
7. The blended stretched wool material false shaping device according to claim 2, characterized in that: The heating module (11) comprises a heating motor (1101), the back of the heating motor (1101) is fixedly connected to a machine housing (8), the front of the heating motor (1101) is fixedly connected to a plug connector, the inner wall of the plug connector is plugged with a hot air delivery pipe (1102), the heating motor (1101) is provided with a hot air releaser (1103) via the hot air delivery pipe (1102), and a sixth hole is provided on the side of the machine housing (8), the sixth hole and the hot air delivery pipe (1102) being adapted to each other.
8. The device for shaping blended stretched wool raw material according to claim 2, characterized in that: The cooling module (14) comprises a cooling motor (1401), the back of the cooling motor (1401) is fixedly connected to a column (12), a cold air delivery pipe (1402) is provided at the bottom of the cooling motor (1401), a cold air release head (1403) is installed on the cooling motor (1401) through the cold air delivery pipe (1402), and a seventh hole is opened on the side of the column (12), and the seventh hole and the cold air delivery pipe (1402) are adapted to each other.
Citation Information
Patent Citations
High-stability false twister
CN219260325U