Yarn sizing equipment for spinning

By introducing an adsorption and filtration mechanism and a lifting mechanism into the yarn sizing equipment and combining it with an adaptive component to adjust the position of the sizing roller, the problem of foreign matter adhering to the yarn is solved, the sizing quality and yarn stability are improved, and an efficient yarn sizing process is achieved.

CN120591981APending Publication Date: 2025-09-05WUJIANG TIANYUAN TEXTILE
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Patent Information

Application Number
CN202510818684.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-18
Publication Date
2025-09-05

AI Technical Summary

Technical Problem

In existing yarn sizing equipment, foreign matter attached to the yarn is retained in the sizing tank, causing the foreign matter in the sizing liquid to adhere to subsequent yarns, thereby reducing the sizing quality.

Method used

The adsorption filtration mechanism is used to filter the slurry in the sizing tank through a circulation pump and a filtration component. The position and height of the sizing roller are adjusted in combination with the lifting mechanism and the adaptation component to ensure the appropriate depth of the yarn in the slurry, and the slurry is solidified through the drying mechanism.

Benefits of technology

It effectively reduces the chance of foreign matter in the sizing tank adhering to subsequent yarns, improves the sizing quality and yarn processing quality, and ensures stable yarn transportation and sizing solidification.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to yarn sizing equipment for spinning, and relates to the technical field of yarn production equipment. The yarn sizing equipment for spinning comprises an equipment body, the equipment body is provided with a sizing pool with an opening in the upper end, the equipment body is further provided with an adsorption filtering mechanism, the adsorption filtering mechanism comprises a circulating pipe, a circulating pump and a filtering assembly, the two ends of the circulating pipe are communicated with the positions, at different heights, of an inner cavity of the sizing pool respectively, and the circulating pump is communicated with the filtering assembly. The circulating pump is arranged on the circulating pipe and used for extracting the sizing agent in the sizing pool, and the filtering assembly is used for filtering the sizing agent in the circulating pipe so as to reduce foreign matter introduced into the sizing pool again. The sizing pool has the effect of reducing the probability that foreign matters in the sizing pool are adhered to subsequent yarns.
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Description

Technical Field

[0001] The present application relates to the technical field of yarn production equipment, and in particular to a yarn sizing device for textile use. Background Art

[0002] With the continuous development of social economy and the increasing level of science and technology, my country's textile industry is also booming. Yarn, as a product processed from various textile fibers into a certain fineness, is commonly used in weaving, rope making, thread making, knitting and embroidery. During the yarn production and processing, textile yarns are usually sizing treated to improve the yarn's wear resistance, smoothness and antistatic properties.

[0003] In the prior art, there is a yarn sizing device for textiles, which includes a device body, a sizing tank with an upper end opening provided at one end of the device body, and a drying device provided at the other end. The sizing tank is filled with sizing slurry. The device body is also provided with a plurality of guide rollers, each of which is rotatably connected to the device body. The yarn passes through a plurality of guide tubes, passes through one end where the sizing tank is located, reaches the sizing tank and comes into contact with the slurry, then reaches the drying device, and finally passes out through the drying device. The drying device is used to dry the yarn after sizing. When in use, the yarn enters the sizing tank under the guidance of the guide rollers, and reaches the drying device for drying under the drive of the guide rollers, and is passed out of the drying device after drying.

[0004] Regarding the above-mentioned related technologies, during the yarn processing process, foreign matter such as hairiness is often attached to the yarn. After the yarn is passed into the sizing tank, the foreign matter attached to the yarn will be retained in the sizing tank, causing the foreign matter in the sizing liquid in the sizing tank to adhere to the subsequent yarn, which reduces the sizing quality of the yarn, so it needs to be improved. Summary of the Invention

[0005] In order to reduce the probability of foreign matter in the sizing tank adhering to subsequent yarns, the present application provides a yarn sizing device for textiles.

[0006] The present application provides a textile yarn sizing device, which adopts the following technical solution: A yarn sizing device for textiles includes an equipment body, a sizing tank with an upper end opening is provided on the equipment body, and an adsorption and filtration mechanism is also provided on the equipment body. The adsorption and filtration mechanism includes a circulation pipe, a circulation pump and a filter assembly. The two ends of the circulation pipe are respectively connected to different heights of the inner chamber of the sizing tank. The circulation pump is provided on the circulation pipe for extracting the slurry in the sizing tank. The filter assembly is used to filter the slurry in the circulation pipe to reduce foreign matter that enters the slurry into the sizing tank again.

[0007] By adopting the above technical solution, compared with the prior art, the yarn is passed into the sizing tank, so that foreign matter in the sizing liquid in the sizing tank adheres to the subsequent yarn, thereby reducing the sizing quality of the yarn; the present application sets an adsorption and filtering mechanism, so that the circulation pump can continuously extract the slurry in the sizing tank through the circulation pipe, so that the filter component set on the circulation pipe can continuously filter the extracted slurry, and then the filtered slurry is passed into the sizing tank again, effectively reducing the number of foreign matter in the sizing tank, and thus reducing the probability of foreign matter in the sizing tank adhering to subsequent yarns, effectively ensuring the sizing quality.

[0008] Preferably, a plurality of sizing rollers are provided in the sizing pool, each of which is arranged on the sizing pool, and the bottom of each sizing roller is used to abut against the yarn to guide the yarn. A lifting mechanism is also provided in the sizing pool, and the lifting mechanism is used to drive each sizing roller to rise and fall.

[0009] By adopting the above technical solution, the sizing roller and the lifting mechanism are arranged so that the sizing roller can be displaced in the height direction of the sizing pool under the drive of the lifting mechanism, so that the yarn at the bottom of the sizing roller can always be located at an appropriate depth in the slurry, thereby reducing the probability of foreign matter floating on the surface of the slurry and foreign matter precipitated at the bottom of the slurry adhering to subsequent yarns, effectively ensuring the sizing quality of the yarn, and thus ensuring the quality of the yarn after processing.

[0010] Preferably, the lifting mechanism includes a synchronization component and several rotating frames, the rotating frames correspond to the sizing rollers, each of the rotating frames is rotatably connected to the sizing pool, each of the sizing rollers is arranged on the corresponding rotating frame and is rotatably connected to the corresponding rotating frame, and the synchronization component is used to drive each rotating frame to rotate.

[0011] By adopting the above technical solution and setting the lifting mechanism, the synchronous component can drive each rotating frame to rotate, so that each rotating frame drives the corresponding sizing roller to move, thereby adjusting the height of the sizing roller. At the same time, several sizing rollers can also move closer to or farther away from each other, thereby adapting to the change in the height of the sizing roller, so that the tension between the yarns is stable, reducing the chance of excessive or insufficient tension in the yarn when the sizing roller moves, thereby reducing the chance of yarn breakage or relaxation, and ensuring the sizing quality.

[0012] Preferably, a plurality of adaptation components are provided in the sizing pool, and the adaptation components correspond to the sizing rollers. Each of the adaptation components includes an adaptation roller, and each of the adaptation rollers is located on the side of the corresponding sizing roller away from the adjacent sizing roller. Each of the adaptation rollers is arranged on the sizing pool and is against the yarn to guide the yarn.

[0013] By adopting the above technical solution and setting the adaptive component, the adaptive roller can guide the yarn, thereby ensuring the stability of the yarn during transportation, and the yarn can be stably driven by the sizing roller, thereby ensuring smooth sizing of the yarn.

[0014] Preferably, each of the adaptation components also includes a sliding frame and a linkage, and the sliding frame, the linkage and the rotating frame are arranged correspondingly. Each of the adaptation rollers is arranged on the corresponding sliding frame and is rotatably connected to the corresponding sliding frame. Each of the sliding frames is slidably connected to the sizing pool, and the sliding direction is the direction close to the corresponding sizing roller. Each of the rotating frames drives the sliding frame to slide through the corresponding linkage.

[0015] By adopting the above technical solution, the sliding frame and the linkage are set up so that when the sizing roller is displaced, each rotating frame can drive the corresponding sliding frame to slide through the corresponding linkage, thereby changing the position and height of the adaptation roller, adapting to the position change of the sizing roller, so that the part of the yarn located between the adaptation rollers can maintain stable tension under the adjustment of the adaptation roller and the sizing roller, thereby ensuring the conveying effect and sizing effect of the yarn.

[0016] Preferably, each linkage member includes a linkage frame, one end of each linkage frame is rotatably connected to the corresponding sliding frame, and the other end of each linkage frame is rotatably connected to the corresponding rotating frame.

[0017] By adopting the above technical solution, the linkage frame is set up so that when the rotating frame rotates to adjust the position of the sizing roller, the rotating frame can drive one end of the linkage frame to displace, thereby causing the other end of the linkage frame to displace, and then driving the corresponding sliding frame to slide, thereby realizing the linkage between the sliding frame and the rotating frame, and effectively facilitating the operation of relevant personnel.

[0018] Preferably, the synchronization assembly includes a lifting frame, a lifting part and several synchronization frames, the lifting part is used to drive the lifting frame to move along the height direction of the sizing pool, the synchronization frame is arranged corresponding to the rotating frame, one end of each of the synchronization frames is rotatably connected to the lifting frame, and the other end is rotatably connected to the corresponding rotating frame.

[0019] By adopting the above technical solution and arranging the synchronization components, when it is necessary to drive several rotating frames to rotate, the lifting member can drive the corresponding lifting frames to move, thereby causing the lifting frame to drive the several synchronization frames to move, so that the end of the synchronization frame away from the lifting frame can drive the corresponding rotating frames to rotate, thereby realizing the driving of the several rotating frames.

[0020] Preferably, a detection mechanism is also provided on the equipment body, and the detection mechanism includes a detection part and a control part. The detection part is used to detect the height of the slurry liquid level in the sizing pool, and the control part is used to control the height of the lifting frame after the lifting part drives the lifting frame to move based on the data detected by the detection part.

[0021] By adopting the above technical solution, the detection mechanism is set up so that the detection component can detect the height of the slurry liquid level in the sizing tank, and then the control component can control the lifting component to drive the lifting frame to move according to the detected liquid level, thereby adjusting the height of the sizing roller, realizing real-time adjustment of the height of the sizing roller, and ensuring the quality of sizing.

[0022] Preferably, the filter assembly includes a filter box and a filter screen. The filter box is arranged in the middle of the circulation pipe, and its two opposite sides are connected to the circulation pipe. The filter screen is arranged in the filter box.

[0023] By adopting the above technical solution and the specific setting of the filter component, the slurry discharged through the circulation pipe can be filtered by the filter net when it reaches the filter box through the circulation pipe, thereby reducing foreign matter in the slurry re-entering the sizing tank, and further reducing foreign matter in the sizing tank, effectively reducing the probability of foreign matter adhering to subsequent yarns, and ensuring the sizing quality of the yarn.

[0024] Preferably, a drying mechanism is also provided on the device body, and the drying mechanism includes a drying box and a drying assembly. The drying box is located on one side of the sizing pool, and the drying box has openings on both the side close to and away from the sizing pool. The drying assembly is used to dry the yarn in the drying box.

[0025] By adopting the above technical solution, the drying mechanism is set up so that when the yarn enters the drying box, the drying component can dry the yarn in the drying box, so that the sizing on the yarn can be solidified after sizing, which increases the stability of the sizing after solidification, thereby ensuring the sizing quality of the yarn.

[0026] In summary, this application includes at least one of the following beneficial technical effects: 1. The setting of the adsorption and filtration mechanism enables the circulation pump to continuously extract the slurry from the sizing tank through the circulation pipe, so that the filtering component set on the circulation pipe can continuously filter the extracted slurry, and then the filtered slurry is passed into the sizing tank again, effectively reducing the number of foreign matter in the sizing tank, thereby reducing the probability of foreign matter in the sizing tank adhering to subsequent yarns, and effectively ensuring the quality of sizing; 2. The setting of the sizing roller and the lifting mechanism enables the sizing roller to be moved in the height direction of the sizing tank under the drive of the lifting mechanism, so that the yarn at the bottom of the sizing roller can always be located at an appropriate depth in the slurry, thereby reducing the probability of foreign matter floating on the slurry surface and foreign matter precipitated at the bottom of the slurry adhering to subsequent yarns, effectively ensuring the sizing quality of the yarn, and thus ensuring the quality of the processed yarn; 3. The setting of the adaptive component enables each rotating frame to drive the corresponding sliding frame to slide through the corresponding linkage when the sizing roller is displaced, thereby changing the position and height of the adaptive roller and adapting to the position change of the sizing roller, so that the part of the yarn located between the adaptive rollers can maintain stable tension under the adjustment of the adaptive roller and the sizing roller, thereby ensuring the conveying effect and sizing effect of the yarn. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 It is a schematic diagram used to illustrate the overall textile yarn sizing equipment in the embodiment of the present application.

[0028] Figure 2 It is a structural diagram used to reflect the adsorption and filtration mechanism in the embodiment of the present application.

[0029] Figure 3 It is a structural diagram used to reflect the lifting mechanism in the embodiment of the present application.

[0030] Explanation of the accompanying symbols: 1. Equipment body; 11. Closed door; 2. Sizing tank; 3. Adsorption and filtration mechanism; 31. Circulation pipe; 311. Extraction part; 312. Communication part; 313. Outlet part; 32. Circulation pump; 33. Filter assembly; 331. Filter box; 332. Filter screen; 4. Lifting mechanism; 41. Synchronizing assembly; 411. Lifting frame; 412. Lifting part; 413. Synchronizing frame; 42. Rotating frame; 5. Sizing roller; 6. Adaptation assembly; 61. Adaptation roller; 62. Sliding frame; 63. Linkage part; 631. Linkage frame; 7. Detection mechanism; 71. Detection part; 72. Control part; 8. Drying mechanism; 81. Drying box; 82. Drying assembly; 9. Guide roller. DETAILED DESCRIPTION

[0031] The following is combined with Figure 1-3 This application is described in further detail.

[0032] The present application discloses a yarn sizing device for textiles. Figure 1 and Figure 2The textile yarn sizing equipment includes an equipment body 1, on which is provided a sizing tank 2 with an upper end opening and an adsorption and filtration mechanism 3. The sizing tank 2 is fixedly connected to the equipment body 1 by welding. The adsorption and filtration mechanism 3 includes a circulation pipe 31, a circulation pump 32 and a filter assembly 33. The two ends of the circulation pipe 31 are respectively connected to different heights of the inner chamber of the sizing tank 2. The circulation pump 32 is provided on the circulation pipe 31 for extracting the slurry in the sizing tank 2. The filter assembly 33 is used to filter the slurry in the circulation pipe 31 to reduce foreign matter in the slurry that is re-entered into the sizing tank 2.

[0033] Reference Figure 1 and Figure 2 The equipment body 1 is provided with an opening on one side along its width direction to form a chamber, and a closing door 11 is also provided on this side of the equipment body 1 to close the chamber formed by the opening. One end of the closing door 11 is rotatably connected to the equipment body 1 through a pin or hinge, and the other end is provided with a locking structure to realize the opening and closing of the closing door 11.

[0034] Reference Figure 2 The circulation pipe 31, circulation pump 32, and filter assembly 33 are all disposed within the chamber defined by the apparatus body 1. The filter assembly 33 comprises a filter box 331 and a filter screen 332. In this embodiment, the filter box 331 includes a plurality of filter screens 332, which are distributed along the length of the filter box 331. Each filter screen 332 is mounted within the filter box 331.

[0035] Reference Figure 2 The circulation pipe 31 includes an extraction portion 311, a communication portion 312, and an outlet portion 313. One end of the extraction portion 311 is in communication with one side of the bottom of the inner chamber of the sizing tank 2, and the other end is in communication with one end of the inner chamber of the filter box 331 along its own length direction, so that the slurry discharged from the extraction portion 311 enters the filter box 331. One end of the communication portion 312 is in communication with the end of the inner chamber of the filter box 331 away from the extraction portion 311, and the other end is in communication with one end of the circulation pump 32, so as to realize the extraction of slurry from the sizing tank 2.

[0036] Reference Figure 2 The circulation pump 32 is fixedly installed on the inner bottom wall of the chamber of the equipment body 1, one end of the outlet portion 313 is connected to the end of the circulation pump 32 away from the connecting portion 312, and the other end is bent upward and connected to one side of the top of the inner chamber of the sizing tank 2, so that the filtered slurry can be discharged into the sizing tank 2 again.

[0037] Reference Figure 1 and Figure 3A lifting mechanism 4 is also provided in the sizing tank 2. In the embodiment of the present application, there are two lifting mechanisms 4, one located on either side of the width of the sizing tank 2. Each lifting mechanism 4 includes a synchronization component 41 and a plurality of rotating frames 42. Each synchronization component 41 includes a lifting frame 411, a lifting member 412, and a plurality of synchronization frames 413.

[0038] Reference Figure 1 and Figure 3 In the embodiment of the present application, each lifting member 412 is configured as a combination of a reduction motor and a screw rod. Each reduction motor is fixedly mounted at the top of the sizing tank 2, and its output shaft is vertically downward (i.e., downward in the height direction of the sizing tank 2), and each output shaft is fixedly connected to the top of the corresponding screw rod via a coupling. The bottom end of each screw rod passes through the corresponding lifting frame 411 and is threadedly connected to the corresponding lifting frame 411. In other embodiments, the lifting member 412 can also be configured as an electric push rod, the piston rod of which is vertically downward and fixedly connected to the lifting frame 411.

[0039] Reference Figure 1 and Figure 3 Each lifting frame 411 is slidably connected to the inner wall of the sizing tank 2 via a slide rail, and the sliding direction is vertical (i.e., the height direction of the sizing tank 2). In this embodiment of the present application, each lifting mechanism 4 includes two rotating frames 42 and two synchronous frames 413, located on opposite sides of the corresponding synchronous frame 413. One end of each synchronous frame 413 is rotatably connected to the corresponding lifting frame 411 via a pin, and the other end is rotatably connected to the middle of the corresponding rotating frame 42 via a pin.

[0040] Reference Figure 1 and Figure 3 The bottom of each turret 42 is rotatably connected to the inner bottom wall of the sizing tank 2 via a pin. The sizing tank 2 is also provided with a plurality of sizing rollers 5. In the embodiment of the present application, there are two sizing rollers 5, and each sizing roller 5 is provided in a one-to-one correspondence with a turret 42 in the same lifting mechanism 4. One end of each sizing roller 5 is rotatably connected to the top of the corresponding turret 42 via a pin, so that the turret 42 can drive the corresponding sizing roller 5 to move, thereby adjusting the distance and height between the two sizing rollers 5.

[0041] Reference Figure 1 and Figure 3 The side wall of each sizing roller 5 is provided with a plurality of grooves along its own axial direction, so that the yarn can be against the inner wall of the groove, reducing the probability of the yarn intersecting during the conveying process, thereby ensuring the stability of the yarn conveying.

[0042] Reference Figure 1 and Figure 3, a plurality of adaptable components 6 are also provided in the sizing tank 2. In the embodiment of the present application, the number of adaptable components 6 is set to two, and the two adaptable components 6 are respectively located at the two ends of the sizing tank 2 along its own length direction. Each adaptable component 6 includes an adaptable roller 61, a plurality of sliding frames 62 and a plurality of linkage members 63. The two sizing rollers 5 are located between the two adaptable rollers 61. In the embodiment of the present application, the number of sliding frames 62 and linkage members 63 in each adaptable component 6 is set to two, and they are respectively located on both sides of the sizing tank 2, and the sliding frames 62, linkage members 63 and rotating frames 42 are provided in a one-to-one correspondence.

[0043] Reference Figure 1 and Figure 3 Each linkage member 63 includes a linkage frame 631. One end of each linkage frame 631 is pivotally connected to the center of the corresponding rotating frame 42 via a pin, and the other end of each linkage frame 631 is pivotally connected to the corresponding sliding frame 62 via a pin. Each sliding frame 62 is slidably connected to the inner wall of the sizing tank 2 via a slide rail, and the sliding direction is vertical (i.e., the height direction of the sizing tank 2). Each sliding frame 62 is pivotally connected to the corresponding end of the corresponding adaptive roller 61 via a bearing.

[0044] Reference Figure 1 and Figure 3 In the initial state, that is, when the sizing roller 5 is located at the middle depth of the slurry in the sizing tank 2, each adaptive roller 61 is located above the sizing roller 5. When the liquid level of the slurry in the sizing tank 2 drops, the lifting member 412 drives the lifting frame 411 to slide downward, so that the lifting frame 411 drives the top of the corresponding rotating frame 42 to rotate downward through the corresponding synchronous frame 413, thereby causing the two sizing rollers 5 to approach each other and move downward.

[0045] Reference Figure 1 and Figure 3 During this process, each rotating frame 42 drives the corresponding linkage frame 631 to move, so that each linkage frame 631 is away from one end of the rotating frame 42, and drives the corresponding sliding frame 62 to slide downward, so that the sliding frame 62 drives the adaptive roller 61 to move downward, thereby reducing the tension of the yarn in the sizing pool 2 and ensuring the yarn conveying effect.

[0046] Reference Figure 1 and Figure 3 The equipment body 1 is also provided with a detection mechanism 7, which includes a detection component 71 and a control component 72. In the embodiment of the present application, the detection component 71 is configured as an ultrasonic water level gauge, and the control component 72 is configured as a PLC controller. The ultrasonic water level gauge and the aforementioned reduction motor within each lifting component 412 are electrically connected to the PLC controller. The ultrasonic water level gauge is fixedly mounted on the inner wall of the sizing tank 2 and is used to detect the height of the slurry liquid level within the sizing tank 2 and feed the detected height back to the PLC controller.

[0047] Reference Figure 1 and Figure 3 The PLC controller is fixedly mounted on the apparatus body 1 and internally stores a correspondence between the slurry level and the number of revolutions of the aforementioned reduction motors. The PLC controller receives the height value fed back by the ultrasonic water level meter and controls the number of revolutions of each reduction motor based on the internally stored correspondence. This controls the height of the sizing roller 5 on the rotating frame 42 via the lifting frame 411, ensuring that the sizing roller 5 is always located within the slurry and maintained at an appropriate depth within the slurry.

[0048] Reference Figure 1 and Figure 2 A drying mechanism 8 is also provided on the side of the sizing tank 2 away from the apparatus body 1. The drying mechanism 8 comprises a drying box 81 and a drying assembly 82. The sizing tank 2 is located on one side of the drying box 81 along its length. The drying box 81 is fixedly connected to the top of the apparatus body 1 by welding. The drying box 81 has openings on both sides of its bottom along its length for the yarn to pass through.

[0049] Reference Figure 1 and Figure 2 The drying box 81 is provided with guide rollers 9 at both ends along its length. Each guide roller 9 is rotatably connected to the equipment body 1 through a bearing, and the side walls of each guide roller 9 are against the side walls of the sand line, so that the yarn introduced from other equipment enters the drying box 81 through the adaptation roller 61, the sizing roller 5 and the guide roller 9, and passes through the guide roller 9 on the other side of the drying box 81 to the equipment of the next process.

[0050] Reference Figure 2 In this embodiment, the drying assembly 82 is configured as a plurality of dryers fixedly mounted on the inner top wall of the drying box 81, with the outlet end facing downward. The dryers are equipped with a blower and a heater, which draw in and heat ambient air before passing it into the drying box 81 to dry the yarn within the drying box 81. The top wall of the drying box 81 also has an opening for the dryers to draw in ambient air.

[0051] The implementation principle of the yarn sizing device for textiles in the embodiment of the present application is as follows: when in use, the yarn enters the chamber of the drying box 81 through the adaptation roller 61, the sizing roller 5 and the guide roller 9, and after being dried by the drying component 82, it passes out from the drying box 81 on the side away from the sizing tank 2. During this process, the circulation pump 32 continuously extracts the slurry in the sizing tank 2 into the circulation pipe 31, and the extracted slurry passes into the filter box 331 through the extraction part 311 of the circulation pipe 31, and after being filtered through a plurality of filter screens 332, it is passed into the sizing tank 2 again through the circulation pipe 31, thereby continuously reducing foreign matter in the sizing tank 2 and ensuring the sizing effect.

[0052] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.

Claims

1. A yarn sizing device for textiles, comprising a device body (1), wherein the device body (1) is provided with a sizing tank (2) with an upper end opening, characterized in that: The equipment body (1) is also provided with an adsorption and filtration mechanism (3), which includes a circulation pipe (31), a circulation pump (32) and a filter assembly (33). The two ends of the circulation pipe (31) are respectively connected to different heights of the inner chamber of the sizing tank (2). The circulation pump (32) is provided on the circulation pipe (31) for extracting the slurry in the sizing tank (2). The filter assembly (33) is used to filter the slurry in the circulation pipe (31) to reduce foreign matter in the slurry that is re-entered into the sizing tank (2).

2. The textile yarn sizing device according to claim 1, characterized in that: A plurality of sizing rollers (5) are further provided in the sizing pool (2), each of the sizing rollers (5) is provided on the sizing pool (2), and the bottom of each of the sizing rollers (5) is used to abut against the yarn, thereby guiding the yarn. A lifting mechanism (4) is also provided in the sizing pool (2), and the lifting mechanism (4) is used to drive each sizing roller (5) to rise and fall.

3. The textile yarn sizing device according to claim 2, characterized in that: The lifting mechanism (4) includes a synchronous component (41) and a plurality of rotating frames (42), wherein the rotating frames (42) correspond to the sizing rollers (5), and each of the rotating frames (42) is rotatably connected to the sizing tank (2). Each of the sizing rollers (5) is arranged on a corresponding rotating frame (42) and is rotatably connected to the corresponding rotating frame (42). The synchronous component (41) is used to drive each rotating frame (42) to rotate.

4. The textile yarn sizing device according to claim 3, characterized in that: A plurality of adaptable components (6) are further provided in the sizing tank (2), and the adaptable components (6) correspond to the sizing rollers (5). Each of the adaptable components (6) includes an adaptable roller (61), and each of the adaptable rollers (61) is located on a side of the corresponding sizing roller (5) away from the adjacent sizing roller (5). Each of the adaptable rollers (61) is provided on the sizing tank (2) and abuts against the yarn to guide the yarn.

5. The textile yarn sizing device according to claim 4, characterized in that: Each of the adaptation components (6) further includes a sliding frame (62) and a linkage member (63); the sliding frame (62), the linkage member (63) and the rotating frame (42) are arranged correspondingly; each of the adaptation rollers (61) is arranged on the corresponding sliding frame (62) and is rotationally connected to the corresponding sliding frame (62); each of the sliding frames (62) is slidingly connected to the sizing pool (2), and the sliding direction is the direction close to the corresponding sizing roller (5); each of the rotating frames (42) drives the sliding frame (62) to slide through the corresponding linkage member (63).

6. The textile yarn sizing device according to claim 5, characterized in that: Each linkage member (63) includes a linkage frame (631), one end of each linkage frame (631) is rotationally connected to the corresponding sliding frame (62), and the other end is rotationally connected to the corresponding rotating frame (42).

7. The textile yarn sizing device according to claim 3, characterized in that: The synchronization assembly (41) includes a lifting frame (411), a lifting member (412) and a plurality of synchronization frames (413). The lifting member (412) is used to drive the lifting frame (411) to move along the height direction of the sizing tank (2). The synchronization frames (413) are correspondingly arranged with the rotating frame (42). One end of each synchronization frame (413) is rotationally connected to the lifting frame (411), and the other end is rotationally connected to the corresponding rotating frame (42).

8. The textile yarn sizing device according to claim 7, characterized in that: The device body (1) is further provided with a detection mechanism (7), the detection mechanism (7) comprising a detection member (71) and a control member (72), the detection member (71) being used to detect the height of the slurry liquid level in the sizing tank (2), and the control member (72) being used to control the height of the lifting member (412) after driving the lifting frame (411) to move based on the data detected by the detection member (71).

9. The textile yarn sizing device according to claim 1, characterized in that: The filter assembly (33) includes a filter box (331) and a filter screen (332). The filter box (331) is arranged in the middle of the circulation pipe (31), and its two opposite sides are connected to the circulation pipe (31). The filter screen (332) is arranged in the filter box (331).

10. The textile yarn sizing device according to claim 1, characterized in that: The device body (1) is further provided with a drying mechanism (8), the drying mechanism (8) comprising a drying box (81) and a drying assembly (82), the drying box (81) being located on one side of the sizing tank (2), the drying box (81) having openings on both the side close to and away from the sizing tank (2), and the drying assembly (82) being used to dry the yarn in the drying box (81).