Warp beam sizing machine based on electrostatic spinning technology
By combining electrospinning technology and the design of the purified frame filter plate in the warp sizing machine, the problems of poor yarn sizing quality and difficulty in removing impurities are solved, and high-quality yarn sizing and slurry purification effects are achieved.
Patent Information
- Application Number
- CN202510671460.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-23
- Publication Date
- 2025-06-20
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the prior art, the warp sizing machine cannot effectively combine electrospinning and traditional sizing, resulting in poor sizing quality of yarn and difficult to remove impurities in the slurry, affecting the quality of yarn.
A warp sizing machine based on electrospinning technology was designed, using electrospinning nozzles to spray functional materials, and the impurities in the slurry are removed by purifying the frame and filter plate to ensure uniform sizing and high-quality output of the yarn.
The yarn sizing quality is improved, ensuring that the yarn is evenly wet the slurry, removing impurities in the slurry, and improving the weavability and wear resistance of the yarn.
Smart Images

Figure CN120174562A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of yarn sizing, and specifically provides a beam sizing machine based on electrospinning technology. Background Art
[0002] Beam sizing is an important process before weaving, mainly used to improve the weavability and wear resistance of yarns. Traditional beam sizing methods mainly use processes such as dipping and pressing, which are difficult to endow fabrics with special functions. As a new nanofiber preparation technology, electrospinning technology combined with traditional yarn sizing methods can obtain better-quality yarns.
[0003] The defects of existing sizing machines are as follows: 1. The prior art KR200460534Y1 discloses a sizing machine, which does not have the function of combining electrospinning and traditional yarn sizing. The quality of yarn sizing is poor, and when the yarn is immersed in the sizing agent for sizing, air is likely to be trapped in the yarn, resulting in uneven sizing. Accelerating the flow of the sizing agent can make the yarn more easily wetted by the sizing agent. The traditional method of accelerating the water flow by stirring is likely to interfere with the yarn. Therefore, a beam sizing machine based on electrospinning technology that can combine electrospinning and traditional sizing and has a high penetration rate of traditional sizing is needed to solve this problem.
[0004] 2. The prior art US3879966A discloses a continuous yarn dyeing machine, which does not have the function of removing impurities from dyes. The presence of impurities is likely to adhere to the yarn, affecting the quality of the yarn. Therefore, a beam sizing machine based on electrospinning technology that can remove impurities in the sizing agent is needed to solve this problem.
[0005] 3. The prior art US5557953A discloses a textile yarn dyeing machine, which does not have a structure for filtering impurities in the dye liquor. When using a filter plate to filter impurities, the filter plate is easily blocked by impurities. Therefore, a beam sizing machine based on electrospinning technology that can filter impurities and avoid filter plate blockage is needed to solve this problem.
[0006] 4. The prior art CN207685522U discloses a yarn sizing machine, which does not have a structure for discharging precipitated impurities in the dye. The precipitation of impurities in the dye is likely to cause the dye to thicken, affecting the fluidity of the dye and slowing down the filtration speed of the dye. Therefore, a beam sizing machine based on electrospinning technology that can discharge impurities in the sizing agent is needed to solve this problem. Summary of the Invention
[0007] An object of the present application is to provide a beam sizing machine based on electrospinning technology, which can solve the technical problems raised in the prior art.
[0008] To achieve the above object, the present invention provides the following technical solution: A beam sizing machine based on electrospinning technology, comprising a first plate body, a dyeing pulp pool and a second plate body. A controller component is installed on the top of the first plate body. A first frame body is installed on the top of the first plate body. A plurality of electrospinning nozzle components are installed on the inner wall of the top of the first frame body, and the electrospinning nozzle components are electrically connected to the controller component; The dyeing pulp pool is installed on the top of the first plate body. A second plate body is installed on one side of the first plate body. A purification frame is installed on the top of the second plate body. A second frame body is installed on the top of the dyeing pulp pool. A first vertical plate is installed on the top of the second frame body. An electric telescopic rod component is installed on the front of the first vertical plate, and the electric telescopic rod component is electrically connected to the controller component. A liquid spraying mechanism is arranged at the output end of the electric telescopic rod component.
[0009] Preferably, a plurality of columns are installed at the bottom of the first plate body. Vertical rods are symmetrically installed on the top of the first plate body, and the vertical rods are located in front of the first frame body. A unwinding roller is movably installed through the top of the vertical rods.
[0010] Preferably, a first hydraulic cylinder component is installed on the top of the second frame body, and the first hydraulic cylinder component is electrically connected to the controller component. A first frame is installed at the output end of the first hydraulic cylinder component. A first pressure roller component is movably installed through the inside of the first frame.
[0011] Preferably, a second hydraulic cylinder component is installed on the top of the second frame body, and the second hydraulic cylinder component is electrically connected to the controller component. A second frame is installed at the output end of the second hydraulic cylinder component. A second pressure roller component is movably installed through the inside of the second frame, and the second pressure roller component is located behind the first pressure roller component. A third pressure roller component is movably installed through the inside of the second frame, and the third pressure roller component is located below the second pressure roller component.
[0012] Preferably, a first conveying pipe is installed at the front output end of the dyeing pulp pool. A first solenoid valve component is installed at the output end of the first conveying pipe, and the first solenoid valve component is electrically connected to the controller component. A second conveying pipe is installed at the output end of the first solenoid valve component, and the output end of the second conveying pipe is connected to the front input end of the purification frame.
[0013] Preferably, guiding frames are symmetrically installed inside the purification frame. A first filter plate component is movably installed inside the guiding frames.
[0014] Preferably, a right-angle plate is installed on the top of the purification frame. A third hydraulic cylinder component is installed on the top of the right-angle plate, and the third hydraulic cylinder component is electrically connected to the controller component. A brush is installed at the output end of the third hydraulic cylinder component, and the brush is located below the right-angle plate. A fourth hydraulic cylinder component is installed on the top of the right-angle plate, and the fourth hydraulic cylinder component is electrically connected to the controller component. A second filter plate component is installed at the output end of the fourth hydraulic cylinder component, and the second filter plate component is located on the left side of the first filter plate component and inside the purification frame.
[0015] Preferably, a collection box is movably installed above the second plate body, and the collection box is located on the left side of the purification frame. A fifth hydraulic cylinder component is installed on the front surface of the purification frame, and the fifth hydraulic cylinder component is electrically connected to the controller component. A scraper is installed at the output end of the fifth hydraulic cylinder component, and the scraper is located above the purification frame.
[0016] Preferably, the liquid spraying mechanism includes a lifting pipe and a check valve. The top of the lifting pipe is connected to the output end of the electric telescopic rod component. A plurality of check valves are installed at the bottom output end of the lifting pipe. A third plate body is installed on the top of the purification frame. An impurity pump component is installed on the top of the third plate body. A third conveying pipe is installed at the input end of the impurity pump component. One end of the third conveying pipe is located inside the purification frame, and the third conveying pipe is located on the right side of the first filter plate component. A hose is installed at the output end of the impurity pump component, and the output end of the hose is connected to the input end of the lifting pipe.
[0017] Preferably, a drying chamber is installed on the top of the first plate body. Rectangular openings are symmetrically formed through the front and back surfaces of the drying chamber. Heat insulation cotton is symmetrically installed on the front and back surfaces of the drying chamber. A plurality of heating rod components are installed inside the drying chamber, and the heating rod components are electrically connected to the controller component. A second vertical plate is installed on the top of the first plate body. A motor component is installed on one side of the second vertical plate, and the motor component is electrically connected to the controller component. A winding roller is installed at the output end of the motor component.
[0018] Compared with the prior art, the beneficial effects of the present invention are: In the present invention, the yarn roll is placed outside the unwinding roller. The yarn passes through the electrospinning nozzle component for spraying the functional material, and then moves to the first pressing roller component and is pressed into the sizing pulp pool for sizing, so that better-quality yarn can be obtained. At the same time, the impurity pump component sucks the sizing pulp on the right side of the first filter plate component in the purification frame into the lifting pipe, and then sprays it onto the yarn through the check valve, so that the yarn is more thoroughly wetted by the sizing pulp.
[0019] In the present invention, the sizing pulp in the sizing pulp pool enters the purification frame through the first conveying pipe and the second conveying pipe, and then the sizing pulp flows to the right and is filtered by the first filter plate component to remove impurities and enters the right side of the first filter plate component, so that the impurities in the sizing pulp in the sizing pulp pool can be removed.
[0020] In the present invention, the brush moves up and down to clean the left side of the first filter plate component to prevent impurities from blocking the first filter plate component.
[0021] In the present invention, the brush is moved up to the highest position, then the second filter plate component is moved up to the top to be level with the top of the purification frame, and then the scraper is moved to the left to scrape the impurities on the second filter plate component into the collection box for collection. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1Isometric view of the present invention; Figure 2 Schematic structural view of the dyeing and sizing bath of the present invention; Figure 3 Schematic structural view of the second frame of the present invention; Figure 4 Schematic structural view of the purification tank of the present invention; Figure 5 Schematic structural view of the third plate body of the present invention; Figure 6 Schematic structural view of the right-angle plate of the present invention; Figure 7 Schematic structural view of the drying chamber of the present invention; Figure 8 Side sectional view of the drying chamber of the present invention; Figure 9 Flowchart of the usage method of the present invention.
[0023] In the figure: 1. First plate body; 2. Column; 3. Controller component; 4. Vertical rod; 5. Unwinding roller; 6. First frame; 7. Electrospinning nozzle component; 8. Dyeing and sizing bath; 9. Second frame; 10. First hydraulic cylinder component; 11. First frame body; 12. First pressure roller component; 13. Second hydraulic cylinder component; 14. Second frame body; 15. Second pressure roller component; 16. Third pressure roller component; 17. First conveying pipe; 18. First solenoid valve component; 19. Second conveying pipe; 20. Second plate body; 21. Purification frame; 22. Guide frame; 23. First filter plate component; 24. Third plate body; 25. Impurity pump component; 26. Third conveying pipe; 27. Hose; 28. Right-angle plate; 29. Third hydraulic cylinder component; 30. Brush; 31. Fourth hydraulic cylinder component; 32. Second filter plate component; 33. Collection box; 34. Fifth hydraulic cylinder component; 35. Scraper; 38. First vertical plate; 39. Electric telescopic rod component; 40. Lifting pipe; 41. Check valve; 42. Drying chamber; 43. Rectangular opening; 44. Heat-insulating cotton; 45. Heating rod component; 46. Second vertical plate; 47. Motor component; 48. Winding roller. Detailed implementation manners
[0024] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0025] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "upper", "lower", "inner", "outer", "front end", "rear end", "both ends", "one end", "the other end", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present invention. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.
[0026] In the description of the present invention, it should be noted that unless otherwise clearly specified and defined, the terms "installed", "provided with", "connected", etc. should be understood in a broad sense. For example, "connected" can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0027] Please refer to Figure 1 , an embodiment provided by the present invention: a beam sizing machine based on electrospinning technology; It includes a first plate body 1, a vertical rod 4 and a first frame body 6. A plurality of columns 2 are installed at the bottom of the first plate body 1. Vertical rods 4 are symmetrically installed at the top of the first plate body 1, and the vertical rods 4 are located in front of the first frame body 6. A pay-off roll 5 is movably installed through the top of the vertical rod 4. A controller component 3 is installed at the top of the first plate body 1. A first frame body 6 is installed at the top of the first plate body 1. A plurality of electrospinning nozzle components 7 are installed on the inner wall of the top of the first frame body 6, and the electrospinning nozzle components 7 are electrically connected to the controller component 3. The first plate body 1 can provide an installation position for other components of the device. The columns 2 can provide support for the first plate body 1. The vertical rods 4 can provide a placement position for the pay-off roll 5. The pay-off roll 5 can provide a placement position for the yarn roll. The controller component 3 can control the electrospinning nozzle components 7, the first hydraulic cylinder component 10, the second hydraulic cylinder component 13, the first solenoid valve component 18, the impurity pump component 25, the third hydraulic cylinder component 29, the fourth hydraulic cylinder component 31, the fifth hydraulic cylinder component 34, the electric telescopic rod component 39, the heating rod component 45 and the motor component 47. The first frame body 6 can provide an installation position for the electrospinning nozzle components 7. The electrospinning nozzle components 7 can evenly spray the functional material on the outside of the yarn.
[0028] Please refer to Figure 1 , Figure 2 , Figure 4 and Figure 5 , an embodiment provided by the present invention: a beam sizing machine based on electrospinning technology; It includes a dyeing and sizing pool 8, a second frame 9, and a liquid spraying mechanism. A dyeing and sizing pool 8 is installed at the top of the first plate body 1. A second plate body 20 is installed on one side of the first plate body 1. A purification frame 21 is installed at the top of the second plate body 20. A second frame 9 is installed at the top of the dyeing and sizing pool 8. A first vertical plate 38 is installed at the top of the second frame 9. An electric telescopic rod component 39 is installed on the front surface of the first vertical plate 38, and the electric telescopic rod component 39 is electrically connected to the controller component 3. The output end of the electric telescopic rod component 39 is provided with a liquid spraying mechanism. The liquid spraying mechanism includes a lifting pipe 40 and a check valve 41. The top of the lifting pipe 40 is connected to the output end of the electric telescopic rod component 39. A plurality of check valves 41 are installed at the bottom output end of the lifting pipe 40. A third plate body 24 is installed at the top of the purification frame 21. An impurity pump component 25 is installed at the top of the third plate body 24. An input end of the impurity pump component 25 is installed with a third conveying pipe 26. One end of the third conveying pipe 26 is located inside the purification frame 21, and the third conveying pipe 26 is located on the right side of the first filter plate component 23. An output end of the impurity pump component 25 is installed with a hose 27, and an output end of the hose 27 is connected to an input end of the lifting pipe 40. The dyeing and sizing pool 8 can provide a storage space for the yarn sizing agent. The second plate body 20 can provide an installation position for the purification frame 21. The purification frame 21 can purify impurities in the sizing agent inside the dyeing and sizing pool 8. The second frame 9 can provide an installation position for the first vertical plate 38. The first vertical plate 38 can provide an installation position for the electric telescopic rod component 39. The electric telescopic rod component 39 can convert electrical energy into kinetic energy, thereby driving the lifting pipe 40 to move up and down. The lifting pipe 40 can transmit the sizing agent inside the hose 27 into the check valve 41. The check valve 41 can spray the sizing agent inside the lifting pipe 40 and prevent the sizing agent from the outside from entering the lifting pipe 40 through the check valve 41. The third plate body 24 can provide an installation position for the impurity pump component 25. The impurity pump component 25 can convert electrical energy into kinetic energy, thereby sucking and transmitting the sized agent filtered in the purification frame 21 into the lifting pipe 40. The third conveying pipe 26 can provide a transmission path for the sizing agent on the right side of the first filter plate component 23 inside the purification frame 21 to enter the impurity pump component 25. The hose 27 can provide a transmission path for the sizing agent in the impurity pump component 25 to enter the lifting pipe 40.
[0029] Please refer to Figure 1 、 Figure 2 and Figure 3 This invention provides an embodiment: A beam warping machine based on electrospinning technology; It includes a hydraulic cylinder component one 10 and a hydraulic cylinder component two 13. The hydraulic cylinder component one 10 is installed at the top of the frame two 9, and the hydraulic cylinder component one 10 is electrically connected to the controller component 3. The output end of the hydraulic cylinder component one 10 is installed with a frame one 11. A pressure roller component one 12 is movably installed through the inside of the frame one 11. The hydraulic cylinder component two 13 is installed at the top of the frame two 9, and the hydraulic cylinder component two 13 is electrically connected to the controller component 3. The output end of the hydraulic cylinder component two 13 is installed with a frame two 14. A pressure roller component two 15 is movably installed through the inside of the frame two 14, and the pressure roller component two 15 is located behind the pressure roller component one 12. A pressure roller component three 16 is movably installed through the inside of the frame two 9, and the pressure roller component three 16 is located below the pressure roller component two 15. The hydraulic cylinder component one 10 can convert hydraulic energy into kinetic energy, thereby driving the frame one 11 to move up and down. The frame one 11 can drive the pressure roller component one 12 to move up and down through the up and down movement. When the pressure roller component one 12 moves down, it can press the yarn into the slurry in the dyeing slurry pool 8. The hydraulic cylinder component two 13 can convert hydraulic energy into kinetic energy, thereby driving the frame two 14 to move up and down. The frame two 14 can drive the pressure roller component two 15 to move up and down through the up and down movement. When the pressure roller component two 15 moves down, it can press the yarn between the pressure roller component two 15 and the pressure roller component three 16, so as to press out some of the slurry in the yarn and reduce the waste of the slurry. The outer curved surfaces of the pressure roller component two 15 and the pressure roller component three 16 are covered with rubber.
[0030] Please refer to Figure 1 、 Figure 2 、 Figure 4 and Figure 5 ,An embodiment provided by the present invention: A warping sizing machine based on electrospinning technology; It includes a conveying pipe one 17 and a guiding frame 22. The front output end of the dyeing slurry pool 8 is installed with the conveying pipe one 17. The output end of the conveying pipe one 17 is installed with a solenoid valve component one 18, and the solenoid valve component one 18 is electrically connected to the controller component 3. The output end of the solenoid valve component one 18 is installed with a conveying pipe two 19, and the output end of the conveying pipe two 19 is connected to the front input end of the purification frame 21. The guiding frames 22 are symmetrically installed inside the purification frame 21. A filter plate component one 23 is movably installed inside the guiding frames 22. The conveying pipe one 17 can provide a transmission path for the slurry in the dyeing slurry pool 8 to enter the solenoid valve component one 18. The solenoid valve component one 18 plays a role in controlling the slurry in the conveying pipe one 17 to enter the conveying pipe two 19. The conveying pipe two 19 can provide a transmission path for the slurry in the conveying pipe one 17 to enter the purification frame 21. The guiding frames 22 can provide guidance for the filter plate component one 23. The filter plate component one 23 can filter impurities from the slurry on the left side of the filter plate component one 23 in the purification frame 21.
[0031] Please refer to Figure 1 、 Figure 2 、Figure 4 and Figure 5 An embodiment provided by the present invention: A beam sizing machine based on electrospinning technology; It includes a right-angle plate 28. The right-angle plate 28 is installed at the top of the purification frame 21. The hydraulic cylinder component three 29 is installed at the top of the right-angle plate 28. The hydraulic cylinder component three 29 is electrically connected to the controller component 3. The output end of the hydraulic cylinder component three 29 is installed with a brush 30, and the brush 30 is located below the right-angle plate 28. The hydraulic cylinder component four 31 is installed at the top of the right-angle plate 28. The hydraulic cylinder component four 31 is electrically connected to the controller component 3. The output end of the hydraulic cylinder component four 31 is installed with a filter plate component two 32, and the filter plate component two 32 is located on the left side of the filter plate component one 23 and inside the purification frame 21. The right-angle plate 28 can provide an installation position for the hydraulic cylinder component three 29. The hydraulic cylinder component three 29 can convert hydraulic energy into kinetic energy, thereby driving the brush 30 to move up and down. The brush 30 can brush off the impurities on the left side of the filter plate component one 23 by moving up and down, avoiding the blockage of the filter plate component one 23. The hydraulic cylinder component four 31 can convert hydraulic energy into kinetic energy, thereby driving the filter plate component two 32 to move up and down. When the filter plate component two 32 moves up, it can lift the impurities in the slurry on the left side of the filter plate component one 23 inside the purification frame 21 upward, facilitating the removal of the impurities on the filter plate component two 32.
[0032] Please refer to Figure 1 、 Figure 2 and Figure 4 An embodiment provided by the present invention: A beam sizing machine based on electrospinning technology; It includes a collection box 33 and a hydraulic cylinder component five 34. The collection box 33 is movably installed above the plate body two 20, and the collection box 33 is located on the left side of the purification frame 21. The hydraulic cylinder component five 34 is installed on the front of the purification frame 21, and the hydraulic cylinder component five 34 is electrically connected to the controller component 3. The output end of the hydraulic cylinder component five 34 is installed with a scraper 35, and the scraper 35 is located above the purification frame 21. The collection box 33 serves to collect the impurities in the purification frame 21. The hydraulic cylinder component five 34 can convert hydraulic energy into kinetic energy, thereby driving the scraper 35 to move left and right. The scraper 35 can scrape the impurities on the upper surface of the filter plate component two 32 after moving up into the collection box 33 by moving left.
[0033] Please refer to Figure 1 、 Figure 7 and Figure 8 An embodiment provided by the present invention: A beam sizing machine based on electrospinning technology; It includes a drying chamber 42 and a second vertical plate 46. The drying chamber 42 is installed at the top of the first plate body 1. Rectangular openings 43 are symmetrically penetrated through the front and back of the drying chamber 42. Heat insulation cotton 44 is symmetrically installed on the front and back of the drying chamber 42. A plurality of heating rod components 45 are installed inside the drying chamber 42, and the heating rod components 45 are electrically connected to the controller component 3. The second vertical plate 46 is installed at the top of the first plate body 1. A motor component 47 is installed on one side of the second vertical plate 46, and the motor component 47 is electrically connected to the controller component 3. A winding roller 48 is installed at the output end of the motor component 47. The drying chamber 42 can provide a drying space for the yarn. The rectangular opening 43 can provide a path for the yarn to enter and exit the drying chamber 42. The heat insulation cotton 44 can reduce the heat loss rate in the drying chamber 42. The heating rod components 45 can convert electrical energy into heat energy, thereby being able to dry the yarn. The second vertical plate 46 can provide an installation position for the motor component 47. The motor component 47 can convert electrical energy into kinetic energy, thereby driving the winding roller 48 to rotate. The winding roller 48 can wind the yarn.
[0034] Working principle: Before using the warping machine for sizing based on the electrospinning technology, it should be checked first whether there are any problems affecting the use of the warping machine for sizing based on the electrospinning technology. Place the yarn roll outside the unwinding roller 5. The yarn passes through the electrospinning nozzle component 7 for spraying functional materials, and then moves to the first pressing roller component 12 and is pressed into the sizing bath 8 for sizing. Then the yarn passes between the second pressing roller component 15 and the third pressing roller component 16. The second pressing roller component 15 moves downward to squeeze and discharge the excess sizing in the yarn. Then the yarn enters the drying chamber 42 through the front rectangular opening 43 for drying, and then leaves the drying chamber 42 through the rectangular opening 43 on the back of the drying chamber 42. Subsequently, the yarn is wound by the winding roller 48. The impurity pump component 25 sucks the sizing on the right side of the first filter plate component 23 in the purification frame 21 into the lifting pipe 40, and then sprays it onto the yarn through the one-way valve 41, so that the yarn is more thoroughly infiltrated by the sizing. The sizing in the sizing bath 8 enters the purification frame 21 through the first conveying pipe 17 and the second conveying pipe 19. Then the sizing flows to the right and is filtered by the first filter plate component 23 to remove impurities and enters the right side of the first filter plate component 23. The brush 30 moves up and down to clean the left side of the first filter plate component 23 to prevent impurities from blocking the first filter plate component 23. By moving the brush 30 to the highest position, and then moving the second filter plate component 32 up to the top to be level with the top of the purification frame 21, and then moving the scraper 35 to the left to scrape the impurities on the second filter plate component 32 into the collection box 33 for collection.
[0035] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above-described exemplary embodiments, and the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be embraced within the present invention, and any reference signs in the claims should not be regarded as limiting the claimed rights.
Claims
1. A beam warping machine based on electrospinning technology, characterized in that: It includes a first plate body (1), a dyeing pulp pool (8) and a second plate body (20). A controller component (3) is installed on the top of the first plate body (1). A first frame body (6) is installed on the top of the first plate body (1). A plurality of electrospinning nozzle components (7) are installed on the inner wall of the top of the first frame body (6), and the electrospinning nozzle components (7) are electrically connected to the controller component (3). A dyeing pulp pool (8) is installed on the top of the first plate body (1). A second plate body (20) is installed on one side of the first plate body (1). A purification frame (21) is installed on the top of the second plate body (20). A second frame body (9) is installed on the top of the dyeing pulp pool (8). A first vertical plate (38) is installed on the top of the second frame body (9). An electric telescopic rod component (39) is installed on the front of the first vertical plate (38), and the electric telescopic rod component (39) is electrically connected to the controller component (3). A liquid spraying mechanism is arranged at the output end of the electric telescopic rod component (39).
2. The beam warping machine based on electrospinning technology according to claim 1, characterized in that: A plurality of columns (2) are installed on the bottom of the first plate body (1). A plurality of vertical rods (4) are symmetrically installed on the top of the first plate body (1), and the vertical rods (4) are located in front of the first frame body (6). A unwinding roller (5) is installed through the top of the vertical rod (4) in a movable manner.
3. The beam warping machine based on electrospinning technology according to claim 1, characterized in that: A first hydraulic cylinder component (10) is installed on the top of the second frame body (9), and the first hydraulic cylinder component (10) is electrically connected to the controller component (3). A first frame (11) is installed at the output end of the first hydraulic cylinder component (10). A first pressing roller component (12) is installed through the inside of the first frame (11) in a movable manner.
4. The beam warping machine based on electrospinning technology according to claim 3, characterized in that: A second hydraulic cylinder component (13) is installed on the top of the second frame body (9), and the second hydraulic cylinder component (13) is electrically connected to the controller component (3). A second frame (14) is installed at the output end of the second hydraulic cylinder component (13). A second pressing roller component (15) is installed through the inside of the second frame (14) in a movable manner, and the second pressing roller component (15) is located behind the first pressing roller component (12). A third pressing roller component (16) is installed through the inside of the second frame body (9) in a movable manner, and the third pressing roller component (16) is located below the second pressing roller component (15).
5. The beam warping machine based on electrospinning technology according to claim 1, characterized in that: A first conveying pipe (17) is installed at the front output end of the dyeing pulp pool (8). A first solenoid valve component (18) is installed at the output end of the first conveying pipe (17), and the first solenoid valve component (18) is electrically connected to the controller component (3). A second conveying pipe (19) is installed at the output end of the first solenoid valve component (18), and the output end of the second conveying pipe (19) is connected to the front input end of the purification frame (21).
6. The beam warping machine based on electrospinning technology according to claim 1, characterized in that: A pair of guiding frames (22) are symmetrically installed inside the purification frame (21). A first filter plate component (23) is installed movably inside the guiding frames (22).
7. The beam warping machine based on electrospinning technology according to claim 6, characterized in that: A right-angle plate (28) is installed at the top of the purification frame (21). A third hydraulic cylinder component (29) is installed at the top of the right-angle plate (28). The third hydraulic cylinder component (29) is electrically connected to the controller component (3). A brush (30) is installed at the output end of the third hydraulic cylinder component (29), and the brush (30) is located below the right-angle plate (28). A fourth hydraulic cylinder component (31) is installed at the top of the right-angle plate (28). The fourth hydraulic cylinder component (31) is electrically connected to the controller component (3). A second filter plate component (32) is installed at the output end of the fourth hydraulic cylinder component (31), and the second filter plate component (32) is located on the left side of the first filter plate component (23) and inside the purification frame (21).
8. The beam warping machine based on electrospinning technology according to claim 1, characterized in that: A collection box (33) is movably installed above the second plate body (20), and the collection box (33) is located on the left side of the purification frame (21). A fifth hydraulic cylinder component (34) is installed on the front surface of the purification frame (21). The fifth hydraulic cylinder component (34) is electrically connected to the controller component (3). A scraper (35) is installed at the output end of the fifth hydraulic cylinder component (34), and the scraper (35) is located above the purification frame (21).
9. The beam warping machine based on electrospinning technology according to claim 6, characterized in that: The liquid spraying mechanism includes a lifting pipe (40) and a check valve (41). The top of the lifting pipe (40) is connected to the output end of the electric telescopic rod component (39). A plurality of check valves (41) are installed at the bottom output end of the lifting pipe (40). A third plate body (24) is installed at the top of the purification frame (21). An impurity pump component (25) is installed at the top of the third plate body (24). An input end of the impurity pump component (25) is installed with a third conveying pipe (26). One end of the third conveying pipe (26) is located inside the purification frame (21), and the third conveying pipe (26) is located on the right side of the first filter plate component (23). An output end of the impurity pump component (25) is installed with a hose (27), and an output end of the hose (27) is connected to an input end of the lifting pipe (40).
10. The beam warping machine based on electrospinning technology according to claim 1, characterized in that: A drying chamber (42) is installed at the top of the first plate body (1). Rectangular openings (43) are symmetrically formed through the front and back surfaces of the drying chamber (42). Heat insulation cotton (44) is symmetrically installed on the front and back surfaces of the drying chamber (42). A plurality of heating rod components (45) are installed inside the drying chamber (42). The heating rod components (45) are electrically connected to the controller component (3). A second vertical plate (46) is installed at the top of the first plate body (1). A motor component (47) is installed on one side of the second vertical plate (46). The motor component (47) is electrically connected to the controller component (3). A winding roller (48) is installed at the output end of the motor component (47).
Citation Information
Patent Citations
Yarn sizing machine
CN207685522U
sizing machine
KR200460534Y1
Continuous yarn dyeing machines
US3879966A
Machine for dyeing textile yarns
US5557953A
Processing equipment for realizing efficient sizing of polyester yarns
CN118461246A