A high-strength composite fiber production spin-washing device and a spin-washing method thereof
By designing a high-strength composite fiber production device that includes a mode switching component, a swirl washing component, and a drying component, the device achieves automated switching and control of raw materials during the swirl washing and drying processes, solving the problem of low efficiency in traditional cleaning methods and improving production efficiency and output quality.
Patent Information
- Application Number
- CN202510017782.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-06
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2045-01-06
AI Technical Summary
Existing technologies cannot meet the requirements of integrated working equipment, automated cleaning, drying, and swirl washing of raw materials in the production process of high-strength composite fibers, resulting in low cleaning efficiency and low production efficiency of fiber materials.
A cyclone washing device was designed, which includes a mode switching component, a cyclone washing component, and a drying component. The device achieves automated switching and control of raw materials during the cyclone washing and drying process through a dynamic switching linkage and a lifting recovery component. The cyclone washing and drying functions are realized by combining the rotating component and the heating module.
It enables automated cleaning and drying of high-strength composite fibers, improving production efficiency and output quality, and solving the problem of low efficiency in traditional cleaning methods.
Smart Images

Figure CN119491303B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the technical field of high-strength composite fiber production, in particular to a spinning and washing device for high-strength composite fiber production and a spinning and washing method thereof. BACKGROUND
[0002] The high-strength composite fiber is a very valuable functional differentiated fiber, and with the development of industrial requirements and technology, the demand for the high-strength composite fiber is increasing in factories. The spinning and washing of the high-strength composite fiber is one of the key procedures in the production of the high-strength composite fiber.
[0003] Traditional fiber washing often relies on manual washing, and cannot wash the high-strength composite fiber on a large scale. The washing efficiency is slow, the washing speed is low, and the industrial production requirements cannot be met. The automatic washing has a high washing speed and a high washing efficiency, and realizes large-scale industrial production.
[0004] The spinning and washing device for high-strength composite fiber production provides important support for the efficient operation of industrial production through intelligent and integrated spinning and washing. Therefore, it is necessary to provide the spinning and washing device for high-strength composite fiber production and the spinning and washing method thereof.
[0005] 1. Patent document CN218049302U discloses a silicon block spinning and drying device, which has the advantages of simple structure, convenient operation, good cleaning effect, fast drying speed, reduced labor and material resources, and improved processing efficiency of silicon blocks. However, the device cannot realize the integration of the working device.
[0006] 2. Patent document CN102989706A discloses a workpiece spinning and washing device, which has the advantages of 360-degree omnidirectional washing of workpieces by using a jet washing method and an ultrasonic washing method, compact structure, effective removal of cutting and stains in dead angles or deep holes, small occupied space, and convenient operation. However, the device cannot realize automatic washing of raw materials.
[0007] 3. Patent document CN105032822B discloses a spinning and washing device, which reduces the occupied space of the spinning and washing device and effectively reduces the production cost of raw materials. However, the device cannot meet the drying requirements of raw materials.
[0008] 4. Patent document CN112726062B discloses an aluminum silicate fiber cleaning and slag removal device and a cleaning method, which has the advantages of simple structure, convenient use, improved fiber cleaning and slag removal effect, cyclic cleaning and filtration, reduced fiber waste and cost. However, the device cannot meet the spinning and washing requirements of raw materials.
[0009] In summary, the aforementioned patents cannot achieve integrated working devices, automated raw material cleaning, and meet the requirements for raw material drying and swirl washing, resulting in problems such as the inability to automatically swirl wash the fiber materials, low cleaning efficiency, and inability to dry the fiber materials, leading to low production efficiency.
[0010] Therefore, this application proposes a rotary washing device and method for producing high-strength composite fibers that can achieve integrated working device, automated raw material cleaning, and meet the requirements for drying and rotary washing of raw materials. Summary of the Invention
[0011] The purpose of this invention is to provide a rotary washing device and method for producing high-strength composite fibers, in order to solve the problems mentioned in the background art, such as the inability to achieve integrated working device, automated cleaning of raw materials, requirements for drying of raw materials, and requirements for rotary washing of raw materials, which lead to the inability to automatically rotary wash fiber materials, low cleaning efficiency of fiber materials, inability to dry fiber materials, and low production efficiency.
[0012] To achieve the above objectives, the present invention provides the following technical solution: a spin washing device for the production of high-strength composite fibers, comprising a shell, a mode switching component, and a spin washing component. A fixed bracket is installed at the bottom of the inner wall of the shell, and a spin washing component is fixed in the center of the fixed bracket. A motor and a mode switching component are connected to the outer side of the bottom of the spin washing component. The mode switching component is used to control the processing mode switching of the composite fibers in the drying component and the spin washing component.
[0013] The mode switching component includes: a dynamic switching linkage, a signal line, and a spring control component;
[0014] A central program processing module is installed at the bottom of the dynamic switching link. The dynamic switching link includes a first lifting and retraction link, a second lifting and retraction link, a third lifting and retraction link, and a fourth lifting and retraction link. A first lifting and retraction component is installed at the bottom of the inner wall of the second lifting and retraction link, a second lifting and retraction component is installed at the bottom of the inner wall of the third lifting and retraction link, and a third lifting and retraction component is installed at the bottom of the inner wall of the fourth lifting and retraction link. A swirl tray is installed at the top of the outer wall of the second lifting and retraction link, and a sealing cover is installed at the top of the outer wall of the first lifting and retraction link. The first lifting and retraction component is connected to the electronic control component via a signal line.
[0015] The spring control assembly includes: a first motor, a fastening block, and a spring;
[0016] A first motor is installed on the inner side of the second lifting and recovery link, and a first rotating shaft is installed on the outer side of the first motor. The end of the first rotating shaft is fixedly connected to the middle end of a spring, and both ends of the spring are connected to a fastening block. The fastening block is fastened into the movable opening at the bottom end of the second lifting and recovery link.
[0017] The dynamic switching linkage is connected to a swirl washing assembly, which is used to swirl wash the high-strength composite fibers. The swirl washing assembly is connected to the central program processing module via a signal line and to the battery via a power line.
[0018] Preferably, the second lifting and recovery assembly is used to adjust the extension and retraction of the second lifting and recovery linkage. The second lifting and recovery assembly is connected to the central program processing module via a signal line and to the battery via a power line.
[0019] The first lifting and recovery assembly includes: a pressure pipe, an air-hydraulic pump, a second motor, and a liquid level sensor;
[0020] A pressure pipe is installed at the center of the inner wall of the second lifting and recovery linkage. A hydraulic plate is connected to the bottom of the outer wall of the pressure pipe. An air hydraulic pump is installed at the top of the outer wall of the hydraulic plate. A second motor is connected to the middle of the outer wall of the air hydraulic pump.
[0021] Preferably, the top of the inner wall of the outer casing is equipped with a water inlet and a water outlet, and the bottom of the outer wall of the outer casing is connected to a base; the vortex washing assembly includes: a water inlet, a feed inlet, a drain trough, and a rubber sealing ring;
[0022] The top of the inner wall of the outer casing is equipped with a water inlet and a feed inlet, and the middle of the inner wall of the outer casing is equipped with a drain groove. The top of the outer wall of the drain groove is equipped with a rubber sealing ring.
[0023] Preferably, the dynamic switching linkage is connected to a drying component, which is used to dry and heat the high-strength composite fibers after spin washing. The drying component is connected to the central program processing module via a signal line and to the battery via a power line.
[0024] The drying components include: a heating module, an air inlet, an air outlet, and a drain tray;
[0025] An air inlet is installed in the middle of the outer wall of the outer casing, an air outlet is installed at the bottom of the outer wall of the outer casing, a drain groove is installed at the bottom of the inner wall of the outer casing, a drain outlet is installed at the bottom of the outer wall of the outer casing, and a heating module is installed at the top of the outer wall of the drain groove.
[0026] Preferably, the dynamic switching linkage is connected to a rotating assembly, which provides power to the swirling washing tray, and the rotating assembly is connected to a battery via a power cable;
[0027] The rotating assembly includes: a motor, a third rotating shaft, and a connecting shaft;
[0028] A motor is installed at the bottom of the inner wall of the outer casing, a third rotating shaft is installed at the top of the outer wall of the motor, a bushing is connected to the bottom of the third rotating shaft, a connecting shaft is installed at the top of the third rotating shaft, and a mode switching component is connected to the top of the connecting shaft.
[0029] Preferably, the heating module is used to control and adjust the heating of the high-strength composite fibers after spin washing; the heating module is connected to the central program processing module via a signal line and to the battery via a power line.
[0030] The heating module includes: a heating motor, a fan, a heating wire, and a temperature sensor;
[0031] A heating motor is installed at the bottom of the inner wall of the heating module, a rotating shaft is installed at the top of the outer wall of the heating motor, a fan is fitted at the top of the outer wall of the rotating shaft, a temperature sensor is installed on the side of the inner wall of the heating module, a heating wire is installed on the side of the inner wall of the heating module, an air outlet slot is opened through the top of the heating module, and air inlets are opened through the sides of the heating module.
[0032] Preferably, a spring control assembly is installed at the bottom of the inner wall of the second lifting and recovery link. The spring control assembly is used to fix the second lifting and recovery link after it is deployed. The spring control assembly is connected to the central program processing module through a signal line and to the battery through a power line.
[0033] Preferably, the central program processing module is connected to the battery via a power cord, and the electronic control component is installed on the outer side of the central program processing module and is connected to the battery via a power cord.
[0034] Preferably, the vortex washing method includes the following steps:
[0035] S1. The central program processing module outputs signals to the dynamic switching link according to the preset program. The dynamic switching link moves to transport the raw materials through the vortex washing tray into the vortex washing assembly.
[0036] S2. The central program processing module controls the rotating component to start and thoroughly wash the raw materials.
[0037] S3. After the cyclone washing ends, the central program processing module controls the dynamic switching linkage to transport the raw materials through the cyclone washing tray to the drying unit.
[0038] S4. The heating module inside the drying component is activated to dry the raw material. After the preset drying time, the material is cooled in the drying component. After cooling, the linkage motion is dynamically switched to send the raw material out of the device.
[0039] Preferably, the spin washing method further includes the following steps:
[0040] S21. The central program processing module controls the opening of the water inlet and feed inlet to ensure that the raw materials are fully mixed.
[0041] S22. The central program processing module controls the rotation speed of the rotating components to ensure that the raw materials are thoroughly washed.
[0042] S41. When the temperature sensor detects that the temperature of the raw material inside the drying device is lower than the set temperature, the central program processing module controls the movement of the dynamic switching linkage.
[0043] Compared with the prior art, the beneficial effects of the present invention are:
[0044] 1. This invention, by installing a mode switching component, enables the free movement of raw materials between the vortex washing component and the drying component, thus solving the problem of side effects caused by the inability to integrate vortex washing and drying, resulting in raw material loss;
[0045] 2. By installing a lifting and recovery component, this invention realizes the automatic control and adjustment function of the mode switching component, solves the problem of automated feeding and discharging, improves the automation level of the vortex washing device, and ensures automated cleaning of raw materials;
[0046] 3. This invention, by installing a drying component, realizes the drying and heating function of raw materials, solves the problem of raw material drying, and improves the automated production efficiency of raw materials;
[0047] 4. This invention, by installing a rotary washing component, realizes the rotary washing function of raw materials, solves the efficiency problem of manual washing, and improves the output quality of raw materials. Attached Figure Description
[0048] Figure 1 This is a front view structural diagram of the present invention;
[0049] Figure 2 This is a schematic diagram of the front part of the present invention;
[0050] Figure 3 This is a schematic diagram of the mode switching component of the present invention;
[0051] Figure 4 This is a schematic diagram of the swirl washing assembly and the drying assembly of the present invention;
[0052] Figure 5 This is a schematic diagram of the rotating component of the present invention;
[0053] Figure 6 This is a schematic diagram of the spring control module of the present invention;
[0054] Figure 7 This is a schematic diagram of the heating module of the present invention;
[0055] Figure 8 This is a schematic diagram of the first lifting and recovery component of the present invention.
[0056] In the diagram: 1. Outer shell; 2. Base; 3. Sealing cover; 4. Dynamic switching linkage; 5. Swirling wash tray; 6. Third motor; 7. Battery; 8. Central program processing module; 9. Electrical control components; 10. Fixed bracket; 11. Bushing; 12. Connecting shaft; 13. Third rotating shaft; 14. First lifting and recovery linkage; 15. Second lifting and recovery linkage; 16. Third lifting and recovery linkage; 17. Fourth lifting and recovery linkage; 18. First lifting and recovery assembly; 19. Second lifting and recovery assembly; 20. Third lifting and recovery assembly; 21. Water outlet; 22. Water inlet; 23. Feed inlet; 24. Rubber sealing ring; 25. Drainage groove; 26. Air inlet; 27. Drain outlet; 28. Drainage groove; 29. Air outlet; 30. Heating module; 31. Spring; 32. Fastening block; 33. First rotating shaft; 34. First motor; 35. Heating wire; 36. Air outlet groove; 37. Air inlet groove; 38. Heating motor; 39. Fan; 40. Fourth rotating shaft; 41. Temperature sensor; 42. Liquid level sensor; 43. Pressure pipe; 44. Second motor; 45. Air hydraulic pump; 46. Hydraulic plate; 47. Spring control assembly. Detailed Implementation
[0057] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0058] In the description of this invention, it should be noted that the terms "upper," "lower," "inner," "outer," "front end," "rear end," "both ends," "one end," and "the other end," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this invention and for simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0059] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installed," "equipped with," "connected," etc., should be interpreted broadly. For example, "connection" 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 a direct connection or an indirect connection through an intermediate medium; it can be a connection within two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances. Example 1
[0060] Please see Figure 1 , Figure 2 , Figure 3 An embodiment of the present invention provides a rotary washing device for the production of high-strength composite fibers, comprising a shell 1, a mode switching component, and a rotary washing component. The top of the inner wall of the shell 1 is equipped with a water inlet 22 and a water outlet 21. The bottom of the outer wall of the shell 1 is connected to a base 2. A fixed bracket 10 is installed at the bottom of the inner wall of the shell 1. The rotary washing component is fixed in the center of the fixed bracket 10. A third motor 6 and a mode switching component are connected to the outer side of the bottom of the rotary washing component. The mode switching component is used to control the processing mode switching of the composite fibers in the drying component and the rotary washing component.
[0061] The mode switching component includes: a dynamic switching linkage 4, a signal line, and a spring control component 47;
[0062] The dynamic switching link 4 is equipped with a central program processing module 8 at its bottom. The dynamic switching link 4 includes a first lifting and recovery link 14, a second lifting and recovery link 15, a third lifting and recovery link 16, and a fourth lifting and recovery link 17. A first lifting and recovery assembly 18 is installed at the bottom of the inner wall of the second lifting and recovery link 15, a second lifting and recovery assembly 19 is installed at the bottom of the inner wall of the third lifting and recovery link 16, and a third lifting and recovery assembly 20 is installed at the bottom of the inner wall of the fourth lifting and recovery link 17. A swirl tray 5 is installed at the top of the outer wall of the second lifting and recovery link 15, and a sealing cover 3 is installed at the top of the outer wall of the first lifting and recovery link 14. The first lifting and recovery assembly 18 is connected to the electronic control assembly 9 via a signal line.
[0063] The dynamic switching link 4 is connected to a swirl washing assembly, which is used to swirl wash high-strength composite fibers. The swirl washing assembly is connected to the central program processing module 8 via a signal line and to the battery 7 via a power line.
[0064] Furthermore, the central program processing module 8 transmits instructions to the second lifting and recovery component 19 according to the program. The first lifting and recovery component 18 then operates, driving the first lifting and recovery connecting rod 14 to rise and move the swirl washing tray 5 to the top of the outer shell 1. The raw material enters the swirl washing component through the swirl washing tray 5. The first lifting and recovery component 18 then operates, driving the first lifting and recovery connecting rod 14 to descend into the second lifting and recovery connecting rod 15. The sealing cover 3 closes, and swirl washing begins. After the swirl washing time is completed, the central program processing module 8 transmits instructions to the second lifting and recovery component 19 according to the program. The second lifting and recovery component 19 then operates, driving the second lifting and recovery connecting rod 15 to descend into the third lifting and recovery connecting rod 16. The sealing cover 3 closes, and drying begins. After the drying time is completed, the central program processing module 8 transmits instructions to the first lifting and recovery component 18 and the second lifting and recovery component 19 according to the program. The first lifting and recovery component 18 and the second lifting and recovery component 19 then operate, driving the first lifting and recovery connecting rod 14 and the second lifting and recovery connecting rod 15 to rise and move the swirl washing tray 5 to the top of the outer shell 1, thus delivering the raw material out of the device. Example 2
[0065] Please see Figure 1 and Figure 8 An embodiment of the present invention provides: a spin washing device for the production of high-strength composite fibers, wherein the second lifting and recovery component 19 is used to adjust the extension and retraction of the second lifting and recovery connecting rod 15, the second lifting and recovery component 19 is connected to the central program processing module 8 via a signal line, and the second lifting and recovery component 19 is connected to the storage battery 7 via a power line;
[0066] The first lifting and recovery assembly 18 includes: a pressure pipe 43, an air-hydraulic pump 45, a second motor 44, and a liquid level sensor 42;
[0067] A pressure pipe 43 is installed at the center of the inner wall of the second lifting and recovery linkage 15. A hydraulic plate 46 is connected to the bottom of the outer wall of the pressure pipe 43. An air hydraulic pump 45 is installed at the top of the outer wall of the hydraulic plate 46. A second motor 44 is connected to the middle of the outer wall of the air hydraulic pump 45.
[0068] Furthermore, when the first lifting and recovery link 14 rises, the central program processing module 8 transmits a lifting command to the first lifting and recovery assembly 18 according to the program. The second motor 44 starts working, and the air-hydraulic pump 45 turns on to draw liquid from the second lifting and recovery link 15 into the pressure pipe 43. The pressure pipe 43 expands and straightens, raising the first lifting and recovery link 14. When the height of the pressure pipe 43 reaches the set height, the liquid level sensor 42 sends a signal, the second motor 44 stops working, the air-hydraulic pump 45 turns off, and the lifting and recovery link maintains a fixed height. When the first lifting and recovery link 14 descends, the central program processing module 8 transmits a descending command to the first lifting and recovery assembly 18 according to the program. The second motor 44 starts working, and the air-hydraulic pump 45 turns on to draw liquid from the pressure pipe 43 into the second lifting and recovery link 15. The pressure pipe 43 contracts, driving the first lifting and recovery link 14 to descend. When the height of the pressure pipe 43 reaches the set height, the liquid level sensor 42 sends a signal, the second motor 44 stops working, and the air-hydraulic pump 45 turns off. Example 3
[0069] Please see Figure 1 , Figure 3 , Figure 5 An embodiment of the present invention provides: a spin washing device for the production of high-strength composite fibers, wherein the dynamic switching link 4 is connected to a spin washing component, the spin washing component is used to spin wash the high-strength composite fibers, the spin washing component is connected to the central program processing module 8 through a signal line, and the spin washing component is connected to the battery 7 through a power line.
[0070] The vortex washing assembly includes: a water inlet 22, a feed inlet 23, a drain trough 25, and a rubber sealing ring 24;
[0071] The inner wall of the outer casing 1 is equipped with a water inlet 22 and a feed inlet 23. A drain groove 25 is installed in the middle of the inner wall of the outer casing 1. A rubber sealing ring 24 is installed on the top of the outer wall of the drain groove 25.
[0072] The dynamic switching linkage 4 is connected to a rotating component, which provides power to the rotating washing tray 5. The rotating component is connected to the battery 7 via a power line.
[0073] The rotating assembly includes: a third motor 6, a third rotating shaft 13, and a connecting shaft 12;
[0074] A third motor 6 is installed at the bottom of the inner wall of the outer casing 1. A third rotating shaft 13 is installed at the top of the outer wall of the third motor 6. A bushing 11 is connected to the bottom of the third rotating shaft 13. A connecting shaft 12 is installed at the top of the third rotating shaft 13. A mode switching component is connected to the top of the connecting shaft 12.
[0075] Furthermore, after the raw materials enter the vortex washing device, the sealing cover 3 is closed, and the central program processing module 8 controls the water inlet 22 and the feed inlet 23 to open and pour in washing liquid to fully soak the raw materials. After a preset soaking time, the central program processing module 8 sends a start command to the third motor 6. The third motor 6 works to drive the third rotating shaft 13 to move. The third rotating shaft 13 drives the connecting shaft 12 to move. The connecting shaft 12 drives the dynamic switching linkage 4 to rotate. The dynamic switching linkage 4 drives the vortex washing tray 5 to start vortex washing. After a preset vortex washing time, the central program processing module 8 sends a stop command to the third motor 6. The third motor 6 stops working, and the sewage flows out of the vortex washing assembly from the drain tank 25. The sealing cover 3 is opened, and the vortex washing ends. Example 4
[0076] Please see Figure 1 and Figure 6 In one embodiment of the present invention, a spring control assembly 47 is installed at the bottom of the inner wall of the second lifting and recovery link 15. The spring control assembly 47 is used to fix the second lifting and recovery link 15 after it is unfolded. The spring control assembly 47 is connected to the central program processing module 8 through a signal line and to the battery 7 through a power line.
[0077] The spring control assembly 47 includes: a first motor 34, a fastening block 32, and a spring 31;
[0078] The first motor 34 is installed on the inner side of the second lifting and recovery link 15, and the first rotating shaft 33 is installed on the outer side of the first motor 34. The end of the first rotating shaft 33 is fixedly connected to the middle end of the spring 31, and both ends of the spring 31 are connected to the fastening block 32. The fastening block 32 is fastened in the movable opening at the bottom end of the second lifting and recovery link 15.
[0079] Furthermore, when the lifting device is raised, the second lifting and recovery link 15 moves to the top of the third lifting and recovery link 16 under the action of the second lifting and recovery assembly 19. The central program processing module 8 sends a working command to the first motor 34, the first motor 34 starts, the first motor 34 drives the first rotating shaft 33 to rotate, the first rotating shaft 33 drives the spring 31 to stretch, the spring 31 drives the fastening block 32 in the movable opening at the bottom of the second lifting and recovery link 15 to move to the movable opening at the top of the third lifting and recovery link 16, and the lifting device is fastened. When the lifting device is lowered, the central program processing module 8 sends a working command to the first motor 34, the first motor 34 starts, the first motor 34 drives the first rotating shaft 33 to rotate, the first rotating shaft 33 drives the spring 31 to contract, the spring 31 drives the fastening block 32 in the movable opening at the top of the third lifting and recovery link 16 to move to the movable opening at the bottom of the second lifting and recovery link 15, and the spring fixing device is released. Example 5
[0080] Please see Figure 1 ,Figure 4 , Figure 7 An embodiment of the present invention provides: a spin washing device for the production of high-strength composite fibers, wherein the dynamic switching link 4 is connected to a drying component, the drying component is used to dry and heat the high-strength composite fibers after spin washing, the drying component is connected to the central program processing module 8 through a signal line, and the drying component is connected to the battery 7 through a power line.
[0081] The drying assembly includes: a heating module 30, an air inlet 26, an air outlet 29, and a drain tray 28;
[0082] An air inlet 26 is installed in the middle of the outer wall of the outer shell 1, an air outlet 29 is installed at the bottom of the outer wall of the outer shell 1, a drain groove 28 is installed at the bottom of the inner wall of the outer shell 1, a drain outlet 27 is installed at the bottom of the outer wall of the outer shell 1, and a heating module 30 is installed at the top of the outer wall of the drain groove 28.
[0083] The heating module 30 is used to control and adjust the heating of the high-strength composite fibers after spin washing; the heating module 30 is connected to the central program processing module 8 via a signal line, and the heating module 30 is connected to the battery 7 via a power line;
[0084] The heating module 30 includes: a heating motor 38, a fan 39, a heating wire 35, and a temperature sensor 41;
[0085] A heating motor 38 is installed at the bottom of the inner wall of the heating module 30. A fourth rotating shaft 40 is installed at the top of the outer wall of the heating motor 38. A fan 39 is fitted at the top of the outer wall of the fourth rotating shaft 40. A temperature sensor 41 is installed on the side of the inner wall of the heating module 30. A heating wire 35 is installed on the side of the inner wall of the heating module 30. An air outlet slot 36 is opened through the top of the heating module 30. An air inlet slot 37 is opened through the two sides of the heating module 30.
[0086] Furthermore, after the raw materials are swirl-washed and enter the drying assembly, the sealing cover 3 is closed, the central program processing module 8 controls the spring control component 47 to lock, the central program processing module 8 sends a heating signal to the heating module 30, the heating motor 38 starts, the heating motor 38 drives the fourth rotating shaft 40 to rotate, the fourth rotating shaft 40 drives the fan 39 to rotate, at this time the heating wire 35 is energized to heat the air inside the drying assembly, the hot air comes into contact with the raw materials through the air outlet slots 36 that are opened through the top of the heating module 30, and the moisture in the raw materials is discharged from the drying assembly through the drain tank 28. After the set drying time, the central program processing module 8 sends a shutdown signal to the heating module 30, the heating wire 35 is de-energized, the fan 39 continues to run to cool down, when the temperature sensor 41 detects that the temperature inside the drying assembly is lower than the set temperature, the fan 39 is turned off, and the drying ends.
[0087] Working principle: When the worker needs to use the vortex washing device, the central program processing module 8 first controls the vortex washing device. The start mode switching component lifts the vortex washing tray 5 for the worker to put the raw materials on. After the raw materials are put in, the central program processing module 8 adjusts the lifting device to enter the vortex washing device. At the same time, the central program processing module 8 sends a start signal to the vortex washing component, the spring control component 47, and the rotation component to vortex wash the raw materials for a predetermined time.
[0088] Then, the central program processing module 8 adjusts the mode switching component to lower the swirling tray 5 to the drying device after the swirling wash ends. At the same time, the central program processing module 8 sends a start signal to the drying component and the spring control component 47 to dry the raw materials.
[0089] Finally, temperature sensor 41 detects that the temperature inside the drying unit is lower than the set temperature, heating module 30 shuts down, and drying ends. Central program processing module 8 sends a signal to activate the mode switching component, which lifts the swirl tray 5 for workers to place raw materials on.
[0090] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. A rotary washing device for producing high-strength composite fibers, characterized in that: It includes a shell (1), a mode switching component and a swirl washing component. A fixed bracket (10) is installed at the bottom of the inner wall of the shell (1). A swirl washing component is fixed in the center of the fixed bracket (10). A third motor (6) and a mode switching component are connected to the outer side of the bottom of the swirl washing component. The mode switching component is used to control the processing mode switching of the composite fiber in the drying component and the swirl washing component. The mode switching component includes: a dynamic switching linkage (4), a signal line and a spring control component (47). The dynamic switching link (4) is equipped with a central program processing module (8) at its bottom. The dynamic switching link (4) includes a first lifting and recovery link (14), a second lifting and recovery link (15), a third lifting and recovery link (16), and a fourth lifting and recovery link (17). The second lifting and recovery link (15) has a first lifting and recovery component (18) installed at the bottom of its inner wall. The third lifting and recovery link (16) has a second lifting and recovery component (19) installed at the bottom of its inner wall. The fourth lifting and recovery link (17) has a third lifting and recovery component (20) installed at the bottom of its inner wall. The second lifting and recovery link (15) has a swirl tray (5) installed at the top of its outer wall. The first lifting and recovery link (14) has a sealing cover (3) installed at the top of its outer wall. The first lifting and recovery component (18) is connected to the electronic control component (9) via a signal line. The spring control assembly (47) includes: a first motor (34), a fastening block (32), and a spring (31); A first motor (34) is installed on the inner side of the second lifting and recovery link (15), and a first rotating shaft (33) is installed on the outer side of the first motor (34). The end of the first rotating shaft (33) is fixedly connected to the middle end of the spring (31), and both ends of the spring (31) are connected to the fastening block (32). The fastening block (32) is fastened in the movable opening at the bottom end of the second lifting and recovery link (15). The dynamic switching link (4) is connected to a swirl washing assembly, which is used to swirl wash high-strength composite fibers. The swirl washing assembly is connected to the central program processing module (8) via a signal line and to the battery (7) via a power line.
2. The rotary washing device for producing high-strength composite fibers according to claim 1, characterized in that: The second lifting and recovery assembly (19) is used to adjust the extension and retraction of the second lifting and recovery linkage (15). The second lifting and recovery assembly (19) is connected to the central program processing module (8) via a signal line and to the battery (7) via a power line. The first lifting and recovery assembly (18) includes: a pressure pipe (43), an air-hydraulic pump (45), a second motor (44), and a liquid level sensor (42). A pressure pipe (43) is installed at the center of the inner wall of the second lifting and recovery linkage (15). The bottom of the outer wall of the pressure pipe (43) is connected to the hydraulic plate (46). An air hydraulic pump (45) is installed at the top of the outer wall of the hydraulic plate (46). A second motor (44) is connected to the middle of the outer wall of the air hydraulic pump (45).
3. The rotary washing device for producing high-strength composite fibers according to claim 2, characterized in that: The top of the inner wall of the outer shell (1) is equipped with a water inlet (22) and a water outlet (21), and the bottom of the outer wall of the outer shell (1) is connected to a base (2); the vortex washing assembly includes: a water inlet (22), a feed inlet (23), a drain trough (25) and a rubber sealing ring (24); The inner wall of the outer shell (1) is equipped with a water inlet (22) and a feed inlet (23). A drainage groove (25) is installed in the middle of the inner wall of the outer shell (1). A rubber sealing ring (24) is installed on the top of the outer wall of the drainage groove (25).
4. The rotary washing device for producing high-strength composite fibers according to claim 3, characterized in that: The dynamic switching link (4) is connected to a drying component. The drying component is used to dry and heat the high-strength composite fiber after spin washing. The drying component is connected to the central program processing module (8) via a signal line and to the battery (7) via a power line. The drying assembly includes: a heating module (30), an air inlet (26), an air outlet (29), and a draining tank (28); An air inlet (26) is installed in the middle of the outer wall of the outer shell (1), an air outlet (29) is installed at the bottom of the outer wall of the outer shell (1), a drain groove (28) is installed at the bottom of the inner wall of the outer shell (1), a drain outlet (27) is installed at the bottom of the outer wall of the outer shell (1), and a heating module (30) is installed at the top of the outer wall of the drain groove (28).
5. The rotary washing device for producing high-strength composite fibers according to claim 4, characterized in that: The dynamic switching link (4) is connected to a rotating component, which provides power to the swirling washing tray (5). The rotating component is connected to the battery (7) via a power line. The rotating assembly includes: a third motor (6), a third rotating shaft (13), and a connecting shaft (12); The bottom of the inner wall of the outer casing (1) is equipped with a third motor (6), the top of the outer wall of the third motor (6) is equipped with a third rotating shaft (13), the bottom of the third rotating shaft (13) is connected to a bushing (11), the top of the third rotating shaft (13) is equipped with a connecting shaft (12), and the top of the connecting shaft (12) is connected to a mode switching component.
6. The rotary washing device for producing high-strength composite fibers according to claim 5, characterized in that: The heating module (30) is used to control and regulate the heating of the high-strength composite fibers after spin washing; the heating module (30) is connected to the central program processing module (8) via a signal line, and the heating module (30) is connected to the battery (7) via a power line. The heating module (30) includes: a heating motor (38), a fan (39), a heating wire (35), and a temperature sensor (41); A heating motor (38) is installed at the bottom of the inner wall of the heating module (30). A fourth rotating shaft (40) is installed at the top of the outer wall of the heating motor (38). A fan (39) is fitted at the top of the outer wall of the fourth rotating shaft (40). A temperature sensor (41) is installed on the side of the inner wall of the heating module (30). A heating wire (35) is installed on the side of the inner wall of the heating module (30). An air outlet slot (36) is opened through the top of the heating module (30). An air inlet slot (37) is opened through the sides of the heating module (30).
7. The rotary washing device for producing high-strength composite fibers according to claim 6, characterized in that: A spring control assembly (47) is installed at the bottom of the inner wall of the second lifting and recovery link (15). The spring control assembly (47) is used to fix the second lifting and recovery link (15) after it is unfolded. The spring control assembly (47) is connected to the central program processing module (8) through a signal line. The spring control assembly (47) is connected to the battery (7) through a power line.
8. The rotary washing device for producing high-strength composite fibers according to claim 7, characterized in that: The central program processing module (8) is connected to the battery (7) via a power cord. The electronic control component (9) is installed on the outer side of the central program processing module (8) and is connected to the battery (7) via a power cord.
9. A swirl washing method for a swirl washing apparatus used in the production of high-strength composite fibers, applicable to the swirl washing apparatus for the production of high-strength composite fibers as described in claim 8, characterized in that: The spin washing method includes the following steps: S1. The central program processing module (8) outputs a signal to the dynamic switching link (4) according to the preset program. The dynamic switching link (4) moves and transports the raw material to the vortex washing assembly through the vortex washing tray (5). S2, The central program processing module (8) controls the rotating component to start and thoroughly wash the raw materials; S3. After the swirling wash is completed, the central program processing module (8) controls the movement of the dynamic switching linkage (4) to transport the raw materials through the swirling wash tray (5) into the drying assembly. S4. The heating module (30) in the drying component is started to dry the raw material. After the drying time is preset, the raw material is cooled in the drying component. After the cooling is completed, the dynamic switching link (4) moves to send the raw material out of the device.
10. The spin washing method of the spin washing device for producing high-strength composite fibers according to claim 9, characterized in that: The spin washing method further includes the following steps: S21, The central program processing module (8) controls the opening of the water inlet (22) and the feed inlet (23) to ensure that the raw materials are fully mixed; S22, The central program processing module (8) controls the rotation speed of the rotating component to ensure that the raw materials are fully spun and washed; S41, the temperature sensor (41) detects that the temperature of the raw material in the drying device is lower than the set temperature, and the central program processing module (8) controls the movement of the dynamic switching linkage (4).
Citation Information
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