Efficient intelligent baking-down device for warp beam and using method of efficient intelligent baking-down device
By designing a high-efficiency intelligent drying device with locking components, temperature control components, static elimination modules, and replacement components, the problems of difficult-to-clean filters, unadjustable temperature, poor static elimination effect, and difficult-to-replace winding drums in existing devices have been solved, thereby improving textile production efficiency and reducing labor costs.
Patent Information
- Application Number
- CN202510862970.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-25
- Publication Date
- 2025-10-21
AI Technical Summary
Existing drying and turning devices have problems such as the inability to quickly pull out and clean the filter screen, which increases manual labor; the inability to automatically adjust the temperature; the inability to eliminate static electricity on the material surface; and the inability to quickly unload the winding drum, which affect the efficiency and cost of textile production.
A highly efficient and intelligent drying and turning device was designed, which includes a clamping component, a temperature control component, an electrostatic elimination module, and a replacement component. The device uses an electric motor to drive the filter to be pulled out quickly, a temperature sensor and a processing module to automatically adjust the temperature, a pneumatic head to eliminate electrostatics, and an electric motor to drive the winding drum to be unloaded quickly.
The filter can be quickly pulled out to reduce manual labor, the temperature can be automatically adjusted to improve the drying effect, the static elimination effect can be improved, and the winding drum can be quickly removed for easy replacement, which improves textile production efficiency and reduces labor costs.
Smart Images

Figure CN120818931A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of textile technology, and in particular to a high-efficiency intelligent drying device for a warp beam and a method for using the device. Background Art
[0002] The warp yarn can be dyed and produced in a warp beam manner. There are usually many quality problems in the warp beam dyeing production process, such as improper use of the frequency conversion power of the dyeing machine resulting in warp beam explosion, mixed yarns found after dyeing, or incomplete color dyeing found after dyeing, etc., all of which require warp beam inversion processing. The existing inversion processing requires first installing the dyeing beam rack on the warp beam, and then vacuuming and squeezing the water, and then unloading the dyeing beam rack, installing a special drying beam rack for high-temperature and high-pressure drying, and finally unloading the special drying beam rack for inversion processing. If the beam is not dried, it needs to be re-dried to meet the moisture content requirement of the subsequent inversion. The operation process has many steps and requires multiple loading and unloading of the warp beam, which is inefficient and has high labor costs. In addition, the high-temperature and high-pressure dryer has a long drying time and high energy consumption, which affects the planned turnaround time. Therefore, a drying and inversion integrated device is needed to achieve a high degree of integration of drying and inversion, and quickly and conveniently dry the warp beam to meet the needs of modern textile continuous production. However, the filter screen of the existing drying and inversion device cannot be quickly pulled out for cleaning, which increases manual labor.
[0003] The defects of the existing baking device are:
[0004] 1. Patent document CN112414027A discloses a textile drying device, "comprising a plurality of textile fabrics 1 and 2 placed in a box, wherein a plurality of heat-conducting plates are fixedly mounted in the box via a support plate, a heating plate is fixedly mounted in the support plate, and the lower portion of each heat-conducting plate is fixedly connected to the heating plate, and textile fabric 1 is hung between two adjacent heat-conducting plates, a heat-conducting box is fixedly mounted in the box via a partition, and two placement plates are fixedly mounted on the partition, and textile fabric 2 is placed on the two placement plates, and two air ducts and a one-way downward liquid pipe are connected in the heat-conducting box via a straight plate, and the two air ducts are arranged inversely with each other. Advantages of this device include: being able to heat the textiles, and using the hot air generated by the heated textiles to preheat the undried textiles, and using the cold air in the box to quickly dissipate heat from the dried textiles, resulting in high heat dissipation efficiency." However, the filter screen of existing drying devices cannot be quickly pulled out for cleaning, increasing manual labor;
[0005] 2. Patent document CN107062852A discloses a drum-type textile drying device, "including an inlet, a conveyor belt, a dryer, an air compressor, a temperature sensor, an outlet, a motor, a controller, and a base. The inlet is provided on the left side of the dryer, and the dryer and the inlet are an integrated structure. The conveyor belt is provided inside the dryer, and the air compressor is provided on the dryer. The dryer and the air compressor are clearance-fitted. The outlet is provided on the right side of the dryer, and the dryer and the outlet are an integrated structure. The motor is provided inside the dryer, and a base is provided at the bottom of the dryer. The dryer and the base are welded. The dryer is provided on the dryer, and the dryer and the controller cooperate. The present invention is provided with a temperature sensor to check the temperature inside the dryer. The temperature sensor is then used to adjust the temperature of the textile during drying, thereby improving the quality of the textile and preventing it from drying out due to poor quality." However, existing drying devices cannot automatically adjust the temperature, which reduces the drying effect.
[0006] 3. Patent document CN111876931A discloses a textile machine weaving equipment that can automatically and quickly dye threads. "It includes a thread dyeing machine, wherein an inverted T-shaped thread feeding cavity is provided in the middle position of the upper side of the thread dyeing machine, and thread drum cavities with upward openings on the left and right sides of the thread feeding cavity are symmetrically provided. A dyeing device is provided on the lower side of the thread feeding cavity. The present invention realizes rapid dyeing and drying of the textile threads of the textile machine. The textile threads are first dyed and regulated by the dyeing device, and then the dyed textile threads are dried so that they can be dyed and woven at the same time, thereby reducing the waiting time for dyeing and the operation process of the textile process, so that dyeing and weaving can be achieved in one step, reducing labor input, saving time and optimizing the textile process. At the same time, the device can also wax the dyed textile threads to prevent weaving from abrading the textile threads and damaging the dyeing effect." However, when the existing drying device is working, static electricity cannot be eliminated on the surface of the material, which reduces the replacement of the contact head and reduces the static electricity elimination effect.
[0007] 4. Patent document CN117468192A discloses a textile fabric processing equipment and processing technology, "the textile fabric is rolled and dyed and conveyed on the dyeing roller, and the dyed textile fabric is conveyed to the stripping roller for stripping treatment. The two opposite stripping rollers drive the push rod to move toward each other through the spring inside the support rod, so that the two stripping rollers squeeze each other, and squeeze the excess dye and water on the textile fabric into the collecting water tank below. The dye water collected in the collecting water tank can be directly turned over and poured into the printing and dyeing box for use by turning the external handle, or the entire collecting water tank can be pulled out of the printing and dyeing box through the connecting shaft, and the dye water in the collecting water tank is recovered for reuse; the stripped textile fabric is conveyed to the drying box for drying and conveyed to the fabric outlet by the second guide roller for discharge." However, the winding drum of the existing drying device cannot be quickly removed, which is inconvenient for material replacement. Summary of the Invention
[0008] The purpose of the present invention is to provide a high-efficiency intelligent drying device for a warp beam and a method of using the same, so as to solve the technical problem in the above-mentioned background technology that the filter screen of the existing drying device cannot be quickly pulled out and cleaned, which increases manual labor.
[0009] To achieve the above-mentioned object, the present invention provides the following technical solution: a high-efficiency intelligent drying device for a warp beam, comprising a shell, a No. 1 door, a No. 2 door, an air outlet, a heating strip, a fan, a filter screen, and a fixing assembly, wherein the No. 1 door is installed on the outer wall of the shell, the No. 2 door is installed on the outer wall of the shell, an air outlet is opened on the top of the shell, a heating strip is installed on the inner wall of the shell, a fan is installed on the inner wall of the shell, a filter screen is installed through the inner wall of the shell, a support block is installed on the inner wall of the shell, a fixing assembly is installed on the outer wall of the support block, and a temperature control assembly is installed on the inner wall of the shell;
[0010] The fixing assembly includes a No. 1 block, a No. 1 motor, a No. 1 spring, a collecting wheel, a No. 1 pull rope, a No. 1 T-shaped rod, and a No. 1 clamp. The No. 1 block is located on the outer wall of the support block, and the No. 1 rod is installed on the inner wall of the No. 1 block. The No. 1 motor is located on the outer wall of the No. 1 rod, the No. 1 spring is located on the inner wall of the No. 1 block, the collecting wheel is located at the output end of the No. 1 motor, the No. 1 pull rope is located on the outer wall of the collecting wheel, and a No. 1 cylinder is installed through the outer wall of the No. 1 block, and the No. 1 T-shaped rod penetrates the inner wall of the No. 1 cylinder, the No. 1 clamp is located at one end of the No. 1 T-shaped rod, a No. 1 groove is provided on the outer wall of the filter screen, and one end of the No. 1 spring is connected to the outer wall of the No. 1 T-shaped rod, the No. 1 pull rope is connected to the outer wall of the No. 1 T-shaped rod, the outer wall of the No. 1 rod is installed with a No. 1 slide, and the outer wall of the No. 1 T-shaped rod is connected to the outer wall of the No. 1 slide.
[0011] Preferably, the No. 1 clamping head is clamped into the No. 1 groove, the No. 1 slide cylinder is moved by the support of the No. 1 rod, and the No. 1 T-shaped rod is moved by the No. 1 cylinder.
[0012] Preferably, the temperature control component includes a temperature sensor and a processing module. The temperature sensor is located on the inner wall of the outer shell, and the processing module is located on the inner wall of door No. 1. The processing module is electrically connected to the temperature sensor, and the processing module is electrically connected to the heating strip. The temperature sensor is used to detect real-time temperature data inside the outer shell, and the processing module has appropriate temperature data built into the outer shell, and the appropriate temperature data is 55~75℃.
[0013] Preferably, the real-time temperature data in the shell is transmitted to the processing module, and the real-time temperature data in the shell is compared with the appropriate temperature data in the shell through the processing module. When the real-time temperature data in the shell is within the appropriate temperature data in the shell, it is set to a suitable temperature state; when the real-time temperature data in the shell is greater than the appropriate temperature data in the shell, it is set to an over-high temperature state; when the real-time temperature data in the shell is less than the appropriate temperature data in the shell, it is set to a too-low temperature state.
[0014] Preferably, an electrostatic elimination module is installed on the inner wall of the shell, a replacement component is installed on the inner wall of the shell, and a transmission cylinder is installed on the inner wall of the shell.
[0015] Preferably, the static elimination module includes a No. 2 box, a No. 1 electric moving rod, a grounding wire, a contact head, and a No. 2 clamp head. The No. 2 box is located on the inner wall of the shell, the No. 1 electric moving rod is located on the inner wall of the No. 2 box, the output end of the No. 1 electric moving rod is installed with a connecting plate, the outer wall of the connecting plate is installed with a connecting box, the inner wall of the connecting box is installed with a No. 5 block, the outer wall of the No. 5 block is provided with a No. 2 slot, the inner wall of the No. 5 block is installed with a pneumatic head, the outer wall of the No. 5 block is provided with a No. 2 port, the inner wall of the No. 2 port is penetrated by the No. 2 rod, and the output of the pneumatic head The end is connected to the outer wall of rod No. 2, the outer wall of rod No. 2 is installed with spring No. 2, and one end of spring No. 2 is connected to the outer wall of block No. 5, the inner wall of connecting box is installed with rod No. 3, the outer wall of rod No. 3 is installed with tube No. 3, the outer wall of tube No. 3 is installed with clamp No. 2, and the clamp No. 2 is connected to the outer wall of rod No. 2, the inner wall of connecting box is installed with contact head, and one end of contact head extends into slot No. 2, the outer wall of contact head is provided with slot No. 5, the grounding wire is located on the outer wall of connecting plate, and one end of grounding wire is connected to the inner wall of box No. 2.
[0016] Preferably, one end of the No. 2 clamp extends into the No. 5 slot, the No. 3 tube moves through the support of the No. 3 rod, and the No. 2 rod moves through the No. 2 opening.
[0017] Preferably, the replacement component includes a No. 5 motor, a No. 1 connector, a No. 2 connector, a winding drum, an L-shaped rod, a No. 6 drum, and a No. 6 motor. The No. 5 motor passes through the outer wall of the outer shell, the No. 1 connector is located at the output end of the No. 5 motor, the outer wall of the outer shell is installed with a No. 7 box, the No. 6 drum passes through the outer wall of the outer shell, the L-shaped rod passes through the inner wall of the No. 6 drum, the No. 2 connector is installed with the No. 2 connector through a swivel, the winding drum is located on the outer wall of the No. 1 connector, and the outer wall of the winding drum is provided with a No. 8 opening, the No. 6 motor is located on the inner wall of the No. 7 box, a threaded rod is installed at the output end of the No. 6 motor, a threaded sleeve is installed on the outer wall of the threaded rod, and a No. 9 opening is installed on the top of the No. 7 box. One end of the L-shaped rod passes through the inner wall of the No. 9 opening, and the outer wall of the L-shaped rod is connected to the outer wall of the threaded sleeve.
[0018] Preferably, the No. 1 connector and the No. 2 connector are both inserted into the No. 8 port, and the L-shaped rod is moved through the No. 9 port and the No. 6 barrel.
[0019] Preferably, the method for using the baking device comprises the following steps:
[0020] Step S1: The No. 1 motor rotates to drive the collection wheel to rotate, the collection wheel rotates to drive the No. 1 pull rope to move, the No. 1 pull rope moves to drive the No. 1 T-shaped rod to move, the No. 1 T-shaped rod moves to drive the No. 1 slide, the No. 1 slide moves to drive the No. 1 T-shaped rod to move the No. 1 spring, the No. 1 spring moves to drive the No. 1 T-shaped rod to move the No. 1 clamp, the No. 1 clamp moves to move out of the No. 1 slot, at which time the filter is pulled out, thereby realizing the function of quickly pulling out and cleaning the filter of the drying device and reducing manual labor;
[0021] Step S2: When the processing module detects that the temperature is too high, the processing module controls the heating strip to reduce power. After the heating strip reduces power, the temperature sensor continuously detects real-time temperature data in the housing until the processing module detects that the temperature is too low or that the temperature is appropriate. When the processing module detects that the temperature is too low, the processing module controls the heating strip to increase power. After the heating strip increases power, the temperature sensor continuously detects real-time temperature data in the housing until the processing module detects that the temperature is too high or that the temperature is appropriate. When the processing module detects that the temperature is appropriate, the processing module controls the heating strip to maintain power. After the heating strip maintains power, the temperature sensor continuously detects real-time temperature data in the housing until the processing module detects that the temperature is too high or that the temperature is too low, thereby realizing the function of automatically adjusting the temperature of the drying device to improve the drying effect.
[0022] Step S3: The pneumatic head is started to drive the No. 2 rod to move, the movement of the No. 2 rod drives the No. 2 spring to move, the movement of the No. 2 spring causes the No. 2 rod to drive the No. 2 clamp to move, the movement of the No. 2 clamp drives the No. 3 cylinder to move, the movement of the No. 3 cylinder causes the No. 2 clamp to move out of the No. 5 slot, at this time, the contact head is pulled out to be replaced, after the replacement, the No. 1 electric moving rod moves to drive the connecting plate to move, the movement of the connecting plate drives the connecting box to move, the movement of the connecting box drives the contact head to move, when the contact head moves, it contacts the radial yarn surface to eliminate static electricity, thereby achieving the function of quickly replacing the contact head to improve the static elimination effect when the drying device is working.
[0023] Step S4, the rotation of motor No. 5 drives the rotation of connector No. 1, the rotation of connector No. 1 drives the rotation of winding drum, the rotation of winding drum drives the rotation of connector No. 2, the rotation of connector No. 2 drives the swivel to rotate to wind the radial yarn, the rotation of motor No. 6 drives the rotation of threaded rod, the rotation of threaded rod drives the movement of threaded sleeve, the movement of threaded sleeve drives the movement of L-shaped rod, the movement of L-shaped rod drives the movement of connector No. 2, the movement of connector No. 2 makes it move out of the No. 8 mouth, at this time the winding drum is quickly removed, realizing the function of quickly removing the winding drum of the drying device to facilitate the replacement of radial yarn.
[0024] Compared with the prior art, the present invention has the following beneficial effects:
[0025] 1. The present invention is equipped with a No. 1 motor that rotates to drive the collection wheel, which drives the No. 1 pull rope to move, which drives the No. 1 T-shaped rod to move, which drives the No. 1 slide to move, which drives the No. 1 T-shaped rod to move, which drives the No. 1 spring to move, which drives the No. 1 T-shaped rod to move, which moves the No. 1 clamp to move out of the No. 1 slot, and at this time, pulls the filter to pull it out, thereby realizing the function of quickly pulling out and cleaning the filter of the drying device and reducing manual labor;
[0026] 2. The present invention is equipped with a processing module that controls the heating strip to reduce power when it detects that the temperature is too high. After the heating strip reduces power, the temperature sensor continuously detects real-time temperature data in the housing until the processing module detects that the temperature is too low or that the temperature is appropriate. When the processing module detects that the temperature is too low, the processing module controls the heating strip to increase power. After the heating strip increases power, the temperature sensor continuously detects real-time temperature data in the housing until the processing module detects that the temperature is too high or that the temperature is appropriate. When the processing module detects that the temperature is appropriate, the processing module controls the heating strip to maintain power. After the heating strip maintains power, the temperature sensor continuously detects real-time temperature data in the housing until the processing module detects that the temperature is too high or that the temperature is too low, thereby realizing the function of automatically adjusting the temperature of the drying device to improve the drying effect.
[0027] 3. The present invention is equipped with a pneumatic head to start the movement of the No. 2 rod, which drives the No. 2 spring to move. The No. 2 spring moves the No. 2 rod to drive the No. 2 clamp to move. The No. 2 clamp moves to drive the No. 3 cylinder to move. The No. 3 cylinder moves to move the No. 2 clamp out of the No. 5 slot. At this time, the contact head is pulled out to be replaced. After the replacement, the No. 1 electric moving rod moves to drive the connecting plate to move. The connecting plate moves to drive the connecting box to move. The connecting box moves to drive the contact head to move. When the contact head moves, it contacts the radial yarn surface to eliminate static electricity. This realizes the function of eliminating static electricity on the radial yarn surface when the drying device is working, and quickly replacing the contact head to improve the static elimination effect.
[0028] 4. The present invention is installed with a No. 5 motor to rotate and drive the No. 1 connector to rotate, the No. 1 connector rotates and drives the winding drum to rotate, the winding drum rotates and drives the No. 2 connector to rotate, the No. 2 connector rotates and drives the swivel to rotate to wind the radial yarn, the No. 6 motor rotates and drives the threaded rod to rotate, the threaded rod rotates and drives the threaded sleeve to move, the threaded sleeve moves and drives the L-shaped rod to move, the L-shaped rod moves and drives the No. 2 connector to move, the No. 2 connector moves to move out of the No. 8 mouth, at which time the winding drum is quickly removed, thereby realizing the function of quickly removing the winding drum of the drying device to facilitate the replacement of the radial yarn. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 It is a front view structural schematic diagram of the present invention;
[0030] Figure 2 It is a front structural schematic diagram of the present invention;
[0031] Figure 3 This is a schematic structural diagram of a No. 1 clamp head of the present invention;
[0032] Figure 4 For the present invention Figure 2 Schematic diagram of the A structure;
[0033] Figure 5 This is a schematic diagram of the drying temperature control process of the present invention;
[0034] Figure 6 Schematic diagram of the contact head structure of the present invention;
[0035] Figure 7 This is a schematic structural diagram of the No. 2 clamp of the present invention;
[0036] Figure 8 It is a schematic diagram of the winding drum structure of the present invention;
[0037] Figure 9 Schematic diagram of the L-shaped rod structure of the present invention.
[0038] In the figure: 1. Housing; 2. Door No. 1; 3. Door No. 2; 4. Air outlet; 5. Fan; 6. Heating strip; 7. Filter; 8. Slot No. 1; 9. Support block; 10. Block No. 1; 11. Cylinder No. 1; 12. T-bar No. 1; 13. Clamp No. 1; 14. Rod No. 1; 15. Slide No. 1; 16. Spring No. 1; 17. Motor No. 1; 18. Collecting wheel; 19. Pull rope No. 1; 20. Electric moving rod No. 1; 21. Grounding wire; 22. Box No. 2; 23. Connecting plate; 24. Connecting box; 25. Contact Head; 26. Block No. 5; 28. Pneumatic head; 29. Rod No. 2; 30. Spring No. 2; 31. Mouth No. 2; 32. Rod No. 3; 33. Chuck No. 2; 34. Cylinder No. 3; 35. Slot No. 5; 36. Motor No. 5; 37. Connector No. 1; 38. Winding drum; 39. Mouth No. 8; 40. Connector No. 2; 41. Box No. 7; 42. Motor No. 6; 43. Threaded rod; 44. Threaded sleeve; 45. L-shaped rod; 46. Mouth No. 9; 48. Cylinder No. 6; 49. Temperature sensor; 50. Transmission cylinder. DETAILED DESCRIPTION
[0039] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0040] In the description of the present invention, it should be noted that the terms "upper," "lower," "inner," "outer," "front end," "rear end," "both ends," "one end," "the other end," and the like, indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely to facilitate and simplify the description of the present invention. They are not intended to indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation, and therefore should not be construed as limiting the present invention. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0041] In the description of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "installed," "provided with," "connected," etc., should be understood in a broad sense. For example, "connected" may refer to a fixed connection, a detachable connection, or an integral connection; it may refer to a mechanical connection or an electrical connection; it may refer to a direct connection or an indirect connection through an intermediate medium; it may refer to internal communication between two components. Those skilled in the art will understand this in light of the specific circumstances.
[0042] Example 1: Please refer to Figure 1 、 Figure 2 and Figure 3 , the present invention provides an embodiment: a high-efficiency intelligent drying device for warp beams, comprising a shell 1, a No. 1 door 2, a No. 2 door 3, an air outlet 4, a heating strip 6, a fan 5, a filter 7 and a fixing component, the outer wall of the shell 1 is equipped with the No. 1 door 2, the outer wall of the shell 1 is equipped with the No. 2 door 3, the top of the shell 1 is provided with an air outlet 4, the inner wall of the shell 1 is equipped with a heating strip 6, the inner wall of the shell 1 is equipped with a fan 5, the inner wall of the shell 1 is penetrated by a filter 7, the inner wall of the shell 1 is equipped with a support block 9, the outer wall of the support block 9 is equipped with a fixing component, the inner wall of the shell 1 is equipped with a temperature control component, the inner wall of the shell 1 is equipped with a static elimination module, and the inner wall of the shell 1 is equipped with a replacement Components, the inner wall of the shell 1 is equipped with a transmission cylinder 50, the radial yarn is transmitted through the winding drum 38 and the transmission cylinder 50, the fan 5 rotates to suck air through the air outlet 4 to blow the wind to the heating strip 6, the wind is heated by the heating strip 6, and the heated air is blown to the radial yarn to dry it, meeting the needs of modern textile continuous production, the clamping component includes No. 1 block 10, No. 1 motor 17, No. 1 spring 16, collecting wheel 18, No. 1 pull rope 19, No. 1 T-shaped rod 12, No. 1 clamp 13, No. 1 block 10 is located on the outer wall of the support block 9, No. 1 block 10 is equipped with No. 1 rod 14 on the inner wall, No. 1 motor 17 is located on the outer wall of No. 1 rod 14, No. 1 spring 16 is located on the outer wall of No. 1 The inner wall of the No. 1 block 10, the collecting wheel 18 is located at the output end of the No. 1 motor 17, the No. 1 pull rope 19 is located on the outer wall of the collecting wheel 18, the outer wall of the No. 1 block 10 is penetrated by a No. 1 cylinder 11, the No. 1 T-shaped rod 12 is penetrated by the inner wall of the No. 1 cylinder 11, the No. 1 clamp 13 is located at one end of the No. 1 T-shaped rod 12, the outer wall of the filter 7 is provided with a No. 1 groove 8, and one end of the No. 1 spring 16 is connected to the outer wall of the No. 1 T-shaped rod 12, the No. 1 pull rope 19 is connected to the outer wall of the No. 1 T-shaped rod 12, the outer wall of the No. 1 rod 14 is installed with a No. 1 slide 15, and the outer wall of the No. 1 T-shaped rod 12 is connected to the outer wall of the No. 1 slide 15, the No. 1 clamp 13 is stuck in the No. 1 groove 8, the No. 1 slide 15 The No. 1 rod 14 supports the movement, and the No. 1 T-shaped rod 12 moves through the No. 1 cylinder 11. The No. 1 motor 17 rotates to drive the collecting wheel 18 to rotate. The collecting wheel 18 rotates to drive the No. 1 pull rope 19 to move. The No. 1 pull rope 19 moves to drive the No. 1 T-shaped rod 12 to move. The No. 1 T-shaped rod 12 moves to drive the No. 1 slide 15 to move. The No. 1 slide 15 moves to make the No. 1 T-shaped rod 12 drive the No. 1 spring 16 to move. The No. 1 spring 16 moves to make the No. 1 T-shaped rod 12 drive the No. 1 clamp 13 to move. The No. 1 clamp 13 moves to move out of the No. 1 slot 8. At this time, the filter screen 7 is pulled out, thereby realizing the function of quickly pulling out the filter screen 7 of the drying device for cleaning and reducing manual labor.
[0043] Example 2: Please refer to Figure 2 、 Figure 4 and Figure 5, an embodiment provided by the present invention: a temperature control component includes a temperature sensor 49 and a processing module, the temperature sensor 49 is located on the inner wall of the shell 1, the processing module is located on the inner wall of the first door 2, and the processing module is electrically connected to the temperature sensor 49, and the processing module is electrically connected to the heating strip 6, the temperature sensor 49 is used to detect the real-time temperature data in the shell 1, the processing module has built-in suitable temperature data in the shell 1, the suitable temperature data is 55~75℃, the real-time temperature data in the shell 1 is transmitted to the processing module, the real-time temperature data in the shell 1 is compared with the suitable temperature data in the shell 1 through the processing module, the real-time temperature data in the shell 1 is set to the suitable temperature state when the real-time temperature data in the shell 1 is within the suitable temperature data in the shell 1, the real-time temperature data in the shell 1 is greater than the suitable temperature data in the shell 1, the temperature is set to be too high, and the real-time temperature data in the shell 1 is less than the suitable temperature data in the shell 1 When the temperature data is set to a too low state, when the processing module detects that the temperature is too high, the processing module controls the heating strip 6 to reduce the power. After the heating strip 6 reduces the power, the temperature sensor 49 continues to detect the real-time temperature data in the shell 1 until the processing module detects that the temperature is too low or the temperature is suitable. When the processing module detects that the temperature is too low, the processing module controls the heating strip 6 to increase the power. After the heating strip 6 increases the power, the temperature sensor 49 continues to detect the real-time temperature data in the shell 1 until the processing module detects that the temperature is too high or the temperature is suitable. When the processing module detects that the temperature is suitable, the processing module controls the heating strip 6 to maintain the power. After the heating strip 6 maintains the power, the temperature sensor 49 continues to detect the real-time temperature data in the shell 1 until the processing module detects that the temperature is too high or the temperature is too low, thereby realizing the function of automatically adjusting the temperature of the drying device to improve the drying effect.
[0044] Example 3: Please refer to Figure 2 、 Figure 6 and Figure 7The present invention provides an embodiment: the static elimination module includes a No. 2 box 22, a No. 1 electric moving rod 20, a grounding wire 21, a contact head 25, and a No. 2 clamp head 33. The No. 2 box 22 is located on the inner wall of the housing 1, the No. 1 electric moving rod 20 is located on the inner wall of the No. 2 box 22, the output end of the No. 1 electric moving rod 20 is installed with a connecting plate 23, the outer wall of the connecting plate 23 is installed with a connecting box 24, the inner wall of the connecting box 24 is installed with a No. 5 block 26, the outer wall of the No. 5 block 26 is provided with a No. 2 groove, the inner wall of the No. 5 block 26 is installed with a pneumatic head 28, the No. 5 block 26 The outer wall of the connecting box 24 is provided with a No. 2 port 31, and the inner wall of the No. 2 port 31 is penetrated by a No. 2 rod 29, the output end of the pneumatic head 28 is connected to the outer wall of the No. 2 rod 29, the outer wall of the No. 2 rod 29 is installed with a No. 2 spring 30, and one end of the No. 2 spring 30 is connected to the outer wall of the No. 5 block 26, the inner wall of the connecting box 24 is installed with a No. 3 rod 32, the outer wall of the No. 3 rod 32 is installed with a No. 3 cylinder 34, the outer wall of the No. 3 cylinder 34 is installed with a No. 2 clamp 33, and the No. 2 clamp 33 is connected to the outer wall of the No. 2 rod 29, the inner wall of the connecting box 24 is penetrated by a contact head 25, and the connecting One end of the contact 25 extends into the No. 2 slot, and a No. 5 slot 35 is opened on the outer wall of the contact head 25. The grounding wire 21 is located on the outer wall of the connecting plate 23, and one end of the grounding wire 21 is connected to the inner wall of the No. 2 box 22, and one end of the No. 2 clamp 33 extends into the No. 5 slot 35. The No. 3 cylinder 34 moves through the support of the No. 3 rod 32, and the No. 2 rod 29 moves through the No. 2 port 31. The pneumatic head 28 starts to drive the No. 2 rod 29 to move, and the No. 2 rod 29 moves to drive the No. 2 spring 30 to move, and the No. 2 spring 30 moves to make the No. 2 rod 29 drive the No. 2 clamp 33 Move, the No. 2 clamp 33 moves to drive the No. 3 cylinder 34 to move, the No. 3 cylinder 34 moves to make the No. 2 clamp 33 move out of the No. 5 slot 35, at this time pull the contact head 25 to move it out for replacement, after replacement, the No. 1 electric moving rod 20 moves to drive the connecting plate 23 to move, the connecting plate 23 moves to drive the connecting box 24 to move, the connecting box 24 moves to drive the contact head 25 to move, when the contact head 25 moves, it contacts with the surface of the radial yarn to eliminate static electricity, realizing the static elimination of the radial yarn surface when the drying device is working and the quick replacement of the contact head 25 to improve the static elimination effect.
[0045] Example 4: Please refer to Figure 2 、 Figure 8 and Figure 9, an embodiment provided by the present invention: a replacement component includes a No. 5 motor 36, a No. 1 connector 37, a No. 2 connector 40, a winding drum 38, an L-shaped rod 45, a No. 6 drum 48, and a No. 6 motor 42, the No. 5 motor 36 passes through the outer wall of the shell 1, the No. 1 connector 37 is located at the output end of the No. 5 motor 36, the outer wall of the shell 1 is installed with a No. 7 box 41, the No. 6 drum 48 passes through the outer wall of the shell 1, the L-shaped rod 45 passes through the inner wall of the No. 6 drum 48, the No. 2 connector 40 is installed with the No. 2 connector 40 through a swivel, the winding drum 38 is located on the outer wall of the No. 1 connector 37, the outer wall of the winding drum 38 is provided with a No. 8 opening 39, the No. 6 motor 42 is located on the inner wall of the No. 7 box 41, the output end of the No. 6 motor 42 is installed with a threaded rod 43, the outer wall of the threaded rod 43 is installed with a threaded sleeve 44, the top of the No. 7 box 41 is installed with a No. 9 opening 46, one end of the L-shaped rod 45 passes through The inner wall of the No. 9 opening 46 is passed through, and the outer wall of the L-shaped rod 45 is connected to the outer wall of the threaded sleeve 44. The No. 1 connector 37 and the No. 2 connector 40 are both stuck in the No. 8 opening 39. The L-shaped rod 45 moves through the No. 9 opening 46 and the No. 6 drum 48. The No. 5 motor 36 rotates to drive the No. 1 connector 37 to rotate, the No. 1 connector 37 rotates to drive the winding drum 38 to rotate, the winding drum 38 rotates to drive the No. 2 connector 40 to rotate, the No. 2 connector 40 rotates to drive the swivel to rotate to wind the radial yarn, the No. 6 motor 42 rotates to drive the threaded rod 43 to rotate, the threaded rod 43 rotates to drive the threaded sleeve 44 to move, the threaded sleeve 44 moves to drive the L-shaped rod 45 to move, the L-shaped rod 45 moves to drive the No. 2 connector 40 to move, the No. 2 connector 40 moves to move out of the No. 8 opening 39, and the winding drum 38 is quickly removed at this time, realizing the function of quickly removing the winding drum 38 of the drying device to facilitate the replacement of the radial yarn.
[0046] The method for using the baking device comprises the following steps:
[0047] Step S1: The No. 1 motor 17 rotates to drive the collecting wheel 18 to rotate, the collecting wheel 18 rotates to drive the No. 1 pull rope 19 to move, the No. 1 pull rope 19 moves to drive the No. 1 T-shaped rod 12 to move, the No. 1 T-shaped rod 12 moves to drive the No. 1 slide 15 to move, the No. 1 slide 15 moves to cause the No. 1 T-shaped rod 12 to drive the No. 1 spring 16 to move, the No. 1 spring 16 moves to cause the No. 1 T-shaped rod 12 to drive the No. 1 clamp 13 to move, the No. 1 clamp 13 moves to move out of the No. 1 slot 8, at which time the filter screen 7 is pulled out, thereby realizing the function of quickly pulling out and cleaning the filter screen 7 of the drying device and reducing manual labor;
[0048] Step S2: When the processing module detects that the temperature is too high, the processing module controls the heating strip 6 to reduce the power. After the heating strip 6 reduces the power, the temperature sensor 49 continuously detects the real-time temperature data in the shell 1 until the processing module detects that the temperature is too low or the temperature is appropriate. When the processing module detects that the temperature is too low, the processing module controls the heating strip 6 to increase the power. After the heating strip 6 increases the power, the temperature sensor 49 continuously detects the real-time temperature data in the shell 1 until the processing module detects that the temperature is too high or the temperature is appropriate. When the processing module detects that the temperature is appropriate, the processing module controls the heating strip 6 to maintain the power. After the heating strip 6 maintains the power, the temperature sensor 49 continuously detects the real-time temperature data in the shell 1 until the processing module detects that the temperature is too high or the temperature is too low, thereby realizing the function of automatically adjusting the temperature of the drying device to improve the drying effect.
[0049] Step S3, the pneumatic head 28 is started to drive the No. 2 rod 29 to move, the movement of the No. 2 rod 29 drives the No. 2 spring 30 to move, the movement of the No. 2 spring 30 causes the No. 2 rod 29 to drive the No. 2 clamp 33 to move, the movement of the No. 2 clamp 33 drives the No. 3 cylinder 34 to move, the movement of the No. 3 cylinder 34 causes the No. 2 clamp 33 to move out of the No. 5 slot 35, at this time, the contact head 25 is pulled out to be replaced, after the replacement, the No. 1 electric moving rod 20 moves to drive the connecting plate 23 to move, the movement of the connecting plate 23 drives the connecting box 24 to move, the movement of the connecting box 24 drives the contact head 25 to move, when the contact head 25 moves, it contacts with the radial yarn surface to eliminate static electricity, realizing the function of quickly replacing the contact head 25 to improve the static electricity elimination effect when the drying device is working;
[0050] Step S4, the No. 5 motor 36 rotates to drive the No. 1 connector 37 to rotate, the No. 1 connector 37 rotates to drive the winding drum 38 to rotate, the winding drum 38 rotates to drive the No. 2 connector 40 to rotate, the No. 2 connector 40 rotates to drive the swivel to rotate to wind the radial yarn, the No. 6 motor 42 rotates to drive the threaded rod 43 to rotate, the threaded rod 43 rotates to drive the threaded sleeve 44 to move, the threaded sleeve 44 moves to drive the L-shaped rod 45 to move, the L-shaped rod 45 moves to drive the No. 2 connector 40 to move, the No. 2 connector 40 moves to move it out of the No. 8 mouth 39, and the winding drum 38 is quickly removed at this time, realizing the function of quickly removing the winding drum 38 of the drying device to facilitate the replacement of the radial yarn.
[0051] Working principle: the rotation of No. 1 motor 17 drives the collection wheel 18 to rotate, the rotation of the collection wheel 18 drives the No. 1 pull rope 19 to move, the movement of No. 1 pull rope 19 drives the No. 1 T-shaped rod 12 to move, the movement of No. 1 T-shaped rod 12 drives the No. 1 slide 15 to move, the movement of No. 1 slide 15 causes the No. 1 T-shaped rod 12 to drive the No. 1 spring 16 to move, the No. 1 spring 16 moves to cause the No. 1 T-shaped rod 12 to drive the No. 1 clamp 13 to move, the No. 1 clamp 13 moves to move it out of the No. 1 slot 8, at this time, pull the filter 7 to pull it out, realizing the function of quickly pulling out the filter 7 of the drying device for cleaning and reducing manual labor. When the processing module detects that the temperature is too high, the processing module controls the heating strip 6 to reduce the power. After the heating strip 6 reduces the power The temperature sensor 49 continuously detects the real-time temperature data in the shell 1 until the processing module detects that the temperature is too low or the temperature is appropriate. When the processing module detects that the temperature is too low, the processing module controls the heating strip 6 to increase the power. After the heating strip 6 increases the power, the temperature sensor 49 continuously detects the real-time temperature data in the shell 1 until the processing module detects that the temperature is too high or the temperature is appropriate. When the processing module detects that the temperature is appropriate, the processing module controls the heating strip 6 to maintain the power. After the heating strip 6 maintains the power, the temperature sensor 49 continuously detects the real-time temperature data in the shell 1 until the processing module detects that the temperature is too high or the temperature is too low, thereby realizing the automatic adjustment and improvement of the temperature of the drying device. The function of high drying effect, the pneumatic head 28 starts to drive the No. 2 rod 29 to move, the No. 2 rod 29 moves to drive the No. 2 spring 30 to move, the No. 2 spring 30 moves to make the No. 2 rod 29 drive the No. 2 clamp 33 to move, the No. 2 clamp 33 moves to drive the No. 3 cylinder 34 to move, the No. 3 cylinder 34 moves to make the No. 2 clamp 33 move out of the No. 5 slot 35, at this time pull the contact head 25 to move it out for replacement, after replacement, the No. 1 electric moving rod 20 moves to drive the connecting plate 23 to move, the connecting plate 23 moves to drive the connecting box 24 to move, the connecting box 24 moves to drive the contact head 25 to move, when the contact head 25 moves, it contacts the radial yarn surface to eliminate static electricity, realizing the rapid replacement of the radial yarn surface static electricity elimination when the drying device is working. The contact head 25 is replaced to improve the static elimination effect. The No. 5 motor 36 rotates to drive the No. 1 connector 37 to rotate. The No. 1 connector 37 rotates to drive the winding drum 38 to rotate. The winding drum 38 rotates to drive the No. 2 connector 40 to rotate. The No. 2 connector 40 rotates to drive the swivel to rotate to reel in the radial yarn. The No. 6 motor 42 rotates to drive the threaded rod 43 to rotate. The threaded rod 43 rotates to drive the threaded sleeve 44 to move. The threaded sleeve 44 moves to drive the L-shaped rod 45 to move. The L-shaped rod 45 moves to drive the No. 2 connector 40 to move. The No. 2 connector 40 moves to move it out of the No. 8 mouth 39. At this time, the winding drum 38 is quickly removed, realizing the function of quickly removing the winding drum 38 of the drying device to facilitate the replacement of the radial yarn.
[0052] 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 embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.
Claims
1. A high-efficiency intelligent drying device for warp beams, comprising a housing (1), a first door (2), a second door (3), an air outlet (4), a heating strip (6), a fan (5), a filter (7) and a fixing assembly, characterized in that: The outer wall of the shell (1) is provided with a door No. 1 (2), the outer wall of the shell (1) is provided with a door No. 2 (3), the top of the shell (1) is provided with an air outlet (4), the inner wall of the shell (1) is provided with a heating strip (6), the inner wall of the shell (1) is provided with a fan (5), the inner wall of the shell (1) is provided with a filter (7) passing through the inner wall of the shell (1), the inner wall of the shell (1) is provided with a support block (9), the outer wall of the support block (9) is provided with a fixing assembly, and the inner wall of the shell (1) is provided with a temperature control assembly; The clamping assembly comprises a No. 1 block (10), a No. 1 motor (17), a No. 1 spring (16), a collecting wheel (18), a No. 1 pull rope (19), a No. 1 T-shaped rod (12), and a No. 1 clamp (13), wherein the No. 1 block (10) is located on the outer wall of the supporting block (9), the No. 1 rod (14) is installed on the inner wall of the No. 1 block (10), the No. 1 motor (17) is located on the outer wall of the No. 1 rod (14), the No. 1 spring (16) is located on the inner wall of the No. 1 block (10), the collecting wheel (18) is located at the output end of the No. 1 motor (17), and the No. 1 pull rope (19) is located at the inner wall of the collecting wheel (18). The outer wall of the No. 1 block (10) is penetrated by a No. 1 cylinder (11), a No. 1 T-shaped rod (12) is penetrated by the inner wall of the No. 1 cylinder (11), a No. 1 clamp (13) is located at one end of the No. 1 T-shaped rod (12), a No. 1 groove (8) is provided on the outer wall of the filter (7), and one end of the No. 1 spring (16) is connected to the outer wall of the No. 1 T-shaped rod (12), a No. 1 pull rope (19) is connected to the outer wall of the No. 1 T-shaped rod (12), a No. 1 slide (15) is installed on the outer wall of the No. 1 rod (14), and the outer wall of the No. 1 T-shaped rod (12) is connected to the outer wall of the No. 1 slide (15).
2. The high-efficiency intelligent drying device for warp beams according to claim 1, characterized in that: The No. 1 clamping head (13) is clamped into the No. 1 slot (8), the No. 1 slide cylinder (15) is moved by the support of the No. 1 rod (14), and the No. 1 T-shaped rod (12) is moved by the No. 1 cylinder (11).
3. The high-efficiency intelligent drying device for warp beams according to claim 1, characterized in that: The temperature control component includes a temperature sensor (49) and a processing module. The temperature sensor (49) is located on the inner wall of the shell (1). The processing module is located on the inner wall of the first door (2). The processing module is electrically connected to the temperature sensor (49). The processing module is electrically connected to the heating strip (6). The temperature sensor (49) is used to detect real-time temperature data in the shell (1). The processing module is built-in with appropriate temperature data in the shell (1). The appropriate temperature data is 55~75°C.
4. The high-efficiency intelligent drying device for warp beams according to claim 1, characterized in that: The real-time temperature data in the housing (1) is transmitted to the processing module, and the real-time temperature data in the housing (1) is compared with the appropriate temperature data in the housing (1) by the processing module. When the real-time temperature data in the housing (1) is within the appropriate temperature data in the housing (1), it is set to a suitable temperature state; when the real-time temperature data in the housing (1) is greater than the appropriate temperature data in the housing (1), it is set to an over-temperature state; when the real-time temperature data in the housing (1) is less than the appropriate temperature data in the housing (1), it is set to a too-low temperature state.
5. The high-efficiency intelligent drying device for warp beams according to claim 1, characterized in that: An electrostatic elimination module is installed on the inner wall of the housing (1), a replacement component is installed on the inner wall of the housing (1), and a transmission cylinder (50) is installed on the inner wall of the housing (1).
6. The high-efficiency intelligent drying device for warp beams according to claim 5, characterized in that: The static elimination module includes a No. 2 box (22), a No. 1 electric moving rod (20), a grounding wire (21), a contact head (25), and a No. 2 clamping head (33). The No. 2 box (22) is located on the inner wall of the housing (1), the No. 1 electric moving rod (20) is located on the inner wall of the No. 2 box (22), the output end of the No. 1 electric moving rod (20) is installed with a connecting plate (23), the outer wall of the connecting plate (23) is installed with a connecting box (24), the inner wall of the connecting box (24) is installed with a No. 5 block (26), the outer wall of the No. 5 block (26) is provided with a No. 2 groove, the inner wall of the No. 5 block (26) is installed with a pneumatic head (28), the outer wall of the No. 5 block (26) is provided with a No. 2 port (31), the inner wall of the No. 2 port (31) is penetrated by the No. 2 rod (29), the output of the pneumatic head (28) is provided with a No. 2 slot. The end is connected to the outer wall of the No. 2 rod (29), the outer wall of the No. 2 rod (29) is installed with a No. 2 spring (30), and one end of the No. 2 spring (30) is connected to the outer wall of the No. 5 block (26), the inner wall of the connecting box (24) is installed with a No. 3 rod (32), the outer wall of the No. 3 rod (32) is installed with a No. 3 cylinder (34), the outer wall of the No. 3 cylinder (34) is installed with a No. 2 clamp (33), and the No. 2 clamp (33) is connected to the outer wall of the No. 2 rod (29), the inner wall of the connecting box (24) is penetrated by a contact head (25), and one end of the contact head (25) extends into the No. 2 slot, and the outer wall of the contact head (25) is provided with a No. 5 slot (35), the grounding wire (21) is located on the outer wall of the connecting plate (23), and one end of the grounding wire (21) is connected to the inner wall of the No. 2 box (22).
7. The high-efficiency intelligent drying device for warp beams according to claim 6, characterized in that: One end of the No. 2 clamp (33) extends into the No. 5 slot (35), the No. 3 cylinder (34) moves through the support of the No. 3 rod (32), and the No. 2 rod (29) moves through the No. 2 opening (31).
8. The high-efficiency intelligent drying device for warp beams according to claim 5, characterized in that: The replacement assembly includes a No. 5 motor (36), a No. 1 connector (37), a No. 2 connector (40), a winding drum (38), an L-shaped rod (45), a No. 6 drum (48), and a No. 6 motor (42). The No. 5 motor (36) passes through the outer wall of the housing (1). The No. 1 connector (37) is located at the output end of the No. 5 motor (36). The outer wall of the housing (1) is equipped with a No. 7 box (41). The No. 6 drum (48) passes through the outer wall of the housing (1). The L-shaped rod (45) passes through the inner wall of the No. 6 drum (48). The No. 2 connector (40) is connected to the No. 6 drum (48) through a rotating ring. A No. 2 connector (40) is installed, a winding drum (38) is located on the outer wall of the No. 1 connector (37), an No. 8 opening (39) is opened on the outer wall of the winding drum (38), a No. 6 motor (42) is located on the inner wall of the No. 7 box (41), a threaded rod (43) is installed on the output end of the No. 6 motor (42), a threaded sleeve (44) is installed on the outer wall of the threaded rod (43), a No. 9 opening (46) is installed on the top of the No. 7 box (41), one end of the L-shaped rod (45) passes through the inner wall of the No. 9 opening (46), and the outer wall of the L-shaped rod (45) is connected to the outer wall of the threaded sleeve (44).
9. The high-efficiency intelligent drying device for warp beams according to claim 8, characterized in that: The No. 1 connector (37) and the No. 2 connector (40) are both inserted into the No. 8 port (39), and the L-shaped rod (45) moves through the No. 9 port (46) and the No. 6 barrel (48).
10. A method for using a high-efficiency intelligent drying-down device for a warp beam, applicable to the high-efficiency intelligent drying-down device for a warp beam according to any one of claims 1 to 9, characterized in that: The method for using the baking device comprises the following steps: Step S1, the collecting wheel (18) rotates to drive the No. 1 pull rope (19) to move, the No. 1 pull rope (19) moves to drive the No. 1 T-shaped rod (12), the No. 1 T-shaped rod (12) moves to drive the No. 1 slide (15), the No. 1 slide (15) moves to make the No. 1 T-shaped rod (12) drive the No. 1 spring (16) to move, the No. 1 spring (16) moves to make the No. 1 T-shaped rod (12) drive the No. 1 clamp (13) to move, the No. 1 clamp (13) moves to move out of the No. 1 slot (8), at this time, the filter screen (7) is pulled out; Step S2: When the processing module detects that the temperature is too low, the processing module controls the heating strip (6) to increase the power. After the heating strip (6) increases the power, the temperature sensor (49) continuously detects the real-time temperature data in the housing (1) until the processing module detects that the temperature is too high or the temperature is suitable. When the processing module detects that the temperature is suitable, the processing module controls the heating strip (6) to maintain the power. After the heating strip (6) maintains the power, the temperature sensor (49) continuously detects the real-time temperature data in the housing (1) until the processing module detects that the temperature is too high or the temperature is too low. Step S3, the No. 2 clamp (33) moves to drive the No. 3 cylinder (34) to move, and the No. 3 cylinder (34) moves to make the No. 2 clamp (33) move out of the No. 5 slot (35). At this time, the contact head (25) is pulled out to be replaced. After the replacement, the No. 1 electric moving rod (20) moves to drive the connecting plate (23) to move, and the connecting plate (23) moves to drive the connecting box (24) to move, and the connecting box (24) moves to drive the contact head (25) to move. When the contact head (25) moves, it contacts the surface of the radial yarn to eliminate static electricity. Step S4, the winding drum (38) rotates to drive the No. 2 connector (40) to rotate, the No. 2 connector (40) rotates to drive the rotating ring to rotate to wind the radial yarn, the No. 6 motor (42) rotates to drive the threaded rod (43) to rotate, the threaded rod (43) rotates to drive the threaded sleeve (44) to move, the threaded sleeve (44) moves to drive the L-shaped rod (45) to move, the L-shaped rod (45) moves to drive the No. 2 connector (40) to move, the No. 2 connector (40) moves to move out of the No. 8 opening (39), and the winding drum (38) is quickly removed at this time.
Citation Information
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