Drying device for black-out cloth production and using method

By introducing a flexible rotating structure into the shade cloth drying device, combined with hot air drying and rotary extrusion, the problem of low drying efficiency of thick cloth is solved, and a more efficient drying effect is achieved.

CN120760433APending Publication Date: 2025-10-10SOYANG TECH TEXTILE (ZHE JIANG) CO LTD
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Patent Information

Application Number
CN202510981059.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-16
Publication Date
2025-10-10

AI Technical Summary

Technical Problem

Existing shade cloth drying devices have poor drying effects on thicker cloths, and the drying efficiency is low when using only hot air.

Method used

A drying device consisting of a rotating roller, a guide roller, an inner core and a flexible extrusion structure is designed. While hot air drying is performed, the flexible rotating structure is used to rotate and extrude the fabric to improve the drying efficiency.

Benefits of technology

The rotary extrusion of the flexible rotating structure significantly improves the drying effect of thick fabrics and shortens the drying time.

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Abstract

The invention relates to the technical field of blackout cloth drying devices, and discloses a drying device for blackout cloth production and a using method.The drying device comprises a shell, convex shafts at the two ends of a rotating roller are rotationally installed at the center of the inner wall of the shell in a penetrating mode, and an output shaft of a driving motor is coaxially and fixedly connected to the convex shaft on one side of the rotating roller; the driving motor is fixedly connected to the outer wall of the shell, guide rollers which are symmetrically distributed are arranged on the two sides of the rotating roller, and the two ends of each guide roller are rotationally installed on the inner wall of the shell. And the inner core cylinder is arranged right below the rotating roller in parallel. According to the drying device for black-out cloth production and the using method, the flexible rotating structure capable of being deformed and extruded in a large area is arranged, in the running process of the device, cloth is dried through hot air, and the cloth can be rotationally extruded through the flexible rotating structure, so that drainage of water is accelerated, and the drying effect of the device on thick cloth is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of shade cloth drying devices, and in particular to a drying device for producing shade cloth and a use method thereof. Background Art

[0002] Blackout cloth is a kind of cloth used to block strong light and ultraviolet rays. It is usually made of thicker fabrics. The main production materials are polyester, acrylic, chemical fiber, etc. During the production process of blackout cloth, the surface of the cloth needs to be dried by a drying device. However, the existing blackout cloth drying device still has some problems: For example, a cloth drying device with publication number CN108036619B includes a drying box, wherein first rollers are provided on both left and right sides of the bottom of the drying box, a cloth inlet is provided at the bottom of the left side wall of the drying box, a second roller is provided inside the drying box and located at the axis of the two first rollers, and a drying device is provided on the inner bottom surface of the drying box and corresponding to the second rollers; Publication number CN107178981B discloses a dust-removing cloth drying device comprising a bracket, a box fixed to the top of the bracket, a feed support fixed to the outer wall of the box, a feed drive shaft roller provided on the feed support, a drive shaft roller and a tensioning roller provided within the box, a partition provided at the bottom of the box, a support protrusion provided on the top surface of the partition, and a heating block fixed to the top surface of the partition; During use of the above device, the surface of the cloth is dried only by hot air, and the drying effect of the device is poor for thicker cloth.

[0003] In view of the above problems, it is urgent to carry out innovative design based on the original shade cloth drying device. Summary of the Invention

[0004] The purpose of the present invention is to provide a drying device and method for use in the production of blackout cloth, so as to solve the problem that the existing blackout cloth drying device proposed in the above background technology only dries the surface of the cloth by hot air, and the device has poor drying effect on thicker cloth.

[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solution: a drying device for producing shade cloth and a method for using the same, comprising: The outer shell has a convex shaft at both ends of the rotating roller installed and rotatably penetrated at the center of the inner wall thereof, the convex shaft on one side of the rotating roller is coaxially fixedly connected to the output shaft of the driving motor, and the driving motor is fixedly connected to the outer wall of the outer shell, and symmetrically distributed guide rollers are provided on both sides of the rotating roller, and the two ends of the guide rollers are rotatably mounted on the inner wall of the outer shell; Also includes: The inner core barrel is arranged parallel to and just below the rotating roller, and the two ends of the inner core barrel are rotatably fitted in the slide groove on the inner wall of the outer shell, and the two ends of the inner core barrel are rotatably provided with symmetrically distributed limiting mechanisms, and the limiting mechanism includes a guide plate, and the guide plate is embedded in the slide groove on the inner wall of the outer shell to form a sliding limiting structure, and the corresponding end portions of the inner core barrel are rotatably penetrated on the two guide plates, and the corresponding outer ring and inner special-shaped disk are fixedly connected to the side wall of the guide plate, and a suction plug is slidably fitted in the middle of the inner wall of the inner core barrel, and the end of one side of the suction plug The end of a transmission rod is coaxially fixedly connected to the surface, and the transmission rod slides through the end setting of the inner core tube, the convex block at the end of the inner core tube fits in the slide groove on the transmission rod, the end of the suction plug away from the transmission rod is coaxially fitted in the groove at the center of the movable disk, and the side wall of the movable disk is fit on the inner wall of the inner core tube, a coaxially arranged discharge pipe is fixedly installed on the movable disk, and the discharge pipe coaxially slides through the inner core tube, and the transmission rod and the discharge pipe are fit through and arranged in the slide groove of the side wall of the outer shell; The bearing sleeve is coaxially sleeved on the outside of the inner core tube, and a deformation mechanism with equal angle distribution is fixedly connected between the inner wall of the bearing sleeve and the outer wall of the inner core tube. The deformation mechanism includes an outer connecting tube, the end of the outer connecting tube is fixedly connected to the middle of the side wall of the inner core tube, and the outer connecting tube is distributed at equal angles around the inner core tube, and the end of the outer connecting tube away from the inner core tube is slid through and installed on the bottom of the skeleton shell, the side of the skeleton shell away from the outer connecting tube is fixed through and installed on the inner side of the bearing sleeve, and the skeleton shell and the bearing sleeve are between the two outer rings, the outer coaxial fixed sleeve of the bearing sleeve is provided with an extrusion ring, and the extrusion ring is provided with through holes with equal angle distribution, and the end of the skeleton shell is fixedly connected to the inner wall of the extrusion ring, and the extrusion ring and the bearing sleeve are composed of soft rubber material.

[0006] Preferably, the side wall of the rotating roller is provided with jet holes distributed at equal angles, and the jet holes are connected to the air flow cavity at the axis of the rotating roller, and the air flow cavity port of the rotating roller is rotatably fitted with a pipe mouth of a hot air pipe, and the hot air pipe is coaxially fixed and installed on the support cover, and the end of the support cover is fixedly connected to the outer wall of the shell on the side away from the drive motor, so that the hot air in the hot air pipe can flow out through the jet holes.

[0007] Preferably, the axis of the guide plate is arranged to intersect perpendicularly with the axis of the outer ring, and the side walls of the two guide plates are respectively fixedly connected with a force-bearing rod and a storage cylinder, the end of the rotating roller away from the driving motor is coaxially fixed and installed on the rotating disk, and the rotating disk is rotatably fitted on the inner wall of the support cover, and an annular wave groove is provided on the side of the rotating disk close to the outer shell, and the end of the force-bearing rod is fitted in the wave groove of the rotating disk, and the rod body of the force-bearing rod is slidably installed in the vertical groove opened on the outer wall of the outer shell, so that the force-bearing rod can move in the slide groove on the outer shell.

[0008] Preferably, the inner special-shaped disk is coaxially arranged on the inner side of the outer ring, and the top of the inner special-shaped disk is recessed toward the side of the rotating roller, and the axis of the inner special-shaped disk rotates through the end of the inner core tube, so that the inner core tube can rotate on the inner special-shaped disk.

[0009] Preferably, the axis of the outer connecting tube is arranged to intersect perpendicularly with the axis of the inner core tube, and a fixing plate is fixedly connected to the side wall of the port of the outer connecting tube, and the side wall of the fixing plate is slidingly fitted on the inner wall of the skeleton shell, and pressure springs distributed at equal intervals are fixedly connected between the surface of the fixing plate and the top of the inner wall of the skeleton shell, one end of the inner connecting tube is fixedly connected to the through hole at the top of the skeleton shell, and the other end of the inner connecting tube is fitted and inserted on the inner side of the outer connecting tube, so that the skeleton shell can drive the inner connecting tube to move.

[0010] Preferably, the through-opening at the top of the skeleton shell is located between the bearing sleeve and the extrusion ring, and corresponding moving rods are fixedly connected to both sides of the bottom of the skeleton shell, and the side wall of the moving rod away from the skeleton shell is fitted on the inner wall of the outer ring, so that the skeleton shell can drive the moving rod to move.

[0011] Preferably, the end of the transmission rod away from the inner core cylinder is fitted and inserted on the transmission cylinder, and the protrusion at the end of one side of the transmission cylinder is fitted and embedded in the slide groove on the transmission rod to form a transmission structure, and the end on the other side of the transmission cylinder is fixedly connected to the output shaft of the servo motor, the servo motor is coaxially fixed and installed through the end of the loading cylinder, and a ring-shaped guide groove is provided on the inner wall of the loading cylinder away from the servo motor, and the side wall of the convex column is fitted in the guide groove, the end of the convex column is fixedly connected to the side wall of the limit plate, and the axis of the limit plate is perpendicular to the axis of the convex column, the outer wall of the limit plate is coaxially fitted on the inner wall of the loading cylinder, and the rod body of the transmission rod is fixedly installed at the axis of the limit plate, the top of the side wall of the loading cylinder is fixedly connected to a guide frame, and the rectangular rod body at the top of the guide frame is slidably installed on the side wall of the support cover, so that the servo motor can drive the transmission rod to rotate.

[0012] Preferably, trigger rods distributed at equal angles are fixedly connected to the edge of the disk surface of the movable disk, and the trigger rods are in an "L"-shaped structure. The trigger rods are slidably installed on the inner side of the inner core tube, and the convex plate at the end of the trigger rod is arranged toward the transmission rod. The disk surface of the movable disk is arranged on the side of the port of the external connecting tube, so that the trigger rod can drive the movable disk to move.

[0013] Preferably, one end of the drain pipe is fitted on the end surface of the suction plug, and the other end of the drain pipe is rotatably connected to a one-way valve pipe. Two annular positioning grooves are provided on the outer wall of the drain pipe close to the one-way valve pipe, and a storage cylinder is provided below the positioning groove. The bottom of the inner wall of the storage cylinder and the bottom of the damping tooth are elastically connected by a spring, and the damping tooth is fitted and inserted on the top of the storage cylinder, and the teeth of the damping tooth are fitted and inserted inside the positioning groove to form a damping limit structure, so that the damping tooth can generate a damping force on the movement of the drain pipe.

[0014] The method of using the drying device is as follows: S1: The fabric passes through the top of the two guide rollers and the bottom of the rotating roller in sequence. The external winding device will drive the fabric to move. At the same time, the pipeline of the external hot air device is connected to the hot air pipe. At the same time, the drive motor and servo motor are started. The drive motor will drive the rotating roller to rotate, and the external hot air will enter the rotating roller through the hot air pipe. At the same time, the hot air in the rotating roller will be ejected through the jet holes to dry the fabric. S2: The rotating roller will drive the rotating disk to rotate synchronously, and the annular wave groove on the rotating disk will drive the force-bearing rod to move back and forth synchronously. The force-bearing rod will drive the corresponding guide plate and the inner core cylinder synchronously. At the same time, the inner core cylinder drives the loading cylinder to move synchronously through the transmission rod and the limit plate. The guide frame on the top of the loading cylinder will move synchronously on the support cover. At this time, the top of the bearing sleeve and the extrusion ring presses against the fabric on the rotating roller, causing the bearing sleeve and the extrusion ring to produce elastic deformation to increase the extrusion force and extrusion area on the fabric, thereby accelerating the drying of the fabric. In this process, the deformed bearing sleeve will drive the corresponding skeleton shell to move, and the skeleton shell will further compress the pressure spring. At the same time, the moving rod will enter the concave structure on the top of the inner special-shaped disk. In this process, the holes on the extrusion ring can accelerate the outflow of water when the fabric is under pressure. S3: At the same time, the servo motor will drive the transmission rod to rotate synchronously through the transmission cylinder, and the transmission rod will drive the limit plate to rotate synchronously. Since the convex column on the limit plate fits in the guide groove on the loading cylinder, and the loading cylinder is limited by the guide frame, the limit plate will reciprocate along the axial direction at this time, and the limit plate will drive the suction plug to move synchronously through the transmission rod. At this time, the suction plug will move in the inner core cylinder and the suction plug will move away from the moving disk. At this time, a suction negative pressure will be generated in the inner core cylinder, so that some water remaining inside the extrusion ring and the bearing sleeve can enter the inner core cylinder through the outer connecting pipe and the inner connecting pipe. At the same time, the extrusion ring and the bearing sleeve can automatically discharge some water by rotation; S4: When the suction plug drives the convex plate at the end of the trigger rod to move, the trigger rod will drive the movable disk to move synchronously, and the movable disk will drive the discharge pipe to move synchronously, so that the discharge pipe can overcome the damping force of the damping tooth. At this time, when the damping tooth re-enters another positioning groove on the discharge pipe, the movable disk can block the end of the outer connecting pipe. After that, when the suction plug moves in the reverse direction, the suction plug can send a small amount of water remaining in the inner core tube into the discharge pipe, and the water in the discharge pipe is discharged through the one-way valve pipe. When the end of the suction plug contacts the movable disk again, the suction plug will push the movable disk to move, so that the movable disk drives the discharge pipe to overcome the damping force of the damping tooth and reset.

[0015] Compared with the prior art, the present invention has the following advantages: the drying device and method for producing shade cloth are provided with a flexible rotating structure capable of deforming and extruding a large area. During operation, in addition to drying the cloth with hot air, the flexible rotating structure can also rotate and extrude the cloth, thereby accelerating the discharge of water and improving the drying effect of the device on thick cloth. The specific contents are as follows: 1. The outer coaxial fixing sleeve of the bearing sleeve is provided with an extrusion ring, which is provided with through holes distributed at equal angles. The end of the skeleton shell is fixedly connected to the inner wall of the extrusion ring. The extrusion ring and the bearing sleeve are made of soft rubber material. A deformation mechanism distributed at equal angles is fixedly connected between the inner wall of the bearing sleeve and the outer wall of the inner core tube. The deformation mechanism includes an outer connecting tube. The end of the outer connecting tube is fixedly connected to the middle part of the side wall of the inner core tube. The outer connecting tubes are distributed at equal angles around the inner core tube. The end of the outer connecting tube away from the inner core tube is slidably installed on the bottom of the skeleton shell, and the side of the skeleton shell away from the outer connecting tube is fixedly installed on the inner side of the bearing sleeve. When the extrusion ring and the bearing sleeve are squeezed on the fabric to generate deformation, the extrusion ring can exert pressure on the surface of the fabric. At the same time, the squeezed water will be discharged through the holes on the extrusion ring, and the skeleton shell will drive the inner connecting tube to move in the outer connecting tube. 2. The skeleton shell and the bearing sleeve are located between the two outer rings, and the axis of the guide plate is arranged to intersect perpendicularly with the axis of the outer ring. The side walls of the two guide plates are respectively fixedly connected with a force rod and a storage cylinder. The end of the rotating roller away from the driving motor is coaxially fixed and installed on the rotating disk. An annular wave groove is provided on the side of the rotating disk close to the outer shell. The end of the force rod is fitted in the wave groove of the rotating disk. The rod body of the force rod is slidably installed in the vertical groove provided on the outer wall of the outer shell. When the rotating roller rotates, the rotating roller will drive the force rod to reciprocate through the rotating disk, and the force rod will drive the guide plate to move synchronously. The guide plate will drive the inner special-shaped disk and the outer ring to move, and the inner special-shaped disk drives the inner core cylinder to move. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 This is a schematic diagram of the overall external structure of the present invention; Figure 2This is a schematic diagram of the installation structure of the rotating roller of the present invention; Figure 3 This is a schematic diagram of the installation structure of the rotating disk of the present invention; Figure 4 This is a schematic diagram of the guide plate installation structure of the present invention; Figure 5 This is a schematic diagram of the loading cylinder installation structure of the present invention; Figure 6 This is a schematic diagram of the installation structure of the limit plate of the present invention; Figure 7 This is a schematic diagram of the installation structure of the inner special-shaped disk of the present invention; Figure 8 This is a schematic diagram of the installation structure of the mobile rod of the present invention; Figure 9 This is a schematic diagram of the internal connecting pipe installation structure of the present invention; Figure 10 This is a schematic diagram of the installation structure of the suction plug of the present invention.

[0017] In the figure: 1. outer shell; 2. rotating roller; 3. driving motor; 4. hot air pipe; 5. supporting cover; 6. jet hole; 7. rotating disk; 8. limiting mechanism; 801. guide plate; 802. outer ring; 803. inner special-shaped disk; 9. force-bearing rod; 10. inner core tube; 11. deformation mechanism; 1101. outer connecting pipe; 1102. inner connecting pipe; 1103. skeleton shell; 1104. pressure spring; 1105. moving rod; 1106. Fixed plate; 12. Loading sleeve; 13. Extrusion ring; 14. Transmission rod; 15. Suction plug; 16. Moving plate; 17. Trigger rod; 18. Drain pipe; 19. Positioning groove; 20. Damping tooth; 21. Storage cylinder; 22. One-way valve tube; 23. Limiting plate; 24. Boss; 25. Loading cylinder; 26. Guide groove; 27. Transmission cylinder; 28. Servo motor; 29. ​​Guide frame; 30. Guide roller. DETAILED DESCRIPTION

[0018] 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.

[0019] See also Figures 1-10 The present invention provides a technical solution: a drying device for producing shade cloth and a method for using the drying device, comprising: The outer shell 1 has a convex shaft at both ends of a rotating roller 2 that is rotatably installed at the center of its inner wall. The convex shaft on one side of the rotating roller 2 is coaxially fixedly connected to the output shaft of the drive motor 3, and the drive motor 3 is fixedly connected to the outer wall of the outer shell 1. In addition, symmetrically distributed guide rollers 30 are provided on both sides of the rotating roller 2, and the two ends of the guide rollers 30 are rotatably installed on the inner wall of the outer shell 1. Also includes: The inner core barrel 10 is arranged parallel to and just below the rotating roller 2. The two ends of the inner core barrel 10 are rotatably fitted in the slide groove on the inner wall of the outer shell 1, and the two ends of the inner core barrel 10 are rotatably provided with symmetrically distributed limiting mechanisms 8. The limiting mechanism 8 includes a guide plate 801, which is embedded in the slide groove on the inner wall of the outer shell 1 to form a sliding limiting structure, and the corresponding ends of the inner core barrel 10 are rotatably penetrated on the two guide plates 801. The corresponding outer ring 802 and the inner special-shaped disk 803 are fixedly connected to the side wall of the guide plate 801. A suction plug 15 is slidably fitted on the middle part of the inner wall of the inner core barrel 10, and the suction plug 15 is The end surface of the side is coaxially fixedly connected to the end of the transmission rod 14, and the transmission rod 14 slides through the end of the inner core tube 10, the convex block at the end of the inner core tube 10 fits in the slide groove on the transmission rod 14, and the end of the suction plug 15 away from the transmission rod 14 is coaxially fitted in the groove at the center of the movable disk 16, and the side wall of the movable disk 16 is fitted on the inner wall of the inner core tube 10, and a coaxially arranged discharge pipe 18 is fixedly installed on the movable disk 16, and the discharge pipe 18 coaxially slides through the inner core tube 10, and the transmission rod 14 and the discharge pipe 18 are fitted and passed through in the slide groove of the side wall of the outer shell 1; The bearing sleeve 12 is coaxially sleeved on the outside of the inner core tube 10. The inner wall of the bearing sleeve 12 and the outer wall of the inner core tube 10 are fixedly connected with a deformation mechanism 11 with equal angle distribution. The deformation mechanism 11 includes an outer connecting tube 1101. The end of the outer connecting tube 1101 is fixedly connected to the middle of the side wall of the inner core tube 10, and the outer connecting tube 1101 is distributed at equal angles around the inner core tube 10. The end of the outer connecting tube 1101 away from the inner core tube 10 slides through the skeleton shell 1103. At the bottom, the side of the skeleton shell 1103 away from the external connecting tube 1101 is fixedly installed on the inner side of the bearing sleeve 12, and the skeleton shell 1103 and the bearing sleeve 12 are between the two outer rings 802. The outer coaxial fixed sleeve of the bearing sleeve 12 is provided with an extrusion ring 13, and the extrusion ring 13 is provided with through holes distributed at equal angles, and the end of the skeleton shell 1103 is fixedly connected to the inner wall of the extrusion ring 13. The extrusion ring 13 and the bearing sleeve 12 are made of soft rubber material.

[0020] The side wall of the rotating roller 2 is provided with jet holes 6 distributed at equal angles, and the jet holes 6 are connected to the air flow cavity at the axis of the rotating roller 2, and the air flow cavity port of the rotating roller 2 is rotatably fitted with a pipe mouth of a hot air pipe 4, and the hot air pipe 4 is coaxially fixed and installed on the support cover 5, and the end of the support cover 5 is fixedly connected to the outer wall of the outer shell 1 away from the drive motor 3, so that the hot air input into the rotating roller 2 by the hot air pipe 4 can be ejected through the jet holes 6, the inner special-shaped disk 803 is coaxially arranged on the inner side of the outer ring 802, and the top of the inner special-shaped disk 803 is recessed toward the side of the rotating roller 2, and the end of the inner core barrel 10 is rotatably penetrated at the axis of the inner special-shaped disk 803, and the axis of the guide plate 801 is perpendicular to the axis of the outer ring 802. They are arranged to intersect, and the side walls of the two guide plates 801 are respectively fixedly connected with a force-bearing rod 9 and a storage tube 21. The end of the rotating roller 2 away from the driving motor 3 is coaxially fixed and installed on the rotating disk 7, and the rotating disk 7 is rotatably fitted on the inner wall of the support cover 5, and an annular wave groove is provided on the side of the rotating disk 7 close to the outer shell 1, and the end of the force-bearing rod 9 is fitted in the wave groove of the rotating disk 7, and the rod body of the force-bearing rod 9 is slidably installed in the vertical groove opened on the outer wall of the outer shell 1. When the rotating roller 2 drives the rotating disk 7 to rotate, the rotating disk 7 will drive the force-bearing rod 9 to move back and forth. At this time, the force-bearing rod 9 will drive the guide plate 801 to move synchronously, and the guide plate 801 will drive the outer ring 802 and the inner special-shaped disk 803 to move synchronously.

[0021] The end of the transmission rod 14 away from the inner core barrel 10 is inserted on the transmission barrel 27, and the protrusion on one side of the end of the transmission barrel 27 is embedded in the sliding groove on the transmission rod 14 to form a transmission structure, and the other end of the transmission barrel 27 is fixedly connected to the output shaft of the servo motor 28, the servo motor 28 is coaxially fixedly installed on the end of the loading barrel 25, and the inner wall of the side of the loading barrel 25 away from the servo motor 28 is provided with an annular guide groove 26, and the side wall of the guide groove 26 is embedded with a protruding column 24, the end of the protruding column 24 is fixedly connected to the side wall of the limiting disc 23, the axis of the limiting disc 23 is perpendicular to the axis of the protruding column 24, the outer wall of the limiting disc 23 is coaxially embedded on the inner wall of the loading barrel 25, and the axis of the limiting disc 23 is fixedly installed with the rod body of the transmission rod 14, the side wall of the loading barrel 25 is fixedly connected with a guide frame 29, and the rectangular rod body on the top of the guide frame 29 is slidingly installed on the side wall of the support cover 5, so that the servo motor 28 can drive the transmission rod 14 to rotate through the transmission barrel 27, and the transmission rod 14 will drive the limiting disc 23 to rotate synchronously, so that the limiting disc 23 moves back and forth along the inner wall of the loading barrel 25 under the action of the protruding column 24, the limiting disc 23 drives the transmission rod 14 to move synchronously, and the transmission rod 14 drives the suction plug 15 to move synchronously, the edge of the disc surface of the moving disc 16 is fixedly connected with trigger rods 17 distributed at equal angles, the trigger rods 17 are in "L" shape structure, and the trigger rods 17 are slidingly installed on the inner side of the inner core barrel 10, the protruding plate at the end of the trigger rod 17 is arranged towards the transmission rod 14, the disc surface of the moving disc 16 is arranged on the port side of the outer connecting pipe 1101, when the suction plug 15 pushes the trigger rod 17, the trigger rod 17 drives the moving disc 16 to move synchronously, because one end of the drainage pipe 18 is embedded on the end surface of the suction plug 15, and the other end of the drainage pipe 18 is rotatably connected with the one-way valve pipe 22, two annular positioning grooves 19 are formed on the outer wall of the side of the drainage pipe 18 close to the one-way valve pipe 22, a receiving barrel 21 is arranged below the positioning groove 19, and the inner wall bottom of the receiving barrel 21 is elastically connected with the bottom of the damping tooth 20 through a spring, the damping tooth 20 is embedded on the top of the receiving barrel 21, and the teeth of the damping tooth 20 are embedded in the inside of the positioning groove 19 to form a damping limiting structure, at this time the moving disc 16 drives the drainage pipe 18 to move synchronously, and the drainage pipe 18 moves against the damping force of the damping tooth 20.

[0022] The through hole at the top of the framework shell 1103 is between the bearing sleeve 12 and the extrusion ring 13, and the bottom of the framework shell 1103 is fixedly connected with corresponding moving rods 1105 on both sides, and the side wall of the end of the moving rod 1105 away from the framework shell 1103 is attached to the inner wall of the outer ring 802, so that the framework shell 1103 can drive the moving rod 1105 to move, and the axis of the outer connecting pipe 1101 is perpendicular to the axis of the inner core barrel 10, and the fixed plate 1106 is fixedly connected to the side wall of the port of the outer connecting pipe 1101, and the side wall of the fixed plate 1106 is slidably attached to the inner wall of the framework shell 1103, and the surface of the fixed plate 1106 and the inner wall of the framework shell 1103 are fixedly connected with equidistantly distributed pressure springs 1104, one end of the inner connecting pipe 1102 is fixedly connected in the through hole at the top of the framework shell 1103, and the other end of the inner connecting pipe 1102 is attached to the inner side of the outer connecting pipe 1101, so that the framework shell 1103 can drive the inner connecting pipe 1102 to move in the outer connecting pipe 1101, and the framework shell 1103 can further compress the pressure spring 1104.

[0023] The use method of the drying device is as follows: S1: The cloth is sequentially passed through the top of the two guide rollers 30 and the bottom of the rotating roller 2, and the external winding device drives the cloth to move, and at the same time, the pipeline of the external hot air device is communicated with the hot gas pipe 4, and the driving motor 3 and the servo motor 28 are started, the driving motor 3 drives the rotating roller 2 to rotate, and the external hot air enters the rotating roller 2 through the hot gas pipe 4, and the hot gas in the rotating roller 2 is sprayed out through the jet hole 6 to dry the cloth; S2: The rotating rotating roller 2 drives the rotating disc 7 to rotate synchronously, and the annular wave groove on the rotating disc 7 drives the force rod 9 to move reciprocatingly synchronously, and the force rod 9 drives the corresponding guide plate 801 and the inner core barrel 10 to move synchronously, and the inner core barrel 10 drives the loading barrel 25 to move synchronously through the transmission rod 14 and the limiting disc 23, and the guide frame 29 at the top of the loading barrel 25 moves synchronously on the support cover 5, at this time, the top of the bearing sleeve 12 and the extrusion ring 13 press the cloth on the rotating roller 2, so that the bearing sleeve 12 and the extrusion ring 13 are elastically deformed to increase the extrusion force and the extrusion area of the cloth, thereby accelerating the drying of the cloth, in this process, the deformed bearing sleeve 12 drives the corresponding framework shell 1103 to move, and the framework shell 1103 further compresses the pressure spring 1104, and the moving rod 1105 enters the recessed structure at the top of the inner special-shaped disc 803, in this process, the hole on the extrusion ring 13 can accelerate the outflow of water when the cloth is pressed; S3: At the same time, the servo motor 28 will drive the transmission rod 14 to rotate synchronously through the transmission cylinder 27, and the transmission rod 14 will drive the limit plate 23 to rotate synchronously. Since the protrusion 24 on the limit plate 23 fits in the guide groove 26 on the loading cylinder 25, and the loading cylinder 25 is limited by the guide frame 29, the limit plate 23 now reciprocates along the axial direction, and the limit plate 23 drives the suction plug 15 to move synchronously through the transmission rod 14. At this time, the suction plug 15 will move in the inner core cylinder 10, and the suction plug 15 will move away from the moving disk 16. At this time, a suction negative pressure will be generated in the inner core cylinder 10, so that some of the water remaining inside the extrusion ring 13 and the bearing sleeve 12 can enter the inner core cylinder 10 through the outer connecting pipe 1101 and the inner connecting pipe 1102. At the same time, the extrusion ring 13 and the bearing sleeve 12 can automatically discharge part of the water by rotation; S4: When the suction plug 15 drives the convex plate at the end of the trigger rod 17 to move, the trigger rod 17 will drive the movable disk 16 to move synchronously, and the movable disk 16 will drive the drain pipe 18 to move synchronously, so that the drain pipe 18 can overcome the damping force of the damping tooth 20. At this time, when the damping tooth 20 re-enters another positioning groove 19 on the drain pipe 18, the movable disk 16 can block the end of the external connecting pipe 1101. Then, when the suction plug 15 moves in the reverse direction, the suction plug 15 can send the small amount of water remaining in the inner core tube 10 into the drain pipe 18, and the water in the drain pipe 18 is discharged through the one-way valve tube 22. When the end of the suction plug 15 contacts the movable disk 16 again, the suction plug 15 will push the movable disk 16 to move, so that the movable disk 16 drives the drain pipe 18 to overcome the damping force of the damping tooth 20 and reset.

[0024] In the description of the present invention, unless otherwise specified, "plurality" means two or more; terms such as "upper," "lower," "left," "right," "inner," "outer," "front end," "rear end," "head," and "tail" indicate positions or relationships based on those shown in the accompanying drawings. These terms are intended solely to facilitate the description of the present invention and simplify the description. They do not indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limiting the present invention. Furthermore, terms such as "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0025] In the description of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "connected" and "connection" should be understood in a broad sense. For example, they can refer to fixed connection, detachable connection, or integral connection; mechanical connection, electrical connection; direct connection, or indirect connection through an intermediary. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on the specific circumstances.

[0026] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A drying device for producing shade cloth, comprising: A housing (1) having convex shafts at both ends of a rotating roller (2) installed thereon that are rotatably passed through the center of its inner wall, an output shaft of a driving motor (3) being coaxially fixedly connected to the convex shaft on one side of the rotating roller (2), and the driving motor (3) being fixedly connected to the outer wall of the housing (1), and symmetrically distributed guide rollers (30) being provided on both sides of the rotating roller (2), and both ends of the guide rollers (30) being rotatably installed on the inner wall of the housing (1); It is characterized by further comprising: The inner core barrel (10) is arranged parallel to and just below the rotating roller (2), and the two ends of the inner core barrel (10) are rotatably fitted in the slide groove on the inner wall of the outer shell (1), and the two ends of the inner core barrel (10) are rotatably provided with symmetrically distributed limiting mechanisms (8), and the limiting mechanisms (8) include guide plates (801), and the guide plates (801) are embedded in the slide groove on the inner wall of the outer shell (1) to form a sliding limiting structure, and the corresponding ends of the inner core barrel (10) are rotatably passed through the two guide plates (801), and the corresponding outer ring (802) and the inner special-shaped disk (803) are fixedly connected to the side wall of the guide plate (801), and a suction plug (15) is slidably fitted in the middle of the inner wall of the inner core barrel (10), and the suction plug (15) is The end face of the side is coaxially fixedly connected with the end of the transmission rod (14), and the transmission rod (14) slides through the end of the inner core tube (10), the convex block at the end of the inner core tube (10) is fitted in the slide groove on the transmission rod (14), the end of the suction plug (15) away from the transmission rod (14) is coaxially fitted in the groove at the center of the movable disk (16), and the side wall of the movable disk (16) is fitted on the inner wall of the inner core tube (10), the movable disk (16) is fixedly installed with a coaxially set drain pipe (18), and the drain pipe (18) coaxially slides through the inner core tube (10), and the transmission rod (14) and the drain pipe (18) are fitted and set in the slide groove of the side wall of the shell (1); A bearing sleeve (12) is coaxially sleeved on the outside of the inner core tube (10), and a deformation mechanism (11) with equal angle distribution is fixedly connected between the inner wall of the bearing sleeve (12) and the outer wall of the inner core tube (10), and the deformation mechanism (11) includes an outer connecting tube (1101), the end of the outer connecting tube (1101) is fixedly connected to the middle of the side wall of the inner core tube (10), and the outer connecting tube (1101) is distributed at equal angles around the inner core tube (10), and the end of the outer connecting tube (1101) away from the inner core tube (10) is slidably penetrated and installed on the skeleton shell (11 03), the side of the skeleton shell (1103) away from the external connecting tube (1101) is fixedly installed on the inner side of the bearing sleeve (12), and the skeleton shell (1103) and the bearing sleeve (12) are located between the two outer rings (802), the outer coaxial fixed sleeve of the bearing sleeve (12) is provided with an extrusion ring (13), and the extrusion ring (13) is provided with through holes distributed at equal angles, and the end of the skeleton shell (1103) is fixedly connected to the inner wall of the extrusion ring (13), and the extrusion ring (13) and the bearing sleeve (12) are made of soft rubber material.

2. The drying device for producing shade cloth according to claim 1, characterized in that: The side wall of the rotating roller (2) is provided with jet holes (6) distributed at equal angles, and the jet holes (6) are connected to the air flow cavity at the axis of the rotating roller (2), and the air flow cavity port of the rotating roller (2) is rotatably fitted with the pipe mouth of the hot air pipe (4), and the hot air pipe (4) is coaxially fixedly installed on the support cover (5), and the end of the support cover (5) is fixedly connected to the outer wall of the housing (1) on the side away from the drive motor (3).

3. The drying device for producing shade cloth according to claim 1, characterized in that: The axis of the guide plate (801) is arranged to intersect perpendicularly with the axis of the outer ring (802), and the side walls of the two guide plates (801) are fixedly connected with a force-bearing rod (9) and a storage cylinder (21), respectively. The end of the rotating roller (2) away from the driving motor (3) is coaxially fixedly installed on the rotating disk (7), and the rotating disk (7) is rotatably fitted on the inner wall of the support cover (5), and an annular wave groove is provided on the side of the rotating disk (7) close to the outer shell (1), and the end of the force-bearing rod (9) is fitted in the wave groove of the rotating disk (7), and the rod body of the force-bearing rod (9) is slidably installed in the vertical groove provided on the outer wall of the outer shell (1).

4. The drying device for producing shade cloth according to claim 3, characterized in that: The inner special-shaped disc (803) is coaxially arranged on the inner side of the outer ring (802), and the top of the inner special-shaped disc (803) is recessed toward the side of the rotating roller (2), and the axis of the inner special-shaped disc (803) rotates through the end portion of the inner core barrel (10).

5. The drying device for producing shade cloth according to claim 1, characterized in that: The axis of the outer connecting tube (1101) is arranged to intersect perpendicularly with the axis of the inner core tube (10), and a fixing plate (1106) is fixedly connected to the side wall of the port of the outer connecting tube (1101), and the side wall of the fixing plate (1106) is slidingly fitted on the inner wall of the skeleton shell (1103), and pressure springs (1104) distributed at equal intervals are fixedly connected between the surface of the fixing plate (1106) and the top of the inner wall of the skeleton shell (1103), and one end of the inner connecting tube (1102) is fixedly connected to the through hole at the top of the skeleton shell (1103), and the other end of the inner connecting tube (1102) is fitted and inserted on the inner side of the outer connecting tube (1101).

6. The drying device for producing shade cloth according to claim 5, characterized in that: The through opening at the top of the skeleton shell (1103) is located between the bearing sleeve (12) and the extrusion ring (13), and corresponding moving rods (1105) are fixedly connected to both sides of the bottom of the skeleton shell (1103), and the side wall of one end of the moving rod (1105) away from the skeleton shell (1103) is fitted on the inner wall of the outer ring (802).

7. The drying device for producing shade cloth according to claim 1, characterized in that: The end of the transmission rod (14) away from the inner core tube (10) is fitted and inserted into the transmission tube (27), and the protrusion at the end of one side of the transmission tube (27) is fitted and embedded in the slide groove on the transmission rod (14) to form a transmission structure, and the end of the other side of the transmission tube (27) is fixedly connected to the output shaft of the servo motor (28), and the servo motor (28) is coaxially fixedly installed on the end of the loading tube (25), and an annular guide groove (26) is opened on the inner wall of the loading tube (25) away from the servo motor (28), and a guide groove (26) is fitted in the guide groove (26). The side wall of the boss (24), the end of the boss (24) is fixedly connected to the side wall of the limiting plate (23), and the axis of the limiting plate (23) intersects the axis of the boss (24) vertically, the outer wall of the limiting plate (23) is coaxially fitted on the inner wall of the loading cylinder (25), and the axis of the limiting plate (23) is fixedly penetrated by the rod body of the transmission rod (14), the top of the side wall of the loading cylinder (25) is fixedly connected to the guide frame (29), and the rectangular rod body at the top of the guide frame (29) is slidably penetrated and installed on the side wall of the support cover (5).

8. The drying device for producing shade cloth according to claim 1, characterized in that: The movable disk (16) is fixedly connected to the edge of the disk surface with trigger rods (17) distributed at equal angles, and the trigger rods (17) are in an "L"-shaped structure. The trigger rods (17) are slidably installed on the inner side of the inner core tube (10), and the protruding plate at the end of the trigger rod (17) is arranged toward the transmission rod (14). The disk surface of the movable disk (16) is arranged on the side of the port of the external connecting tube (1101).

9. The drying device for producing shade cloth according to claim 8, characterized in that: One end of the drain pipe (18) is fitted on the end surface of the suction plug (15), and the other end of the drain pipe (18) is rotatably connected to the one-way valve pipe (22). Two annular positioning grooves (19) are provided on the outer wall of the drain pipe (18) close to the one-way valve pipe (22), and a storage cylinder (21) is provided below the positioning groove (19). The bottom of the inner wall of the storage cylinder (21) and the bottom of the damping tooth (20) are elastically connected through a spring, and the damping tooth (20) is fitted and inserted on the top of the storage cylinder (21), and the teeth of the damping tooth (20) are fitted and inserted inside the positioning groove (19) to form a damping limit structure.

10. The method for using the drying device for producing shade cloth according to claim 1, characterized in that: The method of using the drying device is as follows: S1: The cloth is passed through the top of the two guide rollers (30) and the bottom of the rotating roller (2) in sequence. The external winding device drives the cloth to move. At the same time, the pipeline of the external hot air device is connected to the hot air pipe (4). At the same time, the drive motor (3) and the servo motor (28) are started. The drive motor (3) drives the rotating roller (2) to rotate, and the external hot air enters the rotating roller (2) through the hot air pipe (4). At the same time, the hot air in the rotating roller (2) is ejected through the jet hole (6) to dry the cloth. S2: The rotating roller (2) will drive the rotating disk (7) to rotate synchronously, and the annular wave groove on the rotating disk (7) will drive the force rod (9) to move back and forth synchronously. The force rod (9) will drive the corresponding guide plate (801) and the inner core tube (10) to move synchronously. At the same time, the inner core tube (10) drives the loading tube (25) to move synchronously through the transmission rod (14) and the limit plate (23). The guide frame (29) on the top of the loading tube (25) will move synchronously on the support cover (5). At this time, the top of the bearing sleeve (12) and the extrusion ring (13) presses toward The cloth on the rotating roller (2) causes the bearing sleeve (12) and the extrusion ring (13) to produce elastic deformation, thereby increasing the extrusion force and extrusion area on the cloth, thereby accelerating the drying of the cloth. During this process, the deformed bearing sleeve (12) drives the corresponding skeleton shell (1103) to move, and the skeleton shell (1103) further compresses the pressure spring (1104). At the same time, the moving rod (1105) enters the concave structure at the top of the inner special-shaped disk (803). During this process, the holes on the extrusion ring (13) can accelerate the outflow of water when the cloth is under pressure; S3: At the same time, the servo motor (28) will drive the transmission rod (14) to rotate synchronously through the transmission cylinder (27), and the transmission rod (14) will drive the limit plate (23) to rotate synchronously. Since the boss (24) on the limit plate (23) fits in the guide groove (26) on the loading cylinder (25), and the loading cylinder (25) is limited by the guide frame (29), the limit plate (23) will reciprocate along the axial direction. The limit plate (23) drives the pumping cylinder (25) through the transmission rod (14). The suction plug (15) moves synchronously. At this time, the suction plug (15) will move in the inner core tube (10), and the suction plug (15) will move away from the moving disk (16). At this time, a suction negative pressure will be generated in the inner core tube (10), so that part of the water remaining inside the extrusion ring (13) and the bearing sleeve (12) can enter the inner core tube (10) through the outer connecting pipe (1101) and the inner connecting pipe (1102). At the same time, the extrusion ring (13) and the bearing sleeve (12) can automatically discharge part of the water by rotating; S4: When the suction plug (15) drives the convex plate at the end of the trigger rod (17) to move, the trigger rod (17) will drive the movable plate (16) to move synchronously, and the movable plate (16) will drive the discharge pipe (18) to move synchronously, so that the discharge pipe (18) can overcome the damping force of the damping tooth (20). At this time, when the damping tooth (20) re-enters the other positioning groove (19) on the discharge pipe (18), the movable plate (16) can block the end of the external connecting pipe (1101). When the rear suction plug (15) is reversely reset, the suction plug (15) can send a small amount of water remaining in the inner core tube (10) into the discharge pipe (18), and the water in the discharge pipe (18) is discharged through the one-way valve pipe (22). When the end of the suction plug (15) contacts the movable disk (16) again, the suction plug (15) will push the movable disk (16) to move, so that the movable disk (16) drives the discharge pipe (18) to overcome the damping force of the damping tooth (20) and reset.

Citation Information

Patent Citations

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