Cool-feel webbing and method of making same

By introducing a cooling separator and a cooling section into the preparation process of cool-touch webbing, the problem of insufficient cooling of the spinneret was solved, and rapid cooling and separation of the yarn were achieved. This resulted in the production of a cool, breathable, and comfortable webbing, which reduced raw material costs and simplified the process.

CN116516566BActive Publication Date: 2025-11-21JIANGXI XIULI RIBBON CO LTD
View PDF 5 Cites 0 Cited by

Patent Information

Application Number
CN202310551220.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-05-17
Publication Date
2025-11-21
Estimated Expiration
2043-05-17

AI Technical Summary

Technical Problem

Existing cool-touch webbing preparation devices do not provide sufficient cooling during the spinning process at the spinneret in the spinning box, causing the spun yarns to easily entangle and stick together, making them difficult to use quickly.

Method used

The system employs a cooling and separating device and a cooling section. The sprayed filaments are cooled and shaped through a spray nozzle, and a separator plate is installed on the spinneret to prevent tangling. Combined with a twin-screw extruder and a fully automatic braiding machine, the system achieves rapid cooling and separation of the filaments.

Benefits of technology

The prepared cool-touch webbing has a long-lasting cooling sensation, strong moisture absorption and breathability, wicks away sweat and keeps the skin dry, is breathable and does not stick to the body, and is highly comfortable. Moreover, the process is simple and the raw material cost is low, making it suitable for industrial promotion.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN116516566B_ABST
    Figure CN116516566B_ABST
Patent Text Reader

Abstract

The present application relates to the technical field of braiding, in particular to a cool touch braiding and a preparation method thereof, the method steps are as follows: first, the raw materials are weighed according to the formula; then, they are put into a mixing tank and then mixed and crushed thoroughly; then, drying is performed; after the drying is completed, the material is taken out, melted and extruded by a double screw extruder, and then spun, cooled and shaped by a spinning box spinneret, to obtain a mesh; finally, the mesh is braided to obtain the cool touch braiding; the device comprises a cooling and separating device, an electric heater, an electric heating plate, a mixing tank, a first electric motor, a feeding port, a second electric motor, a double screw extrusion pipe, a support frame, a discharge nozzle, a spinneret, a valve body and a stirring wheel; the braiding has a cool touch, and the cool feeling is not easy to dissipate; the braiding has strong moisture absorption and air permeability, and can effectively remove sweat, is breathable and not sticky, is cool and breathable, and has good comfort; meanwhile, the raw material cost of the present application is low, the present application is convenient and easy to obtain, the whole process is simple, and the present application is suitable for industrial promotion.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of webbing manufacturing technology, specifically to a cool-touch webbing and its manufacturing method. Background Technology

[0002] Webbing is a strip-shaped item, usually made of textiles, used for binding, sewing, decoration, and other purposes. It can be used in a variety of applications, such as clothing, shoes, bags, and household goods. Webbing is classified by material, including silk, cotton, polyester, and nylon, and by use, including vest straps, waistbands, and shoulder straps. Cool-touch webbing and its products provide a cool and comfortable feel during use.

[0003] However, the existing cooling-touch webbing preparation device cannot adequately cool the filaments spun through the spinneret in the spinning box during use, and it cannot prevent the filaments from tangling, making the manufactured threads inconvenient and difficult to use quickly. Therefore, a device is needed to solve the problems mentioned above. Summary of the Invention

[0004] The purpose of this invention is to provide a cool-touch webbing and its preparation method to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution:

[0006] A cool-touch webbing and its preparation method include a cooling separation device, an electric heater, an electric heating plate, a mixing tank, a first motor, a feed inlet, a second motor, a twin-screw extrusion tube, a support frame, a discharge nozzle, a spinneret, a valve body, and a stirring wheel. The twin-screw extrusion tube is fixedly connected to the upper end of the support frame. The second motor is fixedly installed at the end of the twin-screw extrusion tube. The discharge nozzle is fixedly connected to the front end of the twin-screw extrusion tube. The mixing tank is fixedly installed on the twin-screw extrusion tube. The electric heating plate is fixedly installed on the mixing tank. The feed inlet is located at the upper part of the mixing tank. The first motor is fixedly installed at the upper middle part of the mixing tank. The electric heater is uniformly fixedly installed on the twin-screw extrusion tube. The spinneret is fixedly connected to the front end of the discharge nozzle. The cooling separation device is located on the side of the spinneret away from the discharge nozzle.

[0007] The valve body is fixedly installed inside the bottom of the mixing tank, the stirring wheel is rotatably installed inside the mixing tank, and the upper end of the stirring wheel is fixedly connected to the drive end of the first motor.

[0008] The cooling partition device includes a cooling section and a partition section, wherein the cooling section is disposed on the upper part of the partition section;

[0009] The partition includes partition plates, conveyor wheels, a supporting cooling frame, a synchronous rotating belt, and a third motor. The conveyor wheels are uniformly rotated and installed inside the bottom end of the supporting cooling frame. The synchronous rotating belt is rotatably engaged between the two ends of the conveyor wheels. The third motor is fixedly installed on the supporting cooling frame, and the drive end of the third motor is fixedly connected to the conveyor wheels. The partition plates are uniformly distributed inside the supporting cooling frame, and the partition plates are located above the conveyor wheels, with a gap between the partition plates and the conveyor wheels.

[0010] The partition plate is uniformly and fixedly connected to the spinneret;

[0011] The cooling unit includes a water tank, an air pump, a first dryer, a mounting support platform, hydraulic cylinders, a conveying pipe, linear actuators, a distribution box, spray nozzles, a drying chamber, and an electric heating plate. The water tank is fixedly mounted on the mounting support platform. The first dryer is symmetrically fixedly mounted on the mounting support platform, with the water tank and the first dryer distributed on the upper sides of the mounting support platform. The air pump is fixedly mounted on the mounting support platform, located between the first dryer and the water tank. The hydraulic cylinders are distributed at the bottom of the four corners of the mounting support platform, with their upper ends fixedly connected to the mounting support platform. The linear actuators are fixedly connected to the bottom of both sides of the water tank and symmetrically fixedly mounted on the bottom of the mounting support platform. The distribution box is fixedly connected to the front end of the linear actuator. The conveying pipe is fixedly connected to both ends of the conveying pipe. The spray nozzles are evenly fixedly arranged at the bottom of the distribution box. The drying chamber is fixedly mounted at the bottom of the mounting support platform, and the electric heating plate is fixedly mounted on the drying chamber.

[0012] Preferably, the interior of the mixing tank is in communication with the interior of the twin-screw extruder.

[0013] Preferably, the bottom end of the hydraulic cylinder is fixedly mounted on the upper end of the supporting cooling frame.

[0014] Preferably, the supporting cooling frame is fixedly connected to the supporting frame.

[0015] Preferably, the linear actuator and the delivery pipe are connected via a delivery hose.

[0016] Preferably, the bottom end of the first dryer is inserted into the interior of the drying chamber, and the bottom end of the first dryer is located above the electric heating plate.

[0017] Preferably, the discharge nozzle is in communication with the interior of the spinneret.

[0018] Preferably, a storage frame is fixedly installed on the outer end of the supporting cooling frame, and a discharge hole is symmetrically opened through the bottom of the storage frame. A second dryer is uniformly fixedly installed on the upper part of the outer end of the storage frame.

[0019] A method for preparing a cool-touch webbing includes the following steps:

[0020] a. Weigh the following raw materials according to the formula: polybutylene terephthalate, mica powder, polyamide, bamboo fiber, magnesium sulfate whiskers, chlorinated polyether, coupling agent and antistatic agent;

[0021] b. Place the above components together in a mixing tank, then start the first motor to drive the stirring wheel to rotate for thorough mixing and crushing. Next, start the electric heating plate to heat it to 120-140°C for drying, and keep it drying for 2-3 hours.

[0022] c. After drying, the material is removed and then melt-extruded through a twin-screw extruder. The screw speed of the twin-screw extruder is 550-650 r / min and the extrusion temperature is 220-260℃. The material is then spun, cooled and shaped through a spinneret in a spinning box to obtain a mesh.

[0023] d. Finally, the mesh is woven using a fully automatic weaving machine to produce a cool-touch webbing.

[0024] Preferably, the raw materials of the webbing, by weight, include: 50-80 parts of polybutylene terephthalate, 7-12 parts of mica powder, 6-8 parts of polyamide, 3-7 parts of bamboo fiber, 3-5 parts of magnesium sulfate whiskers, 2-4 parts of chlorinated polyether, 0.8-1.2 parts of coupling agent, and 0.2-0.5 parts of antistatic agent, wherein the coupling agent is any one of silane coupling agent, titanate coupling agent, and aluminum-titanium composite coupling agent, and the antistatic agent is ethoxylated alkylamine.

[0025] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0026] I. This invention incorporates a mixing tank on the twin-screw extruder, allowing the granular material to be mixed and crushed again before hot melting. Furthermore, a partition plate is uniformly fixed on the spinneret, which effectively blocks and separates the extruded filaments, preventing them from sticking or tangling together.

[0027] Second, by setting up a cooling section, the reciprocating spray nozzles in the cooling section can fully cool and shape the wires falling on the conveyor wheel, so that the wires can be fully cooled and shaped. When the wires are discharged from the conveyor wheel, they can be initially dried as they pass through the bottom of the drying box. The cooled and shaped wires entering the storage box can be quickly dried under the action of each second dryer, achieving a second-stage drying process, which facilitates the handling and use of the wires.

[0028] Fourth, the webbing prepared by this invention has a cool touch that is not easily dissipated, strong moisture absorption and breathability, wicks away sweat and keeps the skin dry, breathable and non-sticky, cool and breathable, and comfortable; at the same time, the raw materials of this invention are inexpensive and readily available, and the entire process is simple and suitable for industrial promotion. Attached Figure Description

[0029] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0030] Figure 1 This is a schematic diagram of the main structure of the present invention;

[0031] Figure 2 This is a side view of the main body of the present invention;

[0032] Figure 3 This is a schematic diagram of the front end structure of the discharge nozzle of the present invention;

[0033] Figure 4 This is a diagram showing the internal structure of the mixing tank of the present invention;

[0034] Figure 5 This is a schematic diagram of the cooling separation device of the present invention;

[0035] Figure 6 This is a schematic diagram of the structure of the partition of the present invention;

[0036] Figure 7 This is a schematic diagram of the internal structure of the cooling frame supporting the present invention;

[0037] Figure 8 This is a schematic diagram of the cooling section of the present invention;

[0038] Figure 9 This is a schematic diagram of the bottom structure of the cooling section of the present invention;

[0039] Figure 10 This is a schematic diagram of the structure of the second embodiment of the main body of the present invention.

[0040] In the diagram: 1-Cooling separation device, 2-Electric heater, 3-Electric heating plate, 4-Mixing tank, 5-First motor, 6-Feed inlet, 7-Second motor, 8-Twin screw extrusion tube, 9-Support frame, 10-Discharge nozzle, 11-Spinneret, 12-Valve body, 13-Agitator wheel, 14-Cooling section, 15-Separation section, 17-Separation plate, 18-Conveying wheel, 19-Support cooling frame, 20-Synchronous rotating belt, 21-Third motor, 22-Water storage tank, 23-Air pump, 24-First dryer, 25-Mounting support platform, 26-Hydraulic cylinder, 27-Conveying pipe, 28-Linear actuator, 29-Equalizing box, 30-Spray nozzle, 31-Drying box, 32-Electric heating plate, 33-Storage frame, 34-Discharge hole, 35-Second dryer. Detailed Implementation

[0041] The invention will be further described below with reference to the accompanying drawings.

[0042] Example 1

[0043] A method for preparing a cool-touch webbing includes the following steps:

[0044] a. Weigh the following raw materials according to the formula: polybutylene terephthalate, mica powder, polyamide, bamboo fiber, magnesium sulfate whiskers, chlorinated polyether, coupling agent and antistatic agent;

[0045] b. Place the above components together in a mixing tank, then start the first motor to drive the stirring wheel to rotate for thorough mixing and crushing. Next, start the electric heating plate to heat it to 120°C for drying, and keep it drying for 2 hours.

[0046] c. After drying, the material is removed and then melt-extruded through a twin-screw extruder. The screw speed of the twin-screw extruder is 550 r / min and the extrusion temperature is 220℃. The material is then spun, cooled and shaped through a spinneret in a spinning box to obtain a mesh.

[0047] d. Finally, the mesh is woven using a fully automatic weaving machine to produce a cool-touch webbing.

[0048] The raw materials of the webbing, by weight, include: 50 parts of polybutylene terephthalate, 7 parts of mica powder, 6 parts of polyamide, 3 parts of bamboo fiber, 3 parts of magnesium sulfate whiskers, 2 parts of chlorinated polyether, 0.8 parts of coupling agent and 0.2 parts of antistatic agent, wherein the coupling agent is a silane coupling agent and the antistatic agent is an ethoxylated alkylamine.

[0049] Example 2

[0050] A method for preparing a cool-touch webbing includes the following steps:

[0051] a. Weigh the following raw materials according to the formula: polybutylene terephthalate, mica powder, polyamide, bamboo fiber, magnesium sulfate whiskers, chlorinated polyether, coupling agent and antistatic agent;

[0052] b. Place the above components together in a mixing tank, then start the first motor to drive the stirring wheel to rotate for thorough mixing and crushing. Next, start the electric heating plate to heat it to 130°C for drying, and keep it drying for 3 hours.

[0053] c. After drying, the material is removed and then melt-extruded through a twin-screw extruder. The screw speed of the twin-screw extruder is 600 r / min and the extrusion temperature is 245℃. The material is then spun, cooled and shaped through a spinneret in a spinning box to obtain a mesh.

[0054] d. Finally, the mesh is woven using a fully automatic weaving machine to produce a cool-touch webbing.

[0055] The raw materials of the webbing, by weight, include: 70 parts of polybutylene terephthalate, 9 parts of mica powder, 7 parts of polyamide, 5 parts of bamboo fiber, 4 parts of magnesium sulfate whiskers, 3 parts of chlorinated polyether, 1.1 parts of coupling agent and 0.4 parts of antistatic agent, wherein the coupling agent is a titanate coupling agent and the antistatic agent is an ethoxylated alkylamine.

[0056] Example 3

[0057] A method for preparing a cool-touch webbing includes the following steps:

[0058] a. Weigh the following raw materials according to the formula: polybutylene terephthalate, mica powder, polyamide, bamboo fiber, magnesium sulfate whiskers, chlorinated polyether, coupling agent and antistatic agent;

[0059] b. Place the above components together in a mixing tank, then start the first motor to drive the stirring wheel to rotate for thorough mixing and crushing. Next, start the electric heating plate to heat it to 140°C for drying, and keep it drying for 2 hours.

[0060] c. After drying, the material is removed and then melt-extruded through a twin-screw extruder. The screw speed of the twin-screw extruder is 650 r / min and the extrusion temperature is 260℃. The material is then spun, cooled and shaped through a spinneret in a spinning box to obtain a mesh.

[0061] d. Finally, the mesh is woven using a fully automatic weaving machine to produce a cool-touch webbing.

[0062] The raw materials of the webbing, by weight, include: 80 parts of polybutylene terephthalate, 12 parts of mica powder, 8 parts of polyamide, 7 parts of bamboo fiber, 5 parts of magnesium sulfate whiskers, 4 parts of chlorinated polyether, 1.2 parts of coupling agent and 0.5 parts of antistatic agent, wherein the coupling agent is a silane coupling agent and the antistatic agent is an ethoxylated alkylamine.

[0063] Based on Examples 1-3, it can be concluded that the webbing prepared by the present invention has a cool touch, the coolness is not easily dissipated, it has strong moisture absorption and breathability, it wicks away sweat and keeps the skin dry, it is breathable and does not stick to the body, it is cool and breathable, and it is comfortable. At the same time, the raw materials of the present invention are inexpensive and readily available, the entire process is simple, and it is suitable for industrial promotion.

[0064] Example 4

[0065] Please see Figure 1 , Figure 2 , Figure 3 and Figure 4 This invention provides an embodiment of a cool-touch webbing and its preparation method, comprising a cooling separator 1, an electric heater 2, an electric heating plate 3, a mixing tank 4, a first motor 5, a feed inlet 6, a second motor 7, a twin-screw extrusion tube 8, a support frame 9, a discharge nozzle 10, a spinneret 11, a valve body 12, and a stirring wheel 13. The twin-screw extrusion tube 8 is fixedly connected to the upper end of the support frame 9, the second motor 7 is fixedly installed at the end of the twin-screw extrusion tube 8, the discharge nozzle 10 is fixedly connected to the front end of the twin-screw extrusion tube 8, the mixing tank 4 is fixedly installed on the twin-screw extrusion tube 8, the electric heating plate 3 is fixedly installed on the mixing tank 4, the feed inlet 6 is opened at the upper part of the mixing tank 4, the first motor 5 is fixedly installed at the upper middle part of the mixing tank 4, and the electric heater 2 is uniformly fixedly installed on the twin-screw extrusion tube 8. On the screw extrusion tube 8, the spinneret 11 is fixedly connected to the front end of the discharge nozzle 10. The cooling separation device 1 is set on the side of the spinneret 11 away from the discharge nozzle 10. The granular material for preparing the mesh is added to the mixing tank 4. Then, the first motor 5 is started to drive the stirring wheel 13 to rotate for further thorough mixing and crushing. After the mixing and crushing process, the electric heating plate 3 is started for heating. Then, the material is allowed to enter the interior of the twin-screw extrusion tube 8 by controlling the valve body 12. At this time, the second motor 7 is started to drive one of the screws in the twin-screw extrusion tube 8 to rotate. The ends of the two screws rotate synchronously through the synchronous belt, so that the two screws can melt and transport the material, and enter the interior of the spinneret 11 through the discharge nozzle 10, and then be spun into shape by the spinneret 11.

[0066] Please see Figure 3 and Figure 4 The valve body 12 is fixedly installed inside the bottom of the mixing tank 4, and the stirring wheel 13 is rotatably installed inside the mixing tank 4. The upper end of the stirring wheel 13 is fixedly connected to the drive end of the first motor 5. The valve body 12 plays a blocking control role.

[0067] Please see Figure 5 , Figure 6 and Figure 7 The cooling and separating device 1 includes a cooling section 14 and a separating section 15. The cooling section 14 is located on the upper part of the separating section 15. The separating section 15 includes a separating plate 17, a conveyor wheel 18, a supporting cooling frame 19, a synchronous rotating belt 20, and a third motor 21. The conveyor wheel 18 is uniformly rotated and installed inside the bottom end of the supporting cooling frame 19. The synchronous rotating belt 20 is rotatably engaged between the two ends of the conveyor wheel 18. The third motor 21 is fixedly installed on the supporting cooling frame 19, and the drive end of the third motor 21 is fixedly connected to the conveyor wheel 18. The separating plate 17 is uniformly distributed inside the supporting cooling frame 19, and the separating plate 17 is located above the conveyor wheel 18. There is a gap between the separating plate 17 and the conveyor wheel 18. The separating plate 17 is uniformly fixedly connected to the spinneret 11. The separating plate 17 plays a role in blocking and is used to discharge material through the conveyor wheel 18.

[0068] Please see Figure 8 and Figure 9The cooling unit 14 includes a water storage tank 22, an air pump 23, a first dryer 24, a mounting support platform 25, a hydraulic cylinder 26, a conveying pipe 27, a linear actuator 28, a distribution box 29, a spray nozzle 30, a drying box 31, and an electric heating plate 32. The water storage tank 22 is fixedly installed on the mounting support platform 25, and the first dryer 24 is symmetrically fixedly installed on the mounting support platform 25. The water storage tank 22 and the first dryer 24 are distributed on the upper two sides of the mounting support platform 25. The air pump 23 is fixedly installed on the mounting support platform 25. 5. The air pump 23 is located between the first dryer 24 and the water storage tank 22. The hydraulic cylinders 26 are distributed at the bottom of the four corners of the mounting support platform 25, and the upper end of the hydraulic cylinders 26 is fixedly connected to the mounting support platform 25. The linear actuators 28 are fixedly connected to the bottom of both sides of the water storage tank 22. The linear actuators 28 are symmetrically fixedly installed at the bottom of the mounting support platform 25. The distribution box 29 is fixedly connected to the front end of the linear actuator 28. The conveying pipe 27 is fixedly connected to both ends of the conveying pipe 27. The spray nozzles 30 are evenly fixed. The drying chamber 31 is fixedly installed at the bottom of the mounting support platform 25, and the electric heating plate 32 is fixedly installed on the drying chamber 31. The air pump 23 is started so that the cooling water in the water storage tank 22 enters the conveying pipe 27 through the linear actuator 28 and the conveying hose, and then enters the equalizing chamber 29 and is sprayed out through the spray nozzle 30, thereby cooling and quickly forming the filaments falling on the conveying wheel 18. The linear actuator 28 can make the equalizing chamber 29 and the spray nozzle 30 move back and forth so that the long filaments can be cooled and formed sufficiently. The hydraulic cylinder 26 can control the lifting and lowering of the mounting support platform 25, thereby controlling the spray impact force on the filaments. The third motor 21 is started to control the rotation of each conveying wheel 18 so that the cooled filaments can be discharged from the conveying wheel 18. During the discharge process, the first dryer 24 and the electric heating plate 32 are started so that hot air can be sprayed from the bottom of the drying chamber 31, which can perform preliminary drying treatment on the filaments discharged from the conveying wheel 18.

[0069] The interior of the mixing tank 4 is connected to the interior of the twin-screw extruder 8, which allows the mixed and heated material to be easily transported.

[0070] The bottom end of the hydraulic cylinder 26 is fixedly installed on the upper end of the support cooling frame 19, serving as a support and adjustment mechanism.

[0071] The cooling support frame 19 is fixedly connected to the support frame 9, serving as a fixed support.

[0072] The linear actuator 28 and the delivery pipe 27 are connected by a delivery hose, which serves to connect and deliver the components.

[0073] The bottom end of the first dryer 24 is inserted into the interior of the drying chamber 31, and the bottom end of the first dryer 24 is located above the electric heating plate 32, so that hot air can be blown out from the bottom of the drying chamber 31.

[0074] The discharge nozzle 10 is connected to the interior of the spinneret 11, allowing the molten material to enter the spinneret 11.

[0075] In this embodiment, the granular material for preparing the wire mesh is first added to the mixing tank 4. Then, the first motor 5 is started to drive the stirring wheel 13 to rotate for further thorough mixing and crushing. After mixing and crushing, the electric heating plate 3 is started for heating. Then, the material is allowed to enter the interior of the twin-screw extrusion tube 8 by controlling the valve body 12. At this time, the second motor 7 is started to drive one of the screws in the twin-screw extrusion tube 8 to rotate. The ends of the two screws rotate synchronously through the synchronous belt, so that the two screws can melt and transport the material. The material enters the interior of the spinneret 11 through the discharge nozzle 10 and is then spun into wire mesh by the spinneret 11.

[0076] When the filaments are ejected from the spinneret 11, the evenly fixed partition plates 17 on the spinneret 11 prevent the ejected filaments from sticking or tangling. After the filaments fall onto the conveyor wheel 18, the air pump 23 is activated, causing the cooling water in the water tank 22 to enter the conveyor pipe 27 through the linear actuator 28 and the conveying hose. The water then enters the equalization box 29 and is sprayed out through the spray nozzle 30, thus rapidly cooling and shaping the filaments that have fallen onto the conveyor wheel 18. Furthermore, the linear actuator 28 ensures even distribution. The reciprocating movement of the box 29 and the spray nozzle 30 allows the filament to be cooled and shaped sufficiently. The hydraulic cylinder 26 controls the lifting and lowering of the mounting support platform 25, thereby controlling the spray impact force on the filament. The third motor 21 is started to control the rotation of each conveyor wheel 18, allowing the cooled filament to be discharged from the conveyor wheel 18. During the discharge process, the first dryer 24 and the electric heating plate 32 are started, allowing hot air to be sprayed from the bottom of the drying box 31, which performs preliminary drying treatment on the filament discharged from the conveyor wheel 18.

[0077] Example 5

[0078] Based on Example 4, such as Figure 10 As shown, a storage frame 33 is fixedly installed on the outer end of the supporting cooling frame 19. A discharge hole 34 is symmetrically opened through the bottom of the storage frame 33. A second dryer 35 is uniformly fixedly installed on the upper part of the outer end of the storage frame 33.

[0079] In this embodiment, the cooled and shaped wire mesh that enters the storage frame 33 can be quickly dried by the action of each second dryer 35, making it convenient to use the wire mesh.

[0080] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An apparatus for preparing a cool-touch webbing, wherein the cool-touch webbing is woven from yarn using a fully automatic weaving machine; the apparatus comprises a cooling separation device, an electric heater, a first electric heating plate, a mixing tank, a first electric motor, a feed inlet, a second electric motor, a twin-screw extruder, a support frame, a discharge nozzle, a spinneret, a valve body, and a stirring wheel, characterized in that: The twin-screw extruder is fixedly connected to the upper end of the support frame. The second motor is fixedly installed at the end of the twin-screw extruder. The discharge nozzle is fixedly connected to the front end of the twin-screw extruder. The mixing tank is fixedly installed on the twin-screw extruder. The first electric heating plate is fixedly installed on the mixing tank. The feed port is opened at the upper part of the mixing tank. The first motor is fixedly installed at the upper middle part of the mixing tank. The electric heater is uniformly fixedly installed on the twin-screw extruder. The spinneret is fixedly connected to the front end of the discharge nozzle. The cooling separation device is set on the side of the spinneret away from the discharge nozzle. The valve body is fixedly installed inside the bottom of the mixing tank, the stirring wheel is rotatably installed inside the mixing tank, and the upper end of the stirring wheel is fixedly connected to the drive end of the first motor; the inside of the mixing tank is connected to the inside of the twin-screw extruder; the discharge nozzle is connected to the inside of the spinneret. The cooling and separating device includes a cooling section and a separating section, with the cooling section located on the upper part of the separating section. The separating section includes a separating plate, a conveyor wheel, and a supporting cooling frame. The conveyor wheel is uniformly rotated and installed inside the bottom end of the supporting cooling frame. The separating plates are uniformly distributed inside the supporting cooling frame and are located above the conveyor wheel. There is a gap between the separating plates and the conveyor wheel. The separating plates are uniformly fixedly connected to the spinneret. The cooling section includes a water storage tank, an air pump, a first dryer, a mounting support platform, a hydraulic cylinder, a conveying pipe, a linear actuator, a distribution box, a spray nozzle, a drying box, and a second electric heating plate. The water storage tank is fixedly installed on the mounting support platform, and the first dryer is symmetrically fixedly installed on one side of the mounting support platform. The water storage tank and the first dryer are distributed on the upper two sides of the mounting support platform. The air pump is fixedly installed on the mounting support platform and is located between the first dryer and the water storage tank. Hydraulic cylinders are distributed at the four corners of the mounting support platform. The upper ends of the hydraulic cylinders are fixedly connected to the mounting support platform. Linear actuators are fixedly connected to the bottom of both sides of the water storage tank. The linear actuators are symmetrically fixedly installed at the bottom of the mounting support platform. The equalization box is fixedly connected to the front end of the linear actuator. The conveying pipe is fixedly connected to both ends of the equalization box. The spray nozzles are evenly fixedly installed at the bottom of the equalization box. The drying box is fixedly installed at the bottom of the mounting support platform. The second electric heating plate is fixedly installed on the drying box. The bottom end of the first dryer is inserted into the interior of the drying box. The bottom end of the first dryer is located above the second electric heating plate. The air pump is activated, allowing cooling water from the storage tank to enter the delivery pipe through the delivery hose, then into the equalization box, and finally sprayed out through the spray nozzles, cooling and shaping the threads that fall onto the conveyor wheel. A linear actuator causes the equalization box and spray nozzles to move back and forth, ensuring the threads are fully cooled and shaped. The hydraulic cylinder controls the lifting and lowering of the mounting support platform, thereby controlling the spray impact force. The cooled threads are discharged from the conveyor wheel, and during the discharge process, the first dryer and the second electric heating plate are activated, allowing hot air to spray from the bottom of the drying box, providing preliminary drying for the threads discharged from the conveyor wheel.

2. The apparatus for preparing the cool-touch webbing according to claim 1, characterized in that: The bottom end of the hydraulic cylinder is fixedly installed on the upper end of the support cooling frame; the support cooling frame is fixedly connected to the support frame.

3. The apparatus for preparing the cool-touch webbing according to claim 1, characterized in that: A storage frame is fixedly installed on the outer end of the supporting cooling frame. The bottom of the storage frame has symmetrical through-holes for discharge. A second dryer is evenly fixedly installed on the upper part of the outer end of the storage frame.

Citation Information

Patent Citations

  • Water-repellent oilproof antistatic woven ribbon

    CN108728930A

  • Polyester-nylon composite superfine fiber and production method thereof

    CN111155203A

  • Single-component polyester thermofuse equipment and process thereof

    CN113502548A

  • Tubular spinning device

    CN217869230U

  • Cooling device for polyester net monofilament production

    CN218711071U