Equipment for softening cool composite cloth

By combining the stress-relieving roller shaft and the thermal shock treatment mechanism, the stress in the fabric is eliminated and high-pressure hot air impact is carried out, which solves the problem of poor processing effect of existing equipment and achieves significant improvement in the softness and feel of the fabric.

CN223292807UActive Publication Date: 2025-09-02WUXI MAX TEXTILE CO LTD
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Patent Information

Application Number
CN202422475817.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-14
Publication Date
2025-09-02
Estimated Expiration
2034-10-14

AI Technical Summary

Technical Problem

The existing soft treatment equipment is poorly processed and may cause damage to the fabric, which cannot effectively improve the feel and softness of the fabric.

Method used

The stress-relieving roller shaft and thermal shock treatment mechanism are used to eliminate the stress-relieving roller shaft through the rubbing column on the stress-relieving roller shaft, and intermittent impact is performed using high-pressure hot air, combining damping adjustment and adjustment of the airflow barrier to adjust the rub and impact effects.

Benefits of technology

Effectively eliminates the stress inside the fabric, improves the feel, makes the fabric softer, improves the soft treatment effect, and reduces damage to the fabric.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses equipment for softening cool composite cloth. The equipment comprises a destressing mechanism and a thermal shock treatment mechanism matched with the destressing mechanism, the destressing mechanism comprises a destressing mechanism fixing frame, and a pair of cloth input guide roll shafts and a pair of cloth output guide roll shafts are rotationally connected to the destressing mechanism fixing frame; a destressing rubbing roller shaft is rotationally connected to the destressing mechanism fixing frame, and a plurality of destressing rubbing columns are rotationally connected to the side face of the destressing rubbing roller shaft; a plurality of rubbing convex blocks are arranged on the outer side surfaces of the destressing rubbing columns; the thermal shock treatment mechanism comprises a thermal shock mechanism fixing frame, and a plurality of thermal shock generators which are symmetrically arranged up and down are connected to the thermal shock mechanism fixing frame; the multiple destressing rubbing columns on the destressing rubbing roller shaft are used for rubbing the cloth, so that the internal stress of the cloth is eliminated, the hand feeling of the cloth is improved, and the cloth is softer.
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Description

Technical Field

[0001] The utility model relates to the technical field of cloth pretreatment, in particular to a device for softening cool composite cloth. Background Art

[0002] The main purposes and effects of fabric softening treatments include improving the fabric's feel, making it softer and smoother, and increasing skin comfort. They also enhance the fabric's drape, allowing it to fall more naturally and gracefully when worn or used. They also enhance the fabric's wrinkle resistance, reducing wrinkles during use and washing, making it easier to care for. They also increase the fabric's fullness, making it appear thicker and fuller, enhancing its texture. They also improve the fabric's sewing properties, making it easier to cut and sew, reducing problems such as thread breakage and pilling. For the garment manufacturing industry, these treatments help improve production efficiency and product quality.

[0003] However, the current softening treatment equipment is relatively simple and crude, the treatment effect is poor, and improper treatment may cause certain damage to the fabric itself. The treatment method needs to be further improved. Utility Model Content

[0004] The purpose of the utility model is to provide a device for softening cool composite cloth, which can well eliminate the internal stress of the cloth, improve the feel of the cloth, and make the cloth softer.

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

[0006] A device for softening cool composite fabrics, comprising a stress relief mechanism and a thermal shock treatment mechanism used in conjunction with the stress relief mechanism;

[0007] The stress relief mechanism includes a stress relief mechanism fixing frame, and a pair of cloth input guide rollers and a pair of cloth output guide rollers are rotatably connected to the stress relief mechanism fixing frame;

[0008] The stress relief mechanism fixing frame is rotatably connected to a stress relief kneading roller shaft, and the side surface of the stress relief kneading roller shaft is rotatably connected to a plurality of stress relief kneading columns;

[0009] The outer side of the stress-relieving kneading column is provided with a plurality of kneading protrusions;

[0010] The thermal shock treatment mechanism comprises a thermal shock mechanism fixing frame, and the thermal shock mechanism fixing frame is connected to a plurality of thermal shock generators which are symmetrically arranged up and down.

[0011] Preferably, the stress-relieving kneading roller is a horizontally placed cylindrical shell structure, and the side wall of the stress-relieving kneading roller has a plurality of kneading column connecting grooves that are connected inside and outside. A plurality of stress-relieving kneading columns are connected one by one in each kneading column connecting groove, and the rotating shaft of each stress-relieving kneading column is rotatably connected to the inner wall of the stress-relieving kneading roller through a pair of kneading column supports.

[0012] Note: In actual operation, there is a certain linear speed difference between the stress relief kneading roller and the fabric, and then relative movement occurs between the stress relief kneading roller and the fabric. The fabric is kneaded by using multiple stress relief kneading columns dispersedly arranged on the stress relief kneading roller to eliminate the internal stress of the fabric, improve the feel of the fabric, and make the fabric softer.

[0013] Preferably, a damping adjustment mechanism is provided in connection with the rotating shaft of the stress-relieving kneading column, the damping adjustment mechanism includes a damping adjustment support fixed on the inner wall of the stress-relieving kneading roller shaft, the damping adjustment support is rotatably connected with a damping adjustment rotating shaft coaxial with the stress-relieving kneading column, one end of the damping adjustment rotating shaft is transmission-connected to the rotating shaft of the stress-relieving kneading column through a coupling, a damping rotor is fixed to the other end of the damping adjustment rotating shaft, a damping adjustment support slide is fixed on the inner wall of the stress-relieving kneading roller shaft, a damping adjustment driving slider is slidably connected to the damping adjustment support slide, and a damping stator coaxially arranged with the damping rotor is fixed on the damping adjustment driving slider.

[0014] Description: The damping adjustment mechanism is used to adjust the damping size when relative motion occurs between each stress relief kneading column and the fabric. The servo motor drives the damping adjustment drive slider to move along the damping adjustment support slide rail. The damping adjustment drive slider drives the damping stator to approach or move away from the damping rotor. By changing the overlapping area between the damping stator and the damping rotor, the rotational resistance between the damping stator and the damping rotor is adjusted, that is, the rotational damping of the stress relief kneading column is adjusted.

[0015] Preferably, the thermal shock generator comprises a thermal shock support body having a plurality of vertically penetrating shock tube mounting holes, wherein thermal shock nozzles are fixed in the shock tube mounting holes;

[0016] The input end of the thermal shock nozzle is connected to a shock input pipe, which is provided with a shock control valve;

[0017] The thermal shock nozzle is a nozzle with a gradient section, and the end of the thermal shock nozzle with a smaller diameter is the input end.

[0018] Description: High-pressure hot air is input into the thermal shock nozzle from the shock input pipe, and then ejected from the output end of the thermal shock nozzle. The high-pressure hot air is used to intermittently impact the fabric, which is beneficial to improve the feel of the fabric and make the fabric softer.

[0019] Preferably, an impact variable barrier mechanism is provided in the output end of the thermal shock nozzle, and the impact variable barrier mechanism includes a barrier fixing ring arranged coaxially with the thermal shock nozzle, and the barrier fixing ring is fixedly connected to the inner side wall of the thermal shock nozzle through multiple radial connecting rods, and an airflow barrier is fixed in the barrier fixing ring.

[0020] Description: By replacing air flow barriers of various shapes, the flow rate and shape of high-pressure hot air when it is ejected from the output end of the thermal shock nozzle are changed, so that the high-pressure hot air has different impact effects on the fabric.

[0021] Compared with the prior art, the beneficial effects of the present invention are embodied in the following aspects:

[0022] 1. The utility model has a reasonable structural design. It uses multiple stress-relieving kneading columns on the stress-relieving kneading roller to knead the fabric to eliminate the internal stress of the fabric, improve the feel of the fabric, and make the fabric softer.

[0023] 2. In the technical solution of the present invention, the damping adjustment mechanism is used to adjust the damping magnitude of the relative motion between each stress-relieving kneading column and the fabric. By changing the overlapping area between the damping stator and the damping rotor, the rotational damping of the stress-relieving kneading column is adjusted;

[0024] 3. In the technical solution of the utility model, by controlling the intermittent opening and closing of the impact control valve, high-pressure hot air is used to intermittently impact the fabric. Under the action of intermittent impact, the feel of the fabric is improved and the fabric is made softer.

[0025] 4. In the technical solution of the present invention, by replacing air flow barriers of various shapes, the flow rate and shape of the high-pressure hot air when it is ejected from the output end of the thermal shock nozzle are changed, so that the high-pressure hot air produces different impact effects on the fabric. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 It is the main view of the utility model;

[0027] Figure 2 This is a schematic structural diagram of the stress-relieving kneading roller shaft of the utility model;

[0028] Figure 3 yes Figure 2 A top view of

[0029] Figure 4 This is a schematic structural diagram of the stress-relieving kneading column of the utility model;

[0030] Figure 5 It is a structural diagram of the damping adjustment mechanism of the utility model;

[0031] Figure 6 This is a schematic structural diagram of the thermal shock generator of the utility model;

[0032] Figure 7 yes Figure 6 A top view of

[0033] Figure 8 It is a structural schematic diagram of the impact variable barrier mechanism of the utility model.

[0034] In the figure, 10-stress relief mechanism, 11-stress relief mechanism fixing frame, 121-cloth input guide roller, 122-cloth output guide roller, 13-stress relief kneading roller, 130-stress relief kneading column, 131-kneading column connecting groove, 132-kneading column support, 1301-kneading protrusion, 14-damping adjustment mechanism, 141-damping adjustment support, 142-damping adjustment shaft, 143-damping rotor, 144-damping adjustment support slide rail, 145-damping adjustment drive slider, 1 46-damping stator, 15-tensioning adjustment mechanism, 151-tensioning adjustment fixed shell, 152-tensioning adjustment lifting shell, 153-tensioning adjustment driving rod, 20-thermal shock treatment mechanism, 21-thermal shock mechanism fixing frame, 22-thermal shock generator, 221-thermal shock support body, 222-shock tube mounting hole, 223-shock input pipe, 224-shock control valve, 23-shock variable barrier mechanism, 231-barrier fixing ring, 232-radial connecting rod, 230-airflow barrier. DETAILED DESCRIPTION

[0035] The following combination Figures 1-8 The present invention is described in detail. For the convenience of description, the directions mentioned below are defined as follows: the up, down, left, right, front and back directions mentioned below are consistent with the up, down, left, right, front and back directions of the projection relationship of each main view or structural schematic diagram itself.

[0036] Example 1:

[0037] A device for softening cool composite fabrics, such as Figure 1 As shown, it includes a stress relief mechanism 10 and a thermal shock treatment mechanism 20 used in conjunction with the stress relief mechanism 10;

[0038] The stress relief mechanism 10 includes a stress relief mechanism fixing frame 11, to which a pair of cloth input guide rollers 121 and a pair of cloth output guide rollers 122 are rotatably connected;

[0039] The stress relief mechanism fixed frame 11 is rotatably connected to a stress relief kneading roller 13, and the stress relief kneading roller 13 is located between the cloth input guide roller 121 and the cloth output guide roller 122. Figure 2 As shown, the stress relief kneading roller shaft 13 is rotatably connected to a plurality of stress relief kneading columns 130 on its side;

[0040] The cloth input guide roller 121, the cloth output guide roller 122 and the stress relief kneading roller 13 are all driven to rotate by a servo motor;

[0041] like Figure 4 As shown, the outer side of the stress relief kneading column 130 has a plurality of kneading protrusions 1301;

[0042] like Figure 1 As shown, the thermal shock treatment mechanism 20 includes a thermal shock mechanism fixing frame 21 , to which are connected a plurality of thermal shock generators 22 symmetrically arranged up and down. The thermal shock generators 22 adopt existing technology.

[0043] like Figure 2 、 Figure 3 As shown, the stress-relieving kneading roller 13 is a horizontally placed cylindrical shell structure, and the side wall of the stress-relieving kneading roller 13 is provided with a plurality of kneading column connecting grooves 131 that communicate with each other inside and outside. A plurality of stress-relieving kneading columns 130 are connected to each kneading column connecting groove 131 one by one, and the rotating shaft of each stress-relieving kneading column 130 is rotatably connected to the inner wall of the stress-relieving kneading roller 13 through a pair of kneading column supports 132.

[0044] The axis direction of each stress relief kneading column 130 is parallel to the axis direction of the stress relief kneading roller 13 .

[0045] like Figure 5 As shown, a damping adjustment mechanism 14 is provided connected to the rotating shaft of the stress-relieving kneading column 130, and the damping adjustment mechanism 14 includes a damping adjustment support 141 fixed on the inner side wall of the stress-relieving kneading roller shaft 13, and a damping adjustment rotating shaft 142 coaxial with the stress-relieving kneading column 130 is rotatably connected to the damping adjustment support 141, and one end of the damping adjustment rotating shaft 142 is transmission-connected to the rotating shaft of the stress-relieving kneading column 130 through a coupling, and a damping rotor 143 is fixed to the other end of the damping adjustment rotating shaft 142, and a damping adjustment support slide rail 144 is fixed to the inner side wall of the stress-relieving kneading roller shaft 13, and a damping adjustment driving slider 145 is slidably connected to the damping adjustment supporting slide rail 144, and a damping stator 146 coaxially arranged with the damping rotor 143 is fixed to the damping adjustment driving slider 145;

[0046] The damping rotor 143 is the rotor of the generator, and the damping stator 146 is the permanent magnet stator of the generator.

[0047] like Figure 1As shown, the stress relief kneading roller 13 is connected to the stress relief mechanism fixing frame 11 through a tension adjustment mechanism 15. The tension adjustment mechanism 15 includes a tension adjustment fixing shell 151 fixed on the stress relief mechanism fixing frame 11 and with an upward opening. A tension adjustment lifting shell 152 is slidably connected inside the tension adjustment fixing shell 151. The rotating shaft support of the stress relief kneading roller 13 is fixed to the top of the tension adjustment lifting shell 152. A tension adjustment driving rod 153 for driving the tension adjustment lifting shell 152 to move is provided in the tension adjustment fixing shell 151.

[0048] The tensioning adjustment driving rod 153 is an electrically controlled telescopic rod. The outer rod end of the tensioning adjustment driving rod 153 is fixedly connected to the inner bottom of the tensioning adjustment fixed shell 151, and the inner rod end of the tensioning adjustment driving rod 153 is fixedly connected to the tensioning adjustment lifting shell 152.

[0049] Example 2:

[0050] On the basis of Example 1, Figure 6 As shown, the thermal shock generator 22 includes a thermal shock support body 221, and the thermal shock support body 221 has a plurality of vertical shock tube mounting holes 222, and the thermal shock nozzles 220 are fixed in the shock tube mounting holes 222;

[0051] The input end of the thermal shock nozzle 220 is connected to a shock input pipe 223 , and the shock input pipe 223 is provided with a shock control valve 224 . The shock control valve 224 adopts the existing technology.

[0052] The thermal shock nozzle 220 is a nozzle with a gradual section, and the end of the thermal shock nozzle 220 with a smaller diameter is the input end.

[0053] Example 3:

[0054] On the basis of Example 2, Figure 8 As shown, an impact variable barrier mechanism 23 is provided in the output end of the thermal shock nozzle 220. The impact variable barrier mechanism 23 includes a barrier fixing ring 231 arranged coaxially with the thermal shock nozzle 220. The barrier fixing ring 231 is fixedly connected to the inner wall of the thermal shock nozzle 220 through multiple radial connecting rods 232. A cylindrical airflow barrier 230 is fixed in the barrier fixing ring 231.

[0055] Example 4:

[0056] The difference from the third embodiment is that the airflow blocker 230 is a spherical entity.

[0057] Example 5:

[0058] The difference from the third embodiment is that the airflow blocker 230 is an ellipsoidal entity.

[0059] Example 6:

[0060] The difference from the third embodiment is that the airflow blocker 230 is a circular plate-shaped entity.

[0061] In the actual application process of the present invention, the cloth to be processed is input from the cloth input guide roller 121, the cloth passes around the stress relief rubbing roller 13 and is then pulled out from the cloth output guide roller 122;

[0062] There is a certain linear speed difference between the stress relief kneading roller 13 and the fabric, and then relative motion occurs between the stress relief kneading roller 13 and the fabric. The multiple stress relief kneading columns 130 on the stress relief kneading roller 13 are used to knead the fabric to eliminate the internal stress of the fabric, improve the feel of the fabric, and make the fabric softer.

[0063] The damping adjustment mechanism 14 is used to adjust the damping magnitude of the relative motion between each stress-relieving kneading column 130 and the fabric. The servo motor drives the damping adjustment driving slider 145 to move along the damping adjustment support slide rail 144. The damping adjustment driving slider 145 drives the damping stator 146 to move closer to or away from the damping rotor 143. By changing the overlapping area between the damping stator 146 and the damping rotor 143, the rotational resistance between the damping stator 146 and the damping rotor 143 is adjusted, that is, the rotational damping of the stress-relieving kneading column 130 is adjusted.

[0064] The rubbed fabric is pulled out from the fabric output guide roller 122 and then passes through the thermal shock treatment mechanism 20. Thermal shock generators 22 are arranged on both the upper and lower sides of the fabric. High-pressure hot air is input from the shock input pipe 223 to the thermal shock nozzle 220. The high-pressure hot air is then ejected from the output end of the thermal shock nozzle 220. The high-pressure hot air is intermittently impacted by controlling the intermittent opening and closing of the shock control valve 224. The intermittent impact helps improve the feel of the fabric and make it softer.

[0065] By replacing the airflow blockers 230 with various shapes, the flow rate and shape of the high-pressure hot air ejected from the output end of the heat shock nozzle 220 are changed, thereby making the high-pressure hot air produce different shock effects on the fabric.

Claims

1. A device for softening cool composite fabrics, characterized in that: It comprises a stress relief mechanism (10) and a thermal shock treatment mechanism (20) used in conjunction with the stress relief mechanism (10); The stress relief mechanism (10) comprises a stress relief mechanism fixing frame (11), and a pair of cloth input guide rollers (121) and a pair of cloth output guide rollers (122) are rotatably connected to the stress relief mechanism fixing frame (11); The stress relief mechanism fixing frame (11) is rotatably connected to a stress relief kneading roller shaft (13), and the side surface of the stress relief kneading roller shaft (13) is rotatably connected to a plurality of stress relief kneading columns (130); The outer side surface of the stress-relieving kneading column (130) has a plurality of kneading protrusions (1301); The thermal shock treatment mechanism (20) comprises a thermal shock mechanism fixing frame (21), and a plurality of thermal shock generators (22) arranged symmetrically in an upper and lower manner are connected to the thermal shock mechanism fixing frame (21).

2. The device for softening cool composite fabric according to claim 1, characterized in that: The stress-relieving kneading roller (13) is a horizontally placed cylindrical shell structure, and the side wall of the stress-relieving kneading roller (13) is provided with a plurality of kneading column connecting grooves (131) that are interconnected inside and outside. A plurality of stress-relieving kneading columns (130) are connected one-to-one in each of the kneading column connecting grooves (131), and the rotating shaft of each of the stress-relieving kneading columns (130) is rotatably connected to the inner side wall of the stress-relieving kneading roller (13) through a pair of kneading column supports (132).

3. The device for softening cool composite fabric according to claim 2, characterized in that: A damping adjustment mechanism (14) is connected to the rotating shaft of the stress-relieving kneading column (130), and the damping adjustment mechanism (14) includes a damping adjustment support (141) fixed on the inner wall of the stress-relieving kneading roller (13), and a damping adjustment rotating shaft (142) coaxial with the stress-relieving kneading column (130) is rotatably connected to the damping adjustment support (141), and one end of the damping adjustment rotating shaft (142) is connected to the stress-relieving kneading column through a coupling. The damping adjustment shaft (142) is connected to the damping rotor (143) by a transmission mechanism, the other end of the damping adjustment shaft (142) is fixed with a damping rotor (143), the inner side wall of the stress relief kneading roller (13) is fixed with a damping adjustment support slide rail (144), the damping adjustment support slide rail (144) is slidably connected with a damping adjustment driving slider (145), and the damping adjustment driving slider (145) is fixed with a damping stator (146) arranged coaxially with the damping rotor (143).

4. The device for softening cool composite fabric according to claim 1, characterized in that: The thermal shock generator (22) comprises a thermal shock support body (221), the thermal shock support body (221) is provided with a plurality of vertically penetrating shock tube mounting holes (222), and thermal shock nozzles (220) are fixed in the shock tube mounting holes (222); The input end of the thermal shock nozzle (220) is connected to a shock input pipe (223), and the shock input pipe (223) is provided with a shock control valve (224); The thermal shock nozzle (220) is a nozzle with a gradual section, and the end of the thermal shock nozzle (220) with a smaller diameter is the input end.

5. The device for softening cool composite fabric according to claim 4, characterized in that: An impact variable barrier mechanism (23) is provided in the output end of the thermal shock nozzle (220), the impact variable barrier mechanism (23) comprising a barrier fixing ring (231) coaxially arranged with the thermal shock nozzle (220), the barrier fixing ring (231) being fixedly connected to the inner side wall of the thermal shock nozzle (220) via a plurality of radial connecting rods (232), and an airflow barrier (230) being fixed in the barrier fixing ring (231).