Unidirectional moisture guiding garment

By using a composite structure of hydrophobic fibers and hydrophilic fibers and micro-electric field technology in one-way moisture-conducting clothing, the problem of sweat not being able to evaporate quickly is solved, sweat can be evaporated quickly, and exercise comfort and health are improved.

CN223392014UActive Publication Date: 2025-09-30GUANGZHOU HINGTO IND CO LTD
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Patent Information

Application Number
CN202422691459.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-05
Publication Date
2025-09-30
Estimated Expiration
2034-11-05

AI Technical Summary

Technical Problem

During exercise, sweating in the armpits prevents the sweat from evaporating quickly, causing discomfort and bacterial growth, which affects exercise results and health.

Method used

It adopts a one-way moisture-conducting fabric panel, with the inner layer being a hydrophobic fiber and the outer layer being a hydrophilic fiber composite structure. It combines micro-electric field technology to accelerate sweat evaporation. The conductive fiber strips accelerate the flow of sweat into the outer layer under the action of the micro-electric field and increase the evaporation rate.

Benefits of technology

It increases the evaporation rate of sweat, reduces humidity and bacterial growth in the armpits, and improves exercise comfort and health.

✦ Generated by Eureka AI based on patent content.

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Abstract

One-way moisture conduction fabric blocks are arranged at the positions, corresponding to the armpits, of the clothes, each one-way moisture conduction fabric block is formed by compounding an inner layer and an outer layer, the inner layers are made of hydrophobic fibers, the outer layers are made of hydrophilic fibers, and two power connection buckles are arranged on the back of the clothes. The two power connection buckles correspond to the one-way moisture conduction fabric blocks on the two sides respectively and are used for being connected with a main machine, two buckling mechanisms are embedded into the bottom wall of the main machine and comprise linear motors and cover bodies, the linear motors and the cover bodies are cylindrical, the cover bodies cover the ends, provided with motor shafts, of the linear motors, three installation notches are formed in the end faces of the cover bodies, and the motor shafts are arranged in the installation notches. A buckling claw is hinged to the installation notch and is in an L shape, so that a transverse section and a vertical section are formed, a radial groove is formed in the bottom wall of the transverse section, and shifting sliding grooves are formed in the two groove walls of the radial groove. According to the utility model, the sweat evaporation rate can be improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of one-way moisture conduction, in particular to one-way moisture conduction clothing. Background Art

[0002] During exercise, the armpits are the most prone to sweating. If sweat doesn't evaporate quickly enough, it creates a strong odor. During exercise, the armpits become drenched in sweat, which clings to the body and causes significant discomfort, hindering performance. If sweat doesn't evaporate and dry quickly on clothing, it can harbor bacteria, negatively impacting skin health and causing sweat spots, which can affect clothing quality. Utility Model Content

[0003] The utility model aims to provide a one-way moisture-conducting garment, which can increase the evaporation rate of sweat.

[0004] To achieve the above objectives, the present invention provides the following technical solutions:

[0005] A one-way moisture-conducting garment, wherein a one-way moisture-conducting fabric panel is provided at the corresponding position of the armpit of the garment, the one-way moisture-conducting fabric panel is composited with an inner layer and an outer layer, the inner layer is made of hydrophobic fiber, and the outer layer is made of hydrophilic fiber, two power buckles are provided on the back of the garment, the two power buckles correspond to the one-way moisture-conducting fabric panel on both sides, and the two power buckles are used to connect to the host, the bottom wall of the host is embedded with two fastening mechanisms, the fastening mechanism includes a linear motor and a cover body, the linear motor and the cover body are both cylindrical, the cover body covers one end of the linear motor with a motor shaft, and the end face of the cover body is provided with three mounting notches A buckle claw is hinged at the installation notch, and the buckle claw is L-shaped, thus forming a horizontal section and a vertical section. The bottom wall of the horizontal section is provided with a radial groove, and the two groove walls of the radial groove are provided with a toggle slide. The end of the motor shaft of the linear motor is fixedly connected with a connecting ring, and the connecting ring is integrally provided with three connecting blocks. A drag rod is provided on both sides of the connecting block, and the drag rod is slidably connected to the toggle slide. The root of the outer wall of the power buckle is provided with an annular cone surface, and the end of the vertical section of the buckle claw is provided with a fastening slope. A conductive fiber strip is provided on the inside of the clothes, and the two ends of the conductive fiber strip are respectively connected to the unidirectional moisture-conducting fabric block and the corresponding power buckle.

[0006] Specifically, a positioning convex contact is provided in the middle of the top surface of the electrical connection buckle, and a positioning concave contact is provided in the middle of the end surface of the cover body, and the positioning convex contact is adapted to the positioning concave contact.

[0007] Specifically, the angle between the fastening bevel and the central axis of the motor shaft is 25°-35°.

[0008] Specifically, the buckle claw is fork-shaped, and mounting shafts are provided on both sides of the buckle claw. Mounting holes are provided on both sides of the inner wall of the mounting gap, and the mounting shafts are rotatably provided in the mounting holes.

[0009] Specifically, the three mounting notches are evenly distributed along the circumference, and correspondingly, the three buckling claws are evenly distributed along the circumference.

[0010] Specifically, the three connecting blocks are evenly distributed along the circumferential direction.

[0011] Specifically, the bottom wall of the main unit is provided with two columnar holes, the snap-fitting mechanism is embedded in the columnar holes, and the opening edges of the columnar holes are provided with three air-avoiding gaps.

[0012] Specifically, the three air-avoiding gaps are evenly distributed along the circumference.

[0013] Compared with the prior art, the present invention has the following beneficial effects:

[0014] The garment's armpits are fitted with a unidirectional moisture-conducting fabric panel, composed of an inner and outer layer. The inner layer is made of hydrophobic fibers, whose microstructure creates a capillary effect, absorbing sweat from the armpits and transferring it to the outer layer. The outer layer is made of hydrophilic fibers with a porous microstructure. Once sweat reaches this porous structure, the contact surface between the sweat and the porous structure is extended, thereby increasing the evaporation rate.

[0015] To further increase the evaporation rate, two electrical connectors are located on the back of the garment, one corresponding to each of the two unidirectional, moisture-conducting fabric panels. When the recessed contact points on the cover's end face engage the raised contact points on the top of the connector, the main unit applies a micro-electric field to the unidirectional, moisture-conducting fabric panels via conductive fiber strips on the inside of the garment. The water molecules in the inner layer of sweat are polar molecules, and the micro-electric field accelerates their flow into the outer layer, thereby accelerating the sweat's passage through the inner layer and further increasing the evaporation rate. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0017] Figure 1 This is a front view of a one-way moisture-wicking garment;

[0018] Figure 2 This is a back view of a one-way moisture-wicking garment;

[0019] Figure 3 It is an enlarged cross-sectional view of a unidirectional moisture-conducting fabric block;

[0020] Figure 4 An exploded view of the main unit and a partial view of the back of the garment;

[0021] Figure 5 An exploded view of the main unit and a partial view of the back of the garment;

[0022] Figure 6 This is an exploded view of the host;

[0023] Figure 7 It is a view of the internal structure of the fastening mechanism;

[0024] Figure 8 It is a view of the internal structure of the fastening mechanism;

[0025] Figure 9 It is a partial view of the fastening mechanism;

[0026] In the picture:

[0027] 1. One-way moisture-conducting fabric panel; 11. Inner layer; 12. Outer layer;

[0028] 2. Electrical connection buckle; 21. Annular cone surface; 22. Positioning convex contact;

[0029] 3. Host; 31. Avoidance gap;

[0030] 4. Snap-fit ​​mechanism; 41. Linear motor; 411. Connecting ring; 412. Connecting block; 413. Drag rod; 42. Cover; 421. Mounting notch; 4211. Mounting hole; 422. Positioning recess contact;

[0031] 5. Clamping claw; 51. Horizontal section; 511. Sliding slide; 52. Vertical section; 521. Fastening inclined surface; 53. Installing shaft. DETAILED DESCRIPTION

[0032] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0033] See Figures 1 to 9 A one-way moisture-conducting garment is provided with a one-way moisture-conducting fabric piece 1 at the armpit corresponding to the garment. The one-way moisture-conducting fabric piece 1 is composed of an inner layer 11 and an outer layer 12. The inner layer 11 is made of hydrophobic fiber, and the outer layer 12 is made of hydrophilic fiber.

[0034] The back of the garment features two power connectors 2, one for each of the two unidirectional moisture-conducting fabric panels 1. These connectors 2 connect to a main unit 3, the bottom wall of which is embedded with two fastening mechanisms 4. These fastening mechanisms 4 comprise a linear motor 41 and a cover 42, both of which are cylindrical. The cover 42 covers the end of the linear motor 41 where the motor shaft is located.

[0035] The end surface of the cover 42 is provided with three mounting notches 421, hingedly connected to a latch 5 in an L-shaped arrangement, forming a horizontal section 51 and a vertical section 52. The bottom wall of the horizontal section 51 is provided with a radial groove, each wall of which is provided with a toggle slide 511. A connecting ring 411 is fixedly attached to the end of the motor shaft of the linear motor 41. This connecting ring 411 is integrally provided with three connecting blocks 412. Drag rods 413 are provided on either side of the connecting blocks 412, slidably connected to the toggle slides 511.

[0036] The outer wall base of the power connection buckle 2 is provided with an annular conical surface 21, and the end of the vertical section 52 of the buckle claw 5 is provided with a fastening inclined surface 521. A conductive fiber strip (not shown) is provided on the inside of the garment, and the two ends of the conductive fiber strip are respectively connected to the unidirectional moisture-conducting fabric piece 1 and the corresponding power connection buckle 2.

[0037] Specifically, a positioning convex contact 22 is provided in the middle of the top surface of the electrical connection buckle 2, and a positioning concave contact 422 is provided in the middle of the end surface of the cover body 42, and the positioning convex contact 22 is adapted to the positioning concave contact 422.

[0038] Specifically, the angle between the fastening slope 521 and the central axis of the linear motor 41 is 25°-35°.

[0039] Specifically, the pawl 5 is fork-shaped, with mounting shafts 53 provided on both sides of the pawl 5 , and mounting holes 4211 provided on both inner walls of the mounting notch 421 . The mounting shafts 53 are rotatably provided in the mounting holes 4211 .

[0040] Specifically, the three mounting notches 421 are evenly distributed along the circumference, and correspondingly, the three locking claws 5 are evenly distributed along the circumference.

[0041] Specifically, the three connection blocks 412 are evenly distributed along the circumferential direction.

[0042] Specifically, the bottom wall of the main body 3 is provided with two columnar holes, the buckling mechanism 4 is embedded in the columnar holes, and the opening edges of the columnar holes are provided with three air-avoiding gaps 31 .

[0043] Specifically, the three air-avoiding gaps 31 are evenly distributed along the circumferential direction.

[0044] The working principle of this utility model is as follows:

[0045] The garment's armpits are fitted with a unidirectional moisture-conducting fabric panel 1, composed of an inner layer 11 and an outer layer 12. The inner layer 11 is made of hydrophobic fibers, whose microstructure creates a capillary effect, absorbing sweat from the armpits and transferring it to the outer layer 12. The outer layer 12 is made of hydrophilic fibers with a porous microstructure. Once sweat reaches this porous structure, the contact surface between the sweat and the porous structure is extended, thereby increasing the evaporation rate.

[0046] To further increase the evaporation rate, two electrical connectors 2 are located on the back of the garment, one corresponding to each of the two unidirectional moisture-conducting fabric panels 1. When the recessed contact points 422 on the end surface of the cover 42 come into contact with the raised contact points 22 on the top surface of the electrical connectors 2, the main unit 3 applies a micro-electric field to the unidirectional moisture-conducting fabric panels 1 through the conductive fiber strips on the inside of the garment. The water molecules in the sweat in the inner layer 11 are polar molecules. Under the influence of the micro-electric field, these water molecules flow faster into the outer layer 12, thereby accelerating the sweat's passage through the inner layer 11 and further increasing the evaporation rate.

[0047] When the positioning concave contact 422 on the end surface of the cover 42 is in contact with the positioning convex contact 22 on the top surface of the power button 2, the button of the host 3 is pressed to drive the motor shaft of the linear motor 41 to retract, so that the drag rod 413 moves the sliding groove 511 backward, thereby driving the claws 5 to rotate around the mounting shaft 53 and move closer to each other (by Figure 7 The status shown changes to Figure 8 As shown in the state), the fastening inclined surfaces 521 of the multiple buckle claws 5 jointly clamp the annular conical surface 21 provided at the root of the outer wall of the electrical buckle 2, thereby fixing the host 3 on the back of the clothes.

[0048] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention in any form. Although the present invention has been disclosed as a preferred embodiment, it is not intended to limit the present invention. Any person skilled in the art can make some changes or modifications to equivalent embodiments using the technical contents disclosed above without departing from the scope of the technical solution of the present invention. However, any brief modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present invention without departing from the content of the technical solution of the present invention are still within the scope of the technical solution of the present invention.

Claims

1. A one-way moisture-conducting garment, characterized in that: The armpits of the clothes are provided with a one-way moisture-conducting fabric block, which is composed of an inner layer and an outer layer. The inner layer is made of hydrophobic fiber and the outer layer is made of hydrophilic fiber. There are two power buckles on the back of the clothes, which correspond to the one-way moisture-conducting fabric blocks on both sides. The two power buckles are used to connect the main unit. The bottom wall of the main unit is embedded with two fastening mechanisms. The fastening mechanism includes a linear motor and a cover body. The linear motor and the cover body are both cylindrical. The cover body covers one end of the linear motor with a motor shaft. The end face of the cover body is provided with three mounting notches. A buckle claw is hinged at the mouth, and the buckle claw is L-shaped, thus forming a horizontal section and a vertical section. The bottom wall of the horizontal section is provided with a radial groove, and the two groove walls of the radial groove are provided with a toggle slide. The end of the motor shaft of the linear motor is fixed with a connecting ring, and the connecting ring is integrally provided with three connecting blocks. Drag rods are provided on both sides of the connecting block, and the drag rods are slidably connected to the toggle slide. The root of the outer wall of the power buckle is provided with an annular cone surface, and the end of the vertical section of the buckle claw is provided with a fastening slope. A conductive fiber strip is provided on the inside of the clothes, and the two ends of the conductive fiber strip are respectively connected to the one-way moisture-conducting fabric block and the corresponding power buckle.

2. The one-way moisture-conducting garment according to claim 1, characterized in that: A positioning convex contact is provided in the middle of the top surface of the electrical buckle, and a positioning concave contact is provided in the middle of the end surface of the cover body, and the positioning convex contact is adapted to the positioning concave contact.

3. The one-way moisture-conducting garment according to claim 1, characterized in that: The angle between the fastening bevel and the central axis of the motor shaft is 25°-35°.

4. The one-way moisture-conducting garment according to claim 1, characterized in that: The buckle claw is in a fork shape, and both sides of the buckle claw are provided with mounting shafts. Both sides of the inner wall of the mounting gap are provided with mounting holes, and the mounting shafts are rotatably arranged in the mounting holes.

5. The one-way moisture-conducting garment according to claim 1, characterized in that: The three mounting notches are evenly distributed along the circumference, and correspondingly, the three buckling claws are evenly distributed along the circumference.

6. The one-way moisture-conducting garment according to claim 1, characterized in that: The three connecting blocks are evenly distributed along the circumference.

7. The one-way moisture-conducting garment according to claim 1, characterized in that: The bottom wall of the main machine is provided with two columnar holes, the buckling mechanism is embedded in the columnar holes, and the opening edges of the columnar holes are provided with three air-avoiding notches.

8. The one-way moisture-conducting garment according to claim 7, characterized in that: The three air-avoidance gaps are evenly distributed along the circumference.