Air supply device applied to wearable clothes, air supply belt and clothes with fan

The design of the air blower, which is connected by flexible or elastic connectors, solves the problem of the fan not fitting the curves of the human body, thus improving the comfort and heat dissipation effect when wearing clothing.

CN223860241UActive Publication Date: 2026-02-03SHENZHEN MINUS TECH CO LTD
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Patent Information

Application Number
CN202520275263.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-20
Publication Date
2026-02-03
Estimated Expiration
2035-02-20

AI Technical Summary

Technical Problem

When fans are installed inside existing clothing, the fans do not conform to the curves of the human body, affecting the comfort of wearing the clothing.

Method used

Design an air blower, including a fan and an electronic control component, connected by a flexible or elastic connector, which can bend and deform under external force to adapt to the curves of the human body. The fan and electronic control component are set independently, and the overall structure is thin and can be hidden inside clothing.

Benefits of technology

It improves the comfort and heat dissipation of the clothing, the fan and electronic control components can work stably, and the overall structure fits the human body to avoid local protrusions that affect the appearance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to an air supply device applied to wearable clothes, an air supply belt and clothes with a fan, the air supply device comprises the fan, an electric control assembly and a connecting piece, the connecting piece is connected between the fan and the electric control assembly, the connecting piece is provided with a wire passing channel for a conductive cable to penetrate through, and the conductive cable is used for electrically connecting the fan and the electric control assembly. One of the fan and the electric control assembly is provided with an adaptive surface facing a human body and a non-adaptive surface opposite to the adaptive surface, the adaptive surface is an arc surface adaptive to the human body, and the other one of the fan and the electric control assembly is provided with a fitting surface facing the human body. The connecting piece is configured to be capable of deforming under the action of external force so that the relative position of the fan and the electric control assembly can deviate, and the connecting piece is configured to be in the static state that the end, away from the binding face, of the adaptive face protrudes towards the side away from the non-adaptive face relative to the binding face. The air supply device can be attached to the surface of the human body, so that the wearing comfort of clothes is improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of clothing manufacturing, in particular to an air supply device applied to wearable clothing, an air supply waistband and a clothing with a fan. BACKGROUND

[0002] In hot summer, in order to prevent sunburn and sunburn, when people are outdoors, they usually do not wear too little, which makes people sweat when they are outdoors. Therefore, in order to reduce the heat, people usually use various ways to cool the body.

[0003] Some related technical solutions are to install a fan in the clothing to use the wind blown by the fan to cool the wearer. However, when the fan is installed in the clothing, the comfort of wearing the clothing is affected due to the non-conformity of the fan and the curve of the human body. UTILITY MODEL CONTENT

[0004] Therefore, it is necessary to provide an air supply device applied to wearable clothing which can conform to the surface of the human body to improve the comfort of wearing the clothing.

[0005] The technical scheme is as follows:

[0006] In a first aspect, the present application provides an air supply device applied to wearable clothing, the air supply device is used to be installed in a containing space of the clothing and generate airflow, the air supply device comprises a fan, an electric control assembly and a connecting piece, two ends of the connecting piece are connected with the fan and the electric control assembly respectively, and a wire passage is arranged in the connecting piece for the conductive cable to pass through, the conductive cable is used to electrically connect the fan and the electric control assembly; one of the fan and the electric control assembly has an adaptation surface for facing the human body and a non-adaptation surface opposite to the adaptation surface, the adaptation surface is an arc surface for adapting to the human body, and the other of the fan and the electric control assembly has a conforming surface for facing the human body.

[0007] The connecting piece is configured to be able to bend and deform under the action of an external force, so that the relative position of the fan and the electric control assembly can be deviated, and the connecting piece is configured to protrude away from the non-adaptation surface on the side of the conforming surface away from the adaptation surface in a static state.

[0008] The air supply device applied to the wearable clothes can blow air flow to cool down the wearer when the wearer wears the clothes provided with the air supply device, thereby improving the comfort when the clothes are worn. Since the fan and the electric control assembly are connected through the connecting piece, and the electric control assembly and the fan can be electrically connected through the conductive cable penetrating the connecting piece, the electric control assembly in the air supply device can provide electric energy and / or control the fan to ensure that the air supply device can reliably generate air flow. At the same time, this also makes the fan and the electric control assembly two independent devices, so compared with the design that the electric control assembly and the fan are integrated, the design can make the air supply device more lightweight, thereby making the air supply device better hidden in the clothes, avoiding the local position protruding and affecting the appearance of the clothes. In addition, since one of the fan and the electric control assembly has an arc-shaped fitting surface for facing the human body and for fitting the human body, and the connecting piece can be deformed under the action of external force, so that the connecting piece is configured to protrude away from the non-fitting surface while the end of the fitting surface away from the fitting surface protrudes in the static state, and the relative position between the fan and the electric control assembly can also be offset, so that the overall structure composed of the fan, the electric control assembly and the connecting piece can be maintained in an arc shape in the static state, so that the air supply device can preliminarily ensure that it can be fitted and attached to the uneven surface of the human body by using the fitting surface and the overall structure in an arc shape. Further, when the clothes provided with the air supply device are worn, the relative position between the fan and the electric control assembly can be fine-tuned by the deformation of the connecting piece under the action of the human body, so that the air supply device can further fit the curve of the human body, thereby improving the comfort when the clothes are worn.

[0009] The technical solutions are further described below:

[0010] In one embodiment, the connecting piece is a flexible connecting piece made of flexible material, which is configured to be bent and deformed under the action of external force, so that the relative position of the fan and the electric control assembly can be offset.

[0011] In one embodiment, the connecting piece is an elastic connecting piece, which is configured to be elastically deformed under the action of external force, so that the relative position of the fan and the electric control assembly can be offset.

[0012] In one embodiment, the flexible connector has a first end and a second end, the first end being the side of the flexible connector facing away from the human body, and the second end being the side of the flexible connector facing the human body. The first length L1 of the first end in the direction in which the flexible connector connects the fan and the electronic control component is greater than the second length L2 of the second end in the direction in which the flexible connector connects the fan and the electronic control component.

[0013] And / or, the electronic control assembly includes an electronic control housing and an electronic control body, the electronic control body is disposed inside the electronic control housing, the flexible connector is connected between the fan and the electronic control housing, the electronic control body is electrically connected to the fan through the conductive cable passing through the wiring channel, and the adapter surface is disposed on the outer surface of the electronic control housing;

[0014] And / or, the air blower further includes a charging head, which is electrically connected to the electronic control component via a charging cable, and the charging head is used to input electrical energy to the electronic control component.

[0015] In one embodiment, the flexible connector includes a first connecting portion, a second connecting portion, and an elastic portion connecting the first connecting portion and the second connecting portion. The first connecting portion is connected to the electronic control component, and the second connecting portion is connected to the fan. A hollow space is formed inside the elastic portion, a portion of which forms an elastic deformation space, and another portion forms the cable passage.

[0016] In one embodiment, the electronic control component has a first mounting surface, and the fan has a second mounting surface. The first mounting surface has a first mounting through hole, and the second mounting surface has a second mounting through hole. The first connecting part passes through the first mounting through hole and is embedded inside the electronic control component, and the second connecting part passes through the second mounting through hole and is embedded inside the fan. The area of ​​the first mounting through hole on the first mounting surface is greater than 50% and less than 80%, and the area of ​​the second mounting through hole on the second mounting surface is greater than 50% and less than 80%.

[0017] In one embodiment, the air blower further includes a flow guide shroud having a flow guide channel extending through both ends. One end of the flow guide shroud is connected to the air outlet surface of the fan, and the other end is used to exit the accommodating space. The flow guide shroud includes a first connecting section and a second connecting section connected together. The end of the first connecting section opposite to the second connecting section is connected to the air outlet surface. The cross-sectional area of ​​the first connecting section gradually decreases from the end closer to the air outlet surface to the other end, and the cross-sectional area of ​​the second connecting section gradually increases from the end closer to the first connecting section to the other end.

[0018] And / or, the fan includes a frame and a fan body, the fan body is installed in the frame, the frame is connected to the electronic control component through the connector, the fan body is electrically connected to the electronic control component through the conductive cable, the frame has a second air vent for allowing outside air to enter the frame, the second air vent has multiple grids arranged at intervals, and each grid has a concave-convex structure on the side opposite to the fan body.

[0019] In one embodiment, the number of fans is 2N, where N is a positive integer. The 2N fans are evenly spaced and arranged. Adjacent fans are electrically connected by a connecting line. The 2N fans are installed in one-to-one correspondence within the 2N accommodating spaces of the garment. The connecting line is disposed in a channel between two adjacent accommodating spaces. The number of electronic control components is two. The two electronic control components are respectively connected to two fans located at opposite ends of the 2N fans through a connector. The conductive cable in the connector electrically connects the corresponding electronic control component to the fan.

[0020] Secondly, this application provides an air-supplying belt, including a belt and an air-supplying device 3 as described in any of the above claims. The belt is worn on the waist of a person. The belt has a receiving cavity. The number of receiving cavities and the number of fans are both 2N, where N is a positive integer. The 2N receiving cavities are evenly spaced along the extension direction of the belt. The fans are installed in the receiving cavities one by one. A connecting line is provided between two adjacent fans. The connecting line is located in the receiving channel between two adjacent receiving cavities. There are two electronic control components. The two electronic control components are respectively installed in two receiving cavities located at opposite ends of the 2N receiving cavities, and each is connected to the corresponding fan through the connector. The conductive cable in the connector electrically connects the corresponding electronic control component and the fan.

[0021] In the aforementioned air-purifying waist belt, because the 2N receiving chambers are evenly spaced along the belt's extension direction, and each fan is correspondingly installed in one of the receiving chambers, with two electronic control components located in the receiving chambers at both ends, the waist belt can rationally and evenly distribute the weight of the air purifier using a symmetrical arrangement. This avoids the problem of the belt sagging in certain areas and ensures that the overall structure of the waist belt is relatively thin and lightweight, which improves the wearer's comfort during use. Since adjacent fans are electrically connected via connecting wires, and the electronic control components can be electrically connected to adjacent fans via conductive cables, the electronic control components can electrically connect to each fan via conductive cables and connecting wires. This allows the fans to generate a stable airflow to cool the wearer when the electronic control components drive all fans to operate. Furthermore, because the connecting parts can deform under external force, the design of connecting the fans at both ends to their corresponding electronic control components via connecting parts allows the air purifier to better conform to the curves of the human body, effectively improving the comfort of wearing the air-purifying waist belt.

[0022] Thirdly, this application provides a garment with a fan, including a garment body and an air blower as described in any of the above claims. The garment body is for wearing on the human body, and the garment body has an air inlet and a plurality of air outlets. An air guide duct is provided inside the garment body to connect the air inlet and the plurality of air outlets. The fan is used to generate airflow that enters the air guide duct through the air inlet.

[0023] In the aforementioned fan-equipped garment, the air inlet and multiple air outlets of the garment body are connected by air ducts within the garment body. The fan in the blower generates airflow that enters the air ducts through the air inlet. This airflow, guided by the air ducts, is then blown out from each air outlet to dissipate heat and cool various parts, improving the efficiency of heat dissipation and cooling. Furthermore, because the connecting parts can deform under external force, the design of the connecting parts allows the overall structure consisting of the fan, electronic control components, and connecting parts to maintain an arc shape in a static state. This allows the blower to initially conform to uneven human body surfaces using its adaptable surface and arc-shaped overall structure. Moreover, when the garment with the blower is worn, the relative position between the fan and electronic control components can be finely adjusted by the connecting parts under the influence of the body, further conforming the blower to the body's curves and improving the comfort of wearing the garment.

[0024] In one embodiment, the plurality of air outlets includes a first air outlet, a second air outlet, and a third air outlet. The first air outlet is located at the back collar of the garment body, the second air outlet is located at the back panel of the garment body, and the third air outlet is located in the armpit area of ​​the garment body. The air duct includes a first part and a second part that are connected. The first part is connected to the air inlet for airflow, and the second part is connected to the first air outlet, the second air outlet, and the third air outlet. The second part forms a back air duct on the back side of the garment body.

[0025] In one embodiment, the back panel of the garment body is provided with a first guide seam, which forms part of the inner wall of the back air duct. The first guide seam includes a first guide section and a second guide section, and a junction connecting the first guide section and the second guide section. The junction is disposed opposite to the air inlet. The first guide section is used to guide the airflow from the air inlet to the junction to the third air outlet, and the second guide section is used to guide the airflow from the air inlet to the junction to the first air outlet.

[0026] And / or, the plurality of air outlets includes a converging air outlet, the converging air outlet being opened on the back panel of the garment body, the back panel of the garment body also having an arc-shaped wind-blocking seam, the arc-shaped wind-blocking seam being used to divide the first part and the second part, the arc-shaped wind-blocking seam having a concave opening, the concave opening facing the air inlet side, so that the arc-shaped wind-blocking seam can form a converging space in the first part, the converging air outlet being arranged in the converging space, and part of the airflow flowing in from the air inlet flowing into the converging space and flowing out from the converging air outlet to the outside;

[0027] And / or, the plurality of air outlets further includes a fourth air outlet opened at the front collar of the garment body, and the air duct further includes a third part, the third part being connected to the first part, the third part forming a first front air duct on the front piece of the garment body, and the first front air duct being connected to the airflow of the fourth air outlet.

[0028] And / or, the number of fans and the number of air inlets are both 2N, where N is a positive integer. The back panel of the garment body is provided with 2N accommodating bags for accommodating the fans one by one. The 2N accommodating bags are arranged and symmetrically arranged on both sides of the back panel, and the openings of the accommodating bags are arranged opposite to the air inlets one by one. Attached Figure Description

[0029] Figure 1 This is a schematic diagram of the back structure of a garment with a fan in one embodiment.

[0030] Figure 2 This is a cross-sectional structural diagram of the garment body in one embodiment.

[0031] Figure 3 for Figure 1 A schematic diagram of the front structure of the garment with a fan shown.

[0032] Figure 4 This is a schematic diagram of the back structure of a garment with a fan in another embodiment.

[0033] Figure 5 for Figure 4 The diagram shows a cross-sectional view of the garment itself.

[0034] Figure 6 This is a schematic diagram of the structure of the air supply device in one embodiment.

[0035] Figure 7 This is a schematic diagram of the assembly of the belt and the air blower in one embodiment.

[0036] Figure 8 This is a top view of the belt structure in one embodiment.

[0037] Figure 9 This is a partial structural schematic diagram of the air supply device in one embodiment from a certain perspective.

[0038] Figure 10 for Figure 9 The diagram shows a partial structural schematic of the air supply unit from another perspective.

[0039] Figure 11 for Figure 9 The diagram shows a partial cross-sectional view of the air supply unit from another perspective.

[0040] Explanation of reference numerals in the attached figures:

[0041] 100. Garment with a fan; 1. Garment body; 1a. Air duct; 11a. First part; 111a. Air gathering space; 12a. Second part; 121a. Back air duct; 13a. Third part; 131a. First front air duct; 14a. Fourth part; 141a. Second front air duct; 11b. First air outlet; 12b. Second air outlet; 13b. Third air outlet; 14b. Fourth air outlet 15b, Fifth air outlet; 16b, Sixth air outlet; 17b, Seventh air outlet; 18b, Concentrated air outlet; 13c, Air inlet; 11, First guide seam; 111, First guide section; 112, Convergence section; 113, Second guide section; 12, Arc-shaped wind-blocking seam; 13, Storage bag; 14, Front garment piece; 141, First garment piece; 142, Second garment piece; 15, Connecting structure; 16, Back garment piece; 2. Air supply unit; 2a, Adaptor surface; 2b, Non-adaptor surface; 2c, Fitting surface; 21, Fan; 211, Frame; 211a, Second mounting surface; 21a, Second air outlet; 21b, Grille; 212, Fan body; 22, Electrical control assembly; 221, Electrical control housing; 221a, First mounting surface; 221b, Second mounting through hole; 23, Connector; 231, First connecting part; 232, Second connecting part; 233, Elastic part ; 233a, First end; 233b, Second end; 233c, Hollow space; 24, Radiator; 24a, Radiator channel; 241, First connecting section; 242, Second connecting section; 25, Charging head; 251, Charging cable; 26, Connecting cable; 3, Waist belt; 3a, Receiving cavity; 3b, Receiving channel; 3c, Through outlet; 31, First zipper; 32, First connector; 33, Second connector; 34, Closure. Detailed Implementation

[0042] To make the above-mentioned objectives, features, and advantages of this application more apparent and understandable, the specific embodiments of this application are described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a thorough understanding of this application. However, this application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this application. Therefore, this application is not limited to the specific embodiments disclosed below.

[0043] In the description of this application, it should be understood that if terms such as "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" appear, these terms indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.

[0044] Furthermore, where the terms "first" and "second" appear, these terms are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined with "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, where the term "multiple" appears, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0045] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0046] In this application, unless otherwise expressly specified and limited, the use of descriptions such as "above" or "below" the second feature indicates that the first and second features are in direct contact or indirect contact via an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. Similarly, "below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0047] It should be noted that if an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or there may be an intervening element. If an element is considered to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. If so, the terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used in this application are for illustrative purposes only and do not represent the only possible implementation.

[0048] See Figure 1 and Figure 2 One embodiment of this application provides a garment 100 with a fan, comprising a garment body 1 and an air blower 2. Wherein:

[0049] The garment body 1 is worn on the human body. The back collar of the garment body 1 has a first air outlet 11b, and the back panel 16 of the garment body 1 has a second air outlet 12b. The garment body 1 also has an air inlet 13c. An air guide duct 1a is provided inside the garment body 1. The air guide duct 1a includes a first part 11a and a second part 12a connected together. The first part 11a communicates with the air inlet 13c, and the second part 12a connects the first air outlet 11b and the second air outlet 12b, forming a back air guide duct 121a on the back side of the garment body 1. An air blower 2 is used to draw external airflow through the air inlet 13c to the air guide duct 1a.

[0050] In the aforementioned fan-equipped garment 100, the air duct 1a comprises a first part 11a and a second part 12a that are connected. The first part 11a is connected to the air inlet 13c, and the second part 12a is connected to both the first air outlet 11b and the second air outlet 12b. Therefore, when the blower 2 is drawn to the air duct 1a by external airflow through the air inlet 13c, the air duct 1a allows the airflow to flow along the designed route to each air outlet. Since the first air outlet 11b is located at the back collar of the garment body 1, and the second air outlet 12b is located at the back panel 16 of the garment body 1, when the wearer wears the garment and activates the blower 2, the air blown from the first air outlet 11b can dissipate heat from the back of the neck, and the air blown from the second air outlet 12b can dissipate heat from the back of the body. This achieves the effect of simultaneously cooling multiple parts of the body, improving the efficiency of heat dissipation and cooling.

[0051] Indicatively, the air inlet 13c is located on the back panel 16.

[0052] Indicatively, both the first air outlet 11b and the second air outlet 12b may include at least two air vents, thereby increasing the air volume of each air outlet so that the airflow blown out by the air guide 1a can be stably blown to specific parts, thereby improving the user experience of the clothing.

[0053] In one embodiment, a third air outlet 13b is provided in the armpit area of ​​the garment body 1, and the third air outlet 13b is connected to the second part 12a. In this way, when the airflow enters the second part 12a through the air guide 1a, the airflow can flow out from the third air outlet 13b, thereby dissipating heat from the armpit and improving the cooling and heat relief effect.

[0054] Indicatively, the third air outlet 13b may include at least two air vents.

[0055] In one embodiment, see Figure 2 As shown, the back panel 16 of the garment body 1 is provided with a first guide seam 11. The first guide seam 11 forms part of the inner wall of the back air duct 121a. The first guide seam 11 includes a first guide section 111 and a second guide section 113 and a junction 112 connecting the first guide section 111 and the second guide section 113. The junction 112 is disposed opposite to the air inlet 13c. The first guide section 111 is used to guide the airflow from the air inlet 13c to the junction 112 to the third air outlet 13b. The second guide section 113 is used to guide the airflow from the air inlet 13c to the junction 112 to the first air outlet 11b. Thus, when the airflow generated by the blower 2 enters the air duct 1a from the air inlet 13c and flows to the confluence 112, the confluence 112 can divide the airflow into two branches. One branch of the airflow can flow smoothly to the third air outlet 13b under the guidance of the first guide seam 11, and the other branch of the airflow can flow smoothly to the first air outlet 11b under the guidance of the second guide seam. This ensures that when the airflow flows in the back air duct 121a, both the first air outlet 11b and the third air outlet 13b will have air blowing out, so that both the first air outlet 11b and the third air outlet 13b can blow air onto specific parts to effectively cool down and dissipate heat.

[0056] In one embodiment, see Figure 2As shown, the back panel 16 of the garment body 1 is also provided with a converging air outlet 18b, and the back panel 16 of the garment body 1 is also provided with an arc-shaped wind-blocking seam 12. The arc-shaped wind-blocking seam 12 has a concave opening, which faces the air inlet 13c, so that the arc-shaped wind-blocking seam 12 can form a converging air space 111a in the first part 11a. The converging air outlet 18b is arranged in the converging air space 111a. Part of the airflow flowing into the air inlet 13c flows into the converging air space 111a and flows out to the outside from the converging air outlet 18b. In this way, the airflow entering from the air inlet 13c can enter the wind-gathering space 111a through the concave opening of the arc-shaped wind-blocking seam 12. Furthermore, through the blocking effect of the arc-shaped wind-blocking seam 12, the airflow flowing into the wind-gathering space 111a from the concave opening of the arc-shaped wind-blocking seam 12 is gathered, making the wind force in the wind-gathering space 111a stronger. This results in more air flowing out from the wind-gathering outlet 18b, which can better cool down the back area of ​​the human body and improve the efficiency of heat dissipation and cooling.

[0057] In one embodiment, see Figures 1 to 3 The air duct 1a includes a third part 13a, which is connected to the first part 11a. The third part 13a forms a first front air duct 131a at the front piece 14 of the garment body 1. A fourth air outlet 14b is provided at the front collar of the garment body 1, and the fourth air outlet 14b is connected to the first front air duct 131a. Thus, when the air blower 2 introduces external airflow into the first part 11a of the air duct 1a through the air inlet 13c, the airflow can flow through the first part 11a to the third part 13a, and under the guidance of the first front air duct 131a in the third part 13a, it flows to the fourth air outlet 14b located at the front collar of the garment body 1, and flows out from the fourth air outlet 14b towards the front of the neck. Therefore, the added fourth air outlet 14b allows the cooling airflow to cover more of the human body surface, thereby better cooling the body and improving the efficiency of heat dissipation.

[0058] Furthermore, in one embodiment, see [reference] Figures 1 to 3 The front panel 14 of the garment body 1 has a fifth air outlet 15b, which is connected to the first front air guide duct 131a. Thus, when the air blower 2 introduces external airflow into the first part 11a of the air guide duct 1a through the air inlet 13c, the airflow can flow along the first part 11a to the third part 13a, and under the guidance of the first front air guide duct 131a in the third part 13a, it flows to the fifth air outlet 15b located on the front panel 14 of the garment body 1, and flows out from the fifth air outlet 15b towards the front part of the human body. Therefore, the added fifth air outlet 15b allows the cooling airflow to cover more of the human body surface, thereby better cooling the body and improving the efficiency of heat dissipation.

[0059] Indicatively, the fifth air outlet 15b can be directed towards the chest area of ​​the wearer, allowing the airflow from the fifth air outlet 15b to dissipate heat from the chest. Additionally, it prevents the airflow from blowing directly onto the abdomen, thus avoiding discomfort caused by a cold abdomen.

[0060] Indicatively, both the fourth air outlet 14b and the fifth air outlet 15b may include at least two air vents.

[0061] Optionally, in one implementation, see [reference]. Figures 2 to 3 The first part 11a can be located on the side of the back piece 16 away from the back collar. One end of the second part 12a is connected to the end of the first part 11a near the back collar, and the other end extends along the back piece 16 to the back collar. One end of the third part 13a is connected to the first part 11a, and the other end goes around one of the underarm areas to the front piece 14 and extends to the front collar. In another embodiment, one end of the third part 13a is connected to the second part 12a, and the other end goes around one of the shoulder areas to the front piece 14.

[0062] Furthermore, in one embodiment, see [reference] Figures 1 to 3 The air duct 1a also includes a fourth part 14a, which is connected to the first part 11a. The fourth part 14a forms a second front air duct 141a at the front piece 14 of the garment body 1. The front collar of the garment body 1 also has a sixth air outlet 16b, which is connected to the second front air duct 141a. Thus, when the air blower 2 introduces external airflow into the first part 11a of the air duct 1a through the air inlet 13c, the airflow can flow along the first part 11a to the fourth part 14a, and under the guidance of the second front air duct 141a in the fourth part 14a, it can flow to the sixth air outlet 16b located at the front collar of the garment body 1, and then flow out from the sixth air outlet 16b towards the front of the neck. Therefore, the added sixth air outlet 16b allows the cooling airflow to cover more of the human body surface, thereby better cooling the body and improving the efficiency of heat dissipation.

[0063] In one embodiment, see Figures 1 to 3The front panel 14 of the garment body 1 also has a seventh air outlet 17b, which is connected to the second front air guide duct 141a. Thus, when the air blower 2 introduces external airflow into the first part 11a of the air guide duct 1a through the air inlet 13c, the airflow can flow along the first part 11a to the fourth part 14a, and under the guidance of the second front air guide duct 141a in the fourth part 14a, it flows to the seventh air outlet 17b located on the front panel 14 of the garment body 1, and flows out from the seventh air outlet 17b towards the front part of the human body. Therefore, the added seventh air outlet 17b allows the cooling airflow to cover more of the human body surface, thereby better cooling the human body and improving the efficiency of heat dissipation.

[0064] Indicatively, the seventh air outlet 17b can be directed towards the chest area of ​​the wearer, allowing the airflow from the seventh air outlet 17b to dissipate heat from the chest. Additionally, it prevents the airflow from blowing directly onto the abdomen, thus avoiding discomfort caused by a cold abdomen.

[0065] Indicatively, both the sixth air outlet 16b and the seventh air outlet 17b may include at least two air vents.

[0066] Optionally, in one implementation, see [reference]. Figures 2 to 3 The first part 11a can be located on the side of the back piece 16 away from the back collar. One end of the second part 12a is connected to the end of the first part 11a near the back collar, and the other end extends along the back piece 16 to the back collar. The third part 13a and the fourth part 14a are connected to the two sides of the first part 11a respectively. The end of the third part 13a away from the first part 11a goes around one of the armpit areas to reach the front piece 14 and extends to the front collar. The end of the fourth part 14a away from the first part 11a goes around another armpit area to reach the front piece 14 and extends to the front collar. In another embodiment, one end of the third part 13a and one end of the fourth part 14a are both connected to the second part 12a. The other end of the third part 13a goes around one of the shoulder areas to reach the front piece 14, and the other end of the fourth part 14a goes around another shoulder area to reach the front piece 14.

[0067] Schematic illustration: In one embodiment, the front panel 14 of the garment body 1 is a single piece, and the fourth air outlet 14b and the sixth air outlet 16b can be spaced apart; alternatively, the fourth air outlet 14b and the sixth air outlet 16b can be interconnected. In another embodiment, see [reference needed]. Figure 3The front panel 14 of the garment body 1 is provided with a placket, dividing the front panel 14 of the garment body 1 into a first panel 141 and a second panel 142. One of the first panel 141 and the second panel 142 is provided with a first front air guide duct 131a, a fourth air outlet 14b, and a fifth air outlet 15b, while the other is provided with a second front air guide duct 141a, a sixth air outlet 16b, and a seventh air outlet 17b. Furthermore, a connecting structure 15 may be provided at the placket for opening and closing the placket. Thus, when the wearer wears the fan-equipped garment 100, the wearer can choose to wear it open or closed, thereby improving the garment's versatility. Simultaneously, whether worn open or closed, the airflow generated by the fan 21 can still be guided through the air guide duct 1a to each air outlet to cool specific parts of the body, effectively ensuring the cooling effect. In a schematic representation, the connecting structure 15 can be a zipper, a cord, or a buckle.

[0068] Furthermore, in one embodiment, see [reference] Figures 1 to 3 The front panel 14 of the garment body 1 has a fifth air outlet 15b and a seventh air outlet 17b; the second air outlet 12b, the fifth air outlet 15b, and the seventh air outlet 17b each include at least two air holes. The number of air holes in the fifth air outlet 15b and the seventh air outlet 17b is less than the number of air holes in the second air outlet 12b. Thus, the air pressure in the back air duct 121a, the first front air duct 131a, and the second front air duct 141a can be adjusted by utilizing the density of the openings, thereby controlling the ventilation volume in the back and front. This allows for better fulfillment of user needs and improved user experience under the same wind conditions. Specifically, when the airflow to the first front air duct 131a and the second front air duct 141a is less than the airflow to the back air duct 121a, if the number of air outlets in the fifth air outlet 15b and the seventh air outlet 17b is less than the number of air outlets in the second air outlet 12b, it not only increases the airflow in the two front air ducts, allowing the fifth air outlet 15b and the seventh air outlet 17b to blow out a larger airflow, but also ensures that the airflow from the second air outlet 12b is uniform and stable, thus better meeting the heat dissipation requirements. Furthermore, when the garment can be worn open, this design allows air to still blow out stably from all positions.

[0069] Furthermore, in one embodiment, see [reference] Figures 1 to 3The diameters of the air outlets 15b and 17b are both larger than that of the second air outlet 12b. This allows for the control of air pressure in the rear air duct 121a, the first front air duct 131a, and the second front air duct 141a by adjusting the density and size of the openings. This effectively controls the ventilation volume at the back and front, better meeting user needs and improving the user experience under the same wind conditions. Specifically, compared to the air outlet of the second air outlet 12b, the air outlets of the fifth air outlet 15b and the seventh air outlet 17b are larger and more numerous. This results in a larger air volume in the two front air ducts 1a when the airflow configured in the first front air duct 131a and the second front air duct 141a is less than the airflow configured in the rear air duct 121a, and the airflow blown out from the fifth air outlet 15b and the seventh air outlet 17b is also larger; while the air blown out through the second air outlet 12b is more uniform and stable, thus better meeting the heat dissipation requirements.

[0070] In one embodiment, see Figures 4 to 5 The air supply device 2 includes a fan 21. The number of fans 21 and the number of air inlets 13c are both 2N. The back panel 16 of the garment body 1 is provided with 2N storage bags 13 for correspondingly accommodating the fans 21. The 2N storage bags 13 are arranged symmetrically on both sides of the back panel 16, and the openings of the storage bags 13 are correspondingly opposite to the air inlets 13c. N is a positive integer. The fans 21 are used to generate airflow that enters the air duct 1a through the corresponding air inlets 13c. Thus, since the 2N storage bags 13 are symmetrically arranged on both sides of the back garment piece 16, when the 2N fans 21 are installed one-to-one in the 2N storage bags 13, the weight of the air blower 2 can be reasonably distributed to both sides of the back garment piece 16, avoiding the problem of one side sagging due to uneven gravity. This prevents the wearer from feeling uncomfortable due to the concentrated downward pull of the weight of the air blower 2, and also avoids localized stretching and deformation of the garment body 1. In addition, since the openings of the storage bags 13 are arranged one-to-one with the air inlets 13c, and each fan 21 can generate airflow that enters the air duct 1a through the corresponding air inlet 13c, this design can effectively increase the airflow, thereby enabling the fan-equipped garment 100 to better cool the human body.

[0071] As an illustration, there are two fans 21 and two air inlets 13c.

[0072] Optionally, the side wall of the storage bag 13 has multiple through-hole ventilation openings. This allows the fan 21 to effectively agitate the air to create a stable airflow when activated, reliably cooling the body. Schematic, the ventilation openings are located on the side of the storage bag 13 opposite to the body, ensuring that the ventilation openings are not obstructed when the garment 100 with the fan is worn, thus allowing the fan 21 to effectively generate airflow when activated. Furthermore, the ventilation openings are positioned opposite the air intake surface of the fan 21.

[0073] Indicatively, fan 21 can be a centrifugal fan. On one hand, centrifugal fans have the advantage of higher wind power utilization, allowing for the use of lighter and smaller batteries for the same wind power output. This helps reduce the weight of the air blower 2 and improves wearer comfort. On the other hand, the centrifugal fan has a side-discharge structure, which better suits the flow of air within clothing, reducing the likelihood of clothing puffing up and preventing localized overcooling at the fan 21 location.

[0074] Optionally, in one embodiment, a connecting channel is provided between the 2N accommodating bags 13. The connecting channel is used to accommodate the connecting wires 26 that electrically connect two adjacent fans 21. In this way, it can ensure that all fans 21 are electrically connected so as to facilitate the synchronous control of all fans 21, and at the same time, the connecting wires 26 in the air blower 2 can be hidden inside the garment body 1 to avoid the connecting wires 26 being exposed and interfering with the wearer's activities, and also to prevent the connecting wires 26 from being easily damaged by external factors.

[0075] Optionally, in one embodiment, see [reference] Figure 4 , Figure 5 and Figure 6The air supply device 2 includes a guide shroud 24, and there are 2N guide shrouds 24. The guide shrouds 24 are arranged one-to-one with the fan 21 and the container bag 13. The guide shroud 24 has a guide channel 24a that runs through both ends. One end of the guide shroud 24 is connected to the air outlet surface of the corresponding fan 21, and the other end passes through the opening of the corresponding container bag 13 and enters the air channel 1a through the corresponding air inlet 13c. All air inlets 13c have elastic members on their edges, and the elastic members are used to fit around the outer periphery of the corresponding fan 21. Thus, on the one hand, since one end of the air guide shroud 24 is connected to the air outlet of the corresponding fan 21, and the other end can pass through the corresponding air inlet 13c into the air guide duct 1a, the air guide channel 24a in the air guide shroud 24 can connect the air outlet of the fan 21 and the air guide duct 1a. Therefore, when the fan 21 is started, the airflow produced by the fan 21 can enter the air guide duct 1a under the guidance of the air guide shroud. The air guide duct 1a can then make the airflow flow along the designed route to the air outlet, so that the airflow can be blown to the human body surface through the air outlet, thereby cooling the human body. On the other hand, under the action of the elastic element, the air inlet 13c can form a sealed opening. This allows the edge of the air inlet 13c to be tightly attached to the outer periphery of the air guide shroud 24 during assembly, thereby sealing the gap between the edge of the air inlet 13c and the air guide shroud 24, so that the airflow can be reliably guided to each air outlet through the air guide channel and the air guide duct 1a. Because the elastic element is elastic, it does not affect the assembly speed when assembling the garment body 1 and the flow guide 24.

[0076] Optionally, the elastic element can be a rubber band.

[0077] In another embodiment, see Figure 1 , Figure 2 , Figure 6 ,and Figure 7 and Figure 8The air inlet 113c is located at the hem of the back panel 16 of the garment body 1. The air blower 2 includes a fan 21. The number of fans 21 and the number of air inlets 13c are both 2N, where N is a positive integer. The 2N air inlets 13c are arranged symmetrically on both sides of the back panel 16. The garment 100 with the fan also includes a waist belt 3. The waist belt 3 is worn on the waist of the human body. The waist belt 3 is detachably connected to the hem of the garment body 1. The waist belt 3 has 2N accommodating cavities 3a at intervals. The accommodating cavities 3a are arranged one-to-one with the air inlets 13c. The fans 21 are installed one-to-one with the accommodating cavities 3a. The waist belt 3 also has outlets 3c that are connected one-to-one with the accommodating cavities 3a. The outlets 3c are arranged opposite to the air inlets 13c. The fans 21 are used to generate airflow that enters the air duct 1a through the corresponding outlets 3c and the corresponding air inlets 13c. Thus, on the one hand, since the air blower 2 is installed in the receiving cavity 3a of the waist belt 3, and the waist belt 3 is detachably connected to the hem of the garment body 1, the air blower 2 can maintain a relatively fixed state with the garment body 1 through the waist belt 3, so as to ensure that the airflow generated by the fan 21 can reliably enter the air duct 1a and achieve effective heat dissipation for the human body. On the other hand, it also allows the weight of the air blower 2 to be reasonably distributed on the waist of the human body through the waist belt 3, preventing the garment body 1 from being pulled downward and deformed due to the weight of the air blower 2, and ensuring the normal movement of the wearer. In addition, the detachable connection between the waist belt 3 and the garment body 1 can not only separate the air blower 2 from the garment body 1 for easy cleaning of the garment body 1, but also allow the waist belt 3 to be used as a waist belt fan independently. On the other hand, since the 2N air inlets 13c are arranged symmetrically on both sides of the back garment 16, and each air inlet 13c corresponds to a receiving cavity 3a, when the 2N fans 21 are installed in the 2N receiving cavities 3a, the weight of the air blower 2 can be reasonably distributed by symmetrically arranging the fans 21 to the left and right, thus avoiding the problem of the waist belt 3 sagging on one side due to unbalanced gravity. This is beneficial to improving the comfort of the wearer during use. In addition, since the outlet 3c connected to the receiving cavity 3a is arranged in a corresponding manner with the corresponding air inlet 13c, and each fan 21 can generate airflow that enters the air duct 1a through the corresponding outlet 3c and the corresponding air inlet 13c, this design can effectively increase the airflow, thereby enabling the garment 100 with fans to better cool the human body.

[0078] As an illustration, there are two fans 21 and two air inlets 13c.

[0079] Schematic illustration: a receiving channel 3b connects two adjacent receiving cavities 3a. The receiving channel 3b is used to receive the connecting wires 26 that electrically connect the two adjacent fans 21. The receiving channel 3b is provided with a closure 34 for opening or closing the receiving channel 3b. In this way, all fans 21 can be electrically connected to facilitate synchronous control of all fans 21, while the connecting wires 26 in the air blower 2 can be hidden inside the waist belt 3 to avoid the connecting wires 26 being exposed and interfering with the wearer's activities, and also to prevent the connecting wires 26 from being easily damaged by external factors.

[0080] Optionally, in one embodiment, see [reference] Figure 1 , Figure 2 , Figure 6 ,and Figure 7 and Figure 8 The air supply unit 2 includes a guide shroud 24, and there are 2N guide shrouds 24. The guide shrouds 24 are arranged one-to-one with the fan 21 and the receiving cavity 3a. The guide shroud 24 has a guide channel 24a that extends through both ends. One end of the guide shroud 24 is connected to the air outlet surface of the corresponding fan 21, and the other end passes through the corresponding outlet 3c from the corresponding receiving cavity 3a and enters the air duct 1a through the corresponding air inlet 13c. All outlets 3c are provided with pull ropes on their edges. The pull ropes are used to tighten the corresponding outlets 3c to fix the corresponding guide shroud 24. Thus, on the one hand, since one end of the air guide shroud 24 is connected to the air outlet of the corresponding fan 21, and the other end can pass through the corresponding receiving cavity 3a through the corresponding outlet 3c and enter the air guide duct 1a through the corresponding air inlet 13c, the air guide channel 24a in the air guide shroud 24 can connect the air outlet of the fan 21 and the air guide duct 1a. Therefore, when the fan 21 is started, the airflow produced by the fan 21 can enter the air guide duct 1a under the guidance of the air guide shroud. The air guide duct 1a can then allow the airflow to flow along the designed route to the air outlet, so that the airflow can be blown to the human body surface through the air outlet, thereby cooling the human body. On the other hand, since the pull rope is set at the edge of the outlet 3c, when the pull rope is tightened, the tension can be fastened to the outer periphery of the air guide shroud 24 to fix the air guide shroud 24 and the waist belt 3, thereby preventing the air guide shroud 24 from falling off from the air inlet 113c due to the displacement of the air guide shroud 24, which is beneficial to improving the stability of the structure.

[0081] Alternatively, all air inlets 13c have elastic elements at their edges, which are used to fit around the outer periphery of the corresponding fan 21. Thus, under the action of the elastic elements, the air inlets 13c can form a sealed opening, allowing the edges of the air inlets 13c to fit tightly against the outer periphery of the air guide shroud 24 during assembly, thereby sealing the gap between the edges of the air inlets 13c and the air guide shroud 24. This ensures that the airflow can be reliably guided to each air outlet through the air guide channel and the air guide duct 1a.

[0082] In one embodiment, see Figure 7 and Figure 8 The waist belt 3 has a first connector 32 and a second connector 33 at each end, which are detachably connected. The waist belt 3 can be fixed to the waist of the wearer through the first connector 32 and the second connector 33. In this way, through the cooperation of the first connector 32 and the second connector 33, the waist belt 3 can be more stably fixed to the waist of the wearer, so that the waist belt 3 can better support the air blower 2 and prevent the air blower 2 from pulling on the garment body 1 due to its weight. At the same time, it also allows the wearer to easily remove or put on the waist belt 3, improving the user experience.

[0083] Optionally, in one embodiment, one of the first connector 32 and the second connector 33 is a buckle, and the other is a strap. This allows the user to adjust the size of the belt 3 as needed, improving comfort when wearing the belt 3. In other embodiments, both the first connector 32 and the second connector 33 can be cords.

[0084] Optional, see below Figure 1 and Figure 7 The belt 3 is connected to the hem of the garment body 1 by a first zipper 31. This facilitates the easy removal of the belt 3 from the garment body 1 for cleaning the garment body 1, and also allows the belt 3 to be used independently.

[0085] Combination Figure 1 and Figure 2 As shown, the fan-equipped garment 100 described above includes a garment body 1 and an air blower 2. The garment body 1 has an air inlet 13c and multiple air outlets connected via an air duct 1a within the garment body 1. The fan 21 in the air blower 2 generates airflow that enters the air duct 1a through the air inlet 13c. This allows the airflow generated by the fan 21 to be guided by the air duct 1a and blown out from each air outlet to cool and dissipate heat in various parts of the garment. The multiple air outlets include a first air outlet 11b located at the back collar, a second air outlet 12b located at the back garment panel 16, and a third air outlet 13b located in the armpit area. Further, the multiple air outlets include a converging air outlet 18b located at the back garment panel 16; and / or, a fourth air outlet 14b located at the front garment panel 14.

[0086] In fact, the air blower 2 described above can be combined with the garment body 1 to form a fan-equipped garment 100 that can cool the wearer, and can also be combined with other wearable garments to form garments that can provide cooling airflow to the wearer. Based on this, an air blower 2 applied to wearable garments will be specifically described below. The features of this air blower 2 are also applicable to the fan-equipped garment 100 described in the above embodiments.

[0087] See Figure 6 and Figure 9 This application provides a blower 2 for wearable clothing. The blower 2 is installed in the containment space of the clothing and generates airflow. The blower 2 includes a fan 21, an electronic control component 22, and a connector 23. The two ends of the connector 23 are respectively connected to the fan 21 and the electronic control component 22, and the connector 23 is provided with a wire passage for a conductive cable to pass through. The conductive cable is used to electrically connect the fan 21 and the electronic control component 22. One of the fan 21 and the electronic control component 22 has an adapter surface 2a facing the human body and a non-adaptive surface 2b opposite to the adapter surface 2a. The adapter surface 2a is an arc surface for adapting to the human body. The other of the fan 21 and the electronic control component 22 has a contact surface 2c facing the human body. The connector 23 is configured to deform under external force so that the relative positions of the fan 21 and the electronic control assembly 22 can be offset, and the connector 23 is configured in a static state such that the end of the adapter surface 2a facing away from the mating surface 2c protrudes from the mating surface 2c toward the side away from the non-adapter surface 2b.

[0088] In the aforementioned air blower 2 applied to wearable clothing, since the air blower 2 is installed within the storage space of the clothing and is used to generate airflow, when the wearer wears clothing equipped with the air blower 2, the airflow blown by the air blower 2 can cool the person down, thereby improving the comfort of wearing the clothing. Specifically, since the fan 21 and the electronic control component 22 are connected via a connector 23, and the electronic control component 22 and the fan 21 are electrically connected via a conductive cable passing through the connector 23, the electronic control component 22 in the air blower 2 can provide power to the fan 21 and / or control the fan 21 to ensure that the air blower 2 can reliably generate airflow. At the same time, this also makes the fan 21 and the electronic control component 22 two independent devices. Therefore, compared to a design where the electronic control component 22 and the fan 21 are integrated into one unit, this design allows the air blower 2 to be thinner and lighter overall, thus allowing the air blower 2 to be better concealed within the clothing, avoiding any protrusion that would affect the aesthetics of the clothing. Furthermore, since one of the fan 21 and the electronic control component 22 has an arc-shaped fitting surface 2a for facing the human body and for fitting the human body, and the connector 23 can deform under external force, so that the connector 23 is configured in a static state such that the end of the fitting surface 2a facing away from the contact surface 2c protrudes relative to the contact surface 2c towards the side away from the non-fitting surface 2b, while the relative position between the fan 21 and the electronic control component 22 can be shifted, the overall structure composed of the fan 21, the electronic control component 22 and the connector 23 can be maintained in an arc-shaped state in a static state, so that the blower 2 can initially ensure that it can fit and conform to the uneven human body surface by utilizing the fitting surface 2a and the arc-shaped overall structure. Furthermore, when clothing equipped with the air blower 2 is worn, the relative position between the fan 21 and the electronic control component 22 can be finely adjusted by the deformation of the connector 23 under the action of the human body, thereby driving the air blower 2 to further conform to the curve of the human body and improve the comfort of wearing the clothing.

[0089] In one embodiment, see Figure 6 and Figure 9 The connector 23 is an elastic connector, configured to undergo elastic deformation under external force, so that the relative positions of the fan 21 and the electronic control component 22 can be offset. In this way, under external force, the elastic connector can use its own elastic properties to change the positional relationship between the fan 21 and the electronic control component 22, so that the blower 2 can better adapt to the curves of the human body and improve the comfort when wearing clothing.

[0090] In another embodiment, see Figure 6 and Figure 9The connector 23 is a flexible connector made of a flexible material. The flexible connector is configured to bend and deform under external force, so that the relative positions of the fan 21 and the electronic control component 22 can be misaligned. In this way, when the flexible connector is subjected to pressure or tension, the flexible connector can quickly deform to meet the need to change the positional relationship between the fan 21 and the electronic control component 22, thereby ensuring the comfort of the clothing equipped with the air supply 2 when worn.

[0091] Furthermore, in one embodiment, see [reference] Figure 6 , Figure 9 and Figure 10 The flexible connector has a first end 233a and a second end 233b. The first end 233a is the side of the flexible connector that is away from the human body, and the second end 233b is the side of the flexible connector that is facing the human body. The first length L1 of the first end 233a in the direction of the flexible connector connecting the fan 21 and the electronic control component 22 is greater than the second length L2 of the second end 233b in the direction of the flexible connector connecting the fan 21 and the electronic control component 22. Thus, since the second length L2 of the second end 233b facing the human body in the flexible connector is less than the first length L1 of the first end 233a on the opposite side, when an external force bends the flexible connector in the opposite direction of the first end 233a and the second end 233b, the deformation that the second end 233b can provide will be less than the deformation that the second end 233b can provide. As a result, when the flexible connector is connected between the fan 21 and the electronic control component 22, the flexible connector is more likely to bend towards the second end 233b. This also allows the overall structure formed by the fan 21, the electronic control component 22 and the flexible connector to maintain an arc shape, ensuring that the blower 2 can conform to the curve of the human body surface.

[0092] In one embodiment, see Figure 9 , Figure 10 and Figure 11The electronic control assembly 22 includes an electronic control housing 221 and an electronic control body. The electronic control body is disposed within the electronic control housing 221. A flexible connector connects the fan 21 and the electronic control housing 221. The electronic control body is electrically connected to the fan 21 via a conductive cable passing through a wiring channel. An adapter surface 2a is disposed on the outer surface of the electronic control housing 221. In this way, the electronic control body can reliably provide electrical power to the fan 21 and / or control the fan 21 via the wires and cables, thereby driving the fan 21 to generate a stable airflow. The electronic control housing 221 effectively protects the electronic control body disposed within it, while also ensuring a close fit between the housing and the human body surface using the adapter surface 2a, thus guaranteeing comfort during wear. Furthermore, since the electronic control housing 221 is connected to the fan 21 through a flexible connector, under the action of the flexible connector, the electronic control housing 221 can not only maintain the arc shape with the fan 21, but also shift relative to the fan 21, so as to further ensure that the blower 2 can fit the curve of the human body more closely when worn, thereby further improving the comfort of the clothing.

[0093] Optionally, in one embodiment, see [reference] Figure 6 and Figure 10 The blower 2 also includes a charging head 25, which is electrically connected to the electronic control component 22 via a charging cable 251. The charging head 25 is used to input electrical energy into the electronic control component 22. This facilitates the convenient delivery of external electrical energy to the blower 2, thereby improving ease of use.

[0094] Schematic illustration: The electronic control component 22 includes a battery, which is electrically connected to the charging head 25 via a charging cable 251. This allows the battery to store external electrical energy input to the charging head 25, enabling convenient use of the blower 2 without the need for an external power source. Schematic illustration: The electronic control body may include a battery.

[0095] In one embodiment, see Figure 11The flexible connector includes a first connecting portion 231, a second connecting portion 232, and an elastic portion 233 connecting the first connecting portion 231 and the second connecting portion 232. The first connecting portion 231 is connected to the electronic control component 22, and the second connecting portion 232 is connected to the fan 21. A hollow space 233c is formed inside the elastic portion 233c. A portion of the hollow space 233c forms an elastic deformation space, and the other portion forms a wiring channel. In this way, the flexible connector can be reliably connected between the electronic control component 22 and the fan 21 through the first connecting portion 231 and the second connecting portion 232. At the same time, the elastic part 233 of the flexible connector can both use the wire passage to run wires and cables to electrically connect the fan 21 and the electronic control component 22, thereby ensuring that the electronic control component 22 can reliably provide power to the fan 21 and control the fan 21; and use the space margin provided by the elastic deformation space to undergo flexible bending deformation, so that the positions of the fan 21 and the electronic control component 22 can be offset, thereby ensuring that the blower 2 can better fit the human body curve and ensure the comfort of the wearer.

[0096] Indicative, such as Figure 11 As shown, the first end 233a of the flexible connector is the side of the elastic part 233 that is away from the human body, and the second end 233b is the side of the elastic part 233 that is towards the human body.

[0097] Furthermore, in one embodiment, see [reference] Figure 11The electronic control component 22 has a first mounting surface 221a, and the fan 21 has a second mounting surface 211a. The first mounting surface 221a has a first mounting through hole, and the second mounting surface 211a has a second mounting through hole 221b. A first connecting part 231 passes through the first mounting through hole and is embedded inside the electronic control component 22, and a second connecting part 232 passes through the second mounting through hole 221b and is embedded inside the fan 21. The area of ​​the first mounting through hole on the first mounting surface 221a is greater than 50% and less than 80%, and the area of ​​the second mounting through hole 221b on the second mounting surface 211a is greater than 50% and less than 80%. Thus, when the first connecting part 231 is embedded in the electronic control component 22 through the first mounting through hole, and the second connecting part 232 is embedded in the fan 21 through the second mounting through hole 221b, the flexible connector can reliably connect the electronic control component 22 and the fan 21. Since the first connecting part 231 is embedded inside the electronic control component 22 and the second connecting part 232 is embedded inside the fan 21, the first connecting part 231 can engage with the edge of the first mounting through hole, and the second connecting part 232 can engage with the edge of the second mounting through hole 221b. Therefore, when the proportion of the first mounting through hole on the first mounting surface 221a and the proportion of the area of ​​the second mounting through hole 221b on the second mounting surface 211a are between 50% and 80%, the contact area between the connecting part and the edge of the mounting through hole can be effectively increased. This makes it difficult for the first connecting part 231 and the second connecting part 232 to fall out of the mounting through hole when the flexible connector is deformed by external force, thus ensuring the reliability and stability of the structure.

[0098] Indicative, such as Figure 11 As shown, the first mounting surface 221a is the side of the electronic control housing 221 near the fan 21.

[0099] In one embodiment, see Figure 6 and Figure 10The air blower 2 also includes a guide shroud 24, which has a guide channel 24a extending through both ends. One end of the guide shroud 24 is connected to the air outlet surface of the fan 21, and the other end extends out of the accommodating space. The guide shroud 24 includes a first connecting section 241 and a second connecting section 242 connected together. The end of the first connecting section 241 facing away from the second connecting section 242 is connected to the air outlet surface. The cross-sectional area of ​​the first connecting section 241 gradually decreases from the end near the air outlet surface to the other end, while the cross-sectional area of ​​the second connecting section 242 gradually increases from the end near the first connecting section 241 to the other end. In this way, the guide shroud 24 can effectively guide the airflow generated by the fan 21 out of the accommodating space, so as to better utilize the airflow to cool and relieve heat on the human body. In addition, since the guide shroud 24 has a narrow waist shape that is smaller in the middle and larger at both ends, the guide shroud 24 can be well fitted into the opening through which the guide shroud 24 extends, so that the guide shroud 24 can be nested with clothing, preventing the air blower 2 from falling off the clothing. In addition, this also improves the overall aesthetics.

[0100] Optionally, in one embodiment, see [reference] Figure 6 The fan 21 includes a frame 211 and a fan body 212. The fan body 212 is installed inside the frame 211. The frame 211 is connected to the electronic control component 22 via a connector 23. The fan body 212 is electrically connected to the electronic control component 22 via a conductive cable. The frame 211 has a second air vent 21a for allowing outside air to enter the frame 211. Multiple grids 21b are arranged at intervals on the second air vent 21a. Each grid 21b has a concave-convex structure on the side facing away from the fan body 212. Thus, when the fan body 212 is activated to drive air through the second air vent 21a and form an airflow, the portion of clothing opposite the second air vent 21a will be adsorbed onto the surface of the frame 211 under negative pressure. At this time, the concave-convex structure on the grids 21b prevents the clothing from completely covering the second air vent 21a, thereby ensuring that air can pass smoothly through the second air vent 21a to form an airflow.

[0101] Schematic, the concave-convex structure can be formed by a protrusion or groove on the side surface of the grid 21b away from the fan body 212; or, the concave-convex structure can also be formed by the side surface of the grid 21b away from the fan body 212, wherein the side surface of the grid 21b away from the fan body 212 is arc-shaped or wavy.

[0102] Indicative, such as Figure 11 As shown, the second mounting surface 211a is the side of the frame 211 near the electronic control component 22.

[0103] Optionally, in one embodiment, see [reference] Figure 6The number of fans 21 is 2N, where N is a positive integer. The 2N fans 21 are evenly spaced, and adjacent fans 21 are electrically connected via connecting wires 26. The 2N fans 21 are installed in one-to-one correspondence within the 2N compartments of the garment. The connecting wires 26 are positioned in channels between adjacent compartments. There are two electronic control components 22, each connected to two fans 21 located at opposite ends of the 2N fans 21 via a connector 23. The conductive cables in the connector 23 electrically connect the corresponding electronic control component 22 to the fan 21. In this way, by using multiple fans 21, the airflow of the air blower 2 is increased, allowing the garment equipped with the air blower 2 to better dissipate heat and cool the body. Since there are 2N fans 21 and two electronic control components 22, and the 2N fans 21 are evenly spaced, with each electronic control component 22 connected to one of the two fans 21 at each end via a connector 23, the air blower 2 can distribute its weight evenly and reasonably through a symmetrical arrangement. This avoids localized pulling on clothing due to gravity, improving the wearer's comfort. Furthermore, this arrangement allows the air blower 2 to be thinner and lighter, and the deformable nature of the connector 23 allows it to better conform to the body's curves. Since adjacent fans 21 are electrically connected via connecting wires 26, and the electronic control components 22 can be electrically connected to adjacent fans 21 via conductive cables, the electronic control components 22 can electrically connect to each fan 21 via conductive cables and connecting wires 26 to supply electrical energy or control commands to each fan 21. Furthermore, since the connecting line 26 is located within the passageway of two adjacent accommodating spaces, the connecting line 26 will not be exposed when the air blower 2 is installed inside clothing, thus helping to ensure the reliability of the structure.

[0104] For illustrative purposes, the number of fans 21 is 2.

[0105] Schematic illustration: one of the two electronic control components 22 can be a battery compartment for supplying power to the fan 21, and the other can be a control compartment for controlling the fan 21, such as controlling the fan 21's start / stop or speed setting. Alternatively, both electronic control components 22 can be battery compartments for supplying power to the fan 21.

[0106] The air blower 2 in the above embodiments can be combined with the garment body 1 mentioned above, and can also be combined with the waist belt 3 to form an air-blowing waist belt. Figure 7 and Figure 8 As shown.

[0107] Based on this, see Figure 7 and Figure 8This application also provides an air-supplying waist belt, including a waist belt 3 and an air blower 2 as described in any of the above embodiments. The waist belt 3 is worn on the waist of a person. The waist belt 3 has a receiving cavity 3a. The number of receiving cavities 3a and the number of fans 21 are both 2N, where N is a positive integer. The 2N receiving cavities 3a are evenly spaced along the extension direction of the waist belt 3. The fans 21 are installed in the receiving cavities 3a one-to-one. A connecting line 26 is provided between two adjacent fans 21. The connecting line 26 is located in the receiving channel 3b between two adjacent receiving cavities 3a. There are two electronic control components 22. The two electronic control components 22 are respectively installed in two receiving cavities 3a located at opposite ends of the 2N receiving cavities 3a, and are both connected to the corresponding fans 21 through connectors 23. The conductive cables in the connectors 23 are electrically connected to the corresponding electronic control components 22 and the fans 21.

[0108] In the aforementioned air-supplying waist belt, since the 2N receiving cavities 3a are evenly spaced along the extension direction of the waist belt 3, and the fans 21 are correspondingly installed in the receiving cavities 3a, and the two electronic control components 22 are respectively located in the receiving cavities 3a at both ends, the air-supplying waist belt 3 can reasonably balance the weight of the air supply device 2 by using a symmetrical arrangement, so as to avoid the problem of the waist belt 3 sagging in some areas, and also to ensure that the overall structure of the air-supplying waist belt 3 can be relatively thin and light, which is beneficial to improving the comfort of the wearer during use. Since two adjacent fans 21 are electrically connected by a connecting line 26, and the electronic control components 22 can be electrically connected to adjacent fans 21 by conductive cables, the electronic control components 22 can be electrically connected to each fan 21 by conductive cables and connecting lines 26, so that when the electronic control components 22 drive all fans 21 to work, the fans 21 can generate a stable airflow to dissipate heat and cool the wearer. Furthermore, since the connector 23 can deform under external force, the design of connecting the fans 21 at both ends to the corresponding electronic control components 22 via the connector 23 allows the air blower 2 to better fit the curves of the human body, thereby effectively improving the comfort of wearing the air-blowing waist belt 3. In addition, since the connecting wire 26 is located within the receiving channel 3b, the connecting wire 26 can be hidden inside the waist belt 3 to avoid interfering with the wearer's movements due to the connecting wire 26 being exposed, and also to prevent the connecting wire 26 from being easily damaged by external factors.

[0109] Schematic, the number of accommodating cavities 3a and the number of fans 21 are both 2.

[0110] Schematic illustration: the receiving channel 3b is provided with a closure 34 for opening or closing the receiving channel 3b. Thus, when assembling the air supply belt, the connecting wire 26 can be conveniently installed inside the receiving channel 3b.

[0111] Optional, see below Figure 6 ,and Figure 7 andFigure 8 The belt 3 also has an outlet 3c communicating with the receiving cavity 3a. The air blower 2 includes a guide shroud 24, and there are 2N guide shrouds 24. The guide shrouds 24 are arranged one-to-one with the fan 21 and the receiving cavity 3a. The guide shroud 24 has a guide channel 24a that runs through both ends. One end of the guide shroud 24 is connected to the air outlet surface of the corresponding fan 21, and the other end passes through the corresponding outlet 3c and out of the corresponding receiving cavity 3a. In this way, since one end of the guide shroud 24 is connected to the air outlet surface of the corresponding fan 21, and the other end can pass through the corresponding outlet 3c and out of the corresponding receiving cavity 3a, the guide channel 24a in the guide shroud 24 can effectively guide the airflow generated by the fan 21 so that the airflow can be blown to the surface of the human body, thereby cooling the human body.

[0112] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0113] The above embodiments merely illustrate several implementation methods of this application, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this patent application should be determined by the appended claims.

Claims

1. A blower (2) for use in wearable clothing, the blower (2) being installed within the containment space of the clothing and generating airflow, characterized in that... The air blower (2) includes a fan (21), an electronic control component (22), and a connector (23). The two ends of the connector (23) are respectively connected to the fan (21) and the electronic control component (22), and the connector (23) is provided with a cable passage for a conductive cable to pass through. The conductive cable is used to electrically connect the fan (21) and the electronic control component (22). One of the fan (21) and the electronic control component (22) has an adapter surface (2a) facing the human body and a non-adaptive surface (2b) opposite to the adapter surface (2a). The adapter surface (2a) is an arc surface for adapting to the human body. The other of the fan (21) and the electronic control component (22) has a contact surface (2c) facing the human body. The connector (23) is configured to deform under external force so that the relative positions of the fan (21) and the electronic control assembly (22) can be offset, and the connector (23) is configured in a static state such that one end of the adapter surface (2a) away from the mating surface (2c) protrudes relative to the mating surface (2c) toward the side away from the non-adapter surface (2b).

2. The air blower (2) according to claim 1, characterized in that, The connector (23) is a flexible connector made of flexible material. The flexible connector is configured to bend under external force so that the relative positions of the fan (21) and the electronic control component (22) can be offset.

3. The air blower (2) according to claim 1, characterized in that, The connector (23) is an elastic connector, which is configured to undergo elastic deformation under external force so that the relative positions of the fan (21) and the electronic control assembly (22) can be offset.

4. The air blower (2) according to claim 2, characterized in that, The flexible connector has a first end (233a) and a second end (233b). The first end (233a) is the side of the flexible connector that is away from the human body, and the second end (233b) is the side of the flexible connector that is facing the human body. The first length L1 of the first end (233a) in the direction in which the flexible connector connects the fan (21) and the electronic control component (22) is greater than the second length L2 of the second end (233b) in the direction in which the flexible connector connects the fan (21) and the electronic control component (22). And / or, the electronic control assembly (22) includes an electronic control housing (221) and an electronic control body, the electronic control body being disposed inside the electronic control housing (221), the flexible connector being connected between the fan (21) and the electronic control housing (221), the electronic control body being electrically connected to the fan (21) through the conductive cable passing through the wiring channel, and the adapter surface (2a) being disposed on the outer surface of the electronic control housing (221); And / or, the blower (2) further includes a charging head (25), which is electrically connected to the electronic control component (22) via a charging cable (251), and the charging head (25) is used to input electrical energy to the electronic control component (22).

5. The air blower (2) according to claim 2, characterized in that, The flexible connector includes a first connecting part (231), a second connecting part (232), and an elastic part (233) connecting the first connecting part (231) and the second connecting part (232). The first connecting part (231) is connected to the electronic control component (22), and the second connecting part (232) is connected to the fan (21). A hollow space (233c) is formed inside the elastic part (233). A part of the hollow space (233c) forms an elastic deformation space, and the other part forms the wire passage.

6. The air blower (2) according to claim 5, characterized in that, The electronic control component (22) has a first mounting surface (221a), and the fan (21) has a second mounting surface (211a). The first mounting surface (221a) has a first mounting through hole, and the second mounting surface (211a) has a second mounting through hole (221b). The first connecting part (231) passes through the first mounting through hole and is embedded inside the electronic control component (22). The second connecting part (232) passes through the second mounting through hole (221b) and is embedded inside the fan (21). The area of ​​the first mounting through hole on the first mounting surface (221a) is greater than 50% and less than 80%, and the area of ​​the second mounting through hole (221b) on the second mounting surface (211a) is greater than 50% and less than 80%.

7. The air blower (2) according to claim 1, characterized in that, The air blower (2) further includes a flow guide (24), which has a flow guide channel (24a) extending through both ends. One end of the flow guide (24) is connected to the air outlet surface of the fan (21), and the other end is used to pass through the accommodating space. The flow guide (24) includes a first connecting section (241) and a second connecting section (242) connected to each other. The end of the first connecting section (241) facing away from the second connecting section (242) is connected to the air outlet surface. The cross-sectional area of ​​the first connecting section (241) gradually decreases from the end closest to the air outlet surface to the other end, and the cross-sectional area of ​​the second connecting section (242) gradually increases from the end closest to the first connecting section (241) to the other end. And / or, the fan (21) includes a frame (211) and a fan body (212), the fan body (212) is installed inside the frame (211), the frame (211) is connected to the electronic control component (22) through the connector (23), the fan body (212) is electrically connected to the electronic control component (22) through the conductive cable, the frame (211) has a second air vent (21a), the second air vent (21a) is used to allow external air to enter the frame (211), the second air vent (21a) is arranged with a plurality of grids (21b) at intervals, and each grid (21b) has a concave-convex structure on the side away from the fan body (212).

8. The air blower (2) according to any one of claims 1 to 7, characterized in that, The number of fans (21) is 2N, where N is a positive integer. The 2N fans (21) are arranged evenly at intervals. Two adjacent fans (21) are electrically connected by a connecting line (26). The 2N fans (21) are installed in the 2N accommodating spaces of the garment in a one-to-one correspondence. The connecting line (26) is set in the channel between two adjacent accommodating spaces. The number of electronic control components (22) is two. The two electronic control components (22) are respectively connected to two fans (21) located at opposite ends of the 2N fans (21) through a connector (23). The conductive cable in the connector (23) is electrically connected to the corresponding electronic control component (22) and the fan (21).

9. A type of air-supplying belt, characterized in that, The device includes a waist belt (3) and a blower (2) as described in any one of claims 1 to 8. The waist belt (3) is worn on the waist of a person. The waist belt (3) has a receiving cavity (3a). The number of the receiving cavities (3a) and the number of the fans (21) are both 2N, where N is a positive integer. The 2N receiving cavities (3a) are evenly spaced along the extension direction of the waist belt (3). The fans (21) are installed in the receiving cavities (3a) one-to-one. A connecting rod is provided between two adjacent fans (21). Wiring (26), the connecting line (26) is disposed in the receiving channel (3b) between two adjacent receiving cavities (3a), the number of the electronic control components (22) is two, the two electronic control components (22) are respectively installed in two receiving cavities (3a) located at opposite ends of the 2N receiving cavities (3a), and both are connected to the corresponding fan (21) through the connector (23), the conductive cable in the connector (23) is electrically connected to the corresponding electronic control component (22) and the fan (21).

10. A garment (100) with a fan, characterized in that, The garment includes a garment body (1) and an air blower (2) as described in any one of claims 1 to 8. The garment body (1) is for wearing on the human body. The garment body (1) has an air inlet (13c) and a plurality of air outlets. The garment body (1) is provided with an air guide duct (1a) connecting the air inlet (13c) and the plurality of air outlets. The fan (21) is used to generate airflow that enters the air guide duct (1a) through the air inlet (13c).

11. The garment (100) with a fan according to claim 10, characterized in that, The plurality of air outlets include a first air outlet (11b), a second air outlet (12b), and a third air outlet (13b). The first air outlet (11b) is located at the back collar of the garment body (1), the second air outlet (12b) is located at the back panel (16) of the garment body (1), and the third air outlet (13b) is located in the underarm area of ​​the garment body (1). The air duct (1a) includes a first part (11a) and a second part (12a) that are connected. The first part (11a) is connected to the air inlet (13c) for airflow. The second part (12a) is connected to the first air outlet (11b), the second air outlet (12b), and the third air outlet (13b). The second part (12a) forms a back air duct (121a) on the back side of the garment body (1).

12. The garment (100) with a fan according to claim 11, characterized in that, The back panel (16) of the garment body (1) is provided with a first guide seam (11). The first guide seam (11) forms part of the inner wall of the back air duct (121a). The first guide seam (11) includes a first guide section (111) and a second guide section (113) and a junction (112) connecting the first guide section (111) and the second guide section (113). The junction (112) is arranged opposite to the air inlet (13c). The first guide section (111) is used to guide the airflow from the air inlet (13c) to the junction (112) to the third air outlet (13b). The second guide section (113) is used to guide the airflow from the air inlet (13c) to the junction (112) to the first air outlet (11b). And / or, the plurality of air outlets include a converging air outlet (18b), the converging air outlet (18b) being opened on the back piece (16) of the garment body (1), the back piece (16) of the garment body (1) also having an arc-shaped wind-blocking seam (12), the arc-shaped wind-blocking seam (12) being used to divide the first part (11a) and the second part (12a), the arc-shaped wind-blocking seam (12) having a concave opening, the concave opening facing the air inlet (13c) side, so that the arc-shaped wind-blocking seam (12) can form a converging space (111a) in the first part (11a), the converging air outlet (18b) being arranged in the converging space (111a), the airflow flowing into the air inlet (13c) partially flowing to the converging space (111a) and flowing out from the converging air outlet (18b) to the outside; And / or, the plurality of air outlets further includes a fourth air outlet (14b) opened on the front collar of the garment body (1), the air guide (1a) further includes a third part (13a), the third part (13a) is connected to the first part (11a), the third part (13a) forms a first front air guide (131a) on the front piece (14) of the garment body (1), and the first front air guide (131a) is connected to the airflow of the fourth air outlet (14b); And / or, the number of the fans (21) and the number of the air inlets (13c) are both 2N, where N is a positive integer. The back piece (16) of the garment body (1) is provided with 2N accommodating bags (13) for accommodating the fans (21) one by one. The 2N accommodating bags (13) are arranged and symmetrically arranged on both sides of the back piece (16), and the openings of the accommodating bags (13) are arranged opposite to the air inlets (13c) one by one.