Wearable temperature adjusting device
By setting multiple air outlets on the temperature-conducting component of the wearable temperature-regulating device, the air blown by the fan can effectively cover the temperature-conducting component, especially the temperature-lowest part, solving the problem of stuffiness and sweating and improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN LANHE TECHNOLOGY CO LTD
- Filing Date
- 2025-05-08
- Publication Date
- 2026-05-12
AI Technical Summary
Wearable temperature-regulating devices are prone to causing condensation and sweating when in contact with the skin, which affects the user experience.
A wearable temperature control device was designed, including a housing, a fan, a cooling component, and a temperature-conducting component. The temperature-conducting component is provided with multiple sets of air outlets. The air blown by the fan is blown from the extension to the temperature-conducting component through these air outlets, ensuring that the air can effectively cover the entire temperature-conducting component, especially the temperature-lowest part, and reduce the phenomenon of stuffiness and sweating.
By optimizing the design of the fan outlet, the air can be blown more effectively onto the temperature-conducting components, especially the temperature-conducting part, reducing stuffiness and improving the user experience.
Smart Images

Figure CN224230212U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of temperature control equipment technology, and in particular to a wearable temperature control device. Background Technology
[0002] With the rapid development of wearable devices, wearable temperature control devices (such as neck fans and neck coolers) have gradually become mainstream products for personal temperature control in summer due to their portability and instant cooling characteristics. These devices typically achieve localized cooling through semiconductor cooling technology. Specifically, a heat-conducting component is connected to a semiconductor cooling component. The semiconductor cooling component transfers cold energy to the heat-conducting component, which then comes into direct contact with the skin to cool it. When the surface temperature of the heat-conducting component is lower than the ambient temperature, the warm, humid air emitted by the skin condenses quickly into water droplets (condensation) upon contact with the cold surface of the heat-conducting component, creating a stuffy and sweaty experience for the user.
[0003] Therefore, a solution is urgently needed to address the problem of condensation and sweating when worn temperature-regulating devices are in contact with the skin. Utility Model Content
[0004] In order to improve at least some of the above-mentioned shortcomings or deficiencies, embodiments of this utility model provide a wearable temperature regulating device that can solve the problem of skin condensation and sweating, and improve the user experience.
[0005] Specifically, this utility model provides a wearable temperature control device, comprising: a housing having an internal accommodating space, the housing enclosing a wearable space; a fan disposed within the accommodating space; a cooling component disposed within the accommodating space; and a temperature-conducting component disposed on the outer surface of the housing and located on one side of the wearable space. The temperature-conducting component includes a temperature-conducting portion and an extension portion, the temperature-conducting portion being thermally connected to the cooling component; the extension portion extending beyond the cooling component from the temperature-conducting portion, the extension portion having at least two sets of first air outlets, the first air outlets communicating with the air outlet portion of the fan, and the at least two sets of first air outlets located on opposite sides of the temperature-conducting portion.
[0006] In one embodiment of this utility model, the air outlet direction of each group of first air outlets is inclined toward the temperature-conducting part.
[0007] In one embodiment of the present invention, the wearable temperature regulating device further includes: an air duct component disposed within the accommodating space, at least a portion of the air duct component forming an air outlet duct, one end of the air outlet duct being connected to the air outlet portion and the other end being connected to the first air outlet, the air outlet duct being inclined from the air outlet portion toward the direction close to the temperature conducting portion.
[0008] In one embodiment of the present invention, a guide frame is further provided in the air outlet duct, the guide frame extending from the air outlet to the first air outlet, so that the air outlet direction of the first air outlet is inclined toward the heat-conducting part.
[0009] In one embodiment of this utility model, the air guiding bone position has an arc-shaped air guiding surface, the air guiding surface forms a concave portion, and the opening of the concave portion faces the wearing space.
[0010] In one embodiment of the present invention, the air outlet has an air duct opening corresponding to the air outlet duct; each group of first air outlets includes two first air outlets, the first end of the guide frame is connected between the two first air outlets, the second end extends to the air duct opening and is located in the middle of the air duct opening; the thickness of the guide frame gradually decreases from the first end to the second end.
[0011] In one embodiment of this utility model, there are two fans and two sets of first air outlets. Each fan corresponds to one set of first air outlets, and the fan is located on the side of the first air outlet away from the cooling component.
[0012] In one embodiment of this utility model, two sets of air outlet ducts are provided in the accommodating space. The two ends of each set of air outlet ducts are respectively connected to the fan and the first air outlet. The two sets of air outlet ducts are located on opposite sides of the temperature-conducting part.
[0013] In one embodiment of the present invention, the wearable temperature regulating device further includes: a radiator disposed on the side of the cooling component away from the temperature conducting component; the air duct component further includes a partition; a heat dissipation air duct is provided in the accommodating space; the partition is located between the air outlet air duct and the heat dissipation air duct; one end of the heat dissipation air duct is connected to the air outlet and the other end is connected to the radiator.
[0014] In one embodiment of the present invention, the partition extends from the air outlet toward the direction close to the heat conduction part, the air outlet duct is at least partially formed by the partition, and the heat dissipation duct is at least partially formed by the partition.
[0015] In one embodiment of this utility model, the fan includes two sets, which are located at opposite ends of the cooling component. Each set of fans includes a first fan and a second fan. The first fan is connected to the heat dissipation duct, and the second fan is connected to the air outlet duct.
[0016] As can be seen from the above, the above-mentioned technical features of this utility model can have one or more of the following beneficial effects: The wearable temperature regulating device provided in this embodiment is provided with a shell, a fan, a cooling component, and a temperature conducting component. The temperature conducting component is disposed on the side of the shell close to the wearing space, and the temperature conducting component includes a temperature conducting part and an extension part. The temperature conducting part is thermally connected to the cooling component. At least two sets of first air outlets are provided on the extension part. The first air outlets are connected to the air outlet of the fan, and the at least two sets of first air outlets are located on opposite sides of the temperature conducting part. Since the temperature of the temperature conducting part corresponding to the cooling component is the lowest, the sweating effect is the most severe. Through the setting of the first air outlets on the temperature conducting part, the air blown by the fan blows out from the extension part and then blows from the extension part towards the center of the temperature conducting part. The air blown by the fan can effectively blow onto the entire temperature conducting part, especially the temperature conducting part, thereby reducing sweating and improving the user experience. Attached Figure Description
[0017] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0018] Figure 1 This is a schematic diagram of a wearable temperature regulating device provided in an embodiment of the present utility model.
[0019] Figure 2 This is a structural schematic diagram of the wearable temperature regulating device provided in an embodiment of the present invention from another angle.
[0020] Figure 3 for Figure 1 A schematic diagram of the exploded structure of a wearable temperature control device.
[0021] Figure 4 for Figure 1 A cross-sectional structural diagram of a wearable temperature control device.
[0022] Figure 5 for Figure 4 A magnified view of a portion of region A in the middle.
[0023] Figure 6A and Figure 6B for Figure 3 Schematic diagram of the stroke propulsion system.
[0024] Figure 7 for Figure 3 A schematic diagram of the structure of the second shell.
[0025] Figure 8 for Figure 1 Another exploded view of the wearable temperature control device.
[0026] Figure 9 An exploded view of another wearable temperature control device provided in an embodiment of this utility model.
[0027] Figure 10 for Figure 9 A cross-sectional structural diagram of a wearable temperature control device.
[0028] Main component numbers:
[0029] 10. Wearable temperature control device; 100. Housing; 101. Wearing space; 102. Inner wall; 103. Second air outlet; 104. Air inlet; 110. First housing; 120. Second housing; 121. Clearance part; 130. Connecting arm; 200. Fan; 201. Air outlet; 210. First fan; 220. Second fan; 300. Cooling component; 400. Temperature guiding component; 401. First air outlet; 402. Protrusion; 410. Temperature guiding component; 420. Extension part; 500. Air duct component; 510. Air outlet duct; 511. Air duct opening; 520. Heat dissipation duct; 530. Partition; 540. Fan mounting part; 600. Radiator; 610. Air guide rib; 611. First end; 612. Second end. Detailed Implementation
[0030] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0031] See Figures 1 to 3 The wearable temperature control device 10 provided in this embodiment of the utility model may specifically include, for example, a housing 100, a fan 200, a cooling component 300, and a temperature conducting component 400.
[0032] The housing 100 has an internal accommodating space, which encloses to form a wearing space 101. The wearing space 101 allows the wearable temperature regulating device 10 to be worn by the user. Taking a neck fan as an example, the wearing space 101 allows the wearable temperature regulating device 10 to be worn around the user's neck. In one embodiment of this example, the housing 100 may include, for example, a first housing 110, a second housing 120, and two connecting arms 130. The first housing 110 and the second housing 120 may cooperate to form an accommodating space. The two connecting arms 130 are located on opposite sides of the first housing 110 and the second housing 120. The second housing 120 and the two connecting arms 130 together form the wearing space. When the user wears the wearable temperature regulating device 10, the neck is accommodated within the wearing space. The fan 200, the cooling component 300, and the temperature conducting component 400 may be disposed within the accommodating space. A fan 200 is disposed within a housing 100, and a cooling element 300 is disposed within the housing 100. The cooling element 300 may be, for example, a semiconductor cooling element. A temperature-conducting element 400 is disposed on the outer surface of the housing 100 and located on one side of the wearable space 101. The temperature-conducting element 400 includes a temperature-conducting portion 410 and an extension portion 420. The temperature-conducting portion 410 is thermally connected to the cooling element 300, and the extension portion 420 extends beyond the cooling element 300 from the temperature-conducting portion 410. When the wearable temperature-regulating device 10 is worn on the user's body, the temperature-conducting element 400 is in contact with the user's skin, thereby conducting cool air. A clearance portion 121 is provided on the second housing 120 corresponding to the temperature-conducting portion 410. The clearance portion 121 may be, for example, a through hole, to allow the temperature-conducting portion 410 to be thermally connected to the cooling element 300.
[0033] The temperature-conducting component 400 is also provided with at least two sets of first air outlets 401, which are provided corresponding to the fan 200. The first air outlets 401 are connected to the air outlet of the fan 200. Specifically, the first air outlets 401 can be provided on the extension 420, for example, and the at least two sets of first air outlets 401 are located on opposite sides of the temperature-conducting component 410. When the cooling component 300 and the fan 200 are working, the air blown out by the fan 200 is blown out through at least two sets of first air outlets 401. Since the at least two sets of first air outlets 401 are located at opposite ends of the cooling component 300, the air blown out through the first air outlets 401 can reach the corresponding area of the cooling component 300 as much as possible. For example, some air flows towards the middle of the cooling component 300, thereby dispersing the cold air in the corresponding area of the cooling component 300. Since the temperature of the heat-conducting part 410 is the lowest, the sweating effect is the most severe. The above design effectively solves the problem of sweating caused by the contact between the area of the heat-conducting part 410 and the skin. Furthermore, the first air outlets 401 are located on the extension part 420, so that the air can reach the entire heat-conducting part 400 as much as possible, further solving the problem of sweating in the corresponding area of the heat-conducting part 400 and improving the user experience.
[0034] The wearable temperature control device 10 provided in this embodiment includes a housing 100, a fan 200, a cooling component 300, and a temperature-conducting component 400. The temperature-conducting component 400 is disposed on the outer surface of the housing 100 near the wearable space 101. The temperature-conducting component 400 includes a temperature-conducting part 410 and an extension part 420. The temperature-conducting part 410 is thermally connected to the cooling component 300. The extension part 420 is provided with at least two sets of first air outlets 401. The at least two sets of first air outlets 401 are connected to the air outlet of the fan 200, and the at least two sets of first air outlets 401 are located at opposite ends of the temperature-conducting part 410. Through the arrangement of the first air outlets 401 on the temperature-conducting component 400, the first air outlets 401 at both ends of the cooling component 300 blow air out through the fan 200, and the air blown out by the fan 200 can blow onto the corresponding temperature-conducting part 410 area of the cooling component 300. Since the temperature of the temperature-conducting part 410 on the temperature-conducting component 400 corresponding to the temperature-conducting component 300 is the lowest, the stuffy sweating effect is the most severe. By setting the first air outlet 401 on the temperature-conducting component 400, the air blown by the fan blows out from the extension part 420 and then blows from the extension part 420 towards the center of the temperature-conducting part 410. The air blown by the fan 200 can effectively blow to the entire temperature-conducting component 400, especially the temperature-conducting part 410, thereby reducing stuffy sweating and improving the user experience.
[0035] See Figure 3 The temperature-conducting element 400 may, for example, have a protrusion 402 on the side near the wearing space 101. The protrusion 402 may include, for example, multiple adjacent protrusions, or it may be a single, continuous protrusion; this embodiment is not limited to this. In one embodiment, the protrusion 402 may, for example, be located between two adjacent sets of first air outlets 401. In another embodiment, a protrusion 402 is provided near each set of first air outlets 401. The protrusion 402 prevents the first air outlets 401 from adhering to the skin and thus preventing airflow or reducing the airflow effect.
[0036] Furthermore, the air outlet direction of each group of first air outlets 401 is tilted towards the temperature guiding section 410. By setting the air outlet direction of the first air outlet 401 to be tilted towards the temperature guiding section 410, the air blown out of the first air outlet 401 can be blown as far as possible from the extension 420 towards the center of the temperature guiding section 410. The air blown out by the fan 200 can be effectively blown towards the entire temperature guiding component 400, especially the temperature guiding section 410, thereby reducing stuffiness and improving the user experience.
[0037] See Figures 3 to 6BThe wearable temperature control device 10 may, for example, also include an air duct component 500, which is disposed within the housing 100, specifically within the accommodating space. The air duct component 500 may include, for example, two components, located on opposite sides of the cooling component 300. An air outlet duct 510 is also provided within the accommodating space, with at least a portion of the air duct component 500 forming the air outlet duct 510; specifically, the air outlet duct 510 is disposed within the air duct component 500, or the air outlet duct 510 is formed by the air duct component 500 and the housing 100. See also Figure 5 and Figure 6B The housing 100 includes an inner sidewall 102 near the wearable space 101; the air duct 500 and the inner sidewall 102 form an air outlet duct 510, one end of which is connected to the air outlet 201 of the fan 200, and the other end is connected to the first air outlet 401. For example, the air duct 500 may also be provided with a fan mounting portion 540, on which the fan 200 is mounted, and the air outlet 201 is disposed on the air duct corresponding to the fan mounting portion 540. The air outlet duct 510 can be located, for example, on the side close to the wearable space 101, and the air outlet duct 510 is inclined along the direction from the air outlet 201 to the cooling component 300. Similarly, the air outlet duct 510 is inclined from the air outlet 201 toward the direction close to the temperature conducting part 410. There are also two sets of air outlet ducts 510 corresponding to the first air outlet 401. The two sets of air outlet ducts 510 correspond one-to-one with the two sets of first air outlets 401, so that the two air outlet ducts 510 are inclined relative to each other. This allows the air blown out of the first air outlets 401 on both sides of the cooling component 300 to blow from the extension 420 toward the center of the temperature conducting part 410. The air blown out by the fan 200 can effectively blow onto the entire temperature conducting part 400, thereby further increasing the area of the air blown onto the temperature conducting part 400. This can disperse the cold air in the area corresponding to the cooling component 300, avoid the problem of stuffiness and sweating caused by the area of the temperature conducting part 400 corresponding to the cooling component 300 coming into contact with the skin, and improve the user experience.
[0038] See Figure 5 and Figure 7For example, a guide frame 610 may be provided within the air outlet duct 510, and the guide frame 610 is inclined. The guide frame 610 extends from the air outlet 201 of the fan 200 to the first air outlet 401, so that the air outlet direction of the first air outlet 401 is inclined towards the temperature guide section 410. The guide frame 610 may be located within the air outlet duct 510. By setting the guide frame 610, the airflow within the air outlet duct 510 is smoother. By extending the guide frame 610 from the air outlet 201 to the first air outlet 401, the air blown by the fan 200 from the air outlet 201 can be blown out of the first air outlet 401 through the guide frame 610, which can make the airflow within the air outlet duct 510 smoother and improve the control of the airflow direction. In one embodiment of this invention, the housing 100 may, for example, also have an inner sidewall 102 near the wearable space 101, and the airflow guide rib 610 is inclined towards the inner sidewall 102 along the air outlet 201, and the airflow guide rib 610 has an arc-shaped structure. By tilting the airflow guide rib 610 and making it an arc-shaped structure, the smoothness of airflow can be further improved, thereby improving the airflow effect. Specifically, the airflow guide rib 610 has an arc-shaped airflow guide surface, and the airflow guide surface forms a concave portion, with the opening of the concave portion facing the wearable space 101. Taking the direction near and away from the wearable space 101 as the thickness direction of the wearable temperature control device 10, in the thickness direction of the wearable temperature control device 10, the position of the air outlet 201 is higher than the position of the first air outlet 401, and the concave portion of the airflow guide rib 610 faces the wearable space 101, so that the air blown from the high position flows along the airflow guide trajectory of the concave portion to the low position of the first air outlet 401, making the airflow smoother and less prone to turbulence.
[0039] Furthermore, the air outlet 201 has an air duct opening 511 corresponding to the air outlet duct 510, and another part of the air outlet 201 corresponds to the heat dissipation duct 520. Each group of first air outlets 401 may include, for example, two first air outlets 401. The first end 611 of the guide frame 610 is connected between the two first air outlets 401, and the second end 612 extends to the air outlet 201 and is located in the middle of the air duct opening 511. The thickness of the guide frame 610 gradually decreases from the first end 611 to the second end 612. With this arrangement, the guide frame 610 can divide the air outlet duct 510 into two, each connected to a first air outlet 401. And by gradually decreasing the thickness of the guide frame 610 from the first end 611 to the second end 612, the concentration of the air blown out of each first air outlet 401 can be improved, thereby improving the air outlet effect.
[0040] In one embodiment of this invention, the fan 200 may include two fans, with two sets of first air outlets 401. Each fan 200 corresponds one-to-one with each set of first air outlets 401. The two fans 200 are located at opposite ends of the cooling component 300, and the first air outlets 401 are located between the cooling component 300 and the fans 200. By setting up two fans 200, the two fans 200 can exhaust air through the first air outlets 401, which can increase the blowing area of the heat-conducting component 400, improve the airflow effect, further reduce stuffiness and sweating, and improve the user experience. Furthermore, two sets of air outlet ducts 510 are provided in the accommodating space. The opposite ends of each set of air outlet ducts 510 are connected to the fan 200 and the first air outlet 401, respectively. The two sets of air outlet ducts 510 are located on opposite sides of the heat-conducting component 410.
[0041] See Figure 3 , Figure 5 , Figure 6B and Figure 8 The wearable temperature control device 10 provided in this embodiment may, for example, also include a heat sink 600. The heat sink 600 is disposed on the side of the cooling component 300 away from the heat-conducting component 400, and is used for heat dissipation. The air duct component 500 may, for example, also include a heat dissipation air duct 520 and a partition 530. The partition 530 is located between the air outlet air duct 510 and the heat dissipation air duct 520. One end of the heat dissipation air duct 520 is connected to the fan 200, and the other end is connected to the heat sink 600. The first housing 110 may, for example, also be provided with a second air outlet 103 and an air inlet 104. The air inlet 104 is provided corresponding to the fan 200, and the second air outlet 103 may, for example, be provided corresponding to the heat sink 600. The air blown out by the fan 200 can pass through the heat dissipation air duct 520 and the heat sink 600 and be blown out from the second air outlet 103, thereby achieving a heat dissipation effect. By setting up the heat dissipation duct 520 and the partition 530, the exhaust duct 510 and the heat dissipation duct 520 can be separated, which can improve the air outlet effect and heat dissipation effect. Furthermore, the functions of heat dissipation and air outlet can be achieved by a single fan 200.
[0042] Furthermore, the partition 530 may extend from the air outlet 201 toward the direction close to the heat conduction section 410, for example. The air outlet duct 510 is at least partially formed by the partition 530, and the heat dissipation duct 520 is at least partially formed by the partition 530. Specifically, the side of the partition 530 near the wearing space 101 forms the air outlet duct 510 with the housing 100; the side of the partition 530 away from the wearing space 101 forms the heat dissipation duct 520 with the housing 100. In one embodiment of this example, the partition 530 has an arc-shaped structure, and the partition 530 may, for example, have the same arc shape as the guide bone 610. By tilting the partition 530 from the air outlet 201 toward the wearing space 101, the accommodating space on the side of the partition 530 away from the wearing space 101 is larger than the accommodating space on the side of the partition 530 near the wearing space 101, thereby allowing the radiator 600 to be made larger and improving heat dissipation efficiency. By setting the baffle 530 to an arc-shaped structure, the smoothness of airflow can be improved.
[0043] See Figure 9 and Figure 10 In one embodiment of this invention, the fan 200 may include, for example, two sets, located at opposite ends of the cooling component 300. Each set of fans 200 may include, for example, a first fan 210 and a second fan 220, with the first fan 210 connected to the heat dissipation duct 520 and the second fan 220 connected to the exhaust duct 510. By configuring the first fan 210 and the second fan 220, the user can control the activation of the first fan 210 and / or the second fan 220 to control different modes such as heat dissipation only, cooling only, or both, thereby improving the user experience.
[0044] Furthermore, it is understood that the foregoing embodiments are merely illustrative examples of this utility model. Provided that the technical features do not conflict, the structure is not contradictory, and the inventive purpose of this utility model is not violated, the technical solutions of the various embodiments can be arbitrarily combined and used.
[0045] In the several embodiments provided in this application, it should be understood that the disclosed systems, apparatuses, and methods can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for instance, the division of units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be an indirect coupling or communication connection between devices or units through some interfaces, and may be electrical, mechanical, or other forms.
[0046] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.
[0047] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and not to limit it. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this utility model.
Claims
1. A wearable temperature-regulating device, characterized in that, include: The shell has an internal accommodating space, and the shell encloses and forms a wearable space; A fan is disposed within the accommodating space; A cooling component is disposed within the accommodating space; A temperature-conducting component is disposed on the outer surface of the housing and located on one side of the wearable space. The temperature-conducting component includes a temperature-conducting part and an extension part. The temperature-conducting part is thermally connected to the cooling component and extends to the outline edge of the cooling component. The extension part extends beyond the cooling component from the temperature-conducting part. At least two sets of first air outlets are provided on the extension part. The first air outlets are connected to the air outlet of the fan. The at least two sets of first air outlets are located on opposite sides of the temperature-conducting part.
2. The wearable temperature regulating device as described in claim 1, characterized in that, The air outlet of the first air outlet in each group is tilted towards the side of the heat-conducting part.
3. The wearable temperature regulating device as described in claim 2, characterized in that, Also includes: An air duct component is disposed within the accommodating space. At least a portion of the air duct component forms an air outlet duct. One end of the air outlet duct is connected to the air outlet section, and the other end is connected to the first air outlet. The air outlet duct is inclined from the air outlet section toward the direction close to the temperature-conducting section.
4. The wearable temperature regulating device as described in claim 3, characterized in that, The air outlet duct is also provided with a flow guide rib, which extends from the air outlet to the first air outlet so that the air outlet direction of the first air outlet is tilted toward the heat conduction part.
5. The wearable temperature regulating device as described in claim 4, characterized in that, The airflow guide has an arc-shaped airflow guide surface, which forms a concave portion, with the opening of the concave portion facing the wearable space.
6. The wearable temperature regulating device as described in claim 4, characterized in that, The air outlet has an air duct opening corresponding to the air outlet duct; each group of first air outlets includes two air outlet holes, the first end of the guide frame is connected between the two air outlet holes, the second end extends to the air duct opening and is located in the middle of the air duct opening; the thickness of the guide frame gradually decreases from the first end to the second end.
7. The wearable temperature-regulating device according to any one of claims 1 to 6, characterized in that, The fan is provided in two sets, and the first air outlet is provided in two sets. Each fan corresponds to each set of the first air outlet, and the fan is located on the side of the first air outlet away from the cooling component.
8. The wearable temperature regulating device as described in claim 7, characterized in that, The accommodating space is provided with two sets of air outlet ducts. The two ends of each set of air outlet ducts are respectively connected to the fan and the first air outlet. The two sets of air outlet ducts are located on opposite sides of the temperature conducting part.
9. The wearable temperature-regulating device according to any one of claims 3 to 6, characterized in that, Also includes: A radiator is disposed on the side of the cooling component away from the temperature conducting component. The air duct component also includes a partition. A heat dissipation air duct is provided in the accommodating space. The partition is located between the air outlet air duct and the heat dissipation air duct. One end of the heat dissipation air duct is connected to the air outlet and the other end is connected to the radiator.
10. The wearable temperature regulating device as described in claim 9, characterized in that, The partition extends from the air outlet toward the heat-conducting part, and the air outlet duct is at least partially formed by the partition, and the heat dissipation duct is at least partially formed by the partition.
11. The wearable temperature regulating device as described in claim 9, characterized in that, The fan includes two sets, which are located at opposite ends of the cooling component. Each set of fans includes a first fan and a second fan. The first fan is connected to the heat dissipation duct, and the second fan is connected to the air outlet duct.