Wearable temperature adjusting device

By designing independent heat dissipation and air outlet ducts in the wearable temperature control device, and combining the first fan, the second fan, and the cooling component, the problem of users being unable to switch working modes independently is solved, multi-mode control is achieved, and the user experience is improved.

CN224215475UActive Publication Date: 2026-05-08SHENZHEN LANHE TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN LANHE TECHNOLOGY CO LTD
Filing Date
2025-05-09
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Existing wearable temperature control devices cannot switch working modes independently according to user needs, and lack independent control capabilities for single blowing mode, single cooling mode, and mixed mode.

Method used

A wearable temperature control device is designed, comprising a main body and an adjustment arm. The main body is equipped with a first fan, a second fan, and a cooling component. The cooling component has a cooling section and a heat dissipation section. The housing is provided with separate heat dissipation ducts and air outlet ducts. Multi-mode operation is achieved by independently controlling the fans and the cooling component.

Benefits of technology

It enables independent control of multiple modes for wearable temperature control devices, allowing users to switch working modes independently according to their needs, thus improving the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a wearable temperature adjusting device which comprises a main body part and two adjusting arms connected to the two opposite ends of the main body part, and the adjusting arms can move relative to the main body part. The main body part and the adjusting arm form a wearing space; the main body part comprises a shell, a first fan, a second fan and a refrigerating part; a first air outlet is formed in the side, away from the wearing space, of the shell, a temperature conduction piece is arranged on the outer surface of the side, close to the wearing space, of the shell, and a second air outlet is formed in the temperature conduction piece; the refrigeration part is provided with a refrigeration part and a heat dissipation part which are oppositely arranged; the temperature conduction part is in heat conduction connection with the refrigeration part; a heat dissipation air duct and an air outlet air duct are further arranged in the shell, and heat of the heat dissipation part is conducted to the heat dissipation air duct; the heat dissipation air channel is connected with a first air outlet part and a first air outlet of the first fan. The air outlet air channel is connected with a second air outlet part and a second air outlet of the second fan. The heat dissipation air channels and the air outlet air channels are separated, the heat dissipation air channels and the first air outlet parts are arranged in a one-to-one mode, and the air outlet air channels and the second air outlet parts are arranged in a one-to-one mode.
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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] Existing wearable temperature-regulating devices (such as neck fans) generally use semiconductor cooling chips as the core cooling unit. These chips transfer the low temperature generated by the cooling surface to the skin-contact side via heat-conducting components (such as metal heat plates or heat pipes) to achieve contact cooling. Wearable temperature-regulating devices consist of a mid-section and two handheld sections connected at the front and rear ends of the mid-section. The mid-section fits tightly against the skin, and the semiconductor cooling chip is typically located in the mid-section to ensure effective cooling delivery to the user.

[0003] Because the middle section is in close contact with the skin, users are quite sensitive to its effects, and their requirements for the middle section's operating mode vary depending on the environment. Existing wearable temperature control devices rely on the same fan system to perform dual functions: firstly, to blow airflow to the user to enhance the perceived cooling effect, and secondly, to force heat dissipation from the hot end of the semiconductor cooling chip. Due to the rigid binding between the fan's operating logic and the cooling module, users cannot independently switch operating modes according to their actual needs. Specifically, the system lacks independent control capabilities for the following three basic modes: 1. Single blowing mode; 2. Single cooling mode; 3. Hybrid mode.

[0004] Therefore, a solution is urgently needed to address the issue that users cannot independently switch the working mode of wearable temperature control devices according to their actual needs. Utility Model Content

[0005] In order to improve at least some of the above-mentioned disadvantages or deficiencies, embodiments of the present invention provide a wearable temperature regulating device.

[0006] Specifically, this utility model provides a wearable temperature regulating device, including a main body and two adjusting arms connected to opposite ends of the main body, the adjusting arms being movable relative to the main body; the main body and the two adjusting arms form a wearable space; the main body includes a shell and a first fan, a second fan, and a cooling component disposed within the shell; a first air outlet is provided on the side of the shell away from the wearable space, and a temperature-conducting component is provided on the outer surface of the shell near the wearable space, the temperature-conducting component having a second air outlet; the cooling component has a cooling part and a heat dissipation part disposed opposite to each other, the temperature-conducting component being thermally connected to the cooling part; wherein, a heat dissipation duct and an air outlet duct are also provided inside the shell, the heat from the heat dissipation part being conducted to the heat dissipation duct; the heat dissipation duct is respectively connected to the first air outlet and the first air outlet of the first fan, and the air outlet duct is respectively connected to the second air outlet and the second air outlet of the second fan; the heat dissipation duct and the air outlet duct are separated, and the heat dissipation duct is configured one-to-one with the first air outlet, and the air outlet duct is configured one-to-one with the second air outlet.

[0007] In one embodiment of the present invention, the wearable temperature regulating device further includes: a radiator disposed inside the housing, the radiator being thermally connected to the heat dissipation part, the radiator being located in the heat dissipation duct, a first air outlet being disposed corresponding to the radiator, and a first fan being used to drive airflow through the radiator and out through the first air outlet.

[0008] In one embodiment of this utility model, the radiator and the cooling component are disposed between the first fan and the second fan.

[0009] In one embodiment of this utility model, a first air duct component and a second air duct component are further provided inside the housing. The first air duct component includes a first fan receiving portion and a first air guide portion connected to each other, and the first fan is disposed in the first fan receiving portion. The second air duct component has a second fan receiving portion and a second air guide portion connected to each other, and the second fan is disposed in the second fan receiving portion. The heat dissipation air duct is located on the first air guide portion, and the air outlet air duct is located on the second air guide portion. The first air guide portion and the second air guide portion are separated and disposed between the first fan and the second fan.

[0010] In one embodiment of the present invention, in the length extension direction of the main body, the opposite ends of the main body are respectively connected to the two adjusting arms, the first air guide and the second air guide are also separated along the length extension direction of the main body, and the cooling component is disposed between the first air guide and the second air guide.

[0011] In one embodiment of the present invention, the radiator is located at the end of the first air guide section away from the first fan, and the radiator and the second air guide section are arranged alternately side by side.

[0012] In one embodiment of this utility model, a third air duct component is further provided inside the housing. The housing has a height direction between a side close to the wearing space and a side away from the wearing space. The third air duct component includes a third fan receiving portion and a third air guide portion connected to each other. The first fan and the second fan are arranged in the third fan receiving portion along the height direction. The first fan is arranged away from the wearing space, and the second fan is arranged close to the wearing space. The heat dissipation air duct and the air outlet air duct are separated on the third air guide portion along the height direction.

[0013] In one embodiment of this utility model, there are two third air duct components, the cooling component is disposed between the two third air guides, and the radiator is connected to the two third air guides respectively.

[0014] In one embodiment of the present invention, the air outlet of the second air outlet is configured to be inclined toward the side of the cooling component.

[0015] In one embodiment of the present invention, a guide frame is further provided in the air outlet duct. One end of the guide frame is close to the second air outlet and the other end extends to the second air outlet, so that the air outlet direction of the second air outlet is inclined toward the cooling component.

[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 includes a main body and two adjusting arms connected to opposite ends of the main body. The adjusting arms can move relative to the main body. A first fan, a second fan, and a cooling component are arranged inside the housing of the main body. The cooling component has a cooling part and a heat dissipation part arranged opposite to each other. The heat conduction part is thermally connected to the cooling part. The housing is also provided with a heat dissipation duct and an air outlet duct that are separated from each other. The heat dissipation duct is thermally connected to the heat dissipation part. The heat dissipation duct connects the first air outlet of the first fan and the air outlet of the main body. The first air outlet and the air duct connect to the second air outlet and the second air outlet of the second fan. The heat dissipation duct is set one-to-one with the first air outlet, and the air outlet duct is set one-to-one with the second air outlet. This allows the first fan and the cooling component to work together to achieve skin-contact cooling and heat dissipation, control the first fan, the second fan and the cooling component to work simultaneously to achieve skin-contact cooling, air blowing and heat dissipation, and control only the second fan to work to achieve air blowing only. This enables multi-mode independent control of the middle section of the wearable temperature control device, allowing users to switch the working mode of the wearable temperature control device according to actual needs, which can greatly improve 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 and Figure 2 This is a schematic diagram of a wearable temperature regulating device provided in an embodiment of the present utility model.

[0019] Figure 3 for Figure 1 A schematic diagram of the exploded structure of a wearable temperature control device.

[0020] Figure 4 for Figure 1 A cross-sectional structural diagram of a wearable temperature control device.

[0021] Figure 5 for Figure 4 A magnified view of a portion of region A in the middle.

[0022] Figure 6 for Figure 1 Another cross-sectional structural diagram of the wearable temperature control device.

[0023] Figure 7 for Figure 6 A magnified view of a portion of region B in the middle.

[0024] Figure 8A for Figure 3 A schematic diagram of the structure of the first air duct component.

[0025] Figure 8B for Figure 3 A schematic diagram of the structure of the second air duct component.

[0026] Figure 9 for Figure 1 Another exploded view of the wearable temperature control device.

[0027] Figure 10 for Figure 2 A schematic diagram of the structure of the adjusting arm.

[0028] Figure 11 and Figure 12 This is a schematic diagram of another wearable temperature regulating device provided in an embodiment of the present invention.

[0029] Figure 13 for Figure 11 A schematic diagram of the exploded structure of a wearable temperature control device.

[0030] Figure 14 for Figure 11 A cross-sectional structural diagram of a wearable temperature control device.

[0031] Figure 15 for Figure 14 A magnified view of a portion of region C in the middle.

[0032] Figure 16 for Figure 13 A schematic diagram of the structure of the first air duct component.

[0033] Figure 17 for Figure 13 A schematic diagram of the structure of the second air duct component.

[0034] Figure 18 for Figure 11 Another exploded view of the wearable temperature control device.

[0035] Figure 19 for Figure 11 Another exploded structural diagram of a wearable temperature control device.

[0036] Figure 20 and Figure 21 This is a schematic diagram of another wearable temperature control device provided in an embodiment of the present utility model.

[0037] Figure 22 for Figure 20 A schematic diagram of the exploded structure of a wearable temperature control device.

[0038] Figure 23 for Figure 20 A cross-sectional structural diagram of a wearable temperature control device.

[0039] Figure 24 and Figure 25 for Figure 22 A schematic diagram of the structure of the third air duct component.

[0040] Main component numbers:

[0041] 10. Wearable temperature control device; 11. Main body; 12. Adjustable arm; 100. Housing; 101. Wearing space; 102. First air outlet; 103. First air inlet; 104. Third air outlet; 105. Second air inlet; 110. First housing; 120. Second housing; 121. Third housing; 122. Fourth housing; 123. Air duct bracket; 124. Third fan; 125. Battery; 126. Circuit board; 127. Connector; 210. First fan; 220. Second fan 310. Fan; 311. First air duct component; 312. Heat dissipation air duct; 313. First fan housing; 314. First air guide; 320. Second air duct component; 321. Air outlet air duct; 322. Second fan housing; 323. Second air guide; 331. Partition; 340. Third air duct component; 341. Third fan housing; 342. Third air guide; 400. Cooling component; 500. Temperature guiding component; 501. Second air outlet; 502. Protrusion; 600. Heat sink; 700. Air guide rib. Detailed Implementation

[0042] 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.

[0043] See Figures 1 to 3 The wearable temperature regulating device 10 provided in this embodiment of the utility model may include, for example, a main body 11 and two adjusting arms 12 connected to opposite ends of the main body 11. The adjusting arms 12 are movable relative to the main body 11. The main body 11 and the two adjusting arms 12 together form a wearing space 101, through which the wearable temperature regulating device 10 is worn on the user's body. Taking a neck fan as an example, the wearing space 101 is used to allow the neck fan to be worn around the user's neck. The main body 11 may include, for example, a housing 100, a first fan 210, a second fan 220, a cooling component 400, and a temperature conducting component 500.

[0044] Specifically, a first air outlet 102 may be provided on the side of the housing 100 away from the wearing space 101, which serves as the outlet of the heat dissipation duct 311. The first fan 210, the second fan 220, and the cooling component 400 are all disposed within the housing 100. A temperature-conducting component 500 is disposed on the outer surface of the housing 100, and is disposed on the side closer to the wearing space 101. The cooling component 400 has a cooling section and a heat dissipation section disposed opposite to each other. The temperature-conducting component 500 is thermally connected to the cooling section of the cooling component 400 to conduct the cold energy generated by the cooling component 400 to the user's skin. Therefore, the cooling section is disposed on the side closer to the wearing space 101 relative to the heat dissipation section. The heat dissipation section is used to dissipate the heat generated by the operation of the cooling component 400. The heat dissipation section is disposed opposite to the cooling section, which can be understood as being disposed on the side farther away from the wearing space 101 relative to the cooling section. The temperature-conducting component 500 is also provided with a second air outlet 501, which is used for air outlet. The second air outlet 501 is located on the temperature-conducting component 500 so that the air blown out from the second fan 220 can pass through the temperature-conducting component 500 and be blown out to the outside. When the cooling component 400 is working to cool, the air blown out from the second air outlet 501 is cold air. The housing 100 is also provided with a separate heat dissipation duct 311 and an air outlet duct 321. The heat dissipation duct 311 is thermally connected to the heat dissipation part of the cooling component 400, and conducts the heat of the heat dissipation part to the heat dissipation duct 311. The heat dissipation duct 311 is connected to the first air outlet part and the first air outlet 102 of the first fan 210 respectively. The air blown out by the first fan 210 passes through the heat dissipation duct 311 and carries the heat of the heat dissipation duct 311 out from the first air outlet 102. The air outlet duct 321 is connected to the second air outlet and the second air outlet 501 of the second fan 220. The air blown out by the second fan 220 passes through the air outlet duct 321 and is blown out from the second air outlet 501. Furthermore, the heat dissipation duct 311 is configured one-to-one with the first air outlet, and the air outlet duct 321 is configured one-to-one with the second air outlet, so that the air blown out by the first fan 210 flows only to the heat dissipation duct 311, and the air blown out by the second fan 220 flows only to the air outlet duct 321, so that the first fan 210, the second fan 220 and the cooling component 400 can be individually controlled to start or stop. When the first fan 210 and the cooling component 400 work simultaneously, the first fan 210 is used to dissipate heat from the cooling component 400, and the wearable temperature control device 10 starts a single cooling mode, in which case no air is blown; when the first fan 210, the second fan 220 and the cooling component 400 work simultaneously, the first fan 210 is used to dissipate heat from the cooling component 400, and the second fan 220 is used to blow air to the user, in which case the wearable temperature control device 10 starts a mixed mode of cooling and blowing air, and the air blows cold air; when only the second fan 220 works, the cooling component 400 does not work, and the wearable temperature control device 10 starts a single blowing air mode, in which case the air blows at room temperature.

[0045] The wearable temperature regulating device 10 provided in this embodiment includes a main body 11 and two adjusting arms 12 connected to opposite ends of the main body 11. The adjusting arms 12 are movable relative to the main body 11. A first fan 210, a second fan 220, and a cooling component 400 are provided inside the housing 100 of the main body 11. The cooling component 400 has a cooling section and a heat dissipation section arranged opposite to each other. A temperature conducting component 500 is thermally connected to the cooling section. The housing 100 is also provided with a heat dissipation duct 311 and an air outlet duct 321 that are separated from each other. The heat dissipation duct 311 is thermally connected to the heat dissipation section. The heat dissipation duct 311 connects the first air outlet section of the first fan 210 and the first air outlet 102 on the main body 11. The air outlet duct 321 connects to the second fan 210. The second air outlet and second air vent 501 of the 220 are configured one-to-one with the first air outlet, and the air outlet duct 321 is configured one-to-one with the second air outlet. This allows the first fan 210 and the cooling component 400 to cool and dissipate heat only when in contact with the skin. By controlling the first fan 210, the second fan 220 and the cooling component 400 to work simultaneously, the wearable temperature control device 10 can achieve skin-contact cooling, air blowing and heat dissipation. By controlling only the second fan 220 to work, the wearable temperature control device 10 can achieve air blowing only. This enables multi-mode independent control of the middle section of the wearable temperature control device 10. Users can switch the working mode of the wearable temperature control device according to their actual needs, resulting in a better user experience for the skin that is in close contact with the middle section, which can greatly improve the user experience. By setting a second air outlet 501 on the temperature-conducting component 500, the air blown out through the second air outlet 501 can be directed to the area corresponding to the cooling component 400, thereby dispersing the cold air in the area corresponding to the cooling component 400 and avoiding the problem of stuffiness and sweating caused by the area of ​​the temperature-conducting component 500 corresponding to the cooling component 400 coming into contact with the skin, further improving the user experience.

[0046] Furthermore, the wearable temperature control device 10 may also include, for example, a radiator 600, which is disposed within the housing 100, specifically on the side of the cooling component 400 away from the heat-conducting component 500. The radiator 600 is thermally connected to the heat dissipation part of the cooling component 400, and is used to dissipate the heat generated by the cooling component 400. The heat dissipation duct 311 connects to the radiator 600, for example, the radiator 600 is connected to the end of the heat dissipation duct 311, or the radiator 600 is disposed within the heat dissipation duct 311; so that the airflow blown out by the first fan 210 passes through the heat dissipation duct 311 and then through the radiator 600. The first air outlet 102 is set to correspond to the heat sink 600, for example, it is set above the heat sink 600. The first fan 210 is used to drive the airflow through the heat sink 600 and then out through the first air outlet 102. The air generated by the first fan 210 is blown to the heat sink 600 through the heat dissipation air duct 311 and then dispersed through the first air outlet 102, thereby achieving heat dissipation. By setting the heat sink 600, the heat dissipation effect can be further improved.

[0047] See Figure 3The heat-conducting element 500 may also have a protrusion 502 on the side near the wearing space 101. The protrusion 502 may include multiple adjacent protrusions or a single protrusion, and this embodiment is not limited thereto. By providing the protrusion 502, the second air outlet 501 can be prevented from sticking to the skin and thus failing to deliver air or reducing the air delivery effect.

[0048] See Figure 3 and Figure 10 The housing 100 may include, for example, a first housing 110 and a second housing 120. The first housing 110 is disposed away from the wearing space 101, and the second housing 120 is disposed close to the wearing space 101. The first housing 110 and the second housing 120 are connected to form an accommodating space. A first air outlet 102 is disposed on the first housing 110, and a temperature-conducting component 500 is disposed on the outer surface of the second housing 120. A first fan 210, a second fan 220, an air duct component 300, and a cooling component 400 are all disposed within the accommodating space. A first air inlet 103 is also disposed on the first housing 110 corresponding to the first fan 210 and the second fan 220. Two adjusting arms 12 are rotatably connected to both ends of the housing 100, for example. Each adjusting arm 12 may include, for example, a third housing 121, a fourth housing 122, a duct support 123, a third fan 124, a battery 125, a circuit board 126, and a connector 127. The duct support 123, the third fan 124, the battery 125, and the circuit board 126 are located within the third housing 121 and the fourth housing 122. The connector 127 connects the adjusting arm 12 to the main body 11, allowing the adjusting arm 12 to rotate relative to the main body 11. See also... Figure 1 The adjusting arm 12 is also provided with a third air outlet 104 and a second air inlet 105. The third fan 124 may be located, for example, at the end of the adjusting arm 12 away from the main body 11. The air blown out by the third fan 124 is blown out from the third air outlet 104 through the air duct bracket 123.

[0049] See Figures 4 to 7 In one embodiment of this invention, the heat sink 600 and the cooling component 400 are disposed between the first fan 210 and the second fan 220. Specifically, the first fan 210 and the second fan 220 are positioned near both ends of the housing 100, minimizing the distance the airflow from the two fans reaches the heat sink 600 and the cooling component 400. This simplifies the airflow arrangement, and the symmetrical arrangement of the fans makes the structural layout more rational and aesthetically pleasing. For example, the housing 100 may also contain a first airflow duct component 310 and a second airflow duct component 320. A heat dissipation airflow duct 311 is disposed on the first airflow duct component 310, and an exhaust airflow duct 321 is disposed on the second airflow duct component 320. The first airflow duct component 310 and the second airflow duct component 320 are located on opposite sides of the cooling component 400.

[0050] See Figure 5 and Figure 8AThe first air duct component 310 includes a first fan housing portion 312 and a first air guide portion 313 connected to each other. A heat dissipation air duct 311 is disposed on the first air guide portion 313, and the first fan 210 is disposed within the first fan housing portion 312. The heat dissipation air duct 311 may, for example, face towards the side near the first air outlet 102. The first fan housing portion 312 is, for example, a recess, and the first air outlet portion of the first fan 210 is disposed on the groove wall of the recess, and the first air outlet portion faces the first air guide portion 313. The first air guide portion 313 is disposed closer to the cooling component 400 than the first fan housing portion 312.

[0051] See Figure 7 and Figure 8B The second air duct component 320 includes a second fan housing 322 and a second air guide 323 connected to each other. An air outlet duct 321 is disposed on the second air guide 323, and the second fan 220 is disposed within the second fan housing 322. The air outlet duct 321 may, for example, face towards the side closer to the temperature conductor 500. The structure of the second air duct component 320 is similar to that of the first air duct component 310. The second fan housing 322 is, for example, a groove, and the second fan 220 is disposed within the groove. The second air outlet of the second fan 220 is disposed on the groove wall, and the second air outlet faces the second air guide 323. The second air guide 323 is disposed closer to the cooling component 400 than the second fan housing 322.

[0052] Furthermore, the heat dissipation duct 311 is located on the first air guide portion 313. For example, the first air guide portion 313 and the first housing 110 enclose the heat dissipation duct 311. The exhaust duct 321 is located on the second air guide portion 323. For example, the second air guide portion 323 and the second housing 120 enclose the exhaust duct 321. The first air guide portion 313 and the second air guide portion 323 are separated and located between the first fan 210 and the second fan 220. This ensures that the air blown out by the first fan 210 and the second fan 220 is directed towards the intermediate heat sink 600 and the cooling component 400, respectively.

[0053] like Figure 7 As shown, in one embodiment of this example, the heat dissipation duct 311 and the air outlet duct 321 are separated along the length extension direction of the housing 100. Along the length extension direction of the main body 11, opposite ends of the main body 11 are connected to two adjusting arms 12, respectively. The first air guide 313 and the second air guide 323 are also separated along the length extension direction of the main body 11, and the cooling component 400 is disposed between the first air guide 313 and the second air guide 323. See also... Figure 9The air outlet duct 321 can extend to the cooling component 400, for example, and the heat dissipation duct 311 extends to the heat sink 600. Thus, the heat dissipation duct 311 and the air outlet duct 321 are separated along the length of the housing 100. The cooling component 400 and the heat sink 600 are located between the first air guide 313 and the second air guide 323. That is, the heat dissipation duct 311 and the air outlet duct 321 are arranged in a left-right layout. The first air guide 313 is located between the first fan housing 312 and the heat sink 600, and the second air guide 323 is located between the second fan housing 322 and the cooling component 400. The air blown out by the fan is delivered to the target device with the shortest distance, so that the lengths of the first air guide 313 and the second air guide 323 are minimized, thereby reducing the volume and length of the wearable temperature control device 10. The temperature-conducting component 500 may be provided with a second air outlet 501 corresponding to the cooling component 400, and the air outlet duct 321 may extend to the side of the second air outlet 501 near the first fan 210.

[0054] See Figures 11 to 15 In one embodiment of this invention, the heat dissipation duct 311 and the air outlet duct 321 are separated along the width direction of the housing 100. The heat sink 600 is located at the end of the first air guide 313 away from the first fan 210, and the heat sink 600 and the second air guide 323 are arranged alternately side-by-side. See also... Figure 15 and Figure 16 The first fan 210 is fixed to the first fan housing 312, and the heat dissipation duct 311 faces the side near the first air outlet 102. See also Figure 17 The second fan 220 is mounted on the second fan housing 322, and the air outlet duct 321 faces the side closest to the temperature conductor 500. See also Figure 15 , Figure 18 and Figure 19 The second air guide 323 may extend, for example, to the bottom of the radiator 600 at a distance from the second fan housing 322. The first air guide 313 is connected to the radiator 600 at a distance from the first fan housing 312. In the width direction of the housing 100, the radiator 600 and the second air guide 323 are arranged side by side in an alternating manner, which can reduce the thickness of the wearable temperature control device 10.

[0055] See Figure 20 , Figure 21 and Figure 22 In one embodiment of this invention, a third air duct component 340 is further provided within the housing 100, and the housing 100 has a height direction (thickness direction of the housing 100) between a side near the wearing space 101 and a side away from the wearing space 101. See also Figure 24 and Figure 25The third air duct component 340 includes a third fan housing 341 and a third air guide 342 connected to each other. The first fan 210 and the second fan 220 are arranged along the height direction in the third fan housing 341. The first fan 210 is located away from the wearing space 101, and the second fan 220 is located close to the wearing space 101. For example, the heat dissipation air duct 311 and the air outlet air duct 321 are separated along the height direction on the third air guide 342. Specifically, the third air guide 342 includes a partition 331. The heat dissipation air duct 311 is located on the side of the partition 331 away from the wearing space 101, and the air outlet air duct 321 is located on the side of the partition 331 close to the wearing space 101. The partition 331 is located between the first air outlet and the second air outlet. The third fan housing 341 is a recessed groove. The first fan 210 and the second fan 220 are stacked in the groove along the height direction of the housing 100. The first air outlet of the first fan 210 and the corresponding second air outlet of the second fan 220 are both located on the groove wall. The first and second air outlets are also arranged along the height direction. The heat dissipation duct 311 of the third air duct component 340 can extend to the side of the second air outlet 501 away from the first fan 210, and the air outlet duct 321 extends to the heat sink 600. The heat dissipation duct 311 and the air outlet duct 321 can be separated by a partition 331. The heat dissipation duct 311 and the air outlet duct 321 are located on both sides of the partition 331. The first air outlet is connected to the heat dissipation duct 311, and the second air outlet is connected to the air outlet duct 321. With this arrangement, the configuration of the third air duct component 340 can be simplified, and the effect of controlling the first fan 210 and the second fan 220 can be achieved separately.

[0056] See Figure 20 , Figure 21 and Figure 22 There are two third air duct components 340. A cooling component 400 is located between the two third air guide sections 342, and a radiator 600 is connected to each of the two third air guide sections 342. The two third air duct components 340 are located at opposite ends of the radiator 600, extending along the length of the housing 100. There are two first fans 210 and two second fans 220. Each third fan housing 341 contains one first fan 210 and one second fan 220. See also... Figure 23 , Figure 24 and Figure 25 The heat dissipation duct 311 and the air outlet duct 321 are spaced apart along the thickness direction of the housing 100 on the third air guide portion 342, and the first fan 210 and the second fan 220 are stacked in the third fan receiving portion 341 along the height direction. By setting up two air duct components 300 and two sets of first fans 210 and second fans 220, the air volume and air efficiency can be further improved.

[0057] In one embodiment of this invention, the air outlet 501 is configured to be tilted towards the cooling component 400. Specifically, the air outlet duct 321 is tilted along the second air outlet of the second fan 220 towards the cooling component 400, thereby dispersing the cold air in the area corresponding to the cooling component 400 and preventing the area of ​​the heat-conducting component 500 corresponding to the cooling component 400 from coming into contact with the skin, thus further improving the user experience.

[0058] See Figure 7 , Figure 15 and Figure 23 In one embodiment of this invention, a guide frame 700 may be provided within the air outlet duct 321, for example. One end of the guide frame 700 is close to the second air outlet of the second fan 220, and the other end extends to the second air outlet 501, so that the air outlet direction of the second air outlet 501 is inclined towards the cooling component 400. For example, the guide frame 700 is inclined, which makes the airflow within the air outlet duct 321 smoother. Furthermore, the guide frame 700 may be, for example, an arc-shaped structure. By extending the guide frame 700 from the second air outlet of the second fan 220 to the second air outlet 501, the air blown by the second fan 220 can be blown out of the second air outlet 501 through the guide frame 700, which makes the airflow within the air outlet duct 321 smoother and improves the control of the airflow direction.

[0059] 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.

[0060] 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.

[0061] 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.

[0062] 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, The device includes a main body and two adjusting arms connected to opposite ends of the main body, the adjusting arms being movable relative to the main body; the main body and the two adjusting arms form a wearing space; the main body includes a housing and a first fan, a second fan, and a cooling component disposed within the housing; a first air outlet is provided on the side of the housing facing away from the wearing space, and a temperature-conducting component is provided on the outer surface of the housing near the wearing space, the temperature-conducting component having a second air outlet; the cooling component has a cooling section and a heat dissipation section disposed opposite to each other, the temperature-conducting component being thermally connected to the cooling section; The housing is further provided with a heat dissipation duct and an air outlet duct, and the heat from the heat dissipation part is conducted to the heat dissipation duct. The heat dissipation duct is connected to the first air outlet and the first air outlet of the first fan, and the air outlet duct is connected to the second air outlet and the second air outlet of the second fan. The heat dissipation duct and the air outlet duct are separated, and the heat dissipation duct is set one-to-one with the first air outlet, and the air outlet duct is set one-to-one with the second air outlet.

2. The wearable temperature regulating device as described in claim 1, characterized in that, Also includes: A radiator is disposed inside the housing and is thermally connected to the heat dissipation part. The radiator is located in the heat dissipation duct. A first air outlet is disposed corresponding to the radiator. A first fan is used to drive airflow through the radiator and out through the first air outlet.

3. The wearable temperature regulating device as described in claim 2, characterized in that, The radiator and the cooling component are disposed between the first fan and the second fan.

4. The wearable temperature regulating device as described in claim 3, characterized in that, The housing also includes a first air duct component and a second air duct component. The first air duct component includes a first fan housing and a first air guide connected to each other, with the first fan disposed within the first fan housing. The second air duct component has a second fan housing and a second air guide connected to each other, with the second fan disposed within the second fan housing. The heat dissipation air duct is located on the first air guide, and the air outlet air duct is located on the second air guide. The first air guide and the second air guide are separated and disposed between the first fan and the second fan.

5. The wearable temperature regulating device as described in claim 4, characterized in that, Along the length extension direction of the main body, the two opposite ends of the main body are respectively connected to the two adjusting arms. The first air guide and the second air guide are also separated along the length extension direction of the main body, and the cooling component is disposed between the first air guide and the second air guide.

6. The wearable temperature regulating device as described in claim 4, characterized in that, The radiator is located at the end of the first air guide section away from the first fan, and the radiator and the second air guide section are arranged alternately side by side.

7. The wearable temperature regulating device as described in claim 2, characterized in that, The housing is further provided with a third air duct component. The housing has a height direction between a side close to the wearing space and a side away from the wearing space. The third air duct component includes a third fan housing and a third air guide connected to each other. The first fan and the second fan are arranged in the third fan housing along the height direction. The first fan is arranged away from the wearing space, and the second fan is arranged close to the wearing space. The heat dissipation air duct and the air outlet air duct are separated on the third air guide along the height direction.

8. The wearable temperature regulating device as described in claim 7, characterized in that, The number of the third air duct components is two, the cooling component is disposed between the two third air guides, and the radiator is connected to the two third air guides respectively.

9. The wearable temperature-regulating device according to any one of claims 1 to 8, characterized in that, The air outlet of the second air outlet is configured to be tilted toward the side of the cooling component.

10. The wearable temperature regulating device as described in claim 9, characterized in that, The air outlet duct is also provided with a guide frame, one end of which is close to the second air outlet and the other end extends to the second air outlet.