Wearable temperature control device and wearable article
By designing a wearable temperature control device, using the combination of the shell, temperature control body and loading components, the problem of bulky and indisassembly of human air conditioners in the prior art is solved, and flexible regulation and comfort of the wearer's surface temperature is achieved.
Patent Information
- Application Number
- CN202422171553.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-05
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-09-05
AI Technical Summary
The existing human body air conditioners have a single and bulky structure and cannot be disassembled, which affects the wearer's behavior and clothing cleaning.
A wearable temperature control device is designed, including a housing, a temperature control body and a loading assembly. The shell adopts a hollow structure, and the temperature control main body is equipped with cavity, pipe segments and media. By applying stress to the loading component, the pipe segments are deformed and heat or cold is generated to achieve temperature control.
Timely control of the surface temperature of the wearer is achieved to ensure the user's comfort, and the shell can be freely disassembled to avoid the impact on the wearer's behavior and clothing cleaning.
Smart Images

Figure CN222965603U_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the technical field of temperature control, and particularly relates to a wearable temperature control device and a wearable item. Background Art
[0002] As the temperature of the surrounding environment changes, people will feel hot or cold. At this time, if it is not convenient to increase or decrease clothing, it will not only cause discomfort to the human body, but also affect the physiological function state and cause harm to the human body.
[0003] To solve the above problems, a human body air conditioner (also known as an air-conditioning clothing, a cold-proof vest, a heat-proof vest) has been proposed in the prior art. This product uses compressed air and vortex tube technology to introduce cold air or hot air between the human body and the inner side of the clothing, thereby improving the ambient temperature and ensuring that the user can be comfortable in a special environment.
[0004] The inventor found that the existing human body air conditioner has a single and bulky structure and cannot be disassembled, which not only affects the wearer's partial behaviors, but also causes difficulties in clothing cleaning. Utility Model Content
[0005] The embodiments of this application provide a wearable temperature control device and a wearable item, aiming to timely regulate the surface temperature of the wearer to ensure the comfort of the user; at the same time, it can be freely disassembled and used to avoid affecting the wearer's behavior and causing difficulties in clothing cleaning.
[0006] To achieve the above object, the technical solution adopted in this application is:
[0007] Provide a wearable temperature control device, including:
[0008] A housing, having a hollow structure inside, with an air outlet and an exhaust port; the housing is used to be fixed on the wearable item of the human body, and the air outlet is arranged facing the human body, and the exhaust port is arranged facing away from the human body;
[0009] A temperature control main body, arranged inside the hollow of the housing, having a cavity; in the cavity, there are pipe joints made of elastic clamping materials and a medium for conducting heat; and
[0010] A loading component, arranged inside the hollow of the housing, connected to the pipe joint so that when stress is applied to the pipe joint, the pipe joint deforms to generate heat, and / or when stress is unloaded from the pipe joint, the pipe joint recovers from deformation to generate cold.
[0011] In a possible implementation manner, there are multiple cavities, and each cavity is connected with a heat transfer pipeline and a cold transfer pipeline;
[0012] The housing further includes a hot air generator and a cold air generator; when the hot air generator is communicated with each cavity through the heat transfer pipeline to generate heat for the pipe section, the heat transfer pipeline transports the medium to the hot air generator; when the cold air generator is communicated with each cavity through the cold transfer pipeline to generate cold for the pipe section, the cold transfer pipeline transports the medium to the cold air generator;
[0013] Wherein, the hot air generator and the cold air generator are both provided with adjusting members; the adjusting members are used to adjust the air flow direction of the cold air generator or the hot air generator so that the air flow direction faces the air outlet or the exhaust port.
[0014] In a possible implementation manner, the cold air generator and the hot air generator are both provided with a first outlet communicated with the air outlet and a second outlet communicated with the exhaust port;
[0015] The adjusting member is used to close the first outlet to make the second outlet in an open state, so that the air flow generated by the cold air generator or the hot air generator is discharged to the exhaust port through the second outlet, or, the adjusting member is used to close the second outlet to make the first outlet in an open state, and the air flow generated by the cold air generator or the hot air generator is discharged to the air outlet through the first outlet.
[0016] In a possible implementation manner, the cold air generator and the hot air generator are both provided with a first outlet communicated with the air outlet and a second outlet communicated with the exhaust port; wherein, the first outlet faces the air flow direction of the cold air generator or the hot air generator, and the second outlet avoids the air flow direction of the cold air generator or the hot air generator;
[0017] The adjusting member is used to close the first outlet, so that the air flow generated by the cold air generator or the hot air generator is discharged to the exhaust port through the second outlet, or, the adjusting member is used to avoid the first outlet, so that the air flow generated by the cold air generator or the hot air generator is discharged to the air outlet through the first outlet.
[0018] In a possible implementation manner, a pump body is connected to both the heat transfer pipeline and the cold transfer pipeline.
[0019] In a possible implementation manner, the temperature control main body includes a base and a top cover, and the base and the top cover are fastened and fixed;
[0020] The cavity is located in the base, and a through hole communicated with the cavity is opened on the fastening surface of the base and the top cover, so that the pipe section extends out of the base through the through hole into the top cover;
[0021] The top surface of the top cover is provided with a groove. When the top cover is buckled with the base, the pipe section extends into the groove and is connected to the acting end of the loading component.
[0022] In a possible implementation manner, the loading component includes:
[0023] A rotating motor, fixedly arranged on the base or the top cover, and the power output shaft of the rotating motor is inserted between the top cover and the base, and the axial direction of the power output shaft of the rotating motor is perpendicular to the axial direction of the pipe section; and
[0024] A loading arm, fixedly connected to the power output shaft of the rotating motor, and the loading arm is connected to the extended end of the pipe section so that when pressure is applied to the pipe section, the pipe section deforms to generate heat, and / or when stress is unloaded from the pipe section, the pipe section recovers from deformation to generate cold.
[0025] In a possible implementation manner, the extended end face of the pipe section adopts a convex spherical surface, and the contact surface of the loading arm with the pipe section has a concave spherical surface hinged to the convex spherical surface.
[0026] In a possible implementation manner, the housing further includes an exhaust pipe located outside the housing and communicating with the exhaust port, or a filter cover located outside the housing and communicating with the air outlet.
[0027] In the embodiments of the present application, by applying stress to the pipe section through the loading component, the pipe section can be deformed, and thus heat and cold can be generated simultaneously, or heat or cold can be generated alone; on this basis, by controlling the flow direction of the corresponding medium, the conversion and application of heat and cold can be realized, and finally the technical purpose of acting heat or cold on the human body to increase or decrease the surface temperature of the human body can be achieved.
[0028] Compared with the prior art, the wearable temperature control device provided in this embodiment can timely adjust the surface temperature of the wearer to ensure the comfort of the user; at the same time, since the housing is fixed on the wearable, the housing can be freely disassembled and used, avoiding affecting the behavior of the wearer and causing difficulties in washing the clothes.
[0029] The technical solution adopted in the present application also provides a wearable, including
[0030] A wearable body; and
[0031] The wearable temperature control device proposed in any one of the foregoing.
[0032] The beneficial effects of the wearable provided in this embodiment are the same as those of the foregoing wearable temperature control device, and will not be elaborated here. Brief Description of the Drawings
[0033] To more clearly illustrate the technical solutions in the embodiments of the present application, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0034] Figure 1 Schematic perspective view of the wearable temperature control device provided by the embodiment of the present application;
[0035] Figure 2 Exploded view of the wearable temperature control device provided by the embodiment of the present application;
[0036] Figure 3 One of the combined structural schematic views of the temperature control main body, the cold air generator and the hot air generator adopted by the embodiment of the present application;
[0037] Figure 4 Another combined structural schematic view of the temperature control main body, the cold air generator and the hot air generator adopted by the embodiment of the present application;
[0038] Figure 5 Exploded view of the cold air generator and the adjusting member adopted by the embodiment of the present application;
[0039] Figure 6 Exploded view of the temperature control main body and the loading component adopted by the embodiment of the present application;
[0040] Figure 7 Schematic perspective view of the loading component adopted by the embodiment of the present application;
[0041] Figure 8 Schematic cross-sectional view of the base and the pipe joint in an exploded view adopted by the embodiment of the present application;
[0042] Explanation of reference numerals: 1, housing; 11, air outlet; 12, exhaust port; 13, exhaust pipe; 14, filter cover; 2, temperature control main body; 21, base; 211, cavity; 212, through hole; 22, top cover; 3, loading component; 31, rotating motor; 32, loading arm; 321, concave spherical surface; 4, pipe joint; 41, convex spherical surface; 5, heat transfer pipe; 6, cold air transfer pipe; 7, cold air generator; 8, hot air generator; 9, adjusting member; 10, first outlet; 20, second outlet; 100, pump body. Detailed Description of the Embodiments
[0043] In order to make the technical problems, technical solutions and beneficial effects to be solved by the present application clearer and more understandable, the present application will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.
[0044] It should be noted that when an element is referred to as being "fixed to" or "disposed on" another element, it can be directly on the other element or indirectly on the other element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or indirectly connected to the other element.
[0045] It should be understood that the orientation or positional relationship indicated by the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present application.
[0046] In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present application, "a plurality of" means two or more, unless otherwise specifically defined.
[0047] Please refer to Figures 1 to 8 , and now the wearable temperature control device provided by the present application will be described. The wearable temperature control device proposed by the present application is applied to a wearable on the human body, and this wearable can be any item such as a coat, a belt, trousers, shoes, etc.; the wearable temperature control device includes a housing 1, a temperature control main body 2 and a loading component 3.
[0048] The housing 1 adopts a hollow structure inside, and the housing 1 is provided with an air outlet 11 and an exhaust port 12; in actual use, this housing 1 is used to be fixed on the wearable; and when the housing 1 is fixed to the wearable and the wearable is fixed to the human body, the air outlet 11 is arranged facing the human body and the exhaust port 12 is arranged to avoid the human body; among them, the airflow discharged from the air outlet 11 can raise or lower the temperature of the human body, and the airflow discharged from the exhaust port 12 has no effect on the temperature of the human body, but can play a role in ventilation.
[0049] The temperature control body 2 is fixedly arranged in the hollow interior of the shell 1, and has a cavity 211 with a sealed cavity structure, and a plurality of pipe sections 4 made of spring-cage material are arranged in the cavity 211, containing a medium for conducting heat; in the present embodiment, the medium is a fluid medium, such as a heat-conducting solution containing nano-carbon balls, a heat-absorbing heat-conducting liquid, a radiator heat-conducting liquid, a heat-conducting solution containing heteroatom nano-carbon balls, and other liquids with good thermal conductivity.
[0050] It should be noted that the "spring-loaded material" used in the pipe segment 4 here can be a shape memory alloy, natural rubber, synthetic polymer, plastic crystal, etc.; at the same time, the geometric shapes used by the pipe segment 4 include cylindrical, cubic, rectangular, circular tube and rectangular tube; in the embodiment of the present application, the pipe segment 4 is preferably a shape memory alloy, specifically one or more of nickel-titanium alloy, copper-aluminum-manganese alloy, nickel-manganese-titanium alloy, nickel-titanium-cobalt alloy, nickel-titanium-copper-cobalt alloy or nickel-iron-gallium alloy can be selected, and the deformation of the material is used to generate heat, and the deformation recovery generates cooling.
[0051] The loading assembly 3 is arranged in the hollow interior of the shell 1, and is connected to each pipe segment 4, so as to apply stress to the pipe segment 4, causing the pipe segment 4 to deform and generate heat, and increase the temperature of the fluid medium in the corresponding cavity 211, and / or to unload stress from the pipe segment 4, causing the pipe segment 4 to restore its deformation and generate cold, and reduce the temperature of the fluid medium in the corresponding cavity 211.
[0052] It should be noted that when the above process occurs, the force generated by the pipe segment 4 in the state of restoring deformation can be transmitted to the driving end of the loading component 3, and this part of the force will eventually act on the other part of the pipe segment 4 in the state of deformation to pressurize, thereby realizing the recovery and use of the unloading work.
[0053] It should be noted that there can be multiple cavities 211, so that a single loading assembly 3 can simultaneously load or unload multiple pipe segments 4 corresponding to multiple cavities 211; based on this, since the loading assembly 3 is connected to multiple cavities 211, stress can be applied to or unloaded on the pipe segments 4 in multiple cavities 211 to make them absorb or release heat. In addition, there can be multiple pipe segments 4 in each cavity 211, so that when the loading assembly 3 applies stress to at least one pipe segment 4 to generate heat, it can also unload stress to at least one other pipe segment 4 to generate cold.
[0054] To sum up, the heat absorption and heat release of the tube segment 4 in each cavity 211 are independent of each other, thereby achieving the simultaneous generation of heat and cold; that is, the size and style of the wearable temperature control device in the embodiment of the utility model are not limited, and it can be a whole or a wearable temperature control device group composed of multiple wearable temperature control devices described in the above embodiments.
[0055] The loading component 3 can be a linear cylinder connected to the pipe section 4, and the axial direction of the power output of this linear cylinder is parallel to the axial direction of the pipe section 4; moreover, the loading component 3 can also be a rotary drive motor connected to the pipe section 4 through an eccentric wheel structure, or other drive components that can achieve a linear drive effect.
[0056] In the embodiments of the present application, by applying stress to the pipe section 4 through the loading component 3, the pipe section 4 can be deformed, and thus heat and cold can be generated simultaneously, or heat or cold can be generated separately; on this basis, by controlling the corresponding medium flow direction, the conversion and application of heat and cold can be realized, and finally the technical purpose of acting heat or cold on the human body and raising or lowering the surface temperature of the human body can be achieved.
[0057] Compared with the prior art, the wearable temperature control device provided in this embodiment can timely adjust the surface temperature of the wearer to ensure the comfort of the user; at the same time, since the housing 1 is fixed on the wearable, the housing 1 can be freely disassembled and used, avoiding affecting the behavior of the wearer and causing difficulties in cleaning the clothes.
[0058] In some embodiments, as Figures 6 to 8 shown, there are multiple cavities 211, and a heat transfer pipe 5 and a cold transfer pipe 6 are connected to each cavity 211.
[0059] Among them, both the heat transfer pipe 5 and the cold transfer pipe 6 have the function of adjusting to close and open their own pipe cavities; the reason for such a design is that each cavity 211 has the conditions for forming heat and cold, so that the medium is heated to form a high-temperature medium, or the medium is cooled to form a low-temperature medium; moreover, the inlets and outlets of each heat transfer pipe 5 and cold transfer pipe 6 are communicated with the corresponding cavity 211, so the medium output from the cavity 211 will return to the same cavity 211 again to realize the secondary filling and repeated use of the medium.
[0060] In this embodiment, the wearable temperature control device further includes a hot air generator 8 and a cold air generator 7 fixedly arranged on the housing 1; when the hot air generator 8 is communicated with each cavity 211 through the heat transfer pipe 5 to enable the pipe section 4 to generate heat, the heat transfer pipe 5 transmits the medium to the hot air generator 8; when the cold air generator 7 is communicated with each cavity 211 through the cold transfer pipe 6 to enable the pipe section 4 to generate cold, the cold transfer pipe 6 transmits the medium to the cold air generator 7.
[0061] That is to say, the high-temperature medium flowing out through the cavity 211 can pass through the heat transfer pipeline 5 and then through the hot air generator 8; during this process, the hot air generator 8 can generate hot air, and heat exchange occurs between the medium (fluid) and the medium (gas) of the hot air generator, causing the gas medium to heat up and form hot gas, and the fluid medium (high-temperature medium) to cool down; correspondingly, the low-temperature medium flowing out through the cavity 211 can pass through the cold transfer pipeline 6 and then through the cold air generator 7; during this process, the cold air generator 7 can generate cold air, and heat exchange occurs between the medium (fluid) and the medium (gas) of the cold air generator, causing the gas medium to cool down and form cold gas, and the fluid medium (low-temperature medium) to heat up.
[0062] Adjusting members 9 are provided on both the hot air generator 8 and the cold air generator 7; the adjusting member 9 is used to adjust the position of the air outlet of the corresponding hot air generator 8 or cold air generator 7 to change the corresponding air flow direction, that is, to make the hot air generator 8 face the air outlet 11 or the exhaust port 12, or to make the air outlet of the cold air generator 7 face the air outlet 11 or the exhaust port 12.
[0063] By adopting the above technical solution, when the air outlet of the hot air generator 8 faces the air outlet 11 and the air outlet of the cold air generator 7 faces the exhaust port 12, the device generates hot air blown towards the human body to act on the human body to increase the temperature; when the air outlet of the cold air generator 7 faces the air outlet 11 and the air outlet of the hot air generator 8 faces the exhaust port 12, the device generates cold air blown towards the human body to act on the human body to decrease the temperature.
[0064] In some embodiments, as Figures 6 to 8 shown, pump bodies 100 are connected to both the heat transfer pipeline 5 and the cold transfer pipeline 6.
[0065] During actual use, the pump body 100 can control and adjust the flow of the medium in the heat transfer pipeline 5, the cold transfer pipeline 6, and the cavity 211, so that the high-temperature medium is output through the heat transfer pipeline 5 and the low-temperature medium is output through the cold transfer pipeline 6.
[0066] In some embodiments, first outlets 10 and second outlets 20 are provided on both the cold air generator 7 and the hot air generator 8; among them, each first outlet 10 communicates with the air outlet 11, and each second outlet 20 communicates with the exhaust port 12.
[0067] In this embodiment, the adjusting member 9 is used to close the first outlet 10 to keep the second outlet 20 in an open state, so that the air flow generated by the cold air generator 7 or the hot air generator 8 is discharged through the second outlet 20 to the exhaust port 12. Or, the adjusting member 9 is used to close the second outlet 20 to keep the first outlet 10 in an open state, and the air flow generated by the cold air generator 7 or the hot air generator 8 is discharged through the first outlet 10 to the air outlet 11, for adjusting the air flow direction of the corresponding cold air generator 7 or hot air generator 8. Specifically, this adjusting member 9 can be a damper valve communicating with the first outlet 10 and the second outlet 20.
[0068] When the damper valve closes the first outlet 10 and the second outlet 20 is in an open state, the air flow generated by the corresponding cold air generator 7 or hot air generator 8 is discharged through the second outlet 20 to the exhaust port 12.
[0069] When the damper valve closes the second outlet 20 and the first outlet 10 is in an open state, the air flow generated by the corresponding cold air generator 7 or hot air generator 8 is discharged through the first outlet 10 to the air outlet 11.
[0070] In another embodiment, as Figures 3 to 5 shown, the cold air generator 7 and the hot air generator 8 are both provided with a first outlet 10 and a second outlet 20. Among them, each first outlet 10 communicates with the air outlet 11, and each second outlet 20 communicates with the exhaust port 12. And, the first outlet 10 faces the air flow direction of the cold air generator 7 or the hot air generator 8, and the second outlet 20 avoids the air flow direction of the cold air generator 7 or the hot air generator 8, so that the air flow generated by the cold air generator 7 and the hot air generator 8 both propagates toward the first outlet 10.
[0071] In this embodiment, the adjusting member 9 is used to close or avoid the first outlet 10 to adjust the air flow direction of the corresponding cold air generator 7 or hot air generator 8. Specifically, this adjusting member 9 can be a baffle blade connected to the first outlet 10 and used to close or avoid the first outlet 10.
[0072] When the adjusting member 9 closes the first outlet 10, the second outlet 20 is in an open state, and the air flow generated by the corresponding cold air generator 7 or hot air generator 8 is discharged through the second outlet 20 to the exhaust port 12.
[0073] When the adjusting member 9 avoids the first outlet 10, both the first outlet 10 and the second outlet 20 are in an open state, and the air flow generated by the corresponding cold air generator 7 or hot air generator 8 is discharged through the first outlet 10 to the air outlet 11.
[0074] In some embodiments, as Figures 6 to 8As shown in the figure, the temperature control main body 2 includes a base 21 and a top cover 22; both the base 21 and the top cover 22 are fixedly arranged inside the housing 1, and the top cover 22 is arranged above the base 21, and the base 21 and the top cover 22 are fastened and fixed.
[0075] A cavity 211 is located inside the base 21. A through hole 212 communicating with the cavity 211 is provided on the fastening surface between the base 21 and the top cover 22, so that the pipe section 4 extends out of the through hole 212 into the top cover 22.
[0076] It should be noted that when there are multiple cavities 211 and multiple pipe sections 4, multiple groups of through holes 212 corresponding to and communicating with the multiple cavities 211 one by one are provided on the upper side surface of the base 21, and each group of through holes 212 includes multiple through holes 212 corresponding to the multiple pipe sections 4 in the corresponding cavity 211 one by one. And each pipe section 4 in the cavity 211 can extend out through the corresponding through hole 212.
[0077] A groove is provided on the top surface of the top cover 22. When the top cover 22 is fastened to the base 21, the pipe section 4 extends into this groove and is connected to the acting end of the aforementioned loading assembly 3.
[0078] In some embodiments, as Figures 6 to 8 shown, the loading assembly 3 includes a rotating motor 31 and a loading arm 32.
[0079] The rotating motor 31 is fixedly arranged on the base 21 or the top cover 22. The power output axis of the rotating motor 31 is parallel to the horizontal plane and perpendicular to the axis of the pipe section 4, and the power output shaft of the rotating motor 31 is inserted between the top cover 22 and the base 21.
[0080] The loading arm 32 is fixedly connected to the power output shaft of the rotating motor 31. Its axis is perpendicular to the power output axis of the rotating motor 31, and the loading arm 32 is connected to the extending end of the pipe section 4 so that when a pressure is applied to the pipe section 4, the pipe section 4 deforms to generate heat, and / or when the stress is unloaded from the pipe section 4, the pipe section 4 recovers from the deformation to generate cold.
[0081] By adopting the above technical solution, when the rotating motor 31 is started, the loading arm 32 can apply a pressure to the pipe section 4 connected thereto to cause the pipe section 4 to deform and generate heat, or unload the stress to cause the pipe section 4 to recover from the deformation and generate cold.
[0082] It should be noted that when there are multiple pipe sections 4, the connection position of the rotating motor 31 and the loading arm 32 can be set between multiple pipe sections 4. The loading arm 32 can also apply pressure to several of the pipe sections 4 to cause the pipe sections 4 to deform and generate heat, and at the same time unload stress from several other pipe sections 4 to cause the pipe sections 4 to recover deformation and generate cold. Among them, the pipe sections 4 in the state of recovering deformation can apply stress to the loading arm 32 and act on the process of the loading arm 32 applying pressure to the pipe sections 4, so as to achieve the technical purpose of unloading work recovery and application.
[0083] In some embodiments, as Figures 6 to 8 shown, the protruding end faces of the pipe sections 4 all adopt convex spherical surfaces 41; the lower side surface of the loading arm 32 has a number of concave spherical surfaces 321 corresponding one by one to several pipe sections 4, and each concave spherical surface 321 is adapted to be hinged with the corresponding convex spherical surface 41. Specifically: when there is one pipe section 4, the contact surface between the loading arm 32 and the pipe section 4 has a concave spherical surface 321 hinged with the convex spherical surface 41; when there are multiple pipe sections 4, the contact surface between the loading arm 32 and the pipe sections 4 has a number of concave spherical surfaces 321 hinged with a number of convex spherical surfaces 41 one by one.
[0084] By adopting the above technical solution, the convex spherical surface 41 and the concave spherical surface 321 are used in combination, which can enhance the stability when the loading arm 32 applies force to the pipe section 4.
[0085] In some embodiments, as Figure 2 shown, the housing 1 further includes an exhaust pipe 13 located outside the housing 1 and communicating with the exhaust port 12, so as to achieve the directional discharge of the airflow passing through the exhaust port 12.
[0086] In some embodiments, as Figure 2 shown, the housing 1 further includes a filter cover 14 located outside the housing 1 and communicating with the air outlet 11, so as to achieve the purification and softening of the airflow acting on the human body.
[0087] Based on the same inventive concept, please refer to Figures 1 to 8 , the embodiment of the present application further provides a wearable, including a wearable body and the wearable temperature control device proposed in any one of the foregoing contents.
[0088] Among them, the wearable body can be a wearable in special scenarios such as protective clothing and spacesuits, or can be a wearable such as common clothes, belts, and shoulder bags in daily life.
[0089] The beneficial effects of the wearable provided in this embodiment are the same as those of the foregoing wearable temperature control device, and will not be elaborated here.
[0090] In some embodiments, the aforementioned wearable body is an upper garment with at least two layers, and the outer layer of the upper garment is made of airtight material while the inner layer is made of breathable material to ensure the ability of the human body surface to sense cold air currents and hot air currents.
[0091] During actual use, the housing 1 is fixedly arranged between the outer layer and the inner layer of the upper garment, and the air outlet 11 is arranged towards the inner layer.
[0092] The above content is only the preferred embodiment of the present application and is not intended to limit the present application. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present application shall be included within the protection scope of the present application.
Claims
1. A wearable temperature control device, characterized in that: include: The shell adopts an internal hollow structure and has an air outlet and an exhaust port; the shell is used to be fixed on an object worn by a human body, and the air outlet is arranged toward the human body, and the exhaust port is arranged away from the human body; The temperature control body is arranged in the hollow interior of the shell and has a cavity; a pipe joint made of a spring-clip material and a medium for conducting heat are arranged in the cavity; as well as The loading assembly is arranged in the hollow interior of the shell and connected to the pipe joint so that when stress is applied to the pipe joint, the pipe joint deforms to generate heat, and / or when stress is unloaded from the pipe joint, the pipe joint recovers its deformation to generate cold.
2. The wearable temperature control device according to claim 1, characterized in that: There are a plurality of cavities, each of which is connected to a heat transfer pipeline and a cold transfer pipeline; The shell further includes a hot air generator and a cold air generator; when the hot air generator is connected to each of the cavities through the heat transfer pipe so that the pipe section generates heat, the heat transfer pipe transfers the medium to the hot air generator; when the cold air generator is connected to each of the cavities through the cold transfer pipe so that the pipe section generates cold, the cold transfer pipe transfers the medium to the cold air generator; Wherein, the hot air generator and the cold air generator are both provided with an adjusting component; the adjusting component is used to adjust the airflow direction of the cold air generator or the hot air generator so that the airflow flows toward the air outlet or the exhaust port.
3. The wearable temperature control device according to claim 2, characterized in that: The cold air generator and the hot air generator are both provided with a first outlet communicated with the air outlet and a second outlet communicated with the exhaust port; The regulating member is used to close the first outlet and keep the second outlet in an open state, so that the airflow generated by the cold air generator or the hot air generator is discharged to the exhaust port through the second outlet, or, the regulating member is used to close the second outlet and keep the first outlet in an open state, and the airflow generated by the cold air generator or the hot air generator is discharged to the air outlet through the first outlet.
4. The wearable temperature control device according to claim 2, characterized in that: The cold air generator and the hot air generator are both provided with a first outlet communicated with the air outlet and a second outlet communicated with the exhaust port; wherein the first outlet is directed toward the airflow direction of the cold air generator or the hot air generator, and the second outlet avoids the airflow direction of the cold air generator or the hot air generator; The regulating component is used to close the first outlet so that the airflow generated by the cold air generator or the hot air generator is discharged to the exhaust port through the second outlet, or the regulating component is used to avoid the first outlet so that the airflow generated by the cold air generator or the hot air generator is discharged to the outlet through the first outlet.
5. The wearable temperature control device according to claim 2, characterized in that: The heat delivery pipeline and the cold delivery pipeline are both connected with a pump body.
6. The wearable temperature control device according to claim 1, characterized in that: The temperature control body comprises a base and a top cover, and the base and the top cover are buckled and fixed; The cavity is located in the base, and a through hole communicating with the cavity is provided on the buckling surface of the base and the top cover, so that the pipe section extends from the through hole into the top cover; The top surface of the top cover is provided with a groove. When the top cover is buckled with the base, the pipe section extends into the groove and connects with the action end of the loading assembly.
7. The wearable temperature control device according to claim 6, characterized in that: The loading component comprises: A rotating motor is fixedly arranged on the base or the top cover, and a power output shaft of the rotating motor is inserted between the top cover and the base, and the power output axis of the rotating motor is perpendicular to the axis of the pipe segment; and A loading arm is fixedly connected to the power output shaft of the rotating motor, and the loading arm is connected to the protruding end of the pipe segment so that when pressure is applied to the pipe segment, the pipe segment deforms to generate heat, and / or when stress is unloaded from the pipe segment, the pipe segment recovers its deformation to generate cold.
8. The wearable temperature control device according to claim 7, characterized in that: The extended end surface of the pipe section is a convex spherical surface, and the contact surface between the loading arm and the pipe section is provided with a concave spherical surface hinged to the convex spherical surface.
9. The wearable temperature control device according to claim 1, characterized in that: The shell also includes an exhaust pipe located outside the shell and connected to the exhaust port, or a filter cover located outside the shell and connected to the air outlet.
10. A wearable article, characterized in that: include: Wearable object; as well as A wearable temperature control device according to any one of claims 1 to 9.