Intelligent glasses

By setting hydrogels and designing installation grooves, fins and ventilation holes on the outside of the smart glasses' shell, a natural convection heat dissipation system is formed, which solves the problem of poor heat dissipation of smart glasses and improves the heat dissipation efficiency and user experience.

CN120469079APending Publication Date: 2025-08-12FALCON INNOVATIONS TECH (SHENZHEN) CO LTD
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Patent Information

Application Number
CN202510874919.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-26
Publication Date
2025-08-12

AI Technical Summary

Technical Problem

The existing smart glasses have poor heat dissipation effect, which affects the user's experience.

Method used

A hydrogel is installed on the outside of the shell of the smart glasses. The hydrogel absorbs moisture in the air at room temperature and evaporates and takes away heat at high temperatures. Combined with the installation groove, installation fins and ventilation hole design, an efficient natural convection heat dissipation system is formed.

Benefits of technology

It realizes fast and efficient heat dissipation of smart glasses, improving the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of intelligent glasses, and provides intelligent glasses which comprise a glasses shell, a heating piece and hydrogel, the heating piece is installed on the glasses shell, the hydrogel is arranged on the outer side of the glasses shell, and the hydrogel is arranged corresponding to the heating piece to dissipate heat of the heating piece. When the intelligent glasses do not work or power consumption is small, hydrogel can gradually absorb water from air and store the water; when the evaporator works with high power consumption, the temperature of the heating piece rises, heat is conducted to the glasses shell, moisture in the hydrogel evaporates to take away a large amount of heat, and therefore the purposes of rapid heat dissipation and efficient heat dissipation are achieved, and the use experience of a user is improved.
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Description

Technical Field

[0001] The present application belongs to the technical field of smart glasses, and in particular to a type of smart glasses. Background Art

[0002] Smart glasses are increasingly integrating multiple functions, including enhanced displays, Bluetooth headsets, smart assistants, and spatial computing. This means that as electronic components become increasingly powerful, heat generation within the glasses continues to rise. However, existing smart glasses suffer from poor heat dissipation, impacting the user experience. Summary of the Invention

[0003] The embodiments of the present application provide a pair of smart glasses to solve the problems of poor heat dissipation and poor user experience of existing smart glasses.

[0004] In a first aspect, an embodiment of the present application provides smart glasses, including:

[0005] glasses housing;

[0006] A heating element, installed on the glasses shell;

[0007] The hydrogel is arranged on the outside of the glasses shell, and the hydrogel is arranged corresponding to the heating element to dissipate heat from the heating element.

[0008] In some embodiments of the present application, the heating element is located inside the glasses shell, and a mounting groove is provided on the outside of the glasses shell along its extension direction, and the hydrogel is installed in the mounting groove.

[0009] In some embodiments of the present application, the mounting groove is provided with mounting fins, the mounting fins are protruding from the groove wall of the mounting groove, and the hydrogel is attached to the mounting fins.

[0010] In some embodiments of the present application, the smart glasses further include a mounting cover, which is detachably mounted on the mounting slot, and the mounting cover is provided with a ventilation hole connected to the mounting slot.

[0011] In some embodiments of the present application, the ventilation hole includes a first ventilation hole opened on the side of the mounting cover, and the first ventilation hole is an oblong hole;

[0012] A plurality of first ventilation holes are arranged in an array on the mounting cover, and the first ventilation holes in two adjacent rows are staggered.

[0013] In some embodiments of the present application, the ventilation hole further includes:

[0014] a plurality of second ventilation holes, formed on the top of the mounting cover and spaced apart along the extending direction of the mounting cover;

[0015] A plurality of third ventilation holes are formed at the bottom of the installation cover and are spaced apart along the extension direction of the installation cover.

[0016] In some embodiments of the present application, there are multiple mounting fins, and the multiple mounting fins are spaced apart along the extension direction of the mounting slot, and a ventilation duct extending along the height direction is formed between two adjacent mounting fins.

[0017] In some embodiments of the present application, the ventilation duct has a first end and a second end that are relatively arranged, the first end is located above the second end, and the cross-sectional area of the ventilation duct gradually decreases along the direction from the second end to the first end.

[0018] In some embodiments of the present application, the second ventilation hole is provided corresponding to the first end;

[0019] And / or, the third ventilation hole is provided corresponding to the second end.

[0020] In some embodiments of the present application, there is a first gap between the upper side of the mounting cover and the hydrogel, and a second gap between the lower side of the mounting cover and the hydrogel, and the first gap is smaller than the second gap.

[0021] The smart glasses provided in an embodiment of the present application include a glasses shell, a heating element, and a hydrogel. The heating element is mounted on the glasses shell, and the hydrogel is disposed on the outside of the glasses shell. The hydrogel is arranged in correspondence with the heating element to dissipate heat from the heating element. When the smart glasses are not in use or have low power consumption, the hydrogel gradually absorbs moisture from the air and stores it. When the evaporator is operating at high power consumption, the temperature of the heating element rises and transfers heat to the glasses shell. The water in the hydrogel evaporates, removing a large amount of heat, thereby achieving rapid and efficient heat dissipation, improving the heat dissipation effect of the smart glasses and enhancing the user experience.

[0022] Additional aspects and advantages of the present application will be given in part in the description below, and in part will become obvious from the description below, or will be learned through practice of the present application. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] To more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present application. Those skilled in the art can also derive other drawings based on these drawings without inventive effort.

[0024] In order to more completely understand the present application and its beneficial effects, the following description will be given in conjunction with the accompanying drawings. In the following description, the same reference numerals represent the same parts.

[0025] Figure 1 Schematic diagram of the exploded structure of the smart glasses provided in an embodiment of the present application.

[0026] Figure 2 A schematic structural diagram of the temples provided in an embodiment of the present application.

[0027] Figure 3 A schematic diagram of the arrangement of the mounting fins provided in an embodiment of the present application.

[0028] Figure 4 A schematic structural diagram of the installation cover provided in an embodiment of the present application.

[0029] Figure 5 A schematic cross-sectional view of the smart glasses provided in an embodiment of the present application.

[0030] Figure 6 This is a schematic diagram of the arrangement of the second ventilation holes provided in an embodiment of the present application.

[0031] Figure 7 This is a schematic diagram of the arrangement of the third ventilation hole provided in an embodiment of the present application.

[0032] Figure 8 A schematic diagram of the structure of the smart glasses provided in an embodiment of the present application.

[0033] Figure 9 Schematic diagram of the working principle of the hydrogel provided in the examples of this application.

[0034] Reference numerals:

[0035] 100, glasses housing; 110, temples; 120, glasses frame; 130, mounting slot; 131, mounting fin; 140, mounting cover; 141, first ventilation hole; 142, second ventilation hole; 143, third ventilation hole; 150, ventilation duct; 151, first end; 152, second end;

[0036] 200, heating element;

[0037] 300. Hydrogel. DETAILED DESCRIPTION

[0038] The following embodiments of the present invention are described in further detail with reference to the accompanying drawings and examples. The following examples are used to illustrate the present invention, but are not intended to limit the scope of the present invention.

[0039] In the description of the embodiments of the present application, it should be noted that the terms "center", "longitudinal", "lateral", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing the embodiments of the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operate in a specific orientation, and therefore cannot be understood as limiting the embodiments of the present application. In addition, the terms "first", "second", and "third" are used for descriptive purposes only and cannot be understood as indicating or implying relative importance.

[0040] In the description of the embodiments of this application, it should be noted that, unless otherwise specified or limited, the terms "connected" and "connection" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium. Those skilled in the art will understand the specific meanings of the above terms in the embodiments of this application based on the specific circumstances.

[0041] In the embodiments of the present application, unless otherwise expressly specified or limited, a first feature being "above" or "below" a second feature may mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediate medium. Furthermore, a first feature being "above," "above," and "above" a second feature may mean that the first feature is directly above or obliquely above the second feature, or simply means that the first feature is higher in level than the second feature. A first feature being "below," "below," and "below" a second feature may mean that the first feature is directly below or obliquely below the second feature, or simply means that the first feature is lower in level than the second feature.

[0042] In the description of this specification, the description with reference to the terms "one embodiment", "some embodiments", "example", "specific example", or "some examples" means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the embodiments of the present application. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art can combine and combine different embodiments or examples described in this specification and the features of different embodiments or examples, unless they are contradictory.

[0043] Wearable smart glasses are considered the optimal vehicle for the implementation of "AR+AI" technology. They are increasingly integrating multiple functions, including enhanced display, Bluetooth headsets, smart assistants, and spatial computing. This also means that as electronic components become increasingly powerful, heat generation within the glasses continues to rise, leading to a growing concern that poor heat dissipation can lead to a poor wearer experience. Wearable smart glasses in their natural form should be lightweight and compact, which limits the product's heat dissipation design methods.

[0044] Existing wearable smart glasses on the market typically locate their primary heat-generating chips within the temples. Flexible temperature-distributing materials, such as copper foil and graphite, are often bonded to the temples to enhance temperature distribution and thus heat dissipation. Due to the lightweight and compact nature of glasses, their heat dissipation surface is relatively small, and heat exchange with the air often relies on inefficient natural convection, resulting in inefficient heat dissipation. Therefore, enhancing the heat dissipation efficiency between smart glasses and the air, and improving the overall heat dissipation performance of smart glasses, is crucial to the development of the wearable smart glasses industry.

[0045] The embodiment of the present application provides a smart glasses, which can be AR glasses, VR glasses or MR glasses, etc., to solve the problem that the existing smart glasses have poor heat dissipation and affect the user experience. Figure 1-9 Provide explanation.

[0046] The smart glasses provided in the embodiment of the present application refer to Figure 1 、 Figure 8 and Figure 9 As shown, it includes a glasses shell 100, a heating element 200 and a hydrogel 300. The heating element 200 is installed on the glasses shell 100; the hydrogel 300 is arranged on the outside of the glasses shell 100, and the hydrogel 300 is arranged corresponding to the heating element 200 to dissipate heat from the heating element 200.

[0047] Exemplarily, the glasses housing 100 may include a frame 120 and temples 110 rotatably connected to the frame 120. The heating element 200 may be installed in the frame 120 or the temples 110. The types of heating elements 200 may include but are not limited to heating components such as batteries, processors, display screens, speakers or microphones, which generate more heat during operation, and the heat can be transferred to the glasses housing 100.

[0048] refer to Figure 9As shown, hydrogel 300 is a material with water storage capabilities. At room temperature, it slowly absorbs and stores moisture from the air. When heated, the moisture evaporates rapidly, removing a large amount of heat. Hydrogel 300 is positioned outside the eyeglass housing 100 and can be positioned corresponding to the heating element 200. Its primary function is to dissipate heat from the eyeglass housing 100 by absorbing and releasing moisture, thereby reducing the temperature of the heating element 200.

[0049] By placing the hydrogel 300 outside the heating element 200, it can directly contact the outside air, accelerating the evaporation of water. When the temperature of the heating element 200 rises, the water in the hydrogel 300 begins to evaporate, absorbing and removing the surrounding heat, thereby achieving a cooling effect and preventing the user experience from being affected by excessive temperatures. This passive cooling method requires no additional energy input, is both energy-efficient and environmentally friendly. Compared to traditional fans or other mechanical cooling devices, the hydrogel 300 cooling technology has a simple structure and is easily integrated into existing smart glasses designs.

[0050] Optionally, the number of hydrogels 300 can be multiple, one heating element 200 can correspond to one hydrogel 300, multiple heating elements 200 can correspond to one hydrogel 300, or one heating element 200 can correspond to multiple hydrogels 300. The specific design can be based on actual needs, and this embodiment does not make any specific restrictions on this.

[0051] The smart glasses provided in the embodiments of the present application include a glasses housing 100, a heating element 200, and a hydrogel 300. The heating element 200 is mounted on the glasses housing 100, and the hydrogel 300 is disposed on the outside of the glasses housing 100. The hydrogel 300 is disposed corresponding to the heating element 200 to dissipate heat from the heating element 200. When the smart glasses are not in operation or when power consumption is low, the hydrogel 300 can gradually absorb moisture from the air and store it. When the evaporator is operating at high power consumption, the temperature of the heating element 200 rises and transfers heat to the glasses housing 100. The water in the hydrogel 300 evaporates, carrying away a large amount of heat, thereby achieving rapid and efficient heat dissipation, improving the heat dissipation effect of the smart glasses, and enhancing the user experience.

[0052] In an optional embodiment, combined with Figure 1 and Figure 2 As shown, the heating element 200 is located inside the glasses shell 100 , and a mounting groove 130 is provided on the outside of the glasses shell 100 along its extension direction, and the hydrogel 300 is installed in the mounting groove 130 .

[0053] In this embodiment, one or more mounting grooves 130 are provided on the outer surface of the eyeglass housing 100 (the side away from the user's head) along its natural extension direction (e.g., the extension direction of the temple 110, the outline of the frame 120) or according to the specific position and heat distribution of the internal heating element 200, to ensure that they can maximally cover or be adjacent to the corresponding position of the heating element 200 on the outer surface of the housing that needs heat dissipation. For example, the mounting grooves 130 can be formed during the molding process of the eyeglass housing 100.

[0054] The hydrogel 300 is located externally, allowing it to directly absorb moisture and exchange heat with the surrounding air. When heated, the stored moisture evaporates, absorbing heat from the casing and dissipating it more quickly into the air, preventing internal heat accumulation. Furthermore, placing the hydrogel 300 externally avoids the need for additional heat dissipation structures within the confined space of the glasses, simplifying the internal layout and leaving more space for the integration of other electronic components.

[0055] In an alternative embodiment, in combination Figure 1 and Figure 2 As shown, the mounting groove 130 is provided with a mounting fin 131 . The mounting fin 131 is protruding from the groove wall of the mounting groove 130 , and the hydrogel 300 is attached to the mounting fin 131 .

[0056] In this embodiment, a number of raised structures, namely mounting fins 131, are formed on the inner wall of the mounting groove 130. These raised structures can be evenly distributed or concentrated in specific areas according to the heat distribution. The shape of the mounting fins 131 can be a simple rectangular strip, a wavy shape, a finger shape, or other geometric shapes that are conducive to increasing the surface area. The height, width, and spacing of the fins can be optimized according to the heat dissipation requirements, the space of the mounting groove 130, and the physical properties of the hydrogel 300 (such as flexibility and adhesion). The purpose is to maximize the surface area provided by the fins in a limited space while ensuring that the hydrogel 300 can be well attached. By increasing the heat dissipation surface area of the hydrogel 300 in contact with the air, the heat dissipation efficiency of the smart glasses can be further improved, so that the smart glasses can dissipate heat more quickly and efficiently during high-performance operation, further ensuring the thermal comfort of the user when wearing them, and are particularly suitable for high-performance smart glasses with large heat generation.

[0057] In an alternative embodiment, in combination Figure 1 、 Figure 2 and Figure 4 As shown, the smart glasses further include a mounting cover 140 , which is detachably mounted on the mounting slot 130 , and the mounting cover 140 is provided with a ventilation hole communicating with the mounting slot 130 .

[0058] In this embodiment, the shape and size of the mounting cover 140 can match the mounting slot 130, tightly covering the opening of the mounting slot 130. The mounting cover 140 can be connected to the mounting slot 130 in various ways, including, but not limited to, snap-fit and magnetic, for easy installation and removal. After a period of use, the hydrogel 300 may require rehydration or complete replacement due to moisture loss, aging, or contamination. The user can easily open the mounting cover 140 for replacement.

[0059] Furthermore, one or more ventilation holes are provided at specific locations on the mounting cover 140. The size and number of these holes are designed to ensure air circulation while minimizing excessive moisture loss or the ingress of dust and foreign matter that contaminates the hydrogel 300. The primary function of the ventilation holes is to facilitate air circulation within the mounting slot 130 (i.e., around the hydrogel 300). When moisture in the hydrogel 300 evaporates, hot and humid air can be expelled through the ventilation holes, while dry air can enter, facilitating continuous and even evaporation of moisture, thereby improving the heat dissipation efficiency of the smart glasses.

[0060] In an alternative embodiment, in combination Figure 1 、 Figure 2 and Figure 4 As shown, the ventilation holes include first ventilation holes 141 opened on the side of the installation cover 140, and the first ventilation holes 141 are oblong holes; multiple first ventilation holes 141 are arranged in an array on the installation cover 140, and the first ventilation holes 141 in two adjacent rows are staggered.

[0061] In this embodiment, multiple oblong holes provide a larger ventilation area. Positioning the ventilation holes on the side of the glasses puts them closer to the natural airflow interface. When the user moves, outside air more easily flows into the mounting groove 130 area from the side, coming into contact with the hydrogel 300, removing evaporative water vapor while simultaneously replenishing dry air, creating a more efficient convection cycle.

[0062] Moreover, the staggered arrangement of holes will cause a certain disturbance to the airflow passing through. This disturbance helps to break the stable air boundary layer that may be formed near the ventilator holes, promote the mixing and flow of internal and external air, and thus improve the heat dissipation efficiency.

[0063] In an alternative embodiment, in combination Figure 1 、 Figure 2 、 Figure 5 、 Figure 6 and Figure 7As shown, the ventilation holes also include second ventilation holes 142 and third ventilation holes 143. Multiple second ventilation holes 142 are opened at the top of the installation cover 140 and are spaced apart along the extension direction of the installation cover 140; multiple third ventilation holes 143 are opened at the bottom of the installation cover 140 and are spaced apart along the extension direction of the installation cover 140.

[0064] In this embodiment, mounting cover 140 is provided with ventilation holes at both the top and bottom. The holes are spaced apart and arranged in the same direction, creating conditions for vertical air flow. The second ventilation hole 142 at the top serves as an air outlet, while the third ventilation hole 143 at the bottom serves as an air inlet.

[0065] When the smart glasses heat up, the air near the mounting groove 130 (especially the surface of the hydrogel 300) expands due to the heat, reducing its density and tending to move upward. At this time, if there are holes in the top, the hot air can escape through the second ventilation holes 142. At the same time, the relatively cooler and denser air outside enters the mounting groove 130 through the third ventilation holes 143 at the bottom, replenishing the exhausted hot air. This creates a natural convection cycle from bottom to top within the mounting groove 130 and the area covered by the mounting cover 140.

[0066] When the user is standing or sitting still, the air flow in the surrounding environment may be very weak. Natural convection relying solely on the side holes may not be strong enough. Adding ventilation holes at the top and bottom is equivalent to opening more channels in the vertical direction. It takes advantage of the physical phenomenon that hot air naturally rises. Even in the absence of obvious external wind, it can drive the circulation of internal air, thereby continuously providing good heat dissipation conditions for hydrogel 300. This greatly increases the air circulation path and efficiency. Up and down convection can more effectively remove the water vapor and heat generated by the evaporation of hydrogel 300, while introducing more fresh, dry air to maintain the efficient evaporation and heat dissipation of hydrogel 300.

[0067] In an alternative embodiment, reference Figure 1-Figure 3 As shown, there are multiple mounting fins 131, and the multiple mounting fins 131 are spaced apart along the extension direction of the mounting slot 130 (for example, the length direction of the temple 110), and a ventilation duct 150 extending along the height direction is formed between two adjacent mounting fins 131.

[0068] In this embodiment, the presence of multiple mounting fins 131 also provides a certain amount of physical support and limiting effect for the hydrogel 300, which helps to maintain the stable position of the hydrogel 300 in the mounting groove 130. The height direction refers to the direction from the bottom to the top of the mounting groove 130. The ventilation duct 150 formed by adjacent mounting fins 131 provides a clear channel for the circulation of air. This not only helps the air to enter and exit the mounting groove 130 more smoothly, but also guides the air flow to a certain extent, forming more effective convection. In particular, combined with the design of the upper and lower ventilation holes (second ventilation holes 142 and third ventilation holes 143), the natural convection principle of hot air rising and cold air falling can be better utilized to enhance air exchange.

[0069] In an alternative embodiment, reference Figure 3 As shown, the ventilation duct 150 has a first end 151 and a second end 152 that are oppositely arranged. The first end 151 is located above the second end 152. Along the direction from the second end 152 to the first end 151, the cross-sectional area of the ventilation duct 150 gradually decreases.

[0070] In this embodiment, the ventilation duct 150 is formed by the space between two adjacent mounting fins 131 and the sidewalls of the mounting slot 130. For example, the mounting fins 131 are shaped so that their cross-sectional area gradually decreases from top to bottom, thereby forming the ventilation duct 150 in a shape similar to an inverted funnel or chimney (with a larger opening at the bottom and a smaller opening at the top).

[0071] When the heat generated by the heating element 200 of the smart glasses is conducted to the glasses shell 100, the moisture in the hydrogel 300 in the mounting groove 130 evaporates quickly, taking away a large amount of heat. The hot air density at the lower end (second end 152) of the ventilation duct 150 is low and will naturally flow upward. Since the cross-sectional area of the upper end (first end 151) of the air duct is small, according to the principles of fluid mechanics, at the same or similar flow rate, the air flow rate in the narrow channel will be faster, which accelerates the discharge of hot air when it reaches the upper end. The larger cross-sectional area at the lower end of the ventilation duct 150 is conducive to the entry of cold air into the air duct from the bottom of the mounting groove 130 (i.e., the third ventilation hole 143). After the cold air enters, it is heated and flows upward, replenishing the exhausted hot air and forming a continuous convection cycle.

[0072] By enhancing natural convection, hot air is expelled from the mounting slot 130 more quickly and efficiently, significantly reducing the time it takes for heat to accumulate and significantly improving overall heat dissipation efficiency. This is particularly important for smart glasses that need to be worn for extended periods, as it prevents the device from overheating. Within the limited space of the mounting slot 130, the shape of the mounting fins 131 is cleverly adjusted to control the cross-sectional area of the ventilation duct 150, making the heat dissipation structure more compact.

[0073] Furthermore, the clear shape of the ventilation duct 150 also provides guidance for air flow, reducing the possibility of disorderly air flow or formation of vortex in the slot, making the heat dissipation process more efficient and controllable.

[0074] In an alternative embodiment, reference Figure 3 、 Figure 6 and Figure 7 As shown, the second ventilation hole 142 is provided corresponding to the first end 151 ; in another optional embodiment, the third ventilation hole 143 is provided corresponding to the second end 152 .

[0075] In this embodiment, the second ventilation port and the third ventilation hole 143 are respectively provided at the two ends of the ventilation duct 150 , which is beneficial for external air to enter the installation groove 130 and also beneficial for the discharge of hot air inside the installation groove 130 .

[0076] Second vents 142 are located at the upper end of the air duct (first end 151). As the air in the duct expands and decreases in density due to heat, it naturally moves upward. The top-mounted second vents 142 provide a direct, low-resistance outlet for this rising hot air, significantly accelerating its exhaust.

[0077] The third vent 143 is located at the lower end of the air duct (second end 152). When the hot air at the upper end is effectively exhausted, a certain negative pressure (or at least a state lower than the external pressure) is generated inside the air duct. This allows the external cool air to be more smoothly "drawn" into the air duct through the third vent 143 located at the lower end, effectively forming convection and improving heat dissipation efficiency.

[0078] In an optional embodiment, a first gap is defined between the upper side of the mounting cover 140 and the hydrogel 300 , and a second gap is defined between the lower side of the mounting cover 140 and the hydrogel 300 , and the first gap is smaller than the second gap.

[0079] In this embodiment, by designing the first gap to be smaller than the second gap, similar to the principle of the ventilation duct 150 that is small at the top and large at the bottom in the above embodiment, a chimney-shaped duct can be formed, which is also beneficial to enhancing air convection and improving heat dissipation efficiency. The specific principle can be referred to the above embodiment and will not be repeated in this embodiment.

[0080] The smart glasses of the present invention utilize the hydrogel 300's ability to store water at room temperature and evaporate it at high temperatures, matching the smart glasses' application and achieving efficient heat dissipation. By installing the hydrogel 300 module on the outside of the temple 110 shell of the smart glasses, the heat dissipation mode during high-power operation is changed from inefficient natural convection to efficient water evaporation, significantly improving the smart glasses' heat dissipation capability. The grid protective shell (mounting cover 140) design prevents foreign matter from contaminating the hydrogel 300 while still maintaining sufficient air passages, ensuring sufficient contact between the hydrogel 300 and the air. When the smart glasses are not in operation or operating at low power consumption, the hydrogel 300 absorbs and stores moisture from the air. When the smart glasses are operating at high power consumption, the heat source inside the temple 110 generates a large amount of heat, which is transferred to the temple 110 shell through the thermally conductive material. The hydrogel 300 installed on the outside of the temple 110 shell is heated, causing the internal water to evaporate, removing a large amount of heat, achieving rapid and efficient heat dissipation.

[0081] In the description of this application, the terms "first" and "second" are used for descriptive purposes only and should not be understood to indicate or imply relative importance or implicitly specify the number of technical features indicated. Therefore, features specified as "first" or "second" may explicitly or implicitly include one or more features.

[0082] Finally, it should be noted that the above embodiments are intended only to illustrate the present application and are not intended to limit the present application. Although the present application has been described in detail with reference to the embodiments, it should be understood by those skilled in the art that various combinations, modifications, or equivalent substitutions of the technical solutions of the present application do not depart from the spirit and scope of the technical solutions of the present application and are intended to be covered by the scope of protection of the present application.

Claims

1. A pair of smart glasses, characterized in that: include: glasses housing; A heating element, installed on the glasses shell; The hydrogel is arranged on the outside of the glasses shell, and the hydrogel is arranged corresponding to the heating element to dissipate heat from the heating element.

2. The smart glasses according to claim 1, wherein: The heating element is located inside the glasses shell, and a mounting groove is provided on the outside of the glasses shell along its extension direction, and the hydrogel is installed in the mounting groove.

3. The smart glasses according to claim 2, wherein: The mounting groove is provided with a mounting fin, the mounting fin is protruded from the groove wall of the mounting groove, and the hydrogel is attached to the mounting fin.

4. The smart glasses according to claim 3, wherein: The smart glasses further include a mounting cover, which is detachably mounted on the mounting slot and has a ventilation hole connected to the mounting slot.

5. The smart glasses according to claim 4, characterized in that: The ventilation hole comprises a first ventilation hole opened on the side surface of the mounting cover, wherein the first ventilation hole is an oblong hole; A plurality of first ventilation holes are arranged in an array on the mounting cover, and the first ventilation holes in two adjacent rows are staggered.

6. The smart glasses according to claim 4, characterized in that The ventilation hole also includes: a plurality of second ventilation holes, formed on the top of the mounting cover and spaced apart along the extending direction of the mounting cover; A plurality of third ventilation holes are formed at the bottom of the installation cover and are spaced apart along the extension direction of the installation cover.

7. The smart glasses according to claim 6, wherein: There are multiple mounting fins, and the multiple mounting fins are spaced apart along the extending direction of the mounting slot, and a ventilation duct extending along the height direction is formed between two adjacent mounting fins.

8. The smart glasses according to claim 7, wherein: The ventilation duct has a first end and a second end that are oppositely arranged, the first end is located above the second end, and the cross-sectional area of the ventilation duct gradually decreases along the direction from the second end to the first end.

9. The smart glasses according to claim 8, characterized in that The second ventilation hole is provided corresponding to the first end; And / or, the third ventilation hole is provided corresponding to the second end.

10. The smart glasses according to any one of claims 4 to 9, characterized in that: A first gap is defined between the upper side of the mounting cover and the hydrogel, a second gap is defined between the lower side of the mounting cover and the hydrogel, and the first gap is smaller than the second gap.