Mirror and smart wear device
By assembling a switchable ear-covering component at the rear of the temple, the problem of smart glasses needing to be equipped with headphones separately is solved, realizing the integration of smart glasses and headphones, and improving ease of use and compatibility.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- BEIJING GOERTEK TECH CO LTD
- Filing Date
- 2026-03-19
- Publication Date
- 2026-06-02
AI Technical Summary
When smart glasses are used in conjunction with XR devices or other smart devices, they require separate earphones, resulting in too many parts worn by the user's ears and affecting convenience.
A switchable ear-covering component is fitted at the rear end of the temple body. When folded up, it can be worn as a regular pair of glasses. When unfolded, it forms a sealed ear-covering space, functioning as headphones and integrating audio input and output functions.
It reduces the number of ear parts that users need to wear, improves ease of use and device compatibility, and realizes the integration of smart glasses and headphones, adapting to the multi-functional integration needs of smart wearable devices.
Smart Images

Figure CN122131509A_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the field of smart device technology, specifically relating to a mirror body and a smart wearable device. Background Technology
[0002] In related technologies, the lenses of smart glasses are usually only for wearing. When used with XR devices or other smart devices, headphones are required for listening to audio, resulting in more parts worn on the user's ears and affecting the convenience of using smart glasses with other smart devices. Summary of the Invention
[0003] This application aims to provide a mirror body and a smart wearable device that at least solves one of the problems in the prior art.
[0004] To solve the above-mentioned technical problems, this application is implemented as follows: According to a first aspect of this application, a mirror body is provided for use in a smart wearable device, comprising: Frame; Two temple bodies are respectively connected to both sides of the frame, and the tail end of the temple body has a wearing part; An ear-covering assembly is fitted onto the wearing part and has an open state and a retracted state relative to the wearing part; In the retracted state, the ear-covering component and the wearing part form a contoured structure for wearing on the user's ears; When in the open state, at least a portion of the ear-covering component is able to cover the user's ear to form a sealed cavity between the ear and the user's ear.
[0005] Optionally, the ear-covering assembly includes an ear-covering membrane, a flip-up bracket, and a sealing membrane; The earmuff includes a fixing part and a flipping part. The fixing part is assembled on the wearing part, the flipping part is connected to a flipping bracket, the flipping bracket is rotatably connected to the wearing part, and the sealing film is connected to the fixing part and the flipping part. In the retracted state, the fixing part, the flipping part, and the flipping bracket are all arranged in a similar shape to the wearing part and are stacked on the wearing part in sequence; When in the open state, the flip bracket can rotate the flip part to a position where the sealing film covers the user's ear.
[0006] Optionally, the wearing part has an arc-shaped structure, and the sealing film is made of an elastic material; In the retracted state, the sealing film is located at the inner ring of the fixing part and the flipping part, and is connected to two mutually distant surfaces of the fixing part and the flipping part; In the open state, the ear-covering membrane has a ring structure, and the flip bracket can drive the flipping part to flip relative to the fixed part, so that the sealing membrane can be opened and sealed in the internal hollow of the ring structure.
[0007] Optionally, the wearing part is provided with a mounting groove, and at least part of the ear-covering component is located in the mounting groove; The fixing part is attached to the bottom wall of the assembly groove, and the two ends of the flipping bracket are rotatably connected to the side wall of the assembly groove through a rotating shaft.
[0008] Optionally, two guide grooves are provided on the sidewall of the assembly groove at positions corresponding to the two rotation axes; The guide groove has stop sleeves embedded at both ends, and the two rotating shafts are fixed at both ends of the flip bracket. The rotating shafts can cooperate with the stop sleeves to put the ear cover assembly in the retracted state or the open state.
[0009] Optionally, the stop sleeve is made of an elastic material and has an inlet and outlet, the size of which is smaller than the diameter of the rotating shaft.
[0010] Optionally, the mirror body further includes a control module and an inflation motor, the ear diaphragm is made of elastic material and has an air cavity, and the inflation motor is connected to the air cavity through an air duct; When in the open state, the control module can control the inflation motor to inflate the air chamber to make the earmuff expand into a ring structure, or to expel air from the air chamber.
[0011] Optionally, the lens body further includes a control module, an audio device, and a functional FPC, wherein the audio device is associated with the ear-covering assembly and is electrically connected to the control module through the functional FPC; The control module can control the working state of the audio device, enabling the audio device to input or output audio to the sealed cavity.
[0012] Optionally, the temple body includes a first body and a second body, the first body being retractably mounted on the frame via the second body, and the wearing part being located at the end of the first body away from the second body.
[0013] Optionally, the mirror body further includes a control module, an electromagnet, and multiple permanent magnets; The electromagnet is disposed on one end of the first body near the second body and is electrically connected to the control module; a plurality of permanent magnets are disposed at intervals on the second body along the extension direction. The control module can control the electromagnet to be attracted and connected to one of the permanent magnets.
[0014] Optionally, the first main body is provided with a plurality of limiting parts at intervals along the telescopic direction, and the second main body is provided with a plurality of mating parts at intervals along the telescopic direction; When the electromagnet is attracted and connected to one of the permanent magnets, at least one of the mating parts can engage with one of the limiting parts to restrict the degree of freedom of movement of the first body relative to the second body along the extension direction.
[0015] Optionally, the first body includes a housing and a cover plate. The housing has a receiving groove on the side opposite to the permanent magnet. The control module is disposed in the receiving groove, and the cover plate covers the opening side of the receiving groove.
[0016] According to a second aspect of this application, a smart wearable device is provided, including the lens body described in the first aspect.
[0017] In the embodiments of this application, by assembling an ear-covering component at the wearing part of the temple body, the ear-covering component can be worn as a normal glasses body on the user's ears when it is in the retracted state, and when it is in the open state, it can cover the user's ears through at least part of the structure to form a closed ear-covering space similar to headphones, achieving the usage effect of ordinary smart glasses and headphones. When applied to smart wearable devices, it can improve the user's convenience.
[0018] Additional aspects and advantages of this application will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this application. Attached Figure Description
[0019] The above and / or additional aspects and advantages of this application will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which: Figure 1 This is a schematic diagram of the structure of the mirror body provided in this application; Figure 2 yes Figure 1 Exploded view; Figure 3 yes Figure 1 Exploded view of the structure at point A in the middle; Figure 4 This is one of the schematic diagrams showing the retracted state of the ear-covering component provided in this application; Figure 5 yes Figure 4 A magnified view of a section at point B in the middle; Figure 6 yes Figure 5 Cross-sectional view at point C; Figure 7 yes Figure 5Cross-sectional view at point DD; Figure 8 This is the second schematic diagram of the retracted state of the ear-covering component provided in this application; Figure 9 yes Figure 8 Cross-sectional view at EE; Figure 10 yes Figure 9 A magnified view of a section at point F in the middle; Figure 11 This is the third illustration of the retracted state of the ear-covering component provided in this application; Figure 12 yes Figure 11 Cross-sectional view at GG; Figure 13 yes Figure 12 A magnified view of a section at point H in the middle; Figure 14 This is a structural diagram of the first entity provided in this application; Figure 15 yes Figure 14 A magnified view of a section at point I; Figure 16 This is one of the assembly diagrams of the ear-covering component and the first main body provided in this application; Figure 17 yes Figure 16 Cross-sectional view at JJ; Figure 18 yes Figure 16 Cross-sectional view at point KK; Figure 19 This is an assembly diagram of the control module and the first main body provided in this application; Figure 20 yes Figure 19 Exploded view; Figure 21 This is the second assembly diagram of the ear-covering component and the first main body provided in this application; Figure 22 This is a schematic diagram of the second subject provided in this application; Figure 23 This is one of the schematic diagrams showing the connection between the temple body and the frame provided in this application; Figure 24 This is the second schematic diagram showing the connection between the temple body and the frame provided in this application; Figure 25 This is the third schematic diagram showing the connection between the temple body and the frame provided in this application; Figure 26 This is a schematic diagram of the ear-covering component provided in this application in its retracted state when assembled with the mating part; Figure 27 This is a schematic diagram of the fit between the rotating shaft and the stop sleeve provided in this application; Figure 28 This is a schematic diagram of the ear-covering component provided in this application in the open state when assembled with the mating part; Figure 29 yes Figure 28 Cross-sectional view at point LL; Figure 30 yes Figure 29 A magnified view of a section at point M; Figure 31 yes Figure 29 A magnified view of a portion of point N in the middle; Figure 32 This is one of the schematic diagrams of the integrated structure provided in this application in an inflated state; Figure 33 This is the second schematic diagram of the integrated structure provided in this application in an inflated state; Figure 34 yes Figure 33 Cross-sectional view at PP; Figure 35 This application provides an assembly diagram of the control module, the air motor, and the electromagnet. Figure 36 This is a schematic diagram of the first wearing state of the lens body provided in this application; Figure 37 This is a schematic diagram of the second wearing state of the lens body provided in this application.
[0020] Figure label: 1. Frame; 2. Temple body; 21. First body; 211. Electromagnet; 212. Limiting part; 22. Second body; 221. Permanent magnet; 222. Fitting part; 23. Wearing part; 231. Assembly groove; 232. Guide groove; 24. Stop sleeve; 25. Rotation shaft; 26. Housing; 261. Receiving groove; 27. Cover plate; 3. Ear covering assembly; 31. Sealing membrane; 32. Fixing part; 33. Flipping part; 34. Flipping bracket; 35. Air duct; 36. Ear covering membrane; 361. Air chamber; 4. Inflation motor; 5. Control module; 6. Audio device; 61. Functional FPC; 7. Volume button; 8. Camera module; 9. Ear. Detailed Implementation
[0021] Embodiments of this application will now be described in detail. Examples of these embodiments are illustrated in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application. All other embodiments obtained by those skilled in the art based on the embodiments in this application are within the scope of protection of this application.
[0022] The terms "first" and "second" in the specification and claims of this application may explicitly or implicitly include one or more of the features. In the description of this application, unless otherwise stated, "multiple" means two or more. Furthermore, "and / or" in the specification and claims indicates at least one of the connected objects, and the character " / " generally indicates that the preceding and following objects are in an "or" relationship.
[0023] In the description of this application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.
[0024] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0025] The following is combined with Figures 1-37 This application describes a mirror body and a smart wearable device according to embodiments thereof.
[0026] like Figures 1 to 3 As shown, according to a first aspect of this application, a lens body is provided for use in a smart wearable device, including a frame 1, two temple bodies 2, and an earmuff assembly 3; the two temple bodies 2 are respectively connected to both sides of the frame 1, and the tail end of the temple body 2 has a wearing portion 23; the earmuff assembly 3 is mounted on the wearing portion 23 and has an open state relative to the wearing portion 23 (see reference). Figure 28 , Figure 32 and Figure 33 ) and collapsed state (refer to) Figure 8 , Figure 11 , Figure 26In the retracted state, the ear-covering component 3 and the wearing part 23 form a contoured structure for wearing on the user's ear 9; in the open state, at least a portion of the ear-covering component 3 can cover the user's ear 9 to form a sealed cavity between them. The ability of the ear-covering component to cover the ear generally refers to its ability to allow audio to enter the user's ear canal.
[0027] Specifically, in this embodiment, the lens body is applied to a smart wearable device. The overall structure adopts an adapter structure of frame 1 and temple body 2. A temple body 2 is connected to each side of the frame 1. The end of the temple body 2 is provided with a wearing part 23 adapted to the ear 9. The wearing part 23 is equipped with a switchable ear-covering component 3. All components are connected to form a complete lens body structure. The ear-covering component 3 is not an additional part independent of the lens body, but a component organically integrated with the wearing part 23. It retains the basic structural form of ordinary smart glasses, and expands the structural function through the addition of the ear-covering component 3. The structural design is simple and practical, without causing redundant modification to the original wearing structure of the lens body, and adapts to the lightweight design requirements of smart wearable devices.
[0028] In the above structure, the ear-covering component 3 is implemented with a dual-state switchable design. It is mounted on the wearing part 23 at the rear end of the temple body 2 and can flexibly switch between a folded state and an open state relative to the wearing part 23. That is, in the folded state, the ear-covering component 3 and the wearing part 23 form a contoured structure, conforming to the shape design of the wearing part 23, ensuring that the glasses can be worn normally on the user's ear 9 as ordinary smart glasses without affecting the normal wearing experience; while in the open state, at least part of the structure of the ear-covering component 3 can complete the shape adjustment to cover the user's ear 9, and the structure covers the user's ear 9 to form a sealed cavity. No additional auxiliary components are needed. The two forms can be changed simply by switching its own state. The switching method is simple and adapts to the convenient operation requirements of smart wearable devices.
[0029] This application effectively solves the problem of excessive components, such as headphones and earpieces 23, required when using smart glasses with XR devices in conjunction with related technologies through the dual-state design of the ear-covering component 3. This significantly improves usability. In the folded state, the glasses maintain the form of ordinary smart glasses, meeting daily wearing needs. In the open state, a sealed cavity is formed, achieving the audio effect of over-ear headphones. This single device functions as two separate devices, eliminating the need for users to carry or wear additional headphones, reducing the number of components on the earpieces 9, and optimizing the wearing experience. Furthermore, this design does not require significant modifications to the original core structure of the smart glasses, making it easily compatible with various smart wearable devices, expanding the application scenarios of the glasses, and improving the overall user experience and compatibility of smart wearable devices.
[0030] It should be noted that in this application, the ear-covering component 3 and the wearing part 23 having a contoured structure refers to the structural design in which the overall shape and outline of the ear-covering component in the retracted state fits and matches the wearing part (e.g., an arc-shaped structure that adapts to the human ear) at the end of the temple body. That is, the shape of the ear-covering component is designed to adapt to the outline of the wearing part, without any protruding or abrupt structural parts. After being stacked on the wearing part, it can form an integrated fit with the wearing part, adapting to the wearing outline of the human ear, ensuring that the glasses can be worn normally as ordinary smart glasses without changing the shape and comfort of conventional wearing.
[0031] Optionally, such as Figures 4 to 14 As shown, the ear-covering assembly 3 includes an ear-covering membrane 36, a flip-up bracket 34, and a sealing membrane 31. The ear-covering membrane 36 includes a fixing part 32 and a flip-up part 33. The fixing part 32 is mounted on the wearing part 23, and the flip-up part 33 is connected to the flip-up bracket 34. The flip-up bracket 34 is rotatably connected to the wearing part 23, and the sealing membrane 31 is connected to the fixing part 32 and the flip-up part 33. In the retracted state, the fixing part 32, the flip-up part 33, and the flip-up bracket 34 are all in a contoured structure with the wearing part 23 and are stacked on the wearing part 23 in sequence. In the open state, the flip-up bracket 34 can drive the flip-up part 33 to flip to a position where the sealing membrane 31 covers the user's ear 9.
[0032] Specifically, in this embodiment, the ear-covering assembly 3 is provided with an ear-covering membrane 36, a flip-up bracket 34, and a sealing membrane 31. The ear-covering membrane 36 is divided into a fixing part 32 and a flip-up part 33. The flip-up bracket 34 is linked to the flip-up part 33, so that the state switching of the ear-covering assembly 3 has structural support. The rotational connection design of the flip-up bracket 34 makes the switching between opening and closing actions smoother and the positioning more accurate, avoiding structural jamming problems during state switching and improving the ease of operation of the lens.
[0033] In the retracted state, the fixing part 32, the flipping part 33, and the flipping bracket 34 are arranged in a contour-following structure and stacked sequentially, allowing the ear-covering component 3 to fit perfectly with the wearing part 23. This maintains the lightweight wearing form of ordinary smart glasses while avoiding unnecessary structural protrusions that could affect wearing comfort, thus meeting the needs of daily wear. In the open state, the flipping bracket 34 drives the flipping part 33 to flip to the designated position, simultaneously pulling the sealing membrane 31 to cover the ear 9. The coordinated operation of multiple components makes the shape transformation of the ear-covering component 3 more orderly. The targeted covering design of the sealing membrane 31 also lays the structural foundation for the subsequent formation of a sealed cavity, ensuring the realization of the headphone mode function.
[0034] The overall structure of the ear-covering assembly 3 in this embodiment takes into account the structural requirements of both usage states. Each component has a clear division of labor and works in coordination. Without adding too much structural redundancy, the shape switching of the glasses is smoother and the wearing is more comfortable. At the same time, it enhances the structural stability of the ear-covering assembly 3 in covering the ear 9, further improving the practicality and adaptability of the glasses for multiple uses. The flip bracket 34 can be flipped manually by the user or automatically controlled by a drive component.
[0035] Optionally, such as Figures 4 to 14 As shown, the wearing part 23 has an arc-shaped structure, and the sealing film 31 is made of elastic material. In the retracted state, the sealing film 31 is located at the inner ring of the fixing part 32 and the flipping part 33, and is connected to the two mutually distant surfaces of the fixing part 32 and the flipping part 33. In the open state, the ear covering 36 has an annular structure, and the flipping bracket 34 can drive the flipping part 33 to flip relative to the fixing part 32, so that the sealing film 31 can be opened and sealed in the inner hollow of the annular structure.
[0036] Specifically, in this embodiment, by adapting the materials and structures of the wearing part 23 and the sealing film 31, and through the coordinated operation of the earmuff 36 and the sealing film 31, the state switching effect of the earmuff assembly 3 and the molding stability of the sealed cavity are further optimized, achieving a better user experience. The wearing part 23 is designed with an arc shape to fit the contour of the human ear 9. Combined with the elastic material of the sealing film 31, this allows the earmuff assembly 3 to fit snugly against the ear 9 in both the retracted and open states, improving wearing comfort. (Reference) Figures 21 to 24 When retracted, the sealing film 31 is located on the inner ring of the fixing part 32 and the flipping part 33 and connects the surfaces of the two, which not only avoids the sealing film 31 being exposed and causing structural redundancy, but also reserves reasonable deformation space for its opening action.
[0037] Additionally, when opened, the ear diaphragm 36 forms a ring structure, see reference. Figure 28 The flip bracket 34 drives the flip part 33 to flip and pull the elastic sealing membrane 31, so that it opens and seals the annular structure cutout. The elasticity of the sealing membrane 31 is used to achieve a tight seal at the cutout, which provides a key structural guarantee for the subsequent formation of a sealed cavity with the ear 9, effectively improving the sealing effect and thus ensuring the audio experience of the over-ear headphone mode. The overall design makes the structural adaptability and functional realization better.
[0038] Optionally, such as Figures 14 to 18 As shown, the wearing part 23 is provided with an assembly groove 231, and at least part of the ear covering component 3 is located in the assembly groove 231; the fixing part 32 is attached to the bottom wall of the assembly groove 231, and the two ends of the flip bracket 34 are rotatably connected to the side wall of the assembly groove 231 through the rotating shaft 25.
[0039] Specifically, in this embodiment, by providing a mounting groove 231 in the wearing part 23 and using a rotating shaft 25 to achieve a rotatable connection between the flip bracket 34 and the wearing part 23, see reference. Figure 26 This further optimized the assembly stability and structural reliability of the ear-covering component 3 during state switching, and improved the overall structural rationality of the lens body.
[0040] The wearing part 23 is provided with an assembly groove 231 and the ear-covering component 3 is partially housed therein, so that the ear-covering component 3 and the wearing part 23 form an embedded assembly structure, avoiding structural protrusions caused by exposed parts. This not only fits the arc design of the wearing part 23 and improves wearing comfort, but also provides a limiting and protective function for the ear-covering component 3, reducing structural damage caused by bumps during use.
[0041] In addition, the fixing part 32 is fixed to the bottom wall of the assembly groove 231, providing a stable installation base for the ear flap 36 and preventing displacement during state switching. The two ends of the flip bracket 34 are rotatably connected to the side wall of the assembly groove 231 through the rotating shaft 25, so that the flipping action has a precise rotation fulcrum. This makes the flipping process of the flip bracket 34 driving the flip part 33 smoother and more accurate in positioning, avoiding jamming or displacement problems, ensuring stable switching of the ear flap assembly 3's retraction and extension states, and providing reliable structural support for the subsequent molding of the sealed cavity.
[0042] Optionally, such as Figures 14 to 15 As shown, two guide grooves 232 are provided on the side wall of the assembly groove 231 at positions corresponding to the two rotating shafts 25; the two ends of the guide grooves 232 are respectively fitted with stop sleeves 24, and the two rotating shafts 25 are respectively fixed to the two ends of the flip bracket 34. The rotating shafts 25 can cooperate with the stop sleeves 24 to make the ear cover assembly 3 be in a retracted state or an open state.
[0043] Specifically, in this embodiment, by providing a guide groove 232 on the side wall of the assembly groove 231 and cooperating with the stop sleeve 24 and the rotating shaft 25, the precise positioning and stable locking of the ear cover assembly 3 in the retracted and open states are achieved, greatly improving the structural reliability after state switching. Specifically, the guide groove 232 on the side wall of the assembly groove 231 corresponding to the rotating shaft 25 provides a precise guiding trajectory for the movement and rotation of the rotating shaft 25, preventing offset or jamming during rotation and allowing the rotation of the flipping bracket 34 to be smoother and more orderly. The stop sleeves 24 are embedded at both ends of the guide groove 232. When the rotating shaft 25 moves with the flipping bracket 34 to both ends of the guide groove 232, it can precisely cooperate with the stop sleeves 24 to achieve effective positioning of the ear cover assembly 3 in the retracted and open states, preventing accidental state switching due to shaking or contact during use.
[0044] In this embodiment, the rotating shaft 25 is fixed to both ends of the flip bracket 34, making the force more even. Combined with the limiting effect of the stop sleeve 24, the ear-covering component 3 can maintain structural stability in both states, providing a solid structural foundation for the subsequent opening of the sealing film 31 and the formation of the sealed cavity. At the same time, it makes the feedback of state switching during user operation clearer and optimizes the overall user experience.
[0045] Optionally, such as Figures 26 to 27 As shown, the stop sleeve 24 is made of elastic material and has an inlet and outlet, the size of which is smaller than the diameter of the rotating shaft 25.
[0046] Specifically, in this embodiment, by specifically designing the material and structure of the stop sleeve 24, its stability in engagement with the rotating shaft 25 is further enhanced, improving the reliability of the ear-covering assembly 3's locking status. The stop sleeve 24 is made of elastic material and has an inlet / outlet with a size smaller than the diameter of the rotating shaft 25. This requires the rotating shaft 25 to apply a certain external force to engage or disengage from the stop sleeve 24 through the inlet / outlet. This ensures the tightness of the engagement between the rotating shaft 25 and the stop sleeve 24, effectively preventing the ear-covering assembly 3 from shifting its status due to vibration, contact, or other unexpected factors during use. Furthermore, the elastic deformation allows the rotating shaft 25 to smoothly enter and exit, without affecting the user's switching operations on the ear-covering assembly 3.
[0047] Optionally, such as Figures 33 to 35 As shown, the scope also includes a control module 5 and an inflation motor 4. The ear occluder 36 is made of elastic material and has an air cavity 361. The inflation motor 4 is connected to the air cavity 361 through an air duct 35. When in the open state, the control module 5 can control the inflation motor 4 to inflate the air cavity 361 to make the ear occluder 36 expand into a ring structure, or to expel air from the air cavity 361.
[0048] Specifically, in this embodiment, the control module 5 and the inflation motor 4, combined with the elastic, cavityd earmuff 36, allow the earmuff 36 to change shape through inflation and deflation, significantly improving the forming effect and adaptability of the sealed cavity. The earmuff 36 is made of elastic material and has an air cavity 361. With the inflation and deflation control of the inflation motor 4 and the air duct 35, it can inflate and expand into a ring-shaped structure similar to a swimming ring when open. (See reference...) Figure 32 It can fit snugly against the skin around the ear 9, providing reliable structural support for the formation of the sealed cavity and improving the audio performance; at the same time, it can be deflated and retracted to facilitate the repositioning and folding of the ear occlusion component 3 without affecting the normal wearing of the glasses. The control module 5 realizes precise control of inflation and deflation, making the shape switching of the ear occlusion 36 more flexible and adaptable to the ear contours of different users, further optimizing the multi-functional user experience and adaptability of the glasses.
[0049] Optionally, such as Figure 33 and Figure 35As shown, the lens body also includes a control module 5, an audio device 6, and a functional FPC 61. The audio device 6 is associated with the ear-covering assembly 3 and is electrically connected to the control module 5 through the functional FPC 61. The control module 5 can control the working state of the audio device 6, so that the audio device 6 can input or output audio to the sealed cavity.
[0050] Specifically, in this embodiment, by setting up a control module 5, an audio device 6, and a functional FPC 61, and constructing a linked control audio transmission structure, the headset, while forming a sealed cavity, fully realizes the audio input and output functions of a headphone, further improving the core design of a multi-functional device. The audio device 6 is associated with the ear-covering component 3, precisely corresponding to the sealed cavity for audio transmission. Combined with the sound insulation effect of the sealed cavity, this effectively improves the clarity of audio playback and acquisition, ensuring a good user experience in headphone mode. The functional FPC 61, as the electrical connection carrier between the audio device 6 and the control module 5, achieves stable signal transmission and adapts to the state switching actions of the ear-covering component 3, preventing damage to the wiring due to structural flipping and improving the overall durability of the structure.
[0051] The control module 5 can flexibly adjust the working state of the audio device 6, enabling the audio function to be turned on and off as needed, making the function switching between smart glasses and headphone modes smoother. The overall design deeply integrates the audio function with the structural function of the ear-covering component 3, eliminating the need for additional audio equipment, greatly improving the practicality and ease of use of the glasses, and adapting to the multi-functional integration needs of smart wearable devices.
[0052] In one embodiment, the audio device 6 can be disposed on the functional FPC 61 and located within the air cavity 361 of the earmuff 36, so that the audio device 6 can accurately correspond to the sealed cavity, improving the clarity of audio input and output; the air cavity 361 forms a protective space, reducing the device from external interference and impact damage; relying on the wiring of the functional FPC 61, it adapts to the shape changes of the earmuff 36, avoiding wire pulling, while the compact layout makes the structure lighter, adapting to the design requirements of smart wearables.
[0053] Optionally, such as Figures 23 to 25 As shown, the temple body 2 includes a first body 21 and a second body 22. The first body 21 is telescopically mounted on the frame 1 through the second body 22, and the wearing part 23 is located at the end of the first body 21 away from the second body 22.
[0054] Specifically, in this embodiment, the temple body 2 is configured as a retractable first body 21 and a retractable second body 22, with the wearing part 23 located at the end of the first body 21. This allows for flexible adjustment of the temple length, significantly improving the wearability of the glasses. The retractable structure can adjust the overall length of the temple according to different users' head shapes and facial contours, ensuring that the wearing part 23 precisely fits the ear 9, catering to the wearing needs of different groups and solving the problem of poor fit of traditional fixed-length temples. Simultaneously, the wearing part 23 is directly connected to the retractable first body 21, allowing the wearing part 23 to adjust its position synchronously when the temple extends or retracts, ensuring that the ear-covering component 3 always precisely corresponds to the ear 9, without affecting its usability in either state. The overall design significantly improves the wearing comfort and structural adaptability of the glasses, meeting the humanized design requirements of smart wearable devices.
[0055] Optionally, such as Figures 21 to 25 As shown, the mirror body also includes a control module 5, an electromagnet 211, and multiple permanent magnets 221; the electromagnet 211 is disposed on the first body 21 near one end of the second body 22 and is electrically connected to the control module 5; the multiple permanent magnets 221 are spaced apart on the second body 22 along the extension direction (X direction in the figure); the control module 5 can control the electromagnet 211 to be attracted and connected to one of the permanent magnets 221.
[0056] Specifically, in this embodiment, the magnetic attraction structure between the electromagnet 211 and multiple sets of permanent magnets 221 achieves precise positioning and stable locking after the temple is extended or retracted, significantly improving the convenience of temple length adjustment and the versatility of adjustment levels. (Refer to...) Figures 23 to 25 This is a schematic diagram showing how the temple body 2 gradually lengthens after the first main body 21 is adjusted in the direction of the arrow. An electromagnet 211 is located at the telescopic end of the first main body 21 and electrically connected to the control module 5. Multiple sets of permanent magnets 221 are spaced apart along the telescopic direction of the second main body 22. The control module 5 can be powered on or off to allow the user to adjust the first main body 21 to a suitable position and then control the electromagnet 211 to attract the permanent magnet 221 at that position, thus achieving multi-level temple length adjustment to adapt to different head shapes and facial contours, and to meet personalized wearing needs.
[0057] The magnetic fastening system replaces traditional mechanical buckles, making the extension and retraction of the temples smoother and eliminating the need for manual locking, thus improving ease of use. Simultaneously, the magnetic connection provides strong stability, effectively preventing the temples from shifting due to shaking or pulling during wear and use. This ensures a precise fit between the wearing part 23 and the earpiece 9, guaranteeing that the ear-covering component 3 functions properly in both states, further optimizing the wearing experience and structural reliability of the glasses.
[0058] Optionally, such as Figures 21 to 25As shown, the first body 21 is provided with a plurality of limiting parts 212 at intervals along the extension direction, and the second body 22 is provided with a plurality of cooperating parts 222 at intervals along the extension direction; when the electromagnet 211 is attracted and connected to one of the permanent magnets 221, at least one cooperating part 222 can cooperate with a limiting part 212 to restrict the degree of freedom of movement of the first body 21 relative to the second body 22 along the extension direction.
[0059] Specifically, in this embodiment, the dual positioning structure of mechanical limiting combined with magnetic fixation significantly improves the connection stability after the temples are extended and retracted, effectively avoiding displacement problems that may occur with single magnetic fixation. Based on the magnetic locking of electromagnet 211 and permanent magnet 221, the limiting part 212 and the cooperating part 222 of the first main body 21 and the second main body 22 are synchronously fitted together, which restricts the degree of freedom of movement of the temples in the direction of extension and retraction from a mechanical structure perspective, making the fixation effect after the temple length is adjusted more reliable. Even if subjected to external forces such as pulling or shaking, the structure can remain stable, ensuring that the wearing part 23 fits precisely with the ear 9 and does not affect the use effect of the ear covering component 3.
[0060] The limiting part 212 and the mating part 222 are spaced apart along the extension direction and match the position of the permanent magnet 221, making the adjustment of the temple position more precise. The dual cooperation of magnetic attraction and mechanical limiting also makes the feedback of position switching clearer. The limiting part 212 and the mating part 222 can take the form of: a rectangular boss and a rectangular mating hole, a raised block and an arc-shaped groove, a strip rib and a groove, etc.
[0061] Optionally, such as Figure 20 As shown, the first main body 21 includes a housing 26 and a cover plate 27. The housing 26 has a receiving groove 261 on the side away from the permanent magnet 221. The control module 5 is disposed in the receiving groove 261. The cover plate 27 covers the opening side of the receiving groove 261.
[0062] Specifically, in this embodiment, by providing a receiving groove 261 and a cover plate 27 on the housing 26 of the first main body 21, a protective and mounting structure is provided for the control module 5, improving the structural integration and component protection of the lens body. By embedding the control module 5 within the receiving groove 261, which is away from the permanent magnet 221, a compact layout of components is achieved, effectively utilizing the internal space of the temples and maintaining a lightweight design of the lens body. This also prevents magnetic interference from the permanent magnet 221 to the control module 5, ensuring the stability of its circuit signal transmission. The cover plate 27, which seals the opening of the receiving groove 261, provides physical protection for the internal control module 5, reducing damage from external factors such as dust and impacts. It also makes the temples appear neater and facilitates later disassembly and maintenance, thus optimizing the overall structural rationality and component durability of the lens body.
[0063] According to the second aspect of this application, such as Figures 36 to 37As shown, a smart wearable device is provided, including a mirror body in the first aspect.
[0064] Specifically, in this embodiment, the smart wearable device integrates the aforementioned lens solution, achieving the core technical effects of multifunctionality, high adaptability, and superior user experience. This effectively solves the problem of separate use of smart glasses and audio accessories in traditional smart wearable devices. Based on an integrated structure of the lens frame 1, retractable temples, and dual-state ear-covering components 3, the device retains the conventional wearing and use functions of ordinary smart glasses. Furthermore, by switching the state of the ear-covering components 3 and inflating them to form a sealed ear-covering cavity, it can achieve the audio input and output functions of headphones without the need for additional headphones. This multi-functionality significantly simplifies device configuration, reduces the number of components worn on the user's ears 9, and improves ease of use.
[0065] The retractable temples of the glasses feature a dual magnetic and mechanical limiting adjustment structure, allowing the smart wearable device to adapt to different users' head shapes and ear contours, catering to personalized wearing needs. Combined with the curved wearing part 23 and the embedded ear-covering component 3, this further enhances the device's wearing comfort and fit. The elastic sealing membrane 31, the inflatable ring-shaped ear-covering membrane 36, and the precisely positioned flip structure of the ear-covering component 3 ensure the sealing effect and stability of the cavity. Combined with the audio device 6 within the air chamber 361, this effectively improves the clarity of audio transmission.
[0066] Meanwhile, the integrated and lightweight layout design of the various functional components of the glasses allows the smart wearable device to maintain a compact overall structure, meeting the portability requirements of smart wearable devices. The protective and stable connection design of various control modules 5 and drive components also improves the structural reliability and durability of the device. This smart wearable device deeply integrates the functions of smart glasses and headphones, expanding the application scenarios of smart wearable devices, especially suitable for use with XR devices, significantly improving the overall practicality and market adaptability of the smart wearable device. Furthermore, volume buttons 7 and a camera module 8 can be installed on the glasses to accommodate the usage needs of the smart wearable device.
[0067] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0068] Although embodiments of this application have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of this application, the scope of which is defined by the claims and their equivalents.
Claims
1. A mirror body, used in a smart wearable device, characterized in that, include: Frame (1); Two temple bodies (2) are respectively connected to the two sides of the frame (1), and the tail end of the temple body (2) has a wearing part (23). The ear-covering component (3) is mounted on the wearing part (23) and has an open state and a retracted state relative to the wearing part (23); In the retracted state, the ear-covering component (3) and the wearing part (23) are in a conformal structure to be worn on the user's ear (9). When in the open state, at least a portion of the ear-covering assembly (3) is able to cover the user's ear (9) to form a sealed cavity between the ear and the user's ear (9).
2. The mirror body according to claim 1, characterized in that, The ear-covering assembly (3) includes an ear-covering membrane (36), a flip bracket (34), and a sealing membrane (31). The earmuff (36) includes a fixing part (32) and a flipping part (33). The fixing part (32) is mounted on the wearing part (23). The flipping part (33) is connected to the flipping bracket (34). The flipping bracket (34) is rotatably connected to the wearing part (23). The sealing film (31) is connected to the fixing part (32) and the flipping part (33). In the retracted state, the fixing part (32), the flipping part (33) and the flipping bracket (34) are all arranged in a similar shape to the wearing part (23) and are stacked on the wearing part (23) in sequence; When in the open state, the flip bracket (34) can drive the flip part (33) to flip to a position where the sealing film (31) covers the user's ear (9).
3. The mirror body according to claim 2, characterized in that, The wearing part (23) has an arc-shaped structure, and the sealing film (31) is made of elastic material; In the retracted state, the sealing film (31) is located at the inner ring of the fixing part (32) and the flipping part (33), and is connected to two mutually distant surfaces of the fixing part (32) and the flipping part (33); In the open state, the ear-covering membrane (36) is an annular structure, and the flipping bracket (34) can drive the flipping part (33) to flip relative to the fixing part (32), so that the sealing membrane (31) can be opened and sealed in the internal hollow of the annular structure.
4. The mirror body according to claim 3, characterized in that, The wearing part (23) is provided with a mounting groove (231), and at least part of the ear covering component (3) is located in the mounting groove (231); The fixing part (32) is attached to the bottom wall of the assembly groove (231), and the two ends of the flip bracket (34) are rotatably connected to the side wall of the assembly groove (231) through the rotating shaft (25).
5. The mirror body according to claim 4, characterized in that, Two guide grooves (232) are provided on the side wall of the assembly groove (231) at positions corresponding to the two rotating shafts (25). The guide groove (232) has stop sleeves (24) embedded at both ends, and the two rotating shafts (25) are fixed at both ends of the flip bracket (34). The rotating shafts (25) can cooperate with the stop sleeves (24) to make the ear cover assembly (3) be in the retracted state or the open state.
6. The mirror body according to claim 5, characterized in that, The stop sleeve (24) is made of elastic material and has an inlet and outlet, the size of which is smaller than the diameter of the rotating shaft (25).
7. The mirror body according to claim 3, characterized in that, It also includes a control module (5) and an inflation motor (4), the earmuff (36) is made of elastic material and has an air cavity (361), and the inflation motor (4) is connected to the air cavity (361) through an air duct (35); When in the open state, the control module (5) can control the air motor (4) to inflate the air chamber (361) to make the ear flap (36) expand into a ring structure, or to expel air from the air chamber (361).
8. The mirror body according to claim 1, characterized in that, It also includes a control module (5), an audio device (6) and a functional FPC (61), wherein the audio device (6) is associated with the ear-covering assembly (3) and is electrically connected to the control module (5) through the functional FPC (61); The control module (5) can control the working state of the audio device (6) so that the audio device (6) can input or output audio to the sealed cavity.
9. The mirror body according to claim 1, characterized in that, The temple body (2) includes a first body (21) and a second body (22). The first body (21) is telescopically mounted on the frame (1) via the second body (22). The wearing part (23) is located at the end of the first body (21) away from the second body (22).
10. The mirror body according to claim 9, characterized in that, It also includes a control module (5), an electromagnet (211), and multiple permanent magnets (221). The electromagnet (211) is disposed on the first body (21) near one end of the second body (22) and is electrically connected to the control module (5). A plurality of permanent magnets (221) are disposed at intervals on the second body (22) along the extension direction. The control module (5) can control the electromagnet (211) to be attracted and connected to one of the permanent magnets (221).
11. The mirror body according to claim 10, characterized in that, The first main body (21) is provided with a plurality of limiting parts (212) at intervals along the telescopic direction, and the second main body (22) is provided with a plurality of mating parts (222) at intervals along the telescopic direction. When the electromagnet (211) is attracted and connected to one of the permanent magnets (221), at least one of the mating parts (222) can cooperate with one of the limiting parts (212) to restrict the degree of freedom of movement of the first body (21) relative to the second body (22) in the extension direction.
12. The mirror body according to claim 10, characterized in that, The first main body (21) includes a housing (26) and a cover plate (27). The housing (26) has a receiving groove (261) on the side away from the permanent magnet (221). The control module (5) is disposed in the receiving groove (261). The cover plate (27) covers the opening side of the receiving groove (261).
13. A smart wearable device, characterized in that, include: The mirror body according to any one of claims 1-12.