Glasses

By introducing connecting components and a position adjustment mechanism into the temples of smart glasses, the problem of needing to manually rotate the temples 90 degrees to unfold or fold them has been solved, achieving automatic unfolding and clamping, thus improving wearing convenience and adaptability.

CN224287276UActive Publication Date: 2026-05-26BEIJING UNICORN TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
BEIJING UNICORN TECH CO LTD
Filing Date
2024-12-02
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

The existing smart glasses design requires users to manually rotate the temples 90 degrees to unfold or fold them, which is inconvenient to use.

Method used

The temples include a first temple part, a second temple part, and a connecting component. The connecting component enables the temples to rotate and connect. The first elastic element and the position adjustment mechanism are used to adjust the position of the temples, providing automatic unfolding and clamping functions.

Benefits of technology

It features automatic temple extension and clamping, improving wearing convenience, and can adjust the clamping force of the temples according to user needs to adapt to different head sizes.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application provides eyeglasses. The eyeglasses include temples, a frame, and a position adjustment mechanism. The temples include a first temple portion, a second temple portion, and a connecting assembly. The connecting assembly includes a first connector, a second connector, and a first elastic member. The first temple portion and the second temple portion are rotatably connected via the connecting assembly. The second temple portion can reciprocate between a folded position and an outwardly flared position relative to the first temple portion. The first temple portion and the frame are rotatably connected around a preset axis. The position adjustment mechanism is disposed between the first temple portion and the frame. During the rotation of the first temple portion relative to the frame around the preset axis, the first temple portion adjusts its position relative to the frame via the position adjustment mechanism.
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Description

Technical Field

[0001] This application relates to the field of eyewear technology, and more particularly to eyewear. Background Technology

[0002] Smart glasses can typically include augmented reality (AR) glasses, virtual reality (VR) glasses, glasses with only audio playback function, glasses with only image capture function, and so on.

[0003] In related technologies, the temples of smart glasses are designed to unfold and fold. Before wearing, the user needs to manually slide the temples from the folded position outwards to the unfolded position. When wearing, the two temples are held on the left and right sides of the head, respectively, and rest on the left and right ears to secure the augmented reality glasses to the head. When it is time to store the augmented reality glasses, the user can manually fold the temples from the unfolded position inwards to the folded position to reduce the space occupied during storage.

[0004] In the above temple design, users need to rotate the temple 90 degrees to switch between the unfolded and folded positions, which is obviously not convenient. Utility Model Content

[0005] According to an embodiment of this application, a pair of eyeglasses is provided. The eyeglasses include temples, a frame, and a position adjustment mechanism. The temples include a first temple portion, a second temple portion, and a connecting assembly. The connecting assembly includes a first connector, a second connector, and a first elastic member. The first temple portion and the second temple portion are rotatably connected via the connecting assembly. The second temple portion is reciprocating between a folded position and an outwardly flared position relative to the first temple portion. The first temple portion and the frame are rotatably connected around a preset axis. The position adjustment mechanism is disposed between the first temple portion and the frame. During the rotation of the first temple portion relative to the frame around the preset axis, the first temple portion adjusts its position relative to the frame via the position adjustment mechanism. Attached Figure Description

[0006] The accompanying drawings are intended only to illustrate and explain this application and do not limit the scope of this application.

[0007] Figure 1 This is a three-dimensional schematic diagram of a temple of a pair of glasses provided in an embodiment of this application.

[0008] Figure 2 This is a partial three-dimensional schematic diagram of a pair of glasses provided in an embodiment of this application.

[0009] Figure 3 For based on Figure 2 A schematic diagram of its breakdown.

[0010] Figure 4 This is a schematic diagram of a temple of a pair of glasses provided in an embodiment of this application.

[0011] Figure 5 This is a schematic diagram of the second temple portion in the folded position in an embodiment of this application.

[0012] Figure 6 This is a schematic diagram of the second temple portion in the unfolded position in an embodiment of this application.

[0013] Figure 7 This is a schematic diagram of the second temple portion in the outward expansion position in an embodiment of this application.

[0014] Figure 8 This is a perspective view of a second connector provided in an embodiment of this application.

[0015] Figure 9 This is a perspective view of another second connector provided in an embodiment of this application.

[0016] Figure 10 This is a three-dimensional schematic diagram of another temple of a pair of glasses provided in an embodiment of this application.

[0017] Figure 11 This is a partial three-dimensional schematic diagram of another type of eyeglasses provided in an embodiment of this application.

[0018] Figure 12 For based on Figure 11 A schematic diagram of its breakdown.

[0019] Figure 13 This is an exploded view of a temple of a pair of glasses provided in an embodiment of this application.

[0020] Figure 14 This is an exploded view of a temple of a pair of glasses provided in an embodiment of this application.

[0021] Figure 15 This is a schematic diagram of the process of the second temple portion moving from a folded position to an unfolded position in a temple provided in an embodiment of this application.

[0022] Figure 16 This is a schematic diagram of the second temple portion in the unfolded position in an embodiment of this application.

[0023] Figure 17 This is a schematic diagram of the second temple portion in the outward expansion position in an embodiment of this application.

[0024] Figure 18 This is a partial three-dimensional schematic diagram of a pair of glasses provided in an embodiment of this application.

[0025] Figure 19This is a partial three-dimensional schematic diagram of a pair of glasses provided in an embodiment of this application.

[0026] Figure 20 This is an exploded view of a portion of the structure of a pair of glasses provided in an embodiment of this application.

[0027] Figure 21 This is a three-dimensional schematic diagram of the first temple portion of a pair of glasses provided in an embodiment of this application.

[0028] Figure 22 This is a three-dimensional schematic diagram of the frame in an eyeglass provided in an embodiment of this application.

[0029] Figure 23 This is a three-dimensional schematic diagram of an eyeglass provided in an embodiment of this application, showing the temples of the glasses positioned relative to the frame.

[0030] Figure 24 This is a three-dimensional schematic diagram of an eyeglass provided in an embodiment of this application, showing the temples in a different position relative to the frame.

[0031] Figure 25 This is a three-dimensional schematic diagram of an eyeglass provided in an embodiment of this application, showing the temples in a different position relative to the frame.

[0032] Explanation of reference numerals in the attached figures:

[0033] 10-First temple of the mirror,

[0034] 20-Second temple, 21-Receiving groove, 22-Avoiding part, 23-Stop protrusion, 24-End plate,

[0035] 30-Connecting assembly, 31-First connecting piece, 301-Limiting rod, 302-Rotating part, 311-First connecting part, 312-Second connecting part, 313-Pivoting connecting part, 314-Wing plate, 315-Cylinder body

[0036] 32 Second connector, 33 First elastic element, 34 Limiting piece,

[0037] 40-Frame, 41-Shell, 42-Frame, 43-Bridge,

[0038] 50 - Gear adjustment mechanism, 51 - Second elastic element, 52 - Gear groove, 53 - Baffle plate, 54 - Gasket,

[0039] 61-Third connector, 62-Fourth connector, 63-Fifth connector, 64-Sixth connector;

[0040] 71-First connecting hole, 72-Second connecting hole, 81-Flexible circuit board, 82-Cover plate. Detailed Implementation

[0041] To provide a clearer understanding of the technical features, objectives, and effects of the embodiments of this application, the specific implementation methods of the embodiments of this application will now be described with reference to the accompanying drawings.

[0042] In this document, “illustrative” means “serving as an example, illustration or description”, and any illustration or implementation described herein as “illustrative” should not be construed as a more preferred or advantageous technical solution.

[0043] To keep the drawings concise, each drawing only schematically shows the parts relevant to this application, and they do not represent the actual structure of the product. Furthermore, to make the drawings concise and easy to understand, in some drawings, components with the same structure or function are only schematically shown as one or more, or only one or more are labeled.

[0044] This application provides a temple for a pair of mirrors, as shown in the reference. Figures 1 to 3 The temple includes a first temple portion 10, a second temple portion 20, and a connecting assembly 30. The first temple portion 10 and the second temple portion 20 are rotatably connected via the connecting assembly 30. For example, the second temple portion 20 may include a receiving groove 21 and a clearance portion 22. The connecting assembly 30 may include a first connector 31, a second connector 32, and a first elastic member 33. The first end of the first connector 31 is rotatably connected to the first temple portion 10, and the second end of the first connector 31 extends into the receiving groove 21 via the clearance portion 22. The first connector 31 is movable relative to the second temple portion 20 along its extending direction. The second connector 32 is connected to the second end of the first connector 31, and its position relative to the first connector 31 is adjustable along its extending direction. The first elastic member 33 is sleeved on the second end of the first connector 31. The first elastic member 33 is located between the second connector 32 and the clearance portion 22. The first end of the first elastic member 33 abuts against the first connector 31 or the second temple portion 20, and the second end of the first elastic member 33 abuts against the second connector 32.

[0045] As can be seen from the above technical solution, since the first end of the first connector 31 is rotatably connected to the first temple 10, and the second end of the first connector 31 extends into the receiving groove 21 through the clearance portion 22, and the first connector 31 can move relative to the second temple 20 along its own extending direction, it can be seen that the first connector 31 movably passes through the clearance portion 22 along its own extending direction. Furthermore, since the first end of the first elastic member 33 abuts against the first connector 31 or the second temple 20, and the second end abuts against the second connector 32, the first elastic member 33 is compressed between the second connector 32 and the first connector 31, or between the second connector 32 and the second temple 20. The compressed first elastic member 33 allows the second temple 20 and the first temple 10 to press against each other. The elastic compressive potential energy of the first elastic member 33 changes with the position of the second connector 32 relative to the clearance portion 22 of the second temple 20. See details for further reference. Figures 5 to 7 , or, for reference Figures 15 to 17 The second temple 20 can reciprocate between a folded position and an extended position relative to the first temple 10. When wearing glasses, the second temple 20 is first rotated from the folded position to the extended position to open the glasses for easy wearing. Some users may also need to rotate the second temple 20 from the extended position to the extended position to fit the wearer's head size. During the movement of the second temple 20 from the folded position to the extended position, the first elastic element 33 is first compressed and then extended. During the rotation from the extended position to the extended position, the first elastic element 33 is compressed, so that the second temple 20 in the extended position has a clamping force towards the extended position, thus making the glasses less likely to fall off.

[0046] As described above, by providing the first elastic element 33 and causing the first temple 10 and the second temple 20 to abut against each other under the action of the first elastic element 33, the second temple 20 can be subjected to a damping force during rotation relative to the first temple 10, and the second temple 20 can have a clamping force towards the folded position when it expands outward relative to the first temple 10. In this application, since the position of the second connecting member 32 relative to the first connecting member 31 is adjustable along the extending direction of the first connecting member 31, the compressive potential energy of the first elastic element 33 can be adjusted, thereby adjusting the damping force experienced by the second temple 20 during rotation relative to the first temple 10, and adjusting the clamping force of the second temple 20 towards the folded position when it expands outward relative to the first temple 10 as needed. Moreover, in mass production of eyeglasses, the position of the second connecting member 32 relative to the first connecting member 31 can be adjusted to ensure that the temples on both sides of the eyeglasses have the same clamping force.

[0047] It should be understood that when using the temples provided in this application, the first temple portion 10 can be connected to the frame 40 of the glasses, and the second temple portion 20 can correspond to the head of the glasses wearer. The first end of the first connector 31 can be understood as the end of the first connector 31 closer to the frame 40, and the second end is the end away from the frame 40. The first end of the first elastic member 33 can be understood as the end of the first elastic member 33 closer to the frame 40, and the second end is the end away from the frame 40.

[0048] In one example, the temples can be rotated outward by 20 degrees from the extended position to reach the maximum extended position.

[0049] In one possible embodiment, the second connector 32 and the first connector 31 may be threadedly connected, thereby enabling adjustment of the position of the second connector 32 relative to the first connector 31. The second connector 32 may have an internally threaded hole, and the second end of the first connector 31 may have an externally threaded hole. The second connector 32 may be sleeved on the second end of the first connector 31 and threadedly connected to it. In one example, refer to... Figure 8 The second connector 32 can be a nut with an internally threaded hole. In another example, refer to... Figure 9 The second connector 32 may have an internal threaded hole and an internal hexagonal recess. The internal threaded hole matches the external thread of the first connector 31, and the internal hexagonal recess is used to adapt to an internal hexagonal wrench, so that the second connector 32 can be rotated using an internal hexagonal wrench.

[0050] In one possible embodiment, reference Figure 3 and Figure 4 The first connecting member 31 includes a rotating part 302 and a limiting rod 301. The rotating part 302 is pivotally connected to the first temple part 10. The first end of the limiting rod 301 is connected to the rotating part 302, and the second end of the limiting rod 301 extends through the clearance part 22 into the receiving groove 21 to connect with the second connecting member 32. A first elastic member 33 is sleeved on the limiting rod 301. Thus, the first end and the second end of the limiting rod 301 are located on opposite sides of the limiting part, with the first end connected to the rotating part 302 and the second end connected to the second connecting member 32. The extending direction of the first connecting member 31 is the same as the extending direction of the limiting rod 301. Since the first elastic member 33 is sleeved on the limiting rod 301, it can limit the elastic deformation of the first elastic member 33 along the extending direction of the limiting rod 301. The first connecting member 31 can move relative to the second temple part 20 along the extending direction of the limiting rod 301.

[0051] In one example, refer to 2 and Figure 14 The clearance portion 22 can be configured as a slot or hole provided on the second temple portion 20, and the limiting rod 301 can pass through the clearance portion 22 with a gap fit so that it can be movable relative to the second temple portion 20.

[0052] Optionally, refer to Figure 3 and Figure 4 The number of limiting rods 301 is at least two, and the connecting assembly 30 also includes a limiting piece 34. The limiting piece 34 includes a first clearance hole, the number of which is the same as the number of limiting rods 301. The limiting rods 301 pass through the first clearance holes one by one, and the limiting piece 34 is located between the second connecting member 32 and the first elastic member 33. Based on this technical solution, at least two limiting rods 301 can be connected side by side to the rotating part 302. By setting at least two limiting rods 301, at least two first elastic members 33 can be set, thereby generating sufficient compressive potential energy to ensure that the second temple 20 and the first temple 10 reliably abut, so that the second temple 20 can be subjected to sufficient damping force when rotating, and can be stably maintained in the folded position and unfolded position. Since the number of first clearance holes on the limiting piece 34 is the same as the number of limiting rods 301, the second end of each first elastic member 33 can abut against the limiting piece 34. That is, each first elastic member 33 can be simultaneously limited between the limiting piece 34 and the clearance portion 22. Correspondingly, only one second connector 32 needs to be connected to one of the limiting rods 301 to limit the limiting piece 34 to the limiting rod 301. In other words, one second connector 32 and one limiting piece 34 can limit all the first elastic members 33 between the second connector 32 and the clearance portion 22.

[0053] In one example, refer to Figure 3 and Figure 4 The number of limiting rods 301 can be three, and correspondingly, three first elastic elements 33 are provided. The limiting piece 34 has three first clearance holes, and the second connecting piece 32 can be connected to one of the limiting rods 301 located in the center position.

[0054] In one alternative implementation, refer to Figure 4 , Figure 10 and Figure 18 The second temple portion 20 also includes a stop protrusion 23, which is located in the receiving groove 21. The stop protrusion 23 and the second connecting member 32 are located on the same side of the limiting piece 34. Under the compressive potential energy of the first elastic member 33, the limiting piece 34 presses against the stop protrusion 23. Based on this technical solution, the stop protrusion 23 can prevent the limiting piece 34 from moving away from the avoidance portion 22, limiting the maximum distance between the limiting piece 34 and the avoidance portion 22, thereby ensuring that the first elastic member 33 is always compressed between the first connecting member 31 and the second connecting member 32, or always compressed between the second temple portion 20 and the second connecting member 32.

[0055] In one possible embodiment, reference Figure 10 and Figure 18 The stop protrusion 23 may have a limiting groove, the opening of which faces the limiting rod 301, and the second end of the limiting rod 301 extends into the limiting groove. Clearly, the limiting groove can guide and limit the limiting rod 301, and the limiting piece 34 sleeved on the limiting rod 301 can be blocked by the stop protrusion 23. In one example, the first connecting member 31 includes three limiting rods 301, and one stop protrusion 23. The second connecting member 32 is connected to the limiting rod 301 located in the center, and one of the other two limiting rods 301 extends into the limiting groove of the stop protrusion 23. In another example, the first connecting member 31 includes three limiting rods 301, and two stop protrusions 23 symmetrically distributed on both sides of the first connecting member 31. The second connecting member 32 is connected to the limiting rod 301 located in the center, and the two limiting rods 301 on both sides extend into the limiting grooves of the two stop protrusions 23 respectively.

[0056] In one possible embodiment, reference Figure 3 and Figure 4 The second temple portion 20 also includes an end plate 24, which is located on the side of the second temple portion 20 facing the first temple portion 10. A clearance portion 22 is a second clearance hole provided on the end plate 24, which communicates with the receiving groove 21. The first end of the first elastic member 33 abuts against the end plate 24 of the second temple portion 20. Thus, the second end of the first connecting member 31 can extend into the receiving groove 21 through the second clearance hole, the first elastic member 33 is located in the receiving groove 21 and sleeved on the second end of the first connecting member 31, and the first end of the first elastic member 33 can abut against the end plate 24.

[0057] In one alternative implementation, refer to Figure 3 and Figure 4The first connecting member 31 includes a first connecting portion 311 and a second connecting portion 312. The first connecting portion 311 is located on the side of the end plate 24 facing the first temple portion 10 and is connected to the second temple portion 20. A third clearance hole is provided on the first connecting portion 311. The first end of the second connecting portion 312 is pivotally connected to the first temple portion 10, and the second end of the second connecting portion 312 passes through the third clearance hole and the second clearance hole and extends into the receiving groove 21. The second end of the second connecting portion 312 is connected to the second connecting member 32. A first elastic member 33 is sleeved on the second end of the second connecting portion 312. Based on this technical solution, the second connecting part 312 passes through the third clearance hole of the first connecting part 311 and also passes through the second clearance hole of the second temple part 20. By connecting the second end of the second connecting part 312 to the second connecting member 32, the second connecting part 312 can be prevented from detaching from the second temple part 20, while the second connecting part 312 is movable relative to the second temple part 20. Furthermore, since the first connecting part 311 is connected to the side of the second temple part 20 facing the first temple part 10, a reliable connection between the first connecting member 31 and the second temple part 20 can be achieved, while also allowing the first connecting member 31 to be movable relative to the second temple part 20. Moreover, the first elastic member 33 is located in the receiving groove 21 and can abut against the second connecting member 32 and the end plate 24.

[0058] In one example, the second connecting portion 312 includes a limiting rod 301 and a rotating portion 302 connected to each other. The limiting rod 301 passes through a third clearance hole and a second clearance hole and extends into the receiving groove 21. The second end of the limiting rod 301 is connected to the second connecting member 32, and the first end is connected to the rotating portion 302. The rotating portion 302 is pivotally connected to the first temple portion 10.

[0059] In another possible embodiment, reference Figures 10 to 12The first connecting member 31 includes a pivot connecting portion 313, a wing plate 314, and a cylindrical body 315. The wing plate 314 and the cylindrical body 315 are connected to each other. The wing plate 314 is connected to the second temple portion 20. The cylindrical body 315 extends into the receiving groove 21 through the clearance portion 22. The first end of the pivot connecting portion 313 is pivotally connected to the first temple portion 10. The second end of the pivot connecting portion 313 passes through the cylindrical body 315 and extends into the receiving groove 21, and is connected to the second connecting member 32. The first elastic member 33 is sleeved on the pivot connecting portion 313, and the first end of the first elastic member 33 abuts against the end face of the cylindrical body 315. Based on this technical solution, by connecting the wing plate 314 to the second temple 20, and with the pivoting connection 313 passing through the cylinder 315 and its second end connected to the second connector 32, the pivoting connection 313 can be prevented from detaching from the second temple 20, while the pivoting connection 313 is movable relative to the second temple 20. Therefore, a reliable connection between the first connector 31 and the second temple 20 can be achieved, while also allowing the first connector 31 to be movable relative to the second temple 20. Furthermore, the first elastic member 33 is located in the receiving groove 21 and can abut against the end faces of the second connector 32 and the cylinder 315. Since the cylinder 315 extends into the receiving groove 21, the distance between the second connector 32 and the cylinder 315 can be reduced, thereby ensuring the reliability of the first elastic member 33 during repeated expansion and contraction.

[0060] In one example, the pivot connection 313 includes a limiting rod 301 and a rotating part 302 connected to each other. The limiting rod 301 passes through the cylinder 315 and extends into the receiving groove 21. The second end of the limiting rod 301 is connected to the second connector 32, and the first end is connected to the rotating part 302. The rotating part 302 is pivotally connected to the first temple portion 10.

[0061] This application also provides a pair of glasses, for reference. Figure 2 or Figure 10 The glasses include a frame 40, a position adjustment mechanism 50, and temples as described in any of the above embodiments. A first temple portion 10 of the temple and the frame 40 are rotatably connected about a preset axis. The position adjustment mechanism 50 is disposed between the first temple portion 10 and the frame 40. During the rotation of the first temple portion 10 relative to the frame 40 about the preset axis, the position of the first temple portion 10 relative to the frame 40 is adjusted by the position adjustment mechanism 50.

[0062] Through this technical solution, since the position of the first temple 10 relative to the frame 40 is adjusted by the position adjustment mechanism 50, the position of the frame 40 relative to the temple can be adjusted, thereby meeting the needs of different users for the relative position of the temple and the frame 40. Furthermore, based on the aforementioned beneficial effects of the temple, the compressive potential energy of the first elastic member 33 can be adjusted, thereby adjusting the damping force experienced by the second temple 20 during rotation relative to the first temple 10, and adjusting the clamping force of the second temple 20 towards the folded position when it expands outward relative to the first temple 10. Moreover, during mass production of eyeglasses, the position of the second connecting member 32 relative to the first connecting member 31 can be adjusted to ensure that the temples on both sides of the eyeglasses have the same clamping force.

[0063] For example, the extension direction of the preset axis can be perpendicular to the extension direction of the first temple 10.

[0064] In one possible implementation, refer to Figure 12 and reference Figures 20 to 22 The position adjustment mechanism 50 includes a second elastic element 51, a position groove 52, and a stop plate 53. The position groove 52 is disposed on the first temple portion 10, and there are multiple position grooves 52 distributed around a preset axis. The stop plate 53 is disposed on the frame 40, and the stop plate 53 is adapted to fit into the position groove 52. When the first temple portion 10 rotates relative to the frame 40 around the preset axis, the second elastic element 51 can elastically deform in the extension direction of the preset axis, allowing the stop plate 53 to disengage from the current position groove 52 and insert into an adjacent position groove 52. Based on this technical solution, the second elastic element 51 can be in a compressed state in the extension direction of the preset axis, so as to always press the stop plate 53 towards the position groove 52. The stop plate 53 can be inserted into different position grooves 52, so that the first temple portion 10 is in different positions. (Reference) Figures 23 to 25 The diagram shows that the temples are located in different positions relative to the frame 40.

[0065] In one possible embodiment, reference Figure 20 The first temple 10 includes a first connecting hole 71, the frame includes a second connecting hole 72, and the glasses also include a third connector 61. The third connector 61 passes through the second elastic member 51, the second connecting hole 72 and the first connecting hole 71, and is connected between the first temple 10 and the frame 40 to realize the first temple 10 and the frame 40 rotatably connected around a preset axis.

[0066] In one example, the frame includes a bracket 42, a housing 41, and a crossbeam 43. The crossbeam 43 is connected to the housing 41, and the bracket 42 is connected between the housing 41 and the first temple 10, with the bracket 42 and the first temple 10 rotatably connected about a predetermined axis. A second connecting hole 72 and a baffle 53 are both provided on the bracket 42. The third connector 61 can be a screw or a bolt.

[0067] In one example, the second elastic element 51 can be a disc spring.

[0068] In one example, the gear adjustment mechanism further includes a shim 54, which is stacked with a second elastic member 51, and a third connector 61 passes through the shim 54, the second elastic member 51, the second connecting hole 72 and the first connecting hole 71 to connect with the first temple portion 10.

[0069] The glasses also include a flexible circuit board 81 and a display unit. The display unit is mounted on the frame, and the flexible circuit board 81 is disposed in the temple and electrically connected to the display unit. The display unit can show virtual scenes, allowing the user to simultaneously observe the real world and the virtual scene, and the user can even interact with the virtual scene. For example, the display unit can be mounted on the housing 41.

[0070] In addition, refer to Figure 3 or Figure 13 The temple provided in this application also includes a cover plate 82, which is fastened to the first temple portion 10, thereby concealing the position adjustment mechanism 50 and the connection between the bracket 42 and the first temple portion 10.

[0071] In addition, refer to Figure 3 or Figure 13 The temple provided in this application also includes a fourth connector 62, through which the first connector 31 and the first temple portion 10 are rotatably connected. For example, the fourth connector 62 can be a screw or bolt. The first temple portion 10 has a groove, and the rotating part 302 of the first connector 31 is inserted into the groove. After the fourth connector 62 passes through the portion of the first temple portion 10 located on one side of the groove and the rotating part 302, it can be connected to the portion of the first temple portion 10 located on the other side of the groove. The rotating part 302 can rotate around the fourth connector 62.

[0072] The eyeglasses provided in this application, for reference Figure 3 The eyeglasses provided in this application also include a fifth connector 63, through which the support 42 and the beam 43 are connected. For example, the fifth connector 63 may be a screw or bolt. For example, the number of fifth connectors 63 may be at least two, to securely connect the support 42 and the beam 43.

[0073] The eyeglasses provided in this application, for reference Figure 14The eyeglasses provided in this application also include a sixth connector 64, through which the wing plate 314 and the second temple 20 are connected. For example, the sixth connector 64 can be a screw or bolt. For example, there can be two sixth connectors 64 to securely connect the wing plate 314 and the second temple 20.

[0074] The above are merely illustrative embodiments of this application and are not intended to limit the scope of the embodiments of this application. Any equivalent changes, modifications, and combinations made by those skilled in the art without departing from the concept and principles of the embodiments of this application should fall within the protection scope of the embodiments of this application.

[0075] It should be understood that although this specification describes various embodiments, not every embodiment contains only one independent technical solution. This descriptive method is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. A pair of eyeglasses, characterized in that, The eyeglasses include: Temples, the temples comprising: First temple section The second shot shows the legs, and A connecting assembly, comprising a first connector, a second connector, and a first elastic member, wherein the first temple portion and the second temple portion are rotatably connected via the connecting assembly, and the second temple portion is reciprocally rotatable relative to the first temple portion between a folded position and an outwardly flared position; The frame, the first temple and the frame are rotatably connected about a preset axis; and A gear adjustment mechanism is disposed between the first temple and the frame. During the rotation of the first temple relative to the frame around a preset axis, the first temple adjusts its gear position relative to the frame through the gear adjustment mechanism.

2. The eyeglasses according to claim 1, characterized in that, The position adjustment mechanism includes a second elastic element, a position groove, and a baffle. The position groove is disposed on the first temple portion, and there are multiple position grooves distributed around the preset axis. The baffle is disposed on the frame, and the baffle and the position groove are adapted to be inserted into the position groove. When the first temple rotates relative to the frame about the preset axis, the second elastic member can elastically deform in the extension direction of the preset axis, so as to allow the baffle to disengage from the current baffle slot and insert into the adjacent baffle slot.

3. The eyeglasses according to claim 2, characterized in that, The first temple portion includes a first connecting hole, the frame includes a second connecting hole, and the eyeglasses also include a third connecting member. The third connecting member passes through the second elastic member, the second connecting hole, and the first connecting hole, and is connected between the first temple portion and the frame to achieve a rotatable connection between the first temple portion and the frame around the preset axis.

4. The eyeglasses according to any one of claims 1 to 3, characterized in that, The glasses also include a flexible circuit board and a display unit. The display unit is mounted on the frame, and the flexible circuit board is disposed in the temple and electrically connected to the display unit.

5. The eyeglasses according to any one of claims 1 to 3, characterized in that, During the movement of the second temple from the folded position to the unfolded position, the first elastic element is first compressed and then extended. During the rotation of the second temple from the unfolded position to the outward expansion position, the first elastic element is compressed.

6. The eyeglasses according to any one of claims 1 to 3, characterized in that, The second temple portion includes a receiving groove and a clearance portion; the first end of the first connector is rotatably connected to the first temple portion, and the second end of the first connector extends into the receiving groove through the clearance portion. Along the extending direction of the first connector, the first connector is movable relative to the second temple portion. The second connector is connected to the second end of the first connector, and the position of the second connector relative to the first connector is adjustable along the extending direction of the first connector; The first elastic element is sleeved on the second end of the first connector. The first elastic element is located between the second connector and the clearance portion. The first end of the first elastic element abuts against the first connector or the second temple portion, and the second end of the first elastic element abuts against the second connector.

7. The eyeglasses according to any one of claims 1 to 3, characterized in that, The extension direction of the preset axis is perpendicular to the extension direction of the first temple portion.

8. The eyeglasses according to any one of claims 1 to 3, characterized in that, The frame includes a bracket, a housing, and a crossbeam. The crossbeam is connected to the housing, and the bracket is connected between the housing and the first temple. The bracket and the first temple are rotatably connected about a preset axis.

9. The eyeglasses according to any one of claims 1 to 3, characterized in that, The temple also includes a cover plate, which is fastened to the first temple portion.

10. The eyeglasses according to any one of claims 1 to 3, characterized in that, The temple also includes a fourth connector, and the first connector and the first temple portion are rotatably connected through the fourth connector.