Glasses leg and glasses
By introducing connecting components and elastic elements into the temples of smart glasses, the inconvenience of manually unfolding and folding the temples has been solved, enabling automatic unfolding and clamping to adapt to the wearing needs of different users.
Patent Information
- Application Number
- CN202422960621.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-02
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2034-12-02
AI Technical Summary
The current design of smart glasses requires users to manually rotate the temples 90 degrees to unfold and fold them, which is inconvenient.
The first temple and the second temple are rotatably connected by a connecting assembly. The connecting assembly includes a first connector, a second connector, and a first elastic member. The first elastic member is sleeved on the first connector. The temple is automatically unfolded and clamped by the compression and extension of the elastic member.
It features automatic temple extension and clamping, improving wearing convenience, and can adjust the clamping force of the temples according to needs to adapt to different users' head sizes.
Smart Images

Figure CN223526596U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The embodiments of the present application relate to the technical field of glasses, in particular to a temple and glasses. BACKGROUND
[0002] The smart glasses can generally include augmented reality (AR) glasses, virtual reality (VR) glasses, glasses with only audio playing function, glasses with only image shooting function, and the like.
[0003] In the related art, the temple of the smart glasses is designed to be foldable and unfoldable. Before wearing, the user needs to manually move the temple from the folded position to the unfolded position. When wearing, the two temples are respectively clamped on the left and right sides of the head and respectively overlapped on the left and right ears, so as to fix the augmented reality glasses on the head. When the augmented reality glasses need to be stored, the user can manually fold the temples from the unfolded position to the folded position, so as to reduce the space occupied when being stored.
[0004] In the above temple design scheme, the user needs to move 90 degrees to switch the temple between the unfolded and folded positions, which is obviously inconvenient. UTILITY MODEL CONTENT
[0005] According to the embodiments of the present application, a temple is provided, which includes a first temple part, a second temple part, and a connecting assembly. The second temple part includes a receiving groove and a clearance. The first temple part and the second temple part are rotationally connected through the connecting assembly. The connecting assembly includes a first connecting piece, a second connecting piece, and a first elastic piece. A first end of the first connecting piece is rotationally connected with the first temple part. A second end of the first connecting piece extends into the receiving groove through the clearance. In the extension direction of the first connecting piece, the first connecting piece is movable relative to the second temple part. The second connecting piece is connected with the second end of the first connecting piece. In the extension direction of the first connecting piece, the position of the second connecting piece relative to the first connecting piece is adjustable. The first elastic piece is sleeved on the second end of the first connecting piece. The first elastic piece is located between the second connecting piece and the clearance. A first end of the first elastic piece abuts against the first connecting piece or the second temple part. A second end of the first elastic piece abuts against the second connecting piece.
[0006] The present application also provides a pair of glasses, which includes a frame, a gear position adjusting mechanism, and the above-mentioned temple. The first temple part of the temple is rotationally connected with the frame about a preset axis. The gear position adjusting mechanism is arranged between the first temple part and the frame. During the rotation of the first temple part relative to the frame about the preset axis, the gear position of the first temple part relative to the frame is adjusted through the gear position adjusting mechanism. BRIEF DESCRIPTION OF DRAWINGS
[0007] The accompanying drawings are intended only to illustrate and explain this application and do not limit the scope of this application.
[0008] Figure 1 This is a three-dimensional schematic diagram of a temple of a pair of glasses provided in an embodiment of this application.
[0009] Figure 2 This is a partial three-dimensional schematic diagram of a pair of glasses provided in an embodiment of this application.
[0010] Figure 3 For based on Figure 2 A schematic diagram of its breakdown.
[0011] Figure 4 This is a schematic diagram of a temple of a pair of glasses provided in an embodiment of this application.
[0012] Figure 5 This is a schematic diagram of the second temple portion in the folded position in an embodiment of this application.
[0013] Figure 6 This is a schematic diagram of the second temple portion in the unfolded position in an embodiment of this application.
[0014] Figure 7 This is a schematic diagram of the second temple portion in the outward expansion position in an embodiment of this application.
[0015] Figure 8 This is a perspective view of a second connector provided in an embodiment of this application.
[0016] Figure 9 This is a perspective view of a second connector provided in an embodiment of this application.
[0017] Figure 10 This is a three-dimensional schematic diagram of another temple of a pair of glasses provided in an embodiment of this application.
[0018] Figure 11 This is a partial three-dimensional schematic diagram of another type of eyeglasses provided in an embodiment of this application.
[0019] Figure 12 For as based Figure 11 A schematic diagram of its breakdown.
[0020] Figure 13 This is an exploded view of a temple of a pair of glasses provided in an embodiment of this application.
[0021] Figure 14 This is an exploded view of a temple of a pair of glasses provided in an embodiment of this application.
[0022] Figure 15A schematic view of a second temple part in a folding position to an unfolded position is provided in an embodiment of the present application.
[0023] Figure 16 A schematic view of a second temple part in an unfolded position is provided in an embodiment of the present application.
[0024] Figure 17 A schematic view of a second temple part in an outwardly expanded position is provided in an embodiment of the present application.
[0025] Figure 18 A partial perspective view of a pair of glasses is provided in an embodiment of the present application.
[0026] Figure 19 A partial perspective view of a pair of glasses is provided in an embodiment of the present application.
[0027] Figure 20 An exploded view of partial structures of a pair of glasses is provided in an embodiment of the present application.
[0028] Figure 21 A perspective view of a first temple part in a pair of glasses is provided in an embodiment of the present application.
[0029] Figure 22 A perspective view of a support in a pair of glasses is provided in an embodiment of the present application.
[0030] Figure 23 A perspective view of a pair of glasses with a temple in a first position relative to a frame is provided in an embodiment of the present application.
[0031] Figure 24 A perspective view of a pair of glasses with a temple in a second position relative to a frame is provided in an embodiment of the present application.
[0032] Figure 25 A perspective view of a pair of glasses with a temple in a second position relative to a frame is provided in an embodiment of the present application.
[0033] BRIEF DESCRIPTION OF THE DRAWINGS
[0034] 10 - first temple part,
[0035] 20 - second temple part, 21 - accommodating groove, 22 - avoiding part, 23 - stop protrusion, 24 - end plate,
[0036] 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,
[0037] 32 second connecting piece, 33 first elastic piece, 34 limiting piece,
[0038] 40 frame, 41 housing, 42 support, 43 cross beam,
[0039] 50 gear adjusting mechanism, 51 second elastic piece, 52 gear slot, 53 gear piece, 54 gasket,
[0040] 61 third connecting piece, 62 fourth connecting piece, 63 fifth connecting piece, 64 sixth connecting piece;
[0041] 71 first connecting hole, 72 second connecting hole, 81 flexible circuit board, 82 cover plate. DETAILED DESCRIPTION
[0042] In order to have a clearer understanding of the technical features, objects and effects of the embodiments of the present application, the specific implementation manners of the embodiments of the present application will be described with reference to the drawings.
[0043] In this document, "illustrative" means "serving as an example, instance, or illustration," and should not necessarily be construed as preferred or advantageous over other examples. Any aspect of the disclosure described in this document as "illustrative" is not necessarily to be construed as preferred or advantageous over other aspects.
[0044] In order to make the drawing simple, only the parts related to the present application are schematically shown in each drawing, which does not represent the actual structure of the product. In addition, in order to make the drawing simple and easy to understand, in some drawings, only one or more of the components with the same structure or function are schematically shown, or only one or more of them are marked.
[0045] The present application provides a temple, with reference to Figures 1 to 3The temple includes a first temple part 10, a second temple part 20, and a connecting assembly 30. The first temple part 10 and the second temple part 20 are rotatably connected by the connecting assembly 30. For example, the second temple part 20 can include a receiving groove 21 and an avoiding part 22. The connecting assembly 30 can include a first connecting piece 31, a second connecting piece 32, and a first elastic piece 33. A first end of the first connecting piece 31 is rotatably connected with the first temple part 10, and a second end of the first connecting piece 31 extends into the receiving groove 21 through the avoiding part 22. In the extension direction of the first connecting piece 31, the first connecting piece 31 is movable relative to the second temple part 20. The second connecting piece 32 is connected with the second end of the first connecting piece 31, and in the extension direction of the first connecting piece 31, the position of the second connecting piece 32 relative to the first connecting piece 31 is adjustable. The first elastic piece 33 is sleeved on the second end of the first connecting piece 31, the first elastic piece 33 is located between the second connecting piece 32 and the avoiding part 22, a first end of the first elastic piece 33 abuts against the first connecting piece 31 or the second temple part 20, and a second end of the first elastic piece 33 abuts against the second connecting piece 32.
[0046] From the above technical solution, since the first end of the first connecting piece 31 is rotatably connected with the first temple part 10, the second end of the first connecting piece 31 extends into the receiving groove 21 through the avoiding part 22, and the first connecting piece 31 is movable relative to the second temple part 20 in the extension direction of the first connecting piece 31, it can be known that the first connecting piece 31 is movably passed through the avoiding part 22 in the extension direction of the first connecting piece 31. Since the first end of the first elastic piece 33 abuts against the first connecting piece 31 or the second temple part 20, and the second end of the first elastic piece 33 abuts against the second connecting piece 32, the first elastic piece 33 is compressed between the second connecting piece 32 and the first connecting piece 31, or between the second connecting piece 32 and the second temple part 20. The first elastic piece 33 can press the second temple part 20 and the first temple part 10 against each other. The elastic compression potential energy of the first elastic piece 33 changes with the change of the position of the second connecting piece 32 relative to the avoiding part 22 of the second temple part 20. For details, please refer to Figures 5 to 7 , or Figures 15 to 17 , the second temple part 20 can be reciprocally rotated relative to the first temple part 10 between a folded position and an outwardly expanded position. When wearing the glasses, the second temple part 20 is first rotated from the folded position to the unfolded position, so as to open the glasses for wearing. Some users may also need to rotate the second temple part 20 from the unfolded position to the outwardly expanded position to adapt to the size of the head of the wearer of the glasses. In the process of moving the second temple part 20 from the folded position to the unfolded position, the first elastic piece 33 is first compressed and then elongated. In the process of rotating from the unfolded position to the outwardly expanded position, the first elastic piece 33 is compressed, so that the second temple part 20 in the outwardly expanded position has a clamping force towards the unfolded position, so as to prevent the glasses from falling off.
[0047] From the above, by setting the first elastic member 33 and causing the first temple part 10 and the second temple part 20 to abut under the action of the first elastic member 33, the second temple part 20 can be caused to receive a damping force during rotation relative to the first temple part 10, and the second temple part 20 can be caused to have a clamping force towards the folded position when it is expanded outwards relative to the first temple part 10. In the present application, since the position of the second connecting member 32 relative to the first connecting member 31 is adjustable along the extension direction of the first connecting member 31, the compression potential energy of the first elastic member 33 can be adjusted, so that the damping force received by the second temple part 20 during rotation relative to the first temple part 10 can be adjusted as required, and the clamping force that the second temple part 20 has towards the folded position when it is expanded outwards relative to the first temple part 10 can be adjusted. Moreover, when producing glasses in batches, the positions of the second connecting member 32 relative to the first connecting member 31 can be adjusted to cause the temple parts on both sides of the glasses to have the same clamping force.
[0048] It should be understood that when using the temple provided in the present application, the first temple part 10 can be connected to the frame 40 of the glasses, and the second temple part 20 can correspond to the head of the wearer of the glasses. The first end of the first connecting member 31 can be understood as the end of the first connecting member 31 closer to the frame 40, and the second end is the end farther 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 farther away from the frame 40.
[0049] In an example, the temple can rotate 20 degrees outwards from the unfolded position to reach the limit expanded position.
[0050] In a possible embodiment, the second connecting member 32 and the first connecting member 31 can be threadedly connected, so as to be able to adjust the position of the second connecting member 32 relative to the first connecting member 31. The second connecting member 32 can have an internally threaded hole, the second end of the first connecting member 31 can have an externally threaded, the second connecting member 32 can be sleeved on the second end of the first connecting member 31, and be threadedly connected with the first connecting member 31. In an example, referring to Figure 8 , the second connecting member 32 can be a nut with an internally threaded hole. In another example, referring to Figure 9 , the second connecting member 32 can have an internally threaded hole and an internal hexagonal recess, the internally threaded hole matches the externally threaded of the first connecting member 31, and the internal hexagonal recess is used to adapt to an internal hexagonal wrench, so that the internal hexagonal wrench can be used to rotate the second connecting member 32.
[0051] In a possible embodiment, referring to Figure 3 and Figure 4The first connecting piece 31 comprises a rotating part 302 and a limiting rod 301. The rotating part 302 is pivotally connected with the first temple part 10. The first end of the limiting rod 301 is connected with the rotating part 302. The second end of the limiting rod 301 extends into the accommodating groove 21 through the avoiding part 22 to be connected with the second connecting piece 32. The first elastic piece 33 is sleeved on the limiting rod 301. In this way, the first end and the second end of the limiting rod 301 are located on opposite sides of the limiting part respectively. The first end is connected with the rotating part 302, and the second end is connected with the second connecting piece 32. The extension direction of the first connecting piece 31 is the extension direction of the limiting rod 301. Since the first elastic piece 33 is sleeved on the limiting rod 301, the elastic deformation of the first elastic piece 33 along the extension direction of the limiting rod 301 can be limited. The first connecting piece 31 can move relative to the second temple part 20 along the extension direction of the limiting rod 301.
[0052] In an example, the reference 2 and Figure 14 The avoiding part 22 can be configured as a groove or a hole arranged on the second temple part 20. The limiting rod 301 can be gap-fitted through the avoiding part 22 to be movable relative to the second temple part 20.
[0053] Optionally, the reference Figure 3 and Figure 4 The number of the limiting rods 301 is at least two. The connecting assembly 30 further comprises a limiting sheet 34. The limiting sheet 34 comprises first avoiding holes. The number of the first avoiding holes is the same as the number of the limiting rods 301. The limiting rods 301 pass through the first avoiding holes one by one. The limiting sheet 34 is located between the second connecting piece 32 and the first elastic piece 33. According to the technical scheme, at least two limiting rods 301 can be connected side by side on the rotating part 302. By arranging at least two limiting rods 301, at least two first elastic pieces 33 can be arranged, so that sufficient compression potential energy can be generated to ensure that the second temple part 20 and the first temple part 10 can be reliably abutted, so that the second temple part 20 can be stably kept in the folded position and the unfolded position when rotating. Since the number of the first avoiding holes on the limiting sheet 34 is the same as the number of the limiting rods 301, the second end of each first elastic piece 33 can abut against the limiting sheet 34, that is, each first elastic piece 33 can be simultaneously limited between the limiting sheet 34 and the avoiding part 22. Correspondingly, only one second connecting piece 32 needs to be connected with one limiting rod 301 to limit the limiting sheet 34 on the limiting rod 301. That is, one second connecting piece 32 and one limiting sheet 34 can limit all the first elastic pieces 33 between the second connecting piece 32 and the avoiding part 22.
[0054] In an example, the reference Figure 3 and Figure 4The number of the limiting rods 301 can be three, and correspondingly, three first elastic members 33 are arranged, and the limiting sheet 34 has three first avoiding holes, and the second connecting member 32 can be connected with the limiting rod 301 located at the middle position.
[0055] In an optional embodiment, referring to Figure 4 , Figure 10 and Figure 18 , the second temple part 20 further comprises a stop protrusion 23 located in the accommodating groove 21. The stop protrusion 23 and the second connecting member 32 are located at the same side of the limiting sheet 34. Under the compression potential energy of the first elastic member 33, the limiting sheet 34 abuts against the stop protrusion 23. Based on this technical solution, the stop protrusion 23 can block the movement of the limiting sheet 34 away from the avoiding part 22, limit the maximum distance between the limiting sheet 34 and the avoiding part 22, so 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 part 20 and the second connecting member 32.
[0056] In a possible embodiment, referring to Figure 10 and Figure 18 , the stop protrusion 23 can have a limiting groove, and the opening of the limiting groove faces the limiting rod 301, and the second end of the limiting rod 301 extends into the limiting groove. Obviously, the limiting groove can guide the movement of the limiting rod 301, and the limiting sheet 34 sleeved on the limiting rod 301 can be blocked by the stop protrusion 23. In an example, the first connecting member 31 comprises three limiting rods 301, the number of the stop protrusion 23 is one, the second connecting member 32 is connected with the limiting rod 301 located at the middle position, 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 comprises three limiting rods 301, the number of the stop protrusion 23 is two and symmetrically distributed on the two sides of the first connecting member 31, the second connecting member 32 is connected with the limiting rod 301 located at the middle position, and the two limiting rods 301 located on the two sides respectively extend into the limiting grooves of the two stop protrusions 23.
[0057] In a possible embodiment, referring to Figure 3 and Figure 4 , the second temple part 20 further comprises an end plate 24 located on the side of the second temple part 20 facing the first temple part 10. The avoiding part 22 is a second avoiding hole arranged on the end plate 24, and the second avoiding hole is in communication with the accommodating groove 21. The first end of the first elastic member 33 abuts against the end plate 24 of the second temple part 20. In this way, the second end of the first connecting member 31 can extend into the accommodating groove 21 through the second avoiding hole, the first elastic member 33 is located in the accommodating 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.
[0058] In an alternative embodiment, with reference to Figure 3 and Figure 4 The first connecting piece 31 comprises 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 with the second temple portion 20. The first connecting portion 311 is provided with a third avoiding hole. The first end of the second connecting portion 312 is pivotally connected with the first temple portion 10. The second end of the second connecting portion 312 passes through the third avoiding hole, the second avoiding hole and extends into the accommodating groove 21 and is connected with the second connecting piece 32. The first elastic piece 33 is sleeved on the second end of the second connecting portion 312. According to the technical scheme, the second connecting portion 312 passes through the third avoiding hole of the first connecting portion 311 and the second avoiding hole of the second temple portion 20. By connecting the second end of the second connecting portion 312 with the second connecting piece 32, the second connecting portion 312 can be prevented from being separated from the second temple portion 20, and the second connecting portion 312 is movable relative to the second temple portion 20. Since the first connecting portion 311 is connected on the side of the second temple portion 20 facing the first temple portion 10, the first connecting piece 31 can be reliably connected with the second temple portion 20 and movable relative to the second temple portion 20. Moreover, the first elastic piece 33 is located in the accommodating groove 21 and can abut between the second connecting piece 32 and the end plate 24.
[0059] In an example, the second connecting portion 312 comprises a limiting rod 301 and a rotating portion 302 connected with each other. The limiting rod 301 passes through the third avoiding hole, the second avoiding hole and extends into the accommodating groove 21. The second end of the limiting rod 301 is connected with the second connecting piece 32 and the first end is connected with the rotating portion 302. The rotating portion 302 is pivotally connected with the first temple portion 10.
[0060] In another possible embodiment, with reference to Figures 10 to 12The first connecting piece 31 comprises a pivot connecting part 313, a wing plate 314 and a cylinder 315. The wing plate 314 and the cylinder 315 are connected with each other. The wing plate 314 is connected with the second temple part 20. The cylinder 315 extends into the accommodating groove 21 through the avoiding part 22. The first end of the pivot connecting part 313 is pivotally connected with the first temple part 10. The second end of the pivot connecting part 313 extends into the accommodating groove 21 through the cylinder 315 and is connected with the second connecting piece 32. The first elastic piece 33 is sleeved on the pivot connecting part 313. The first end of the first elastic piece 33 abuts against the end face of the cylinder 315. According to the technical scheme, the wing plate 314 is connected with the second temple part 20. The pivot connecting part 313 is arranged in the cylinder 315. The second end of the pivot connecting part 313 is connected with the second connecting piece 32. The pivot connecting part 313 can be separated from the second temple part 20. The pivot connecting part 313 is movable relative to the second temple part 20. Therefore, the reliable connection between the first connecting piece 31 and the second temple part 20 can be realized. The first connecting piece 31 is movable relative to the second temple part 20. Moreover, the first elastic piece 33 is arranged in the accommodating groove 21 and can abut between the second connecting piece 32 and the end face of the cylinder 315. Since the cylinder 315 extends into the accommodating groove 21, the distance between the second connecting piece 32 and the cylinder 315 can be reduced. Therefore, the reliability of the first elastic piece 33 can be ensured in the repeated expansion and contraction process of the first elastic piece 33.
[0061] In an example, the pivot connecting part 313 comprises a limiting rod 301 and a rotating part 302 which are connected with each other. The limiting rod 301 extends into the accommodating groove 21 through the cylinder 315. The second end of the limiting rod 301 is connected with the second connecting piece 32. The first end of the limiting rod 301 is connected with the rotating part 302. The rotating part 302 is pivotally connected with the first temple part 10.
[0062] The application also provides a pair of glasses, referring to Figure 2 or Figure 10 The glasses comprise a frame 40, a gear adjusting mechanism 50 and the temple provided in any of the above examples. The first temple part 10 of the temple is pivotally connected with the frame 40 about a preset axis. The gear adjusting mechanism 50 is arranged between the first temple part 10 and the frame 40. The gear of the first temple part 10 relative to the frame 40 is adjusted by the gear adjusting mechanism 50 during the rotation of the first temple part 10 relative to the frame 40 about the preset axis.
[0063] By the technical solution, since the gear position of the first temple part 10 relative to the frame 40 is adjusted by the gear position adjusting mechanism 50, the position of the frame 40 relative to the temple can be adjusted, so that the requirement of different users for the relative position of the temple and the frame 40 can be met. Moreover, based on the beneficial effects of the above-mentioned temple, the compression potential of the first elastic member 33 can be adjusted, so that the damping force that the second temple part 20 receives during the rotation relative to the first temple part 10 can be adjusted according to the requirement, and the clamping force that the second temple part 20 has when it is expanded outward relative to the first temple part 10 towards the folded position can be adjusted. Moreover, when the glasses are mass-produced, the temple on both sides of the glasses can have the same clamping force by adjusting the position of the second connecting member 32 relative to the first connecting member 31.
[0064] For example, the extension direction of the preset axis can be perpendicular to the extension direction of the first temple part 10.
[0065] In a possible implementation, with reference to Figure 12 , and with reference to Figures 20 to 22 The gear position adjusting mechanism 50 includes a second elastic member 51, a gear position slot 52, and a gear piece 53. The gear position slot 52 is arranged on the first temple part 10, and the number of the gear position slots 52 is multiple and distributed around the preset axis. The gear piece 53 is arranged on the frame 40, and the gear piece 53 and the gear position slot 52 are adapted to be inserted into the gear position slot 52. When the first temple part 10 rotates around the preset axis relative to the frame 40, the second elastic member 51 can be elastically deformed in the extension direction of the preset axis to allow the gear piece 53 to be inserted into the adjacent gear position slot 52 from the current gear position slot 52. Based on the technical solution, the second elastic member 51 can be in a compressed state in the extension direction of the preset axis to always press the gear piece 53 towards the gear position slot 52, and the gear piece 53 can be inserted into different gear position slots 52 to make the first temple part 10 relative to different positions. With reference to Figures 23 to 25 , which shows that the temple is located at different positions relative to the frame 40.
[0066] In a possible embodiment, with reference to Figure 20 , the first temple part 10 includes a first connecting hole 71, the frame includes a second connecting hole 72, and the glasses further include a third connecting member 61, which 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 part 10 and the frame 40 to realize the rotary connection of the first temple part 10 and the frame 40 around the preset axis.
[0067] In an example, the frame includes a support 42, a housing 41, and a crossbeam 43 connected with the housing 41, the support 42 is connected between the housing 41 and the first leg 10, and the support 42 and the first leg 10 are rotationally connected around a preset axis. The second connecting hole 72 and the stop piece 53 are both arranged on the support 42. The third connecting member 61 can be a screw or a bolt.
[0068] In an example, the second elastic member 51 can be a disc spring.
[0069] In an example, the gear adjusting mechanism further includes a gasket 54, the gasket 54 and the second elastic member 51 are stacked, and the third connecting member 61 passes through the gasket 54, the second elastic member 51, the second connecting hole 72, and the first connecting hole 71 to be connected with the first leg 10.
[0070] The glasses further include a flexible circuit board 81 and a display part, the display part is mounted on the frame, and the flexible circuit board 81 is arranged in the leg and electrically connected with the display part. The virtual scene can be displayed through the display part, so that the user can simultaneously observe the real world and the virtual scene, and even interact with the virtual scene. For example, the display part can be mounted on the housing 41.
[0071] In addition, with reference to Figure 3 or Figure 13 , the leg provided by the present application further includes a cover plate 82, the cover plate 82 is snap-fit connected with the first leg 10, so that the gear adjusting mechanism 50 and the connecting part of the support 42 and the first leg 10 can be hidden.
[0072] In addition, with reference to Figure 3 or Figure 13 , the leg provided by the present application further includes a fourth connecting member 62, the first connecting member 31 and the first leg 10 are rotationally connected through the fourth connecting member 62. In an example, the fourth connecting member 62 can be a screw or a bolt, the first leg 10 has a groove, the rotating part 302 of the first connecting member 31 is inserted into the groove, and the fourth connecting member 62 passes through the part of the first leg 10 located on one side of the groove and the rotating part 302 and can be connected with the part of the first leg 10 located on the other side of the groove. The rotating part 302 can rotate around the fourth connecting member 62.
[0073] In the glasses provided by the present application, with reference to Figure 3 , the glasses provided by the present application further include a fifth connecting member 63, the support 42 and the crossbeam 43 are connected through the fifth connecting member 63. In an example, the fifth connecting member 63 can be a screw or a bolt. In an example, the number of the fifth connecting member 63 can be at least two, so as to stably connect the support 42 and the crossbeam 43.
[0074] In the glasses provided by the present application, with reference to Figure 14The eyeglasses further include a sixth connecting member 64, and the wing plate 314 and the second temple part 20 are connected through the sixth connecting member 64. For example, the sixth connecting member 64 can be a screw or a bolt. For example, the number of the sixth connecting member 64 can be two, so as to stably connect the wing plate 314 and the second temple part 20.
[0075] The above merely provides illustrative and specific implementation manners of the embodiments of the present application, and is not intended to limit the scope of the embodiments of the present application. Any equivalent changes, modifications and combinations made by any person skilled in the art without departing from the concept and principle of the embodiments of the present application shall fall within the scope of protection of the embodiments of the present application.
[0076] It should be understood that, although the present specification is described according to various embodiments, not every embodiment contains only one independent technical solution, and the description manner of the specification is only for the sake of clarity, and the person skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can be combined appropriately to form other implementation manners which can be understood by the person skilled in the art. It should be understood that, although the present specification is described according to various embodiments, not every embodiment contains only one independent technical solution, and the description manner of the specification is only for the sake of clarity, and the person skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can be combined appropriately to form other implementation manners which can be understood by the person skilled in the art.
Claims
1. A temple, characterized in that, The utility model relates to a glasses frame, including: First temple part; Second temple part, the second temple part includes accommodating groove and avoidance part; Connecting assembly, the first temple part and second temple part are rotatably connected through the connecting assembly, the connecting assembly includes: First connecting piece, the first end of first connecting piece and the first temple part rotatably connected, the second end of first connecting piece extends to the accommodating groove through the avoidance part, along the extension direction of first connecting piece, first connecting piece is movable relative to the second temple part; Second connecting piece, the second connecting piece is connected with the second end of first connecting piece, and the position of second connecting piece is adjustable relative to first connecting piece along the extension direction of first connecting piece; First elastic piece, the first elastic piece is sleeved on the second end of first connecting piece, the first elastic piece is located between the second connecting piece and the avoidance part, the first end of first elastic piece is in abutment with first connecting piece or the second temple part, and the second end of first elastic piece is in abututment with second connecting piece.
2. The eyeglass temple of claim 1, wherein, The first connecting piece includes rotating part and limiting rod, the rotating part is pivotally connected with the first temple part, the first end of the limiting rod is connected with the rotating part, the second end of the limiting rod extends into the accommodating groove through the avoidance part to be connected with the second connecting piece, and the first elastic piece is sleeved on the limiting rod.
3. The eyeglass temple of claim 2, wherein, The number of the limiting rod is at least two, the connecting assembly further includes a limiting sheet, the limiting sheet includes a first avoiding hole, the number of the first avoiding hole is the same as the number of the limiting rod, the limiting rod passes through the first avoiding hole one by one, and the limiting sheet is located between the second connecting piece and the first elastic piece.
4. The eyeglass temple of claim 3, wherein, The second temple part further includes a stop protrusion, the stop protrusion is located in the accommodating groove, the stop protrusion and the second connecting piece are located on the same side of the limiting sheet, and the limiting sheet is pressed against the stop protrusion under the compression potential energy of the first elastic piece.
5. The eyeglass temple of claim 1, wherein, The second temple part further includes an end plate, the end plate is located on the side of the second temple part facing the first temple part, the avoidance part is a second avoiding hole arranged on the end plate, the second avoiding hole is communicated with the accommodating groove, and the first end of the first elastic piece is in abutment with the end plate of the second temple part.
6. The eyeglass temple of claim 5, wherein, The first connecting piece includes a first connecting part and a second connecting part, the first connecting part is located on the side of the end plate facing the first temple part, the first connecting part is connected with the second temple part, and a third avoiding hole is arranged on the first connecting part; The first end of the second connecting part is pivotally connected with the first temple part, the second end of the second connecting part passes through the third avoiding hole, the second avoiding hole and extends into the accommodating groove, and the second end of the second connecting part is connected with the second connecting piece; The first elastic piece is sleeved on the second end of the second connecting part.
7. The eyeglass temple of claim 1, wherein, The first connecting piece comprises a pivot connecting part, a wing plate and a cylinder, the wing plate and the cylinder are connected with each other, the wing plate is connected with the second temple part, and the cylinder extends into the accommodating groove through the avoiding part; The first end of the pivot connecting part is pivotally connected with the first temple part, the second end of the pivot connecting part extends into the accommodating groove through the cylinder and is connected with the second connecting piece; The first elastic member is sleeved on the pivot connecting part, and the first end of the first elastic member abuts against the end face of the cylinder.
8. Eyeglasses, characterized in that, The glasses comprise a frame, a gear adjusting mechanism and the temple as claimed in any one of claims 1-7, the first temple part of the temple and the frame are rotationally connected around a preset axis, the gear adjusting mechanism is arranged between the first temple part and the frame, During rotation of the first temple part relative to the frame around the preset axis, the first temple part adjusts the gear position relative to the frame through the gear adjusting mechanism.
9. The eyeglasses of claim 8, wherein, The gear adjusting mechanism comprises a second elastic member, gear slots and a gear piece, the gear slots are arranged on the first temple part, the number of the gear slots is plural and they are distributed around the preset axis, the gear piece is arranged on the frame, and the gear piece and the gear slots are adapted to be inserted into the gear slots; When the first temple part rotates relative to the frame around the preset axis, the second elastic member can be elastically deformed in the extension direction of the preset axis to allow the gear piece to be separated from the current gear slot and inserted into the adjacent gear slot.
10. The eyeglasses of claim 9, wherein, The first temple part comprises a first connecting hole, the frame comprises a second connecting hole, the glasses further comprise a third connecting piece, the third connecting piece passes through the second elastic member, the second connecting hole and the first connecting hole and is connected between the first temple part and the frame to realize rotational connection of the first temple part and the frame around the preset axis.
11. The eyeglasses of claim 8, wherein, The glasses further comprise a flexible circuit board and a display part, the display part is mounted on the frame, and the flexible circuit board is arranged in the temple and is electrically connected with the display part.