Intelligent glasses
By separating the imaging and circuit components and optimizing space using elastic deformable conductive components, the problem of large size affecting the aesthetics of smart glasses has been solved, achieving the effects of reduced size and stable electrical signals.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN FUTAIHONG PRECISION IND CO LTD
- Filing Date
- 2025-04-23
- Publication Date
- 2026-04-17
AI Technical Summary
Existing smart glasses are bulky and aesthetically unappealing because the projection module and power control circuit are located in the frame.
The imaging components are installed in the housing cavity of the frame, and the circuit components are installed in the housing cavity of the temple. The conductive components with elastic deformation are bent between the frame and the temple to optimize space utilization and ensure stable transmission of electrical signals.
This effectively reduces the size of smart glasses, improves their aesthetics, and ensures stable transmission of electrical signals and stability of components.
Smart Images

Figure CN224137547U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of eyewear technology, and more particularly to a smart pair of glasses. Background Technology
[0002] Smart glasses, such as AR glasses, are mostly equipped with projection modules that can display specific patterns for the wearer to view. In some smart glasses, the projection module and the circuitry for powering and controlling it are located in the frame, resulting in a larger size and less aesthetically pleasing appearance. Utility Model Content
[0003] This application provides smart glasses to solve the problem that smart glasses in the known technology are too large and affect aesthetics.
[0004] This application provides smart glasses, including a frame, temples, a circuit assembly, and an imaging assembly; the frame has a first receiving cavity; the temples are rotatably connected to one end of the frame, and the temples have a second receiving cavity; the circuit assembly is located in the second receiving cavity; the imaging assembly is located in the first receiving cavity, and the imaging assembly includes a projection element, an electrical connector, and a first conductive element. The first conductive element includes a first end, a bent portion, and a second end connected in sequence. The first end is connected to the projection element, and the second end is connected to the electrical connector. The electrical connector is electrically connected to the circuit assembly; the bent portion is bent within the first receiving cavity, and the bent portion is elastically deformable.
[0005] In one possible implementation, along a first direction, the electrical connectors are spaced apart on one side of the projection element, and the bent portion is at least partially bent in the space between the projection element and the electrical connectors.
[0006] In one possible implementation, the projector is disposed along a second direction, which intersects with the first direction;
[0007] Along the second direction, one end of the projector is configured to project a pattern, and the other end of the projector is connected to the first end.
[0008] Along a third direction, the bent portion is bent at least partially on one side of the projected member, and the third direction intersects with the first direction and the second direction.
[0009] In one possible implementation, the circuit assembly includes a circuit board and a second conductive element. The circuit board is disposed within the second receiving cavity. One end of the second conductive element is electrically connected to the circuit board, and the other end of the second conductive element is electrically connected to the electrical connector and located on the side of the electrical connector away from the projection element.
[0010] In one possible implementation, the frame includes a frame body and a closure. Along a first direction, at least one end of the frame body is provided with a mounting protrusion, the mounting protrusion is provided with the first receiving cavity, and the closure is detachably connected to the mounting protrusion and configured to close the first receiving cavity.
[0011] In one possible implementation, the temple is rotatably connected to the mounting protrusion.
[0012] In one possible implementation, the smart glasses further include a rotating assembly, which includes a first rotating member and a second rotating member, the second rotating member being connected to the temple, the first rotating member being connected to the mounting protrusion, and the second rotating member being rotatably connected to the first rotating member.
[0013] In one possible implementation, the second rotating member is located within the second receiving cavity and connected to the temple, one end of the first rotating member is located within the first receiving cavity and connected to the mounting protrusion, and the other end of the first rotating member extends into the second receiving cavity and is rotatably connected to the second rotating member.
[0014] In one possible implementation, the smart glasses further include a mounting member disposed within the first receiving cavity, the mounting member having a mounting groove, and the projection member being at least partially engaged within the mounting groove.
[0015] In one possible implementation, the temple includes a first body portion and a second body portion, the first body portion having a second receiving cavity, the second body portion being detachably connected to the first body portion, and the second body portion being configured to close the second receiving cavity.
[0016] The smart glasses of this application have an imaging component installed in a first receiving cavity of the frame and a circuit component installed in a second receiving cavity of the temple. This separates the imaging component and the circuit component, avoiding the large size of the smart glasses caused by installing them in the same location, which would affect their aesthetics. Furthermore, the first conductive element of the imaging component has a bent portion, which can be bent within the first receiving cavity to better utilize the space within the cavity, thereby reducing the space required for the entire imaging component. Simultaneously, the bent portion can undergo elastic deformation, so that even if the bent portion is bent due to the circuit component inside the temple when the temple rotates relative to the frame, it can return to its initial state after the temple rotates back to its original position, thus ensuring the stability of the electrical signal transmission of the first conductive element. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of the smart glasses of this application in one embodiment.
[0018] Figure 2 This is an exploded view of the smart glasses of this application in one embodiment.
[0019] Figure 3 for Figure 2 A magnified view of a portion of area A corresponding to the smart glasses in the diagram.
[0020] Figure 4 This is a schematic diagram of the imaging component of the smart glasses of this application in one embodiment, wherein the first conductive element of the imaging component is in a bent state.
[0021] Figure 5 This is a schematic diagram of the imaging component of the smart glasses of this application in one embodiment, where the first conductive element of the imaging component is in an unbent state.
[0022] Figure 6 This is an exploded view of the rotating component in one embodiment of the smart glasses of this application.
[0023] Key component symbols: 100, Smart glasses; X, First direction; Y, Second direction; Z, Third direction; 10, Frame; 11, Frame body; 110, Receiving groove; 12, Closure; 13, Mounting protrusion; 130, First receiving cavity; 131, First perforation; 20, Temple; 21, First main body; 210, Second receiving cavity; 211, Second perforation; 22, Second main body; 30, Lens; 40, Circuit assembly; 41, Circuit board; 42, Second conductive element; 420, Curved part; 50, Imaging assembly; 51 52. Projector; 53. Electrical connector; 54. First conductive component; 55. First end; 56. Second end; 57. Bending portion; 58. First section; 59. Second section; 50. Third section; 51. Fourth section; 52. Light-emitting component; 63. Rotating assembly; 64. First rotating component; 65. First rotating protrusion; 66. First rotating hole; 67. Second rotating component; 68. Second rotating protrusion; 69. Second rotating hole; 60. Rotating shaft; 71. Mounting component; 72. Mounting groove.
[0024] The following detailed description, in conjunction with the accompanying drawings, will further illustrate this application. Detailed Implementation
[0025] The following description will refer to the accompanying drawings to provide a more complete picture of the present application. The drawings illustrate exemplary embodiments of the present application. However, the present application may be implemented in many different forms and should not be construed as limited to the exemplary embodiments set forth herein. These exemplary embodiments are provided to make the present application thorough and complete, and to fully convey the scope of the present application to those skilled in the art. The same reference numerals denote the same or similar components.
[0026] The terminology used herein is for the purpose of describing particular exemplary embodiments only and is not intended to limit the application. As used herein, unless the context clearly indicates otherwise, the singular forms “a,” “an,” and “the” are intended to also include the plural forms. Furthermore, when used herein, “comprising” and / or “including” and / or “having,” integers, steps, operations, components, and / or components, but does not exclude the presence or addition of one or more other features, regions, integers, steps, operations, components, and / or groups thereof.
[0027] Unless otherwise defined, all terms used herein (including technical and scientific terms) have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains. Furthermore, unless expressly defined herein, terms such as those defined in a general dictionary should be interpreted as having the same meaning as they have in the relevant art and in the content of this application, and will not be interpreted as having an idealized or overly formal meaning.
[0028] The specific embodiments of this application will be further described in detail below with reference to the accompanying drawings.
[0029] like Figures 1 to 4 As shown, this embodiment provides a smart glasses 100, which can be AR glasses, etc. The smart glasses 100 includes a frame 10, temples 20, circuit components 40, and imaging components 50.
[0030] The frame 10 is configured to mount the lens 30, and the frame 10 has a first receiving cavity 130. The temple 20 is rotatably connected to one end of the frame 10, and the temple 20 has a second receiving cavity 210, within which the circuit assembly 40 is located. The imaging assembly 50 is located within the first receiving cavity 130, and the imaging assembly 50 includes a projector 51, an electrical connector 52, and a first conductive element 53. The first conductive element 53 includes a first end 531, a bent portion 533, and a second end 532 connected in sequence. The first end 531 is connected to the projector 51, and the second end 532 is connected to the electrical connector 52, which is electrically connected to the circuit assembly 40. The bent portion 533 is bent within the first receiving cavity 130 and is capable of elastic deformation.
[0031] Thus, in this application, the imaging component 50 of the smart glasses 100 is installed in the first receiving cavity 130 of the frame 10, and the circuit component 40 is installed in the second receiving cavity 210 of the temple 20. This separates the imaging component 50 and the circuit component 40, avoiding the large size of the smart glasses 100 caused by installing them in the same location, which would affect the aesthetics of the smart glasses 100. Furthermore, the first conductive element 53 of the imaging component 50 has a bending portion 533, which can be bent within the first receiving cavity 130 to better utilize the space within the first receiving cavity 130, thereby reducing the space required for the entire imaging component 50. Meanwhile, the bending portion 533 can undergo elastic deformation, so that when the temple 20 rotates relative to the frame 10, even if the bending portion 533 is bent due to being driven by the circuit component 40 provided inside the temple 20, the bending portion 533 can return to its initial state after the temple 20 rotates and resets, thereby ensuring the stability of the electrical signal transmission of the first conductive element 53.
[0032] For ease of reading, this application introduces a first direction X, a second direction Y, and a third direction Z to describe the embodiments of this application. The first direction X, the second direction Y, and the third direction Z can be three non-parallel straight lines in space; further, the first direction X, the second direction Y, and the third direction Z can be three mutually perpendicular directions in a three-dimensional coordinate system (a three-dimensional Cartesian coordinate system). In subsequent embodiments, the first direction X is described as the X-axis direction of the three-dimensional coordinate system, the second direction Y is the Y-axis direction of the three-dimensional coordinate system, and the third direction Z is the Z-axis direction of the three-dimensional coordinate system.
[0033] Please combine Figures 1 to 4 In one embodiment, the eyeglass frame 10 includes a frame body 11 and a closure 12. The frame body 11 has two receiving slots 110, which are spaced apart along a first direction X, and each receiving slot 110 contains a lens 30.
[0034] Along the first direction X, at least one end of the frame body 11 is provided with a mounting protrusion 13, and the mounting protrusion 13 is provided with a first receiving cavity 130. In this embodiment, the number of mounting protrusions 13 is set to two, and the two mounting protrusions 13 are respectively connected to opposite ends of the frame body 11 along the first direction X, and each mounting protrusion 13 is provided with a first receiving cavity 130. The number of imaging components 50 is set to one, and the imaging component 50 is located in one first receiving cavity 130, so that an image can be simultaneously formed on two lenses 30 by a single imaging component 50.
[0035] It is understood that in other embodiments, the number of imaging components 50 may also be two, with the two imaging components 50 located in the two first receiving cavities 130 respectively, so that images can be formed on the two lenses 30 respectively by the two imaging components 50.
[0036] The mounting protrusion 13 has a roughly triangular cross-section. Along the second direction Y, the mounting protrusion 13 extends from the side of the frame body 11 near the temple 20, and is integrally formed with the frame body 11. Along the first direction X, a first receiving cavity 130 is formed on each adjacent side of the two mounting protrusions 13. Two closures 12 are provided, and each closure 12 is connected to an adjacent side of the two mounting protrusions 13. The closures 12 are detachably connected to the mounting protrusions 13, and are configured to close the first receiving cavity 130 to prevent the imaging component 50 located within the first receiving cavity 130 from being exposed and affecting its safety. The closures 12 can be detachably connected to the mounting protrusions 13 using screws or other threaded components.
[0037] Please combine Figures 1 to 4 In one embodiment, the projection element 51 is disposed along the second direction Y. One end of the projection element 51 is a projection end configured to project a pattern, and the other end of the projection element 51 is connected to the first end 531. Furthermore, the imaging assembly 50 also includes a light-emitting element 54, which is an electronic component capable of emitting light, such as a miniature LED. The light-emitting element 54 is disposed at the end of the projection element 51 away from the projection end. Both the light-emitting element 54 and the projection element 51 are electrically connected to the first end 531 of the first conductive element 53 to facilitate the transmission of control signals or power between the light-emitting element 54 and the projection element 51 and the circuit assembly 40. The light emitted by the light-emitting element 54 passes sequentially through the projection element 51 and the optical waveguide structure (not shown in the figure) and is projected onto the user's eyeball, allowing the wearer to see the image preset by the projection element 51.
[0038] In this embodiment, along the second direction Y, the light-emitting element 54 is connected to the end of the projection element 51 away from the projection end, and the first end 531 is connected to the end of the light-emitting element 54 away from the projection element 51.
[0039] Furthermore, the smart glasses 100 also includes a mounting member 70, which is disposed within the first receiving cavity 130. The mounting member 70 has a mounting groove 71, and the projection member 51 is at least partially held within the mounting groove 71. The mounting member 70 is made of an elastic material such as rubber. Along the second direction Y, the mounting member 70 is connected to one side of the cavity wall of the first receiving cavity 130, and the mounting groove 71 extends through the mounting member 70 along the second direction Y. The projection end of the projection member 51 is interference-fitted within the mounting groove 71 to limit the projection member 51 by the mounting member 70, and the outer peripheral surface of the projection member 51 is covered by the mounting member 70 to prevent the projection member 51 from being damaged by collision.
[0040] Please combine Figures 1 to 4 In one embodiment, along the first direction X, electrical connectors 52 are spaced apart on one side of the projection member 51, and a bent portion 533 is bent at least partially in the space between the projection member 51 and the electrical connectors 52. Along the third direction Z, the bent portion 533 is bent at least partially on one side of the projection member 51.
[0041] The first conductive element 53 is a metal sheet with conductive properties. The bent portion 533 is formed by bending the middle part of the first conductive element 53 multiple times. Specifically, it is bent in the first direction X, the second direction Y, and the third direction Z, so that when the first conductive element 53 is subjected to an external force in any one of the three directions X, Y, and Z, the bent portion 533 can undergo a certain degree of elastic deformation.
[0042] For details in this embodiment, please refer to [link / reference]. Figure 5 Before bending, the first conductive element 53 is roughly U-shaped. The imaging component 50 using this U-shaped first conductive element 53 can be used in smart glasses 100 where there are no space restrictions on its installation, allowing the imaging component 50 to adapt to different usage scenarios. When the imaging component 50 needs to be used in smart glasses 100 where installation space is limited, the first conductive element 53 can be bent and arranged according to the actual installation environment. The bent portion 533 formed after multiple bends in the middle section of the first conductive element 53 includes a first section 5331, a second section 5332, a third section 5333, and a fourth section 5334 connected in sequence. The first section 5331 and the fourth section 5334 are roughly rectangular, while the second section 5332 and the third section 5333 are roughly fan-shaped.
[0043] The first end portion 531 is disposed along the third direction Z. The bent portion 533 is bent backward from the first end portion 531 along the second direction Y to form the first region 5331. The bent portion 533 is then bent forward from the first region 5331 along the second direction Y to form the second region 5332. The bent portion 533 is then bent downward from the second region 5332 along the third direction Z to form the third region 5333. The bent portion 533 is then bent from the third region 5333 along the first direction X toward the side facing the electrical connector 52 to form the fourth region 5334. The second end portion 532 of the first conductive member 53 is bent along the second direction Y so that the second end portion 532 is disposed along the second direction Y.
[0044] Thus, by repeatedly bending the bending portion 533 using the space above the projector 51 and the space between the projector 51 and the electrical connector 52, the first conductive element 53 gains the ability to undergo a certain degree of elastic deformation in the first direction X, the second direction Y, and the third direction Z, thereby improving the service life of the first conductive element 53. Furthermore, after repeated bending, the bending portion 533 can utilize the space within the first receiving cavity 130 other than where the projector 51 and electrical connector 52 are installed to arrange the first conductive element 53, thereby improving the tightness of the arrangement of the first conductive element 53, the projector 51, and the electrical connector 52, and reducing the required volume of the first receiving cavity 130.
[0045] Please combine Figures 2 to 4 In one embodiment, the number of temples 20 is set to two, and the two temples 20 are spaced apart along the first direction X, and the two temples 20 are rotatably connected to the mounting protrusion 13 respectively.
[0046] The temple 20 includes a first main body portion 21 and a second main body portion 22. Along a first direction X, the first main body portion 21 has a second receiving cavity 210 on the side near the other temple 20, and the second main body portion 22 is located on the side of the first main body portion 21 near the other temple 20. The second main body portion 22 is detachably connected to the first main body portion 21, and the second main body portion 22 is configured to close the second receiving cavity 210. The second main body portion 22 can be detachably connected to the first main body portion 21 via a screw or other threaded component.
[0047] In this embodiment, the circuit assembly 40 includes a circuit board 41 and a second conductive element 42. The circuit board 41 is disposed in the second receiving cavity 210, one end of the second conductive element 42 is electrically connected to the circuit board 41, and the other end of the second conductive element 42 is electrically connected to the electrical connector 52 and is located on the side of the electrical connector 52 away from the projection element 51.
[0048] The circuit board 41 is arranged along the second direction Y and is fixed to the first main body 21. The circuit board 41 is equipped with electronic components such as a battery module and a control module, and the electrical connector 52 is an electronic component such as a connector. The second conductive element 42 is a metal sheet with conductive properties. The electrical connector 52 is electrically connected to the circuit board 41 through the second conductive element 42, thereby realizing power transmission or control signal transmission between the electrical connector 52 and the electronic components on the circuit board 41.
[0049] Along the second direction Y, a first through hole 131 is formed on the side of the mounting protrusion 13 near the temple 20, and the first through hole 131 connects to the first receiving cavity 130. Along the second direction Y, a second through hole 211 is formed on the side of the first main body 21 near the mounting protrusion 13, and the second through hole 211 connects to the second receiving cavity 210. The end of the second conductive member 42 away from the electrical connector 52 passes through the first through hole 131 and the second through hole 211 in sequence and extends into the second receiving cavity 210.
[0050] Please combine Figure 6 And see Figure 3 In one embodiment, the smart glasses 100 further includes a rotating assembly 60, which includes a first rotating member 61 and a second rotating member 62. The second rotating member 62 is connected to the temple 20, and the first rotating member 61 is connected to the mounting protrusion 13. The second rotating member 62 is rotatably connected to the first rotating member 61.
[0051] In this embodiment, the second rotating member 62 is located in the second receiving cavity 210 and connected to the temple 20. One end of the first rotating member 61 is located in the first receiving cavity 130 and connected to the mounting protrusion 13. The other end of the first rotating member 61 extends into the second receiving cavity 210 and is rotatably connected to the second rotating member 62.
[0052] Along the first direction X, the first rotating member 61 is located in the area of the first receiving cavity 130 on the side of the second conductive member 42 away from the electrical connector 52, and the first rotating member 61 is fixed to the cavity wall of the first receiving cavity 130 in the first direction X. One end of the first rotating member 61 passes through the first through hole 131 and the second through hole 211 in sequence and extends into the second receiving cavity 210, and the portion of the first rotating member 61 extending into the second receiving cavity 210 is provided with a first rotating protrusion 611. The first rotating protrusion 611 is generally cylindrical, and the direction of the axis of the first rotating protrusion 611 is parallel to the third direction Z.
[0053] Along the second direction Y, the second rotating member 62 is located on the side of the circuit board 41 near the mounting protrusion 13. Along the first direction X, one side of the second rotating member 62 is fixed to the first main body 21, and the other side of the second rotating member 62 has a protruding second rotating protrusion 621. There are two second rotating protrusions 621, spaced apart along the third direction Z, with a first rotating protrusion 611 located between the two second rotating protrusions 621. The first rotating protrusion 611 has a first rotating hole 6110, which penetrates the first rotating protrusion 611 along the third direction Z. The second rotating protrusion 621 has a second rotating hole 6210, which penetrates the second rotating protrusion 621 along the third direction Z. The first rotating hole 6110 connects to the second rotating holes 6210 of the two second rotating protrusions 621, so that a rotating shaft 63 can pass through the first rotating hole 6110 and the two second rotating holes 6210, thereby realizing the rotation of the second rotating protrusion 621 around the axis of the first rotating protrusion 611.
[0054] Specifically, the middle section of the second conductive member 42 is provided as a curved section 420, which is provided to fit the outer peripheral surface of the first rotating protrusion 611.
[0055] The specific embodiments of this application have been described above with reference to the accompanying drawings. However, those skilled in the art will understand that various changes and substitutions can be made to the specific embodiments of this application without departing from the scope of this application. All such changes and substitutions fall within the scope defined by this application.
Claims
1. A smart glass, characterized by, include: The frame has a first receiving cavity; The temple is rotatably connected to one end of the frame, and the temple is provided with a second receiving cavity; The circuit assembly is located within the second receiving cavity; An imaging component is located within the first receiving cavity. The imaging component includes a projector, an electrical connector, and a first conductive component. The first conductive component includes a first end, a bent portion, and a second end connected in sequence. The first end is connected to the projector, and the second end is connected to the electrical connector. The electrical connector is electrically connected to the circuit component. The bent portion is bent within the first receiving cavity and is capable of elastic deformation.
2. The smart glasses of claim 1, wherein, Along the first direction, the electrical connectors are spaced apart on one side of the projection element, and the bent portion is bent at least partially in the space between the projection element and the electrical connector.
3. The smart glasses of claim 2, wherein, The projection element is arranged along a second direction, which intersects with the first direction; Along the second direction, one end of the projector is configured to project a pattern, and the other end of the projector is connected to the first end. Along a third direction, the bent portion is bent at least partially on one side of the projected member, and the third direction intersects with the first direction and the second direction.
4. The smart glasses of claim 2, wherein, The circuit assembly includes a circuit board and a second conductive element. The circuit board is disposed in the second receiving cavity. One end of the second conductive element is electrically connected to the circuit board, and the other end of the second conductive element is electrically connected to the electrical connector and located on the side of the electrical connector away from the projection element.
5. The smart glasses of claim 1, wherein, The frame includes a frame body and a closure. Along a first direction, at least one end of the frame body is provided with a mounting protrusion, the mounting protrusion is provided with the first receiving cavity, and the closure is detachably connected to the mounting protrusion and configured to close the first receiving cavity.
6. The smart glasses of claim 5, wherein, The temple is rotatably connected to the mounting protrusion.
7. The smart glasses of claim 6, wherein, The smart glasses also include a rotating assembly, which includes a first rotating member and a second rotating member. The second rotating member is connected to the temple, the first rotating member is connected to the mounting protrusion, and the second rotating member is rotatably connected to the first rotating member.
8. The smart glasses of claim 7, wherein, The second rotating member is located in the second receiving cavity and connected to the temple. One end of the first rotating member is located in the first receiving cavity and connected to the mounting protrusion. The other end of the first rotating member extends into the second receiving cavity and is rotatably connected to the second rotating member.
9. The smart glasses of claim 8, wherein, The smart glasses also include a mounting component, which is disposed within the first receiving cavity and has a mounting groove, wherein the projection component is at least partially held in the mounting groove.
10. The smart glasses of claim 1, wherein, The temple includes a first main body and a second main body. The first main body has a second receiving cavity. The second main body is detachably connected to the first main body and is configured to close the second receiving cavity.