Smart glasses and method of adjusting the same

CN115128835BActive Publication Date: 2026-08-18HANGZHOU ENTER ELECTRONIC TECH CO LTD
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Patent Information

Application Number
CN202210631449.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-06-06
Publication Date
2026-08-18
Estimated Expiration
2042-06-06

AI Technical Summary

Technical Problem

目前大多数智能眼镜的功能类似无线耳机,主要用于通话、听歌等,通过镜腿上的敲击、滑动等操作实现交互,也有一些智能眼镜在镜腿上设置了按钮用于交互;但由于不同人的头型不同,固定的镜腿长度无法适配所有头型,无法提供舒适的佩戴体验

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Abstract

The application relates to an intelligent glasses and a regulating method thereof. The intelligent glasses comprises a glasses body and a regulating device, the glasses body comprises a glasses frame and glasses legs rotatably connected with the glasses frame, the glasses legs comprise a glasses leg section and an extension section, one end of the extension section is rotatably connected with the glasses frame, and the other end is movably connected with the near-eye end of the glasses leg section so that the length of the glasses leg is adjustable; the regulating device is arranged on the glasses leg, and the regulating device comprises a control assembly and a sensing assembly. The intelligent glasses enable the control assembly to have a lifting state and a pressing state, the length of the glasses leg can be adjusted in the lifting state, and interaction with the intelligent glasses can be realized in the pressing state; meanwhile, the application also provides a regulating method of the intelligent glasses, and the switching of intelligent interaction and mechanical regulation of the intelligent glasses can be realized by sensing the lifting state or the pressing state.
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Description

Technical Field

[0001] This invention relates to the field of eyewear technology, and in particular to a smart pair of glasses and its adjustment method. Background Technology

[0002] In recent years, the development of smart wearable devices has become increasingly popular. These devices mainly include smartwatches, smart glasses, and smart bracelets. Currently, most smart glasses function similarly to wireless headphones, primarily for making calls and listening to music. Interaction is achieved through tapping and swiping on the temples, while some smart glasses also have buttons on the temples for interaction. However, due to the different head shapes of different people, fixed temple lengths cannot fit all head shapes, failing to provide a comfortable wearing experience. Summary of the Invention

[0003] Therefore, it is necessary to provide a smart glasses solution to address the aforementioned technical problems, which enables the control component to have a raised state and a pressed state. In the raised state, the length of the temples can be adjusted, and in the pressed state, interaction with the smart glasses can be achieved. Furthermore, a method for adjusting the smart glasses is also provided, which can switch between intelligent interaction and mechanical adjustment of the smart glasses by sensing the pressed or raised state.

[0004] A smart pair of glasses, comprising:

[0005] The eyeglasses body includes a frame and temples rotatably connected to the frame. The temples include a temple section and an extension section. One end of the extension section is rotatably connected to the frame, and the other end is movably connected to the near-eye end of the temple section to allow for adjustment of the temple length.

[0006] An adjustment device is disposed on the temple. The adjustment device includes a control component and a sensing component. The control component has a raised state and a pressed state. In the raised state, the control component drives the temple segment to move along the length direction of the extension segment to adjust the length of the temple. In the pressed state, the control component drives the sensing component to actuate to sense the action state of the control component.

[0007] In the above embodiments, the adjustment device adjusts for different states of the control component. In the raised state, the control component can drive the temple section to move along the length of the extension section, thereby adjusting the length of the temple to fit different head shapes. In the pressed state, the control component can drive the sensing component to sense the pressing, rotating and other actions performed by the control component, thereby realizing interaction with the smart glasses.

[0008] In one embodiment, the control component is located on the side or top of the temple.

[0009] In one embodiment, the switching between intelligent interaction and temple length adjustment is achieved by adjusting the relative distance between the adjusting member and the mating member. The control component is located at the top of the temple and includes a knob and a rotating shaft mounted on the knob. The rotating shaft passes through the temple section and is correspondingly arranged with the sensing component.

[0010] The adjustment device further includes a telescopic component, which includes an adjusting member and a mating member. The adjusting member and the mating member are arranged along the length direction of the rotating shaft. The adjusting member is fixed to the rotating shaft, and the mating member is sleeved on the rotating shaft and the relative distance between the mating member and the adjusting member is adjustable.

[0011] With this configuration, the adjusting component and the mating component are arranged along the length of the rotating shaft. Since the adjusting component is fixed to the rotating shaft, and the mating component is sleeved on the rotating shaft and can rotate relative to it, in the pressed state, the adjusting component and the mating component disengage, and the sensing component senses the pressing, rotating and other actions of the knob, thereby realizing the interaction with the smart glasses. In the lifted state, the adjusting component and the mating component abut against each other, and then the length of the temple is adjusted by controlling the knob.

[0012] In one embodiment, in order to adjust the length of the temple, the telescopic component further includes a rack, which is arranged along the length direction of the extension segment. The adjusting member includes a drive gear, and the mating member includes a mating gear corresponding to the drive gear and a gear portion meshing with the rack. In the raised state, the drive gear meshes with the mating gear and drives the gear portion to mesh with the rack, thereby driving the temple segment to move along the length direction of the extension segment.

[0013] With this setup, the length of the temple can be adjusted. When the temple is raised, the adjusting part and the mating part abut against each other. At this time, the driving gear and the mating gear mesh. By rotating the knob, the gear part meshes with the rack, thereby driving the temple section to adjust along the length of the extension section, thus realizing the extension and retraction adjustment of the temple.

[0014] In one embodiment, in order to prevent the length of the temple from being affected by external force during interaction in the pressed state, the smart glasses also include a locking assembly, which includes a locking bolt and a locking bolt shaft. The locking bolt shaft is disposed on the temple section, and the extension section has a locking bolt groove for cooperating with the locking bolt shaft to move along the direction of the extension section. The locking bolt is rotatably connected to the locking bolt shaft.

[0015] When pressed, the locking bolt locks the gear portion;

[0016] When in the raised state, the locking bolt disengages from the gear.

[0017] With this configuration, the locking bolt and the rotating shaft are rotatably connected. When pressed, one end of the locking bolt abuts against the adjusting part, and the other end locks the gear part, preventing the gear part from rotating. This effectively avoids the situation where the temple section slides relative to the extension section due to external force, resulting in a good locking effect and making the interaction process more stable.

[0018] In one embodiment, to improve the locking effect, the bolt includes an abutting part, a rotating part, and a locking part. The abutting part, the rotating part, and the locking part are connected in a hook-shaped structure, and the rotating part rotates around the bolt axis.

[0019] The adjusting member further includes a guide portion. In the pressed state, the abutting portion is located in the guide portion, and the locking portion locks the gear portion. In the lifted state, the abutting portion is located in the guide portion, and the locking portion disengages from the gear portion.

[0020] With this configuration, the abutting part, rotating part, and locking part are connected in a hook-shaped structure. In the pressed state, the abutting part of the bolt abuts against the guide part, and the locking part of the bolt locks the gear part, preventing the gear part from rotating, resulting in a good locking effect.

[0021] In one embodiment, to make the locking process smoother, the guide portion includes a first frustum with a side arc surface and a second frustum with a side arc surface, and a groove portion is formed between the first frustum and the second frustum.

[0022] In the raised state, the abutting part is located inside the groove and abuts against the side arc surfaces of the first frustum and the second frustum respectively, and the snap-fit ​​part is disengaged from the gear part;

[0023] In the pressed state, the abutting part is located in the groove and abuts against the side arc surface of the second truncated cone, and the locking part locks the gear part.

[0024] With this configuration, in the raised state, the abutting part is located inside the groove and abuts against the side arc surfaces of the first and second truncated cones respectively, and the locking part is disengaged from the gear part, allowing the gear part to rotate. In the pressed state, the abutting part is located in the groove and one end abuts against the side arc surface of the second truncated cone. At this time, the locking part locks the gear part, preventing the gear part from rotating, resulting in a good locking effect.

[0025] In one embodiment, in order to sense the operating state of the control component, the sensing component includes a sensing button and an optical sensor. The sensing button is disposed on the temple section to sense the pressed state of the control component, and the optical sensor is arranged toward the sensing button to identify the rotation state of the control component when it is pressed.

[0026] With this setup, the touch button can sense the pressed state of the control component, and the optical sensor is positioned towards the touch button to sense the rotation of the control component when it is pressed. The sensing effect is good, and the volume can be infinitely adjusted by rotating the knob.

[0027] In one embodiment, in order to enable the sensing component and the rotating shaft to move along the length of the extension, the extension is provided with a bottom groove and a rotating shaft groove. The bottom groove is used to cooperate with the sensing component to move along the length of the extension, and the rotating shaft groove is used to cooperate with the rotating shaft to move along the length of the extension.

[0028] With this configuration, the extension section has bottom grooves and pivot grooves, which allow the sensing components to move along the length of the extension section and the pivot components to move along the length of the extension section, ensuring smooth and unobstructed movement.

[0029] In one embodiment, in order to collect biosignals, the smart glasses also include a signal sensor disposed near the ear end of the temple segment.

[0030] This setup allows for adjustment of the temple length to accommodate different head shapes, thereby ensuring the collection of biosignals, such as electroencephalograms (EEGs), pulse waves, skin conductance, and body temperature.

[0031] The present invention also provides a method for adjusting smart glasses, the method comprising the following steps:

[0032] S1: The sensing component senses the pressed or released state of the control component;

[0033] S2: When pressed, the adjusting part is disengaged from the mating part, and the sensing component is used to identify the operating state of the knob, which is the number of times the knob is pressed and the angle of rotation of the knob.

[0034] S3: In the raised state, the driving gear of the adjusting component meshes with the mating gear of the mating component, thereby driving the gear part to mesh with the rack, so as to drive the temple section to move along the length direction of the extension section, thereby realizing the adjustment of the length of the temple.

[0035] With this configuration, the sensing component can sense the pressed or released state of the control component. In the pressed state, it can achieve intelligent interaction with the smart glasses; in the released state, the driving gear meshes with the mating gear, and by rotating the knob, it drives the gear part to mesh with the rack, thereby driving the temple section to adjust along the length of the extension section, thus realizing the extension and retraction adjustment of the temple.

[0036] In one embodiment, step S2 further includes step S21.

[0037] S21: One end of the locking bolt abuts against the guide part, and the other end locks the gear part, thereby locking the gear part with the locking bolt.

[0038] With this configuration, when pressed, the adjusting member pushes the locking bolt, causing one end of the locking bolt to abut against the guide part and the other end to lock the gear part, thus locking the gear part.

[0039] In one embodiment, step S3 further includes step S31.

[0040] S31: One end of the bolt abuts against the guide part, and the other end is away from the gear part, so as to realize the disengagement of the bolt from the gear part.

[0041] With this configuration, when the lens is raised, the adjusting component drives the locking component, causing one end of the locking component to abut against the guide part and the other end to disengage from the gear part, thus disengaging the locking component from the gear part and allowing for further adjustment of the length of the temple. Attached Figure Description

[0042] Figure 1 This is a schematic diagram of the retractable temple structure of the smart glasses according to an embodiment of the present invention;

[0043] Figure 2 This is a schematic diagram of the extended temple structure of the smart glasses according to an embodiment of the present invention;

[0044] Figure 3 This is a cross-sectional view of the control component of the smart glasses in the above embodiment in the pressed state from a first perspective.

[0045] Figure 4 This is an exploded view of the control components of the smart glasses in the above embodiment in the pressed state;

[0046] Figure 5 This is a cross-sectional view of the control components of the smart glasses in the above embodiment in the raised state;

[0047] Figure 6 This is a cross-sectional view from a second perspective of the control component of the smart glasses in the above embodiment in the pressed state;

[0048] Figure 7 This is a cross-sectional view from a third perspective of the control component of the smart glasses in the above embodiment in the pressed state. Attached image description:

[0050] 10. Eyeglasses body; 11. Frame; 12. Temple; 121. Temple section; 122. Extension section; 122a. Locking bolt groove; 122b. Bottom groove; 122c. Rotating shaft groove; 20. Adjustment device; 21. Control component; 211. Knob; 212. Rotating shaft; 22. Telescopic component; 221. Adjustment component; 221a. Drive gear; 221b. First frustum; 221c. Second frustum; 221d. Groove; 222. Mating component; 222a. Mating gear; 222b. Gear section; 223. Rack; 23. Sensing component; 231. Sensing button; 232. Optical sensor; 30. Locking component; 31. Locking bolt; 311. Abutting part; 312. Rotating part; 313. Snap-fitting part; 32. Locking bolt shaft; 40. Signal sensor. Detailed Implementation

[0051] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0052] It should be noted that when a component is said to be "installed on" another component, it can be directly on the other component or it may be in a component that is centered on it. When a component is said to be "set on" another component, it can be directly set on the other component or it may also be in a component that is centered on it. When a component is said to be "fixed to" another component, it can be directly fixed to the other component or it may also be in a component that is centered on it.

[0053] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein in the specification of this invention is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "or / and" as used herein includes any and all combinations of one or more of the associated listed items.

[0054] Please see Figures 1 to 7 The present invention provides a smart glasses device, which enables the control component 21 to have a raised state and a pressed state. In the raised state, the length of the temple 12 can be adjusted, and in the pressed state, interaction with the smart glasses can be realized.

[0055] like Figures 1 to 3As shown, the smart glasses include a glasses body 10 and an adjustment device 20. The glasses body 10 includes a frame 11 and temples 12 rotatably connected to the frame 11. The temples 12 include a temple section 121 and an extension section 122. One end of the extension section 122 is rotatably connected to the frame 11, and the other end is movably connected to the near-eye end of the temple section 121 so that the length of the temple 12 is adjustable. The adjustment device 20 is disposed on the temple 12 and includes a control component 21 and a sensing component 23. The control component 21 has a raised state and a pressed state. In the raised state, the control component 21 drives the temple section 121 to move along the length direction of the extension section 122 to adjust the glasses. Regarding the length of the temple 12, in the pressed state, the control component 21 drives the sensing component 23 to actuate in order to sense the operation state of the control component 21. Specifically, the adjustment device 20 can adjust the length of the temple 12 according to different states of the control component 21. In the raised state, the control component 21 can drive the temple section 121 to move along the length direction of the extension section 122, thereby adjusting the length of the temple 12 to adapt to different head shapes, providing good adaptability, comfortable wear, and preventing slippage. In the pressed state, the control component 21 can drive the sensing component 23 to sense the operation state of the control component 21, such as the number of presses and rotation angle, thereby realizing interaction with the smart glasses.

[0056] It should be noted that the above interaction methods include, but are not limited to: answering or hanging up a call, playing music, or pausing music by pressing once or multiple times; or adjusting the volume steplessly by rotating the knob 211. This stepless adjustment can be performed continuously without a minimum adjustment unit, and the adjustment accuracy is high.

[0057] Of course, the above interaction method is only an example for illustration. In other embodiments, the interaction method can be adjusted according to the actual application scenario.

[0058] Preferably, there are two temples 12, each of which is rotatably connected to the frame 11, and the relative distance between each temple 12 and the frame 11 can be independently controlled. It should be further emphasized that, for ease of description and understanding, the following explanation will only focus on the relationship between one temple 12 and the frame 11.

[0059] Optionally, for a better user experience, the control component 21 is located on the side or top of the temple 12. Its specific position can be adjusted according to the application scenario to make the operation more convenient for the user.

[0060] Please see Figures 3 to 7In this embodiment, the control component 21 is disposed on the top of the temple 12. The control component 21 includes a knob 211 and a rotating shaft 212 mounted on the knob 211. The rotating shaft 212 passes through the temple section 121 and is correspondingly disposed with the sensing component 23. The adjustment device 20 also includes a telescopic component 22. The telescopic component 22 includes an adjusting component 221 and a mating component 222. The adjusting component 221 and the mating component 222 are arranged along the length direction of the rotating shaft 212. The adjusting component 221 is fixed to the rotating shaft 212, and the mating component 222 is sleeved on the rotating shaft 212 and is mated with the adjusting component 221. The relative distance is adjustable. It should be explained that since the adjusting member 221 is fixed to the rotating member 212 and the mating member 222 is sleeved on the rotating member 212 and can rotate relative to it, in the pressed state, the adjusting member 221 and the mating member 222 are disengaged and spaced apart from each other. The sensing component 23 senses the pressing, rotating and other actions of the knob 211, thereby realizing the interaction with the smart glasses. In the lifted state, the adjusting member 221 and the mating member 222 abut against each other, and then the length of the temple 12 is adjusted by the knob 211 to adapt to different head shapes, with good adaptability.

[0061] Preferably, in order to adjust the length of the temple 12, the telescopic assembly 22 further includes a rack 223, which is arranged along the length direction of the extension section 122. The adjusting member 221 includes a drive gear 221a, and the mating member 222 includes a mating gear 222a corresponding to the drive gear 221a and a gear part 222b meshing with the rack 223. In the raised state, the drive gear 221a meshes with the mating gear 222a, and drives the gear part 222b to mesh with the rack 223, thereby driving the temple section 121 to move along the length direction of the extension section 122. In this embodiment, in the raised state, the adjusting member 221 and the mating member 222 abut against each other. At this time, the drive gear 221a meshes with the mating gear 222a. By rotating the knob 211, the gear part 222b is driven to mesh with the rack 223, driving the temple section 121 to adjust along the length direction of the extension section 122, thereby realizing the telescopic adjustment of the temple 12.

[0062] Furthermore, to ensure that the length of the temple 12 is not affected by external force during interaction in the pressed state, the smart glasses also include a locking assembly 30. The locking assembly 30 includes a locking bolt 31 and a locking bolt shaft 32. The locking bolt shaft 32 is disposed on the temple section 121, and the extension section 122 has a locking bolt groove 122a for cooperating with the locking bolt shaft 32 to move along the extension section 122. The locking bolt 31 is rotatably connected to the locking bolt shaft 32. In the pressed state, the locking bolt 31 locks the gear part 222b. In the lifted state, the locking bolt 31 disengages from the gear part 222b. With this configuration, in the pressed state, one end of the locking bolt 31 abuts against the adjusting member 221, and the other end locks the gear part 222b, preventing the gear part 222b from rotating. This effectively prevents the temple section 121 from moving relative to the extension section 122 due to external force, resulting in a good locking effect and making the interaction process more stable.

[0063] Preferably, to improve the locking effect, the bolt member 31 includes an abutment portion 311, a rotating portion 312, and a locking portion 313. The abutment portion 311, the rotating portion 312, and the locking portion 313 are connected in a hook-shaped structure, and the rotating portion 312 rotates around the bolt shaft 32. The adjusting member 221 also includes a guide portion. In the pressed state, the abutment portion 311 is located in the guide portion, and the locking portion 313 locks the gear portion 222b, so that the gear portion 222b cannot rotate, resulting in a good locking effect. In the lifted state, the abutment portion 311 is located in the guide portion, and the locking portion 313 disengages from the gear portion 222b.

[0064] Furthermore, to make the locking process smoother, the guide portion includes a first frustum 221b with a side arc surface and a second frustum 221c with a side arc surface, and a groove 221d is formed between the first frustum 221b and the second frustum 221c; in the lifted state, the abutment portion 311 is located in the groove 221d and abuts against the side arc surfaces of the first frustum 221b and the second frustum 221c respectively, and the locking portion 313 is disengaged from the gear portion 222b; in the pressed state, the abutment portion 311 is located in the groove 221d and abuts against the side arc surface of the second frustum 221c, and the locking portion 313 locks the gear portion 222b; it should be explained that in the lifted state, the locking portion 313 is disengaged from the gear portion 222b, and the gear portion 222b is rotatable; in the pressed state, the locking portion 313 locks the gear portion 222b, the gear portion 222b cannot rotate, the gear portion 222b is in a locked state, and the locking effect is good.

[0065] Specifically, in this embodiment, in order to sense the operating state of the control component 21, the sensing component 23 includes a sensing button 231 and an optical sensor 232. The sensing button 231 is located on the temple section 121 to sense the pressed state of the control component 21. The optical sensor 232 is arranged towards the sensing button 231 to identify the rotation state of the control component 21 when it is pressed. The sensing button 231 can sense the pressed state of the control component 21, and the optical sensor 232 can sense the rotation state of the control component 21 when it is pressed. The sensing effect is good, and the volume can be infinitely adjusted according to the operation of the rotating knob 211.

[0066] In this embodiment, to enable the sensing component 23 and the rotating shaft 212 to move along the length of the extension section 122, the extension section 122 is provided with a bottom slide groove 122b and a rotating shaft slide groove 122c. The bottom slide groove 122b is used to cooperate with the sensing component 23 to move along the length of the extension section 122, and the rotating shaft slide groove 122c is used to cooperate with the rotating shaft 212 to move along the length of the extension section 122. Specifically, by providing the bottom slide groove 122b and the rotating shaft slide groove 122c, the extension section 122 enables the sensing component 23 to move along the length of the extension section 122, and enables the rotating shaft 212 to move along the length of the extension section 122, so that the movement is smooth and unobstructed.

[0067] Please refer to it again. Figure 1 and Figure 2 The smart glasses also include a signal sensor 40, which is located near the ear end of the temple section 121. This arrangement allows for adjustment of the temple length to accommodate different head shapes, thereby ensuring the collection of biosignals, such as electroencephalograms, pulse waves, skin conductance, and body temperature. Furthermore, the placement of the signal sensor 40 near the ear end of the temple section 121 enhances the collection effect.

[0068] The present invention also provides a method for adjusting smart glasses, the method comprising the following steps:

[0069] S1: The sensing component 23 senses the pressed or released state of the control component 21;

[0070] S2: When pressed, the adjusting member 221 is disengaged from the mating member 222, and the sensing component 23 is used to identify the operating state of the knob 211, which is the number of times the knob 211 is pressed and the angle of rotation of the knob 211.

[0071] S3: In the raised state, the driving gear 221a of the adjusting member 221 meshes with the mating gear 222a of the mating member 222, thereby driving the gear part 222b to mesh with the rack 223, so as to drive the temple section 121 to move along the length direction of the extension section 122, thereby realizing the adjustment of the length of the temple 12.

[0072] With this configuration, the sensing component 23 can sense the pressed or lifted state of the control component 21. In the pressed state, the sensing component 23 realizes intelligent interaction with the smart glasses by recognizing the operation state of the knob 211. This operation state includes, but is not limited to, the number of times the knob 211 is pressed and the angle of rotation of the knob 211. In the lifted state, the driving gear 221a meshes with the cooperating gear 222a. By adjusting the rotation of the knob 211, the gear part 222b is driven to mesh with the rack 223, thereby driving the temple section 121 to adjust along the length direction of the extension section 122, thus realizing the extension and retraction adjustment of the temple 12.

[0073] Preferably, step S2 further includes step S21.

[0074] S21: One end of the locking bolt 31 abuts against the guide portion, and the other end locks the gear portion 222b, thereby locking the gear portion 222b. In the pressed state, the adjusting member 221 pushes the locking bolt 31, so that one end of the locking bolt 31 abuts against the guide portion and the other end locks the gear portion 222b, thereby locking the gear portion 222b.

[0075] Preferably, step S3 further includes step S31.

[0076] S31: One end of the locking bolt 31 abuts against the guide part, and the other end moves away from the gear part 222b, thereby disengaging the locking bolt 31 from the gear part 222b; In the lifted state, the adjusting member 221 drives the locking bolt 31, so that one end of the locking bolt 31 abuts against the guide part and the other end disengages from the gear part 222b, thereby disengaging the locking bolt 31 from the gear part 222b, which can further adjust the length of the temple 12.

[0077] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0078] The embodiments described above are merely illustrative of several implementations of the present invention, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the invention patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of the present invention, and these all fall within the protection scope of the present invention. Therefore, the protection scope of this invention patent should be determined by the appended claims.

Claims

1. A type of smart glasses, characterized in that, include: The eyeglasses body (10) includes a frame (11) and temples (12) rotatably connected to the frame (11). The temples (12) include a temple section (121) and an extension section (122). One end of the extension section (122) is rotatably connected to the frame (11), and the other end is movably connected to the near-eye end of the temple section (121) so that the length of the temples (12) is adjustable. An adjustment device (20) is disposed on the temple (12). The adjustment device (20) includes a control component (21), a sensing component (23), and a telescopic component (22). The control component (21) has a raised state for mechanical adjustment and a pressed state for intelligent interaction. The control component (21) includes a knob (211) and a pivot (212) mounted on the knob (211). The pivot (212) passes through the temple section (121) and is connected to the temple. The sensing component (23) is correspondingly provided; the telescopic component (22) includes an adjusting member (221), a mating member (222) and a rack (223). The rack (223) is provided along the length direction of the extension section (122). The adjusting member (221) and the mating member (222) are arranged along the length direction of the rotating shaft (212). The adjusting member (221) is fixed to the rotating shaft (212). The mating member (222) is sleeved on the rotating shaft (212) and can rotate relative to the rotating shaft (212). In the raised state, the adjusting member (221) abuts against the mating member (222). By rotating the knob (211), the mating member (222) engages with the rack (223), so that the control component (21) can drive the temple section (121) to move along the length direction of the extension section (122) to adjust the length of the temple (12). In the pressed state, the adjusting member (221) disengages from the mating member (222), and the control component (21) drives the sensing component (23) to actuate in order to sense the action state of the control component (21) and interact with the smart glasses. Thus, by switching the raised and pressed states of the control component (21), the intelligent interaction state and mechanical adjustment state of the smart glasses can be switched.

2. The smart glasses according to claim 1, characterized in that, The control component (21) is located on the side or top of the temple (12).

3. The smart glasses according to claim 2, characterized in that, The control component (21) is located on the top of the temple (12).

4. The smart glasses according to claim 3, characterized in that, The telescopic component (22) further includes a rack (223), the adjusting member (221) includes a drive gear (221a), and the mating member (222) includes a mating gear (222a) corresponding to the drive gear (221a) and a gear part (222b) meshing with the rack (223). In the lifted state, the drive gear (221a) meshes with the mating gear (222a) and drives the gear part (222b) to mesh with the rack (223) to drive the temple section (121) to move along the length direction of the extension section (122).

5. The smart glasses according to claim 4, characterized in that, It also includes a locking assembly (30), which includes a bolt (31) and a bolt shaft (32). The bolt shaft (32) is disposed on the temple section (121). The extension section (122) has a bolt groove (122a) for cooperating with the bolt shaft (32) to move along the direction of the extension section (122). The bolt (31) is rotatably connected to the bolt shaft (32). When pressed, the locking bolt (31) locks the gear part (222b). In the raised state, the locking bolt (31) disengages from the gear part (222b).

6. The smart glasses according to claim 5, characterized in that, The bolt (31) includes an abutting part (311), a rotating part (312) and a locking part (313). The abutting part (311), the rotating part (312) and the locking part (313) are connected in a hook-shaped structure. The rotating part (312) rotates around the bolt shaft (32). The adjusting member (221) also includes a guide portion. In the pressed state, the abutting portion (311) is located in the guide portion, and the locking portion (313) locks the gear portion (222b). In the lifted state, the abutting portion (311) is located in the guide portion, and the locking portion (313) disengages from the gear portion (222b).

7. The smart glasses according to claim 6, characterized in that, The guide portion includes a first frustum (221b) with a side arc surface and a second frustum (221c) with a side arc surface, and a groove portion (221d) is formed between the first frustum (221b) and the second frustum (221c). In the raised state, the abutting part (311) is located in the groove part (221d) and abuts against the side arc surfaces of the first frustum (221b) and the second frustum (221c) respectively, and the snap-fit ​​part (313) is disengaged from the gear part (222b); In the pressed state, the abutting part (311) is located in the groove part (221d) and abuts against the side arc surface of the second truncated cone (221c), and the locking part (313) locks the gear part (222b).

8. The smart glasses according to claim 1, characterized in that, The sensing component (23) includes a sensing button (231) and an optical sensor (232). The sensing button (231) is located on the temple section (121) to sense the pressed state of the control component (21). The optical sensor (232) is arranged in the direction of the sensing button (231) to identify the rotation state of the control component (21) when it is pressed.

9. The smart glasses according to claim 3, characterized in that, The extension section (122) is provided with a bottom slide groove (122b) and a rotating shaft slide groove (122c). The bottom slide groove (122b) is used to cooperate with the sensing component (23) to move along the length direction of the extension section (122), and the rotating shaft slide groove (122c) is used to cooperate with the rotating shaft (212) to move along the length direction of the extension section (122).

10. The smart glasses according to claim 1, characterized in that, It also includes a signal sensor (40) disposed near the ear end of the temple section (121).

11. A method for adjusting smart glasses as described in any one of claims 1 to 10, characterized in that, The adjustment method includes the following steps: S1: The sensing component (23) senses the pressed or released state of the control component (21); S2: When pressed, the adjusting member (221) disengages from the mating member (222), and the sensing component (23) is used to identify the operating state of the knob (211), which is the number of times the knob (211) is pressed and the angle of rotation of the knob (211). S3: In the raised state, the driving gear (221a) of the adjusting member (221) meshes with the mating gear (222a) of the mating member (222), thereby driving the gear part (222b) to mesh with the rack (223) to drive the temple section (121) to move along the length direction of the extension section (122), thereby realizing the adjustment of the length of the temple (12).

12. The adjustment method for smart glasses according to claim 11, characterized in that, Step S2 further includes step S21, S21: One end of the locking bolt (31) abuts against the guide part, and the other end locks the gear part (222b), thereby locking the gear part (222b) with the locking bolt (31).

13. The adjustment method for smart glasses according to claim 11, characterized in that, Step S3 further includes step S31, S31: One end of the locking bolt (31) abuts against the guide part, and the other end is away from the gear part (222b), thereby realizing the disengagement of the locking bolt (31) from the gear part (222b).

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