Optical eyewear with intelligently adjusted temple length
These optical glasses, with their intelligently adjustable temple length, utilize an adjustable temple structure and pressure sensors to address issues of facial adaptation and ear pain for different groups, achieving a comfortable wearing experience.
Patent Information
- Application Number
- CN202511005880.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-22
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2045-07-22
AI Technical Summary
Existing glasses cannot be adjusted to fit the facial features of different people, resulting in poor comfort. The increased weight of the temples of smart optical glasses causes pain at the ear contact points.
Featuring an adjustable temple structure, combined with pressure sensors and a drive module, it reduces pressure on the ears and provides a comfortable wearing experience by adjusting the temple spacing and the bending of the deformation plate.
It allows for adjustment of temple length based on different facial features, reducing ear pain, providing a comfortable user experience, and preventing the temples from contacting the skin and hair, thus improving user comfort.
Smart Images

Figure CN120507898B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of eyewear technology, specifically to an optical eyeglass with intelligently adjustable temple length. Background Technology
[0002] Currently, there are various types of glasses on the market, most of which are fixed in design and cannot be adjusted to suit different facial features, resulting in poor comfort. Furthermore, smart optical glasses are heavier than traditional glasses, with the added weight typically located inside the temples. When in use, prolonged contact and pressure on the ears from the temples can easily cause pain at the ear contact point, affecting the user's experience. Therefore, this paper proposes a type of optical glasses with intelligently adjustable temple length to address these issues. Summary of the Invention
[0003] The purpose of this invention is to provide an optical eyeglass with intelligently adjustable temple length to solve the problems mentioned in the background art.
[0004] To achieve the above objectives, the present invention provides the following technical solution:
[0005] As an alternative solution to the optical glasses with intelligently adjustable temple length described in this invention, wherein: an optical glasses with intelligently adjustable temple length includes a first temple and a second temple;
[0006] An adjustment plate, which is fixedly connected to the first temple, is provided between the first temple and the second temple for adjusting the distance between the first temple and the second temple.
[0007] A second temple is slidably connected to the outer side of the adjustment plate;
[0008] Deformation plates are embedded below the end of the second temple away from the first temple. A second connecting part is fixedly connected to one end of the deformation plate, and the outer side of the second connecting part is fixedly connected to the second temple.
[0009] The second temple also houses a drive module for adjusting the curvature of the deformation plate.
[0010] As an alternative solution to the intelligent adjustable temple length optical glasses described in this invention, wherein: on the other side of the first temple, two sets of symmetrically arranged optical lenses are embedded inside the intelligent optical glasses.
[0011] As an optional solution for the intelligent adjustable temple length optical glasses described in this invention, the adjustment plate has a plurality of evenly distributed threaded holes on one side, and a fixing pin is provided on one side of the second temple. The fixing pin passes through the second temple and connects with the threaded holes on the surface of the adjustment plate.
[0012] Currently, there are various types of glasses on the market, most of which are fixed in design and cannot be adjusted to suit different facial features, resulting in less than ideal comfort. Furthermore, smart optical glasses are heavier than traditional glasses, with the added weight typically located inside the temples. During use, prolonged contact and pressure on the ears from the temples can cause pain at the ear contact point, affecting the user experience. By removing the fixing pin and adjusting the distance between the first and second temples, the temple length can be adjusted to suit different facial features. The fixing pin engages with the threaded hole of the adjustment plate inside the second temple to secure the adjustment plate, making it convenient to use. The adjustment point is located near the smart optical glasses, away from skin and hair, ensuring an uninterrupted user experience.
[0013] As an optional solution for the intelligent adjustable temple length optical glasses described in this invention, the bottom of the deformation plate is equipped with a supporting soft layer for contacting the back of the ear, and the interior of the supporting soft layer is equipped with a second pressure sensor that is evenly distributed and arranged side by side, and one side of the second pressure sensor is fixedly connected to the deformation plate.
[0014] As an optional solution for the intelligent adjustable temple length optical glasses described in this invention, the supporting soft layer is made of rubber block material.
[0015] As an alternative solution to the optical glasses with intelligent adjustable temple length described in this invention, the bottom of the second temple is further equipped with a plurality of first pressure sensors arranged side by side and evenly distributed in contact with the skin for monitoring purposes.
[0016] When the second temple of the smart optical glasses is in contact with the ear for a long time, it can easily compress the ear and cause pain. However, after the first pressure sensor compresses the ear for a long time, the control unit inside the second temple controls the drive module to bend the deformation plate. The supporting soft layer on one side of the deformation plate contacts the back of the ear and provides support. At this time, the second temple can be separated from the top of the ear, reducing the pressure on the top of the ear. By using both methods alternately, ear pain can be avoided, and a comfortable wearing environment can be provided.
[0017] As an optional solution for the intelligent adjustable temple length optical glasses described in this invention, the driving module includes a raised outer frame, a micro motor installed inside the outer frame, a micro gear fixedly connected to the end of the micro motor's main shaft, a gear plate meshing with the outer side of the micro gear, a bendable elastic plate fixedly connected to one side of the gear plate, and a first connecting part fixedly connected to the other end of the elastic plate. The first connecting part is embedded inside the deformation plate and is fixedly connected to the deformation plate.
[0018] As an optional solution for the intelligent adjustable temple length optical glasses described in this invention, a guide groove is provided above each gear plate, and a limiting block is provided inside the guide groove that is fixedly connected to the second temple.
[0019] As an optional solution for the intelligent adjustable temple length optical glasses described in this invention, the deformation plate is made of a super-elastic memory titanium alloy plate.
[0020] When the supporting soft layer bends, the control unit controls the micro motor to start, the micro motor drives the micro gear to rotate, the micro gear drives the gear plate to move, the gear plate drives the elastic plate on one side to move, the elastic plate drives the first connecting part to push the supporting soft layer, the elastic plate bends, which can ensure that the supporting soft layer bends and makes it contact the back of the ear, providing a certain support force and relieving the pressure above the ear.
[0021] Compared with the prior art, the beneficial effects of the present invention are:
[0022] By removing the fixing pin and adjusting the distance between the first and second temples, the length of the temples can be adjusted to suit different facial features. The fixing pin can be used to fix the adjustment plate by engaging with the threaded hole of the adjustment plate inside the second temple, making it convenient for users. The distance adjustment position is located close to the smart optical glasses, which does not come into contact with the skin or hair and will not affect the user experience of the glasses.
[0023] When the second temple of the smart optical glasses is in contact with the ear for a long time, it is easy to squeeze the ear and cause pain. However, after the first pressure sensor presses on the ear for a long time, the control unit inside the second temple controls the drive module to bend the deformation plate. The supporting soft layer on one side of the deformation plate contacts the back of the ear and provides support. At this time, the second temple can be separated from the top of the ear, reducing the pressure on the top of the ear. The alternation of the two methods can avoid ear pain and provide a comfortable wearing environment.
[0024] When the supporting soft layer bends, the control unit controls the micro motor to start, the micro motor drives the micro gear to rotate, the micro gear drives the gear plate to move, the gear plate drives the elastic plate on one side to move, the elastic plate drives the first connecting part to push the supporting soft layer, the elastic plate bends, which can ensure that the supporting soft layer bends and makes it contact the back of the ear, providing a certain support force and relieving the pressure above the ear. Attached Figure Description
[0025] Figure 1 A schematic diagram of the overall structure of an optical eyeglass with intelligently adjustable temple length;
[0026] Figure 2 This is a schematic diagram of the structure of an optical eyeglass temple with intelligent adjustable temple length;
[0027] Figure 3 This is a schematic diagram of the structure of an optical eyeglasses drive module that intelligently adjusts the temple length;
[0028] Figure 4 A schematic diagram of the structure of an optical eyeglass adjustment plate for intelligently adjusting the temple length;
[0029] Figure 5 An optical eyeglass with intelligently adjustable temple length. Figure 3 A schematic diagram of the structure at point A.
[0030] In the diagram: 1. Smart optical glasses; 2. Optical lens; 3. First temple; 4. Adjustment plate; 5. Fixing pin; 6. Second temple; 7. Outer frame; 8. Micro motor; 9. Micro gear; 10. Gear plate; 11. Guide groove; 12. Limiting block; 13. Elastic plate; 14. First connecting part; 15. Deformation plate; 16. Second connecting part; 17. Supporting soft layer; 18. First pressure sensor; 19. Second pressure sensor. Detailed Implementation
[0031] Example 1: Please refer to Figure 1 , Figure 2 and Figure 4 The present invention provides a technical solution:
[0032] An optical eyeglass with intelligently adjustable temple length, comprising a first temple 3 and a second temple 6;
[0033] An adjusting plate 4, which is fixedly connected to the first temple 3 and the second temple 6, is provided between the first temple 3 and the second temple 6 for adjusting the distance between the first temple 3 and the second temple 6.
[0034] The outer side of the adjustment plate 4 is slidably connected to the second temple 6;
[0035] Deformation plates 15 are embedded below the end of the second temple 6 away from the first temple 3. A second connecting part 16 is fixedly connected to one end of the deformation plate 15, and the outer side of the second connecting part 16 is fixedly connected to the second temple 6.
[0036] The second temple 6 also houses a drive module for adjusting the curvature of the deformation plate 15.
[0037] On the other side of the first temple 3, two sets of symmetrically arranged optical lenses 2 are embedded inside the smart optical glasses 1.
[0038] The adjusting plate 4 has multiple evenly distributed threaded holes on one side, and the second temple 6 has a fixing pin 5 on one side. The fixing pin 5 passes through the second temple 6 and connects with the threaded holes on the surface of the adjusting plate 4.
[0039] Currently, there are various types of glasses on the market, most of which are fixed in design and cannot be adjusted to suit different facial features, resulting in poor comfort. Furthermore, smart optical glasses are heavier than traditional glasses, with the added weight usually located inside the temples. When in use, prolonged contact and pressure on the ears from the temples can easily cause pain at the ear contact point, affecting the user experience. By removing the fixing pin 5 and adjusting the distance between the first temple 3 and the second temple 6, the length of the temples can be adjusted to suit different facial features. The fixing pin 5 can be used to fix the adjustment plate 4 by engaging with the corresponding threaded hole inside the adjustment plate 4 inside the second temple 6, making it convenient for users. The adjustment position is located near the smart optical glasses 1, which does not come into contact with the skin or hair, so it will not affect the user experience.
[0040] The specific steps are as follows;
[0041] When the smart optical glasses 1 are in use, the bottom of the second temple 6 rests on the upper part of the ear. Wearing the smart optical glasses 1 for a long time will increase the weight of the second temple 6 compared to traditional glasses temples, increasing the pressure on the upper part of the ear and easily causing pain at the contact point. The internal control unit of the smart optical glasses 1 can control the drive module to drive the deformation plate 15 to bend and fit the curvature behind the ear, achieving a large contact area with the skin behind the ear. By increasing the contact area, the pressure is distributed, and the bottom of the second temple 6 can be separated from the upper part of the ear or the pressure on the upper part of the ear can be reduced, avoiding pain caused by prolonged pressure on the upper part of the ear.
[0042] Example 2: This example is an improvement upon Example 1. Please refer to [link / reference]. Figure 2 and Figure 3 Specifically, a support soft layer 17 for contacting the back of the ear is installed at the bottom of the deformation plate 15. The support soft layer 17 is equipped with evenly distributed and side-by-side second pressure sensors 19. One side of the second pressure sensor 19 is fixedly connected to the deformation plate 15.
[0043] The supporting soft layer 17 is made of rubber block material.
[0044] The bottom of the second temple 6 is also equipped with multiple first pressure sensors 18 that are evenly distributed and arranged side by side in contact with the skin for monitoring purposes.
[0045] Deformation plate 15 is made of super-elastic memory titanium alloy plate.
[0046] After the second temple 6 of the smart optical glasses 1 has been in contact with the ear for a long time, it is easy to squeeze the ear and cause pain. However, after the first pressure sensor 18 has been pressing on the ear for a long time, the control unit inside the second temple 6 controls the drive module to drive the deformation plate 15 to bend. The supporting soft layer 17 on one side of the deformation plate 15 contacts the back of the ear and provides support. At this time, the second temple 6 can be separated from the top of the ear, reducing the pressure on the top of the ear. The two methods are used alternately to avoid ear pain and provide a comfortable wearing environment.
[0047] The specific steps are as follows:
[0048] After the deformation plate 15 bends under the action of the drive module, the supporting soft layer 17 on one side of the deformation plate 15 directly contacts the skin behind the ear, serving a supporting purpose. The supporting soft layer 17 also compresses the second pressure sensor 19. After a set time, when the second pressure sensor 19 is continuously compressed for 1 hour, it controls the drive module through the built-in control unit of the smart optical glasses 1 to reset the deformation plate 15. At this time, the first pressure sensor 18 under the second temple 6 is compressed and activated. After a set time, when the first pressure sensor 18 is continuously compressed for 1 hour, it controls the drive module through the built-in control unit of the smart optical glasses 1 to bend and deform the deformation plate 15. This alternating use can ensure wearing comfort and avoid pain caused by prolonged local compression, which would affect the experience.
[0049] The supporting soft layer 17 is made of silicone, which is soft and more comfortable to contact with the skin. The second pressure sensor 19 is located inside but does not penetrate through it, so that when the supporting soft layer 17 is squeezed, the second pressure sensor 19 can be ensured to detect the pressure.
[0050] When the deformation plate 15 is not in use, the deformation plate 15 and the supporting soft layer 17 are located inside the second temple 6, with no protruding parts, making the overall appearance aesthetically pleasing. The deformation plate 15 can be made of super-elastic memory titanium alloy plate, which has the ability to return to its normal position after bending.
[0051] Example 3: This example is an improvement on Example 2. Please refer to [link / reference]. Figure 3 and Figure 5 Specifically, the drive module includes an extended frame 7 with a raised shape. A micro motor 8 is installed inside the extended frame 7. A micro gear 9 is fixedly connected to the end of the main shaft of the micro motor 8. A gear plate 10 meshes with the outside of the micro gear 9. A flexible elastic plate 13 is fixedly connected to one side of the gear plate 10. A first connecting part 14 is fixedly connected to the other end of the elastic plate 13. The first connecting part 14 is embedded inside the deformation plate 15 and is fixedly connected to the deformation plate 15.
[0052] Each gear plate 10 has a guide groove 11 on its upper surface, and a limiting block 12 that is fixedly connected to the second temple 6 is provided inside the guide groove 11.
[0053] When the supporting soft layer 17 bends, the control unit controls the micro motor 8 to start. The micro motor 8 drives the micro gear 9 to rotate. The micro gear 9 drives the gear plate 10 to move. The gear plate 10 drives the elastic plate 13 on one side to move. The elastic plate 13 drives the first connecting part 14 to push the supporting soft layer 17. The elastic plate 13 bends, which can ensure that the supporting soft layer 17 bends and makes it contact the back of the ear, providing a certain support force and relieving the pressure above the ear.
[0054] The specific steps are as follows:
[0055] The outer frame 7 is inclined and fixed to the second temple 6. This setting can prevent the corners of the smart optical glasses 1 from coming into contact with other objects and causing scratches when in use. The inclined setting makes it less likely to be deformed or damaged by violent contact with external objects.
[0056] The gear plate 10 moves under the drive of the micro motor 8 and the micro gear 9. A strip-shaped guide groove 11 is provided above the gear plate 10. The guide groove 11 cooperates with the limit block 12 to ensure the stable movement of the gear plate 10.
[0057] The first connecting part 14 on one side of the elastic plate 13 is inserted into the deformation plate 15 and fixedly connected to it. At this time, it is not easy for the first connecting part 14 to separate from the deformation plate 15, ensuring that the elastic plate 13 and the deformation plate 15 can be used normally.
[0058] The interior of the second temple 6 is hollow outside the elastic plate 13, providing bending space for the elastic plate 13 and pushing the deformation plate 15 to bend. The elastic plate 13 can also be made of super-elastic memory titanium alloy plate. The first connection part 14 on one side of the deformation plate 15 and the elastic plate 13 can be thickened to ensure that the deformation plate 15 is not easy to break.
[0059] This article uses specific examples to illustrate the principles and implementation methods of the present invention. The above examples are only for the purpose of helping to understand the method and core ideas of the present invention. The above descriptions are only preferred embodiments of the present invention. It should be noted that due to the limitations of textual expression, while there are objectively infinite specific structures, those skilled in the art can make several improvements, modifications, or changes without departing from the principles of the present invention, and can also combine the above technical features in an appropriate manner. These improvements, modifications, changes, or combinations, or the direct application of the inventive concept and technical solution to other situations without modification, should all be considered within the scope of protection of the present invention.
Claims
1. An optical eyeglass with intelligently adjustable temple length, characterized in that: Including the first temple (3) and the second temple (6); An adjustment plate (4) is fixedly connected to the first temple (3) and the second temple (6) for adjusting the distance between the first temple (3) and the second temple (6); The outer side of the adjustment plate (4) is slidably connected to the second temple (6); Deformation plates (15) are embedded below the end of the second temple (6) away from the first temple (3). A second connecting part (16) is fixedly connected to one end of the deformation plate (15). The outer side of the second connecting part (16) is fixedly connected to the second temple (6). The interior of the second temple (6) is also equipped with a drive module for adjusting the curvature of the deformation plate (15); The bottom of the deformation plate (15) is fitted with a support soft layer (17) for contacting the back of the ear. The support soft layer (17) is fitted with a second pressure sensor (19) arranged in a row and evenly distributed manner. One side of the second pressure sensor (19) is fixedly connected to the deformation plate (15). The drive module includes an extended frame (7) with a raised shape. A micro motor (8) is installed inside the extended frame (7). A micro gear (9) is fixedly connected to the end of the main shaft of the micro motor (8). A gear plate (10) meshes with the outside of the micro gear (9). A flexible elastic plate (13) is fixedly connected to one side of the gear plate (10). A first connecting part (14) is fixedly connected to the other end of the elastic plate (13). The first connecting part (14) is embedded inside the deformation plate (15) and is fixedly connected to the deformation plate (15).
2. The optical glasses with intelligent adjustable temple length according to claim 1, characterized in that: On the other side of the first temple (3), two sets of symmetrically arranged optical lenses (2) are embedded inside the smart optical glasses (1).
3. The optical glasses with intelligent adjustable temple length according to claim 1, characterized in that: The adjusting plate (4) has multiple evenly distributed threaded holes on one side, and the second temple (6) has a fixing pin (5) on one side. The fixing pin (5) passes through the second temple (6) and connects with the threaded holes on the surface of the adjusting plate (4).
4. The optical glasses with intelligent adjustable temple length according to claim 1, characterized in that: The supporting soft layer (17) is made of rubber block material.
5. The optical glasses with intelligent adjustable temple length according to claim 1, characterized in that: The bottom of the second temple (6) is also equipped with a number of first pressure sensors (18) arranged side by side and evenly distributed in contact with the skin for monitoring purposes.
6. The optical glasses with intelligent adjustable temple length according to claim 1, characterized in that: A guide groove (11) is provided on the top of each gear plate (10), and a limiting block (12) is provided inside the guide groove (11) and is fixedly connected to the second temple (6).
7. The optical glasses with intelligent adjustable temple length according to claim 1, characterized in that: The deformation plate (15) is made of superelastic memory titanium alloy plate.
Citation Information
Patent Citations
Intelligent glasses
CN215006110U
Titanium glasses
CN220983658U