Intelligent zoom glasses and use method thereof
Through the reciprocating and rotating lens design of smart zoom glasses, the problems of complex structure and strong vibration feedback of existing zoom glasses are solved, and the effects of ciliary muscle exercise and vision training are achieved, which improves wear comfort and vision correction efficiency.
Patent Information
- Application Number
- CN202510617692.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-14
- Publication Date
- 2025-07-25
AI Technical Summary
Existing zoom glasses have complex structure, large weight and strong vibration feedback, resulting in discomfort in wearing and vision damage, which is difficult to support long-term use and market popularity.
Using a reciprocating lens design, zoom adjustment is achieved by setting the left mirror assembly and the right mirror assembly. Combined with the drive motor and transmission gear box, the frame weight is reduced and vibration is reduced, which prompts the ciliary muscle to self-adjust.
Improve the regulation ability and acuity of the ciliary muscles, provide personalized training modes, improve wear comfort and vision training effect, and reduce the risk of vision injury.
Smart Images

Figure CN120370570A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of glasses devices, and particularly relates to an intelligent zoom glasses and a using method thereof. Background Art
[0002] At present, vision training instruments for vision correction on the market generally have problems of complex structure, large volume and high price, resulting in high costs for vision correction training. Intelligent zoom glasses can train and correct myopia and amblyopia. However, existing zoom glasses mostly adopt a double-lens zoom system (the moving lens and the fixed lens adjust the diopter through up and down displacement or left and right displacement). This design has two core defects: First, the double-lens structure significantly increases the weight of the frame, conflicting with the lightweight trend of intelligent glasses. When worn, it is easy to produce an obvious pressing feeling, increasing the fatigue of the user and making it difficult to support long-term wearing, objectively limiting the possibility of replacing conventional corrective glasses; Second, there are technical bottlenecks in the mechanical drive system. During the horizontal displacement of the lens, non-axial polarization shaking occurs, generating strong vibration feedback, which easily causes adverse reactions such as dizziness and persistent tension of the eye muscles in users. This not only affects the wearing experience, but may also lead to visual function compensatory disorders and the risk of secondary vision damage in the long term.
[0003] These problems seriously restrict the clinical application value and market penetration rate of existing zoom glasses products. Therefore, it is necessary to design an intelligent zoom glasses that can at least solve some of the above problems and defects. Summary of the Invention
[0004] In order to solve the above technical problems, the present invention proposes an intelligent zoom glasses and a using method thereof. The intelligent zoom glasses achieve zoom adjustment by setting a reciprocally rotatable lens, prompting the ciliary muscle to self-regulate, achieving the effect of exercising the ciliary muscle, thereby improving the adjustment ability and sensitivity of the ciliary muscle.
[0005] The technical solution of the present invention is as follows: The present invention proposes an intelligent zoom glasses, including a frame body, and a left lens assembly and a right lens assembly symmetrically arranged on the front side of the frame body on the left and right; The left lens assembly is provided with a left lens including multiple focal points, the right lens assembly is provided with a right lens including multiple focal points, and the left lens assembly and the right lens assembly are respectively reciprocally rotatably arranged on the left and right sides of the front part of the frame body to achieve zoom adjustment by rotating the left lens assembly and / or the right lens assembly.
[0006] Preferably, the left lens includes a left first lens part and a left second lens part arranged adjacent to each other left and right with different diopters, and the right lens includes a right first lens part and a right second lens part arranged adjacent to each other left and right with different diopters.
[0007] Preferably, the intelligent zoom glasses provided by the present invention further include a rotation driving assembly fixedly embedded in the frame body. The rotation driving assembly is provided with a left driving motor on the left side and a right driving motor on the right side. The left lens assembly is connected to the left driving motor, and the right lens assembly is connected to the right driving motor.
[0008] Preferably, the left lens assembly is further provided with a connected left lens holder and a left rotating shaft. The left lens is fixedly arranged directly below the left lens holder. The left rotating shaft penetrates through the frame body and is connected to the left driving motor. The right lens assembly is further provided with a connected right lens holder and a right rotating shaft. The right lens is fixedly arranged directly below the right lens holder. The right rotating shaft penetrates through the frame body and is connected to the right driving motor.
[0009] Preferably, the rotation driving assembly is further provided with a left transmission gearbox on the left side and a right transmission gearbox on the right side. The left driving motor is connected to the input end of the left transmission gearbox, the left rotating shaft is connected to the output end of the left transmission gearbox, the right driving motor is connected to the input end of the right transmission gearbox, and the right rotating shaft is connected to the output end of the right transmission gearbox.
[0010] Preferably, the left rotating shaft is arranged in parallel with the output shaft of the left driving motor, and the right rotating shaft is arranged in parallel with the output shaft of the right driving motor.
[0011] Preferably, the rotation driving assembly is further provided with a main control unit and a battery unit fixedly embedded in the frame body. The left driving motor and the right driving motor are both electrically connected to the main control unit and the battery unit.
[0012] Preferably, the frame body includes a detachable top frame shell and a bottom frame plate. The top frame shell is provided with an adjustment button connected to the main control unit, and the bottom frame plate is provided with a charging interface connected to the battery unit.
[0013] Preferably, the bottom frame plate is further provided with a nose pad fixedly connected thereto and temple arms movably hinged thereto.
[0014] Preferably, the present invention also provides a usage method of the intelligent zoom glasses, including the following steps: adjusting and configuring the diopter permutation and combination of the left lens and the right lens according to the user's optometry data; The user selects the corresponding mode through the adjustment button: the left-eye single training mode, the right-eye single training mode, the left-and-right-eye synchronous training mode, and the left-and-right-eye asynchronous training mode; among them, in the left-eye single training mode, the left lens rotates reciprocally, in the right-eye single training mode, the right lens rotates reciprocally, in the left-and-right-eye synchronous training mode, the left lens and the right lens rotate synchronously and reciprocally, and in the left-and-right-eye asynchronous training mode, the left lens and the right lens rotate non-synchronously and reciprocally.
[0015] The present invention has the following advantages and effects compared with the prior art: By using the left lens assembly and the right lens assembly that can rotate reciprocally, and driving the left lens and / or the right lens with multiple focal points to achieve adjustable zoom, thereby promoting the self-regulation of the ciliary muscle, achieving the effect of exercising the ciliary muscle, and further improving the adjustment ability and sensitivity of the ciliary muscle; at the same time, the user can select different training modes through the intelligent zoom glasses to provide personalized and targeted training and exercise. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 The structural schematic diagram of the intelligent zoom glasses in the embodiment of the present invention; Figure 2 It is a partial structural schematic diagram of the intelligent zoom glasses in the embodiment of the present invention; Figure 3 It is a reference schematic diagram of the use state of the intelligent zoom glasses in the embodiment of the present invention.
[0017] Reference numerals: 1, frame body; 11, top frame shell; 12, bottom frame plate; 13, nose pad; 14, temple; 2, left lens assembly; 21, left lens; 211, left first lens part; 212, left second lens part; 22, left lens bracket; 23, left rotating shaft; 3, right lens assembly; 31, right lens; 311, right first lens part; 312, right second lens part; 32, right lens bracket; 33, right rotating shaft; 4, rotation driving assembly; 41, left driving motor; 42, right driving motor; 43, left transmission gearbox; 44, right transmission gearbox; 45, main control unit; 46, battery unit; 5, adjustment button; 6, charging interface. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0018] In order to enable those skilled in the art to better understand the present invention, the present invention will be further described in detail below in conjunction with specific embodiments. It should be understood that the specific embodiments described herein are only used to illustrate and explain the present invention, and are not used to limit the present invention.
[0019] Embodiment 1: As Figures 1 to 3As shown in the figure, the present invention provides an intelligent zoom glasses, which specifically includes a frame body 1, a left lens assembly 2 and a right lens assembly 3 symmetrically arranged on the front side of the frame body 1, and a rotation drive assembly 4 fixedly embedded inside the frame body 1. The rotation drive assembly 4 is provided with a left drive motor 41 on the left side and a right drive motor 42 on the right side. The left lens assembly 2 is connected to the left drive motor 41, and the right lens assembly 3 is connected to the right drive motor 42. It should be noted that in practical applications, a single drive motor can also be used in combination with a transmission mechanism such as a screw structure to achieve the reciprocating rotation of the left lens assembly 2 and the right lens assembly 3. In addition, the left drive motor 41 and the right drive motor 42 can specifically be stepper motors or servo motors. Since they are mature existing technologies, they will not be elaborated here.
[0020] The left lens assembly 2 is provided with a left lens 21 including multiple focal points, and the right lens assembly 3 is provided with a right lens 31 including multiple focal points. The left lens assembly 2 and the right lens assembly 3 are respectively reciprocally rotatably arranged on the left and right sides of the front part of the frame body 1. The left drive motor 41 drives the left lens 21 of the left lens assembly 2 to reciprocally rotate, and the right drive motor 42 drives the right lens 31 of the right lens assembly 3 to reciprocally rotate, so as to adjust and switch different diopters and thus achieve zoom adjustment. It should be noted that the left lens 21 and the right lens 31 can use existing multi-focal lenses, or can be custom-designed with targeted multi-focal lenses, so that the change in diopter during the rotation of the lens adapts to different training and use requirements.
[0021] Specifically, in this embodiment, referring to Figure 2 As shown in the figure, the left lens 21 includes a left first lens part 211 and a left second lens part 212 which are arranged adjacent to each other left and right at intervals and have different diopters. The right lens 31 includes a right first lens part 311 and a right second lens part 312 which are arranged adjacent to each other left and right at intervals and have different diopters. That is, the left lens 21 and the right lens 31 are respectively formed by splicing two single-vision lenses. The optical axes of the left first lens part 211 and the left second lens part 212 in the left lens 21 are parallel to each other. The optical axes of the right first lens part 311 and the right second lens part 312 in the right lens 31 are parallel to each other. And the diopters of the left first lens part 211 and the left second lens part 212 are different, and the difference between the two diopters is between ±0.50D and ±12.00D. The diopters of the right first lens part 311 and the right second lens part 312 are different, and the difference between the two diopters is between ±0.50D and ±12.00D. It should be noted that the arrangement and combination of the diopters of the left lens 21 and the right lens 31 can be specifically set and adjusted according to the user's eye refraction data, age, and myopia or hyperopia degree, etc. No specific limitation is made here.
[0022] Further, when there is no significant difference in the optometry data of the user's left and right eyes, the diopter of the left first lens part 211 (left outer side) of the left lens 21 is the same as that of the right first lens part 311 (right outer side) of the right lens 31, and the diopter of the left second lens part 212 (left inner side) of the left lens 21 is the same as that of the right second lens part 312 (right inner side) of the right lens 31. In this way, during specific use, referring to Figure 3 as shown, the left and right eyes can be in the same diopter training change state.
[0023] As Figure 2 shown, the left lens assembly 2 is further provided with a connected left lens holder 22 and a left rotating shaft 23. The left lens 21 is fixedly arranged directly below the left lens holder 22, and the left rotating shaft 23 penetrates through the frame body 1 and is connected to the left driving motor 41; the right lens assembly 3 is further provided with a connected right lens holder 32 and a right rotating shaft 33. The right lens 31 is fixedly arranged directly below the right lens holder 32, and the right rotating shaft 33 penetrates through the frame body 1 and is connected to the right driving motor 42.
[0024] Further, the rotation driving assembly 4 is further provided with a left transmission gearbox 43 on the left side and a right transmission gearbox 44 on the right side; the left driving motor 41 is connected to the input end of the left transmission gearbox 43, the left rotating shaft 23 is connected to the output end of the left transmission gearbox 43, the right driving motor 42 is connected to the input end of the right transmission gearbox 44, and the right rotating shaft 33 is connected to the output end of the right transmission gearbox 44. It should be noted that at least one meshing gear for transmission is arranged inside the transmission gearbox. Since it is a mature existing technology, its specific structure and principle will not be elaborated here too much.
[0025] Optionally, in some embodiments, the left rotating shaft 23 is arranged in parallel with the output shaft of the left driving motor 41, and the right rotating shaft 33 is arranged in parallel with the output shaft of the right driving motor 42, effectively reducing the width of the frame body 1 in the front - rear direction and improving the wearing comfort.
[0026] Referring to Figure 2 as shown, the rotation driving assembly 4 is further provided with a main control unit 45 and a battery unit 46 fixedly embedded inside the frame body 1. The left driving motor 41 and the right driving motor 42 are both electrically connected to the main control unit 45 and the battery unit 46. The main control unit 45 can specifically be a programmable controller or other single - chip microcomputer. Since it is a mature existing technology, it will not be elaborated here.
[0027] As Figure 1As shown, the spectacle frame body 1 includes a top frame shell 11 and a bottom frame plate 12 that are detachably connected. The top frame shell 11 is detachably buckled above the bottom frame plate 12. The top frame shell 11 is provided with an adjustment button 5 connected to the main control unit 45, and the bottom frame plate 12 is provided with a charging interface 6 connected to the battery unit 46. The bottom frame plate 12 is also provided with a nose pad 13 fixedly connected thereto, and temple arms 14 movably hinged thereto. Specifically, the adjustment button 5 can simultaneously have a switch function and a mode adjustment function to adjust parameters such as the reciprocating rotation running time, running speed (frequency), and rotation angle of the lens through the adjustment button 5.
[0028] Embodiment 2: For Embodiment 2 of the present invention, the intelligent zoom glasses provided in Embodiment 1 are adopted. For the specific structure and principle of the intelligent zoom glasses, reference can be made to the content in Embodiment 1, which will not be elaborated here.
[0029] The present invention also provides a usage method of the intelligent zoom glasses, which specifically includes the following steps: adjusting and configuring the diopter permutation and combination of the left lens 21 and the right lens 31 according to the user's optometry data. It should be noted that this process requires adjustment and configuration by a professional institution to be customized according to the user's own data such as age, myopia or hyperopia degree, optometry data, etc.
[0030] After the user wears it, the corresponding mode can be selected through the adjustment button 5: the left-eye single training mode, the right-eye single training mode, the left and right eyes synchronous training mode, and the left and right eyes asynchronous training mode; among them, in the left-eye single training mode, the left lens 21 reciprocates, in the right-eye single training mode, the right lens 31 reciprocates, in the left and right eyes synchronous training mode, the left lens 21 and the right lens 31 reciprocate synchronously, and in the left and right eyes asynchronous training mode, the left lens 21 and the right lens 31 reciprocate non-synchronously (the rotation angles or rotation speeds of the left and right lenses are different).
[0031] It should be noted that the above-mentioned modes are all training modes. Of course, there is also a normal mode other than the above training modes, that is, the normal wearing mode. In addition, the operation programs of different modes are stored in the main control unit 45, and the operation programs of different modes can be retrieved and run through the adjustment button 5.
[0032] In summary, the intelligent zoom glasses and the usage method provided by the present invention, wherein the intelligent zoom glasses achieve zoom adjustment by setting lenses that can reciprocate, prompting the ciliary muscle to self-regulate, achieving the effect of exercising the ciliary muscle, thereby improving the adjustment ability and sensitivity of the ciliary muscle.
[0033] The above are only the preferred embodiments of the present invention, and do not limit the patent scope of the present invention. All equivalent changes and modifications made according to the scope of the present invention should still fall within the scope covered by the present invention.
Claims
1. An intelligent zoom glasses, characterized in that: It includes a frame body (1), and a left mirror assembly (2) and a right mirror assembly (3) symmetrically arranged on the front side of the frame body (1) left and right. The left mirror assembly (2) is provided with a left lens (21) including multiple focal points, the right mirror assembly (3) is provided with a right lens (31) including multiple focal points, and the left mirror assembly (2) and the right mirror assembly (3) are respectively rotatably arranged on the left and right sides of the front part of the frame body (1) to achieve zoom adjustment by rotating the left mirror assembly (2) and / or the right mirror assembly (3).
2. The intelligent zoom glasses according to claim 1, characterized in that: The left lens (21) includes a left first lens part (211) and a left second lens part (212) arranged adjacent to each other left and right at intervals and having different diopter powers, and the right lens (31) includes a right first lens part (311) and a right second lens part (312) arranged adjacent to each other left and right at intervals and having different diopter powers.
3. The intelligent zoom glasses according to claim 1, characterized in that: It further includes a rotation drive assembly (4) fixedly embedded in the frame body (1). The rotation drive assembly (4) is provided with a left drive motor (41) on the left side and a right drive motor (42) on the right side. The left mirror assembly (2) is connected to the left drive motor (41), and the right mirror assembly (3) is connected to the right drive motor (42).
4. The intelligent zoom glasses according to claim 3, characterized in that: The left mirror assembly (2) is further provided with a connected left lens bracket (22) and a left rotating shaft (23). The left lens (21) is fixedly arranged directly below the left lens bracket (22), and the left rotating shaft (23) passes through the frame body (1) and is connected to the left drive motor (41). The right mirror assembly (3) is further provided with a connected right lens bracket (32) and a right rotating shaft (33). The right lens (31) is fixedly arranged directly below the right lens bracket (32), and the right rotating shaft (33) passes through the frame body (1) and is connected to the right drive motor (42).
5. The intelligent zoom glasses according to claim 4, characterized in that: The rotation drive assembly (4) is further provided with a left transmission gearbox (43) on the left side and a right transmission gearbox (44) on the right side. The left drive motor (41) is connected to the input end of the left transmission gearbox (43), the left rotating shaft (23) is connected to the output end of the left transmission gearbox (43), the right drive motor (42) is connected to the input end of the right transmission gearbox (44), and the right rotating shaft (33) is connected to the output end of the right transmission gearbox (44).
6. The intelligent zoom glasses according to claim 5, characterized in that: The left rotating shaft (23) is arranged in parallel with the output shaft of the left drive motor (41), and the right rotating shaft (33) is arranged in parallel with the output shaft of the right drive motor (42).
7. The intelligent zoom glasses according to claim 3, characterized in that: The rotation drive assembly (4) is further provided with a main control unit (45) and a battery unit (46) fixedly embedded inside the frame body (1). The left drive motor (41) and the right drive motor (42) are both electrically connected to the main control unit (45) and the battery unit (46).
8. The intelligent zoom glasses according to claim 7, characterized in that: The frame body (1) includes a detachable top frame shell (11) and a bottom frame plate (12). The top frame shell (11) is provided with an adjustment button (5) connected to the main control unit (45), and the bottom frame plate (12) is provided with a charging interface (6) connected to the battery unit (46).
9. The intelligent zoom glasses according to claim 8, characterized in that: The base plate (12) is further provided with a nose pad (13) fixedly connected thereto and temple arms (14) movably hinged thereto.
10. A method for using an intelligent zoom glasses, characterized in that, The method includes the following steps: adjusting and configuring the diopter permutations and combinations of the left lens (21) and the right lens (31) according to the user's optometry data; The user selects a corresponding mode through the adjustment button (5): the left-eye single training mode, the right-eye single training mode, the left-and-right-eye synchronous training mode, and the left-and-right-eye asynchronous training mode. Among them, in the left-eye single training mode, the left lens (21) rotates reciprocally; in the right-eye single training mode, the right lens (31) rotates reciprocally; in the left-and-right-eye synchronous training mode, the left lens (21) and the right lens (31) rotate reciprocally synchronously; and in the left-and-right-eye asynchronous training mode, the left lens (21) and the right lens (31) rotate reciprocally asynchronously.