Presbyopia resetting device
Through the presbyopia resetter combined with intelligent AI technology, the eye muscle exercise is used to use composite lenses and light guide columns to solve the problem of presbyopia curing symptoms but not root causes, and the visual recovery and correction effect is achieved.
Patent Information
- Application Number
- CN202422087758.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-27
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2034-08-27
AI Technical Summary
The existing methods of correction of presbyopia are mostly long-term wearing of glasses, which can treat the symptoms but not the root cause, and cannot effectively correct and treat the problem of presbyopia.
A presbyopia resetter is designed, combining intelligent AI technology to guide users to exercise their eyes through optical adjustment structure and voice modules, and uses composite lenses and light guide columns to stimulate eye muscle coordination to achieve visual recovery.
Through intelligent AI-guided eye muscle training, the ideal vision recovery effect is achieved, simple operation and adaptable to a wide range of people.
Smart Images

Figure CN223208675U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of presbyopia treatment, and particularly relates to a presbyopia resetter. Background Art
[0002] Presbyopia is a gradual decrease in the human eye's ability to accommodate the visual system. This is due to the increase in the elastic modulus and growth of the eye's lens, which is located directly behind the iris and pupil. Tiny muscles in the eye, called ciliary muscles, pull and push on the lens, adjusting the curvature of the lens. This adjustment of the curvature of the lens results in an adjustment of the eye's focal length, bringing objects into focus. As individuals age, the eye's lens becomes less flexible and elastic, and to a lesser extent, the ciliary muscles become weaker. These changes result in the eye's lens being unable to adjust adequately to different distances (i.e., a decrease in accommodation), which can cause objects close to the eye to appear blurry.
[0003] Currently, there are a variety of non-surgical systems for treating presbyopia, including bifocal glasses, progressive (non-linear bifocal) glasses, reading glasses, bifocal contact lenses, and single-vision contact lenses. These glasses generally need to be worn for a long time to reduce the impact of presbyopia. They only treat the symptoms and not the root cause, and cannot effectively correct and treat presbyopia. Therefore, this solution proposes a presbyopia resetter to effectively solve the problem of presbyopia. Utility Model Content
[0004] The purpose of this utility model is to provide a presbyopia resetter that solves the technical problem of how to effectively correct and treat presbyopia. By introducing intelligent AI to guide people's operation, it achieves effective training of the trainee's eye muscles, thereby stimulating the flexibility of eye muscle coordination and achieving an ideal vision restoration effect.
[0005] A presbyopia resetter, comprising a frame, wherein two front ends of the frame are hingedly connected to a first temple and a second temple, respectively; two corrective lenses are embedded in the side of the frame; a support frame is fixedly connected to the rear side of the frame, the support frame is fixedly connected to a shield, an optical adjustment structure is fixed to the center of the shield, and the optical adjustment structure is connected to a power module;
[0006] The power module, voice module, and communication module are arranged inside the first or second glasses leg; the optical adjustment structure is connected to the communication module; the communication module is connected to the software in the client via a wireless network; the software in the client receives the optical signal of the optical adjustment structure via the wireless network, and uses it to check the working status of the optical adjustment structure and control the operation of the optical adjustment structure via the wireless network; the software in the client controls the voice module via the communication module.
[0007] The lens is a composite lens consisting of a concave lens and a prism. The diopter of the left and right concave lenses is -10 to -30, and the magnification of the prism is 3-9.
[0008] The optical adjustment structure includes a display light fixed at the center of the shield, a power module connected to the display light through a wire, and a light guide column separately docked with the display light. The light guide column is fixed to the support frame through a positioning frame.
[0009] The positioning frame includes a positioning ring mounted on one end of the light guide column and a positioning rod with one end fixedly connected to the outer side of the positioning ring. The positioning ring is connected to the support frame by a screw, and the positioning rod is movably engaged and clamped in an open groove set on the support frame.
[0010] A positioning hole is provided at the center of the support frame, a screw hole 1 is provided on the outside of the positioning hole, and the screw 1 is connected to the screw hole 1.
[0011] Two screw holes are respectively provided at both ends of the support frame, and the two screw holes are connected to the mirror frame through two screws.
[0012] Anti-counterfeiting points are arranged on the lens, and the anti-counterfeiting points include a plurality of circular protrusions and protrusion strips distributed along the central axis of the lens.
[0013] The client includes any one of a computer, a mobile phone, and a PAD device.
[0014] The wireless network is Bluetooth.
[0015] The technical effects of the present invention are as follows:
[0016] (1) The utility model designs a display light and a light guide column, and controls the lighting of the display light to stimulate the trainee to make more effective eye muscle adjustment movements;
[0017] (2) The present invention is applicable to the restoration of vision of myopic patients or hyperopic patients by providing a composite lens composed of a concave lens and a prism;
[0018] (3) This utility model combines AI intelligent technology with glasses correction technology and voice broadcast. It has the characteristics of simple operation, intelligent control and adaptability to a wide range of people, and has good application prospects. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 This is a schematic diagram of the structure of the presbyopia resetter in the utility model.
[0020] Figure 2 This is a schematic diagram of the structure of the presbyopia resetter (lens removed) in the present invention.
[0021] Figure 3 This is a schematic diagram of the bottom structure of the first eyeglass leg in the present invention.
[0022] Figure 4 This is a schematic diagram of the connection structure of the positioning rod in the utility model.
[0023] Figure 5 It is a schematic diagram of the connection structure of the support frame and the shield in the present invention.
[0024] Figure 6 This is a schematic structural diagram of the lens in the present invention.
[0025] Figure 7 This is a diagram showing the working principle of the intelligent AI in this utility model.
[0026] Among them, the figure markings are: 1, frame; 2, glasses leg one; 3, glasses leg two; 4, button one; 5, button two; 6, button three; 7, support frame; 71, screw hole one; 72, positioning hole; 73, screw hole two; 8, shield; 9, positioning ring; 10, positioning rod; 11, light guide column; 111, display light; 112, wire; 12, lens; 121, mirror body; 122, groove; 123, circular protrusion; 124, protrusion bar. DETAILED DESCRIPTION
[0027] In order to more clearly illustrate the technical features of this solution, this solution is described below through specific implementation methods.
[0028] See also Figure 1-Figure 7 A presbyopia resetter includes a frame 1, with two front ends of the frame 1 hingedly connected to a pair of glasses legs 2 and 3, two corrective lenses 12 are embedded in the side of the frame 1, and a support frame 7 is fixedly connected to the back of the frame 1, and the support frame 7 is fixedly connected to a shield 8. An optical adjustment structure is fixed to the center of the shield 8, and the optical adjustment structure is connected to a power module;
[0029] A power module, a voice module, and a communication module are provided inside the glasses leg 1 2 or the glasses leg 2 3. The optical adjustment structure is connected to the communication module. The communication module is connected to the software in the client through a wireless network. The software in the client receives the optical signal of the optical adjustment structure through the wireless network, and uses it to check the working status of the optical adjustment structure and control the operation of the optical adjustment structure through the wireless network; the software in the client controls the voice module through the communication module.
[0030] Specifically, button one 4, button two 5, and button three 6 are designed on the glasses leg one 2 or the glasses leg two 3, respectively representing the switch of the power module, the increase volume in the voice module, and the decrease volume in the voice module.
[0031] The lens 12 includes a lens body 121 and a groove 122 provided on the lens body 121 , that is, a composite lens composed of a concave lens and a prism. The refractive power of the left and right concave lenses is -10 to -30, and the magnification of the prism is 3-9.
[0032] The optical adjustment structure includes a display light 111 fixed at the center of the shield 8, a power module connected to the display light 111 through a wire 112, and a light guide column 11 separately docked with the display light 111. The light guide column 11 is fixed to the support frame 7 through a positioning frame.
[0033] The positioning frame includes a positioning ring 9 that is sleeved on one end of the light guide column 11 and a positioning rod 10 whose one end is fixedly connected to the outer side of the positioning ring 9. The positioning ring 9 is connected to the support frame 7 by a screw, and the positioning rod 10 is movably engaged and clamped in an open groove set on the support frame 7.
[0034] A positioning hole 72 is provided at the center of the support frame 7 , and a screw hole 71 is provided outside the positioning hole 72 , and the screw 1 is connected to the screw hole 71 .
[0035] Two ends of the support frame 7 are respectively provided with second screw holes 73 , and the second screw holes 73 are connected to the mirror frame 1 through second screws.
[0036] Anti-counterfeiting points are provided on the lens 12 , and the anti-counterfeiting points include a plurality of circular protrusions 123 and protrusion strips 124 distributed along the central axis of the lens 12 .
[0037] The client includes any of computers, mobile phones, and PAD devices.
[0038] The wireless network is Bluetooth.
[0039] The specific working process of this utility model:
[0040] When people turn on the power module, the voice module and the display light 111 turn on, and the light guide 11 also becomes brighter. Then they open the client software OpiaAI, which has two modules: presbyopia detection and pupil distance detection. It checks whether Bluetooth is turned on in the client (mobile phone). Then they put on their glasses and start exercising. At this time, the light guide 11 is displayed on the mobile phone. Through the client software OpiaAI in the mobile phone, the brightness of the display light 111 and the light guide 11 are adjusted to achieve training and rehabilitation for reading glasses.
[0041] After the software OpiaAI is opened, the voice module receives the signal and starts voice broadcasting, guiding people to complete the next step according to the changes in the software OpiaAI interface.
[0042] The technical features not described in the present invention can be realized by or by adopting the existing technology, and will not be described in detail here. Of course, the above description is not a limitation of the present invention, and the present invention is not limited to the above examples. Changes, modifications, additions or substitutions made by ordinary technicians in this technical field within the essential scope of the present invention should also fall within the scope of protection of the present invention.
Claims
1. A presbyopia resetter, comprising a frame (1), characterized in that: The front sides of both ends of the frame (1) are respectively hinged with a first eyeglass leg (2) and a second eyeglass leg (3); the side of the frame (1) is embedded with two lenses (12) with a correction function; the rear side of the frame (1) is fixedly connected to a support frame (7); the support frame (7) is fixedly connected to a shield (8); an optical adjustment structure is fixed to the center of the shield (8); and the optical adjustment structure is connected to a power module; The power module, the voice module, and the communication module are provided inside the first eyeglass leg (2) or the second eyeglass leg (3); the optical adjustment structure is connected to the communication module; the communication module is connected to the software in the client via a wireless network; the software in the client receives the optical signal of the optical adjustment structure via the wireless network, and uses it to check the working condition of the optical adjustment structure, and controls the working condition of the optical adjustment structure via the wireless network; the software in the client controls the voice module via the communication module.
2. The presbyopia resetter according to claim 1, characterized in that: The lens (12) is a composite lens consisting of a concave lens and a prism, the diopter of the left and right concave lenses is -10 to -30, and the magnification of the prism is 3-9.
3. The presbyopia resetter according to claim 1, characterized in that: The optical adjustment structure comprises a display light (111) fixed at the center of the shield (8), a power module connected to the display light (111) via a wire (112), and a light guide column (11) separately docked with the display light (111), wherein the light guide column (11) is fixed to the support frame (7) via a positioning frame.
4. The presbyopia resetter according to claim 3, characterized in that: The positioning frame comprises a positioning ring (9) sleeved on one end of the light guide column (11), and a positioning rod (10) with one end fixedly connected to the outer side of the positioning ring (9); the positioning ring (9) is connected to the support frame (7) by a screw, and the positioning rod (10) is movably engaged and clamped in an open groove provided on the support frame (7).
5. The presbyopia resetter according to claim 4, characterized in that: A positioning hole (72) is provided at the center of the support frame (7), a screw hole (71) is provided on the outside of the positioning hole (72), and the screw (71) is connected to the screw hole (71).
6. The presbyopia resetter according to claim 1, characterized in that: Two screw holes (73) are respectively provided at both ends of the support frame (7), and the two screw holes (73) are connected to the mirror frame (1) via two screws.
7. The presbyopia resetter according to claim 2, characterized in that: The lens (12) is provided with an anti-counterfeiting point, which comprises a plurality of circular protrusions (123) and protrusion strips (124) distributed along the central axis of the lens (12).
8. The presbyopia resetter according to claim 2, characterized in that: The client includes any one of a computer, a mobile phone, and a PAD device.
9. The presbyopia resetter according to claim 1, characterized in that: The wireless network is Bluetooth.