Eyeglass module and eyeglass kit
By setting up a retractable solar panel and sensors on the smart glasses to detect the wearing status of the automatic charging mode, the problem of insufficient convenience of existing charging solutions is solved, and the effects of independent charging and appearance protection are achieved.
Patent Information
- Application Number
- CN202311024481.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-08-14
- Publication Date
- 2025-10-21
- Estimated Expiration
- 2043-08-14
AI Technical Summary
Existing charging solutions for smart glasses are not convenient enough. Wireless coil charging requires external equipment, and wired charging affects the appearance and increases space occupancy.
Solar panels are used as the charging source. The solar panels can be extended inside and outside the glasses in different states. They absorb ambient light and convert it into electrical energy for power supply. Combined with sensors, they automatically detect the wearing status and switch the charging mode.
It achieves independent charging without the need for external charging equipment, improves charging convenience, protects the integrity of the glasses' appearance, reduces space occupation, and automatically adapts to different usage states.
Smart Images

Figure CN119493293B_ABST
Abstract
Description
Technical Field
[0001] The present application belongs to the field of smart glasses technology, and specifically relates to glasses modules and glasses kits. Background Art
[0002] Existing smart glasses are mainly charged wirelessly through wireless coils, but the wireless coil charging solution requires external wireless charging equipment to charge the glasses wirelessly, which makes charging inconvenient. Summary of the Invention
[0003] In view of this, the first aspect of the present application provides a glasses module, which includes glasses and a solar panel. When the glasses module is in a not-worn state, at least part of the solar panel is located outside the glasses and can power the glasses. When the glasses module is in a worn state, the solar panel is located inside the glasses.
[0004] The glasses module provided in the first aspect of the present application is configured with a solar panel on the glasses. The solar panel can absorb ambient light and convert it into electrical energy, thereby powering the glasses. Therefore, the glasses module provided in the present application can be independently charged. Compared with the wireless coil charging solution in the related art, it no longer requires additional external charging equipment, thereby improving the convenience of charging. In addition, when the glasses module is not worn, at least a portion of the solar panel is located outside the glasses, and when the glasses module is worn, the solar panel is located inside the glasses. In other words, the solar panel is not fixed, but can be located in different positions according to different situations. For example, when the user wears the glasses, that is, the glasses are in the working state, the solar panel can be retracted into the glasses, allowing the user to use the glasses normally and preventing the solar panel from blocking the user's vision. When the user is not wearing the glasses, that is, the glasses are in the idle state or storage state, the solar panel can be extended outside the glasses, so that the glasses can be charged by the solar panel when the glasses are in the idle state.
[0005] A second aspect of the present application provides a glasses kit, which includes a glasses case and a glasses module as provided in the first aspect of the present application, and the glasses module can be arranged in the glasses case.
[0006] The glasses kit provided in the second aspect of the present application, by adopting the glasses module provided in the first aspect of the present application, can not only improve the convenience of charging the glasses module, but also enable the solar panels of the glasses to be in different positions in different states, thereby meeting various needs of users. BRIEF DESCRIPTION OF THE DRAWINGS
[0007] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings required for use in the embodiments of the present application will be described below.
[0008] Figure 1 This is a schematic diagram of the three-dimensional structure of the glasses module in an embodiment of the present application when it is in a wearing state.
[0009] Figure 2 This is a schematic diagram of the three-dimensional structure of the glasses module in an embodiment of the present application when the glasses module is in a non-worn state.
[0010] Figure 3 Schematic diagram of the charging process of the glasses module in one embodiment of the present application.
[0011] Figure 4 This is a cross-sectional schematic diagram of an eyeglass module in an embodiment of the present application when in a wearing state.
[0012] Figure 5 for Figure 4 A partial schematic diagram of the glasses module shown.
[0013] Figure 6 This is a cross-sectional schematic diagram of an eyeglass module in an embodiment of the present application when it is not worn.
[0014] Figure 7 for Figure 6 A partial schematic diagram of the glasses module shown.
[0015] Figure 8 This is a cross-sectional schematic diagram of the glasses in a stored state according to one embodiment of the present application.
[0016] Figure 9 This is a cross-sectional schematic diagram of another embodiment of the present application when the glasses are in the storage state.
[0017] Figure 10 This is a cross-sectional schematic diagram of another embodiment of the present application when the glasses are in the storage state.
[0018] Figure 11 Schematic diagram of the glasses case and glasses module of the glasses kit when disassembled in one embodiment of the present application.
[0019] Figure 12 This is a schematic diagram of the glasses case and glasses module of the glasses kit in another embodiment of the present application when they are disassembled.
[0020] Figure 13 Schematic diagram of the charging process of the glasses module in one embodiment of the present application.
[0021] Description of labels:
[0022] Glasses kit 1a, glasses module 1, glasses case 2, glasses 10, frame 11, opening 110, first end 111, second end 112, temple 12, lens 13, solar panel 20, rotating member 30, first magnetic member 41, second magnetic member 42, gravity member 50, solar charging panel 60. DETAILED DESCRIPTION
[0023] The following are preferred implementations of the present application. It should be noted that ordinary technicians in this technical field can make several improvements and modifications without departing from the principles of the present application. These improvements and modifications are also considered to be within the scope of protection of the present application.
[0024] Before introducing the technical solutions of the present application, the technical problems in the related technologies are introduced in detail.
[0025] Existing smart glasses charging solutions primarily include wired charging and wireless charging. Wired charging primarily uses built-in contacts or ports on the glasses, enabling charging via a wired connection. Examples include traditional watches, Edith 1.0, and traditional AR glasses. However, since wired charging requires reserved contacts or charging ports on the glasses, these ports often affect the appearance and aesthetics during use. Furthermore, reserved charging ports require a separate charging box or dock, reducing charging convenience.
[0026] Currently, wireless charging smart glasses on the market primarily use wireless charging methods like NFC, which are implemented through proprietary protocols, wireless charging protocols, or NFC wireless charging protocols. However, wireless coil charging solutions require a built-in wireless receiving coil in the frame or temple of the glasses, and wireless charging is performed through a charging box or external wireless charging device, which reduces charging convenience. Furthermore, due to the large size of the wireless coil itself and the need for wireless charging chips, wireless coil charging solutions often require a significant increase in space and cost.
[0027] In view of this, in order to solve the above problems, this application provides a glasses module. Please refer to Figure 1-Figure 3 , Figure 1 This is a schematic diagram of the three-dimensional structure of the glasses module in an embodiment of the present application when it is in a wearing state. Figure 2 This is a schematic diagram of the three-dimensional structure of the glasses module in an embodiment of the present application when the glasses module is in a non-worn state. Figure 3Figure 1 is a schematic diagram of the charging process of the glasses module in one embodiment of the present application. The glasses module 1 provided in this embodiment includes glasses 10 and a solar panel 20. When the glasses module 1 is not worn, at least a portion of the solar panel 20 is located outside the glasses 10 and can provide power to the glasses 10. When the glasses module 1 is worn, the solar panel 20 is located inside the glasses 10.
[0028] The glasses module 1 mainly includes glasses 10 and solar panels 20, wherein the glasses 10 can be smart glasses 10, which can realize various functions by powering up. Optionally, the glasses 10 can be virtual reality (VR) glasses 10, augmented reality (AR) glasses 10, mixed reality (MR) glasses 10, and the like. This embodiment only schematically illustrates the glasses 10 as AR glasses 10. The solar panel 20 is used to receive external ambient light, that is, a component that receives solar energy and converts solar energy into electrical energy. Optionally, the solar panel 20 is soft in texture and can be bent, so the solar panel 20 can also be called a solar soft panel. It is worth noting that the solar panel 20 has the highest energy storage efficiency for sunlight, but ordinary fluorescent lamps can also achieve energy conversion, that is, they can also store energy, but the efficiency is not as good as the energy storage efficiency of sunlight. Optionally, as Figure 2 As shown, when the solar panel 20 absorbs solar energy or sunlight, the solar panel 20 converts the solar energy into electrical energy and transmits it to the internal circuit. After rectification, filtering and voltage stabilization, the internal circuit converts the energy into power for the internal circuit, i.e., each circuit module of the glasses 10, or charges the built-in battery of the glasses 10.
[0029] Therefore, the glasses module 1 provided in this embodiment can be charged anytime and anywhere, independently, and is not restricted by location or charging equipment. It can be placed under sunlight or indoor fluorescent lights, which is equivalent to being taken out and placed anytime and anywhere to achieve a rechargeable design. Compared with the wireless coil charging solution in the related art, it no longer requires additional external charging equipment and does not need to find a special charging location, which improves the convenience of charging. It can also avoid the need for large wireless coils and wireless charging chips built into the glasses 10, reducing the space occupied by the internal structure of the glasses 10. Compared with the wired charging solution in the related art, it can ensure the integrity of the appearance of the glasses 10 and avoid the need for contacts or charging ports on the glasses 10, thereby simplifying the structure of the glasses 10 and simplifying the charging mode of the smart glasses 10, making the product appearance and structure more consistent and the sealing performance such as waterproof and dustproof stronger.
[0030] Furthermore, when the glasses module 1 is not being worn, at least a portion of the solar panel 20 is positioned outside the glasses 10. When the glasses module 1 is being worn, the solar panel 20 is positioned inside the glasses 10. In other words, the solar panel 20 is not stationary but can be positioned differently depending on the situation. For example, when the user is wearing the glasses 10, i.e., when the glasses 10 are in operation, the solar panel 20 can be retracted into the glasses 10, allowing the user to use the glasses 10 normally and preventing the solar panel 20 from obstructing the user's vision. When the user is not wearing the glasses 10, i.e., when the glasses 10 are in an idle or stored state, the solar panel 20 can be extended outside the glasses 10, allowing the glasses 10 to be charged while in the idle state. Therefore, the glasses 10 can also be referred to as solar-charged retractable smart glasses 10. This embodiment enables real-time switching between use and charging, eliminating the need for manual charging. The solar panel 20 can be positioned differently in different states to meet the user's diverse needs.
[0031] Please refer again Figure 2 In this embodiment, the glasses 10 include a frame 11 and two temples 12, the frame 11 includes a first end 111 and a second end 112 arranged opposite to each other, one temple 12 is rotatably connected to the first end 111, and the other temple 12 is rotatably connected to the second end 112, and the solar panel 20 is provided at at least one of the first end 111 and the second end 112.
[0032] The glasses 10 generally include a frame 11 and two temples 12. The frame 11 includes two opposite ends along its length: a first end 111 and a second end 112. One temple 12 is rotatably connected to the first end 111, and the other temple 12 is rotatably connected to the second end 112. In other words, the two temples 12 are rotatably connected to the opposite ends of the frame 11. When the two temples 12 are rotated and unfolded relative to the frame 11, the glasses 10 can also be worn by the user. At this time, the glasses 10 are in a worn state. Except for the worn state, the glasses 10 are in an unworn state. That is, the glasses 10 are only in a worn state when they are worn on the user's face. When the glasses 10 are not worn on the user's face, the glasses 10 are in an unworn state. In addition, in the unworn state, when the two temples 12 are rotated and folded crosswise relative to the frame 11, the glasses 10 cannot be worn by the user. At this time, the glasses 10 can be in a stored state.
[0033] In this embodiment, the solar panel 20 can be arranged at at least one of the first end 111 and the second end 112. In other words, the solar panel 20 can be arranged alone at the first end 111, alone at the second end 112, or simultaneously at the first end 111 and the second end 112. This embodiment is only schematically illustrated by the solar panel 20 being arranged at both the first end 111 and the second end 112. The above content can also be understood as this embodiment wherein the solar panel 20 is arranged at the outer end of the frame 11, that is, the end where the temple 12 is connected by rotation. First, the first end 111 and / or the second end 112 of the frame 11 are larger in size and have a larger internal space, which can facilitate the arrangement of the solar panel 20 and related components. Secondly, arranging the solar panel 20 at the first end 111 and / or the second end 112 of the frame 11 makes it easier for the two solar panels 20 to approach and connect to each other, thereby better shielding and protecting the lens 13. Again, since various circuit modules, batteries and other components that require power are installed in the temple 12, the solar panel 20 is arranged at the first end 111 and / or the second end 112 of the frame 11 to facilitate the connection between the wiring led out of the solar panel 20 and other components in the temple 12, thereby optimizing the wiring layout inside the glasses 10.
[0034] Please refer to Figure 4-Figure 7 , Figure 4 This is a cross-sectional schematic diagram of an eyeglass module in an embodiment of the present application when in a wearing state. Figure 5 for Figure 4 A partial schematic diagram of the glasses module shown. Figure 6 This is a cross-sectional schematic diagram of an eyeglass module in an embodiment of the present application when it is not worn. Figure 7 for Figure 6 In this embodiment, the glasses 10 further include a rotating member 30 disposed in the frame 11, the rotating member 30 being disposed at at least one of the first end 111 and the second end 112, one end of the solar panel 20 being fixed to the rotating member 30, at least one of the first end 111 and the second end 112 having an opening 110, and the rotating member 30 being rotated in a first direction (such as Figure 5 The other end of the solar panel 20 is arranged outside the frame 11 through the opening 110, and the rotating member 30 is rotated in a second direction opposite to the first direction (as shown in D1). Figure 7 The rotation of the solar panel 20 (shown as D2 in the figure) enables the other end of the solar panel 20 to pass through the opening 110 and be disposed in the mirror frame 11, and the solar panel 20 is wound onto the rotating member 30.
[0035] In this embodiment, the solar panel 20 moves in the form of rotation. Specifically, a rotating member 30 can be provided within the frame 11, and the rotating member 30 can rotate along its own axis. One end of the solar panel 20 is fixed to the rotating member 30, so that the rotation of the rotating member 30 can drive the solar panel 20 to rotate. Therefore, the rotating member 30 is located at the end where the solar panel 20 is located. For example, when the solar panel 20 is located alone at the first end 111, the rotating member 30 is also located alone at the first end 111; when the solar panel 20 is located alone at the second end 112, the rotating member 30 is also located alone at the second end 112; when the solar panel 20 is located at both the first end 111 and the second end 112, the rotating member 30 is also located at both the first end 111 and the second end 112. Furthermore, an opening 110 is provided between the rotating member 30 and the first end 111 and / or the second end 112 of the solar panel 20 to facilitate the retraction and retraction of the solar panel 20.
[0036] Specifically, when the glasses 10 are not being worn, the rotating member 30 rotates in a first direction, driving the solar panel 20 to rotate synchronously, allowing the solar panel 20 to gradually retract through the opening 110 and wind up outside the frame 11, even if the other end of the solar panel 20 is located outside the frame 11. This allows the solar panel 20 to absorb sunlight / daylight, converting solar energy into electrical energy to power the glasses 10. The first direction can be clockwise or counterclockwise. When the glasses 10 are being worn, the rotating member 30 rotates in a second direction, driving the solar panel 20 to rotate synchronously, allowing the solar panel 20 to gradually retract through the opening 110 and wind up on the outer peripheral side of the rotating member 30, that is, allowing the other end of the solar panel 20 to be located inside the frame 11. This prevents the user's vision from being blocked by the solar panel 20 during use.
[0037] Please refer to Figure 8 , Figure 8 The figure is a cross-sectional schematic diagram of the glasses in a storage state according to one embodiment of the present application. In this embodiment, the glasses 10 are in a storage state with the two temples 12 folded relative to the frame 11. The glasses 10 also include two lenses 13 disposed on the frame 11, one lens 13 disposed at the first end 111 and the other lens 13 disposed at the second end 112. The glasses module 1 includes two solar panels 20 and two rotating members 30, one solar panel 20 and one rotating member 30 disposed at the first end 111, and the other solar panel 20 and another rotating member 30 disposed at the second end 112. When the glasses 10 are in the storage state, each solar panel 20 blocks one lens 13, and the solar panel 20 is further away from the temple 12 than the lens 13.
[0038] The wearing state, non-wearing state, and storage state have been described in detail above in this application, and will not be described in detail in this embodiment. In addition to the frame 11 and the temples 12, the glasses 10 are also provided with two lenses 13. The two lenses 13 are arranged on the frame 11 and are arranged opposite to each other, that is, one lens 13 is arranged at the first end 111, and the other lens 13 is arranged at the second end 112. In this embodiment, the glasses module 1 includes two solar panels 20 and two rotating parts 30, one solar panel 20 and one rotating part 30 are arranged at the first end 111, and the other solar panel 20 and the other rotating part 30 are arranged at the second end 112. In other words, one solar panel 20, one rotating part 30, and one lens 13 are arranged on one side of the frame 11, and the other solar panel 20, the other rotating part 30, and the other lens 13 are arranged on the other side of the frame 11.
[0039] When the glasses 10 are not being worn, each solar panel 20 can shield one lens 13. For example, the solar panel 20 located at the first end 111 shields the lens 13 located at the first end 111, and the solar panel 20 located at the second end 112 shields the lens 13 located at the second end 112. This allows the solar panels 20 to collect sunlight while also shielding the lenses 13, protecting them from damage and the risk of falling. Furthermore, when the glasses 10 are in the stowed state, i.e., when the two temples 12 are folded crosswise relative to the frame 11, the solar panels 20 are further away from the temples 12 than the lenses 13. In other words, the lenses 13 include an inner side proximal to the temples 12 and an outer side facing away from them. The solar panels 20 can be located on the outer side, allowing the temples 12 and the solar panels 20 to protect the opposing sides of the lenses 13.
[0040] Please refer to Figure 9 , Figure 9 FIG2 is a cross-sectional view of another embodiment of the present application, wherein the glasses are in a stored state. In this embodiment, the glasses module 1 further includes a first magnetic member 41 and a second magnetic member 42 that are capable of attracting each other. The first magnetic member 41 is disposed at the other end of one of the solar panels 20, and the second magnetic member 42 is disposed at the other end of the other solar panel 20. When the glasses 10 are in the stored state, the first magnetic member 41 is magnetically connected to the second magnetic member 42.
[0041] When the two solar panels 20 each block the outer sides of the two lenses 13, the other ends of the two solar panels 20 will move closer to each other. Therefore, in this embodiment, a first magnetic member 41 is provided at the other end of one solar panel 20, and a second magnetic member 42 is provided at the other end of the other solar panel 20. The first magnetic member 41 and the second magnetic member 42 are mutually attracted. Therefore, when the other ends of the two solar panels 20 are close to each other, the first magnetic member 41 and the second magnetic member 42 can be magnetically linked together, thereby flattening the two solar panels 20 relative to each other, preventing the two solar panels 20 from curling up after being unrolled from the frame 11. This not only affects the power supply capacity, but also fails to block and protect the lenses 13.
[0042] Please refer to Figure 10 , Figure 10 FIG2 is a cross-sectional view of another embodiment of the present application showing the glasses in a stored state. In this embodiment, the glasses module 1 further includes two gravity portions 50 , each of which is disposed at the other end of a solar panel 20 , such that the other end of the solar panel 20 is close to the frame 11 when the solar panel 20 is extended from the frame 11 .
[0043] When the two solar panels 20 respectively block the outer side surfaces of the two lenses 13, the other ends of the two solar panels 20 will be close to each other. Therefore, in this embodiment, a gravity portion 50 can be provided at the other end of one solar panel 20, and another gravity portion 50 can be provided at the other end of the other solar panel 20. The gravity portion 50 is a component with relatively large gravity, and optionally, the weight of the gravity portion 50 is greater than the weight of the solar panel 20. When the solar panel 20 is rolled out from the frame 11 to the outside of the frame 11, since the gravity portion 50 is provided at the other end of the solar panel 20, the gravity portion 50 can pull the other end of the solar panel 20 downward, so that the solar panel 20 is always close to the frame 11, and the other end of the solar panel 20 is prevented from being away from the frame 11 due to the curling, thereby affecting the power supply capacity and failing to block and protect the lenses 13.
[0044] In this embodiment, the glasses module 1 also includes a sensor and a processor electrically connected to the sensor. The sensor is used to detect wearing information, and the processor is used to determine whether the glasses 10 are worn based on the wearing information. When the glasses 10 are worn, the processor is also used to retract the solar panel 20 into the glasses 10; when the glasses 10 are not worn, the processor is also used to extend the solar panel 20 outside the glasses 10.
[0045] In addition to the aforementioned components, the eyewear module 1 may also include a sensor and a processor. The placement of the sensor and processor is not limited in this embodiment. The sensor is used to detect the wearing information of the eyewear 10 and transmit the wearing information to the processor. The processor can then determine whether the eyewear 10 is being worn, i.e., whether the eyewear 10 is in a worn or unworn state, thereby automatically detecting the wearing mode.
[0046] Optionally, the sensor may be a proximity sensor (PS-SENSOR, PS), which can detect the distance between the glasses 10 and an object. For example, the proximity sensor can be installed on the temple 12 to detect the distance between the temple 12 and the user. If the distance is less than a preset value, the processor can determine that the glasses 10 are worn on the user's face; otherwise, the distance is not worn on the user's face.
[0047] Optionally, the sensor may be a light sensor / ambient light sensor (ALS), which can detect the brightness of the ambient light around an object. For example, the light sensor can be disposed on the inner side of the temple 12. When the user wears the glasses 10, the light sensor is close to or even contacts the user's skin, causing the brightness detected by the light sensor to be less than a preset value. The processor can then determine that the glasses 10 are worn on the user's face, otherwise, they are not worn on the user's face.
[0048] Alternatively, the sensor may be a pressure sensor that detects pressure. For example, the pressure sensor may be located at the point where the temple 12 meets the user's ear. When the user wears the glasses 10, the pressure sensor experiences pressure from the ear. If the pressure exceeds a preset value, the processor determines that the glasses 10 are properly worn on the user's face; otherwise, the pressure is not properly worn on the user's face.
[0049] Optionally, the sensor may be a temperature sensor (Negative Temperature Coefficient, NTC). This temperature sensor can detect temperature by simulating a thermistor phenomenon in which resistance decreases exponentially with increasing temperature, exhibiting a negative temperature coefficient. For example, the temperature sensor may be positioned where the temple 12 meets the ear, or where the frame 11 meets the nose. When the user wears the glasses 10, the ear and / or nose become warm, and the temperature sensor can detect the temperature accordingly. If the temperature is greater than a preset value, the processor determines that the glasses 10 are being worn on the user's face; otherwise, the glasses are not being worn on the user's face.
[0050] Therefore, by using sensors to detect whether the glasses 10 are being worn, the system of the glasses 10 is powered on and the solar panel 20 is automatically retracted when the glasses 10 are worn, allowing normal use of the glasses 10. When the glasses 10 are removed, the solar panel 20 is deployed and the glasses 10 begins charging. Therefore, the glasses module 1 provided in this embodiment can automatically detect wear, automatically identify the charging state, and automatically switch to the unworn state when not in use, effectively preventing forgetting to charge the glasses after use and preventing over-discharge of the glasses 10 from damaging the battery.
[0051] In this embodiment, when the glasses 10 are not worn for a predetermined period of time, the processor is further configured to extend the solar panel 20 out of the glasses 10 .
[0052] In this embodiment, when the glasses 10 are taken off and not worn, the solar panel 20 is not deployed immediately. Instead, the processor waits for a preset time before determining that the glasses 10 are not being worn, and then extends the solar panel 20 outside the glasses 10. This prevents the user from taking off the glasses 10 for a short break or other reasons, but then putting them back on and continuing to use them, thereby preventing misoperation.
[0053] Please refer to Figure 11 , Figure 11 Schematic diagram of the glasses case and glasses module of the glasses set in one embodiment of the present application when disassembled. The glasses set 1a provided in this embodiment includes a glasses case 2 and the glasses module 1 provided in the above embodiment of the present application, and the glasses module 1 can be placed in the glasses case 2.
[0054] The eyeglasses kit 1a may include an openable eyeglasses case 2 and the eyeglasses module 1 provided in the above-described embodiment of the present application. The eyeglasses module 1 may be installed in the eyeglasses case 2, which may protect the eyeglasses module 1. The eyeglasses kit 1a provided in this embodiment, by utilizing the eyeglasses module 1 provided in the above-described embodiment of the present application, not only improves the convenience of charging the eyeglasses module 1, but also allows the solar panel 20 to be positioned in different positions when the eyeglasses 10 are in different states, thereby meeting the various needs of the user.
[0055] Please refer to Figure 12-13 , Figure 12 This is a schematic diagram of the glasses case and glasses module of the glasses kit in another embodiment of the present application when they are disassembled. Figure 13 The figure is a schematic diagram of the charging process of the glasses module in one embodiment of the present application. In this embodiment, when the glasses module 1 is placed in the glasses case 2, the glasses module 1 is electrically connected to the glasses case 2; the glasses case 2 is also equipped with a solar charging panel 60, which can power the glasses 10 in the glasses module 1.
[0056] In this embodiment, when the glasses module 1 is placed within the glasses case 2, the glasses module 1 is electrically connected to the glasses case 2. Furthermore, the glasses case 2 is provided with a solar charging panel 60, which can absorb and convert solar energy / sunlight into electrical energy, thereby charging the glasses module 1, which is electrically connected to the glasses case 2. The location of the solar charging panel 60 is not limited in this embodiment. For example, after the solar charging panel 60 generates electrical energy, it can be transmitted to the internal circuits of the glasses case 2 through a rectification, filtering, and voltage-stabilization circuit, and / or used to charge the internal battery of the glasses case 2. The glasses case 2 can then transmit the electrical energy via contacts to a charging chip, which can then power the various modules within the glasses module 1 or charge the battery within the glasses 10. The glasses case 2 can also receive and convert the electrical energy through a wireless charging coil, which, after rectification and filtering, transmits the electrical energy to the charging chip, which can then power the various modules within the glasses module 1 or charge the battery within the glasses 10.
[0057] In the description of this application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise" and the like to indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as a limitation on this application.
[0058] In addition, the terms "first" and "second" are used for descriptive purposes only and should not be understood as indicating or implying relative importance or implicitly specifying the number of the technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the features. In the description of this application, "plurality" means two or more, unless otherwise specifically defined. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions.
[0059] In this application, unless otherwise expressly specified or limited, terms such as "mounted," "connected," "connect," and "fixed" should be understood broadly. For example, they may refer to connection, detachable connection, or integration. They may refer to mechanical connection or electrical connection. They may refer to direct connection or indirect connection through an intermediary. They may refer to internal communication between two components or interaction between two components. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances.
[0060] The above details the contents provided in the embodiments of the present application, and illustrates and describes the principles and embodiments of the present application. These explanations are only intended to help understand the method and core concept of the present application. However, the contents of this specification should not be construed as limiting the present application. Those skilled in the art may make various changes and modifications to the present application without departing from the spirit and scope of the present application. Such modifications and variations of the present application fall within the scope of the claims of the present application and their equivalents.
Claims
1. A glasses module, characterized in that: The glasses module includes glasses and a solar panel. When the glasses module is not worn, at least a portion of the solar panel is located outside the glasses and is capable of supplying power to the glasses. When the glasses module is worn, the solar panel is located inside the glasses. The glasses include a frame and two temples, the frame including a first end and a second end oppositely disposed, one temple being rotatably connected to the first end, and the other temple being rotatably connected to the second end, and the solar panel being disposed on at least one of the first end and the second end; The glasses also include a rotating member arranged in the frame, the rotating member is arranged at at least one of the first end and the second end, one end of the solar panel is fixed to the rotating member, and at least one of the first end and the second end has an opening. The rotating member rotates in a first direction to enable the other end of the solar panel to be arranged outside the frame through the opening, and the rotating member rotates in a second direction opposite to the first direction to enable the other end of the solar panel to be arranged in the frame through the opening, and the solar panel is wound around the rotating member.
2. The eyeglass module according to claim 1, wherein: The glasses have a storage state when the two temples are folded relative to the frame, and the glasses also include two lenses arranged on the frame, one lens is arranged at the first end, and the other lens is arranged at the second end; the glasses module includes two solar panels and two rotating parts, one solar panel and one rotating part are arranged at the first end, and the other solar panel and the other rotating part are arranged at the second end; when the glasses are in the storage state, each solar panel blocks one lens, and the solar panel is farther away from the temple than the lens.
3. The eyeglass module according to claim 2, wherein: The glasses module also includes a first magnetic part and a second magnetic part that can attract each other. The first magnetic part is arranged at the other end of one of the solar panels, and the second magnetic part is arranged at the other end of the other solar panel. When the glasses are in the storage state, the first magnetic part is magnetically connected to the second magnetic part.
4. The eyeglass module according to claim 2, wherein: The glasses module further includes two gravity parts, each of which is arranged at the other end of a solar panel, so that when the solar panel extends out of the frame, the other end of the solar panel is close to the frame.
5. The eyeglass module according to claim 1, wherein: The glasses module also includes a sensor and a processor electrically connected to the sensor. The sensor is used to detect wearing information, and the processor is used to determine whether the glasses are worn based on the wearing information. When the glasses are worn, the processor is also used to retract the solar panel into the glasses; when the glasses are not worn, the processor is also used to extend the solar panel outside the glasses.
6. The eyeglass module according to claim 5, wherein: When the glasses are not worn for a preset time, the processor is further configured to extend the solar panel out of the glasses.
7. A glasses set, characterized in that: The glasses kit includes a glasses case and a glasses module according to any one of claims 1 to 6, and the glasses module can be arranged in the glasses case.
8. The eyeglasses set according to claim 7, wherein: When the glasses module is arranged in the glasses box, the glasses module is electrically connected to the glasses box; the glasses box is also provided with a solar charging panel, which can supply power to the glasses in the glasses module.
Citation Information
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