Glasses case and smart glasses set
Patent Information
- Application Number
- PCT/CN2025/115133
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-06-17
- Filing Date
- 2025-08-15
- Publication Date
- 2026-02-12
AI Technical Summary
Existing smart glasses boxes require charging interfaces or communication chips to enable charging and data interaction, resulting in large size, high cost, and reliance on wired connections. Users cannot charge or interact if they do not carry a data cable.
By employing wireless charging and communication technologies, a first coil module and a control module are set up in the glasses case to form a wireless connection with the smart glasses, enabling wireless charging and data interaction, and reducing reliance on charging interfaces and communication chips.
It reduces the size and cost of the glasses case, improves the stability and reliability of wireless connection and communication, reduces power loss, and achieves charging and data interaction without relying on a data cable.
Smart Images

Figure CN2025115133_12022026_PF_FP_ABST
Abstract
Description
Glasses case and smart glasses kit
[0001] This application claims priority to Chinese patent application No. 202421392468.5, filed with the China National Intellectual Property Administration on June 17, 2024, the entire contents of which are incorporated herein by reference. Technical Field
[0002] This application relates to the field of smart glasses technology, and more particularly to a glasses case and a smart glasses kit. Background Technology
[0003] Near-eye display devices are developing rapidly, especially smart wearable devices such as smart glasses, which are used in various aspects of people's lives, work, and entertainment.
[0004] Currently, smart glasses cases typically include charging and communication functions. This means that the smart glasses are connected to the case via a data cable for charging, or for data exchange.
[0005] However, in order to realize the functions of charging and / or data interaction, a charging interface or communication chip (such as Bluetooth or WiFi chip) needs to be set in the glasses case. It can be seen that these functional designs make the communication module and power module in the glasses case large in size and expensive to set up, and they are very dependent on wired connection. If the user does not carry a data cable, the functions of charging and data interaction cannot be realized. Summary of the Invention
[0006] This application provides an eyeglass case and a smart glasses kit, aiming to achieve charging and data interaction between the eyeglass case and the smart glasses at low cost, and reduce the size of the eyeglass case.
[0007] In a first aspect, this application provides an eyeglass case, comprising:
[0008] The box module includes at least a main body forming a receiving groove and a first magnetic suction member corresponding to the receiving groove. The receiving groove is used to receive smart glasses, and the first magnetic suction member is used to attract the smart glasses to the target area in the receiving groove.
[0009] The first coil module is disposed in the main body. When the smart glasses are housed in the receiving slot and are in the target area, the first coil module forms a wireless connection with the smart glasses.
[0010] The first power supply module is disposed on the main body and electrically connected to the first coil module;
[0011] The first control module is disposed on the main body and electrically connected to the first coil module;
[0012] Specifically, when the first coil module and the smart glasses form a wireless connection, the first power module wirelessly charges the smart glasses through the first coil module, and the first control module forms a communication connection with the smart glasses through the first coil module.
[0013] Secondly, embodiments of this application provide a smart glasses kit, which includes a glasses case and smart glasses adapted to the glasses case;
[0014] The eyeglass case can be any of the eyeglass cases described above. Attached Figure Description
[0015] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0016] Figure 1 is a schematic diagram of the modules of a smart glasses kit provided in one or more embodiments of this application;
[0017] Figure 2 is a schematic diagram of the glasses case and smart glasses in a smart glasses kit provided in one or more embodiments of this application;
[0018] Figure 3 is a structural schematic diagram of an eyeglass case provided in one or more embodiments of this application;
[0019] Figure 4 is a schematic diagram of the modules of smart glasses provided in one or more embodiments of this application;
[0020] Figure 5 is a schematic diagram of the glasses case and smart glasses in a smart glasses kit provided in one or more embodiments of this application;
[0021] Figure 6 is a schematic diagram of the interaction scenario between the glasses case and smart glasses provided in one or more embodiments of this application;
[0022] Figure 7 is a side view of the inner wall of the main body of the eyeglass case provided in one or more embodiments of this application;
[0023] Figure 8 is a schematic diagram of the eyeglass case cover and the main body fitting together according to one or more embodiments of this application;
[0024] Figure 9 is a schematic diagram of the structure of smart glasses provided in one or more embodiments of this application.
[0025] Reference numerals: 1. Glasses case; 10. Case module; 11. Main body; 12. Receiving slot; 121. Opening; 13. First magnetic clasp; 14. Cover; 15. Magnetic clasp position; 16. Coil connection position; 17. First shielding component; 18. Opening detection component; 181. Hall sensor; 182. Induction magnet; 20. First coil module; 50. Display module; 2. Smart glasses; 60. Frame module; 71. Second control module; 72. Second power module; 73. Second coil module; 81. Second magnetic clasp; 82. Second shielding component; 3. Smart glasses set; 4. Target area. Detailed Implementation
[0026] The technical solutions of the embodiments of this application will be described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this application. Other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application. The flowcharts shown in the accompanying drawings are merely illustrative and do not necessarily include all content and operations / steps, nor do they necessarily have to be performed in the described order. For example, some operations / steps can be decomposed, combined, or partially merged, so the actual execution order may change according to the actual situation. The above descriptions are merely specific embodiments of this application, but the scope of protection of this application is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in this application, and these modifications or substitutions should all be covered within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.
[0027] Near-eye display devices are developing rapidly, especially smart wearable devices such as smart glasses, which are used in various aspects of people's lives, work, and entertainment.
[0028] Currently, smart glasses cases typically include charging and communication functions. This means that the smart glasses are connected to the case via a data cable for charging, or for data exchange.
[0029] However, in order to realize the functions of charging and / or data interaction, a charging interface or communication chip (such as Bluetooth or WiFi chip) needs to be set in the glasses case. It can be seen that these functional designs make the communication module and power module in the glasses case large in size and expensive to set up, and they are very dependent on wired connection. If the user does not carry a data cable, the functions of charging and data interaction cannot be realized.
[0030] Based on this, embodiments of this application provide an eyeglass case and a smart eyeglass kit, aiming to achieve charging and data interaction between the eyeglass case and the smart eyeglasses at low cost, and reduce the size of the eyeglass case.
[0031] Please refer to Figures 1 and 2. Figure 1 is a schematic diagram of the modules of the smart glasses kit 3 provided in one or more embodiments of this application, and Figure 2 is a schematic diagram of the glasses case 1 and smart glasses 2 in the smart glasses kit 3 provided in one or more embodiments of this application.
[0032] As shown in Figures 1 and 2, embodiments of this application provide an eyeglass case 1, smart glasses 2, and a smart glasses kit 3. The smart glasses kit 3 provided in this application embodiment includes at least the eyeglass case 1 and smart glasses 2 adapted to the eyeglass case 1. Specifically, the smart glasses 2 described in this application embodiment includes, but is not limited to, at least one of AR glasses and VR glasses.
[0033] The following section will provide a detailed explanation of the structure and function of the glasses case 1 and the smart glasses 2 in the smart glasses kit 3, as well as the scenarios in which the two work together.
[0034] Please refer to Figure 3, which is a structural schematic diagram of the eyeglass case 3 provided in one or more embodiments of this application.
[0035] As shown in Figures 1 to 10, an eyeglass case 1 provided in this application includes a case module 10, a first coil module 20, a first power supply module and a first control module. The components of the eyeglass case 1 will be described in detail below.
[0036] Specifically, the housing module 10 includes at least a main body 11 and a first magnetic member 13. The main body 11 forms a receiving groove 12 with an opening 121. The receiving groove 12 is used to receive the smart glasses 2 that are compatible with the glasses case 1. The smart glasses 2 can enter and exit the receiving groove 12 through the opening 121. A target area 4 is provided in the receiving groove 12. When the smart glasses 2 is received in the receiving groove 12 and located in the target area 4, the glasses case 1 can form a wireless connection with the smart glasses 2. The wireless connection enables wireless charging and wireless communication interaction between the glasses case 1 and the smart glasses 2. The first magnetic member 13 is used to magnetically engage with the smart glasses 2 to attract the smart glasses 2 to the target area 4 in the receiving groove 12.
[0037] Specifically, the first coil module 20 is disposed on the main body 11. When the smart glasses 2 is housed in the receiving slot 12 and is located in the target area 4, the first coil module 20 forms a wireless connection with the smart glasses 2. The first power module and the first control module are both disposed on the main body 11 and are electrically connected to the first coil module 20.
[0038] Specifically, when the first coil module 20 and the smart glasses 2 form a wireless connection, the first power module wirelessly charges the smart glasses 2 through the first coil module 20, and the first control module forms a communication connection with the smart glasses 2 through the first coil module 20.
[0039] Specifically, the first coil module 20 in the first power module wirelessly connects to the smart glasses 2 via NFC (Near Field Communication) or RFID (Radio Frequency Identification), and with the support of the wireless connection, it enables wireless power supply to the smart glasses 2 and communication interaction with the smart glasses 2.
[0040] For example, the first coil module is an induction coil, which can be at least one of an NFC coil and an RFID coil. Correspondingly, the smart glasses 2 are also equipped with an induction coil adapted to the first coil module.
[0041] Please refer to Figures 4 to 6. Figure 4 is a schematic diagram of the modules of the smart glasses 1 provided in one or more embodiments of this application. Figure 5 is a schematic diagram of the glasses case 1 and the smart glasses 2 in the smart glasses kit 3 provided in one or more embodiments of this application. Figure 6 is a schematic diagram of the interaction scenario between the glasses case 1 and the smart glasses 2 provided in one or more embodiments of this application.
[0042] As shown in Figures 2 to 6, for example, the smart glasses 2 include a frame module 60, a second coil module 73 disposed on the frame module 60, a second magnetic member 81, a display module 50 connected and adapted to the frame module 60, a second control module 71 connected to the display module 50 and used to control the display module 50 to display images, and a second power supply module 72 connected to the display module 50 and the second control module 71 and used to supply power to the display module 50 and the second control module 71. The first coil module 20 in the glasses case 1 provided in this embodiment can form a wireless connection with the second coil module 73 of the smart glasses 2.
[0043] Specifically, when the first coil module 20 and the second coil module 73 form a wireless connection, the first power module of the glasses case 1 can wirelessly charge the second power module 72 of the smart glasses 2 through the first coil module 20 and the second coil module 73; the first control module of the glasses case 1 can form a communication connection with the second communication module of the smart glasses 2 through the first coil module 20 and the second coil module 73.
[0044] Especially when the first coil module 20 and the second coil module 73 are accurately aligned, the wireless connection stability and communication reliability between the first coil module 20 and the second coil module 73 are good, and the wireless charging efficiency between the first coil module 20 and the second coil module 73 is high with less power loss.
[0045] For example, the first coil module and the second coil module are mutually compatible NFC coils or mutually compatible RFID coils.
[0046] It should be noted that when the smart glasses 2 are placed in the target area 4 of the glasses case 1 as shown in Figure 2, the first coil module 20 and the second coil module 73 can be accurately aligned, and the first magnetic component 13 is used to magnetically engage with the second magnetic component 81 in the smart glasses 2 to adsorb the smart glasses 2 into the target area 4 in the receiving slot 12.
[0047] For example, both the first magnetic clasp 13 and the second magnetic clasp 81 are magnets. When the smart glasses 2 are placed in the accommodating cavity, the N pole of the first magnetic clasp 13 is opposite to the S pole of the second magnetic clasp 81, or the S pole of the first magnetic clasp 13 is opposite to the N pole of the second magnetic clasp 81.
[0048] It should be understood that in order to accommodate the smart glasses 2, the volume of space within the receiving slot 12 must be greater than or equal to the volume of the smart glasses 2. Therefore, on the one hand, the smart glasses 2 may shift when placed into the receiving slot 12, and on the other hand, the smart glasses 2 placed into the receiving slot 12 may also slide within the receiving slot 12. Both of these situations will cause the smart glasses 2 to not be accurately located in the target area 4, and there will also be a shift between the first coil module 20 and the second coil module 73.
[0049] Based on this, the glasses case 1 provided in this application uses the design of the first magnetic suction member 13 to attract the smart glasses 2 to the target area 4 in the receiving slot 12, so that the first coil module 20 and the second coil module 73 can be easily aligned with each other. This effectively prevents the smart glasses 2 from shifting or sliding in the receiving slot 12 when it is placed in the receiving slot 12, which would cause the relative relationship between the first coil module 20 and the second coil module 73 to break. This improves the stability and reliability of the wireless connection, as well as the efficiency of wireless charging between the first coil module 20 and the second coil module 73, and reduces power loss.
[0050] Moreover, compared to the prior art where the glasses case 1 and smart glasses 2 need to be connected via a data cable, the glasses case 1 provided in this application embodiment forms a wireless connection with the smart glasses 2 that are adsorbed in the receiving slot 12 through the first coil module 20. The glasses case 1 can wirelessly charge the smart glasses 2 or conduct communication interaction through this wireless connection, without the need to set up a charging interface or communication chip (such as Bluetooth or WiFi chip) in the glasses case 1, reducing the setup cost and product size of the glasses case 1, and making the interaction between the glasses case 1 and the smart glasses 2 no longer dependent on a data cable.
[0051] It should be noted that when setting the first coil module 20, a larger coil can be selected to increase the area occupied by the first coil module 20 on the inner wall of the receiving slot 12 (i.e., the area occupied by the coil connection position 16). This makes it easier to align the second coil module 73 of the smart glasses 2 with the first coil module 20 when the user places the smart glasses 2 into the receiving slot of the glasses case 1, with a certain margin of error, thereby ensuring that the wireless connection between the glasses case 1 and the smart glasses 2 is easy to connect and stable.
[0052] As shown in Figures 2 and 3, in some embodiments, the first magnetic attractor 13 is disposed at the magnetic attractor position 15 on the inner wall of the receiving groove 12, and the first coil module 20 is opposite to the coil connection position 16 on the inner wall of the receiving groove 12.
[0053] The magnetic attraction position 15 and the coil connection position 16 are two different positions that are set at intervals.
[0054] It should be understood that the magnetic suction position 15 is configured to set the first magnetic suction element 13, and the first magnetic suction element 13 is generally a magnetic element. Therefore, the first magnetic suction element 13 will generate a certain magnetic field in the space around it. The first coil module 20 of the glasses case 1 also forms a wireless connection with the second coil module 73 of the smart glasses 2 through the generated magnetic field. However, the magnetic field generated by the first magnetic suction element 13 will cause electromagnetic interference to the wireless connection between the first coil module 20 and the second coil module 73.
[0055] Therefore, configuring the magnetic attraction position 15 and the coil connection position 16 as two different positions with an interval can reduce the electromagnetic interference of the magnetic field generated by the first magnetic attraction member 13 on the wireless connection between the first coil module 20 and the smart glasses 2, improve the stability and reliability of the wireless connection, as well as the efficiency of wireless charging between the first coil module 20 and the second coil module 73, and reduce power loss.
[0056] As shown in Figure 6, in some embodiments, the box module 10 further includes a first shield 17 corresponding to the magnetic position 15. The first shield 17 at least partially covers the first magnetic member 13 in a first direction, which is the direction away from the first magnetic member 13 adsorbing the smart glasses 2.
[0057] The first shielding component 17 is used to shield the first magnetic component 13 from interference with the wireless connection between the first coil module 20 and the smart glasses 2.
[0058] Figure 6(a) shows a schematic diagram of the magnetic field formed by the first magnetic 13 of the glasses case 1 and the second magnetic 81 of the smart glasses 2 without the first shielding member 17. Figures 6(b) and 6(c) show schematic diagrams of the magnetic field formed by the first magnetic 13 of the glasses case 1 and the second magnetic 81 of the smart glasses 2 with the first shielding member 17.
[0059] As shown in Figure 6, the first magnetic attractor 13 and the second magnetic attractor 81 will generate a magnetic field in their vicinity. Taking the side of the first magnetic attractor 13 closer to the second magnetic attractor 81 as the N pole and the side of the first magnetic attractor 13 closer to the second magnetic attractor 81 as the S pole as an example:
[0060] A portion of the magnetic field lines corresponding to the first magnetic attractor 13 originate from the N pole of the first magnetic attractor 13 and reach the S pole of the second magnetic attractor 81, while another portion of the magnetic field lines corresponding to the first magnetic attractor 13 originate from the N pole of the first magnetic attractor 13, loop around the outside of the first magnetic attractor 13, and reach the S pole of the second magnetic attractor 81. Therefore, without the first shielding member 17, the magnetic field generated by the first magnetic attractor 13 will cause electromagnetic interference to the wireless connection between the first coil module 20 and the smart glasses 2.
[0061] Based on this, the first shield 17, which covers the first magnetic accommodating member 13 in the first direction, can effectively shield the electromagnetic interference generated by the magnetic field of the first magnetic accommodating member 13 on the wireless connection between the first coil module 20 and the smart glasses 2.
[0062] For example, the first shielding member 17 and the second shielding member 82 are made of low-carbon steel plates.
[0063] Furthermore, as shown in Figure 6(c), the first shielding member 17 can also cover the other sides of the first magnetic member 13 except for the side closest to the smart glasses 2.
[0064] As shown in Figures 2 and 3, in some embodiments, the first magnetic member 13 and the first shielding member 17 are at least partially embedded in the main body 11.
[0065] Specifically, the insertion positions of the first magnetic member 13 and the first shielding member 17 correspond to the magnetic insertion position 15. Furthermore, in one embodiment, the first magnetic member 13 and the first shielding member 17 are fully embedded in the main body 11.
[0066] It should be understood that by setting the first magnetic suction member 13 and the first shielding member 17 to be at least partially embedded in the main body 11, the protruding volume on the inner wall of the receiving groove 12 can be reduced, making it easier to ensure the smoothness and consistency of the inner wall of the receiving groove 12, and allowing the smart glasses 2 to better fit the inner wall of the receiving groove 12 when placed in the target area 4. It also indirectly reduces the absolute distance between the second coil module 73 of the smart glasses 2 and the first coil module 20 of the glasses case 1, thereby ensuring that the wireless connection between the glasses case 1 and the smart glasses 2 is easy to connect and stable.
[0067] In some embodiments, the first coil module 20 is at least partially embedded in the body 11. And as one embodiment, the first coil module 20 is completely embedded in the body 11.
[0068] It should be understood that this implementation reduces the protruding volume of the first coil module 20 on the inner wall of the receiving groove 12, so that the smart glasses 2 can fit better against the inner wall of the receiving groove 12 when placed in the target area 4. This indirectly reduces the distance between the first magnetic member 13 and the second magnetic member 81, making the attraction between the first magnetic member 13 and the second magnetic member 81 stronger. As a result, the alignment between the smart glasses 2 and the glasses case 1 will be more accurate and secure.
[0069] In some embodiments, the distance between the first magnetic clasp 13 and the first coil module 20 is less than 2 cm. It should be noted that, without considering the electromagnetic interference of the magnetic field generated by the first magnetic clasp 13 on the wireless connection between the first coil module 20 and the smart glasses 2, in some embodiments, the distance between the first magnetic clasp 13 and the first coil module 20 can be set as small as possible. This design ensures that, both in the early product design of the glasses case 1 and the later use of the smart glasses 2, the magnetic attraction between the first magnetic clasp 13 and the second magnetic clasp 81 can accurately assist in the alignment of the first coil module 20 and the second coil module 73.
[0070] With the first shielding component 17 installed in the glasses case 1, the shielding effect of the first shielding component 17 on the magnetic field formed by the first magnetic component 13 avoids electromagnetic interference between the first magnetic component 13 and the wireless connection between the first coil module 20 and the smart glasses 2 when the first magnetic component 13 is close to the first coil module 20. Therefore, the first magnetic component 13 and the first coil module 20 can be set as close as possible.
[0071] In some embodiments, the first magnetic attractor 13 and the first coil module 20 are located on the same side of the inner wall of the receiving groove 12. For specific embodiments, please refer to the description of the above embodiments.
[0072] In other embodiments, the first magnetic attractor 13 is located on the first side of the inner wall of the receiving groove 12, and the first coil module 20 is located on the second side of the inner wall of the receiving groove 12, and the second side is different from the first side.
[0073] Please refer to Figure 7, which is a side view of the inner wall of the main body 11 in the eyeglass case 1 provided in one or more embodiments of this application.
[0074] As shown in Figures 2, 3 and 7, by way of example, the inner wall of the receiving groove 12 formed by the main body 11 can be divided into a front side a, a rear side b, a left side c, a right side d and a bottom side e. The first side is one of the front side a, the rear side b, the left side c, the right side d and the bottom side e, and the second side is the other one of the front side a, the rear side b, the left side c, the right side d and the bottom side e.
[0075] For example, in the eyeglass case 1 shown in Figures 2 and 3, the first coil module 20 is disposed on the bottom side e of the inner wall of the receiving groove 12, and part of the first magnetic suction member 13 is disposed on the left side c and right side d of the inner wall of the receiving groove 12.
[0076] It should be understood that the first magnetic clasp 13 and the first coil module 20 are positioned on different sides of the inner wall of the receiving groove 12 in order to reduce the electromagnetic interference of the first magnetic clasp 13 on the wireless connection between the first coil module 20 and the smart glasses 2.
[0077] As shown in Figures 2 to 7, it should be noted that the box module 10 may be provided with one, two or more first magnetic components 13. Correspondingly, the smart glasses 2 may be provided with one, two or more second magnetic components 81 according to the number of first magnetic components 13 provided in the glasses box 1, so that the first magnetic components 13 and the second magnetic components 81 correspond one-to-one.
[0078] It should also be noted that when the middle box module 10 of the glasses case 1 includes at least two first magnetic components 13, the at least two first magnetic components 13 can be disposed on different sides of the inner wall of the receiving groove 12.
[0079] In some embodiments, the distance between the first magnetic accumulator 13 and the first coil module 20 is greater than 1 cm.
[0080] It should be noted that, in order to reduce the electromagnetic interference of the first magnetic clasp 13 on the wireless connection between the first coil module 20 and the smart glasses 2, the distance between the first magnetic clasp 13 and the first coil module 20 (i.e., the distance between the magnetic clasp position 15 and the coil connection position 16) can be set to be greater than 1cm. Especially when the first shield 17 is not provided, it is even more necessary to limit the distance between the first magnetic clasp 13 and the first coil module 20 in order to reduce the electromagnetic interference of the first magnetic clasp 13 on the wireless connection between the first coil module 20 and the smart glasses 2.
[0081] Please refer to Figure 8, which is a schematic diagram of the cooperation between the cover 14 and the main body 11 in the eyeglass case 1 provided in one or more embodiments of this application.
[0082] As shown in Figure 8, in some embodiments, the receiving groove 12 has an opening 121, and the box module 10 also includes a cover 14 corresponding to the opening 121 and an opening detection component 18. The cover 14 is movably connected to the main body 11 and is used to close the opening 121. The opening detection component 18 is disposed on at least one of the main body 11 and the cover 14 and is electrically connected to the first control module.
[0083] The opening detection component 18 is used to detect the opening and closing state of the opening 121, generate a detection signal corresponding to the opening and closing state of the opening 121, and transmit the detection signal to the first control module.
[0084] The first control module is also used to perform operations corresponding to the opening and closing states of opening 121 in response to detection signals.
[0085] Specifically, the opening 121 has at least two states: open and closed. The cover 14 can move relative to the main body 11 to open or close the opening 121. The cover 14 and the main body 11 can be detachably connected via a snap-fit, threaded connection, or other means; alternatively, they can be movably connected via a hinge, shaft hole, or other means. For example, in the eyeglass case 1 shown in Figure 7, the cover 14 is movably connected to the main body 11, and the cover 14 can be flipped relative to the main body 11 to open or close the opening 121.
[0086] It should be understood that the cover 14 is movably connected to the main body 11 to open or close the opening 121. On the one hand, the cover 14 can conveniently close the opening 121 and the receiving groove 12, protecting the space inside the receiving groove 12 and the smart glasses 2 housed in the receiving groove 12. On the other hand, based on the movement of the cover 14 relative to the main body 11, the opening and closing state of the opening 121 changes accordingly, allowing the first control module to perform corresponding operations according to the opening and closing state of the opening 121.
[0087] Specifically, the opening detection component 18 is disposed on at least one of the main body 11 and the cover 14. It is used to detect the opening and closing state of the opening 121, generate a detection signal corresponding to the opening and closing state of the opening 121, and transmit the detection signal to the first control module.
[0088] For example, the opening detection assembly 18 includes a Hall sensor 181 disposed on one of the main body 11 and the cover 14, and a sensing magnet 182 disposed on the other, with the Hall sensor 181 and the sensing magnet 182 corresponding to each other. For example, in the eyeglass case 1 shown in FIG7, the sensing magnet 182 is disposed on the cover 14, the Hall sensor 181 is disposed on the main body 11 and electrically connected to the first control module, and when the cover 14 closes the opening 121, the position of the sensing magnet 182 is opposite to the position of the Hall sensor 181.
[0089] When the cover 14 is not closing the opening 121, the distance between the sensing magnet 182 and the Hall sensor 181 increases, and the Hall sensor 181 generates a detection signal corresponding to the opening 121 being open. When the cover 14 closes the opening 121, the distance between the sensing magnet 182 and the Hall sensor 181 decreases, the Hall sensor 181 is triggered, and the Hall sensor 181 generates a detection signal corresponding to the opening 121 being closed. The Hall sensor 181 is also used to transmit the generated detection signal to the first control module, which is further used to perform an operation corresponding to the opening and closing state of the opening 121 in response to the detection signal.
[0090] For example, based on the open / closed state itself and the switching of the open / closed state, the first control module can perform operations including but not limited to at least one of the following: controlling the glasses case 1 to start / stop charging the smart glasses 2, instructing the smart glasses 2 to pair with an external device via Bluetooth, instructing the glasses case 1 to pair with an external device via Bluetooth, etc., instructing the smart glasses 2 / glasses case 1 to reset, and communicating with the smart glasses 2 through the first coil module 20, wherein the communication information includes but is not limited to the power information of the glasses case 1 and / or the smart glasses 2.
[0091] In some embodiments, the glasses case 1 further includes a display component disposed on the outside of the case module 10 and electrically connected to the first control module. The display component is used to display at least the power information of the first power module and / or the smart glasses 2.
[0092] Specifically, the display component shows the power information of at least one of the glasses case 1 (i.e., the first power module) and the smart glasses 2 (i.e., the second power module 72), which makes it easy for users to know the remaining power of the glasses case 1 and the smart glasses 2, so that they can put the smart glasses 2 into the glasses case 1 for charging, take the smart glasses 2 out of the glasses case 1 to stop charging, or instruct the glasses case 1 to stop charging the smart glasses 2 located in the receiving slot 12.
[0093] Among them, the display component is, for example, a liquid crystal display (LCD).
[0094] For example, the power information of both the glasses case 1 (i.e., the first power module) and the smart glasses 2 (i.e., the second power module 72) can be displayed simultaneously on the display area of the display component. Furthermore, the display component can also display status information of the glasses case 1 and / or the smart glasses 2, such as whether the glasses case 1 is charging the smart glasses 2.
[0095] Please refer to Figure 9, which is a structural schematic diagram of the smart glasses 2 provided in one or more embodiments of this application.
[0096] As shown in Figures 1 to 9, this application embodiment also provides a smart glasses 2, which includes at least: a frame module 60 for providing wear support so that a target object can wear the smart glasses 2; a display module 50 connected and adapted to the frame module 60 for displaying a target image; a second control module 71 connected to the display module 50 for controlling the image displayed by the display module 50; a second power module 72 connected to the display module 50 and the second control module 71 for supplying power to the display module 50 and the second control module 71; a second coil module 73 disposed in the frame module 60 for forming a wireless connection with the glasses case 1 when the smart glasses 2 is housed in the target area 4 within the glasses case 1; and a second magnetic member 81 disposed in the frame module 60 for magnetically engaging with the glasses case 1 so that the smart glasses 2 is attached to the target area 4 within the glasses case 1.
[0097] When the second coil module 73 is wirelessly connected to the glasses case 1, the second power module 72 wirelessly charges the glasses case 1 through the second coil module 73, and the second control module 71 communicates with the glasses case 1 through the second coil module 73.
[0098] For details on the specific implementation of the wireless connection between the smart glasses 2 and the glasses case 1 to achieve wireless charging and communication between the smart glasses 2 and the glasses case 1, please refer to the specific description of the foregoing embodiments, which will not be repeated here.
[0099] However, it should be noted that the positions of the second coil module 73 and the second magnetic clasp 81 on the frame module 60 can be designed according to the positions of the first coil module 20 and the first magnetic clasp 13 in the glasses case 1 provided in the aforementioned embodiment. For example, in the smart glasses 2 shown in Figure 8, the frame module 60 is foldable. When the smart glasses 2 with the frame module 60 folded is placed in the receiving slot 12 and is in the target area 4, the first coil module 20 and the second coil module 73 are opposite each other, and the first magnetic clasp 13 and the second magnetic clasp 81 are opposite each other.
[0100] As one embodiment, the second coil module 73 and the second magnetic clasp 81 are both located at the end of the temple of the frame module 60. Correspondingly, the second control module 71 and the second power module 72 are also located at the end of the temple of the frame module 60, which can better balance the weight of the smart glasses. Moreover, when the smart glasses 2 after the frame module 60 is folded is placed in the target area of the receiving slot 12, the first coil module 20 located at the end of the temple is opposite to the second coil module 73, and the first magnetic clasp 13 is opposite to the second magnetic clasp 81.
[0101] In some embodiments, the smart glasses 2 further includes a second shield 82 corresponding to the second magnetic member 81. The second shield 82 at least partially covers the second magnetic member 81 in a second direction, which is the direction away from the second magnetic member 81 adsorbing the glasses case 1.
[0102] Specifically, the second shielding component 82 is set up on the same principle as the first shielding component 17, and it is used to shield the electromagnetic interference of the second magnetic component 81 on the wireless connection between the second coil module 73 and the glasses case 1.
[0103] In summary, this application provides an eyeglass case 1, smart glasses 2, and a smart glasses set 3. The eyeglass case 1 includes: a case module 10, which includes at least a main body 11 forming a receiving groove 12 and a first magnetic member 13 corresponding to the receiving groove 12. The receiving groove 12 is used to receive the smart glasses 2, and the first magnetic member 13 is used to attract the smart glasses 2 to a target area 4 within the receiving groove 12; a first coil module 20, which is disposed on the main body 11. When the smart glasses 2 is received in the receiving groove 12 and is in the target area 4, the first coil module 20 forms a wireless connection with the smart glasses 2; a first power module, which is disposed on the main body 11 and electrically connected to the first coil module 20; and a first control module, which is disposed on the main body 11 and electrically connected to the first coil module 20. When the first coil module 20 forms a wireless connection with the smart glasses 2, the first power module wirelessly charges the smart glasses 2 through the first coil module 20, and the first control module forms a communication connection with the smart glasses 2 through the first coil module 20.
[0104] Those skilled in the art will understand that all or some of the steps, systems, and apparatuses disclosed above, and their functional modules / units, can be implemented as software, firmware, hardware, or suitable combinations thereof. In hardware embodiments, the division between functional modules / units mentioned above does not necessarily correspond to the division of physical components; for example, a physical component may have multiple functions, or a function or step may be performed collaboratively by several physical components. Some or all physical components may be implemented as software executed by a processor, such as a central processing unit, digital signal processor, or microprocessor, or as hardware, or as setup circuitry, such as dedicated setup circuitry. Such software can be distributed on a computer-readable medium, which may include computer storage media (or non-transitory media) and communication media (or transient media).
[0105] It should be understood that the terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the scope of the application. Unless otherwise expressly specified and limited, the terms "installed," "connected," and "linked" should be interpreted broadly, for example, referring to a fixed connection, a detachable connection, or an integral connection; a mechanical connection or an electrical connection; a direct connection or an indirect connection via an intermediate medium; or a connection within two elements. Those skilled in the art will understand the specific meaning of the above terms in this application based on the specific circumstances. As used in this specification and the appended claims, unless the context clearly indicates otherwise, the singular forms "a," "an," and "the" are intended to include the plural forms.
[0106] It should also be understood that the term "and / or" as used in this specification and the appended claims refers to any combination of one or more of the associated listed items and all possible combinations, and includes such combinations. It should be noted that, herein, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or system that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or system.
Claims
1. An eyeglasses case, the eyeglasses case comprising: The box module includes at least a main body forming a receiving groove and a first magnetic suction member corresponding to the receiving groove. The receiving groove is used to receive smart glasses, and the first magnetic suction member is used to attract the smart glasses to a target area within the receiving groove. A first coil module is disposed in the main body, and when the smart glasses are housed in the receiving slot and located in the target area, the first coil module forms a wireless connection with the smart glasses. A first power supply module is disposed on the main body and electrically connected to the first coil module; A first control module is disposed on the main body and electrically connected to the first coil module; Specifically, when the first coil module and the smart glasses form a wireless connection, the first power module wirelessly charges the smart glasses through the first coil module, and the first control module forms a communication connection with the smart glasses through the first coil module.
2. The eyeglass case as described in claim 1, wherein, The first magnetic suction component is disposed at the magnetic suction position on the inner wall of the receiving groove, and the first coil module is opposite to the coil connection position on the inner wall of the receiving groove; The magnetic attraction position and the coil connection position are two different positions that are spaced apart.
3. The eyeglass case as described in claim 2, wherein, The box module also includes a first shielding member corresponding to the magnetic position. The first shielding member at least partially covers the first magnetic member in a first direction, which is the direction away from the first magnetic member that attracts the smart glasses. The first shielding component is used to shield the first magnetic component from interference with the wireless connection between the first coil module and the smart glasses.
4. The eyeglass case as described in claim 3, wherein, The first magnetic attractor and the first shield are at least partially embedded in the main body.
5. The eyeglass case as described in claim 4, wherein, The distance between the first magnetic component and the first coil module is less than 2cm.
6. The eyeglass case as claimed in claim 2, wherein, The magnetic suction position is located on the first side of the inner wall of the receiving groove, and the first coil module is disposed on the second side of the inner wall of the receiving groove, and the second side is different from the first side.
7. The eyeglass case as claimed in claim 1, wherein, The distance between the first magnetic component and the first coil module is greater than 1 cm.
8. The eyeglass case as described in any one of claims 1-5, wherein, The receiving slot has an opening, and the box module further includes a cover corresponding to the opening and an opening detection component. The cover is movably connected to the main body and is used to close the opening. The opening detection component is disposed on at least one of the main body and the cover and is electrically connected to the first control module. The opening detection component is used to detect the opening and closing state of the opening, generate a detection signal corresponding to the opening and closing state of the opening, and transmit the detection signal to the first control module. The first control module is also used to perform an operation corresponding to the opening and closing state of the opening in response to the detection signal.
9. The eyeglass case as described in any one of claims 1-5, wherein, The glasses case also includes a display component disposed on the outside of the case module and electrically connected to the first control module. The display component is used to display the power information of the first power module and / or the smart glasses.
10. The smart glasses kit as described in claims 1-5, characterized in that, The first magnetic element is fully embedded in the main body.
11. The smart glasses kit as described in claims 1-5, characterized in that, The first shielding element is completely embedded in the main body.
12. The smart glasses kit as described in claim 5, characterized in that, The first coil module is completely embedded in the main body.
13. A smart glasses kit, the smart glasses kit comprising a glasses case and smart glasses adapted to the glasses case; in, The eyeglass case is the eyeglass case as described in any one of claims 1-12.
14. The smart glasses kit as described in claim 13, characterized in that, The smart glasses include at least: A frame module is used to provide wearing support so that a target object can wear the smart glasses; The display module is connected and adapted to the frame module and used to display the target image; The second control module is connected to the display module and is used to control the image displayed by the display module; The second power supply module is connected to the display module and the second control module, and is used to supply power to the display module and the second control module; The second coil module is disposed in the frame module and is used to form a wireless connection with the glasses case when the smart glasses are placed in the target area inside the glasses case. The second magnetic component is disposed on the frame module and is used to magnetically engage with the glasses case to allow the smart glasses to be attached to the target area inside the glasses case; Specifically, when the second coil module and the glasses case are wirelessly connected, the second power module wirelessly charges the glasses case through the second coil module, and the second control module communicates with the glasses case through the second coil module.
15. The smart glasses kit as described in claim 14, characterized in that, The smart glasses also include a second shielding member corresponding to the second magnetic member. The second shielding member at least partially covers the second magnetic member in a second direction, which is the direction away from the second magnetic member from which the glasses case is attached.
16. The smart glasses kit as described in claim 14, characterized in that, The frame module includes temples, and the second coil module and the second magnetic component are both disposed at the ends of the temples.
17. The smart glasses as described in claim 14, characterized in that, The frame module includes temples, and the second control module and the second power module are disposed at the ends of the temples.
18. The smart glasses as described in claim 14, characterized in that, The first coil module and the second coil module in the glasses case are mutually compatible NFC coils or mutually compatible RFID coils, so that when the smart glasses are housed in the housing cavity, the first coil module and the second coil module form a wireless connection.
19. The smart glasses kit as described in claim 14, characterized in that, Both the first and second magnetic components of the box module are magnets.
20. The smart glasses kit as described in claim 19, characterized in that, When the smart glasses are housed in the receiving cavity, the N pole of the first magnetic clasp is opposite to the S pole of the second magnetic clasp, or the S pole of the first magnetic clasp is opposite to the N pole of the second magnetic clasp.
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