Self-generating electrochromic dimming glasses

By integrating photovoltaic modules into the dimming glasses to charge the battery device, the problem of short battery life caused by small battery capacity is solved, and the long battery life and convenient use of self-generated electro-luminescent dimming glasses are achieved.

CN223390005UActive Publication Date: 2025-09-26NINGBO HUALING OPTICAL TECH CO LTD
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Patent Information

Application Number
CN202423029336.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-09
Publication Date
2025-09-26
Estimated Expiration
2034-12-09

AI Technical Summary

Technical Problem

The battery capacity of existing dimming glasses is small, resulting in short battery life and the need for frequent external charger charging, which is inconvenient to use.

Method used

Photovoltaic modules are integrated into dimming glasses to charge battery devices, provide power support, and reduce dependence on external chargers.

Benefits of technology

The battery life of the dimming glasses is extended, the frequency of external charging is reduced, the convenience of use is improved, self-sufficiency in well-lit environments and slow charging in low-light environments are achieved, and the battery life is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a pair of self-generating electrochromic dimming glasses which comprises a glasses frame, glasses legs, electrochromic lenses, a control device, a battery device and a photovoltaic module, wherein the glasses legs are connected to the glasses frame, the electrochromic lenses are connected to the glasses frame, the control device is installed in the glasses legs, the electrochromic lenses are connected with the control device, and the battery device is connected with the control device and used for supplying power to the control device and the electrochromic lenses. The photovoltaic module is mounted on the outward end surface of the glasses leg, and the photovoltaic module is connected with the control device so as to charge the battery device through the control device. According to the utility model, through photovoltaic charging, the endurance time can be prolonged, the charging frequency of an external charger can be reduced, and the use is more convenient.
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Description

Technical Field

[0001] The utility model relates to a pair of self-generated electrochromic dimmer glasses. Background Art

[0002] Currently, dimming glasses are glasses that can adjust the color of the lenses. In strong sunlight, the color of the lenses can be darkened to protect the eyes from ultraviolet damage. In low-light indoor environments, the color of the lenses can be lightened to obtain a clear field of vision. The lenses in the dimming glasses are electrochromic lenses. The depth of their color can be adjusted by turning the electrochromic lenses on and off. Therefore, batteries need to be provided in the dimming glasses to power the electrochromic lenses. For example, the Chinese patent with announcement number CN111158167A discloses a pair of dimmable color-changing glasses, in which batteries are provided in the temples to power the electrochromic lenses. However, due to the limitations of battery size and weight, the battery capacity is small, which in turn leads to the problem of short battery life in some existing dimming glasses. In addition, they need to be frequently charged with an external charger, which is inconvenient to use. Utility Model Content

[0003] The technical problem to be solved by the utility model is to overcome the defects of the prior art and provide a self-generating electrochromic dimmer glasses, which can be charged through photovoltaics, can extend the battery life, can reduce the frequency of charging with an external charger, and is more convenient to use.

[0004] In order to solve the above technical problems, the technical solution of the utility model is: a self-generating electrochromic dimmer glasses, comprising:

[0005] Frames;

[0006] temples, the temples being connected to the frame;

[0007] an electrochromic lens connected to the frame;

[0008] A control device, the control device being installed in the temple, and the electrochromic lens being connected to the control device;

[0009] a battery device connected to the control device and used to power the control device and the electrochromic lens;

[0010] A photovoltaic component is mounted on an outward end surface of the temple, and the photovoltaic component is connected to the control device so as to charge the battery device through the control device.

[0011] Furthermore, the frame is connected to two temples, namely a first temple and a second temple;

[0012] The frame is connected to two electrochromic lenses, namely a first electrochromic lens and a second electrochromic lens;

[0013] The control device includes a main control board and an auxiliary control board;

[0014] The main control board is installed in the first temple, the auxiliary control board is installed in the second temple, and the main control board is connected to the auxiliary control board through a wire;

[0015] The first electrochromic lens is connected to the main control board, and the second electrochromic lens is connected to the auxiliary control board;

[0016] The battery device is connected to at least one of the main control board and the auxiliary control board and is used to power the main control board, the auxiliary control board, the first electrochromic lens and the second electrochromic lens;

[0017] The photovoltaic assembly is connected to at least one of the main control board and the auxiliary control board to charge the battery device.

[0018] Furthermore, the first electrochromic lens is connected to the main control board via a first flexible circuit board, and the second electrochromic lens is connected to the auxiliary control board via a second flexible circuit board.

[0019] Further providing a specific structure of the mirror frame, wherein the mirror frame is provided with a first through hole and a second through hole;

[0020] The front end surface of the frame is provided with a first lens groove and a second lens groove facing forward, the first electrochromic lens is installed in the first lens groove, and the second electrochromic lens is installed in the second lens groove;

[0021] The first flexible circuit board is connected to the first lens, and the first flexible circuit board passes through the first through hole and then extends into the first temple to be connected to the main control board;

[0022] The second flexible circuit board is connected to the second lens, and the second flexible circuit board passes through the second through hole and then extends into the second temple to be connected to the auxiliary control board;

[0023] The mirror frame is provided with a wire trough, and the wires are installed in the wire trough;

[0024] One end of the wire extends from the wire groove into the first temple and is connected to the main control board;

[0025] The other end of the wire extends from the wire groove into the second temple and is connected to the auxiliary control board;

[0026] The mirror frame is connected with a main cover plate for covering the cable groove.

[0027] Another specific structure of the spectacles frame is further provided, wherein a first lens slot, a second lens slot, and a cable groove are provided on a rear end portion of the spectacles frame, and the cable groove is provided above the first lens slot and the second lens slot.

[0028] The first electrochromic lens is installed in the first lens groove, the second electrochromic lens is installed in the second lens groove, and the wire is installed in the cable groove;

[0029] The mirror frame is connected to a main cover plate, and the upper edge of the main cover plate is used to cover the cable trough;

[0030] The main cover is provided with a first retaining ring portion and a second retaining ring portion, wherein the inner edge of the first retaining ring portion is used to abut against the outer edge of the first electrochromic lens in the first lens groove, thereby confining the first electrochromic lens in the first lens groove, and the inner edge of the second retaining ring portion is used to abut against the outer edge of the second electrochromic lens in the second lens groove, thereby confining the second electrochromic lens in the second lens groove;

[0031] One end of the main cover is provided with a first through hole, and the other end of the main cover is provided with a second through hole;

[0032] One end of the wire passes through the first through hole from the wire groove and extends into the first temple and is connected to the main control board;

[0033] The other end of the wire passes through the second through hole from the wire groove and extends into the second temple and is connected to the auxiliary control board;

[0034] The first flexible circuit board is connected to the first lens, and the first flexible circuit board passes through the first through hole and then extends into the first temple to be connected to the main control board;

[0035] The second flexible circuit board is connected to the second lens. The second flexible circuit board passes through the second through hole and then extends into the second temple to be connected to the auxiliary control board.

[0036] Furthermore, the main control board is connected to a first connector for connecting to the first flexible circuit board, and the auxiliary control board is connected to a second connector for connecting to the second flexible circuit board;

[0037] And / or a switch button is connected to the main control panel, and the switch button is exposed on the first temple;

[0038] And / or a charging port is connected to the main control board, and the charging port is exposed on the first temple.

[0039] Further providing a specific structure of the battery device, the battery device includes a first battery module and a second battery module;

[0040] The first battery module is installed in the first temple and connected to the main control board;

[0041] The second battery module is installed in the second temple and is connected to the auxiliary control board.

[0042] Further providing a specific structure of the photovoltaic assembly, the photovoltaic assembly includes at least one first photovoltaic panel and at least one second photovoltaic panel;

[0043] The first photovoltaic panel is mounted on an outward end surface of the first temple, the first photovoltaic panel is connected to the main control board and is used to charge the first battery module and the second battery module through the main control board;

[0044] The second photovoltaic panel is mounted on an outward end surface of the second temple. The second photovoltaic panel is connected to the auxiliary control board and is used to charge the first battery module and the second battery module through the auxiliary control board.

[0045] Furthermore, the self-generating electrochromic dimmer glasses further include a first side cover plate and a second side cover plate;

[0046] A first mounting slot is provided in the first temple, the main control board and the first battery module are both installed in the first mounting slot, and the first side cover is connected to the first temple and is used to cover the first mounting slot;

[0047] A second mounting slot is provided in the second temple, the auxiliary control board and the second battery module are both installed in the second mounting slot, and the second side cover is connected to the second temple and is used to cover the second mounting slot;

[0048] A first groove is provided on the outward end surface of the first temple, and the first photovoltaic panel is embedded in the first groove. A second groove is provided on the outward end surface of the second temple, and the second photovoltaic panel is embedded in the second groove.

[0049] By adopting the above technical solution, in the embodiment of the present application, the control device and the electrochromic lenses can be powered by the battery device. When used in a well-lit environment, the photovoltaic module can charge the battery device, thereby extending operating life, reducing the frequency of charging with an external charger, and increasing convenience when used outdoors. When used in a well-lit environment, the electrochromic lenses can be essentially self-sufficient and have unlimited battery life. When used in a low-light environment, they can be slowly charged to extend battery life. When not in use, the self-generating electrochromic lenses can be placed in light conditions to charge themselves. BRIEF DESCRIPTION OF THE DRAWINGS

[0050] Figure 1 This is an exploded view of the assembly of the self-generating electrochromic dimmer glasses in the first embodiment of the present invention;

[0051] Figure 2 This is a structural diagram of the mirror frame in Example 1 of the present utility model;

[0052] Figure 3 This is an exploded view of the assembly of the first temple, main control board, first photovoltaic panel, first battery module and first side cover of the utility model;

[0053] Figure 4 This is an exploded view of the assembly of the self-generating electrochromic dimmer glasses in the second embodiment of the present invention;

[0054] Figure 5 This is a structural diagram of the mirror frame and the main cover plate when they are disassembled in the second embodiment of the present invention;

[0055] Figure 6 This is a structural diagram of the mirror frame and the main cover plate when assembled in the second embodiment of the present utility model;

[0056] Figure 7 This is a cross-sectional view of the mirror frame and the main cover in the second embodiment of the present invention. DETAILED DESCRIPTION

[0057] In order to make the contents of the present invention more clearly understood, the present invention is further described in detail below based on specific embodiments in conjunction with the accompanying drawings.

[0058] Example 1

[0059] like Figures 1 to 3 As shown, a self-generated electrochromic dimmer glasses, comprising:

[0060] Frame 1;

[0061] Temples, which are connected to the frame 1;

[0062] Electrochromic lenses, the electrochromic lenses are connected to the frame 1;

[0063] A control device, the control device being installed in the temple, and the electrochromic lens being connected to the control device;

[0064] a battery device connected to the control device and used to power the control device and the electrochromic lens;

[0065] A photovoltaic component is mounted on an outward-facing end surface of the temple, and the photovoltaic component is connected to the control device so that the battery device can be charged by the control device. Specifically, in the embodiment of the present application, the control device and the electrochromic lenses can be powered by the battery device. When used in an environment with sufficient light, the battery device can be charged by the photovoltaic component, thereby increasing the working battery life, reducing the frequency of charging with an external charger, and making it more convenient for outdoor use. When used in an environment with sufficient light, it can basically achieve self-sufficiency and unlimited battery life. When used in a low-light environment, it can be slowly charged to increase the battery life. When not in use, the self-generating electrochromic glasses can also be placed in light conditions to charge themselves.

[0066] like Figures 1 to 3 As shown, the frame 1 is connected to two temples, namely a first temple 2 and a second temple 3;

[0067] The frame 1 is connected to two electrochromic lenses, namely a first electrochromic lens 4 and a second electrochromic lens 5;

[0068] The control device includes a main control board 6 and an auxiliary control board 7;

[0069] The main control board 6 is installed in the first temple 2, the auxiliary control board 7 is installed in the second temple 3, and the main control board 6 is connected to the auxiliary control board 7 through a wire 8;

[0070] The first electrochromic lens 4 is connected to the main control board 6, and the second electrochromic lens 5 is connected to the auxiliary control board 7;

[0071] The battery device is connected to at least one of the main control board 6 and the auxiliary control board 7 and is used to supply power to the main control board 6, the auxiliary control board 7, the first electrochromic lens 4 and the second electrochromic lens 5;

[0072] The photovoltaic assembly is connected to at least one of the main control board 6 and the auxiliary control board 7 to charge the battery device. Specifically, the main control board 6 and the auxiliary control board 7 each have integrated charging control circuits, and both are PCBs. More specifically, the battery device can power the main control board 6, the auxiliary control board 7, the first electrochromic lens 4, and the second electrochromic lens 5. In an environment with sufficient sunlight, the photovoltaic assembly can charge the battery device, thereby significantly improving operating life.

[0073] like Figures 1 to 3 As shown, the first electrochromic lens 4 is connected to the main control board 6 via a first flexible circuit board 9, and the second electrochromic lens 5 is connected to the auxiliary control board 7 via a second flexible circuit board 10; specifically, the specific structures of the first flexible circuit board 9 and the second flexible circuit board 10 are existing technologies well known to those skilled in the art and are not described in detail in this embodiment.

[0074] like Figures 1 to 3 As shown, the mirror frame 1 is provided with a first through hole 11 and a second through hole 12;

[0075] The front end surface of the frame 1 is provided with a first lens groove 13 and a second lens groove 14 facing forward, the first electrochromic lens 4 is installed in the first lens groove 13, and the second electrochromic lens 5 is installed in the second lens groove 14;

[0076] The first flexible circuit board 9 is connected to the first lens. The first flexible circuit board 9 passes through the first through hole 11 and then extends into the first temple 2 and is connected to the main control board 6.

[0077] The second flexible circuit board 10 is connected to the second lens. The second flexible circuit board 10 passes through the second through hole 12 and extends into the second temple 3 to be connected to the auxiliary control board 7. Specifically, the first electrochromic lens 4 can be bonded in the first lens groove 13, and the second electrochromic lens 5 can be bonded in the second lens groove 14.

[0078] like Figures 1 to 3 As shown, the frame 1 is provided with a cable groove 15, and the wires 8 are installed in the cable groove 15;

[0079] One end of the wire 8 extends from the wire groove 15 into the first temple 2 and is connected to the main control board 6;

[0080] The other end of the wire 8 extends from the wire groove 15 into the second temple 3 and is connected to the auxiliary control board 7;

[0081] The frame 1 is connected to a main cover plate 16 for covering the cable groove 15; specifically, the cable groove 15 is provided at the upper end portion of the rear end face of the frame 1, and the main cover plate 16 can be snapped into the cable groove 15. The wires 8 in the cable groove 15 can pass through the gap between the main cover plate 16 and the frame 1 and then extend into the first temple 2 and the second temple 3.

[0082] like Figures 1 to 3 As shown, the main control board 6 is connected to a first connector 19 for connecting to the first flexible circuit board 9, and the auxiliary control board 7 is connected to a second connector 20 for connecting to the second flexible circuit board 10;

[0083] The main control panel 6 is connected to a switch button 21, and the switch button 21 is exposed on the first temple 2;

[0084] The main control board 6 is connected to a charging port 22 , and the charging port 22 is exposed on the first temple 2 .

[0085] like Figures 1 to 3 As shown, the battery device may include a first battery module 23 and a second battery module 24;

[0086] The first battery module 23 is installed in the first temple 2 and connected to the main control board 6;

[0087] The second battery module 24 is installed in the second temple 3 and connected to the auxiliary control board 7. Specifically, the first battery module 23 and the second battery module 24 can power the main control board 6, the auxiliary control board 7, the first electrochromic lens 4, and the second electrochromic lens 5. An external charger can charge the first battery module 23 and the second battery module 24 through the charging port 22, which can be a Type-C port.

[0088] like Figures 1 to 3 As shown, the photovoltaic assembly may include at least one first photovoltaic panel 25 and at least one second photovoltaic panel 26;

[0089] The first photovoltaic panel 25 is mounted on an outward end surface of the first temple 2, and the first photovoltaic panel 25 is connected to the main control board 6 and is used to charge the first battery module 23 and the second battery module 24 through the main control board 6;

[0090] The second photovoltaic panel 26 is installed on the outward end surface of the second temple 3, and the second photovoltaic panel 26 is connected to the auxiliary control panel 7 and is used to charge the first battery module 23 and the second battery module 24 through the auxiliary control panel 7; specifically, in an environment with sufficient light, the first battery module 23 and the second battery module 24 can be charged through the first photovoltaic panel 25 and the second photovoltaic panel 26, thereby improving the working battery life, reducing the frequency of charging with an external charger, and being more convenient when used outdoors.

[0091] like Figures 1 to 3 As shown, the self-generating electrochromic dimmer glasses may further include a first side cover plate 27 and a second side cover plate 28;

[0092] A first mounting slot 29 is provided in the first temple 2, and the main control board 6 and the first battery module are both installed in the first mounting slot 29. The first side cover 27 is connected to the first temple 2 and is used to cover the first mounting slot 29.

[0093] A second mounting slot 30 is provided in the second temple 3, and the auxiliary control board 7 and the second battery module are both installed in the second mounting slot 30. The second side cover 28 is connected to the second temple 3 and is used to cover the second mounting slot 30;

[0094] A first groove 31 is provided on an outward end surface of the first temple 2, and the first photovoltaic panel 25 is embedded in the first groove 31;

[0095] A second groove is provided on the outward end surface of the second temple 3, and the second photovoltaic panel 26 is embedded in the second groove; specifically, the first photovoltaic panel 25 can be bonded to the first temple 2, and the second photovoltaic panel 26 can be bonded to the second temple 3.

[0096] Example 2

[0097] like Figures 3 to 7 As shown, a self-generated electrochromic dimmer glasses, comprising:

[0098] Frame 1;

[0099] Temples, which are connected to the frame 1;

[0100] Electrochromic lenses, the electrochromic lenses are connected to the frame 1;

[0101] A control device, the control device being installed in the temple, and the electrochromic lens being connected to the control device;

[0102] a battery device connected to the control device and used to power the control device and the electrochromic lens;

[0103] A photovoltaic component is mounted on an outward-facing end surface of the temple, and the photovoltaic component is connected to the control device so that the battery device can be charged by the control device. Specifically, in the embodiment of the present application, the control device and the electrochromic lenses can be powered by the battery device. When used in an environment with sufficient light, the battery device can be charged by the photovoltaic component, thereby increasing the working battery life, reducing the frequency of charging with an external charger, and making it more convenient for outdoor use. When used in an environment with sufficient light, it can basically achieve self-sufficiency and unlimited battery life. When used in a low-light environment, it can be slowly charged to increase the battery life. When not in use, the self-generating electrochromic glasses can also be placed in light conditions to charge themselves.

[0104] like Figures 3 to 7 As shown, the frame 1 is connected to two temples, namely a first temple 2 and a second temple 3;

[0105] The frame 1 is connected to two electrochromic lenses, namely a first electrochromic lens 4 and a second electrochromic lens 5;

[0106] The control device includes a main control board 6 and an auxiliary control board 7;

[0107] The main control board 6 is installed in the first temple 2, the auxiliary control board 7 is installed in the second temple 3, and the main control board 6 is connected to the auxiliary control board 7 through a wire 8;

[0108] The first electrochromic lens 4 is connected to the main control board 6, and the second electrochromic lens 5 is connected to the auxiliary control board 7;

[0109] The battery device is connected to at least one of the main control board 6 and the auxiliary control board 7 and is used to supply power to the main control board 6, the auxiliary control board 7, the first electrochromic lens 4 and the second electrochromic lens 5;

[0110] The photovoltaic assembly is connected to at least one of the main control board 6 and the auxiliary control board 7 to charge the battery device. Specifically, the main control board 6 and the auxiliary control board 7 each have integrated charging control circuits, and both are PCBs. More specifically, the battery device can power the main control board 6, the auxiliary control board 7, the first electrochromic lens 4, and the second electrochromic lens 5. In an environment with sufficient sunlight, the photovoltaic assembly can charge the battery device, thereby significantly improving operating life.

[0111] like Figures 3 to 7 As shown, the first electrochromic lens 4 is connected to the main control board 6 via a first flexible circuit board 9, and the second electrochromic lens 5 is connected to the auxiliary control board 7 via a second flexible circuit board 10; specifically, the specific structures of the first flexible circuit board 9 and the second flexible circuit board 10 are existing technologies well known to those skilled in the art and are not described in detail in this embodiment.

[0112] like Figures 3 to 7 As shown, the rear end portion of the frame 1 is provided with a first lens groove 13, a second lens groove 14 and a cable groove 15 which are arranged toward the rear. The cable groove 15 is provided above the first lens groove 13 and the second lens groove 14;

[0113] The first electrochromic lens 4 is installed in the first lens groove 13, the second electrochromic lens 5 is installed in the second lens groove 14, and the wire 8 is installed in the cable groove 15;

[0114] The mirror frame 1 is connected to a main cover plate 16 , and the upper edge of the main cover plate 16 is used to cover the cable groove 15 ;

[0115] The main cover plate 16 is provided with a first retaining ring portion 17 and a second retaining ring portion 18. The inner edge of the first retaining ring portion 17 is used to abut against the outer edge of the first electrochromic lens 4 in the first lens groove 13, thereby confining the first electrochromic lens 4 in the first lens groove 13. The inner edge of the second retaining ring portion 18 is used to abut against the outer edge of the second electrochromic lens 5 in the second lens groove 14, thereby confining the second electrochromic lens 5 in the second lens groove 14.

[0116] A first through hole 11 is formed at one end of the main cover plate 16, and a second through hole 12 is formed at the other end of the main cover plate 16;

[0117] One end of the wire 8 passes through the first through hole 11 from the wire groove 15 and extends into the first temple 2 and is connected to the main control board 6;

[0118] The other end of the wire 8 passes through the second through hole 12 from the wire groove 15 and extends into the second temple 3 and is connected to the auxiliary control board 7;

[0119] The first flexible circuit board 9 is connected to the first lens. The first flexible circuit board 9 passes through the first through hole 11 and then extends into the first temple 2 and is connected to the main control board 6.

[0120] The second flexible circuit board 10 is connected to the second lens. The second flexible circuit board 10 passes through the second through hole 12 and then extends into the second temple 3, where it is connected to the auxiliary control board 7. Specifically, the main cover plate 16 can be snapped or bonded to the frame 1. In some embodiments, the first flexible circuit board 9, the second flexible circuit board 10, and the wires 8 in the cable duct 15 can also pass through the gap between the main cover plate 16 and the frame 1 and then extend into the first temple 2 and the second temple 3.

[0121] like Figures 3 to 7 As shown, the main control board 6 is connected to a first connector 19 for connecting to the first flexible circuit board 9, and the auxiliary control board 7 is connected to a second connector 20 for connecting to the second flexible circuit board 10;

[0122] The main control panel 6 is connected to a switch button 21, and the switch button 21 is exposed on the first temple 2;

[0123] The main control board 6 is connected to a charging port 22 , and the charging port 22 is exposed on the first temple 2 .

[0124] like Figures 3 to 7 As shown, the battery device may include a first battery module 23 and a second battery module 24;

[0125] The first battery module 23 is installed in the first temple 2 and connected to the main control board 6;

[0126] The second battery module 24 is installed in the second temple 3 and connected to the auxiliary control board 7. Specifically, the first battery module 23 and the second battery module 24 can power the main control board 6, the auxiliary control board 7, the first electrochromic lens 4, and the second electrochromic lens 5. An external charger can charge the first battery module 23 and the second battery module 24 through the charging port 22, which can be a Type-C port.

[0127] like Figures 3 to 7 As shown, the photovoltaic assembly may include at least one first photovoltaic panel 25 and at least one second photovoltaic panel 26;

[0128] The first photovoltaic panel 25 is mounted on an outward end surface of the first temple 2, and the first photovoltaic panel 25 is connected to the main control board 6 and is used to charge the first battery module 23 and the second battery module 24 through the main control board 6;

[0129] The second photovoltaic panel 26 is installed on the outward end surface of the second temple 3, and the second photovoltaic panel 26 is connected to the auxiliary control panel 7 and is used to charge the first battery module 23 and the second battery module 24 through the auxiliary control panel 7; specifically, in an environment with sufficient light, the first battery module 23 and the second battery module 24 can be charged through the first photovoltaic panel 25 and the second photovoltaic panel 26, thereby improving the working battery life, reducing the frequency of charging with an external charger, and being more convenient when used outdoors.

[0130] like Figures 3 to 7 As shown, the self-generating electrochromic dimmer glasses may further include a first side cover plate 27 and a second side cover plate 28;

[0131] A first mounting slot 29 is provided in the first temple 2, and the main control board 6 and the first battery module are both installed in the first mounting slot 29. The first side cover 27 is connected to the first temple 2 and is used to cover the first mounting slot 29.

[0132] A second mounting slot 30 is provided in the second temple 3, and the auxiliary control board 7 and the second battery module are both installed in the second mounting slot 30. The second side cover 28 is connected to the second temple 3 and is used to cover the second mounting slot 30;

[0133] A first groove 31 is provided on an outward end surface of the first temple 2, and the first photovoltaic panel 25 is embedded in the first groove 31;

[0134] A second groove is provided on the outward end surface of the second temple 3, and the second photovoltaic panel 26 is embedded in the second groove; specifically, the first photovoltaic panel 25 can be bonded to the first temple 2, and the second photovoltaic panel 26 can be bonded to the second temple 3.

[0135] In summary, in the embodiments of the present application, the control device and the electrochromic lenses can be powered by the battery device. When used in a well-lit environment, the photovoltaic module can charge the battery device, thereby extending operating life, reducing the need for external chargers, and making outdoor use more convenient. When used in a well-lit environment, the glasses are essentially self-sufficient, achieving unlimited battery life. When used in a low-light environment, they can be slowly charged to extend battery life. When not in use, the self-generating electrochromic glasses can be placed in light conditions for self-charging.

[0136] The specific embodiments described above further illustrate the technical problems, technical solutions and beneficial effects solved by the present invention. It should be understood that the above are only specific embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A self-generating electrochromic dimmer glasses, characterized in that: include: Frame (1); Temples, the temples being connected to the frame (1); An electrochromic lens connected to the lens frame (1); A control device, the control device being installed in the temple, and the electrochromic lens being connected to the control device; a battery device connected to the control device and used to power the control device and the electrochromic lens; A photovoltaic component is mounted on an outward end surface of the temple, and the photovoltaic component is connected to the control device so as to charge the battery device through the control device.

2. The self-generating electrochromic dimmer glasses according to claim 1, characterized in that: The frame (1) is connected to two temples, namely a first temple (2) and a second temple (3); The frame (1) is connected to two electrochromic lenses, namely a first electrochromic lens (4) and a second electrochromic lens (5); The control device comprises a main control panel (6) and an auxiliary control panel (7); The main control board (6) is installed in the first temple (2), the auxiliary control board (7) is installed in the second temple (3), and the main control board (6) is connected to the auxiliary control board (7) via a wire (8); The first electrochromic lens (4) is connected to the main control board (6), and the second electrochromic lens (5) is connected to the auxiliary control board (7); The battery device is connected to at least one of the main control board (6) and the auxiliary control board (7) and is used to supply power to the main control board (6), the auxiliary control board (7), the first electrochromic lens (4) and the second electrochromic lens (5); The photovoltaic assembly is connected to at least one of the main control board (6) and the auxiliary control board (7) to charge the battery device.

3. The self-generating electrochromic dimmer glasses according to claim 2, characterized in that: The first electrochromic lens (4) is connected to the main control board (6) via a first flexible circuit board (9), and the second electrochromic lens (5) is connected to the auxiliary control board (7) via a second flexible circuit board (10).

4. The self-generating electrochromic dimmer glasses according to claim 3, characterized in that: The mirror frame (1) is provided with a first through hole (11) and a second through hole (12); A first lens groove (13) and a second lens groove (14) are provided on the front end surface of the frame (1), the first electrochromic lens (4) being mounted in the first lens groove (13), and the second electrochromic lens (5) being mounted in the second lens groove (14); The first flexible circuit board (9) is connected to the first lens, and the first flexible circuit board (9) passes through the first through hole (11) and then extends into the first temple (2) to be connected to the main control board (6); The second flexible circuit board (10) is connected to the second lens, and the second flexible circuit board (10) passes through the second through hole (12) and then extends into the second temple (3) to be connected to the auxiliary control board (7).

5. The self-generating electrochromic dimmer glasses according to claim 4, characterized in that: The mirror frame (1) is provided with a wire groove (15), and the wire (8) is installed in the wire groove (15); One end of the wire (8) extends from the wire slot (15) into the first temple (2) and is connected to the main control board (6); The other end of the wire (8) extends from the wire slot (15) into the second temple (3) and is connected to the auxiliary control board (7); The mirror frame (1) is connected to a main cover plate (16) for covering the cable groove (15).

6. The self-generating electrochromic dimmer glasses according to claim 3, characterized in that: A first lens groove (13), a second lens groove (14) and a cable groove (15) are provided on the rear end of the lens frame (1), and the cable groove (15) is provided above the first lens groove (13) and the second lens groove (14); The first electrochromic lens (4) is installed in the first lens groove (13), the second electrochromic lens (5) is installed in the second lens groove (14), and the wire (8) is installed in the cable groove (15); The mirror frame (1) is connected to a main cover plate (16), and the upper edge of the main cover plate (16) is used to cover the cable groove (15); The main cover plate (16) is provided with a first retaining ring portion (17) and a second retaining ring portion (18), wherein the inner edge of the first retaining ring portion (17) is used to abut against the outer edge of the first electrochromic lens (4) in the first lens groove (13) so as to confine the first electrochromic lens (4) in the first lens groove (13), and the inner edge of the second retaining ring portion (18) is used to abut against the outer edge of the second electrochromic lens (5) in the second lens groove (14) so ​​as to confine the second electrochromic lens (5) in the second lens groove (14); One end of the main cover plate (16) is provided with a first through hole (11), and the other end of the main cover plate (16) is provided with a second through hole (12); One end of the wire (8) passes through the first through hole (11) from the wire slot (15) and extends into the first temple (2) and is connected to the main control board (6); The other end of the wire (8) passes through the second through hole (12) from the wire slot (15) and extends into the second temple (3) and is connected to the auxiliary control board (7); The first flexible circuit board (9) is connected to the first lens, and the first flexible circuit board (9) passes through the first through hole (11) and then extends into the first temple (2) to be connected to the main control board (6); The second flexible circuit board (10) is connected to the second lens, and the second flexible circuit board (10) passes through the second through hole (12) and then extends into the second temple (3) to be connected to the auxiliary control board (7).

7. The self-generating electrochromic dimmer glasses according to claim 3, characterized in that: The main control board (6) is connected to a first connector (19) for connecting to the first flexible circuit board (9), and the auxiliary control board (7) is connected to a second connector (20) for connecting to the second flexible circuit board (10); and / or a switch button (21) is connected to the main control panel (6), and the switch button (21) is exposed on the first temple (2); And / or the main control panel (6) is connected to a charging interface (22), and the charging interface (22) is exposed on the first temple (2).

8. The self-generating electrochromic dimmer glasses according to claim 2, characterized in that: The battery device includes a first battery module (23) and a second battery module (24); The first battery module (23) is installed in the first temple (2) and is connected to the main control board (6); The second battery module (24) is installed in the second temple (3) and is connected to the auxiliary control board (7).

9. The self-generating electrochromic dimmer glasses according to claim 8, characterized in that: The photovoltaic assembly includes at least one first photovoltaic panel (25) and at least one second photovoltaic panel (26); The first photovoltaic panel (25) is mounted on an outward end surface of the first temple (2), the first photovoltaic panel (25) is connected to the main control board (6) and is used to charge the first battery module (23) and the second battery module (24) through the main control board (6); The second photovoltaic panel (26) is mounted on an outward end surface of the second temple (3), and the second photovoltaic panel (26) is connected to the auxiliary control board (7) and is used to charge the first battery module (23) and the second battery module (24) through the auxiliary control board (7).

10. The self-generating electrochromic dimmer glasses according to claim 9, characterized in that: Also includes a first side cover plate (27) and a second side cover plate (28); A first mounting slot (29) is provided in the first temple (2), the main control board (6) and the first battery module are both mounted in the first mounting slot (29), and the first side cover (27) is connected to the first temple (2) and is used to cover the first mounting slot (29); A second mounting groove (30) is provided in the second temple (3), the auxiliary control board (7) and the second battery module are both mounted in the second mounting groove (30), and the second side cover (28) is connected to the second temple (3) and is used to cover the second mounting groove (30); A first groove (31) is provided on an outward end surface of the first temple (2), and the first photovoltaic panel (25) The second temple (3) is embedded in the first groove (31), and a second groove is provided on an outward end surface of the second temple (3). The second photovoltaic panel (26) is embedded in the second groove.

Citation Information

Patent Citations

  • Dimmable photochromic glasses

    CN111158167A