Glasses
By designing slidable energy storage parts in the temples in contact with the lens conductor for power supply, the poor contact problem caused by wear of temples is solved, and stable power supply and extended service life are achieved.
Patent Information
- Application Number
- CN202422116033.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-29
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2034-08-29
AI Technical Summary
In existing functional glasses, wear between electrodes when the temples rotate, resulting in poor contact, affecting service life.
The design temples contain slidable energy storage parts that provide power when deployed, and store protection when folded to reduce wear.
Extend the service life of glasses by stabilizing contact, improve the reliability of lens power supply and the durability of temples.
Smart Images

Figure CN223296234U_ABST
Abstract
Description
Technical Field
[0001] The present disclosure relates to the field of optical technology, and in particular to a pair of glasses. Background Art
[0002] In functional glasses (for example, photochromic sunglasses or interactive glasses such as AR glasses, VR glasses, and MR glasses), it is usually necessary to provide an electrochromic layer in the lenses to meet the specific needs of users. In existing functional glasses, the battery is arranged in the temples with larger space. When the temples are unfolded, the electrodes at the ends of the temples contact the electrodes on the frame that are electrically connected to the lenses, so that the battery supplies power to the lenses through the two electrodes. However, since the two electrodes are respectively fixed to the frame and the temples, when the temples rotate and drive the electrodes fixed to them to contact the electrodes fixed to the frame, the two electrodes will rotate, squeeze, and wear each other, which can easily lead to poor contact and affect the service life of the glasses. Utility Model Content
[0003] The present disclosure provides a pair of glasses to at least solve the above-mentioned problems in the prior art.
[0004] To achieve the above objectives, the present disclosure provides the following technical solution: a pair of glasses, comprising:
[0005] The glasses body comprises a frame, a lens and a first conductor, wherein the lens is connected to the frame, and the first conductor is embedded in the frame and electrically connected to the lens;
[0006] A temple comprises a first temple body, wherein the first temple body comprises a first temple body and a first energy storage component, one end of the first temple body is hinged to the temple and is provided with a receiving groove, wherein the receiving groove extends along the length direction of the first temple body, and the first energy storage component is slidably inserted into the receiving groove; wherein, after the temple is folded, the first energy storage component is driven by an external force to be completely stored in the receiving groove; and after the temple is unfolded, the first energy storage component is driven by an external force to extend out of the receiving groove and abut against the first conductor, so as to supply power to the lens.
[0007] In one embodiment, the first energy storage component includes:
[0008] an energy storage body, the energy storage body being slidably received in the receiving groove;
[0009] The second conductor is connected to one end of the energy storage body facing the mirror frame. The second conductor is electrically connected to the energy storage body and is used to resist the first conductor.
[0010] In one embodiment, an end surface of the first conductor facing the second conductor is adapted to an end surface of the second conductor facing the first conductor.
[0011] In one embodiment, a strip hole is further provided on the main body of the first temple, and the strip hole communicates with the inside and outside of the receiving groove along a direction perpendicular to the extending direction of the receiving groove;
[0012] The first energy storage component further includes a toggle body, which is movably arranged in the strip hole, one end of the toggle body is connected to the energy storage body, and the other end of the toggle body extends out of the strip hole.
[0013] In one embodiment, a threaded hole is further provided on the main body of the first temple, and the threaded hole connects the inside and outside of the accommodating groove along a direction perpendicular to the extension of the accommodating groove. The glasses also include an adjusting body, which is screwed into the threaded hole and is used to press against the energy storage body.
[0014] In one embodiment, a charging socket is further provided on the first temple body, and the charging socket is connected to the inside and outside of the accommodating slot along a direction perpendicular to the extension of the accommodating slot. The first energy storage component also includes a charging connector, and the charging connector is electrically connected to the energy storage body. The position of the charging socket corresponds to the charging connector.
[0015] In one embodiment, there are two lenses, both lenses are connected to the frame and electrically connected to each other, the first conductor is electrically connected to one of the lenses, and the first energy storage component is used to supply power to the two lenses.
[0016] In one embodiment, the first energy storage component further includes a circuit board, which is received in the receiving groove and electrically connected to the energy storage body and the two lenses.
[0017] In one embodiment, the first energy storage component further includes a circuit board, the temple further includes a second temple body, the circuit board is accommodated inside the second temple body, and the circuit board is electrically connected to the energy storage body and the two lenses.
[0018] In one embodiment, the number of the lenses and the number of the first conductors are the same and are both two, and the temple further includes a second temple body, and the second temple body includes:
[0019] a second temple body, wherein one end of the first temple body is hinged to the temple and is provided with a receiving slot, the receiving slot extending along the length direction of the first temple body;
[0020] A second energy storage member is slidably inserted into the receiving groove; wherein,
[0021] The first energy storage member is used to abut against one of the first conductors to supply power to a corresponding one of the lenses, and the second energy storage member is used to abut against another of the first conductors to supply power to another of the corresponding lenses.
[0022] In the above-mentioned glasses, after the temples are unfolded, the first energy storage component is driven by an external force to extend out of the accommodating groove and abut against the first conductor, so that the first conductor and the first energy storage component are electrically connected, so that the first energy storage component can supply power to the lens through the first conductor. After the temples are folded, the first energy storage component is driven by an external force to be completely stored in the accommodating groove, so that the first energy storage component is stored and protected to avoid damage to the first energy storage component due to external force. In this way, after the temples are unfolded, the first energy storage component is driven by an external force to electrically contact the first conductor, so that the wear between the first energy storage component and the first conductor is reduced and stable contact can be maintained at all times, so that stable contact can still be maintained after long-term use, thereby extending the service life of the glasses.
[0023] It should be understood that the contents described in this section are not intended to identify the key or important features of the embodiments of the present disclosure, nor are they intended to limit the scope of the present disclosure. Other features of the present disclosure will become readily understood through the following description. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] The above and other objects, features and advantages of the exemplary embodiments of the present disclosure will become readily understood by reading the detailed description below with reference to the accompanying drawings, in which several embodiments of the present disclosure are shown by way of example and not limitation, wherein:
[0025] In the drawings, the same or corresponding reference numerals denote the same or corresponding parts.
[0026] Figure 1 shows a schematic diagram of the exploded structure of glasses in an embodiment of the present disclosure;
[0027] Figure 2 Shown Figure 1 Middle part II enlarged view;
[0028] Figure 3 Shown Figure 1 A schematic structural diagram of the first temple body;
[0029] Figure 4 Shown Figure 1 A schematic diagram of the exploded structure of the first temple body;
[0030] Figure 5 Shown Figure 4 Enlarged view of detail V in the middle.
[0031] Description of the numbers in the figure:
[0032] In the figure: 11, glasses body; 111, frame; 112, lens; 113, first conductor; 12, temple; 121, first temple body; 1211, first temple body; 1212, receiving groove; 1213, bar hole; 1214, threaded hole; 1215, charging jack; 1216, first energy storage component; 1216a, energy storage body; 1216b, second conductor; 1216c, toggle body; 122, second temple body; 13, adjustment body. DETAILED DESCRIPTION
[0033] To make the purposes, features, and advantages of the present disclosure more apparent and understandable, the technical solutions in the embodiments of the present disclosure will be clearly and completely described below in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present disclosure, not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of the present disclosure without creative work shall fall within the scope of protection of the present disclosure.
[0034] It should be understood that the various forms of the processes shown above can be used to reorder, add, or delete steps. For example, the steps described in this disclosure can be performed in parallel, sequentially, or in a different order, as long as the desired results of the technical solutions of this disclosure can be achieved. This is not a limitation herein.
[0035] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features being referred to. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one such feature. Throughout the present disclosure, "plurality" means two or more, unless otherwise specifically defined.
[0036] The following describes the embodiments of the present invention in conjunction with the accompanying drawings.
[0037] Please also refer to Figure 1 and Figure 2The present disclosure provides a pair of glasses, which include a pair of glasses body 11 and a pair of glasses legs 12. The pair of glasses body 11 includes a frame 111, a lens 112, and a first conductor 113. The lens 112 is connected to the frame 111. The first conductor 113 is embedded in the frame 111 and electrically connected to the lens 112. The pair of glasses legs 12 includes a first pair of glasses body 121. The first pair of glasses body 121 includes a first pair of glasses body 1211 and a first energy storage member 1216. One end of the first pair of glasses body 1211 is hinged. The temple 12 is provided with a receiving groove 1212, which extends along the length of the first temple body 1211. A first energy storage member 1216 is slidably inserted into the receiving groove 1212. When the temple 12 is folded, the first energy storage member 1216 is driven by an external force to be completely stored in the receiving groove 1212. When the temple 12 is unfolded, the first energy storage member 1216 is driven by an external force to extend out of the receiving groove 1212 and abut against the first conductor 113 to supply power to the lens 112. Specifically, the first conductor 113 is a cylindrical structure made of a material with good electrical conductivity. For example, the first conductor 113 can be made of copper, aluminum, aluminum alloy, copper alloy, or copper-aluminum alloy.
[0038] In the above-mentioned glasses, after the temple 12 is unfolded, the first energy storage component 1216 is driven by an external force to extend out of the receiving groove 1212 and abut against the first conductor 113, so that the first conductor 113 and the first energy storage component 1216 are electrically connected, so that the first energy storage component 1216 can supply power to the lens 112 through the first conductor 113. After the temple 12 is folded, the first energy storage component 1216 is driven by an external force to be completely stored in the receiving groove 1212, so that the first energy storage component 1216 is stored and protected, and the first energy storage component 1216 is prevented from being damaged by external force. In this way, after the temple 12 is unfolded, the first energy storage component 1216 is driven by an external force to electrically contact the first conductor 113, so that the wear between the first energy storage component 1216 and the first conductor 113 is reduced and stable contact can be maintained at all times, so that stable contact can still be maintained after long-term use, thereby extending the service life of the glasses.
[0039] Please also refer to Figure 3 and Figure 4In some embodiments, the first energy storage member 1216 includes an energy storage body 1216a and a second conductor 1216b. The energy storage body 1216a can be slidably received in the receiving groove 1212. Specifically, the movement of the energy storage body 1216a along the receiving groove 1212 is a sliding friction movement. When the energy storage body 1216a is stationary relative to the first temple body 1211, the static friction between the energy storage body 1216a and the first temple body 1211 keeps the energy storage body 1216a in a stationary state. The second conductor 121 6b is connected to the end of the energy storage body 1216a facing the frame 111, and the second conductor 1216b is electrically connected to the energy storage body 1216a and is used to abut against the first conductor 113. In this way, by directly connecting the second conductor 1216b used to abut against the first conductor 113 and the energy storage body 1216a, the stability of the electrical connection between the second conductor 1216b and the energy storage body 1216a is improved, thereby ensuring that the circuit of the energy storage body 1216a can stably output to the second conductor 1216b. Specifically, the second conductor 1216b is a cylindrical structure made of a material with good electrical conductivity. For example, the second conductor 1216b can be made of copper material, aluminum material, aluminum alloy material, copper alloy material or copper-aluminum alloy material. The exemplary energy storage body 1216a can be a battery cell.
[0040] In this embodiment, the number of the first conductors 113 and the number of the second conductors 1216 b are the same, that is, two. Each first conductor 113 corresponds to a corresponding second conductor 1216 b.
[0041] In some embodiments, the end face of the first conductor 113 facing the second conductor 1216b is adapted to the end face of the second conductor 1216b facing the first conductor 113, so as to increase the contact area between the first conductor 113 and the second conductor 1216b; specifically, the end face of the first conductor 113 is a plane, and the end faces of the second conductor 1216b are both planes. In this way, when the first conductor 113 is against the second conductor 1216b, there is a larger fitting area between the first conductor 113 and the second conductor 1216b, thereby improving the flow effect between the first conductor 113 and the second conductor 1216b and ensuring good contact between the first conductor 113 and the second conductor 1216b.
[0042] See also Figure 5 In some embodiments, a strip hole 1213 is further provided on the first temple body 1211, and the strip hole 1213 connects the inside and outside of the accommodating groove 1212 along an extension direction perpendicular to the accommodating groove 1212. The first energy storage component 1216 also includes a toggle body 1216c, and the toggle body 1216c is movably inserted into the strip hole 1213. One end of the toggle body 1216c is connected to the energy storage body 1216a, and the other end of the toggle body 1216c extends out of the strip hole 1213.
[0043] In this way, the external force drives the paddle body 1216c outside the first temple body 1211 to drive the first energy storage component 1216 inside the first temple body 1211 to overcome the friction force and move along the accommodating groove 1212, so that the second conductor 1216b of the first energy storage component 1216 contacts or separates from the first conductor 113, thereby achieving good contact between the first conductor 113 and the second conductor 1216b, and reducing the wear between the first conductor 113 and the second conductor 1216b, thereby improving the service life of the glasses.
[0044] See also Figure 5 In some embodiments, the first temple body 1211 is further provided with a threaded hole 1214, which connects the interior and exterior of the receiving groove 1212 along a direction extending perpendicular to the receiving groove 1212. The glasses further include an adjustment body 13, which is screwed into the threaded hole 1214 and is used to tighten against the energy storage body 1216a. For example, the adjustment body 13 can be a screw.
[0045] In this way, the adjusting body 13 is driven to rotate by an external force (such as a screwdriver) to adjust the pressure of the adjusting body 13 against the energy storage body 1216a, and then adjust the magnitude of the dynamic friction between the energy storage body 1216a and the groove wall of the receiving groove 1212, so as to ensure that the glasses will not shake during wearing, causing the energy storage body 1216a to shake in the receiving groove 1212, thereby causing the second conductor 1216b and the first conductor 113 to separate, thereby affecting the use effect of the glasses.
[0046] See also Figure 5 In some embodiments, a charging socket 1215 is further provided on the first temple body 1211, and the charging socket 1215 connects the inside and outside of the accommodating groove 1212 along a direction perpendicular to the extension of the accommodating groove 1212. The first energy storage component 1216 also includes a charging connector, which is electrically connected to the energy storage body 1216a. The position of the charging socket 1215 corresponds to the charging connector, so that an external charger can be inserted into the charging socket 1215 and abut against the charging connector on the energy storage body 1216a, and the energy storage body 1216a can be charged conveniently.
[0047] In some embodiments, there are two lenses 112, both lenses 112 are connected to the frame 111, and the two lenses 112 are electrically connected, the first conductor 113 is electrically connected to one of the lenses 112, and the first energy storage component 1216 is used to supply power to the two lenses 112; in this way, by electrically connecting the two lenses 112, power can be supplied to the two lenses 112 at the same time through the first energy storage component 1216.
[0048] In some embodiments, the first energy storage component 1216 further includes a circuit board, which is housed in the receiving groove 1212 and electrically connected to the energy storage body 1216a and the two lenses 112, so as to control the magnitude of the current output from the energy storage body 1216a to the two lenses 112 through the circuit board, and achieve precise adjustment of the magnitude of the power supply current of the electrochromic layer on the lens 112, wherein the circuit board is an existing component.
[0049] In some embodiments, the first energy storage component 1216 further includes a circuit board, and the temple 12 further includes a second temple body 122 . The circuit board is housed inside the second temple body, and the circuit board is electrically connected to the energy storage body 1216 a and the two lenses 112 .
[0050] It can be understood that the spatial volume of the temple 12 is limited. Therefore, by storing the energy storage body 1216a inside the first temple body 121 and the circuit board inside the second temple body 122, it is convenient to effectively utilize the space of the first temple body 121 and the second temple body 122, so that a larger energy storage body 1216a can be stored in the space of the temple 12, thereby increasing the storage capacity of the energy storage body 1216a, which is beneficial to improving the battery life of the glasses.
[0051] In some embodiments, the structure of the second temple body 122 is exactly the same as that of the first temple body 121. Furthermore, the number of lenses 112 and first conductors 113 is the same and both are two. The temple 12 also includes a second temple body 122. The second temple body 122 includes a second temple body and a second energy storage component. One end of the first temple body 1211 is hinged to the temple 12 and is provided with a storage groove. The storage groove extends along the length direction of the first temple body 1211. The second energy storage component can be slidably inserted into the accommodating groove 1212. The first energy storage component 1216 is used to abut against one of the first conductors 113 to supply power to the corresponding lens 112. The second energy storage component is used to abut against the other first conductor 113 to supply power to the corresponding other lens 112.
[0052] In this way, power is supplied to one of the lenses 112 through the energy storage body 1216a of the first energy storage component 1216, and power is supplied to the other lens 112 through the energy storage body 1216a of the second energy storage component. Energy storage bodies 1216a are installed in the internal space of the first temple body 121 and the second temple body 122 in the glasses, so as to efficiently utilize the space of the temple 12 and improve the battery life of the glasses.
[0053] The above description is merely a specific embodiment of the present disclosure, but the scope of protection of the present disclosure is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in this disclosure should be included in the scope of protection of the present disclosure. Therefore, the scope of protection of the present disclosure should be based on the scope of protection of the claims.
Claims
1. A pair of glasses, characterized in that: The glasses include: The glasses body comprises a frame, a lens and a first conductor, wherein the lens is connected to the frame, and the first conductor is embedded in the frame and electrically connected to the lens; The temple comprises a first temple body, wherein the first temple body comprises a first temple body and a first energy storage component, one end of the first temple body is hinged to the temple and is provided with a receiving groove, the receiving groove extends along the length direction of the first temple body, and the first energy storage component is slidably inserted into the receiving groove; wherein, After the temple is folded, the first energy storage component is driven by external force to be completely stored in the receiving groove. After the temple is unfolded, the first energy storage component is driven by external force to extend out of the receiving groove and abut against the first conductor to supply power to the lens.
2. The glasses according to claim 1, wherein The first energy storage component includes: an energy storage body, the energy storage body being slidably received in the receiving groove; The second conductor is connected to one end of the energy storage body facing the mirror frame. The second conductor is electrically connected to the energy storage body and is used to resist the first conductor.
3. The glasses according to claim 2, characterized in that An end surface of the first conductor facing one end of the second conductor is matched with an end surface of the second conductor facing one end of the first conductor.
4. The glasses according to claim 2, characterized in that The first temple body is further provided with a strip hole, the strip hole being connected to the inside and outside of the receiving groove along a direction perpendicular to the extending direction of the receiving groove; The first energy storage component further includes a toggle body, which is movably arranged in the strip hole, one end of the toggle body is connected to the energy storage body, and the other end of the toggle body extends out of the strip hole.
5. The glasses according to claim 2, characterized in that A threaded hole is also provided on the main body of the first temple, and the threaded hole connects the inside and outside of the accommodating groove along a direction perpendicular to the extending direction of the accommodating groove. The glasses also include an adjusting body, which is screwed into the threaded hole and is used to press against the energy storage body.
6. The glasses according to claim 2, wherein: A charging socket is also provided on the first temple body, and the charging socket connects the inside and outside of the accommodating slot along a direction perpendicular to the extension of the accommodating slot. The first energy storage component also includes a charging connector, which is electrically connected to the energy storage body. The position of the charging socket corresponds to the charging connector.
7. The glasses according to any one of claims 2 to 6, characterized in that: There are two lenses, both of which are connected to the frame and electrically connected to each other. The first conductor is electrically connected to one of the lenses, and the first energy storage component is used to supply power to the two lenses.
8. The glasses according to claim 7, characterized in that The first energy storage component further includes a circuit board, which is received in the receiving groove and electrically connected to the energy storage body and the two lenses.
9. The glasses according to claim 7, wherein: The first energy storage component further includes a circuit board, and the temple further includes a second temple body. The circuit board is accommodated inside the second temple body, and the circuit board is electrically connected to the energy storage body and the two lenses.
10. The glasses according to any one of claims 1 to 6, characterized in that: The number of the lenses and the first conductors is the same and both are two. The temple further includes a second temple body, and the second temple body includes: a second temple body, wherein one end of the first temple body is hinged to the temple and is provided with a receiving slot, the receiving slot extending along the length direction of the first temple body; A second energy storage member is slidably inserted into the receiving groove; wherein, The first energy storage member is used to abut against one of the first conductors to supply power to a corresponding one of the lenses, and the second energy storage member is used to abut against another of the first conductors to supply power to another of the corresponding lenses.