Glasses

By designing connecting grooves and connecting protrusions on the glasses, combined with locking components, a stable connection and convenient assembly/disassembly between the frame and temples are achieved, solving the problem of the inability to detach the frame and temples in existing technologies and improving the user experience.

CN223842250UActive Publication Date: 2026-01-27VIVO MOBILE COMM CO LTD
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Patent Information

Application Number
CN202520255177.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-18
Publication Date
2026-01-27
Estimated Expiration
2035-02-18

AI Technical Summary

Technical Problem

The frames and temples of existing glasses cannot be disassembled or are inconvenient to disassemble, which affects the user experience.

Method used

The design incorporates connecting grooves and connecting protrusions, combined with a locking assembly. The locking mechanism and operating mechanism enable quick assembly and disassembly of the frame and temples. The locking component can be movably inserted into the mounting hole to lock or unlock.

Benefits of technology

It achieves a stable connection and convenient assembly/disassembly between the frame and temples, improving the ease with which users can replace frames or temples and enhancing the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a pair of glasses, and relates to the field of wearable equipment. The glasses provided by the embodiment of the utility model comprise a glasses frame, glasses legs and a locking assembly, one of the glasses frame and the glasses legs is provided with a connecting groove, the other one of the glasses frame and the glasses legs is provided with a connecting bulge, the connecting bulge is inserted into the connecting groove, the side wall of the connecting groove is provided with a locking groove, and the side wall of the connecting bulge is provided with a mounting hole; the locking assembly comprises a locking piece and an operating mechanism, the locking piece is movably arranged on the connecting protrusion and corresponds to the mounting hole, and the operating mechanism is arranged on the connecting protrusion and used for enabling the locking piece to stretch out relative to the mounting hole so as to be matched with the locking groove or retract relative to the mounting hole so as to be separated from the locking groove. The problem that the glasses frame and the glasses legs cannot be detached or are inconvenient to detach can be solved.
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Description

Technical Field

[0001] This application belongs to the technical field of wearable devices, specifically relating to a pair of glasses. Background Technology

[0002] Currently, some eyeglasses have temples that cannot be detached from the frame, making it impossible to fit a user's face shape. Related technologies suggest using screws or other fasteners to connect the frame and temples. When disassembly is needed, special tools are required to remove the screws. However, this method is cumbersome and inconvenient for users, negatively impacting the user experience. Utility Model Content

[0003] The purpose of this application is to provide a pair of glasses that can solve the problems of the frame and temples being unable to be disassembled or being inconvenient to disassemble.

[0004] To solve the above-mentioned technical problems, this application is implemented as follows:

[0005] This application provides an eyeglass, including a frame, temples, and a locking assembly;

[0006] One of the frame and the temple is provided with a connecting groove, and the other is provided with a connecting protrusion. The connecting protrusion is inserted into the connecting groove. The side wall of the connecting groove is provided with a locking groove, and the side wall of the connecting protrusion is provided with a mounting hole.

[0007] The locking assembly includes a locking member and an operating mechanism. The locking member is movably disposed on the connecting protrusion and corresponds to the mounting hole. The operating mechanism is disposed on the connecting protrusion and is used to extend the locking member relative to the mounting hole to engage with the locking groove, or to retract relative to the mounting hole to separate from the locking groove.

[0008] In this embodiment, the frame and temples are connected together via a connecting groove and a connecting protrusion. Under the action of the operating mechanism, the locking member extends relative to the mounting hole and engages with the locking groove, thereby locking the connecting protrusion and the connecting groove and effectively preventing separation of the connecting protrusion and the connecting groove, ensuring the stability of the connection between the temples and the frame. Under the action of the operating mechanism, the locking member can also retract relative to the mounting hole and separate from the locking groove, releasing the lock on the connecting protrusion and the connecting groove, thus allowing the connecting protrusion to separate from the connecting groove and facilitating the removal of the temples from the frame for replacement. Compared to using screws to connect the temples and the frame, this embodiment facilitates the assembly and disassembly of the temples and the frame, enabling quick assembly and disassembly, making it convenient for users to replace frames or temples and improving the user experience. Attached Figure Description

[0009] Figure 1 This is a first schematic diagram of the eyeglasses structure disclosed in an embodiment of this application;

[0010] Figure 2 This is a second schematic diagram of the eyeglasses structure disclosed in the embodiments of this application;

[0011] Figure 3 This is a partial structural diagram of the picture frame disclosed in an embodiment of this application;

[0012] Figure 4 This is a partial structural schematic diagram of the temple and locking assembly disclosed in an embodiment of this application;

[0013] Figure 5 This is a partial cross-sectional schematic diagram of the locking assembly, connecting groove, and connecting protrusion assembly disclosed in the embodiments of this application;

[0014] Figure 6 This is a partial schematic diagram of the connecting protrusion disclosed in an embodiment of this application;

[0015] Figure 7 This is a partial structural diagram of the force-applying component, the moving component, and the sealing ring disclosed in the embodiments of this application.

[0016] Explanation of reference numerals in the attached figures:

[0017] 10-Frame; 11-Connecting groove; 12-Locking groove;

[0018] 20 - Temple; 21 - Temple body; 22 - Connecting protrusion; 221 - Cavity; 2211 - First sliding groove; 22111 - First inclined surface; 2212 - Second protrusion; 22121 - Third inclined surface; 2213 - First limiting structure; 2214 - Second sliding groove; 222 - Mounting hole;

[0019] 30-Locking assembly; 31-Locking element; 32-Operating mechanism; 321-Force-applying element; 3211-First protrusion; 3212-Toothed structure; 322-Moving element; 3221-Mounting groove; 3222-Second limiting structure; 3223-Slider; 32231-Second inclined surface; 323-Elastic element; 33-Sealing ring; 34-Flexible connector. Detailed Implementation

[0020] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0021] The terms "first," "second," etc., used in the specification and claims of this application are used to distinguish similar objects and not to describe a specific order or sequence. It should be understood that such use of data can be interchanged where appropriate so that embodiments of this application can be implemented in orders other than those illustrated or described herein, and the objects distinguished by "first," "second," etc., are generally of the same class and the number of objects is not limited; for example, a first object can be one or more. Furthermore, in the specification and claims, "and / or" indicates at least one of the connected objects, and the character " / " generally indicates that the preceding and following objects are in an "or" relationship.

[0022] The embodiments of this application will be described in detail below with reference to the accompanying drawings and specific examples and application scenarios.

[0023] refer to Figures 1 to 7 This application discloses a pair of glasses, which can be ordinary non-smart glasses, such as myopia glasses, reading glasses, sunglasses, etc., or smart glasses, such as augmented reality (AR) glasses, virtual reality (VR) glasses, mixed reality (MR) glasses, etc. Other electronic devices are also possible, without specific limitations. The disclosed glasses include a frame 10, temples 20, and a locking assembly 30, such as... Figure 1 As shown.

[0024] The temple 20 is connected to the frame 10 for easy wearing by the user. One of the frame 10 and the temple 20 may be provided with a connecting groove 11, and the other may be provided with a connecting protrusion 22. The connecting protrusion 22 is inserted into the connecting groove 11. In this way, the reliability of the connection between the temple 20 and the frame 10 can be ensured by the cooperation between the connecting protrusion 22 and the connecting groove 11.

[0025] Optionally, the frame 10 may have a connecting groove 11, and the temple 20 may have a connecting protrusion 22; alternatively, the temple 20 may have a connecting groove 11, and the frame 10 may have a connecting protrusion 22, depending on the actual working conditions. Optionally, the temple 20 may include a temple body 21, and the connecting protrusion 22 may be located at one end of the temple body 21. Exemplarily, the temple body 21 and the connecting protrusion 22 may be fixedly connected or integrally formed.

[0026] In some embodiments, the sidewall of the connecting groove 11 can be curved, and correspondingly, the outer peripheral surface of the connecting protrusion 22 is curved. This allows the temple 20 to rotate relative to the frame 10, facilitating the opening or closing of the temple 20. Of course, the sidewall of the connecting groove 11 and the outer peripheral surface of the connecting protrusion 22 can also be planar, such as having a polygonal cross-section. In this case, a stable connection between the temple 20 and the frame 10 can be ensured.

[0027] To prevent the temple 20 from separating from the frame 10 due to the connection protrusion 22 detaching from the connection groove 11, the eyeglasses in this embodiment may also include a locking component 30. The locking component 30 locks the temple 20 to the frame 10 to prevent the temple 20 from accidentally separating from the frame 10. Of course, the locking component 30 can also be unlocked to allow the temple 20 to separate from the frame 10.

[0028] like Figure 2 As shown, the locking assembly 30 includes a locking member 31 and an operating mechanism 32. The operating mechanism 32 allows the locking member 31 to switch between a locked state and an unlocked state. The locking member 31 is movably disposed on the connecting protrusion 22. Correspondingly, the connecting protrusion 22 may have a mounting hole 222. The locking member 31 is correspondingly disposed with respect to the mounting hole 222. Thus, the locking member 31 can extend out of the connecting protrusion 22 through the mounting hole 222 (i.e., the locking member 31 extends relative to the mounting hole 222), or retract into the connecting protrusion 22 through the mounting hole 222 (i.e., the locking member 31 retracts relative to the mounting hole 222). Optionally, the locking member 31 and the connecting protrusion 22 can move or rotate relative to each other, depending on the actual working conditions.

[0029] To achieve locking between the connecting protrusion 22 and the connecting groove 11, the side wall of the connecting groove 11 may be provided with a locking groove 12, such as... Figure 5 As shown, when the connecting protrusion 22 and the connecting groove 11 are installed together, when the locking member 31 extends out of the connecting protrusion 22 relative to the mounting hole 222, it can cooperate with the locking groove 12, thereby locking the connecting protrusion 22 and the connecting groove 11 to prevent the connecting protrusion 22 from disengaging from the connecting groove 11, thus ensuring the reliability of the connection between the temple 20 and the frame 10; when the locking member 31 retracts into the connecting protrusion 22 relative to the mounting hole 222, it can separate from the locking groove 12, thereby releasing the locking of the connecting protrusion 22 and the connecting groove 11, so that the connecting protrusion 22 can disengage from the connecting groove 11 and the temple 20 and the frame 10 can be detached.

[0030] In some embodiments, the locking member 31 and the locking groove 12 can be provided in a one-to-one correspondence, that is, the number of both is the same. There can be one or more locking members 31 and locking grooves 12. When there are multiple locking members 31, they can be arranged circumferentially along the connecting protrusion 22, and the locking grooves 12 can be arranged circumferentially along the connecting groove 11.

[0031] In other embodiments, there may be multiple locking members 31 and one locking groove 12. Thus, multiple locking members 31 may share a single locking groove 12. In this case, multiple locking members 31 may be arranged circumferentially along the connecting protrusion 22, and one locking groove 12 may extend circumferentially along the connecting groove 11.

[0032] In some embodiments, both the locking member 31 and the locking groove 12 can be a single entity. The locking member 31 extends circumferentially along the connecting protrusion 22, and the locking groove 12 extends circumferentially along the connecting groove 11.

[0033] To allow the locking member 31 to extend or retract relative to the mounting hole 222, the locking assembly 30 may further include an operating mechanism 32, such as... Figure 2 and Figure 4 As shown, the operating mechanism 32 is located on the connecting protrusion 22, used to extend the locking member 31 relative to the mounting hole 222 to engage with the locking groove 12, or to retract relative to the mounting hole 222 to separate from the locking groove 12. Based on this arrangement, under the action of the operating mechanism 32, the locking member 31 can move relative to the connecting protrusion 22, thereby enabling the locking member 31 to engage or disengage with the locking groove 12, thus achieving locking or unlocking of the connecting protrusion 22 and the connecting groove 11.

[0034] It should be noted that the operating mechanism 32 and the locking member 31 can be connected to transmit the driving force output by the operating mechanism 32 to the locking member 31 through some structure, thereby driving the locking member 31 to move relative to the connecting protrusion 22. Optionally, the power output by the operating mechanism 32 can be transmitted to the locking member 31 through linkage transmission, gear transmission, or other means. Of course, the operating mechanism 32 and the locking member 31 can also be unconnected, and the driving force can be transmitted through a third medium, such as gas or liquid; in addition, the operating mechanism 32 and the locking member 31 can also transmit the driving force through a magnetic field. In the embodiments of this application, as long as the operating mechanism 32 can drive the locking member 31 to move relative to the connecting protrusion 22, the specific method is not limited.

[0035] In this embodiment, the frame 10 and temple 20 can be connected together via the connecting groove 11 and the connecting protrusion 22. Under the action of the operating mechanism 32, the locking member 31 can extend relative to the mounting hole 222 and cooperate with the locking groove 12 to lock the connecting protrusion 22 and the connecting groove 11, thereby effectively preventing the connecting protrusion 22 from separating from the connecting groove 11 and ensuring the connection stability between the temple 20 and the frame 10. Under the action of the operating mechanism 32, the locking member 31 can also retract relative to the mounting hole 222 and separate from the locking groove 12, releasing the lock on the connecting protrusion 22 and the connecting groove 11, thereby allowing the connecting protrusion 22 to separate from the connecting groove 11, making it convenient to remove the temple 20 from the frame 10 for replacement. Compared to the method of connecting the temple 20 and the frame 10 with screws, the embodiments of this application can facilitate the disassembly and assembly of the temple 20 and the frame 10, enabling quick disassembly and assembly between the temple 20 and the frame 10, making it convenient for users to replace the frame 10 or the temple 20, and improving the user experience.

[0036] To accommodate the operating mechanism 32, the connecting protrusion 22 may have a cavity 221, one end of which is open. That is, the connecting protrusion 22 has a cavity 221 with one open end to accommodate the operating mechanism 32. The mounting hole 222 communicates with the inner cavity of the cavity 221, allowing the locking member 31 to retract into or extend out of the cavity 221 via the mounting hole 222.

[0037] At least a portion of the operating mechanism 32 is movably disposed in the cavity 221 so that at least a portion of the operating mechanism 32 can move within the cavity 221 to drive the locking member 31.

[0038] To drive the locking element 31, the operating mechanism 32 can be coupled or connected to the locking element 31 to cause the locking element 31 to extend or retract relative to the mounting hole 222. It should be noted that coupling means the operating mechanism 32 and the locking element 31 do not contact each other, and the locking element 31 can be driven by gas, liquid, magnetic field, etc.; connection means the operating mechanism 32 and the locking element 31 are directly connected, or connected through other transmission components, to drive the locking element 31.

[0039] In other embodiments, the connecting protrusion 22 may also be a solid structure, and at least a portion of the operating mechanism 32 may be movably connected to the connecting protrusion 22 to drive the locking member.

[0040] refer to Figure 5 In some embodiments, the operating mechanism 32 may include a force-applying element 321, a moving element 322, and an elastic element 323. One end of the force-applying element 321 is movably disposed in the cavity 221, and the moving element 322 is movably disposed in the cavity 221 and contacts one end of the force-applying element 321. Thus, when a force is applied to the force-applying element 321, it can move relative to the connecting protrusion 22. Simultaneously, the force-applying element 321 can drive the moving element 322 to move within the cavity 221. Furthermore, the elastic element 323 elastically connects the force-applying element 321 to the connecting protrusion 22, or elastically connects the moving element 322 to the connecting protrusion 22.

[0041] Based on the above configuration, when the force-applying member 321 moves the moving member 322, the locking member 31 extends relative to the mounting hole 222 to cooperate with the locking groove 12, thereby locking the temple 20 and the frame 10; when the elastic member 323 moves the force-applying member 321, the locking member 31 retracts relative to the mounting hole 222 to separate from the locking groove 12, thereby unlocking the temple 20 and the frame 10.

[0042] It should be noted that when the force-applying component 321 drives the moving component 322 to move, the moving component 322 can drive the locking component 31 through gas, liquid, magnetic field, transmission component, etc., so that the locking component 31 extends relative to the mounting hole 222. When the force applied to the force-applying component 321 is released, the elastic component 323 can drive the moving component 322 to move. At this time, the moving component 322 releases the driving effect on the locking component 31 through gas, liquid, magnetic field, transmission component, etc., so that the locking component 31 can retract relative to the mounting hole 222.

[0043] To prevent the locking member 31 from accidentally retracting relative to the mounting hole 222 and disengaging from the locking groove 12 during use, in this embodiment, the movable member 322 is rotatably disposed in the cavity 221. This allows the movable member 322 to be restricted by the connecting protrusion 22 after rotation, preventing it from moving freely within the cavity 221. Consequently, the movable member 322 can exert a force on the locking member 31 through gas, liquid, magnetic field, transmission components, etc., to prevent the locking member 31 from retracting arbitrarily. Optionally, the cavity 221 may have a limiting structure inside, allowing the movable member 322 to be engaged with or released from the limiting structure by rotation within the cavity 221.

[0044] In some embodiments, the outer peripheral surface of the movable member 322 can be sealed to the inner wall of the cavity 221, and the locking member 31 is sealed to the mounting hole 222. Thus, the movable member 322, the inner wall of the cavity 221, and the locking member 31 together form a sealed space. Based on this configuration, when the force-applying member 321 moves the movable member 322, the locking member 31 can be extended relative to the mounting hole 222 by increasing the pressure in the sealed space; when the elastic member moves the movable member 322, the locking member 31 can be retracted relative to the mounting hole 222 by decreasing the pressure in the sealed space.

[0045] It should be noted that the sealed space can be filled with media such as gas or liquid. When the force-applying component 321 moves the moving component 322, it will compress the gas or liquid in the sealed space, increasing the pressure in the sealed space. Under the action of increased pressure, the locking component 31 can be pushed out from the mounting hole 222 so that the locking component 31 can lock into the locking groove 12. Of course, after the force is released, the elastic component 323 will generate a reverse elastic force on the moving component 322, causing the moving component 322 to move in the opposite direction. At this time, the pressure in the sealed space will decrease. Under the action of decreased pressure, the locking component 31 can be pulled back from the mounting hole 222 so that the locking component 31 separates from the locking groove 12.

[0046] Of course, a return element, such as a spring or a clip, can also be provided between the locking element 31 and the connecting protrusion 22, so that after the elastic element 323 drives the moving element 322 to move, the return element will drive the locking element 31 to retract relative to the mounting hole 222.

[0047] To achieve a tight seal, the locking assembly 30 may also include a sealing ring 33, such as Figure 5 As shown, the sealing ring 33 can be sleeved on the outer peripheral surface of the moving part 322 or disposed on the inner wall surface of the cavity 221, so as to achieve the sealing effect between the moving part 322 and the connecting protrusion 22 through the sealing ring 33.

[0048] Furthermore, the outer peripheral surface of the movable member 322 or the inner wall surface of the cavity 221 may be provided with a circumferentially extending mounting groove 3221. The sealing ring 33 is disposed in the mounting groove 3221 and is sealed between the outer peripheral surface of the movable member 322 and the inner wall surface of the cavity 221 to ensure the sealing between the movable member 322 and the connecting protrusion 22. It should be noted that a portion of the sealing ring 33 is located in the mounting groove 3221, and another portion may protrude from the mounting groove 3221 and abut against the outer peripheral surface of the movable member 322 or the inner wall surface of the cavity 221 to ensure sealing.

[0049] To achieve a seal between the locking element 31 and the mounting hole 222, the locking assembly 30 may further include a flexible connector 34, such as... Figure 4 and Figure 5 As shown, the flexible connector 34 is located on the outer periphery of the locking member 31 and flexibly connects the locking member 31 and the connecting protrusion 22. In this way, the gap between the locking member 31 and the mounting hole 222 can be sealed by the flexible connector 34. On the one hand, it can ensure the extension or retraction of the locking member 31 relative to the mounting hole 222, and on the other hand, it can also achieve the sealing between the locking member 31 and the mounting hole 222.

[0050] Optionally, the flexible connector 34 can be made of soft rubber; and the locking member 31 can be made of hard rubber. Of course, the flexible connector 34 and the locking member 31 can also be in other forms, which are not specifically limited here.

[0051] In some embodiments, the connecting groove 11 can be a cylindrical groove, with at least one end of the cylindrical groove being through; correspondingly, the connecting protrusion 22 can be a cylindrical protrusion, which can be inserted into the connecting groove 11 from one end of the connecting groove 11 to achieve the mating installation of the connecting protrusion 22 and the connecting groove 11.

[0052] For example, the connecting groove 11 can be a cylindrical groove (i.e., a groove with a circular cross-section), a prism groove (i.e., a groove with a polygonal cross-section), an elliptical cylindrical groove (i.e., a groove with an elliptical cross-section), etc.; correspondingly, the connecting protrusion 22 can be a cylindrical protrusion (i.e., a protrusion with a circular cross-section), a prism protrusion (i.e., a protrusion with a polygonal cross-section), an elliptical cylindrical protrusion (i.e., a protrusion with an elliptical cross-section), etc., to be adapted to the connecting groove 11.

[0053] To avoid assembly interference, the side wall of the connecting groove 11 may be provided with a notch, such as... Figure 3 As shown, when the temple 20 is connected to the frame 10, at least a portion of the temple 20 is located in the groove, and the groove wall at the groove limits the connection protrusion 22. Based on this, the connection between the temple 20 and the frame 10 can be achieved through the cooperation of the connection protrusion 22 and the connection groove 11, while preventing the temple 20 from separating from the frame 10, thereby improving the reliability and stability of the connection between the temple 20 and the frame 10.

[0054] For example, the cross-section of the connecting groove 11 can be C-shaped, concave, etc., and of course, it can also be other shapes, which are not specifically limited here.

[0055] refer to Figures 5 to 7 In some embodiments, the inner wall of the cavity 221 may be provided with a plurality of second protrusions 2212 arranged circumferentially, and a sliding groove is formed between two adjacent second protrusions 2212, each sliding groove extending along the moving direction of the moving member 322. Correspondingly, the outer periphery of the force-applying member 321 may be provided with a plurality of first protrusions 3211, and the plurality of first protrusions 3211 are slidably connected to the plurality of sliding grooves respectively.

[0056] Based on the above configuration, when a force is applied to the force-applying member 321, the force-applying member 321 can move toward the bottom end of the cavity 221. At the same time, the force-applying member 321 is guided and restricted by the cooperation of the first protrusion 3211 and the corresponding slide groove. On the one hand, this ensures the smooth movement of the force-applying member 321, and on the other hand, it prevents the force-applying member 321 from rotating in the cavity 221.

[0057] In some embodiments, the plurality of slides may include a first slide 2211 and a second slide 2214, and the second slide 2214 is disposed adjacent to the first slide 2211 along the periphery of the cavity 221. Optionally, the first slide 2211 and the second slide 2214 may be located on opposite sides of the second protrusion 2212.

[0058] Furthermore, along the radial direction of the cavity 221, the depth of the first groove 2211 is less than the depth of the second groove 2214.

[0059] Based on the above configuration, pressing the force-applying component 321 can cause at least a portion of the moving component 322 to switch between adjacent first slide groove 2211 and second slide groove 2214 to change the pressure in the sealed space, causing the locking component 31 to extend or retract relative to the mounting hole 222.

[0060] Optionally, the end of the force-applying member 321 facing the moving member 322 may be provided with a plurality of toothed structures 3212 along the circumferential direction; and the outer circumferential surface of the moving member 322 is provided with a plurality of sliders 3223 arranged at intervals along the circumferential direction. In some cases, the plurality of sliders 3223 may slide and engage with a plurality of second slide grooves 2214 respectively, and be locked by a plurality of first slide grooves 2211.

[0061] Since the depth of the first groove 2211 is less than the depth of the second groove 2214, a limiting surface can be formed at the end of the first groove 2211 facing the bottom of the cavity 221. This limiting surface can be the first inclined surface 22111.

[0062] The end of the second protrusion 2212 facing the bottom of the cavity 221 may be provided with a third inclined surface 22121. One end of the first inclined surface 22111 is connected to the side wall of the previous second protrusion 2212, and the other end of the first inclined surface 22111 is connected to the third inclined surface 22121 provided in the next second protrusion 2212. The first inclined surface 22111 and the third inclined surface 22121 are flush. In this way, a slot can be formed between two adjacent second protrusions 2212 and at the end of the first slide groove 2211 to lock and limit the end of the slider 3223.

[0063] The end of the slider 3223 away from the bottom of the cavity 221 may be provided with multiple second inclined surfaces 32231 along the circumferential direction. Among them, the second inclined surfaces 32231 may contact the toothed structure 3212, the first inclined surface 22111 or the third inclined surface 22121, and be subjected to the squeezing action of the toothed structure 3212, the first inclined surface 22111 or the third inclined surface 22121 to make the moving member 322 rotate or rotate. Optionally, the second inclined surface 32231 can be arranged parallel to the third inclined surface 22121 and the first inclined surface 22111, respectively. In addition, the first inclined surface 22111, the second inclined surface 32231 and the third inclined surface 22121 can also be arc-shaped grooves. For example, the second inclined surface 32231 is a convex arc surface, and the first inclined surface 22111 and the third inclined surface 22121 are both concave arc surfaces, or the second inclined surface 32231 is a concave arc surface, and the first inclined surface 22111 and the third inclined surface 22121 are both convex arc surfaces, etc. The specific choice can be made according to the actual working conditions.

[0064] Based on the above configuration, pressing the force-applying component 321 causes the moving component 322 to move towards the bottom of the cavity 221 via the cooperating toothed structure 3212 and the second inclined surface 32231. During this process, the first protrusion 3211 can slide along the first slide groove 2211, and the slider 3223 can slide along the second slide groove 2214. Thus, the second inclined surface 3223 can be compressed by the toothed structure 3212 of the force-applying component 321 abutting against the second inclined surface 32231. 2231, and the moving part 322 is also subjected to the reverse elastic force of the elastic part 323, so that the moving part 322 moves towards the bottom of the cavity 221 under the cooperation of the slider 3223 and the second sliding groove 2214; at the same time, under the action of the moving part 322, the locking part 31 can be extended relative to the mounting hole 222 and cooperate with the locking groove 12, thereby locking the connecting protrusion 22 and the connecting groove 11, so as to lock the temple 20 and the frame 10.

[0065] As the moving part 322 continues to move toward the bottom of the cavity 221, the slider 3223 slides out of the second groove 2214, making the second inclined surface 32231 of the moving part 322 flush with the third inclined surface 22121. At this time, the slider 3223 is no longer subject to the circumferential limiting effect of the second protrusion 2212. The torque generated by the force-applying part 321 in the circumferential direction of the cavity 221 through the squeezing action of the toothed structure 3212 on the second inclined surface 32231 causes the moving part 322 to rotate a certain angle in the circumferential direction in the cavity 221, thereby causing the slider 3223 to deviate from the second groove 2214 in the circumferential direction.

[0066] When the force-applying component 321 is released, under the elastic force of the elastic component 323, the moving component 322 can move a certain distance away from the bottom of the cavity 221. As the moving component 322 continues to move, the second inclined surface 32231 can abut against the third inclined surface 22121 of the second protrusion 2212. Under the guidance of the third inclined surface 22121, the moving component 322 moves away from the bottom of the cavity 221 and rotates a certain angle in the circumferential direction. Finally, the second inclined surface 32231 slides along the third inclined surface 22121 and rotates until it abuts against the first inclined surface 22111. In this way, the moving component 322 can be limited by the engagement of the slider 3223 and the slot to prevent the moving component 322 from continuing to move away from the bottom of the cavity 221 and rotate in the circumferential direction under the elastic force of the elastic component 323. In this case, since the moving part 322 cannot return to its original position, the locking part 31 cannot retract relative to the mounting hole 222 under the action of the moving part 322, and remains engaged with the locking groove 12, thereby ensuring the reliability of the connection between the temple 20 and the frame 10.

[0067] When it is necessary to separate the temple 20 from the frame 10, the force-applying member 321 can be pressed again. The force-applying member 321 will drive the moving member 322 to move towards the bottom of the cavity 221 through the matching toothed structure 3212 and the second inclined surface 32231. In this way, the second inclined surface 32231 can be separated from the first inclined surface 22111, that is, the slider 3223 can be separated from the slot.

[0068] As the moving part continues to move toward the bottom of the cavity 221, the second inclined surface 32231 of the moving part 322 becomes flush with the third inclined surface 22121 of the next second protrusion 2212. At this time, the force-applying part 321 generates a torque along the circumference of the cavity 221 through the squeezing action of the toothed structure 3212 on the second inclined surface 32231, causing the moving part 322 to continue to rotate a certain angle in the circumference of the cavity 221, thereby causing the slider 3223 to deviate from the first slide groove 2211 in the circumference.

[0069] Release the force-applying component 321. Under the elastic force of the elastic component 323, the moving component 322 is driven to move back to its original position in the direction away from the bottom of the cavity 221. As the moving component 322 continues to move, the second inclined surface 32231 abuts against the third inclined surface 22121 at the end of the second protrusion 2212. Guided by the third inclined surface 22121, the moving component 322 can move in the direction away from the bottom of the cavity 221 and rotate in the circumferential direction, so that the slider 3223 can rotate to the position opposite to the second groove 22141.

[0070] As the force-applying component 321 continues to be released, the slider 3223 continues to slide along the second slide groove 2214 under the elastic force of the elastic component 323. At the same time, as the moving component 322 moves, the effect on the locking component 31 can be reduced or even released, so that the locking component 31 can disengage from the locking groove 12 and retract relative to the mounting hole 222, thereby releasing the connecting protrusion 22 from the connecting groove 11, so as to facilitate the disassembly of the temple 20 and the frame 10.

[0071] To further improve the stability of the elastic element 323, a first limiting structure 2213 can be provided at the bottom of the cavity 221, and a second limiting structure 3222 can be provided at the end of the moving element 322 facing the bottom of the cavity 221. The two ends of the elastic element 323 are respectively limited and engaged with the first limiting structure 2213 and the second limiting structure 3222, such as... Figure 5 As shown. Based on this, the first limiting structure 2213 and the second limiting structure 3222 can provide lateral limiting for both ends of the elastic member 323, preventing the elastic member 323 from moving arbitrarily. At the same time, it also helps to improve the stability of the elastic member 323 when compressed, and effectively prevents the elastic member 323 from twisting and deforming.

[0072] Optionally, the first limiting structure 2213 can be a limiting groove or a limiting hole, and the second limiting structure 3222 can be a limiting groove or a limiting hole.

[0073] In summary, the embodiments of this application facilitate the disassembly and assembly of the temple 20 and the frame 10, enabling quick disassembly and assembly between the temple 20 and the frame 10, making it convenient for users to replace the frame 10 or the temple 20, and improving the user experience.

[0074] The embodiments of this application have been described above with reference to the accompanying drawings. However, this application is not limited to the specific embodiments described above. The specific embodiments described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of this application without departing from the spirit and scope of the claims, and all of these forms are within the protection scope of this application.

Claims

1. A pair of eyeglasses, characterized in that, Includes the frame, temples, and locking mechanism; One of the frame and the temple is provided with a connecting groove, and the other is provided with a connecting protrusion. The connecting protrusion is inserted into the connecting groove. The side wall of the connecting groove is provided with a locking groove, and the side wall of the connecting protrusion is provided with a mounting hole. The locking assembly includes a locking member and an operating mechanism. The locking member is movably disposed on the connecting protrusion and corresponds to the mounting hole. The operating mechanism is disposed on the connecting protrusion and is used to extend the locking member relative to the mounting hole to engage with the locking groove, or to retract relative to the mounting hole to separate from the locking groove.

2. The eyeglasses according to claim 1, characterized in that, The connecting protrusion has a cavity with one end open, and the mounting hole communicates with the inner cavity of the cavity; At least a portion of the operating mechanism is movably disposed within the cavity; The operating mechanism is coupled or connected to the locking member to drive the locking member to extend or retract relative to the mounting hole.

3. The eyeglasses according to claim 2, characterized in that, The operating mechanism includes a force-applying component, a moving component, and an elastic component. One end of the force-applying component is movably disposed in the cavity. The moving component is movably disposed in the cavity and contacts one end of the force-applying component. The elastic component elastically connects the force-applying component to the connecting protrusion, or elastically connects the moving component to the connecting protrusion. When the force-applying member moves the moving member, the locking member extends relative to the mounting hole; when the elastic member moves the force-applying member, the locking member retracts relative to the mounting hole.

4. The eyeglasses according to claim 3, characterized in that, The outer peripheral surface of the movable component is sealed to the inner wall of the cavity, the locking component is sealed to the mounting hole, and the movable component, the inner wall of the cavity, and the locking component together form a sealed space. When the force-applying member moves the moving member, the locking member extends relative to the mounting hole by increasing the pressure in the sealed space; when the elastic member moves the moving member, the locking member retracts relative to the mounting hole by decreasing the pressure in the sealed space.

5. The eyeglasses according to claim 4, characterized in that, The locking assembly further includes a sealing ring. The outer peripheral surface of the moving part or the inner wall surface of the cavity is provided with a mounting groove extending in the circumferential direction. The sealing ring is disposed in the mounting groove and is sealed between the outer peripheral surface of the moving part and the inner wall surface of the cavity.

6. The eyeglasses according to claim 4 or 5, characterized in that, The inner wall of the cavity is provided with a plurality of second protrusions arranged at intervals along the circumference, and a sliding groove is formed between two adjacent second protrusions, the sliding groove extending along the moving direction of the moving member; The force-applying component has a plurality of first protrusions on its outer periphery, and the plurality of first protrusions are slidably connected to the plurality of sliding grooves respectively.

7. The eyeglasses according to claim 6, characterized in that, The plurality of said grooves include a first groove and a second groove arranged adjacent to each other along the periphery of the cavity, wherein the depth of the first groove is less than the depth of the second groove along the radial direction of the cavity; By pressing the force-applying member, at least a portion of the movable member switches between adjacent first and second slide grooves to change the pressure in the sealed space, causing the locking member to extend or retract relative to the mounting hole.

8. The eyeglasses according to any one of claims 2 to 5, characterized in that, The locking assembly further includes a flexible connector located on the outer periphery of the locking member and flexibly connecting the locking member to the connecting protrusion.

9. The eyeglasses according to claim 1, characterized in that, The connecting groove is a cylindrical groove that extends through at least one end, and the side wall of the connecting groove is provided with a groove opening; The connecting protrusion is a columnar protrusion that enters the connecting groove from one end. At least a portion of the temple is located at the groove opening, and the groove wall at the groove opening limits the connection protrusion.

10. The eyeglasses according to any one of claims 3 to 5, characterized in that, The bottom of the cavity is provided with a first limiting structure, and the end of the movable component facing the bottom of the cavity is provided with a second limiting structure; The two ends of the elastic element are respectively limited and engaged with the first limiting structure and the second limiting structure.