Intelligent wearable device

By designing a combination of sliders, limiters, and snap-fit ​​components in smart wearable devices, the portability issue caused by the separate design of the earphones and the device was solved, enabling a detachable connection between the earphones and the main body of the device and improving the user experience.

CN120821180APending Publication Date: 2025-10-21BEIJING XIAOMI MOBILE SOFTWARE CO LTD
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Patent Information

Application Number
CN202410451435.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-04-15
Publication Date
2025-10-21

AI Technical Summary

Technical Problem

The current design of separate earphones from the device in smart wearable devices fails to meet portability requirements, resulting in a poor user experience.

Method used

Design a smart wearable device comprising a device body, earphones, and detachable components. The earphones are detachably connected to the device body by a sliding connection between a sliding component and a support base, a limiting component for positioning, and a snap-fit ​​component for rotation. The earphones can be fixed inside the cavity of the device body or removed from it.

Benefits of technology

The design integrates the headphones with the main device, improving portability and user experience, and ensuring reliable mounting and easy disassembly of the headphones.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses intelligent wearable equipment, and belongs to the technical field of intelligent wearing. The intelligent wearable device comprises a device body, an earphone and a dismounting assembly. The sliding part in the dismounting and mounting assembly is in sliding connection with the supporting base, and the sliding part can slide between the first position and the second position. And the sliding part is limited by the limiting part in the dismounting and mounting assembly, and the limiting part can limit the sliding part at the first position or the second position. The clamping piece in the dismounting assembly can be rotationally connected with the sliding piece through the first end of the clamping piece, so that when the sliding piece is located at the first position, the buckle located at the second end of the clamping piece can be clamped with the clamping groove of the earphone, or when the sliding piece is located at the second position, the buckle can be separated from the clamping groove of the earphone. Therefore, the detachable connection between the earphone and the dismounting assembly can be realized, so that the earphone can be clamped and fixed in the second cavity of the equipment main body or can be taken out from the second cavity of the equipment main body.
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Description

Technical Field

[0001] The present application relates to the field of smart wearable technology, and in particular to a smart wearable device. Background Art

[0002] With the development of technology, people are demanding more portable smart devices, leading to the emergence of smart wearable devices. Their widespread use has brought numerous conveniences to users' lives. For example, smart wearable devices can monitor a user's physical condition in real time and record their movements in real time.

[0003] Currently, when smart wearable devices need to play voice, users generally use headphones to receive voice information to protect user privacy. However, the design of separating headphones from smart wearable devices cannot further meet users' portability requirements. Summary of the Invention

[0004] The present invention provides a smart wearable device that can solve the problem of separate earphone and smart wearable device designs in the prior art. The technical solution is as follows:

[0005] Provided is a smart wearable device, comprising: a device body, earphones, and detachable components;

[0006] The device body has a first cavity and a second cavity that are connected to each other, and an opening that is connected to the second cavity;

[0007] The earphone has a card slot;

[0008] The disassembly and assembly assembly comprises: a support seat, a sliding member, a clamping member and a limiting member; the support seat is fixed in the first cavity; the sliding member is slidably connected to the support seat; the first end of the clamping member is rotatably connected to the sliding member, and the second end of the clamping member has a buckle that cooperates with the slot; the limiting member is respectively connected to the support seat and the clamping member, and the limiting member is used to limit the sliding member to a first position or a second position, and the second position is closer to the opening than the first position;

[0009] In which, when at least part of the earphone is located in the second cavity and the sliding member is in the first position, at least part of the buckle is located in the second cavity to engage with the slot; when the sliding member is in the second position, the entire buckle is located in the first cavity.

[0010] Optionally, the clamping member includes: a main body portion rotatably connected to the sliding member, the buckle fixedly connected to an end of the main body portion facing away from the sliding member, and a guide protrusion fixedly connected to the buckle;

[0011] The inner wall of the first cavity is provided with a guiding inclined surface that cooperates with the guiding protrusion;

[0012] Wherein, during the process of the sliding member moving from the first position to the second position, the guide protrusion can slide on the guide inclined surface in the direction toward the opening, so that the buckle can be completely rotated into the first cavity; during the process of the sliding member moving from the second position to the first position, the guide protrusion can slide on the guide inclined surface in the direction away from the opening, so that at least part of the buckle can be rotated into the second cavity.

[0013] Optionally, the disassembly and assembly component further includes: a connecting shaft for connecting the sliding member and the main body, and the main body is rotatably connected to the sliding member through the connecting shaft.

[0014] Optionally, the disassembly and assembly component further includes: a torsion spring sleeved on the connecting shaft, and the torsion spring is respectively arranged to abut against the sliding member and the clamping member.

[0015] Optionally, a side of the main body portion facing the second cavity is an inclined surface, and a width of the main body portion gradually decreases from the first position to the second position;

[0016] Wherein, after the sliding member is in the second position, the end of the main body portion close to the buckle is located in the first cavity, and the end of the main body portion close to the sliding member is located in the second cavity.

[0017] Optionally, the sliding member includes: a sliding member body located in the first cavity and slidably connected to the support seat, and an abutting portion fixedly connected to the sliding member body, at least part of the abutting portion is located in the second cavity, and the abutting portion is used to abut against the earphone after at least part of the earphone is located in the second cavity.

[0018] Optionally, the sliding member further includes: an elastic buffer portion fixed on the abutting portion, and the elastic buffer portion is used to abut against the earphone.

[0019] Optionally, the sliding member has a first limiting groove and a second limiting groove on a side facing the limiting member, and a guide groove for connecting the first limiting groove and the second limiting groove, and the first limiting groove is closer to the opening than the second limiting groove;

[0020] The limiting member includes: a rod body, a connecting portion fixedly connected to one end of the rod body, and a limiting portion fixedly connected to the other end of the rod body, the connecting portion being rotatably connected to the support seat, and at least a portion of the limiting portion being able to slide in the guide groove;

[0021] Wherein, after the limiting portion slides into the first limiting groove, the sliding member is in the first position; after the limiting portion slides into the second limiting groove, the sliding member is in the second position.

[0022] Optionally, the guide groove includes: a first sub-guide groove and a second sub-guide groove;

[0023] The first end of the first sub-guide groove is connected to the first limiting groove, the second end of the first sub-guide groove is connected to the first end of the second sub-guide groove, and the second end of the second sub-guide groove is connected to the second limiting groove;

[0024] Wherein, the communicating position between the first sub-guide groove and the second sub-guide groove is closer to the opening than the first limiting groove.

[0025] Optionally, the guide groove further includes: a third sub-guide groove and a fourth sub-guide groove;

[0026] The first end of the third sub-guide groove is communicated with the first limiting groove, the second end of the third sub-guide groove is communicated with the first end of the fourth sub-guide groove, and the second end of the fourth sub-guide groove is communicated with the second limiting groove;

[0027] In which, the connecting position between the third sub-guide groove and the fourth sub-guide groove is closer to the opening relative to the first limiting groove; the first sub-guide groove and the third sub-guide groove are respectively located on both sides of the first limiting groove, and the second sub-guide groove and the fourth sub-guide groove are respectively located on both sides of the second limiting groove.

[0028] Optionally, the depth of the first sub-guide groove at a position where it communicates with the first limiting groove is greater than the depth of the third sub-guide groove at a position where it communicates with the first limiting groove;

[0029] The depth of the second sub-guide groove at the communication position with the second limiting groove is smaller than the depth of the fourth sub-guide groove at the communication position with the second limiting groove.

[0030] Optionally, the bottom surface of the first sub-guide groove includes: a first transition slope, and the depth of the first sub-guide groove at a position where it communicates with the first limiting groove is less than the depth of the first sub-guide groove at a position where it communicates with the second sub-guide groove;

[0031] The bottom surface of the second sub-guide groove includes: a second transition slope, and the depth of the second sub-guide groove at the position where it communicates with the first sub-guide groove is greater than the depth of the second sub-guide groove at the position where it communicates with the second limiting groove;

[0032] The bottom surface of the third sub-guide groove includes: a third transition slope, and the depth of the position where the third sub-guide groove communicates with the first limiting groove is less than the depth of the position where the third sub-guide groove communicates with the fourth sub-conductive groove;

[0033] The bottom surface of the fourth sub-guide groove includes a fourth transition slope, and the depth of the fourth sub-guide groove at the position where it communicates with the third sub-guide groove is less than the depth of the fourth sub-guide groove at the position where it communicates with the second limiting groove.

[0034] Optionally, the disassembly and assembly component further includes: a spring plate located between the limiting member and the support seat, a first end of the spring plate abuts against an end of the rod body close to the limiting portion, and a second end of the spring plate is connected to the support seat.

[0035] Optionally, the disassembly and assembly component also includes: an elastic element located between the sliding member and the support seat, the two ends of the elastic element are respectively connected to the sliding member and the support seat, and the elastic compression direction of the elastic element is parallel to the sliding direction of the sliding member relative to the support seat.

[0036] Optionally, the earphone includes: an earphone body, and a protective portion fixedly connected to a sound outlet portion of the earphone body, the protective portion is elastic, and the earphone body has the card slot;

[0037] Wherein, at least a portion of the earphone is located in the second cavity, and after the buckle is engaged with the card slot, the protective portion is entirely located in the second cavity and abuts against the bottom of the second cavity.

[0038] The beneficial effects of the technical solutions provided in the embodiments of the present application include at least:

[0039] A smart wearable device includes: a device body, earphones and a disassembly assembly. The sliding member in the disassembly assembly is connected to the support seat through sliding, so that the sliding member can slide between a first position and a second position. The limiting member in the disassembly assembly limits the sliding member, and the limiting member can limit the sliding member to the first position or the second position. The snap-fitting member in the disassembly assembly can be connected to the sliding member through the rotation of the first end of the snap-fitting member, so that when the sliding member is in the first position, the buckle at the second end of the snap-fitting member can be engaged with the card slot of the earphone, or when the sliding member is in the second position, the buckle in the snap-fitting member can be separated from the card slot of the earphone. In this way, a detachable connection between the earphone and the disassembly assembly can be achieved, so that the earphone can be snap-fitted and fixed in the second cavity of the device body, or the earphone can be taken out from the second cavity of the device body. BRIEF DESCRIPTION OF THE DRAWINGS

[0040] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0041] Figure 1 This is a schematic diagram of the structure of a smart wearable device provided in an embodiment of the present application;

[0042] Figure 2 This is an exploded diagram of a smart wearable device provided in an embodiment of the present application;

[0043] Figure 3 This is a schematic structural diagram of an earphone provided in an embodiment of the present application;

[0044] Figure 4 This is a structural diagram of a disassembly and assembly component provided in an embodiment of the present application;

[0045] Figure 5 is a cross-sectional view of a disassembly assembly provided in an embodiment of the present application;

[0046] Figure 6 is a cross-sectional view of a smart wearable device provided in an embodiment of the present application;

[0047] Figure 7 yes Figure 6 A partial enlarged view of the smart wearable device shown;

[0048] Figure 8 yes Figure 6 A partially enlarged view of another smart wearable device is shown;

[0049] Figure 9 This is a structural diagram of a clamping member provided in an embodiment of the present application;

[0050] Figure 10 is a cross-sectional view of another smart wearable device provided in an embodiment of the present application;

[0051] Figure 11 This is a schematic diagram of the connection between the clamping member and the sliding member when the sliding member is in the first position provided by an embodiment of the present application;

[0052] Figure 12 Schematic diagram of the structure of a torsion spring provided in an embodiment of the present application;

[0053] Figure 13 is a cross-sectional view of another smart wearable device provided in an embodiment of the present application;

[0054] Figure 14This is a schematic diagram of the connection between the clamping member and the sliding member when the sliding member is in the second position provided by an embodiment of the present application;

[0055] Figure 15 This is a structural diagram of another disassembly and assembly component provided in an embodiment of the present application;

[0056] Figure 16 This is a schematic diagram of a limiting portion provided by an embodiment of the present application being located in a first limiting groove;

[0057] Figure 17 This is a schematic diagram of a limiting portion provided by an embodiment of the present application being located in a second limiting groove;

[0058] Figure 18 This is a schematic structural diagram of a position limiting member provided in an embodiment of the present application;

[0059] Figure 19 This is a schematic diagram of the connection between a support base, a limiting member and a spring provided in an embodiment of the present application;

[0060] Figure 20 This is a structural diagram of another headset provided in an embodiment of the present application. DETAILED DESCRIPTION

[0061] In order to make the objectives, technical solutions and advantages of this application clearer, the implementation methods of this application will be further described in detail below with reference to the accompanying drawings.

[0062] This application provides a smart wearable device, which can be a smart watch, smart bracelet or smart glasses. Figure 1 and Figure 2 , Figure 1 This is a schematic diagram of the structure of a smart wearable device provided in an embodiment of the present application. Figure 2 This is an exploded view of a smart wearable device provided in an embodiment of the present application. The smart wearable device 000 may include: a device body 100, earphones 200 and a disassembly assembly 300. It should be noted that, Figure 1 The smart wearable device 000 is taken as an example of a smart watch for schematic description. When the smart wearable device 000 is a smart watch, the device body 100 in the smart wearable device 000 is the watch body.

[0063] The device body 100 in the smart wearable device 000 may have a first cavity K1 and a second cavity K2 that are connected to each other, and an opening O that is connected to the second cavity K2.

[0064] The assembly and disassembly component 300 of the smart wearable device 000 can be installed in the first cavity K1 of the device body 100, and the earphone 200 of the smart wearable device 000 can be placed in the second cavity K2 of the device body 100. After the earphone 200 is placed in the second cavity K2, the assembly and disassembly component 300 disposed in the first cavity K1 can snap the earphone 200 into the second cavity K2, making it difficult for the earphone 200 to fall out of the second cavity K2. In this way, the earphone 200 and the device body 100 can be integrated into one design.

[0065] For example, the user can place the earphone 200 into the second cavity K2 through the opening O of the device body 100, and then use the disassembly assembly 300 to snap the earphone 200 into the second cavity K2. After the snap-fit ​​relationship between the disassembly assembly 300 and the earphone 200 is released, the user can remove the earphone from the second cavity K2 through the opening O of the device body 100.

[0066] It should be noted that there are two earphones 200 in the smart wearable device 000. Accordingly, two second cavities K2 for respectively accommodating the two earphones 200 need to be provided on the device body 100, and two detachable assemblies 300 for respectively snapping on the two earphones 200 need to be integrated in the device body 100. To this end, two first cavities K1 and two openings O need to be provided in the device body 100, each of which is connected to the two second cavities K2. The two detachable assemblies 300 can be installed in the two first cavities K1, and the two earphones 200 can be placed in the two second cavities K2 through the two openings O. The following embodiment will schematically illustrate how an earphone 200 and a corresponding snap-on assembly 300 cooperate.

[0067] In the embodiments of this application, Figure 3 As shown, Figure 3 2 is a schematic structural diagram of an earphone provided in an embodiment of the present application. The earphone 200 in the smart wearable device 000 may have a card slot H.

[0068] like Figure 4 and Figure 5 As shown, Figure 4 This is a structural diagram of a disassembly and assembly component provided in an embodiment of the present application. Figure 5 This is a cross-sectional view of a disassembly assembly provided in an embodiment of the present application. The disassembly assembly 300 in the smart wearable device 000 may include a support base 301, a sliding member 302, a snap-on member 303, and a stopper 304. The support base 301 in the disassembly assembly 300 may be fixed within the first cavity K1 of the device body 100. The sliding member 302 in the disassembly assembly 300 may be slidably connected to the support base 301.

[0069] The first end of the snap-fit ​​member 303 in the disassembly assembly 300 can be rotatably connected to the sliding member 302, and the second end of the snap-fit ​​member 303 can have a buckle 3031 that engages with the slot H of the earphone 200. Here, through the engagement of the buckle 3031 in the snap-fit ​​member 303 with the slot H of the earphone 200, the earphone 200 can be detachably connected to the disassembly assembly 300, so that the earphone 200 can be snap-fitted and fixed in the second cavity K2 of the device body 100, or the earphone 200 can be removed from the second cavity K2 of the device body 100.

[0070] The limiting member 304 in the disassembly assembly 300 can be connected to the support base 301 and the sliding member 302 respectively. The limiting member 304 in the disassembly assembly 300 can be used to limit the sliding member 302 to a first position or a second position. The second position of the sliding member 302 can be closer to the opening O of the device body 100 than the first position of the sliding member 302.

[0071] Among them, Figure 6 and Figure 7 As shown, Figure 6 is a cross-sectional view of a smart wearable device provided in an embodiment of the present application, Figure 7 yes Figure 6 A partial enlarged view of the smart wearable device is shown. When at least part of the earphone 200 is located in the second cavity K2 of the device body 100 and the sliding member 302 in the disassembly assembly 300 is in the first position, at least part of the buckle 3031 in the snap-fit ​​member 303 can be located in the second cavity K2 of the device body 100 to engage with the card slot H of the earphone 200, so that the earphone 200 can be snap-fitted and fixed in the second cavity K2 of the device body 100. Figure 8 As shown, Figure 8 yes Figure 6 A partial enlarged view of another smart wearable device is shown. When the sliding member 302 in the disassembly assembly 300 is in the second position, the buckle 3031 in the snap-fit ​​member 303 can be completely located in the first cavity K1 of the device body 100, so that the snap-fit ​​relationship between the buckle 3031 in the snap-fit ​​member 303 and the slot H of the earphone 200 can be released, thereby allowing the earphone 200 to be removed from the second cavity K2 of the device body 100.

[0072] In the present application, the sliding member 302 in the disassembly assembly 300 is slidably connected to the support base 301, so that the sliding member 302 can slide between a first position and a second position. The limiting member 304 in the disassembly assembly 300 limits the sliding member 302, so that the limiting member 304 can limit the sliding member 302 to the first position or the second position. The snap-fitting member 303 in the disassembly assembly 300 can be rotatably connected to the sliding member 302 through the first end of the snap-fitting member 303, so that when the sliding member 302 is in the first position, the snap-fitting member 3031 at the second end of the snap-fitting member 303 can be snapped into the slot H of the earphone 200, or when the sliding member 302 is in the second position, the snap-fitting member 303 can be separated from the slot H of the earphone 200. In this way, a detachable connection between the earphone 200 and the disassembly assembly 300 can be achieved, so that the earphone 200 can be snap-fitted and fixed in the second cavity K2 of the device body 100, or the earphone 200 can be removed from the second cavity K2 of the device body 100.

[0073] In summary, an embodiment of the present application provides a smart wearable device, comprising: a device body, an earphone, and a disassembly assembly. Through the sliding connection between the sliding member and the support seat in the disassembly assembly, the sliding member can slide between a first position and a second position. Then, through the limiting member in the disassembly assembly to limit the sliding member, the limiting member can limit the sliding member to the first position or the second position. The snap-fitting member in the disassembly assembly can be connected to the sliding member by rotation of the first end of the snap-fitting member, so that when the sliding member is in the first position, the buckle at the second end of the snap-fitting member can be engaged with the card slot of the earphone, or when the sliding member is in the second position, the buckle in the snap-fitting member can be separated from the card slot of the earphone. In this way, a detachable connection between the earphone and the disassembly assembly can be achieved, so that the earphone can be snap-fitted and fixed in the second cavity of the device body, or the earphone can be taken out from the second cavity of the device body.

[0074] Optional, please refer to Figure 9 , Figure 9 The figure is a schematic diagram of the structure of a clamping member provided in an embodiment of the present application. The clamping member 303 in the disassembly assembly 300 may include: a main body 3032 rotatably connected to the sliding member 302 in the disassembly assembly 300; a buckle 3031 fixedly connected to the end of the main body 3032 facing away from the sliding member 302; and a guide protrusion 3033 fixedly connected to the buckle 3031.

[0075] Please refer to Figure 10 , Figure 10 1 is a cross-sectional view of another smart wearable device provided in an embodiment of the present application. The inner wall of the first cavity K1 in the device body 100 has a guide slope P that cooperates with the guide protrusion 3033 in the clamping member 303.

[0076] In the process of moving the sliding member 302 in the disassembly and assembly component 300 from the first position to the second position, the guide protrusion 3033 in the snap-fit ​​member 303 can slide on the guide slope P in the direction toward the opening O of the device body 100, so that the buckle 3031 in the snap-fit ​​member 303 can be completely rotated into the first cavity K1 of the device body 100. In this way, the snap-fit ​​relationship between the buckle 3031 in the snap-fit ​​member 303 and the card slot H of the earphone 200 can be released, so that the earphone 200 can be taken out from the second cavity K2 of the device body 100. During the process of the sliding member 302 in the disassembly and assembly component 300 moving from the second position to the first position, the guide protrusion 3033 in the snap-fit ​​member 303 can slide on the guide slope P in the direction away from the opening O of the device body 100, so that at least a part of the buckle 3031 in the snap-fit ​​member 303 can be rotated into the second cavity K2 of the device body 100, and the buckle 3031 in the snap-fit ​​member 303 can be engaged with the slot H of the earphone 200, so that the earphone 200 can be snapped and fixed in the second cavity K2 of the device body 100.

[0077] It should be noted that the guide slope P in the device body 100 extends along the direction of movement of the slider 302 toward the opening O of the device body 100 and also extends from the second cavity K2 of the device body 100 into the first cavity K1. Thus, as the slider 302 slides from the first position to the second position closer to the opening O of the device body 100, the clip 303, which is rotatably connected to the slider 302, can also move toward the opening O of the device body 100. Simultaneously, as the guide protrusion 3033 in the clip 303 cooperates with the guide slope P to slide, the buckle 3031 in the clip 303 can simultaneously move toward the opening O of the device body 100 and rotate toward the first cavity K1 of the device body 100. After the slider 302 moves from the first position to the second position, the buckle 3031 in the clip 303 can fully rotate into the first cavity K1 of the device body 100, releasing the engagement between the buckle 3031 and the earphone's slot H.

[0078] Similarly, during the movement of the slider 302 from the second position to the first position, the engaging member 303, which is rotatably connected to the slider 302, can also move in a direction away from the opening O of the device body 100. Simultaneously, as the guide protrusion 3033 in the engaging member 303 slides in conjunction with the guide slope P, the buckle 3031 in the engaging member 303 can simultaneously move away from the opening O of the device body 100 and rotate toward the second cavity K2 of the device body 100. After the slider 302 moves from the second position to the first position, at least a portion of the buckle 3031 in the engaging member 303 can rotate into the second cavity K2, allowing the buckle 3031 to engage with the slot H of the earphone 200.

[0079] In this application, please refer to Figure 10 and Figure 11 , Figure 11 Schematic diagram of the connection between the clamping member and the sliding member when the sliding member is in the first position, according to an embodiment of the present application. The assembly and disassembly component 300 in the smart wearable device 000 may further include a connecting shaft 305 for connecting the sliding member 302 to the main body 3032 of the clamping member 303. The main body 3032 of the clamping member 303 can be rotatably connected to the sliding member 302 via the connecting shaft 305.

[0080] In this application, if Figure 11 As shown, the disassembly assembly 300 in the smart wearable device 000 may further include: a torsion spring 306 sleeved on the connecting shaft 305. The torsion spring 306 in the disassembly assembly 300 may be respectively disposed in contact with the sliding member 302 and the clamping member 303.

[0081] Please note that, please refer to Figure 12 , Figure 12 Schematic diagram of the structure of a torsion spring provided in an embodiment of the present application. The torsion spring M may be the torsion spring 306 in the disassembly assembly 300. The torsion spring M may include: a torsion spring body M1, a first torsion arm M2, and a second torsion arm M3. The torsion spring body M1 may be sleeved onto a connecting shaft, and the first torsion arm M2 and the second torsion arm M3 may respectively abut between two relatively rotating components. After the torsion spring M is fixed between the two relatively rotating components, the torsion spring M in its initial state can create a certain distance between the two components. After the two relatively rotating components rotate toward each other, the torsion spring M may be compressed, and the angle between the first torsion arm M2 and the second torsion arm M3 in the torsion spring M may decrease, allowing the torsion spring M to store a certain amount of elastic force. After the compressed torsion spring M returns to its original initial state, the stored elastic force in the torsion spring M can restore the two relatively rotating components to their original positions.

[0082] In this application, the torsion spring 306 in the disassembly assembly 300 can be Figure 12 The torsion spring M shown. The torsion spring body M1 in the torsion spring 306 can be sleeved on the connecting shaft 305 in the disassembly assembly 300. The first torsion arm M2 in the torsion spring 306 can abut against the sliding member 302, and the second torsion arm M3 in the torsion spring 306 can abut against the main body 3032 in the clamping member 303.

[0083] It should be noted that when the slider 302 is in the first position and the buckle 3031 in the engaging member 303 engages with the earphone 200's slot H, the torsion spring 306 can be compressed, and the compressed torsion spring 306 can exert a certain elastic force. Because the slider 302, which abuts the first torsion arm M2 of the torsion spring 306, is restrained in the first position by the limiter 304, the elastic force exerted by the torsion spring 306 on the engaging member 303, which abuts the second torsion arm M3, is directed toward the second cavity K2 of the device body 100. This ensures the secure engagement between the buckle 3031 in the engaging member 303 and the earphone 200's slot H, preventing the buckle 3031 from automatically falling out of the earphone 200's slot H, further ensuring the secure engagement of the earphone 200 within the second cavity K2 of the device body 100.

[0084] Please refer to Figure 13 and Figure 14 , Figure 13 is a cross-sectional view of another smart wearable device provided in an embodiment of the present application. Figure 14 It is a schematic diagram of the connection between the clamping member and the sliding member when the sliding member is in the second position provided by an embodiment of the present application. In the process of the sliding member 302 moving from the first position to the second position, under the cooperation and sliding of the guide protrusion 3033 in the clamping member 303 and the guide slope P, the buckle 3031 in the clamping member 303 rotates toward the first cavity K1 of the device body 100. For this reason, in this process, the angle between the first torsion arm M2 abutting against the sliding member 302 and the second torsion arm M3 abutting against the clamping member 303 gradually becomes smaller, that is, the elastic force of the compressed torsion spring 306 gradually becomes larger. For this reason, when the sliding member 302 is in the second position, the torsion spring 306 is compressed and has a large elastic force.

[0085] Thus, because the compressed torsion spring 306 has a relatively large elastic force when the slider 302 is in the second position, the elastic force of the torsion spring 306 on the clip 303 allows the guide protrusion 3033 of the clip 303 to continuously abut against the guide slope P during the sliding movement of the slider 302 from the second position to the first position and the sliding engagement of the guide protrusion 3033 of the clip 303 with the guide slope P. When the slider 302 moves to the first position and the guide protrusion 3033 of the clip 303 disengages from the guide slope P, the elastic force of the torsion spring 306 allows the buckle 3031 of the clip 303 to continue rotating toward the second cavity K2 of the device body 100 until the buckle 3031 engages with the slot H in the earphone 200.

[0086] Please note that, please refer to Figure 10 、 Figure 13 and Figure 15 , Figure 15 3 is a schematic diagram of the structure of another disassembly assembly provided in an embodiment of the present application. The support base 301 in the disassembly assembly 300 may include a sliding protrusion 3011, and the sliding member 302 in the disassembly assembly 300 may include a sliding groove 3021 slidably connected to the sliding protrusion 3011 in the support base 301. Thus, by sliding the sliding protrusion 3011 in the support base 301 within the sliding groove 3021 in the sliding member 302, the sliding member 302 can slide from a first position toward the opening O of the device body 100 to a second position, or from the second position away from the opening O of the device body 100 to the first position.

[0087] Optional, such as Figure 10 、 Figure 13 and Figure 15 As shown, the sliding member 302 in the disassembly assembly 300 may further include: a sliding member body 3022 located in the first cavity K1 of the device body 100 and slidably connected to the support base 301, and an abutting portion 3023 fixedly connected to the sliding member body 3022. At least a portion of the abutting portion 3023 in the sliding member 302 may be located in the second cavity K2 of the device body 100, and the abutting portion 3023 in the sliding member 302 may be used to abut the earphone 200 after at least a portion of the earphone 200 is located in the second cavity K2 of the device body 100.

[0088] It should be noted that when the slider 302 in the disassembly assembly 300 is in the second position, after the user inserts at least a portion of the earphone 200 into the second cavity K2 through the opening O of the device body 100, the earphone 200 can abut against the abutment portion 3023 in the slider 302. The user can then apply force to the earphone 200 toward the second cavity K2 of the device body 100, causing the earphone 200 to slide against the abutment portion 3023 in the slider 302 in a direction away from the opening O of the device body 100. Furthermore, the sliding of the slider 302 away from the opening O of the device body 100 can drive the latch 303, which is rotatably connected to the slider 302, to also slide away from the opening O of the device body 100. Consequently, the guide protrusion 3033 in the latch 303 and the guide slope P cooperate to slide, allowing the latch 3031 in the latch 303 to rotate toward the second cavity K2 of the device body 100. When the earphone 200 abuts against the sliding member 302 and moves to the first position, the buckle 3031 in the fastening member 303 can be engaged with the slot H of the earphone 200 , so that the earphone 200 can be engaged and fixed in the second cavity K2 of the device body 100 .

[0089] Optional, such as Figure 10 、 Figure 13 and Figure 15 As shown, the sliding member 302 in the disassembly assembly 300 may further include an elastic buffer portion 3024 fixed to the abutting portion 3023 in the sliding member 302. The elastic buffer portion 3024 in the sliding member 302 may be used to abut against the earphone 200. The elastic buffer portion 3024 in the sliding member 302 is elastic. Therefore, when the earphone 200 abuts against the elastic buffer portion 3024 in the sliding member 302 to drive the sliding member 302 to slide, the elastic buffer portion 3024 may protect the earphone 200 from damage.

[0090] Optional, such as Figure 10 and Figure 13 As shown, the side of the main body 3032 of the clamping member 303 facing the second cavity K2 of the device body 100 can be an inclined surface, and the width of the main body 3032 of the clamping member 303 can gradually decrease from the first position of the slider 302 to the second position of the slider 302. When the slider 302 is in the second position, the end of the main body 3032 of the clamping member 303 near the buckle 3031 can be located in the first cavity K1 of the device body 100, and the end of the main body 3032 of the clamping member 303 near the slider 302 can be located in the second cavity K2 of the device body 100.

[0091] It should be noted that if Figure 13As shown, when the slider 302 is in the second position and at least a portion of the earphone 200 is located within the second cavity K2 of the device body 100, the portion of the body portion 3032 located within the second cavity K2 of the device body 100 and facing the earphone 200 can abut against the earphone 200. Thus, as the earphone 200 slides against the elastic buffer portion 3024 of the slider 302 in a direction away from the opening O of the device body 100, that is, as the guide protrusion 3033 of the engaging member 303 slides in cooperation with the guide slope P, the earphone 200 will also abut against the portion of the body portion 3032 located within the second cavity K2 of the device body 100. To this end, when the slider 302 slides to the first position and the guide protrusion 3033 in the engaging member 303 disengages the guide slope P, the earphone 200 abuts against the portion of the body 3032 located within the second cavity K2, allowing the buckle 3031 in the engaging member 303 to continue rotating toward the second cavity K2 of the device body 100 until the buckle 3031 engages with the slot H in the earphone 200. In this manner, the abutment between the earphone 200 and the portion of the body 3032 located within the second cavity K2, and the torsion spring 306, both enable the buckle 3031 in the engaging member 303 to rotate toward the second cavity K2 of the device body 100 until the buckle 3031 engages with the slot H in the earphone 200. This further ensures the reliability of the engagement between the slot H of the earphone 200 and the buckle 3031 in the engaging member 303.

[0092] In this application, please refer to Figure 16 and Figure 17 , Figure 16 This is a schematic diagram of a limiting portion provided in an embodiment of the present application being located in a first limiting groove. Figure 17 This is a schematic diagram of an embodiment of the present application showing a retaining portion positioned within a second retaining groove. The side of the sliding member 302 in the disassembly assembly 300 facing the retaining member 304 includes a first retaining groove S1, a second retaining groove S2, and a guide groove S3 connecting the first retaining groove S1 and the second retaining groove S2. The first retaining groove S1 in the sliding member 304 can be closer to the opening O of the device body 100 than the second retaining groove S2.

[0093] Please refer to Figure 18 , Figure 18 The figure is a schematic diagram of the structure of a position-limiting member provided in an embodiment of the present application. The position-limiting member 304 in the disassembly assembly 300 may include a rod 3041, a connecting portion 3042 fixedly connected to one end of the rod 3041, and a position-limiting portion 3043 fixedly connected to the other end of the rod 3041. The connecting portion 3042 in the position-limiting member 304 is rotatably connected to the support base 301, and at least a portion of the position-limiting portion 3043 in the position-limiting member 304 is capable of sliding within the guide slot S3 of the sliding member 302.

[0094] Here, as Figure 10 and Figure 13 As shown, the support base 301 may have a mounting hole N on one side facing the limiting member 304 . The connecting portion 3042 in the limiting member 304 may rotate in the mounting hole N of the support base 301 , so that the connecting portion 3042 in the limiting member 304 may be rotatably connected to the support base 301 .

[0095] Among them, Figure 10 、 Figure 13 、 Figure 16 and Figure 17 As shown, after the limiting portion 3043 in the limiting member 304 slides into the first limiting groove S1 of the sliding member 302, the sliding member 302 can be in the first position. After the limiting portion 3043 in the limiting member 304 slides into the second limiting groove S2 of the sliding member 302, the sliding member 302 is in the second position.

[0096] Optional, such as Figure 16 and Figure 17 As shown, the guide slot S3 in the sliding member 302 may include a first sub-guide slot S31 and a second sub-guide slot S32. The first end of the first sub-guide slot S31 in the guide slot S3 may communicate with the first limiting slot S1, the second end of the first sub-guide slot S31 in the guide slot S3 may communicate with the first end of the second sub-guide slot S32, and the second end of the second sub-guide slot S32 in the guide slot S3 may communicate with the second limiting slot S2. The connection position between the first sub-guide slot S31 and the second sub-guide slot S32 in the guide slot S3 may be closer to the opening O of the device body 100 relative to the first limiting slot S1.

[0097] Optional, such as Figure 16 and Figure 17 As shown, the guide slot S3 in the sliding member 302 may further include a third sub-guide slot S33 and a fourth sub-guide slot S34. The first end of the third sub-guide slot S33 in the guide slot S3 may be connected to the first limiting slot S1, the second end of the third sub-guide slot S33 in the guide slot S3 may be connected to the first end of the fourth sub-guide slot S34, and the second end of the fourth sub-guide slot S34 in the guide slot S3 may be connected to the second limiting slot S2. The connection position between the third sub-guide slot S33 and the fourth sub-guide slot S34 in the guide slot S3 may be closer to the opening O of the device body 100 relative to the first limiting slot S1. The first sub-guide slot S31 and the third sub-guide slot S33 in the guide slot S3 may be located on either side of the first limiting slot S1, respectively, and the second sub-guide slot S32 and the fourth sub-guide slot S34 in the guide slot S3 may be located on either side of the second limiting slot S2, respectively.

[0098] In this application, if Figure 15 、 Figure 16 and Figure 17 As shown, the disassembly assembly 300 may further include an elastic element 307 located between the sliding member 302 and the support base 301. The two ends of the elastic element 307 in the disassembly assembly 300 may be connected to the sliding member 302 and the support base 301, respectively, and the elastic compression direction of the elastic element 307 is parallel to the sliding direction of the sliding member 302 relative to the support base 301.

[0099] It should be noted that when the slider 302 is in the first position, the elastic element 307 is in a compressed state and has elastic force. Since the support seat 301 in the disassembly assembly 300 is fixed in the first cavity K1 of the device body 100, under the action of the elastic force of the elastic element 307, the slider 302 has a tendency to slide in the direction toward the opening O of the device body 100. To this end, the limiting portion 3043 located in the first limiting groove S1 of the slider 302 can limit the sliding of the slider 302 in the direction toward the opening O of the device body 100. In this way, the limiting member 304 can limit the slider 302 to the first position, which further ensures the reliability of the snap connection between the buckle 3031 in the snap-fit ​​member 303 and the slot H of the earphone 200.

[0100] When the slider 302 is in the second position, the elastic element 307 is also in a compressed state. However, because the second position of the slider 302 is closer to the opening O of the device body 100 than the first position of the slider 302, the elastic force of the elastic element 307 is smaller when the slider 302 is in the second position. Similarly, the limiting portion 3043 located in the second limiting slot S2 of the slider 302 can also limit the sliding of the slider 302 in the direction toward the opening O of the device body 100.

[0101] In this application, if Figure 16 and Figure 17 As shown, the depth of the position where the first sub-guide groove S31 communicates with the first limiting groove S1 may be greater than the depth of the position where the third sub-guide groove S33 communicates with the first limiting groove S1.

[0102] In this way, when at least a portion of the earphone 200 is located in the second cavity K2 of the device body 100, the limiting portion 3043 of the limiting member 304 is located in the first limiting groove S1, and the slider 302 is in the first position, when the user needs to remove the earphone 200 from the second cavity K2 of the device body 100, the user can apply a force toward the second cavity K2 of the device body 100 to the earphone 200, so that the earphone 200 can slide against the elastic buffer portion 3024 of the slider 302 in a direction away from the opening O of the device body 100. During the sliding process of the slider 302 in the direction away from the opening O of the device body 100, the elastic element 307 located between the slider 302 and the support base 301 can be further compressed to store greater elastic force.

[0103] Furthermore, as the slider 302 slides away from the opening O of the device body 100, the depth of the first sub-guide groove S31 of the slider 302 at the point where it connects with the first limiting groove S1 is greater than the depth of the third sub-guide groove S33 at the point where it connects with the first limiting groove S1. Therefore, the limiting portion 3043 of the limiting member 304 can only slide from the first limiting groove S1 into the first sub-guide groove S31. After the limiting portion 3043 of the limiting member 304 slides from the first sub-guide groove S31 into the second sub-guide groove S32, the user no longer needs to apply force to the earphone 200 toward the second cavity K2 of the device body 100. At this point, the stored elastic force of the compressed elastic element 307 is released, allowing the slider 302 to slide toward the opening O of the device body 100 via the sliding protrusion 3011 of the support base 301 sliding within the sliding groove 3021 of the slider 302.

[0104] As the slider 302 slides toward the opening O of the device body 100, the stopper 3043 located within the second sub-guide slot S32 of the slider 302 can slide along the trajectory of the second sub-guide slot S32. After the stopper 3043 of the stopper 304 slides from the second sub-guide slot S32 into the second stopper slot S2, the stopper 304 can restrain the slider 302 in the second position, thereby releasing the engagement between the buckle 3031 of the engaging member 303 and the engaging slot H of the earphone 200, thereby allowing the earphone 200 to be removed.

[0105] In this application, Figure 16 and Figure 17 As shown, the depth of the position where the second sub-guide groove S32 communicates with the second limiting groove S2 may be smaller than the depth of the position where the fourth sub-guide groove S34 communicates with the second limiting groove S2.

[0106] In this way, when the limiting portion 3043 in the limiting member 304 is located in the second limiting groove S2 and the sliding member 302 is in the second position, when the user needs to fix the earphone 200 in the second cavity K2 of the device body 100, the user can apply a force to the earphone 200 toward the second cavity K2 of the device body 100 so that the earphone 200 can slide against the elastic buffer portion 3024 in the sliding member 302 in the direction away from the opening O of the device body 100.

[0107] As the slider 302 slides away from the opening O of the device body 100, the depth of the second sub-guide groove S32 at the point where it connects with the second limiting groove S2 is less than the depth of the fourth sub-guide groove S34 at the point where it connects with the second limiting groove S2. Therefore, the stopper 3043 in the stopper 304 can only slide from the second limiting groove S2 into the fourth sub-guide groove S34. The user can then continue to apply force to the earphone 200 toward the second cavity K2 of the device body 100. The slider 302 can continue to slide away from the opening O of the device body 100, and the stopper 3043 in the stopper 304 can slide within the fourth sub-guide groove S34 along the path of the fourth sub-guide groove S34. After the stopper 3043 in the stopper 304 slides from the fourth sub-guide groove S34 to the third sub-guide groove S33, the user no longer needs to apply force to the earphone 200 toward the second cavity K2 of the device body 100. At this time, the elastic force stored in the elastic element 307 that has been compressed can be released, so that the sliding member 302 can slide in the sliding groove 3021 of the sliding member 302 through the sliding protrusion 3011 in the support seat 301, and slide in the direction toward the opening O of the device body 100.

[0108] As the slider 302 slides toward the opening O of the device body 100, the stopper 3043 located within the third sub-guide slot S33 of the slider 302 can slide along the trajectory of the third sub-guide slot S33. After the stopper 3043 of the stopper 304 slides from the third sub-guide slot S33 into the first stopper slot S1, the stopper 304 can restrain the slider 302 in the first position, allowing the buckle 3031 of the engaging member 303 to engage with the engaging slot H of the earphone 200, thereby securing the earphone 200 within the second cavity K2 of the device body 100.

[0109] Optional, such as Figure 16 and Figure 17As shown, the bottom surface of the first sub-guide groove S31 of the sliding member 302 may include a first transition surface A1. The depth of the first sub-guide groove S31 at the point where it connects with the first limiting groove S1 may be less than the depth of the first sub-guide groove S31 at the point where it connects with the second sub-guide groove S32. Thus, after the limiting portion 3043 in the limiting member 304 slides from the first sub-guide groove S31 into the second sub-guide groove S32, it will no longer slide from the first sub-guide groove S31 into the first limiting groove S1 and can only continue to slide within the second sub-guide groove S32 along the trajectory of the second sub-guide groove S32 into the second limiting groove S2. Furthermore, the first transition slope A1 of the first sub-guide groove S31 enables the limiting portion 3043 in the limiting member 304 to slide smoothly from a deeper position in the first sub-guide groove S31 to a lesser position in the first sub-guide groove S31.

[0110] Optional, such as Figure 16 and Figure 17 As shown, the bottom surface of the second sub-guide groove S32 may include a second transition slope A2. The depth of the second sub-guide groove S32 at the connection point with the first sub-guide groove S31 may be greater than the depth of the second sub-guide groove S32 at the connection point with the second limiting groove S2. Furthermore, the depth of the second sub-guide groove S32 at the connection point with the second limiting groove S2 is less than the depth of the second limiting groove S2 at the connection point with the fourth sub-guide groove S34. Thus, the limiting portion 3043 in the limiting member 304 can smoothly slide from a position where the second sub-guide groove S32 has a greater depth to a position where the second sub-guide groove S32 has a lesser depth via the second transition slope A2.

[0111] Optional, such as Figure 16 and Figure 17 As shown, the bottom surface of the third sub-guide groove S33 may include a third transition slope A3. The depth of the third sub-guide groove S33 at the point where it connects with the first limiting groove S1 may be less than the depth of the point where it connects with the fourth sub-guide groove S34. Thus, after the limiting portion 3043 in the limiting member 304 slides from the fourth sub-guide groove S34 to the third sub-guide groove S33, the limiting portion 3043 in the limiting member 304 will no longer slide from the third sub-guide groove S33 to the fourth sub-guide groove S34, but may continue to slide within the third sub-guide groove S33 along the trajectory of the third sub-guide groove S33 to the first limiting groove S1. Furthermore, the third transition slope A3 of the third sub-guide groove S33 enables the limiting portion 3043 in the limiting member 304 to slide smoothly from a position with a smaller depth in the third sub-guide groove S33 to a position with a larger depth in the third sub-guide groove S33.

[0112] Optional, such as Figure 16 and Figure 17As shown, the bottom surface of the fourth sub-guide groove S34 may include: a fourth transition surface A4. The depth of the fourth sub-guide groove S34 at the point where it connects with the third sub-guide groove S33 can be less than the depth of the fourth sub-guide groove S34 at the point where it connects with the second limiting groove S2. In addition, the depth of the fourth sub-guide groove S34 at the point where it connects with the second limiting groove S2 is greater than the depth of the second limiting groove S2 at the point where it connects with the second sub-guide groove S32. In this way, the limiting portion 3043 in the limiting member 304 can slide smoothly from a position where the fourth sub-guide groove S34 is deeper to a position where the fourth sub-guide groove S34 is less deep via the fourth transition slope A4.

[0113] In this application, please refer to Figure 19 , Figure 19 This is a schematic diagram of the connection between a support seat, a limiting member and a spring provided in an embodiment of the present application. Figure 10 、 Figure 13 and Figure 19 As shown, the disassembly assembly 300 may further include: a spring piece 308 located between the limiting member 304 and the support base 301. The first end of the spring piece 308 in the disassembly assembly 300 may abut against an end of the rod 3041 in the limiting member 304 near the limiting portion 3043, and the second end of the spring piece 308 may be connected to the support base 301.

[0114] It should be noted that the support base 301 may further include a mounting post 3012, and the second end of the spring piece 308 may be sleeved on the mounting post 3012. During the process of the limiting portion 3043 in the limiting member 304 sliding in the guide slot S3 in the sliding member 302, the first end of the spring piece 308 abuts against the end of the rod 3041 in the limiting member 304 close to the limiting portion 3043. Thus, the spring piece 308 may constantly limit at least a portion of the limiting portion 3043 in the limiting member 304 within the first limiting slot S1, the second limiting slot S2, and the guide slot S3 of the sliding member 302, thereby ensuring that the limiting portion 3043 in the limiting member 304 does not completely escape from the first limiting slot S1, the second limiting slot S2, and the guide slot S3 of the sliding member 302.

[0115] In this application, please refer to Figure 10 、 Figure 13 and Figure 20 , Figure 20It is a structural schematic diagram of another earphone provided in an embodiment of the present application. The earphone 200 may include: an earphone body 201, and a protective part 202 fixedly connected to the sound outlet of the earphone body 201. The protective part 202 in the earphone 200 is elastic, and the earphone body 201 in the earphone 200 has a card slot H. Wherein, after at least part of the earphone 200 is located in the second cavity K2 of the device body 100, and the buckle 3031 in the snap-fitting part 303 is engaged with the card slot H of the earphone body 201, the protective part 202 in the earphone 200 can be completely located in the second cavity K2 of the device body 100, and abut against the second cavity K2 of the device body 100, so that the protective part 202 in the earphone 200 can produce a certain compression deformation to store a certain rebound force.

[0116] In this way, when the engagement between the buckle 3031 in the snap-fitting part 303 and the slot H of the earphone body 201 is cancelled, under the elastic action of the protective part 202, the elastic element 307 and the elastic buffer part 3024 in the sliding part 302 in the earphone 200, at least part of the earphone 200 can be ejected into the second cavity K2 of the device body 100, so that the user can take the earphone 200 out of the second cavity K2 of the device body 100.

[0117] In summary, an embodiment of the present application provides a smart wearable device, comprising: a device body, an earphone, and a disassembly assembly. Through the sliding connection between the sliding member and the support seat in the disassembly assembly, the sliding member can slide between a first position and a second position. Then, through the limiting member in the disassembly assembly to limit the sliding member, the limiting member can limit the sliding member to the first position or the second position. The snap-fitting member in the disassembly assembly can be connected to the sliding member by rotation of the first end of the snap-fitting member, so that when the sliding member is in the first position, the buckle at the second end of the snap-fitting member can be engaged with the card slot of the earphone, or when the sliding member is in the second position, the buckle in the snap-fitting member can be separated from the card slot of the earphone. In this way, a detachable connection between the earphone and the disassembly assembly can be achieved, so that the earphone can be snap-fitted and fixed in the second cavity of the device body, or the earphone can be taken out from the second cavity of the device body.

[0118] In this application, the terms "first" and "second" are used for descriptive purposes only and should not be understood as indicating or implying relative importance. The term "plurality" refers to two or more than two, unless expressly limited otherwise.

[0119] The above description is merely an optional embodiment of the present application and is not intended to limit the present application. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present application shall be included in the scope of protection of the present application.

Claims

1. A smart wearable device, characterized in that: include: The device body, earphones and disassembled components; The device body has a first cavity and a second cavity that are connected to each other, and an opening that is connected to the second cavity; The earphone has a card slot; The disassembly and assembly assembly comprises: a support seat, a sliding member, a clamping member and a limiting member; the support seat is fixed in the first cavity; the sliding member is slidably connected to the support seat; the first end of the clamping member is rotatably connected to the sliding member, and the second end of the clamping member has a buckle that cooperates with the slot; the limiting member is respectively connected to the support seat and the clamping member, and the limiting member is used to limit the sliding member to a first position or a second position, and the second position is closer to the opening than the first position; In which, when at least part of the earphone is located in the second cavity and the sliding member is in the first position, at least part of the buckle is located in the second cavity to engage with the slot; when the sliding member is in the second position, the entire buckle is located in the first cavity.

2. The smart wearable device according to claim 1, wherein: The clamping member includes: a main body portion rotatably connected to the sliding member, a buckle fixedly connected to an end of the main body portion facing away from the sliding member, and a guide protrusion fixedly connected to the buckle; The inner wall of the first cavity is provided with a guiding inclined surface that cooperates with the guiding protrusion; Wherein, during the process of the sliding member moving from the first position to the second position, the guide protrusion can slide on the guide inclined surface in the direction toward the opening, so that the buckle can be completely rotated into the first cavity; during the process of the sliding member moving from the second position to the first position, the guide protrusion can slide on the guide inclined surface in the direction away from the opening, so that at least part of the buckle can be rotated into the second cavity.

3. The smart wearable device according to claim 2, characterized in that: The disassembly and assembly assembly further includes a connecting shaft for connecting the sliding member and the main body, and the main body is rotatably connected to the sliding member through the connecting shaft.

4. The smart wearable device according to claim 3, characterized in that: The disassembly and assembly component further includes: a torsion spring sleeved on the connecting shaft, and the torsion spring is respectively arranged to abut against the sliding member and the clamping member.

5. The smart wearable device according to claim 4, characterized in that: The side of the main body facing the second cavity is an inclined surface, and the width of the main body gradually decreases from the first position to the second position; Wherein, after the sliding member is in the second position, the end of the main body portion close to the buckle is located in the first cavity, and the end of the main body portion close to the sliding member is located in the second cavity.

6. The smart wearable device according to claim 1, characterized in that: The sliding member includes: a sliding member body located in the first cavity and slidably connected to the support seat, and an abutting portion fixedly connected to the sliding member body, at least part of the abutting portion is located in the second cavity, and the abutting portion is used to abut against the earphone after at least part of the earphone is located in the second cavity.

7. The smart wearable device according to claim 6, characterized in that: The sliding member further includes an elastic buffer portion fixed on the abutting portion, and the elastic buffer portion is used to abut against the earphone.

8. The smart wearable device according to any one of claims 1 to 7, characterized in that: The sliding member has a first limiting groove and a second limiting groove on a side facing the limiting member, and a guide groove for connecting the first limiting groove and the second limiting groove, wherein the first limiting groove is closer to the opening than the second limiting groove; The limiting member includes: a rod body, a connecting portion fixedly connected to one end of the rod body, and a limiting portion fixedly connected to the other end of the rod body, the connecting portion being rotatably connected to the support seat, and at least a portion of the limiting portion being able to slide in the guide groove; Wherein, after the limiting portion slides into the first limiting groove, the sliding member is in the first position; after the limiting portion slides into the second limiting groove, the sliding member is in the second position.

9. The smart wearable device according to claim 8, characterized in that: The guide groove includes: a first sub-guide groove and a second sub-guide groove; The first end of the first sub-guide groove is connected to the first limiting groove, the second end of the first sub-guide groove is connected to the first end of the second sub-guide groove, and the second end of the second sub-guide groove is connected to the second limiting groove; Wherein, the communicating position between the first sub-guide groove and the second sub-guide groove is closer to the opening than the first limiting groove.

10. The smart wearable device according to claim 9, characterized in that: The guide groove further comprises: a third sub-guide groove and a fourth sub-guide groove; The first end of the third sub-guide groove is communicated with the first limiting groove, the second end of the third sub-guide groove is communicated with the first end of the fourth sub-guide groove, and the second end of the fourth sub-guide groove is communicated with the second limiting groove; In which, the connecting position between the third sub-guide groove and the fourth sub-guide groove is closer to the opening relative to the first limiting groove; the first sub-guide groove and the third sub-guide groove are respectively located on both sides of the first limiting groove, and the second sub-guide groove and the fourth sub-guide groove are respectively located on both sides of the second limiting groove.

11. The smart wearable device according to claim 10, wherein: The depth of the first sub-guide groove at the position where it communicates with the first limiting groove is greater than the depth of the third sub-guide groove at the position where it communicates with the first limiting groove; The depth of the second sub-guide groove at the communication position with the second limiting groove is smaller than the depth of the fourth sub-guide groove at the communication position with the second limiting groove.

12. The smart wearable device according to claim 11, characterized in that: The bottom surface of the first sub-guide groove includes: a first transition slope, and the depth of the first sub-guide groove at the connection position with the first limiting groove is less than the depth of the first sub-guide groove at the connection position with the second sub-guide groove; The bottom surface of the second sub-guide groove includes: a second transition slope, and the depth of the second sub-guide groove at the position where it communicates with the first sub-guide groove is greater than the depth of the second sub-guide groove at the position where it communicates with the second limiting groove; The bottom surface of the third sub-guide groove includes: a third transition slope, and the depth of the position where the third sub-guide groove communicates with the first limiting groove is less than the depth of the position where the third sub-guide groove communicates with the fourth sub-conductive groove; The bottom surface of the fourth sub-guide groove includes a fourth transition slope, and the depth of the fourth sub-guide groove at the position where it communicates with the third sub-guide groove is less than the depth of the fourth sub-guide groove at the position where it communicates with the second limiting groove.

13. The smart wearable device according to any one of claims 9 to 12, characterized in that: The disassembly and assembly assembly further includes: a spring sheet located between the limiting member and the support seat, wherein a first end of the spring sheet abuts against an end of the rod body close to the limiting portion, and a second end of the spring sheet is connected to the support seat.

14. The smart wearable device according to any one of claims 1-7 and 9-12, characterized in that: The disassembly and assembly component also includes: an elastic element located between the sliding member and the support seat, the two ends of the elastic element are respectively connected to the sliding member and the support seat, and the elastic compression direction of the elastic element is parallel to the sliding direction of the sliding member relative to the support seat.

15. The smart wearable device according to any one of claims 1-7 and 9-12, characterized in that: The earphone comprises: an earphone body, and a protective portion fixedly connected to the sound output portion of the earphone body, the protective portion is elastic, and the earphone body has the card slot; Wherein, at least a portion of the earphone is located in the second cavity, and after the buckle is engaged with the card slot, the protective portion is entirely located in the second cavity and abuts against the bottom of the second cavity.