Wearable device

By incorporating a telescopic connector and a manual drive unit into the wearable device, the problem of the wearable part being difficult to disassemble quickly is solved, achieving both rapid disassembly and improved aesthetics.

CN223489272UActive Publication Date: 2025-10-31HANGZHOU EZVIZ SOFTWARE CO LTD
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Patent Information

Application Number
CN202422711777.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-06
Publication Date
2025-10-31
Estimated Expiration
2034-11-06

AI Technical Summary

Technical Problem

The connection between the wearable part and the main body of existing wearable devices is complex, making it difficult to quickly detach the wearable part.

Method used

A telescopic connector and a manual drive unit are provided between the wearable part and the main body of the device. The connection and separation of the wearable part and the main body of the device are realized by the telescopic movement of the telescopic connector, and the retraction of the telescopic connector is driven by the manual drive unit to achieve quick disassembly.

Benefits of technology

It enables quick disassembly of the wearable part from the main body of the device, simplifies the disassembly process, and improves the user experience and the aesthetics of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses wearable equipment. The wearable equipment disclosed by the utility model comprises a wearable part and an equipment main body, the wearable part comprises a connecting end part and a telescopic connecting piece, the connecting end part is provided with an accommodating space, the telescopic connecting piece is movably arranged in the accommodating space, the equipment main body is provided with an end accommodating groove and a manual driving part, and two opposite side walls of the end accommodating groove are respectively provided with a first connecting groove and a second connecting groove; under the condition that the wearing part is connected with the equipment main body, the connecting end part extends into the end part accommodating groove, and the two ends of the telescopic connecting piece respectively extend out of the accommodating space and are respectively inserted into the first connecting groove and the second connecting groove; under the condition that the wearing part is separated from the equipment main body, the manual driving part is used for driving the telescopic connecting piece to contract, so that the two ends of the telescopic connecting piece are moved out of the first connecting groove and the second connecting groove respectively. According to the scheme, the problem that the wearable part of the wearable device related to the related technology is difficult to disassemble quickly can be solved.
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Description

Technical Field

[0001] This application belongs to the field of electronic device design technology, specifically relating to a wearable device. Background Technology

[0002] With the development of technology, wearable devices are becoming increasingly widely used. Wearable devices (such as smartwatches) consist of a main body and a wearable component. During daily use, the wearable component is prone to wear and tear, and over time, it is susceptible to damage, necessitating its removal and replacement. However, the connection between the wearable component and the main body in related technologies is quite complex, making the removal of the wearable component cumbersome and hindering quick replacement. Utility Model Content

[0003] This utility model discloses a wearable device to solve the problem that wearable devices involved in related technologies have difficulty in quickly disassembling the wearable part.

[0004] To solve the above-mentioned technical problems, this utility model provides the following technical solution:

[0005] This application discloses a wearable device, which includes a wearable part and a device body;

[0006] The wearable part includes a connecting end and a telescopic connector. The connecting end has a receiving space, and the telescopic connector is movably disposed in the receiving space. The main body of the device has an end receiving groove and a manual drive part. The two side walls opposite to the end receiving groove are respectively provided with a first connecting groove and a second connecting groove.

[0007] When the wearable part is connected to the main body of the device, the connecting end extends into the end receiving groove, and both ends of the telescopic connector extend out of the receiving space and are respectively inserted into the first connecting groove and the second connecting groove;

[0008] When the wearable part is separated from the main body of the device, the manual drive unit is used to drive the telescopic connector to retract so that both ends of the telescopic connector are removed from the first connecting groove and the second connecting groove, respectively.

[0009] The technical solution adopted in this utility model can achieve the following technical effects:

[0010] The wearable device disclosed in this application improves the structure of wearable devices related to the relevant technology by providing a receiving space at the connecting end of the wearable part and providing a telescopic connector for the wearable part, allowing the telescopic connector to be movably disposed in the receiving space. Furthermore, the device body has an end receiving groove and a manual drive unit, and a first connecting groove and a second connecting groove are respectively provided on two opposite side walls of the end receiving groove. When the wearable part is connected to the device body, the connecting end extends into the end receiving groove, and both ends of the telescopic connector extend out of the receiving space and are respectively inserted into the first and second connecting grooves, thereby connecting the wearable part to the device body. When the wearable part is separated from the device body, the telescopic connector can be retracted by the manual drive unit, allowing both ends of the telescopic connector to move out of the first and second connecting grooves, thereby separating the wearable part from the device body. This allows the wearable part to be quickly detached from the device body by the manual drive unit, thus enabling rapid disassembly of the wearable part. Attached Figure Description

[0011] Figure 1 This is a partial exploded view of the wearable device disclosed in the embodiments of this application;

[0012] Figure 2 yes Figure 1 Assembly drawing;

[0013] Figure 3 This is a partial structural diagram of the wearable device disclosed in the embodiments of this application, in which the wearable part is connected to the main body of the device;

[0014] Figure 4 This is a partial structural diagram of the wearable device disclosed in the embodiments of this application when the wearable part is separated from the main body of the device;

[0015] Figure 5 This is a schematic diagram of a portion of the structure of the wearable part disclosed in the embodiments of this application when the wearable part is connected to the main body of the device;

[0016] Figure 6 This is a partial structural diagram of the wearable part disclosed in the embodiments of this application when the wearable part is separated from the main body of the device;

[0017] Figure 7 This is a partial exploded view of the wearable part disclosed in the embodiments of this application;

[0018] Figure 8 yes Figure 7 Assembly drawing;

[0019] Figure 9 This is a partial structural schematic diagram of the main body of the device disclosed in the embodiments of this application.

[0020] Explanation of reference numerals in the attached figures:

[0021] 100-Wearing part, 110-Connecting end, 111-Accommodating space, 112-Second mating hole, 113-Third opening, 114-Fourth opening, 120-Telescopic connector, 121-First connecting end, 122-Second connecting end, 123-Elastic segment, 130-Fixing box, 131-Inner cavity, 132-First baffle, 133-Second baffle, 134-First opening, 135-Second opening, 136-Allowing space, 137-Third mating hole

[0022] 200 - Equipment body, 210 - End receiving groove, 211 - First connecting groove, 212 - Second connecting groove, 213 - First guide groove, 214 - Second guide groove, 220 - Manual drive unit, 221 - Operating unit, 222 - Drive body, 223 - Pressing surface, 224 - Guide slope, 225 - Limiting protrusion, 230 - Receiving cavity, 231 - Third guide groove, 240 - Clearance hole, 250 - First mating hole

[0023] 310 - First elastic element, 320 - Second elastic element. Detailed Implementation

[0024] To make the objectives, technical solutions, and advantages of this utility model clearer, the technical solutions of this utility model will be clearly and completely described below in conjunction with specific embodiments and corresponding drawings. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0025] The terms "first," "second," etc., used in the specification and claims of this application are used to distinguish similar objects and are not used to describe a specific order or sequence. It should be understood that such 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 are not limited in number; for example, a first object can be one or more.

[0026] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0027] Please refer to Figures 1 to 9 This application discloses a wearable device, which includes a wearable part 100 and a device body 200.

[0028] The wearable part 100 is a component that enables the wearable device to be worn by a user. The wearable part 100 is detachably connected to the device body 200 so that the device body 200 can realize the wearable function of the wearable device through the wearable part 100. The wearable part 100 includes a connecting end 110 and a telescopic connector 120. The connecting end 110 has a receiving space 111. The telescopic connector 120 is movably disposed in the receiving space 111 so that both ends of the telescopic connector 120 can extend and retract within the receiving space 111, thereby allowing both ends of the telescopic connector 120 to extend out of the receiving space 111 and respectively cooperate with the first connecting groove 211 and the second connecting groove 212 described later, thereby realizing the connection between the wearable part 100 and the device body 200.

[0029] The main body 200 is the core component of the wearable device. The main body 200 has an end receiving groove 210 and a manual drive part 220. The two opposite side walls of the end receiving groove 210 are respectively provided with a first connecting groove 211 and a second connecting groove 212. The first connecting groove 211 and the second connecting groove 212 are respectively used to cooperate with the two ends of the telescopic connector 120 to realize the connection between the wearable part 100 and the main body 200.

[0030] In the specific working process, when the wearable part 100 is connected to the device body 200, the connecting end 110 extends into the end receiving groove 210, and the two ends of the telescopic connector 120 extend out of the receiving space 111 and are respectively inserted into the first connecting groove 211 and the second connecting groove 212. Thus, the connection between the wearable part 100 and the device body 200 can be realized by the cooperation of the two ends of the telescopic connector 120 with the first connecting groove 211 and the second connecting groove 212 respectively.

[0031] When the wearable part 100 is separated from the device body 200, the manual drive unit 220 drives the telescopic connector 120 to retract, so that both ends of the telescopic connector 120 retract toward the receiving space 111 as the telescopic connector 120 retracts, so that both ends of the telescopic connector 120 are removed from the first connecting groove 211 and the second connecting groove 212 respectively, thereby realizing the separation of the wearable part 100 from the device body 200.

[0032] In this embodiment, the wearable device can be worn on the wrist via the wearing part 100, which can be a wristband or wrist chain. Alternatively, the wearable device can also be worn around the neck via the wearing part 100, in which case the wearing part 100 can be a neckband or neck chain. This embodiment does not limit the specific structure or application location of the wearing part 100.

[0033] The wearable device disclosed in this application improves the structure of wearable devices in related technologies by providing a receiving space 111 for the connecting end 110 of the wearable part 100 and a telescopic connector 120 for the wearable part 100, which is movably disposed in the receiving space 111. Furthermore, the device body 200 has an end receiving groove 210 and a manual drive unit 220, and a first connecting groove 211 and a second connecting groove 212 are respectively provided on two opposite side walls of the end receiving groove 210. This allows the connecting end 110 to extend into the end receiving groove 210 when the wearable part 100 is connected to the device body 200, and the telescopic connector 120... Both ends of the 0 extend out of the receiving space 111 and are respectively inserted into the first connecting groove 211 and the second connecting groove 212, thereby connecting the wearable part 100 to the device body 200; and when the wearable part 100 is separated from the device body 200, the telescopic connector 120 can be retracted by the manual drive unit 220 so that both ends of the telescopic connector 120 can be removed from the first connecting groove 211 and the second connecting groove 212, thereby separating the wearable part 100 from the device body 200. Thus, the wearable part 100 can be quickly removed from the device body 200 by the manual drive unit 220, thereby enabling the quick disassembly of the wearable part 100.

[0034] Furthermore, the manual drive unit 220 of the wearable device involved in the related technology is located at the connecting end 110 of the wearable part 100, which makes the connecting end 110 relatively large and easily affects the aesthetics of the wearable device. At the same time, when the wearable device is worn on the wrist through the wearable part 100, the connecting end 110 tends to have a large thickness, making it difficult for the wearable part 100 to fit the user's wrist or ankle, and easily compressing the user's wrist or ankle, thus easily affecting the user experience.

[0035] In this application, by including a manual drive unit 220 in the main body of the device 200, the manual drive unit 220 is avoided from being located at the connecting end 110 of the wearable part 100. Simultaneously, the telescopic connector 120 has a smaller volume, minimizing its impact on the connecting end 110 and thus alleviating the problem of a large connecting end 110 leading to poor aesthetics. Furthermore, this structure, when the wearable device is worn on the wrist via the wearable part 100, minimizes the problem of the connecting end 110 having a large thickness, making it difficult to fit the user's wrist or ankle and potentially causing pressure, thereby improving the user experience. It should be noted that the thickness direction of the connecting end 110 can be perpendicular to the screen of the main body of the device.

[0036] In one embodiment, there may be two wearable parts 100, and correspondingly, there may also be two end receiving slots 210. When the wearable part 100 is connected to the device body 200, the two connecting ends 110 extend into the two end receiving slots 210 respectively. Alternatively, when the wearable device is worn on the wrist via the wearable part 100, the two end receiving slots 210 may be distributed on opposite sides of the device body 200 to facilitate the fit of the wearable part 100 with the wrist or ankle.

[0037] In a feasible technical solution, the two ends of the telescopic connector 120 can be a first connecting end 121 and a second connecting end 122, respectively. The telescopic connector 120 may also include an elastic segment 123, which can be connected between the first connecting end 121 and the second connecting end 122, thereby enabling the elastic segment 123 to drive the first connecting end 121 and the second connecting end 122 to move through elastic deformation. Specifically, the elastic segment 123 can be a spring steel wire or an elastic rubber. The specific structure of the elastic segment 123 is not limited in the embodiments of this application.

[0038] In the specific working process, when the wearable part 100 is separated from the device body 200, the manual drive part 220 can be used to drive the elastic segment 123 to elastically deform, so as to drive the first connecting end 121 and the second connecting end 122 to contract through elastic deformation. The elastic segment 123 can drive the first connecting end 121 and the second connecting end 122 to move into the receiving space 111 through elastic deformation, thereby causing the first connecting end 121 and the second connecting end 122 to contract, and then causing the first connecting end 121 and the second connecting end 122 to move out from the first connecting groove 211 and the second connecting groove 212 respectively, so as to realize the separation of the wearable part 100 from the device body 200, and the connecting end 110 can be detached from the end receiving groove 210.

[0039] In this structure, when the manual drive unit 220 no longer applies force to the elastic segment 123, the elastic deformation of the elastic segment 123 disappears, thereby enabling the elastic segment 123 to drive the first connecting end 121 and the second connecting end 122 to extend out of the receiving space 111, so as to realize the automatic reset of the first connecting end 121 and the second connecting end 122. This avoids the user from manually resetting the first connecting end 121 and the second connecting end 122, which helps to reduce labor costs and improve the user experience.

[0040] Of course, in other embodiments, the telescopic connector 120 may also include a telescopic body, which can be connected between the first connecting end 121 and the second connecting end 122. This allows the telescopic body to drive the first connecting end 121 and the second connecting end 122 to move through telescopic deformation. When the wearable part 100 is separated from the device body 200, the manual drive unit 220 can be used to drive the telescopic body to telescopically deform, thereby causing the first connecting end 121 and the second connecting end 122 to retract and move out of the first connecting groove 211 and the second connecting groove 212, respectively. This structure is relatively simple and easy to implement, thus helping to reduce the cost of wearable devices. Furthermore, the telescopic body can be a hydraulic rod, a pneumatic rod, or a magnetostrictive rod; the specific structure of the telescopic body is not limited in this application embodiment.

[0041] In a further technical solution, the wearable part 100 may further include a fixing box 130, which can be fixed to the receiving space 111. The fixing box 130 may have an inner cavity 131, a first opening 134, and a second opening 135. The first opening 134 and the second opening 135 may be distributed on opposite sides of the fixing box 130 and may communicate with the inner cavity 131 respectively. The telescopic connector 120 may be movably disposed in the inner cavity 131, thereby indirectly disposed in the receiving space 111 through the fixing box 130. The connecting end 110 may have a third opening 113 and a fourth opening 114, which may communicate with the receiving space 111 respectively and may be opposite to the first opening 134 and the second opening 135 respectively.

[0042] In the specific working process, when the wearable part 100 is connected to the device body 200, the connecting end 110 can extend into the end receiving groove 210. The first connecting end 121 and the second connecting end 122 can extend out of the inner cavity 131 through the first opening 134 and the second opening 135, respectively. After the first connecting end 121 and the second connecting end 122 extend out of the inner cavity 131 through the first opening 134 and the second opening 135, they extend out of the receiving space 111 through the third opening 113 and the fourth opening 114, respectively. The first connecting end 121 and the second connecting end 122 extending out of the receiving space 111 are respectively inserted into the first connecting groove 211 and the second connecting groove 212 to realize the connection between the wearable part 100 and the device body 200.

[0043] When the wearable part 100 is separated from the device body 200, the manual drive unit 220 can be used to drive the elastic segment 123 to elastically deform, so that the first connecting end 121 and the second connecting end 122 can retract through the first opening 134 and the second opening 135 respectively. At this time, the first connecting end 121 and the second connecting end 122 can move into the inner cavity 131 respectively and move out from the first connecting groove 211 and the second connecting groove 212 respectively, thereby realizing the separation of the wearable part 100 from the device body 200. At the same time, the first connecting end 121 and the second connecting end 122 can also retract through the third opening 113 and the fourth opening 114 respectively.

[0044] In this structure, the fixing box 130 can provide additional support for the telescopic connector 120, so that the telescopic connector 120 can be more stably set in the receiving space 111 through the fixing box 130, reducing the risk of the telescopic connector 120 falling off the receiving space 111.

[0045] In an optional technical solution, the fixing box 130 may also have a first baffle 132 and a second baffle 133. The first baffle 132 and the second baffle 133 may be respectively disposed in the inner cavity 131 and may be respectively opposite to the first opening 134 and the second opening 135. When the first connecting end 121 and the second connecting end 122 are retracted, they may move toward the inner cavity 131 respectively, thereby allowing the first baffle 132 and the second baffle 133 to be respectively disposed.

[0046] In the specific working process, when the wearable part 100 is separated from the main body 200, the first baffle 132 and the second baffle 133 can respectively abut against the first connecting end 121 and the second connecting end 122 to limit the contraction of the first connecting end 121 and the second connecting end 122. This ensures that after the first connecting end 121 is contracted to its full position, it can abut against the first baffle 132 to prevent the first connecting end 121 from continuing to contract, and after the second connecting end 122 is contracted to its full position, it can abut against the second baffle 133 to prevent the second connecting end 122 from continuing to contract. This avoids the situation where one of the first connecting end 121 and the second connecting end 122 has an excessively large contraction stroke and the other has an excessively small contraction stroke, which could easily lead to the first connecting end 121 being difficult to move out of the first connecting groove 211 or the second connecting end 122 being difficult to move out of the second connecting groove 212. This, in turn, helps to improve the reliability of the wearable part 100.

[0047] Furthermore, the fixing box 130 may also include a clearance space 136, which can communicate with the inner cavity 131 and can be used to avoid elastic deformation. This structure allows the clearance space 136 to prevent elastic deformation of the elastic segment 123, making it easier for the elastic segment 123 to deform elastically. This avoids situations where the elastic segment 123 is not easily elastically deformable, making it difficult to drive the first connecting end 121 and the second connecting end 122 to retract, thus making it difficult for the first connecting end 121 and the second connecting end 122 to move out of the first connecting groove 211 and the second connecting groove 212 respectively, affecting the separation of the wearable part 100 from the device body 200, thereby improving the reliability of the wearable part 100.

[0048] More preferably, the elastic segment 123 can be bent toward the clearance space 136 to guide the elastic segment 123 to elastically deform toward the clearance space 136. This avoids the situation where the elastic segment 123 easily deforms in a direction away from the clearance space 136, making it difficult for the inner cavity 131 to effectively avoid the elastic deformation. This makes it more difficult for the elastic segment 123 to undergo elastic deformation, thereby avoiding the situation where it is difficult to drive the elastic segment 123 to elastically deform through the manual drive unit 220. This helps to improve the stability of the cooperation between the manual drive unit 220 and the telescopic connector 120.

[0049] In this embodiment of the application, the main body 200 of the device may further include a receiving cavity 230, a clearance hole 240 and a first mating hole 250. The clearance hole 240 and the first mating hole 250 may be connected to the receiving cavity 230 respectively, and the first mating hole 250 may be connected to the end receiving groove 210. The connecting end 110 may also have a second mating hole 112, which is opposite to the first mating hole 250, so that the second mating hole 112 may be connected to the receiving space 111.

[0050] The manual drive unit 220 is movably disposed in the receiving cavity 230. The manual drive unit 220 may include a connected operating unit 221 and a drive body 222. The pressing surface 223 of the operating unit 221 can be exposed outside the receiving cavity 230 through the clearance hole 240 for user convenience. The drive body 222 can pass through the first mating hole 250 and the second mating hole 112 in sequence to contact the telescopic connector 120, so that the operating unit 221 can indirectly contact the telescopic connector 120 through the drive body 222. Thus, by pressing the pressing surface 223, the operating unit 221 can be driven to move, and the operating unit 221 drives the drive body 222, so that the drive body 222 can compress the telescopic connector 120.

[0051] In the specific working process, when the wearable part 100 is separated from the device body 200, the operating part 221 can be moved by pressing the pressing surface 223. The operating part 221 is connected to the driving body 222, so that the operating part 221 can drive the driving body 222 to move, thereby causing the driving body 222 to squeeze the telescopic connector 120. The telescopic connector 120 is compressed by the driving body 222, so that the two ends of the telescopic connector 120 are moved out from the first connecting groove 211 and the second connecting groove 212 respectively, so as to realize the separation of the wearable part 100 from the device body 200.

[0052] In this structure, the wearable part 100 can be separated from the device body 200 by pressing the pressing surface 223, thereby quickly detaching the wearable part 100 from the device body 200. This structure is relatively simple to operate, making it convenient for users and improving the user experience.

[0053] As described above, with the first connecting end 121 and the second connecting end 122 at the two ends of the telescopic connector 120, and the telescopic connector 120 also including an elastic segment 123 connected between the first connecting end 121 and the second connecting end 122, the driving body 222 can be used to drive the first connecting end 121 and the second connecting end 122 to contract by squeezing the elastic segment 123, thereby causing the first connecting end 121 and the second connecting end 122 to move out of the first connecting groove 211 and the second connecting groove 212, respectively.

[0054] Furthermore, when the wearable part 100 includes a fixing box 130, the fixing box 130 may also be provided with a third mating hole 137, which is opposite to the second mating hole 112. The drive body 222 can pass through the first mating hole 250, the second mating hole 112 and the third mating hole 137 in sequence to contact the telescopic connector 120.

[0055] In one embodiment, the operating part 221 may have a guide slope 224. The operating part 221 and the driving body 222 may be slidably disposed in the receiving cavity 230, and the first mating hole 250 and the second mating hole 112 may be slidably mated with the driving body 222, so that the driving body 222 can slide relative to the first mating hole 250 and the second mating hole 112. The guide slope 224 of the operating part 221 is slidably mated with the driving body 222. When the operating part 221 moves toward the receiving cavity 230, it can drive the driving body 222 to move through the sliding contact between the guide slope 224 and the driving body 222, so that the driving body 222 moves toward the outside of the receiving cavity 230 through the first mating hole 250 and moves toward the receiving space 111 through the second mating hole 112, so that the driving body 222 can squeeze the telescopic connector 120.

[0056] When the wearable part 100 is separated from the device body 200, the operating part 221 can be moved into the receiving cavity 230 by pressing the pressing surface 223. The guide slope 224 can cooperate with the driving body 222 as the operating part 221 moves. The guide slope 224 and the driving body 222 can slide in contact, so that the driving body 222 squeezes the telescopic connector 120, thereby causing the two ends of the telescopic connector 120 to move out of the first connecting groove 211 and the second connecting groove 212 respectively, realizing the separation of the wearable part 100 from the device body 200.

[0057] Specifically, when the pressing surface 223 is pressed, it can drive the operating part 221 to move into the receiving cavity 230. The guide slope 224 pushes the driving body 222 to move out of the receiving cavity 230 through sliding contact with the driving body 222, while causing the driving body 222 to move into the receiving space 111. The moving depth of the driving body 222 into the receiving space 111 can increase as the moving depth of the operating part 221 in the receiving cavity 230 increases.

[0058] This structure is relatively simple, has a low failure rate, and high reliability. Furthermore, due to its simple structure, it is easy to troubleshoot and repair, making it easy to maintain.

[0059] In another embodiment, the operating part 221 and the driving body 222 can be connected by a gear transmission mechanism. Specifically, the gear transmission mechanism may include a first rack, a second rack, and gears. The operating part 221 and the driving body 222 can be fixedly connected to the first rack and the second rack, respectively. The first rack and the second rack can be connected to the two gears, respectively, so that the operating part 221 can be moved by pressing the pressing surface 223, thereby enabling the operating part 221 to drive the driving body 222 to move through the gear transmission mechanism, so that the driving body 222 presses the telescopic connector 120.

[0060] Of course, in other embodiments, the operating unit 221 and the drive body 222 can also be connected by a hydraulic or pneumatic mechanism, so that the operating unit 221 can drive the drive body 222 to move through a transmission mechanism such as a hydraulic or pneumatic mechanism to press the telescopic connector 120.

[0061] To improve the sliding stability of the operating part 221, the inner wall of the receiving cavity 230 may be provided with a third guide groove 231. The operating part 221 can be slidably disposed in the third guide groove 231 and can be guided and cooperated with the third guide groove 231, so that the movement of the operating part 221 can be guided by the third guide groove 231 to avoid the operation part 221 from deviating.

[0062] Optionally, the first mating hole 250 and the second mating hole 112 can both be guided to engage with the drive body 222, thereby guiding the movement of the drive body 222 through the first mating hole 250 and the second mating hole 112 respectively, so that the drive body 222 can slide relatively stably along the first mating hole 250 and the second mating hole 112, thereby allowing the drive body 222 to relatively stably compress the telescopic connector 120.

[0063] In a further technical solution, the wearable device may include a first elastic element 310 and a second elastic element 320. Both the first elastic element 310 and the second elastic element 320 may be disposed within the receiving cavity 230. The operating part 221 and the device body 200 may be connected to the first elastic element 310, and the driving body 222 and the device body 200 may be connected to the second elastic element 320, respectively. Specifically, both the first elastic element 310 and the second elastic element 320 may be springs or elastic rubber; this embodiment does not impose any limitations on this.

[0064] In the specific working process, when the wearable part 100 is separated from the main body 200, the first elastic element 310 can be used to drive the operating part 221 to move out of the receiving cavity 230 so as to realize the automatic reset of the operating part 221. The second elastic element 320 can be used to drive the driving body 222 to release the telescopic connector 120 so as to realize the automatic reset of the driving body 222.

[0065] Specifically, when the pressing surface 223 is pressed to apply force, the pressing surface 223 drives the operating part 221 to move into the receiving cavity 230, thereby causing the first elastic element 310 to be in a compressed or stretched state. At the same time, the operating part 221 drives the drive body 222 to squeeze the telescopic connector 120, thereby causing the second elastic element 320 to be in a compressed or stretched state. When the pressing surface 223 is stopped to end the application of force, the first elastic element 310, which was in a compressed or stretched state, will return to its original state, thereby driving the operating part 221 to move out of the receiving cavity 230, thus achieving the automatic reset of the operating part 221. At the same time, the second elastic element 320, which was in a compressed or stretched state, will return to its original state, thereby driving the drive body 222 to release the telescopic connector 120, thus achieving the automatic reset of the drive body 222.

[0066] In this structure, the first elastic element 310 and the second elastic element 320 respectively realize the automatic reset of the operation unit 221 and the drive body 222, thereby avoiding the user from manually resetting the operation unit 221 and the drive body 222, which helps to reduce labor costs and maintenance burden, and thus improves the user experience.

[0067] Preferably, the first elastic element 310 and the second elastic element 320 can be respectively sleeved on the operating part 221 and the driving body 222 to reduce the risk that the first elastic element 310 and the second elastic element 320 may easily shift during the stretching or compression process, making it difficult for the first elastic element 310 and the second elastic element 320 in the compressed or stretched state to stably return to their original state, thus causing the operating part 221 and the driving body 222 to have difficulty in stably and automatically resetting.

[0068] To prevent the operating part 221 from falling out of the receiving cavity 230, the operating part 221 may also include a limiting protrusion 225. When the pressing surface 223 is stopped to end the application of force to the pressing surface 223, the first elastic member 310, which is in a compressed or stretched state, can return to its original state, thereby driving the operating part 221 to move out of the receiving cavity 230, thus realizing the automatic reset of the operating part 221. At this time, the limiting protrusion 225 can abut against the edge of the clearance hole 240 facing the receiving cavity 230, so as to constrain the movement of the operating part 221 out of the receiving cavity 230 by the limiting protrusion 225, thereby preventing the operating part 221 from falling out of the receiving cavity 230.

[0069] In this embodiment of the application, the two sidewalls opposite to the end receiving groove 210 may also be provided with a first guide groove 213 and a second guide groove 214, and the first guide groove 213 and the second guide groove 214 may be connected to the first connecting groove 211 and the second connecting groove 212, respectively.

[0070] When the wearable part 100 is connected to the device body 200, the two ends of the telescopic connector 120 can be guided by the first guide groove 213 and the second guide groove 214 respectively, and then inserted into the first connecting groove 211 and the second connecting groove 212 respectively. This makes it easier for the two ends of the telescopic connector 120 to be inserted into the first connecting groove 211 and the second connecting groove 212, so as to facilitate the connection between the wearable part 100 and the device body 200.

[0071] The wearable devices disclosed in this application can be smartwatches, smart glasses, wearable medical devices, or smart jewelry, etc. This application does not limit the specific types of electronic devices.

[0072] The above embodiments of this utility model focus on describing the differences between the various embodiments. As long as the different optimization features of the various embodiments are not contradictory, they can be combined to form a better embodiment. For the sake of brevity, they will not be described in detail here.

[0073] The embodiments of the present invention have been described above with reference to the accompanying drawings. However, the present invention 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 the present invention without departing from the spirit and scope of the claims, and all of these forms are within the protection scope of the present invention.

Claims

1. A wearable device, characterized in that, Includes a wearable part (100) and a device body (200); The wearable part (100) includes a connecting end (110) and a telescopic connector (120). The connecting end (110) has a receiving space (111), and the telescopic connector (120) is movably disposed in the receiving space (111). The device body (200) has an end receiving groove (210) and a manual drive part (220). The two opposite side walls of the end receiving groove (210) are respectively provided with a first connecting groove (211) and a second connecting groove (212). When the wearable part (100) is connected to the device body (200), the connecting end (110) extends into the end receiving groove (210), and the two ends of the telescopic connector (120) extend out of the receiving space (111) and are respectively inserted into the first connecting groove (211) and the second connecting groove (212); When the wearable part (100) is separated from the device body (200), the manual drive part (220) is used to drive the telescopic connector (120) to retract so that the two ends of the telescopic connector (120) are removed from the first connecting groove (211) and the second connecting groove (212), respectively.

2. The wearable device according to claim 1, characterized in that, The telescopic connector (120) has a first connecting end (121) and a second connecting end (122) at its two ends. The telescopic connector (120) also includes an elastic segment (123) which is connected between the first connecting end (121) and the second connecting end (122). When the wearable part (100) is separated from the device body (200), the manual drive part (220) is used to drive the elastic segment (123) to elastically deform so as to drive the first connecting end (121) and the second connecting end (122) to retract through the elastic deformation and move out from the first connecting groove (211) and the second connecting groove (212) respectively.

3. The wearable device according to claim 2, characterized in that, The wearable part (100) also includes a fixing box (130), which is fixed to the receiving space (111). The fixing box (130) has an inner cavity (131), a first opening (134) and a second opening (135). The first opening (134) and the second opening (135) are respectively distributed on opposite sides of the fixing box (130) and are respectively connected to the inner cavity (131). The telescopic connector (120) is movably disposed in the inner cavity (131). When the wearable part (100) is connected to the device body (200), the first connecting end (121) and the second connecting end (122) extend out of the inner cavity (131) through the first opening (134) and the second opening (135) respectively, and extend out of the receiving space (111) respectively, and are inserted into the first connecting groove (211) and the second connecting groove (212) respectively; When the wearable part (100) is separated from the device body (200), the manual drive part (220) is used to drive the elastic segment (123) to perform the elastic deformation, so as to drive the first connecting end (121) and the second connecting end (122) to retract through the first opening (134) and the second opening (135) respectively, and move out from the first connecting groove (211) and the second connecting groove (212) respectively.

4. The wearable device according to claim 3, characterized in that, The fixing box (130) also has a first baffle (132) and a second baffle (133), the first baffle (132) and the second baffle (133) are respectively disposed in the inner cavity (131) and are respectively opposite to the first opening (134) and the second opening (135); When the wearable part (100) is separated from the device body (200), the first baffle (132) and the second baffle (133) are respectively used to abut against the first connecting end (121) and the second connecting end (122) to limit the retraction of the first connecting end (121) and the second connecting end (122).

5. The wearable device according to claim 3, characterized in that, The fixed box (130) also includes a clearance space (136), which is connected to the inner cavity (131) and is used to avoid the elastic deformation.

6. The wearable device according to claim 5, characterized in that, The elastic segment (123) bends toward the clearance space (136) to guide the elastic segment (123) to undergo the elastic deformation toward the clearance space (136).

7. The wearable device according to claim 1, characterized in that, The main body of the device (200) further includes a receiving cavity (230), a clearance hole (240) and a first mating hole (250). The clearance hole (240) and the first mating hole (250) are respectively connected to the receiving cavity (230), and the first mating hole (250) is connected to the end receiving groove (210). The connecting end (110) also has a second mating hole (112), which is connected to the receiving space (111). The manual drive unit (220) is movably disposed in the receiving cavity (230). The manual drive unit (220) includes a connected operating part (221) and a drive body (222). The pressing surface (223) of the operating part (221) is exposed outside the receiving cavity (230) through the clearance hole (240), and the drive body (222) passes through the first mating hole (250) and the second mating hole (112) in sequence to contact the telescopic connector (120). When the wearable part (100) is separated from the device body (200), the operating part (221) is moved by pressing the pressing surface (223), so that the drive body (222) squeezes the telescopic connector (120), and the telescopic connector (120) is compressed by the drive body (222).

8. The wearable device according to claim 7, characterized in that, The operating part (221) has a guide slope (224), and the operating part (221) and the driving body (222) are both slidably disposed in the receiving cavity (230), and the first mating hole (250) and the second mating hole (112) are both slidably mated with the driving body (222); When the wearable part (100) is separated from the device body (200), the operating part (221) is moved toward the receiving cavity (230) by pressing the pressing surface (223). The guide slope (224) cooperates with the drive body (222) as the operating part (221) moves, so that the drive body (222) squeezes the telescopic connector (120).

9. The wearable device according to claim 8, characterized in that, The wearable device includes a first elastic element (310) and a second elastic element (320), both of which are disposed in the receiving cavity (230). The operating part (221) and the device body (200) are respectively connected to the first elastic element (310), and the driving body (222) and the device body (200) are respectively connected to the second elastic element (320). When the wearable part (100) is separated from the device body (200), the first elastic member (310) is used to drive the operating part (221) to move out of the receiving cavity (230), and the second elastic member (320) is used to drive the driving body (222) to release the telescopic connector (120).

10. The wearable device according to claim 1, characterized in that, The two sidewalls opposite to the end receiving groove (210) are respectively provided with a first guide groove (213) and a second guide groove (214), and the first guide groove (213) and the second guide groove (214) are respectively connected to the first connecting groove (211) and the second connecting groove (212); When the wearable part (100) is connected to the device body (200), the two ends of the telescopic connector (120) are respectively guided by the first guide groove (213) and the second guide groove (214) and are inserted into the first connecting groove (211) and the second connecting groove (212).