Wearable device, charging base and wearable module

By designing a ring-shaped wearable device and equipping it with a charging dock, the problem of inconvenience in operating electronic devices when users are exercising or have limited hands is solved, enabling convenient music control and health monitoring, and improving the user experience.

CN224097437UActive Publication Date: 2026-04-07SHENZHEN GRANDSUN ELECTRONICS CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-28
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

When users listen to music or adjust the volume on electronic devices such as mobile phones and headphones, especially during exercise or when their hands are not fully utilized, frequent operation is inconvenient and affects the user experience.

Method used

A wearable device is provided, including a ring-shaped wearable shell and an electronic control component, which has wireless charging, wireless communication and touch key functions, and can be operated by the user by wearing it on their finger or wrist; it is equipped with a charging dock for wireless charging to ensure convenient use of the device.

Benefits of technology

It enables users to easily switch songs and adjust volume without taking out their phone or operating the headphones, improving user convenience and security. It also integrates health monitoring functions, enhancing the overall user experience.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224097437U_ABST
    Figure CN224097437U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of intelligent wearable equipment, and provides a wearable device, a charging base and a wearable module, the wearable device comprises a wearable shell and an electric control assembly, and the wearable shell is annular; the electric control assembly comprises a first circuit board, a first battery, a first wireless charging coil, an antenna and a touch key which are arranged in the wearable shell, and the first battery, the first wireless charging coil, the antenna and the touch key are electrically connected with the first circuit board. The wearable device can be worn on the finger or wrist of the user, operation can be carried out at any time, a mobile phone does not need to be taken out or an earphone does not need to be operated, and use convenience of the user can be effectively improved.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of intelligent wearable devices, and particularly provides a wearable device, a charging base and a wearable module. BACKGROUND

[0002] At present, when listening to songs by using electronic devices such as mobile phones and earphones, a user needs to take out a mobile phone from a pocket and open a corresponding music playing interface to switch songs or adjust a volume, or tries to blindly operate an earphone button in an ear by lifting a hand, which is not convenient in many cases. Especially in the case of sports or other inconvenient situations, frequently taking a mobile phone or operating an earphone is not only troublesome, but also may interrupt the activity rhythm of the user and affect the overall use experience. CONTENT OF THE UTILITY MODEL

[0003] The present application aims to provide a wearable device, a charging base and a wearable module, and aims to solve the problem that a user is inconvenient to listen to songs or adjust a volume by using electronic devices such as mobile phones and earphones in the prior art.

[0004] To achieve the above-mentioned purpose, the technical solution adopted by the present application is as follows:

[0005] The present application provides a wearable device, comprising:

[0006] a wearable shell, the shape of the wearable shell is annular;

[0007] an electric control assembly, comprising a first circuit board, a first battery, a first wireless charging coil, an antenna and a touch key arranged in the wearable shell, the first battery, the first wireless charging coil, the antenna and the touch key are electrically connected with the first circuit board.

[0008] The wearable device provided by the present application can be worn on a finger or a wrist of a user through the annular wearable shell, charging can be realized through the first wireless charging coil, wireless communication can be realized with electronic devices such as mobile phones and earphones through the antenna, and switching songs, adjusting a volume and other operations can be realized through the touch key. When using, the user only needs to control the wearable device on the hand, which is very convenient to use, and can effectively improve the use experience of the user.

[0009] Optionally, the electric control assembly further comprises:

[0010] a sensor arranged in the wearable shell and electrically connected with the first circuit board.

[0011] Optionally, the wearable shell comprises:

[0012] an inner shell;

[0013] An outer shell is connected to the peripheral wall of the inner shell to form a receiving cavity for accommodating the electric control assembly between the inner shell and the outer shell; the outer shell is a light-transmitting member, and / or the outer shell is provided with an identification part corresponding to the touch key.

[0014] Optionally, the first wireless charging coil is arranged at one side of the receiving cavity.

[0015] Optionally, the outer shell is a light-transmitting member.

[0016] The electric control assembly further comprises an indicator lamp, which is arranged in the receiving cavity and faces the outer shell and is electrically connected to the first circuit board.

[0017] Optionally, the electric control assembly further comprises a display screen, which is arranged in the receiving cavity and faces the outer shell and is electrically connected to the first circuit board.

[0018] Optionally, the peripheral wall of the inner shell is provided with an annular groove, and the outer shell is sealingly connected to the groove opening to form the receiving cavity.

[0019] Optionally, the first circuit board is an annular flexible circuit board, which is arranged in the wearable shell, and the flexible circuit board is integrated with the electric control assembly except the first circuit board.

[0020] The application further provides a charging base for charging the wearable device, which comprises:

[0021] A seat body, the top of which is provided with a charging insertion cavity matched with the wearable shell, and the charging insertion cavity is used for placing the wearable device.

[0022] A charging assembly, which comprises a second circuit board, a second battery and a second wireless charging coil arranged in the seat body, the second battery and the second wireless charging coil are electrically connected to the second circuit board, and the second wireless charging coil is used for cooperating with the first wireless charging coil to charge.

[0023] The charging base provided by the application can stably place the wearable device through the charging insertion cavity of the seat body and can wirelessly charge the wearable device through the charging assembly.

[0024] Optionally, the seat body comprises a first limiting cavity, the first limiting cavity surrounds the charging insertion cavity, and the second wireless charging coil is annular and is limited in the first limiting cavity.

[0025] Optionally, the charging insertion cavity is provided with a limiting boss, and the outer side wall of the limiting boss and the inner side wall of the charging insertion cavity have a gap, the wearable shell is sleeved on the limiting boss and is inserted into the gap.

[0026] And / or, the charging dock further includes a flexible foot pad disposed at the bottom of the dock body.

[0027] This application also provides a wearable module, including: the wearable device described above and the charging dock described above, wherein the charging dock is used to charge the wearable device.

[0028] The wearable module provided in this application can improve the convenience for users when playing music and controlling volume on electronic devices such as mobile phones and headphones through wearable devices, and can wirelessly power the wearable device through the charging dock, thereby improving the overall user experience of the wearable module. Attached Figure Description

[0029] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0030] Figure 1 This is a schematic diagram of the structure of the wearable device provided in the embodiments of this application;

[0031] Figure 2 This is one of the structural schematic diagrams of the wearable device provided in the embodiments of this application without its outer shell;

[0032] Figure 3 This is a second schematic diagram of the wearable device provided in the embodiments of this application without its outer shell;

[0033] Figure 4 This is a schematic diagram of the inner shell provided in an embodiment of this application;

[0034] Figure 5 This is a schematic diagram of the structure of the charging dock provided in an embodiment of this application;

[0035] Figure 6 An exploded view of the charging dock provided in the embodiments of this application;

[0036] Figure 7 A cross-sectional view of the charging dock provided in an embodiment of this application;

[0037] Figure 8 This is a schematic diagram of the structure of the wearable module provided in an embodiment of this application.

[0038] The following are the labeling elements in the figure:

[0039] 100. Wearable devices;

[0040] 101. Wearable housing; 102. Electronic control components; 103. First circuit board;

[0041] 104. First wireless charging coil; 105. Antenna; 106. Previous track button;

[0042] 107. Start / Pause button; 108. Next track button; 109. Inner shell; 110. Outer shell;

[0043] 111. Indicator light; 112. Groove;

[0044] 200. Charging stand;

[0045] 201. Base; 202. Charging component; 203. Charging socket; 204. Second circuit board;

[0046] 205. Second battery; 206. Second wireless charging coil; 207. First limiting cavity;

[0047] 208. Second limiting cavity; 209. Limiting boss; 210. Gap; 211. Flexible foot pad;

[0048] 212. Base; 213. Base plate; 214. Screw; 215. Limiting rod; 216. Limiting hole;

[0049] 300. Wearable module. Detailed Implementation

[0050] The embodiments of this application are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this application, and should not be construed as limiting this application.

[0051] In the description of the embodiments of this application, it should be understood that the terms "upper", "lower", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing the embodiments of this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the embodiments of this application.

[0052] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of the embodiments of this application, "multiple" means two or more, unless otherwise explicitly specified.

[0053] In the embodiments of this application, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; 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; they can refer to the internal communication of two components or the interaction between two components. For those skilled in the art, the specific meaning of the above terms in the embodiments of this application can be understood according to the specific circumstances.

[0054] Currently, when listening to music on electronic devices such as mobile phones and headphones, users need to take their phones out of their pockets and open the corresponding music playback interface to switch songs or adjust the volume, or try to blindly operate the headphone buttons by raising their hands. This is inconvenient in many situations. Especially during exercise or when both hands are not fully utilized, frequently taking out the phone or operating the headphones is not only troublesome, but may also interrupt the user's rhythm of activity and affect the overall user experience.

[0055] To address the aforementioned technical issues, this application provides a wearable device that users can wear on their finger (the device is a ring) or wrist (the device is a bracelet) to operate at any time without needing to take out their mobile phone or operate headphones, thus effectively improving user convenience.

[0056] In some embodiments, refer to Figures 1 to 3 As shown, this application provides a wearable device 100, including: a wearable housing 101 and an electronic control assembly 102. The wearable housing 101 is annular in shape; the electronic control assembly 102 includes a first circuit board 103, a first battery (not shown), a first wireless charging coil 104, an antenna 105, and a touch key disposed within the wearable housing 101. The first battery, the first wireless charging coil 104, the antenna 105, and the touch key are all electrically connected to the first circuit board 103.

[0057] The wearable housing 101 features a ring-shaped design, ensuring that users can comfortably wear it on their fingers or wrists while protecting the internal components.

[0058] In the electronic control assembly 102, the first circuit board 103 serves as the core control unit, responsible for handling various commands and communication tasks. The first battery provides power, enabling the device to operate independently. The first wireless charging coil 104 enables contactless wireless charging, improving ease of use. The antenna 105 is used for wireless communication with external devices (such as mobile phones or headphones), for example, via Bluetooth or other short-range wireless communication technologies.

[0059] Touch keys are used for user interaction, allowing users to execute specific commands through simple touch operations, such as switching songs or adjusting volume. For example, ...Figure 3 As shown, the touch keys may include a previous track button 106, a start / pause button 107, a next track button 108, etc.

[0060] The previous track button 106 can include the following usage methods:

[0061] Click: Switch to the previous song in the current playlist.

[0062] Double-click or multiple clicks (as many times as set): Increase the volume.

[0063] The start / pause button 107 can be used in the following ways:

[0064] Click: Controls the start or pause of the currently playing song. If the song is playing, pressing this button will pause playback; if the song is paused, pressing this button will resume playback.

[0065] The next track button 108 can be used in the following ways:

[0066] Click: Switch to the next song in the current playlist.

[0067] Double-click or multiple clicks (as many times as set): Decrease the volume.

[0068] Each button has a clearly defined function, and multiple functions can be achieved through simple single, double, or multi-click operations, reducing the learning curve and improving ease of use and accuracy. Different numbers of button presses enable even more functions (such as volume adjustment), making the device more flexible and versatile.

[0069] For example, when running or exercising: users can easily switch songs or adjust the volume without interrupting their exercise to maintain a sense of rhythm.

[0070] During driving: Drivers can control music playback with simple button operations without having to pay attention to their mobile phones, thus improving safety.

[0071] Daily commute: On crowded public transport, users don't have to struggle to take their phones out of their bags or pockets; they can simply control the music with a tap on their wrist.

[0072] The working principle of the wearable device 100 of this application generally includes:

[0073] Charging process: Using the first wireless charging coil 104, users can conveniently charge the wearable device 100 without plugging or unplugging wires, thus improving the user experience.

[0074] Communication function: Through the built-in antenna 105, the wearable device 100 can establish a wireless connection with the user's mobile phone, headphones and other electronic devices to ensure stable and low-power data transmission.

[0075] User interaction: When a user wants to switch songs or adjust the volume, they simply touch the touch keys on the wearable device 100. The touch signal is transmitted to the first circuit board 103, which parses it and generates corresponding instructions, which are then sent wirelessly to the target device (such as a mobile phone or headphones). After receiving the instructions, these devices execute the corresponding music playback operations (such as switching songs, adjusting the volume, etc.).

[0076] Understandably, users no longer need to take their phones out of their pockets or operate the headphones blindly during exercise; they can simply touch the wearable device 100 worn on their fingers or wrists to complete the operation.

[0077] Therefore, the wearable device 100 provided in this application not only solves the problem of inconvenient operation in traditional methods, but also greatly improves the user experience. With its rationally arranged touch keys and diverse operation methods, users can control music playback more conveniently and quickly, enjoying a comfortable music experience whether exercising, driving, or in daily life.

[0078] In some embodiments, the electronic control component 102 further includes a sensor (not shown), which is disposed within the wearable housing 101 and electrically connected to the first circuit board 103.

[0079] One or more sensors can be configured, including heart rate sensors, accelerometers / gyroscopes, and temperature sensors. Heart rate sensors can monitor a user's heart rate in real time, especially during exercise, helping users understand whether their exercise intensity is appropriate and avoiding the risks of overexertion. Accelerometers / gyroscopes can detect a user's activity status (such as steps, running distance, etc.) and provide more accurate exercise data. Temperature sensors can detect body surface temperature, aiding in assessing physical condition or environmental adaptability.

[0080] When a user wears the device, sensors continuously collect relevant human parameters (such as heart rate and activity level). The first circuit board 103 performs preliminary processing on the collected data and then wirelessly transmits it to the user's mobile phone or other smart device via the built-in antenna 105. A companion application on the mobile phone can further analyze and display this data, providing the user with a detailed health report. Furthermore, the application can provide personalized suggestions or reminders based on the data analysis results. For example, it can issue a warning when the heart rate is abnormally high, prompting the user to adjust the intensity of their exercise; or remind the user to get up and move around after a prolonged period of inactivity.

[0081] Therefore, the wearable device 100 provided in this application embodiment is not limited to music control, but can also comprehensively monitor the user's health status and meet the user's health management needs. Especially in the field of sports and fitness, it provides more scientific guidance and support. Furthermore, the health monitoring function is seamlessly integrated with the original music control function into a small and portable device, reducing the trouble of users having to carry multiple devices and improving the overall convenience and comfort of use, thereby providing users with more comprehensive services.

[0082] In some embodiments, refer to Figures 1 to 4 As shown, the wearable housing 101 includes an inner housing 109 and an outer housing 110. The outer housing 110 is connected to the outer peripheral wall of the inner housing 109 to form a receiving cavity for accommodating the electronic control assembly 102 between the inner housing 109 and the outer housing 110. The outer housing 110 is a light-transmitting element, and / or, the outer housing 110 is provided with an identification portion corresponding to the touch key (not shown in the figure).

[0083] The inner shell 109 primarily provides a basic structure that directly contacts the user's skin. In terms of material selection, soft and skin-friendly materials (such as silicone or TPU) can be used to improve wearing comfort while also providing a certain degree of abrasion resistance.

[0084] The outer shell 110 is connected to the outer peripheral wall of the inner shell 109, forming a double-layer structure. This design not only enhances the overall structural robustness but also provides better protection for the internal components. Furthermore, the space between the inner shell 109 and the outer shell 110 is constructed as a cavity for accommodating the electronic control component 102. The compact design helps reduce the overall size of the device, making it easier to wear.

[0085] The housing 110 can be made of a translucent material (such as transparent plastic, glass, or adhesive), allowing users to observe the internal touch keys and perform touch operations, thus enhancing the user experience. Furthermore, the housing 110 can also feature labels corresponding to the touch keys, helping users quickly identify and operate each button. These labels can use different shapes, colors, or textures to distinguish different functions.

[0086] Therefore, the embodiments of this application, through the double-layer structure design of the inner shell 109 and the outer shell 110, as well as the introduction of the light-transmitting outer shell and the marking part, not only achieve a compact and miniaturized design, but also significantly improve the user's operating experience.

[0087] In some embodiments, refer to Figure 2 As shown, the first wireless charging coil 104 is disposed on one side of the accommodating cavity.

[0088] The first wireless charging coil 104 is located on one side of the accommodating cavity, rather than surrounding the entire wearable device 100. The non-ring-shaped first wireless charging coil 104 can be circular, square, or other geometric shapes. This design allows for flexible arrangement based on the specific internal space of the wearable device 100, enabling other components to utilize the remaining space more efficiently, improving structural compactness, and helping to reduce the overall size of the device.

[0089] In some embodiments, refer to Figure 3 As shown, the housing 110 is a light-transmitting component; the electronic control assembly 102 also includes an indicator light 111, which is located in the accommodating cavity and faces the housing 110, and is electrically connected to the first circuit board 103.

[0090] The housing 110 can be made of a transparent material (such as transparent plastic, glass, or adhesive). The electronic control assembly 102 includes one or more indicator lights 111. The indicator lights 111 are located inside the receiving cavity and face the housing 110 to ensure that light can pass through the housing 110 evenly and be clearly seen by the user. Depending on actual needs, multiple indicator lights 111 can be set in different locations, and each indicator light 111 can represent a different function or status.

[0091] For example, power level indicator: When the battery is low, indicator light 111 can flash a specific color (such as red) to remind the user to charge it in time.

[0092] Connection status: When the device is successfully connected to a mobile phone or other electronic device, indicator light 111 can display a steady green or blue light.

[0093] Operation feedback: When the touch key is pressed to perform an operation, the indicator light 111 can briefly light up or flash to confirm that the operation has been successfully executed.

[0094] Health monitoring status: If the device is monitoring heart rate or collecting other health data, indicator light 111 may remain on or flash to indicate the current working status.

[0095] Therefore, by adopting a light-transmitting shell 110 and combining it with an indicator light 111, the present application embodiment allows users to easily obtain device status information without interrupting their current activity, further improving the convenience of wearing and using the device.

[0096] In some embodiments, the housing 110 is a light-transmitting element; the electronic control assembly 102 also includes a display screen (not shown), which is disposed in the accommodating cavity and faces the housing 110, and is electrically connected to the first circuit board 103.

[0097] The housing 110 can be made of a transparent material (such as transparent plastic, glass, or adhesive). The display screen is located within the housing cavity and faces the housing 110, ensuring that the content on the screen can be clearly seen by the user through the housing 110. Depending on the actual needs, the display screen can be monochrome (such as OLED) or multicolor (such as LCD or AMOLED), depending on the requirements for resolution, power consumption, and display effect.

[0098] The display screen can show at least the following information:

[0099] Health monitoring information: Directly displays health data such as heart rate, steps, and calorie consumption, allowing users to understand their physical condition at any time.

[0100] Music control information: Displays information such as the currently playing song title, artist, and album cover, making it convenient for users to operate and switch songs.

[0101] Notifications and reminders: Display notifications from your phone, such as text messages, social media messages, calendar reminders, etc., reducing the need for users to frequently check their phones.

[0102] System status information: Displays system information such as battery level, connection status, and time, helping users quickly understand the device's working status.

[0103] Therefore, through the display screen, users can view a variety of information at a glance, reducing the need to frequently check the phone and improving the convenience and efficiency of use.

[0104] In some embodiments, refer to Figures 1 to 4 As shown, the outer peripheral wall of the inner shell 109 is provided with an annular groove 112, and the outer shell 110 is sealed to the groove opening of the groove 112 to form a receiving cavity.

[0105] The outer peripheral wall of the inner shell 109 is provided with an annular groove 112. This groove 112 provides an installation interface for the outer shell 110, allowing the outer shell 110 to be securely and tightly sealed to the opening of the groove 112, preventing moisture, dust, and other external substances from entering the accommodating cavity, thereby protecting the safe operation of the internal electronic control components 102. For example, the outer shell 110 can be integrally molded with glue, which can achieve a seamless connection, ensuring high sealing and waterproof performance, while also ensuring good light transmission.

[0106] Therefore, the wearable device 100 of this application embodiment achieves efficient waterproof and dustproof functions, significantly improving the durability of the device and the user's safety.

[0107] In some embodiments, refer to Figure 2 and Figure 3As shown, the first circuit board 103 is a ring-shaped flexible circuit board, which is arranged in a ring inside the wearable housing 101, and the flexible circuit board integrates the electronic control components 102 other than the first circuit board 103.

[0108] Flexible circuit boards can be made of polyimide or other flexible substrates, which possess excellent flexibility and durability. Flexible circuit boards can maintain stable electrical connections when bent, folded, or rolled, making them ideal for wearable device designs. This flexibility allows the circuit board to fit snugly into the ring-shaped structure of the wearable device 100, making full use of limited space and ensuring the miniaturization and compactness of the device.

[0109] All electronic control components other than the first circuit board 103 (such as the first battery, the first wireless charging coil 104, the antenna 105, the touch keys, the sensors, etc.) are integrated on the flexible circuit board, which reduces additional connecting lines and interfaces, lowers the risk of failure, and helps to further reduce the overall size of the device, making it more compact and exquisite.

[0110] Therefore, by adopting a ring-shaped flexible circuit board design, the embodiments of this application not only achieve a compact and miniaturized structure, but also significantly improve the reliability of the device.

[0111] In some embodiments, refer to Figures 5 to 8 As shown, this application also provides a charging stand 200, which is used to charge the wearable device 100 of the above embodiment. The charging stand 200 includes a base 201 and a charging assembly 202. The top of the base 201 is provided with a charging cavity 203 adapted to the wearable housing 101. The charging cavity 203 is used to place the wearable device 100. The charging assembly 202 includes a second circuit board 204, a second battery 205 and a second wireless charging coil 206 disposed in the base 201. The second battery 205 and the second wireless charging coil 206 are both electrically connected to the second circuit board 204. The second wireless charging coil 206 is used to cooperate with the first wireless charging coil 104 for charging.

[0112] The top of the charging base 200 is provided with a charging cavity 203 that is adapted to the wearable housing 101. That is, the shape and size of the charging cavity 203 match the design of the wearable housing 101 and is also ring-shaped to adapt to the wearing form of the wearable device 100, ensuring that the wearable device 100 can be placed stably on the charging base 200, preventing the wearable device 100 from sliding or falling during charging, and ensuring the safety and stability of the charging process.

[0113] The second circuit board 204 is the core control unit of the charging dock 200, responsible for managing power distribution, charging status monitoring, and other functions. The second battery 205 provides power to the charging dock 200, enabling it to charge the wearable device 100 even without an external power source. The capacity of the second battery 205 can be flexibly adjusted to meet the needs of different scenarios. The second wireless charging coil 206 can act as a transmitter, working in conjunction with the first wireless charging coil 104 in the wearable device 100 as a receiver to achieve wireless charging functionality.

[0114] In use, the user places the wearable device 100 into the charging cavity 203 of the charging dock 200, ensuring that the two wireless charging coils are aligned and in close contact to maximize energy transfer efficiency. Once the device is correctly positioned, the second wireless charging coil 206 begins operation, sending energy to the first wireless charging coil 104 via electromagnetic induction, thereby charging the wearable device 100. The second circuit board 204 monitors the charging status in real time and provides feedback to the user on the current charging progress and status via indicator light 111 or other means (such as a mobile application). When the first battery of the wearable device 100 is fully charged, the charging dock 200 automatically stops charging to prevent overcharging, extend battery life, and improve safety.

[0115] Therefore, the charging stand 200 provided in this application embodiment realizes the functions of stable placement and wireless charging of the wearable device 100, improving the user's convenience and safety.

[0116] In some embodiments, refer to Figure 6 and Figure 7 As shown, the base 201 includes a first limiting cavity 207 surrounding the charging socket 203, and the second wireless charging coil 206 is annular and confined within the first limiting cavity 207. The base 201 also includes a second limiting cavity 208 communicating with the first limiting cavity 207, and the second limiting cavity 208 is used to house the second circuit board 204 and the second battery 205, resulting in a compact structure.

[0117] The first limiting cavity 207 is annular and surrounds the charging socket 203. The second wireless charging coil 206 is also annular, matching the shape of the wearable device 100. The size of the first limiting cavity 207 is adapted to the size of the second wireless charging coil 206, ensuring that the second wireless charging coil 206 can be securely placed within it, preventing displacement or loosening.

[0118] Understandably, the ring design allows the second wireless charging coil 206 to be evenly distributed around the charging cavity 203, ensuring uniform coverage of the electromagnetic field. This ensures that the first wireless charging coil 104 in the wearable device 100 can effectively receive energy regardless of its placement, improving charging efficiency and further enhancing the device's practicality and user experience.

[0119] In some embodiments, refer to Figures 5 to 8 As shown, a limiting boss 209 is provided in the charging cavity 203, and there is a gap 210 between the outer side wall of the limiting boss 209 and the inner side wall of the charging cavity 203. The wearable shell 101 is sleeved on the limiting boss 209 and inserted into the gap 210.

[0120] The limiting boss 209 can be cylindrical, and its shape matches the wearable housing 101 to ensure that the wearable device 100 can be securely fitted onto it. An appropriate gap 210 is left between the outer wall of the limiting boss 209 and the inner wall of the charging cavity 203. This gap provides sufficient space for the wearable housing 101 to be easily inserted and kept stable, improving the reliability and safety of charging.

[0121] In some embodiments, refer to Figure 6 and Figure 7 As shown, the charging dock 200 also includes a flexible foot pad 211 disposed at the bottom of the seat body 201.

[0122] Flexible foot pads 211 can be made of rubber, silicone, or other materials with high elasticity and abrasion resistance. These materials are not only soft but also have good shock absorption and anti-slip properties.

[0123] Depending on the specific size and weight of the charging dock 200, one or more flexible feet 211 can be provided to ensure sufficient friction and cushioning at each contact point. For example, the flexible feet 211 can be located at the four corners or edges of the bottom of the charging dock 200 to provide uniform support and anti-slip effect. Furthermore, the flexible feet 211 can be circular, annular, square, or other geometric shapes, depending on the appearance design and functional requirements of the charging dock 200.

[0124] The embodiments of this application achieve shock absorption and cushioning function through flexible foot pads 211, which significantly enhances the stability and safety of the equipment.

[0125] In some embodiments, refer to Figure 6 and Figure 7As shown, the seat 201 includes a base 212 and a bottom plate 213. The base 212 is provided with a charging cavity 203 and a limiting boss 209. The bottom plate 213 can be connected to the bottom of the base 212 by multiple screws 214 and other fasteners to form a first limiting cavity 207 and a second limiting cavity 208 that are internally connected and distributed vertically. The flexible foot pad 211 can be annular, located at the bottom of the bottom plate 213 and covering the screws 214, thereby ensuring aesthetics. The seat 201 of this embodiment can be designed to be detachable, which is beneficial for the installation and maintenance of the internal charging component 202.

[0126] In some embodiments, refer to Figure 6 and Figure 7 As shown, the base plate 213 is provided with a plurality of ring-shaped limiting rods 215, and the edge of the second circuit board 204 is provided with a plurality of limiting holes 216 corresponding to the limiting rods 215, thereby stably placing the second circuit board 204 on the limiting rods 215, and the second battery 205 is limited between the second circuit board 204 and the limiting rods 215, thereby realizing the positioning and installation of the second circuit board 204 and the second battery 205.

[0127] In addition, the upper end of the limiting rod 215 can be clamped between the outer wall of the second wireless charging coil 206 and the inner wall of the first limiting cavity 207 to further clamp the second wireless charging coil 206 and improve its stability.

[0128] In some embodiments, refer to Figure 8 As shown, this application also provides a wearable module 300, including: the wearable device 100 of the above embodiments and a charging dock 200, wherein the charging dock 200 is used to charge the wearable device 100.

[0129] Since the wearable module 300 provided in this application includes the wearable device 100 and charging dock 200 of the above embodiments, it has all the technical effects of the wearable device 100 and charging dock 200 of the above embodiments, which will not be repeated here.

[0130] The above are merely preferred embodiments of this application and are not intended to limit the embodiments of this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the embodiments of this application should be included within the protection scope of the embodiments of this application.

Claims

1. A wearable device, characterized in that, include: Wearable housing, the wearable housing being ring-shaped; The electronic control component includes a first circuit board, a first battery, a first wireless charging coil, an antenna, and a touch key disposed within the wearable housing. The first battery, the first wireless charging coil, the antenna, and the touch key are all electrically connected to the first circuit board. The wearable housing includes an inner shell and an outer shell. The inner shell is a flexible component, and the outer shell is a light-transmitting component. The outer shell is connected to the outer peripheral wall of the inner shell to form a cavity for accommodating the electronic control component between the inner shell and the outer shell. The first wireless charging coil is disposed on one side of the cavity.

2. The wearable device according to claim 1, characterized in that, The electronic control assembly also includes: The sensor is located inside the wearable housing and is electrically connected to the first circuit board.

3. The wearable device according to claim 1, characterized in that, The outer casing is provided with an identification section corresponding to the touch key.

4. The wearable device according to claim 1, characterized in that, The electronic control component also includes an indicator light, which is disposed within the accommodating cavity and faces the outer casing, and is electrically connected to the first circuit board; And / or, the electronic control assembly further includes a display screen disposed within the accommodating cavity and facing the housing, and electrically connected to the first circuit board.

5. The wearable device according to claim 1, characterized in that, The outer peripheral wall of the inner shell is provided with an annular groove, and the outer shell is sealed to the groove opening to form the receiving cavity.

6. The wearable device according to any one of claims 1 to 5, characterized in that, The first circuit board is a ring-shaped flexible circuit board, which is arranged in a ring inside the wearable housing, and the electronic control components other than the first circuit board are integrated on the flexible circuit board.

7. A charging stand, characterized in that, The charging dock is used to charge the wearable device according to any one of claims 1 to 6, and the charging dock comprises: The base has a charging cavity at its top that is adapted to the wearable housing, and the charging cavity is used to hold the wearable device; The charging assembly includes a second circuit board, a second battery, and a second wireless charging coil disposed in the housing. The second battery and the second wireless charging coil are both electrically connected to the second circuit board. The second wireless charging coil is used to charge in conjunction with the first wireless charging coil. The base includes a base and a bottom plate. The base has the charging cavity. The bottom plate is connected to the bottom of the base. The charging assembly is disposed between the base and the bottom plate. The bottom plate has a plurality of ring-shaped limiting rods. The edge of the second circuit board has a plurality of limiting holes corresponding to the limiting rods. The second battery is limited between the second circuit board and the limiting rods. The base includes a first limiting cavity surrounding the charging cavity. The second wireless charging coil is annular and limited within the first limiting cavity. The upper end of the limiting rod is clamped between the outer wall of the second wireless charging coil and the inner wall of the first limiting cavity.

8. The charging stand according to claim 7, characterized in that, The charging cavity is provided with a limiting protrusion, and there is a gap between the outer side wall of the limiting protrusion and the inner side wall of the charging cavity. The wearable shell is sleeved on the limiting protrusion and inserted into the gap. And / or, the charging dock may further include flexible foot pads disposed at the bottom of the base plate.

9. A wearable module, characterized in that, include: The wearable device according to any one of claims 1 to 6 and the charging dock according to any one of claims 7 to 8, wherein the charging dock is used to charge the wearable device.