Wearable device
By placing the buzzer component and the mainboard on opposite sides of the battery in the wearable device and connecting them using conductive elastic elements, the problem of inconvenient connection between the buzzer component and the mainboard is solved, improving the ease of installation and protection against drops.
Patent Information
- Application Number
- CN202521717480.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-12
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-08-12
AI Technical Summary
The connection between the buzzer component and the motherboard in wearable devices is inconvenient, especially in limited space where it is difficult to achieve effective wire bonding or pin connection, resulting in inconvenient installation and connection operations.
The first conductive elastic element is used to place the buzzer component and the main board on both sides of the battery, and reliable conduction is achieved through the conductive elastic element. The elastic properties of the conductive elastic element are used to provide cushioning protection when the product is dropped.
This achieves a reliable connection between the buzzer component and the motherboard, facilitating installation and assembly, reducing motherboard deformation and electronic component damage during drops, and improving connection reliability and durability.
Smart Images

Figure CN224682558U_ABST
Abstract
Description
Technical Field
[0001] This application relates to electronic devices, and more particularly to a wearable device. Background Technology
[0002] With economic development, wearable devices (such as watches and wristbands) are becoming increasingly popular, and their functions are also expanding. Wearable devices typically consist of a watch body and a watch band, with the band primarily used to secure the device. The watch body houses the battery, motherboard, motor assembly, buzzer assembly, etc., with the motherboard connected to all three components. The motherboard integrates various electronic components, such as the main control chip, memory devices, power management IC (PMIC), and sensors.
[0003] However, due to limited space inside the meter, the battery and buzzer assembly are often stacked. Connecting the buzzer assembly to the motherboard using traditional soldering wires is very inconvenient, while using pin connections is often impossible due to battery obstruction. Therefore, connecting the buzzer assembly and the motherboard is difficult. Utility Model Content
[0004] This application provides a wearable device to facilitate the connection between the buzzer component and the motherboard.
[0005] This application provides a wearable device, including: a device body, and a motherboard, a battery, a buzzer component, and a first conductive elastic element disposed within the device body;
[0006] Along the thickness direction of the device body, the motherboard and the buzzer assembly are located on both sides of the battery, respectively;
[0007] The first conductive elastic element is disposed on the side of the battery and abuts against both the motherboard and the buzzer assembly.
[0008] In some possible implementations, the first conductive elastic element is a conductive spring.
[0009] In some possible implementations, the conductive spring has a surface coating, the material of which includes gold, silver, cobalt, nickel, palladium, or rhodium.
[0010] In some possible implementations, the wearable device further includes a support member;
[0011] The support member is disposed inside the device body and connected to the device body. The buzzer component and the first conductive elastic element are sequentially sleeved on the support member along the extension direction of the support member.
[0012] In some possible implementations, the support member is an integral structure with the main body of the device.
[0013] In some possible implementations, the buzzer component includes:
[0014] A buzzer is located on the side of the battery that is away from the motherboard.
[0015] A connecting piece is disposed on the side of the battery and abuts against the first conductive elastic element;
[0016] Lead wires connect the buzzer chip and the connecting piece.
[0017] In some possible implementations, the buzzer chip includes a first electrode and a second electrode;
[0018] The first electrode and the second electrode are respectively connected to one of the connecting pieces, and each of the connecting pieces is connected to one of the first conductive elastic elements.
[0019] In some possible implementations, the wearable device also includes:
[0020] The motor assembly is disposed within the main body of the device and located beside the battery;
[0021] A second conductive elastic element is disposed on the side of the battery and abuts between the main board and the motor assembly.
[0022] In some possible implementations, the motor assembly includes:
[0023] The motor is located beside the battery;
[0024] A circuit board is disposed beside the battery and connected to the motor. The circuit board also abuts against the second conductive elastic element.
[0025] In some possible implementations, the circuit board is a flexible circuit board, which includes two pads, each pad corresponding to a second conductive elastic element; and / or
[0026] The motor assembly also includes:
[0027] A bracket is mounted on the motor and the circuit board and is connected to both the device body and the motor. The bracket has mounting holes in which a portion of the circuit board is exposed.
[0028] The second conductive elastic element is disposed in the mounting hole and extends out of the mounting hole; and / or
[0029] The wearable device is a watch.
[0030] The wearable device provided in this application includes: a device body, and a motherboard, a battery, a buzzer component, and a first conductive elastic element disposed within the device body. Along the thickness direction of the device body, the motherboard and the buzzer component are located on opposite sides of the battery, and both extend beyond the battery in a direction perpendicular to the thickness of the device body. The first conductive elastic element is disposed beside the battery and abuts against both the motherboard and the buzzer component. The first conductive elastic element enables reliable conductivity between the buzzer component and the motherboard, facilitating installation and connection. The first conductive elastic element is elastic and can also cushion the motherboard during product drops or drop tests, reducing deformation caused by instantaneous impacts and minimizing damage and detachment of electronic components on the motherboard due to motherboard deformation. Attached Figure Description
[0031] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.
[0032] Figure 1 Top view of the wearable device provided in this application;
[0033] Figure 2 A cross-sectional view of the wearable device provided in this application from one orientation;
[0034] Figure 3 A schematic diagram of the buzzer component provided in this application;
[0035] Figure 4 A top view of the buzzer component provided in this application;
[0036] Figure 5 A cross-sectional view of the wearable device provided in this application from another angle;
[0037] Figure 6 A schematic diagram of the motor and circuit board provided in this application.
[0038] Explanation of reference numerals in the attached figures:
[0039] 10-Main body of the equipment; 11-Casing;
[0040] 20-Motherboard;
[0041] 30-battery;
[0042] 40-Buzzer assembly; 41-Buzzer plate; 42-Connecting plate; 43-Connecting wire;
[0043] 50 - First conductive elastic element;
[0044] 60 - Support component;
[0045] 70-Motor assembly; 71-Motor; 72-Circuit board; 73-Solder pad; 74-Bracket;
[0046] 80 - Second conductive elastic element. Detailed Implementation
[0047] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this application as detailed in the appended claims.
[0048] In related technologies, as the requirements for battery life in wearable devices increase, the size of the batteries in wearable devices is constantly increasing to improve battery capacity. The diameter of the buzzer element in a buzzer assembly is directly proportional to the sound volume; the larger the buzzer element diameter, the louder the sound. Therefore, the battery and buzzer assembly are often stacked to improve space utilization and reduce the overall size of the device. The main board is located on the side of the battery away from the buzzer assembly, meaning the main board and buzzer assembly are located on opposite sides of the main board. Connecting the main board and buzzer assembly is inconvenient; wire bonding is difficult to use, and pin bonding is difficult to achieve due to the battery obstruction. Furthermore, the structure of the motor assembly is also constantly improving. The motor assembly includes a motor and a circuit board, with the motor connected to the main board via the circuit board. However, connecting the corresponding pads on the circuit board and the main board is also not easy.
[0049] The wearable device provided in this application enables reliable conductivity between the buzzer component and the motherboard through a first conductive elastic element, facilitating installation and connection. The first conductive elastic element is elastic and can also cushion the motherboard during product drops or drop tests, reducing deformation caused by instantaneous impacts and minimizing damage and detachment of electronic components on the motherboard due to motherboard deformation.
[0050] The technical solution of this application and how it solves the above-mentioned technical problems will be described in detail below with specific embodiments. These specific embodiments can be combined with each other, and the same or similar concepts or processes may not be repeated in some embodiments. The embodiments of this application will be described below with reference to the accompanying drawings.
[0051] This application provides a wearable device, wherein the wearable device for wearing on the wrist includes smartwatches, sports watches, smart bracelets, etc. This application does not limit the types of devices, and this embodiment uses a smartwatch as an example for description.
[0052] See Figures 1 to 6The wearable device includes a main body 10, and a motherboard 20, a battery 30, a buzzer component 40, and a first conductive elastic element 50 disposed within the main body 10. Along the thickness direction of the main body 10, the motherboard 20 and the buzzer component 40 are located on opposite sides of the battery 30. The first conductive elastic element 50 is disposed beside the battery 30 and abuts against both the motherboard 20 and the buzzer component 40. The main body 10 provides support and protection for its internal structures. The main body 10 has a receiving cavity and an opening communicating with the receiving cavity, which is used to accommodate the motherboard 20, the battery 30, the buzzer component 40, and the first conductive elastic element 50.
[0053] In some possible examples, the device body 10 includes a casing 11, which can be any shape such as a cylinder, elliptical cylinder, cuboid, or drum. The casing 11 can be made of plastic, composite materials, such as acrylonitrile-butadiene-styrene copolymer (ABS), polycarbonate (PC), nylon, or carbon fiber reinforced polymer. The material of the casing 11 is not limited and can be selected as needed, such as ceramic, carbon fiber, or metal. The casing 11 may include a bottom cover and side frames, which can be integrally molded. The bottom cover and side frames enclose a receiving cavity, and the side frame opposite to the bottom cover encloses an opening, i.e., the opening is opposite to the bottom cover.
[0054] The main body 10 also includes a display screen, which covers the opening in the casing 11 and is connected to the internal motherboard 20 and battery 30 to enable the image display function of the wearable device. The display screen can be a liquid crystal display or an organic light-emitting diode display. Furthermore, the display screen can also have touch functionality to control the operation of the wearable device by touching the display screen.
[0055] The wearable device also includes a watch strap connected to the device body 10, and may include a first watch strap and a second watch strap. The first and second watch straps are respectively connected to both ends of the device body 10. When worn, the first and second watch straps wrap around the user's wrist and are connected to secure the device body 10 to the user's wrist. The first and second watch straps can be made of metal or non-metal. Both the first and second watch straps may include multiple sequentially hinged links; alternatively, both the first and second watch straps may be elastic strip structures.
[0056] Continue reading Figures 1 to 6The main body 10 of the device contains a battery 30 and a motherboard 20. The battery 30 provides electrical energy and can be, for example, a rechargeable battery, and can be cylindrical or cuboid. The motherboard 20 is located on one side of the battery 30, for example, on the side of the battery 30 facing away from the bottom wall of the watch case 11, and can be cuboid. The motherboard 20 is connected to the battery 30 and has electronic components mounted on it. These electronic components may include, but are not limited to, a central processing unit (CPU), a wireless charging chip, a smart algorithm chip, or a power management chip. The motherboard 20 is also connected to the watch case 11. For example, the watch case 11 has a step or a boss, and the motherboard 20 is located on the step / boob and can be bonded, snapped, or connected to the step / boob by threaded fasteners.
[0057] The device body 10 also includes a buzzer component 40, which provides audible alerts, specifically through vibration to function as an alarm clock, reminder, or warning. The buzzer component 40 is located on the side of the battery 30 opposite to the main board 20; that is, the buzzer component 40 and the main board 20 are located on opposite sides of the battery 30. The buzzer component 40, battery 30, and main board 20 are arranged sequentially along the thickness direction of the device body 10. Figure 2 As shown, the thickness direction of the device body 10 is the Z direction, and the buzzer component 40, battery 30, and main board 20 are arranged sequentially from bottom to top. Along the direction perpendicular to the thickness of the device body 10, both the main board 20 and the buzzer component 40 extend outward from the battery 30, and part of the edge of the main board 20 and part of the edge of the buzzer component 40 are opposite each other. This makes it easier to set the first conductive elastic element 50 and also facilitates the conduction between the main board 20 and the buzzer component 40.
[0058] In some possible examples, the buzzer assembly 40 includes: a buzzer 41, a connecting piece 42, and a lead wire. The buzzer 41 is disposed on the side of the battery 30 away from the motherboard 20. The connecting piece 42 is disposed on the side of the battery 30 and abuts against the first conductive elastic member 50. The lead wire connects the buzzer 41 and the connecting piece.
[0059] The buzzer 41 is an electronic component that generates sound using the piezoelectric effect, and it may include a first electrode and a second electrode. The buzzer 41 is located below the battery 30, and its outer periphery can be completely beneath the battery 30; that is, the orthographic projection of the battery 30 onto the bottom wall of the receiving cavity covers the orthographic projection of the buzzer 41 onto the bottom wall of the receiving cavity. Exemplarily, the buzzer 41 is disposed on the bottom wall of the receiving cavity and bonded to the casing 11. The buzzer 41 can be a circular, elliptical, or square disc, etc. The structure of the buzzer 41 can adopt existing structures, which will not be described in detail here.
[0060] To bring out the buzzer 41, a connecting piece 42 is located on one side of the buzzer 41 along a direction perpendicular to the thickness of the housing, and is offset from the battery 30, i.e., not directly opposite it. The connecting piece 42 may or may not be fixed to the main body 10 of the device (e.g., the bottom shell). Two connecting pieces 42 are provided, which are respectively connected to the first electrode and the second electrode of the buzzer 41. That is, one connecting piece 42 is electrically connected to the first electrode of the buzzer 41, and the other connecting piece 42 is electrically connected to the second electrode of the buzzer 41. The connecting piece 42 can be made of metal, such as copper, aluminum, nickel, silver, gold, and their alloys, etc. The connecting piece 42 can be circular, elliptical, rectangular, etc., and can also be annular, such as a circular ring, an elliptical ring, a rectangular ring, etc.
[0061] Lead wires connect the buzzer 41 and the connecting piece 42. The lead wires can be made of tinned copper wire, silver alloy wire, nickel wire, etc., and can be single-core or multi-strand stranded wire. The buzzer 41 has two lead wires, each connected to an independent connecting piece 42. One end of one lead wire is soldered to the first electrode of the buzzer 41, and the other end is soldered to a connecting piece 42; one end of the other lead wire is soldered to the second electrode of the buzzer 41, and the other end is soldered to another connecting piece 42. Connecting the buzzer 41 and the connecting piece 42 with lead wires allows the buzzer 41 to be led out, and the length of the lead wires can be reduced, facilitating assembly and fixation.
[0062] The main body 10 of the device also includes a first conductive elastic element 50, located beside the battery 30. This improves the space utilization within the main body 10 and maximizes the battery's capacity. One end of the first conductive elastic element 50 abuts against the motherboard 20, and the other end abuts against the buzzer assembly 40, thus establishing a connection between the buzzer assembly 40 and the motherboard 20. The first conductive elastic element 50 itself is elastic and can also cushion the motherboard 20 during product drops or drop tests, reducing deformation caused by instantaneous impacts and minimizing damage and detachment of electronic components on the motherboard 20 due to deformation.
[0063] In related technologies, the buzzer component 40 and the mainboard 20 are directly connected by wires, such as soldering them. This requires sufficiently long wires, making assembly and soldering inconvenient. Furthermore, it's necessary to ensure that the battery 30 can be removed after the mainboard 20 is moved. The wires are also difficult to place and secure, and can easily interfere with other electronic components or cause noise when the device is cranked. In this embodiment, the buzzer chip 41 and the connecting piece 42 are connected by a connecting wire 43, and the mainboard 20 and the connecting piece 42 are connected by a first conductive elastic element 50. This achieves a reliable connection between the connecting piece 42 and the mainboard 20, and significantly reduces the length of the connecting wire 43, making it easier to install and secure.
[0064] In some possible implementations, the first conductive elastic element 50 may be disposed at the middle of the long side or the middle of the short side of the main board 20. The long side of the main board 20 refers to the side extending along the length direction of the main board 20, and the short side of the main board 20 refers to the side extending along the width direction of the main board 20. The first conductive elastic element 50 is located in the middle, and the threaded fastener is disposed at the end, for example, at the corner of the main board 20.
[0065] The number of first conductive elastic elements 50 is adapted to the number of connecting pieces 42. In the example where the buzzer piece 41 includes a first electrode and a second electrode, and the first electrode and the second electrode are respectively connected to a connecting piece 42, each connecting piece 42 is connected to one first conductive elastic element 50. That is, there can be two connecting pieces 42, and each connecting piece 42 is connected to one first conductive elastic element 50, thereby enabling both connecting pieces 42 to be electrically connected to the motherboard 20.
[0066] In some possible implementations, the first conductive elastic element 50 is a conducting spring. A conducting spring is a special spring that possesses both the elastic mechanical properties of a spring and the ability to conduct current. The conducting spring is compressed and connected between the main board 20 and the buzzer assembly 40 (e.g., the connecting piece 42). Specifically, one end of the conducting spring abuts against the main board 20, which is fixed relative to the watch case 11, while the other end of the conducting spring abuts against the connecting piece 42, further pressing the connecting piece 42 against the watch case 11, thereby achieving reliable conduction between the main board 20 and the buzzer assembly 40.
[0067] The conducting spring can be a helical spring, a wave spring, etc. The conducting spring has a surface coating, the material of which includes gold, silver, cobalt, nickel, palladium, or rhodium. For example, the surface of the conducting spring is gold-plated, meaning the surface coating is made of gold. This reduces the resistance of the conducting spring and improves contact reliability.
[0068] In some possible examples, the wearable device also includes a support member 60; the support member 60 is disposed within and connected to the device body 10, and a buzzer component 40 and a first conductive elastic element 50 are sequentially mounted on the support member 60 along its extension direction. The support member 60 can at least support and guide the first conductive elastic element 50, preventing instability of the first conductive elastic element 50 and improving the reliability of the connection between the motherboard 20 and the buzzer component 40.
[0069] The support member 60 is disposed within the receiving cavity and spaced apart from the main board 20. The support member 60 can be fixed relative to the watch case 11. The support member 60 is insulated, for example, the material of the support member 60 is plastic. The support member 60 can be cylindrical, elliptical cylindrical, rectangular cylindrical, frustum-shaped, etc. The buzzer assembly 40 and the first conductive elastic element 50 are both sleeved on the support member 60. For example, the connecting piece 42 is annular, and the first conductive elastic element 50 is a conductive spring.
[0070] For example, the support member 60 and the device body 10 are an integral structure, meaning the support member 60 and the casing 11 can be integrally molded, for example, by injection molding. A buzzer component 40 and a first conductive elastic element 50 are fitted onto the support member 60, and the buzzer component 40 is located on the side of the first conductive elastic element 50 facing away from the main board 20, that is, the buzzer component 40 is closer to the bottom wall of the receiving cavity. Figure 2 As shown, the buzzer assembly 40 and the first conductive elastic element 50 are arranged sequentially from bottom to top.
[0071] Continue reading Figures 1 to 6 The wearable device also includes a motor assembly 70 and a second conductive elastic element 80. The motor assembly 70 is disposed within the main body 10 and located beside the battery 30. The second conductive elastic element 80 is disposed beside the battery 30 and abuts against the main board 20 and the motor assembly 70. The motor assembly 70 converts electrical energy into mechanical energy to drive pointers or functional modules. The second conductive elastic element 80 connects the motor assembly 70 and the main board 20. Thus, the second conductive elastic element 80 enables a reliable connection between the motor assembly 70 and the main board 20 and provides cushioning for the main board 20.
[0072] The second conductive elastic element 80 is located beside the battery 30, which can improve the space utilization within the main body 10 and maximize the battery 30. One end of the second conductive elastic element 80 abuts against the main board 20, and the other end abuts against the motor assembly 70, thereby realizing the connection between the motor assembly 70 and the main board 20. The second conductive elastic element 80 itself is elastic and can also play a certain role in cushioning the main board 20 during product drop or drop test, reducing the deformation of the main board 20 caused by the instantaneous impact, and reducing the damage and detachment of electronic components on the main board 20 due to the deformation of the main board 20.
[0073] In some possible implementations, the second conductive elastic element 80 may be disposed at the middle of the long side or at the middle of the short side of the motherboard 20. The first conductive elastic element 50 and the first conductive elastic element 50 may be disposed on opposite sides to provide cushioning for different edges of the motherboard 20. Alternatively, the first conductive elastic element 50 and the first conductive elastic element 50 may be disposed on the same side. The first conductive elastic element 50 is a conductive spring and has a surface coating.
[0074] In some possible implementations, the motor assembly 70 includes a motor 71 and a circuit board 72. The motor 71 is disposed beside the battery 30; the circuit board 72 is disposed beside the battery 30 and connected to the motor 71, and the circuit board 72 also abuts against a second conductive elastic member 80. Both the motor 71 and the circuit board 72 are located beside the battery 30 and connected in a direction perpendicular to the thickness of the device body 10 to improve space utilization.
[0075] The motor 71 can be fixed relative to the main body 10 of the device, for example, by bonding the opposing surfaces of the motor 71 and the housing 11 with adhesive. The motor 71 can be a vibration motor, such as a linear resonant actuator (LRA) or an eccentric rotating mass (ERM). The circuit board 72 can be a flexible printed circuit (FPC) including two pads 73, each pad 73 corresponding to a second conductive elastic element 80 to drive the motor 71. The motor 71 and the circuit board 72 can be directly soldered, connected through a zero-insertion-force connector, bonded with conductive adhesive, or integrated into a single design.
[0076] In some possible embodiments, the motor assembly 70 further includes a bracket 74, which covers the motor 71 and the circuit board 72 and is connected to both the device body 10 and the motor 71. The bracket 74 has mounting holes in which a portion of the circuit board 72 is exposed. A second conductive elastic element 80 is disposed in the mounting holes and extends outward from them. The bracket 74 can limit and fix the motor 71 and the circuit board 72, ensuring a reliable connection with the device body 10.
[0077] The bracket 74 is connected to the equipment body 10 via threaded fasteners, reliably securing the bracket 74 within the equipment body 10. The bracket 74 can be bonded to the motor 71; for example, the bracket 74 has a groove that mates with the motor 71, with the outer circumferential surface of the motor 71 bonded to the inner circumferential surface of the groove, and the surface of the motor 71 facing away from the bottom of the groove bonded to the equipment body 10, further ensuring the motor 71 is fixed relative to the equipment body 10. The bracket 74 also has mounting holes that penetrate the bracket 74 and mate with the circuit board 72.
[0078] In some possible examples, the mounting hole includes a first hole segment and two second hole segments connected to the first hole segment. The first hole segment can be rectangular to fit the circuit board 72, and the second hole segments can be cylindrical, elliptical, rectangular, etc. The two second hole segments are located on the same side of the first hole segment and arranged side by side, that is, the two second hole segments are located on the bottom wall of the first hole segment. Each second hole segment exposes a pad 73 and is provided with a corresponding second conductive elastic element 80, which can reduce short circuits of the circuit board 72. In other possible examples, the mounting hole can be a stepped hole, with the stepped surface of the stepped hole abutting against the circuit board 72, and at least two pads 73 of the circuit board 72 are exposed in the mounting hole.
[0079] The wearable device provided in this application embodiment includes: a device body 10, a motherboard 20, a battery 30, a buzzer component 40, and a first conductive elastic element 50. The motherboard 20, battery 30, buzzer component 40, and first conductive elastic element 50 are all disposed within the device body 10. Along the thickness direction of the device body 10, the motherboard 20 and buzzer component 40 are located on opposite sides of the battery 30, and both extend beyond the battery 30 in a direction perpendicular to the thickness of the device body 10. The first conductive elastic element 50 is disposed beside the battery 30 and abuts against both the motherboard 20 and buzzer component 40. The first conductive elastic element 50 enables reliable conductivity between the buzzer component 40 and the motherboard 20, facilitating installation and connection. The first conductive elastic element 50 is elastic and can also provide cushioning for the motherboard 20 during product drops or drop tests, reducing deformation caused by instantaneous impacts and minimizing damage and detachment of electronic components on the motherboard 20 due to deformation.
[0080] In the description of the embodiments of this application, it should be understood that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection or an indirect connection through an intermediate medium, or the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances. The terms "upper," "lower," "front," "rear," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.
[0081] In the description of this application, "a plurality of" means two or more, unless otherwise precisely specified. The terms "first," "second," "third," etc. (if present) in the specification, claims, and accompanying drawings are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion.
[0082] Finally, it should be noted that other embodiments of this utility model will readily occur to those skilled in the art upon consideration of the specification and practice of the utility model disclosed herein. This utility model is intended to cover any variations, uses, or adaptations of this utility model that follow the general principles of this utility model and include common knowledge or customary techniques in the art not disclosed herein, and is not limited to the precise structures described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The scope of this utility model is limited only by the appended claims.
Claims
1. A wearable device, characterized in that, include: The main body of the device, and the motherboard, battery, buzzer assembly and first conductive elastic element disposed within the main body of the device; Along the thickness direction of the device body, the motherboard and the buzzer assembly are located on both sides of the battery, respectively; The first conductive elastic element is disposed on the side of the battery and abuts against both the motherboard and the buzzer assembly.
2. The wearable device according to claim 1, characterized in that, The first conductive elastic element is a conductive spring.
3. The wearable device according to claim 2, characterized in that, The conducting spring has a surface coating, the material of which includes gold, silver, cobalt, nickel, palladium or rhodium.
4. The wearable device according to claim 1, characterized in that, The wearable device also includes a support component; The support member is disposed inside the device body and connected to the device body. The buzzer component and the first conductive elastic element are sequentially sleeved on the support member along the extension direction of the support member.
5. The wearable device according to claim 4, characterized in that, The support component is an integral structure with the main body of the equipment.
6. The wearable device according to any one of claims 1-5, characterized in that, The buzzer component includes: A buzzer is located on the side of the battery that is away from the motherboard. A connecting piece is disposed on the side of the battery and abuts against the first conductive elastic element; Lead wires connect the buzzer chip and the connecting piece.
7. The wearable device according to claim 6, characterized in that, The buzzer chip includes a first electrode and a second electrode; The first electrode and the second electrode are respectively connected to one of the connecting pieces, and each of the connecting pieces is connected to one of the first conductive elastic elements.
8. The wearable device according to any one of claims 1-5, characterized in that, Wearable devices also include: The motor assembly is disposed within the main body of the device and located beside the battery; A second conductive elastic element is disposed on the side of the battery and abuts between the main board and the motor assembly.
9. The wearable device according to claim 8, characterized in that, The motor assembly includes: The motor is located beside the battery; A circuit board is disposed beside the battery and connected to the motor. The circuit board also abuts against the second conductive elastic element.
10. The wearable device according to claim 9, characterized in that, The circuit board is a flexible circuit board, which includes two pads, each of which is connected to a second conductive elastic element. and / or The motor assembly also includes: A bracket is mounted on the motor and the circuit board and is connected to both the device body and the motor. The bracket has mounting holes in which a portion of the circuit board is exposed. The second conductive elastic element is disposed in the mounting hole and extends out of the mounting hole; and / or The wearable device is a watch.