Microphone components and carriers
By designing a push-off component and a magnetic adsorption structure in the microphone assembly, the problem of the microphone being difficult to remove from the vehicle was solved, enabling convenient installation and concealment of the microphone, thus improving the karaoke experience and the aesthetics of the vehicle.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGZHOU AUTOMOBILE GROUP CO LTD
- Filing Date
- 2025-05-15
- Publication Date
- 2026-05-26
Smart Images

Figure CN224289995U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of transportation equipment technology, and more specifically, to a microphone assembly and carrier. Background Technology
[0002] To meet users' karaoke needs, microphone components are added to vehicles, allowing users to sing karaoke anytime within the vehicle, such as in cars, aircraft, or yachts. However, in these technologies, the microphones installed in the vehicle are difficult to remove, affecting the user's karaoke experience. Utility Model Content
[0003] Embodiments of this application provide a microphone assembly and carrier with a detachable microphone.
[0004] One embodiment of this application provides a microphone assembly, including a microphone, an electrical connector, and a pusher. The microphone is used to acquire sound signals in real time and includes an interface. The electrical connector is disposed on a carrier and includes an extension and a connector connected to each other. The extension is electrically connected to the carrier, and the connector is configured as a plug-in interface to allow the microphone to connect to the electrical connector. The pusher is disposed on the extension and is movable axially along the extension. When the pusher moves away from the connector, the interface can plug into the connector, and the microphone is embedded in the carrier; when the pusher moves toward the connector, the pusher pushes the microphone, causing the microphone to move away from the carrier.
[0005] In the aforementioned microphone assembly, moving the microphone toward the electrical connector and driving the pusher to move axially away from the connector allows the interface to be plugged into the connector. At this point, the microphone is embedded in the carrier, and the microphone, electrical connector, and carrier are electrically connected. Compared to a microphone protruding from the carrier, embedding the microphone in the carrier conceals the microphone, making the carrier more aesthetically pleasing. Driving the pusher toward the connector pushes the microphone away from the carrier, allowing the microphone to be removed for karaoke. By moving the pusher axially, the microphone can be electrically connected to the carrier and embedded in it, or it can be moved away from the carrier for easy removal. The installation and removal of the microphone are convenient and quick, enhancing the user's karaoke experience.
[0006] In some embodiments of this application, when the electrical connector is connected to the carrier, the connector magnetically attracts the interface as the microphone moves toward the electrical connector, so that the interface corresponds to the connector.
[0007] The magnetic adsorption interface of the connector allows the microphone to align with the connector as it moves toward the electrical connector, facilitating precise insertion of the connector and the interface; it also makes the connection between the connector and the interface more secure, preventing the connector from coming out of the interface.
[0008] In some embodiments of this application, the microphone assembly further includes a press-locking structure, which is disposed in the extension and connected to the push member. When the push member is pressed, the press-locking structure drives the push member to move axially and locks the position when the microphone is embedded in the carrier.
[0009] When the microphone is embedded in the carrier, the pressing and locking mechanism moves the pusher away from the connector. The pressing and locking mechanism locks the microphone in place, keeping it embedded in the carrier so that the microphone is stably connected to the electrical connector. The pressing and locking mechanism also moves the pusher toward the connector, pushing the microphone away from the carrier so that the microphone can be picked up and removed.
[0010] In some embodiments of this application, the pusher is cylindrical and sleeved on the extension. When the microphone moves toward the electrical connector, the microphone pushes against the pusher, causing the pusher to be compressed.
[0011] The pusher is pressed when the microphone is pressed. Pressing the microphone presses the pusher, which in turn causes the press-locking structure to move the pusher axially. This makes it easy to install or remove the microphone from the vehicle, making it convenient and quick to use.
[0012] In some embodiments of this application, the extension is provided with a stop ring spaced axially from the push member. The stop ring is used to position the pressing and locking structure, so that the pressing and locking structure is located between the push member and the stop ring.
[0013] The installation position of the press-locking structure is located by using a stop ring to facilitate the precise installation of the press-locking structure.
[0014] In some embodiments of this application, the microphone assembly further includes a protective cover disposed on a carrier, with an extension passing through the protective cover and at least partially disposed within the protective cover.
[0015] When the electrical connector is installed on the vehicle, the protective cover protects the extension and part of the press-lock structure, preventing damage to the press-lock structure.
[0016] In some embodiments of this application, the microphone includes a main body and a receiving part, the receiving part is disposed on the main body along the axial direction, and the interface is disposed on the side of the main body opposite to the receiving part.
[0017] When the microphone is embedded in the vehicle, the sound pickup section is exposed in the vehicle. At this time, you can sing karaoke without removing the microphone, that is, sing karaoke while charging, or sing karaoke in a fixed location.
[0018] In some embodiments of this application, the main body includes a receiving cavity, and the microphone includes an energy storage component and an indicator component. The energy storage component is disposed in the receiving cavity and is used to store electrical energy and is electrically connected to the indicator component. Along the axial direction, the indicator component is disposed on the side of the main body opposite to the interface, and the indicator component issues an indication when the energy storage component stores electrical energy.
[0019] When the vehicle, electrical connector, and microphone are connected, the vehicle can charge the energy storage device through the electrical connector, and the user can judge the microphone's power level by observing the indicator.
[0020] One embodiment of this application provides a carrier including a carrier body and a microphone assembly as described in any of the above embodiments. The carrier body has a recess inside, and an electrical connector is disposed inside the carrier body and corresponds to the recess. The recess is configured to accommodate the microphone when the pusher moves away from the connector, so that the microphone is embedded in the carrier body.
[0021] In the aforementioned vehicle, the microphone assembly is located inside the main body of the vehicle, allowing users to easily place and retrieve the microphone for karaoke. When karaoke is needed, the drive pusher moves towards the connector, causing the microphone embedded in the groove to be pushed out of the groove, making it easy to remove the microphone. After karaoke, the microphone is moved towards the electrical connector until the interface and connector are plugged in, causing the pusher to move away from the connector and the microphone to be located in the groove. At this point, the microphone is electrically connected to the main body of the vehicle. Compared to a microphone protruding from the main body, the groove design conceals the microphone, making the interior of the main body of the vehicle more aesthetically pleasing.
[0022] In some embodiments of this application, the vehicle body includes multiple seats and multiple vehicle doors, the vehicle includes multiple microphone assemblies, and multiple electrical connectors are located on the top of the vehicle body and near the vehicle doors. Each seat near the vehicle door corresponds to an electrical connector, enabling the user on the seat to take the microphone.
[0023] Users in the seats can easily reach out to remove or install the microphone. Multiple microphone units can be set up to allow multiple users in the vehicle to sing karaoke, or to allow users to use different microphones for karaoke. Attached Figure Description
[0024] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings in the embodiments will be briefly described below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation on the scope.
[0025] Figure 1 This is a schematic diagram of a microphone assembly provided in an embodiment of this application when the microphone is embedded in a vehicle.
[0026] Figure 2 for Figure 1A schematic diagram of the microphone assembly when the microphone exits the vehicle.
[0027] Figure 3 for Figure 1 A schematic diagram of the connectors and interfaces of the microphone assembly.
[0028] Figure 4 for Figure 1 An exploded view of the microphone assembly within the microphone.
[0029] Figure 5 for Figure 1 A schematic diagram of the microphone assembly used in a vehicle.
[0030] Explanation of key component symbols:
[0031] 100. Microphone assembly; 10. Microphone; 101. Interface; 11. Main body; 1101. Receiving cavity; 12. Energy storage component; 13. Circuit board; 131. Receiver assembly; 132. Bluetooth component; 14. Voice coil; 15. Sound sensor; 16. Sponge; 17. Cover plate; 171. Sound receiving section; 18. Indicator; 20. Electrical connector; 21. Extension section; 211. Stop ring; 22. Connector; 30. Pushing component; 40. Press-locking structure; 50. Protective cover; 200. Vehicle; 210. Vehicle body; 2101. Recess; 2102. Vehicle door; 2103. Seat. Detailed Implementation
[0032] The technical solutions of the embodiments of this application will be described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.
[0033] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art. The terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to be limiting of the application.
[0034] To meet users' karaoke needs, microphone components are added to vehicles, allowing users to sing karaoke anytime within the vehicle, such as in cars, aircraft, or yachts. However, in these technologies, the microphones installed in the vehicle are difficult to remove, affecting the user's karaoke experience.
[0035] Embodiments of this application provide a microphone assembly, including a microphone, an electrical connector, and a pusher. The microphone is used to acquire sound signals in real time and includes an interface. The electrical connector is disposed on a carrier and includes an extension and a connector connected to each other. The extension is electrically connected to the carrier, and the connector is configured as a plug-in interface to allow the microphone to be electrically connected to the electrical connector. The pusher is disposed on the extension and is movable axially along the extension. When the pusher moves away from the connector, the interface can plug into the connector, and the microphone is embedded in the carrier; when the pusher moves toward the connector, the pusher pushes the microphone, causing the microphone to move away from the carrier.
[0036] In the aforementioned microphone assembly, moving the microphone toward the electrical connector and driving the pusher to move axially away from the connector allows the interface to be plugged into the connector. At this point, the microphone is embedded in the carrier, and the microphone, electrical connector, and carrier are electrically connected. Compared to a microphone protruding from the carrier, embedding the microphone in the carrier conceals the microphone, making the carrier more aesthetically pleasing. Driving the pusher toward the connector pushes the microphone away from the carrier, allowing the microphone to be removed for karaoke. By moving the pusher axially, the microphone can be electrically connected to the carrier and embedded in it, or it can be moved away from the carrier for easy removal. The installation and removal of the microphone are convenient and quick, enhancing the user's karaoke experience.
[0037] The following detailed description of some embodiments of this application is provided in conjunction with the accompanying drawings. Unless otherwise specified, the following embodiments and features can be combined with each other.
[0038] Please see Figure 1 One embodiment of this application provides a microphone assembly 100 applied to a vehicle 200. The vehicle 200 includes transportation equipment for carrying people or goods, such as vehicles, aircraft, or yachts.
[0039] Please combine Figure 1 and Figure 2 In some embodiments, the carrier 200 is provided with a recess 2101 that can accommodate the microphone assembly 100 to store and hide the microphone assembly 100, making the carrier 200 more aesthetically pleasing.
[0040] As an example, the recess 2101 is located inside the vehicle and in a place that the user can touch, such as the top or bottom of the vehicle.
[0041] Please combine Figures 1 to 3In some embodiments, the microphone assembly 100 includes a microphone 10, an electrical connector 20, and a pusher 30. The microphone 10 is used to acquire sound signals in real time. The microphone 10 includes an interface 101. The electrical connector 20 is disposed on the carrier 200 and corresponds to a recess 2101, and the electrical connector 20 is also electrically connected to the carrier 200. The electrical connector 20 includes an extension 21 and a connector 22 connected to each other. The extension 21 is electrically connected to the carrier 200, and the connector 22 is configured to plug into the interface 101. When the connector 22 is plugged into the interface 101, the microphone 10 is electrically connected to the electrical connector 20, and the microphone 10, the electrical connector 20, and the carrier 200 are connected, at which time the carrier 200 can charge the microphone 10 through the electrical connector 20. The pusher 30 is disposed on the extension 21 and is movable along the axial direction of the extension 21.
[0042] Please see Figure 1 When the pusher 30 moves away from the connector 22, the interface 101 can be inserted into the connector 22, and the microphone 10 can be embedded in the carrier 200. The insertion of the interface 101 into the connector 22 enables the microphone 10, the electrical connector 20, and the carrier 200 to be in a conductive state, allowing the carrier 200 to charge the microphone 10. The recess 2101 accommodates the microphone 10 without affecting the aesthetics of the carrier 200, and also stores the microphone 10 for easy access by the user when needed. Specifically, when the microphone 10 is embedded in the carrier 200, the microphone 10 is located within the recess 2101.
[0043] Please see Figure 2 When the pusher 30 moves toward the connector 22, it pushes the microphone 10, causing the microphone 10 to move away from the carrier 200. This allows the microphone 10, which is embedded in the carrier 200, to exit the groove 2101 under the push of the pusher 30. At this time, the microphone 10, which has exited the groove 2101, protrudes from the surface of the carrier 200, making it convenient for the user to pick up and remove the microphone 10 and hold it while singing karaoke.
[0044] Therefore, by moving the pusher 30 axially, the microphone 10 can be electrically connected to the carrier 200 and embedded in the carrier 200, or the microphone 10 can move away from the carrier 200 to exit the groove 2101, which makes it convenient and quick to install and remove the microphone 10, which is beneficial to improving the user's karaoke experience.
[0045] In some embodiments, the connector 22 can magnetically attach the interface 101. When the electrical connector 20 is connected to the carrier 200, the connector 22 magnetically attaches the interface 101 as the microphone 10 moves toward the electrical connector 20, so that the interface 101 corresponds to the connector 22.
[0046] During the insertion of interface 101 and connector 22, connector 22 magnetically attracts interface 101 to facilitate a more precise insertion. After interface 101 is inserted into connector 22, the magnetic attraction of connector 22 to interface 101 makes the connection between connector 22 and interface 101 more secure.
[0047] As an example, when the groove 2101 is located on the top of the carrier 200, the magnetic adsorption interface 101 of the connector 22 can keep the microphone 10 in the groove 2101 without the pusher 30 pushing the microphone 10. That is, the microphone 10 is kept embedded in the carrier 200 to prevent the microphone 10 from automatically exiting the groove 2101 under its own weight, which would cause the microphone 10 to fall and break.
[0048] Microphone 10 can be dislodged from groove 2101 by the pusher 30, but the interface 101 is partially dislodged from connector 22. Connector 22 remains magnetically attached to interface 101 to prevent microphone 10 from falling and being damaged. When the user holds microphone 10 dislodged from groove 2101 and moves microphone 10 away from groove 2101, connector 22 and interface 101 can be completely separated, and microphone 10 can be removed for karaoke.
[0049] In some embodiments, the groove 2101 is provided with anti-slip texture (not shown), which is provided on the sidewall of the groove 2101. When the microphone 10 is located in the groove 2101, in order to make the microphone 10 more stable in the groove 2101 without being pushed by the pusher 30.
[0050] In some embodiments, a rubber ring (not shown) is provided at the opening of the groove 2101. When the microphone 10 is located in the groove 2101, the rubber ring stops the microphone 10 from the side away from the interface 101 to prevent the microphone 10 from falling out. When the pusher 30 pushes the microphone 10, the rubber ring deforms under force, and the microphone 10 is forced out of the groove 2101, so that the microphone 10 can be more stably located in the groove 2101 without the pushing force of the pusher 30.
[0051] Please see Figure 1 and Figure 2 In some embodiments, the microphone assembly 100 further includes a press-locking structure 40, which is disposed on the extension 21 and connected to the push member 30. When pressed, the press-locking structure 40 drives the push member 30 to move axially and locks the push member 30 when the microphone 10 is embedded in the carrier 200.
[0052] The pressure applied to the push member 30 causes the pressing and locking structure 40 to move the push member 30 axially, meaning the pressing and locking structure 40 moves the push member 30 toward or away from the joint 22. The pressure applied to the push member 30 refers to an external force applied axially to the push member 30 in a direction away from the joint 22.
[0053] Please see Figure 1 When the pusher 30 is pressed, the pressing and locking structure 40 drives the pusher 30 to move away from the connector 22 until the microphone 10 is located in the groove 2101. At this time, the pressing and locking structure 40 can lock the position, that is, there is no external force to drive the pusher 30 to move toward the connector 22. In this way, the microphone 10 can be kept in the groove 2101 so that the microphone 10 can be stably connected to the carrier 200.
[0054] Please see Figure 2 When the pusher 30 is pressed again, the pressing locking structure 40 is unlocked and the pusher 30 is driven to move toward the connector 22. The pusher 30 can push the microphone 10 to move away from the carrier 200, thereby making the microphone 10 exit the groove 2101 so that the user can hold and remove the microphone 10 connected to the electrical connector 20.
[0055] In some embodiments, the press-locking structure 40 is a press-type spring lock. The working principle of the press-type spring lock is to utilize the elastic force of the spring. When the push member 30 is pressed, the spring is compressed, and the position of the press-locking structure 40 is locked through a snap-fit connection. To unlock, simply press the push member 30 again to release the lock, causing the spring to spring back, which in turn drives the push member 30 to push the microphone 10. The press-type spring lock is a commonly used lock, often used in wardrobes, ballpoint pens, and other fields.
[0056] Please see Figure 2 and Figure 3 In some embodiments, the pusher 30 is cylindrical, and can be fitted onto the extension 21 and move axially relative to the extension 21. When the microphone 10 moves toward the electrical connector 20, the side of the microphone 10 near the interface 101 pushes against the end of the pusher 30 near the connector 22, thus pressing the pusher 30. Therefore, in use, pressing the microphone 10 moves it toward the groove 2101, thereby pressing the pusher 30. The pressing and locking structure 40 drives the pusher 30 to move axially, making it convenient and quick to install or remove the microphone 10 from the carrier 200.
[0057] Understandably, in order for the pusher 30 to be compressed and move axially, the depth of the groove 2101 is set to be greater than the height of the microphone 10, and the depth of the interface 101 is set to be greater than the height of the connector 22. Here, the depth of the groove 2101 / interface 101 refers to the length of the groove 2101 / interface 101 extending axially, and the height of the microphone 10 / connector 22 refers to the length of the microphone 10 / connector 22 extending axially.
[0058] Please see Figure 1 In some embodiments, the extension 21 is provided with a stop ring 211 spaced axially from the push member 30. The stop ring 211 is used to position the installation position of the press-locking structure 40, so that the press-locking structure 40 is located between the push member 30 and the stop ring 211.
[0059] Please see 1 and Figure 2 In some embodiments, the microphone assembly 100 further includes a protective cover 50, which is fixedly disposed on the carrier 200. One end of the extension 21, away from the connector 22, passes through the protective cover 50 to electrically connect to the carrier 200. The extension 21 is at least partially disposed within the protective cover 50, such that the protective cover 50 covers the outside of the elastic member and a portion of the extension 21 when the electrical connector 20 is mounted on the carrier 200, thereby protecting the extension 21 and a portion of the press-lock structure 40.
[0060] Please see Figure 4 In some embodiments, the microphone 10 includes a main body 11 and a receiving part 171, with the receiving part 171 disposed on the main body 11. Along the axial direction, the interface 101 is disposed on the side of the main body 11 opposite to the receiving part 171. When the microphone 10 is embedded in the carrier 200, the receiving part 171 is exposed in the groove 2101, allowing karaoke to be performed without removing the microphone 10, i.e., while charging, or while singing karaoke in a fixed position.
[0061] In some embodiments, the main body 11 has a receiving cavity 1101 with an opening. The microphone 10 includes an energy storage component 12, a circuit board 13, a voice coil 14, a sound sensor 15, and a cover plate 17, which are stacked sequentially within the receiving cavity 1101. The energy storage component 12 stores electrical energy, and the circuit board 13 is electrically connected to the energy storage component 12, so that the energy storage component 12 provides power to the circuit board 13. The circuit board 13 is provided with a receiver assembly 131. The voice coil 14 and the sound sensor 15 are both electrically connected to the circuit board 13, so that the sound sensor 15 receives sound waves, the voice coil 14 processes the sound waves, and then transmits the sound waves to the receiver assembly 131 on the circuit board 13, thereby achieving the effect of beautifying the sound waves. The circuit board 13 is also provided with a Bluetooth component 132. After the receiver assembly 131 receives the sound waves, the circuit board 13 converts the sound wave signal into an electrical signal, and the Bluetooth component 132 can transmit the beautified sound waves to the carrier 200. The cover plate 17 closes the opening by covering the main body 11. The sound receiving part 171 is a sound receiving hole, which is located on the cover plate 17 so that sound waves can enter the receiving cavity 1101 through the sound receiving hole.
[0062] In some embodiments, the vehicle 200 has a speaker, that is, the vehicle 200 can play the sound enhanced by the voice coil 14 in real time through the speaker. The audio played by the vehicle 200 is more pleasant to listen to and can enhance the user's karaoke experience.
[0063] In some embodiments, the sound sensor 15 extends outward toward the cover plate 17, so that the sound sensor 15 can better receive sound waves and guide the sound waves to the voice coil 14 for processing.
[0064] In some embodiments, the microphone 10 further includes a sponge 16 disposed between the cover plate 17 and the sound sensor 15. The sponge 16 can maximize the collection of sound waves and play a role in sound insulation and noise reduction.
[0065] In some embodiments, the microphone 10 further includes an indicator 18 electrically connected to the circuit board 13. The indicator 18 provides an indication when the energy storage unit 12 stores electrical energy. Along the axial direction, the indicator 18 is located on the side of the main body 11 facing away from the interface 101, so that the user can determine the power status of the storage unit by observing the indicator 18.
[0066] When interface 101 is plugged into connector 22, microphone 10, electrical connector 20 and carrier 200 are connected, and carrier 200 can charge energy storage device 12 through electrical connector 20. The user can judge the power status of energy storage device 12 by observing indicator 18, and thus choose to charge energy storage device 12 or use microphone 10.
[0067] In some embodiments, the indicator 18 is an indicator light. For example, when the vehicle 200 is fully charged with energy storage device 12, the indicator light is green; when the vehicle 200 is charging energy storage device 12, the indicator light is red; and when energy storage device 12 is out of power, the indicator light is off.
[0068] In some embodiments, the indicator 18 is a digital display screen to display the electrical energy in the energy storage device 12. For example, when the carrier 200 has fully charged the energy storage device 12, the digital display screen displays 100 or 100%.
[0069] Please see Figure 5 One embodiment of this application provides a carrier 200, including a carrier body 210 and a microphone assembly 100 from the previous embodiment. As an exemplary example, Figure 5 The diagram shown is a schematic diagram when the vehicle 200 is a vehicle. A recess 2101 is provided inside the vehicle body 210. An electrical connector 20 is provided inside the vehicle body 210 and corresponds to the recess 2101. The recess 2101 is configured to accommodate the microphone 10 when the pusher 30 moves away from the connector 22.
[0070] The microphone assembly 100 is located inside the vehicle body 210, allowing the user to retrieve the microphone 10 from inside the vehicle body 210 for karaoke while riding in the vehicle 200. A recess 2101 is provided to store and conceal the microphone 10, making the interior of the vehicle body 210 more aesthetically pleasing.
[0071] In some embodiments, the vehicle 200 includes a plurality of microphone assemblies 100, all of which are disposed within the vehicle body 210, so as to facilitate multiple users riding in the vehicle 200 at the same time to sing karaoke, or to facilitate one user to use different microphones 10 to sing karaoke.
[0072] The interior of the vehicle body 210 includes multiple seats 2103 and multiple vehicle doors 2102. Multiple electrical connectors 20 are located on the top of the vehicle body 210 and near the vehicle doors 2102. Each seat 2103 near a vehicle door 2102 corresponds to one electrical connector 20, allowing the user on the seat 2103 to easily access the microphone 10. This facilitates convenient and quick removal and installation of the microphone 10, enhancing the user's karaoke experience.
[0073] In some embodiments, the vehicle 200 includes four microphone assemblies 100, and each of the four seats 2103 located near the vehicle door 2102 corresponds to a microphone 10, so that the user in the seat 2103 can take the microphone 10.
[0074] Furthermore, those skilled in the art should recognize that the above embodiments are merely illustrative of this application and are not intended to limit this application. Any appropriate changes and variations made to the above embodiments within the essential spirit and scope of this application fall within the scope of this application's disclosure.
Claims
1. A microphone assembly, characterized by include: A microphone for acquiring sound signals in real time, the microphone including an interface; An electrical connector, disposed on a carrier, the electrical connector including a connected extension and a connector, the extension being electrically connected to the carrier, the connector being configured to plug into the interface to allow the microphone to be electrically connected to the electrical connector; A pusher is provided on the extension and can move axially along the extension. When the pusher moves away from the connector, the interface can be inserted into the connector, and the microphone is embedded in the carrier. When the pusher moves toward the connector, the pusher pushes the microphone, causing the microphone to move away from the carrier.
2. The microphone assembly of claim 1, wherein: When the electrical connector is connected to the vehicle, the connector magnetically attracts the interface as the microphone moves toward the electrical connector, so that the interface corresponds to the connector.
3. The microphone assembly of claim 1 or 2, wherein: The microphone assembly further includes a press-locking structure, which is disposed on the extension and connected to the push member. When the push member is pressed, the press-locking structure drives the push member to move along the axial direction and locks the position when the microphone is embedded in the carrier.
4. The microphone assembly as claimed in claim 3, characterized in that: The pusher is cylindrical and is sleeved on the extension. When the microphone moves toward the electrical connector, the microphone pushes against the pusher, causing the pusher to be compressed.
5. The microphone assembly as claimed in claim 3, characterized in that: The extension is provided with a stop ring spaced apart from the push member along the axial direction. The stop ring is used to position the press-locking structure so that the press-locking structure is located between the push member and the stop ring.
6. The microphone assembly as claimed in claim 1, characterized in that: The microphone assembly also includes a protective cover disposed on the vehicle, the extension passing through the protective cover and at least partially disposed within the protective cover.
7. The microphone assembly as claimed in claim 1, characterized in that: The microphone includes a main body and a microphone receiving part, the microphone receiving part is disposed on the main body along the axial direction, and the interface is disposed on the side of the main body opposite to the microphone receiving part.
8. The microphone assembly as claimed in claim 7, characterized in that: The main body includes a receiving cavity, and the microphone includes an energy storage component and an indicator component. The energy storage component is disposed in the receiving cavity and is used to store electrical energy and is electrically connected to the indicator component. Along the axial direction, the indicator component is disposed on the side of the main body opposite to the interface, and the indicator component issues an indication when the energy storage component stores electrical energy.
9. A vehicle, characterized in that, The device includes a vehicle body and a microphone assembly as described in any one of claims 1 to 8, wherein the vehicle body has a recess inside, the electrical connector is disposed inside the vehicle body and corresponds to the recess, and the recess is configured to accommodate the microphone when the pusher moves away from the connector, such that the microphone is embedded in the vehicle body.
10. The vehicle as claimed in claim 9, characterized in that: The vehicle body includes multiple seats and multiple vehicle doors. The vehicle includes multiple microphone assemblies. Multiple electrical connectors are located on the top of the vehicle body and near the vehicle doors. Each seat near the vehicle door corresponds to one electrical connector, allowing the user on the seat to access the microphone.