Media system and vehicle
Through the coupling and decoupling state design of the media device and the adapter device, the problem of single media function in the vehicle is solved, the stability and convenience of the media device in the vehicle are achieved, the application scenarios are expanded, and functional coordination is maintained in the decoupled state.
Patent Information
- Application Number
- CN202422523667.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-17
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-10-17
AI Technical Summary
The media functions of media devices in existing vehicles are relatively simple and cannot effectively expand application scenarios, resulting in limited application scenarios.
By designing the coupling and decoupling states between the media device and the adapter device, the collaborative work between the media devices is achieved. The adapter device is used to provide power and signal transmission. The decoupling module and the locking module are combined to achieve convenient switching and stable connection of the media devices.
It achieves the stability and convenience of media devices in the vehicle, expands the application scenarios of the media system, allows media devices to be used independently when needed, and still achieves data interaction and functional collaboration in a decoupled state.
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Figure CN223314934U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of vehicle-mounted media technology, and in particular to a media system and a vehicle. Background Art
[0002] With the development of vehicle intelligence, a variety of media devices are installed in the car to meet the needs of users.
[0003] However, in the related art, the media functions that can be realized by the media devices configured in the vehicle are relatively single and cannot be coordinated, which limits the application scenarios in which these media devices can be applied. Utility Model Content
[0004] The embodiments of the present application provide a media system and a vehicle, which enable the media system to expand more application scenarios through collaboration between media devices, so as to at least partially solve the above-mentioned technical problems.
[0005] In order to achieve the above-mentioned object, according to a first aspect of the present application, there is provided a media system comprising: a media device for implementing a media function;
[0006] an adapting device, configured to adapt the media device so that the media device has a coupled state and a decoupled state relative to the adapting device;
[0007] Wherein, when the media device is in the coupled state, the media device is coupled to the adapter device; when the media device is in the uncoupled state, the media device is detached from the adapter device;
[0008] At least one of the two media devices is communicatively connected and / or electrically connected to the other one, so that the two media devices can collaboratively realize media functions.
[0009] Optionally, in some embodiments of the present application, the adapting device is provided with:
[0010] The adaptation space is used to accommodate at least a portion of the media device.
[0011] Optionally, in some embodiments of the present application, the media device includes:
[0012] a media electrical interface, for enabling transmission of electrical energy and / or signals of the media device;
[0013] Wherein, the adapting device comprises:
[0014] An adapter electrical interface for realizing the transmission of electrical energy and / or signals of the adapter device;
[0015] Wherein, the adapting electrical interface is arranged in the adapting space;
[0016] Wherein, when the media device is in the coupled state, the media electrical interface and the adapter electrical interface form an electrical connection for transmitting electrical energy and / or signals; and / or
[0017] When the media device is in the decoupled state, the media electrical interface and the adapter electrical interface are disconnected from the electrical connection for transmitting electrical energy and / or signals.
[0018] Optionally, in some embodiments of the present application, the adaptation electrical interface is arranged on a movement path of the media device in the adaptation space.
[0019] Optionally, in some embodiments of the present application, the media electrical interface is arranged on a side facing the media electrical interface when the media device moves in the adaptation space.
[0020] Optionally, in some embodiments of the present application, the docking direction of the media electrical interface and the adapter electrical interface is parallel to the movement direction of the media device when moving in the adapter space.
[0021] Optionally, in some embodiments of the present application, the adaptation device further includes:
[0022] A decoupling module, configured to drive the media device to a decoupling state;
[0023] Wherein, at least a portion of the decoupling module is arranged in a first space connected to the adaptation space and has at least a plurality of movement positions relative to the adaptation space.
[0024] Optionally, in some embodiments of the present application, the decoupling module has a motion state of at least partially moving into the adaptation space, so that the decoupling module drives the media device to move.
[0025] Optionally, in some embodiments of the present application, the decoupling module has a motion state of being completely moved to the outside of the adaptation space, so as to eliminate interference between the decoupling module and the media device.
[0026] Optionally, in some embodiments of the present application, the adaptation device further includes:
[0027] a locking module, configured to lock the coupling state of the media device;
[0028] Wherein, at least a portion of the locking module is arranged in a second space communicated with the adaptation space and has at least a plurality of movement positions relative to the adaptation space.
[0029] Optionally, in some embodiments of the present application, the locking module has a motion state of at least partially moving into the adaptation space, so that the locking module interferes with the media device.
[0030] Optionally, in some embodiments of the present application, the locking module has a movement state in which it is completely moved to the outside of the adaptation space, so that the locking module and the media device are free from interference.
[0031] Optionally, in some embodiments of the present application, the media device further includes:
[0032] The cooperative electrical interface is used to realize the transmission of electrical energy and / or signals between the plurality of media devices.
[0033] Optionally, in some embodiments of the present application, the collaborative electrical interface and the media electrical interface are configured as the same type of interfaces.
[0034] Optionally, in some embodiments of the present application, the media device is provided with:
[0035] The transfer space is used to accommodate at least a portion of another media device.
[0036] Optionally, in some embodiments of the present application, the adaptation space is larger than the transfer space, so that the adaptation space can accommodate multiple media devices.
[0037] Optionally, in some embodiments of the present application, the media device includes:
[0038] Media module, used to receive or output media information;
[0039] The media module includes one or more of an audio module, a display module, and a sound pickup module.
[0040] Optionally, in some embodiments of the present application, the plurality of media devices coupled with one adapter device have different media modules.
[0041] Optionally, in some embodiments of the present application, the plurality of media devices coupled with one adapter device are respectively configured with at least the audio module providing the first audio range and the audio module providing the second audio range.
[0042] Optionally, in some embodiments of the present application, the plurality of media devices coupled with one adapter device have different volumes.
[0043] Optionally, in some embodiments of the present application, the adaptation device is provided with a plurality of adaptation spaces capable of respectively accommodating the corresponding media devices.
[0044] Optionally, in some embodiments of the present application,
[0045] The media system includes a plurality of the adapter devices and a plurality of the media devices coupled with the corresponding adapter devices.
[0046] Optionally, in some embodiments of the present application, the media device further includes:
[0047] Built-in power module for providing power to media devices;
[0048] The power supply electrical interface is used to realize the transmission of electrical energy and / or signals between the media device and an external power source.
[0049] According to a second aspect of the present application, a vehicle is also provided, comprising the aforementioned media system.
[0050] The beneficial effect of the present application is that multiple media devices in a media system can be coordinated through interaction between the multiple media devices.
[0051] More specifically, some embodiments of the present application may produce the following specific beneficial effects:
[0052] By enabling the media device to have a coupled state and a decoupled state relative to the adapter device, the media device can be used as part of the vehicle and also independently.
[0053] The decoupling module can realize automatic separation of the media device and the adapter device, so that the user can independently access the media device when needed.
[0054] The combination of the decoupling module and the operating module improves the convenience of users in accessing the media device.
[0055] The locking module can form a fixed connection between the media device and the adapter device, thereby ensuring the stability of the media device when used in the vehicle cabin.
[0056] The detection module can realize automatic decoupling or locking according to the location status or connection status of the media device.
[0057] The switching of the connection state between the coupling state and the decoupling state of the corresponding electrical interface etc. is used to realize the on-off switching of the signal or power transmission between the media device and the adapter device.
[0058] Wireless communication between the media device and the adapter device enables the media system to still achieve data interaction in a decoupled state.
[0059] Through the switching space of the media device, multiple media devices are combined into a complex functional body with multiple media functions or effects.
[0060] The transmission of electrical energy or signals between multiple media devices is achieved through corresponding electrical interfaces.
[0061] Wireless communication between media devices allows multiple media devices in a media system to collaboratively implement media functions even in a decoupled state.
[0062] Other features and advantages of the present application will be described in detail in the subsequent detailed description. BRIEF DESCRIPTION OF THE DRAWINGS
[0063] To more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present application. Those skilled in the art can also derive other drawings based on these drawings without inventive effort.
[0064] In order to more completely understand the present application and its beneficial effects, the following description will be given in conjunction with the accompanying drawings, wherein the same drawing numbers represent the same parts in the following description.
[0065] Figure 1A A schematic diagram of the location distribution of media devices of a media system in a vehicle provided in an exemplary embodiment of the present application;
[0066] Figure 1B This is a schematic diagram of the architecture of a first media system provided in an exemplary embodiment of the present application;
[0067] Figure 1C This is a schematic diagram of the architecture of a second media system provided in an exemplary embodiment of the present application;
[0068] Figure 1D This is a schematic diagram of the architecture of a third media system provided in an exemplary embodiment of the present application;
[0069] Figure 1E This is a schematic diagram of the architecture of a fourth media system provided in an exemplary embodiment of the present application;
[0070] Figure 1F This is a schematic diagram of the architecture of a fifth media system provided in an exemplary embodiment of the present application;
[0071] Figure 1G This is a schematic diagram of the architecture of a sixth media system provided in an exemplary embodiment of the present application;
[0072] Figure 1H This is a schematic diagram of the architecture of a seventh media system provided in an exemplary embodiment of the present application;
[0073] Figure 1I This is a schematic diagram of the architecture of a media device provided in an exemplary embodiment of the present application;
[0074] Figure 2A A schematic structural diagram of a media system provided in an exemplary embodiment of the application when deployed in a vehicle compartment;
[0075] Figure 2B for Figure 2A A schematic diagram of a media device and an adapter device provided in the embodiment shown in FIG. 1 in a coupled state;
[0076] Figure 2C for Figure 2A A schematic diagram of the media device and the adapter device provided in the embodiment shown in the embodiment in a decoupled state;
[0077] Figure 3A This is a schematic diagram of a media device and an adapter device of another media system provided in an exemplary embodiment of the present application in a coupled state;
[0078] Figure 3B for Figure 3A A schematic cross-sectional view of the structure of the media device and the adapter device provided in the embodiment shown in FIG. 1 in a coupled state;
[0079] Figure 3C for Figure 3A A schematic cross-sectional view of the media device and the adapter device provided in the embodiment shown in another perspective in a coupled state;
[0080] Figure 3D for Figure 3A A schematic diagram of the internal structure of the adapter device provided in the embodiment shown;
[0081] Figure 3E for Figure 3A A schematic diagram showing the internal structure of the adapter provided in the embodiment shown, viewed from another perspective;
[0082] Figure 4A This is a schematic diagram of a media device and an adapter device in a coupled state in another media system provided in an exemplary embodiment of the present application.
[0083] Figure 4B for Figure 4A An exploded schematic diagram of a media device and an adapter device provided in the illustrated embodiment;
[0084] Figure 4C for Figure 4AA schematic cross-sectional structural diagram of the media device and the adapter device provided in the illustrated embodiment when in a first state;
[0085] Figure 4D for Figure 4C An enlarged schematic diagram of a part;
[0086] Figure 4E for Figure 4A A schematic cross-sectional structural diagram of the media device and the adapter device provided in the illustrated embodiment when in a second state;
[0087] Figure 4F for Figure 4E An enlarged schematic diagram of a part;
[0088] Figure 4G for Figure 4F A schematic diagram of an alternative embodiment of the portion shown;
[0089] Figure 4H for Figure 4F A schematic diagram of another alternative embodiment of the portion shown;
[0090] Figure 4I for Figure 4E Another enlarged schematic diagram of a part in FIG;
[0091] Figure 5A This is a schematic diagram of a media system provided in an exemplary embodiment of the present application, wherein multiple media devices are integrated into a whole;
[0092] Figure 5B This is a schematic diagram of a media system provided in an exemplary embodiment of the present application when multiple media devices are decomposed into independent individuals;
[0093] Figure 6A This is a schematic structural diagram of another media system provided in an exemplary embodiment of the present application when deployed in a vehicle compartment;
[0094] Figure 6B for Figure 6A A schematic diagram of multiple media devices provided in the illustrated embodiment when combined into a whole;
[0095] Figure 6C for Figure 6A A schematic diagram of multiple media devices provided in the illustrated embodiment when the multiple media devices are decomposed into independent individuals;
[0096] Figure 6D for Figure 6A A schematic diagram of a first cooperative combination of multiple media devices provided in the illustrated embodiment;
[0097] Figure 6E for Figure 6A A schematic diagram of a second coordinated combination of multiple media devices provided in the illustrated embodiment;
[0098] Figure 6F for Figure 6A A schematic diagram of a third cooperative combination of multiple media devices provided in the illustrated embodiment;
[0099] Figure 6G for Figure 6A A schematic diagram of a third cooperative combination of multiple media devices provided in the embodiment shown in FIG. 1 and combined with an external device;
[0100] Figure 6H for Figure 6A A schematic diagram of a third cooperative combination of multiple media devices provided in the embodiment shown being connected to an external device;
[0101] Figure 7A A schematic diagram of a cooperative combination of another group of media devices provided in an exemplary embodiment of the present application;
[0102] Figure 8A This is a schematic diagram of a first application scenario of a media system provided in an exemplary embodiment of the present application;
[0103] Figure 8B This is a schematic diagram of a second application scenario of the media system provided in an exemplary embodiment of the present application;
[0104] Figure 8C This is a schematic diagram of a third application scenario of the media system provided in an exemplary embodiment of the present application;
[0105] Figure 8D This is a schematic diagram of a fourth application scenario of the media system provided in an exemplary embodiment of the present application;
[0106] Figure 9A A schematic diagram of the main steps of the control method provided in an exemplary embodiment of the present application;
[0107] Figure 9B A schematic structural diagram of an electronic device provided in an exemplary embodiment of the present application;
[0108] Figure 9C A schematic diagram of a vehicle provided in an exemplary embodiment of the present application.
[0109] Description of reference numerals:
[0110] 1. Vehicle; 11. Inner wall of vehicle compartment;
[0111] 2. Intelligent terminal; 3. Collaborative combination; 4. External equipment;
[0112] 7. Application equipment; 71. Equipment circuit; 72. Equipment controller;
[0113] 10. Media system;
[0114] 100, media device; 100a, socket; 100b, slide;
[0115] 101. Device housing;
[0116] 120, media module;
[0117] 102, audio module; 2003, speaker; 2004, storage slot; 2005, vibration unit;
[0118] 103, display module; 104, sound pickup module; 105, collaborative electrical interface; 106, external electrical interface; 107, media communication module; 108, media electrical interface; 109, built-in power module; 110, media operation module; 111, power supply electrical interface; 112, media controller;
[0119] 200, adapter device;
[0120] 210, adapter base; 211, adapter cavity; 212, slot; 213, adapter guide rail; 214, adapter electrical interface;
[0121] 220, locking module; 221, locking member; 222, connecting portion; 223, contact portion; 224, locking block;
[0122] 230, decoupling module; 231, decoupling motor; 232, rotating screw; 233, screw nut; 234, coupling; 235, guide member; 236, flexible pad; 237, flexible buffer; 238, push plate;
[0123] 240, operation button; 250, adaptation operation module; 260, adaptation controller; 270, detection module; 280, adaptation communication module;
[0124] D1, first straight line direction; D2, second straight line direction. DETAILED DESCRIPTION
[0125] The following will be combined with the drawings in the embodiments of the present application to clearly and completely describe the technical solutions in the embodiments of the present application. Obviously, the embodiments described are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work are within the scope of protection of the present application.
[0126] Figure 1AThe figure shows the location distribution of the media devices 100 of the media system 10 provided by the present application in the vehicle 1 .
[0127] Reference Figures 1A to 1I As shown, as a first aspect of the present application, the technical solution of the present application provides a media system 10 , which includes: a media device 100 and an adaptation device 200 .
[0128] The media device 100 is used to implement media functions; the adapting device 200 is used to adapt the media device 100 so that the media device 100 has a coupled state and a decoupled state relative to the vehicle 1 .
[0129] In some embodiments of the present application, the media function of the present application includes signal interaction between the media device 100 and the user using sound or light as carriers. For example, the media device 100 provides sound or image feedback to the user; in another example, the media device 100 captures sound or image data. It should be noted that the media device 100 may only implement a single form of signal interaction, such as a speaker that only provides sound feedback; or the media device 100 may implement multiple forms of signal interaction, such as a pad that provides both sound and image feedback.
[0130] Alternatively, the signal interaction between the media device 100 and the user can be based on other carriers, such as force and heat. For example, the media device 100 can provide a tactile device such as a touchpad for user input, such as a touch screen. Another example is that the media device 100 can provide a temperature sensor to identify whether the user has entered the active area of the media device 100 based on the user's body temperature.
[0131] That is, for the purposes of this application, the media device 100 can interact with the user using force, heat, light, or sound as the carriers of signal interaction. The direction of signal interaction can be either from the user to the media device 100 or from the media device 100 to the user. The media device 100 can interact with the user using only one of force, heat, light, or sound as the carrier of signal interaction; or it can interact with the user using a combination of force, heat, light, and sound.
[0132] Based on the above, the media device 100 of the present application is more specifically used to implement signal interaction with the user, and the signal interaction is carried out at least by sound and light.
[0133] As a specific embodiment, the media device 100 includes but is not limited to a speaker, a display, a microphone, a camera, a laser projector, and the like.
[0134] As mentioned above, it can be understood that the media device 100 includes a media module 120 . The media module 120 is used to receive or output media information. The media module 120 includes at least one of the audio module 102 , the display module 103 , and the sound pickup module 104 .
[0135] Reference Figure 2A As shown, in order to enable the media device 100 of the present application to be combined with the application equipment 7 such as the vehicle 1, so as to use the media function of the media device 100 to be combined with the specific application scenario of the application equipment 7 such as the vehicle 1 (for example, the audio is combined with the cabin of the vehicle 1 as the audio for the vehicle 1 to feedback sound signals to the user), the media system 10 of the present application also includes an adaptation device 200.
[0136] In some embodiments of the present application, the adapting device 200 may be a part of the application device 7, for example, Figure 2A In the illustrated embodiment, the adapter device 200 is fixedly arranged on the interior wall 11 of the vehicle 1 .
[0137] At this time, refer to Figure 1A As shown, the application device 7 itself can also be considered as the adaptation device 200 in the technical solution of this application, for example, the vehicle 1 can be used as an adaptation device 200.
[0138] In some embodiments of the present application, the adapter device 200 may also be detachably connected to the application device 7 , that is, the adapter device 200 may be separated from the application device 7 .
[0139] For example, refer to Figure 6A In the illustrated embodiment, the adapter device 200 can be separated from the vehicle 1's cabin structure. It primarily transfers power or signals between the media device 100 and the vehicle 1. It also acts as an intermediary, indirectly connecting the media device 100 to the vehicle 1 by connecting to the vehicle 1 and the media device 100, respectively. In this case, the application device 7 can be considered not to be the adapter device 200 in this application.
[0140] As an alternative, a multi-stage adaptation device may be provided between the media device and the application device 7 .
[0141] Reference Figure 6A As shown, one adapter device 200 can be coupled to another adapter device 200 and then the other adapter device 200 can be coupled to the application device 7. This can provide users with more functional combinations.
[0142] As a specific solution, the application device 7 can be: a vehicle 1, a ship, an electric bicycle, or a motorcycle.
[0143] To enable the media device 100 of the present application to be used independently or in different application scenarios, the adapter device 200 of the present application has at least two operating modes: one in which the media device 100 is separated from the adapter device 200; and the other in which the media device 100 and the adapter device 200 are at least physically connected. In other words, the media device 100 can have a coupled state and a decoupled state relative to the vehicle 1.
[0144] Reference Figure 2B As shown, in some embodiments of the present application, a corresponding adapter device 200 may be configured for a media device 100. Figure 2C The figure shows a decoupled state of a media device 100 relative to an adapter device 200 .
[0145] Reference Figure 6A As shown, in some other embodiments of the present application, the same adapter device 200 may be configured for multiple media devices 100 , that is, multiple media devices 100 may be coupled to the same adapter device 200 .
[0146] Figure 6C The figure shows the decoupling state of multiple media devices 100 relative to one adapter device 200. Accordingly, multiple adapter devices 200 can be configured for one media device 100, that is, one media device 100 can be coupled to different adapter devices 200.
[0147] The decoupling state or decoupling referred to in this application refers to the media device 100 as the main body. That is, as long as the media device 100 is separated from the adapter device 200, the media device 100 can be considered to be in the decoupling state. The realization of this decoupling state is not limited by the corresponding relationship between the media device 100 and the adapter device 200. That is, regardless of whether the relationship between the media device 100 and the adapter device 200 is one-to-one, one-to-many, or many-to-one, the media device 100 can be considered to be in the decoupling state when it is in a state where it can be separated from the adapter device 200. In addition, the media device 100 can have multiple decoupling states for each adapter device 200. There can be multiple decoupling states between the media device 100 initially being decoupled from the adapter device 200 (having the freedom to detach and being able to move freely, but still having a volumetric overlap with the adapter device 200) and the media device 100 being completely decoupled from the adapter device 200 (no volumetric overlap between the media device 100 and the adapter device 200).
[0148] In contrast, refer to Figure 2A 、 Figure 2B 、 Figure 6A and Figure 6BAs shown, although the coupling state of the media device 100 is also based on the media device 100, and the coupling state of the media device 100 is not limited by the corresponding relationship between the media device 100 and the adapter device 200, the realization of the coupling state of the media device 100 requires at least one adapter device 200 to be coupled with it so that the media device 100 and the adapter device 200 meet a preset and determined matching relationship, and then the media device 100 is considered to be in the coupling state; this matching relationship includes but is not limited to a positional relationship, a connection relationship, a communication relationship, and a field effect relationship (for example, a magnetic induction relationship based on a magnetic field, a thermal radiation relationship based on a thermal field, a magnetoelectric effect relationship based on a magnetic field and an electric field, etc.).
[0149] In some specific embodiments of the present application, the coupling state of the media device 100 is realized based on the position relationship, which can be referred to Figure 2A and Figure 2B As shown, it can be understood that the media device 100 needs to be accommodated in a preset position in the adaptation space formed by the adaptation device 200 in order to achieve the coupling state.
[0150] In some other specific embodiments of the present application, the coupling state of the media device 100 is realized based on the connection relationship. Figure 2B 、 Figure 3C 、 Figure 3D and Figure 3E As shown, the media device 100 needs to be in contact with the locking module 220 of the adapter device 200 to achieve a fixed connection between the media device 100 and the locking module 220 (which can be switched to a non-fixed connection when decoupling). In other words, the media device 100 can be considered to be in a coupled state when the media device 100 and the adapter device 200 form a preset physical connection.
[0151] As another implementation form, the media device 100 needs to form a preset electrical connection (a type of physical connection, that is, current is transmitted through contact between conductors) with the adapter device 200 to achieve the coupling state.
[0152] In some other specific embodiments of the present application, the coupling state of the media device 100 is achieved based on a communication relationship, that is, the media device 100 needs to achieve a communication connection (forming signal interaction) with the adapter device 200 to achieve the coupling state.
[0153] In most application scenarios, the main function of the adapter device 200 is to enable the media device 100 to have a relatively fixed usage position relative to the application equipment 7 (e.g., the vehicle 1). Therefore, as the main implementation method of the present application, the embodiment of the present application is configured so that in the coupled state, the media device 100 and the adapter device 200 are at least physically connected. The embodiment of the present application is configured so that in the decoupled state, the media device 100 and the adapter device 200 are released from the physical connection formed in the coupled state, so that the media device 100 is not constrained or interfered with by the adapter device 200 and can move independently.
[0154] In this way, the media device 100 can realize its media function as a part of the application device 7 in the coupled state, or can realize its media function as an independent entity.
[0155] In order to make it easier for the user to switch the usage of the media device 100, refer to Figure 1B As shown, the adapter device 200 of the present application includes a decoupling module 230. The decoupling module 230 is used to drive the media device 100 to decouple. The decoupling module 230 can be a part of the adapter device 200; the decoupling module 230 can also be an external module of the adapter device 200, that is, the adapter device 200 is configured with a decoupling module 230 independent of the adapter device 200. The main function of the adapter device 200 is to establish a physical connection between the media device 100 and the adapter device 200, thereby combining the media device 100 with the application device 7.
[0156] In order to achieve the transmission of power or signals between the media device 100 and the application device 7, so that the media device 100 can be applied to the specific scenario of the application device 7, it is necessary to first enable the media device 100 and the adapter device 200 to establish the transmission of power and signals. In this way, regardless of whether the adapter device 200 is part of the application device 7 or a part other than the application device 7, the adapter device 200 can establish a power and signal transmission path between the media device 100 and the application device 7.
[0157] In some embodiments of the present application, reference Figure 1B As shown, the media device 100 includes a media electrical interface 108 for providing a power and / or signal transmission interface for the media device 100. The adapter device 200 includes an adapter electrical interface 214 for providing a power and / or signal transmission interface for the adapter device 200.
[0158] As previously mentioned, it is understood that the audio module 102 is electrically connected to the media electrical interface 108 so that the audio module 102 obtains the required power from the media electrical interface 108. Similarly, the display module 103 is electrically connected to the media electrical interface 108 so that the display module 103 obtains the required power from the media electrical interface 108. Similarly, the pickup block is electrically connected to the media electrical interface 108 so that the pickup module 104 obtains the required power from the media electrical interface 108.
[0159] The audio module 102 may be configured to include a vibration unit 2005 (or speaker unit) or a combination of the vibration unit 2005 and the speaker 2003. Figures 2A to 5B In the illustrated embodiment, the speaker box 2003 of the audio module 102 may serve as the housing of the media device 100 .
[0160] Reference Figure 5A and Figure 5B As shown, in some embodiments of the present application, the audio modules 102 of the plurality of media devices 100 include a vibration unit 2005 and a speaker 2003 .
[0161] As an alternative, you can make Figure 5A and Figure 5B In the illustrated embodiment, the audio modules 102 of some of the multiple media devices 100 have both a vibration unit 2005 and a speaker 2003; while the audio modules 102 of the remaining media devices 100 only have a vibration unit 2005. These vibration units 2005 can be embedded in or placed in the speaker 2003 of other media devices 100 to share the speaker 2003.
[0162] Reference Figure 5A and Figure 5B As shown, in some embodiments of the present application, the audio module 102 of at least one larger media device 100 is required to have a speaker 2003. The speaker 2003 may have a dedicated sound cavity inside to fixedly accommodate its own vibration unit 2005. The outside of the speaker 2003 may be formed with a plurality of storage slots 2004 for accommodating other smaller media devices 100. The other smaller media devices 100 can be combined with the larger media device 100 into a whole by being accommodated in the storage slots 2004.
[0163] Reference Figure 5A and Figure 5B As shown, in some embodiments of the present application, the smaller media device 100 has its own speaker 2003, so the speaker 2003 of the larger media device 100 can play a certain role in amplifying sound. However, the vibration unit 2005 of the smaller media device 100 still mainly uses its own speaker 2003.
[0164] As before, the audio module 102 of the smaller media device 100 may also only have the vibration unit 2005. Figure 5A and Figure 5B In the embodiment shown, the storage slot 2004 not only serves as a storage function, but also serves as a sound cavity for the vibration unit 2005 of the smaller media device 100. That is, in addition to forming a sound cavity for its own vibration unit 2005, the speaker 2003 of the larger media device 100 also forms at least one external sound cavity for the vibration unit 2005 of other smaller media devices 100.
[0165] As mentioned above, it can be understood that the media device 100 includes a box for providing a sound cavity for its own vibration unit 2005 and the vibration units 2005 of other media devices 100; the other media devices 100 or the vibration units 2005 of the media devices 100 are detachably connected to the box.
[0166] In addition, different vibration units 2005 can provide different audio ranges, such as a first audio range and a second audio range, where the first audio range is a high-pitched range and the second audio range is a low-pitched range. Referring to the technical solution of the present application, it can be understood that multiple media devices 100 coupled to a single adapter device 200 are each configured with at least one audio module 102 providing the first audio range and one audio module 102 providing the second audio range.
[0167] Reference Figure 5A and Figure 5B As shown, in some embodiments of the present application, a corresponding electrical interface (cooperating with the electrical interface 105 ) may be provided in the storage slot 2004 to establish an electrical connection between the larger and smaller media devices 100 .
[0168] As mentioned above, it can be understood that the multiple media devices 100 coupled with one adapter device 200 have different volumes, and the adapter device 200 is provided with multiple adapter spaces capable of respectively accommodating the corresponding media devices 100 .
[0169] Reference Figure 1C As shown, in some embodiments of the present application, the media device 100 further includes a cooperative electrical interface 105. The cooperative electrical interface 105 is used to provide an interface for transmitting power and / or signals between multiple media devices 100.
[0170] That is, electrical energy or signal transmission can be achieved between the media devices 100 through the electrical connection formed by the cooperative electrical interface 105.
[0171] In other embodiments of the present application, the same electrical interface may be used as both the media electrical interface 108 and the cooperative electrical interface 105 of the present application.
[0172] Reference Figure 1C As shown, in some embodiments of the present application, the media device 100 further includes an external electrical interface 106. The external electrical interface 106 is used to provide an interface for transmitting power and / or signals between the media device 100 and an external device 4.
[0173] That is, the media device 100 and an external device 4 (such as an external power supply, a computer, a smart phone, etc.) can be electrically connected through the external electrical interface 106 to achieve transmission of power or signals.
[0174] In other embodiments of the present application, the same electrical interface can be used as both the media electrical interface 108 and the external electrical interface 106 of the present application. The same electrical interface can also be used as both the collaborative electrical interface 105 and the external electrical interface 106 of the present application.
[0175] Reference Figure 1I As shown, in some embodiments of the present application, the media device 100 further includes a power supply interface 111. The power supply interface 111 is used to provide an interface for transmitting power and / or signals between the media device 100 and an external power source. The power supply interface 111 can be used for direct power supply or charging.
[0176] In some embodiments of the present application, the media device 100 further includes a built-in power module 109. The built-in power module 109 is used to provide power to the media device 100. The built-in power module 109 may include a built-in battery cell, a built-in supercapacitor, etc. The built-in power module 109 is electrically connected to the power supply interface 111 to obtain power or signals (for transmitting charging instructions) from the power supply interface 111.
[0177] In other embodiments of the present application, the same electrical interface can be used as both the media electrical interface 108 and the power supply electrical interface 111 of the present application. The same electrical interface can also be used as at least two of the collaborative electrical interface 105, the external electrical interface 106, and the power supply electrical interface 111 of the present application.
[0178] Reference Figure 1IAs shown, in this embodiment, the media device 100 may be provided with only the power supply electrical interface 111, which simultaneously functions as the media electrical interface 108, the cooperative electrical interface 105, and the external electrical interface 106. In this case, the power supply electrical interface 111 is electrically connected to the media controller 112 and the internal power module 109. The internal power module 109 can be electrically connected to the media controller 112 via the power supply electrical interface 111, and the internal power module 109 can supply power to the media controller 112 or other modules.
[0179] In some embodiments of the present application, the media electrical interface 108 and the adapter electrical interface 214 are transmission interfaces that can be matched, that is, the media electrical interface 108 and the adapter electrical interface 214 form a connection that can transmit electrical energy and signals.
[0180] In order to achieve synchronous connection and disconnection when the media device 100 and the adapter device 200 are coupled and uncoupled, refer to Figure 1B As shown, in some embodiments of the present application, when the media device 100 of the present application is in a coupled state, the media electrical interface 108 and the adapter electrical interface 214 are electrically connected to enable transmission of electrical energy or current between the media device 100 and the adapter device 200. When the media device 100 of the present application is in a decoupled state, the media electrical interface 108 and the adapter electrical interface 214 are electrically disconnected to disconnect the transmission of electrical energy or current between the media device 100 and the adapter device 200.
[0181] In this way, when the user operates the media device 100 to couple or decouple it with the adapter device 200, the transmission of power or signals between the media device 100 and the adapter device 200 can be synchronously established or released.
[0182] As mentioned above, it is understood that the decoupling module 230 may also be configured to release the electrical connection between the media device 100 and the adapter device 200 while driving the media device 100 to release the coupling state.
[0183] As previously mentioned, the coupled state of the media device 100 is a fixed state relative to the adapter device 200. Meanwhile, since the uncoupled state of the media device 100 is an unfixed state relative to the adapter device 200, and the media device 100 can be switched from the coupled state to the uncoupled state by the decoupling module 230, the adapter device 200 needs to lock the media device 100 in the coupled state. Furthermore, this is to ensure that if the user manually uncouples the media device 100 while operating in the coupled state, causing an unexpected interruption in operation, this also prevents damage to the internal circuitry caused by a sudden disconnection between the adapter electrical interface 214 and the media electrical interface 108.
[0184] As mentioned above, it can be understood that when the media device 100 is in a coupled state, the media electrical interface 108 and the adapter electrical interface 214 form an electrical connection for transmitting electrical energy and / or signals; and / or when the media device 100 is in a decoupled state, the media electrical interface 108 and the adapter electrical interface 214 disconnect the electrical connection for transmitting electrical energy and / or signals.
[0185] Reference Figure 1B As shown, in some embodiments of the present application, the adapting device 200 further includes a locking module 220. The locking module 220 is used to lock the coupling state of the media device 100.
[0186] As previously mentioned, it is understood that the locking module 220 locks the coupling state of the media device 100 so that the media device 100 maintains its associated relationship with the adapter device 200, including but not limited to maintaining its connection relationship with the adapter device 200. As a specific solution, the locking module 220 itself is used to implement all or part of the physical connection relationship between the adapter device 200 and the media device 100, especially a switchable connection relationship.
[0187] In order to realize the control of the decoupling module 230 or the locking module 220, refer to Figure 1B As shown, the configuration device of the present application also includes: an adapter controller 260. The adapter controller 260 is used to directly control the operation of the decoupling module 230. For example, it controls the start, end, and interruption of the operation of the decoupling module 230, that is, controls the start and stop of the operation of the decoupling module 230; for another example, it controls the speed, direction, and mode of the operation of the decoupling module 230, that is, controls the mode of operation of the decoupling module 230. Thus, the adapter controller 260 controls the implementation method of the decoupling action generated by the decoupling module 230 so as to controllably switch the decoupling module 230 to a decoupling state. The adapter controller 260 can also be used to directly control the operation of the locking module 220, for example, it controls the start, end, interruption or direction (locking direction or unlocking direction) of the operation of the locking module 220. Unlike the decoupling module 230, the locking module 220 does not have an operating mode, and it is more about switching between the locked and unlocked states.
[0188] The decoupling module 230 can be electrically connected to the adaptive controller 260, thereby enabling signal transmission through the electrical connection. The adaptive controller 260 can transmit a drive signal or a command signal to the decoupling module 230 through the electrical connection, thereby controlling the decoupling module 230. Accordingly, the decoupling module 230 can transmit a feedback signal to the adaptive controller 260, so that the adaptive controller 260 can implement closed-loop control based on the feedback signal from the decoupling module 230. In other words, the decoupling module 230 is electrically connected to the adaptive controller 260, so that the adaptive controller 260 controls the operation of the decoupling module 230.
[0189] Similarly, the locking module 220 can be electrically connected to the adaptive controller 260, thereby enabling signal transmission via the electrical connection. The adaptive controller 260 can transmit a drive signal or a command signal to the locking module 220 via the electrical connection, thereby controlling the locking module 220. Accordingly, the locking module 220 can transmit a feedback signal to the adaptive controller 260, so that the adaptive controller 260 implements closed-loop control based on the feedback signal from the locking module 220. In other words, the locking module 220 is electrically connected to the adaptive controller 260, so that the adaptive controller 260 controls the operation of the locking module 220.
[0190] As previously understood, the adapter controller 260 is configured to control the decoupling module 230 and the locking module 220 so that when the decoupling module 230 drives the media device 100 to decouple, the locking module 220 releases the lock on the connection between the media device 100 and the adapter device 200 .
[0191] As mentioned above, it can be understood that the adapter controller 260 is configured to control the decoupling module 230 and the locking module 220 so that when the decoupling module 230 cooperates with the media device 100 to enter the coupled state, the locking module 220 locks the connection relationship between the media device 100 and the adapter device 200.
[0192] In order to achieve the coordination of the decoupling module 230 and the locking module 220 by the adaptation controller 260, refer to Figure 1B As shown, in some embodiments of the present application, the adapter device 200 further includes a detection module 270. The detection module 270 is used to detect the media device 100; the adapter controller 260 is electrically connected to the detection module 270 so that the adapter controller 260 controls the decoupling module 230 and / or the locking module 220 according to the detection result of the detection module 270.
[0193] The main purpose of setting up the detection module 270 is to enable the adaptation control device to know the relative relationship between the media device 100 and the adaptation device 200. As mentioned above, the media device 100 has multiple decoupling states and one coupling state. Therefore, the detection module 270 is used to detect the conversion of the media device 100 between the decoupling state and the coupling state, or the conversion between multiple decoupling states of the media device 100; the conversion conditions referred to here include but are not limited to the start, progress, end and termination of the conversion. That is, the detection module 270 can detect the process of coupling or decoupling of the media device 100, which includes but is not limited to: the media device 100 starts coupling, the media device 100 ends coupling, the media device 100 is coupling, the media device 100 starts decoupling, the media device 100 ends decoupling, and the media device 100 is decoupling.
[0194] In some embodiments of the present application, the detection module 270 may detect the coupling or decoupling process of the media device 100 by detecting the position of the media device 100 relative to the adapter device 200 .
[0195] For example, a position switch set at a specific position is used as part of the detection module 270, so that when the media device 100 moves to a preset position, the position switch contacts the position switch, allowing the adaptation controller 260 to know whether the media device 100 has reached the preset position for achieving the coupling state.
[0196] In other embodiments of the present application, the detection module 270 can realize position detection of the media device 100 through a non-contact position sensor. The non-contact position sensor here includes but is not limited to an optical position sensor (such as an infrared position sensor, a laser position sensor), a magnetic position sensor (such as a Hall sensor), and a pressure position sensor (pressure patch sensor).
[0197] In addition to detecting the location of the media device 100, the detection module 270 can also detect the transmission of power or signals between the media device 100 and the adapter device 200, thereby indirectly detecting the coupling or decoupling process of the media device 100. For example, the detection module 270 can detect whether there is voltage or current at the adapter electrical interface 214 to determine whether the media electrical interface 108 is connected to the adapter electrical interface 214.
[0198] Since detecting the presence of voltage or current at the adapter electrical interface 214 only determines whether a connection is established, and generally speaking, a process is required for the media electrical interface 108 and the adapter electrical interface 214 to contact and finally connect, simply detecting the presence of voltage or current at the adapter electrical interface 214 cannot accurately determine the coupling state of the media device 100. To achieve more accurate detection, in some embodiments of the present application, the detection module 270 detects the voltage or current value of the adapter electrical interface 214 and determines whether the voltage or current value of the adapter electrical interface 214 is stable within a set threshold range to determine whether the media device 100 is in a stable coupling state.
[0199] Reference Figure 1DAs shown, this requires that the detection module 270 be electrically connected to the adapter electrical interface 214. The detection module 270 can determine whether the voltage or current value of the adapter electrical interface 214 is stable within a set threshold range. That is, the detection module 270 includes a corresponding logic device (such as a single-chip microcomputer or logic circuit). The adapter controller can determine whether the media device 100 is in a stable coupling state. As another embodiment, the judgment of whether the voltage value or current value of the adapter electrical interface 214 is stable within the set threshold range and the judgment of whether the media device 100 is already stably in the coupling state are both implemented by the adapter controller 260 which itself has a logic device, and the detection module 270 is only used to realize the detection and collection of voltage and current. The detection module 270 itself does not have a logic judgment function. For example, the detection module 270 can be composed of a circuit with a sampling resistor, and the adapter controller 260 can have a single-chip microcomputer. The positive pole of the sampling resistor of the detection module 270 is electrically connected to the voltage detection pin of the single-chip microcomputer of the adapter controller 260, thereby realizing the aforementioned detection and judgment.
[0200] As before, refer to Figure 1D As shown, it can be understood that the adaptation controller 260 is configured to control the decoupling module 230 and the locking module 220 based on the feedback of the detection module 270, so that when the decoupling module 230 drives the media device 100 to decouple, the locking module 220 releases the lock on the connection relationship between the media device 100 and the adaptation device 200.
[0201] More specifically, the adaptation controller 260 is configured to control the decoupling module 230 and the locking module 220 based on the detection result of the detection module 270 on the position of the media device 100, so that when the decoupling module 230 drives the media device 100 to decouple, the locking module 220 releases the lock on the connection relationship between the media device 100 and the adaptation device 200.
[0202] More specifically, the adapter controller 260 is configured to control the decoupling module 230 and the locking module 220 based on the detection result of the detection module 270 on the adapter electrical interface 214, so that when the decoupling module 230 drives the media device 100 to decouple, the locking module 220 releases the lock on the connection relationship between the media device 100 and the adapter device 200.
[0203] As before, refer to Figure 1D As shown, it can be understood that the adaptation controller 260 is configured to control the decoupling module 230 and the locking module 220 based on the feedback of the detection module 270, so that when the decoupling module 230 cooperates with the media device 100 to enter the coupled state, the locking module 220 locks the connection relationship between the media device 100 and the adaptation device 200.
[0204] More specifically, the adaptation controller 260 is configured to control the decoupling module 230 and the locking module 220 based on the detection result of the detection module 270 on the position of the media device 100, so that when the decoupling module 230 cooperates with the media device 100 to enter the coupled state, the locking module 220 establishes a lock on the connection relationship between the media device 100 and the adaptation device 200.
[0205] More specifically, the adapter controller 260 is configured to control the decoupling module 230 and the locking module 220 based on the detection result of the detection module 270 on the adapter electrical interface 214, so that when the decoupling module 230 cooperates with the media device 100 to enter the coupled state, the locking module 220 locks the connection relationship between the media device 100 and the adapter device 200.
[0206] In order to enable the user to switch the media device 100 from the coupled state to the decoupled state through active operation when needed, refer to Figure 1B As shown, the adaptation device 200 further includes an adaptation operation module 250. The adaptation operation module 250 is configured to allow a user to operate the adaptation device 200. The adaptation controller 260 is electrically connected to the adaptation operation module 250 so that the adaptation controller 260 controls at least one of the decoupling module 230 and the locking module 220 according to a user operation received during the adaptation operation.
[0207] In some embodiments of the present application, reference is made to Figure 2A As shown, the adaptation operation module 250 may include an operation button 240. When the user presses the operation button 240, the adaptation controller 260 will receive a trigger signal. Then, the adaptation controller 260 determines whether to output a control signal or control instruction for the control decoupling module 230 or the control locking module 220 based on the feedback from the detection module 270.
[0208] In other embodiments of the present application, Figure 2A and Figure 6A The illustrated operation button 240 may be replaced with a touch panel, a biometric sensor (infrared temperature sensor), or the like.
[0209] In some embodiments of the present application, the adaptation operation module 250 is not only used to implement user control over triggering decoupling and locking coupling, but can also be used to implement control over some functions of the adaptation device 200 itself. For example, when the media device 100 is in a coupled state, the user can actively disconnect the electrical connection between the adaptation device 200 and the media device 100 by operating the adaptation operation module 250 (this can be achieved by adapting a controllable switch connected to the electrical interface 214). Of course, this function can also be automatically triggered by the adaptation controller 260. For another example, the user can separate the adaptation device 200 from the application device 7 by operating the adaptation operation module 250. At this time, it can be considered that the adaptation device 200 and the application device 7 have the same relationship and functions as the media device 100 and the adaptation device 200.
[0210] In some embodiments of the present application, reference is made to Figure 1E As shown, the media device 100 may include a media operation module 110, which is used to operate the media device 100. When the media device 100 and the adaptation device 200 are in a coupled state, the user may also operate the media operation module 110 instead of the adaptation operation module 250 to send a trigger signal to the adaptation controller 260, thereby allowing the user to control the decoupling module 230 and the locking module 220 according to the user's operation by operating the media operation module 110.
[0211] In other embodiments of the present application, refer to Figure 1F As shown, the adapter device 200 may not include the adapter controller 260, that is, the logic device is eliminated, so that the adapter device 200 only includes the decoupling module 230, the locking module 220, the adapter electrical interface 214, and the adapter operation module 250. Because the decoupling module 230 and the locking module 220 can both be triggered when the media electrical interface 108 and the adapter electrical interface 214 are electrically connected, the functions of the adapter operation module 250 and the adapter controller 260 as described above can be implemented by the media operation module 110 and the media controller 112 of the media device 100.
[0212] In other embodiments of the present application, refer to Figure 1G As shown, the adapter device 200 may also be provided with no adapter controller 260, and the adapter device 200 may only include the decoupling module 230, the locking module 220, and the adapter electrical interface 214. This solution can be used to adapt to situations where the application device 7 requires more adapter devices 200 or multiple adapter devices 200 are provided for one media device 100, effectively reducing the cost of system implementation while also reducing the modification of the application device 7 or the space occupied.
[0213] In order to further improve the applicability of the media device 100 and further reduce the difficulty of implementing the adaptation device 200, in other embodiments of the present application, referring to Figure 1H As shown, the media device 100 includes a decoupling module 230 and a locking module 220 having the aforementioned functions; while the adapter device 200 only includes an adapter electrical interface 214, which can be electrically connected to the device circuit 71 of the application device 7, and the device circuit 71 can be electrically connected to the device controller 72 of the application device 7 to achieve coordination between the application device 7 and the media device 100.
[0214] The benefit of adopting such a solution is that it further simplifies the configuration cost of the adapter device 200. In this embodiment, the main function of the adapter device 200 is to provide a space for accommodating or combining the media device 100.
[0215] Reference Figures 4A to 4I As shown, in some embodiments of the present application, the adaptation device 200 is provided with an adaptation space, which is used to accommodate at least a portion of the media device 100. In particular, when the media device 100 is in a coupled state, the volume of the media device 100 in the adaptation space in the coupled state is different from the volume of the media device 100 in the adaptation space in the uncoupled state.
[0216] The adapting electrical interface 214 of the adapting device 200 can be disposed inside the adapting space. As mentioned above, the adapting device 200 of the present application can at least have an adapting base 210 to form an adapting cavity 211, so that the space inside the adapting cavity 211 serves as the adapting space of the present application.
[0217] Reference Figures 5A to 5B As shown, in some embodiments of the present application, the media device 100 is provided with a transfer space; the transfer space is used to accommodate at least a portion of another media device 100. The media device 100 includes a device housing 101. The device housing 101 is formed with a receiving cavity for accommodating its own components and a transfer cavity for accommodating other media devices 100. The space within the transfer cavity serves as the transfer space of the present application. For example, Figure 5A and Figure 5B In the illustrated embodiment, the storage slot 2004 formed in the speaker box 2003 (equivalent to the device housing 101 ) of the larger media device 100 may serve as a way to implement the aforementioned adapter cavity.
[0218] As mentioned above, it can be understood that the adaptation space is larger than the transfer space so that the adaptation space can accommodate multiple media devices 100.
[0219] In order to reduce the wiring cost of wired communication, the application scenarios of the media device 100 and the adapter device 200 are expanded. Figures 1B to 1CAs shown, the media device 100 includes a media communication module 107. The media communication module 107 is used to implement wireless communication of the media device 100. Specifically, the media communication module 107 includes one or more of a Bluetooth unit, a WiFi unit, a UWB unit, and an NFC unit. This allows the media device 100 to implement functions based on wireless communication, or to serve as a terminal in a wireless communication network. For example, the media device 100 can be used as a Bluetooth speaker, such as Figures 8A to 8D As shown, the media device 100 can interact with the smart terminal 2 and the vehicle 1 through wireless communication protocols to implement a functional system, such as the media device 100 playing an audio file in the APP of the smart terminal 2 or the vehicle 1.
[0220] Reference Figures 1B to 1C As shown, the adapter device 200 includes an adapter communication module 280, which is used to implement wireless communication of the adapter device 200. The adapter communication module 280 is primarily used for wireless communication with the media communication module 107. Of course, it can also wirelessly communicate with external devices 4, such as the vehicle 1 or the smart terminal 2. The adapter communication module 280 also includes one or more of a Bluetooth unit, a WiFi unit, a UWB unit, and an NFC unit.
[0221] As before, refer to Figures 5A to 5B As shown, in some embodiments of the present application, at least one of the two media devices 100 is communicatively connected or electrically connected to the other media device 100 so that the two media devices 100 can collaboratively implement media functions.
[0222] For example, reference Figures 5A to 5B In the illustrated embodiment, the larger media device 100 acts as a woofer, while the smaller media device 100 acts as a tweeter, thereby providing the user with a wider sound range. In other words, multiple media devices 100 can play the same audio file and output different sound effects.
[0223] For example Figures 6A to 6H In the illustrated embodiment, a plurality of media devices 100 are respectively used for displaying, picking up and outputting sounds, thereby forming a synergistic combination 3. The synergistic combination 3 can be used as a karaoke system, for example, in a specific implementation.
[0224] For example Figure 7A In the illustrated embodiment, two media devices 100 serving as display screens 2001 and 2002 serve as spliced screens to respectively display a portion of an image in a video file, thereby splicing and displaying the complete image of the video file to achieve the effect of expanding the display range.
[0225] For example Figure 6CIn the illustrated embodiment, multiple media devices 100 do not need to be physically integrated, but can also realize media functions as a combined system of media devices 100 through wireless communication.
[0226] Reference Figures 8A to 8D As shown, the combination of the media device 100 and the adapter device 200 and the combination of the media devices 100 can collaborate with multiple external devices 4 (which may include application devices 7) based on a wireless network. For example, a user uses the smart terminal 2 to pick up sound in the car, and the media device 100 outside the car plays it.
[0227] Reference Figures 2A to 2B As shown, the adapter device 200 is installed on the inner wall 11 of the vehicle 1 , and the operation button 240 is provided on one side of the adapter device 200 .
[0228] In some specific embodiments, the adapter device 200 includes an adapter base 210, and the adapter base 210 forms an adapter cavity 211. The adapter device 200 also includes a decoupling module 230 and a locking module 220. The decoupling module 230 includes a motor and a push plate 238 driven by the motor. An adapter guide rail 213 is also provided inside the adapter cavity 211 for guiding the media device 100. The adapter electrical interface 214 of the adapter device 200 is provided inside the adapter cavity 211. The locking module 220 is at least partially accommodated in the space outside the adapter cavity 211, and at least a portion of the locking module can enter the adapter cavity 211 by providing an opening on the adapter base 210.
[0229] Reference Figures 3A to 3E The embodiment shown, which Figure 2A The embodiment shown is similar, refer to Figure 3B As shown, the media device 100 includes a device housing 101, with a vibration unit 2005 housed within the housing 101. A decoupling motor 231, a rotating lead screw 232, and a lead screw nut 233 are disposed within the interlayer of the adapter base 210. The decoupling motor 231 drives the rotating lead screw 232 to rotate, thereby causing the lead screw nut 233 to drive the push plate 238 to push the media device 100 outward, achieving decoupling. The direction of movement of the lead screw nut is parallel to the direction in which the media device 100 is inserted.
[0230] Reference Figure 3C As shown, the locking modules 220 are arranged at the opposite side walls of the adapting cavity 211, which can provide stable locking.
[0231] Reference Figure 3D and Figure 3EAs shown, the locking module 220 can use a locking motor (not shown) to drive the locking block 224 to rotate, thereby engaging with the groove formed on the media device 100 to achieve locking. If the insertion direction of the media device 100 is used as the front-to-back direction, the locking blocks 224 can be placed on the left and right sides, and the push plate 238 can be placed at the bottom. Of course, this is only a description of the relative position relationship, not an absolute position description.
[0232] Reference Figures 4A to 4I As shown, in some embodiments of the present application, the adapting device 200 is used to adapt the removable media device 100 , and the adapting device 200 includes: an adapting base 210 , a locking member 221 and a decoupling mechanism.
[0233] The adapter base 210 is formed with an adapter cavity 211 for accommodating at least a portion of the media device 100. Specifically, the media device 100 can be placed in the adapter cavity 211. When the adapter base 210 is fixedly integrated into the vehicle 1, the media device 100 can be installed on the vehicle 1. The locking member 221 has a locked position relative to the adapter base 210 for locking the media device 100 and an unlocked position for releasing the media device 100. In the locked position, the locking member 221 restricts the movement of the media device 100 relative to the adapter base 210, thereby securing the media device 100 to the vehicle 1. In the unlocked position, the locking member 221 no longer restricts the movement of the media device 100 relative to the base. At this point, the media device 100 can be removed from the adapter cavity 211, thereby achieving a detachable connection between the media device 100 and the vehicle 1.
[0234] The decoupling mechanism is connected to the locking member 221 to drive the locking member 221 to move between the locked position and the unlocked position. In other words, the decoupling mechanism provides a driving force to the locking member 221 to enable movement. The movement trajectory of the locking member 221 from the locked position to the unlocked position at least partially intersects the direction in which the media device 100 is coupled to the adapter base 210.
[0235] In some specific embodiments, the locking member 221 can, for example, rotate, swing, or slide relative to the adapter base 210. The motion trajectory of the locking member 221 can be the path swept by any point on the physical body that the locking member 221 can move relative to the adapter base 210 during the movement of the locking member 221. The coupling direction of the media device 100 to the adapter base 210 can be illustrated as the direction in which the media device 100 moves relative to the adapter base 210 during the process of being installed on the adapter base 210. In this application, the motion trajectory of the locking member 221 from the locked position to the unlocked position is defined as at least partially intersecting with the coupling direction of the media device 100 to the adapter base 210. Such that during the movement of the locking member 221, its motion trajectory interferes with the position of the media device 100 after installation within the adapter cavity 211. Thus, the locking member 221 can prevent the media device 100 from being separated from the adapter base 210 along the aforementioned coupling direction, thereby securing the media device 100 to the vehicle 1 using the locking member 221.
[0236] The above-described technical solution utilizes a decoupling mechanism to drive the locking member 221 between a locked and unlocked position. During this process, the locking member 221 interferes with the position of the media device 100, locking the media device 100 to the adapter base 210. Once the locking member 221 is moved to the unlocked position, the media device 100 can be easily installed and removed, thereby providing the advantage of convenient operation. Furthermore, the adapter base 210 can be fixed to the vehicle 1 using a fixed connection method such as welding, threading, or snap fastening, ensuring a stable installation of the media device 100 on the vehicle 1, reducing the possibility of the media device 100 falling off the vehicle 1 due to external impact, and improving the safety of the media device 100.
[0237] In some embodiments, the locking member 221 includes a connecting portion 222 and a contact portion 223. The connecting portion 222 is connected to the decoupling mechanism to allow movement relative to the adapter base 210 when driven by the decoupling mechanism. The contact portion 223 is configured to apply force to the media device 100 when the locking member 221 is in the locked position, thereby hindering or even preventing the media device 100 from moving relative to the adapter base 210, thereby positioning the media device 100 within the adapter cavity 211.
[0238] In some specific embodiments, the locking member 221 can be configured to contact the media device 100 when in the locked position to directly apply pressure to the media device 100, thereby preventing or even hindering the movement of the media device 100. The contact between the two can be, for example, surface contact. The locking member 221 may not directly contact the media device 100, but instead exert force on other components in contact with the media device 100, thereby utilizing these components to generate resistance to the media device 100 and hinder the movement of the media device 100. The connecting portion 222 and the contact portion 223 are disposed outside the adapting cavity 211. The contact portion 223 is fixedly connected / integrally formed with the connecting portion 222 so that when the decoupling mechanism drives the connecting portion 222 to move to the locked position, the contact portion 223 is at least partially inserted into the adapting cavity 211.
[0239] With the above solution, the adapting cavity 211 allows the media device 100 to be relatively fixedly positioned on the vehicle 1 . Furthermore, the contact portion 223 is inserted into the adapting cavity 211 to secure the media device 100 . When the media device 100 needs to be removed, the contact portion 223 can be moved away from the media device 100 or even out of the adapting cavity 211 , further facilitating removal of the media device 100 from the adapting cavity 211 .
[0240] In some embodiments, the adapter device 200 is provided with a guide member 235, which is disposed between the adapter base 210 and the speaker and is used to guide the media device 100 along a coupling direction to be coupled to the adapter base 210. By providing the guide member 235, the media device 100 can be mounted on the adapter base 210 along a predetermined coupling direction.
[0241] In some embodiments, after the media device 100 is coupled to the adapter base 210, the guide member 235 forms surface contact with the media device 100. Specifically, the guide member 235 can be disposed within the adapter cavity 211 and form surface contact with the media device 100, thereby limiting the shaking of the media device 100.
[0242] In some embodiments, the adapter device 200 further includes a flexible buffer 237 . The flexible buffer 237 is used to provide a buffer between the adapter device 200 and the media device 100 .
[0243] Specifically, when the locking member 221 is in the locked position, at least a portion of the flexible buffer 237 is located between the locking member 221 and the media device 100. The flexible buffer 237 can be made of a flexible material such as rubber or silicone and has elastic deformation capabilities. After the adapter 200 and the media device 100 are integrated into the vehicle 1, the flexible buffer 237 can provide cushioning for the media device 100. This reduces impacts on the media device 100 during acceleration and deceleration, providing cushioning protection for the media device 100.
[0244] In some embodiments, the flexible cushioning member 237 can be configured to wrap around the contact portion 223. When the locking member 221 is in the locked position, the flexible cushioning member 237 contacts the media device 100. In this way, when the media device 100 is locked using the contact portion 223, it is possible to prevent the contact portion 223 from rigidly contacting the media device 100 and causing damage to the media device 100.
[0245] In some embodiments, when the locking member 221 is in the locked position, at least two distinct portions of the flexible buffer 237 form surface contact with the media device 100. For example, referring to the figure, in the vertical direction of the figure, both end surfaces of the flexible buffer 237 contact the surface of the media device 100, which can assist the contact portion 223 in limiting the media device 100 and cushion upward or downward impact forces acting on the media device 100, thereby enhancing the effectiveness of cushioning external impact forces.
[0246] In some embodiments, the flexible buffer 237 can also be configured to be fixed to the adapter base 210 and at least partially located within the adapter cavity 211. After the media device 100 is coupled to the adapter base 210, the flexible buffer 237 is in surface contact with the media device 100. In this case, the flexible buffer 237 is located between the inner wall of the adapter base 210 and the media device 100, similarly providing a buffer against external impacts and reducing the likelihood of damage to the media device 100.
[0247] Of course, a solution may also be adopted in which a plurality of flexible buffers 237 are arranged on the adapting device 200 , wherein some of the flexible buffers 237 are wrapped around the contact portion 223 and the other parts are fixed on the adapting base 210 .
[0248] In some embodiments, when the locking member 221 moves from the locked position to the unlocked position, the flexible buffer 237 maintains contact with the media device 100. This can reduce the collision between the media device 100 and the adapter base 210 / locking member 221 during the installation and removal of the media device 100 through the flexible buffer 237.
[0249] In some embodiments, the sidewall of the adapter base 210 is provided with a slot 212 communicating with the adapter cavity 211. When the locking member 221 is in the locked position, the contact portion 223 is inserted into the adapter cavity 211 through the slot 212, so that the contact portion 223 locks the media device 100 in the adapter cavity 211 when in the locked position.
[0250] In some embodiments, two opposing sidewalls of the adapter base 210 are provided with slots 212. When in the locked position, the contact portions 223 of two different locking members 221 are inserted into the adapter cavity 211 through the slots 212 on the opposing sidewalls of the adapter base 210. This means that the locking members 221 are used on both sides of the media device 100 to lock the media device 100, increasing the contact surface between the adapter device 200 and the media device 100 and improving the securement effect.
[0251] In some embodiments, the locking member 221 is rotatably connected to the adapter base 210. When the locking member 221 is rotated to the locked position, its solid portion interferes with the motion trajectory of the media device 100 separating from the adapter base 210, thereby hindering or preventing the media device 100 from separating from the adapter base 210. In combination with the aforementioned solution of inserting the two locking members 221 through the slots 212 on both sides of the adapter base 210 into the adapter cavity 211 to lock the media device 100, the two locking members 221 clamp the media device 100 during rotation, thereby locking the media device 100.
[0252] In some embodiments, the locking member 221 is slidably connected to the adapter base 210 along a first linear direction D1. That is, the locking member 221 is driven by the decoupling mechanism to slide along the first linear direction D1 relative to the adapter base 210. The first linear direction D1 is different from the direction in which the media device 100 is coupled to the adapter base 210. During the sliding process of the locking member 221, the media device 100 is locked.
[0253] Regarding the specific structure of the decoupling mechanism, this application proposes the following specific feasible implementation scheme to further illustrate the inventive concept of this application. However, the following description of the specific structure of the decoupling mechanism should be regarded as an exemplary description of the decoupling mechanism, rather than a limitation on the specific structure of the decoupling mechanism.
[0254] In some embodiments, the decoupling mechanism may be entirely disposed outside the adapting cavity 211 to avoid interfering with the path of the media device 100 when coupled to the adapting base 210. The decoupling mechanism includes a driving motor, a rotating lead screw 232, and a lead screw nut 233.
[0255] The driving motor is fixedly mounted on the adapting base 210. The rotating screw 232 is connected to the driving motor so as to rotate under the drive of the driving motor. The screw nut 233 is mounted on the rotating screw 232 so as to slide relative to the rotating screw 232 along the first straight line direction D1 when the rotating screw 232 rotates. The screw nut and the rotating screw 232 can be connected by a conventional thread. The connecting portion 222 is fixedly connected to the screw nut 233 so that when the screw nut 233 slides relative to the rotating screw 232, the locking member 221 slides relative to the adapting base 210 along the first straight line direction D1. In this way, when the driving motor drives the rotating screw 232 to rotate, the screw nut 233 and the connecting portion 222 are able to slide relative to the adapting base 210, thereby allowing the contact portion 223 to lock the media device 100.
[0256] In some embodiments, the rotating lead screw 232 is configured as a bidirectional lead screw. Two lead screw nuts 233 are respectively mounted on opposite ends of the bidirectional lead screw, so that the two connecting portions 222 connected to the two lead screw nuts 233 slide relative to each other when the rotating lead screw 232 rotates, thereby allowing the two connecting portions 222 to move toward or away from each other within the same time period. In other words, when the drive motor is operating, the bidirectional lead screw and the two lead screw nuts 233 cooperate to cause the two locking members 221 to slide in opposite directions, thereby clamping and securing the media device 100 using the two contact portions 223.
[0257] In some embodiments, a coupling 234 may be provided between the output shaft of the driving motor and the rotating screw 232 to achieve a rotation-stopping connection between the driving motor and the rotating screw 232, so that the driving motor can drive the rotating screw 232 to rotate when working.
[0258] In some embodiments, the media device 100 is provided with a mating portion. When the locking member 221 is in the locked position, the mating portion engages with the locking member 221 to lock the media device 100 within the adapting cavity 211. This mating engagement restricts displacement of the media device 100 relative to the adapting base 210, thereby achieving a stable connection between the media device 100 and the adapting base 210.
[0259] In some embodiments, the mating portion is configured as a receptacle 100a formed on the surface of the media device 100. When the locking member 221 is in the locked position, the locking member 221 is at least partially embedded in the receptacle 100a, thereby locking the media device 100. This mating arrangement improves the smoothness of the surface of the media device 100 and prevents the mating portion from being damaged when the media device 100 is removed from the vehicle 1 for use.
[0260] Alternatively, the mating portion may be constructed as a protrusion formed on the surface of the media device 100, and a corresponding socket 100a may be provided on the locking member 221. When the locking member 221 is in the locked position, the media device 100 is locked by mating with the protrusion and the socket 100a.
[0261] In some embodiments, the media device 100 is coupled to the adapter base 210 along the second linear direction D2. The media device 100 is further provided with a slide groove 100b. When the locking member 221 is in the unlocked position, at least a portion of the adapter 200 is inserted into the slide groove 100b to restrict the speaker from sliding relative to the adapter base 210 along the second linear direction D2. In a more specific embodiment, the depth of the slide groove 100b is less than the depth of the insertion hole 100a. The cooperation between the slide groove 100b and the adapter 200 guides the media device 100 into the adapter cavity 211, facilitating the positioning and installation of the media device 100 within the adapter cavity 211.
[0262] In a specific embodiment, the guide member 235 can be configured as a guide rail fixedly connected / integrated on the adapter base 210 and extending along the second linear direction D2, and the guide rail is inserted into the slide groove 100b, so that when the media device 100 moves along the second linear direction D2, the guide rail is used to guide and limit the movement direction of the media device 100.
[0263] In some embodiments, at least a portion of the guide member 235 is spaced from the inner wall of the slideway 100b of the media device 100. This allows for thermal expansion and contraction of the guide member 235, preventing the guide member 235 from becoming stuck in the slideway 100b and causing difficulty in assembling and disassembling the media device 100. In a more specific embodiment, a flexible pad 236 is fixedly mounted on the guide member 235. The flexible pad 236 can be made of a flexible material such as rubber or silicone, and has elastic deformation capabilities. The flexible pad 236 is at least partially inserted into the gap between the guide member 235 and the media device 100 and contacts the media device 100. This gap between the guide member 235 and the media device 100 ensures smooth assembly and disassembly of the media device 100, while also reducing shaking of the media device 100. In some embodiments, the first linear direction D1 can be perpendicular to or inclined with respect to the second linear direction D2.
[0264] As mentioned above, it can be understood that the adapting electrical interface 214 is arranged on the movement path of the media device in the adapting space, and the media electrical interface 108 is arranged on a side facing the media electrical interface 108 when the media device moves in the adapting space.
[0265] As mentioned above, it can be understood that the docking direction of the media electrical interface 108 and the adapter electrical interface 214 is parallel to the movement direction of the media device when it moves in the adapter space.
[0266] As previously mentioned, it is understood that at least a portion of the decoupling module 230 is disposed in the first space communicating with the adaptation space and has at least a plurality of movable positions relative to the adaptation space. The decoupling module 230 can have a motion state in which it is at least partially moved into the adaptation space, thereby causing the decoupling module 230 to drive the media device 100 to move. The decoupling module 230 can have a motion state in which it is fully moved outside the adaptation space, thereby eliminating interference between the decoupling module 230 and the media device 100.
[0267] As previously mentioned, it is understood that at least a portion of the locking module 220 is disposed in a second space communicating with the adaptation space and has at least a plurality of movable positions relative to the adaptation space. The locking module 220 can have a motion state in which it is at least partially moved into the adaptation space, thereby interfering with the media device 100. The locking module 220 can also have a motion state in which it is fully moved outside the adaptation space, thereby releasing the interference between the locking module 220 and the media device 100.
[0268] As a second aspect of this application, refer to Figure 9A As shown, the present application also provides a control method, which specifically includes the following steps:
[0269] S101: receiving user operations or system instructions;
[0270] S102: According to user operations and / or system instructions, control the decoupling module to drive the media device to decouple, so that the media electrical interface is disconnected from the adapter electrical interface.
[0271] In some embodiments of the present application, the control method further includes: controlling the locking module to lock the media device in a coupled state according to user operations and / or system instructions, so that the media electrical interface remains connected to the adapter electrical interface.
[0272] In some embodiments of the present application, the control method further includes: controlling the locking module to lock or unlock the media device according to the detection result of the detection module.
[0273] In some embodiments of the present application, the control method further includes: controlling the decoupling module to drive the media device to move to release the coupling state of the media device according to the user's operation on the adaptation operation module; and controlling the locking module to unlock the coupling state of the media device according to the user's operation on the adaptation operation module.
[0274] In some embodiments of the present application, the media device includes: a media module, which is used to receive or output media information; the control method also includes: according to user operations and / or system instructions, controlling the adapter device to transmit electrical energy and / or signals to the media module through the electrical connection formed by the media electrical interface and the adapter electrical interface.
[0275] In some embodiments of the present application, the control method further includes: according to user operations and / or system instructions, controlling the adapter device to simultaneously drive multiple media devices to decouple so that the media electrical interface is disconnected from the adapter electrical interface.
[0276] In some embodiments of the present application, the control method further includes: according to user operations and / or system instructions, controlling the adapter device to simultaneously lock the coupling state of the media device so that the media electrical interface remains connected to the adapter electrical interface.
[0277] According to a third aspect of the present application, embodiments of the present application further provide a non-transitory computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements the steps of the above-described vehicle control method. This non-transitory computer-readable storage medium has all the beneficial effects of the above-described vehicle control method, and this application will not further elaborate on them.
[0278] According to the fourth aspect of the present application, an embodiment of the present application also provides a computer program product, including a computer program. When the computer program is executed by a processor, it implements the above-mentioned vehicle control method and has all the beneficial effects of the above-mentioned vehicle control method. This application will not go into details here.
[0279] According to a fifth aspect of the present application, an embodiment of the present application further provides an electronic device comprising: a memory and a processor, wherein the memory stores a computer program; the processor is configured to execute the computer program in the memory to implement the steps of the above-described vehicle control method. This electronic device has all the beneficial effects of the above-described vehicle control method, and this application will not further elaborate on them.
[0280] Please refer to Figure 9B , the electronic device 600 may include a processing device (e.g., a central processing unit, a graphics processing unit, etc.) 601, which can perform various appropriate actions and processes according to a program stored in a read-only memory (ROM) 602 or a program loaded from a storage device 608 into a random access memory (RAM) 603. Various programs and data required for the operation of the electronic device 600 are also stored in the RAM 603. The processing device 601, the ROM 602, and the RAM 603 are connected to each other via a bus 604. An input / output (I / O) interface 605 is also connected to the bus 604.
[0281] Typically, the following devices may be connected to the I / O interface 605: an input device 606 including, for example, a touch screen, a touchpad, a keyboard, a mouse, a camera, a microphone, an accelerometer, a gyroscope, etc.; an output device 607 including, for example, a liquid crystal display (LCD), a speaker, a vibrator, etc.; a storage device 608 including, for example, a magnetic tape, a hard disk, etc.; and a communication device 609. The communication device 609 may allow the electronic device 600 to communicate with other devices wirelessly or by wire to exchange data. Although Figure 9B The electronic device 600 is shown with various devices, but it should be understood that it is not required to implement or possess all of the devices shown. More or fewer devices may be implemented or possessed instead. Figure 9B Each block shown in the figure may represent one device, or may represent multiple devices as needed.
[0282] In particular, according to some embodiments of the present application, the processes described above with reference to the flowcharts can be implemented as computer software programs. For example, some embodiments of the present application include a computer program product comprising a computer program carried on a computer-readable medium, the computer program comprising program code for executing the method shown in the flowchart. In some such embodiments, the computer program can be downloaded and installed from a network via the communication device 609, or installed from the storage device 608, or installed from the ROM 602. When the computer program is executed by the processing device 601, the above-mentioned functions defined in the method of some embodiments of the present application are performed.
[0283] It should be noted that the computer-readable medium in some embodiments of the present application may be a computer-readable signal medium or a computer-readable storage medium or any combination thereof. The computer-readable storage medium may be, for example, an electrical, magnetic, optical, electromagnetic, infrared, or semiconductor system, device or component, or any combination thereof, and the present application does not specifically limit this. More specific examples of computer-readable storage media may include, but are not limited to, an electrical connection with one or more wires, a portable computer disk, a hard disk, a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or flash memory), an optical fiber, a portable compact disk read-only memory (CD-ROM), an optical storage device, a magnetic storage device, or any suitable combination thereof.
[0284] In some embodiments of the present application, a computer-readable storage medium may be any tangible medium containing or storing a program that can be used by or in conjunction with an instruction execution system, apparatus, or device. In some embodiments of the present application, a computer-readable signal medium may include a data signal propagated in baseband or as part of a carrier wave, which carries computer-readable program code. This propagated data signal may take a variety of forms, including but not limited to electromagnetic signals, optical signals, or any suitable combination of the above. A computer-readable signal medium may also be any computer-readable medium other than a computer-readable storage medium that can send, propagate, or transmit a program for use by or in conjunction with an instruction execution system, apparatus, or device. The program code contained on the computer-readable medium may be transmitted using any suitable medium, including but not limited to: wires, optical cables, RF (radio frequency), etc., or any suitable combination of the above.
[0285] In some embodiments, the client and server can communicate using any currently known or future developed network protocol, such as HTTP (Hypertext Transfer Protocol), and can be interconnected with any form or medium of digital data communication (e.g., a communication network). Examples of communication networks include local area networks (LANs), wide area networks (WANs), internets (e.g., the Internet), and peer-to-peer networks (e.g., adhoc peer-to-peer networks), as well as any currently known or future developed networks.
[0286] The computer-readable medium may be included in the electronic device or may exist independently and not incorporated into the electronic device. The computer-readable medium carries one or more programs. When executed by the electronic device, the one or more programs cause the electronic device to: in response to user operations and / or system instructions, control the decoupling module to drive the media device to a decoupled state, thereby disconnecting the media electrical interface from the adapter electrical interface.
[0287] Computer program code for performing the operations of some embodiments of the present application can be written in one or more programming languages or a combination thereof, including object-oriented programming languages such as Java, Smalltalk, C++, and conventional procedural programming languages such as "C" or similar programming languages. The program code can be executed entirely on the user's computer, partially on the user's computer, as a separate software package, partially on the user's computer and partially on a remote computer, or entirely on a remote computer or server. In cases involving a remote computer, the remote computer can be connected to the user's computer through any type of network, including a local area network (LAN) or a wide area network (WAN), or can be connected to an external computer (for example, through the Internet using an Internet service provider).
[0288] The flowcharts and block diagrams in the accompanying drawings illustrate the possible architectures, functions, and operations of the systems, methods, and computer program products according to various embodiments of the present application. In this regard, each box in the flowchart or block diagram may represent a module, program segment, or portion of code, which contains one or more executable instructions for implementing a specified logical function.
[0289] It should also be noted that, in some alternative implementations, the functions noted in the block may occur out of the order noted in the figures.
[0290] For example, two blocks shown in succession may actually be executed substantially in parallel, or they may sometimes be executed in the reverse order, depending on the functionality involved. It should also be noted that each block in the block diagrams and / or flow charts, and combinations of blocks in the block diagrams and / or flow charts, may be implemented using a dedicated hardware-based system that performs the specified functions or operations, or may be implemented using a combination of dedicated hardware and computer instructions.
[0291] The units described in some embodiments of the present application may be implemented by software or hardware.
[0292] The functions described above herein may be performed, at least in part, by one or more hardware logic components. For example, and without limitation, exemplary types of hardware logic components that may be used include: field programmable gate arrays (FPGAs), application specific integrated circuits (ASICs), application specific standard products (ASSPs), systems on chip (SOCs), complex programmable logic devices (CPLDs), and the like.
[0293] According to the sixth aspect of this application, referring to Figure 9CAs shown, the embodiment of the present application further provides a vehicle, including the above-mentioned media system, or for implementing the above-mentioned control method. The vehicle has all the beneficial effects of the above-mentioned media system or control method, and this application will not repeat them here.
[0294] The vehicle may be a plug-in hybrid vehicle or a new energy vehicle, etc., or a heat pump vehicle or a non-heat pump vehicle, and this application does not make any specific restrictions on this.
[0295] In the description of this application, the terms "first" and "second" are used for descriptive purposes only and should not be understood to indicate or imply relative importance or implicitly specify the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more features. In the description of this application, "plurality" means two or more, unless otherwise specifically defined.
[0296] In the above embodiments, the description of each embodiment has its own focus. For parts that are not described in detail in a certain embodiment, reference can be made to the relevant descriptions of other embodiments.
[0297] The embodiments, implementation methods and related technical features of the present application can be combined and replaced with each other without conflict.
[0298] The above are merely preferred embodiments of the present application and do not constitute any form of limitation to the present application. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present application without departing from the content of the technical solution of the present application are still within the scope of the technical solution of the present application.
Claims
1. A media system, characterized in that: The media system includes: Media device, used to implement media functions; an adapting device, configured to adapt the media device so that the media device has a coupled state and a decoupled state relative to the adapting device; Wherein, when the media device is in the coupled state, the media device is coupled to the adapter device; when the media device is in the uncoupled state, the media device is detached from the adapter device; At least one of the two media devices is communicatively connected and / or electrically connected to the other one, so that the two media devices can collaboratively realize media functions.
2. The media system according to claim 1, wherein: in, The adapting device includes: The adaptation space is used to accommodate at least a portion of the media device.
3. The media system according to claim 2, wherein: in, The media device includes: a media electrical interface, for enabling transmission of electrical energy and / or signals of the media device; Wherein, the adapting device comprises: An adapter electrical interface for realizing the transmission of electrical energy and / or signals of the adapter device; Wherein, the adapting electrical interface is arranged in the adapting space; Wherein, when the media device is in the coupled state, the media electrical interface and the adapter electrical interface form an electrical connection for transmitting electrical energy and / or signals; and / or When the media device is in the decoupled state, the media electrical interface and the adapter electrical interface are disconnected from the electrical connection for transmitting electrical energy and / or signals.
4. The media system according to claim 3, wherein: in, The adaptation electrical interface is arranged on a movement path of the media device in the adaptation space.
5. The media system according to claim 4, wherein: in, The media electrical interface is arranged on a side facing the media electrical interface when the media device moves in the adaptation space.
6. The media system according to claim 5, wherein: in, The docking direction of the media electrical interface and the adapting electrical interface is parallel to the movement direction of the media device when it moves in the adapting space.
7. The media system according to claim 2, wherein: in, The adapting device further comprises: A decoupling module, configured to drive the media device to a decoupling state; Wherein, at least a portion of the decoupling module is arranged in a first space connected to the adaptation space and has at least a plurality of movement positions relative to the adaptation space.
8. The media system according to claim 7, wherein: in, The decoupling module has a motion state of at least partially moving into the adaptation space so that the decoupling module drives the media device to move.
9. The media system according to claim 7, wherein: in, The decoupling module has a moving state in which it is completely moved to the outside of the adaptation space, so as to eliminate interference between the decoupling module and the media device.
10. The media system according to claim 2, wherein: in, The adapting device further comprises: a locking module, configured to lock the coupling state of the media device; Wherein, at least a portion of the locking module is arranged in a second space communicated with the adaptation space and has at least a plurality of movement positions relative to the adaptation space.
11. The media system according to claim 10, wherein: in, The locking module has a moving state of at least partially moving into the adaptation space, so that the locking module interferes with the media device.
12. The media system according to claim 10, wherein: in, The locking module has a moving state in which it is completely moved to the outside of the adaptation space, so that the locking module and the media device are free from interference.
13. The media system according to any one of claims 2 to 12, characterized in that: in, The media device further comprises: The cooperative electrical interface is used to realize the transmission of electrical energy and / or signals between the plurality of media devices.
14. The media system according to claim 13, wherein: in, The media device includes: a media electrical interface, for enabling transmission of electrical energy and / or signals of the media device; The adapting device comprises: An adapter electrical interface for realizing the transmission of electrical energy and / or signals of the adapter device; Wherein, the adapting electrical interface is arranged in the adapting space; When the media device is in the coupled state, the media electrical interface and the adapter electrical interface form an electrical connection for transmitting power and / or signals; and / or when the media device is in the decoupled state, the media electrical interface and the adapter electrical interface are disconnected from the electrical connection for transmitting power and / or signals; The cooperative electrical interface and the media electrical interface are configured as the same type of interfaces.
15. The media system according to any one of claims 2 to 12, characterized in that: in, The media device includes: The transfer space is used to accommodate at least a portion of another media device.
16. The media system according to claim 15, wherein: in, The adaptation space is larger than the transfer space, so that the adaptation space can accommodate a plurality of the media devices.
17. The media system according to claim 16, wherein: in, The media device includes: Media module, used to receive or output media information; The media module includes one or more of an audio module, a display module, and a sound pickup module.
18. The media system according to claim 17, wherein: in, The plurality of media devices coupled to one adapter device have different media modules.
19. The media system according to claim 18, wherein: in, The plurality of media devices coupled to one adapter device are respectively equipped with at least the sound module providing the first audio range and the sound module providing the second audio range.
20. The media system according to claim 19, wherein: in, The plurality of media devices coupled to one adapter device have different volumes.
21. The media system according to any one of claims 2 to 12, characterized in that: in, The adapting device is provided with a plurality of adapting spaces capable of respectively accommodating the corresponding media devices.
22. The media system according to any one of claims 1 to 12, characterized in that: in, The media system includes a plurality of the adapter devices and a plurality of the media devices coupled with the corresponding adapter devices.
23. The media system according to any one of claims 1 to 12, Its characteristics are: The media device further includes: Built-in power module for providing power to media devices; The power supply electrical interface is used to realize the transmission of electrical energy and / or signals between the media device and an external power source.
24. A vehicle, characterized in that: Comprising a media system as claimed in any one of claims 1 to 23.