Sound output device
The acoustic output device integrates bone and air conduction assemblies to enhance sound expression and user experience by enriching low-frequency sounds and reducing leakage, addressing the need for improved sound reproduction in audio devices.
Patent Information
- Application Number
- JP2023540162
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-04-09
- Filing Date
- 2021-05-21
- Publication Date
- 2025-12-17
- Estimated Expiration
- 2041-05-21
AI Technical Summary
Existing audio devices, such as earphones, require improved sound expression to balance comfort and sound reproduction capabilities.
An acoustic output device incorporating a bone conduction acoustic assembly and an air conduction acoustic assembly within a housing, where the housing contacts the user's skin to transmit bone conduction sound waves, with the air conduction sound waves generated by vibrations of the housing or bone conduction assembly.
Enhances audio quality by enriching low-frequency sounds and reducing audio leakage, improving the overall user experience.
Smart Images

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Abstract
Description
[Technical Field]
[0001] TECHNICAL FIELD This specification relates to the field of audio, and more particularly to audio output devices.
[0002] [Incorporated by reference] This specification claims priority to Chinese patent application No. 202110383452.2, filed on April 9, 2021, the entire contents of which are incorporated herein by reference. [Background technology]
[0003] With the continuous popularization of electronic devices, people's requirements for electronic devices are also becoming higher and higher. Take electronic devices such as earphones as an example, they not only need to be comfortable to wear, but also have good sound reproduction capabilities. Summary of the Invention [Problem to be solved by the invention]
[0004] Therefore, it is desirable to provide a sound output device that can improve sound expression. [Means for solving the problem]
[0005] An embodiment of the present disclosure provides an acoustic output device. The acoustic output device may include a bone conduction acoustic assembly that generates bone conduction sound waves, an air conduction acoustic assembly that generates air conduction sound waves, and a housing including an accommodating cavity that accommodates the bone conduction acoustic assembly and the air conduction acoustic assembly. At least a portion of the housing may be in contact with a user's skin and transmit the bone conduction sound waves through the action of the bone conduction acoustic assembly. The air conduction sound waves may be generated based on vibrations of at least one of the housing and the bone conduction acoustic assembly when the bone conduction sound waves are generated.
[0006] In some embodiments, the bone conduction acoustic assembly may include an energy conversion device. The energy conversion device may include a magnetic circuit assembly, a diaphragm, and a coil. The magnetic circuit assembly may generate a magnetic field. The diaphragm may be connected to the housing. The coil may be connected to the diaphragm. The coil may vibrate in response to a received audio signal under the influence of the magnetic field, driving the diaphragm to vibrate and generating the bone conduction acoustic waves.
[0007] In some embodiments, the air conduction acoustic assembly may include a vibrating membrane, the vibrating membrane may be connected to at least one of the bone conduction acoustic assembly and the housing, and vibration of at least one of the bone conduction acoustic assembly and the housing may drive the vibrating membrane to generate the air conduction acoustic waves.
[0008] In some embodiments, the vibration membrane may divide the accommodation cavity into a first cavity and a second cavity. A first portion of the housing may form the first cavity and be connected to the bone conduction acoustic assembly to transmit the bone conduction sound waves. A second portion of the housing may form the second cavity and include a sound emission hole communicating with the second cavity, and the air conduction sound waves may be transmitted to the outside of the housing through the sound emission hole.
[0009] In some embodiments, a frequency response curve of the bone conduction sound waves may have at least one resonant peak. When the vibrating membrane is connected to the bone conduction acoustic assembly and the housing, the at least one resonant peak may have a first resonant frequency. When the vibrating membrane is disconnected from at least one of the bone conduction acoustic assembly and the housing, the at least one resonant peak may have a second resonant frequency. A ratio of an absolute value of a difference between the first resonant frequency and the second resonant frequency to the first resonant frequency may be 50% or less.
[0010] In some embodiments, the first resonant frequency may be less than 500 Hz.
[0011] In some embodiments, the absolute value of the difference between the first resonant frequency and the second resonant frequency may be 0 to 50 Hz.
[0012] In some embodiments, the diaphragm may include an annular structure, and the diaphragm may have an inner wall surrounding the bone conduction acoustic assembly and an outer wall connected to the housing.
[0013] In some embodiments, the vibrating membrane may include a first connecting portion, a second connecting portion, and a corrugated portion. The first connecting portion may surround the bone conduction acoustic assembly and be connected to the bone conduction acoustic assembly. The second connecting portion may be connected to the housing. The corrugated portion may be connected to the first connecting portion and the second connecting portion.
[0014] In some embodiments, the first connecting portion, the second connecting portion, and the corrugation portion may be integrally molded.
[0015] In some embodiments, the corrugations may include at least one of raised regions and recessed regions.
[0016] In some embodiments, the recessed area may be recessed towards the second cavity.
[0017] In some embodiments, the recessed region may have a first depth and a first spacing distance between the first connection portion and the second connection portion, and a ratio of the first depth to the first spacing distance may be 0.2 to 1.4.
[0018] In some embodiments, the recessed region may have a half-depth width that is half the first depth, and a ratio of the half-depth width to the first spacing distance may be between 0.2 and 0.6.
[0019] In some embodiments, connection points between the corrugated portion and the first and second connection portions may have a first projection distance in a vibration direction of the bone conduction acoustic assembly, and a ratio of the first projection distance to the first gap distance may be 0 to 1.8.
[0020] In some embodiments, the corrugated portion may include a first transition portion, a second transition portion, a third transition portion, a fourth transition portion, and a fifth transition portion. One end of the first transition portion may be connected to the first connecting portion. One end of the second transition portion may be connected to the second connecting portion, one end of the third transition portion may be connected to the other end of the first transition portion, one end of the fourth transition portion may be connected to the other end of the second transition portion, and both ends of the fifth transition portion may be connected to the other ends of the third transition portion and the fourth transition portion, respectively. In a direction from a connection point between the first transition portion and the first connecting portion to an apex of the corrugated portion, an included angle between a tangent to the first transition portion on a side facing the recessed region and a vibration direction of the bone conduction acoustic assembly may gradually decrease. An included angle between a tangent to the third transition portion on a side facing the recessed region and a vibration direction of the bone conduction acoustic assembly may remain unchanged or gradually increase. In a direction from the connection point between the second transition portion and the second connecting portion to the vertex, the angle between a tangent to the second transition portion on the side facing the recessed region and the vibration direction of the bone conduction acoustic assembly may gradually decrease, and the angle between a tangent to the fourth transition portion on the side facing the recessed region and the vibration direction of the bone conduction acoustic assembly may remain unchanged or gradually increase.
[0021] In some embodiments, the first transition portion, the second transition portion, and the fifth transition portion may have a first projected length, a second projected length, and a third projected length, respectively, in a direction perpendicular to the vibration direction of the bone conduction acoustic assembly, and a ratio of the sum of the first projected length and the second projected length to the third projected length may be 0.4 to 2.5.
[0022] In some embodiments, the first transition portion may be arcuate, and the radius of the arc may be 0.2 mm or greater.
[0023] In some embodiments, the second transition portion may be arcuate, and the radius of the arc may be 0.3 mm or greater.
[0024] In some embodiments, the fifth transition portion may be arcuate, and the arc radius may be 0.2 mm or greater.
[0025] In some embodiments, the air conduction acoustic assembly may further include a reinforcing member, and the second connection portion may be connected to the housing by the reinforcing member.
[0026] In some embodiments, the reinforcing member may include a reinforcing ring, and the second connecting portion may be connected to an inner ring surface of the reinforcing ring and one end surface of the reinforcing ring.
[0027] In some embodiments, the reinforcing ring may be injection molded onto the second connecting portion.
[0028] In some embodiments, the reinforcing ring may have a ring width of 0.4 mm or greater.
[0029] In some embodiments, the stiffness of the stiffening ring may be greater than the stiffness of the diaphragm.
[0030] In some embodiments, the magnetic circuit assembly may include a magnetic flux conducting cover and a magnetic body disposed within the magnetic flux conducting cover, and the first connection portion may be injection molded on an outer peripheral surface of the magnetic flux conducting cover.
[0031] In some embodiments, the bone conduction acoustic assembly may further include a coil holder and an elastic member. The coil holder may be connected to the housing, and the coil may be connected to the coil holder and inserted into a magnetic gap between the magnetic body and the magnetic flux conducting cover. The elastic member may have a central region connected to the magnetic body and a peripheral region connected to the coil holder to suspend the magnetic circuit assembly within the housing.
[0032] In some embodiments, the coil holder and the elastic member may be located within the first cavity.
[0033] In some embodiments, the coil holder may include a main body, a first holder, and a second holder. The main body may be connected to a peripheral region of the elastic member. The first holder may have one end connected to the main body and the other end connected to the coil. The second holder may have one end connected to the main body and the other end crimping the reinforcing member to a support base of the housing.
[0034] In some embodiments, there may be a first distance from the connection point between the corrugated portion and the first connection portion to the bottom surface of the bone conduction acoustic assembly, and a second distance from the central region of the elastic member to the bottom surface of the bone conduction acoustic assembly, and the ratio of the first distance to the second distance may be 0.3 to 0.8.
[0035] In some embodiments, a third distance may be present from the center of gravity of the magnetic body to the bottom surface of the bone conduction acoustic assembly, and a ratio of the first distance to the third distance may be 0.7 to 2.
[0036] In some embodiments, the first distance may be greater than the third distance.
[0037] In some embodiments, at least a portion of the sound emission hole may be located between a connection point between the corrugated portion and the first connection portion and a bottom surface of the bone conduction acoustic assembly.
[0038] In some embodiments, the thickness of the diaphragm may be 0.2 mm or less.
[0039] Additional features of the present specification are set forth in part in the description that follows. Some of the additional features of the present specification will become apparent to those skilled in the art upon study of the following description and the corresponding drawings, or upon understanding the manufacture or operation of the examples. Features of the present specification can be realized or attained by practicing or using various aspects of the methods, tools and combinations that are described in the detailed examples that follow.
[0040] The present specification is further illustrated by exemplary embodiments, which are not limiting and will be described in detail with reference to the drawings, in which like numerals refer to like structures. [Brief explanation of the drawings]
[0041] [Figure 1] FIG. 1 is a schematic diagram of an exemplary scene of an audio output system according to some embodiments of the present disclosure. [Figure 2] FIG. 1 is a modular schematic diagram of an acoustic output device according to some embodiments of the present disclosure. [Figure 3] FIG. 1 is a schematic diagram illustrating the configuration of an earphone according to some embodiments of the present specification. [Figure 4] 1 is a cross-sectional schematic view of a core module according to some embodiments herein. [Figure 5] FIG. 5 is a schematic diagram illustrating a frequency response curve of the core module 400 in FIG. 4 according to some embodiments herein. [Figure 6] 5 is a cross-sectional schematic diagram of an exemplary structure of the housing 11 of the core-core module in FIG. 4 according to some embodiments of the present specification. [Figure 7] FIG. 5 is a cross-sectional schematic diagram of an exemplary structure of the energy conversion device 12 in FIG. 4 according to some embodiments herein. [Figure 8]5A-5C are cross-sectional schematic diagrams of various different exemplary structures of the diaphragm 13 in FIG. 4 according to some embodiments of the present disclosure. [Figure 9] 5A-5C are cross-sectional schematic diagrams of various different exemplary structures of the diaphragm 13 in FIG. 4 according to some embodiments of the present disclosure. [Figure 10] 10A and 10B are diagrams showing curves of elastic modulus changes with displacement of the vibration membrane 13 of different structures in FIG. 9 according to some embodiments of the present specification. [Figure 11] FIG. 5 is a cross-sectional schematic diagram of an exemplary structure of the diaphragm 13 in FIG. 4 according to some embodiments herein. [Figure 12] 1 is a cross-sectional schematic diagram of an exemplary structure of a diaphragm according to some embodiments of the present disclosure. [Figure 13] 1 is a cross-sectional schematic diagram of an exemplary structure of a diaphragm according to some embodiments of the present disclosure. [Figure 14] 1 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. [Figure 15] 1 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. [Figure 16] 1 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. [Figure 17] 1 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. [Figure 18] 1 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. [Figure 19] 1 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. [Figure 20] 1 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0042] In order to more clearly describe the technical means of the embodiments of the present specification, the drawings necessary for describing the embodiments will be briefly described below. Obviously, the drawings described below are merely some examples or embodiments of the present specification, and those skilled in the art can apply the present specification to other similar scenarios based on these drawings without any creative effort. Unless otherwise clear from the language environment or otherwise described, the same numbers in the drawings indicate the same structures or operations.
[0043] It should be understood that the terms "system," "device," "unit," and / or "module" used herein are ways of distinguishing between various levels of assemblies, elements, components, parts, or structures. However, other terms may be used in place of the above terms if they achieve the same purpose.
[0044] As used in this specification and claims, unless the context clearly dictates otherwise, terms such as "a," "one," "one kind," and / or "the" do not specifically refer to the singular but may include the plural. In general, the terms "comprise" and "containing" are intended to indicate only the inclusion of explicitly identified steps and elements, and these steps and elements are not an exclusive listing, and a method or apparatus may include other steps or elements.
[0045] An embodiment of the present disclosure provides an audio output device. The audio output device may include a bone conduction audio assembly, an air conduction audio assembly, and a housing. The bone conduction audio assembly generates bone conduction sound waves, and the air conduction audio assembly generates air conduction sound waves. The housing may include a cavity for accommodating the bone conduction audio assembly and the air conduction audio assembly. At least a portion of the housing may be in contact with a user's skin and transmit the bone conduction sound waves through the bone conduction audio assembly. The air conduction sound waves may be generated based on vibrations generated by at least one of the housing and the bone conduction audio assembly when the bone conduction sound waves are generated. In some embodiments, parameters such as the spatial position and / or frequency response of the bone conduction audio assembly and / or the air conduction audio assembly may be configured to improve audio quality, enrich low-frequency sounds, and reduce audio leakage from the audio output device, thereby improving the user's audio experience.
[0046] 1 is a schematic diagram of an exemplary scene of an audio output system according to some embodiments of the present disclosure. As shown in FIG. 1, the audio output system 100 may include a multimedia platform 110, a network 120, an audio output device 130, a terminal device 140, and a storage device 150.
[0047] The multimedia platform 110 can communicate with one or more assemblies of the audio output system 100 or with external data sources (e.g., a cloud data center). In some embodiments, the multimedia platform 110 can provide data or signals (e.g., music audio data) to the audio output devices 130 and / or the terminal devices 140. In some embodiments, the multimedia platform 110 can facilitate processing of the data / signals for use by the audio output devices 130 and / or the terminal devices 140. In some embodiments, the multimedia platform 110 can be implemented with a single server or a collection of servers. The collection of servers can be a centralized collection of servers connected to the network 120 via an access point or a distributed collection of servers connected to the network 120 via one or more access points. In some embodiments, the multimedia platform 110 can be locally connected to the network 120 or remotely connected to the network 120. For example, the multimedia platform 110 can access information and / or data stored in the audio output devices 130, the terminal devices 140, and / or the storage devices 150 via the network 120. Also for example, storage device 150 may be used as a back-end data memory for multimedia platform 110. In some embodiments, multimedia platform 110 may be implemented on a cloud platform. By way of example only, the cloud platform may include a private cloud, a public cloud, a hybrid cloud, a community cloud, a distributed cloud, an internal cloud, a multi-cloud, etc., or any combination thereof.
[0048] In some embodiments, multimedia platform 110 may include a processing unit 112. Processing unit 112 may perform the primary functions of multimedia platform 110. For example, processing unit 112 may retrieve audio data from storage device 150 and transmit the retrieved audio data to audio output device 130 and / or terminal device 140 to generate sound. Also, for example, processing unit 112 may process signals (e.g., generate control signals) for use by audio output device 130.
[0049] In some embodiments, processing unit 112 may include one or more processing units (single-core processing unit or multi-core processing unit). By way of example only, processing unit 112 may include a central processing unit (CPU), an application specific integrated circuit (ASIC), an application specific instruction set processor (ASIP), a graphics processing unit (GPU), a physical processing unit (PPU), a digital signal processor (DSP), a field programmable gate array (FPGA), a programmable logic device (PLD), a controller, a microcontroller unit, a reduced instruction set computer (RISC), a microprocessor, etc., or any combination thereof.
[0050] Network 120 may facilitate the exchange of information and / or data. In some embodiments, one or more assemblies of audio output system 100 (e.g., multimedia platform 110, audio output device 130, terminal device 140, storage device 150) may transmit information and / or data to other assemblies of audio output system 100 via network 120. In some embodiments, network 120 may be any type of wired or wireless network or combination thereof. By way of example only, network 120 may be a cable network, a wired network, an optical fiber network, a telecommunications network, an intranet, the Internet, a local area network (LAN), a wide area network (WAN), a wireless local area network (WLAN), a metropolitan area network (MAN), a public switched telephone network (PSTN), a Bluetooth network, a ZigBee network, a near field communication (NFC) network, a Global System for Mobile Communications (GSM) network, a code division multiple access (CDMA) network, a time division multiple access (TDMA) network, a general packet The network 120 may include a Global Positioning System (GPRS) network, an Enhanced Data Rate Global System for Mobile Communications (GSM) Evolution (GPRS) network, a Wideband Code Division Multiple Access (WCDMA) network, a High Speed Downlink Packet Access (HSDPA) network, a Long Term Evolution (LTE) network, a User Datagram Protocol (UDP) network, a Transmission Control Protocol / Internet Protocol (TCP / IP) network, a Short Message Service (SMS) network, a Wireless Application Protocol (WAP) network, an Ultra Wideband (UWB) network, infrared, etc., or any combination thereof. In some embodiments, the network 120 may include one or more network access points.For example, network 120 may include wired or wireless network access points, such as base stations and / or internet switching points, by which one or more assemblies of audio output system 100 can be connected to network 120 to exchange data and / or information.
[0051] The audio output device 130 can output audio to and interact with a user. In some embodiments, the audio output device 130 may provide audio content to the user, such as at least one song, poem, news broadcast, weather broadcast, audio lesson, etc. In some embodiments, the user may provide feedback to the audio output device 130 via keys, screen touch, physical movement, voice, gesture, thought (e.g., brainwaves), etc. In some embodiments, the audio output device 130 may be a wearable device. Note that, unless otherwise stated, the term "wearable device," as used herein, may include earphones and various other types of personal devices, such as head-worn, shoulder-worn, or body-worn devices. The wearable device may present audio content to the user. In some embodiments, the wearable device may include smart earphones, smart glasses, a head-mounted display (HMD), a smart bracelet, smart shoes, a smart helmet, a smart watch, smart clothing, a smart backpack, a smart component, a virtual reality helmet, virtual reality glasses, virtual reality goggles, augmented reality helmet, augmented reality glasses, augmented reality goggles, etc., or any combination thereof. By way of example only, the wearable device may be similar to Googleglass™, OculusRift™, Hololens™, GearVR™, etc.
[0052] The audio output device 130 may communicate with the terminal device 140 via the network 120. In some embodiments, various types of data and / or information may be received by the audio output device 130, such as movement parameters (e.g., geographic location, movement direction, movement speed, acceleration, etc.), audio parameters (audio volume, audio content, etc.), gestures (e.g., handshake, head shake, etc.), user thoughts, etc. In some embodiments, the audio output device 130 may further transmit the received data and / or information to the multimedia platform 110 or the terminal device 140.
[0053] In some embodiments, the terminal device 140 may have a corresponding application program installed thereon to communicate with the audio output device 130 and / or process data / signals used by the audio output device 130. The terminal device 140 may include a mobile device 140-1, a tablet computer 140-2, a laptop computer 140-3, a vehicle-embedded device 140-4, etc., or any combination thereof. In some embodiments, the mobile device 140-1 may include a smart home device, a smart mobile device, etc., or any combination thereof. In some embodiments, the smart home device may include a smart lighting device, a smart electrical appliance control device, a smart monitoring device, a smart TV, a smart camera, an intercom, etc., or any combination thereof. In some embodiments, the smart mobile device may include a smartphone, a personal digital assistant (PDA), a game device, a navigation device, a point-of-sale (POS) device, etc., or any combination thereof. In some embodiments, the vehicle-embedded device 140-4 may include an embedded computer, an in-car TV, an embedded tablet computer, etc. In some embodiments, terminal device 140 may include a signal transmitter and a signal receiver configured to communicate with a positioning device (not shown) to determine the location of the user and / or terminal device 140. In some embodiments, multimedia platform 110 or storage device 150 may be integrated into terminal device 140. In such a case, terminal device 140 may similarly implement the functionality of multimedia platform 110 described above.
[0054] Storage device 150 may store data and / or instructions. In some embodiments, storage device 150 may store data obtained from multimedia platform 110, audio output device 130, and / or terminal device 140. In some embodiments, storage device 150 may store data and / or instructions for various possible functions of multimedia platform 110, audio output device 130, and / or terminal device 140. In some embodiments, storage device 150 may include mass memory, removable memory, volatile read-write memory, read-only memory (ROM), etc., or any combination thereof. Exemplary mass memory may include magnetic disks, optical disks, solid-state drives, etc. Exemplary removable memory may include flash drives, floppy disks, optical disks, memory cards, compact disks, magnetic tapes, etc. Exemplary volatile read-write memory may include random access memory (RAM). Exemplary RAM may include dynamic RAM (DRAM), double data rate synchronous dynamic RAM (DDR-SDRAM), static RAM (SRAM), thyristor RAM (T-RAM), zero capacitor RAM (Z-RAM), etc. Exemplary ROM may include mask ROM (MROM), programmable ROM (PROM), erasable programmable ROM (EPROM), electrically erasable programmable ROM (EEPROM), compact disc ROM (CD-ROM), digital versatile disc ROM, etc. In some embodiments, storage device 150 may be implemented in a cloud platform. By way of example only, the cloud platform may include a private cloud, a public cloud, a hybrid cloud, a community cloud, a distributed cloud, an internal cloud, a multi-cloud, etc., or any combination thereof. In some embodiments, one or more assemblies of audio output system 100 may access data or instructions stored in storage device 150 via network 120.In some embodiments, storage device 150 may be directly connected to multimedia platform 110 as back-end memory.
[0055] In some embodiments, the multimedia platform 110, the terminal device 140, and / or the storage device 150 may be integrated into the audio output device 130. In some embodiments, with advances in technology and increased processing power of the audio output device 130, the audio output device 130 may perform all processing. For example, the audio output device 130 may be a smart earphone, an MP3 player, a hearing aid, etc., and may have highly integrated electronic components such as a central processing unit (CPU), a graphics processing unit (GPU), etc., and thus have high processing power.
[0056] FIG. 2 is a modular schematic diagram of an audio output device according to some embodiments of the present disclosure. As shown in FIG. 2 , in some embodiments, the audio output device 200 may include a signal processing module 210 and an output module 220. In some embodiments, the audio output device 200 may be an embodiment of the audio output device 130 in the audio output system 100. In some embodiments, the signal processing module 210 may receive an audio signal (e.g., an electrical signal) from a signal source and process the audio signal (e.g., the electrical signal). In some embodiments, the audio signal (e.g., the electrical signal) may represent audio content (e.g., music) output by the audio output device. In some embodiments, the audio signal (e.g., the electrical signal) may be an analog signal or a digital signal. In some embodiments, the audio signal (e.g., the electrical signal) may be obtained from a local storage device, a cloud storage device, another terminal device, or a multimedia platform.
[0057] The signal processing module 210 may process an audio signal (e.g., an electrical signal). For example, the signal processing module 210 may process the electrical signal by performing various signal processing operations (e.g., sampling, digitizing, compression, frequency allocation, frequency modulation, encoding, etc.), or a combination thereof. In some embodiments, the signal processing module 210 may further generate a control signal based on the processed audio signal (e.g., the electrical signal). In some embodiments, the control signal may control the output module 220 to output corresponding sound waves (i.e., audio content).
[0058] In some embodiments, the output module 220 may generate and output bone-conducted sound waves (also referred to as bone-conducted sound) and / or air-conducted sound waves (also referred to as air-conducted sound). The output module 220 may receive a control signal from the signal processing module 210 and generate corresponding bone-conducted sound waves and / or air-conducted sound waves based on the control signal. Note that, in this specification, bone-conducted sound waves may be sound waves conducted in the form of mechanical vibrations by a solid medium (e.g., a skeleton), and air-conducted sound waves may be sound waves conducted in the form of mechanical vibrations by air.
[0059] In some embodiments, the output module 220 may include a bone conduction acoustic assembly 221 and an air conduction acoustic assembly 222. In some embodiments, the bone conduction acoustic assembly 221 and the air conduction acoustic assembly 222 may be housed within the same housing, at least a portion of which contacts the user's skin to transmit bone conduction sound waves generated by the bone conduction acoustic assembly 221 to the user. In some embodiments, the bone conduction acoustic assembly 221 and / or the air conduction acoustic assembly 222 may be electrically coupled to the signal processing module 210. In some embodiments, the bone conduction acoustic assembly 221 may generate bone conduction sound waves within a particular frequency range (e.g., low frequency range, mid frequency range, high frequency range, mid-low frequency range, mid-high frequency range, etc.) based on a control signal generated by the signal processing module 210. In some embodiments, the air conduction acoustic assembly 222 may generate air conduction acoustic waves in the same or different frequency range as the bone conduction acoustic assembly 221 based on vibrations of the bone conduction acoustic assembly 221 and / or vibrations of a housing containing the bone conduction acoustic assembly 221 and the air conduction acoustic assembly 222.
[0060] In some embodiments, the bone conduction acoustic assembly 221 and the air conduction acoustic assembly 222 may be two independent functional devices or two independent assemblies included in a single device. As described herein, the independence of a first device and a second device indicates that the operation of the first / second device is not due to the operation of the second / first device, or in other words, the operation of the first / second device is not a result of the operation of the second / first device. Taking the bone conduction acoustic assembly 221 and the air conduction acoustic assembly 222 as examples, in some embodiments, the bone conduction acoustic assembly 221 and the air conduction acoustic assembly 222 may each receive a control signal from the signal processing module 210 and generate corresponding sound waves based on the control signal.
[0061] In some embodiments, the bone conduction acoustic assembly 221 and the air conduction acoustic assembly 222 may be two functional devices or assemblies that are functionally independent but dependent on each other in their operation. For example, the air conduction acoustic assembly may depend on the bone conduction acoustic assembly, and when the bone conduction acoustic assembly generates bone conduction sound waves, the vibration of the bone conduction acoustic assembly drives the vibration of the air conduction acoustic assembly to generate air conduction sound waves. Also, for example, the bone conduction acoustic assembly 221 may vibrate to generate bone conduction sound waves when it receives a control signal from the signal processing module 210. The vibration of the bone conduction acoustic assembly 221 may drive the vibration of the housing, and the vibration of the housing and / or the vibration of the bone conduction acoustic assembly 221 may drive the vibration of the air conduction acoustic assembly 222 to generate air conduction sound waves.
[0062] In some embodiments, different frequency ranges may be determined according to actual needs. For example, the low frequency range (also referred to as low frequency) may be a frequency range of 20 Hz to 150 Hz, the mid frequency range (also referred to as mid frequency) may be a frequency range of 150 Hz to 5 kHz, the high frequency range (also referred to as high frequency) may be a frequency range of 5 kHz to 20 kHz, the mid-low frequency range (also referred to as mid-low frequency) may be a frequency range of 150 Hz to 500 Hz, and the mid-high frequency range (also referred to as mid-high frequency) may be a frequency range of 500 Hz to 5 kHz. Furthermore, for example, the low frequency range may be a frequency range of 20 Hz to 300 Hz, the mid frequency range may be a frequency range of 300 Hz to 3 kHz, the high frequency range may be a frequency range of 3 kHz to 20 kHz, the mid-low frequency range may be a frequency range of 100 Hz to 1000 Hz, and the mid-high frequency range may be a frequency range of 1000 Hz to 10 kHz. Note that the above frequency ranges are merely for illustrative purposes and are not intended to be limiting. The definitions of the frequency ranges may vary depending on different application scenarios and classification standards. For example, in some other application scenarios, the low frequency range may be a frequency range of 20 Hz to 80 Hz, the mid frequency range may be a frequency range of 160 Hz to 1280 Hz, the high frequency range may be a frequency range of 2560 Hz to 20 kHz, the mid-low frequency range may be a frequency range of 80 Hz to 160 Hz, and the mid-high frequency range may be a frequency range of 1280 Hz to 2560 Hz. In some embodiments, different frequency ranges may or may not have overlapping frequency sections.
[0063] By way of example only, the air conduction acoustic assembly 222 can generate and output air conduction acoustic waves in the same or a different frequency range than the bone conduction acoustic waves generated by the bone conduction acoustic assembly 221. For example, in some embodiments, the bone conduction acoustic waves may include mid- to high-frequency bone conduction acoustic waves, and the air conduction acoustic waves may include mid- to low-frequency air conduction acoustic waves. By supplementing the mid- to high-frequency bone conduction acoustic waves with mid- to low-frequency air conduction acoustic waves, the total output of the acoustic output device can cover mid- to low-frequency and mid- to high-frequency frequencies. In such a case, the acoustic output device can provide better sound quality (especially at low frequencies) and avoid the bone conduction acoustic assembly operating at low frequencies and vibrating strongly.
[0064] Further, for example, the bone-conducted sound waves may include low- to mid-frequency bone-conducted sound waves, and the air-conducted sound waves may include high- to mid-frequency air-conducted sound waves. In such cases, since the user is sensitive to low- to mid-frequency bone-conducted sound waves and / or high- to mid-frequency air-conducted sound waves, the acoustic output device may provide a prompt or warning to the user via the bone-conducted sound assembly and / or the air-conducted sound assembly.
[0065] For example, air-conducted sound waves may include air-conducted sound waves in the mid-low frequency range, and bone-conducted sound waves may include bone-conducted sound waves in a wider frequency range than air-conducted sound waves, thereby improving the output of mid-low frequencies and improving sound quality.
[0066] It should be noted that the audio output device according to embodiments herein may include, but is not limited to, electronic devices such as earphones, loudspeakers, etc. In some embodiments, the audio output device may be part of an electronic device such as earphones, loudspeakers, etc.
[0067] Hereinafter, a sound output device according to an embodiment of the present specification will be described in detail with reference to the drawings, taking an earphone as an example.
[0068] FIG. 3 is a schematic diagram of an earphone according to some embodiments of the present disclosure. As shown in FIG. 3 , the earphone 300 may include two core modules 10, two ear-hook assemblies 20, and a back-hook assembly 30. Both ends of the back-hook assemblies 30 are connected to one end of the corresponding ear-hook assembly 20, and the other end of each ear-hook assembly 20, away from the back-hook assembly 30, is connected to the corresponding core module 10. In some embodiments, the back-hook assemblies 30 may be curved so as to be hung on the back of the user's head, and the ear-hook assemblies 20 may be curved so as to be hung between the user's ears and the head (e.g., above the ears) to facilitate the wearing of the earphone 300. In some embodiments, the core module 10 may include a bone-conduction acoustic assembly 221 and an air-conduction acoustic assembly 222 that convert electrical signals into mechanical vibrations so that the user can hear sounds through the earphone 300. When the earphone 300 is worn, the two core modules 10 may be located on the left and right sides of the user's head, respectively, and the two core modules 10 are pressed against the user's head through the cooperative action of the two ear-hook assemblies 20 and the back-hook assembly 30, so that the user can hear the sound output from the earphone 300 through bone conduction and / or air conduction.
[0069] In some embodiments, earphone 300 may have other wearing styles, such as ear-hook assembly 20 that covers or wraps around the user's ear, or back-hook assembly 30 that rides over the user's head, which are not listed here.
[0070] As shown in FIG. 3 , the earphone 300 may include a main control circuit board 40 and a battery 50. The main control circuit board 40 and the battery 50 may be installed in the housing of the same earhook assembly 20, or may be installed in the housing of two earhook assemblies 20, respectively. In some embodiments, the main control circuit board 40 and the battery 50 may be electrically connected to two core modules 10 via corresponding conductors. In some embodiments, the main control circuit board 40 may control the core modules 10 to convert electrical signals into mechanical vibrations, and the battery 50 may provide electrical energy to the earphone 300. Note that the earphone 300 described in the embodiments herein may further include a microphone, a microphone such as a pickup, Bluetooth, or NFC, which may be connected to the main control circuit board 40 and the battery 50 via corresponding conductors to realize corresponding functions. In some embodiments, two core modules 10 are installed, and both core modules 10 can convert electrical signals into core vibrations, thereby enabling the earphone 300 to achieve a stereo sound effect and improve the user experience. In some other application scenarios where the requirement for stereo is not particularly high, such as assisting hearing impaired patients or providing dialogue to a host during a live broadcast, the earphone 300 may be installed with only one core module 10.
[0071] Based on the above related description, the core module 10 can convert electrical signals into mechanical vibrations when energized, so that the user can hear sounds through the earphone 300. In some embodiments, the mechanical vibrations may act directly on the user's auditory nerves, primarily via the user's bones and tissues, based on the bone conduction principle, or may act primarily via the air, primarily via the user's eardrum, and then on the user's auditory nerves, based on the air conduction principle. With respect to sounds heard by the user, the former may be abbreviated as "bone conduction sound," and the latter may be abbreviated as "air conduction sound." Based on this, the core module 10 can generate not only bone conduction sound, but also air conduction sound, and can even generate bone conduction sound and air conduction sound simultaneously.
[0072] It should be noted that the above description of the earphone 300 is for illustrative purposes only and is not intended to limit the scope of the present application. Those skilled in the art may make various changes and modifications based on the description of the present application. These changes and modifications do not depart from the scope of the present application. In some embodiments, the earphone 300 may include one or more other assemblies. In some embodiments, one or more assemblies of the earphone 300 may be omitted. For example, the earphone 300 may include one core module 10 and / or one ear-hook assembly 20. Also, for example, the earphone 300 may not include the back-hook assembly 30.
[0073] 4 is a cross-sectional schematic diagram of a core module according to some embodiments of the present disclosure. In some embodiments, the core module 10 of the earphone 300 in FIG. 3 may have the same or similar structure as the core module 400 in FIG. 4. In some embodiments, the core module 400 may be referred to as an output module. In some embodiments, the core module 400 may include a bone conduction acoustic assembly and / or an air conduction acoustic assembly.
[0074] As shown in FIG. 4 , the core module 400 may include a housing 11 and an energy conversion device 12. In some embodiments, the energy conversion device 12 may be a bone conduction acoustic assembly (e.g., bone conduction acoustic assembly 221 in FIG. 2 ) or a part of a bone conduction acoustic assembly. In some embodiments, the housing 11 may be connected to one end of an ear hook assembly and contact the user's skin to transmit generated mechanical vibrations to the user. In some embodiments, an accommodating cavity (not shown) may be formed inside the housing 11, and the energy conversion device 12 may be installed in the accommodating cavity and connected to the housing 11. In some embodiments, the energy conversion device 12 converts an electrical signal into mechanical vibrations when energized, so that a skin contact area of the housing 11 (e.g., the bottom plate 1161 shown in FIG. 6 ) can generate bone conduction sound through the action of the energy conversion device 12. In this way, when a user wears the earphone 300, the energy conversion device 12 converts the electrical signal into core vibration, thereby driving the skin contact area to generate mechanical vibration, which then acts on the user's auditory nerve via the user's bones and tissues, allowing the user to hear bone-conducted sound through the core module 400. Exemplary signal conversion methods may include, but are not limited to, electromagnetic (e.g., moving coil, moving iron, magnetostrictive), piezoelectric, electrostatic, etc.
[0075] In some embodiments, the core module 400 may include a vibrating membrane 13 connected between the energy conversion device 12 and the housing 11. The vibrating membrane 13 may be an air conduction acoustic assembly (e.g., the air conduction acoustic assembly 222 in FIG. 2 ) or part of an air conduction acoustic assembly. In some embodiments, the vibrating membrane 13 may be physically connected to at least one of the bone conduction acoustic assembly 221 and the housing 11. Vibration of at least one of the bone conduction acoustic assembly 221 and the housing 11 can drive the vibrating membrane 13 to generate air-conducted acoustic waves. For example, the vibrating membrane 13 can be installed in a ring-shaped structure (e.g., the ring-shaped structure shown in FIG. 15 ), the inside of which can surround the energy conversion device 12, and the outside of which is connected to the housing 11.
[0076] In some embodiments, the diaphragm 13 may divide the interior space (i.e., the receiving cavity) of the housing 11 into a first cavity 111 (also referred to as a front cavity) close to the skin contact area and a second cavity 112A (also referred to as a rear cavity) away from the skin contact area. The first portion of the housing 11 forms the first cavity 111 and is connected to the energy conversion device 12 to transmit bone-conducted sound waves. The second portion of the housing 11 forms the second cavity 112A. In other words, when the user is wearing the earphone 300, the first cavity 111 may be closer to the user than the second cavity 112A. In some embodiments, the housing 11 may be provided with a sound output hole 113 communicating with the second cavity 112A, and the vibrating membrane 13 can generate air-conducted sound during the relative movement of the energy conversion device 12 and the housing 11, and transmit the air-conducted sound to the human ear through the sound output hole 113. In other words, the vibrating membrane 13 can be connected to the housing 11 and / or the energy conversion device 12, and when the energy conversion device 12 and the housing 11 move relative to each other, the vibrating membrane 13 can be driven to vibrate together, thereby generating air-conducted sound and outputting it through the sound output hole 113. In this way, the sound generated in the second cavity 112A can be transmitted through the sound output hole 113 and act on the user's eardrum through the air, so that the user can hear the air-conducted sound through the core module 400.
[0077] In some embodiments, the core module 400 may include one or more (e.g., two or more) vibrating membranes 13. By way of example only, in some embodiments, the core module 400 may include a first vibrating membrane and a second vibrating membrane. In some embodiments, the first vibrating membrane and the second vibrating membrane may be disposed substantially parallel to each other or may be disposed at an angle relative to each other. In some embodiments, the first vibrating membrane and the second vibrating membrane may be located between a bottom surface (e.g., a surface of the bone conduction acoustic assembly 221 in FIG. 2 ) of the bone conduction acoustic assembly 221 (e.g., a surface of the bone conduction acoustic assembly 221 away from the skin contact area) and a bottom surface (e.g., a bottom plate 1151 shown in FIG. 6 ) of the housing 11. The first vibrating membrane may be connected to the bone conduction acoustic assembly 221, and the second vibrating membrane may be connected to the housing 11, such that the first vibrating membrane receives vibrations from the bone conduction acoustic assembly 221 and the second vibrating membrane receives vibrations from the housing 11. For a detailed description of the diaphragm, reference can be made to the descriptions in other parts of this application, for example, the detailed description in FIGS.
[0078] In some embodiments, an air conduction acoustic assembly (e.g., air conduction acoustic assembly 222 in FIG. 2 ) may include an independent driving source, and the vibrating membrane 13 may be part of the air conduction acoustic assembly and connected to the driving source of the air conduction acoustic assembly to vibrate and generate air-conducted sound. For example, the air conduction acoustic assembly may include an independent driving source independent of the bone conduction acoustic assembly, and the vibrating membrane 13 may be connected to the driving source and driven to vibrate by the driving source to generate air-conducted sound. By way of example only, the driving source may include an energy converter. The energy converter may be similar to the energy converter 12. Note that to ensure synchronization between the air-conducted sound and the bone-conducted sound generated by the core module 400, the vibrations generated by the energy converter 12 and the vibrations generated by the driving source of the air-conducted acoustic assembly may have the same or similar phase. For example, the phase difference between the vibrations generated by the energy converter 12 and the vibrations generated by the driving source of the air-conducted acoustic assembly may be less than a threshold value, such as π, 2π / 3, or π / 2.
[0079] In some embodiments, as shown in FIG. 4 , when the energy conversion device 12 moves the skin contact area toward the user's face, bone conduction sound can be simply considered to be enhanced. At the same time, the portion of the housing 11 facing the skin contact area moves toward the user's face, and the energy conversion device 12 and the diaphragm 13 connected thereto move away from the user's face due to the relationship between acting force and reaction force. This pushes the air in the second cavity 112A, corresponding to an increase in air pressure. As a result, the sound transmitted from the sound output hole 113 is enhanced, and air conduction sound can be simply considered to be enhanced. Accordingly, when bone conduction sound is attenuated, air conduction sound is also attenuated. Based on this, the bone conduction sound and air conduction sound generated by the core module 400 in this specification have the characteristic of being in phase or similar.
[0080] In some embodiments, the first cavity 111 and the second cavity 112A are substantially separated by structural members such as the diaphragm 13 and the energy conversion device 12, so that the air pressure change law in the first cavity 111 is exactly the opposite of the air pressure change law in the second cavity 112A. Based on this, the housing 11 may further include a decompression hole 114 communicating with the first cavity 111, allowing the first cavity 111 to communicate with the external environment, i.e., allowing air to freely enter and exit the first cavity 111. In this way, the change in air pressure in the second cavity 112A is minimized by the first cavity 111, thereby effectively improving the acoustic expressiveness of the air-conducted sound generated by the core module 400. In some embodiments, the decompression hole 114 and the sound emission hole 113 are not adjacent to each other to minimize the occurrence of a sound deadening phenomenon due to the anti-phase between the decompression hole 114 and the sound emission hole 113. For example, the decompression hole 114 may be located as far away as possible from the sound emission hole 113. Illustratively, the actual area of the outlet end of the sound emission hole 113 may be 8 mm2 or more so that the user can hear more air-conducted sound. The actual area of the inlet end of the sound emission hole 113 may be equal to or greater than the actual area of its outlet end.
[0081] In some embodiments, since a structural member such as the housing 11 has a constant thickness, the through-holes formed in the housing 11, such as the sound emission holes 113 and the decompression holes 114, have a constant depth, and furthermore, with respect to the accommodating cavity, the through-holes, such as the sound emission holes 113 and the decompression holes 114, have an inlet end close to the accommodating cavity and an outlet end remote from the accommodating cavity. Furthermore, the actual area of the outlet end described herein can be defined as the area of the end face on which the outlet end is located.
[0082] In this manner, the air-conducted sound and the bone-conducted sound generated by the core module 400 originate from the same vibration source (i.e., the energy conversion device 12) and are in phase with or similar to each other. This allows the user to hear stronger sounds from the audio output device (e.g., earphones including the core module 400), reduces the power consumption of the audio output device (e.g., earphones including the core module 400), and extends the battery life of the audio output device (e.g., earphones including the core module 400). Furthermore, by rationally designing the structure of the core module 400, the air-conducted sound and the bone-conducted sound can cooperate with each other in the frequency range of the frequency response curve, so that the earphone 300 can have excellent audio expression in a specific frequency range. For example, by compensating for the low-frequency range of the bone-conducted sound with the air-conducted sound, the earphone 300 can have excellent audio expression in the low frequencies. Furthermore, by enhancing the mid- and mid-high-frequency ranges of the bone-conducted sound with the air-conducted sound, the sound quality of the earphone 300 can be improved.
[0083] In some embodiments, the frequency response curve of bone conduction sound has at least one resonance peak. When the vibrating membrane 13 is connected to the energy conversion device 12 and the housing 11, the at least one resonance peak has a first resonance frequency f1, and when the vibrating membrane 13 is disconnected from at least one of the energy conversion device 12 and the housing 11, the at least one resonance peak has a second resonance frequency f2. A ratio of an absolute value of a difference between the first resonance frequency f1 and the second resonance frequency f2 to the first resonance frequency f1 may be equal to or less than a threshold. For example, the ratio may be equal to or less than 50% (i.e., |f1-f2| / f1≦50%). Alternatively, the ratio may be equal to or less than 40%. Alternatively, the ratio may be equal to or less than 30%. Alternatively, the ratio may be equal to or less than 20%. In some embodiments, a difference between a peak resonance intensity corresponding to f1 and a peak resonance intensity corresponding to f2 may be equal to or less than 5 dB. In some embodiments, the difference between the peak resonance intensity corresponding to f1 and the peak resonance intensity corresponding to f2 may be 3 dB or less. In some embodiments, the difference between the peak resonance intensity corresponding to f1 and the peak resonance intensity corresponding to f2 may be 1 dB or less. In some embodiments, |f1-f2| / f1 can be used to evaluate the influence of the diaphragm 13 on the driving of the skin contact area by the energy conversion device 12. The smaller this ratio, the smaller the influence. In this way, by introducing the diaphragm 13 while minimizing the influence on the original resonance system of the core module 400, the core module 400 can synchronously output bone conduction sound and air conduction sound with the same or similar phase, further improving the acoustic expressiveness of the core module 400. The sound output device according to this embodiment uses a method in which the energy conversion device 12 drives the vibration of the diaphragm 13 to generate air conduction sound, thereby eliminating the need to drive the diaphragm 13 separately. Therefore, it is more power-efficient than conventional sound output devices that generate air conduction sound by driving a diaphragm separately.
[0084] For example, the amount of movement of the resonance peak in the low frequency band or the mid-low frequency band (e.g., f1≦500 Hz) can satisfy certain conditions so that the low frequency and / or mid-low frequency of the bone-conducted sound is least affected by the vibrating membrane 13. The amount of movement of the resonance peak may be the absolute value of the difference between the first resonance frequency f1 and the second resonance frequency f2 of the at least one resonance peak (i.e., |f1−f2|). In some embodiments, the amount of movement of the resonance peak in the low frequency band or the mid-low frequency band (i.e., f1≦500 Hz) may be 50 Hz or less (i.e., |f1−f2|≦50 Hz), in some embodiments, the amount of movement of the resonance peak in the low frequency band or the mid-low frequency band (i.e., f1≦500 Hz) may be 30 Hz or less (i.e., |f1−f2|≦30 Hz), and in some embodiments, the amount of movement of the resonance peak in the low frequency band or the mid-low frequency band (i.e., f1≦500 Hz) may be 100 Hz or less (i.e., |f1−f2|≦100 Hz) so that the vibrating membrane 13 has as little effect as possible on the effect of driving the skin contact area by the energy conversion device 12, i.e., has as little effect as possible on bone conduction sound. In some embodiments, the movement amount may be 5 Hz or more (i.e., |f1-f2|≧5 Hz) so that the vibrating membrane 13 has a certain structural strength and elasticity, reduces fatigue deformation during use, and further extends the service life of the vibrating membrane 13. In some embodiments, the movement amount may be 5 Hz or more and 50 Hz or less, thereby ensuring that the vibrating membrane 13 does not affect the driving of the vibration of the skin contact area by the energy conversion device 12 and also ensuring that the vibrating membrane 13 has a certain structural strength and elasticity.
[0085] FIG. 5 is a schematic diagram illustrating a frequency response curve of the core module 400 in FIG. 4 according to some embodiments of the present disclosure. As shown in FIG. 5, the skin contact area can generate bone-conducted sound under the action of the energy conversion device 12, and the bone-conducted sound has a corresponding frequency response curve. The frequency response curve can have at least one resonance peak. As shown in FIG. 5, the skin contact area has a first frequency response curve (e.g., k1+k2 shown by the dashed line in FIG. 5) when the vibrating membrane 13 is connected to the energy conversion device 12 and the housing 11, and a second frequency response curve (e.g., k1 shown by the solid line in FIG. 5) when the vibrating membrane 13 is disconnected from either the energy conversion device 12 or the housing 11. Note that for the frequency response curves shown in FIG. 5 of the present disclosure, the horizontal axis can represent frequency in Hz, and the vertical axis can represent intensity in dB. The resonance frequency (i.e., the second resonance frequency) corresponding to the resonance peak A of the second frequency response curve k1 is 95 Hz. The resonant frequency corresponding to the resonant peak B of the first frequency response curve k1+k2 (i.e., the first resonant frequency) is 112 Hz. The shift of the resonant peak frequency (i.e., |f1■f2|) is about 17 Hz. In some embodiments, the resonant peak frequency can be allowed to have a predetermined shift to ensure that the diaphragm 13 has a certain structural strength and elasticity. By way of example only, the shift may be in the range of 10 Hz to 50 Hz.
[0086] 6 is a cross-sectional schematic diagram of an exemplary structure of the housing 11 of the core module in FIG. 4 according to some embodiments herein. As shown in FIG. 4 , in some embodiments, the housing 11 may include a rear housing 115 (i.e., a second portion of the housing 11 in FIG. 4 ) and a front housing 116 (i.e., a first portion of the housing 11 in FIG. 4 ) connected to the rear housing 115. In some embodiments, an accommodating cavity may be formed by an engagement between the rear housing 115 and the front housing 116 to accommodate structural members such as the energy conversion device 12, the vibration membrane 13, etc. In some embodiments, at least a portion of the front housing 116 may contact a user's skin to form a skin contact area of the housing 11; that is, when the housing 11 is in contact with the user's skin, the front housing 116 is closer to the user than the rear housing 115. Based on this, the energy conversion device 12 may be connected to the front housing 116 to drive the skin contact area of the housing 11 to generate mechanical vibrations accordingly. In some embodiments, the housing 11 may include sound emission holes 113 and decompression holes 114, and the sound emission holes 113 may be located in the rear housing 115, and the decompression holes 114 may be located in the front housing 116. In some embodiments, the vibration membrane 13 may be connected to the rear housing 115, the front housing 116, or a joint between the rear housing 115 and the front housing 116.
[0087] In some embodiments, the rear housing 115 may include a bottom plate 1151 and a side plate 1152. One end of the side plate 1152 remote from the bottom plate 1151 is connected to the front housing 116. The sound emission holes 113 may be provided in the side plate 1152. In some embodiments, the bottom plate 1151 and the side plate 1152 are integrally molded. In some embodiments, the bottom plate 1151 and the side plate 1152 may be connected by a physical method such as welding, riveting, or adhesive bonding.
[0088] In some embodiments, a support base 1153 may be further installed on the inner surface of the housing 11. For example, the support base 1153 may be installed at one end of the side plate 1152 remote from the bottom plate 1151. As shown in FIG. 6 , taking the bottom plate 1151 as a reference, the support base 1153 may be slightly lower than the end surface of the side plate 1152 remote from the bottom plate 1151. As shown in FIG. 4 , the sound emitting hole 113 may be located between the support base 1153 and the bottom plate 1151 in the vibration direction of the energy conversion device 12. Based on this, the cross-sectional area of the sound emitting hole 113 may gradually decrease from the inlet end of the sound emitting hole 113 to its outlet end (i.e., toward the sound conducting passage 141, which will be referred to later in this specification) so that the support base 1153 has a sufficient thickness in the vibration direction of the energy conversion device 12 and further improves the structural strength of the support base 1153. The outlet end of the sound emission hole 113 may be the inlet end of the sound conducting passage 141 connected thereto. In this way, when the rear housing 115 is engaged with the front housing 116, the front housing 116 can press and fix the coil holder 121, which will be described later, to the support base 1153. In some embodiments, the diaphragm 13 may be connected to the housing 11 by being fixed to the support base 1153 or by being pressed to the support base 1153 by the coil holder 121.
[0089] In some embodiments, the front housing 116 may include a bottom plate 1161 and a side plate 1162, and one end of the side plate 1162 remote from the bottom plate 1161 is connected to the rear housing 115. The area where the bottom plate 1161 is located can be simply considered the skin contact area described herein. Accordingly, the decompression holes 114 may be located in the side plate 1162. In some embodiments, the bottom plate 1161 and the side plate 1162 are integrally molded. In some embodiments, the bottom plate 1161 and the side plate 1162 may be connected by a physical method such as welding, riveting, or adhesive.
[0090] FIG. 7 is a cross-sectional schematic diagram of an exemplary structure of the energy conversion device 12 in FIG. 4 according to some embodiments of the present disclosure. As shown in FIG. 7 , in some embodiments, the energy conversion device 12 may include a coil holder 121, a magnetic circuit assembly 122, a coil 123, and an elastic member 124. In some embodiments, the elastic member 124 may include a spring sheet, an elastic structure (e.g., a sheet-like structure), or the like. In some embodiments, the coil holder 121 and the elastic member 124 are disposed in the first cavity 111. A central region of the elastic member 124 may be physically connected to the magnetic circuit assembly 122, and a peripheral region of the elastic member 124 may be connected to the housing 11 by the coil holder 121 to suspend the magnetic circuit assembly 122 within the housing 11. In some embodiments, the coil 123 may be connected to the coil holder 121 and inserted into a magnetic gap of the magnetic circuit assembly 122. In some embodiments, the coil holder 121 may include a main body 1211, a first holder 1212, and a second holder 1213. By way of example only, the main body 1211 may be annular, and the first holder 1212 and / or the second holder 1213 may be cylindrical. The main body 1211 may be connected to a peripheral region of the elastic member 124, and the two may form an integral structural member by a metal insert injection molding process. The main body 1211 may be connected to the bottom plate 1161 by one or a combination of bonding, fastening, and the like. In some embodiments, one end of the first holder 1212 may be connected to the main body 1211, and the coil 123 may be connected to the other end of the first holder 1212 remote from the main body 1211 so as to be inserted into the magnetic circuit assembly 122. In this case, a portion of the diaphragm 13 may be connected to the magnetic circuit assembly 122, and another portion may be connected to at least one of the rear housing 115 and the front housing .
[0091] In some embodiments, one end of the second holder 1213 may be connected to the main body 1211. The second holder 1213 surrounds the first holder 1212 and extends laterally from the main body 1211 in the same direction as the first holder 1212. In some embodiments, the second holder 1213 and the main body 1211 may both be connected to the front housing 116 to improve the connection strength between the coil holder 121 and the housing 116. For example, the main body 1211 is connected to the bottom plate 1161, and the second holder 1213 is connected to the side plate 1162. Accordingly, as shown in FIG. 4 , a relief hole 1214 may be provided in the second holder 1213. The relief hole 1214 may communicate with the decompression hole 114 to prevent the second holder 1213 from blocking communication between the decompression hole 114 and the first cavity 111. At this time, a portion of the vibrating membrane 13 may be connected to the magnetic circuit assembly 122, and another portion may be connected to the other end of the second holder 1213 remote from the main body 1211, and then connected to the housing 11. Based on this, after the core module 10 is assembled, the other end of the second holder 1213 remote from the main body 1211 can press the other portion of the vibrating membrane 13 onto the support base 1153.
[0092] In some embodiments, the first holder 1212 and / or the second holder 1213 may be a complete structure that is continuous around the circumference of the coil holder 121 to improve the structural strength of the coil holder 121, or may be a partially discontinuous structure to avoid other structural members.
[0093] In some embodiments, the energy conversion device 12 may include one or more diaphragms, at least one of which may be physically connected to the housing 11, and at least a portion of the housing 11 (e.g., a skin contact area) may contact a user's skin (e.g., the skin on the user's head) to transmit bone-conducted sound waves to the user's cochlea when the user wears the acoustic output device. In some embodiments, the energy conversion device 12 may include a vibration transmission sheet, which is physically connected to the at least one diaphragm and the housing 11 to transmit vibrations of the at least one diaphragm to the housing. In some embodiments, at least one of the one or more diaphragms may be an outer wall of the housing 11. In some embodiments, the coil 123 may be mechanically connected to the diaphragm. In some embodiments, the coil 123 may be electrically connected to the signal processing module 210. When a current (representing a control signal) is introduced into the coil 123, the coil 123 can vibrate in a magnetic field (e.g., a magnetic field generated by the magnetic circuit assembly 122) and drive one or more diaphragms to vibrate. The vibration of the one or more diaphragms 512 can be transmitted by the housing 11 to the user's skeleton to generate bone-conducted sound waves. In some embodiments, the vibration of the one or more diaphragms can cause vibration of the housing 11 and / or the magnetic circuit assembly 122. The vibration of the housing 11 and / or the magnetic circuit assembly 122 can cause vibration of the air within the housing 11.
[0094] In some embodiments, the magnetic circuit assembly 122 may include one or more magnetic flux conducting elements (e.g., a magnetic flux conducting cover 1221) and one or more magnetic bodies (e.g., a magnetic body 1222), which cooperate to form a magnetic field. In some embodiments, the magnetic flux conducting cover 1221 may include a bottom plate 1223 and a side plate 1224. In some embodiments, the bottom plate 1223 and the side plate 1224 are integrally molded. In some embodiments, the bottom plate 1223 and the side plate 1224 may be connected by a physical method such as welding, riveting, or adhesive bonding. In some embodiments, the magnetic body 1222 is disposed within the side plate 1224 and fixed to the bottom plate 1223, a side of the magnetic body 1222 away from the bottom plate 1223 is connected to a middle region of the elastic member 124 by a connecting member 1225, and the coil 123 may be inserted into a magnetic gap between the magnetic body 1222 and the magnetic flux conducting cover 1221. In some embodiments, a portion of the diaphragm 13 may be connected to the magnetic flux conducting cover 1221. The magnetic body 1222 may be a magnetic body group formed of a plurality of sub-magnetic bodies. In some embodiments, a magnetic flux conducting plate (not shown) may be further provided on the side of the magnetic body 1222 away from the bottom plate 1223.
[0095] FIG. 8 is a cross-sectional schematic diagram of various different exemplary structures of the vibrating membrane 13 in FIG. 4 according to some embodiments herein. As shown in FIGS. 8, 7, and 4, in some embodiments, the vibrating membrane 13 may include a first connecting portion 132, a corrugated portion 133, and a second connecting portion 134. In some embodiments, the first connecting portion 132, the corrugated portion 133, and the second connecting portion 134 may be integrally formed. In some embodiments, the first connecting portion 132 surrounds the energy conversion device 12 and is connected to the energy conversion device 12, and the second connecting portion 134 is connected to the housing 11. The corrugated portion 133 is located between the first connecting portion 132 and the second connecting portion 134 and is connected to the first connecting portion 132 and the second connecting portion 134.
[0096] For example, the first connecting portion 132 may be cylindrical and connected to the magnetic flux conducting cover 1221, and the second connecting portion 134 may be annular and connected to the other end of the second holder 1213 remote from the main body 1211, and further connected to the housing 11. In some embodiments, as shown in FIG. 7 , the connection point between the corrugated portion 133 and the first connecting portion 132 may be lower than the end surface of the side plate 1224 remote from the bottom plate 1223.
[0097] In some embodiments, the first connecting portion 132 may include a bottom plate and a side wall, and the bottom plate of the first connecting portion 132 may cover the bottom of the energy conversion device 12, and the side wall of the first connecting portion 132 may cover the side surface of the energy conversion device 12 or at least a part of the side surface of the energy conversion device 12. In some embodiments, a hole or a stripe gap may be formed in the bottom plate of the first connecting portion 132.
[0098] In some embodiments, the corrugated portion 133 may have a recessed region 135 formed between the first connecting portion 132 and the second connecting portion 134 to facilitate relative movement between the first connecting portion 132 and the second connecting portion 134 in the vibration direction of the energy conversion device 12 and further reduce the impact of the vibrating membrane 13 on the energy conversion device 12. In some embodiments, the recessed region 135 may be recessed toward the second cavity 112A, as shown in FIG. 4 . In some embodiments, the recessed region 135 may be recessed toward the first cavity 111, i.e., in the opposite direction to the recessed direction of the recessed region 135 shown in FIG. 4 . In this case, the recessed region may be referred to as a protruding region.
[0099] As shown in FIG. 8, (a) to (d) in FIG. 8 show various structural variations of the vibrating membrane 13, with the main difference being the specific structure of the corrugated portion 133. As shown in (a) in FIG. 8, the corrugated portion 133 may be arranged to have a symmetrical structure, and the connection points at both ends with the first connecting portion 132 and the second connecting portion 134 may be flush. For example, projections of the two connection points in the vibration direction of the energy conversion device 12 overlap. As shown in (b) in FIG. 8, the corrugated portion 133 may be arranged to have a mostly symmetrical structure, and the connection points at both ends with the first connecting portion 132 and the second connecting portion 134 are not flush. For example, projections of the two connection points in the vibration direction of the energy conversion device 12 are offset from each other. As shown in (c) in FIG. 8, the corrugated portion 133 may be arranged to have an asymmetrical structure, and the connection points at both ends with the first connecting portion 132 and the second connecting portion 134 are flush. As shown in (d) of FIG. 8, the crease portion 133 may be arranged to have an asymmetric structure, and the connection points of the first connection portion 132 and the second connection portion 134 at both ends thereof are not flush.
[0100] In some embodiments, the recessed regions 135 may be multiple, for example, two or three, and are spaced apart in a direction perpendicular to the vibration direction of the energy conversion device 12, and the depth of each recessed region 135 in the vibration direction of the energy conversion device 12 may be the same or different.
[0101] In some embodiments, the material of the diaphragm 13 is selected from the group consisting of polycarbonate (PC), polyamides (PA), acrylonitrile butadiene styrene (ABS), polystyrene (PS), high impact polystyrene (HIPS), polypropylene (PP), polyethylene terephthalate (PET), polyvinyl chloride (PVC), polyurethane (PU), polyethylene (PE), and phenolic resin. The polymer may be any one of or a combination of polypropylene (PP), ... PET is a thermoplastic polyester with excellent formability, and the vibration membranes made from it are commonly called Mylar film. PC has high impact resistance and is dimensionally stable after molding. PAR is an advanced version of PC and is primarily designed with environmental protection in mind. PEI is more flexible than PET and has greater internal damping. PI is high-temperature resistant, has higher molding temperatures, and requires a longer processing time. PEN is strong and hard, and is suitable for coloring, dyeing, and plating. PU is often used in the damping layers or edges of composite materials. It has high elasticity and great internal damping. PEEK is a more novel material that is abrasion-resistant and fatigue-resistant.Composite materials generally combine the properties of multiple materials, and common composite materials include, for example, a two-layer structure (generally hot-pressed PU, which increases internal damping), a three-layer structure (a sandwich structure with a damping layer PU, acrylic adhesive, UV adhesive, and pressure-sensitive adhesive sandwiched in between), and a five-layer structure (two layers of film bonded together with double-sided tape, which has a base and is usually PET).
[0102] In some embodiments, the air conduction acoustic assembly may further include a reinforcing member. In some embodiments, the reinforcing member may include a reinforcing ring 136. The stiffness of the reinforcing ring 136 may be greater than the stiffness of the diaphragm 13. In some embodiments, the reinforcing ring 136 may be annular, with a ring width of 0.4 mm or more and a thickness of 0.4 mm or less. In some embodiments, the reinforcing ring 136 may be connected to the second connecting portion 134 such that the second connecting portion 134 is connected to the housing 11 by the reinforcing ring 136. In this manner, the structural strength of the edge of the diaphragm 13 can be improved, and the connection strength between the diaphragm 13 and the housing 11 can also be improved.
[0103] The reason for providing the reinforcing ring 136 in an annular shape is mainly to facilitate compatibility with the annular structure of the second connecting portion 134. In some embodiments, the reinforcing ring 136 may be a structurally continuous complete ring, or may be a discontinuous segmented ring. In some embodiments, after the core module 10 is assembled, the other end of the second holder 1213 away from the main body 1211 can be crimped to the support base 1153.
[0104] In some embodiments, the first connecting portion 132 may be injection molded on the outer peripheral surface of the magnetic flux conduction cover 1221, and the reinforcing ring 136 may be injection molded on the second connecting portion 134, thereby simplifying the connection method therebetween and improving the connection strength therebetween. The first connecting portion 132 may cover the side plate 1224 and also the bottom plate 1223, so as to increase the contact area between the first connecting portion 132 and the magnetic circuit assembly 122 and further improve the coupling strength therebetween. Similarly, the second connecting portion 134 may be connected to the inner ring surface and one end surface of the reinforcing ring 136, so as to increase the contact area between the second connecting portion 134 and the reinforcing ring 136 and further improve the coupling strength therebetween.
[0105] In some embodiments, the more flexible the vibrating membrane 13 is, the easier it is to elastically deform, and the smaller the impact on the energy conversion device 12, provided that the vibrating membrane 13 has a certain structural strength to ensure basic structural performance, fatigue resistance, etc.
[0106] 9 is a cross-sectional schematic diagram of various different exemplary structures of the vibrating membrane 13 in FIG. 4 according to some embodiments of the present specification. (a) to (e) in FIG. 9 show various structural variations of the vibrating membrane 13, and the main difference between them is the specific structure and dimensions of the corrugated portion 133. In some embodiments, the specific structural and dimensional parameters in (a) to (e) are shown in the following table.
[0107] [Table 1]
[0108] In the above table, the wrinkle thickness is the thickness (e.g., average thickness) of the wrinkle portion 133, the shape is the direction of the wrinkle portion 133 (e.g., the protruding area or the recessed area in FIG. 8), the dimension of the fixed area is the width of the part of the vibrating membrane 13 fixed to the housing 11 (e.g., W6 in FIG. 9(a)), the wrinkle width is the total width of the wrinkle portion 133 (e.g., W7 in FIG. 9(a)), the half-depth width (i.e., W1 in FIG. 9(a) and described later) is the width at 1 / 2 the depth of the wrinkle portion 133, the wrinkle radius is the arc radius of the wrinkle portion 133 (e.g., the arc radius of the fifth transition portion 1335 described later), and the wrinkle radius may be equal to half the half-depth width.
[0109] In some embodiments, the diaphragm 13 may deform and / or displace as it vibrates, and the deformation and / or displacement may cause the diaphragm 13 to have different elastic moduli at different positions of motion. For diaphragms 13 with different structures and dimensions, the elastic moduli have different effects as the displacement changes.
[0110] FIG. 10 illustrates curves showing the change in the elastic coefficient of the diaphragm 13 with displacement for different structures in FIG. 9 according to some embodiments of the present disclosure. As shown in FIG. 10, the abscissa represents the displacement x of the diaphragm 13, and the ordinate represents the elastic coefficient K(x) of the diaphragm 13. The elastic coefficient K(x) may change with changes in displacement. That is, the elasticity of the diaphragm 13 is nonlinear. In some embodiments, by setting parameters such as the structure and dimensions of the diaphragm 13, the elastic coefficient of the diaphragm 13 is stable and does not change with changes in displacement, thereby achieving a diaphragm 13 with stable vibration. For example, as can be seen from the table above and FIG. 10, when the thickness of the diaphragm 13 is large, the elastic coefficient of the diaphragm 13 changes significantly with displacement, resulting in significant nonlinearity. However, when the thickness of the diaphragm 13 is small, the elastic coefficient of the diaphragm 13 is relatively stable and does not exhibit significant nonlinearity. Therefore, in some embodiments, the thickness of the vibrating membrane 13 may be 0.2 mm or less, and in some embodiments, the thickness of the vibrating membrane 13 may be 0.1 mm or less. In some embodiments, elastic deformation of the vibrating membrane 13 may occur mainly in the corrugated portion 133. Therefore, in some embodiments, the thickness of the corrugated portion 133 may be smaller than the thickness of other portions of the vibrating membrane 13. Based on this, the thickness of the corrugated portion 133 may be 0.2 mm or less, and in some embodiments, the thickness of the corrugated portion 133 may be 0.1 mm or less. For example, as can be seen from the above table and FIG. 10 , when the direction of the corrugated portion 133 is concave, the elastic coefficient of the vibrating membrane 13 is relatively stable. Therefore, in some embodiments, the direction of the corrugated portion 133 may be set to be concave. In some embodiments, other parameters of the vibrating membrane 13, such as the width of the fixing region, the width of the corrugation, the half-depth width, and the radius of the corrugation, may be determined at least in part based on the nonlinearity of the vibrating membrane 13.
[0111] FIG. 11 is a cross-sectional schematic diagram of an exemplary structure of the vibrating membrane 13 in FIG. 4 according to some embodiments of the present disclosure. As shown in FIG. 11 , in some embodiments, the recessed region 135 may have a first depth H in the vibration direction of the energy conversion device 12. In a direction perpendicular to the vibration direction of the energy conversion device 12, the recessed region 135 may have a half-depth width W1, and the first connecting portion 132 and the second connecting portion 134 may have a first spacing distance W2. The half-depth width W1 is the width of the recessed region 135 at a depth of ½H. In some embodiments, W1 and W2 may satisfy the relationship 0.2≦W1 / W2≦0.6. In this manner, not only can the size of the deformable region of the corrugated portion 133 be ensured, but also structural interference between the corrugated portion 133 and the first connecting portion 132 and / or the housing 11 can be avoided. In some embodiments, W1 and W2 may satisfy the relationship 0.3≦W1 / W2≦0.5. In some embodiments, H and W2 may satisfy the relationship 0.2≦H / W2≦1.4. This not only ensures the size of the deformable region of the corrugated portion 133 and makes it sufficiently flexible, but also prevents structural interference between the corrugated portion 133 and the first connecting portion 132 and / or the housing 11 and prevents the corrugated portion 133 from vibrating due to its excessive weight. In some embodiments, H and W2 may satisfy the relationship 0.4≦H / W2≦1.2. In some embodiments, H and W2 may satisfy the relationship 0.6≦H / W2≦1. In some embodiments, H and W2 may satisfy the relationship 0.8≦H / W2≦9.
[0112] In some embodiments, the wrinkled portion 133 may include a first transition portion 1331, a second transition portion 1332, a third transition portion 1333, a fourth transition portion 1334, and a fifth transition portion 1335. One ends of the first transition portion 1331 and the second transition portion 1332 may be connected to the first connecting portion 132 and the second connecting portion 134, respectively, and may extend toward each other, one ends of the third transition portion 1333 and the fourth transition portion 1334 are connected to the other ends of the first transition portion 1331 and the second transition portion 1332, respectively, and both ends of the fifth transition portion 1335 are connected to the other ends of the third transition portion 1333 and the fourth transition portion 1334, respectively. In this case, a recessed region 135 is formed surrounded by each transition portion. In some embodiments, in the direction from the connection point (e.g., point 7A) between the first transition portion 1331 and the first connection portion 132 to the reference position point furthest from the first connection portion 132 of the wrinkle portion 133 (i.e., the apex of the wrinkle portion 133, e.g., point 7C), the angle between the tangent (e.g., dashed line TL1) of the first transition portion 1331 toward the recessed region 135 and the vibration direction of the energy conversion device 12 may gradually decrease, and in the direction from the connection point (e.g., point 7B) between the second transition portion 1332 and the second connection portion 134 to the reference position point, the angle between the tangent (e.g., dashed line TL2) of the second transition portion 1332 toward the recessed region 135 and the vibration direction of the energy conversion device 12 may gradually decrease so that the recessed region 135 can recess toward the second cavity 112A. In some embodiments, the angle between a tangent to the third transition portion 1333 toward the recessed region 135 (e.g., dashed line TL3) and the vibration direction of the energy conversion device 12 may be constant or gradually increasing, and the angle between a tangent to the fourth transition portion 1334 toward the recessed region 135 (e.g., dashed line TL4) and the vibration direction of the energy conversion device 12 may be constant or gradually increasing. The fifth transition portion 1335 may be arranged in an arc shape.
[0113] In some embodiments, the fifth transition portion 1335 is arcuate (e.g., circular), and the radius of the arc may be 0.2 mm or more, in some embodiments, the radius of the arc may be in the range of 0.2 mm to 0.5 mm, or in some embodiments, the radius of the arc may be in the range of 0.3 mm to 0.4 mm. In some embodiments, as shown in FIG. 8( a) or 8(b), the angle between a tangent of the third transition portion 1333 toward the recessed region 135 and the vibration direction of the energy conversion device 12 may be zero, and the angle between a tangent of the fourth transition portion 1334 toward the recessed region 135 and the vibration direction of the energy conversion device 12 may be zero. In this case, the radius of the arc of the fifth transition portion 1335 may be equal to half the half-depth width W1 of the recessed region 135. 8(c) or 8(d), the angle between the tangent of the third transition portion 1333 toward the recessed region 135 and the vibration direction of the energy conversion device 12 may be zero, and the angle between the tangent of the fourth transition portion 1334 toward the recessed region 135 and the vibration direction of the energy conversion device 12 may be a constant value greater than zero. In this case, the fourth transition portion 1334 may be in contact with the fifth transition portion 1335.
[0114] In some embodiments, first transition portion 1331 and second transition portion 1332 may each be arcuate. In some embodiments, to avoid excessive local curvature of corrugation portion 133 and further improve the reliability of vibrating membrane 13, arc radius R1 of first transition portion 1331 may be 0.2 mm or more, and arc radius R2 of second transition portion 1332 may be 0.2 mm or more. In some embodiments, arc radius R1 may be in the range of 0.2 mm to 0.4 mm. In some embodiments, arc radius R1 may be in the range of 0.2 mm to 0.25 mm. In some embodiments, arc radius R2 may be in the range of 0.2 mm to 0.4 mm. In some embodiments, arc radius R2 may be in the range of 0.2 mm to 0.25 mm. In some embodiments, the first transition portion 1331 may include an arc portion and a flat portion connected to each other, the arc portion of the first transition portion 1331 is connected to the third transition portion 1333, the flat portion of the first transition portion 1331 is connected to the first connecting portion 132, and the second transition portion 1332 may be similar to the first transition portion 1331.
[0115] In some embodiments, the vertical projection length of the first transition portion 1331 in the vibration direction of the energy conversion device 12 may be defined as a first projection length W3, the vertical projection length of the second transition portion 1332 may be defined as a second projection length W4, and the vertical projection length of the fifth transition portion 1335 may be defined as a third projection length W5, and W3, W4, and W5 may satisfy the relationship 0.4≦(W3+W4) / W5≦2.5, and in some embodiments, W3, W4, and W5 may satisfy the relationship 0.5≦(W3+W4) / W5≦2.2, and in some embodiments, W3, W4, and W5 may satisfy the relationship 0.8≦(W3+W4) / W5≦2, and in some embodiments, W3, W4, and W5 may satisfy the relationship 1≦(W3+W4) / W5≦1.5.
[0116] Based on the above description, as shown in FIG. 11 , in some embodiments, the thickness of the diaphragm 13 may be 0.1 mm. In some embodiments, W2≧0.9 mm. In some embodiments, 0.9 mm≦W2≦1.7 mm, in some embodiments, 1.1 mm≦W2≦1.5 mm, and in some embodiments, 1.2 mm≦W2≦1.4 mm. In some embodiments, 0.3 mm≦H≦1.0 mm, in some embodiments, 0.5 mm≦H≦0.9 mm, and in some embodiments, 0.6 mm≦H≦0.8 mm. In some embodiments, W3+W4≧0.3 mm. Furthermore, in some embodiments, when 0.3 mm≦W3+W4≦1.0 mm, W1 or W5≧0.4 mm, and in some embodiments, when 0.4 mm≦W3+W4≦0.7 mm, W1 or W5≧0.5 mm. In a specific embodiment, W1 or W5=0.4 mm, W3=0.42 mm, W4=0.45 mm, and H=0.55 mm.
[0117] As shown in Figures 11 and 7, in some embodiments, in the vibration direction of the energy conversion device 12, the distance from the connection point (e.g., point 7A) between the corrugated portion 133 and the first connection portion 132 to the outer end surface away from the first cavity 111 of the magnetic circuit assembly 122 may be defined as a first distance d1, and the distance from the central region of the elastic member 124 to the outer end surface away from the first cavity 111 of the magnetic circuit assembly 122 may be defined as a second distance d2, and d1 and d2 may satisfy the relationship 0.3 < d1 / d2 < 0.8, and in some embodiments, d1 and d2 may satisfy the relationship 0.4 < d1 / d2 < 0.7, and in some embodiments, d1 and d2 may satisfy the relationship 0.5 < d1 / d2 < 0.6. In this case, since the magnitude of distance d2 can be determined relatively, the magnitude of distance d1 can be adjusted based on distance d2, making it easy to adjust the specific connection position between corrugated portion 133 and first connecting portion 132. In some embodiments, the distance from the center of gravity (e.g., point G) of magnetic body 1222 to the outer end surface of magnetic circuit assembly 122 that is farther from first cavity 111 may be defined as third distance d3, and d1 and d3 may satisfy the relationship 0.7≦d1 / d3≦2. In some embodiments, d1 and d3 may satisfy the relationship 1≦d1 / d3≦1.6. In some embodiments, d1 and d3 may satisfy the relationship 1.3≦d1 / d3≦1.5. Since the magnitude of distance d3 can be determined relatively, the magnitude of distance d1 can be adjusted based on distance d3, making it easy to adjust the specific connection position between corrugated portion 133 and first connecting portion 132. In this way, the magnetic circuit assembly 122 may have one end connected to the housing 11 by the elastic member 124 and the coil holder 121, and the other end connected to the housing 11 by the vibrating membrane 13, i.e., the elastic member 124 and the vibrating membrane 13 respectively fix both ends of the magnetic circuit assembly 122 to the housing 11 in the vibration direction of the energy conversion device 12, thereby greatly improving the stability of the magnetic circuit assembly 122.
[0118] In some embodiments, the first distance may be greater than the third distance (i.e., d1>d3). In the vibration direction of the energy conversion device 12, as shown in FIG. 4, the sound-emitting hole 113 may be at least partially located between the connection point (e.g., point 7B) and the outer end face. In this way, the stability of the magnetic circuit assembly 122 can be improved as much as possible, and the volume of the second cavity 112A can be made as large as possible to improve the acoustic expression ability of the core module 10. Furthermore, sufficient design space can be given to the position and size of the sound-emitting hole 113 in the housing 11, so that the sound-emitting hole 113 can be installed flexibly. In some embodiments, the first distance may be smaller than the third distance (i.e., d1<d3), and the center of gravity of the magnetic body 1222 (e.g., point G) may be located between the elastic member 124 and the vibration membrane 13 to improve the stability of the magnetic circuit assembly 122.
[0119] Based on the above related description, as shown in FIG. 7, taking the surface away from the side plate 1224 of the bottom plate 1223 as a reference, the distance d1 may be regarded as the distance between the second connection portion 134 and the bottom plate 1223, the distance d2 may be regarded as the distance between the elastic member 124 and the bottom plate 1223, and the distance d3 may be regarded as the distance between the center of gravity of the magnetic body 1222 and the bottom plate 1223. In a specific embodiment, d1 = 2.85 mm, d2 = 4.63 mm, and d3 = 1.78 mm.
[0120] In some embodiments, the distance between the projection of the connection point (e.g., point 7A) between the first connecting portion 132 and the corrugated portion 133 and the projection of the connection point (e.g., point 7B) between the second connecting portion 134 and the corrugated portion 133 in the vibration direction of the energy conversion device 12 may be defined as a first projection distance d4, and d4 and W2 may satisfy a relationship of 0≦d4 / W2≦1.8, in some embodiments, d4 and W2 may satisfy a relationship of 0.5≦d4 / W2≦1.5, or in some embodiments, d4 and W2 may satisfy a relationship of 0.8≦d4 / W2≦1.2. Based on this, the specific connection position between the corrugated portion 133 and the first connecting portion 132 can be adjusted. In some embodiments, as shown in (a) or (c) of Fig. 8, the projections of the connection point between the first connection portion 132 and the corrugated portion 133 and the connection point between the second connection portion 134 and the corrugated portion 133 in the vibration direction of the energy conversion device 12 may overlap, i.e., d4 = 0. In some embodiments, as shown in (b) or (d) of Fig. 8, the projections of the connection point between the first connection portion 132 and the corrugated portion 133 (e.g., point 7A) and the connection point between the second connection portion 134 and the corrugated portion 133 (e.g., point 7B) in the vibration direction of the energy conversion device 12 may be offset from each other, i.e., d4 > 0.
[0121] The above description of the vibrating membrane 13 is for illustrative purposes only and is not intended to limit the scope of the present application. Those skilled in the art may make various changes and modifications based on the description herein. These changes and modifications do not depart from the scope of the present application. For example, the vibrating membrane 13 may be located between the bottom surface of the bone conduction acoustic assembly 221 (or the energy conversion device 12) and the bottom surface of the housing 11. For example, the air conduction acoustic assembly 222 may include a first vibrating membrane and a second vibrating membrane, where the first vibrating membrane is similar to the above-described vibrating membrane 13, and the second vibrating membrane is connected to the housing 11 and can vibrate in accordance with the vibration of the housing 11. For example, the air conduction acoustic assembly 222 may include a vibrating membrane and a vibration transmission assembly, where the vibration transmission assembly is connected to the bone conduction acoustic assembly 221 and the vibrating membrane. The vibration transmission assembly can transmit the vibration of the bone conduction acoustic assembly 221 to the vibrating membrane to generate air-conducted sound waves.
[0122] 12 is a cross-sectional schematic diagram of an exemplary structure of a diaphragm according to some embodiments of the present disclosure. As shown in FIG. 12 , diaphragm 1200 may include first connecting portion 1210, corrugated portion 1220, and second connecting portion 1230. In some embodiments, second connecting portion 1230 may be flush with the tip of first connecting portion 1210. In some embodiments, second connecting portion 1230 may not be flush with the tip of first connecting portion 1210. Corrugated portion 1220 may be recessed toward the second cavity (i.e., toward the bottom plate of first connecting portion 1210). In some embodiments, the elastic modulus of diaphragm 1200 may be adjusted by adjusting the properties of diaphragm 1200. For example, the elastic modulus of vibrating membrane 1200 can be adjusted by adjusting the height of first connecting portion 1210, the height of second connecting portion 1230 relative to first connecting portion 1210, the height of corrugated portion 1220, the thickness of first connecting portion 1210 and / or second connecting portion 1230, etc. For example, the higher the height of corrugated portion 1220, the smaller the thickness of second connecting portion 1230, and the greater the number of corrugated portions 1220, the greater the elastic modulus of vibrating membrane 1200.
[0123] FIG. 13 is a cross-sectional schematic diagram of an exemplary structure of a vibrating membrane according to some embodiments of the present disclosure. The vibrating membrane 1300 shown in FIG. 13 may be similar to the vibrating membrane 1200 in FIG. 12. For example, the vibrating membrane 1300 may include a first connecting portion 1310, a corrugated portion 1320, and a second connecting portion 1330. Compared to the vibrating membrane 1200, the corrugated portion 1320 differs in that it protrudes toward the first cavity (i.e., the opposite direction of the bottom plate of the first connecting portion 1310). In some embodiments, the elastic coefficient of the vibrating membrane 1300 may be adjusted by adjusting the characteristics of the vibrating membrane 1300. For example, the elastic coefficient of the vibrating membrane 1300 can be adjusted by adjusting the height of the first connecting portion 1310, the height of the second connecting portion 1330 relative to the first connecting portion 1310, the height of the corrugated portion 1320, the thickness of the first connecting portion 1310 and / or the second connecting portion 1330, etc. For example, the higher the height of the corrugated portion 1320, the thinner the second connecting portion 1330, and the more the number of the corrugated portions 1320, the greater the elastic modulus of the vibrating membrane 1300.
[0124] Comparing the vibrating membrane 1200 shown in FIG. 12 with the vibrating membrane 1300 shown in FIG. 13, when the vibrating membrane 1200 and the vibrating membrane 1300 include the same material, the vibrating membrane 1200 may have a smaller elastic modulus and a lower resonant frequency than the vibrating membrane 1300.
[0125] In some embodiments, a through-hole (not shown) may be provided in diaphragm 1200 (e.g., corrugated portion 1220) and / or diaphragm 1300 (e.g., corrugated portion 1320). First cavity 111 and second cavity 112A of the audio output device may communicate with each other through the through-hole. In some embodiments, sounds generated at both ends of the through-hole may be out of phase and cancel each other out, thereby effectively reducing leakage sounds generated in the audio output device (e.g., sounds leaking from decompression hole 144) and improving the audio expressiveness of the audio output device.
[0126] FIG. 14 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. As shown in FIG. 14 , the acoustic output device 1400 may include a bone conduction acoustic assembly 1410, a housing 1420, and an air conduction acoustic assembly. The bone conduction acoustic assembly 1410 and the air conduction acoustic assembly may both be housed in a housing cavity of the housing 1420. The bone conduction acoustic assembly 1410 may include a magnetic circuit assembly 1411, one or more diaphragms 1412, and a coil 1413. The magnetic circuit assembly 1411 may include one or more magnetic elements and / or magnetic flux conducting elements and may generate a magnetic field. The coil 1413 may be disposed in a magnetic gap of the magnetic circuit assembly 1411. At least one of the one or more diaphragms 1412 may be physically connected to the housing 1420. The housing 1420 may contact the user's skin (e.g., the skin on the user's head) and transmit bone conduction sound waves to the cochlea. The air conduction acoustic assembly may include a diaphragm 1431. The vibrating membrane 1431 may be physically connected to the bone conduction acoustic assembly 1410 and / or the housing 1420. For example, as shown in FIG. 14 , the vibrating membrane 1431 may be located between a bottom surface of the bone conduction acoustic assembly 1410 and a bottom surface of the housing 1420, and may divide the containing cavity into a first cavity 1423 and a second cavity 1424. When the bone conduction acoustic assembly 1410 (e.g., one or more diaphragms) vibrates to generate bone conduction sound waves, the vibration of the bone conduction acoustic assembly 1410 may drive vibration of the housing 1420 and / or the vibrating membrane 1431, which is physically connected to the bone conduction acoustic assembly 1410 and / or the housing 1420.
[0127] Vibration of the diaphragm 1431 can cause vibration of the air inside the housing 1420, thereby generating air-conducted sound waves. The air-conducted sound waves can be transmitted to the outside of the housing 1420 through the sound emission holes 1421. The air-conducted sound waves and the bone-conducted sound waves can represent the same audio signal. In some embodiments, the air-conducted sound waves and the bone-conducted sound waves representing the same audio signal can represent the same audio content, with frequency components of the air-conducted sound waves and frequency components of the bone-conducted sound waves. The frequency components of the air-conducted sound waves and the bone-conducted sound waves can be different. For example, the bone-conducted sound waves can include more low-frequency components, and the air-conducted sound waves can include more high-frequency components.
[0128] In some embodiments, the air-conducted sound waves and the bone-conducted sound waves may have the same phase, i.e., the phase difference between the air-conducted sound waves and the bone-conducted sound waves may be equal to 0. In some embodiments, the phase difference between the air-conducted sound waves and the bone-conducted sound waves may be less than a threshold value, such as π, 2π / 3, or π / 2. The phase difference may be the absolute value of the phase difference between the bone-conducted sound waves and the air-conducted sound waves. In some embodiments, different frequency ranges of the air-conducted sound waves and the bone-conducted sound waves may correspond to different phase differences and different threshold values. For example, in a frequency range less than 300 Hz, the phase difference between the air-conducted sound waves and the bone-conducted sound waves may be less than π. Also, for example, in a frequency range less than 1000 Hz (e.g., 300 Hz to 1000 Hz), the phase difference between the air-conducted sound waves and the bone-conducted sound waves may be less than 2π / 3. Furthermore, for example, in a frequency range less than 3000 Hz (e.g., 1000 Hz to 3000 Hz), the phase difference between the air-conducted sound waves and the bone-conducted sound waves may be less than π / 2. This improves synchronization between the bone-conducted sound waves and the air-conducted sound waves, thereby improving the overlap between the bone-conducted sound waves and the air-conducted sound waves and improving the listening experience. In some embodiments, the time difference between the air-conducted sound waves and the bone-conducted sound waves received by the user may be less than a threshold value, for example, 0.1 seconds.
[0129] In some embodiments, the housing 1420 may have a decompression hole 1422. For example, the decompression hole 1422 may be located in a sidewall of a first portion of the housing 1420. The first cavity 1423 may be in fluid communication with the outside of the acoustic output device 1400 via the decompression hole 1422. For example, the decompression hole 1422 and the sound emission hole 1421 may be located in different sidewalls of the housing 1420. For example, the decompression hole 1422 and the sound emission hole 1421 may be located in non-adjacent (e.g., parallel) sidewalls of the housing 1420, respectively.
[0130] In some embodiments, the output characteristics of bone conduction acoustic waves may be adjusted by adjusting the stiffness (e.g., structural dimensions, material modulus, etc.) of the bone conduction acoustic assembly 1410 (e.g., diaphragm) and / or housing 1420.
[0131] In some embodiments, the output characteristics of the air-conducted acoustic wave may be adjusted by adjusting the shape, elastic modulus, and damping of the vibrating membrane 1431. Furthermore, the output characteristics of the air-conducted acoustic wave may be adjusted by adjusting the number, position, size, and / or shape of at least one of the sound emission holes 1421 and / or the decompression holes 1422. For example, the acoustic effect of the air-conducted acoustic assembly can be achieved by installing a damping structure (e.g., a sound-tuning mesh) in the sound emission hole 1421.
[0132] FIG. 15 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. The acoustic output device 1500 may be the same as or similar to the acoustic output device 1400 in FIG. 14 . For example, the acoustic output device 1500 may include a bone conduction acoustic assembly 1510, a housing 1520, and an air conduction acoustic assembly. The bone conduction acoustic assembly 1510 and the air conduction acoustic assembly may both be housed in the housing 1520. The air conduction acoustic assembly may include a vibrating membrane 1531 connected to the housing 1520 and / or the bone conduction acoustic assembly 1510. For example, a sound emission hole 1521 and a sound conducting passage 1540 may be provided on a side wall of the housing 1520, and the sound emission hole 1521 and the sound conducting passage 1540 may be fluidly connected to the second cavity 1524. For example, a decompression hole 1522 may be provided on a side wall of the housing 1520.
[0133] As shown in FIG. 15 , unlike the acoustic output device 1400, the vibrating membrane 1531 can surround the bone conduction acoustic assembly 1510 (e.g., the magnetic circuit assembly of the bone conduction acoustic assembly 1510). The vibrating membrane 1531 can be disposed in the form of an annular plate or sheet. In some embodiments, the vibrating membrane 1531 can be recessed or protruded downward to improve its elasticity and frequency response in the mid-low frequency range. For example, the inner side of the vibrating membrane 1531 can be physically connected to the outer wall of the bone conduction acoustic assembly 1510 and the outer side can be physically connected to the inner wall of the housing 1520. By surrounding the bone conduction acoustic assembly 1510, the space occupied by the vibrating membrane 1531 can be reduced, thereby reducing the volume of the acoustic output device 1500. In addition to reducing the volume, adjusting the position of the vibrating membrane 1531 in the housing 1520 can effectively reduce the volume and / or weight of the acoustic output device 1500.
[0134] FIG. 16 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. In some embodiments, the acoustic output device 1600 may be the same as or similar to the acoustic output device 1400 in FIG. 14 . In some embodiments, as shown in FIG. 16 , an air conduction acoustic assembly may include at least two diaphragms, for example, a first diaphragm 1631 and a second diaphragm 1633. The first diaphragm and / or the second diaphragm may be the same as or similar to the diaphragm 13 described above. In some embodiments, the first diaphragm 1631 and the second diaphragm 1633 may be disposed substantially parallel to each other. The first diaphragm 1631 may be connected to the bone conduction acoustic assembly 1610 and / or the housing 1620, and the second diaphragm 1633 may be connected to the housing 1620, such that the first diaphragm receives vibrations from the bone conduction acoustic assembly 1610 and / or the housing 1620, and the second diaphragm receives vibrations from the housing 1620.
[0135] In some embodiments, second vibrating membrane 1633 may be disposed between the bottom surface of housing 1620 and the bottom surface of bone conduction acoustic assembly 1610. In some embodiments, second vibrating membrane 1633 may be disposed between the bottom surface of housing 1620 and the plane on which sound emission hole 1621 is located along a direction parallel to first vibrating membrane 1631. In some embodiments, second vibrating membrane 1633 may be disposed near or on the bottom surface of housing 1620. Second vibrating membrane 1633 may be physically connected to housing 1620.
[0136] In some embodiments, the second diaphragm 1633 may include a main body portion and an auxiliary portion. The main body portion may be adjacent to or physically connected to the bottom surface of the housing 1620, and the auxiliary portion may be annular and surround the main body portion. In some embodiments, the second diaphragm 1633 may be the same as or similar to the diaphragm 13 in the above embodiments. For example, the main body portion may be the same as or similar to the first connecting portion 132 of the diaphragm 13, and the auxiliary portion may be the same as or similar to the corrugated portion 133 and the second connecting portion 134 of the diaphragm 13. In some embodiments, the auxiliary portion may be physically connected to the housing 1620. In some embodiments, the main body portion may include a mass block, and the auxiliary portion may include a spring.
[0137] In some embodiments, the resonant frequency of the bottom of the housing 1620 may be determined based on the material of the bottom of the housing 1620. In some embodiments, the material and thickness of the bottom of the housing 1620 affect the resonant frequency of the bottom of the housing 1620. For example, if the material of the bottom of the housing 1620 is relatively soft, the resonant frequency of the bottom of the housing 1620 is relatively low. Conversely, if the material of the bottom of the housing 1620 is relatively hard, the resonant frequency of the bottom of the housing 1620 is relatively high. In some embodiments, by adjusting the hardness of the material of the bottom of the housing 1620, the resonant frequency of the bottom of the housing 1620 may be below a threshold, for example, below 10 kHz, below 5 kHz, or below 1 kHz.
[0138] In some embodiments, the resonant frequency of the bottom surface of the housing 1620 may be determined based on the second vibrating membrane 1633. For example, the resonant frequency of the bottom surface of the housing 1620 may be equal to the resonant frequency of the second vibrating membrane 1633.
[0139] In some embodiments, the resonant frequency of the second vibrating membrane 1633 may exceed the vibration frequency of the structure including the bone conduction acoustic assembly 1610 and the first vibrating membrane 1631. When the vibration frequency of the bone conduction acoustic assembly 1610 is lower than the resonant frequency of the second vibrating membrane 1633, the vibration of the second vibrating membrane 1633 may match the vibration of the housing 1620. In other words, the phase and frequency of the vibration of the second vibrating membrane 1633 may match the phase and frequency of the vibration of the housing 1620. The vibration of the second vibrating membrane 1633 may be in antiphase with the vibration of the first vibrating membrane 1631. When the frequency of the structure including the bone conduction acoustic assembly 1610 and the first vibrating membrane 1631 is lower than the resonant frequency of the second vibrating membrane 1633, the air in the second cavity 1624 may be compressed or expanded, and air-conducted sound waves may be formed along with the compression or expansion of the air in the second cavity 1624. In some embodiments, when the upper surface of the housing 1620 on which the diaphragm 1612 is located vibrates due to the vibration of the diaphragm 1612 and presses against a person's face, sound leakage may occur at the upper surface of the housing 1620. The phase of the sound leakage may be opposite to the phase of the sound leakage due to the vibration of the second diaphragm 1633. The sound leakage due to the vibration of the second diaphragm 1633 cancels out the sound leakage from the upper surface of the housing 1620, thereby suppressing or reducing the sound leakage from the audio output device 1600. In some embodiments, when the vibration frequency of the bone conduction acoustic assembly 1610 is higher than the resonant frequency of the second diaphragm, the amplitude of the second diaphragm 1633 relative to the housing 1620 may be very small, and the amplitude of the air compressed by the second diaphragm 1633 may be very small. Therefore, the sound leakage generated by the second diaphragm 1633 may also be very small.
[0140] FIG. 17 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. The acoustic output device 1700 may be the same as or similar to the acoustic output device 1400 in FIG. 14 . As shown in FIG. 17 , unlike the acoustic output device 1400, the vibrating membrane 1731 may be separate from the bone conduction acoustic assembly 1710 and physically connected to the housing 1720. When the bone conduction acoustic assembly 1710 generates bone conduction sound waves, the vibration of the bone conduction acoustic assembly 1710 can drive the vibration of the vibrating membrane 1731 by causing the vibration of the housing 1720. If the vibrating membrane 1731 has a small resonance peak (e.g., if the vibrating membrane 1731 is made of a soft material or has a “wrinkle” structure that reduces its stiffness), the vibrating membrane 1731 can have a better response to the low-frequency vibrations generated by the housing 1720. In other words, the diaphragm 1731 can provide lower frequency sounds, thereby increasing the volume of low frequency air-conducted sound waves.
[0141] FIG. 18 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. In some embodiments, acoustic output device 1800 may be the same as or similar to acoustic output device 1600 in FIG. 16 . As shown in FIG. 18 , unlike acoustic output device 1600, second diaphragm 1833 may be located in second cavity 1824 separated from the bottom surface of housing 1820. In some embodiments, second diaphragm 1833 may be disposed between a plane on which first diaphragm 1831 is located and a plane on which sound output hole 1821 is located, along a direction parallel to first diaphragm 1831. In some embodiments, second diaphragm 1833 may be disposed parallel to first diaphragm 1831. In some embodiments, second diaphragm 1833 may be disposed at an angle relative to first diaphragm 1831.
[0142] In some embodiments, second diaphragm 1833 may divide second cavity 1824 into a first sub-cavity and a second sub-cavity. The first sub-cavity may be defined by second diaphragm 1833 and first diaphragm 1831, and the second sub-cavity may be defined by second diaphragm 1833 and the bottom surface of housing 1820.
[0143] In some embodiments, the bone conduction acoustic assembly 1810 and the first diaphragm 1831 can be fixed relative to each other, so that vibration of the housing 1820 due to vibration of the bone conduction acoustic assembly 1810 can cause a pressure change in the first sub-cavity between the first diaphragm 1831 and the second diaphragm 1833. The pressure change in the first sub-cavity can cause vibration of the air in the first sub-cavity. The vibration of the air in the first sub-cavity can cause vibration of the second diaphragm 1833. The vibration of the second diaphragm 1833 can cause vibration of the air in the second sub-cavity, and the vibration of the housing 1820 can also cause vibration of the air in the second sub-cavity. The phase of the air vibration due to the vibration of the second diaphragm 1833 and the phase of the air vibration due to the vibration of the housing 1820 can be the same, thereby increasing the volume of the air-conducted sound waves emitted from the sound output hole 1821.
[0144] In some embodiments, vibration of the housing 1820 due to vibration of the bone conduction acoustic assembly 1810 can drive vibration of the first vibrating membrane 1831. The vibration of the first vibrating membrane 1831 and / or the housing 1820 can promote vibration of the air between the first vibrating membrane 1831 and the second vibrating membrane 1833. The vibration of the air between the first vibrating membrane 1831 and the second vibrating membrane 1833 and the vibration of the housing 1820 can drive vibration of the second vibrating membrane 1833. If the second vibrating membrane 1833 has a small resonance peak (e.g., if the second vibrating membrane 1833 is made of a soft material or has a "wrinkle" structure that reduces its stiffness), the second vibrating membrane 1833 can have a better response to the vibration of the air between the first vibrating membrane 1831 and the second vibrating membrane 1833 due to the low-frequency vibration generated by the bone conduction acoustic assembly 1810. In other words, the second vibrating membrane 1833 can provide more low-frequency sounds, thereby increasing the volume of low-frequency air-conducted sound waves. The acoustic output device 1800 can provide rich sounds (e.g., more low-frequency sounds), thereby increasing the volume of air-conducted sound waves.
[0145] FIG. 19 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. In some embodiments, the acoustic output device 1900 may be the same as or similar to the acoustic output device 1400 in FIG. 14 . As shown in FIG. 19 , unlike the acoustic output device 1400, the air conduction acoustic assembly may include a diaphragm 1933 and a vibration transmission assembly 1931. The vibration transmission assembly 1931 may be physically connected to the bone conduction acoustic assembly 1910, the diaphragm 1933, and / or the housing 1920. The vibration transmission assembly 1931 may transmit vibrations of the bone conduction acoustic assembly 1910 and / or the housing 1920 to the diaphragm 1933 to generate air-conducted acoustic waves. During the vibration transmission period, the vibration transmission assembly 1931 may change the vibration direction of the bone conduction acoustic assembly 1910 and / or the housing 1920. In other words, the vibration direction of the diaphragm 1933 may be different from the vibration direction of the bone conduction acoustic assembly 1910 and / or the housing 1920.
[0146] In some embodiments, the vibration membrane 1933 may be located at the sound emission hole 1921. The vibration membrane 1933 and the bone conduction acoustic assembly 1910 may be connected by a vibration transmission assembly 1931. The bone conduction acoustic assembly 1910 and the housing 1920 may be connected by a vibration transmission assembly 1931. In some embodiments, the vibration transmission assembly 1931 may include a plurality of connecting rods. In some embodiments, one of the plurality of connecting rods may be physically connected to the vibration membrane 1933, and one of the plurality of connecting rods may be physically connected to the bone conduction acoustic assembly 1910. In some embodiments, one of the plurality of connecting rods may be physically connected to the housing 1920. In some embodiments, the plurality of connecting rods may be physically connected to one another.
[0147] In some embodiments, the vibration transmission assembly 1931 may change the vibration direction of the housing 1920 and / or the bone conduction acoustic assembly 1910 during transmission, and transmit the vibration of the housing 1920 with the changed vibration direction to the diaphragm 1933. As shown in FIG. 19 , the housing 1920 may vibrate left and right relative to the bone conduction acoustic assembly 1910 to generate bone conduction sound waves. The housing 1920 may transmit the vibration of the bone conduction acoustic assembly 1910 to the cochlea via the human skeleton via the upper surface of the housing 1920. The vibration transmission assembly 1931 may change the left and right vibration direction of the housing 1920 to an up and down vibration direction and transmit the vibration to the diaphragm 1933, causing the diaphragm 1933 to vibrate up and down, thereby generating air-conducted sound waves. In some embodiments, the sound emission hole 1921 may directly face the direction of a human ear, i.e., the diaphragm 1933 may vibrate toward the human ear. FIG. 20 is a schematic diagram of an acoustic output device according to some embodiments of the present disclosure. In some embodiments, the acoustic output device 2000 may be the same as or similar to the acoustic output device 1400 in FIG. 14 . As shown in FIG. 20 , unlike the acoustic output device 1400, the acoustic output device 2000 may further include an elastic member 2050 disposed between the bone conduction acoustic assembly 2010 and the housing 2020. In some embodiments, the elastic member 2050 may be located in the first cavity 2023 and physically connected to the bone conduction acoustic assembly 2010 (e.g., the magnetic circuit assembly 2011) and the housing 2020. In some embodiments, the elastic member 2050 may better fix the magnetic circuit assembly 2011 and prevent the magnetic circuit assembly 2011 from flipping over when the housing 2020 vibrates, thereby improving the sound quality of the acoustic output device 2000.
[0148] In some embodiments, the elastic member 2050 may have a specific resonant frequency, which may provide a resonant peak for the vibration of the housing 2020, so that the bone conduction sound waves generated by the bone conduction acoustic assembly 2010 may have a higher volume near the resonant peak of the elastic member 2050. In some embodiments, the output characteristics of the bone conduction sound waves may be adjusted by adjusting one or more characteristics (e.g., dimensions, material elastic modulus, etc.) of the vibrating membrane 2031 and the elastic modulus of the elastic member 2050. Note that the elastic member 2050 in this embodiment is not limited to the scope of this specification and may be applied to the acoustic output devices shown in other figures of this specification.
[0149] Beneficial effects of the embodiments of the present specification include, but are not limited to, the following (1) to (4): (1) by installing a vibrating membrane between the energy conversion device and the housing, the sound output device can generate bone-conducted sound and air-conducted sound, thereby improving the sound expression of the sound output device; (2) by forming a wrinkled portion in the vibrating membrane, the vibrating membrane's ability to deform in the vibration direction of the energy conversion device can be improved, and the influence of the vibrating membrane on the vibration of the energy conversion device can be reduced; (3) by installing a reinforcing member with a hardness greater than that of the vibrating membrane at the edge of the vibrating membrane, the vibrating membrane is connected to the housing by the reinforcing member, improving the reliability of the connection between the two; and (4) by connecting both ends of the energy conversion device to the housing by a spring sheet and a vibrating membrane, respectively, the stability of the energy conversion device can be improved.
[0150] Although the basic concepts have been described above, it will be apparent to those skilled in the art that the detailed disclosure above is merely provided by way of example and is not intended to limit the present specification. Although not expressly described herein, those skilled in the art may make various changes, improvements, and modifications to the present specification. These changes, improvements, and modifications are intended to be suggested by the present specification and are therefore within the spirit and scope of the exemplary embodiments of the present specification.
[0151] Furthermore, certain terms are used herein to describe embodiments herein. For example, "one embodiment," "one embodiment," and / or "some embodiments" refer to particular features, structures, or characteristics associated with at least one embodiment herein. Therefore, it is emphasized and understood that references to "one embodiment" or "one embodiment" or "one alternative embodiment" more than once in various parts of this specification do not necessarily all refer to the same embodiment. Furthermore, particular features, structures, or characteristics in one or more embodiments herein may be combined as appropriate.
[0152] Additionally, unless expressly stated in the claims, the enumerated order of processing elements or sequences described herein, the use of alphanumeric characters, or the use of other designations does not limit the order of the procedures and methods herein. While the above disclosure has set forth through various examples what are presently believed to be various useful embodiments of the invention, it should be understood that such details are for illustrative purposes only, and that the appended claims are not limited to the disclosed embodiments, but rather are intended to cover all modifications and equivalent combinations within the spirit and scope of the embodiments herein. For example, the system assembly described above may be implemented by a hardware device, or may be implemented as a software-only solution, e.g., by installing the described system on an existing server or mobile device.
[0153] Similarly, in the foregoing description of embodiments herein, it should be understood that various features may be grouped together in a single embodiment, drawing, or description for the purpose of simplifying the description and facilitating an understanding of one or more embodiments of the invention. However, this method of disclosure should not be interpreted as reflecting an intention that the claimed subject matter requires more features than are recited in each claim. In fact, an embodiment may include fewer than all features of a single embodiment disclosed above.
[0154] In some examples, numbers describing the number of components and attributes are used, and it should be understood that the numbers describing such examples are in some instances modified by the modifiers "about," "approximately," or "generally." Unless otherwise specified, "about," "approximately," or "generally" indicates that the number can vary by ±20%. Thus, in some examples, all numerical parameters used in the specification and claims are approximations that may vary depending on the specific requirements of a particular example. In some examples, numerical parameters should be used with the stated number of significant digits and with ordinary rounding techniques. While in some examples the numerical ranges and parameters determining ranges are approximations, in specific examples, such numerical values are set as precisely as possible.
[0155] All patents, patent applications, published patent applications, and other materials, such as papers, books, specifications, publications, and documents, referenced herein are incorporated herein by reference in their entirety, except for prosecution history documents that are inconsistent with or inconsistent with the content of this specification and documents that may have a limiting effect on the broadest scope of the claims herein (now or later related to this specification). Further, in the event that an explanation, definition, and / or term usage in the accompanying materials hereto is inconsistent with or inconsistent with the content set forth herein, the explanation, definition, and / or term usage in this specification shall control.
[0156] Finally, it should be understood that the embodiments described herein are merely illustrative of the principles of the embodiments herein. Other variations may be within the scope of the present disclosure. Thus, by way of example, and not of limitation, alternative configurations of the embodiments herein may be considered consistent with the teachings herein. Thus, the embodiments herein are not limited to the embodiments expressly introduced and described herein. [Explanation of symbols]
[0157] 10 Core Modules 11. Housing 12 Energy conversion device 13 Vibrating membrane 20 Earhook Assembly 30 Back-hanging assembly 40 Main control circuit board 50 batteries 100 Sound Output System 110 Multimedia Platform 111 First Cavity 112 Processing equipment 112A Second Cavity 113 Sound emission hole 114 Decompression hole 115 rear housing 116 Front housing 120 Network 121 Coil holder 122 Magnetic Circuit Assembly 123 Coil 124 Elastic member 130 Sound output device 132 First Connection 133 wrinkles 134 Second Connection 140 Terminal Equipment 141 Sound guide passage 150 Storage device 200 Sound output device 210 Signal Processing Module 220 Output Module 221 Bone Conduction Acoustic Assembly 222 Air Conduction Acoustic Assembly 300 earphones 400 Core Module 1151 Bottom plate 1152 Side panel 1153 Support stand 1161 Bottom plate 1162 Side panel 1211 Main unit 1212 First Holder 1213 Second Holder 1214 Relief hole 1221 Magnetic Flux Conduction Cover 1222 Magnetic material 1223 Bottom plate 1224 Side panel 1225 Connecting member 1200 diaphragm 1210 First connection 1220 Wrinkle area 1230 Second Connection 1300 Vibrating membrane 1310 First connection 1320 wrinkles 1330 Second Connection 1400 Sound Output Device 1410 Bone conduction acoustic assembly 1411 Magnetic Circuit Assembly 1412 Diaphragm 1413 Coil 1420 Housing 1423 First Cavity 1424 Second Cavity 1431 Vibrating membrane 1500 Sound Output Device 1510 Bone conduction acoustic assembly 1520 Housing 1521 Sound emission hole 1540 Sound guide passage 1600 Sound Output Device 1610 Bone Conduction Acoustic Assembly 1612 Diaphragm 1620 Housing 1621 Sound emission hole 1624 Second Cavity 1631 First diaphragm 1633 Second diaphragm 1710 Bone Conduction Acoustic Assembly 1720 Housing 1731 Vibrating membrane 1800 Sound Output Device 1810 Bone Conduction Acoustic Assembly 1820 Housing 1821 Sound hole 1824 Second Cavity 1831 First diaphragm 1833 Second diaphragm 1900 Sound output device 1910 Bone Conduction Acoustic Assembly 1920 Housing 1921 Sound hole 1931 Vibration Transmission Assembly 1933 Vibrating membrane 2000 Sound Output Device 2010 Bone conduction acoustic assembly 2011 Magnetic Circuit Assembly 2020 Housing 2023 First cavity 2031 Vibration membrane 2050 Elastic member
Claims
1. a bone conduction acoustic assembly for generating bone conduction sound waves; an air conduction acoustic assembly for generating air conduction sound waves; a housing including a receiving cavity for receiving the bone conduction acoustic assembly and the air conduction acoustic assembly; Including, The bone conduction acoustic assembly includes an energy conversion device, the energy conversion device comprising: a magnetic circuit assembly for generating a magnetic field; a diaphragm connected to the housing; a coil connected to the diaphragm; Including, the coil vibrates under the influence of the magnetic field in response to a received audio signal, driving the diaphragm to vibrate and generating the bone-conducted sound waves; the air conduction acoustic assembly includes a first diaphragm and a second diaphragm, the first diaphragm being connected to at least one of the bone conduction acoustic assembly and the housing, and the second diaphragm being connected to the housing; At least a portion of the housing contacts the user's skin and transmits the bone conduction sound waves through the bone conduction acoustic assembly; The air-conducted acoustic waves are generated based on vibrations of at least one of the housing and the bone conduction acoustic assembly when the bone conduction acoustic waves are generated, and the vibrations of at least one of the bone conduction acoustic assembly and the housing drive at least one of the first vibrating membrane and the second vibrating membrane to generate the air-conducted acoustic waves; An acoustic output device in which, when the upper surface of the housing on which the diaphragm is located vibrates due to the vibration of the diaphragm and presses against a person's face, leakage sound is generated by the upper surface of the housing, and the phase of the leakage sound generated by the upper surface of the housing is opposite to the phase of the leakage sound generated by the vibration of the second diaphragm.
2. the first vibrating membrane divides the accommodating cavity into a first cavity and a second cavity; a first portion of the housing defining the first cavity and connected to the bone conduction acoustic assembly for transmitting the bone conduction acoustic waves; 2. The acoustic output device according to claim 1, wherein the second portion of the housing forms the second cavity and includes a sound emission hole communicating with the second cavity, and the air-conducted sound waves are transmitted to the outside of the housing through the sound emission hole.
3. 3. The acoustic output device of claim 2, wherein the frequency response curve of the bone conduction sound wave has at least one resonant peak, and when the first vibrating membrane is connected to the bone conduction acoustic assembly and the housing, the at least one resonant peak has a first resonant frequency, and when the first vibrating membrane is disconnected from at least one of the bone conduction acoustic assembly and the housing, the at least one resonant peak has a second resonant frequency, and the ratio of the absolute value of the difference between the first resonant frequency and the second resonant frequency to the first resonant frequency is 50% or less.
4. The first vibrating membrane comprises: a first connection portion surrounding the bone conduction acoustic assembly and connected to the bone conduction acoustic assembly; a second connection portion connected to the housing; a corrugated portion connected to the first connecting portion and the second connecting portion; 4. The sound output device according to claim 2, further comprising:
5. 5. The acoustic output device of claim 4, wherein the corrugated portion includes at least one of a protruding region and a recessed region, the recessed region being recessed toward the second cavity, having a first depth, and having a first spacing distance between the first connecting portion and the second connecting portion, and a ratio of the first depth to the first spacing distance being 0.2 to 1.
4.
6. 6. The acoustic output device of claim 5, wherein the recessed region has a half-depth width that is a width at a depth half the first depth, and a ratio of the half-depth width to the first spacing distance is 0.2 to 0.
6.
7. The acoustic output device described in claim 4, characterized in that the air conduction acoustic assembly further includes a reinforcing member, the second connection portion is connected to the housing by the reinforcing member, the reinforcing member includes a reinforcing ring, and the hardness of the reinforcing ring is greater than the hardness of the first vibration membrane.
8. the magnetic circuit assembly includes a magnetic flux conduction cover and a magnetic body disposed within the magnetic flux conduction cover, and the first connection portion is injection molded on an outer peripheral surface of the magnetic flux conduction cover; The bone conduction acoustic assembly includes: a coil holder, the coil holder being connected to the housing, the coil being connected to the coil holder, and the coil being inserted into a magnetic gap between the magnetic body and the magnetic flux conducting cover; an elastic member having a central region connected to the magnetic body and a peripheral region connected to the coil holder, suspending the magnetic circuit assembly within the housing; 8. The sound output device of claim 7, further comprising:
9. The acoustic output device of claim 8, characterized in that there is a first distance from the connection point between the corrugated portion and the first connection portion to the bottom surface of the bone conduction acoustic assembly, there is a second distance from the central region of the elastic member to the bottom surface of the bone conduction acoustic assembly, and the ratio of the first distance to the second distance is 0.3 to 0.
8.
10. The acoustic output device of claim 9, characterized in that there is a third distance from the center of gravity of the magnetic body to the bottom surface of the bone conduction acoustic assembly, and the ratio of the first distance to the third distance is 0.7 to 2.
11. The sound output device according to any one of claims 2 to 10, wherein the second vibration membrane is disposed between a bottom surface of the housing and a plane on which the sound emission hole is located.
12. The acoustic output device according to any one of claims 2 to 11, wherein the second vibrating membrane divides the second cavity into a first sub-cavity and a second sub-cavity.
13. The sound output device according to any one of claims 1 to 10, wherein the second vibrating membrane is disposed near or on a bottom surface of the housing.
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