How Does the Microphone Noise Reduction Microphone Work?
At the beginning of the 20th century, microphones for noise reduction of microphones were developed into negative electric and capacitive conversion through resistance in the early stage, and many new microphone technologies were gradually developed, including microphones such as aluminum driving coils, and currently widely used condenser microphones and electret microphones. The working principle of the coil microphone is to use the human voice to vibrate the diaphragm through the air, and then use the solenoid on the diaphragm and the magnet surrounding the coil head to form a magnetic field cutting to form a weak wave current. The electrical current is passed through the loudspeaker, and the reverse process converts the wave-current into sound.In this paper POROSVOC will tell you How does the microphone noise reduction microphone work?
Fig.1
For ribbon microphones, the ribbon used is the conductor that moves in the microphone membrane and magnetic field. The aluminum strip is generally made of aluminum wire, with a thickness of 0 to 1 mm, a width of 2 mm to 4 mm, and a mass of only 0.2 mg, which can obtain a better transient response. In order to obtain the ideal resonant frequency between 2kHz~4kHz, the aluminum strip is pleated to maintain the correct tension value. The aluminum strip is a conductor and a microphone membrane. It hangs in the magnetic field between the two pole faces and vibrates according to the frequency of the incident sound wave, generating a certain voltage output at both ends of the aluminum strip.
Capacitor type
The condenser microphone for microphone noise reduction has two metal plates, one of which is coated with the main body film (mostly Teflon propylene) and grounded, and the other plate is connected to the gate of the field-effect transistor, and the pole is connected to the gate of the field-effect transistor. A diode is connected between the chip and the monopole. If the electret diaphragm itself has a charge, the power of the surface charge is Q, and the battery capacity between the plates is C, then the pole head generates a ground voltage U=Q/C. When it is rubbed by vibration or airflow, the vibration will cause the two poles The distance between the plates changes, that is, the capacitor C changes, if the electric q does not change, the voltage changes, and the magnitude of the voltage change.
The membrane film of the condenser microphone for microphone noise reduction is mostly made of PTFE, which has good humidity performance, more surface charge, and little impact of humidity. Because this miniature mobile phone is also a capacitive structure, the internal resistance of the signal is very large. In order to draw out the voltage signal generated by the sound and amplify it, the output end must also use a field-effect transistor.
history
The history of microphones can be traced back to the end of the 19th century. Scientists such as Alexander Graham Bell worked hard to find ways to better select sounds in order to improve the latest invention at the time, the telephone. During this time they invented liquid microphones and carbon microphones, which were not very effective and could only be used grudgingly.
In 1949, Berner Bast Laboratories (the predecessor of Sennheiser) developed an MD4-type microphone that suppressed sound in loud environments and reduced background noise. This is the world's first noise-canceling microphone that suppresses feedback. At the 1961 Messe in Hannover, Germany, Sennheiser displayed the MK102 and MK103 microphones.
These two microphones use a new microphone manufacturing concept - RF RF condenser, that is, a small and thin diaphragm, which ensures small, lightweight, and excellent sound quality. In addition, this microphone is very sensitive to electromagnetic interference. The impact on climate has strong anti-interference performance. It is used by expedition teams and works in the field day and night. The temperature difference is large. In the face of harsh field conditions, the microphone is still outstanding.
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波洛斯PNC102降噪芯片用于对讲机降噪,信噪比达105db,功耗30毫安,成本低,降噪效果好,外围器件简单;最多支持16个GPIO,所有GPIO均可配置为外部中断输入和唤醒源;内置1个支持外接PSRAM的SPI Master@MAX 60M等。
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波洛斯提供两种类型语音芯片:语音降噪芯片、语音识别芯片;语音降噪芯片:提供降噪、回声消除、拾音距离可达10m,接受最多8麦输入,适用65~75dB环境;语音识别芯片:提供最远8米,最多150条,超低功耗,可定制的语音识别功能,支持中英识别。
产品型号
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品类
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适用场景
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拾音/识别距离(m)
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mic数量
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输入
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封装
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描述
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应用领域
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POROSVOC-PNC102
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语音降噪芯片
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65-75dB噪音环境
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0-5m
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1
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模拟数字
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QFN32(5x5mm)
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AI语音芯片、数字音频处理器,搭载POROSVOC单麦DNN神经网络降噪算法
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对讲机 • 通话耳机、话务耳机 • USB麦克风 • 降噪声卡 • 其它降噪收音类产品
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选型表 - 波洛斯 立即选型
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波洛斯公司及产品介绍
型号- PNC102,PNC201,PNC103,EVS,PNC,POROSVOC-20X3,EVS102,EVS201,EVS103,XXX101C,PNC102S,POROSVOC 20X3,EVS系列,PNC系列
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波洛斯的PNC301音频处理芯片搭载POROS麦克风阵列技术、声源定位、DNN神经网络降噪算法、深度神经网络回声消除算法、AGC自动增益调节算法、啸叫抑制、混响消除和其他技术,AI算法+嵌入式SOC芯片深度集成。
波洛斯数字音频处理器选型表
波洛斯PNC系列音频处理芯片,支持1-8个mic,休眠功耗<190mkw, 适用65-105噪音环境,拾音距离可达10米,支持单麦降噪、多麦降噪、回音消除功能
产品型号
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品类
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内置SRAM
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内置FLASH
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运行频率
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DSP
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GPIO
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电源
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封装
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POROSVOC-PNC102
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数字音频处理器
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224KB
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2MB
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240MHz
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YES
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16
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5V
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QFN32
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选型表 - 波洛斯 立即选型
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