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Modeling the Sound Pressure Loss of an Electromechanical Active Helmholtz Resonator

机译:建模机电活动亥姆霍兹谐振器的声压损失

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A muffler attached to an engine attenuates sound over a dedicated frequency range. This research involves the development of an active muffler that is keyed to the revolutions per minute (rpm) of the engine and suppresses the fundamental frequency being exhausted through the tailpipe. The active muffler consists of a tracking side-branch resonator terminated with a composite piezoelectric transducer. The use of an exponential horn as a resonating cavity and terminated with a composite piezoelectric transducer is presented. This would create Electromechanical Active Helmholtz Resonator (EMAHR) creates a notch that can be moved between 200-1000 Hz. The use of acoustical-to-mechanical, mechanical-to-electrical, and analog-to-digital transformations to develop a system model for the active muffler are presented. These transforms will be presented as two-port network parameters. The use of two-port networks to model the electroacoustic system are a defining factor in the analysis. The two-port network parameters for the pipe, horn and piezoelectric transducer are discussed. Using the developed electroacoustic model in simulation the system can be further developed, specifically the load on the composite piezoelectric transducer. The load can be produced with analog-to-digital, digital, and digital-to-analog circuitry. A microcontroller can be used to perform filtering to produce the desired current from the voltage input, or response of an electrical impedance. This impedance generation with a microcontroller is briefly discussed. The sound pressure level results of the modeling are shown over the frequency range of 200-1000 Hz. The maximum sound pressure loss at these frequencies is characterized by the model for the EMAHR.
机译:连接到发动机的消声器衰减专用频率范围的声音。该研究涉及开发有源消声器,其被关键在于发动机的每分钟转速(RPM)并抑制通过尾管排出的基波频率。主动消声器包括与复合压电换能器终止的跟踪侧分支谐振器组成。呈现指数喇叭作为谐振腔并用复合压电换能器终止。这将创建机电活动Helmholtz谐振器(EMAHR)创建一个可以在200-1000 Hz之间移动的凹口。提出了使用声学,机械到电气和模数转换来开发用于有源消声器的系统模型。这些变换将作为双端口网络参数呈现。使用双端口网络来模拟电声系统是分析中的定义因素。讨论了管道,喇叭和压电换能器的双端口网络参数。使用在仿真中使用开发的电声模型,可以进一步开发系统,特别是复合压电换能器上的负载。可以使用模数转到数字,数字和数模电路生产负载。微控制器可用于执行滤波以产生从电压输入的所需电流,或电阻的响应。简要讨论了具有微控制器的阻抗生成。建模的声压级结果显示在200-1000Hz的频率范围内。这些频率的最大声压损失是由EMAHR的模型为特征。

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