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An Improved System of Active Noise Isolation Using a Self-sensing Actuator and Neural Network

机译:使用自感应执行器和神经网络的主动噪声隔离系统的改进

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摘要

In this paper we present an improved active noise isolation method, consisting of a self-sensing actuator, a neural network identifier and an adaptive feedback controller using a finite impulse response (FIR) filter and the Filtered-X LMS algorithm, in which no acoustical sensors were necessary to suppress the noise transmission through a plate structure. The structure is a composite plate with an embedded piezoelectric patch. Based on the self-sensing technique, the same piezoelectric element functions as both a sensor and an actuator. A bridge circuit was used to separate the sensor signal from the actuator signal on the piezoelectric patch and the obtained signal was used in the identification of the sound pressure of a point in the space. A neural network was used instead of the Rayleigh's integral formula for the identification of the sound pressure as used in the former study. The results show that the proposed control approach using both a self-sensing actuator (SSA) and neural network identifier exhibited better noise control performance than using Rayleigh's integral formula. It also exhibited similar noise control performance to the traditional control system using a microphone, although the new system used only one piezoelectric patch for both the sensor and actuator.
机译:在本文中,我们提出了一种改进的有源噪声隔离方法,该方法包括自感应执行器,神经网络标识符和使用有限冲激响应(FIR)滤波器和Filtered-X LMS算法的自适应反馈控制器,其中没有声学传感器对于抑制噪声通过板结构的传播是必不可少的。该结构是带有嵌入式压电贴片的复合板。基于自感应技术,相同的压电元件既可以用作传感器也可以用作执行器。使用桥电路将传感器信号与压电贴片上的致动器信号分离,并将获得的信号用于识别空间中某个点的声压。如先前的研究中所使用的那样,使用神经网络代替瑞利积分公式来识别声压。结果表明,与使用瑞利积分公式相比,同时使用自感应致动器(SSA)和神经网络标识符的控制方法具有更好的噪声控制性能。它也表现出与使用麦克风的传统控制系统类似的噪声控制性能,尽管新系统仅对传感器和执行器使用了一个压电片。

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