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Practical implementation of an acoustic-based modal filtering sensing technique for active noise control

机译:主动噪声控制的基于声学的模态滤波传感技术的实际实现

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摘要

To accurately measure the global radiated sound power from a large noise source a significant number of sensors, either acoustic of vibration sensors, are required. In this paper a sensing system containing 128 acoustic sensors, a number beyond the capabilities of current large sensing systems, is experimentally implemented and investigated in real-time. At the heart of the sensing strategy is the development of orthogonal acoustic radiating shapes, orthogonal patterns which can be applied to any noise source, structural or non-structural. The aim of the sensing strategy is to then decompose the large number of sensor signals into a smaller number of signals, which accurately represent a global quantity. The decomposition uses frequency independent weights over a wide frequency band (20-800 Hz) to calculate radiated sound power, thus reducing the filtering process to simple multiplication and addition. To complete the filtering task, custom built electronics capable of 128 inputs and outputs sampling at 5.5 kHz has been developed. This paper examines the capabilities of the modal filtering device and contains a detailed examination of the multipole decomposition itself. Experimental analysis has been carried out on a simply supported panel, however should the technique give an accurate estimate of power, it is applicable beyond structures to any noise source.
机译:为了精确地测量来自大噪声源的整体辐射声功率,需要大量的传感器,或者是振动传感器的声学传感器。在本文中,一个包含128个声学传感器的传感系统已经过实验并实时进行了研究,其数量超出了当前大型传感系统的能力。传感策略的核心是正交声辐射形状的发展,正交声辐射图可以应用于结构或非结构性任何噪声源。然后,传感策略的目的是将大量传感器信号分解为更少量的信号,这些信号准确地代表了一个整体。分解使用宽频带(20-800 Hz)上与频率无关的权重来计算辐射声功率,从而将滤波过程简化为简单的乘法和加法。为了完成过滤任务,已经开发了定制的电子设备,能够以5.5 kHz的采样率对128个输入和输出进行采样。本文研究了模态滤波设备的功能,并详细分析了多极分解本身。实验分析是在一个简单支撑的面板上进行的,但是,如果该技术能够准确估计功率,则它不仅适用于结构,而且适用于任何噪声源。

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