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Optimal Acoustic Error Sensing for Global Active Control in a Harmonically Excited Enclosure1

机译:谐波激励机壳中全局主动控制的最佳声学误差检测

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摘要

The performance of an active control system in global control of enclosed sound fields depends largely on the localization of the error sensors, among other factors. In this paper a modified cost function is proposed in order to guarantee the maximum attenuation that can be produced by a set of secondary sources in the case of an harmonically excited sound field. The cost function is modified in order to drive the error signal to the value corresponding to the optimally attenuated sound field, instead of minimizing the squared pressure. To evaluate the performance of the proposed control system, its robustness against unstructured error is also investigated using a set of intensive calculations. Following this approach, the sensors can be located anywhere and the optimal attenuation is reached using an equal number of error sensors and second- ary sources. The results also suggest that the greater the number of error sensors than secondary sources the more robust the control system is. This behavior holds for both the usual strategy of minimizing the squared pressure and the approach presented in this paper. However, the latter strategy is more robust than the tradi- tional approach of minimizing the squared pressures and its robustness does not depend on the location of the error sensors. Thus, as a main conclusion, the use of the new cost function leads to a guaranteed efficiency and a more robust control system and gives absolute freedom in selecting the location of the error sensors.
机译:主动控制系统在封闭声场的整体控制中的性能在很大程度上取决于误差传感器的定位。在本文中,提出了一种改进的成本函数,以保证在谐波激发声场的情况下,一组次级声源可以产生的最大衰减。修改成本函数以便将误差信号驱动到与最佳衰减声场相对应的值,而不是最小化平方压力。为了评估所提出的控制系统的性能,还使用一组密集计算来研究其对非结构化误差的鲁棒性。按照这种方法,传感器可以放置在任何地方,并且使用相同数量的误差传感器和辅助信号源可以达到最佳衰减。结果还表明,误差传感器的数量比次要源的数量更多,控制系统也更加强大。这种行为既适用于最小化平方压力的常规策略,也适用于本文介绍的方法。但是,后一种策略比使平方压力最小的传统方法更可靠,并且其鲁棒性不取决于误差传感器的位置。因此,作为主要结论,使用新的成本函数可确保保证效率并增强控制系统,并在选择误差传感器的位置时提供绝对的自由。

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