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On the stability of decentralized AVC/ASAC for large-scale structures

机译:分散式AVC / ASAC在大型结构中的稳定性

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Promising results have been achieved in controlling vibration and noise emission/transmission of single panel structures using active vibration control (AVC) and active structural acoustic control (ASAC). In most cases the contributed work has focused on a single panel or a section of the fuselage/lining. However, an AVC/ASAC system can only be effective when it is expanded to the entire fuselage structure. This expansion inevitably leads to a large number of sensors and actuators. For model-based control approaches especially, the system identification and the proof-of-stability would be challenging and probably not realizable. In this article a strategy for such large-scale problems is investigated. A decentralized control approach with collocated actuator-sensor pairs is proposed. Since adjacent control loops are highly coupled by the underlying structure, special attention has to be given to the global stability of the entire control system. Instead of proving local stability and setting a global master gain, a method for the tuning of the single collocated control loops is developed that takes the cross-couplings into account. Based on data of DLR's experimental aircraft Dornier 728, it can be shown that the new method increases the performance of the control system compared to the mastergain method.
机译:在使用主动振动控制(AVC)和主动结构声学控制(ASAC)来控制单面板结构的振动和噪声发射/传播方面取得了可喜的结果。在大多数情况下,所做的工作集中在单个面板或机身/内衬的一部分上。但是,AVC / ASAC系统仅在扩展到整个机身结构时才有效。这种扩展不可避免地导致大量的传感器和致动器。特别是对于基于模型的控制方法,系统识别和稳定性证明将具有挑战性,并且可能无法实现。在本文中,研究了解决此类大规模问题的策略。提出了具有并置的执行器-传感器对的分散控制方法。由于相邻的控制回路与底层结构高度耦合,因此必须特别注意整个控制系统的全局稳定性。代替证明局部稳定性和设置全局主增益,而是开发了一种考虑交叉耦合的用于调整单个并置控制环的方法。根据DLR实验飞机Dornier 728的数据,可以证明,与主增益方法相比,新方法提高了控制系统的性能。

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