Computational control for strongly coupled structure, electric, and fluid systems

V. Shankar, P. Ramegowda, D. Ishihara
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Abstract

Abstract Piezoelectric-structure interaction (PSI) and fluid-structure interaction (FSI) are multi-physics coupled systems. These interactions affect the vibration characteristics of coupled systems and thus such complex coupled systems must be controlled. This paper proposes computational control based on the finite element method for strongly coupled multi-physics analysis of the PSI of a thin flexible piezoelectric bimorph actuator. The vibration characteristics and the effect of direct velocity and displacement feedback (DVDFB) control in coupled systems are investigated. The displacement and velocity feedback gains are used together as well as separately. DVDFB control is extended to the FSI of stiff and soft structures to study vibration characteristics using active control and compare the stability of the two types of structure. The results of PSI show a reduction in actuator displacement amplitude and a shift in the resonance frequency due to DVDFB control. For FSI, the results for a stiff material show a reduction in displacement. The velocity feedback gain has no effect for a stiff material and leads to instability due to a large control force. The results for a soft material show a reduction in displacement and amplitude and more stability compared to the case for the stiff material.
强耦合结构、电力和流体系统的计算控制
压电-结构相互作用(PSI)和流固耦合(FSI)是多物理场耦合系统。这些相互作用会影响耦合系统的振动特性,因此必须对这种复杂的耦合系统进行控制。本文提出了一种基于有限元法的计算控制方法,用于柔性压电双晶片作动器的多物理场强耦合分析。研究了耦合系统的振动特性和直接速度与位移反馈控制的效果。位移和速度反馈增益可以同时使用,也可以单独使用。将DVDFB控制扩展到刚性和软结构的振动特性,采用主动控制方法研究两种结构的振动特性,并比较两种结构的稳定性。PSI的结果表明,由于DVDFB控制,驱动器位移幅度减小,共振频率发生移位。对于FSI,刚性材料的结果显示位移减少。速度反馈增益对刚性材料没有影响,并且由于较大的控制力而导致不稳定。结果表明,与刚性材料相比,软材料的位移和振幅减小,稳定性更高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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