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Subsystem design in aircraft power distribution systems using optimization.

机译:使用优化的飞机配电系统中的子系统设计。

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The research reported in this dissertation focuses on the development of optimization tools for the design of subsystems in a modern aircraft power distribution system. The baseline power distribution system is built around a 270V DC bus. One of the distinguishing features of this power distribution system is the presence of regenerative power from the electrically driven flight control actuators and structurally integrated smart actuators back to the DC bus. The key electrical components of the power distribution system are bidirectional switching power converters, which convert, control and condition electrical power between the sources and the loads. The dissertation is divided into three parts.; Part I deals with the formulation of an optimization problem for a sample system consisting of a regulated DC-DC buck converter preceded by an input filter. The individual subsystems are optimized first followed by the integrated optimization of the sample system. It is shown that the integrated optimization provides better results than that obtained by integrating the individually optimized systems.; Part II presents a detailed study of piezoelectric actuators. This study includes modeling, optimization of the drive amplifier and the development of a current control law for piezoelectric actuators coupled to a simple mechanical structure.; Linear and nonlinear methods to study subsystem interaction and stability are studied in Part III. A multivariable impedance ratio criterion applicable to three phase systems is proposed. Bifurcation methods are used to obtain global stability characteristics of interconnected systems. The application of a nonlinear design methodology, widely used in power systems, to incrementally improve the robustness of a system to Hopf bifurcation instability is discussed.
机译:本文的研究重点是为现代飞机配电系统中子系统设计的优化工具的发展。基线配电系统围绕270V DC总线构建。该配电系统的显着特征之一是存在从电动飞行控制执行器和结构集成的智能执行器返回直流母线的再生功率。配电系统的关键电气组件是双向开关电源转换器,可在电源和负载之间转换,控制和调节电源。本文共分为三个部分。第一部分介绍了一个样例系统的优化问题,该样例系统由一个稳压DC-DC降压转换器和一个输入滤波器组成。首先对各个子系统进行优化,然后对样本系统进行集成优化。结果表明,集成优化比集成单独优化的系统提供的结果更好。第二部分对压电致动器进行了详细研究。这项研究包括建模,驱动放大器的优化以及与简单机械结构耦合的压电致动器的电流控制律的发展。第三部分研究了研究子系统相互作用和稳定性的线性和非线性方法。提出了适用于三相系统的多变量阻抗比准则。分叉方法用于获得互连系统的整体稳定性。讨论了非线性设计方法在电力系统中的应用,以逐步提高系统对Hopf分叉不稳定性的鲁棒性。

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