New Dynamic End-to-End Modeling of More Electric Aircraft Power Systems

Mehrdad Mark Ehsani, Ahmad Bashaireh
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Abstract

Aircraft power and propulsion system design is evolving towards more electric technology for the purpose of improving overall efficiency. This poses new challenges for modelling, simulation, optimal design of systems containing mechanical and electrical components, including many switching power electronic converters. The generalized gyrator theory and time-domain transfer function theory provide new tools for studying the dynamics and stability of such electromechanical systems. This paper presents these concepts to help with the analysis, design and control of the more electric aircraft. Using the generalized gyrator theory, the mechanical components can be transferred to the electrical side of the system and representedby their electrical models. The time-domain transfer function theory of power electronics provides a method to model switching power electronics converters as a generalized transformer. This allows for the referral of circuit elements from one side of the switching converter to the other. As a result, the complex aircraft electromechanical system can be reduced to an electrical circuit simplified model. This will assist in the detailed analysis, design and control of the system, prior to physical prototyping (iron-bird). In addition, the overall system circuit model will provide a better insight into the operation and interactions between the components of the system. Basic theory, example case studies, and future applications and benefits to the more electric aircraft will be presented and discussed
多电动飞机动力系统的新动态端到端建模
为了提高整体效率,飞机动力和推进系统的设计正朝着更电气化的方向发展。这对包括许多开关电力电子变换器在内的机械和电气元件系统的建模、仿真和优化设计提出了新的挑战。广义旋量理论和时域传递函数理论为研究此类机电系统的动力学和稳定性提供了新的工具。本文提出了这些概念,以帮助更多的电动飞机的分析,设计和控制。利用广义旋转理论,可以将机械部件转移到系统的电气侧,并用它们的电气模型来表示。电力电子学的时域传递函数理论提供了一种将开关电力电子变换器建模为广义变压器的方法。这允许将电路元件从开关转换器的一侧转到另一侧。因此,可以将复杂的飞机机电系统简化为电路简化模型。这将有助于在物理原型(铁鸟)之前对系统进行详细分析、设计和控制。此外,整个系统电路模型将更好地了解系统组件之间的操作和交互。基本理论,案例研究,以及未来的应用和更多的电动飞机的好处将被介绍和讨论
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