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Development of physics-based models and design optimization of power electronic conversion systems.

机译:基于物理模型的开发和电力电子转换系统的设计优化。

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摘要

The main objective for physics based modeling of the power converter components is to design the whole converter with respect to physical and operational constraints. Therefore, all the elements and components of the energy conversion system are modeled numerically and combined together to achieve the whole system behavioral model.;Previously proposed high frequency (HF) models of power converters are based on circuit models that are only related to the parasitic inner parameters of the power devices and the connections between the components. This dissertation aims to obtain appropriate physics-based models for power conversion systems, which not only can represent the steady state behavior of the components, but also can predict their high frequency characteristics. The developed physics-based model would represent the physical device with a high level of accuracy in predicting its operating condition.;The proposed physics-based model enables us to accurately develop components such as; effective EMI filters, switching algorithms and circuit topologies [7]. One of the applications of the developed modeling technique is design of new sets of topologies for high-frequency, high efficiency converters for variable speed drives. The main advantage of the modeling method, presented in this dissertation, is the practical design of an inverter for high power applications with the ability to overcome the blocking voltage limitations of available power semiconductor devices. Another advantage is selection of the best matching topology with inherent reduction of switching losses which can be utilized to improve the overall efficiency.;The physics-based modeling approach, in this dissertation, makes it possible to design any power electronic conversion system to meet electromagnetic standards and design constraints. This includes physical characteristics such as; decreasing the size and weight of the package, optimized interactions with the neighboring components and higher power density. In addition, the electromagnetic behaviors and signatures can be evaluated including the study of conducted and radiated EMI interactions in addition to the design of attenuation measures and enclosures.
机译:基于物理的功率转换器组件建模的主要目标是针对物理和操作约束来设计整个转换器。因此,对能量转换系统的所有元素和组件进行数值建模,并组合在一起以形成整个系统的行为模型。以前提出的功率转换器的高频(HF)模型基于仅与寄生有关的电路模型功率设备的内部参数以及组件之间的连接。本文旨在为功率转换系统获得合适的基于物理的模型,该模型不仅可以表示组件的稳态行为,而且可以预测其高频特性。所开发的基于物理的模型将在预测其运行状况时以较高的精度表示物理设备。所提出的基于物理的模型使我们能够准确地开发诸如以下组件:有效的EMI滤波器,开关算法和电路拓扑[7]。开发的建模技术的应用之一是为变速驱动器的高频,高效率转换器设计新的拓扑集。本文提出的建模方法的主要优点是,针对大功率应用的逆变器的实际设计具有克服现有功率半导体器件的阻断电压限制的能力。另一个优点是选择了最佳匹配的拓扑结构,从而固有地减少了开关损耗,可以用来提高整体效率。本文基于物理的建模方法使设计任何满足电磁要求的电力电子转换系统成为可能。标准和设计约束。这包括物理特性,例如;减小了封装的尺寸和重量,优化了与相邻组件的交互,并提高了功率密度。此外,除了设计衰减措施和外壳外,还可以评估电磁行为和特征,包括研究传导和辐射的EMI相互作用。

著录项

  • 作者

    Nejadpak, Arash.;

  • 作者单位

    Florida International University.;

  • 授予单位 Florida International University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 352 p.
  • 总页数 352
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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