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A General Framework for Automated Physics-Based Reduced-Order Modeling of Electromechanical Systems

机译:基于自动化物理的机电系统的综合框架

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Physics-based models of electromechanical systems, such as finite element-based models and/or high-fidelity magnetic equivalent circuits, accurately represent underlying magnetic devices. However, these models usually introduce hundreds to thousands of state variables and are computationally intensive. Moreover, including relative motion in the physics-based dynamic modeling of electromechanical systems is not a trivial task. In this paper, relative motion is incorporated in highly accurate full-order models that are based on geometrical and material data. Automated linear and nonlinear order-reduction techniques are introduced to mathematically extract the essential system dynamics in the desired bandwidth, thus preserving both accuracy and computational efficiency. The resulting reduced-order systems are verified using finite elementbased models and magnetic equivalent circuits in both time and frequency domains.
机译:基于物理的机电系统模型,例如有限元基模型和/或高保真磁性等效电路,准确地表示底层磁性装置。然而,这些模型通常介绍数百到数千个状态变量,并且是计算密集的。此外,包括机电系统的基于物理的动态建模中的相对运动不是微不足道的任务。本文以基于几何和材料数据的高准确的全阶模型结合了相对运动。引入自动线性和非线性顺序减少技术以在所需带宽中数学上提取基本系统动态,从而保持精度和计算效率。在时间和频率域中使用有限元基模型和磁等效电路来验证所产生的缩小系统。

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