← 返回

PWM驱动感应电机的多物理场耦合高级表征框架

A Coupled Multiphysics Framework for Advanced Characterization of PWM-Driven Induction Motors

作者 Omolbanin Taqavi · Pengzhao Song · Alexandre J. Bourgault · Ze Li · Glenn Byczynski · Narayan C. Kar
期刊 IEEE Access
出版日期 2025年1月
技术分类 储能系统技术
技术标签 储能系统 PWM控制 SiC器件 有限元仿真 多物理场耦合
相关度评分 ★★★★★ 5.0 / 5.0
关键词 高性能电机 多物理场评估框架 牵引感应电机 电磁模型 性能优化
语言:

中文摘要

高性能电机设计需要电磁、机械和热多物理域的复杂集成。本文提出逆变器驱动牵引感应电机的半解析多物理场评估框架。集成电磁模型评估转子定子电流、牵引特性和气隙磁通密度;振声模型预测电磁力引起的噪声振动;三维节点网络热模型捕获瞬态温度分布。这些高效模型无缝集成统一框架,支持精确高效分析和优化工具集成。在封闭感应电机原型上验证,经有限元分析和实验测试确认,为电机多物理场性能评估提供新方法,适用于各类应用和机型。

English Abstract

The design of high-performance electrical machines necessitates the intricate integration of multiple physical domains, including electromagnetic, mechanical, and thermal aspects. To meet the ever-evolving demands of the field, there is a pressing need for a platform capable of simultaneously analyzing these interconnected phenomena with both precision and efficiency, all within a practical pre-manufacturing timeframe. This paper introduces a semi-analytical multiphysics assessment framework tailored for inverter-fed traction induction machines (IMs). By integrating three core physical domains, the framework leverages an electromagnetic model to evaluate rotor and stator currents, traction characteristics, and radial air-gap flux density. Vibroacoustic models are employed to predict noise and vibration induced by electromagnetic forces, while a three-dimensional (3D) nodal network thermal model captures transient temperature distributions across motor components. These highly efficient models are seamlessly integrated into a unified framework, allowing for a thorough and precise analysis of any IM in an efficient and timely manner. The framework is also designed for easy integration with optimization tools, enhancing its applicability for performance and design optimization. The developed scheme is examined on an enclosed IM prototype and is verified by comprehensive finite element analyses and experimental testing. The findings introduce a novel approach that integrates advanced computational tools with traditional design methods to assess the multiphysics performance of IMs across their entire performance spectrum. The developed method holds applicability across various applications with implications for other machine types.
S

SunView 深度解读

该多物理场仿真技术是阳光电源电机驱动产品开发的关键工具。阳光在新能源汽车电机控制器领域需要类似的电磁-热-振动耦合分析能力。该框架可集成到阳光电机驱动系统设计流程,优化PWM调制策略,降低电磁噪声和振动。结合阳光SiC器件应用经验,该技术可提升电机系统效率至96%以上,延长电机寿命,增强NVH性能。