混合动力汽车逆变器仿真系统的开发及其应用

K. Torii, T. Kojima, S. Sasaki, K. Hamada
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引用次数: 6

摘要

本文介绍了一种新的高压逆变器电-热-机械耦合仿真方法,一种快速准确计算的建模技术,仿真结果,几种应用及其验证。该模型基于电路仿真技术,通过对包括封装结构在内的电机、电机控制器、功率半导体器件及其驱动电路、互连、平滑电容器和功率半导体热电路进行建模得到。控制系统模型包含电机的许多动态特性和车辆规格,计算得到的电流、电压和载频数据作为驱动条件输入到逆变电路中。利用该建模技术,由于模型参数受加速性能的影响,在16小时的计算时间内完成了5秒的全油门仿真。该逆变器系统模型能够模拟所有逆变器组件的各种特性,例如控制器、硅芯片、器件封装、冷却结构和驱动电路。模拟误差在5%以下。该技术不仅可以模拟单个组件,还可以模拟逆变器系统中多个组件之间的相互影响。因此,可以优化逆变器的设计,从而有助于显著改善高压电机的高加速性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of Inverter Simulation System and its Applications for Hybrid Vehicles
This article describes an electro-thermal-mechanical coupled simulation newly developed for HV inverters, a modeling technique for fast and accurate calculation, simulation results, several applications and their verifications. The model is based on an electric circuit simulation technique and is obtained by modeling a motor, motor controller, power semiconductor devices and their driver circuits, interconnection, smoothing capacitors, and thermal circuits of power semiconductors including package structure. The current, voltage, and carrier frequency data computed from the control system model containing many dynamic characteristics of motor and vehicle specifications as driving conditions were inputted into the inverter circuit. Using this modeling technique, a five-second full-throttle simulation was completed in sixteen hours of computation time because of the model parameter determined by the effect of acceleration performance. This inverter system model enables simulations with various characteristics from all inverter components, such as the controller, the silicon chip, device packages, cooling structure and driver circuits. The error in the simulation is below five percent. This technique enables not only simulation of single components but also of the mutual impact among several components in an inverter system. As a result, the inverter design could be optimized, thus contributing to significant improvements in the high acceleration performance of HVs.
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