← 返回

多电平逆变器在恶劣矿山环境中运行的IGBT模块可靠性分析

Reliability Analysis of IGBT Modules of Multilevel Inverters Operating in Hostile Mining Environments

语言:

中文摘要

脉宽调制电压源逆变器(PWM-VSI)广泛应用于 adjustable speed drives(ASD)中以控制感应电机。在重工业应用中,ASD与电机之间的长电缆会引发高频问题。一种创新方案是将逆变桥和直流母线电容移至电机侧,利用长电缆作为直流输电线路以缓解该问题。然而,逆变器在恶劣环境下的可靠性面临新挑战。本文基于失效物理(PoF)与可靠性设计方法,针对IGBT模块开展可靠性分析,优化设计并降低成本。结果表明,采用两种PWM策略及400 A–6.5 kV IGBT的三电平有源中点钳位(3L-ANPC)拓扑在可靠性和可行性方面最优。

English Abstract

Throughout many Industries, pulse width modulation voltage source inverters (PWM-VSI) are commonly utilized within adjustable speed drives (ASD) to control induction motors. For many application within various heavy industries, the cables connecting the output of some ASDs to their motor loads can be extremely long. These long cable applications can cause several operational challenges. As an innovative solution, an alternative system configuration has been previously proposed, in which the rectifier is kept in its typical location, and the inverter bridge and DC bus capacitors are installed near the driven motor. The long cables running from the ASD to the motor are used as a DC transmission line, mitigating the high-frequency problems resulting from the inverter-cable-motor interaction. However, new concerns regarding the reliability of the power devices arise once the inverter is installed in harsh ambient conditions. In this context, this work proposes a reliability analysis of such drive configuration, applying the physics of failure (PoF) approach combined with the design for reliability methodology to carry out the design adjustments to achieve the reliability and minimizing implementation costs required for the application, focusing on the inverter IGBT modules. The results show that a three-level active neutral point clamped inverter (3L-ANPC) topology, applying two pulse width modulation (PWM) strategies and 400 Amp.–6.5 kV IGBTs, would be the most appropriate from this study's reliability and feasibility analyses.
S

SunView 深度解读

该IGBT模块可靠性分析技术对阳光电源多条产品线具有重要价值。针对恶劣环境的PoF可靠性设计方法可直接应用于ST储能变流器和SG光伏逆变器的功率模块优化,特别是沙漠、高原等极端工况下的PowerTitan储能系统。三电平ANPC拓扑与PWM策略优化可提升1500V光伏系统和大功率储能PCS的效率与寿命。研究中的热应力分析和失效预测模型可集成到iSolarCloud智能运维平台,实现功率器件的预测性维护。此外,长电缆直流输电方案对分布式光伏汇流和储能系统直流侧设计具有借鉴意义,有助于降低系统成本并提高可靠性。