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Closed-Loop d${bm i}/$d ${bm t}$ and d ${bm v}/$d${bm t}$ IGBT Gate Driver

机译:闭环d $ {bm i} / $ d $ {bm t} $ 和d $ {bm v} / $ d $ {bm t} $ IGBT栅极驱动器

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摘要

This paper proposes a new concept for attaining a defined switching behavior of insulated-gate bipolar transistors (IGBTs) at inductive load (hard) switching, which is a key prerequisite for optimizing the switching behavior in terms of switching losses and electromagnetic interference (EMI). First, state-of-the-art gate driver concepts that enable a control of the IGBT's switching transients are reviewed. Thereafter, a highly dynamic closed-loop IGBT gate driver using simple passive and feedbacks and employing a single analog PI-controller is proposed. Contrary to conventional passive gate drivers, this concept enables an individual control of the current and voltage slopes largely independent of the specific parameters or nonlinearities of the IGBT. Accordingly, a means for optimizing the tradeoff between switching losses, switching delay times, reverse recovery current of the freewheeling diode, turn-off overvoltage, and EMI is gained. The operating principle of the new gate driver is described and based on derived control oriented models of the IGBT, a stability analysis of the closed-loop control is carried out for different IGBT modules. Finally, the proposed concept is experimentally verified for different IGBT modules and compared to a conventional resistive gate driver.
机译:本文提出了一种新概念,用于在感应负载(硬)切换时获得绝缘栅双极型晶体管(IGBT)的定义的切换行为,这是在开关损耗和电磁干扰(EMI)方面优化切换行为的关键前提。首先,回顾了能够控制IGBT开关瞬态的最新栅极驱动器概念。此后,提出了一种采用简单无源和反馈并采用单个模拟PI控制器的高动态闭环IGBT栅极驱动器。与传统的无源栅极驱动器相反,该概念使电流和电压斜率的单独控制在很大程度上与IGBT的特定参数或非线性无关。因此,获得了一种用于优化开关损耗,开关延迟时间,续流二极管的反向恢复电流,关断过电压和EMI之间的权衡的手段。描述了新型栅极驱动器的工作原理,并基于派生的IGBT控制模型,对不同IGBT模块进行了闭环控制的稳定性分析。最后,针对不同的IGBT模块对提出的概念进行了实验验证,并将其与传统的电阻式栅极驱动器进行了比较。

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