一种新的高频交流逆变器混合调制方案的性能评估:在光伏、风能、燃料电池和DER/存储应用中的应用

S. Mazumder, A. Rathore
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引用次数: 17

摘要

基于SiC(和即将到来的GaN)的功率半导体器件、高磁导率纳米晶高频(HF)变压器以及先进的处理和传感能力的进步,为基于高频交流链路(HFACL)的隔离逆变器系统铺平了道路,这些系统具有广泛的应用,包括大功率(HP)可再生能源和替代能源系统(例如光伏、风能、燃料电池能源系统)、DG/DER应用、有源滤波器、储能、和紧凑的国防功率转换模块。与传统的基于硅的低频高压系统不同,这些应用中的开关需要在20-50 kHz的频率下工作,而不受传统高压器件(例如基于硅的igct, gto)的限制。此外,HFACL系统消除了固定直流链路(FDCL)方法中需要的中间直流链路滤波器。然而,这种HP和HF方法的挑战之一是切换损耗。在这方面,本文证明了在比例功率条件下,最近概述并获得专利的混合调制(HM)方案的有效性,该方案可以将HFACL逆变器的ac/ac转换器的开关损耗降低高达66%。与最先进的空间矢量调制(SVM)方案相比,这也导致了电压利用率的提高,并降低了器件电流应力。我们还证明,即使基于HM的HFACL方法在没有直流电容的情况下工作,逆变器的输出THD并不比基于SVM的FDCL逆变器差。HM方案不同于所有报道的不连续调制(DM)方案,其中逆变器最后一级的输入是直流而不是脉动直流;此外,在HM方案中,ac/ac转换器的2个支路中的开关在60°周期内不改变状态,并且任何一个支路中的开关在总体240°内不改变状态。相比之下,对于传统的DM方案,在ac/ac转换器的一个分支的大多数开关在60°或120°周期内不会改变级。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance evaluation of a new hybrid-modulation scheme for high-frequency-ac-link inverter: Applications for PV, wind, fuel-cell, and DER/storage applications
Advances in SiC (and upcoming GaN) based power semiconductor devices, high-permeability nanocrystalline high-frequency (HF) transformers, and advanced processing and sensing capabilities have paved the way for HF-ac-link (HFACL) based isolated inverter systems that have wide applications encompassing high-power (HP) renewable- and alternative-energy systems (e.g. photovoltaic, wind, fuel-cell energy systems), DG/DER applications, active filters, energy storage, and compact defense power-conversion modules. Unlike conventional Si-based low-frequency HP systems, the switches in these applications need to operate at frequencies 20–50 kHz instead of being limited by conventional HP devices (e.g. Si-based IGCTs, GTOs). Additionally, HFACL systems eliminate the intermediate dc-link filters, which are needed in fixed-dc-link (FDCL) approaches. However, one of the challenges of such HP and HF approaches is switching loss. In that regard, this paper demonstrates, under scaled-power condition, the efficacy of a recently-outlined and patented hybrid-modulation (HM) scheme, which can reduce the switching losses of the ac/ac converter of a HFACL inverter by up to 66%. This also leads to improved voltage utilization as compared to state-of-the-art space-vector-modulation (SVM) schemes and reduction in device current stress. We also demonstrate that, even though the HM based HFACL approach works without a dc-link capacitor, the output THD of the inverter is not worse than the SVM based FDCL inverter. The HM scheme is unlike all reported discontinuous-modulation (DM) schemes where the input to the final stage of the inverter is a dc and not a pulsating-dc; further, in the HM scheme, switches in 2 legs of the ac/ac converter do not change state in a 60° cycle and switches in any one leg do not change state for an overall 240°. In contrast, for a conventional DM scheme, at most switches of 1 leg of the ac/ac converter do not change stage in a 60° or 120° cycle.
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