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Space vector modulation of multi-level and multi-module converters for high power applications.

机译:用于高功率应用的多级和多模块转换器的空间矢量调制。

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摘要

This thesis presents and investigates Space Vector Modulation (SVM) switching strategies for (i) a multi-level Diode-Clamped Converter (DCC) and (ii) a multi-module Voltage-Sourced Converter (VSC) system in which each module is a conventional two-level VSC. Although the SVM strategies are general and applicable for n-level DCC and n-module VSC systems, this text only concentrates on five-level DCC and four-module VSC systems.;For a four-module VSC system a sequential sampling SVM strategy is proposed. The proposed strategy (i) provides harmonic cancellation/minimization at the net AC-side voltage of the multi-module VSC system, and (ii) offers a low switching frequency for each VSC module.;Technical feasibility of the proposed SVM strategies for a five-level DCC and a four-module VSC system, as a STATCOM and a back-to-back HVDC system, are investigated and presented. The studies are conducted in the time-domain, in the PSCAD/EMTDC software environment.;For a five-level DCC, a computationally efficient SVM algorithm is proposed. The algorithm, that is based on a classifier Neural Network (NN), reduces the computational time for the SVM realization. Therefore, adequate saving of processor execution time, in each sampling period of SVM, is provided to carry out other functions, e.g. the calculations required for DC-capacitor voltage balancing task. The thesis also proposes a DC-capacitor voltage balancing strategy to counteract the voltage drift phenomenon of (i) a passive-front-end five-level DCC, and (ii) a back-to-back connected five-level DCC system. The proposed balancing strategy, that is based on augmenting the proposed SVM algorithm, takes advantage of the redundant switching states to minimize a quadratic cost function associated with voltage deviations of the DC-capacitors. The salient features of the proposed balancing strategy are (i) online calculation of SVM to select the best switching states, (ii) minimization of switching frequency, (iii) minimization of the THD content of the AC-side voltage, and (iv) no requirement for additional power circuitry.
机译:本文提出并研究了(i)多级二极管钳位转换器(DCC)和(ii)多模块电压源转换器(VSC)系统的空间矢量调制(SVM)切换策略,其中每个模块都是一个常规的两级VSC。尽管SVM策略是通用的,并且适用于n级DCC和n模块VSC系统,但是本文仅集中于五级DCC和四模块VSC系统;对于四模块VSC系统,顺序采样SVM策略是建议。建议的策略(i)在多模块VSC系统的净交流侧电压下提供谐波消除/最小化,并且(ii)为每个VSC模块提供低开关频率。研究并提出了五级DCC和四模块VSC系统(STATCOM和背对背HVDC系统)。在PSCAD / EMTDC软件环境中的时域中进行了研究。对于五级DCC,提出了一种计算有效的SVM算法。该算法基于分类器神经网络(NN),减少了SVM实现的计算时间。因此,在SVM的每个采样周期中,提供了处理器执行时间的充分节省,以执行其他功能,例如,SVM。直流电容器电压平衡任务所需的计算。本文还提出了一种直流电容器电压平衡策略,以抵消(i)无源前端五电平DCC和(ii)背对背连接的五电平DCC系统的电压漂移现象。所提出的平衡策略基于对所提出的SVM算法的增强,利用了冗余的开关状态来最小化与直流电容器的电压偏差相关的二次成本函数。提出的平衡策略的显着特征是(i)在线计算SVM以选择最佳开关状态;(ii)最小化开关频率;(iii)最小化交流侧电压的THD含量;以及(iv)无需额外的电源电路。

著录项

  • 作者

    Saeedifard, Maryam.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 176 p.
  • 总页数 176
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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