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Cascaded Converters for Integration and Management of Grid Level Energy Storage Systems

机译:用于电网级储能系统集成和管理的级联转换器

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摘要

This research work proposes two cascaded multilevel inverter structures for BESS. The gating and switching control of switching devices in both inverter typologies are done by using a phase-shifted PWM scheme. The first proposed isolated multilevel inverter is made up of three-phase six-switch inverter blocks with a reduced number of power components compared with traditional isolated CHB. The suggested isolated converter has only one battery string for three-phase system that can be used for high voltage and high power applications such as grid connected BESS and alternative energy systems. The isolated inverter enables dq frame based simple control and eliminates the issues of single-phase pulsating power, which can cause detrimental impacts on certain dc sources. Simulation studies have been carried out to compare the proposed isolated multi-level inverter with an H-bridge cascaded transformer inverter. The simulation results verified the performance of the isolated inverter. The second proposed topology is a Hierarchal Cascaded Multilevel Converter (HCMC) with phase to phase SOC balancing capability which also for high voltage and high power battery energy storage systems. The HCMC has a hybrid structure of half-bridge converters and H-bridge inverters and the voltage can be hierarchically cascaded to reach the desired value at the half-bridge and the H-bridge levels. The uniform SOC battery management is achieved by controlling the half-bridge converters that are connected to individual battery modules/cells. Simulation studies and experimental results have been carried on a large scale battery system under different operating conditions to verify the effectiveness of the proposed inverters. Moreover, this dissertation presents a new three-phase SOC equalizing circuit, called six-switch energy-level balancing circuit (SSBC), which can be used to realize uniform SOC operation for full utilization of the battery capacity in proposed HCMC or any CMI inverter while keeping balanced three-phase operation. A sinusoidal PWM modulation technique is used to control power transferring between phases. Simulation results have been carried out to verify the performance of the proposed SSBC circuit of uniform three-phase SOC balancing.
机译:这项研究工作为BESS提出了两个级联的多电平逆变器结构。两种逆变器类型中的开关器件的选通和开关控制都是通过使用相移PWM方案完成的。提出的第一个隔离式多电平逆变器由三相六开关逆变器模块组成,与传统的隔离式CHB相比,其功率分量减少了。建议的隔离式转换器只有一个用于三相系统的电池串,可用于高压和高功率应用,例如并网的BESS和替代能源系统。隔离式逆变器可实现基于dq帧的简单控制,并消除了单相脉动功率的问题,后者可能会对某些直流电源造成不利影响。已经进行了仿真研究,以将提出的隔离式多电平逆变器与H桥级联变压器逆变器进行比较。仿真结果验证了隔离式逆变器的性能。提出的第二种拓扑是具有相间SOC平衡能力的分级级联多电平转换器(HCMC),该级联转换器也适用于高压和大功率电池储能系统。 HCMC具有半桥转换器和H桥逆变器的混合结构,并且电压可以分层层叠以在半桥和H桥电平上达到所需值。通过控制连接到各个电池模块/电池的半桥转换器,可以实现统一的SOC电池管理。在大型电池系统上,在不同的工作条件下进行了仿真研究和实验结果,以验证所提出的逆变器的有效性。此外,本文提出了一种新的三相SOC均衡电路,称为六开关能量级平衡电路(SSBC),可用于实现均匀的SOC操作,以充分利用所建议的HCMC或任何CMI逆变器中的电池容量同时保持平衡的三相运行。正弦PWM调制技术用于控制相之间的功率传输。仿真结果已经验证了所提出的SSBC电路具有均匀三相SOC平衡的性能。

著录项

  • 作者

    Alaas, Zuhair.;

  • 作者单位

    Wayne State University.;

  • 授予单位 Wayne State University.;
  • 学科 Electrical engineering.;Engineering.;Energy.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 133 p.
  • 总页数 133
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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