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Investigation into High Efficiency Dc-Dc Converter Topologies for a Dc Microgrid System

机译:直流微电网系统的高效直流-直流转换器拓扑研究

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摘要

Distributed generation in the form of DC microgrids has recently attracted increasing research interest. For integrating primary sources and energy storage devices to the DC bus of a DC microgrid power electronic converters are necessary, but the associated losses may degrade the microgrid efficiency. Therefore, the aim of this work is to develop high-efficiency converters, particularly for fuel cell generators and ultracapacitors energy buffers suitable for use in a stationary distribution system. Based on the evaluation of the fuel cell dynamic performance, a current–fed DC–DC converter design with a lower voltage rating of the switching devices and a higher DC voltage conversion ratio is proposed. A number of optimisation approaches have been applied to further improve the converter efficiency over its full power range. The periodic steady state operation of the converter is analysed in detail; state-space averaging is then used to determine the small signal equations and derive transfer functions. A closed loop controller has been designed and verified by a novel PSpice/Simulink/actual processor co–simulation approach, where the modelling results are validated by experimental results using a model–based design method.\udTo sustain the charging and discharging states of the ultracapacitor, a bidirectional DC–DC converter is required. Based on a comprehensive overview on different DC–DC converter topologies, the research presented here has shown that, bidirectional voltage–fed topology is better suited for dealing with the fast dynamic response of the ultracapacitor. But for a wide input voltage variation, this topology exhibits a higher circulating power flow and higher conduction losses as a consequence. Therefore, a detailed analysis of the bidirectional converter exploring the impact of the circulating power flow interval is developed in this study. Analytic methods have been applied to establish the optimal operation of the bidirectional voltage–fed converter for an ultracapacitor to improve its performance and efficiency. Based on these methods, a novel modulation scheme is proposed that minimises the circulating power flow in the converter, that has been verified by detailed simulation.
机译:DC微电网形式的分布式发电最近吸引了越来越多的研究兴趣。为了将主电源和能量存储设备集成到DC微电网功率电子转换器的DC总线是必需的,但是相关的损耗可能会降低微电网的效率。因此,这项工作的目的是开发一种高效转换器,尤其是适用于固定配电系统的燃料电池发电机和超级电容器能量缓冲器。基于对燃料电池动态性能的评估,提出了一种电流馈送DC-DC转换器设计,该设计具有较低的开关设备额定电压和较高的DC电压转换比。已经应用了许多优化方法来进一步提高转换器在其整个功率范围内的效率。详细分析了转换器的周期性稳态工作;然后使用状态空间平均来确定小信号方程式并导出传递函数。闭环控制器已通过新颖的PSpice / Simulink /实际处理器协同仿真方法进行了设计和验证,其中建模结果通过使用基于模型的设计方法通过实验结果进行了验证。\ ud要维持模型的充电和放电状态超级电容器,需要双向DC-DC转换器。基于对不同DC-DC转换器拓扑的全面概述,此处提出的研究表明,双向电压馈电拓扑更适合处理超级电容器的快速动态响应。但是对于较大的输入电压变化,这种拓扑会表现出更高的循环功率流和更高的传导损耗。因此,本研究对双向转换器进行了详细分析,以探索循环功率流动间隔的影响。已经应用了分析方法来为超级电容器建立双向电压馈电转换器的最佳工作,以改善其性能和效率。基于这些方法,提出了一种新颖的调制方案,该方案使转换器中的循环功率流最小化,该方案已通过详细的仿真验证。

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  • 作者

    Ahmed, Oday Ali;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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