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A study on the improvement of simulation accuracy in Power Hardware In the Loop simulation.

机译:关于提高电源硬件在环仿真中仿真精度的研究。

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摘要

Power Hardware In Loop (PHIL) simulation is a test method where equipment intended for field application can be debugged and tested in the factory by connecting to a virtual power system model simulated on a real-time simulator. Hence the PHIL simulation may be very effective in developing, debugging and commissioning power equipment. However, due to imperfections (e.g., time delay, noise injection, phase lag, limited bandwidth) in the power interface, simulations in this method show errors or even instable results. This thesis presents means to improve the simulation accuracy of the PHIL simulation. In order to achieve this, a simulation model is constructed for the PHIL simulation process itself. Using simulation, the sensitivity of the simulation to parameters in the interface equipment as well as interface software is thoroughly investigated. One interesting result is that the simulation is significantly affected by phase delay. Based on the analysis, an improved algorithm that uses additional interface filters (implemented in hardware and/or software) is proposed. The thesis shows that more stable and accurate results can be obtained by using the new algorithm. The validity of the proposed methods is verified through a simulation based study and hardware based studies.
机译:电源硬件在环(PHIL)仿真是一种测试方法,通过连接到在实时模拟器上仿真的虚拟电源系统模型,可以在工厂调试和测试用于现场应用的设备。因此,PHIL仿真在电力设备的开发,调试和调试中可能非常有效。但是,由于电源接口中的缺陷(例如,时间延迟,噪声注入,相位滞后,带宽有限),这种方法的仿真显示出错误甚至不稳定的结果。本文提出了提高PHIL仿真的仿真精度的手段。为了实现这一点,为PHIL仿真过程本身构建了一个仿真模型。通过仿真,可以深入研究仿真对接口设备以及接口软件中参数的敏感性。一个有趣的结果是,仿真受相位延迟的影响很大。基于该分析,提出了一种使用附加接口过滤器(以硬件和/或软件实现)的改进算法。论文表明,使用新算法可以得到更加稳定和准确的结果。通过基于仿真的研究和基于硬件的研究,验证了所提出方法的有效性。

著录项

  • 作者

    Yoo, Il Do.;

  • 作者单位

    University of Manitoba (Canada).;

  • 授予单位 University of Manitoba (Canada).;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 151 p.
  • 总页数 151
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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