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Transient analysis of erroneous tripping at grassridge static VAr compensator

机译:草堆静态Var补偿器误跳闸的瞬态分析

摘要

The research work conducted and presented forward in this document is the evaluation of real time values obtained using three recording devices at two independent locations and implementing them as recorder devices in Eskom’s power system. The research work conducted was presented at an IEEE International Conference (ICIT2013) and Appendix A shows the accepted paper presented. A derived model within a simulation software package known as DIgSILENT PowerFactory is created and Electromagnetic Transient (EMT) studies are performed and then compared to the real time values obtained using the OMICRON CMC 356’s. Transformers are normally energised via a circuit breaker which is controlled by an auxiliary closing contact. By applying system voltage at a random instant in time on the transformer windings may result in a large transient magnetizing inrush current which causes high orders of 2nd harmonic currents to flow under no load conditions. A philosophy known to mitigate these currents is to energise the transformer by controlling each individual phase 120 degrees apart with the first pole closing at the peak on the voltage waveform. Transients produced due to 500MVA transformers been introduced into the power system at a certain space in time can cause nuisance tripping’s at the particular location where the respective transformer is energised. OMICRON EnerLyzer is the software tool used for the Comtrade recordings at both locations. Four independent case studies are generated within EnerLyzer software and the relevant Comtrade files are extracted for the four independent case studies relative to Transformer1 and Transformer2 switching’s. TOP software, which is a mathematical tool used to analyse Comtrade files, is then used to analyse and investigate the four case studies. Results from DIgSILENT PowerFactory are then generated according to the derived model. The results extracted depict three scenarios, indicating a power system that is weak, strong and specifically a power system that correlates to the actual tripping of a Static VAr Compensator (SVC). The results are all formulated and then evaluated in order to produce a conclusion and bring forward recommendations to Eskom in order to effectively ensure the Dedisa/Grassridge power system is reliable once again.
机译:在本文档中进行并提出的研究工作是对在两个独立位置使用三个记录设备获得的实时值的评估,并将它们实现为Eskom电力系统中的记录器设备。进行的研究工作在IEEE国际会议(ICIT2013)上进行了介绍,附录A显示了被接受的论文。在称为DIgSILENT PowerFactory的仿真软件包中创建了派生模型,并进行了电磁瞬态(EMT)研究,然后将其与使用OMICRON CMC 356所获得的实时值进行比较。变压器通常通过断路器供电,断路器由辅助闭合触点控制。通过在变压器绕组上随机的时间点施加系统电压,可能会导致较大的瞬态励磁涌流,这会导致大量的二次谐波电流在无负载条件下流动。减轻这些电流的一种已知哲学是通过控制每个单独的相距120度来使变压器通电,并使第一极在电压波形的峰值处闭合。将500MVA变压器产生的瞬变现象在一定的时间间隔内引入电力系统中,可能会在相应的变压器通电的特定位置引起误跳闸。 OMICRON EnerLyzer是用于两个位置的Comtrade录音的软件工具。在EnerLyzer软件中生成了四个独立的案例研究,并提取了与Transformer1和Transformer2开关相关的四个独立案例研究的相关Comtrade文件。 TOP软件是一种用于分析Comtrade文件的数学工具,然后用于分析和调查这四个案例研究。然后根据派生的模型生成DIgSILENT PowerFactory的结果。提取的结果描述了三种情况,分别表示电力系统处于弱,强状态,特别是与静态VAr补偿器(SVC)的实际跳闸相关的电力系统。所有结果均经过公式化,然后进行评估,以得出结论,并向Eskom提出建议,以有效确保Dedisa / Grassridge电力系统再次可靠。

著录项

  • 作者

    Taberer Marcel Wayne;

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  • 年度 2013
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  • 原文格式 PDF
  • 正文语种 English
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