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Condition Evaluation of Dry-type Transformer Based on High-dimensional Random Matrix Theory

机译:基于高维随机矩阵理论的干式变压器状态评估

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Epoxy dry-type transformer plays a key role in the offshore oil platform power system. The normal operation of dry-type transformers faces many challenges, mainly due to the long maintenance period, high reliability requirements and complex offshore power requirements. At the same time, the offshore power system has formed a big data environment. In this context of power system, big data analysis methods are urgently needed. Based on the high-dimensional random matrix theory, this paper firstly considers various factors which have influence on the state of dry-type transformers to construct a condition evaluation matrix, and then analyzes the eigenvalue distribution of the condition evaluation matrix which was formed by time series data. In order to reflect changes in eigenvalue distribution, the mean spectral radius (MSR) was introduced. Through it, we can find the trend of key performance changes, and detect abnormalities in key performance of equipment in time. Finally, the effectiveness of the proposed method is illustrated by an example.
机译:环氧干式变压器在海上石油平台电力系统中起着关键作用。干式变压器的正常运行面临许多挑战,这主要是由于维护周期长,可靠性要求高和海上电力要求复杂。同时,海上电力系统已经形成了大数据环境。在电力系统的背景下,迫切需要大数据分析方法。基于高维随机矩阵理论,本文首先考虑了影响干式变压器状态的各种因素,构建了状态评价矩阵,然后分析了时间形成的状态评价矩阵的特征值分布系列数据。为了反映特征值分布的变化,引入了平均光谱半径(MSR)。通过它可以发现关键性能变化的趋势,并及时发现设备关键性能的异常情况。最后,通过实例说明了该方法的有效性。

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