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A Monte Carlo-like approach to uncertainty estimation in electric power quality measurements

机译:电能质量测量不确定度估计的类蒙特卡罗方法

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摘要

The assessment of the quality of the electric power supply, as well as that of the electric loads, is becoming a critical problem, especially when the liberalization of the electricity market is involved. Power quality can be evaluated by means of a number of quantities and indices whose measurement is not straightforward and is generally attained by means of digital signal processing techniques based on complex algorithms. The assessment of the uncertainty of the results of such measurements is a critical, open problem. This paper proposes a general purpose approach, based on the Monte Carlo method that, starting from the estimated contributions to the uncertainty of each device in the measurement chain, estimates the probability density distribution of the measurement result, and therefore, its standard uncertainty. This approach has been experimentally validated for the active power measurement and applied to the estimation of the uncertainty of the measurement of more complex power quality indices.
机译:尤其是在涉及电力市场自由化的情况下,对电力供应以及电力负载的质量的评估正在成为关键问题。可以通过许多数量和指标来评估电能质量,这些数量和指标的测量并不直接,通常可以通过基于复杂算法的数字信号处理技术来获得。对这些测量结果的不确定性的评估是一个关键的,开放的问题。本文提出了一种基于蒙特卡洛方法的通用方法,该方法从估计对测量链中每个设备的不确定性的贡献开始,估计测量结果的概率密度分布,并由此估计其标准不确定性。该方法已通过实验验证,用于有功功率测量,并已应用于估计更复杂的电能质量指标的测量不确定度。

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