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首页> 外文期刊>International Journal of Reliability and Safety >Data-driven calibration of power conductors thermal model for overhead lines overload protection
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Data-driven calibration of power conductors thermal model for overhead lines overload protection

机译:数据驱动的电力导体热模型标定,用于架空线路过载保护

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摘要

The increasing complexity of transmission networks may cause a significant rise in the load flows during and after serious system disturbances. In this context, accurate thermal rating assessment of overhead lines is essential to maximise infrastructure utilisation, while ensuring a reliable functioning of the power networks. Thermal assessment demands reliable simulation models to provide short and long term predictions of thermal behaviour. Although many physical based models are available nowadays, the incomplete knowledge of many parameters drastically narrows their range of application and their effectiveness. Typical sources of uncertainty are the non-stationary load and the fluctuating operating conditions. This paper proposes a gradient-based data driven technique for calibrating a thermal dynamic model on the basis of observed measures. The approach relies on the computation of the dynamics of the sensitivity of the solution of a differential equation to variations of the parameters. The approach is assessed by calibrating the IEEE thermal model of an overhead power conductor, on the basis of a real dataset recorded under a variety of operating and weather conditions.
机译:传输网络日益复杂,可能在严重的系统干扰期间和之后导致潮流明显增加。在这种情况下,对架空线进行准确的热额定值评估对于最大程度地利用基础架构,同时确保电力网络的可靠运行至关重要。热评估需要可靠的仿真模型,以提供热行为的短期和长期预测。尽管当今有许多基于物理的模型可用,但是许多参数的不完全知识极大地缩小了它们的应用范围和有效性。不确定性的典型来源是非固定负载和波动的运行条件。本文提出了一种基于梯度的数据驱动技术,用于基于观察到的措施来校准热动力学模型。该方法依赖于微分方程解对参数变化的灵敏度的动态计算。通过在各种操作和天气条件下记录的实际数据集的基础上,通过校准架空电力导体的IEEE热模型来评估该方法。

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