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Probabilistic capacity assessment of single circuit transmission tower-line system subjected to strong winds

机译:强风下单回路输电塔线系统的概率容量评估

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摘要

The safety and resilience of physical infrastructure of the power systems, including the transmission towers and lines for high-voltage transmission as well as the poles and wires for power distribution at a lower voltage level, is critical to avoid and recover from power outages under the extreme weather related loads such as strong winds from hurricanes, tornados, downbursts or isolated thunderstorms. In the current engineering practices, single circuit lattice steel towers linked by transmission lines are widely used to form power transmission systems. Failure of either a structural component (local failures, such as buckling of a local member or breakage of a single wire) or the entire structure (global failures, such as instability of the entire tower) could propagate to their adjacent structural members or systems (such as neighboring towers or lines). Therefore, there is a strong need to identify the root cause of the failure of the transmission tower-line system and identify the weakest link under various extreme weather scenarios. This study is to develop a probabilistic assessment approach for a typical transmission tower-line system subjected to strong wind loadings under synoptic winds (atmospheric boundary layer wind). Due to the complicated structural details and complex wind-structure interactions, wind tunnel experiments were carried out to obtain the static wind load coefficients for different panels of the transmission towers as well as for the transmission lines. Incremental dynamic analysis (IDA) is carried out to obtain the capacity curve for the transmission tower-line system. Uncertainties from the meteorological parameters are also considered in the analysis. The probabilities of failure for the two predefined limit state functions are obtained considering the meteorological uncertainties. Meanwhile, the probabilities of failure at different return periods are presented for a transmission tower-line system subjected to strong winds in a coastal region. Finally, the effects of the aerodynamic damping for the transmission lines on the dynamic responses of the tower line system are discussed, as well.
机译:电力系统物理基础设施的安全性和弹性,包括用于高压传输的输电塔和输电线路以及用于在较低电压水平下进行配电的电线杆和电线,对于避免在这种情况下停电并从停电中恢复至关重要。与极端天气有关的负载,例如飓风,龙卷风,暴发性或孤立的雷暴带来的强风。在当前的工程实践中,通过传输线连接的单回路晶格钢塔被广泛用于形成电力传输系统。结构组件的故障(局部故障,例如局部构件的屈曲或单根电线的断裂)或整个结构的故障(全局故障,例如整个塔架的不稳定性)都可能传播到其相邻的结构构件或系统(例如邻近的塔楼或线路)。因此,迫切需要确定输电塔线系统故障的根本原因,并确定各种极端天气情况下的最薄弱环节。这项研究旨在为典型的输电塔线系统开发一种概率评估方法,该系统在天气风(大气边界层风)下承受强风荷载。由于复杂的结构细节和复杂的风结构相互作用,进行了风洞实验,以获取输电塔的不同面板以及输电线路的静态风荷载系数。进行增量动态分析(IDA),以获得输电塔线系统的容量曲线。分析中还考虑了气象参数的不确定性。考虑到气象不确定性,获得了两个预定义极限状态函数的故障概率。同时,给出了在沿海地区遭受强风的输电塔线系统在不同返回期的故障概率。最后,还讨论了传输线空气动力阻尼对塔架系统动力响应的影响。

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