Comprehensive seismic performance analyses of pile-supported transmission tower-line systems considering ground motion spatial variation and incident direction

Chao Li, Pei Yang, Hong‐Nan Li, Hong Hao, Haiyang Pan, L. Tian, Ruisheng Ma
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Abstract

Pile-supported transmission tower-line systems (PTTSs) play a vital and indispensable role in reliable and efficient transmission of electricity. Their safety and normal operation under earthquake events are of great importance. Previous studies on seismic performance of PTTSs have typically been conducted under the assumptions of fixed foundations, uniform excitations, and deterministic seismic incident direction along the transmission lines, which do not necessarily reflect the real scenarios in earthquakes. To address this problem, a comprehensive seismic performance analysis approach is proposed for PTTSs spanning uneven sites, in which the influences of soil–structure interaction (SSI), depth-varying spatial ground motions (DSGMs), and seismic incident directions are thoroughly considered. In particular, the finite element model of a realistic PTTS is first established, and its accuracy is verified by static loading tests performed for the full-scale transmission tower. Then, the simulation approach for DSGMs considering the effects of wave passage, bidirectional coherence, and local site is introduced, and the DSGMs at heterogeneous site of the PTTS under various incident directions are stochastically synthesized. Finally, the seismic responses and fragilities of the PTTS are computed by utilizing the DSGMs from various incident directions as inputs. The results demonstrated that SSI, seismic excitation type, and incident direction can significantly affect the seismic performance of the PTTS, especially for the tower located at a soft site. Under various seismic incident directions, the difference between the largest and smallest fragility median peak ground acceleration (PGA) of the PTTS can reach more than 40%, and the conventional 0°, 90°, or 180° excitation may not be the most adverse incident direction. This study can provide an in-depth understanding of the seismic performance of PTTSs constructed along the sites with complex and varying geological conditions, which benefits the rational and reliable designs of large-scale transmission networks to ensure their safety and functionality under earthquake hazards.
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考虑地面运动空间变化和入射方向的桩基支撑输电塔线路系统综合抗震性能分析
桩基支撑输电塔线路系统(PTTS)在可靠、高效的电力传输中发挥着不可或缺的重要作用。它们在地震事件中的安全和正常运行非常重要。以往对 PTTS 抗震性能的研究通常是在固定地基、均匀激励和确定性地震沿输电线路入射方向的假设条件下进行的,这并不一定能反映地震中的真实情况。针对这一问题,本文提出了一种针对跨越不平整场地的 PTTS 的综合地震性能分析方法,其中全面考虑了土-结构相互作用(SSI)、深度可变空间地动(DSGM)和地震入射方向的影响。其中,首先建立了现实 PTTS 的有限元模型,并通过全尺寸输电塔的静力加载试验验证了该模型的准确性。然后,介绍了考虑波浪通过、双向相干性和局部场地影响的 DSGM 模拟方法,并随机合成了不同入射方向下 PTTS 异质场地的 DSGM。最后,利用不同入射方向的 DSGM 作为输入,计算了 PTTS 的地震响应和脆性。结果表明,SSI、地震激励类型和入射方向会显著影响 PTTS 的抗震性能,尤其是对于位于软场地的塔架。在不同的地震入射方向下,PTTS 的最大和最小脆性中值峰值地加速度(PGA)之差可达到 40% 以上,而传统的 0°、90° 或 180°激振方向可能不是最不利的入射方向。本研究可深入了解在地质条件复杂多变的场地沿线建设的 PTTS 的抗震性能,有利于大型输电网络的合理可靠设计,确保其在地震灾害下的安全性和功能性。
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