Earthquakes and Structures

Volume 26, Number 4, 2024, pages 311-326

DOI: 10.12989/eas.2024.26.4.311

Study on the influence of structural and ground motion uncertainties on the failure mechanism of transmission towers

Zhaoyang Fu, Li Tian, Xianchao Luo, Haiyang Pan, Juncai Liu and Chuncheng Liu

Abstract

Transmission tower structures are particularly susceptible to damage and even collapse under strong seismic ground motions. Conventional seismic analyses of transmission towers are usually performed by considering only ground motion uncertainty while ignoring structural uncertainty; consequently, the performance evaluation and failure prediction may be inaccurate. In this context, the present study numerically investigates the seismic responses and failure mechanism of transmission towers by considering multiple sources of uncertainty. To this end, an existing transmission tower is chosen, and the corresponding three-dimensional finite element model is created in ABAQUS software. Sensitivity analysis is carried out to identify the relative importance of the uncertain parameters in the seismic responses of transmission towers. The numerical results indicate that the impacts of the structural damping ratio, elastic modulus and yield strength on the seismic responses of the transmission tower are relatively large. Subsequently, a set of 20 uncertainty models are established based on random samples of various parameter combinations generated by the Latin hypercube sampling (LHS) method. An uncertainty analysis is performed for these uncertainty models to clarify the impacts of uncertain structural factors on the seismic responses and failure mechanism (ultimate bearing capacity and failure path). The numerical results show that structural uncertainty has a significant influence on the seismic responses and failure mechanism of transmission towers; different possible failure paths exist for the uncertainty models, whereas only one exists for the deterministic model, and the ultimate bearing capacity of transmission towers is more sensitive to the variation in material parameters than that in geometrical parameters. This research is expected to provide an in-depth understanding of the influence of structural uncertainty on the seismic demand assessment of transmission towers.

Key Words

failure path; seismic responses; sensitivity analysis; transmission tower; ultimate bearing capacity; uncertainty analysis

Address

Zhaoyang Fu, Li Tian, Xianchao Luo and Haiyang Pan: 1)Shandong Research Institute of Industrial Technology, Jinan, Shandong Province 250098, PR China, 2) School of Civil Engineering, Shandong University, Jinan, Shandong Province 250061, PR China Juncai Liu: School of Civil Engineering, Shandong University, Jinan, Shandong Province 250061, PR China Chuncheng Liu: Northeast Electric Power University., Jilin, Jilin Province, 132012, PR China