TY - JOUR
T1 - Seismic performance of monopile-supported offshore wind turbines in operation under near-field and far-field ground motions considering soil-structure interaction
AU - Ma, Baowei
AU - Zhou, Annan
AU - Lin, Kun
AU - Jeng, Dong Sheng
N1 - Publisher Copyright:
© 2026 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY license. http://creativecommons.org/licenses/by/4.0/
PY - 2026/3/30
Y1 - 2026/3/30
N2 - This study experimentally investigates the seismic behaviour of monopile-supported wind turbines (MWTs) under near-field (Chi-Chi) and far-field (Superstition) ground motions, incorporating operational conditions and soil-structure interaction (SSI) effect. Experiments involve three peak ground acceleration (PGA) levels (0.14 g, 0.40 g, and 0.8 g) and three operational states (corresponding wind speeds: 0 m/s, 4.6 m/s, and 8.5 m/s). The results demonstrate that near-field excitations lead to increases of 85 % in nacelle displacement, 11 % in nacelle acceleration, 42 % in base bending moment and 73 % in pile head rotation angle compared to far-field motions under extreme wind and seismic loads. Time-frequency analysis of nacelle response shows that the SSI delays pile-soil interaction and activates multiple modes. Compared to rigid foundation (Ma et al., 2025), SSI enhances seismic energy dissipation, particularly by filtering high-frequency components. As a result, acceleration amplification factors (APF) remain within 1-2 for wind turbines with SSI foundation, whereas they can reach up to 5 for rigid foundations. However, SSI foundations show greater tilt and displacement, revealing a trade-off between reduced nacelle acceleration and increased deformation. Although wind loading is not the dominant driver during earthquakes, it amplifies peak responses, highlighting the need to consider seismic characteristics, SSI, and turbine operation in design.
AB - This study experimentally investigates the seismic behaviour of monopile-supported wind turbines (MWTs) under near-field (Chi-Chi) and far-field (Superstition) ground motions, incorporating operational conditions and soil-structure interaction (SSI) effect. Experiments involve three peak ground acceleration (PGA) levels (0.14 g, 0.40 g, and 0.8 g) and three operational states (corresponding wind speeds: 0 m/s, 4.6 m/s, and 8.5 m/s). The results demonstrate that near-field excitations lead to increases of 85 % in nacelle displacement, 11 % in nacelle acceleration, 42 % in base bending moment and 73 % in pile head rotation angle compared to far-field motions under extreme wind and seismic loads. Time-frequency analysis of nacelle response shows that the SSI delays pile-soil interaction and activates multiple modes. Compared to rigid foundation (Ma et al., 2025), SSI enhances seismic energy dissipation, particularly by filtering high-frequency components. As a result, acceleration amplification factors (APF) remain within 1-2 for wind turbines with SSI foundation, whereas they can reach up to 5 for rigid foundations. However, SSI foundations show greater tilt and displacement, revealing a trade-off between reduced nacelle acceleration and increased deformation. Although wind loading is not the dominant driver during earthquakes, it amplifies peak responses, highlighting the need to consider seismic characteristics, SSI, and turbine operation in design.
KW - Near and far-field ground motion
KW - Shaking table test
KW - Soil-structure interaction
KW - Wind tunnel test
KW - Wind turbine
UR - https://www.scopus.com/pages/publications/105035262447
U2 - 10.1016/j.oceaneng.2026.124294
DO - 10.1016/j.oceaneng.2026.124294
M3 - 文章
AN - SCOPUS:105035262447
SN - 0029-8018
VL - 350
JO - Ocean Engineering
JF - Ocean Engineering
M1 - 124294
ER -