Local scour evolution around monopile and pile-group foundations under unsteady flow

Offshore wind energy has developed rapidly, increasing demand for pile foundations in marine environments. This study investigated scour around a monopile and a square 2 × 2 pile group through flume tests under a unidirectional current with linearly increasing and decreasing velocity. 3D bed-topography measurements examined the effects of peak velocity, velocity change rate, and G / D . For the monopile, scour developed rapidly, continued after peak velocity, and then partially backfilled. Among seven surveyed instants, the largest measured scour depth generally occurred at t = 2 T / 3 ; the depth at t = T / 2 reached 78.8%–97.8% of that value. Within fixed-peak-velocity groups, a lower velocity change rate allowed scour to develop more fully, whereas cross-group differences also reflected peak velocity, total duration, duration above critical incipient velocity, and cumulative hydraulic forcing. Relative to steady-current references based on time-averaged velocity, unsteady flow increased the largest measured scour depth by approximately 33%–46%. For the pile group, increasing G / D from 1.5 to 3.5 changed the bed configuration from an integrated scour hole to superposed local scour holes and weakened backfilling. The W ∗ – Z ∗ effective-flow-work method described the largest measured scour state more consistently than the final state, with a preliminary pile-group extension using spacing-dependent correction factors.

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Publication Details

Journal
Ocean Engineering
Published
2026-09-17
DOI
https://doi.org/10.1016/j.oceaneng.2026.128106
Primary Topic
Hydrology and Sediment Transport Processes
Type
article
Field-Weighted Citation Impact
0.00

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Local scour evolution around monopile and pile-group foundations under unsteady flow

Youxiang Lu, Bingchen Liang, Meng Ye, Shengjia Cui et al.
Ocean Engineering
Hydrology and Sediment Transport Processes
article

Local scour evolution around monopile and pile-group foundations under unsteady flow

Youxiang Lu, Bingchen Liang, Meng Ye, Shengjia Cui, Bo Yang, Zhenlu Wang
article en

Abstract

Offshore wind energy has developed rapidly, increasing demand for pile foundations in marine environments. This study investigated scour around a monopile and a square 2 × 2 pile group through flume tests under a unidirectional current with linearly increasing and decreasing velocity. 3D bed-topography measurements examined the effects of peak velocity, velocity change rate, and G / D . For the monopile, scour developed rapidly, continued after peak velocity, and then partially backfilled. Among seven surveyed instants, the largest measured scour depth generally occurred at t = 2 T / 3 ; the depth at t = T / 2 reached 78.8%–97.8% of that value. Within fixed-peak-velocity groups, a lower velocity change rate allowed scour to develop more fully, whereas cross-group differences also reflected peak velocity, total duration, duration above critical incipient velocity, and cumulative hydraulic forcing. Relative to steady-current references based on time-averaged velocity, unsteady flow increased the largest measured scour depth by approximately 33%–46%. For the pile group, increasing G / D from 1.5 to 3.5 changed the bed configuration from an integrated scour hole to superposed local scour holes and weakened backfilling. The W ∗ – Z ∗ effective-flow-work method described the largest measured scour state more consistently than the final state, with a preliminary pile-group extension using spacing-dependent correction factors.

Ocean EngineeringVol. 367
Tianjin University of Science and Technology (CN), Tianjin University of Technology (CN), Zhejiang Institute of Hydraulics & Estuary (CN), Ocean University of China (CN)
National Natural Science Foundation of China, Natural Science Foundation of Zhejiang Province
Life below water
Openalex Percentile: Top 11%
Hydrology and Sediment Transport Processes
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