TY - JOUR
T1 - Enhanced extreme wave statistics of irregular waves due to accelerating following current over a submerged bar
AU - Zhang, Jie
AU - Ma, Yuxiang
AU - Tan, Ting
AU - Dong, Guohai
AU - Benoit, Michel
N1 - Publisher Copyright:
© 2023 The Author(s).
PY - 2023/1/10
Y1 - 2023/1/10
N2 - We present experimental results of irregular long-crested waves propagating over a submerged trapezoidal bar with the presence of a background current in a wave flume. We investigate the non-equilibrium phenomenon (NEP) induced by significant changes of water depth and mean horizontal flow velocity as wave trains pass over the bar. Using skewness and kurtosis as proxies, we show evidence that an accelerating following current could increase the sea-state non-Gaussianity and enhance both the magnitude and spatial extent of the NEP. We also find that below a 'saturation relative water depth' kph2 ≈ 0.5 (kp being the peak wavenumber in the shallow area of depth h2), although the NEP manifests, the decrease of the relative water depth does not further enhance the maximum skewness and kurtosis over the bar crest. This work highlights the nonlinear physics according to which a following current could provoke higher freak wave risk in coastal areas where modulation instability plays an insignificant role.
AB - We present experimental results of irregular long-crested waves propagating over a submerged trapezoidal bar with the presence of a background current in a wave flume. We investigate the non-equilibrium phenomenon (NEP) induced by significant changes of water depth and mean horizontal flow velocity as wave trains pass over the bar. Using skewness and kurtosis as proxies, we show evidence that an accelerating following current could increase the sea-state non-Gaussianity and enhance both the magnitude and spatial extent of the NEP. We also find that below a 'saturation relative water depth' kph2 ≈ 0.5 (kp being the peak wavenumber in the shallow area of depth h2), although the NEP manifests, the decrease of the relative water depth does not further enhance the maximum skewness and kurtosis over the bar crest. This work highlights the nonlinear physics according to which a following current could provoke higher freak wave risk in coastal areas where modulation instability plays an insignificant role.
KW - surface gravity waves
KW - topographic effects
UR - https://www.scopus.com/pages/publications/85146151440
U2 - 10.1017/jfm.2022.1022
DO - 10.1017/jfm.2022.1022
M3 - Article
AN - SCOPUS:85146151440
SN - 0022-1120
VL - 954
JO - Journal of Fluid Mechanics
JF - Journal of Fluid Mechanics
M1 - A50
ER -