TY - JOUR
T1 - Evolution of the turbulence structure in the surf and swash zones
AU - Sou, In Mei
AU - Cowen, Edwin A.
AU - Liu, Philip L.F.
N1 - Funding Information:
The authors gratefully acknowledge the financial support of the National Science Foundation (grant no. OCE-0095834) and the Office of Naval Research (grant no. N00014-99-1-0193) for this research. The Office of Naval Research (grant no. N00014-99-1-0591) also supported the development of the PIV system. We are grateful to Professor Harry Yeh at the Oregon State University and Dr Britt Raubenheimer at Woods Hole Oceanographic Institution for suggestions on this work. I. M. Sou wishes to acknowledge the support from the National Science Foundation (grant nos CMS-0245206 and 0324498) and the Oregon State University’s Edwards Endowment. P. L.-F. Liu wishes to acknowledge the support from the Alexander von Humboldt-Stiftung Foundation.
PY - 2010/2/10
Y1 - 2010/2/10
N2 - The velocity field and turbulence structure within the surf and swash zones forced by a laboratory-generated plunging breaking wave were investigated using a particle image velocimetry measurement technique. Two-dimensional velocity fields in the vertical plane from 200 consecutive monochromatic waves were measured at four cross-shore locations, shoreward of the breaker line. The phase-averaged mean flow fields indicate that a shear layer occurs when the uprush of the bore front interacts with the downwash flow. The turbulence characteristics were examined via spectral analysis. The larger-scale turbulence structure is closely associated with the breaking-wave-and the bore-generated turbulence in the surf zone; then, the large-scale turbulence energy cascades to smaller scales, as the turbulent kinetic energy (TKE) evolves from the outer surf zone to the swash zone. Smaller-scale energy injection during the latter stage of the downwash phase is associated with the bed-generated turbulence, yielding a 1 slope in the upper inertial range in the spatial spectra. Depth-integrated TKE budget components indicate that a local TKE equilibrium exists during the bore-front phases and the latter stage of the downwash phases in the outer surf zone. The TKE decay resembles the decay of grid turbulence during the latter stage of the uprush and the early stage of the downwash, as the production rate is small because of the absence of strong mean shear during this stage of the wave cycle as well as the relatively short time available for the growth of the bed boundary layer.
AB - The velocity field and turbulence structure within the surf and swash zones forced by a laboratory-generated plunging breaking wave were investigated using a particle image velocimetry measurement technique. Two-dimensional velocity fields in the vertical plane from 200 consecutive monochromatic waves were measured at four cross-shore locations, shoreward of the breaker line. The phase-averaged mean flow fields indicate that a shear layer occurs when the uprush of the bore front interacts with the downwash flow. The turbulence characteristics were examined via spectral analysis. The larger-scale turbulence structure is closely associated with the breaking-wave-and the bore-generated turbulence in the surf zone; then, the large-scale turbulence energy cascades to smaller scales, as the turbulent kinetic energy (TKE) evolves from the outer surf zone to the swash zone. Smaller-scale energy injection during the latter stage of the downwash phase is associated with the bed-generated turbulence, yielding a 1 slope in the upper inertial range in the spatial spectra. Depth-integrated TKE budget components indicate that a local TKE equilibrium exists during the bore-front phases and the latter stage of the downwash phases in the outer surf zone. The TKE decay resembles the decay of grid turbulence during the latter stage of the uprush and the early stage of the downwash, as the production rate is small because of the absence of strong mean shear during this stage of the wave cycle as well as the relatively short time available for the growth of the bed boundary layer.
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U2 - 10.1017/S0022112009992321
DO - 10.1017/S0022112009992321
M3 - Article
AN - SCOPUS:77952422674
SN - 0022-1120
VL - 644
SP - 193
EP - 216
JO - Journal of Fluid Mechanics
JF - Journal of Fluid Mechanics
ER -