Free Long-Wave Transformation in the Nearshore Zone through Partial Reflections

Author:

Contardo Stephanie12ORCID,Lowe Ryan J3,Dufois Francois45,Hansen Jeff E2,Buckley Mark6,Symonds Graham2

Affiliation:

1. a CSIRO Environment, Crawley, Western Australia, Australia

2. b School of Earth Sciences, The University of Western Australia, Crawley, Western Australia, Australia

3. c Oceans Graduate School, The University of Western Australia, Crawley, Western Australia, Australia

4. d Pacific Community Center for Ocean Science, Pacific Community (SPC), Nouméa, New Caledonia

5. e IFREMER, DYNECO/DHYSED, Plouzané, France

6. f St. Petersburg Coastal and Marine Science Center, U.S. Geological Survey, St. Petersburg, Florida

Abstract

Abstract Long waves play an important role in coastal inundation and shoreline and dune erosion, requiring a detailed understanding of their evolution in nearshore regions and interaction with shorelines. While their generation and dissipation mechanisms are relatively well understood, there are fewer studies describing how reflection processes govern their propagation in the nearshore. We propose a new approach, accounting for partial reflections, which leads to an analytical solution to the free wave linear shallow-water equations at the wave-group scale over general varying bathymetry. The approach, supported by numerical modeling, agrees with the classic Bessel standing solution for a plane sloping beach but extends the solution to arbitrary alongshore uniform bathymetry profiles and decomposes it into incoming and outgoing wave components, which are a combination of successively partially reflected waves lagging each other. The phase lags introduced by partial reflections modify the wave amplitude and explain why Green’s law, which describes the wave growth of free waves with decreasing depth, breaks down in very shallow water. This reveals that the wave amplitude at the shoreline is highly dependent on partial reflections. Consistent with laboratory and field observations, our analytical model predicts a reflection coefficient that increases and is highly correlated with the normalized bed slope (bed slope relative to wave frequency). Our approach shows that partial reflections occurring due to depth variations in the nearshore are responsible for the relationship between the normalized bed slope and the amplitude of long waves in the nearshore, with direct implications for determining long-wave amplitudes at the shoreline and wave runup.

Funder

the University of Western Australia

Bluelink Partnership

Publisher

American Meteorological Society

Subject

Oceanography

Reference86 articles.

1. Abdelrahman, S. M., 1986: Shore wave modulation due to infragravity waves in the nearshore zone, with applications. Ph.D. dissertation, Naval Postgraduate School, 128 pp.

2. On the influence of reflection over a rhythmic swash zone on surf zone dynamics;Almar, R.,2018

3. Long wave generation by the shoaling and breaking of transient wave groups on a beach;Baldock, T. E.,2006

4. Battjes, J. A., 1974: Surf similarity. 14th Int. Conf. on Coastal Engineering, Copenhagen, Denmark, American Society of Civil Engineers, 466–480, https://icce-ojs-tamu.tdl.org/icce/article/view/1971/1464.

5. Shoaling of subharmonic gravity waves;Battjes, J. A.,2004

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