Derivation, Validation, and Numerical Implementation of a Two-Dimensional Boulder Transport Formulation by Coastal Waves

Author:

Watanabe Masashi1,Yoshii Takumi2,Roeber Volker34,Goto Kazuhisa5,Imamura Fumihiko6

Affiliation:

1. Earth Observatory of Singapore, Nanyang Technological University, N2-01A-15, 50 Nanyang Avenue 639798, Singapore

2. Sustainable System Research Laboratory, Central Research Institute of Electric Power Industry, 1646 Abiko, Chiba 270-1194, Japan

3. Department of Oceanography, University of Hawai’ at Mānoa, Marine Sciences Building, 1000 Pope Road, Honolulu, HI 96822, USA

4. Université de Pau et des Pays de l’Adour, E2S UPPA Chair HPC-Waves, Allée du Parc Montaury 64600 Anglet, France

5. Department of Earth and Planetary Science, The University of Tokyo, 7-3-1 Hongo, Tokyo 113-0033, Japan

6. International Research Institute of Disaster Science, Tohoku University, Aoba 468-1 Aramaki, Aoba-ku Sendai 980-8572, Japan

Abstract

Numerical computations for boulder transport have become a state-of-the-art tool for hindcasting the hydraulic processes associated with past storm wave and tsunami events. Since most previously developed two-dimensional formulations cater to boulders with symmetric outlines, they can consequently reproduce the transport distance and the velocity of boulders of cubic shape or similar structured geometries reasonably well. However, the formulations exhibit limitations when applied to rectangular- and flat-shaped boulders. The presently available formulations have difficulties reproducing the variations of frictional drag force due to the changes of the boulders’ contact time with the ground. We have developed an extended boulder transport formulation and derived a new empirical roughness coefficient by considering the shape of boulders that accounts for the changes of the boulders’ contact time with the ground. In comparison to other existing transport formulations, the present method provides superior accuracy of block velocity and transport distance in most cases — especially for boulders of rectangular geometry. Even by neglecting the full three-dimensional processes, numerical computations extended with the proposed boulder transport formulation can help explaining historic wave regimes, which were responsible for the transport of a variety of coastal boulders reported around the world.

Funder

JSPS fellows

Publisher

World Scientific Pub Co Pte Ltd

Subject

Geophysics,Geotechnical Engineering and Engineering Geology,Oceanography

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