Articles | Volume 17, issue 5
https://doi.org/10.5194/nhess-17-641-2017
https://doi.org/10.5194/nhess-17-641-2017
Research article
 | 
10 May 2017
Research article |  | 10 May 2017

A numerical study of tsunami wave impact and run-up on coastal cliffs using a CIP-based model

Xizeng Zhao, Yong Chen, Zhenhua Huang, Zijun Hu, and Yangyang Gao

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Cited articles

Baptista, A. M., Priest, G. R., and Murty, T. S. M.: Field survey of the 1992 Nicaragua tsunami, Mar. Geod., 16, 169–203, https://doi.org/10.1080/15210609309379687, 1993.
Boussinesq, J.: Théorie des ondes et des remous qui se propagent le long d'un canal rectangulaire horizontal, en communiquant au liquide contenu dans ce canal des vitesses sensiblement pareilles de la surface au fond, Journal de Mathématiques Pures et Appliquées, 17, 55–108, 1872.
Dao, M. H., Xu, H., Chan, E. S., and Tkalich, P.: Modelling of tsunami-like wave run-up, breaking and impact on a vertical wall by SPH method, Nat. Hazards Earth Syst. Sci., 13, 3457–3467, https://doi.org/10.5194/nhess-13-3457-2013, 2013.
Dawson, A. G.: Geomorphological effects of tsunami run-up and backwash, Geomorphology, 10, 83–94, https://doi.org/10.1016/0169-555X(94)90009-4, 1994.
Fu, Y., Zhao, X., Cao, F., Zhang, D., Cheng, D., and Li, L.: Numerical simulation of viscous flow past an oscillating square cylinder using a CIP-based model, J. Hydrodyn., Ser. B, 29, 96–108, https://doi.org/10.1016/S1001-6058(16)60721-7, 2017.
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Short summary
Numerical simulations are performed to understand the effects of several factors on tsunami wave impact and run-up in the presence of submarine gentle slopes and coastal cliffs using an in-house code. The run-up on a toe-erosion cliff is smaller than that on a normal cliff. Two impact pressure peaks exist during the tsunami wave run-up and impact. One is the direct impact pressure when tsunami waves first hit the coastal cliff, and the other is caused by the backflow from the cliff run-up.
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