Wave–current interaction during Hudhud cyclone in the Bay of Bengal
-
Published:2017-11-29
Issue:12
Volume:17
Page:2059-2074
-
ISSN:1684-9981
-
Container-title:Natural Hazards and Earth System Sciences
-
language:en
-
Short-container-title:Nat. Hazards Earth Syst. Sci.
Author:
Samiksha VolvaikerORCID, Vethamony Ponnumony, Antony Charls, Bhaskaran Prasad, Nair Balakrishnan
Abstract
Abstract. The present work describes the interaction between waves and currents utilizing a coupled ADCIRC+SWAN model for the very severe cyclonic storm Hudhud, which made landfall at Visakhapatnam on the east coast of India in October 2014. Model-computed wave and surge heights were validated with measurements near the landfall point. The Holland model reproduced the maximum wind speed of ≈ 54 m s−1 with the minimum pressure of 950 hPa. The modelled maximum surge of 1.2 m matches with the maximum surge of 1.4 m measured off Visakhapatnam. The two-way coupling with SWAN showed that waves contributed ≈ 0.25 m to the total water level during the Hudhud event. At the landfall point near Visakhapatnam, the East India Coastal Current speed increased from 0.5 to 1.8 m s−1 for a short duration ( ≈ 6 h) with net flow towards the south, and thereafter reversed towards the north. An increase of ≈ 0.2 m in Hs was observed with the inclusion of model currents. It was also observed that when waves travelled perpendicular to the coast after crossing the shelf area, with current towards the southwest, wave heights were reduced due to wave–current interaction; however, an increase in wave height was observed on the left side of the track, when waves and currents opposed each other.
Funder
Science and Engineering Research Board
Publisher
Copernicus GmbH
Subject
General Earth and Planetary Sciences
Reference85 articles.
1. Amarendra, P. G., Bharathi, P., Bhanumurthy, K., Reddy, G., and Balakrishnan Nair, T. M.: An observational study on wave characteristics during HUDHUD cyclone off Gangavaram, OSICON, CSIR, NIO, Goa 2015. 2. Ardhuin, F., Rascle, N., and Belibassakis, K. A.: Explicit wave-averaged primitive equations using a generalized Lagrangian mean, Ocean Model., 32, 35–60, 2008. 3. Atkinson, J. H., Westerink, J. J., and Hervouet, J. M.: Similarities between the Wave Equation and the Quasi-Bubble Solutions to the Shallow Water Equations, Int. J. Numer. Meth. Fl., 45, 689–714, 2004. 4. Atkinson, J. H., Westerink, J. J., Wamsley, T., Cialone, M. A., Dietrich, J. C., Dresback, K. M., Kolar, R. L., Resio, D. T., Bender, C., Blanton, B. O., Bunya, S., De Jong, W., Ebersole, B. A., Grzegorzewski, A., Jensen, R. E., Pourtaheri, H., Ratcliff, J., Roberts, H. J., Smith, J. M., and Szpilka, C. M.: Hurricane Storm Surge and Wave Modeling in Southern Louisiana: A Brief Overview, Proceedings of the Tenth International Conference on Estuarine and Coastal Modeling, 467–506, 2008. 5. Balakrishnan, N., Remya, P. G., Harikumar, R., Sandhya, K. G., Sirisha, P., Srinivas, K., and Nagaraju, C.: Wave forecasting and monitoring during very severe cyclone Phailin in the Bay of Bengal, Current Sci., 106, 1121–1125, 2014.
Cited by
23 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|