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  4. Experimental study on the nonlinear pressure acting on a high-speed vessel in irregular waves
 
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Experimental study on the nonlinear pressure acting on a high-speed vessel in irregular waves

Journal
Journal of Marine Science and Technology
Journal Volume
14
Journal Issue
2
Pages
228-239
Date Issued
2009
Author(s)
FORNG-CHEN CHIU  
Tiao, W.-C.
JEN-HWA GUO  
DOI
10.1007/s00773-009-0050-9
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/451217
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-67650450452&doi=10.1007%2fs00773-009-0050-9&partnerID=40&md5=0387cc80362f4153b319e58c645edfa4
Abstract
The present study focuses on the nonlinear behavior of pressure on the hull surface of a high-speed vessel in irregular waves, particularly the pressure responses of alternately wet and dry areas near the waterline and on the bow zone. The vessel has high deadrise angles that may be subject to slight impact and water pile-up effects. A series of experiments in regular and irregular head waves were conducted, and the validity of applying Volterra modeling was investigated. In a previous article using experimental data in regular waves, it was confirmed that the approximate third-order Volterra model adequately simulated the variation of pressure responses in regular waves of different steepness up to a wave amplitude with a wavelength ratio of 0.01, even for the highly nonlinear pressures acting on the abovementioned areas of the hull surface. In this article, further validation for the second part of the study was obtained using experimental data in irregular waves. The frequency response functions obtained from the previous study's experimental data in regular waves were applied to the third-order Volterra model by combining the input of irregular waves to simulate the responses in irregular waves of sea state five. Then, the spectra and statistics were analyzed. For the motions, accelerations, and pressure responses in irregular waves (as well as for the simulated time histories) variance spectra and statistics such as cumulative distributions of peak values and probability density functions were compared with the experimental results. It was confirmed that even for highly nonlinear and non-Gaussian pressures on the abovementioned areas of the hull surface, the approximate third-order Volterra model simulates the pressure responses in irregular head waves up to a sea state of five with adequate accuracy on deterministic and statistical bases. © 2009 JASNAOE.
SDGs

[SDGs]SDG14

Type
journal article

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