Numerical Assessment of Similitude Parameters and Dimensional Analysis for Water Entry Problems

The prediction of impulsive loads deriving from the sudden impact of a solid body on the water surface is of fundamental importance for a wide range of engineering applications. The study of hull-slamming phenomena largely relies on laboratory scale experimental investigations and on simplified anal...

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Main Authors: Andrea L. Facci, Stefano Ubertini
Format: Article
Language:English
Published: Hindawi Limited 2015-01-01
Series:Mathematical Problems in Engineering
Online Access:http://dx.doi.org/10.1155/2015/324961
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spelling doaj-838604a07d5342e39c44001895556c5d2020-11-24T21:30:39ZengHindawi LimitedMathematical Problems in Engineering1024-123X1563-51472015-01-01201510.1155/2015/324961324961Numerical Assessment of Similitude Parameters and Dimensional Analysis for Water Entry ProblemsAndrea L. Facci0Stefano Ubertini1School of Engineering, University of “Tuscia”, 01100 Viterbo, ItalySchool of Engineering, University of “Tuscia”, 01100 Viterbo, ItalyThe prediction of impulsive loads deriving from the sudden impact of a solid body on the water surface is of fundamental importance for a wide range of engineering applications. The study of hull-slamming phenomena largely relies on laboratory scale experimental investigations and on simplified analytical models. The aim of this paper is to quantitatively assess the interplay between the relevant nondimensional parameters for the water entry of a two-dimensional body, evidencing the similitude conditions that allow the transition from scaled experiments to real size applications. This assessment is performed through the numerical study of the hydrodynamics induced by the water impact of a two-dimensional wedge. The fluid flow is considered incompressible. First of all numerical simulations are validated by comparison with experimental data from the literature and with the Wagner seminal theory. Afterwards, a thorough computational study is performed by systematically varying all the relevant parameters, such as the nondimensional entry velocity and acceleration. We conclude by evidencing some design prescriptions that should be adopted in order to facilitate the transition of laboratory scale experiments to real scale applications.http://dx.doi.org/10.1155/2015/324961
collection DOAJ
language English
format Article
sources DOAJ
author Andrea L. Facci
Stefano Ubertini
spellingShingle Andrea L. Facci
Stefano Ubertini
Numerical Assessment of Similitude Parameters and Dimensional Analysis for Water Entry Problems
Mathematical Problems in Engineering
author_facet Andrea L. Facci
Stefano Ubertini
author_sort Andrea L. Facci
title Numerical Assessment of Similitude Parameters and Dimensional Analysis for Water Entry Problems
title_short Numerical Assessment of Similitude Parameters and Dimensional Analysis for Water Entry Problems
title_full Numerical Assessment of Similitude Parameters and Dimensional Analysis for Water Entry Problems
title_fullStr Numerical Assessment of Similitude Parameters and Dimensional Analysis for Water Entry Problems
title_full_unstemmed Numerical Assessment of Similitude Parameters and Dimensional Analysis for Water Entry Problems
title_sort numerical assessment of similitude parameters and dimensional analysis for water entry problems
publisher Hindawi Limited
series Mathematical Problems in Engineering
issn 1024-123X
1563-5147
publishDate 2015-01-01
description The prediction of impulsive loads deriving from the sudden impact of a solid body on the water surface is of fundamental importance for a wide range of engineering applications. The study of hull-slamming phenomena largely relies on laboratory scale experimental investigations and on simplified analytical models. The aim of this paper is to quantitatively assess the interplay between the relevant nondimensional parameters for the water entry of a two-dimensional body, evidencing the similitude conditions that allow the transition from scaled experiments to real size applications. This assessment is performed through the numerical study of the hydrodynamics induced by the water impact of a two-dimensional wedge. The fluid flow is considered incompressible. First of all numerical simulations are validated by comparison with experimental data from the literature and with the Wagner seminal theory. Afterwards, a thorough computational study is performed by systematically varying all the relevant parameters, such as the nondimensional entry velocity and acceleration. We conclude by evidencing some design prescriptions that should be adopted in order to facilitate the transition of laboratory scale experiments to real scale applications.
url http://dx.doi.org/10.1155/2015/324961
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