Two-dimensional (2D) numerical simulations have been performed to investigate both regular and irregular waves past a fixed horizontally semisubmerged circular cylinder. The 2D simulations are carried out by solving Navier–Stokes equations discretized by finite volume method. Volume of fluid (VOF) method is employed to capture the free surface in the numerical wave tank (NWT). Validation studies have been performed by comparing the numerical results of free surface waves past the cylinder with the published experimental and numerical data. The present numerical results are in good agreement with both the experimental and the other numerical results in terms of hydrodynamic forces and free surface elevation. Subsequently, the effects of the wave height and the wavelength on wave–structure interaction are investigated by conducting numerical simulations on the regular and the irregular waves past a semisubmerged cylinder at different wave heights and the wavelengths. The averaged and maximum vertical wave forces on the cylinder increase with the increasing wave height. The numerical results for the irregular waves are compared with those induced by the regular waves in terms of the maximum and averaged vertical wave forces. When the significant wave height and the spectral peak period of the irregular waves are equal to the wave height and the wave period of the regular waves, the maximum vertical wave force induced by the irregular waves is larger than that induced by the regular waves, meanwhile, the average vertical wave forces have the contrary relationship.

References

1.
Gopala
,
V. R.
, and
van Wachem
,
B. G. M.
,
2008
, “
Volume of Fluid Methods for Immiscible-Fluid and Free-Surface Flows
,”
Chem. Eng. J.
,
141
(
1–3
), pp.
204
221
.
2.
Zacharioudaki
,
M.
,
Kouris
,
C.
,
Dimakopoulos
,
Y.
, and
Tsamopoulos
,
J.
,
2007
, “
A Direct Comparison Between Volume and Surface Tracking Methods With a Boundary-Fitted Coordinate Transformation and Third-Order Upwinding
,”
J. Comput. Phys.
,
227
(
2
), pp.
1428
1469
.
3.
Hirt
,
C. W.
, and
Nichols
,
B. D.
,
1981
, “
Volume of Fluid (VOF) Method for the Dynamics of Free Boundaries
,”
J. Comput. Phys.
,
39
(
1
), pp.
201
225
.
4.
Osher
,
S.
, and
Sethian
,
J. A.
,
1988
, “
Fronts Propagating With Curvature-Dependent Speed: Algorithms Based on hamilton-Jacobi Formulations
,”
J. Comput. Phys.
,
79
(
1
), pp.
12
49
.
5.
Chang
,
K. A.
,
Hsu
,
T. J.
, and
Liu
,
P. L.-F.
,
2005
, “
Vortex Generation and Evolution in Water Waves Propagating Over a Submerged Rectangular Obstacle—Part II: Cnoidal Waves
,”
Coastal Eng.
,
52
(
3
), pp.
257
283
.
6.
Chang
,
K. A.
,
Hsu
,
T. J.
, and
Liu
,
P. L.-F.
,
2001
, “
Vortex Generation and Evolution in Water Waves Propagating Over a Submerged Rectangular Obstacle—Part I: Solitary Waves
,”
Coastal Eng.
,
44
(
1
), pp.
13
36
.
7.
Yong
,
L.
, and
Mian
,
L.
,
2010
, “
Wave-Body Interactions for a Surface-Piercing Body in Water of Finite Depth
,”
J. Hydrodyn., Ser. B
,
22
(
6
), pp.
745
752
.
8.
Li
,
Y.
, and
Lin
,
M.
,
2012
, “
Regular and Irregular Wave Impacts on Floating Body
,”
Ocean Eng.
,
42
, pp.
93
101
.
9.
Morgan
,
G. C.
, and
Zang
,
J.
,
2010
, “
Using the Rasinterfoam CFD Model for Non-Linear Wave Interaction With a Cylinder
,”
Twentieth International Offshore and Polar Engineering Conference
(
ISOPE
), Beijing, China, June 20–25, pp. 418–423.https://www.onepetro.org/conference-paper/ISOPE-I-10-099
10.
Jacobsen
,
N. G.
,
Fuhrman
,
D. R.
, and
Fredsøe
,
J.
,
2012
, “
A Wave Generation Toolbox for the Open-Source CFD Library: OpenFOAM®
,”
Int. J. Numer. Methods Fluids
,
70
(
9
), pp.
1073
1088
.
11.
Ottens
,
H.
,
Pistidda
,
A.
, and
van Dijk
,
R.
,
2014
, “
CFD Analysis of Waves Over a Submerged Cylinder in Close Proximity of the Free Surface
,”
ASME
Paper No. OMAE2014-23451.
12.
Higuera
,
P.
,
Lara
,
J. L.
, and
Losada
,
I. J.
,
2014
, “
Three-Dimensional Interaction of Waves and Porous Coastal Structures Using OpenFOAM®—Part I: Formulation and Validation
,”
Coastal Eng.
,
83
, pp.
243
258
.
13.
Dixon
,
A. G.
,
Salter
,
S. H.
, and
Greated
,
C. A.
,
1979
, “
Wave Forces on Partially Submerged Cylinders
,”
J. Waterway, Port, Coastal Ocean Div.
,
105
(
4
), pp.
421
438
.http://cedb.asce.org/CEDBsearch/record.jsp?dockey=0009134
14.
Westphalen
,
J.
,
Greaves
,
D.
,
Williams
,
C.
,
Hunt-Raby
,
A.
, and
Zang
,
J.
,
2012
, “
Focused Waves and Wave–Structure Interaction in a Numerical Wave Tank
,”
Ocean Eng.
,
45
, pp.
9
21
.
15.
Westphalen
,
J.
,
Greaves
,
D. M.
,
Raby
,
A.
,
Hu
,
Z. Z.
,
Causon
,
D. M.
,
Mingham
,
C. G.
,
Omidvar
,
P.
,
Stansby
,
P. K.
, and
Rogers
,
B. D.
,
2014
, “
Investigation of Wave-Structure Interaction Using State of the Art CFD Techniques
,”
Open J. Fluid Dyn.
,
4
(
01
), pp.
18
43
.
16.
Bihs
,
H.
, and
Ong
,
M. C.
,
2013
, “
Numerical Simulation of Flows Past Partially-Submerged Horizontal Circular Cylinders in Free Surface Waves
,”
ASME
Paper No. OMAE2013-10529.
17.
Ong
,
M. C.
,
Kamath
,
A.
,
Bihs
,
H.
, and
Afzal
,
M. S.
,
2017
, “
Numerical Simulation of Free-Surface Waves past Two Semi-Submerged Horizontal Circular Cylinders in Tandem
,”
Mar. Struct.
,
52
, pp.
1
14
.
18.
Berberović
,
E.
,
van Hinsberg
,
N. P.
,
Jakirlić
,
S.
,
Roisman
,
I. V.
, and
Tropea
,
C.
,
2009
, “
Drop Impact Onto a Liquid Layer of Finite Thickness: Dynamics of the Cavity Evolution
,”
Phys. Rev. E
,
79
(
3
), p.
036306
.
19.
Seng
,
S.
,
2012
, “
Slamming and Whipping Analysis of Ships
,”
Ph.D. thesis
, Technical University of Denmark Mechanical Engineering, Copenhagen, Denmark.http://orbit.dtu.dk/en/publications/slamming-and-whipping-analysis-of-ships(4c6c2d7b-fed0-49c5-83f0-80319d3a624b).html
20.
Weller
,
H. G.
,
Tabor
,
G.
,
Jasak
,
H.
, and
Fureby
,
C.
,
1998
, “
A Tensorial Approach to Computational Continuum Mechanics Using Object-Oriented Techniques
,”
Comput. Phys.
,
12
(
6
), pp.
620
631
.
21.
Welch
,
P.
,
1967
, “
The Use of Fast Fourier Transform for the Estimation of Power Spectra: A Method Based on Time Averaging Over Short, Modified Periodograms
,”
IEEE Trans. Audio Electroacoustics
,
15
(
2
), pp.
70
73
.
22.
Bretschneider
,
C. L.
,
1959
, “
Wave Variability and Wave Spectra for Wind-Generated Gravity Waves
,” Beach Erosion Board, Washington, DC, Technical Report No.
AD227467
.http://www.dtic.mil/dtic/tr/fulltext/u2/227467.pdf
You do not currently have access to this content.