Crossref Citations
This article has been cited by the following publications. This list is generated based on data provided by
Crossref.
BENAROYA, H.
and
WEI, T.
2000.
HAMILTON'S PRINCIPLE FOR EXTERNAL VISCOUS FLUID–STRUCTURE INTERACTION.
Journal of Sound and Vibration,
Vol. 238,
Issue. 1,
p.
113.
Lam, K.M.
and
Dai, G.Q.
2002.
Formation of vortex street and vortex pair from a circular cylinder oscillating in water.
Experimental Thermal and Fluid Science,
Vol. 26,
Issue. 8,
p.
901.
Rockwell, D.
Ozgoren, M.
and
Saelim, N.
2003.
IUTAM Symposium on Integrated Modeling of Fully Coupled Fluid Structure Interactions Using Analysis, Computations and Experiments.
Vol. 75,
Issue. ,
p.
201.
Benaroya, H
Wei, T
Kuchnicki, S
and
Dong, P
2003.
Extended Hamilton's principle for fluid-structure interaction.
Proceedings of the Institution of Mechanical Engineers, Part K: Journal of Multi-body Dynamics,
Vol. 217,
Issue. 2,
p.
153.
Sirisup, S.
Karniadakis, G. E.
Yang, Y.
and
Rockwell, D.
2004.
Wave–structure interaction: simulation driven by quantitative imaging.
Proceedings of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences,
Vol. 460,
Issue. 2043,
p.
729.
Ozgoren, M.
and
Rockwell, D.
2004.
Interaction of a deep-water wave with a vertical cylinder at low Keulegan–Carpenter number: Transition from phase-locked modes of vortex formation.
Physics of Fluids,
Vol. 16,
Issue. 7,
p.
2700.
Gabbai, R.D.
and
Benaroya, H.
2005.
An overview of modeling and experiments of vortex-induced vibration of circular cylinders.
Journal of Sound and Vibration,
Vol. 282,
Issue. 3-5,
p.
575.
Tinar, E.
and
Cetiner, O.
2006.
Acceleration data correlated with PIV images for self-induced vibrations of an airfoil.
Experiments in Fluids,
Vol. 41,
Issue. 2,
p.
201.
Benaroya, Haym
and
Gabbai, Rene D
2008.
Modelling vortex-induced fluid–structure interaction.
Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences,
Vol. 366,
Issue. 1868,
p.
1231.
Lam, K. M.
Hu, J. C.
and
Liu, P.
2010.
Vortex formation processes from an oscillating circular cylinder at high Keulegan–Carpenter numbers.
Physics of Fluids,
Vol. 22,
Issue. 1,
Shen, Linwei
and
Chan, Eng-Soon
2010.
Numerical simulation of oscillating flows over a bed-mounted circular cylinder.
Applied Ocean Research,
Vol. 32,
Issue. 2,
p.
233.
Vuruskan, A.
Fenercioglu, I.
Cetiner, O.
Dančová, Petra
and
Novontý, Petr
2013.
A study on forces acting on a flapping wing.
EPJ Web of Conferences,
Vol. 45,
Issue. ,
p.
01028.
Kocabiyik, Serpil
and
Bozkaya, Canan
2015.
Streamwise oscillations of a cylinder beneath a free surface: Free surface effects on fluid forces.
Journal of Fluids and Structures,
Vol. 59,
Issue. ,
p.
394.
Zarruk, G.A.
Cowen, E.A.
Wu, T.-R.
and
Liu, P.L.-F.
2015.
Vortex shedding and evolution induced by a solitary wave propagating over a submerged cylindrical structure.
Journal of Fluids and Structures,
Vol. 52,
Issue. ,
p.
181.
Moballa, Burniadi
Chern, Ming-Jyh
An-Nizhami, Avicenna
and
Borthwick, A G L
2019.
DFIB-SPH study of submerged horizontal cylinder oscillated close to the free surface of a viscous liquid.
Fluid Dynamics Research,
Vol. 51,
Issue. 3,
p.
035506.
Qi, Hongliang
Zheng, Junxing
and
Zhang, Chenguang
2020.
Numerical Simulation of Velocity Field around Two Columns of Tandem Piers of the Longitudinal Bridge.
Fluids,
Vol. 5,
Issue. 1,
p.
32.
Mottaghi, Sohrob
Gabbai, Rene
and
Benaroya, Haym
2020.
An Analytical Mechanics Framework for Flow-Oscillator Modeling of Vortex-Induced Bluff-Body Oscillations.
Vol. 260,
Issue. ,
p.
7.
Song, Xijie
and
Liu, Chao
2021.
Experimental study of the floor-attached vortices in pump sump using V3V.
Renewable Energy,
Vol. 164,
Issue. ,
p.
752.
Das, Subhadip
Balachandar, Ram
and
Barron, Ronald M.
2022.
Effect of free surface perturbation on fully developed smooth open channel flow.
Journal of Hydraulic Research,
Vol. 60,
Issue. 3,
p.
363.