Slender marine structures are subjected to ocean currents, which can cause vortex-induced vibrations (VIV). Accumulated damage due to VIV can shorten the fatigue life of marine structures, so it needs to be considered in the design and operation phase. Semi-empirical VIV prediction tools are based on hydrodynamic coefficients. The hydrodynamic coefficients can either be calculated from experiments on flexible beams by using inverse analysis or theoretical methods, or obtained from forced motion experiments on a circular cylinder. Most of the forced motion experiments apply harmonic motions in either in-line (IL) or crossflow (CF) direction. Combined IL and CF forced motion experiments are also reported. However, measured motions from flexible pipe VIV tests contain higher order harmonic components, which have not yet been extensively studied. This paper presents results from conventional forced motion VIV experiments, but using measured motions taken from a flexible pipe undergoing VIV. The IL excitation coefficients were used by semi-empirical VIV prediction software vivana to perform combined IL and CF VIV calculation. The key IL results are compared with Norwegian Deepwater Programme (NDP) flexible pipe model test results. By using present IL excitation coefficients, the prediction of IL responses for combined IL and CF VIV responses is improved.

References

1.
Vandiver
,
J. K.
, and
Li
,
L.
,
2007
, “Shear7 v4.5 Program Theoretical Manual,”
Massachusetts Institute of Technology
,
Cambridge, MA
.
2.
Triantafyllou
,
M.
,
Triantafyllou
,
G.
,
Tein
,
Y. D.
, and
Ambrose
,
B. D.
,
1999
, “
Pragmatic Riser VIV Analysis
,”
Offshore Technology Conference
(OTC), Houston, TX, May 3–6,
SPE
Paper No. OTC-10931-MS.
3.
MARINTEK
,
2017
, “VIVANA Theory Manual v4.8.9,”
MARINTEK, Trondheim
,
Norway
.
4.
Gopalkrishnan
,
R.
,
1993
, “
Vortex-Induced Forces on Oscillating Bluff Cylinders
,”
Ph.D. thesis
, Massachusetts Institute of Technology, Cambridge, MA.https://dspace.mit.edu/handle/1721.1/12539
5.
Aronsen
,
K. H.
,
2007
, “An Experimental Investigation of In-line and Combined In-line and Cross-flow Vortex Induced Vibrations,”
Ph.D. thesis
, Norwegian University of Science and Technology, Trondheim, Norway.https://brage.bibsys.no/xmlui/handle/11250/237623
6.
Dahl
,
J. M.
,
Hover
,
F. S.
, and
Triantafyllou
,
M. S.
,
2006
, “
Two Degree-of-Freedom Vortex Induced Vibrations Using a Force Assisted Apparatus
,”
J. Fluids Struct.
,
22
(6–7), pp.
807
818
.
7.
Yin
,
D.
,
2013
, “
Experimental and Numerical Analysis of Combined In-Line and Cross-Flow Vortex-Induced Vibrations
,”
Ph.D. thesis
, Norwegian University of Science and Technology, Trondheim, Norway.https://brage.bibsys.no/xmlui/handle/11250/273121
8.
Soni
,
P. K.
,
2008
, “
Hydrodynamic Coefficients for Vortex-Induced Vibrations of Flexible Beams
,”
Ph.D. thesis
, Norwegian University of Science and Technology, Trondheim, Norway.
9.
Aglen
,
I. M.
,
2013
, “
VIV in Free Spanning Pipelines
,”
Ph.D. thesis
, Norwegian University of Science and Technology, Trondheim, Norway.https://brage.bibsys.no/xmlui/handle/11250/238760
10.
Yin
,
D.
, and
Larsen
,
C. M.
,
2010
, “
On Determination of VIV Coefficients Under Shear Flow Condition
,”
ASME
Paper No. OMAE2010-20306.
11.
Yin
,
D.
, and
Larsen
,
C. M.
,
2011
, “
Experimental and Numerical Analysis of Forced Motion of a Circular Cylinder
,”
ASME
Paper No. OMAE2011-49438.
12.
Yin
,
D.
, and
Larsen
,
C. M.
,
2012
, “
Forced Motion Experiments With Measured Motions From Flexible Beam Tests Under Uniform and Sheared Flows
,”
ASME
Paper No. OMAE2012-83160.
13.
Trim
,
A.
,
Braaten
,
H.
,
Lie
,
H.
, and
Tognarelli
,
M.
,
2005
, “
Experimental Investigation of Vortex-Induced Vibration of Long Marine Risers
,”
J. Fluids Struct.
,
21
(
3
), pp.
335
361
.
14.
Vandiver
,
J. K.
,
Jaiswal
,
V.
, and
Jhingran
,
V.
,
2009
, “
Insights on Vortex Induced, Traveling Waves on Long Risers
,”
J. Fluids Struct.
,
25
(4), pp.
641
653
.
15.
Song
,
L.
,
Fu
,
S.
,
Zeng
,
Y.
, and
Chen
,
Y.
,
2016
, “
Hydrodynamic Forces and Coefficients on Flexible Risers Undergoing Vortex-Induced Vibrations in Uniform Flow
,”
J. Waterway, Port, Coastal, Ocean Eng.
,
142
(
4
), p.
04016001
.
16.
Wu
,
J.
,
2011
, “
Hydrodynamic Force Identification From Stochastic Vortex Induced Vibration Exp
eriments With Slender Beams,”
Ph.D. thesis
, Norwegian University of Science and Technology, Trondheim, Norway.https://brage.bibsys.no/xmlui/handle/11250/237910
17.
Bourguet
,
R.
,
Karniadakis
,
G. E.
, and
Triantafyllou
,
M. S.
,
2013
, “
Multi-Frequency Vortex-Induced Vibrations of a Long Tensioned Beam in Linear and Exponential Shear Flows
,”
J. Fluids Struct.
,
41
, pp.
33
42
.
18.
NTNU
, 2009, “Marine Cybernetics Laboratory (MC-Lab),” Norwegian University of Science and Technology, Trondheim, Norway, accessed Oct. 30, 2017, www.ntnu.edu/imt/lab/cybernetics
19.
Chaplin
,
J.
,
Bearman
,
P.
,
Huarte
,
F. H.
, and
Pattenden
,
R.
,
2005
, “
Laboratory Measurements of Vortex-Induced Vibrations of a Vertical Tension Riser in a Stepped Current
,”
J. Fluids Struct.
,
21
(
1
), pp.
3
24
.
20.
Passano
,
E.
,
Larsen
,
C. M.
, and
Lie
,
H.
,
2012
, “
Comparison of Calculated In-Line Vortex Induced Vibrations to Model Tests
,”
ASME
Paper No. OMAE2012-83387.
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