Abstract

Floating offshore wind turbine (FOWT) hull technologies are evolving rapidly with many technically viable designs. However, a commercially dominant architecture has yet to emerge. Early hull designs including semisubmersible, spar, and tension leg platforms were largely derived from offshore oil and gas technologies, but recent developments in the commercial application and optimization of FOWTs have resulted in a number of unique, FOWT-specific hull configurations. One hull design of interest includes the application of a moonpool to aid in mitigating platform motion in the presence of waves. A version of this annular hull has been deployed in France and Japan. In this paper, a 6-MW version of an annular hull is studied through experimental model testing and numerical analysis. The primary portion of this work involves testing a 1/100th-scale model in the Harold Alfond Wind Wave Ocean Engineering Laboratory at the University of Maine. A secondary component of this work investigates the capability of ANSYS aqwa, a typical commercial hydrodynamic software, to recreate the wave-induced motion of a FOWT hull containing a moonpool. An additional secondary component of this study compares the wave-only performance of the annular hull to experimental data obtained for the DeepCwind semisubmersible, spar, and tension leg platform to provide context for the measured response. The results obtained show that ANSYS aqwa can adequately predict the gross response of the annular hull motion and that the moonpool design tested often exhibits greater motion than the systems tested during the DeepCwind campaign.

References

1.
Liu
,
Y.
,
Li
,
S.
,
Yi
,
Q.
, and
Chen
,
D.
,
2016
, “
Developments in Semi-Submersible Floating Foundations Supporting Wind Turbines: A Comprehensive Review
,”
Renewable Sustainable Energy Rev.
,
60
, pp.
433
449
. 10.1016/j.rser.2016.01.109
2.
Sclavounos
,
P.
,
2008
, “
Floating Offshore Wind Turbines
,”
Mar. Technol. Soc. J.
,
42
(
2
), pp.
39
43
. 10.4031/002533208786829151
3.
Musial
,
W.
, “
Offshore Wind Resource, Cost, and Economic Potential in the State of Maine
,”
2018
.
4.
Arapogianni
,
A.
,
Genachte
,
A.
,
Ochagavia
,
R.
,
Vergara
,
J.
,
Castell
,
D.
,
Tsouroukdissian
,
A.
,
Korbijn
,
J.
,
Bolleman
,
N.
,
Huera-Huarte
,
F.
,
Schuon
,
F.
,
Ugarte
,
A.
,
Sandberg
,
J.
,
de Laleu
,
V.
,
Maciel
,
J.
,
Tunbjer
,
A.
,
Roth
,
R.
,
de la Gueriviere
,
P.
,
Coulombeau
,
P.
,
Jadrec
,
S.
,
Philippe
,
C.
,
Voutsinas
,
S.
,
Weinstein
,
A.
,
Vita
,
L.
,
Byklum
,
E.
,
Hurley
,
W.
, and
Grubel
,
H.
,
2013
,
Deep Water the Next Step for Offshore Wind Energy
. Report by European Wind Energy Association (EWEA), p.
51
.
5.
Musial
,
W.
,
Heimiller
,
D.
,
Beiter
,
P.
,
Scott
,
G.
, and
Draxl
,
C.
,
2016
, “
Offshore Wind Energy Resource Assessment for the United States
,” National Renewable Energy Laboratory Technical Report NREL/TP-5000-66599, September 2016.
6.
Gaillarde
,
G.
, and
Cotteleer
,
A.
,
2005
,
Water Motion in Moonpools Empirical and Theoretical Approach Anke COTTELEER
,
Maritime Research Institute
,
Wageningen, The Netherlands
.
7.
Utnes Reiersen
,
L. M.
,
2016
,
Investigation of Moonpool Resonance as Vessel Damping Device
,
Norwegian University of Science and Technology
,
Trondheim, Norway
.
8.
Koo
,
B. J.
,
Goupee
,
A. J.
,
Kimball
,
R. W.
, and
Lambrakos
,
K. F.
,
2014
, “
Model Tests for a Floating Wind Turbine on Three Different Floaters
,”
ASME J. Offshore Mech. Arct. Eng.
,
136
(
2
), p.
020907
. 10.1115/1.4024711
9.
Goupee
,
A. J.
,
Koo
,
B. J.
,
Kimball
,
R. W.
,
Lambrakos
,
K. F.
, and
Dagher
,
H. J.
,
2014
, “
Experimental Comparison of Three Floating Wind Turbine Concepts
,”
ASME J. Offshore Mech. Arct. Eng.
,
136
(
2
), p.
020906
. 10.1115/1.4025804
10.
Robertson
,
A. N.
, and
Jonkman
,
J. M.
,
2011
, “
Loads Analysis of Several Offshore Floating Wind Turbine Concepts
,”
Proceedings of the 2011 International Society of Offshore and Polar Engineers Conference
,
Maui, Hawaii
,
June 19–24
.
11.
Hermans
,
K. W.
,
Peeringa
,
J. M.
, and
Verbruggen
,
T.
,
2016
, “
The Influence of Offshore Floating Foundations to the Wind Turbine Generator: A Study Using aNySIMPHATAS
,” Energy Research Centre of the Netherlands Technical Report ECN-E–16-032, December.
12.
Coulling
,
A. J.
,
Goupee
,
A. J.
,
Robertson
,
A. N.
,
Jonkman
,
J. M.
, and
Dagher
,
H. J.
,
2013
,
J. Renewable Sustainable Energy
, Vol.
5
, p.
023116
.
14.
Det Norske Veritas AS
,
2014
, “
Recommended Practice DNV-RP-C205: Environmental Conditions and Environmental Loads
,” April.
15.
Molin
,
B.
,
2001
, “
On the Piston and Sloshing Modes in Moonpools
,”
J. Fluid Mech.
,
430
, pp.
27
50
. 10.1017/S0022112000002871
16.
ANSYS Inc.
,
2013
, “
Aqwa User’s Manual
,” Vol.
15317
,
ANSYS, Inc.
,
Canonsburg, PA
, pp.
724
746
.
You do not currently have access to this content.