The present study investigates the environmental conditions in the Sulafjord in Norway, where a floating bridge is being considered for construction. Fifteen months of wave and wind measurement data in the fjord are compared to the hindcast data at a relevant offshore site and a good overall correlation between the two is found. Furthermore, a quantitative relationship between the wave conditions offshore and in the fjord is established based on the storm event analysis. Accordingly, the identified relationship and the 60-year of offshore hindcast data enable the estimation of the design environmental conditions in the fjord, by adapting the fitted marginal and joint distribution of the wave conditions at the offshore site. The present study illustrates the possibility of using more data from the hindcast model for the design when the measurement data are limited.
Skip Nav Destination
Article navigation
April 2019
Research-Article
Metocean Conditions in a Norwegian Fjord in Relation to the Floating Bridge Design
Jungao Wang,
Jungao Wang
Department of Mechanical and Structural
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: jungao.wang@uis.no
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: jungao.wang@uis.no
Search for other works by this author on:
Lin Li,
Lin Li
Department of Mechanical and Structural
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: lin.li@uis.no
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: lin.li@uis.no
Search for other works by this author on:
Jasna Bogunović Jakobsen,
Jasna Bogunović Jakobsen
Department of Mechanical and Structural
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: jasna.b.jakobsen@uis.no
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: jasna.b.jakobsen@uis.no
Search for other works by this author on:
Sverre Kristian Haver
Sverre Kristian Haver
Department of Mechanical and Structural
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: sverre.k.haver@uis.no
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: sverre.k.haver@uis.no
Search for other works by this author on:
Jungao Wang
Department of Mechanical and Structural
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: jungao.wang@uis.no
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: jungao.wang@uis.no
Lin Li
Department of Mechanical and Structural
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: lin.li@uis.no
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: lin.li@uis.no
Jasna Bogunović Jakobsen
Department of Mechanical and Structural
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: jasna.b.jakobsen@uis.no
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: jasna.b.jakobsen@uis.no
Sverre Kristian Haver
Department of Mechanical and Structural
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: sverre.k.haver@uis.no
Engineering and Materials Science,
University of Stavanger,
Stavanger NO-4036, Norway
e-mail: sverre.k.haver@uis.no
1Corresponding author.
Contributed by the Ocean, Offshore, and Arctic Engineering Division of ASME for publication in the JOURNAL OF OFFSHORE MECHANICS AND ARCTIC ENGINEERING. Manuscript received May 2, 2018; final manuscript received September 13, 2018; published online October 12, 2018. Assoc. Editor: Yordan Garbatov.
J. Offshore Mech. Arct. Eng. Apr 2019, 141(2): 021604 (9 pages)
Published Online: October 12, 2018
Article history
Received:
May 2, 2018
Revised:
September 13, 2018
Citation
Wang, J., Li, L., Jakobsen, J. B., and Haver, S. K. (October 12, 2018). "Metocean Conditions in a Norwegian Fjord in Relation to the Floating Bridge Design." ASME. J. Offshore Mech. Arct. Eng. April 2019; 141(2): 021604. https://doi.org/10.1115/1.4041534
Download citation file:
Get Email Alerts
Cited By
Efficient Project Planning for Floating Offshore Wind Farm Development
J. Offshore Mech. Arct. Eng
The Scattering of Water Waves by M-Floating Porous Plates Over (M − 1) Trenches
J. Offshore Mech. Arct. Eng (December 2025)
Guest Editorial: Special Issue on Maritime Transport
J. Offshore Mech. Arct. Eng
Influence of Fiber Orientation and Material Anisotropy in Hydroelastic Response of Laminated Composite Cycloidal Propeller Blade
J. Offshore Mech. Arct. Eng (December 2025)
Related Articles
Use of Numerical Wind-Wave Models for Assessment of the Offshore Wave
Energy Resource
J. Offshore Mech. Arct. Eng (August,1997)
The Reconstruction of Significant Wave Height Time Series by Using a Neural Network Approach
J. Offshore Mech. Arct. Eng (August,2004)
Model Test of a 1:8-Scale Floating Wind Turbine Offshore in the Gulf of Maine
J. Offshore Mech. Arct. Eng (August,2015)
Modeling and Analysis of a Novel Offshore Binary Species Free-Floating Longline Macroalgal Farming System
J. Offshore Mech. Arct. Eng (April,2023)
Related Proceedings Papers
Related Chapters
Cooling a Radar’s Electronic Board
Electromagnetic Waves and Heat Transfer: Sensitivites to Governing Variables in Everyday Life
Establishing Unmanning Criteria for a Jacket Structure on the NCS
Ageing and Life Extension of Offshore Facilities
A Coupling Model for Storm Surges, Waves and Currents
International Conference on Mechanical and Electrical Technology, 3rd, (ICMET-China 2011), Volumes 1–3