In recent decades, the use of computational fluid dynamics (CFD) in many areas of engineering as a research and development tool has seen remarkable growth. Recently, an increasing concern with the assessment of the quality of CFD results has been observed. Wave modeling is an important task in many ocean engineering applications. Although numerical modeling studies of waves can be found in the literature for many applications, it is hard to find studies that present the numerical uncertainties of the results. In this study, the numerical uncertainties in mean wave parameters simulated using a viscous model were estimated using a procedure based on grid/time refinement studies and power series expansions. starccm+ software was used to simulate wave propagation. The computational domain was discretized using a trimmer mesh. The results obtained for a regular wave with a wave steepness (H/L) equal to 0.025 are presented. The numerical uncertainties in mean wave height and mean wave period were estimated along the computational domain. The results indicate that the convergence properties of the mean wave parameters with the grid refinement depended on both position in the domain and the selected wave parameter.
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August 2018
Research-Article
Numerical Uncertainty Analysis in Regular Wave Modeling
Monica C. Silva,
Monica C. Silva
LabOceano/COPPE,
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941-907, Brazil
e-mail: mcsilva@oceanica.ufrj.br
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941-907, Brazil
e-mail: mcsilva@oceanica.ufrj.br
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Marcelo A. Vitola,
Marcelo A. Vitola
LabOceano/COPPE,
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941-907, Brazil
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941-907, Brazil
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Luís Eça,
Luís Eça
Mechanical Engineering Department,
IST-UL,
Lisboa 1049-001, Portugal
IST-UL,
Lisboa 1049-001, Portugal
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Paulo de Tarso T. Esperança,
Paulo de Tarso T. Esperança
LabOceano/COPPE,
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941-907, Brazil
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941-907, Brazil
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Sergio H. Sphaier
Sergio H. Sphaier
LabOceano/COPPE,
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941907, Brazil
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941907, Brazil
Search for other works by this author on:
Monica C. Silva
LabOceano/COPPE,
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941-907, Brazil
e-mail: mcsilva@oceanica.ufrj.br
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941-907, Brazil
e-mail: mcsilva@oceanica.ufrj.br
Marcelo A. Vitola
LabOceano/COPPE,
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941-907, Brazil
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941-907, Brazil
Luís Eça
Mechanical Engineering Department,
IST-UL,
Lisboa 1049-001, Portugal
IST-UL,
Lisboa 1049-001, Portugal
Paulo de Tarso T. Esperança
LabOceano/COPPE,
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941-907, Brazil
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941-907, Brazil
Sergio H. Sphaier
LabOceano/COPPE,
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941907, Brazil
Federal University of Rio de Janeiro,
Rio de Janeiro RJ 21941907, Brazil
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 April 17, 2017; final manuscript received November 16, 2017; published online February 22, 2018. Assoc. Editor: Marcelo R. Martins.
J. Offshore Mech. Arct. Eng. Aug 2018, 140(4): 041101 (8 pages)
Published Online: February 22, 2018
Article history
Received:
April 17, 2017
Revised:
November 16, 2017
Citation
Silva, M. C., Vitola, M. A., Eça, L., Esperança, P. D. T. T., and Sphaier, S. H. (February 22, 2018). "Numerical Uncertainty Analysis in Regular Wave Modeling." ASME. J. Offshore Mech. Arct. Eng. August 2018; 140(4): 041101. https://doi.org/10.1115/1.4039260
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