2.3.15. References

[Serván_2013a]

Serván-Camas, B., and García-Espinosa, J. Accelerated 3D multi-body seakeeping simulation using unstructured finite elements. Barcelona: CIMNE, 2013.

[Serván_2013b]

Serván-Camas, B., and García-Espinosa, J. Accelerated 3D multi-body seakeeping simulations using unstructured finite elements. Journal of Computational Physics 252 (2013) 382–403.

[Wood_1980]

Wood W. L., Bossak M., and Zienkiewicz O. C. An alpha modication of Newmark’s method. International Journal for Numerical Methods in Engineering, 1980, 15(10):1562-1566.

[Pierson_1964]

Pierson J.P. and Moskowitz L. A Proposed Spectral Form for Fully Developed Wind Seas Based on the Similarity Theory of S.A.Kitaigorodskii. Journal of Geophysical Research, 1964, Vol. 69, No.24.

[Faltinsen_1998]

Faltinsen O.M., Sea loads on ships and offshore structures, Cambridge Ocean Technology Series. 1998.

[Hasselmann_1973]

Hasselmann K., Barnett R.C., Bouws E., Carlson H., Cartwright D.E., Enke K., Ewing J.A., Gienapp H., Hasselmann D.E., Kruseman P., Meerburg A., Müller P., Olbers, D.J., Richter K., Sell W., Walden H. Measurements of Wind-Wave Growth and Swell Decay during the Joint North Sea Wave Project (JONSWAP). Deutches Hydrographisches Institut, 1973, No.12.

[Jonkman_2007]

Jonkman, J.M., Dynamic modelling and loads analysis of an offshore floating wind turbine, Technical report NREL/TP-500-41958; November 2007.

[Bathe_1996]

Bathe, K.H. Finite element procedures. Prentice Hall, 1996.

[Gutiérrez_2014]

Gutiérrez, J.E. Desarrollo de herramientas software para el análisis de aerogeneradores “offshore” sometidos a cargas acopladas de viento y oleaje. PhD dissertation, Universidad Politécnica de Cartagena (2014).

[Morison_1950]

Morison J. R., O’Brien M. P., Johnson J. W., and Schaaf S. A., 1950, The force exerted by surface waves on piles. Petroleum Transactions, American Institute of Mining Engineers, 189, pp. 149–154.

[DNV_2007]

Recommended practice DNV-RP-C205. Environmental conditions and environ-mental loads. April 2007.

[DNV]

Det Norske Veritas. A Course in Ocean engineering. Available at: <http://research.dnv.com/hci/ocean/bk/c/a36/s0.htm>.

[Aubry_2008]

Aubry, R., Mut, F., Löhner, R., Cebral, J.R.: Deflated preconditioned conjugate gradient solvers for the Pressure–Poisson equation, J. Comp. Phys. 2008; 227: 10196-10208.

[Mut_2010]

Mut, F., Aubry, R., Houzeaux, G., Cebral, J., Löhner, R.: Deflated preconditioned conjugate gradient solvers: extensions and improvements, 48th Aerospace Sciences Meeting and Exhibit, Orlando, FL, January, 2010.

[Mossaiby_2011]

Mossaiby, F., Rossi, R., Dadvand, P., Idelsohn, S.: OpenCL-based implementation of an unstructured edge-based finite element convection-diffusion solver on graphics hardware. Int. J. Numer. Meth. Engng. 2011; 89, 13: 1635–1651.

[Bell_2008]

Bell, N., Garland, M.: Effcient Sparse Matrix-Vector Multiplication on CUDA, NVIDIA Technical Report NVR-2008-004, Dec. 2008.

[Saad_1996]

Saad, Y.: Iterative Methods for Sparse Linear Systems. PWS Publishing Company, Boston (1996).

[Salvesen_1970]

Salvesen, N., Tuck, E.O. and Faltinsen, O.M. Ship Motions and Sea Loads, Trans. SNAME, 78, 250-87 (1970).

[Serván_2016]

Servan-Camas, B.: A time-domain finite element method for seakeeping and wave resistance problems. School of Naval Architecture and OCean Engineering, Technical University of Madrid; 2016 [Doctoral thesis]. http://oa.upm.es/39794/1/BORJA_SERVAN_CAMAS.pdf