References
- Abdel-Maksoud, M. (editor), 2011. Proceedings of smp'11 workshop on cavitation and propeller performance. The Second International Symposium on Marine Propulsors. Hamburg, Germany, 17-18 June 2011, pp.322.
- CD-adapco, 2015. STAR-CCM+ v.10.04 user's manual.
- Fujiyama, K. Kim, C.H. & Hitomi, D., 2011. Performance and cavitation evaluation of marine propeller using numerical simulations. The Second International Symposium on Marine Propulsors. Hamburg, Germany, 17-18 June 2011, pp.322.
- Gaggero, S. Villa, D. & Brizzolara, S., 2011. SMP workshop on cavitation and propeller performances:The experience of the university of Genova on the potsdam propeller test case. The Second International Symposium on Marine Propulsors, Hamburg, Germany, 17-18 June 2011, pp.322.
- Joung, T.H. Jeong, S.J. & Lee, S.K., 2014. CFD simulations and experimental tests for three different ducted propellers. Journal of Ocean Engineering and Technology, 28(3), pp.199-208. https://doi.org/10.5574/KSOE.2014.28.3.199
- Kim, G.D. & Lee, C.S., 2005. Application of high order panel method for improvement of prediction of marine propeller performance. Journal of the Society of Naval Architects of Korea, 42(2), pp.113-123. https://doi.org/10.3744/SNAK.2005.42.2.113
- Kim, M.G. Ahn, H.T. Lee, J.T. & Lee, H.G., 2014. Fully unstructured mesh based computation of viscous flow around marine propellers. Journal of the Society of Naval Architects of Korea, 51(2), pp.162-170. https://doi.org/10.3744/SNAK.2014.51.2.162
- Lardeau, S. & Manceau, R., 2014. Computations of complex flow configurations using a modified elliptic-blending reynolds-stress model. Symposium on the 10th Engineering Turbulence Modelling and Measurement Conference, Marbella, Spain, 17-19 September 2014.
- Lee, K.U. Jin, D.H. & Lee, S.W., 2015. Propulsive performance prediction of a ducted propeller in open water condition using CFD. Journal of Computational Fluids Engineering, 20(2), pp.1-6. https://doi.org/10.6112/kscfe.2015.20.2.001
- Li, D.-Q. 2011. Prediction of non-cavitating and cavitating performance of a SVA porsdam propeller. The Second International Symposium on Marine Propulsors, Hamburg, Germany, 17-18 June 2011, pp.322.
- Menter, F.R., 1994. Two-equation eddy-viscosity turbulence models for engineering applications. AIAA Journal, 32(8). pp.1598-1605. https://doi.org/10.2514/3.12149
- Moon, I.S. Kim, Y.G. & Lee, C.S., 1996. Prediction of unsteady performance of a propeller by using potential-based panel method. Journal of the Society of Naval Architects of Korea, 33(1), pp.9-18.
- Muscari, R. & Di Mascio, A., 2011. Numerical simulation of the flow past a rotating propeller behind a hull. The Second International Symposium on Marine Propulsors., Hamburg, Germany, 17.-18 June 2011, pp.322.
- Patankar, S.V., 1980. Numerical heat transfer and fluid flow. Hemisphere Publishing Corporation.
- Salvatore, F. Greco, L. & Calcagni, D., 2011. Computational analysis of marine propeller performance and cavitation by using an inviscid-flow BEM model. The Second International Symposium on Marine Propulsors, Hamburg, Germany, 17 - 18 June 2011, pp.322.
- Sauer, J., 2000. Instationar kavitierende stromungen-Ein neues modell, basierend auf front capturing (VoF) und Blasendynamik. PhD thesis. Universitat Karlsruhe.
- Tuomas, S. Timo, S. & Ilkka, S., 2011. FINFLO RANS- predictions for propeller performance. The Second International Symposium on Marine Propulsors, Hamburg, Germany, 17-18 June 2011, pp.322.
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