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Experimental and Numerical Validation of the Improved Vortex Method Applied to CP745 Marine Propeller Model Cover

Experimental and Numerical Validation of the Improved Vortex Method Applied to CP745 Marine Propeller Model

Open Access
|Jul 2018

References

  1. 1. D. Durante, G. Dubbioso, C. Testa: Simplified hydrodynamic models for the analysis of marine propellers in a wakefield, Journal of Hydrodynamics, Ser. B, Vol. 25, No. 6, pp. 954–965, 2013.10.1016/S1001-6058(13)60445-X
  2. 2. J. H. Ferziger, M. Perić: Computational methods for fluid dynamics, Springer-Verlag, Berlin, 2002.10.1007/978-3-642-56026-2
  3. 3. S. Gaggero, J. Gonzalez-Adalid, M. Perez Sobrino: Design of contracted and tip loaded propellers by using boundary element methods and optimization algorithms, Applied Ocean Research, Vol. 55, pp. 102–129, 2016.10.1016/j.apor.2015.12.004
  4. 4. D. S. Greeley, J. E. Kerwin: Numerical methods for propeller design and analysis in steady flow, SNAME Transactions, Vol. 90, pp. 415–453, 1982.
  5. 5. ITTC – Recommend procedures and guidelines: model manufacture, propeller models, propeller model accuracy, Propulsion Committee of 24th ITTC 2005.
  6. 6. ITTC – Recommend procedures and guidelines: testing and extrapolation methods, propulsion, propulsor open water test, Propulsion Committee of 24th ITTC 2014.
  7. 7. H. Jarzyna, T. Koronowicz, J. Szantyr: Design of marine propellers, Selected problems, Ossolineum, Wroclaw 1996.
  8. 8. L. Kobyliński: Marine propellers, Wyd. Komunikacyjne, Warszawa 1955 (in Polish).
  9. 9. K. Koyama: Comparative calculations of propellers by surface panel method, Workshop organized by 20th ITTC Propulsor Committee, Papers of Ship Research Institute, 1993.
  10. 10. P. Król, T. Bugalski, M. Wawrzusiszyn: Development of numerical methods for marine propeller – pre-swirl stator system design and analysis, SMP2017, Espoo, 2017.
  11. 11. K.-J. Lee, T. Hoshino, J.-H. Lee: A lifting surface optimization method for the design of marine propeller blades, Ocean Engineering, Vol. 88, pp. 472–470, 2014.10.1016/j.oceaneng.2014.07.010
  12. 12. T. Lee, S. O. Park: Improved iteration algorithm for nonlinear vortex lattice method, Journal of Aircraft, Vol. 46, No. 6., 2009.10.2514/1.44829
  13. 13. G. Luca, M. Roberto, T. Claudio: Marine propellers performance and flow-field prediction by a free-wake panel method, Journal of Hydrodynamics, Vol. 26, No. 5, pp. 780–795, 2014.10.1016/S1001-6058(14)60087-1
  14. 14. F. R. Menter: Two-equations eddy-viscosity turbulence models for engineering applications, AIAA-Journal, Vol. 32, No. 8, 1994.10.2514/3.12149
  15. 15. R. Muscari, A. Mascio, R. Verzicco: Modeling of vortex dynamics in the wake of a marine propeller, Computers & Fluids, Vol. 73, pp. 65–79, 2013.10.1016/j.compfluid.2012.12.003
  16. 16. J. Noosomton, W. Gunnuang: Case study on CFD simulation and experiment of new developed propeller for training thai boat, SMP2017, Espoo, 2017.
  17. 17. OpenFOAM user guide, OpenFOAM Foundation Ltd., 2015.
  18. 18. OpenFOAM programmer’s guide, OpenFOAM Foundation Ltd., 2015.
  19. 19. Y. Wang, M. Abdel-Maksound, P. Wang, B. Song: Simulate the PPTC propeller with a vortex particle-boundary element hybrid method, SMP2017, Espoo, 2017.
  20. 20. D.C. Wilcox: Turbulence modeling for CFD, DCW Industries, 1994.
DOI: https://doi.org/10.2478/pomr-2018-0054 | Journal eISSN: 2083-7429 | Journal ISSN: 1233-2585
Language: English
Page range: 57 - 65
Published on: Jul 7, 2018
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2018 Przemysław Król, Krzysztof Tesch, published by Gdansk University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.