Have a personal or library account? Click to login
Blade Section Profile Array Lifting Surface Design Method for Marine Screw Propeller Blade Cover

Blade Section Profile Array Lifting Surface Design Method for Marine Screw Propeller Blade

Open Access
|Dec 2019

References

  1. 1. Bugalski T., Streckwall H., Szantyr J. A. (2013): Critical review of propeller performance scaling methods, based on model experiments and numerical calculations. Polish Maritime Research, 4(80), Vol. 20, 71–80.10.2478/pomr-2013-0043
  2. 2. Brockett T. (1981): Lifting-Surface Hydrodynamics for Design of Rotating Blades, Propellers ‘81 Symposium.10.5962/bhl.title.47399
  3. 3. Gaggero S., Gonzalez-Adalid J., Perez Sobrino M. (2016): Design of contracted and tip loaded propellers by using boundary element methods and optimization algorithms. Applied Ocean Research, Vol. 55, 102–129.10.1016/j.apor.2015.12.004
  4. 4. Greeley D. S., Kerwin J. E. (1982): Numerical methods for propeller design and analysis in steady flow. SNAME Transactions, Vol. 90, 415–453.
  5. 5. Jarzyna H., Koronowicz T., Szantyr J. A. (1996): Design of marine propellers, Selected problems. Ossolineum, Wrocław.
  6. 6. Kobyliński L. (1955): Śruby okrętowe (in Polish). Wydawnictwo Komunikacyjne, Warszawa.
  7. 7. Koyama K. (1993): Comparative calculations of propellers by surface panel method, Workshop organized by 20th ITTC Propulsor Committee. Papers of Ship Research Institute.
  8. 8. Król P., Bugalski T. (2018): Application of vortex flow model in propeller – stator system design and analysis. Polish Maritime Research, 1(97), Vol. 25, 35–44.10.2478/pomr-2018-0004
  9. 9. Król P., Tesch K. (2018): Experimental and numerical validation of the improved vortex method applied to CP745 marine propeller model. Polish Maritime Research, 2(98), Vol. 25, 57–66.10.2478/pomr-2018-0054
  10. 10. Lee K. J., Hoshino T., Lee J. H. (2014): A lifting surface optimization method for the design of marine propeller blades. Ocean Engineering, Vol. 88, 472–470.10.1016/j.oceaneng.2014.07.010
  11. 11. Lee T., Park S. O. (2009): Improved iteration algorithm for nonlinear vortex lattice method. Journal of Aircraft, Vol. 46, No. 6.10.2514/1.44829
  12. 12. Luca G., Roberto M., Claudio T. (2014): Marine propellers performance and flow-field prediction by a free-wake panel method. Journal of Hydrodynamics, Vol. 26 (5), 780–795.10.1016/S1001-6058(14)60087-1
  13. 13. Miclea-Bleiziffer M., Untaroiu A., Delgado A. (2014): Development of a novel design method for marine propellers by computing the exact lift of arbitrary hydrofoils in cascade. Ocean Engineering, Vol. 83, 87–98.10.1016/j.oceaneng.2014.03.015
  14. 14. Morgan B., Silovic V., Denny S. B. (1968): Propeller Lifting-Surface Corrections. SNAME Transactions, Vol. 76, 309–347.
  15. 15. Muscari R., Mascio A., Verzicco R. (2013): Modeling of vortex dynamics in the wake of a marine propeller. Computers & Fluids, Vol. 73, 65–79.10.1016/j.compfluid.2012.12.003
  16. 16. Noosomton J., Gunnuang W. (2017): Case study on CFD simulation and experiment of new developed propeller for training Thai boat. Fifth International Symposium on Marine Propulsors – SMP’17, Espoo.
  17. 17. Suchecki W. (2018): Studies on velocity fields around the cavitation vortices generated by the model of a rotating blade. Polish Maritime Research, 2(98), Vol. 25, 66–70.10.2478/pomr-2018-0055
  18. 18. Szantyr J. (1984): Deformable lifting surface method for determination of unsteady cavitation on screw propeller blade and its hydrodynamic results (in Polish). IMP PAN Gdańsk.
  19. 19. Zeraatgar H., Hossein Ghaemi M. (2019): The analysis of overall ship fuel consumption in acceleration manoeuvre using hull-propeller-engine interaction principles and governor features. Polish Maritime Research, 1(101), Vol. 26, 162–173.10.2478/pomr-2019-0018
DOI: https://doi.org/10.2478/pomr-2019-0075 | Journal eISSN: 2083-7429 | Journal ISSN: 1233-2585
Language: English
Page range: 134 - 141
Published on: Dec 31, 2019
Published by: Gdansk University of Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2019 Przemysław Król, published by Gdansk University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.