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Experimental Study on Dynamic Structure of Propeller Tip Vortex


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1. Aktas, B., Atlar, M., Turkmen, S., et al. (2016) Systematic cavitation tunnel tests of a propeller in uniform and inclined flow conditions as part of a round robin test campaign. Ocean Engineering, Vol. 120, 136–151.10.1016/j.oceaneng.2015.12.015Search in Google Scholar

2. Baek, D.-G., Yoon, H.-S., Jung, J.-H., et al. (2015) Effect of the advance ratio on the evolution of propeller wake. Computers & Fluids, Vol. 118, 32–43.10.1016/j.compfluid.2015.06.010Search in Google Scholar

3. Cotroni A., Felice F. D., Romano G. P., et al. (2000) Investigation of the near wake of a propeller using particle image velocimetry. Experiments in Fluids, Vol. 2000 (suppl), S227–S236.10.1007/s003480070025Search in Google Scholar

4. Dengcheng, L., Weixin, Z. (2016) Numerical predictions of the propeller cavitation behind ship and comparison with experiment. Journal of Ship Mechanics. Vol. 20, No. 3, 233–242.Search in Google Scholar

5. 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.Search in Google Scholar

6. Gaggero, S., Tani, G., Viviani, M., et al. (2014) A study on the numerical prediction of propellers cavitating tip vortex. Ocean Engineering, Vol. 92, 137–161.10.1016/j.oceaneng.2014.09.042Search in Google Scholar

7. Guoqiang, W., Shitang, D. (2005) Theory and applications of marine propeller. Harbin Engineering University Press, Vol. 5.Search in Google Scholar

8. Guoqiang, W., Xiaolong, L. (2006) Prediction of unsteady performance of ducted propellers by potential based panel method. Journal of Ship Mechanics, Vol. 10, No. 1, 47–51.Search in Google Scholar

9. Jessup, S. D. (1989) An experimental investigation of viscous aspects of propeller blade flow. Ph. D. Thesis, The Catholic University of America.Search in Google Scholar

10. Jijun, P., Ying, X. Scaling effects of propeller sheet cavitation. Journal of Wuhan University of Technology, Vol. 40, No. 4, 705–708.Search in Google Scholar

11. Koyama K. (1993) Comparative calculations of propellers by surface panel method. Workshop Organized by 20th ITTC Propulsor Committee, Ship Research Institute, Supplement, 15.Search in Google Scholar

12. Min, K. S. (1978) Numerical and experimental methods for prediction of field point velocities around propeller blades. MIT Department of Ocean Engineering Report, Vol. 6.Search in Google Scholar

13. Lee, J.-Y., Paik, B.-G., Lee, S. J. (2009) PIV measurements of hull wake behind a container ship model with varying loading condition. Ocean Engineering, Vol. 36, 377–385.10.1016/j.oceaneng.2009.01.006Search in Google Scholar

14. Lee S. J., Paik, B.-G., Yoon, J. H., et al. (2004) Three-component velocity field measurements of propeller wake using a stereoscopic PIV technique. Experiments in Fluids, Vol. 36, 575–585.10.1007/s00348-003-0699-5Search in Google Scholar

15. Paik, B.-G., Lee, C. M., Lee S. J. (2005) Comparative measurement on flow structure of marine propeller wake between open free surface and closed surface flows. Journal of Marine Science and Technology, Vol. 10(3), 123–130.10.1007/s00773-004-0190-xSearch in Google Scholar

16. Pennings P. C., Westerweel J., Van Terwisga T. J. C. (2016) Cavitation tunnel analysis of radiated sound from the resonance of a propeller tip vortex cavity. International Journal of Multiphase Flow, Vol. 83, 1–11.10.1016/j.ijmultiphaseflow.2016.03.004Search in Google Scholar

17. Tani, G., Villa, D., Gaggero, S., et al. (2017) Experimental investigation of pressure pulses and radiated noise for two alternative designs of the propeller of a high-speed craft. Ocean Engineering, Vol. 132, 45–69.10.1016/j.oceaneng.2017.01.015Search in Google Scholar

18. Zhengqing, D., Linzhang, L., Weixin, Z. (2006) LDV measurements of inner velocity field of ducted propeller. Journal of Ship Mechanics, Vol. 10, No. 5, 24–31.Search in Google Scholar

19. Zhihui, L., Benlong, W., Xiaoxing, P. et al. (2016) Calculation of tip vortex cavitation flows around three-dimensional hydrofoils and propellers using a nonlinear-kε turbulence model. Journal of Hydrodynamics, Vol. 28, 227–237.10.1016/S1001-6058(16)60624-8Search in Google Scholar

eISSN:
2083-7429
Język:
Angielski
Częstotliwość wydawania:
4 razy w roku
Dziedziny czasopisma:
Engineering, Introductions and Overviews, other, Geosciences, Atmospheric Science and Climatology, Life Sciences