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Evaluation of Effectiveness of Waterjet Propulsor for a Small Underwater Vehicle Cover

Evaluation of Effectiveness of Waterjet Propulsor for a Small Underwater Vehicle

Open Access
|Jan 2022

References

  1. 1. Y. Shen et al., ‘Design of Novel Shaftless Pump-Jet Propulsor for Multi-Purpose Long-Range and High-Speed Autonomous Underwater Vehicle’, IEEE Trans. Magn., vol. 52, no. 7, 2016, doi: 10.1109/TMAG.2016.2522822.10.1109/TMAG.2016.2522822
  2. 2. L. Zhang, J. N. Zhang, Y. C. Shang, G. X. Dong, and W. M. Chen, ‘A Practical approach to the assessment of waterjet propulsion performance: The case of a waterjet-propelled trimaran’, Polish Marit. Res., vol. 26, no. 4, 2020, doi: 10.2478/pomr-2019-0063.10.2478/pomr-2019-0063
  3. 3. L. Jian, L. Xiwen, Z. Zuti, L. Xiaohui, and Z. Yuquan, ‘Numerical investigation into effects on momentum thrust by nozzle’s geometric parameters in water jet propulsion system of autonomous underwater vehicles’, Ocean Eng., vol. 123, 2016, doi: 10.1016/j.oceaneng.2016.07.041.10.1016/j.oceaneng.2016.07.041
  4. 4. S. Wang, M. Fu, Y. Wang, and L. Zhao, ‘A Multi-Layered Potential Field Method for Water-Jet Propelled Unmanned Surface Vehicle Local Path Planning with Minimum Energy Consumption’, Polish Marit. Res., vol. 26, no. 1, 2019, doi: 10.2478/pomr-2019-0015.10.2478/pomr-2019-0015
  5. 5. W. Próchnicki, Analysis of the ship’s jet propulsion capabilities. Gdansk: Politechnika Gdanska, 2001.
  6. 6. L. Rowinski, ‘Motion requirements of single mission mine counter submersible craft, Underwater Defence Technology Conference and Exhibition, Malmo, Sweden’, 2003.
  7. 7. L. Rowinski, ‘Articulated warhead mine disposal vehicle, Underwater Defence Technology Conference and Exhibition “UDT Europe 2008”, Glasgow, Great Britain’, 2008.
  8. 8. ‘The Specialist Committee on Validation of Waterjet Test Procedures’, in Proceedings of the 24th ITTC, 2005, p. Volume II.
  9. 9. F. M. White, ‘Fluid Mechanics seventh edition by Frank M. White’, Power, 2011.
  10. 10. F. O. M. Faltinsen, Hydrodynamics of High-Speed Maritime Vehicles. Cambridge University Press, 2005.10.1017/CBO9780511546068
  11. 11. Tesch Krzysztof, Fluid Mechanics. Politechnika Gdanska, 2008.
  12. 12. H. T. Schlichting, Boundary Layer Theory. McGraw-Hill, 1979.
  13. 13. ‘Report of the Waterjets Group, Proceedings of the 21st International Towing Tank Conference, ITTC’96’, Trondheim, Norway, 1996.
  14. 14. T. J. C. Van Terwisga, ‘Waterjet-Hull interaction, PhD. Thesis’, 1996.
  15. 15. M. C. Kim and H. H. Chun, ‘Experimental Investigation into the performance of the Axial-Flow-Type Waterjet according to the Variation of Impeller Tip Clearance’, Ocean Eng., vol. 34, no. 2, 2007, doi: 10.1016/j.oceaneng.2005.12.011.10.1016/j.oceaneng.2005.12.011
  16. 16. C. Lubert, ‘On some recent applications of the coanda effect’, in International Journal of Acoustics and Vibrations, 2011, vol. 16, no. 3, doi: 10.20855/ijav.2011.16.3286.10.20855/ijav.2011.16.3286
  17. 17. J. Arnold; G.J. Nijhuis, Selection design and operation of rotodynamic pumps. The Nijhuis Pompen. 2005.
  18. 18. L. F. Moody, ‘The Propeller Type Turbine’, Trans. Am. Soc. Civ. Eng., 1925.10.1061/TACEAT.0003618
  19. 19. H. H. Anderson, ‘Theory of Centrifugal Pumps’, in Centrifugal Pumps, 1993, pp. 36–43.10.1016/B978-0-85461-076-1.50010-X
DOI: https://doi.org/10.2478/pomr-2021-0047 | Journal eISSN: 2083-7429 | Journal ISSN: 1233-2585
Language: English
Page range: 30 - 41
Published on: Jan 1, 2022
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2022 Lech Rowinski, Maciej Kaczmarczyk, published by Gdansk University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.