Theoretical and Natural Science

- The Open Access Proceedings Series for Conferences


Theoretical and Natural Science

Vol. 11, 17 November 2023


Open Access | Article

Numerical analysis of the effects of the nozzle shape and outlet area of a waterjet propulsion system on its efficiency

Mingxiao Wei * 1
1 Thom Collegiate

* Author to whom correspondence should be addressed.

Theoretical and Natural Science, Vol. 11, 47-59
Published 17 November 2023. © 2023 The Author(s). Published by EWA Publishing
This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Citation Mingxiao Wei. Numerical analysis of the effects of the nozzle shape and outlet area of a waterjet propulsion system on its efficiency. TNS (2023) Vol. 11: 47-59. DOI: 10.54254/2753-8818/11/20230380.

Abstract

The waterjet propulsion system is a marine propulsion device prevalently used on contemporary high-speed vessels. The performance of a waterjet propulsion system is considerably affected by the nozzle. In this study, the influences of the shape and the outlet area of a waterjet propulsion system on the efficiency of the propulsion system is investigated using the computational fluid dynamics method. A total of 10 different nozzle designs, including cylindrical and conical nozzles with 5 different outlet areas, are analyzed in terms of nozzle efficiency and overall efficiency, and the possible reasons and explanations behind the variations of the nozzle efficiency and the overall efficiency are proposed in this study. The simulated results indicate that the conical nozzles consistently have higher nozzle efficiency than the cylindrical nozzles, and the maximum nozzle efficiency occurs in the conical nozzle with an outlet area of 60% of the inlet duct area. The abrupt change in the flow direction at the transition between the guide vane section and the nozzle, as well as the skin friction on the nozzle wall, are predominant factors affecting the nozzle efficiency. The waterjet propulsion units equipped with conical nozzles generally have higher overall efficiency than their counterparts equipped with cylindrical nozzles, while the maximum overall efficiency occurs in both the cylindrical nozzle with an outlet area of 50% of the inlet duct area and the conical nozzle with an outlet area of 60% of the inlet duct area. The loss of mechanical energy due to viscosity and turbulence in a propulsion unit is the major source of energy loss, while the kinetic energy carried by the exit flow is also a considerable factor affecting the overall efficiencies of the propulsion units equipped with conical nozzles with relatively large outlet areas.

Keywords

waterjet propulsion system, computational fluid dynamics, efficiency, nozzle shape, nozzle outlet area.

References

1. Bulten, N. W. H. (2006). Numerical analysis of a waterjet propulsion system. Dissertation Abstracts International, 68(02).

2. Carlton, J. S. (2019). Waterjet propulsion. Marine Propellers and Propulsion, 399–408. https://doi.org/10.1016/b978-0-08-100366-4.00016-x.

3. Ding, J. M. and Wang, Y. S. (2010). Research on flow loss of inlet duct of marine waterjets. Journal of Shanghai Jiaotong University (Science), 15(2), 158–162. https://doi.org/10.1007/s12204-010-8130-x.

4. Jiao, W., Cheng, L., Zhang, D., Zhang, B., Su, Y. and Wang, C. (2019). Optimal design of inlet passage for waterjet propulsion system based on flow and geometric parameters. Advances in Materials Science and Engineering, 2019, 1–21. https://doi.org/10.1155/2019/2320981.

5. Xu, H. and Zou, Z. (2021). Numerical simulation of the flow in a waterjet intake under different motion conditions. Journal of Shanghai Jiaotong University (Science), 27(3), 356–364. https://doi.org/10.1007/s12204-021-2321-5.

6. Xia, C., Cheng, L., Luo, C., Jiao, W. and Zhang, D. (2019). Hydraulic characteristics and measurement of rotating stall suppression in a waterjet propulsion system. Transactions of FAMENA, 42(4), 85–100. https://doi.org/10.21278/tof.42408.

7. Huang, G. Q., Yang, Y. S., Li, X. H. and Zhu, Y. Q. (2009). Reaction thrust of water jet for conical nozzles. Journal of Shanghai University (English Edition), 13(4), 305–310. https://doi.org/10.1007/s11741-009-0411-1.

8. Yang, Y. S., Xie, Y. C. and Nie, S. L. (2014). Nozzle optimization for water jet propulsion with a positive displacement pump. China Ocean Engineering, 28(3), 409–419. https://doi.org/10.1007/s13344-014-0033-4.

9. Wang, C., He, X., Cheng, L., Luo, C., Xu, J., Chen, K. and Jiao, W. (2019). Numerical simulation on hydraulic characteristics of nozzle in Waterjet Propulsion System. Processes, 7(12), 915–935. https://doi.org/10.3390/pr7120915.

10. Jiao, W., Cheng, L., Xu, J. and Wang, C. (2019). Numerical Analysis of two-phase flow in the cavitation process of a waterjet propulsion pump system. Processes, 7(10), 690–712. https://doi.org/10.3390/pr7100690.

11. Menter, F. R. (1994). Two-equation eddy-viscosity turbulence models for engineering applications. AIAA Journal, 32(8), 1598–1605. https://doi.org/10.2514/3.12149.

12. Schnerr, G. H. and Sauer, J. (2001). Physical and numerical modeling of unsteady cavitation dynamics. In Fourth international conference on multiphase flow (Vol. 1). New Orleans, LO, USA: ICMF New Orleans.

Data Availability

The datasets used and/or analyzed during the current study will be available from the authors upon reasonable request.

This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License. Authors who publish this series agree to the following terms:

1. Authors retain copyright and grant the series right of first publication with the work simultaneously licensed under a Creative Commons Attribution License that allows others to share the work with an acknowledgment of the work's authorship and initial publication in this series.

2. Authors are able to enter into separate, additional contractual arrangements for the non-exclusive distribution of the series's published version of the work (e.g., post it to an institutional repository or publish it in a book), with an acknowledgment of its initial publication in this series.

3. Authors are permitted and encouraged to post their work online (e.g., in institutional repositories or on their website) prior to and during the submission process, as it can lead to productive exchanges, as well as earlier and greater citation of published work (See Open Access Instruction).

Volume Title
Proceedings of the 2023 International Conference on Mathematical Physics and Computational Simulation
ISBN (Print)
978-1-83558-133-9
ISBN (Online)
978-1-83558-134-6
Published Date
17 November 2023
Series
Theoretical and Natural Science
ISSN (Print)
2753-8818
ISSN (Online)
2753-8826
DOI
10.54254/2753-8818/11/20230380
Copyright
17 November 2023
Open Access
This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited

Copyright © 2023 EWA Publishing. Unless Otherwise Stated