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Liczba wyników
2024 | nr 3 | 15--24
Tytuł artykułu

Determination of propeller-rudder-hull interaction coefficients in ship manoeuvring prediction

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Języki publikacji
EN
Abstrakty
EN
The assessment of ship manoeuvring properties is a crucial part of the process of ship design and is usually first carried out during the model test phase of the project. According to the International Maritime Organisation (IMO), the manoeuvrability of the ship can be assessed on the basis of the standard trial manoeuvres. In order to do this, free running model tests or captive model tests are used, in conjunction with a mathematical model of ship motion; this is considered to be a reliable prediction method. In recent years, numerical-based methods have also been widely used in ship hydrodynamics and constantly improving computing power and more accurate fluid dynamics models have made the simulation of more complex cases possible. The study presented in this paper focuses on the determination of propeller-rudder-hull interaction coefficients based on the Mathematical Modelling Group (MMG) standard method in ship manoeuvring prediction. The identification of the parameters uses both captive model tests and a simplified numerical method, as well as regression formulas. The results of 35° turning and 10°/10° zig-zag manoeuvres, obtained with the use of each prediction method, are then compared. The test case used in the study is the container type cargo ship equipped with a single propeller and rudder. The model scale, for which the referenced model tests were carried out, is equal to 1:25 and a NACA 0020 rudder profile was used. This research highlights the advantages and disadvantages of each presented prediction method and their potential for future improvement.
Wydawca

Rocznik
Tom
Strony
15--24
Opis fizyczny
Bibliogr. 22 poz., rys., tab.
Twórcy
  • Maritime Advanced Research Centre (CTO), Poland
Bibliografia
  • 1. Yoshimura Y, Ueno M, Tsukada Y. Analysis of steady hydrodynamic force components and prediction of manoeuvring ship motion with KVLCC1, KVLCC2 and KCS. Workshop on verification and validation of ship manoeuvring simulation method, Workshop Proceedings, vol. 1, Copenhagen, pp. E80–E86, SIMMAN 2008.
  • 2. Abkowitz MA, Liu G. Measurement of ship resistance, powering and manoeuvring coefficients from simple trials during a regular voyage. Trans SNAME 96, pp. 97–128, 1988.
  • 3. Yasukawa H, Yoshimura Y. Introduction of MMG standard method for ship manoeuvring predictions. Journal of Marine Science and Technology, Japan, 2015. (DOI: 10.1007/s00773-014-0293-y).
  • 4. Dai K, Li Y. Manoeuvring prediction of KVLCC2 with hydrodynamic derivatives generated by a virtual captive test. Polish Maritime Research 4 (104), Vol. 26, pp. 16-26, Poland, 2019. (DOI: 10.2478/pomr-2019-0062).
  • 5. Sadati K, Zeraatgar K, Moghaddas A. Simulation of turning manoeuvre of planing craft taking into account the running attitude change in a simplified manner. Polish Maritime Research 4 (116), Vol. 29, pp. 12-25, Poland, 2022. (DOI:10.2478/pomr-2022-0040).
  • 6. Mei B, Sun L, Shi G, Liu X. Ship manoeuvring prediction using grey box framework via adaptive RM-SVM with minor rudder. Polish Maritime Research 3 (103), Vol. 26, pp. 115-127, Poland, 2019. (DOI: 10.2478/pomr-2019-0052).
  • 7. Yoon HK, Rhee KP. Identification of hydrodynamic coefficients in ship manoeuvring equations of motion by Estimation-Before-Modelling technique. Ocean Engineering, Volume 30, Issue 18, pp. 2379-2404, 2003. (DOI: 10.1016/S0029-8018(03)00106-9).
  • 8. Lee H, Shin S. The prediction of ship’s manoeuvring performance in initial design stage. Hyundai Maritime Research Institute, Elsevier Science B.V., 1998. (DOI: 10.1016/s0928-2009(98)80205-9).
  • 9. Yoshimura Y, Masumoto Y. Hydrodynamic Database and Manoeuvring Prediction Method with Medium and High-Speed Merchant Ships and Fishing Vessels. MARSIM, 2012.
  • 10. 28th International Towing Tank Conference. Ships Models. Procedure 7.5-01-01-01 Revision 04, 2017.
  • 11. 28th International Towing Tank Conference. Propeller Model Accuracy. Procedure 7.5-01-02-02 Revision 01, 2017.
  • 12. International Maritime Organisation. Standards for Ship Manoeuvrability. Resolution MSC.137(76), London, 2002.
  • 13. International Maritime Organisation. Explanatory Notes to the Standards for Ship Manoeuvrability. MSC/Circ. 1053, London, 2002.
  • 14. Manoeuvring Committee of 28th International Towing Tank Conference. Captive Model Tests. Procedure 7.5-02-06-02 Revision 05, 2017.
  • 15. Manoeuvring Committee of 28th International Towing Tank Conference. Uncertainty Analysis for Manoeuvring Predictions based on Captive Manoeuvring Tests. Procedure 7.5-02-06-04 Revision 05, 2017.
  • 16. 28th International Towing Tank Conference. Guideline on Use of RANS Tools for Manoeuvring Prediction. Procedure 7.5-03-04-01 Revision 01, 2017.
  • 17. Shang H, Zhan C, Liu Z. Numerical Simulation of Ship through Self-Propulsion. Journal of Marine Science and Engineering, Volume 9, Issue 9, 2021. (DOI: 10.3390/jmse9091017).
  • 18. Zinati A, Ketabdari MJ, Zeraatgar H. Effects of Propeller Fouling on the Hydrodynamic Performance of a Marine Propeller. Polish Maritime Research 1 (117), Vol. 30, pp. 61-73, Poland, 2023. (DOI: 10.2478/pomr-2023-0059).
  • 19. Ngoc TT, Luu DD, Nguyen THH, Nguyen TTQ, Nguyen MV. Numerical Prediction of Propeller-Hull Interaction Characteristics Using RANS Method. Polish Maritime Research 2 (102), Vol. 26, pp. 163-172, Poland, 2019. (DOI:10.2478/pomr-2019-0036).
  • 20. 28th International Towing Tank Conference. Validation and Verification of RANS Solutions in the Prediction of Manoeuvring Capabilities. Procedure 7.5-03-04-02 Revision 01, 2017.
  • 21. Hooft JP, Pieffers J. Manoeuvrability of frigates in waves. Marine Technology, vol. 25, no. 4, pp. 262–271, 1988. (DOI:10.5957/mt1.1988.25.4.262 ).
  • 22. Kołodziej R, Hoffmann P. Numerical Estimation of Hull Hydrodynamic Derivatives in Ship Manoeuvring Prediction. Polish Maritime Research 2 (110), Vol. 28, pp. 46-53, Poland, 2021. (DOI: 10.2478/pomr-2021-0020).
Typ dokumentu
Bibliografia
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Identyfikator YADDA
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