Integrating Computational Fluid Dynamics for Maneuverability Prediction in Dual Full Rotary Propulsion Ships: A 4-DOF Mathematical Model Approach

Author:

Yu Qiaochan12,Yang Yuan3ORCID,Geng Xiongfei1ORCID,Jiang Yuhan4,Li Yabin5,Tang Yougang3

Affiliation:

1. China Waterborne Transport Research Institute, Beijing 100088, China

2. School of Electrical and Information Engineering, Tianjin University, Tianjin 300072, China

3. School of Civil Engineering, Tianjin University, Tianjin 300354, China

4. Intelligent Navigation (Qingdao) Technology Co., Ltd., Qingdao 266200, China

5. Qingdao Institute of Shipping Development Innovation, Qingdao 266200, China

Abstract

To predict the maneuverability of a dual full rotary propulsion ship quickly and accurately, the integrated computational fluid dynamics (CFD) and mathematical model approach is performed to simulate the ship turning and zigzag tests, which are then compared and validated against a full-scale trial carried out under actual sea conditions. Initially, the RANS equations are solved, employing the Volume of Fluid (VOF) method to capture the free water surface, while a numerical simulation of the captive model test is conducted using the rigid body motion module. Secondly, hydrodynamic derivatives for the MMG model are obtained from the CFD simulations and empirical formula. Lastly, a four-degree-of-freedom mathematical model group (MMG) maneuvering model is proposed for the dual full rotary propulsion ship, incorporating full-scale simulations of turning and zigzag tests followed by a full-scale trial for comparative validation. The results indicate that the proposed method has a high accuracy in predicting the maneuverability of dual full-rotary propulsion ships, with an average error of less than 10% from the full-scale trial data (and within 5% for the tactical diameters in particular) in spite of the influence of environmental factors such as wind and waves. It provides experience in predicting the maneuverability of a full-scale ship during the ship design stage.

Funder

National Key Research and Development Program of China

Publisher

MDPI AG

Reference30 articles.

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4. MMG report-I, on the mathematical model of ship manoeuvring;Ogawa;Bull. Soc. Nav. Archit.,1977

5. Parameter identification of ship motion mathematical model based on full-scale trial data;Meng;Int. J. Nav. Archit. Ocean Eng.,2022

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