Reduced order method for ship roll motion prediction based on viscosity equivalence

被引:0
|
作者
Jiang Y. [1 ]
Zong H. [2 ]
Liu S. [1 ]
Sun Z. [1 ]
Zhang G. [1 ,3 ]
机构
[1] School of Naval Architecture, Dalian University of Technology, Dalian
[2] Ningbo Ocean Shipping Company Limited, Ningbo
[3] State Key Laboratory of Structural Analysis for Industrial Equipment, Dalian University of Technology, Dalian
关键词
energy equivalence method; forced amplification; hydrodynamic moment; nonlinear damping; real-time correction; reduced order method; ship roll motion; viscous correction;
D O I
10.11990/jheu.202110034
中图分类号
学科分类号
摘要
Aiming at the classical roll problem in the seakeeping performance of a ship, this paper presents a viscosity-equivalent reduced order method (VEROM) for roll motion prediction. This method identifies the nonlinear roll damping characteristics based on a viscous flow and nonviscous models solving the N-S and Euler equations, respectively. In this method, the hydrodynamic moment under different motion amplitudes is predicted from a new type of forced motion whose amplitude increases with time. First, the viscous flow and inviscid models are used to simulate the forced amplification motion of the hull and predict the hydrodynamic moment under different motion amplitudes, respectively. Furthermore, the energy equivalent method is used to obtain the correction function of ship rolling damping with KC number. In the prediction of rolling motion response, the inviscid fluid is solved on the basis of the Euler equation, and the rolling damping is corrected in real time by using the obtained damping correction function to improve the prediction accuracy. VEROM and RANS viscous models are used to predict the roll response of the midship section of a typical hull in waves to verify the effectiveness of the proposed method. Comparison results show that the forecast accuracy of the VEROM model is comparable to that of the RANS model. However, the computational efficiency can reach more than 20 times of the RANS model. © 2023 Editorial Board of Journal of Harbin Engineering. All rights reserved.
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页码:109 / 116
页数:7
相关论文
共 16 条
  • [1] LI Jide, Ship wave resistance, (1993)
  • [2] MA Xianshan, Investigation of the maneuvering factors of the shipwreck of the Daesun, Tianjin Navigation, 2, pp. 3-11, (2007)
  • [3] LUO Tian, WAN Decheng, Numerical analysis of viscous effect on ship rolling motions based on CFD, Chinese journal of ship research, 12, 2, pp. 1-11, (2017)
  • [4] BU Shuxia, QIU Gengyao, GU Min, Validation of CFD simulation for ship roll damping[ J], Journal of ship mechanics, 21, 3, pp. 275-283, (2017)
  • [5] KIANEJAB S S, ENSHAEI H, DUFFY J, Et al., Ship roll damping coefficient prediction using CFD, Journal of ship research, 63, 2, pp. 108-122, (2019)
  • [6] KORPUS R A, FALZARANO J M., Prediction of viscous ship roll damping by unsteady navier-stokes techniques [J], Journal of offshore mechanics and arctic engineering, 119, 2, pp. 108-113, (1996)
  • [7] ZHANG Huaixin, LIU Yingzhong, MIAO Guoping, Vortex patterns and roll damping at various cross sections of ship, Journal of hydrodynamics(Ser. A), 3, pp. 382-389, (2001)
  • [8] WILSON R V, CARRICA P M, STERN F., Unsteady RANS method for ship motions with application to roll for a surface combatant [ J], Computers & fluids, 35, 5, pp. 501-524, (2006)
  • [9] (2011)
  • [10] LUO Minli, CFD based hydrodynamic coefficients calculation to forced motion of two-dimensional section, (2011)