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A mathematical model for the maneuvering simulation of a propelled SPAR vessel

机译:推进式spaR船舶机动仿真的数学模型

摘要

To predict the maneuvering performance of a propelled SPAR vessel, a mathematical model was established as a path simulator. A system-based mathematical model was chosen as it offers advantages in cost and time over full Computational Fluid Dynamics (CFD) simulations. The model is intended to provide a means of optimizing the maneuvering performance of this new vessel type.udIn this study the hydrodynamic forces and control forces are investigated as individual components, combined in a vectorial setting, and transferred to a body-fixed basis. SPAR vessels are known to be very sensitive to large amplitude motions during maneuvers due to the relatively small hydrostatic restoring forces. Previous model tests of SPAR vessels have shown significant roll and pitch amplitudes, especially during course change maneuvers. Thus, a full 6 DOF equation of motion was employed in the current numerical model.udThe mathematical model employed in this study was a combination of the model introduced by the Maneuvering Modeling Group (MMG) and the Abkowitz (1964) model. The new model represents the forces applied to the ship hull, the propeller forces and the rudder forces independently, as proposed by the MMG, but uses a 6DOF equation of motion introduced by Abkowitz to describe the motion of a maneuvering ship.udThe mathematical model was used to simulate the trajectory and motions of the propelled SPAR vessel in 10˚/10˚, 20˚/20˚ and 30˚/30˚ standard zig-zag maneuvers, as well as turning circle tests at rudder angles of 20˚ and 30˚. The simulation results were used to determine the maneuverability parameters (e.g. advance, transfer and tactical diameter) of the vessel. The final model provides the means of predicting and assessing the performance of the vessel type and can be easily adapted to specific vessel configurations based on the generic SPAR-type vessel used in this study.
机译:为了预测推进式SPAR船的操纵性能,建立了数学模型作为路径模拟器。选择了基于系统的数学模型,因为它在成本和时间上都比完整的计算流体动力学(CFD)模拟更具优势。该模型旨在为优化这种新型船舶的操纵性能提供一种手段。 ud在本研究中,将流体动力和控制力作为单独的组成部分进行研究,并结合矢量设置,并传递给身体固定的基础。已知由于相对较小的静液压恢复力,SPAR船对操纵过程中的大幅度运动非常敏感。先前的SPAR船模型测试已经显示出明显的侧倾和俯仰幅度,特别是在航向改变操纵期间。因此,当前的数值模型中使用了完整的6自由度运动方程。 ud本研究中使用的数学模型是由机动模型组(MMG)和Abkowitz(1964)模型引入的模型的组合。新模型代表了MMG提出的独立施加到船体的力,螺旋桨力和方向舵力,但使用Abkowitz引入的6DOF运动方程来描述机动船的运动。 ud数学模型用于模拟SPAR推进船在10˚/10˚,20˚/20˚和30˚/30˚标准之字形操纵中的轨迹和运动,以及在舵角为20˚和30˚。模拟结果用于确定船只的可操纵性参数(例如,前进,转移和战术直径)。最终模型提供了预测和评估容器类型性能的方法,并且可以基于本研究中使用的通用SPAR型容器轻松地适应特定的容器配置。

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    Mohammadafzali Soroosh;

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  • 年度 2016
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