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Numerical Study on the Improvement of Resistance Performance for Fast-ferry with Transom Appendage

机译:带有尾翼的渡轮提高抗航性能的数值研究

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In recent, stern wedges and stern flaps are installed for the improvement of propulsion and resistance performance of fast-ferry. For example, U.S. Navy has achieved the development of stern wedges and stern flaps for destroyer to enhance powering performance. It is generally known that stern wave systems as well as bow wave systems play an important role in the wave making resistance performance for fast-ferry. The bow diverging wave system has been usually simulated by an interface tracking method (ITM). However, it is difficult to apply the ITM to the numerical simulation of the stern wave and spray phenomenon because of over-turning wave and wave-breaking. Therefore, to solve this problem an interface capturing method (ICM) is introduced. In the present study, a numerical method with the ICM is developed to evaluate the resistance performance of fast-ferry. Incompressible Navier-Stokes and continuity equations are employed in the present study and the equations are discretized by Finite Difference Method in the general curvilinear coordinate system. CIP (Constrained Interpolated Profile) method is used for the discretization of convection terms, respectively. The free surface location is determined by level set method. In order to validate the numerical method, numerical simulations for Wigley hull are performed and their results are compared with experimental results. Several numerical simulations of ship waves for fast-ferry are performed to find advantages of appendage installation. Through those simulations, the computed results, such as wave profile and resistance coefficient, are compared with the measured results which are achieved from Samsung Ship Model Basin (SSMB). The effects of transom appendage on the resistance performance are discussed with the computed results in this study.
机译:近年来,安装了船尾楔和船尾襟翼以改善快艇的推进力和阻力性能。例如,美国海军已经实现了用于驱逐舰的船尾楔和船尾襟翼的开发,以增强动力性能。众所周知,船尾波系统和船首波系统在快速渡轮的造波阻力性能中起着重要作用。船首发散波系统通常已经通过界面跟踪方法(ITM)进行了仿真。然而,由于倾覆波和波折,难以将ITM应用于尾波和喷射现象的数值模拟。因此,为了解决该问题,引入了接口捕获方法(ICM)。在本研究中,开发了一种使用ICM的数值方法来评估快速渡轮的阻力性能。本研究采用不可压缩的Navier-Stokes方程和连续性方程,并通过有限差分法在一般曲线坐标系中离散该方程。 CIP(约束内插轮廓)方法分别用于对流项的离散化。自由表面的位置由水平设定方法确定。为了验证数值方法,对Wigley船体进行了数值模拟,并将其结果与实验结果进行了比较。对快渡船波浪进行了一些数值模拟,以发现附属物安装的优点。通过这些模拟,将计算结果(如波剖面和电阻系数)与从三星船模盆地(SSMB)获得的测量结果进行比较。在本研究中,通过计算结果讨论了尾部附肢对阻力性能的影响。

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