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Experimental Study on Motion Behavior and Longitudinal Stability Assessment of a Trimaran Planing Hull Model in Calm Water

机译:平静水中三兰船体模型的运动行为和纵向稳定性评估的实验研究

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摘要

In this study, a high-speed planing trimaran hull form is designed, and the effects of different displacements and gravity longitudinal layouts on the performance of the trimaran planing hull in calm water are experimentally investigated in the towing tank of the China Special Vehicle Research Institute. Based on previous work, an innovative inner tunnel appendage hydroflap is mounted in the inner aft tunnel, located 1/8 L from the transom in the longitudinal direction with attack angles of 0° and 4°, respectively. Furthermore, a regular stern flap is mounted on the transom close to the chine. The towing test results show that, as the gravity center moves forward, the high-speed region resistance of the planing trimaran increases and the longitudinal stability is also strengthened. Further, the total resistance of the planing trimaran with a heavier displacement is larger while the average mass resistance declines; i.e., the resistance efficiency is improved. The results also indicate that the inner tunnel hydroflap and stern flap enhance the aft hull hydrodynamic lift and tunnel aerodynamic lift. As a result, mounting aft hull lift enhancement appendages can affect the bottom and inner tunnel pressure distribution and then cause a slight resistance decrease in the low-speed region. The value relationship of resistance between groups of appendages for the attached hull and bare hull is reversed at a speed of about Froude number 3.0. Although the aft hull lift enhancement appendages result in a higher resistance cost in the high-speed region, the longitudinal stability is effectively promoted and the occurrence speed of porpoising results in a delay of 1 to 2 m/s.
机译:在这项研究中,设计了一种高速刨细纹船体形式,并且在中国特种车辆研究所的牵引箱中实验研究了不同位移和重力纵向布局对平静水中的剪裁船体性能的影响。基于以前的工作,创新的内部隧道附属阑尾水编安装在内部后隧道中,分别位于横向方向上的1/8 L,分别具有0°和4°的攻击角。此外,常规船尾挡板安装在靠近Chine的横梁上。牵引试验结果表明,随着重力中心向前移动,平面三兰的高速区域电阻增加,纵向稳定性也得到强化。此外,具有较重位移的刨花剪的总电阻较大,而平均抗衡性下降;即,改善了电阻效率。结果还表明,内部隧道加氢斑和船尾翼片增强了船尾流体动力升力和隧道空气动力升力。结果,安装后壳提升增强阑尾可以影响底部和内隧道压力分布,然后在低速区域中导致略微的电阻降低。连接船体和裸壳的附属物组之间的抵抗的价值关系以关于FRoude号3.0的速度反转。尽管在高速区域的船舶升降增强附录中导致高速区域的较高的电阻成本,但有效地促进了纵向稳定性,并且可能导致漏洞的发生速度为1至2米/秒。

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