基于数学模型的船舶侧翅角对转弯能力的影响

Wang-Geun Lee, Sang-Hyun Kim, Doojin Jung, Sooyeon Kwon
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摘要

一般来说,在静水机动性能的研究中没有考虑横摇运动的影响。而对于DTMB 5415等高速双螺杆船舶,则需要考虑横摇等运动的耦合效应。因此,在本研究中,使用4自由度(DOF;为提高机动性能的估计精度,对DTMB 5415进行了纵摇、横摇、横摇、偏航等机动数学群(MMG)建模。此外,还研究了翼角变化对转弯性能的影响。为了准确计算翼片产生的升力和阻力,必须考虑翼的三维形状、淹没深度以及与船体的干扰影响。首先,建立了基于四自由度MMG数学模型的机动仿真模型,将侧翼产生的升力和力矩作为外力项;利用CFD模型,计算了船舶运行过程中侧翼产生的升力和阻力,并将计算结果作为四自由度MMG数学模型的外力项。通过改变船速和侧翼夹角,进行了35°转弯仿真。结果表明,利用CFD计算的翼片升力所建立的MMG仿真模型能够充分估计机动性。结果表明,在稳定转弯过程中,尾翼角随尾翼角的变化而变化,其转弯性能也随之变化。此外,还验证了利用侧翼增加向外转弯方向的跟角可以改善转弯性能,并且转弯时船舶的摇摆速度会影响转弯性能。因此,有必要研究船舶在转弯过程中摇摆速度对转弯性能的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Change in Turning Ability According to the Side Fin Angle of a Ship Based on a Mathematical Model
: In general, the effect of roll motion is not considered in the study on maneuverability in calm water. However, for high-speed twin-screw ships such as the DTMB 5415, the coupling effects of roll and other motions should be considered. Therefore, in this study, the estimation of maneuverability using a 4-degree-of-freedom (DOF; surge, sway, roll, yaw) maneuvering mathematical group (MMG) model was conducted for the DTMB 5415, to improve the estimation accuracy of its maneuverability. Furthermore, a study on the change in turning performance according to the fin angle was conducted. To accurately calculate the lift and drag forces generated by the fins, it is necessary to consider the three-dimensional shape of the wing, submerged depth, and effect of interference with the hull. First, a maneuvering simulation model was developed based on the 4-DOF MMG mathematical model, and the lift force and moment generated by the side fins were considered as external force terms. By employing the CFD model, the lift and drag forces generated from the side fins during ship operation were calculated, and the results were adopted as the external force terms of the 4-DOF MMG mathematical model. A 35° turning simulation was conducted by altering the ship’s speed and the angle of the side fins. Accordingly, it was confirmed that the MMG simulation model constructed with the lift force of the fins calculated through CFD can sufficiently estimate maneuverability. It was confirmed that the heel angle changes according to the fin angle during steady turning, and the turning performance changes accordingly. In addition, it was verified that the turning performance could be improved by increasing the heel angle in the outward turning direction using the side fin, and that the sway speed of the ship during turning can affect the turning performance. Hence, it is considered necessary to study the effect of the sway speed on the turning performance of a ship during turning.
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