The Hydrodynamics of Hard-Chine Sections Entering Water

S. Tavakoli, A. Babanin, S. Hirdaris
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Abstract

While landing Wing-in Ground Effect (WIG) craft are exposed to large hydrodynamic forces which can lead to structural damages. Sea loads can be predicted by solving the free surface problem, known as water entry. The problem has been studied for rigid bodies until most recently, when researchers hypothesized that the structural response of the body can also influence the hydrodynamic pressures. This paper aims to provide deeper understanding of the impact loads during the water entry process of a hard chine section for the case of a common WIG Craft section. A Finite Volume Method (FVM) based computational fluid-structure interaction model is used to solve multi-physics and quantitative comparisons are made between experimental and computational data. Simulations demonstrate that structural dynamics can attenuate the pressure acting on body walls. The deadrise angle, speed in way of water entry and rigidity of the solid body are shown to affect the dynamic response with equivalent stresses maximized and then decaying over time near the chine.
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硬质合金断面入水的流体力学
在着陆过程中,翼入式地面效应(WIG)飞行器会受到较大的水动力作用,从而导致结构损坏。海上荷载可以通过求解自由表面问题来预测,即所谓的入水问题。这个问题一直在研究刚体,直到最近,当研究人员假设身体的结构响应也可以影响水动压力。本文旨在以一种常见的WIG工艺断面为例,对硬板断面入水过程中的冲击载荷有更深入的了解。采用基于有限体积法(FVM)的流固耦合计算模型求解多物理场,并对实验数据和计算数据进行了定量比较。仿真结果表明,结构动力学可以减弱作用在车身壁面上的压力。静升角、入水速度和固体刚度对动力响应有显著影响,等效应力在切点附近达到最大值,然后随时间衰减。
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