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A numerical investigation of the squat and resistance of ships advancing through a canal using CFD

机译:使用CFD对穿过运河的船舶的下蹲和阻力进行数值研究

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摘要

As a ship approaches shallow water, a number of changes arise owing to the hydrodynamic interaction between the bottom of the ship’s hull and the seafloor. The flow velocity between the bottom of the hull and the seafloor increases, which leads to an increase in sinkage, trim and resistance. As the ship travels forward, squat of the ship may occur, stemming from this increase in sinkage and trim. Knowledge of a ship’s squat is necessary when navigating vessels through shallow water regions, such as rivers, channels and harbours. Accurate prediction of a ship’s squat is therefore essential, to minimize the risk of grounding for ships. Similarly, predicting a ship’s resistance in shallow water is equally important, to be able to calculate its power requirements. The key objective of this study was to perform fully nonlinear unsteady RANS simulations to predict the squat and resistance of a model-scale Duisburg Test Case container ship advancing in a canal. The analyses were carried out in different ship drafts at various speeds, utilizing a commercial CFD software package. The squat results obtained by CFD were then compared with available experimental data.
机译:船舶接近浅水区时,由于船体底部与海底之间的流体动力相互作用,导致了许多变化。船体底部和海底之间的流速增加,这导致沉没,修剪和阻力增加。当船舶向前行驶时,由于下沉和纵倾的这种增加,可能会发生船舶下蹲。在浅水区(例如河流,航道和港口)航行时,必须了解船舶的下蹲状态。因此,准确预测船的下蹲高度至关重要,以最大程度地降低船着陆的风险。同样,预测船舶在浅水中的抵抗力同样重要,这样才能计算出其动力需求。这项研究的主要目标是执行完全非线性的非稳态RANS模拟,以预测在运河中推进的模型规模的杜伊斯堡试验箱集装箱船的下蹲和阻力。利用商业CFD软件包,以不同的速度在不同的船舶吃水深度中进行了分析。然后将通过CFD获得的深蹲结果与可用的实验数据进行比较。

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