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Numerical simulation of sloshing in LNG tanks with a compressible two-phase model

机译:可压缩两相模型对液化天然气储罐晃荡的数值模拟

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摘要

The study of liquid dynamics in LNG tanks is getting more and more important with the actual trend of LNG tankers sailing with partially filled tanks. The effect of sloshing liquid in the tanks on pressure levels at the tank walls and on the overall ship motion indicates the relevance of an accurate simulation of the fluid behaviour. This paper presents the simulation of sloshing LNG by a compressible two-phase model and the validation of the numerical model on model-scale sloshing experiments. The details of the numerical model, an improved Volume Of Fluid (iVOF) method, are presented in the paper. The program has been developed initially to study the sloshing of liquid fuel in spacecraft. The micro-gravity environment requires a very accurate and robust description of the free surface. Later, the numerical model has been used for calculations for different offshore applications, including green water loading. The model has been extended to take two-phase flow effects into account. These effects are particularly important for sloshing in tanks. The complex mixture of the liquid and gas phase around the free surface imposes a challenge to numerical simulation. The two-phase flow effects (air entrapment and entrainment) are strongly affected by both the filling ratio of the tank and the irregular motion of the tank in typical offshore conditions. The velocity field and pressure distribution around the interface of air and LNG, being continuous across the free surface, requires special attention. By using a newly-developed gravity-consistent discretisation, spurious velocities at the free surface are prevented. The equation of state applied in the compressible cells in the flow domain induces the need to keep track on the pressure distribution in both phases, as the gas density is directly coupled to the gas pressure. The numerical model is validated on a 1:10 model-scale sloshing model experiment. The paper shows the results of this validation for different filling ratios and for different types of motion of the sloshing tank.
机译:随着部分填充罐航行的液化天然气罐车的实际趋势,对液化天然气罐中液体动力学的研究变得越来越重要。油箱中的液体晃动对油箱壁上的压力水平以及整个船舶运动的影响表明了对流体行为进行精确模拟的重要性。本文介绍了可压缩两相模型对液化天然气的模拟,并在模型规模的实验中验证了数值模型的有效性。本文介绍了数值模型的详细信息,即改进的流体体积(iVOF)方法。该程序最初是为了研究航天器中液体燃料的晃动而开发的。微重力环境要求对自由表面进行非常准确和可靠的描述。后来,数值模型已用于计算不同的海上应用,包括绿水负荷。该模型已扩展为考虑了两相流效应。这些影响对于坦克的晃动特别重要。自由表面周围的液相和气相的复杂混合物给数值模拟带来了挑战。在典型的海上条件下,两相流的影响(空气的夹带和夹带)都受到罐的填充率和罐的不规则运动的强烈影响。空气和LNG界面周围的速度场和压力分布在整个自由表面上是连续的,需要特别注意。通过使用新开发的重力一致离散,可以防止自由表面的杂散速度。由于气体密度与气体压力直接相关,因此在流域中可压缩单元中应用的状态方程导致需要跟踪两个阶段的压力分布。数值模型在模型比例为1:10的晃荡模型实验中得到验证。本文显示了针对不同的填充比和不同类型的晃荡罐进行此验证的结果。

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