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Eulerian Oil Spills Model Using Finite-Volume Method with Moving Boundary and Wet-Dry Fronts

机译:带有动边界和干前缘的有限体积法的欧拉溢油模型

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摘要

The world production of crude oil is about 3 billion tons per year. The overall objective of the model in present study is supporting the decision makers in planning and conducting preventive and emergency interventions. The conservative equation for the slick dynamics was derived from layer-averaged Navier-Stokes (LNS) equations, averaged over the slick thickness. Eulerian approach is applied across the model, based on nonlinear shallow water Reynolds-averaged Navier-Stokes (RANS) equations. Depth-integrated standard k-ε turbulence schemes have been included in the model. Wetting and drying fronts of intertidal zone and moving boundary are treated within the numerical model. A highly accurate algorithm based on a fourth-degree accurate shape function has been used through an alternating-direction implicit (ADI) scheme which separates the operators into locally one-dimensional (LOD) components. The solution has been achieved by the application of KPENTA algorithm for the set of the flow equations which constitutes a pentadiagonal matrix. Hydrodynamic model was validated for a channel with a sudden expansion in width. For validation of oil spill model, predicted results are compared with experimental data from a physical modeling of oil spill in a laboratory wave basin under controlled conditions.
机译:全球每年的原油产量约为30亿吨。本研究中该模型的总体目标是支持决策者规划和实施预防和紧急干预措施。浮油动力学的保守方程式是从在浮油厚度上平均的层平均Navier-Stokes(LNS)方程得出的。基于非线性浅水雷诺平均Navier-Stokes(RANS)方程,欧拉方法应用于整个模型。该模型中包含了深度积分的标准k-ε湍流方案。在数值模型中处理了潮间带和运动边界的湿润和干燥前沿。通过交替方向隐式(ADI)方案已使用了基于四度精确形状函数的高精度算法,该方案将运算符分为局部一维(LOD)分量。通过将KPENTA算法应用于构成五对角矩阵的流动方程组,可以实现该解决方案。流体动力学模型已针对宽度突然扩大的通道进行了验证。为了验证溢油模型,将预测结果与在受控条件下实验室波浪水池中溢油物理模型的实验数据进行了比较。

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  • 来源
    《Modelling and simulation in engineering》 |2012年第2期|398387.1-398387.7|共7页
  • 作者单位

    Hydraulics Group, Department of Civil Engineering, K. N. Toosi University of Technology, Tehran 1996715433, Iran;

    Department of Civil Engineering, K. N. Toosi University of Technology, Tehran 1996715433, Iran;

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