首页> 外文期刊>International Journal for Numerical Methods in Fluids >Application of a thermodynamically compatible two-phase flow model to the high-resolution simulations of compressible gas-magma flow
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Application of a thermodynamically compatible two-phase flow model to the high-resolution simulations of compressible gas-magma flow

机译:热力学兼容的两相流模型在可压缩气岩浆流高分辨率模拟中的应用

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This paper reports on the application and development of a fully hyperbolic and fully conservative two-phase flow model for the simulation of gas and magma flow within volcanic processes. The model solves a set of mixture conservation equations for the gas and magma two-phase flow with velocity non-equilibrium. In this model, the effect of the relative velocity is introduced by a kinetic constitutive equation with other equations for volume and mass fractions of the gas phase. The model is examined numerically by the widely used finite volume Godunov methods of centered-type. Using the Riemann problem, we numerically simulate wave propagation and the development of shocks and rarefactions in volcanic eruptions. These simulations are of magma fragmentation type where the relative velocity continues to dominate. A series of test cases whose solution contains features relevant to gas-magma mixtures are conducted. In particular, numerical results indicate that the model implementation predicts key features of the relative velocity within volcanic processes without any mathematical or physical simplifications. Simulation results are sharply and accurately provided without any spurious oscillations in all of the flow variables. The numerical methods and results are also compared with other numerical methods available in the literature. It is found that the provided resolutions are more accurate for the considered test cases.
机译:本文报道了完全双曲线和完全保守的两相流模型在火山岩过程中模拟气体和岩浆流的应用和发展。该模型求解了具有速度非平衡的气体和岩浆两相流的一组混合守恒方程。在此模型中,相对速度的影响是由动力学本构方程以及气相体积和质量分数的其他方程引入的。通过广泛使用的中心型有限体积Godunov方法对模型进行了数值检验。使用黎曼问题,我们在数值上模拟了波的传播以及火山喷发中冲击和稀疏性的发展。这些模拟是岩浆破碎型的,其中相对速度继续占主导地位。进行了一系列测试案例,这些案例的解决方案包含与气岩混合物相关的特征。具体而言,数值结果表明,该模型的实现无需任何数学或物理简化即可预测火山作用过程中相对速度的关键特征。清晰,准确地提供了仿真结果,所有流量变量都没有任何虚假振荡。数值方法和结果也与文献中可用的其他数值方法进行了比较。发现所提供的分辨率对于所考虑的测试案例而言更为准确。

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