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INHOMOGENEOUS MULTIPHASE MODEL FOR NONEQUILIBRIUM PHASE TRANSITION AND DROPLET DYNAMICS

机译:非平衡相变和液滴动力学的非均匀多相模型

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摘要

This paper describes the development of an inhomogeneous multiphase model for the prediction of phase transition and nonequilibrium droplet dynamics under transonic flow conditions. The primary application of interest is low pressure steam turbines, where high speeds and complex geometry result in a second phase exhibiting significant droplet size variation, with associated thermal and inertial nonequilibrium relative to the vapor phase. The formulation uses a pressure based, implicit in time, algorithm with finite-volume/finite-element discretization of the conservation equations. For each phase, the velocity, energy state, volume fraction and droplet number are computed. For a two material phase system (water vapor and liquid) a parent and any number of (source based) condensed liquid phases are possible to handle the variety (and complexity) of droplet behavior as found in low pressure steam turbines. The model is tested against experimental data available in the steam turbine community. In particular the influence of inertial nonequilibrium on the phase transition behavior in a steam turbine cascade geometry is examined.
机译:本文介绍了一种用于预测跨音速流动条件下的相变和非平衡液滴动力学的非均匀多相模型的开发。感兴趣的主要应用是低压蒸汽涡轮机,其中的高速和复杂的几何形状导致第二相显示出明显的液滴尺寸变化,并且相对于气相具有相关的热和惯性不平衡。该公式使用基于压力的,隐式的,具有守恒方程的有限体积/有限元离散化的算法。对于每个阶段,都会计算速度,能量状态,体积分数和液滴数。对于双材料相系统(水蒸气和液体),母体和任意数量的(基于源的)冷凝液相都可以处理低压蒸汽轮机中发现的各种液滴行为(和复杂性)。针对汽轮机社区中可用的实验数据对模型进行了测试。特别地,检查了惯性不平衡对汽轮机叶栅几何形状中相变行为的影响。

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