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首页> 外文期刊>Annals of nuclear energy >Numerical analysis on molten droplet hydrodynamic deformation and surface waves under high pressure pulse
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Numerical analysis on molten droplet hydrodynamic deformation and surface waves under high pressure pulse

机译:高压脉冲作用下熔滴水动力变形和表面波的数值分析

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A multi-phase hydrodynamic code using volume of fluid method (VOF) is used to simulate the molten droplet deformation, and the surface waves at the stages of pressure propagation and expansion in steam explosion (SE). Both melt-liquid system and melt-gas system are simulated using the code. A benchmark case of Joseph et al.'s experimental data (1999) is performed to validate the code. In this paper, effects of vapor film and surface tension on the droplet behavior under high pressure pulse are investigated. In addition, effects of material density and pressure pulse magnitude on the droplet deformation, and the growth of surface waves are also analyzed. Results of simulation analysis suggested that vapor film can be neglected and the effect of surface tension is not significant for hydrodynamic process under high pressure pulse. Results of simulation also demonstrate that material density and pressure pulse play a significant role in the process of droplet deformation and surface wave growth. The research shows that the effect of hydrodynamic deformation is significant for droplet fragmentation, and droplet penetration can more likely be achieved by surface wave instability at the stages of propagation and expansion in steam explosion.
机译:使用体积流体法(VOF)的多相流体力学代码用于模拟熔滴变形以及蒸汽爆炸(SE)中压力传播和膨胀阶段的表面波。使用该代码对熔融液系统和熔融气系统进行了仿真。一个约瑟夫等人的实验数据(1999年)的基准案例被执行以验证该代码。本文研究了在高压脉冲下,气膜和表面张力对液滴行为的影响。此外,还分析了材料密度和压力脉冲幅度对液滴变形以及表面波生长的影响。模拟分析结果表明,在高压脉冲作用下,流体动力学过程中可以忽略蒸汽膜,而表面张力的影响并不显着。模拟结果还表明,材料密度和压力脉冲在液滴变形和表面波生长过程中起着重要作用。研究表明,流体动力变形的影响对于液滴的破碎是很重要的,并且在蒸汽爆炸的传播和膨胀阶段,表面波的不稳定性更可能实现液滴的渗透。

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