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逆向气流对规整填料表面液膜流体动力学特性的影响 被引量:4
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作者 李相鹏 郑水华 《化工学报》 EI CAS CSCD 北大核心 2013年第9期3130-3138,共9页
为研究气相流量对规整填料内气液两相逆流流动情况下流场结构及界面行为的影响,建立了基于分离涡模拟(DES)方法与VOF模型相结合的CFD分析模型,VOF控制方程离散采用显示差分格式,体积分数离散采用界面重构方法。计算域整体采用结构化曲... 为研究气相流量对规整填料内气液两相逆流流动情况下流场结构及界面行为的影响,建立了基于分离涡模拟(DES)方法与VOF模型相结合的CFD分析模型,VOF控制方程离散采用显示差分格式,体积分数离散采用界面重构方法。计算域整体采用结构化曲线网格(贴体网格)划分,并对局部进行了细化。结果表明,气相F因子较小时(F≤1.354Pa0.5),液膜自由表面及其纵向速度分量(vy)均呈周期性规律分布,波动幅度基本一致,而vy均为负值。F=3.386Pa0.5时,液膜自由表面波动出现紊乱,幅值差异明显增大,而界面液膜vy值仍基本呈周期性规律分布,在液相波峰下沿出现vy>0的情况。F=5.418Pa0.5时,出现液相返混,气相和液相内均出现大小不等的回流区并随液相返混过程发展演化,同时局部液膜出现整体向上流动特征。F≥6.772Pa0.5后,填料下部出现干板区,底部出口不再有液相流出。随气相F因子增大,持液量和有效界面传质面积均先增后减。 展开更多
关键词 逆流气液两相流 规整填料 分离涡模拟 流体动力学特性 F因子
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Numerical Simulations on Countercurrent Gas-Liquid Flow in a PWR Hot Leg with Air-Water Flow in a 1/15th Scale-Model 被引量:2
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作者 N. Minami M. Murase +2 位作者 Y. Utanohara I. Kinoshita A. Tomiyama 《Journal of Energy and Power Engineering》 2011年第6期495-503,共9页
To clarify the countercurrent flow in a PWR hot leg under reflux condensation, numerical simulations of countercurrent air-water flow for a 1/15th scale model of the PWR hot leg were conducted using the two-fluid mode... To clarify the countercurrent flow in a PWR hot leg under reflux condensation, numerical simulations of countercurrent air-water flow for a 1/15th scale model of the PWR hot leg were conducted using the two-fluid model implemented in CFD software. In this paper, the effect of expansion of the inclined pipe, which is the actual plant geometry, was evaluated. When increasing the air velocity, CCFL characteristics and the mechanism of flow pattern transition had significant differences between the case with and without expansion of the inclined pipe. CCFL characteristics were mitigated in the case with expansion. The effect of computational grid size was also discussed. When the supplied water velocity was small, the predicted flow pattern transition point agreed well with the measured data by increasing the number of cells. On the other hand, when the air velocity was decreasing, there were no significant differences in each case. 展开更多
关键词 Mid-loop operation reflux condensation countercurrent flow hot leg numerical simulation.
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