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Experimental and numerical studies of void fraction distribution in rectangular bubble columns

机译:矩形气泡塔中空隙率分布的实验和数值研究

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Bubbly flow is encountered in a wide variety of industrial applications ranging from flows in nuclear reactors to process flows in chemical reactors. The presence of a second phase, recirculating flow, instabilities of the gas plume and turbulence, complicate the hydrodynamics of bubble column reactors. This paper describes experimental and numerical results obtained in a rectangular bubble column 0.1 m wide and 0.02 m in depth. The bubble column was operated in the dispersed bubbly flow regime with gas superficial velocities up to 0.02 m/s. Images obtained from a high speed camera were used to observe the general flow pattern and have been processed to calculate bubble velocities, bubble turbulence parameters and bubble size distributions. Gas disengagement technique was used to obtain the volume averaged gas fraction over a range of superficial gas velocities. A wire mesh sensor was applied, to measure the local volume fraction at two different height positions. Numerical calculations were performed with an Eulerian-Eulerian two-fluid model approach using the commercial code CFX. The paper details the effect of various two-fluid model interfacial momentum transfer terms on the numerical results. The inclusion of a lift force was found to be necessary to obtain a global circulation pattern and local void distribution that was consistent with the experimental measurements. The nature of the drag force formulation was found to have significant effect on the quantitative volume averaged void fraction predictions.
机译:在从核反应堆的流量到化学反应堆的工艺流量等广泛的工业应用中,都会遇到气泡流。第二相的存在是循环流,气体羽流的不稳定性和湍流使泡罩塔反应器的流体力学复杂化。本文描述了在0.1 m宽,0.02 m深的矩形气泡柱中获得的实验和数值结果。鼓泡塔在分散的气泡流状态下操作,气体表观速度高达0.02 m / s。从高速相机获得的图像用于观察一般的流动模式,并已进行处理以计算气泡速度,气泡湍流参数和气泡尺寸分布。气体分离技术用于获得一系列表观气体速度上的体积平均气体分数。应用丝网传感器,以测量两个不同高度位置的局部体积分数。使用商业代码CFX,通过欧拉-欧拉二流体模型方法进行数值计算。本文详细介绍了各种二流体模型界面动量传递项对数值结果的影响。发现必须包含提升力才能获得与实验测量结果一致的整体循环模式和局部空隙分布。发现阻力配方的性质对定量的体积平均空隙率预测具有显着影响。

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