Hydrodynamics of Stirred Tank and Bubble Breakup Behavior Induced by Rushton Turbine

Anas Malik Mhawesh, Basim O. Hasan, H. Znad
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引用次数: 2

Abstract

The hydrodynamics of stirred tanks and bubble breakup are crucial in gas-liquid flows, yet this system has not been well characterized for different operating conditions. In this work, the numerical method was used to investigate the hydrodynamics of six- flat blades impeller (Rushton turbine) and the results were employed to understand the bubble breakup behavior in the stirred tank. Simulation results of predicted flow pattern, power number, and the distribution of turbulence energy generated were performed with COMSOL Multiphysics. Numerical results showed good agreement with the experimental literature. The effect of rotational speed on bubble breakup behavior, such as breakage probability, the average number of daughter bubbles, and the breakage time was investigated using the high-speed imaging method. The main finding is that the breakage process occurs in the high energy area of high turbulence intensity, which is located within a distance equal to the blade width of a radius of (15-35 mm). The breakage probability (Bp) was found to be increased by 12.61 percent for a mother bubble of 4 mm at 340 rpm, with an average fragmentation of up to 22 fragments. Furthermore, the bubble breakage time was found to decrease with increasing impeller rotational speed, with an average value of 19.8 ms.
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搅拌槽流体力学与拉什顿涡轮诱导气泡破碎行为
搅拌槽的流体力学和气泡破碎是气液流动的关键,但该系统在不同工况下还没有得到很好的表征。本文采用数值方法研究了六平叶叶轮(拉什顿涡轮)的流体力学特性,并利用数值方法研究了搅拌槽内的气泡破碎行为。利用COMSOL Multiphysics软件对预测流型、功率数和产生的湍流能量分布进行了仿真。数值计算结果与实验文献吻合较好。利用高速成像技术研究了转速对破泡概率、平均子泡数、破泡时间等破泡行为的影响。主要发现是断裂过程发生在高湍流强度的高能量区域,该区域位于半径为(15-35 mm)的叶片宽度范围内。在340转/分转速下,当母泡直径为4毫米时,其破碎概率(Bp)增加了12.61%,平均破碎达22个碎片。气泡破碎时间随叶轮转速的增加而减小,平均为19.8 ms。
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