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首页> 外文期刊>Journal of Chemical Engineering of Japan >Hydrodynamic and Mass Transfer Correlation in a Microbubble Aerated Stirred Tank Reactor
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Hydrodynamic and Mass Transfer Correlation in a Microbubble Aerated Stirred Tank Reactor

机译:微泡充气搅拌釜反应器中的流体动力学和传质相关性

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Many chemical and biocatalytic reactions are consuming gaseous species like oxygen, provided by the mass transfer across interfaces of multiphase contact apparatuses. For biocatalytic reactions a macroscopic aeration can lead to reduced enzyme activity by foaming and shear forces and for fast chemical reactions in multiphase flows, the mass transfer limitation is often the bottleneck for a process optimization. The present study investigates the use of bubbles with diameters less than 100?μm for aeration of a 3?L lab scale stirred tank reactor. For demineralized water and a solution of glucose and bovine serum albumin (BSA) as biocatalytic model protein solution, two different membrane spargers with a mean pore size of 1?μm and 2?μm are investigated. Determining the influence of the energy input on the hydrodynamics of the system, endoscopic measurements of bubble size distributions are carried out. The mass transfer performance of the two spargers is analyzed by measurements of the oxygen k _(l)a value for varying gas flow rates. As a result microbubble aeration shows a significant higher mass transfer performance compared to an open tube aeration saving 60% of the gaseous phase by reaching the same k _(l)a values. Besides high specific interfacial areas and long residance times, the Laplace pressure inside the bubble is identified as an enhancing force for mass transfer at microscale.
机译:许多化学和生物催化反应是消耗的气态物质,如氧气,由多相接触装置的界面的质量传递提供。对于生物催化反应,宏观曝气可通过发泡和剪切力和用于多相流动的快速化学反应来导致酶活性降低,传质限制通常是过程优化的瓶颈。本研究研究了直径小于100Ωμm的气泡的使用,用于曝气3?L实验室比例搅拌釜反应器。对于缺矿水和葡萄糖和牛血清白蛋白(BSA)作为生物催化模型蛋白质溶液,研究了两种不同的孔径尺寸为1Ω·μm和2μm的膜辐射器。确定对系统流体动力学的能量输入的影响,进行了气泡尺寸分布的内窥镜测量。通过测量氧气 K _(L)用于不同的气流速率的值来分析两种蒸发器的传质性能。结果,微胶石通气显示出与通过达到相同的 k _(l)值的敞开管曝气量的开口管曝气量的敞开管曝气量相比,显着较高的质量传递性能。除了高特异的界面区域和长的距离时间之外,气泡内的拉普拉斯压力被鉴定为Microscale在Microscale中的质量转移的增强力。

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