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Hydrodynamics and gas-liquid mass transfer in a horizontal rotating foam stirrer reactor

机译:水平旋转泡沫搅拌器反应器中的流体力学和气液传质

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摘要

This paper describes a new multiphase reactor, the horizontal rotating foam stirrer reactor, which uses a donut-shaped foam block mounted on a horizontal shaft functioning as a stirrer and as a catalyst support. The effect of different operational conditions such as stirring speed, reactor length, foam porosity, foam thickness and the presence of baffles on the gas-liquid mass transfer and the gas-liquid flow distribution is discussed for the systems water/air and glycerol/air. The rate of gas-liquid mass transfer is measured spectrometrically while the hydrodynamics of the reactor is studied by γ-ray tomography. For a partially filled reactor, three flow states could be distinguished: the trickle state, the slosh state and the ring state. In the trickle state the liquid flows in a thin stream over the foam while in the slosh state the liquid is pushed upward by the stirrer and sprayed, leading to the formation of fine liquid droplets and fine gas bubbles. The transition between the trickle state and the slosh state occurs at 200 rpm. This is drastically affected by the liquid viscosity and in some extent by the reactor length and the foam thickness. When the stirring speed is constant, the ring state, which results in a cylindrical liquid layer on the inside wall, appears with increasing the liquid content in the reactor (above 70%). Due to a large gas-liquid interface in the slosh state, a high gas-liquid mass transfer is achieved, k_(GL)a_(GL) values up to 0.32 s~(-1) are found. This is comparable to gas-liquid mass transfer rates in slurry reactors. However, in case of the foam stirrer a higher power input per liquid volume is needed in order to achieve the minimum stirrer speed required for complete dispersion of the gas. It is shown that mass transfer coefficients decreased with increasing viscosity, while the centrifugal force revealed to be effective in enhancing mass transfer in a viscous media. Conclusions on the optimal reactor configuration are drawn for the application in the fine chemical industry.
机译:本文介绍了一种新型的多相反应器,即卧式旋转泡沫搅拌器反应器,该反应器使用安装在水平轴上的甜甜圈形泡沫块作为搅拌器和催化剂载体。对于水/空气和甘油/空气系统,讨论了不同操作条件(例如搅拌速度,反应器长度,泡沫孔隙率,泡沫厚度和挡板的存在)对气液传质和气液流量分布的影响。 。光谱测量气液传质速率,同时通过γ射线层析成像技术研究反应器的流体动力学。对于部分填充的反应器,可以区分三种流动状态:滴流状态,晃动状态和环形状态。在滴流状态下,液体以细流形式流过泡沫,而在晃动状态下,液体被搅拌器向上推动并喷射,导致形成细小液滴和细小气泡。 le流状态和晃动状态之间的过渡以200 rpm的速度发生。这在很大程度上受液体粘度的影响,在某种程度上受反应器长度和泡沫厚度的影响。当搅拌速度恒定时,随着反应器中液体含量的增加(超过70%),出现在内壁上形成圆柱形液体层的环状状态。由于在晃动状态下较大的气液界面,实现了高的气液传质,发现k_(GL)a_(GL)值高达0.32 s〜(-1)。这可与淤浆反应器中的气液传质速率相比。然而,在泡沫搅拌器的情况下,需要每液体体积更高的功率输入,以实现气体完全分散所需的最小搅拌器速度。结果表明,传质系数随粘度的增加而降低,而离心力显示出对增强粘性介质中传质的效果。得出了最佳反应器配置的结论,可用于精细化工行业。

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