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Comparative Study of Mass Transfer and Bubble Hydrodynamic Parameters in Bubble Column Reactor: Physical Configurations and Operating Conditions

机译:鼓泡塔反应器传质与气泡流体力学参数的比较研究:物理构型和运行条件

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摘要

In this paper, effects of physical configurations and operating conditions on bubble column performance were analyzed in terms of bubble hydrodynamic and mass transfer parameters. Bubble column with 3 different dimensions and 7 gas diffusers (single / multiple orifice and rigid / flexible orifice) were applied. High speed camera and image analysis program were used for analyzing the bubble hydrodynamic parameters. The local liquid-side mass transfer coefficient (k_L) was estimated from the volumetric mass transfer coefficient (k_La) and the interfacial area (a), which was deduced from the bubble diameter (D_B) and the terminal bubble rising velocity (U_B). The result showed that the values of kLa and a increased with the superficial gas velocity (V_g) and the size of bubble column. Influences of gas diffuser physical property (orifice size, thickness and orifice number) can be proven on the generated bubble size and the mass transfer performance in bubble column. Concerning the variation of k_L, coefficients with bubble size, 3 zones (Zone A, B and C) can be observed. For Zone A and Zone C, a good agreement between the experimental and the predicted K_L coefficients was obtained (average difference of ± 15%), whereas the inaccuracy result (of ± 40%) was found in Zone B. To enhance the high k_La coefficient and absorption efficiency in bubble column, it was unnecessary to generate numerous fine bubbles at high superficial gas velocity since it causes high power consumption with the great decrease of k_L, coefficients.
机译:本文根据气泡的流体动力学和传质参数,分析了物理构型和操作条件对气泡塔性能的影响。使用具有3种不同尺寸和7个气体扩散器(单孔/复孔和刚性/挠性孔)的鼓泡塔。使用高速相机和图像分析程序分析气泡的流体动力学参数。根据体积传质系数(k_La)和界面面积(a)估算液体局部传质系数(k_L),该系数是根据气泡直径(D_B)和最终气泡上升速度(U_B)得出的。结果表明,kLa值随表观气速(V_g)和气泡塔尺寸的增加而增大。可以证明气体扩散器物理性能(孔尺寸,厚度和孔数)对气泡尺寸和气泡塔传质性能的影响。关于k_L的变化,可以观察到气泡大小系数的3个区域(区域A,B和C)。对于A区和C区,在实验和预测的K_L系数之间取得了很好的一致性(平均差异为±15%),而在B区中发现了不准确的结果(±40%)。提高k_La高气泡塔中的系数和吸收效率,由于在k_L,系数大大降低的情况下会导致高功耗,因此不必在高表观气体速度下产生大量细小气泡。

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