首页> 外文会议>ASME Fluids Engineering Division summer meeting >COMPARISON OF GAS HOLD-UP PROFILES IN CO-CURRENT, COUNTER-CURRENT AND BATCH BUBBLE COLUMN REACTORS MEASURED USING GAMMA DENSITOMETRY AND SURFACE OF REVOLUTION METHOD
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COMPARISON OF GAS HOLD-UP PROFILES IN CO-CURRENT, COUNTER-CURRENT AND BATCH BUBBLE COLUMN REACTORS MEASURED USING GAMMA DENSITOMETRY AND SURFACE OF REVOLUTION METHOD

机译:使用伽马密度测定和旋转法测定的电流,逆流和批量泡柱反应器中气体阻滞曲线的比较

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Bubble column reactors are widely used in many industrial processes and can be operated in different modes (co-current, counter-current and batch). However, very little information has been reported on how the hydrodynamics, mixing and mass transfer characteristics vary with respect to different modes of operation. Non-invasive gamma-ray densitometry measurements have been performed to obtain the axial and radial gas hold-up profiles in co-current, counter-current and batch bubble columns. The axisymmetric tomographic reconstruction was performed using the Abel transformation, Schollenberger et al. (1997) and surface revolution methods. The present work presents (1) the effect of superficial gas and liquid velocities on axial and radial gas hold-up profiles, (2) the variation of gas hold-up profiles with respect to three modes of operation, and (3) comparison of available reconstruction methods with a new surface revolution method which does not require a function to fit the chordal values. The counter current operation shows a higher gas hold-up specifically at the center top of the column. The increment in gas hold-up with the increasing superficial gas velocity is higher for batch bubble column operation. The surface of revolution method is shown to be capable of predicting gas hold-up profiles for all three modes of operation.
机译:泡泡柱反应器广泛用于许多工业过程中,可以以不同的模式(共流,逆流和批次)操作。然而,据报道了对流体动力学,混合和传质特性如何相对于不同的操作模式变化的信息很少。已经进行了非侵入性伽马射线密度测量测量以获得轴向和径向气体阻塞型材,在副电流,逆流和批料泡柱中。轴对称断层切换重建是使用Abel转换进行的,Schollenberger等。 (1997)和表面革命方法。本作(1)(1)浅表气体和液体速度对轴向和径向气体升压型材的影响,(2)对三种操作模式的气体阻塞谱的变化,以及(3)比较具有新的表面转速方法的可用重建方法,不需要函数来符合曲线值。计数器电流操作显示较高的气体紧固在柱的中心顶部。对于批量泡沫柱操作,随着浅表气体速度的增加,气体阻滞的增量较高。旋转方法的表面被示出能够预测所有三种操作模式的气体阻塞曲线。

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