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Two phase gas-liquid stratified laminar flows in tubular reactors sustaining liquid phase reactions

机译:两相气体 - 液体分层层流入管状反应器维持液相反应

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In this work, we develop a mathematical model for analyzing reactions with mass transfer in two phase gas-liquid stratified flow tubular reactors. The reaction occurs in the liquid phase and the flow is assumed laminar. The hydrodynamics, Residence Time Distribution (RTD) and mass transfer in stratified gas-liquid flows with different liquid holdups is analyzed using a semi-analytical approach. The bipolar cylindrical coordinate system is employed for an elegant description of the boundaries and the gas-liquid interface. A novel contribution of this work is the model developed for analyzing the RTD of partially filled tubular reactors with different liquid holdups. Towards this, the velocity profile obtained is used to solve the diffusion-free species transport equation with a pulse tracer input and the evolution of the outlet concentration is obtained. The model developed is validated with RTD experiments carried out in a circular glass channel using 0.5 N NaOH as the tracer. The model developed for RTD only describes mixing in an ideal laminar flow reactor. In order to model and predict conversion in realistic systems where radial diffusion is significant, the convection-diffusion-reaction equation is solved next. Two cases are studied where the (i) reactant is present only in the liquid phase and when (ii) the reactant is present in both the phases and it transfers from the gas phase to the liquid phase as it gets consumed. It is found that the product formation is enhanced in the latter case. By controlling the liquid holdup and the reactant concentration in the gas phase, product formation is enhanced while maintaining a narrow RTD.
机译:在这项工作中,我们开发了一种数学模型,用于分析两种相气液分层流量管式反应器中的传质反应。在液相中发生反应,并且假设流动的流动。利用半分析方法分析了分层气液流动中的流体动力学,停留时间分布(RTD)和具有不同液体储存的分层气流的传质。双极圆柱坐标系用于优雅地描述边界和气液界面。这项工作的新贡献是开发用于分析具有不同液体储存的部分填充管状反应器的RTD的模型。为此,所获得的速度曲线用于解决与脉冲示踪输入的无扩散物种传输方程,并且获得出口浓度的演变。开发的模型通过使用0.5 n NaOH作为示踪剂在圆形玻璃通道中进行的RTD实验进行了验证。为RTD开发的模型仅描述了在理想的层流式反应器中混合。为了模拟和预测在径向扩散显着的现实系统中的转换,接下来解决了对流扩散反应方程。研究了两种情况,其中(i)反应物仅存在于液相中,当(II)时,反应物存在于两个相中,并且当它被消耗时,它将其从气相转移到液相中。发现产物形成在后一种情况下增强。通过控制气相中的液体储存和反应物浓度,在保持狭窄的RTD的同时提高产物形成。

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