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Studies on Computer-Aided Design and Analysis of Three-Phase Semifluidized Bed Bioreactors

机译:三相半流化床生物反应器的计算机辅助设计与分析研究

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Attempts have been made to perform computer-aided analysis and simulation of the performance of a three-phase semifluidized bed bioreactor. The bioreactor is of biofilm type. Cocurrent operation with liquid (substrate solution) forming the continuous phase has been considered. Both air and feed solution are thus admitted from the bottom, the air moving up as tiny bubbles. Being semifluidized, the bioreactor is composed of a fully flui-dized bed at the bottom and a packed bed at the top. The performance of the bioreactor is analysed by assuming it to be equivalent to two plug flow dispersion reactors (PFDRs) in series, each with a different value of dispersion number/axial dispersion coefficient. The performance equations (assuming dispersed flow) for both sections are written separately and then solved numerically using fourth-order Runge-Kutta method/successive over-relaxation method, based on appropriate boundary conditions. The specific case considered is the aerobic synthesis of Xanthan gum from cheese whey permeate, which follows Contois-type kinetic equation. The fractional gas holdup in both sections, height ratio of flui-dized section to packed section and the semifluidization velocity are computed at the outset from selected experimental correlations (compiled from available literature). The results obtained from the developed software package, after verifying experimentally, are used to study and illustrate the performance characteristics of the bioreactor. It is observed that the three-phase semifluidized bed biofilm reactor of proposed design provides substantially large fractional conversion of substrate at large capacities, with relatively low reactor volume requirement.
机译:已经尝试进行计算机辅助分析和模拟三相半流化床生物反应器的性能。生物反应器是生物膜类型的。已经考虑了与形成连续相的液体(底物溶液)并流操作。因此,空气和进料溶液都从底部进入,空气以微小的气泡向上运动。被半流化的生物反应器由底部的完全流化床和顶部的填充床组成。通过假定生物反应器等效于串联的两个活塞流分散反应器(PFDR)来分析其性能,每个反应器具有不同的分散数/轴向分散系数值。将两个部分的性能方程式(假设为分散流)分别编写,然后在适当的边界条件下使用四阶Runge-Kutta方法/连续超松弛方法进行数值求解。所考虑的具体情况是从干酪乳清渗透液中有氧合成黄原胶,其遵循Contois型动力学方程式。首先从选定的实验相关性(根据现有文献汇编)中计算出两个截面中的气体滞留率,流化截面与填充截面的高度比以及半流化速度。经过实验验证后,从开发的软件包中获得的结果将用于研究和说明生物反应器的性能特征。观察到,所提出设计的三相半流化床生物膜反应器在大容量下提供了相当大的底物分数转化,而反应器体积要求相对较低。

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