Vos H J, Zomerdijk M, Groen D J, Luyben K C
Department of Biochemical Engineering, Delft University of Technology, Julianalaan 67, 2628 BC Delft, The Netherlands.
Biotechnol Bioeng. 1990 Aug 5;36(4):377-86. doi: 10.1002/bit.260360408.
In Part I of this series,(1) we derived a model and made simulations for a multistage fluidized bed reactor (MFBR). It was concluded that the MFBR can be an attractive alternative for a fixed bed reactor when operated with a deactivating biocatalyst. In Part II of this series, the design of a laboratory-scale MFBR and its evaluation to investigate the practical feasibility of this reactor type, will be described. Experiments with a duration as long as 10 days were carried out successfully using immobilized glucose isomerase as a model reaction system. The results predicted by the model are in good agreement with the measured glucose concentration and biocatalyst activity gradients, indicating perfect mixing of the particles in the reactor compartments.The diameters of the biocatalyst particles used in the experiments showed a large spread, with the largest being 1.7 times the smallest. Therefore, an additional check was carried out, to make sure that the particles were not segregating according to size. Particles withdrawn from the reactor compartments were investigated using an image analyzer. Histograms of particle size distribution do not indicate segregation and it is concluded that the particles used have been mixed completely within the compartments. As a result, transport of biocatalyst is nearly plug flow.
在本系列的第一部分,(1)我们推导了一个模型,并对多级流化床反应器(MFBR)进行了模拟。得出的结论是,当使用失活生物催化剂运行时,MFBR对于固定床反应器而言可能是一个有吸引力的替代方案。在本系列的第二部分,将描述实验室规模的MFBR的设计及其评估,以研究这种反应器类型的实际可行性。使用固定化葡萄糖异构酶作为模型反应系统,成功进行了长达10天的实验。模型预测结果与测得的葡萄糖浓度和生物催化剂活性梯度高度吻合,表明反应器隔室内的颗粒实现了完美混合。实验中使用的生物催化剂颗粒直径差异很大,最大直径是最小直径的1.7倍。因此,进行了额外的检查,以确保颗粒不会按尺寸分离。使用图像分析仪对从反应器隔室中取出的颗粒进行了研究。颗粒尺寸分布直方图未显示出分离现象,得出的结论是,所用颗粒在隔室内已完全混合。结果,生物催化剂的传输几乎呈活塞流。