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The combined effects of shear stress and mass transfer on the balance between biofilm and suspended cell dynamics

机译:剪应力和传质对生物膜和悬浮细胞动力学之间平衡的综合影响

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This work investigates the effect of shear stress and mass transfer on the development of biofilms in a flow cell that mimics industrial piping. The shear stress and maximum flow velocity were estimated by computational fluid dynamics and the external mass transfer coefficient was calculated using empirical correlations for Reynolds numbers ranging from 100 to 10,000. The effect of two flow rates on the development of Escherichia coli biofilms under turbulent flow conditions was assessed and it was observed that biofilm formation was favored at the lowest flow rate. Additionally, estimations of the shear stress and external mass transfer coefficient indicate that both parameters increase with increasing flow rates. Thus, it seems that biofilm formation was being controlled by the shear stress that promoted biofilm erosion/sloughing and not by mass transfer which would potentiate biofilm growth. Our results indicate that not only efficient pre-treatment units are required on water recirculation loops in order to reduce the effective concentration of bacteria and nutrients, but also that high flow rates are preferred at all times to reduce the buildup of bacterial biofilms. For instance, high flow rates should be used during cleaning and disinfection cycles because the increase in shear stress will promote biofilm detachment and also potentiate the effect of biocides and other cleaning agents due to the increased mass transfer from the bulk solution to the surface of the biofilm.
机译:这项工作研究了剪切应力和传质对模仿工业管道的流通池中生物膜形成的影响。通过计算流体动力学估算剪切应力和最大流速,并使用经验相关性计算雷诺数范围为100至10,000的外部传质系数。评估了两种流速对湍流条件下大肠杆菌生物膜形成的影响,并观察到在最低流速下有利于生物膜的形成。另外,对剪切应力和外部传质系数的估计表明,两个参数都随着流速的增加而增加。因此,似乎生物膜的形成是由促进生物膜侵蚀/脱落的剪切应力控制的,而不是由会增强生物膜生长的传质控制的。我们的结果表明,不仅在水循环回路上需要高效的预处理装置,以减少细菌和营养物的有效浓度,而且始终都希望采用高流速来减少细菌生物膜的堆积。例如,在清洗和消毒过程中应使用高流速,因为剪切应力的增加将促进生物膜的分离,并且由于从本体溶液到表面的传质增加,还增强了杀菌剂和其他清洗剂的作用。生物膜。

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