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Modeling and analysis of hydrodynamic and physico-chemical effects in bacterial deposition on surfaces

机译:对细菌在表面上沉积的流体动力和物理化学作用进行建模和分析

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The parallel-plate flow chamber (PFC) is often used for characterizing the propensity of microorganisms to attachment to surfaces. The model presented quantitatively analyzes the complex interplay of diffusion, convection, inertial lift, buoyancy, and surface forces in the PFC, which make it difficult to separate the surface- and microorganism-specific effects from the hydrodynamics. An empirical dimensionless factor K entering the boundary condition expresses enhancement of adhesion diffusion of microorganisms across a thin fluid layer adjacent to the surface by adhesion forces. The model examines the role of various factors (eg shear rate, size of bacterium, and strength of adhesion) on the rate of bacterial deposition. Using no adjustable parameter for strongly adhesive surfaces and K as the only adjustable parameter for repulsive or weakly adhesive surfaces, the model explains the observed decrease in deposition flux at high flow rates and compares reasonably with reported experimental results. The results suggest that the fitted value of K may be used for 'rating' the propensity of bacteria to deposit on surfaces and separating this from hydrodynamic effects.
机译:平行板流动室(PFC)通常用于表征微生物附着在表面上的倾向。提出的模型定量分析了PFC中扩散,对流,惯性升力,浮力和表面力的复杂相互作用,这使得很难将表面和微生物特有的作用与流体动力学分开。进入边界条件的经验无量纲因数K表示通过粘附力增强了微生物在与表面相邻的薄流体层上的粘附扩散。该模型检查了各种因素(例如剪切速率,细菌大小和粘附强度)对细菌沉积速率的作用。对于强粘性表面,不使用可调参数,而对于排斥性或弱粘性表面,则不使用K作为唯一可调参数,该模型解释了在高流速下观察到的沉积通量下降,并与已报道的实验结果进行了合理比较。结果表明,K的拟合值可用于“评估”细菌在表面上沉积的倾向,并将其与流体动力学效应分开。

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