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Towards Optimum Permeability Reduction in Porous Media Using Biofilm Growth Simulations

机译:使用生物膜生长模拟实现多孔介质中最佳渗透率的降低

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While biological clogging of porous systems can be problematic in numerous processes (e.g., microbial enhanced oil recovery-MEOR), it is targeted during bio-barrier formation to control sub-surface pollution plumes in ground water. In this simulation study, constant pressure drop (CPD) and constant Volumetric flow rate (CVF) operational modes for nutrient provision for biofilm growth ill a Porous system are considered with respect to optimum (minimum energy requirement for nutrient provision) permeability reduction for bio-barrier applications. Biofilm growth is Simulated using a Lattice-Boltzmann (LB) simulation platform complemented with an individual-based biofilm model (IbM). A biomass detachment technique has been included using a fast marching level set (FMLS) method that models the propagation of the biofilm-liquid interface with a speed proportional to the adjacent velocity shear field. The porous medium permeability reduction is simulated for both operational modes using a range of biofilm strengths. For stronger biofilms, less biomass deposition and energy input are required to reduce the system permeability during CPD operation, whereas CVF is more efficient at reducing the permeability of systems containing weaker biofilms. Biotechnol. Bioeng. 2009;103: 767-779.
机译:尽管多孔系统的生物堵塞在许多过程中都可能存在问题(例如,微生物强化采油-MEOR),但在形成生物屏障的过程中,它的目标是控制地下水中的地下污染羽流。在此模拟研究中,考虑了在生物系统中优化(渗透养分的最低能量需求)渗透率的最佳方法,考虑了在多孔系统中为生物膜生长提供养分的恒定压降(CPD)和恒定体积流量(CVF)操作模式。屏障应用。生物膜的生长是使用​​Lattice-Boltzmann(LB)模拟平台和基于个体的生物膜模型(IbM)补充来模拟的。使用快速前进水平集(FMLS)方法已包括了生物质分离技术,该方法以与相邻速度剪切场成比例的速度对生物膜-液体界面的传播进行建模。使用一定范围的生物膜强度模拟了两种操作模式下多孔介质渗透率的降低。对于更坚固的生物膜,需要更少的生物质沉积和能量输入以降低CPD操作期间的系统渗透性,而CVF在降低包含较弱生物膜的系统的渗透性方面更有效。生物技术。生恩2009; 103:767-779。

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