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Mathematical Modeling of Chemotactic Bacterial Transport through a Two-Dimensional Heterogeneous Porous Medium

机译:二维非均质多孔介质中趋化细菌转运的数学模型

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The impact of bacterial chemotaxis on in situ ground-water biore-mediation remains an unanswered question. Although bacteria respond to chemical gradients in aqueous environments and under no-flow conditions, it is unclear whether they can also respond in porous media with advective flow to improve overall contaminant degradation. The effect of chemotaxis is most profound in regions with sharp chemical gradients, most notably around residual nonaqueous phase liquid (NAPL) ganglia and surrounding clay lenses or aquitards with trapped contamination. The purpose of this study is to simulate bacterial transport through a two-dimensional subsurface environment, containing one region of low permeability with trapped contaminant surrounded above and below by two regions of higher permeability. Using mathematical predictions of the effect of pore size on measured bacterial transport parameters, the authors observe a 50% decrease in both motility and chemotaxis in the finer-grained, low-permeability porous medium. The authors simulate how chemotaxis affects bacterial migration to the contaminated region under various flow and initial conditions. Results indicate that bacteria traveling through a high-permeability region with advective flow can successfully migrate toward and accumulate around a contaminant diffusing from a lower permeability region.
机译:细菌趋化性对原位地下水生物修复的影响仍然是一个悬而未决的问题。尽管细菌在水环境和无流量条件下对化学梯度有反应,但尚不清楚它们是否也可以在具有平流的多孔介质中反应以改善总体污染物降解。在具有急剧化学梯度的区域中,趋化作用的影响最为明显,最明显的是在残留的非水相液体(NAPL)神经节和周围的被污染的粘土晶状体或透明玻璃组成的周围。这项研究的目的是模拟细菌在二维地下环境中的传播,该环境包含一个低渗透性区域,被捕获的污染物在上方和下方被两个较高渗透性区域围绕。通过对孔径对测量的细菌传输参数的影响进行数学预测,作者观察到在细粒,低渗透性多孔介质中,运动性和趋化性均降低了50%。作者模拟了趋化性在各种流量和初始条件下如何影响细菌向污染区域的迁移。结果表明,细菌通过平流流过高渗透率区域可以成功地向污染物扩散并从低渗透率区域扩散扩散。

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