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Effects of Pore-Scale Heterogeneity and Transverse Mixing on Bacterial Growth in Porous Media

机译:孔尺度异质性和横向混合对多孔介质中细菌生长的影响

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摘要

Microbial degradation of contaminants in the subsurface requires the availability of nutrients; this is impacted by porous media heterogeneity and the degree of transverse mixing. Two types of microfluidic pore structures etched into silicon wafers (i.e., micromodels), (ⅰ) a homogeneous distribution of cylindrical posts and (ⅱ) aggregates of large and small cylindrical posts, were used to evaluate the impact of heterogeneity on growth of a pure culture (Delftia acidovorans) that degrades (R)-2-(2,4-dichlorophenoxy)propionate (R-2,4-DP). Following inoculation, dissolved O_2 and R-2,4-DP were introduced as two parallel streams that mixed transverse to the direction of flow. In the homogeneous micromodel, biomass growth was uniform in pore bodies along the center mixing line, while in the aggregate micromodel, preferential growth occurred between aggregates and slower less dense growth occurred throughout aggregates along the center mixing line. The homogeneous micromodel had more rapid growth overall (2 times) and more R-2,4-DP degradation (9.5%) than the aggregate pore structure (5.7%). Simulation results from a pore-scale reactive transport model indicate mass transfer limitations within aggregates along the center mixing line decreased overall reaction; hence, slower biomass growth rates relative to the homogeneous micromodel are expected. Results from this study contribute to a better understanding of the coupling between mass transfer, reaction rates, and biomass growth in complex porous media and suggest successful implementation and analysis of bioremediation systems requires knowledge of subsurface heterogeneity.
机译:地下污染物的微生物降解需要养分的供应。这受到多孔介质异质性和横向混合程度的影响。两种类型的微流体孔结构被蚀刻到硅晶片中(即微模型),(ⅰ)圆柱柱的均匀分布和(ⅱ)大小圆柱柱的聚集体,用于评估异质性对纯净生长的影响降解(R)-2-(2,4-二氯苯氧基)丙酸酯(R-2,4-DP)的培养物(Delftia acidovorans)。接种后,将溶解的O_2和R-2,4-DP作为两条平行于流动方向混合的平行流引入。在均质微模型中,沿中心混合线的孔体中生物量的生长均匀,而在聚集体微模型中,聚集体之间发生优先增长,而沿中心混合线的整个聚集体则发生较慢的密度较小的增长。与整体孔结构(5.7%)相比,均匀的微观模型整体具有更快的增长速度(2倍)和更多的R-2,4-DP降解(9.5%)。孔尺度反应性传输模型的模拟结果表明,沿着中心混合线的聚集体中的传质限制降低了整体反应;因此,预计相对于均质微模型,生物量的生长速度会降低。这项研究的结果有助于更好地理解传质,反应速率和复杂多孔介质中生物量增长之间的耦合,并建议成功实施和分析生物修复系统需要了解地下异质性。

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  • 来源
    《Environmental Science & Technology》 |2010年第8期|p.3085-3092|共8页
  • 作者单位

    Chemical and Materials Sciences Division, Fundamental and Computational Sciences Directorate, Pacific Northwest National Laboratory, Richland, Washington, Computational Earth Science Group (EES-16), Earth;

    Environmental Sciences Division, Los Alamos National Laboratory, Los Alamos, New Mexico;

    Department of Civil and Environmental Engineering, University of Illinois at Urbana-Champaign, 205 North Mathews Avenue, Urbana, Illinois 61801;

    Department of Civil and Environmental Engineering, University of Illinois at Urbana-Champaign, 205 North Mathews Avenue, Urbana, Illinois 61801;

    Department of Environmental Microbiology, Helmholtz Center for Environmental Research UFZ, D-04318 Leipzig, Germany;

    Department of Civil and Environmental Engineering, University of Illinois at Urbana-Champaign, 205 North Mathews Avenue, Urbana, Illinois 61801;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-17 14:03:57

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