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非均相多孔介质中实验室规模的原位生物修复:生物动力学受限情形

Laboratory-scale in situ bioremediation in heterogeneous porous media: biokinetics-limited scenario.

作者信息

Song Xin, Hong Eunyoung, Seagren Eric A

机构信息

State Key Laboratory of Soil Environment and Pollution Remediation, Institute of Soil Science, Chinese Academy of Sciences, Nanjing 210008, China; Department of Civil and Environmental Engineering, University of Maryland, College Park, MD 20742, United States.

Department of Civil and Environmental Engineering, University of Maryland, College Park, MD 20742, United States.

出版信息

J Contam Hydrol. 2014 Mar;158:78-92. doi: 10.1016/j.jconhyd.2014.01.001. Epub 2014 Jan 16.

Abstract

Subsurface heterogeneities influence interfacial mass-transfer processes and affect the application of in situ bioremediation by impacting the availability of substrates to the microorganisms. However, for difficult-to-degrade compounds, and/or cases with inhibitory biodegradation conditions, slow biokinetics may also limit the overall bioremediation rate, or be as limiting as mass-transfer processes. In this work, a quantitative framework based on a set of dimensionless coefficients was used to capture the effects of the competing interfacial and biokinetic processes and define the overall rate-limiting process. An integrated numerical modeling and experimental approach was used to evaluate application of the quantitative framework for a scenario in which slow-biokinetics limited the overall bioremediation rate of a polycyclic aromatic hydrocarbon (naphthalene). Numerical modeling was conducted to simulate the groundwater flow and naphthalene transport and verify the system parameters, which were used in the quantitative framework application. The experiments examined the movement and biodegradation of naphthalene in a saturated, heterogeneous intermediate-scale flow cell with two layers of contrasting hydraulic conductivities. These experiments were conducted in two phases: Phase I, simulating an inhibited slow biodegradation; and Phase II, simulating an engineered bioremediation, with system perturbations selected to enhance the slow biodegradation rate. In Phase II, two engineered perturbations to the system were selected to examine their ability to enhance in situ biodegradation. In the first perturbation, nitrogen and phosphorus in excess of the required stoichiometric amounts were spiked into the influent solution to mimic a common remedial action taken in the field. The results showed that this perturbation had a moderate positive impact, consistent with slow biokinetics being the overall rate-limiting process. However, the second perturbation, which was to alleviate inhibition and increase the biodegradation rate, enhanced the overall biotransformation rate to a greater degree.

摘要

地下非均质性会影响界面传质过程,并通过影响微生物可利用的底物量来影响原位生物修复的应用。然而,对于难降解化合物和/或存在抑制性生物降解条件的情况,缓慢的生物动力学也可能限制整体生物修复速率,或者与传质过程一样具有限制性。在这项工作中,基于一组无量纲系数的定量框架被用来捕捉竞争性界面和生物动力学过程的影响,并定义整体速率限制过程。采用综合数值模拟和实验方法,评估了定量框架在缓慢生物动力学限制多环芳烃(萘)整体生物修复速率的场景中的应用。进行了数值模拟以模拟地下水流和萘的迁移,并验证定量框架应用中使用的系统参数。实验研究了萘在具有两层不同水力传导率的饱和非均质中尺度流动槽中的迁移和生物降解。这些实验分两个阶段进行:第一阶段,模拟抑制性缓慢生物降解;第二阶段,模拟工程生物修复,选择系统扰动以提高缓慢生物降解速率。在第二阶段,选择了对系统的两种工程扰动来检验它们增强原位生物降解的能力。在第一次扰动中,将超过所需化学计量的氮和磷加入进水溶液中,以模拟现场常见的修复措施。结果表明,这种扰动有适度的积极影响,这与缓慢生物动力学是整体速率限制过程一致。然而,第二次扰动,即减轻抑制并提高生物降解速率,在更大程度上提高了整体生物转化速率。

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