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Modeling Multiphase Contaminant Transport in Porous Media Using First-Order Mass Transfer Kinetics

机译:使用一阶传质动力学建模多孔介质中的多相污染物运移

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摘要

This article presents the development of a multiphase contaminant transport model that incorporates non-equilibrium, first-order kinetics to the solution of mass transfer processes. The model is developed to analyze the mass transfer processes and simulate the contaminant removal by air sparging (AS) and soil vapor extraction (SVE). The model considers distinguished single-phase and multiphase domains. This capability is especially important in the case of remediation techniques that involve an advective air flux such as AS and SVE. In such systems, two domains may be considered: the advective domain, i.e., the air, and the non-advective domain, which may be either the domain outside the advective air domain but in the vicinity of the air plume, or any space or pocket inside the advective air domain that is not in direct contact with the advective air domain. The model considers the contaminant mass transfer among all phases involved: aqueous, non-aqueous, gaseous, and solid. The theoretical basis of the model is built on the concept that soil particles are surrounded by water films that isolate the gaseous and non-aqueous phase system. Therefore, the contaminant mass transfer can take place across the aqueous-solid (sorption/de-sorption), aqueous-gaseous (stripping), aqueous-NAPL (dissolution), and gaseous-NAPL (volatilization) interfaces. The governing equations for the mass transfer are solved numerically using Galerkin's finite element formulation. The numerical solution was verified against an analytical solution. The model was successfully used to analyze air sparging experimental data of toluene removal from two 350 mL reactors using airflows of 0.0432 and 0.0216 cm/s. The simulation revealed that an accurate determination of the first-order mass transfer coefficients is still needed to simulate the mass transfer processes
机译:本文介绍了一种多相污染物传输模型的开发,该模型将非平衡一级动力学与传质过程的解决方案结合在一起。开发该模型以分析传质过程并模拟通过空气喷射(AS)和土壤蒸汽提取(SVE)去除污染物的过程。该模型考虑了杰出的单相和多相域。在涉及平流气流(例如AS和SVE)的修复技术的情况下,此功能尤其重要。在这样的系统中,可以考虑两个域:对流域(即空气域)和非对流域,非对流域可以是对流空气域之外但在空气羽流附近的域,也可以是任何空间或不与对流空气域直接接触的对流空气域内的凹穴。该模型考虑了污染物在所有相关相之间的传质:水相,非水相,气态和固体。该模型的理论基础建立在土壤颗粒被水膜包围的概念之上,水膜隔离了气态和非水相系统。因此,污染物的质量转移可以发生在水-固体(吸附/解吸),水-气态(汽提),水-NAPL(溶解)和气态-NAPL(挥发)界面之间。使用Galerkin的有限元公式对传质的控制方程进行数值求解。将数值解与解析解进行了验证。该模型已成功用于分析两个350 mL反应器中空气喷射的空气喷射实验数据,气流流量为0.0432和0.0216 cm / s。模拟表明,仍然需要准确确定一阶传质系数以模拟传质过程

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