Civil and Environmental Engineering, Northeastern University, Boston, MA, 02115, USA.
Civil and Environmental Engineering, Northeastern University, Boston, MA, 02115, USA.
J Hazard Mater. 2018 Sep 15;358:171-177. doi: 10.1016/j.jhazmat.2018.06.051. Epub 2018 Jun 25.
A comprehensive model that integrates coupled effects of chemical, physical, and electrochemical processes, is necessary for design, analysis, and implementation of the electro-remediation of groundwater under flow conditions. A coupled system of equations to solve for transport and multiple reactions in an electrochemical reactor is numerically intensive due to highly stiff nature of reaction model formulation. In this study, the focus is to develop an efficient model for reactions associated with the transport and physico-chemical transformation in an electrochemical reactor. The model incorporates effects of transport mechanisms as well as chemical and electrochemical reactions. Model verification is provided for pH profiles under different electrolyte compositions in two sets of reactors; a batch and a flow-through reactor. The model is able to predict the concentration of species during the electrochemical remediation process with a close correlation to experimental data (R = 0.99 for batch and R = 0.78 for flow-through reactor.) Imposing polarity reversal to the system will cause fluctuation of pH, however, the trend stays the same as if no polarity were applied. Ultimately, volumetric charge flow is introduced as a unique parameter characterizing the electroremediation reactor for operating purposes.
对于在流动条件下进行地下水的电修复的设计、分析和实施,需要建立一个综合的模型,该模型将化学、物理和电化学过程的耦合效应集成在一起。由于反应模型公式具有高度刚性,因此,用于解决电化学反应器中传输和多种反应的耦合系统方程在数值上是密集的。在这项研究中,重点是开发一种与电化学反应器中的传输和物理化学转化相关的反应的有效模型。该模型结合了传输机制以及化学和电化学反应的影响。通过在两组反应器(批式和流动式)中,针对不同电解质组成下的 pH 分布,提供了模型验证。该模型能够在电化学修复过程中预测物种的浓度,与实验数据具有很好的相关性(批式反应器的 R=0.99,流动式反应器的 R=0.78)。对系统施加极性反转会导致 pH 波动,但趋势与未施加极性时相同。最终,体积电荷流被引入作为用于操作目的的电修复反应器的独特参数。