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研究增强 VUV/UV 工艺对受污染水中微量污染物的降解性能。

A study of enhanced performance of VUV/UV process for the degradation of micropollutants from contaminated water.

机构信息

Department of Chemical and Biological Engineering, The University of British Columbia, 2360 East Mall, Vancouver, BC V6T 1Z3, Canada.

Department of Chemical and Biological Engineering, The University of British Columbia, 2360 East Mall, Vancouver, BC V6T 1Z3, Canada.

出版信息

J Hazard Mater. 2015 Aug 30;294:1-8. doi: 10.1016/j.jhazmat.2015.03.036. Epub 2015 Mar 18.

Abstract

VUV/UV is a chemical-free and straightforward solution for the degradation of emerging contaminants from water sources. The objective of this work was to investigate the feasibility of VUV/UV advanced oxidation process for the effective degradation of a target micropollutant, atrazine, under continuous flow operation of 0.5-6.5L/min. To provide an in-depth understanding of process, a comprehensive computational fluid dynamics (CFD) model, incorporating flow hydrodynamics, 185nm VUV and 254nm UV radiation propagation along with a complete kinetic scheme, was developed and validated experimentally. The experimental degradation rates and CFD predicted values showed great consistency with less than 2.9% average absolute relative deviation (AARD). Utilizing the verified model, energy-efficiency of the VUV/UV process under a wide range of reactor configurations was assessed in terms of electrical energy-per-order (EEO), OH concentration as well as delivered UV and VUV dose distributions. Thereby, the extent of mixing and circulation zones was found as key parameter controlling the treatment economy and energy-efficiency of the VUV/UV process. Utilizing a CFD-driven baffle design strategy, an improved VUV/UV process with up to 72% reduction in the total electrical energy requirement of atrazine degradation was introduced and verified experimentally.

摘要

VUV/UV 是一种化学免费且直接的方法,可用于降解水源中的新兴污染物。本工作的目的是研究 VUV/UV 高级氧化工艺在 0.5-6.5L/min 的连续流动操作下有效降解目标微污染物莠去津的可行性。为了深入了解该工艺,开发并通过实验验证了一个全面的计算流体动力学(CFD)模型,该模型结合了流动水动力、185nm VUV 和 254nm UV 辐射传播以及完整的动力学方案。实验降解速率和 CFD 预测值之间具有很好的一致性,平均绝对相对偏差(AARD)小于 2.9%。利用经过验证的模型,根据电能-阶数(EEO)、OH 浓度以及传递的 UV 和 VUV 剂量分布,评估了在广泛的反应器配置下 VUV/UV 工艺的能量效率。因此,混合和循环区域的程度被发现是控制 VUV/UV 工艺处理经济性和能量效率的关键参数。利用 CFD 驱动的挡板设计策略,提出并通过实验验证了一种改进的 VUV/UV 工艺,可将莠去津降解的总电耗降低 72%。

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