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利用水相电晕放电减少水中的溴酸盐和氯酸盐污染物。

Reduction of bromate and chlorate contaminants in water using aqueous phase corona discharge.

机构信息

Department of Civil Engineering, McMaster University, ON, L8S 4L7, Canada.

Department of Civil Engineering, McMaster University, ON, L8S 4L7, Canada.

出版信息

Chemosphere. 2020 Sep;255:126864. doi: 10.1016/j.chemosphere.2020.126864. Epub 2020 Apr 23.

DOI:10.1016/j.chemosphere.2020.126864
PMID:32402869
Abstract

This work demonstrates the ability of aqueous phase corona discharge to chemically reduce bromate and chlorate ions, common disinfection byproducts, to bromide and chloride ions, respectively. A high voltage pulse was applied to a needle electrode, submerged in the target solution, to generate highly reactive oxidative and reductive species in a temperature-controlled reactor. Optimal water matrix conditions were sought through changing the solution pH, temperature, and dissolved oxygen concentration. Additionally, several oxidative species scavengers were investigated, including methanol, ethanol, sucrose, and D-sorbitol. Chemical reduction rates were improved at low pH (3.5). The presence of dissolved oxygen significantly reduced the chemical reduction rate, and thus high solution temperature (50 °C) also achieved better chemical reduction. All oxidative species scavengers improved the chemical reduction rate; however, methanol and ethanol were superior as these compounds generate hydrogen bubbles in the presence of plasma, which deoxygenates the solution further improving the chemical reduction rate. The application of this technology to 30 μM bromate and chlorate solutions, under optimal water matrix conditions and with the addition of 72 g/L-COD methanol, achieved greater than 95% removal of the target compounds within 60 min. Increasing the initial concentration of the target compounds to 300 μM required 90 and 150 min to achieve similar chemical reductions for bromate and chlorate, respectively.

摘要

这项工作展示了水相电晕放电将溴酸盐和氯酸盐这两种常见的消毒副产物分别化学还原为溴离子和氯离子的能力。将高压脉冲施加到浸没在目标溶液中的针状电极上,在温度可控的反应器中产生高反应性的氧化和还原物质。通过改变溶液 pH 值、温度和溶解氧浓度来寻找最佳的水基质条件。此外,还研究了几种氧化物质清除剂,包括甲醇、乙醇、蔗糖和 D-山梨糖醇。在低 pH(3.5)下,化学还原速率得到提高。溶解氧的存在显著降低了化学还原速率,因此高溶液温度(50°C)也实现了更好的化学还原。所有氧化物质清除剂都提高了化学还原速率;然而,甲醇和乙醇更为优越,因为这些化合物在等离子体存在下会产生氢气气泡,进一步使溶液脱氧,从而进一步提高化学还原速率。在最佳水基质条件下,向 30 μM 溴酸盐和氯酸盐溶液中添加 72 g/L-COD 甲醇,可在 60 分钟内实现大于 95%的目标化合物去除率。将目标化合物的初始浓度增加到 300 μM 时,溴酸盐和氯酸盐分别需要 90 和 150 分钟才能达到类似的化学还原。

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