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用于水处理的有机污染物冷冻强化氯化法。

Freezing-enhanced chlorination of organic pollutants for water treatment.

作者信息

Wu Duanyang, Li Junxue, Xu Jing, Cheng Wei

机构信息

College of Resources and Environmental Science, South-Central Minzu University Wuhan 430074 P.R. China

State Key Laboratory of Water Resources and Hydropower Engineering Science, Wuhan University Wuhan 430072 PR China.

出版信息

RSC Adv. 2024 Apr 16;14(17):12218-12224. doi: 10.1039/d4ra00081a. eCollection 2024 Apr 10.

Abstract

Freezing has been reported to accelerate chemical reactions and thus affect the fate of pollutants in the environment. However, little research has been conducted on the potential effects of freezing on the chlorination process. This study aimed to explore the freezing-enhanced chlorination process by comparing the oxidation of clofibric acid (CA) by chlorine in ice (at -20 °C) to the same reaction in water (at 25 °C). The degradation of CA, which was negligible in water, was significantly accelerated in ice. This acceleration can be attributed to the freeze concentration effect that occurs during freezing, which excludes solutes such as chlorine, CA and protons from the ice crystals, leading to their accumulated concentration in the liquid brine. The increased concentration of chlorine and protons in the liquid brine leads to higher rates of CA oxidation, supporting the freeze concentration effect as the underlying cause for the accelerated chlorination of CA in ice. Moreover, the chlorine/freezing system was also effective in the degradation of other organic pollutants. This highlights the environmental relevance and significance of freezing-enhanced chlorination in cold regions, particularly for the treatment of organic contaminants.

摘要

据报道,冷冻会加速化学反应,从而影响环境中污染物的归宿。然而,关于冷冻对氯化过程潜在影响的研究却很少。本研究旨在通过比较氯在冰中(-20°C)对氯贝酸(CA)的氧化与在水中(25°C)的相同反应,来探索冷冻增强氯化过程。在水中可忽略不计的CA降解在冰中显著加速。这种加速可归因于冷冻过程中发生的冷冻浓缩效应,该效应将氯、CA和质子等溶质排除在冰晶之外,导致它们在液态盐水中积累浓缩。液态盐水中氯和质子浓度的增加导致CA氧化速率更高,这支持了冷冻浓缩效应是冰中CA氯化加速的根本原因。此外,氯/冷冻系统对其他有机污染物的降解也有效。这突出了寒冷地区冷冻增强氯化的环境相关性和重要性,特别是对于有机污染物的处理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5401/11019486/7bfec3e3ac2b/d4ra00081a-f1.jpg

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