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声化学降解水中三氯生的多频反应器。

Sonochemical degradation of triclosan in water in a multifrequency reactor.

机构信息

Department of Chemical and Biological Engineering, University of Saskatchewan, 57 Campus Drive, Saskatoon, SK, S7N 5A9, Canada.

Grupo GDCON, Facultad de Ingeniería, Sede de Investigación Universitaria (SIU), Universidad de Antioquia, Calle 70 No. 52-21, Medellín, Colombia.

出版信息

Environ Sci Pollut Res Int. 2019 Feb;26(5):4450-4461. doi: 10.1007/s11356-018-1281-2. Epub 2018 Jan 29.

Abstract

Degradation of triclosan (TCS) by multifrequency ultrasound (US) was studied at high and low frequencies. Frequency effect on initial degradation rates was analyzed, and an optimum frequency was found. Power density always has a positive effect on degradation rates over the whole equipment work range. A reaction mechanism similar to that proposed by Serpone resulted in a pseudo-linear model that fitted statistically better than the nonlinear model proposed by Okitsu. Pulsed US showed a positive effect on degradation rates; however, simultaneous analysis of the effect of power, frequency, pulse time, and silent time did not show a clear trend for degradation as a function of pulse US variables. According to these results and those for degradation in the presence of radical scavengers, it was concluded that US TCS degradation was taking place in the bubble/liquid interface. A toxicity test was conducted by Microtox®, showing a decrease in toxicity as TCS concentration decreased and increase in toxicity after total depletion of TCS. Eight possible degradation by-products were identified by GC-MS analysis, and a degradation pathway was proposed.

摘要

研究了高频和低频下多频超声(US)对三氯生(TCS)的降解。分析了频率对初始降解速率的影响,找到了最佳频率。在整个设备工作范围内,功率密度对降解速率始终有积极影响。类似于 Serpone 提出的反应机制导致了一个准线性模型,该模型在统计学上比 Okitsu 提出的非线性模型拟合得更好。脉冲超声对降解速率有积极影响;然而,对功率、频率、脉冲时间和间歇时间影响的同时分析并没有显示出降解速率随脉冲 US 变量变化的明确趋势。根据这些结果以及在自由基清除剂存在下的降解结果,可以得出结论,US 降解 TCS 是在气泡/液体界面发生的。通过 Microtox®进行了毒性测试,结果表明随着 TCS 浓度的降低,毒性降低,而在 TCS 完全耗尽后,毒性增加。通过 GC-MS 分析鉴定了 8 种可能的降解副产物,并提出了降解途径。

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