电晕放电冷等离子体引发水溶液氧化的研究

IF 0.5 Q4 ENGINEERING, CHEMICAL
I. M. Piskarev, N. A. Aristova, I. I. Vasina, I. P. Ivanova
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引用次数: 0

摘要

考虑了一种可能产生臭氧-羟基混合物的新方法:使用点电极和面之间的电晕放电产生的冷等离子体,在点电极处具有负电压。考虑了空气和水蒸气中的排放。在这些条件下羟基自由基的寿命为~0.12 s;臭氧被消耗以维持羟基自由基。考虑了点电极供电电路的参数。以闭式发生器(待处理液量50ml,总放电电流0.5 mA)、流动式反应器(放电电流5ma,生产率250l /h)和循环式反应器(生产率25 ~ 250l /h)的功能配置为例。循环系统允许通过降低水的生产率来增加在液体中产生的剂量。在电晕放电中产生单个羟基自由基的能量消耗约为500 eV。处理严重污染的水在经济上不合算。为了去除难以分解的杂质,在用臭氧-羟基混合物进行处理之前,要进行常规的水处理。对于每个反应堆,要确定液体中产生的剂量。比较了各系统的优缺点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Initiation of Oxidation in Aqueous Solutions by Cold Plasma from a Corona Electric Discharge

Initiation of Oxidation in Aqueous Solutions by Cold Plasma from a Corona Electric Discharge

Initiation of Oxidation in Aqueous Solutions by Cold Plasma from a Corona Electric Discharge

A possible new method for the generation of ozone–hydroxyl mixtures is considered: the use of cold plasma from a corona electric discharge between a point electrode and a plane, with negative voltage at the point electrode. Discharges in air and in water vapor are considered. The lifetime of hydroxyl radicals in these conditions is ~0.12 s; ozone is consumed in sustaining the hydroxyl radicals. The parameters of the power supply circuit for the point electrodes is considered. As an example, the functional configurations of a closed generator (volume of liquid to be treated 50 mL; total discharge current 0.5 mA), a flow-type reactor (discharge current 5 mA; productivity 250 L/h), and a circulatory reactor productivity 25–250 L/h) are presented. The circulatory system permits increase in the dose created in the liquid by decrease in productivity of the water. The energy consumption in generating a single hydroxyl radical in the corona discharge is around 500 eV. It is not economically expedient to process extremely polluted water. To remove impurities that are hard to break down, treatment with ozone–hydroxyl mixture is preceded by regular water treatment. For each reactor, the doses created in the liquid are determined. The advantages and disadvantages of each system are compared.

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来源期刊
Coke and Chemistry
Coke and Chemistry ENGINEERING, CHEMICAL-
CiteScore
0.70
自引率
50.00%
发文量
36
期刊介绍: The journal publishes scientific developments and applications in the field of coal beneficiation and preparation for coking, coking processes, design of coking ovens and equipment, by-product recovery, automation of technological processes, ecology and economics. It also presents indispensable information on the scientific events devoted to thermal rectification, use of smokeless coal as an energy source, and manufacture of different liquid and solid chemical products.
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