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停止空化后水中臭氧气泡产生 OH 自由基的机制。

Mechanism of OH radical production from ozone bubbles in water after stopping cavitation.

机构信息

National Institute of Advanced Industrial Science and Technology (AIST), 2266-98 Anagahora, Shimoshidami, Moriyama-ku, Nagoya 463-8560, Japan.

National Institute of Advanced Industrial Science and Technology (AIST), 2266-98 Anagahora, Shimoshidami, Moriyama-ku, Nagoya 463-8560, Japan.

出版信息

Ultrason Sonochem. 2019 Nov;58:104707. doi: 10.1016/j.ultsonch.2019.104707. Epub 2019 Jul 24.

Abstract

It has been experimentally reported that OH radicals are produced from ozone microbubbles even after stopping cavitation. Microbubbles are mostly produced using acoustic or hydrodynamic cavitation. In the present paper, numerical simulations of chemical reactions inside an ozone bubble and an oxygen bubble are performed during and after acoustic cavitation in order to study the mechanism of OH radical production. The results have indicated that less than one molecule of OH radicals is produced from a dissolving ozone bubble after stopping cavitation when local pH near the bubble wall is <8. On the other hand, more than 10 or 10 molecules of HO are produced inside an ozone or oxygen microbubble, respectively, in water during acoustic cavitation per violent collapse. It suggests that OH radicals are possibly produced by the chemical reaction of HO with O in the liquid phase even after stopping cavitation. Furthermore, in strongly acidic conditions (pH < 5), the reaction of HO with O in the liquid phase is relatively slow, and OH production considerably continues after stopping cavitation. This may be the reason for the enhanced OH signals in strongly acidic conditions observed experimentally after stopping cavitation.

摘要

实验报告表明,即使在停止空化后,臭氧微泡也会产生羟基自由基。微泡主要通过声空化或动压空化产生。在本文中,为了研究 OH 自由基产生的机制,在声空化期间和之后对臭氧泡和氧气泡内的化学反应进行了数值模拟。结果表明,当气泡壁附近的局部 pH 值<8 时,溶解的臭氧泡在停止空化后产生的 OH 自由基分子数不到 1 个。另一方面,在声空化期间,每一次剧烈崩溃,臭氧或氧气微泡内分别产生超过 10 或 10 个 HO 自由基。这表明即使在停止空化后,OH 自由基也可能是由 HO 与液相中的 O 发生化学反应产生的。此外,在强酸性条件下(pH<5),液相中 HO 与 O 的反应相对较慢,在停止空化后 OH 自由基的产生会持续相当长的时间。这可能是实验中观察到停止空化后强酸性条件下 OH 信号增强的原因。

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