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单个声空化泡内反应热对半径、温度、压力和化学物质数量变化的影响。

Influence of reactions heats on variation of radius, temperature, pressure and chemical species amounts within a single acoustic cavitation bubble.

机构信息

Laboratory of Environmental Engineering, Department of Process Engineering, Faculty of Engineering, Badji Mokhtar - Annaba University, P.O. Box 12, 23000 Annaba, Algeria.

Laboratory of Environmental Engineering, Department of Process Engineering, Faculty of Engineering, Badji Mokhtar - Annaba University, P.O. Box 12, 23000 Annaba, Algeria.

出版信息

Ultrason Sonochem. 2018 Mar;41:449-457. doi: 10.1016/j.ultsonch.2017.10.001. Epub 2017 Oct 3.

Abstract

The scientific interest toward the study of acoustic bubble is mainly explained by its practical benefit in providing a reactional media favorable to the rapid evolution of chemical mechanism. The evolution of this mechanism is related to the simultaneous and dependent variation of the volume, temperature and pressure within the bubble, retrieved by the resolution of a differential equations system, including among others the thermal balance. This last one is subject to different assumptions, some authors deem simply that the temperature varies adiabatically during the collapsing phase, without considering the reactions heat of the studied mechanism. This paper aims to evaluate the pertinence of neglecting reactions heats in the thermal balance, by analyzing their effect on the variation of radius, temperature, pressure and chemical species amounts. The results show that the introduction of reactions heats conducts to a decrease of the temperature, an increase of the pressure and a reduction of the bubble volume. As a consequence, this leads to a drop of the quantities of free radicals produced by the chemical mechanism evolving within the bubble. This paper also proved that the impact of the consideration of reactions heats is dependent of the frequency and the acoustic amplitude of the ultrasonic wave.

摘要

科学家之所以对研究声学气泡感兴趣,主要是因为它在提供有利于化学反应快速发展的反应介质方面具有实际意义。这种机制的演变与气泡内体积、温度和压力的同时和相互依赖的变化有关,这些变化可以通过求解一个微分方程组来得到,其中包括热平衡。热平衡受到不同假设的影响,一些作者认为在气泡坍塌阶段,温度会绝热变化,而不考虑所研究机制的反应热。本文旨在通过分析忽略热平衡中的反应热对半径、温度、压力和化学物质数量变化的影响,来评估这种做法的恰当性。结果表明,引入反应热会导致温度降低、压力增加和气泡体积减小。因此,这会导致气泡内发生的化学反应产生的自由基数量减少。本文还证明了考虑反应热的影响取决于超声波的频率和幅度。

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