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声致发光和声化学反应中活性气泡的环境半径范围。

The range of ambient radius for an active bubble in sonoluminescence and sonochemical reactions.

作者信息

Yasui Kyuichi, Tuziuti Toru, Lee Judy, Kozuka Teruyuki, Towata Atsuya, Iida Yasuo

机构信息

National Institute of Advanced Industrial Science and Technology, Anagahora, Shimoshidami, Moriyama-ku, Nagoya 463-8560, Japan.

出版信息

J Chem Phys. 2008 May 14;128(18):184705. doi: 10.1063/1.2919119.

Abstract

Numerical simulations of nonequilibrium chemical reactions inside an air bubble in liquid water irradiated by ultrasound have been performed for various ambient bubble radii. The intensity of sonoluminescence (SL) has also been calculated taking into account electron-atom bremsstrahlung, radiative attachment of electrons to neutral molecules, radiative recombination of electrons and ions, chemiluminescence of OH, molecular emission from nitrogen, etc. The lower bound of ambient radius for an active bubble in SL and sonochemical reactions nearly coincides with the Blake threshold for transient cavitation. The upper bound is in the same order of magnitude as that of the linear resonance radius. In actual experiments, however, the distribution of ambient radius for active bubbles may be narrow at around the threshold ambient radius for the shape instability. The threshold peak temperature inside an air bubble for nitrogen burning is higher than that for oxidant formation. The threshold peak temperatures depend on ultrasonic frequency and acoustic amplitude because chemical reactions inside a bubble are in nonequilibrium. The dominant emission mechanism in SL is electron-atom bremsstrahlung except at a lower bubble temperature than 2000 K, for which molecular emissions may be dominant.

摘要

针对不同的环境气泡半径,对超声辐照液态水中气泡内非平衡化学反应进行了数值模拟。还考虑了电子 - 原子轫致辐射、电子与中性分子的辐射附着、电子与离子的辐射复合、OH的化学发光、氮分子发射等因素,计算了声致发光(SL)的强度。SL和声化学反应中活性气泡的环境半径下限几乎与瞬态空化的布雷克阈值一致。上限与线性共振半径处于同一数量级。然而,在实际实验中,活性气泡的环境半径分布在形状不稳定性的阈值环境半径附近可能很窄。气泡内氮气燃烧的阈值峰值温度高于氧化剂形成的阈值峰值温度。阈值峰值温度取决于超声频率和声幅,因为气泡内的化学反应处于非平衡状态。除了在气泡温度低于2000K时分子发射可能占主导外,SL中的主要发射机制是电子 - 原子轫致辐射。

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