激光诱导水热空化的特征

IF 0.9 4区 物理与天体物理 Q4 ACOUSTICS
V. I. Yusupov
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引用次数: 0

摘要

研究了波长为1.94 μm的连续激光加热光纤尖端水的热空化特征。用光学和声学方法研究了动态过程。研究结果表明,由水爆炸沸腾决定的热空化初始段的压力脉冲明显低于汽-气气泡崩塌时的压力脉冲。产生的声信号的频谱延伸超过10 MHz,而最低频率和最高频率波动的频谱分布由1/f定律描述。结果表明,在单个热空化实例中,压力脉冲的峰值功率与其重复率呈~1/f1.4的依赖关系。小波分析表明,热空化过程是“随机”与“级联”交替发生的。在专门的声学实验中发现,在热空化的初始阶段,压力上升发生在大约250ns的范围内。在过热液体的体积中,爆炸性沸腾发生在许多点上,而临界核的连续出现的链式反应是由冲击波的传播决定的,这一事实解释了压力相对较长时间的增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Features of Laser-Induced Thermocavitation of Water

Features of Laser-Induced Thermocavitation of Water

The features of thermocavitation of water near a fiber tip under its heating by continuous laser radiation at a wavelength of 1.94 μm have been studied. Dynamic processes have been studied using optical and acoustic methods. It has been established that the pressure pulses at the initial section of thermocavitation determined by the explosive boiling of water are significantly lower compared to the pressure pulses during the collapse of vapor-gas bubbles. The spectrum of a generated acoustic signal extends over 10 MHz, while the spectral distributions of the lowest frequency and highest frequency fluctuations are described by the 1/f law. It has been shown that the peak powers of the pressure pulses in individual instances of thermocavitation are related to their repetition rates by the dependence ~1/f1.4. Wavelet analysis shows that in the course of thermocavitation, an alternation of “random” and “cascade” processes is observed. In a special acoustic experiment, it has been found that at the initial stage of thermocavitation, the pressure rise occurs within approximately 250 ns. The relatively long increase in pressure is explained by the fact that explosive boiling occurs at many points in the volume of a superheated liquid, and the chain reaction of the sequential appearance of critical nuclei is determined by the propagation of shock waves.

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来源期刊
Acoustical Physics
Acoustical Physics 物理-声学
CiteScore
1.60
自引率
50.00%
发文量
58
审稿时长
3.5 months
期刊介绍: Acoustical Physics is an international peer reviewed journal published with the participation of the Russian Academy of Sciences. It covers theoretical and experimental aspects of basic and applied acoustics: classical problems of linear acoustics and wave theory; nonlinear acoustics; physical acoustics; ocean acoustics and hydroacoustics; atmospheric and aeroacoustics; acoustics of structurally inhomogeneous solids; geological acoustics; acoustical ecology, noise and vibration; chamber acoustics, musical acoustics; acoustic signals processing, computer simulations; acoustics of living systems, biomedical acoustics; physical principles of engineering acoustics. The journal publishes critical reviews, original articles, short communications, and letters to the editor. It covers theoretical and experimental aspects of basic and applied acoustics. The journal welcomes manuscripts from all countries in the English or Russian language.
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