The influence of thermodynamic gas parameters on laser-induced bubble dynamics in water

被引:9
|
作者
Han, Bing [1 ]
Yang, Bo [1 ]
Zhao, Rui [1 ]
Zhang, Hong-Chao [1 ]
Shen, Zhong-Hua [1 ]
Lu, Jian [1 ]
Ni, Xiao-Wu [1 ]
机构
[1] Nanjing Univ Sci & Technol, Dept Appl Phys, Nanjing 210094, Peoples R China
基金
中国国家自然科学基金;
关键词
Cavitation bubble; Laser; Substance inside bubble; Fiber-optic sensor; SOLID BOUNDARY; OSCILLATIONS; BREAKDOWN; COLLAPSE; IMPACT;
D O I
10.1016/j.euromechflu.2010.06.004
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The oscillating properties of laser-induced cavitation bubbles in water are investigated by means of a fiber-optic sensor based on optical beam deflection. The experimental results show two important points. One is that the smaller the bubble radius the more quickly the bubble surface moves. Thus, the variations of the temperature and the pressure inside the bubble will be close to those of an adiabatic process. The other is that the high-energy vapor inside the newborn bubble diffuses and coagulates rapidly through violent expansion and thermal conduction. Thus, the gas content of the bubble reduces significantly in the first oscillation. Numerical simulation is made for the bubble model with consideration of liquid viscosity, surface tension, and gas content. Through modification of the polytropic index and the gas content parameter, two parameters of this model, the numerical results fit the experimental results well. (c) 2010 Elsevier Masson SAS. All rights reserved.
引用
收藏
页码:430 / 434
页数:5
相关论文
共 50 条
  • [41] Numerical Simulation of Laser-Induced Bubble and Metal-Free Water Cannon
    Ohkubo, Tomomasa
    Matsunaga, Ei-ichi
    Sato, Yuji
    JOURNAL OF ADVANCED COMPUTATIONAL INTELLIGENCE AND INTELLIGENT INFORMATICS, 2021, 25 (01) : 50 - 55
  • [42] Influence of bubble content on spectrum properties of laser-induced cavitation bubble collapse sound waves in liquid
    Li, Shengyong
    Liu, Xiaoran
    Wang, Jiang'an
    Zong, Siguang
    Shen, Zhonghua
    Ni, Xiaowu
    Qiangjiguang Yu Lizishu/High Power Laser and Particle Beams, 2012, 24 (05): : 1067 - 1070
  • [43] Ultrasound measurements of cavitation bubble radius for femtosecond laser-induced breakdown in water
    Aglyamov, Salavat R.
    Karpiouk, Andrei B.
    Bourgeois, Frederic
    Ben-Yakar, Adela
    Emelianov, Stanislav Y.
    OPTICS LETTERS, 2008, 33 (12) : 1357 - 1359
  • [44] Effect of Laser Wavelength on Laser-Induced Breakdown Spectrum and Evolution of Cavitation Bubble in Bulk Water
    Li Na
    Tang Shaohua
    Lu Mengjie
    Guo Mao
    Zhou Weidong
    ACTA OPTICA SINICA, 2022, 42 (18)
  • [45] Mechanical effects of laser-induced cavitation bubble on different geometrical confinements for laser propulsion in water
    Han, Bing
    Pan, Yun-Xiang
    Xue, Ya-Li
    Chen, Jun
    Shen, Zhong-Hua
    Lu, Jian
    Ni, Xiao-Wu
    OPTICS AND LASERS IN ENGINEERING, 2011, 49 (03) : 428 - 433
  • [46] Influence of the laser parameters on the space and time characteristics of an aluminum laser-induced plasma
    Barthélemy, O
    Margot, J
    Chaker, M
    Sabsabi, M
    Vidal, F
    Johnston, TW
    Laville, S
    Le Drogoff, B
    SPECTROCHIMICA ACTA PART B-ATOMIC SPECTROSCOPY, 2005, 60 (7-8) : 905 - 914
  • [47] Collapse and rebound of a laser-induced cavitation bubble
    Akhatov, I
    Lindau, O
    Topolnikov, A
    Mettin, R
    Vakhitova, N
    Lauterborn, W
    PHYSICS OF FLUIDS, 2001, 13 (10) : 2805 - 2819
  • [48] A laser-induced mode of superintensive bubble boiling
    Chudnovskii, V. M.
    Yusupov, V. I.
    Zhukov, S. A.
    Echmaev, S. B.
    Bagratashvili, V. N.
    DOKLADY PHYSICS, 2017, 62 (04) : 174 - 175
  • [49] The influence of particle size on the fluid dynamics of a laser-induced plasma
    Miller, Clayton J.
    Wainwright, Elliot R.
    Gottfried, Jennifer L.
    Abraham, Joseph
    Wei, Liang
    Pantoya, Michelle L.
    PHYSICS OF FLUIDS, 2022, 34 (05)
  • [50] On the modeling and simulation of a laser-induced cavitation bubble
    Zein, Ali
    Hantke, Maren
    Warnecke, Gerald
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2013, 73 (02) : 172 - 203