Bubble evolution and properties in homogeneous nucleation simulations

被引:21
|
作者
Angelil, Raymond [1 ]
Diemand, Juerg [1 ]
Tanaka, Kyoko K. [2 ]
Tanaka, Hidekazu [2 ]
机构
[1] Univ Zurich, Inst Computat Sci, CH-8057 Zurich, Switzerland
[2] Hokkaido Univ, Inst Low Temp Sci, Sapporo, Hokkaido 060, Japan
来源
PHYSICAL REVIEW E | 2014年 / 90卷 / 06期
基金
瑞士国家科学基金会;
关键词
MOLECULAR-DYNAMICS SIMULATION; JONES FLUID; CAVITATION; VISCOSITY; LIQUID; TRANSPORT; MASS; EVAPORATION; DIFFUSION; NANOSCALE;
D O I
10.1103/PhysRevE.90.063301
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
We analyze the properties of naturally formed nanobubbles in Lennard-Jones molecular dynamics simulations of liquid-to-vapor nucleation in the boiling and the cavitation regimes. The large computational volumes provide a realistic environment at unchanging average temperature and liquid pressure, which allows us to accurately measure properties of bubbles from their inception as stable, critically sized bubbles, to their continued growth into the constant speed regime. Bubble gas densities are up to 50% lower than the equilibrium vapor densities at the liquid temperature, yet quite close to the gas equilibrium density at the lower gas temperatures measured in the simulations: The latent heat of transformation results in bubble gas temperatures up to 25% below those of the surrounding bulk liquid. In the case of rapid bubble growth-typical for the cavitation regime-compression of the liquid outside the bubble leads to local temperature increases of up to 5%, likely significant enough to alter the surface tension as well as the local viscosity. The liquid-vapor bubble interface is thinner than expected from planar coexistence simulations by up to 50%. Bubbles near the critical size are extremely nonspherical, yet they quickly become spherical as they grow. The Rayleigh-Plesset description of bubble-growth gives good agreement in the cavitation regime.
引用
收藏
页数:13
相关论文
共 50 条
  • [1] Comparison of heterogeneous and homogeneous bubble nucleation using molecular simulations
    Novak, Brian R.
    Maginn, Edward J.
    McCready, Mark J.
    PHYSICAL REVIEW B, 2007, 75 (08)
  • [2] Direct simulations of homogeneous bubble nucleation: Agreement with classical nucleation theory and no local hot spots
    Diemand, Juerg
    Angelil, Raymond
    Tanaka, Kyoko K.
    Tanaka, Hidekazu
    PHYSICAL REVIEW E, 2014, 90 (05):
  • [3] Predicting Homogeneous Bubble Nucleation in Rhyolite
    Hajimirza, Sahand
    Gonnermann, Helge M.
    Gardner, James E.
    Giachetti, Thomas
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2019, 124 (03) : 2395 - 2416
  • [4] HOMOGENEOUS BUBBLE NUCLEATION LIMIT OF LEAD
    Abyzov, A. S.
    Schmelzer, J. W. P.
    Davydov, L. N.
    Slezov, V. V.
    PROBLEMS OF ATOMIC SCIENCE AND TECHNOLOGY, 2012, (01): : 283 - 287
  • [5] A kinetic theory of homogeneous bubble nucleation
    Shen, VK
    Debenedetti, PG
    JOURNAL OF CHEMICAL PHYSICS, 2003, 118 (02): : 768 - 783
  • [6] Analytical Study on Homogeneous Nucleation and Bubble Evolution Inside Monocomponent Fuel Droplet
    Xi, Xi
    Liu, Hong
    Cai, Chang
    Jia, Ming
    Yin, Hongchao
    JOURNAL OF THERMOPHYSICS AND HEAT TRANSFER, 2021, 35 (03) : 560 - 568
  • [7] Activated instability of homogeneous bubble nucleation and growth
    Uline, Mark J.
    Corti, David S.
    PHYSICAL REVIEW LETTERS, 2007, 99 (07)
  • [9] Homogeneous bubble nucleation in liquids: The classical theory revisited
    Delale, CF
    Hruby, J
    Marsik, F
    JOURNAL OF CHEMICAL PHYSICS, 2003, 118 (02): : 792 - 806
  • [10] Experimental study of homogeneous bubble nucleation in rhyolitic magmas
    Mourtada-Bonnefoi, CC
    Laporte, D
    GEOPHYSICAL RESEARCH LETTERS, 1999, 26 (23) : 3505 - 3508