Numerical simulation of compression of the single spherical vapor bubble on a basis of the uniform model

被引:9
|
作者
Yang, Hyunik [2 ]
Desyatov, A. V. [1 ]
Cherkasov, S. G. [1 ]
Il'mov, D. N. [1 ]
McConnell, D. B. [3 ]
机构
[1] Keldysh Res Ctr, Moscow 125438, Russia
[2] Hanyang Univ, Dept Mech Engn, Ansan, South Korea
[3] Fus Res, Port Coquitlam, BC V3C 6M2, Canada
关键词
steam bubble; phase change; heat-mass transfer; sonoluminescence; cavitation;
D O I
10.1016/j.ijheatmasstransfer.2007.10.014
中图分类号
O414.1 [热力学];
学科分类号
摘要
The problem of the response of a single spherical vapor bubble is considered for the case of an abrupt increase of pressure in the surrounding infinite liquid. The mathematical model adopted is based on the assumption of the uniformity of pressure, temperature and density throughout the bubble volume. The temperature field around the bubble is calculated using the energy equation for the liquid. Thermal-physical characteristics, exclusive of specific heats of the liquid and vapor, are considered to be temperature-dependent. A notable feature of the model is the exact fulfillment of the integral law of conservation of system energy, disregarding the relatively small vapor kinetic energy. The initial bubble radius and the pressure rise in the liquid were varied in the calculations. It was found that the temperature increment in the bubble due to vapor condensation and heat exchange with the liquid is approximately two orders of magnitude less than that due to adiabatic compression. To study the effect of condensation, calculations were performed in which phase transitions were artificially blocked at the bubble boundary. It was found that the character of the process in the latter case changes both quantitatively and qualitatively; in particular, the temperature increment increases by about an order of magnitude. (c) 2007 Elsevier Ltd. All rights reserved.
引用
收藏
页码:3615 / 3622
页数:8
相关论文
共 50 条
  • [1] Numerical simulation of a single rising bubble by VOF with surface compression
    Klostermann, J.
    Schaake, K.
    Schwarze, R.
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2013, 71 (08) : 960 - 982
  • [2] Theoretical investigation of modes of compression of a spherical vapor bubble using a simplified model
    Desyatov, A. V.
    Il'mov, D. N.
    Cherkasov, S. G.
    HIGH TEMPERATURE, 2007, 45 (06) : 837 - 843
  • [3] Theoretical investigation of modes of compression of a spherical vapor bubble using a simplified model
    A. V. Desyatov
    D. N. Il’mov
    S. G. Cherkasov
    High Temperature, 2007, 45 : 837 - 843
  • [4] Mathematical simulation of evolution of solitary spherical vapor bubble under compression by external pressure
    A. V. Desyatov
    D. N. Il’mov
    S. G. Cherkasov
    High Temperature, 2008, 46 : 84 - 90
  • [5] Mathematical simulation of evolution of solitary spherical vapor bubble under compression by external pressure
    Desyatov, A. V.
    Il'mov, D. N.
    Cherkasov, S. G.
    HIGH TEMPERATURE, 2008, 46 (01) : 84 - 90
  • [6] Numerical Simulation of Single Bubble Evolution Based on Microlayer Model
    Wang Y.
    Cai J.
    Cai, Jiejin (epjjcai@scut.edu.cn), 2018, Atomic Energy Press (52): : 600 - 606
  • [7] NUMERICAL APPROACH TO NON-SPHERICAL VAPOR BUBBLE DYNAMICS
    GUY, TB
    LEDWIDGE, TJ
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1973, 16 (12) : 2393 - 2406
  • [8] Numerical simulation of spherical bubble collapse by a uniform bubble pressure approximation and detailed description of heat and mass transfer with phase transition
    Bermudez-Graterol, Jean Manuel
    Nickaeen, Mehrdad
    Skoda, Romuald
    Applied Mathematical Modelling, 2021, 96 : 80 - 110
  • [9] Numerical simulation of spherical bubble collapse by a uniform bubble pressure approximation and detailed description of heat and mass transfer with phase transition
    Bermudez-Graterol, Jean Manuel
    Nickaeen, Mehrdad
    Skoda, Romuald
    APPLIED MATHEMATICAL MODELLING, 2021, 96 : 80 - 110
  • [10] Numerical simulation of compression breakage of spherical particle
    Chen, Tielin
    Fang, Qian
    Wang, Zejun
    Zhu, Wenjun
    CHEMICAL ENGINEERING SCIENCE, 2017, 173 : 443 - 454