STOCHASTIC MODELING OF MOLECULAR-TRANSPORT TO AN EVAPORATING MICRODROPLET IN A SUPERHEATED GAS

被引:15
|
作者
CAREY, VP
HAWKS, NE
机构
[1] Mechanical Engineering Department, University of California, Berkeley, CA
来源
关键词
EVAPORATION; PHASE CHANGE PHENOMENA; SPRAYS DROPLETS;
D O I
10.1115/1.2822540
中图分类号
O414.1 [热力学];
学科分类号
摘要
The investigation summarized in this paper explored the use of a stochastic, direct-simulation Monte-Carlo scheme to model heat and mass transfer associated with the vaporization of liquid nitrogen microdroplets in superheated nitrogen gas. Two different stochastic models of the molecule-surface interactions were used in the particle simulation scheme. The first, which imposes conservation of mass at the droplet surface, is appropriate for a heated or cooled solid sphere. The second models the net generation of vapor at the surface of an evaporating droplet by allowing the molecular flux to adjust itself dynamically to balance the energy exchange. Predictions of the particle simulation model with the mass conservation surface treatment are found to agree favorably with heat transfer data for a solid sphere in a rarefied gas. The effects of noncontinuum behavior and interface vapor generation on transport during microdroplet evaporation are explored and a closed-form relation for the heat transfer coefficient is developed, which closely matches all our simulation heat transfer predictions for evaporating microdroplets. This relation apparently is the first to account for the simultaneous effects of interface vapor generation and noncontinuum behavior on heat transfer controlled microdroplet evaporation.
引用
收藏
页码:432 / 439
页数:8
相关论文
共 50 条
  • [1] Stochastic modeling of molecular transport to an evaporating microdroplet in a superheated gas
    Carey, V.P.
    Hawks, N.E.
    Journal of Heat Transfer, 1995, 117 (02): : 432 - 439
  • [2] Stochastic molecular modeling the transport coefficients of rarefied gas and gas nanosuspensions
    Rudyak, V. Ya.
    Lezhnev, E. V.
    NANOSYSTEMS-PHYSICS CHEMISTRY MATHEMATICS, 2020, 11 (03): : 285 - 293
  • [3] MOLECULAR-TRANSPORT AND DIFFUSION IN SOLIDS
    FAIR, RB
    SENSORS AND ACTUATORS, 1981, 1 (03): : 305 - 328
  • [4] MOLECULAR-TRANSPORT IN RESTRICTED GEOMETRIES
    KLAFTER, J
    DRAKE, JM
    LEVITZ, P
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1989, 198 : 290 - POLY
  • [5] MOLECULAR-TRANSPORT IN THE NANOMETER REGIME
    BEENAKKER, JJM
    BORMAN, VD
    KRYLOV, SY
    PHYSICAL REVIEW LETTERS, 1994, 72 (04) : 514 - 517
  • [6] MECHANISMS OF CORNEAL DRUG PENETRATION .3. MODELING OF MOLECULAR-TRANSPORT
    GRASS, GM
    COOPER, ER
    ROBINSON, JR
    JOURNAL OF PHARMACEUTICAL SCIENCES, 1988, 77 (01) : 24 - 26
  • [7] MOLECULAR-TRANSPORT IN SEMIDILUTE MACROMOLECULAR SOLUTIONS
    NYSTROM, B
    ROOTS, J
    JOURNAL OF MACROMOLECULAR SCIENCE-REVIEWS IN MACROMOLECULAR CHEMISTRY AND PHYSICS, 1980, C19 (01): : 35 - 82
  • [8] DIRECT IMAGING OF MOLECULAR-TRANSPORT THROUGH SKIN
    SCOTT, ER
    PHIPPS, JB
    WHITE, HS
    JOURNAL OF INVESTIGATIVE DERMATOLOGY, 1995, 104 (01) : 142 - 145
  • [9] POSSIBILITIES OF INVESTIGATING MOLECULAR-TRANSPORT PROCESSES ON ZEOLITES
    BULOW, M
    KARGER, J
    KOCIRIK, M
    VOLOSCUK, AM
    HERRN
    DUBININ, MM
    ZEITSCHRIFT FUR CHEMIE, 1981, 21 (05): : 175 - 181
  • [10] MOLECULAR-TRANSPORT IN THE CONTINUOUSLY ROTATED CELLULAR REACTOR
    PELLECHIA, PJ
    GRUTZNER, JB
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1989, 198 : 61 - ORGN