Simple model of aerosol particle formation by the evaporation-condensation method

被引:1
|
作者
Nomura, T
Alonso, M
Kousaka, Y
Tenjiku, E
机构
[1] Univ Osaka Prefecture, Dept Chem Engn, Sakai, Osaka 5998531, Japan
[2] CSIC, Natl Ctr Met Res, E-28040 Madrid, Spain
关键词
homogeneous nucleation; aerosol particle formation; particle number concentration; evaporation-condensation method; dioctyl sebacate;
D O I
10.1006/jcis.2000.7127
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
From an engineering point of view the present authors have proposed the simple model of a homogeneous nucleation relationship in the liquid phase that can predict the number concentration of nucleated particles in various operating conditions. Experiments of liquid-phase nucleation in which the precursor monomers were generated by several methods have successfully confirmed the predictions of the model. In the present paper, our previous model of homogeneous nucleation is extended to the case in which the precursor monomers are generated in a gas-phase system. First, a relationship between number concentration and mean volume diameter of nucleated aerosol particles and operating conditions is obtained considering the free molecular regime around the critical nuclei, which is the main difference with the liquid phase. Second, the validity of the relation lies in experimental use of dioctyl sebacate particles generated by evaporation-condensation. As a result, the predictions are in excellent agreement with the experimental results after considering substantial losses of monomers and particles to the walls of the experimental system because in the gasphase the diffusion velocity and the critical supersaturation ratio of monomer are higher than those in the liquid phase. (C) 2000 Academic Press.
引用
收藏
页码:107 / 113
页数:7
相关论文
共 50 条
  • [1] Maximum aerosol densities from evaporation-condensation processes
    Clement, C.F.
    Ford, I.J.
    Journal of Aerosol Science, 1989, 20 (03): : 293 - 302
  • [2] Optimum operating parameters of an evaporation-condensation submicron aerosol generator
    Yu, Tao
    Zhang, Zhenzhong
    Jiang, Feng
    Chen, Liang
    Qinghua Daxue Xuebao/Journal of Tsinghua University, 2010, 50 (03): : 426 - 429
  • [3] MODELING THE SYNTHESIS OF ALUMINUM PARTICLES BY EVAPORATION-CONDENSATION IN AN AEROSOL FLOW REACTOR
    PANDA, S
    PRATSINIS, SE
    NANOSTRUCTURED MATERIALS, 1995, 5 (7-8): : 755 - 767
  • [4] Characterisation of aluminium nanopowder produced by evaporation-condensation method
    Hosseini, S. H.
    Sheibani, S.
    Valefi, Z.
    MATERIALS SCIENCE AND TECHNOLOGY, 2010, 26 (10) : 1207 - 1212
  • [5] Phenomenological theory of the Potts model evaporation-condensation transition
    Ibanez-Berganza, M.
    EPL, 2016, 113 (02)
  • [6] Cluster diffusion by evaporation-condensation
    Soler, J. M.
    Physical Review B: Condensed Matter, 53 (16):
  • [7] Chalcogenide nanowires by evaporation-condensation
    Johnson, BR
    Schweiger, MJ
    Sundaram, SK
    JOURNAL OF NON-CRYSTALLINE SOLIDS, 2005, 351 (16-17) : 1410 - 1416
  • [8] An advective-diffusive isotopic evaporation-condensation model
    He, H
    Smith, RB
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1999, 104 (D15) : 18619 - 18630
  • [9] Cluster diffusion by evaporation-condensation
    Soler, JM
    PHYSICAL REVIEW B, 1996, 53 (16): : 10540 - 10543
  • [10] Recycled crystallisation of ZnTe by evaporation-condensation
    Szczerbakow, A
    Domagala, J
    Golacki, Z
    Ivanov, VY
    Leszczynski, M
    CRYSTAL RESEARCH AND TECHNOLOGY, 1998, 33 (06) : 875 - 879