Inertial Effects on the Vertical Transport of Suspended Particles in a Turbulent Boundary Layer

被引:24
|
作者
Richter, David [1 ]
Chamecki, Marcelo [2 ]
机构
[1] Univ Notre Dame, Notre Dame, IN 46556 USA
[2] Univ Calif Los Angeles, Los Angeles, CA USA
基金
美国国家科学基金会;
关键词
Atmospheric boundary layer; Dispersion; Dust; Inertial particles; Sea spray; HOMOGENEOUS ISOTROPIC TURBULENCE; ATMOSPHERIC SURFACE-LAYER; HEAVY-PARTICLES; DRY DEPOSITION; PREFERENTIAL CONCENTRATION; AEROSOL-PARTICLES; SETTLING VELOCITY; CHANNEL FLOW; SIZE; DISPERSION;
D O I
10.1007/s10546-017-0325-3
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
In many atmospheric flows, a dispersed phase is actively suspended by turbulence, whose competition with gravitational settling ultimately dictates its vertical distribution. Examples of dispersed phases include snow, sea-spray droplets, dust, or sand, where individual elements of much larger density than the surrounding air are carried by turbulent motions after emission from the surface. In cases where the particle is assumed to deviate from local fluid motions only by its gravitational settling (i.e., they are inertialess), traditional flux balances predict a power-law dependence of particle concentration with height. It is unclear, however, how particle inertia influences this relationship, and this question is the focus of this work. Direct numerical simulations are conducted of turbulent open-channel flow, laden with Lagrangian particles of specified inertia; in this way the study focuses on the turbulent transport which occurs in the lowest few meters of the planetary boundary layer, in regions critical for connecting emission fluxes to the fluxes felt by the full-scale boundary layer. Simulations over a wide range of particle Stokes number, while holding the dimensionless settling velocity constant, are performed to understand the role of particle inertia on vertical dispersion. It is found that particles deviate from their inertialess behaviour in ways that are not easily captured by traditional theory; concentrations are reduced with increasing Stokes number. Furthermore, a similarity-based eddy diffusivity for particle concentration fails as particles experience inertial acceleration, precluding a closed-form solution for particle concentration as in the case of inertialess particles. The primary consequence of this result is that typical flux parametrizations connecting surface emission models (e.g., saltation models or sea-spray generation functions) to elevated boundary conditions may overestimate particle concentrations due to the reduced vertical transport caused by inertia in between; likewise particle emission may be underestimated if inferred from concentration measurements aloft.
引用
收藏
页码:235 / 256
页数:22
相关论文
共 50 条
  • [21] Effects of the quiescent core in turbulent channel flow on transport and clustering of inertial particles
    Jie, Yucheng
    Andersson, Helge, I
    Zhao, Lihao
    [J]. INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2021, 140
  • [22] The effects of boundary layer vertical turbulent diffusivity on the tropical cyclone intensity
    Ye, Lei
    Li, Yubin
    Zhu, Ping
    Gao, Zhiqiu
    [J]. ATMOSPHERIC RESEARCH, 2023, 295
  • [23] Dispersion of suspended particles in a wave boundary layer
    Ng, Chiu-On
    Wu, Chin H.
    [J]. PROCEEDINGS OF THE SEVENTEENTH (2007) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL 1- 4, PROCEEDINGS, 2007, : 2424 - 2431
  • [24] Mathematical Modeling of Turbulent Transport of Particles in the Boundary Layer of a Tubular Membrane Element
    Fedosov, S., V
    Markelov, A., V
    Sokolov, A., V
    Osadchy, Yu P.
    [J]. MEMBRANES AND MEMBRANE TECHNOLOGIES, 2021, 3 (06) : 389 - 399
  • [25] Mathematical Modeling of Turbulent Transport of Particles in the Boundary Layer of a Tubular Membrane Element
    S. V. Fedosov
    A. V. Markelov
    A. V. Sokolov
    Yu. P. Osadchy
    [J]. Membranes and Membrane Technologies, 2021, 3 : 389 - 399
  • [26] OSCILLATING TURBULENT BOUNDARY-LAYER WITH SUSPENDED SEDIMENTS
    HAGATUN, K
    EIDSVIK, KJ
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1986, 91 (C11): : 3045 - 3055
  • [27] Transport of inertial particles in a turbulent premixed jet flame
    Battista, F.
    Picano, F.
    Troiani, G.
    Casciola, C. M.
    [J]. 13TH EUROPEAN TURBULENCE CONFERENCE (ETC13): REACTING, COMPRESSIBLE, MULTI-PHASE AND CRYOGENIC FLOWS, 2011, 318
  • [28] Accelerated particles from turbulent boundary layer
    Savin, S
    Blecki, J
    Pissarenko, N
    Lutsenko, V
    Kirpichev, I
    Budnik, E
    Borodkova, N
    Nozdrachev, M
    Zelenyi, L
    Romanov, V
    Sandahl, I
    Sauvaud, JA
    Buechner, J
    Nikutowski, B
    Gustafsson, G
    Stasiewicz, K
    Korepanov, V
    [J]. ACCELERATION AND HEATING IN THE MAGNETOSPHERE, 2002, 30 (07): : 1723 - 1730
  • [29] Lagrangian measurements of inertial particle accelerations in a turbulent boundary layer
    Gerashchenko, S.
    Sharp, N. S.
    Neuscamman, S.
    Warhaft, Z.
    [J]. JOURNAL OF FLUID MECHANICS, 2008, 617 : 255 - 281
  • [30] Experimental investigation of inertial fibres and disks in a turbulent boundary layer
    Baker, Lucia J.
    Coletti, Filippo
    [J]. JOURNAL OF FLUID MECHANICS, 2022, 943