Implications of droplet nucleation to mineral dust aerosol deposition and transport

被引:7
|
作者
Fan, SM [1 ]
Moxim, WJ [1 ]
Levy, H [1 ]
机构
[1] NOAA, Geophys Fluid Dynam Lab, Princeton, NJ 08544 USA
关键词
D O I
10.1029/2005GL022833
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Calculations from a microphysics model are shown which indicate the factors that control droplet nucleation scavenging of hydrophilic mineral dust particles over a large range of conditions including the size, chemical composition, and number density of particles in both cumulus and stratus clouds. We focus specifically on the activation threshold radius (ATR) for droplet nucleation which determines the particles that are activated and those available for further transport and subsequent iron deposition to the remote ocean. Results suggest: the ATR is typically found in the range of clay-sized particles ( radius =.1 to 1. μ m), a spectrum over which the amount of dust removed declines ∼ 60% both in surface area and particle number; nucleation of silt-sized particles ( 1.-10. μ m) occurs under most conditions; larger fractions of mineral aerosols are removed in cumulus clouds than in stratus; and while acid coating of dust particles in polluted environments acts to decrease the ATR, the effect is reduced by competition with soluble aerosols. Regional mineral dust environments exhibit potentially diverse aerosol wet removal impacts. The ATR representative of the tropical Atlantic ocean basin (<. 2 μ m) indicates ∼ 80% removal of the total dust surface area, while in the pristine southern hemisphere mid latitudes an ATR ∼. 5 μ m implies ∼ 60%. In contrast, varying conditions in the polluted region of East Asia suggest a large ATR spectrum (. 2 to 3. μ m) with dust surface area removal ranging from > 80% to < 10%.
引用
收藏
页码:1 / 4
页数:4
相关论文
共 50 条
  • [31] The Infrared Scatter Characteristics of Dust Aerosol and Cloud Droplet Particle
    Hao Zengzhou
    Gong Fang
    Wang Difeng
    Chen Jianyu
    REMOTE SENSING OF CLOUDS AND THE ATMOSPHERE XV, 2010, 7827
  • [32] Mineral dust concentrations, deposition fluxes and deposition velocities in dust episodes over Israel
    Ganor, E
    Foner, HA
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2001, 106 (D16) : 18431 - 18437
  • [33] Development of a global model of mineral dust aerosol microphysics
    Lee, Y. H.
    Chen, K.
    Adams, P. J.
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2009, 9 (07) : 2441 - 2458
  • [34] Optical Properties of Mineral Dust Aerosol in the Thermal Infrared
    Koehler, Claas H.
    RADIATION PROCESSES IN THE ATMOSPHERE AND OCEAN, 2017, 1810
  • [35] Modeling the mineral dust aerosol cycle in the climate system
    Tegen, I
    QUATERNARY SCIENCE REVIEWS, 2003, 22 (18-19) : 1821 - 1834
  • [36] MINERAL DUST AEROSOLS OVER THE SAHARA: METEOROLOGICAL CONTROLS ON EMISSION AND TRANSPORT AND IMPLICATIONS FOR MODELING
    Knippertz, Peter
    Todd, Martin C.
    REVIEWS OF GEOPHYSICS, 2012, 50
  • [37] Sea-salt aerosol distribution during the Last Glacial Maximum and its implications for mineral dust
    Reader, MC
    McFarlane, N
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2003, 108 (D8)
  • [38] Cloud droplet nucleation with a coupled aerosol model-activation scheme
    Bedos, C
    Suhre, K
    Rosset, R
    AIR POLLUTION IV: MONITORING, SIMULATION AND CONTROL, 1996, : 325 - 333
  • [39] A PARAMETERIZATION OF CLOUD DROPLET NUCLEATION .2. MULTIPLE AEROSOL TYPES
    GHAN, SJ
    CHUANG, CC
    EASTER, RC
    PENNER, JE
    ATMOSPHERIC RESEARCH, 1995, 36 (1-2) : 39 - 54
  • [40] Analytical estimation of cloud droplet nucleation based on an underlying aerosol population
    Shipway, B. J.
    Abel, S. J.
    ATMOSPHERIC RESEARCH, 2010, 96 (2-3) : 344 - 355