Impacts of long-range-transported mineral dust on summertime convective cloud and precipitation: a case study over the Taiwan region
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Published:2021-12-01
Issue:23
Volume:21
Page:17433-17451
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Zhang YandaORCID, Yu FangqunORCID, Luo GanORCID, Fan JiwenORCID, Liu Shuai
Abstract
Abstract. As one of the most abundant atmospheric aerosols and effective ice nuclei, mineral dust affects clouds and precipitation in the Earth
system. Here numerical experiments are carried out to investigate the impacts of dust aerosols on summertime convective clouds and precipitation
over the mountainous region of Taiwan by acting as ice-nucleating particles. We run the Weather Research and Forecasting model (WRF) with the
Morrison two-moment and spectral-bin microphysics (SBM) schemes at 3 km resolution, using dust number concentrations from a global chemical
transport model (GEOS-Chem-APM). The case study indicates that the long-range-transported mineral dust, with relatively low number concentrations,
can notably affect the properties of convective clouds (ice and liquid water contents, cloud top height, and cloud coverage) and precipitation (spatial
pattern and intensity). The effects of dust are evident during strong convective periods, with significantly increased ice water contents in the
mixed-phase regime via the enhanced heterogeneous freezing. With both the Morrison and SBM schemes, we see the invigoration effects of dust
aerosols on the convective intensity through enhanced condensation and deposition latent heating. The low-altitude dust particles are uplifted to
the freezing level by updrafts, which, in turn, enhance the convective cloud development through immersion freezing and convective invigoration.
Compared to the Morrison scheme, the SBM scheme predicts more realistic precipitation and different invigoration effects of dust. The differences
are partially attributed to the saturation adjustment approach utilized in the bulk scheme, which leads to a stronger enhancement of condensation at
midlatitudes to low altitudes and a weaker deposition increase at the upper level.
Funder
Office of International Science and Engineering National Aeronautics and Space Administration
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference110 articles.
1. Andreae, M. O., Charlson, R. J., Bruynseels, F., Storms, H., Van Grieken, R., and Maenhaut, W.:
Internal mixture of sea salt, silicates, and excess sulfate in marine aerosols,
Science,
232, 1620–1623, https://doi.org/10.1126/science.232.4758.1620, 1986. 2. Atkinson, J. D., Murray, B. J., Woodhouse, M. T., Whale, T. F., Baustian, K. J., Carslaw, K. S., Dobbie, S., O'Sullivan, D., and Malkin, T. L.: The importance of feldspar for ice nucleation by mineral dust in mixed-phase clouds, Nature, 498, 355–358, https://doi.org/10.1038/nature12278, 2013. 3. Ault, A. P., Williams, C. R., White, A. B., Neiman, P. J., Creamean, J. M., Gaston, C. J., Ralph, F. M., and Prather, K. A.: Detection of Asian dust in California orographic precipitation, J. Geophys. Res., 116, D16205, https://doi.org/10.1029/2010JD015351, 2011. 4. Bangert, M., Nenes, A., Vogel, B., Vogel, H., Barahona, D., Karydis, V. A., Kumar, P., Kottmeier, C., and Blahak, U.: Saharan dust event impacts on cloud formation and radiation over Western Europe, Atmos. Chem. Phys., 12, 4045–4063, https://doi.org/10.5194/acp-12-4045-2012, 2012. 5. Bigg, E. K.:
The supercooling of water,
Proceedings of the Physical Society. Section B,
66, 688, https://doi.org/10.1088/0370-1301/66/8/309, 1953.
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