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DOI10.5194/acp-17-9599-2017
A ubiquitous ice size bias in simulations of tropical deep convection
Stanford, McKenna W.1; Varble, Adam1; Zipser, Ed1; Strapp, J. Walter2; Leroy, Delphine3; Schwarzenboeck, Alfons3; Potts, Rodney4; Protat, Alain4
2017-08-09
发表期刊ATMOSPHERIC CHEMISTRY AND PHYSICS
ISSN1680-7316
EISSN1680-7324
出版年2017
卷号17期号:15
文章类型Article
语种英语
国家USA; Canada; France; Australia
英文摘要

The High Altitude Ice Crystals - High Ice Water Content (HAIC-HIWC) joint field campaign produced aircraft retrievals of total condensed water content (TWC), hydrometeor particle size distributions (PSDs), and vertical velocity (w) in high ice water content regions of mature and decaying tropical mesoscale convective systems (MCSs). The resulting dataset is used here to explore causes of the commonly documented high bias in radar reflectivity within cloud-resolving simulations of deep convection. This bias has been linked to overly strong simulated convective updrafts lofting excessive condensate mass but is also modulated by parameterizations of hydrometeor size distributions, single particle properties, species separation, and microphysical processes. Observations are compared with three Weather Research and Forecasting model simulations of an observed MCS using different microphysics parameterizations while controlling for w, TWC, and temperature. Two popular bulk microphysics schemes (Thompson and Morrison) and one bin microphysics scheme (fast spectral bin microphysics) are compared. For temperatures between -10 and -40 degrees C and TWC > 1 gm(-3), all microphysics schemes produce median mass diameters (MMDs) that are generally larger than observed, and the precipitating ice species that controls this size bias varies by scheme, temperature, and w. Despite a much greater number of samples, all simulations fail to reproduce observed high-TWC conditions (> 2 gm(-3)) between -20 and -40 degrees C in which only a small fraction of condensate mass is found in relatively large particle sizes greater than 1mm in diameter. Although more mass is distributed to large particle sizes relative to those observed across all schemes when controlling for temperature, w, and TWC, differences with observations are significantly variable between the schemes tested. As a result, this bias is hypothesized to partly result from errors in parameterized hydrometeor PSD and single particle properties, but because it is present in all schemes, it may also partly result from errors in parameterized microphysical processes present in all schemes. Because of these ubiquitous ice size biases, the frequently used microphysical parameterizations evaluated in this study inherently produce a high bias in convective reflectivity for a wide range of temperatures, vertical velocities, and TWCs.


领域地球科学
收录类别SCI-E
WOS记录号WOS:000407386800004
WOS关键词CLOUD-RESOLVING MODEL ; BULK MICROPHYSICS SCHEME ; MIDLATITUDE SQUALL LINE ; PART I ; RADAR REFLECTIVITY ; WATER-CONTENT ; PRECIPITATION DEVELOPMENT ; RADIATIVE-TRANSFER ; MESOSCALE MODEL ; CIRRUS ANVIL
WOS类目Environmental Sciences ; Meteorology & Atmospheric Sciences
WOS研究方向Environmental Sciences & Ecology ; Meteorology & Atmospheric Sciences
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文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/30437
专题地球科学
作者单位1.Univ Utah, Dept Atmospher Sci, Salt Lake City, UT 84112 USA;
2.Met Analyt Inc, Aurora, ON, Canada;
3.Univ Clermont Auvergne, CNRS, Lab Meteorol Phys, Clermont Ferrand, France;
4.Australian Bur Meteorol, Res & Dev Branch, Melbourne, Vic, Australia
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Stanford, McKenna W.,Varble, Adam,Zipser, Ed,et al. A ubiquitous ice size bias in simulations of tropical deep convection[J]. ATMOSPHERIC CHEMISTRY AND PHYSICS,2017,17(15).
APA Stanford, McKenna W..,Varble, Adam.,Zipser, Ed.,Strapp, J. Walter.,Leroy, Delphine.,...&Protat, Alain.(2017).A ubiquitous ice size bias in simulations of tropical deep convection.ATMOSPHERIC CHEMISTRY AND PHYSICS,17(15).
MLA Stanford, McKenna W.,et al."A ubiquitous ice size bias in simulations of tropical deep convection".ATMOSPHERIC CHEMISTRY AND PHYSICS 17.15(2017).
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