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DOI10.5194/acp-20-1089-2020
No anomalous supersaturation in ultracold cirrus laboratory experiments
Clouser, Benjamin W.1,2; Lamb, Kara D.1,3; Sarkozy, Laszlo C.2; Habig, Jan4; Ebert, Volker5; Saathoff, Harald4; Moehler, Ottmar4; Moyer, Elisabeth J.2
2020-01-28
发表期刊ATMOSPHERIC CHEMISTRY AND PHYSICS
ISSN1680-7316
EISSN1680-7324
出版年2020
卷号20期号:2页码:1089-1103
文章类型Article
语种英语
国家USA; Germany
英文摘要

High-altitude cirrus clouds are climatically important: their formation freeze-dries air ascending to the stratosphere to its final value, and their radiative impact is disproportionately large. However, their formation and growth are not fully understood, and multiple in situ aircraft campaigns have observed frequent and persistent apparent water vapor supersaturations of 5 %-25 % in ultracold cirrus (T < 205 K), even in the presence of ice particles. A variety of explanations for these observations have been put forth, including that ultracold cirrus are dominated by metastable ice whose vapor pressure exceeds that of hexagonal ice. The 2013 IsoCloud campaign at the Aerosol Interaction and Dynamics in the Atmosphere (AIDA) cloud and aerosol chamber allowed explicit testing of cirrus formation dynamics at these low temperatures. A series of 28 experiments allows robust estimation of the saturation vapor pressure over ice for temperatures between 189 and 235 K, with a variety of ice nucleating particles. Experiments are rapid enough (similar to 10 min) to allow detection of any metastable ice that may form, as the timescale for annealing to hexagonal ice is hours or longer over the whole experimental temperature range. We show that in all experiments, saturation vapor pressures are fully consistent with expected values for hexagonal ice and inconsistent with the highest values postulated for metastable ice, with no temperature-dependent deviations from expected saturation vapor pressure. If metastable ice forms in ultracold cirrus clouds, it appears to have a vapor pressure indistinguishable from that of hexagonal ice to within about 4.5 %.


领域地球科学
收录类别SCI-E
WOS记录号WOS:000509737200001
WOS关键词WATER-VAPOR ; CUBIC ICE ; STACKING DISORDER ; THERMAL-EXPANSION ; PARTICLES ; DEHYDRATION ; NUCLEATION ; CLOUD ; CRYSTALLIZATION ; COEFFICIENT
WOS类目Environmental Sciences ; Meteorology & Atmospheric Sciences
WOS研究方向Environmental Sciences & Ecology ; Meteorology & Atmospheric Sciences
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/278568
专题地球科学
作者单位1.Univ Chicago, Dept Phys, Chicago, IL 60637 USA;
2.Univ Chicago, Dept Geophys Sci, 5734 S Ellis Ave, Chicago, IL 60637 USA;
3.Cooperat Inst Res Environm Sci, Boulder, CO USA;
4.Karlsruhe Inst Technol, Inst Meteorol & Climate Res, D-76021 Karlsruhe, Germany;
5.Phys Tech Bundesanstalt, D-38116 Braunschweig, Germany
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GB/T 7714
Clouser, Benjamin W.,Lamb, Kara D.,Sarkozy, Laszlo C.,et al. No anomalous supersaturation in ultracold cirrus laboratory experiments[J]. ATMOSPHERIC CHEMISTRY AND PHYSICS,2020,20(2):1089-1103.
APA Clouser, Benjamin W..,Lamb, Kara D..,Sarkozy, Laszlo C..,Habig, Jan.,Ebert, Volker.,...&Moyer, Elisabeth J..(2020).No anomalous supersaturation in ultracold cirrus laboratory experiments.ATMOSPHERIC CHEMISTRY AND PHYSICS,20(2),1089-1103.
MLA Clouser, Benjamin W.,et al."No anomalous supersaturation in ultracold cirrus laboratory experiments".ATMOSPHERIC CHEMISTRY AND PHYSICS 20.2(2020):1089-1103.
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