Marine Boundary Layer Cloud Condensation Nuclei Bias Over the Southern Ocean: Comparisons Between the Community Atmosphere Model 6 and Field Observations

IF 3.8 2区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES
Qing Niu, Christina McCluskey, Greg M. McFarquhar
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Abstract

Marine boundary layer (MBL) clouds play a crucial role in regulating radiative balance in the atmosphere. Previous studies identified that MBL cloud droplet number concentration (Nd) is underestimated by a factor of 2 over the summertime Southern Ocean (SO) close to the Antarctic coast in many models. Here, comparisons between cloud condensation nuclei (CCN) observations from field campaigns during the 2017–2018 Austral summer over the Australasian sector of the SO and simulated CCN from the Community Atmospheric Model 6 (CAM6) are presented. Modeled MBL CCN number concentration (NCCN) is underestimated, by close to 100% at latitudes south of 55°S with the NCCN bias (a) largest close to the Antarctic Plateau during summer, implying the biased CCN type has seasonal and latitudinal variation and, (b) three times larger over sea ice than over open water, implying sea spray CCN are better simulated compared to secondary CCN. Assessments of aerosol size distributions indicate an underestimation of accumulation-mode-aerosols (Ac) with diameters 70 nm < D < 100 nm. CCN supersaturation spectra indicate that the observed CCN had lower hygroscopicity compared to simulated CCN, implying differences in CCN chemical composition. With secondary aerosols including sulfate being less hygroscopic than sea salt CCN, the CCN activation ratio derived using bulk hygroscopicity kappa in the Abdul-Razzak function leads to an underestimation of critical supersaturation south of 62°S. The biases reported here highlight important shortfalls in simulated CCN that can be important to the well-documented underestimated Nd by Earth System Models, a key feature and uncertainty of pre-industrial conditions.

南大洋海洋边界层云凝结核偏置:群落大气模式6与野外观测的比较
海洋边界层云在调节大气辐射平衡中起着至关重要的作用。先前的研究发现,在许多模式中,靠近南极海岸的夏季南大洋(SO)的MBL云滴数浓度(Nd)被低估了2倍。本文比较了2017-2018年南方夏季澳大利亚地区的云凝结核(CCN)观测结果与社区大气模式6 (CAM6)模拟的CCN。模拟的MBL CCN数浓度(NCCN)被低估了,在55°S以南的纬度接近100%,NCCN偏差(a)夏季最大,靠近南极高原,表明有偏差的CCN类型具有季节和纬度变化;(b)海冰上的CCN是开放水域上的3倍,表明与次级CCN相比,海浪CCN的模拟效果更好。对气溶胶大小分布的评估表明,低估了直径为70 nm <的累积模式气溶胶(Ac);D & lt;100海里。CCN过饱和光谱表明,与模拟CCN相比,观察到的CCN具有较低的吸湿性,这表明CCN的化学成分存在差异。由于包括硫酸盐在内的二次气溶胶的吸湿性低于海盐CCN,使用Abdul-Razzak函数中的体积吸湿性kappa得出的CCN激活比导致62°S以南临界过饱和度的低估。这里报告的偏差突出了模拟CCN的重要缺陷,这对于地球系统模型充分记录的低估的Nd很重要,Nd是工业化前条件的一个关键特征和不确定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Geophysical Research: Atmospheres
Journal of Geophysical Research: Atmospheres Earth and Planetary Sciences-Geophysics
CiteScore
7.30
自引率
11.40%
发文量
684
期刊介绍: JGR: Atmospheres publishes articles that advance and improve understanding of atmospheric properties and processes, including the interaction of the atmosphere with other components of the Earth system.
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