影响云和气候的冰核粒子:观测和模拟研究需求

IF 25.2 1区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
Susannah M. Burrows, Christina S. McCluskey, Gavin Cornwell, Isabelle Steinke, Kai Zhang, Bin Zhao, Maria Zawadowicz, Aishwarya Raman, Gourihar Kulkarni, Swarup China, Alla Zelenyuk, Paul J. DeMott
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引用次数: 19

摘要

大气冰核粒子(INPs)在云冻结过程中起着关键作用,对降水形成和云辐射特性以及天气和气候具有重要意义。此外,INP排放对地球系统和气候的变化作出反应,例如荒漠化、农业实践和火灾,因此可能引入尚不清楚的气候反馈。随着对INPs的性质和起源的了解不断深入,区域和全球天气、气候和地球系统模式越来越多地开始将云冰过程与模式模拟的气溶胶丰度和类型联系起来。虽然这些最近的进展令人兴奋,但将云过程与模拟气溶胶相耦合也使云物理模拟越来越容易受到INPs模拟中的不确定性的影响,而INPs的模拟仍然很少受到观测的约束。以合理的时空分辨率推进INP丰度的可预测性将需要更多地关注连接测量和建模社区的研究。这篇综述总结了目前的知识状况,并从观察和建模的角度确定了关键的知识差距。我们特别强调在两个关键领域的需要:(a)气溶胶和INP量之间的观测关闭和(b)在现有天气和气候模式内熟练地模拟INP。我们讨论了各种INP粒子类型的知识状况,并简要讨论了用当前模式理解INP云影响所面临的挑战。最后,我们确定了观测和模式的优先研究方向,以提高对INPs及其与地球系统相互作用的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Ice-Nucleating Particles That Impact Clouds and Climate: Observational and Modeling Research Needs

Ice-Nucleating Particles That Impact Clouds and Climate: Observational and Modeling Research Needs

Atmospheric ice-nucleating particles (INPs) play a critical role in cloud freezing processes, with important implications for precipitation formation and cloud radiative properties, and thus for weather and climate. Additionally, INP emissions respond to changes in the Earth System and climate, for example, desertification, agricultural practices, and fires, and therefore may introduce climate feedbacks that are still poorly understood. As knowledge of the nature and origins of INPs has advanced, regional and global weather, climate, and Earth system models have increasingly begun to link cloud ice processes to model-simulated aerosol abundance and types. While these recent advances are exciting, coupling cloud processes to simulated aerosol also makes cloud physics simulations increasingly susceptible to uncertainties in simulation of INPs, which are still poorly constrained by observations. Advancing the predictability of INP abundance with reasonable spatiotemporal resolution will require an increased focus on research that bridges the measurement and modeling communities. This review summarizes the current state of knowledge and identifies critical knowledge gaps from both observational and modeling perspectives. In particular, we emphasize needs in two key areas: (a) observational closure between aerosol and INP quantities and (b) skillful simulation of INPs within existing weather and climate models. We discuss the state of knowledge on various INP particle types and briefly discuss the challenges faced in understanding the cloud impacts of INPs with present-day models. Finally, we identify priority research directions for both observations and models to improve understanding of INPs and their interactions with the Earth System.

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来源期刊
Reviews of Geophysics
Reviews of Geophysics 地学-地球化学与地球物理
CiteScore
50.30
自引率
0.80%
发文量
28
审稿时长
12 months
期刊介绍: Geophysics Reviews (ROG) offers comprehensive overviews and syntheses of current research across various domains of the Earth and space sciences. Our goal is to present accessible and engaging reviews that cater to the diverse AGU community. While authorship is typically by invitation, we warmly encourage readers and potential authors to share their suggestions with our editors.
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