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DOI10.1175/JAS-D-18-0067.1
Thermodynamic and Dynamic Mechanisms for Hydrological Cycle Intensification over the Full Probability Distribution of Precipitation Events
Chen, Gang1; Norris, Jesse1; Neelin, J. David1; Lu, Jian2; Leung, L. Ruby2; Sakaguchi, Koichi2
发表日期2019
ISSN0022-4928
EISSN1520-0469
卷号76期号:2页码:497-516
英文摘要

Precipitation changes in a warming climate have been examined with a focus on either mean precipitation or precipitation extremes, but changes in the full probability distribution of precipitation have not been well studied. This paper develops a methodology for the quantile-conditional column moisture budget of the atmosphere for the full probability distribution of precipitation. Analysis is performed on idealized aquaplanet model simulations under 3-K uniform SST warming across different horizontal resolutions. Because the covariance of specific humidity and horizontal mass convergence is much reduced when conditioned onto a given precipitation percentile range, their conditional averages yield a clear separation between the moisture (thermodynamic) and circulation (dynamic) effects of vertical moisture transport on precipitation. The thermodynamic response to idealized climate warming can be understood as a generalized "wet get wetter" mechanism, in which the heaviest precipitation of the probability distribution is enhanced most from increased gross moisture stratification, at a rate controlled by the change in lower-tropospheric moisture rather than column moisture. The dynamic effect, in contrast, can be interpreted by shifts in large-scale atmospheric circulations such as the Hadley cell circulation or midlatitude storm tracks. Furthermore, horizontal moisture advection, albeit of secondary role, is important for regional precipitation change. Although similar mechanisms are at play for changes in both mean precipitation and precipitation extremes, the thermodynamic contributions of moisture transport to increases in high percentiles of precipitation tend to be more widespread across a wide range of latitudes than increases in the mean, especially in the subtropics.


WOS研究方向Meteorology & Atmospheric Sciences
来源期刊JOURNAL OF THE ATMOSPHERIC SCIENCES
文献类型期刊论文
条目标识符http://gcip.llas.ac.cn/handle/2XKMVOVA/92553
作者单位1.Univ Calif Los Angeles, Dept Atmospher & Ocean Sci, Los Angeles, CA 90095 USA;
2.Pacific Northwest Natl Lab, Richland, WA 99352 USA
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Chen, Gang,Norris, Jesse,Neelin, J. David,et al. Thermodynamic and Dynamic Mechanisms for Hydrological Cycle Intensification over the Full Probability Distribution of Precipitation Events[J],2019,76(2):497-516.
APA Chen, Gang,Norris, Jesse,Neelin, J. David,Lu, Jian,Leung, L. Ruby,&Sakaguchi, Koichi.(2019).Thermodynamic and Dynamic Mechanisms for Hydrological Cycle Intensification over the Full Probability Distribution of Precipitation Events.JOURNAL OF THE ATMOSPHERIC SCIENCES,76(2),497-516.
MLA Chen, Gang,et al."Thermodynamic and Dynamic Mechanisms for Hydrological Cycle Intensification over the Full Probability Distribution of Precipitation Events".JOURNAL OF THE ATMOSPHERIC SCIENCES 76.2(2019):497-516.
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