The residence time of water vapour in the atmosphere

水循环 环境科学 降水 大气科学 蒸发 水蒸气 湿度 气候变化 水分 停留时间(流体动力学) 气候学 气候模式 气象学 地理 生态学 地质学 生物 岩土工程
作者
Luís Gimeno,Jorge Eiras‐Barca,Ana María Durán‐Quesada,Francina Domínguez,Ruud van der Ent,Harald Sodemann,Ricardo Sánchez‐Murillo,Raquel Nieto,James W. Kirchner
出处
期刊:Nature Reviews Earth & Environment [Nature Portfolio]
卷期号:2 (8): 558-569 被引量:132
标识
DOI:10.1038/s43017-021-00181-9
摘要

Atmospheric water vapour residence time (WVRT) is an essential indicator of how atmospheric dynamics and thermodynamics mediate hydrological cycle responses to climate change. WVRT is also important in estimating moisture sources and sinks, linking evaporation and precipitation across spatial scales. In this Review, we outline how WVRT is shaped by the interaction between evaporation and precipitation, and, thus, reflects anthropogenic changes in the hydrological cycle. Estimates of WVRT differ owing to contrasting definitions, but these differences can be reconciled by framing WVRT as a probability density function with a mean of 8–10 days and a median of 4–5 days. WVRT varies spatially and temporally in response to regional, seasonal and synoptic-scale differences in evaporation, precipitation, long-range moisture transport and atmospheric mixing. Theory predicts, and observations confirm, that in most (but not all) regions, anthropogenic warming is increasing atmospheric humidity faster than it is speeding up rates of evaporation and precipitation. Warming is, thus, projected to increase global WVRT by 3–6% K−1, lengthening the distance travelled between evaporation sources and precipitation sinks. Future efforts should focus on data integration, joint measurement initiatives and intercomparisons, and dynamic simulations to provide a formal resolution of WVRT from both Lagrangian and Eulerian perspectives. The residence time of atmospheric water vapour has important implications for understanding hydrological processes. This Review discusses the general characteristics and changes in water vapour residence time, indicating 3–6% K−1 projected increases with warming.
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