A review of climatic controls on δ18O in precipitation over the Tibetan Plateau: Observations and simulations

西风带 降水 季风 气候学 高原(数学) 东亚季风 大气科学 南亚季风 古气候学 大气环流 气候模式 环境科学 地质学 气候变化 气象学 地理 海洋学 数学分析 数学
作者
Tandong Yao,Valérie Masson‐Delmotte,Jing Gao,Wusheng Yu,Xiaoxin Yang,Camille Risi,Christophe Sturm,Martin Werner,Huabiao Zhao,You He,Wei Ren,Lide Tian,Chunming Shi,Shugui Hou
出处
期刊:Reviews of Geophysics [Wiley]
卷期号:51 (4): 525-548 被引量:764
标识
DOI:10.1002/rog.20023
摘要

Abstract The stable oxygen isotope ratio (δ 18 O) in precipitation is an integrated tracer of atmospheric processes worldwide. Since the 1990s, an intensive effort has been dedicated to studying precipitation isotopic composition at more than 20 stations in the Tibetan Plateau (TP) located at the convergence of air masses between the westerlies and Indian monsoon. In this paper, we establish a database of precipitation δ 18 O and use different models to evaluate the climatic controls of precipitation δ 18 O over the TP. The spatial and temporal patterns of precipitation δ 18 O and their relationships with temperature and precipitation reveal three distinct domains, respectively associated with the influence of the westerlies (northern TP), Indian monsoon (southern TP), and transition in between. Precipitation δ 18 O in the monsoon domain experiences an abrupt decrease in May and most depletion in August, attributable to the shifting moisture origin between Bay of Bengal (BOB) and southern Indian Ocean. High‐resolution atmospheric models capture the spatial and temporal patterns of precipitation δ 18 O and their relationships with moisture transport from the westerlies and Indian monsoon. Only in the westerlies domain are atmospheric models able to represent the relationships between climate and precipitation δ 18 O. More significant temperature effect exists when either the westerlies or Indian monsoon is the sole dominant atmospheric process. The observed and simulated altitude‐δ 18 O relationships strongly depend on the season and the domain (Indian monsoon or westerlies). Our results have crucial implications for the interpretation of paleoclimate records and for the application of atmospheric simulations to quantifying paleoclimate and paleo‐elevation changes.

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