日本地球惑星科学連合2023年大会

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[E] 口頭発表

セッション記号 A (大気水圏科学) » A-CG 大気海洋・環境科学複合領域・一般

[A-CG32] Climate Variability and Predictability on Subseasonal to Centennial Timescales

2023年5月22日(月) 10:45 〜 12:00 104 (幕張メッセ国際会議場)

コンビーナ:森岡 優志(海洋研究開発機構)、Hiroyuki Murakami(Geophysical Fluid Dynamics Laboratory/University Corporation for Atmospheric Research)、Takahito KataokaLiping Zhang、Chairperson:Liping ZhangTakahito Kataoka森岡 優志(海洋研究開発機構)

11:45 〜 12:00

[ACG32-10] Enhanced Skill and Signal-to-Noise in an Eddy-Resolving Decadal Prediction System

★Invited Papers

*Stephen G Yeager1、Ping Chang2、Gokhan Danabasoglu1、Lixin Wu3、Nan Rosenbloom1、Qiuying Zhang2、Frederic Castruccio1、Abishek Gopal2、Cameron Rencurrel2 (1.National Center for Atmospheric Research、2.Texas A&M University、3.Ocean University of China)

キーワード:decadal prediction, high-resolution climate modelling, mesoscale air-sea interaction

The sensitivity of decadal prediction system performance to model resolution is examined by comparing results from low- and high-resolution (LR and HR) predictions conducted with the Community Earth System Model (CESM). The primary difference between the two systems is the horizontal grid spacing of the ocean and atmosphere models (1° for both in LR; 0.1° and 0.25°, respectively, in HR), permitting a direct comparison of how skill and signal-to-noise characteristics change when moving to the ocean eddy-resolved modeling regime. HR exhibits significantly increased overall skill at hindcasting pentadal anomalies in the ocean and atmosphere compared to LR, although results vary from region to region. Examination of signal-to-noise characteristics for atmospheric fields reveals substantial improvement in HR. This result lends support to the hypothesis that mesoscale atmosphere-ocean interaction, which is present in HR but absent in LR, is an important mechanism involved in the transmission of predictable signals from the ocean to the atmosphere.