The Effect of Coupling Between CLUBB Turbulence Scheme and Surface Momentum Flux on Global Wind Simulations

IF 4.4 2区 地球科学 Q1 METEOROLOGY & ATMOSPHERIC SCIENCES Journal of Advances in Modeling Earth Systems Pub Date : 2024-05-22 DOI:10.1029/2024MS004295
Emanuele Silvio Gentile, Ming Zhao, Vincent E. Larson, Colin Zarzycki, Zhihong Tan
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Abstract

The higher-order turbulence scheme, Cloud Layers Unified by Binormals (CLUBB), is known for effectively simulating the transition from cumulus to stratocumulus clouds within leading atmospheric climate models. This study investigates an underexplored aspect of CLUBB: its capacity to simulate near-surface winds and the Planetary Boundary Layer (PBL), with a particular focus on its coupling with surface momentum flux. Using the GFDL atmospheric climate model (AM4), we examine two distinct coupling strategies, distinguished by their handling of surface momentum flux during the CLUBB's stability-driven substepping performed at each atmospheric time step. The static coupling maintains a constant surface momentum flux, while the dynamic coupling adjusts the surface momentum flux at each CLUBB substep based on the CLUBB-computed zonal and meridional wind speed tendencies. Our 30-year present-day climate simulations (1980–2010) show that static coupling overestimates 10-m wind speeds compared to both control AM4 simulations and reanalysis, particularly over the Southern Ocean (SO) and other midlatitude ocean regions. Conversely, dynamic coupling corrects the static coupling 10-m winds biases in the midlatitude regions, resulting in CLUBB simulations achieving there an excellent agreement with AM4 simulations. Furthermore, analysis of PBL vertical profiles over the SO reveals that dynamic coupling reduces downward momentum transport, consistent with the found wind-speed reductions. Instead, near the tropics, dynamic coupling results in minimal changes in near-surface wind speeds and associated turbulent momentum transport structure. Notably, the wind turning angle serves as a valuable qualitative metric for assessing the impact of changes in surface momentum flux representation on global circulation patterns.

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CLUBB 湍流方案与表面动量通量耦合对全球风模拟的影响
高阶湍流方案 "云层二元统一(CLUBB)"因在主要大气候模型中有效模拟从积云到层积云的过渡而闻名。本研究调查了 CLUBB 的一个未充分探索的方面:其模拟近地表风和行星边界层(PBL)的能力,特别关注其与地表动量通量的耦合。通过使用 GFDL 大气气候模式(AM4),我们研究了两种不同的耦合策略,它们的区别在于 CLUBB 在每个大气时间步进行稳定驱动的分步过程中对地表动量通量的处理。静态耦合保持恒定的地表动量通量,而动态耦合则根据 CLUBB 计算出的带状和经向风速趋势,在每个 CLUBB 子步调整地表动量通量。我们的 30 年现今气候模拟(1980-2010 年)显示,与 AM4 模拟对照和再分析相比,静态耦合高估了 10 米风速,尤其是在南大洋和其他中纬度海洋区域。相反,动态耦合修正了中纬度地区静态耦合 10 米风速的偏差,使 CLUBB 模拟与 AM4 模拟达到了极好的一致。此外,对 SO 上 PBL 垂直剖面的分析表明,动态耦合减少了向下的动量传输,这与所发现的风速减小是一致的。相反,在热带附近,动态耦合导致近地面风速和相关湍流动量传输结构的变化很小。值得注意的是,风转角是评估地表动量通量表征变化对全球环流模式影响的一个有价值的定性指标。
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来源期刊
Journal of Advances in Modeling Earth Systems
Journal of Advances in Modeling Earth Systems METEOROLOGY & ATMOSPHERIC SCIENCES-
CiteScore
11.40
自引率
11.80%
发文量
241
审稿时长
>12 weeks
期刊介绍: The Journal of Advances in Modeling Earth Systems (JAMES) is committed to advancing the science of Earth systems modeling by offering high-quality scientific research through online availability and open access licensing. JAMES invites authors and readers from the international Earth systems modeling community. Open access. Articles are available free of charge for everyone with Internet access to view and download. Formal peer review. Supplemental material, such as code samples, images, and visualizations, is published at no additional charge. No additional charge for color figures. Modest page charges to cover production costs. Articles published in high-quality full text PDF, HTML, and XML. Internal and external reference linking, DOI registration, and forward linking via CrossRef.
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