首页> 外文期刊>Journal of Geophysical Research, C. Oceans: JGR >Modeled sensitivity of the Northwestern Pacific upper-ocean response to tropical cyclones in a fully coupled climate model with varying ocean grid resolution
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Modeled sensitivity of the Northwestern Pacific upper-ocean response to tropical cyclones in a fully coupled climate model with varying ocean grid resolution

机译:在变化的海洋网格分辨率的完全耦合气候模型中,西北太平洋上层海洋对热带气旋的敏感性分析

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摘要

Tropical cyclones (TCs) actively contribute to Earth's climate, but TC-climate interactions are largely unexplored in fully coupled models. Here we analyze the upper-ocean response to TCs using a highresolution Earth system model, in which a 0.5° atmosphere is coupled to an ocean with two different horizontal resolutions: 1° and 0.1°. Both versions of the model produce realistic TC climatologies for the Northwestern Pacific region, as well as the transient surface ocean response. We examined the potential sensitivity of the coupled modeled responses to ocean grid resolution by analyzing TC-induced sea surface cooling, latent heat exchange, and basin-scale ocean heat convergence. We find that sea surface cooling and basin-scale aggregated ocean heat convergence are relatively insensitive to the horizontal ocean grid resolutions considered here, but we find key differences in the poststorm restratification processes related to mesoscale ocean eddies. We estimate the annual basin-scale TC-induced latent heat fluxes are 1.70±0.16 × 10~(21) J and 1.43±0.16 × 10~(21) J for the high-resolution and low-resolution model configurations, respectively, which account for roughly 45% of the total TC-induced ocean heat loss from the upper ocean. Results suggest that coupled modeling approaches capable of capturing ocean-atmosphere feedbacks are important for developing a complete understanding of the relationship between TCs and climate.
机译:热带气旋(TC)积极地促进了地球的气候,但是在完全耦合的模型中,TC与气候的相互作用在很大程度上尚未得到探索。在这里,我们使用高分辨率地球系统模型分析了上层海洋对TC的响应,其中0.5°大气耦合到具有两个不同水平分辨率的海洋:1°和0.1°。该模型的两个版本都为西北太平洋地区提供了现实的TC气候,以及瞬态地表海洋响应。我们通过分析TC引起的海面冷却,潜热交换和盆地规模的海洋热收敛,研究了耦合建模响应对海洋网格分辨率的潜在敏感性。我们发现海表冷却和盆地规模的集合海洋热收敛对此处考虑的水平海洋网格分辨率相对不敏感,但是我们发现了与中尺度海洋涡旋有关的风暴后再定化过程中的关键差异。对于高分辨率和低分辨率模型,我们估计年盆尺度TC诱发的潜热通量分别为1.70±0.16×10〜(21)J和1.43±0.16×10〜(21)J。约占上层海洋由TC引起的总海洋热损失的45%。结果表明,能够捕获海洋-大气反馈的耦合建模方法对于全面了解TC和气候之间的关系非常重要。

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