Stationary wave biases and their effect on upward troposphere– stratosphere coupling in sub-seasonal prediction models

Chen Schwartz, C. Garfinkel, P. Yadav, Wen Chen, D. Domeisen
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引用次数: 3

Abstract

Abstract. The simulated Northern Hemisphere winter stationary wave (SW) field is investigated in 11 Subseasonal-to-Seasonal (S2S) prediction project models. It is shown that while most models considered can well simulate the stationary wavenumbers 1 and 2 during the first 2 weeks of integration, they diverge from observations following week 3. Those models with a poor resolution in the stratosphere struggle to simulate the waves, in both the troposphere and the stratosphere, even during the first 2 weeks. Focusing on the tropospheric regions where SWs peak in amplitude reveals that the models generally do a better job in simulating the northwestern Pacific stationary trough, while certain models struggle to simulate the stationary ridges in both western North America and the North Atlantic. In addition, a strong relationship is found between regional biases in the stationary height field and model errors in simulated upward propagation of planetary waves into the stratosphere. In the stratosphere, biases are mostly in wave 2 in those models with high stratospheric resolution, whereas in those models with low resolution in the stratosphere, a wave 1 bias is evident, which leads to a strong bias in the stratospheric mean zonal circulation due to the predominance of wave 1 there. Finally, biases in both amplitude and location of mean tropical convection and the subsequent subtropical downwelling are identified as possible contributors to biases in the regional SW field in the troposphere.
分季节预报模式中驻波偏差及其对对流层-平流层上行耦合的影响
摘要利用11个亚季节-季节(S2S)预报项目模式对北半球冬季驻波场进行了模拟研究。结果表明,虽然考虑的大多数模型可以很好地模拟前两周积分期间的平稳波数1和2,但它们与第3周后的观测结果不同。那些在平流层分辨率较差的模型很难模拟对流层和平流层的波浪,即使在头两周内也是如此。以对流层SWs振幅峰值区域为研究对象,发现模式对西北太平洋静止槽的模拟效果较好,而对北美西部和北大西洋的静止脊的模拟效果较差。此外,还发现了固定高度场的区域偏差与模拟行星波向上传播到平流层的模式误差之间的密切关系。在平流层中,平流层分辨率高的模式偏多出现在波2上,而在平流层分辨率低的模式中,波1偏明显,由于波1在平流层中占优势,导致平流层平均纬向环流偏强。最后,确定了平均热带对流的振幅和位置偏差以及随后的副热带下沉是对流层区域西南场偏差的可能原因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
6.40
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