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首页> 外文期刊>Journal of Climate >Climate Simulations with an Isentropic Finite-Volume Dynamical CoreTI Climate Simulations with an Isentropic Finite-Volume Dynamical Core
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Climate Simulations with an Isentropic Finite-Volume Dynamical CoreTI Climate Simulations with an Isentropic Finite-Volume Dynamical Core

机译:等熵有限体积动力核心的气候模拟TI等熵有限体积动力核心的气候模拟

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This paper discusses the impact of changing the vertical coordinate from a hybrid pressure to a hybrid-isentropic coordinate within the finite-volume (FV) dynamical core of the Community Atmosphere Model (CAM). Results from a 20-yr climate simulation using the new model coordinate configuration are compared to control simulations produced by the Eulerian spectral and FV dynamical cores of CAM, which both use a pressure-based (sigma - P) coordinate. The same physical parameterization package is employed in all three dynamical cores. The isentropic modeling framework significantly alters the simulated climatology and has several desirable features. The revised model produces a better representation of heat transport processes in the atmosphere leading to much improved atmospheric temperatures. The authors show that the isentropic model is very effective in reducing the long-standing cold temperature bias in the upper troposphere and lower stratosphere, a deficiency shared among most climate models. The warmer upper troposphere and stratosphere seen in the isentropic model reduces the global coverage of high clouds, which is in better agreement with observations. The isentropic model also shows improvements in the simulated wintertime mean sea level pressure field in the Northern Hemisphere.
机译:本文讨论了在社区大气模型(CAM)的有限体积(FV)动力核心内将垂直坐标从混合压力更改为混合等熵坐标的影响。使用新的模型坐标配置进行的20年气候模拟的结果与CAM的欧拉谱和FV动态核心所产生的控制模拟进行了比较,它们均使用基于压力的(sigma-P)坐标。三个动态核心均采用相同的物理参数化程序包。等熵建模框架极大地改变了模拟的气候,并具有一些理想的功能。修改后的模型可以更好地表示大气中的传热过程,从而大大改善了大气温度。这组作者表明,等熵模型在减少对流层上层和平流层下层长期存在的冷温偏差方面非常有效,这是大多数气候模型所共有的缺陷。在等熵模型中,对流层和平流层较高的温度降低了高云的全球覆盖范围,这与观测结果更为吻合。等熵模型还显示了北半球模拟的冬季平均海平面压力场的改善。

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