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Modeling Water Vapor and Clouds as Passive Tracers in an Idealized GCM

机译:将水蒸气和云建模为理想化的GCM中的被动示踪剂

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摘要

This paper introduces an idealized general circulation model (GCM) in which water vapor and clouds are tracked as tracers, but are not allowed to affect circulation through either latent heat release or cloud radiative effects. The cloud scheme includes an explicit treatment of cloud microphysics and diagnoses cloud fraction froma prescribed subgrid distribution of total water. Themodel is capable of qualitatively capturing many largescale features of water vapor and cloud distributions outside of the boundary layer and deep tropics. The subtropical dry zones, midlatitude storm tracks, and upper-tropospheric cirrus are simulated reasonably well. The inclusion of cloudmicrophysics (namely rain re-evaporation) has amodest but significant effect ofmoistening the lower troposphere in thismodel. When being subjected to a uniform fractional increase of saturated water vapor pressure, themodel produces little change in cloud fraction. Amore realistic perturbation, which considers the nonlinearity of the Clausius-Clapeyron relation and spatial structure of CO2-induced warming, results in a substantial reduction in the free-tropospheric cloud fraction. This is reconciled with an increase of relative humidity by analyzing the probability distributions of both quantities, and may help explain partly similar decreases in cloud fraction in full GCMs. The model provides a means to isolate individual processes or model components for studying their influences on cloud simulation in the extratropical free troposphere.
机译:本文介绍了一种理想化的一般循环模型(GCM),其中作为示踪剂跟踪水蒸气和云,但不允许通过潜热释放或云辐射效果影响循环。云方案包括云微妙的明确治疗,并诊断总水的规定底层分布的云分数。 Themodel能够定性捕获水蒸气和边界层外部的云分布的许多大型特征。亚热带干燥区,中际风暴轨道和上层卷曲的卷积相当良好。包含Cloudmicrophysics(即雨重新蒸发)对Thismodel较低的对流层来说具有浓度但显着的影响。当受到饱和水蒸气压的均匀分数增加时,Themodel在云馏分产生几乎没有变化。 Amore现实扰动,其考虑了Clausius-clapeyron关系的非线性和CO2诱导的变暖的空间结构,导致自由流层云分数的大幅降低。通过分析两种量的概率分布,这与相对湿度的增加,并且可以有助于解释完整GCMS中云分数的部分类似的降低。该模型提供了一种分离各个过程或模型组分的方法,用于研究其对覆盆子自由层中云模拟的影响。

著录项

  • 来源
    《Journal of Climate 》 |2018年第2期| 共12页
  • 作者

    Ming Yi; Held Isaac M.;

  • 作者单位

    NOAA Geophys Fluid Dynam Lab Princeton NJ 08540 USA;

    NOAA Geophys Fluid Dynam Lab Princeton NJ 08540 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 气候学 ;
  • 关键词

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