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Insensitivity of the Cloud Response to Surface Warming Under Radical Changes to Boundary Layer Turbulence and Cloud Microphysics: Results From the Ultraparameterized CAM

机译:径向变化对边界层湍流和云微物理的影响下,云对表面变暖的不敏感性:超参数化CAM的结果

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We study the cloud response to a +4K surface warming in a new multiscale climate model that uses enough interior resolution to begin explicitly resolving boundary layer turbulence (i.e., ultraparameterization or UP). UP's predictions are compared against those from standard superparameterization (SP). The mean cloud radiative effect feedback turns out to be remarkably neutral across all of our simulations, despite some radical changes in both cloud microphysical parameter settings and cloud‐resolving model grid resolution. The overall low cloud response to warming is a positive low cloud feedback over land, a negative feedback (driven by cloud optical depth increase) at high latitudes, and weak feedback over the low‐latitude oceans. The most distinct effects of UP result from tuning decisions impacting high‐latitude cloud feedback. UP's microphysics is tuned to optimize the model present‐day, top‐of‐atmosphere radiation fluxes against CERES observations, by lowering the cloud ice‐liquid phase shift temperature ramp, adjusting the ice/liquid autoconversion rate, and increasing the ice fall speed. This reduces high‐latitude low cloud amounts and damps the optical depth feedback at high latitudes, leading to a slightly more positive global cloud feedback compared to SP. A sensitivity test that isolates these microphysical impacts from UP's grid resolution confirms that the microphysical settings are mostly responsible for the differences between SP and UP cloud feedback.
机译:我们在一个新的多尺度气候模型中研究了云对+ 4K表面变暖的响应,该模型使用足够的内部分辨率来开始明确解决边界层湍流(即超参数化或UP)。将UP的预测与标准超参数(SP)的预测进行比较。尽管在云微物理参数设置和云解析模型网格分辨率方面都发生了根本性变化,但在我们所有的模拟中,平均云辐射效应反馈均显示为中性。总体而言,对变暖的低云响应是陆地上的正低云反馈,高纬度上的负反馈(由云光学深度增加驱动)和低纬度海洋上的弱反馈。 UP的最明显的影响是调整决策影响了高纬度云反馈。 UP的微物理学已针对降低CERES观测值进行了优化,以优化当前的大气顶辐射通量,方法是降低云冰-液相的相移温度梯度,调整冰/液的自动转换率,并提高冰的下落速度。这样可以减少高纬度的低云量,并抑制高纬度的光学深度反馈,与SP相比,全局云的反馈要稍微积极一些。将这些微物理影响与UP的网格分辨率隔离开的敏感性测试证实,微物理设置主要是SP和UP云反馈之间差异的原因。

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