水蒸气光谱和热力学约束地球对流层顶温度

IF 8.3 Q1 GEOSCIENCES, MULTIDISCIPLINARY
AGU Advances Pub Date : 2025-04-05 DOI:10.1029/2024AV001206
Brett A. McKim, Nadir Jeevanjee, Geoffrey K. Vallis, Neil T. Lewis
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引用次数: 0

摘要

随着地球变暖,对流层顶预计会上升,但对其温度变化的预测不太确定。采用“灰色”辐射的长期理论将对流层顶温度与传出的长波辐射(OLR)联系在一起,但这与最近的模拟工作相反,该研究显示,即使OLR增加,对流层顶温度(FiTT)也是固定的。FiTT被认为是对流层上层水汽和辐射相互作用的结果,但尚未形成FiTT的预测理论。在这里,我们建立在最近对铁砧云温度的解释之上,并认为对流层顶温度(由辐射冷却变得可以忽略不计的地方定义)是由水蒸气的最大光谱吸收和克劳修斯-克拉珀龙尺度决定的。这种“热谱约束”对对流层顶温度进行了定量预测,这种预测在单柱和环流模式实验中得到了证实,其中光谱学进行了修改,辐射和失效率对流层顶都发生了响应变化。这一约束条件为FiTT假设提供了理论基础,也为对流层顶为何随着地表变暖而上升提供了更精确的解释,显示了对流层顶温度如何与OLR解耦,提出了一种将铁砧云温度与对流层顶温度联系起来的方法,并显示了光谱如何在地球环流中表现出来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Water Vapor Spectroscopy and Thermodynamics Constrain Earth's Tropopause Temperature

Water Vapor Spectroscopy and Thermodynamics Constrain Earth's Tropopause Temperature

As Earth warms, the tropopause is expected to rise, but predictions of its temperature change are less certain. Longstanding theories employing “gray” radiation tie the tropopause temperature to outgoing longwave radiation (OLR), but this is in contrast to recent work in which simulations exhibit a Fixed Tropopause Temperature (FiTT) even as OLR increases. The FiTT is thought to result from the interaction between upper tropospheric moisture and radiation, but a predictive theory for FiTT has not yet been formulated. Here, we build on a recent explanation for the temperature of anvil clouds and argue that tropopause temperature, defined by where radiative cooling becomes negligible, is set by water vapor's maximum spectroscopic absorption and Clausius-Clapeyron scaling. This “thermospectric constraint” makes quantitative predictions for tropopause temperature that are borne out in single column and general circulation model experiments where the spectroscopy is modified and both the radiative and lapse-rate tropopause change in response. This constraint provides a theoretical foundation for the FiTT hypothesis and a more refined explanation for why the tropopause rises with surface warming, shows how tropopause temperature can decouple from OLR, suggests a way to relate the temperatures of anvil clouds and the tropopause, and shows how spectroscopy manifests in Earth's general circulation.

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