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Impacts of Radiation and Upper-Tropospheric Temperatures on Tropical Cyclone Structure and Intensity

机译:辐射和上部对流层温度对热带气旋结构和强度的影响

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摘要

Potential intensity theory predicts that the upper-tropospheric temperature acts as an important constraint on tropical cyclone (TC) intensity. The physical mechanisms through which the upper troposphere impacts TC intensity and structure have not been fully explored, however, due in part to limited observations and the complex interactions between clouds, radiation, and TC dynamics. In this study, idealized Weather Research and Forecasting Model ensembles initialized with a combination of three different tropopause temperatures and with no radiation, longwave radiation only, and full diurnal radiation are used to examine the physical mechanisms in the TC-upper-tropospheric temperature relationship on weather time scales. Simulated TC intensity and structure are strongly sensitive to colder tropopause temperatures using only longwave radiation, but are less sensitive using full radiation and no radiation. Colder tropopause temperatures result in deeper convection and increased ice mass aloft in all cases, but are more intense only when radiation was included. Deeper convection leads to increased local longwave cooling rates but reduced top-of-the-atmosphere outgoing longwave radiation, such that the total radiative heat sink is reduced from a Carnot engine perspective in stronger storms. We hypothesize that a balanced response in the secondary circulation described by the Eliassen equation arises from upper-troposphere radiative cooling anomalies that lead to stronger tangential winds. The results of this study further suggest that radiation and cloud-radiative feedbacks have important impacts on weather time scales.
机译:潜在的强度理论预测,上层对象温度是热带气旋(TC)强度的重要约束。然而,尚未完全探索上层对流层影响TC强度和结构的物理机制。在本研究中,理想化的天气研究和预测模型集合初始化,其中三种不同的对流度温度和没有辐射,仅限龙波辐射,并且全昼夜辐射用于检查TC - 上层温度关系中的物理机制天气时间尺度。模拟TC强度和结构对较冷的对流辐射较冷的热门温度强烈敏感,但使用完全辐射和辐射不太敏感。较冷的Tropopate温度在所有情况下导致更深的对流和增加的冰块高级,但只有在包括辐射时更加强烈。更深入的对流导致局部长波冷却速率增加,但减少了大气层的远离辐射,使得总辐射散热器从圆形风暴中的墨鼻发动机透视减少。我们假设Eliassen方程描述的二次循环中的平衡响应来自上层辐射冷却异常,导致压力方向更强。本研究的结果进一步表明,辐射和云辐射反馈对天气时间尺度具有重要影响。

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