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Quantifying the Accuracy and Uncertainty of Diurnal Thermodynamic Profiles and Convection Indices Derived from the Atmospheric Emitted Radiance Interferometer

机译:量化昼夜热力学配置的准确性和不确定性和源自大气发射光线干涉仪的对流指数

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While radiosondes have provided atmospheric scientists an accurate high-vertical-resolution profile of the troposphere for decades, they are unable to provide high-temporal-resolution observations without significant recurring expenses. Remote sensing technology, however, has the ability to monitor the evolution of the atmosphere in unprecedented detail. One particularly promising tool is the Atmospheric Emitted Radiance Interferometer (AERI), a passive ground-based infrared radiometer. Through a physical retrieval, the AERI can retrieve the vertical profile of temperature and humidity at a temporal resolution on the order of minutes. The synthesis of these two instruments may provide an improved diagnosis of the processes occurring in the atmosphere. This study provides a better understanding of the capabilities of the AERI in environments supportive of deep, moist convection. Using 3-hourly radiosonde launches and thermodynamic profiles retrieved from collocated AERIs, this study evaluates the accuracy of AERI-derived profiles over the diurnal cycle by analyzing AERI profiles in both the convective and stable boundary layers. Monte Carlo sampling is used to calculate the distribution of convection indices and compare the impact of measurement errors from each instrument platform on indices. This study indicates that the nonintegrated indices (e.g., lifted index) derived from AERI retrievals are more accurate than integrated indices (e.g., CAPE). While the AERI retrieval's vertical resolution can inhibit precise diagnoses of capping inversions, the high-temporal-resolution nature of the AERI profiles overall helps in detecting rapid temporal changes in stability.
机译:虽然无线电体系提供了大气科学家,但数十年来,他们无法提供对流层的高垂直分辨率剖面,而且在没有显着的经常性费用的情况下,他们无法提供高时分辨率的观察。然而,遥感技术能够在前所未有的细节中监测大气的演变。一种特别有前途的工具是大气发射的辐射干涉仪(AERI),被动地基红外辐射计。通过物理检索,AERI可以根据分钟的时间分辨率在时间分辨率下检索温度和湿度的垂直轮廓。这两种仪器的合成可以提供改善的大气中发生的过程的诊断。本研究更好地了解AIRI在支持深度,潮湿对流的环境中的能力。通过从并置Aeris检索的3小时无线电探测器和热力学配置文件,本研究通过分析对流和稳定的边界层中的AERI型材来评估Aeri衍生的型材在昼夜周期上的精度。 Monte Carlo采样用于计算对流指数的分布,并比较来自每个仪器平台的测量误差对指数的影响。本研究表明,来自Aeri检索的非整治指数(例如,升降指数)比集成指数更准确(例如,披章)。虽然AERI检索的垂直分辨率可以抑制封端倒置的精确诊断,但是AERI简档的高时间分辨率性质总体有助于检测稳定性的快速时间变化。

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