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Temperature and Humidity Profiles Retrieval in a Plain Area from Fengyun-3D/HIRAS Sensor Using a 1D-VAR Assimilation Scheme

机译:使用1D-VAL同化方案,来自Fengyun-3D / Hiras传感器的平原区域中的温度和湿度曲线检索

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摘要

In this study, a one-dimensional variational (1D-VAR) retrieval system is proposed to simultaneously retrieve temperature and humidity atmospheric profiles under clear-sky conditions. Our technique requires observations from the Fengyun-3D Hyperspectral Infrared Radiation Atmospheric Sounding (HIRAS) satellite combined with the Weather Research and Forecast (WRF) model. In the method, the radiative transfer for the TIROS Operational Vertical Sounder (TOVS (RTTOV) model is also used as a forward observation operator. The accuracy of our approach was evaluated using as a case study the region of Beijing in China. Predicted temperature and humidity profiles were compared against ERA-Interim data, which was used as reference. Mean bias (MB) of the temperature profiles varied between -0.8 K to 0.9 K, while the root-mean-square error (RMSE) ranged from 0.5 K to 2.6 K. In the boundary layer, the 1D-VAR algorithm performed better compared with the first guess. In the middle troposphere, the retrievals were more dependent on the first guess. With respect to relative humidity predictions, the accuracy of the evaluation of the whole troposphere was improved with the inclusion of the satellite observations, reporting an MB varying from -5.68% to 2.83%. Compared with Atmospheric Infrared Sounder's (AIRS') products, our predicted temperature profiles showed a very good consistency and the humidity predictions were also of an acceptable prediction accuracy. All in all, results clearly evidenced the promising potential of our proposed approach for retrieving temperature and humidity profiles under clear-sky conditions.
机译:在该研究中,提出了一维变异(1D-VAR)检索系统,同时在清晰的天空条件下检索温度和湿度常压型材。我们的技术需要从凤云-3D高光谱红外辐射大气探测(Hiras)卫星的观察结果与天气研究和预测(WRF)模型相结合。在该方法中,Tiros操作垂直声音(TOV(rttov)模型的辐射传输也用作前向观察操作员。通过以北京地区研究中国的案例研究,评估了我们的方法的准确性。预测温度和将湿度谱与ERA-Instim数据进行比较,其用作参考。温度曲线的平均偏置(MB)在-0.8k至0.9k之间变化,而根均方误差(RMSE)范围为0.5 k至2.6 K.在边界层中,与第一猜测相比,1D-VAR算法更好地进行。在对流层中,检索更加依赖于第一次猜测。关于相对湿度预测,评估的准确性全部对流层含有卫星观察,报告从-5.68%的MB报告到2.83%。与大气红外发声器(Airs')产品相比,我们的预测温度曲线显示了非常良好的一致性和湿度预测也是可接受的预测准确性。总而言之,结果清楚地证明了我们在清晰天空条件下检索温度和湿度型材的提出方法的有希望的潜力。

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