Inter-comparison of wind measurements in the atmospheric boundary layer and the lower troposphere with Aeolus and a ground-based coherent Doppler lidar network over China

被引:19
|
作者
Wu, Songhua [1 ,2 ,3 ]
Sun, Kangwen [1 ]
Dai, Guangyao [1 ]
Wang, Xiaoye [1 ]
Liu, Xiaoying [1 ]
Liu, Bingyi [1 ,2 ]
Song, Xiaoquan [1 ,3 ]
Reitebuch, Oliver [4 ]
Li, Rongzhong [5 ]
Yin, Jiaping [5 ]
Wang, Xitao [5 ]
机构
[1] Ocean Univ China, Coll Marine Technol, Fac Informat Sci & Engn, Qingdao 266100, Peoples R China
[2] Pilot Natl Lab Marine Sci & Technol Qingdao, Lab Reg Oceanog & Numer Modelling, Qingdao 266200, Peoples R China
[3] Ocean Univ China, Inst Adv Ocean Study, Qingdao 266100, Peoples R China
[4] Deutsch Zentrum Luft & Raumfahrt eV, Inst Atmospher Phys, DLR, German Aerosp Ctr, D-82234 Oberpfaffenhofen, Germany
[5] Qingdao Leice Transient Technol Co Ltd, Qingdao 266100, Peoples R China
基金
中国国家自然科学基金;
关键词
SATELLITE MISSION; VALIDATION; PERFORMANCE; ALADIN; SPACE;
D O I
10.5194/amt-15-131-2022
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
After the successful launch of Aeolus, which is the first spaceborne wind lidar developed by the European Space Agency (ESA), on 22 August 2018, we deployed several ground-based coherent Doppler wind lidars (CDLs) to verify the wind observations from Aeolus. By the simultaneous wind measurements with CDLs at 17 stations over China, the Rayleigh-clear and Mie-cloudy horizontal-line-of-sight (HLOS) wind velocities from Aeolus in the atmospheric boundary layer and the lower troposphere are compared with those from CDLs. To ensure the quality of the measurement data from CDLs and Aeolus, strict quality controls are applied in this study. Overall, 52 simultaneous Mie-cloudy comparison pairs and 387 Rayleigh-clear comparison pairs from this campaign are acquired. All of the Aeolus-produced Level 2B (L2B) Mie-cloudy HLOS wind and Rayleigh-clear HLOS wind and CDL-produced HLOS wind are compared individually. For the inter-comparison result of Mie-cloudy HLOS wind and CDL-produced HLOS wind, the correlation coefficient, the standard deviation, the scaled mean absolute deviation (MAD) and the bias are 0.83, 3.15ms(-1), 2.64ms(-1) and 0.25ms(-1), respectively, while the y = ax slope, the y = ax + b slope and the y = ax + b intercept are 0.93, 0.92 and 0.33ms(-1). For the Rayleigh-clear HLOS wind, the correlation coefficient, the standard deviation, the scaled MAD and the bias are 0.62, 7.07ms(-1), 5.77ms(-1) and 1.15ms(-1), respectively, while the y = ax slope, the y = ax + b slope and the y = ax + b intercept are 1.00, 0.96 and 1.2ms(-1). It is found that the standard deviation, the scaled MAD and the bias on ascending tracks are lower than those on descending tracks. Moreover, to evaluate the accuracy of Aeolus HLOS wind measurements under different product baselines, the Aeolus L2B Mie-cloudy HLOS wind data and L2B Rayleigh-clear HLOS wind data under Baselines 07 and 08, Baselines 09 and 10, and Baseline 11 are compared against the CDL-retrieved HLOS wind data separately. From the comparison results, marked misfits between the wind data from Aeolus Baselines 07 and 08 and wind data from CDLs in the atmospheric boundary layer and the lower troposphere are found. With the continuous calibration and validation and product processor updates, the performances of Aeolus wind measurements under Baselines 09 and 10 and Baseline 11 are improved significantly. Considering the influence of turbulence and convection in the atmospheric boundary layers and the lower troposphere, higher values for the vertical velocity are common in this region. Hence, as a special note, the vertical velocity could impact the HLOS wind velocity retrieval from Aeolus.
引用
收藏
页码:131 / 148
页数:18
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