Characterizing and correcting the warm bias observed in AMDAR temperature observations

S. Haan, P. M. Jong, J. V. D. Meulen
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引用次数: 1

Abstract

Abstract. Some aircraft temperature observations, retrieved through the Aircraft Meteorological Data Relay (AMDAR), suffer from a significant warm bias when comparing observations with numerical weather prediction (NWP) model. In this manuscript we show that this warm bias of AMDAR temperature can be characterized and consequently reduced substantially. The characterization of this warm bias is based on the methodology of measuring temperature with a moving sensor and can be split into two separate processes. The first process depends on the flight phase of the aircraft and relates to difference of timing, as it appears that the time of measurement of altitude and temperature differ. When an aircraft is ascending or descending this will result in small bias in temperature due to the (on average) presence of an atmospheric temperature lapse rate. The second process is related to internal corrections applied to pressure altitude without feedback to temperature observation measurement. Based on NWP model temperature data combined with additional information on Mach number and true airspeed, we were able to estimate corrections using an 18 months period from January 2017 to July 2018. Next, the corrections were applied on AMDAR observations over the period from September 2018 to mid-December 2019. Comparing these corrected temperatures with (independent) radiosonde temperature observations demonstrates a reduction of the temperature bias from 0.5 K to around zero and reduction of standard deviation of almost 10 %.
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表征和校正在amdar温度观测中观测到的暖偏
摘要在与数值天气预报(NWP)模式比较时,通过飞机气象数据中继(AMDAR)获取的一些飞机温度观测结果存在明显的暖偏。在这篇手稿中,我们表明这种暖偏AMDAR温度可以表征,从而大大减少。这种热偏差的表征是基于用移动传感器测量温度的方法,可以分为两个独立的过程。第一个过程取决于飞机的飞行阶段,与时间的差异有关,因为测量高度和温度的时间似乎不同。当飞机上升或下降时,由于(平均)存在大气温度递减率,这将导致温度的小偏差。第二个过程与内部修正有关,施加于压力高度,而不反馈给温度观测测量。基于NWP模型温度数据,结合马赫数和真实空速的附加信息,我们能够在2017年1月至2018年7月的18个月期间估计修正。接下来,对2018年9月至2019年12月中旬期间的AMDAR观测结果进行了修正。将这些修正后的温度与(独立的)无线电探空仪温度观测结果进行比较,表明温度偏差从0.5 K减少到零左右,标准偏差减少了近10%。
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