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Improving Near‐Surface Retrievals of Surface Humidity Over the Global Open Oceans From Passive Microwave Observations

机译:从被动微波观测到全球开放海洋表面湿度的近表面检索

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Ocean evaporative fluxes are a critical component of the Earth's energy and water cycle, but their estimation remains uncertain. Near‐surface humidity is a required input to bulk flux algorithms that relate mean surface values to the turbulent fluxes. Several satellite‐derived turbulent flux products have been developed over the last decade that utilize passive microwave imager observations to estimate the surface humidity. It is known, however, that these estimates tend to diverge from one another and from in situ observations. Analysis of current state‐of‐the‐art satellite estimates provided herein reveals that regional‐scale biases in these products remain significant. Investigations reveal a link between the spatial coherency of the observed biases to atmospheric dynamical controls of water vapor vertical stratification, cloud liquid water, and sea surface temperature. This information is used to develop a simple state‐dependent bias correction that results in more consistent ocean surface humidity estimates. A principal conclusion is that further improvements to ocean near‐surface humidity estimation using microwave radiometers requires incorporation of prior information on water vapor stratification and sea surface temperature. Plain Language Summary To reduce the uncertainties in ocean evaporation—which is currently of leading order in water and energy budget studies—progress is necessary to understand the sources of error in the surface measurements needed to model the ocean‐atmosphere exchange of water. Recent studies have independently demonstrated systematic uncertainties in estimates of ocean evaporation and surface humidity related to large‐scale dynamics and vertical water vapor stratification. The results presented herein directly establish the link between the large‐scale patterns of uncertainties in ocean evaporation estimates and the sources of errors in estimation of surface humidity from remote sensing observations. These results are used to characterize the relationship of surface humidity errors to physical quantities—sea surface temperature, water vapor stratification, and cloudiness—that are used to develop simple corrections for these errors. While effective, these corrections indicate the need for future algorithm development that incorporates information on these conditions directly into the remote sensing inverse‐modeling process.
机译:海洋蒸发助焊剂是地球能量和水循环的关键组成部分,但它们的估计仍然不确定。近表面湿度是向散型磁通算法的所需输入,其将平均表面值与湍流通量相关联。在过去的十年中已经开发了几种卫星衍生的湍流助熔剂产品,该产品利用被动微波成像观察结果来估计表面湿度。然而,众所周知,这些估计倾向于彼此偏离并且从原位观察分歧。本文提供的目前最先进的卫星估计分析表明,这些产品中的区域规模偏差仍然显着。调查揭示了观察到的偏差对水蒸气垂直分层,云液体水和海表面温度的大气动态控制之间的空间一致性之间的联系。该信息用于开发一种简单的状态依赖性偏置校正,从而导致更一致的海洋表面湿度估计。主要结论是进一步改进使用微波辐射仪的海洋近表面湿度估计,需要纳入有关水蒸气分层和海表面温度的先前信息。简单的语言摘要为了减少海洋蒸发中的不确定性 - 目前正在水和能源预算研究中的领先秩序 - 需要了解建模海洋气氛交换所需的表面测量来源的误差来源。最近的研究在与大规模动力学和垂直水蒸汽分层相关的海洋蒸发和表面湿度的估计中独立证明了系统的不确定性。这里提出的结果直接建立了海洋蒸发估计和估计表面湿度的误差源之间的大规模不确定因素与遥感观察的误差。这些结果用于表征表面湿度误差与物理量 - 海表面温度,水蒸气分层和浑浊的关系 - 用于开发这些误差的简单校正。虽然有效,但这些校正表明需要对未来算法的开发,该算法的开发将信息直接结合到这些条件上直接进入遥感逆建模过程中的信息。

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