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Intercomparison of midlatitude tropospheric and lower-stratospheric water vapor measurements and comparison to ECMWF humidity data

机译:中间散耐力和较低平流层水蒸气测量的相互比较及与ECMWF湿度数据的比较

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Accurate measurement of water vapor in the climate-sensitive region near the tropopause is very challenging. Unexplained systematic discrepancies between measurements at low water vapor mixing ratios made by different instruments on airborne platforms have limited our ability to adequately address a number of relevant scientific questions on the humidity distribution, cloud formation and climate impact in that region. Therefore, during the past decade, the scientific community has undertaken substantial efforts to understand these discrepancies and improve the quality of water vapor measurements. This study presents a comprehensive intercomparison of airborne state-of-the-art in situ hygrometers deployed on board the DLR (German Aerospace Center) research aircraft HALO (High Altitude and LOng Range Research Aircraft) during the Midlatitude CIRRUS (ML-CIRRUS) campaign conducted in 2014 over central Europe. The instrument intercomparison shows that the hygrometer measurements agree within their combined accuracy (±10% to 15%, depending on the humidity regime); total mean values agree within 2.5%. However, systematic differences on the order of 10% and up to a maximum of 15% are found for mixing ratios below 10 parts per million?(ppm) H2O. A comparison of relative humidity within cirrus clouds does not indicate a systematic instrument bias in either water vapor or temperature measurements in the upper troposphere. Furthermore, in situ measurements are compared to model data from the European Centre for Medium-Range Weather Forecasts (ECMWF) which are interpolated along the ML-CIRRUS flight tracks. We find a mean agreement within ±10% throughout the troposphere and a significant wet bias in the model on the order of 100% to 150% in the stratosphere close to the tropopause. Consistent with previous studies, this analysis indicates that the model deficit is mainly caused by too weak of a humidity gradient at the tropopause.
机译:热门敏感地区附近的气候敏感区域中的水蒸气准确测量非常具有挑战性。在空气传播平台上的不同仪器制造的低水蒸气混合比率下测量之间的无法解释的系统差异有限利于我们充分解决了该地区湿度分布,云层和气候影响的许多相关科学问题的能力。因此,在过去十年中,科学界已经采取了了解这些差异,提高水蒸气测量质量的大量努力。本研究介绍了在MIDlatte Cirrus(ML-Cirrus)活动期间部署的DLR(德国航天中心)研究飞机晕(高海拔和远程研究飞机)的现场湿度计的全面兼职。 2014年在中欧开展。仪器相互作用表明,湿度计测量在其组合精度内同意(±10%至15%,具体取决于湿度制度);总平均值在2.5%内达成一致。然而,对10%和最多15%的系统差异用于混合率低于10份百万份(ppm)H2O。卷云云内的相对湿度的比较并不表示上层对流层中的水蒸气或温度测量中的系统仪器偏压。此外,将原位测量与来自欧洲的中等范围天气预报中心(ECMWF)的模型数据进行比较,该数据沿ML-Cirrus飞行轨道内插。我们在整个对流层内达到±10%的平均协议,在靠近对流层的平流层的平流层中的100%至150%的型号中的显着湿偏差。与先前的研究一致,该分析表明,模型缺陷主要是由于对流罗门度的湿度梯度太弱。
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