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An update on the uncertainties of water vapor measurements using cryogenicfrost point hygrometers

机译:使用低温冰点湿度计进行水蒸气测量不确定性的更新

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摘要

Long time series of observations of essential climate variables in the troposphere and stratosphere are often impacted by inconsistencies in instrumentation and ambiguities in the interpretation of the data. To reduce these problems of long-term data series, all measurements should include an estimate of their uncertainty and a description of their sources. Here we present an update of the uncertainties for tropospheric and stratospheric water vapor observations using the cryogenic frost point hygrometer (CFH). The largest source of measurement uncertainty is the controller stability, which is discussed here in detail. We describe a method to quantify this uncertainty for each profile based on the measurements. We also show the importance of a manufacturer-independent ground check, which is an essential tool to continuously monitor the uncertainty introduced by instrument variability. A small bias, which has previously been indicated in lower tropospheric measurements, is described here in detail and has been rectified. Under good conditions, the total from all sources of uncertainty of frost point or dew point measurements using the CFH can be better than 0.2?K. Systematic errors, which are most likely to impact long-term climate series, are verified to be less than 0.1?K. The impact of the radiosonde pressure uncertainty on the mixing ratio for properly processed radiosondes is considered small. The mixing ratio uncertainty may be as low as 2 to 3?%. The impact of the ambient temperature uncertainty on relative humidity (RH) is generally larger than that of the frost point uncertainty. The relative RH uncertainty may be as low as 2?% in the lower troposphere and 5?% in the tropical tropopause region.
机译:在对流层和平流层中,长时间的观察结果的意见,往往受到在数据解释中的仪器和歧义中的不一致影响。为了减少长期数据系列的这些问题,所有测量应包括对其不确定性的估计和对其来源的描述。在这里,我们使用低温霜点湿度计(CFH)来提出对流层和平流层水蒸汽观测的不确定性的更新。最大的测量来源是控制稳定性,其详细讨论。我们描述了一种基于测量来量化每个轮廓的这种不确定性的方法。我们还显示了制造商独立地面检查的重要性,这是连续监控仪器变异性引入的不确定性的重要工具。这里详细描述了先前在较低的对流层测量中表明的小偏压并进行了整流。在良好的条件下,使用CFH的霜点或露点测量的所有不确定度的总量可以优于0.2?k。最有可能影响长期气候系列的系统错误被验证为小于0.1?k。无用的压力不确定性对适当加工过的可辐射件的混合比的影响被认为是小的。混合比率不确定性可以低至2至3μm。环境温度不确定性对相对湿度(RH)的影响通常大于霜点不确定性的影响。相对rh不确定度在较低的对流层中低至2?%,热带对象流程区域的5倍。

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