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Dynamic-gravimetric preparation of metrologically traceable primary calibration standards for halogenated greenhouse gases

机译:动态重量法制备卤代温室气体的可计量溯源的初级校准标准

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For many years, the comparability of measurements obtained with various instruments withing a global-scale air quality monitoring network has been ensured by anchoring all results to a unique suite of reference gas mixtures, also called 'primary calibration scale'. Such suites of reference gas mixtures are usually prepared and then stored over decades in pressurised cylinders by a designated laboratory. For those halogenated gases which have been measured over the last forty years, this anchoring method is highly relevant as measurement reproducibility is currently much better (?2?%). Meanwhile, newly emitted halogenated gases are already measured in the atmosphere at sub-pmol/mol levels, while still lacking an established reference standard. For compounds prone to adsorption on material surfaces, it is difficult to evaluate mixture stability and thus variations in the molar fractions over time in cylinders at pmol/mol levels. To support atmospheric monitoring of halogenated gases, we create new primary calibration scales for SF6 (sulfur hexafluoride), HFC-125 (pentafluoroethane), HFO-1234yf (or HFC-1234yf, 2,3,3,3-tetrafluoroprop-1-ene), HCFC-132b (1,2-dichloro- 1,1-difluoroethane) and CFC-13 (chlorotrifluoromethane). The preparation method, newly applied to halocarbons, is dynamic and gravimetric: it is based on the permeation principle followed by dynamic dilution and cryo-filling of the mixture in cylinders. The obtained METAS-2017 primary calibration scales are made of 11 cylinders containing these five substances at near ambient and slightly varying molar fractions. Each prepared molar fraction is traceable to the realisation of SI units (Système International d'Unités) and is assigned an uncertainty estimate following international guidelines (JCGM 100:2008), ranging from 0.6?% for SF6 to 1.3?% (k?=?2) for all other substances. The smallest uncertainty obtained for SF6 is mostly explained by the high substance purity level in the permeator as well as low SF6 contamination of the matrix gas. The measured internal consistency of the suite ranges from 0.23?% for SF6 to 1.1?% for HFO-1234yf (k?=?1). The expanded uncertainty after verification (i.e. measurement of the cylinders vs each others) ranges from 1?% to 2?% (k?=?2). This work combines the advantages of SI-traceable reference gas mixture preparation with a calibration scale system for its use as anchor by a monitoring network. Such a combined system allows to maximise the compatibility within the network while linking all reference values to the SI and assigning carefully estimated uncertainties. For SF6, comparison of the METAS-2017 calibration scale with the scale prepared by SIO (Scripps Institution of Oceanography, SIO-05) shows excellent concordance, the ratio METAS-2017/SIO-05 being 1.002. For HFC-125, the METAS-2017 calibration scale is measured as 7?% lower than SIO-14, and for HFO-1234yf 9?% lower than Empa-2013. No other scale for HCFC-132b was available for comparison. Finally, for CFC-13 the METAS-2017 primary calibration scale is 5?% higher that the interim calibration scale (Interim-98) in use within the Advanced Global Atmospheric Gases Experiment (AGAGE) network.
机译:多年以来,通过将所有结果锚定到一套独特的参考气体混合物套件(也称为“主要校准秤”)上,可确保使用各种仪器和全球规模的空气质量监测网络进行测量的可比性。通常准备这类参考气体混合物套件,然后由指定的实验室将其保存在加压气瓶中数十年。对于过去四十年来已测量的那些卤化气体,这种锚定方法具有很高的相关性,因为当前的测量重现性要好于扩展不确定度(<?1%,k?=?2或95 %%置信区间)。参比气体混合物的量(通常> 2%)。同时,已经在大气中以亚pmol / mol的水平对新排放的卤化气体进行了测量,而仍缺乏既定的参考标准。对于易于吸附在材料表面上的化合物,很难评估混合物的稳定性,因此很难评估pmol / mol水平下圆柱体中摩尔分数随时间的变化。为了支持对卤化气体的大气监测,我们为SF6(六氟化硫),HFC-125(五氟乙烷),HFO-1234yf(或HFC-1234yf,2,3,3,3-四氟丙-1-烯)创建了新的主要校准标尺),HCFC-132b(1,2-二氯-1,1-二氟乙烷)和CFC-13(三氟氯甲烷)。新应用于卤代烃的制备方法是动态的和重量分析的:它是基于渗透原理,然后动态稀释并在圆筒中冷冻填充混合物。获得的METAS-2017主要校准标度由11个量筒组成,其中包含这5种物质,它们在接近环境且摩尔分数略有变化。每个制备的摩尔分数都可以追溯到国际单位制(SystèmeInternational d'Unités)的实现,并按照国际准则(JCGM 100:2008)进行不确定度估计,范围从SF6的0.6%到1.3%(k = ?2)对于所有其他物质。 SF6获得的最小不确定度主要由渗透器中的高物质纯度和基质气体的SF6低污染来解释。套件测得的内部一致性范围从SF6的0.23%至HFO-1234yf的1.1%(k == 1)。验证后扩大的不确定度(即气缸的相对尺寸)为1%至2%(k = 2)。这项工作将SI可溯源的参考气体混合物制备的优点与校准规模系统相结合,以用作监控网络的锚定点。这样的组合系统可以在将所有参考值链接到SI并仔细分配不确定性的同时,最大化网络内的兼容性。对于SF6,将METAS-2017校准标度与SIO(Scripps海洋学研究所,SIO-05)准备的标度进行比较显示出极好的一致性,METAS-2017 / SIO-05的比率为1.002。对于HFC-125,METAS-2017的校准标度比SIO-14低7%,而对于HFO-1234yf的标度标度比Empa-2013低9%。没有其他HCFC-132b量表可供比较。最后,对于CFC-13,METAS-2017的主要标定比例要比高级全球大气实验(AGAGE)网络中使用的中间标定比例(Interim-98)高5%。

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