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Design and Uncertainty Analysis for a PVTt Gas Flow Standard

机译:PVTt气体流量标准的设计和不确定度分析

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摘要

A new pressure, volume, temperature, and, time (PVTt) primary gas flow standard at the National Institute of Standards and Technology has an expanded uncertainty (k = 2) of between 0.02 % and 0.05 %. The standard spans the flow range of 1 L/min to 2000 L/min using two collection tanks and two diverter valve systems. The standard measures flow by collecting gas in a tank of known volume during a measured time interval. We describe the significant and novel features of the standard and analyze its uncertainty. The gas collection tanks have a small diameter and are immersed in a uniform, stable, thermostatted water bath. The collected gas achieves thermal equilibrium rapidly and the uncertainty of the average gas temperature is only 7 mK (22 × 10−6 T). A novel operating method leads to essentially zero mass change in and very low uncertainty contributions from the inventory volume. Gravimetric and volume expansion techniques were used to determine the tank and the inventory volumes. Gravimetric determinations of collection tank volume made with nitrogen and argon agree with a standard deviation of 16 × 10−6 VT. The largest source of uncertainty in the flow measurement is drift of the pressure sensor over time, which contributes relative standard uncertainty of 60 × 10−6 to the determinations of the volumes of the collection tanks and to the flow measurements. Throughout the range 3 L/min to 110 L/min, flows were measured independently using the 34 L and the 677 L collection systems, and the two systems agreed within a relative difference of 150 × 10−6. Double diversions were used to evaluate the 677 L system over a range of 300 L/min to 1600 L/min, and the relative differences between single and double diversions were less than 75 × 10−6.
机译:美国国家标准技术研究院的新的压力,体积,温度和时间(PVTt)初级气体流量标准具有0.02%至0.05%的不确定度(k = 2)。该标准使用两个收集罐和两个分流阀系统,其流量范围从1 L / min到2000 L / min。该标准通过在测量的时间间隔内将气体收集到已知体积的储罐中来测量流量。我们描述了该标准的重要和新颖的特征,并分析了其不确定性。气体收集罐的直径较小,并浸入均匀,稳定,恒温的水浴中。收集的气体迅速达到热平衡,平均气体温度的不确定性仅为7 mK(22×10 −6 T)。一种新颖的操作方法导致质量变化基本上为零,并且库存量的不确定性贡献非常低。使用重量和体积膨胀技术来确定储罐和库存量。用氮气和氩气的重量法测定收集罐的体积,其标准偏差为16×10 -6 VT。流量测量中最大的不确定性来源是压力传感器随时间的漂移,这对确定收集罐的体积和流量贡献了60×10 −6 的相对标准不确定性测量。在3 L / min至110 L / min的范围内,使用34 L和677 L收集系统分别测量流量,并且两个系统的相对差在150×10 -6 之内。在300 L / min至1600 L / min的范围内,使用两次转移来评估677 L系统,一次和两次转移之间的相对差异小于75×10 −6

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