气相色谱仪校准气体混合物使用一个通用的精密体积仪器。

J. Raal, W. M. Nelson
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引用次数: 0

摘要

开发了一种紧凑的体积装置,用于气相色谱仪检测器校准的标准气体和气液混合物的精确自动制备,其精度可与重力或科里奥利流方法相媲美。主要作者开发的方法不是任何其他设备或技术的改编或扩展,测量仅涉及步进电机步长,温度和压力比。混合物的制备是通过高度均匀的圆柱体内腔室之间的气体置换来完成的,由可移动的活塞分开。活塞运动时,活塞端杆的直径完全相等,确保了内部体积不发生变化,并且从底部排入顶部隔间的气体体积与测量到的活塞行程精确成正比,误差在10 μm以内。仪器,操作,和以前未发表的测量对常见的炼油厂气体混合物在大浓度范围内详细描述。这些结果证实了该装置的准确性和通用性,以及从敏感压力测量中得出的混合物制备过程中无压力变化的原则。在扩展的成分范围内,所制备混合物摩尔分数的保守扩展不确定度范围为0.001 ~ 0.002。混合物的检测器响应因子的绝对平均偏差范围为0.001至0.002。一种精确的新数学解决程序允许使用不纯的“纯”气体而不损失准确性,并且可以应用于标准气体混合物制备的其他程序。列出了确定“纯”气体纯度的精确表达式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Gas chromatograph calibration of gas mixtures using a versatile precision volumetric apparatus.
A compact, volumetric apparatus was developed for accurate automated preparation of standard gas and gas-liquid mixtures for gas chromatograph detector calibration, with accuracies comparable to those from gravimetric or Coriolis flow methods. The method developed by the principal author is not an adaptation or extension of any other apparatus or technology, and measurements involve only stepper motor steps, temperature, and pressure ratios. Mixture preparation is accomplished via the displacement of gas between chambers in a highly uniform cylinder, separated by a movable piston. Piston movement, with piston end rods of exactly equal diameter, ensures that there is no change in interior volume, and the volume of gas displaced from the bottom into the top compartment is exactly proportional to the piston travel measured to within 10 μm. The apparatus, operation, and previously unpublished measurements on common refinery gas mixtures over large concentration ranges are described in detail. These confirmed the accuracy and versatility of the apparatus and also the principle of no pressure change during mixture preparation, from sensitive pressure measurements. Conservative expanded uncertainties in prepared mixture mole fraction ranged from 0.001 to 0.002 over extended composition ranges. Absolute average deviations for the detector response factor for the mixtures ranged from 0.001 to 0.002. An exact new mathematical solution procedure permits the use of impure "pure" gases without loss of accuracy and can be applied to other procedures for standard gas mixture preparation. An exact expression is listed for determining "pure" gas purity.
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