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一条用于对微升和毫升范围内不同水量的水进行氚分析以及测量稀有气体的质谱线。

A mass spectrometric line for tritium analysis of water and noble gas measurements from different water amounts in the range of microlitres and millilitres.

作者信息

Papp Laszlo, Palcsu Laszlo, Major Zoltan, Rinyu Laszlo, Tóth Istvan

机构信息

Institute of Nuclear Research of the Hungarian Academy of Sciences, Debrecen, Hungary.

出版信息

Isotopes Environ Health Stud. 2012;48(4):494-511. doi: 10.1080/10256016.2012.679935. Epub 2012 Apr 27.

DOI:10.1080/10256016.2012.679935
PMID:22537518
Abstract

This paper describes the procedure followed for noble gas measurements for litres, millilitres and microlitres of water samples in our laboratory, including sample preparation, mass spectrometric measurement procedure, and the complete calibrations. The preparation line extracts dissolved gases from water samples of volumes of 0.2 μ l to 3 l and it separates them as noble and other chemically active gases. Our compact system handles the following measurements: (i) determination of tritium concentration of environmental water samples by the (3)He ingrowth method; (ii) noble gas measurements from surface water and groundwater; and (iii) noble gas measurements from fluid inclusions of solid geological archives (e.g. speleothems). As a result, the tritium measurements have a detection limit of 0.012 TU, and the expectation value (between 1 and 20 TU) is within 0.2 % of the real concentrations with a standard deviation of 2.4 %. The reproducibility of noble gas measurements for water samples of 20-40 ml allows us to determine solubility temperatures by an uncertainty better than 0.5 °C. Moreover, noble gas measurements for tiny water amounts (in the microlitre range) show that the results of the performed calibration measurements for most noble gas isotopes occur with a deviation of less than 2 %. Theoretically, these precisions for noble gas concentrations obtained from measurements of waters samples of a few microlitres allow us to determine noble gas temperatures by an uncertainty of less than 1 °C. Here, we present the first noble gas measurements of tiny amounts of artificial water samples prepared under laboratory conditions.

摘要

本文描述了我们实验室对升、毫升和微升水样进行惰性气体测量所遵循的程序,包括样品制备、质谱测量程序以及完整的校准。制备线从0.2微升至3升体积的水样中提取溶解气体,并将它们分离为惰性气体和其他化学活性气体。我们的紧凑型系统可进行以下测量:(i) 通过³He增长法测定环境水样中的氚浓度;(ii) 地表水和地下水的惰性气体测量;(iii) 固体地质档案(如洞穴沉积物)流体包裹体中的惰性气体测量。结果表明,氚测量的检测限为0.012 TU,期望值(1至20 TU之间)在真实浓度的0.2%以内,标准偏差为2.4%。对20 - 40毫升水样进行惰性气体测量的重现性使我们能够以优于0.5°C的不确定度确定溶解温度。此外,对微量水样(微升范围)进行的惰性气体测量表明,大多数惰性气体同位素的校准测量结果偏差小于2%。理论上,通过对几微升水样的测量获得的这些惰性气体浓度精度使我们能够以小于1°C的不确定度确定惰性气体温度。在此,我们展示了在实验室条件下制备的微量人工水样的首次惰性气体测量结果。

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