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地下水中溶解氢采样的优化方法。

Optimized method for dissolved hydrogen sampling in groundwater.

作者信息

Alter Marcus D, Steiof Martin

机构信息

Technische Universität Berlin, Arbeitsgruppe Umwelthygiene, Sekr. ZI 3, Amrumerstr. 32, Berlin D-13353, Germany.

出版信息

J Contam Hydrol. 2005 Jun;78(1-2):71-86. doi: 10.1016/j.jconhyd.2005.03.002.

Abstract

Dissolved hydrogen concentrations are used to characterize redox conditions of contaminated aquifers. The currently accepted and recommended bubble strip method for hydrogen sampling (Wiedemeier et al., 1998) requires relatively long sampling times and immediate field analysis. In this study we present methods for optimized sampling and for sample storage. The bubble strip sampling method was examined for various flow rates, bubble sizes (headspace volume in the sampling bulb) and two different H2 concentrations. The results were compared to a theoretical equilibration model. Turbulent flow in the sampling bulb was optimized for gas transfer by reducing the inlet diameter. Extraction with a 5 mL headspace volume and flow rates higher than 100 mL/min resulted in 95-100% equilibrium within 10-15 min. In order to investigate the storage of samples from the gas sampling bulb gas samples were kept in headspace vials for varying periods. Hydrogen samples (4.5 ppmv, corresponding to 3.5 nM in liquid phase) could be stored up to 48 h and 72 h with a recovery rate of 100.1+/-2.6% and 94.6+/-3.2%, respectively. These results are promising and prove the possibility of storage for 2-3 days before laboratory analysis. The optimized method was tested at a field site contaminated with chlorinated solvents. Duplicate gas samples were stored in headspace vials and analyzed after 24 h. Concentrations were measured in the range of 2.5-8.0 nM corresponding to known concentrations in reduced aquifers.

摘要

溶解氢浓度用于表征受污染含水层的氧化还原条件。目前公认且推荐的用于氢气采样的气泡剥离法(Wiedemeier等人,1998年)需要相对较长的采样时间和现场即时分析。在本研究中,我们提出了优化采样和样品储存的方法。对气泡剥离采样法在不同流速、气泡大小(采样球泡中的顶空体积)和两种不同氢气浓度下进行了测试。将结果与理论平衡模型进行了比较。通过减小入口直径优化了采样球泡中的湍流以促进气体传输。使用5 mL顶空体积和高于100 mL/min的流速进行萃取,在10 - 15分钟内可达到95 - 100%的平衡。为了研究来自气体采样球泡的样品的储存情况,将气体样品保存在顶空瓶中不同时间段。氢气样品(4.5 ppmv,相当于液相中3.5 nM)分别可储存48小时和72小时,回收率分别为100.1±2.6%和94.6±3.2%。这些结果很有前景,证明了在实验室分析前储存2 - 3天的可能性。在一个受氯化溶剂污染的现场对优化后的方法进行了测试。将重复的气体样品储存在顶空瓶中,并在24小时后进行分析。测量的浓度范围为2.5 - 8.0 nM,与还原含水层中的已知浓度相对应。

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