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Recent developments on field gas extraction and sample preparation methods for radiokrypton dating of groundwater

机译:地下水放射性k定年的野外气体提取和样品制备方法的最新进展

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Current and foreseen population growths will lead to an increased demand in freshwater, large quantities of which is stored as groundwater. The ventilation age is crucial to the assessment of groundwater resources, complementing the hydrological model approach based on hydrogeological parameters. Ultra-trace radioactive isotopes of Kr (Kr-81 and Kr-851) possess the ideal physical and chemical properties for groundwater dating. The recent advent of atom trap trace analyses (ATTA) has enabled determination of ultra-trace noble gas radioisotope abundances using 5-10 mu L of pure Kr. Anticipated developments will enable ATTA to analyze radiokrypton isotope abundances at high sample throughput, which necessitates simple and efficient sample preparation techniques that are adaptable to various sample chemistries. Recent developments of field gas extraction devices and simple and rapid Kr separation method at the University of Chicago are presented herein. Two field gas extraction devices optimized for different sampling conditions were recently designed and constructed, aiming at operational simplicity and portability. A newly developed Kr purification system enriches Kr by flowing a sample gas through a moderately cooled (138 K) activated charcoal column, followed by a gentle fractionating desorption. This simple process uses a single adsorbent and separates 99% of the bulk atmospheric gases from Kr without significant loss. The subsequent two stages of gas chromatographic separation and a hot Ti sponge getter further purify the Kr-enriched gas. Abundant CH4 necessitates multiple passages through one of the gas chromatographic separation columns. The presented Kr separation system has a demonstrated capability of extracting Kr with >90% yield and 99% purity within 75 min from 1.2 to 26.8 L STP of atmospheric air with various concentrations of CH4. The apparatuses have successfully been deployed for sampling in the field and purification of groundwater samples. (C) 2016 Elsevier B.V. All rights reserved.
机译:当前和可预见的人口增长将导致对淡水的需求增加,淡水的大量储存为地下水。通风年龄对于评估地下水资源至关重要,是对基于水文地质参数的水文模型方法的补充。 r的超痕量放射性同位素(Kr-81和Kr-851)具有理想的地下水测年理化特性。原子阱痕量分析(ATTA)的最新出现使得能够使用5-10μL的纯Kr测定超痕量稀有气体放射性同位素丰度。预期的发展将使ATTA能够以高样品通量分析放射性k同位素丰度,这需要适用于各种样品化学的简单有效的样品制备技术。本文介绍了芝加哥大学现场气体提取装置和简单快速的Kr分离方法的最新发展。最近设计和建造了两种针对不同采样条件进行了优化的野外抽气设备,旨在简化操作和携带。新开发的Kr纯化系统通过使样品气体流过中度冷却(138 K)活性炭柱,然后进行温和的分馏解吸来富集Kr。这种简单的方法使用一种吸附剂,并且从Kr中分离出99%的大气中的气体,而不会造成重大损失。气相色谱分离和热钛海绵吸气剂的随后两个阶段进一步纯化了富Kr气体。大量的CH4要求多次通过气相色谱分离柱之一。所介绍的Kr分离系统具有经证明的能力,可以在75分钟内从1.2至26.8 L STP的各种浓度CH4空气中提取Kr,产率> 90%,纯度为99%。该设备已成功用于野外采样和地下水样品净化。 (C)2016 Elsevier B.V.保留所有权利。

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