利用拉曼光谱结合连续气液分离器对海水中的多组分溶解气体进行快速实时分析

IF 3.7 3区 工程技术 Q2 ENGINEERING, CHEMICAL
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引用次数: 0

摘要

快速灵敏地检测海水中的溶解气体对于研究全球碳循环至关重要。由于单一气体传感器不具备多种气体的识别能力,大量原位光学检测技术的测量效率受到限制。本研究基于大分压差下的连续气液分离器,提出了一种监测多组分溶解气体的新型气液拉曼检测方法。气体拉曼光谱仪对 N2 气体的检测限约为 14 μl-L-1。此外,基于连续气液分离过程,与传统检测方法(30 分钟)相比,溶解气体的检测时间可大幅缩短至约 200 秒。平衡时间对气液分离过程的影响表明,这些溶解气体的提取效率和衰减时间为 CO2 >O2 >N2。此外,平衡时间与流速的关系分析表明,衰减时间随流速的增加而减少。所开发系统的验证和应用表明,它在研究海水中溶解气体的成分和时空分布方面具有巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Rapid and real-time analysis of multi-component dissolved gas in seawater by Raman spectroscopy combined with continuous gas−liquid separator

Rapid and real-time analysis of multi-component dissolved gas in seawater by Raman spectroscopy combined with continuous gas−liquid separator

Rapid and sensitive detection of dissolved gases in seawater is quite essential for the investigation of the global carbon cycle. Large quantities of in situ optical detection techniques showed restricted measurement efficiency, owing to the single gas sensor without the identification ability of multiple gases. In this work, a novel gas−liquid Raman detection method of monitoring the multi-component dissolved gases was proposed based on a continuous gas−liquid separator under a large difference of partial pressure. The limit of detection (LOD) of the gas Raman spectrometer could arrive at about 14 μl·L−1 for N2 gas. Moreover, based on the continuous gas−liquid separation process, the detection time of the dissolved gases could be largely decreased to about 200 s compared with that of the traditional detection method (30 min). Effect of equilibrium time on gas−liquid separation process indicated that the extracted efficiency and decay time of these dissolved gases was CO2 >O2 >N2. In addition, the analysis of the relationship between equilibrium time and flow speed indicated that the decay time decreased with the increase of the flow speed. The validation and application of the developed system presented its great potential for studying the components and spatiotemporal distribution of dissolved gases in seawater.

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来源期刊
Chinese Journal of Chemical Engineering
Chinese Journal of Chemical Engineering 工程技术-工程:化工
CiteScore
6.60
自引率
5.30%
发文量
4309
审稿时长
31 days
期刊介绍: The Chinese Journal of Chemical Engineering (Monthly, started in 1982) is the official journal of the Chemical Industry and Engineering Society of China and published by the Chemical Industry Press Co. Ltd. The aim of the journal is to develop the international exchange of scientific and technical information in the field of chemical engineering. It publishes original research papers that cover the major advancements and achievements in chemical engineering in China as well as some articles from overseas contributors. The topics of journal include chemical engineering, chemical technology, biochemical engineering, energy and environmental engineering and other relevant fields. Papers are published on the basis of their relevance to theoretical research, practical application or potential uses in the industry as Research Papers, Communications, Reviews and Perspectives. Prominent domestic and overseas chemical experts and scholars have been invited to form an International Advisory Board and the Editorial Committee. It enjoys recognition among Chinese academia and industry as a reliable source of information of what is going on in chemical engineering research, both domestic and abroad.
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