Multicomponent Mass Transfer in Dissolved Gas Analysis: The Impacts of Headspace Pressurization on Reliable Measurement

IF 4.3 Q1 ENVIRONMENTAL SCIENCES ACS ES&T water Pub Date : 2025-02-03 DOI:10.1021/acsestwater.4c00652
Cole J.C. Van De Ven*, Isabella R. Hearne and Madeline M. Calvert, 
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Abstract

Measuring dissolved gas concentrations such as methane (CH4), carbon dioxide (CO2), and hydrogen (H2) (e.g., groundwater or surface water samples) is important for ensuring safe and effective subsurface energy development and storage. A common method is to collect water samples in fixed-volume sealed vessels and then use static headspace equilibrium techniques to quantify the dissolved gas concentrations by gas chromatography. Previously, the presence of multiple gas components was not considered during the analysis of water samples but is necessary. A mass balance approach considering multicomponent mass transfer was developed and validated, and the impact on dissolved gas measurements was quantified. It was found that mass transfer occurring in fixed-volume vessels leads to pressurization of sample headspace during analysis, causing error. Higher solubility gases (e.g., CO2) exhibit higher headspace pressurization and larger errors than lower solubility gases (e.g., CH4). In addition, it was found that the volume of the headspace induced and the co-occurrence of multiple dissolved gas species in a sample can exacerbate headspace pressurization and error. Overall, caution must be taken when using static headspace equilibrium techniques; if multicomponent mass transfer is not considered, error and potential under reporting of dissolved concentrations is possible.

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溶解气体分析中的多组分传质:顶空加压对可靠测量的影响
测量溶解气体浓度,如甲烷(CH4)、二氧化碳(CO2)和氢气(H2)(例如地下水或地表水样品)对于确保安全有效的地下能源开发和储存非常重要。一种常用的方法是在固定体积的密封容器中收集水样,然后使用静态顶空平衡技术通过气相色谱法定量溶解气体浓度。以前,在分析水样时没有考虑到多种气体成分的存在,但这是必要的。提出并验证了一种考虑多组分传质的质量平衡方法,并量化了对溶解气体测量的影响。研究发现,在分析过程中,固定体积容器内发生的传质会导致样品顶空受压,从而产生误差。高溶解度气体(如CO2)比低溶解度气体(如CH4)表现出更高的顶空压力和更大的误差。此外,还发现样品中诱导的顶空体积和多种溶解气体的共存会加剧顶空压力和误差。总的来说,在使用静态顶空平衡技术时必须谨慎;如果不考虑多组分传质,溶解浓度报告的误差和潜在误差是可能的。
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