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首页> 外文期刊>Analytical chemistry >Field-Based Stable Isotope Analysis of Carbon Dioxide by Mid-Infrared Laser Spectroscopy for Carbon Capture and Storage Monitoring
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Field-Based Stable Isotope Analysis of Carbon Dioxide by Mid-Infrared Laser Spectroscopy for Carbon Capture and Storage Monitoring

机译:利用中红外激光光谱技术对二氧化碳进行基于场的稳定同位素分析,用于碳捕获和存储监测

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A newly developed isotope ratio laser spectrometer for CO2 analyses has been tested during a tracer experiment at the Ketzin pilot site (northern Germany) for CO2 storage. For the experiment, 500 tons of CO2 from a natural CO2 reservoir was injected in supercritical state into the reservoir. The carbon stable isotope value (delta C-13) of injected CO2 was significantly different from background values. In order to observe the breakthrough of the isotope tracer continuously, the new instruments were connected to a stainless steel riser tube that was installed in an observation well. The laser instrument is based on tunable laser direct absorption in the mid-infrared. The instrument recorded a continuous 10 day carbon stable isotope data set with 30 min resolution directly on-site in a field-based laboratory container during a tracer experiment. To test the instruments performance and accuracy the monitoring campaign was accompanied by daily CO2 sampling for laboratory analyses with isotope ratio mass spectrometry (IRMS). The carbon stable isotope ratios measured by conventional IRMS technique and by the new mid-infrared laser spectrometer agree remarkably well within analytical precision. This proves the capability of the new mid-infrared direct absorption technique to measure high precision and accurate real-time stable isotope data directly in the field. The laser spectroscopy data revealed for the first time a prior to this experiment unknown, intensive dynamic with fast changing delta C-13 values. The arrival pattern of the tracer suggest that the observed fluctuations were probably caused by migration along separate and distinct preferential flow paths between injection well and observation well. The short-term variances as observed in this study might have been missed during previous works that applied laboratory-based IRMS analysis. The new technique could contribute to a better tracing of the migration of the underground CO2 plume and help to ensure the long-term integrity of the reservoir.
机译:在Ketzin中试站(德国北部)进行的示踪实验中,已经测试了新开发的用于二氧化碳分析的同位素比激光光谱仪,用于二氧化碳的存储。对于实验,将来自自然CO2储层的500吨CO2以超临界状态注入到储层中。注入的CO2的碳稳定同位素值(δC-13)与背景值显着不同。为了连续观察同位素示踪剂的突破,将新仪器连接到安装在观察井中的不锈钢立管。激光仪器基于中红外的可调激光直接吸收。在示踪剂实验期间,该仪器直接在基于现场的实验室容器中以30分钟的分辨率记录了连续的10天碳稳定同位素数据集。为了测试仪器的性能和准确性,在监测工作中每天进行二氧化碳采样,以进行同位素比质谱法(IRMS)进行实验室分析。通过常规IRMS技术和新型中红外激光光谱仪测得的碳稳定同位素比率在分析精度范围内非常吻合。这证明了新的中红外直接吸收技术能够直接在现场测量高精度和准确的实时稳定同位素数据的能力。激光光谱数据首次揭示了该实验之前未知,密集的动态,其δC-13值快速变化。示踪剂的到达模式表明,观测到的波动可能是由于沿着注入井和观测井之间的不同且不同的优先流动路径迁移所引起的。在先前的应用基于实验室的IRMS分析的工作中,本研究中观察到的短期差异可能已被忽略。新技术可能有助于更好地追踪地下二氧化碳羽流的迁移,并有助于确保储层的长期完整性。

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