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首页> 外文期刊>Journal of natural gas science and engineering >Petro-physical properties of Marcellus shale samples and their impact on CO2 adsorption: Equilibrium, kinetics, and empirical modeling study
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Petro-physical properties of Marcellus shale samples and their impact on CO2 adsorption: Equilibrium, kinetics, and empirical modeling study

机译:Marcellus页岩样品的石油物理性质及其对CO2吸附的影响:均衡,动力学和经验造型研究

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摘要

The correlation of CO2 adsorption characteristics with the associated shale samples mineralogy, at various total organic contents, are essential for CO2 sequestration, improved oil recovery, and gas storage operations. In this work, Marcellus shale samples from the U.S.A are studied for their CO2 adsorption capacities in term of equilibrium and kinetics. A series of analyses, including total organic carbon content, X-ray diffraction, Fourier Transform Infra-red Spectroscopy, Field Emission Scanning Electron Microscopy, temperature-programmed desorption, and N-2/CO2 adsorption were performed. Gravimetric adsorption technique with magnetic suspension balance at 298 K and up to 20 bars is used to conduct isothermal adsorption and desorption measurements. Considerable organic contents of approximate to 3-18 wt% are observed. Clay minerals such as calcite, illite, kaolinite and smectite are identified with up to 50 wt% ratio of some samples. Porosity and pore distribution analysis illustrate that the samples are mostly mesoporous with hysteresis supporting bottleneck or open ended-shaped pores. The temperature-programmed adsorption encouraged the phenomenon of chemisorption. Though, equilibrium isotherm modelling supported physical and chemical, heterogeneous, and multilayer adsorption. The kinetic investigation by double exponential model shows different rate of adsorption, which can be due to mineralogical alteration, physical properties or organic content. A new empirical model is developed to study the effect of relative pressure and porosity on the adsorption capacity using polynomial curve fitting technique. The model will help to predict the adsorption uptake at different operating pressures and porosity for future studies. The study can demonstrate insightful findings related to CO2 separation, sequestration and gas production for enhanced hydrocarbons recovery.
机译:CO 2吸附特性与相关的页岩样品矿物,在各种总有机含量,对CO 2封存,改善的采油和储气操作是必不可少的。在这项工作中,研究了来自U.A的Marcellus页岩样品在均衡和动力学期间研究了它们的CO 2吸附能力。一系列分析,包括总有机碳含量,X射线衍射,傅里叶变换红外线 - 红色光谱,场发射扫描电子显微镜,温度编程的解吸和N-2 / CO 2吸附。具有磁悬浮余量的重量吸附技术在298 k和最多20巴中用于进行等温吸附和解吸测量。观察到近似3-18wt%的相当大的有机含量。粘土矿物如方解石,illite,高岭土和蒙脱石鉴定出多达50wt%的一些样品。孔隙率和孔径分布分析说明样品主要是缺乏滞后支撑瓶颈或开放的端部孔隙。温度编程的吸附鼓励了化学吸取的现象。虽然,平衡等温模型支持物理和化学,异构和多层吸附。双指数模型的动力学调查显示出不同的吸附速率,这可能是由于矿物改变,物理性质或有机含量。开发了一种新的经验模型,以研究使用多项式曲线配件技术研究相对压力和孔隙率对吸附能力的影响。该模型将有助于预测不同操作压力和孔隙率的吸附吸收,以供未来的研究。该研究可以证明与CO 2分离,螯合和天然气生产相关的富有见解发现,用于增强碳氢化合物恢复。

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