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Analysis of carbon dioxide sequestration in shale gas reservoirs by using experimental adsorption data and adsorption models

机译:利用实验吸附数据和吸附模型分析页岩气储层中的二氧化碳固存

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For carbon dioxide (CO2) sequestration in depleted shale gas reservoirs or CO2 injection as an enhanced shale gas recovery technique, it is important to understand the adsorption mechanism in these reservoirs. In this study, experimental adsorption measurements for Dadas shale samples were conducted at 25 degrees C, 50 degrees C, and 75 degrees C up to approximately 2000 psia by using pure CO2 (maximum adsorption capacity 0.211 mmol/g at 25 degrees C) and pure methane (CH4) (maximum adsorption capacity 0.0447 mmol/g at 25 degrees C). By using Langmuir isotherm and Ono-Kondo lattice models (three-layer and monolayer), experimental adsorption results were evaluated and adsorption isotherms were constructed. It was concluded that Ono-Kondo monolayer model is really capable of fitting adsorption isotherms, especially at high pressures for CO2 adsorption. For initial gas-in place calculations, the equations used by the help of Langmuir isotherm were modified with Ono-Kondo monolayer model and proposed to calculate the amount of CO2 that might be stored as adsorbed and free gas in depleted shale gas reservoirs. For the case in this study, it was calculated that adsorbed gas concentration changes from 39.2% to 71.8% between 5000 psia and 500 psia. Moreover, binary mixture Ono-Kondo monolayer model was used to evaluate the adsorption isotherm of CO2 CH4 mixtures by using their pure adsorption experimental data. This data is useful if there is a purpose to inject CO2 as an enhanced shale gas recovery technique because of the adsorption capacity difference between CH4 and CO2. (C) 2016 Elsevier B.V. All rights reserved.
机译:对于贫化页岩气储层中的二氧化碳封存或作为增强型页岩气回收技术的二氧化碳注入而言,重要的是了解这些储层中的吸附机理。在这项研究中,Dadas页岩样品的实验吸附测量是在25摄氏度,50摄氏度和75摄氏度下,通过使用纯CO2(25摄氏度下的最大吸附容量为0.211 mmol / g)和纯二氧化碳进行的,直至约2000 psia。甲烷(CH4)(25℃时的最大吸附量为0.0447 mmol / g)。通过使用Langmuir等温线和Ono-Kondo晶格模型(三层和单层),评估了实验吸附结果并构建了吸附等温线。结论是Ono-Kondo单层模型确实能够拟合吸附等温线,特别是在高压下吸附CO2的情况下。为了进行初始天然气入库计算,在Langmuir等温线的帮助下,使用Ono-Kondo单层模型对方程进行了修改,并提出了计算方法,以计算在贫化页岩气藏中可能以吸附和游离气形式存储的CO2量。对于本研究的案例,据计算,吸附的气体浓度在5000 psia至500 psia之间从39.2%变为71.8%。此外,使用二元混合物Ono-Kondo单层模型,通过利用纯吸附实验数据评估CO2 CH4混合物的吸附等温线。如果由于CH4和CO2之间的吸附能力不同而有意将CO2作为一种增强的页岩气回收技术进行注入,那么该数据将非常有用。 (C)2016 Elsevier B.V.保留所有权利。

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