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Modeling High-Pressure Methane Adsorption on Shales with a Simplified Local Density Model

机译:用简化的局部密度模型建模高压甲烷吸附Shales

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Shale gas has attracted increasing attention as a potential alternative gas in recent years. Because a large fraction of gas in shale formation is in an adsorbed state, knowledge of the supercritical methane adsorption behavior on shales is fundamental for gas-in-place predictions and optimum gas recovery. A practical model with rigorous physical significance is necessary to describe the methane adsorption behavior at high pressures and high temperatures on shales. In this study, methane adsorption experiments were carried out on three Lower Silurian Longmaxi shale samples from the Sichuan Basin, South China, at pressures of up to 30 MPa and temperatures of 40, 60, 80, and 100 °C. The simplified local density/Elliott–Suresh–Donohue model was adopted to fit the experimental data in this study and the published methane adsorption data. The results demonstrate that this model is suitable to represent the adsorption data from the experiments and literature for a wide range of temperatures and pressures, and the average absolute deviation is within 10%. The methane adsorption capacity of the Longmaxi shale exhibited a strong linear positive correlation with the total organic carbon content and a linear negative correlation with increasing temperature. The rate of decrease in the methane adsorption capacity with swing temperature increased with the total organic carbon content, indicating that the organic matter is sensitive to temperature.
机译:近年来,页岩气引起了潜在的替代气体的关注。由于页岩形成的大部分气体处于吸附状态,因此对储气预测和最佳气体回收的超临界甲烷吸附行为的知识是基本的。一种具有严格物理意义的实际模型对于在高压下描述甲烷吸附行为以及高温下的高温。在这项研究中,甲烷吸附实验是在南方四川盆地的三个低级硅藻土样品上进行,压力高达30MPa,温度为40,60,80和100°C。采用简化的局部密度/椭葱苏察群体模型适用于本研究中的实验数据和已发表的甲烷吸附数据。结果表明,该模型适用于代表来自实验和文献的吸附数据,在各种温度和压力范围内,平均绝对偏差在10%以内。龙马西页岩的甲烷吸附能力与总有机碳含量和随着温度的提高线性负相关表现出强烈的线性阳性相关性。随着总有机碳含量的增长,甲烷吸附容量的降低速率增加,表明有机物质对温度敏感。

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  • 来源
    《ACS Omega 》 |2020年第10期| 共13页
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    Ke Hu; Helmut Mischo;

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