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首页> 外文期刊>Energy & fuels >Improved Methane Adsorption Model in Shale by Considering Variable Adsorbed Phase Density
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Improved Methane Adsorption Model in Shale by Considering Variable Adsorbed Phase Density

机译:考虑可变吸附相密度,改善了页岩中的甲烷吸附模型

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摘要

Numerous models have been used to describe the isotherm adsorption of supercritical methane in porous media. Many models assume that the adsorbed phase density does not change with pressure during the adsorption process. However, recent studies show that this assumption is unreasonable, and the resulting error is enormous. Therefore, we propose an improved isotherm adsorption model in shale that assumes that the adsorbed phase density keeps changing and that adsorbed phase volume remains constant during the adsorption process [the variable density adsorption (VD) model]. A logarithmic function is used to describe the change of the adsorbed phase density during the adsorption process. The product of the adsorbed phase density and volume is used to calculate the adsorption capacity. The fitting results for large amounts of methane adsorption data show that this assumption is reasonable. The fitting results are consistent with the molecular simulation, and it will be more convenient to obtain the truly adsorbed phase volume and density. The adsorbed phase volume and density obtained by the VD model show a good positive correlation with the total organic carbon, specific surface area, and micropore volume, which indicates the rationality of adsorption parameters fitted by the model. As a result of the correct calculation of the adsorption phase density, the gas in place (GIP) obtained by the VD model is lower than the supercritical Dubinin–Radushkevich model. The new model proposed this time provides a new tool for the study of shale methane isotherm adsorption and a new model for the calculation of GIP. Using this model, the adsorbed phase density and volume of methane can be obtained more conveniently and accurately. This will be a milestone in the VD model.
机译:许多模型已被用于描述多孔介质中超临界甲烷的等温吸附。许多模型假设吸附相密度在吸附过程中不会随压而变化。然而,最近的研究表明,这种假设是不合理的,所产生的错误是巨大的。因此,我们在页岩中提出了一种改进的等温吸附模型,假设吸附相密度不断变化并且在吸附过程中吸附相体积保持恒定[可变密度吸附(Vd)模型]。对数函数用于描述吸附过程中吸附相密度的变化。吸附相密度和体积的产物用于计算吸附能力。大量甲烷吸附数据的拟合结果表明这种假设是合理的。拟合结果与分子模拟一致,获得真正吸附的相体积和密度将更方便。通过VD模型获得的吸附相体积和密度显示出与总有机碳,比表面积和微孔体积的良好正相关,这表明由模型装配的吸附参数的合理性。由于对吸附相密度的正确计算,由VD模型获得的原位(GIP)的气体低于超临界Dubinin-Radushkevich模型。这一时间提出的新型号为研究页岩甲烷等温机器吸附和新模型提供了一种新的工具,用于计算GIP的新模型。使用该模型,可以更方便和准确地获得吸附的相密度和甲烷体积。这将是VD模型中的里程碑。

著录项

  • 来源
    《Energy & fuels》 |2021年第3期|2064-2074|共11页
  • 作者单位

    CNOOC Research Institute Company Limited;

    CNOOC Research Institute Company Limited;

    School of Geosciences China University of Petroleum (East China);

    Bohai Oilfield Research Institute Tianjin Branch of CNOOC Limited;

    School of Geosciences China University of Petroleum (East China);

    Key Laboratory of Tectonics and Petroleum Resources of Ministry of Education School of Earth Resources China University of Geosciences;

    Key Laboratory of Tectonics and Petroleum Resources of Ministry of Education School of Earth Resources China University of Geosciences;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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