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首页> 外文期刊>Journal of natural gas science and engineering >A novel pressure transient response model considering multiple migration mechanisms in shale gas reservoir
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A novel pressure transient response model considering multiple migration mechanisms in shale gas reservoir

机译:考虑页岩气藏多种运移机制的新型压力瞬态响应模型

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摘要

Since the shale gas production data predicted by traditional simulators is far below that of field test, reservoir volume parameters are often modified to meet the fitting demands. Most pressure transient models of reservoir, merely based on Darcy flow in the matrix and natural fractures, neglect the comprehensive influences of viscous flow, slip flow, transition flow and Knudsen flow, etc. In this paper, two gas apparent permeability models considering multiple migration mechanisms are established through theoretical derivation and fitting. The models are applicable to various flow states and will help to simplify percolation models of matrix and fracture system. To achieve a better understanding of the migration mechanisms of shale matrix, the effects of compressed gas in the matrix pores, adsorbed gas on the pore wall and the diffused gas from kerogen on transient pressure should all be taken into account. Based on the newly established gas apparent permeability models, a pseudo-triple-medium transient percolation mathematical model of multi-fractured horizontal well affected by multiple migration mechanisms is presented with the consideration of dissolved gas diffusion in kerogen and adsorbed gas desorption on matrix surface in the shale gas reservoir. Source function idea combined with Laplace transform, linear approximation and delta generalized function is used to get the point source solution of the mathematical model. By discretizing the artificial fractures, the pressure transient response of multi-fractured horizontal well in Laplace space is obtained on the basis of point source solution. Then pressure transient response type curves are plotted by computer programming, and pressure influence factors are also analyzed. Besides, isothermal adsorption experiment data of shale cores indicates that the organic carbon content (TOC) has obvious correlation with the adsorption coefficient defined in this paper, which gives a clue to link up the exploitation research with geological study, playing a guiding role in analyzing pressure response of the shale gas reservoir. (C) 2014 Elsevier B.V. All rights reserved.
机译:由于传统模拟器预测的页岩气产量数据远低于现场测试的数据,因此经常修改储层体积参数以满足拟合要求。大多数储层压力瞬变模型仅基于基质中的达西流和自然裂缝,而忽略了粘性流,滑流,过渡流和克努森流等的综合影响。本文中,考虑了多次运移的两种视在渗透率模型通过理论推导和拟合建立机理。该模型适用于各种流动状态,将有助于简化基质和裂缝系统的渗流模型。为了更好地理解页岩基质的运移机理,应考虑基质孔隙中的压缩气体,孔隙壁上的吸附气体以及干酪根的扩散气体对瞬态压力的影响。基于新建立的视在渗透率模型,考虑了溶解气在干酪根中的扩散和吸附气在基体表面的脱附,提出了受多种运移机制影响的多裂口水平井的准三重瞬态渗流数学模型。页岩气藏。将源函数思想与拉普拉斯变换,线性逼近和增量广义函数相结合,得出数学模型的点源解。通过离散化人工裂缝,在点源解的基础上获得了拉普拉斯空间中多缝水平井的压力瞬态响应。然后通过计算机程序绘制压力瞬态响应类型曲线,并分析压力影响因素。此外,页岩岩心的等温吸附实验数据表明,有机碳含量(TOC)与本文定义的吸附系数具有明显的相关性,这为将开采研究与地质研究联系起来提供了线索,对分析工作起到了指导作用。页岩气储层的压力响应。 (C)2014 Elsevier B.V.保留所有权利。

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