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Investigation of Pore Structure and Fractal Characteristics in an Organic-Rich Shale Gas-Condensate Reservoir from the Duvernay Formation

机译:杜弗债料富含物流 - 富含物体冷凝水储层的孔隙结构和分形特征研究

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Interest has spread to potential unconventional shale reservoirs in the last decades,and they have become an increasingly important source of hydrocarbon.Importantly,pore structure of shale has considerable effects on the storage,seepage and output of the fluids in shale reservoirs so that reliable fractal characteristics are essential.To better understand the evolution characteristics of pore structure for a shale gas condensate reservoir and their influence on liquid hydrocarbon occurrences and reservoir physical properties,we conducted high-pressure mercury intrusion tests (HPMIs),field emission scanning electron microscopies (FESEM),total organic carbon (TOC),Rock-Eval pyrolysis and saturation measurements on samples from the Duvernay formation.Furthermore,the fractal theory is applied to calculate the fractal dimension of the capillary pressure curves,and three fractal dimensions D1,D2 and D3 are obtained.The relationships among the characteristics of the Duvernay shale (TOC,organic matter maturity,fluid saturation),the pore structure parameters (permeability,porosity,median pore size),and the fractal dimensions were investigated.The results show that the fractal dimension D1 ranges from 2.44 to 2.85,D2 ranges from 2.09 to 2.15 and D3 ranges from 2.35 to 2.48.D2 and D3 have a good positive correlation.The pore system studied mainly consists of organic pores and microfractures,with the percentage of micropores being 50.38%.TOC has a positive relationship with porosity and D3 due to the development of organic pores.D3 has a positive correlation with gas saturation.With increased D3,median pore size shows a decreasing trend and an increase in permeability and porosity,demonstrating that D3 has a large effect on pore size distribution and the heterogeneity of pore size.In general,D3 has a better correlation with petrophysical and petrochemical parameters.Fractal theory can be applied to better understand the pore evolution,pore size distribution and fluid storage capacity of shale reservoirs.
机译:有兴趣在过去几十年蔓延到潜在的非常规页岩储层,他们已经成为hydrocarbon.Importantly的一个日益重要的来源,页岩的孔隙结构对存储,防渗和页岩储层流体的输出,使得可靠的分形相当大的影响特性essential.To更好地理解的孔结构的用于页岩凝析气藏的演变特征及其对液态烃发生和储层的物理性质,我们进行高压汞侵入测试(HPMIs),场发射扫描电镜的影响(FESEM ),总有机碳(TOC),对从迪韦奈formation.Furthermore样品生油岩评价仪热解和饱和度的测量,分形理论应用于计算的毛细压力曲线的分形维数,以及三个分形维数D1,D2和D3是迪韦奈页岩的特性之间的关系obtained.The(TOC,器官IC物成熟度,流体饱和度),该孔结构参数(渗透率,孔隙度,中值孔径),并且分形维数的影响。结果表明,分形维数D1的范围为2.44至2.85,D2的范围为2.09至2.15和D3的范围从2.35到2.48.D2和D3具有主要研究了一个良好的积极correlation.The孔径系统由有机毛孔和微裂缝,用微孔为50.38%.TOC已经与孔隙度和D3正相关的比例因发展的有机pores.D3具有气体saturation.With正相关增加D3,中值孔径示出减小的趋势,并增加了渗透性和孔隙率,表明D3对孔径分布有很大的影响和孔径的异质性。一般而言,D3与岩石物理和石化parameters.Fractal理论更好的相关性可以适用于更好地理解孔隙演化,孔径分布和流体存储ç页岩储层的apacity。

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