表面活性剂在水湿型天然裂缝性油藏中的应用数值分析

E. Hoffmann, Samir Alakbarov
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引用次数: 0

摘要

高非均质性和复杂的流体流动行为加剧了天然裂缝性储层的常规采收率。在过去的几年里,人们对表面活性剂的兴趣越来越浓厚,并对这类非常规油藏进行了大量的实验室和现场测试,将表面活性剂作为提高采收率(EOR)的药剂。然而,大部分的注意力都集中在表面活性剂在混湿或油湿条件下的应用上,而对水湿岩石的应用报道较少。本研究的目的是更好地理解和定量分析低界面张力(IFT)辅助表面活性剂在水湿NFRs中的提高采收率机理。为此,利用商用CMG模拟器,通过数值模拟再现了先前发表的实验。Schechter等人(1994)和al - quraishi(2004)分别在水湿岩心样品中进行的静态和动态渗吸实验表明,低IFT表面活性剂具有增加采收率的效果。利用所报告的数据和边界条件,为每个实验建立了概念数值模型。除了数值模拟之外,数值模拟器中没有考虑到的键数的人工计算,已经详细地了解了毛细管力和重力之间的平衡以及它们对油去饱和的贡献。低IFT静态渗吸实验的模拟结果表明,用于实验匹配的临界毛细管数比文献中通常报道的要低几个数量级。Bond数值的计算也表明,观测到的低IFT增量恢复效应不能用重力的增强来解释。另一方面,动态渗吸实验的数值分析表明,粘性力对增加采收率有很大的贡献,这与通常认为的粘性力对NFRs采收率的影响有限相反。数值模拟研究表明,低IFT辅助重力对原油脱饱和度的影响较小。总的来说,所进行的研究表明,在低渗透岩心中,重力对石油脱饱和度的贡献很小。从实验中评估Bond数,表明降低到超低IFT值有助于实现重力对恢复的合理影响。然而,这一假设的验证需要进一步的研究和实验室实验的实施。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Analysis of Surfactant Application in Water-Wet Naturally Fractured Reservoirs
High heterogeneity and complex fluid flow behavior aggravates the recovery by conventional means from naturaly fractured reservoirs (NFRs). The last years have seen an increasing interest and a lot of laboratory and field tests were perfomed with the surfactants as Enhanced Oil Recovery (EOR) agents for this type of unconventional reservoirs. However, most of the attention was focused on application of the surfactants in mixed- to oil-wet conditions and not much is reported for the water-wet rocks. The aim of this study is to better understand and provide the quantitave analysis of the low interfacial tension (IFT) aided surfactant EOR mechanisms in water-wet NFRs. For this purpose, the previously published experiments are reproduced by means of numerical modeling employing commercialy available CMG simulator. Static and dynamic imbibition experiments in water-wet core samples performed by Schechter et al. (1994) and by Al-Quraishi (2004) respectively, showed incremental oil recovery effects of low IFT surfactants. Using the reported data and boundary conditions, conceptual numerical models are built for each of the experiments. In addition to numerical simulations, manual calculations of the Bond Number, which is not accounted for in the numerical simulator, has given a detailed insight on the balance between capillary and gravitational forces as well their contribution on oil desaturation. Simulation results of low IFT static imbibition experiments without initial water saturation have shown that the critical capillary numbers used for the matching of the experiments are orders of magnitude lower than those typically reported in literature. Calculation of the Bond number values also revealed that the observed low IFT incremental recovery effects cannot be explained by intensification of the gravitational forces. On the other hand, numerical analysis of dynamic imbibition experiments indicated considerable contribution of viscous forces towards incremental oil recovery, in contrary to conventional believe that the visous forces have limited effect on recovery from NFRs. The conducted numerical simulation study revealed that contribution of low IFT aided gravity forces on oil desaturation is minor. Overall the performed study revealed the weak contribution of the gravitational forces on oil desaturation in low permeability cores. Evaluation of the Bond numbers from the experiments, suggested that reduction to ultra-low IFT values can help to achieve the reasonable effect of gravity forces on recovery. However, the validation of this postulate requires implementation of further studies and laboratory experiments.
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