Hybrid Technique for Setting Initial Water Saturation on Core Samples

Victor Fernandes, B. Nicot, F. Pairoys, Herni Bertin, J. Lachaud, C. Caubit
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Abstract

Relative permeability and capillary pressure are important parameters in reservoir simulations because it helps in understanding and anticipating oil and/or gas production scenarios over the years. They are both obtained in a laboratory after establishing the required initial conditions. As a matter of fact, before measuring imbibition relative permeability and capillary pressure, it is recommended to set initial rock reservoir conditions by establishing appropriate initial water saturation (Swi) and by aging the core to restore the reservoir wettability. There are several conventional techniques to establish Swi. Viscous flooding is a fast technique, but it may create a non-uniform saturation profile and, in some cases, be inefficient in reaching low Swi targets. Centrifugation is a capillary-driven technique that is also very fast; however, the possibility of not desaturating the outlet face is a significant constraint. In both cases, reversing flow direction is generally performed to flatten the saturation profile; however, this phenomenon is poorly controlled. The application of capillary pressure by porous plate allows targeting a specific value of Swi and generates a uniform saturation profile; however, it is a very time-consuming method. In this paper, we present the Hybrid Drainage Technique (HDT), which couples viscous flooding and porous plate approaches, significantly reducing the experimental duration when setting Swi. Another advantage of the method is the possibility of setting a uniform saturation profile at the targeted Swi. A specific core holder, adapted to nuclear magnetic resonance (NMR) imaging and capable of performing both viscous flooding and porous plate testing without unloading the rock, was designed. Using this core holder enables performing aging and imbibition coreflood testing with no further manipulation of the core sample. Monitoring saturation profiles was made possible by using an NMR imaging setup. The method has been tested and validated on two outcrop samples from Bentheimer (sandstone) and Richemont (limestone), drastically reducing the experimental time of the primary drainage step in comparison to classical porous plate drainage but also leading to uniform water saturation profiles. The experiment duration is reduced, and it enables the realization of coreflooding; therefore, this technique may be used for larger samples classically used in relative permeability experiments. This approach is preferred as it provides faster and more reliable measurements of saturation.
设定岩心样品初始含水饱和度的混合技术
相对渗透率和毛管压力是油藏模拟中的重要参数,因为它有助于理解和预测多年来的油气生产情况。它们都是在实验室中建立所需的初始条件后得到的。实际上,在测量吸胀相对渗透率和毛管压力之前,建议通过建立适当的初始含水饱和度(Swi)和岩心老化来设定初始岩石储层条件,以恢复储层润湿性。有几种建立Swi的常规技术。粘性驱是一种快速的技术,但它可能会产生不均匀的饱和度剖面,并且在某些情况下,在达到低Swi目标时效率不高。离心是一种毛细管驱动的技术,也非常快;然而,出口面不去饱和的可能性是一个重要的限制。在这两种情况下,通常进行反向流动以平坦饱和剖面;然而,这种现象没有得到很好的控制。通过多孔板施加毛细管压力,可以瞄准特定的Swi值,并产生均匀的饱和度剖面;然而,这是一个非常耗时的方法。在本文中,我们提出了混合排水技术(HDT),该技术将粘性驱油和多孔板方法结合在一起,显著缩短了设置Swi时的实验时间。该方法的另一个优点是可以在目标Swi处设置均匀的饱和度剖面。设计了一种特殊的岩心固定器,适用于核磁共振(NMR)成像,能够在不卸载岩石的情况下进行粘性驱油和多孔板测试。使用该岩心支架,无需进一步操作岩心样品,即可进行老化和渗吸岩心驱替测试。通过使用核磁共振成像装置,监测饱和度剖面成为可能。该方法已经在Bentheimer(砂岩)和Richemont(石灰岩)的两个露头样品上进行了测试和验证,与传统的多孔板排水相比,该方法大大减少了初级排水步骤的实验时间,同时也获得了均匀的含水饱和度剖面。缩短了实验时间,实现了岩心驱替;因此,该技术可用于相对渗透率实验中常用的较大样品。这种方法是首选的,因为它提供了更快和更可靠的饱和度测量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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