可变形凝胶颗粒封堵高含水油藏泛连通层间通道的实验研究

IF 5.3 3区 化学 Q1 POLYMER SCIENCE
Gels Pub Date : 2025-08-27 DOI:10.3390/gels11090686
Wenjing Zhao, Jing Wang, Tianjiang Wu, Ronald Omara Erik, Zhongyang Qi, Huiqing Liu
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引用次数: 0

摘要

泛连通夹层广泛存在于油藏中,在不同位置形成流动通道。然而,传统的调剖剂很难封堵储层中的深层层间通道,从而限制了注入水的波及体积。此外,还缺乏一种明确的方法来物理模拟具有层间通道的泛连通油藏,并计算通道间的流量。本研究建立了泛连通层间储层物理模型,开展了可变形凝胶颗粒(DGPs)对层间通道的封堵实验。提出了一种基于质量守恒的层间通道流量迭代计算方法,揭示了DGP注入及后续水驱过程中层间通道流量的变化规律。最后,对泛连通层间油藏进行了驱油和DGP剖面控制实验。研究表明,在注入DGP过程中,注入水通过导水层中部和前部的层间通道进入潜在层,并通过生产井附近的通道旁路返回导水层。随着DGP注入量的增加,各通道流速增大。在随后的水驱过程中,DGP的破坏导致其沿程封堵能力迅速下降,因此水从势层通过所有层间通道绕过回导水层。随着DGP注入量的增加,各通道流速减小。在高含水期,大体积DGPs对层间窜储层具有调节作用。其作用机理为颗粒运移增大层间压差,推动注入水通过层间通道从窜水层向势层扩散,提高采收率19.74%。DGP注入时层间通道的流动特性对驱油有积极作用,因此在各注入体积条件下,该过程的采收率均大于后续水驱阶段。本研究的核心目标是研究高含水油藏泛连通层间通道dgp的堵塞机理,建立层间流量量化方法,揭示dgp如何调节流动再分配以提高采收率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Experimental Investigation of Deformable Gel Particles (DGPs) for Plugging Pan-Connected Interlayer Channels in High-Water-Cut Reservoirs.

Experimental Investigation of Deformable Gel Particles (DGPs) for Plugging Pan-Connected Interlayer Channels in High-Water-Cut Reservoirs.

Experimental Investigation of Deformable Gel Particles (DGPs) for Plugging Pan-Connected Interlayer Channels in High-Water-Cut Reservoirs.

Experimental Investigation of Deformable Gel Particles (DGPs) for Plugging Pan-Connected Interlayer Channels in High-Water-Cut Reservoirs.

Pan-connected interlayers are widely present in oil reservoirs, forming flow channels at different positions. However, conventional profile control agents struggle to plug deep interlayer channels in reservoirs, limiting the swept volume of injected water. Additionally, a clear methodology for physically simulating pan-connected reservoirs with interlayer channels and calculating interchannel flow rates remains lacking. In this study, a physical model of pan-connected interlayer reservoirs was constructed to carry out deformable gel particles (DGPs) plugging experiments on interlayer channels. A mass conservation-based flow rate calculation method for interlayer channels with iterative solution was proposed, revealing the variation law of interlayer channel flow rates during DGP injection and subsequent water flooding. Finally, oil displacement and DGP profile control experiments in pan-connected interlayer reservoirs were conducted. The study shows that during DGP injection, injected water enters the potential layer through interlayer channels in the middle and front of the water-channeling layer and bypasses back to the water-channeling layer through channels near the production well. With the increase in DGP injection volume, the flow rate of each channel increases. During subsequent water flooding, DGP breakage leads to a rapid decline in its along-path plugging capability, so water bypasses back to the water-channeling layer from the potential layer through all interlayer channels. As the DGP injection volume increases, the flow rate of each channel decreases. Large-volume DGPs can regulate interlayer channeling reservoirs in the high water cut stage. Its effectiveness mechanism involves particle migration increasing the interlayer pressure difference, which drives injected water to sweep from the water-channeling layer to the potential layer through interlayer channels, improving oil recovery by 19.74%. The flow characteristics of interlayer channels during DGP injection play a positive role in oil displacement, so the oil recovery degree in this process is greater than that in the subsequent water flooding stage under each injection volume condition. The core objective of this study is to investigate the plugging mechanism of DGPs in pan-connected interlayer channels of high-water-cut reservoirs, establish a method to quantify interlayer flow rates, and reveal how DGPs regulate flow redistribution to enhance oil recovery.

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来源期刊
Gels
Gels POLYMER SCIENCE-
CiteScore
4.70
自引率
19.60%
发文量
707
审稿时长
11 weeks
期刊介绍: The journal Gels (ISSN 2310-2861) is an international, open access journal on physical (supramolecular) and chemical gel-based materials. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the maximum length of the papers, and full experimental details must be provided so that the results can be reproduced. Short communications, full research papers and review papers are accepted formats for the preparation of the manuscripts. Gels aims to serve as a reference journal with a focus on gel materials for researchers working in both academia and industry. Therefore, papers demonstrating practical applications of these materials are particularly welcome. Occasionally, invited contributions (i.e., original research and review articles) on emerging issues and high-tech applications of gels are published as special issues.
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