Research on the Reservoir Adaptability and Oil Displacement Mechanism of a New Soft Microgel Particle Dispersion System

Zhe Sun, Xiaodong Kang, Risu Na, Jun Zhou
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Abstract

Heterogeneity is the basic characteristic of reservoir, which seriously affects the overall development effect of oilfield. In order to solve this problem, a new flooding system, soft microgel, has been developed in recent years. Its field test has obtained obvious effect of increasing oil and decreasing water. However, the research on its reservoir adaptability and displacement mechanism are still in the initial stage. Therefore, this paper has carried out relevant research work and introduced the field test results. Soft microgel particle dispersion is a heterogeneous system, composing of microgel particles and carrier fluid. In this paper, the microfluidic technology was used to simulate the particle separation phenomenon in the migration process of soft microgels. Guided by the theory of red blood cells in biological fluid mechanics, a mathematical model of concentration distribution of soft microgels in different channels was established. Furthermore, in order to explore its oil displacement mechanism and performance, micro and macro physical simulation experiments were carried out. Finally, its typical field application is introduced. Results show that, the separation phenomenon between soft microgel particles and carrier fluid occurs when injecting into the core. That is, soft microgel particles first enter the larger channel with low seepage resistance, while fluid turns into the smaller channel to displace oil. Therefore, by the cooperation between microgel particles and carrier fluid, soft microgel particle dispersion can effectively expand sweep volume. Furthermore, soft microgel particles can migrate, be trapped, deform in the porous medium. Based on the resistance coefficient, residual resistance coefficient and plugging rate, the migration and plugging modes of soft microgels can be divided into 3 modes: efficient plugging, normal plugging and low efficiency plugging. In the normal plugging mode, soft microgels can not only adjust the profile effectively in the early stage of injection, but also migrate to the deep reservoir and improve the injection pressure. Also, 3D macroscopic physical simulation experiments show that soft microgels can moderately plug the high permeability layer and improve the displacement effect of low permeability layer, which finally achieve the goal of enhanced oil recovery. Furthermore, soft microgel particle dispersion has been applied in 8 different reservoirs, and has achieved remarkable effect of increasing oil. Taking JX6ZD as an example, the daily oil production in the pilot test area increased from 25t/d to 75t/d, and the water content decreased by 38%. Therefore, through the lab physical simulation and field tests, the progressiveness of soft microgel particle dispersion can be proved. In this paper, the mechanism and performance of soft microgel particle dispersion are studied by a multidisciplinary approach. On this basis, the field test results are analyzed. The above research results provide theoretical basis and technical support for the popularization and application of soft microgel particle dispersion system.
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新型软质微凝胶颗粒分散体系储层适应性及驱油机理研究
非均质性是储层的基本特征,严重影响油田的整体开发效果。为了解决这一问题,近年来开发了一种新的驱油系统——软微凝胶驱油系统。现场试验取得了明显的增油减水效果。但对其储层适应性和驱替机理的研究尚处于起步阶段。为此,本文开展了相关的研究工作,并介绍了现场试验结果。软微凝胶颗粒分散体是由微凝胶颗粒和载体流体组成的非均相体系。本文采用微流控技术模拟了软微凝胶在迁移过程中的颗粒分离现象。以生物流体力学中的红细胞理论为指导,建立了软质微凝胶在不同通道中浓度分布的数学模型。为探索其驱油机理和驱油性能,开展了微观和宏观物理模拟实验。最后介绍了其典型的现场应用。结果表明,注入岩心时,软质微凝胶颗粒与载液发生分离现象。即软质微凝胶颗粒先进入较大的通道,渗流阻力较低,流体先进入较小的通道进行驱油。因此,通过微凝胶颗粒与载液的协同作用,软质微凝胶颗粒分散可以有效地扩大扫描体积。此外,软微凝胶颗粒可以在多孔介质中迁移、被捕获、变形。根据阻力系数、残余阻力系数和封堵速率,将软微凝胶的运移和封堵方式分为高效封堵、正常封堵和低效封堵3种模式。在正常封堵模式下,软微凝胶不仅能在注入初期有效调节剖面,还能向深层储层运移,提高注入压力。三维宏观物理模拟实验表明,软质微凝胶可以适度封堵高渗透层,改善低渗透层的驱替效果,最终达到提高采收率的目的。在8个不同的油藏中应用了软微凝胶分散剂,取得了显著的增油效果。以JX6ZD油田为例,中试区日产量由25t/d提高到75t/d,含水率下降38%。因此,通过室内物理模拟和现场试验,可以证明软微凝胶颗粒分散的递进性。本文采用多学科方法研究了软微凝胶颗粒分散的机理和性能。在此基础上,对现场试验结果进行了分析。上述研究成果为软质微凝胶颗粒分散体系的推广应用提供了理论依据和技术支持。
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