新疆石油地质 ›› 2026, Vol. 47 ›› Issue (1): 103-110.doi: 10.7657/XJPG20260111

• 应用技术 • 上一篇    下一篇

基于核磁共振的微球调驱微观滞留与封堵特征

韩波1,2(), 高辉1(), 刘云龙3, 易萍3, 王琛1, 程志林1, 李腾1   

  1. 1.西安石油大学 a.石油工程学院;b.陕西省油气田特种增产技术重点实验室 西安 710065
    2.山西能源学院 矿业工程系太原 030600
    3.中国石油 长庆油田分公司 油气工艺研究院西安 710018
  • 收稿日期:2025-03-19 出版日期:2026-02-01 发布日期:2026-01-23
  • 通讯作者: 高辉 E-mail:hanboshida@163.com;ghtopsun@163.com
  • 作者简介:韩波(1993-),男,山西天镇人,博士研究生,油气田开发,(Tel)18353240742(Email)hanboshida@163.com
  • 基金资助:
    国家自然科学基金(52474042)

NMR-Based Investigation on Microscopic Retention and Plugging During Microsphere Flooding

HAN Bo1,2(), GAO Hui1(), LIU Yunlong3, YI Ping3, WANG Chen1, CHENG Zhilin1, LI Teng1   

  1. 1. Xi’an Shiyou University, a. School of Petroleum Engineering; b. Shaanxi Key Laboratory of Advanced Stimulation Technology for Oil &Gas Reservoirs, Xi’an, Shaanxi 710065, China
    2. Department of Mining Engineering, Shanxi Institute of Energy, Taiyuan, Shanxi 030600, China
    3. Oil & Gas Technology Research Institute, Changqing Oilfield Company, PetroChina, Xi’an, Shaanxi 710018, China
  • Received:2025-03-19 Online:2026-02-01 Published:2026-01-23
  • Contact: GAO Hui E-mail:hanboshida@163.com;ghtopsun@163.com

摘要:

微球调驱技术可有效改善低渗透油藏高渗透层水窜严重及低渗透层原油难以动用的问题。通过将双岩心并联微球调驱物理模拟实验与低场核磁共振测试相结合的方式,对微球的微观滞留与封堵特征进行研究。通过定义岩心封堵程度以及大、小孔封堵贡献率,对微球的微观封堵能力进行定量评价。结果表明,微球调驱可进一步提高原油采收率,在水驱基础上开展不同注入速度的微球调驱后,低渗透岩心和高渗透岩心采收率分别平均增大9.47%和5.80%。调驱后岩心渗透率均不同程度下降,且低渗透岩心渗透率下降幅度大于高渗透岩心。核磁共振测试结果表明,微球对低渗透岩心的封堵程度大于高渗透岩心,不同注入速度下低渗透岩心和高渗透岩心的平均封堵程度分别为5.44%和1.02%,表明实验所用直径为50 nm的微球在低渗透岩心的适用性更好。计算发现大孔的封堵贡献率大于小孔,小孔的封堵贡献率为负值,表明微球优先在岩心大孔内沉积,并将大孔中的水驱替至小孔,从而实现对小孔中氟油的动用。

关键词: 低渗透油藏, 微球调驱, 核磁共振, 采收率, 微观滞留, 封堵特征, 物理模拟

Abstract:

Microsphere flooding technology can effectively address the issues of severe water channeling in high-permeability layers and difficult oil mobilizing in low-permeability layers in low-permeability reservoirs. This paper investigates the microscopic retention and plugging characteristics of microspheres by combining a parallel dual-core microsphere flooding physical simulation experiment with low-field nuclear magnetic resonance (NMR) testing, and quantitatively evaluates the microscopic plugging capacity of microspheres by defining the degree of core plugging and the plugging contributions of large and small pores. The results show that microsphere flooding can further enhance oil recovery. Microsphere injection at varying rates after water flooding enables the oil recovery of low-permeability and high-permeability cores to increase by an average of 9.47% and 5.80%, respectively. The permeabilities of the cores reduce to a varying extent after microsphere flooding, with a higher reduction in low-permeability cores than in high-permeability cores. The NMR test results indicate that the plugging degree of microspheres in low-permeability cores is greater than that in high-permeability cores. The average plugging degrees of low-permeability and high-permeability cores at different injection rates are 5.44% and 1.02%, respectively, suggesting that microspheres with a diameter of 50 nm used in the test are compatible with low-permeability cores. Additionally, the calculation results show that the plugging contribution rate of large pores is higher than that of small pores, with the latter being negative, indicating that microspheres preferentially deposit in large pores and displace the water in large pores into small pores, thereby mobilizing the fluocarbon oil in small pores.

Key words: low-permeability reservoir, microsphere flooding, NMR, oil recovery, microscopic retention, plugging characteristic, physical simulation

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