煤炭工程 ›› 2026, Vol. 58 ›› Issue (6): 189-199.doi: 10.11799/ce202606024

• 研究探讨 • 上一篇    下一篇

煤体孔裂隙结构内水分渗吸运移行为研究

马衍坤,信 静,王庆永,耿 宁,杨 明,郑凯歌,王小岐   

  1. 1. 安徽理工大学 深部煤炭安全开采与环境保护全国重点实验室,安徽 淮南 232001

    2. 淮北矿业股份有限公司,安徽 淮北 235099

    3. 中煤科工西安研究院(集团)有限公司,陕西 西安 710077

    4. 京昆高速铁路西昆有限公司,重庆 400020

  • 收稿日期:2025-11-27 修回日期:2026-02-17 出版日期:2026-06-15 发布日期:2026-06-24
  • 通讯作者: 信静 E-mail:492391623@qq.com

Imbibition and migration behavior of water in pore-fracture structure of coal mass #br#

  • Received:2025-11-27 Revised:2026-02-17 Online:2026-06-15 Published:2026-06-24

摘要:

煤矿采用的煤层注水和水力压裂等水力化措施将水注入到煤层中,遗留在煤层中的水在煤的孔裂隙结构中渗吸运移,决定了煤层的最终润湿性。而煤具有复杂的孔裂隙结构,其微孔、中孔和大孔竞争遗留在煤层中的定量水,为分析定量水在块状煤体孔裂隙结构内的运移行为, 本文开展了块状煤体定量水渗吸运移试验,借助低场核磁共振仪,测试分析了定量水在块状煤体微孔、中孔和大孔中的运移规律。结果表明:定量水分在块状煤体内的运移行为呈现2 个阶段,第一阶段外部注入的定量水同时进入吸附孔和渗流孔,自由态水峰降低,吸附态水峰和束缚态水峰升高;第二阶段渗流孔内的水分在毛细管力的作用下逐步向吸附孔内运移,最终实现了水分从渗流孔进入吸附孔;在渗吸结束时,润湿吸附孔的水分占比为62% ~ 99%,滞留在渗流孔的水分占比为1% ~38%;水在块状煤体孔裂隙结构内单位时间润湿速率和孔隙度呈正相关线性关系,孔喉发育越好,水分受毛细管力和重力作用的影响润湿煤体的效果越好,水在块状煤体孔裂隙结构内的渗吸平衡时间与煤的孔隙度呈非线性负相关关系,符合Boltzmann方程。通过讨论了定量水分在块状煤体孔裂隙结构内的渗吸运移行为,全面分析了煤层渗吸机理和流体运移特征规律,为优化水力压裂和煤层注水效果提供了理论依据。

Abstract:

Abstract: Hydraulic techniques employed in coal mines, including coal seam water infusion and hydraulic fracturing, introduce water into coal seams. The subsequent imbibition and migration of the retained water within the coal's pore-fracture system govern the final wetting state of the coal mass. Given coal's complex pore-fracture network, its micropores, mesopores, and macropores compete for the retained quantitative water. To investigate the migration behavior of quantitative water within the pore-fracture structure of bulk coal, an experimental study on its imbibition and migration was conducted. Utilizing low-field nuclear magnetic resonance (NMR) technology, the migration patterns of quantitative water within the micropores, mesopores, and macropores of bulk coal were tested and analyzed. The results demonstrate that: The migration of quantitative water in bulk coal exhibits two distinct stages. In the initial stage, the externally introduced water simultaneously enters both adsorption and seepage pores, resulting in a decrease in the free water signal and an increase in the adsorbed and bound water signals in the NMR data. During the second stage, water within the seepage pores progressively migrates into the adsorption pores driven by capillary forces, ultimately completing the transfer from seepage to adsorption pores. At the conclusion of imbibition, water wetting the adsorption pores constitutes 62% to 99% of the total, while water retained within seepage pores accounts for only 1% to 38%. The wetting rate per unit time of water within the pore-fracture structure of bulk coal shows a positive linear correlation with porosity. Well-developed pore throats enhance the coal wetting efficiency under the combined influence of capillary and gravitational forces. Conversely, the imbibition equilibrium time within the coal's pore-fracture structure exhibits a non-linear negative correlation with porosity, fitting the Boltzmann equation. By examining the imbibition and migration behavior of quantitative water in the pore-fracture structure of bulk coal, this research provides a comprehensive analysis of coal seam imbibition mechanisms and characteristic fluid migration patterns, thereby offering a theoretical foundation for optimizing hydraulic fracturing and coal seam water infusion strategies.

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