岩土力学 ›› 2024, Vol. 45 ›› Issue (12): 3596-3612.doi: 10.16285/j.rsm.2024.0134

• 基础理论与实验研究 • 上一篇    下一篇

考虑轴向应力作用的贯通裂隙岩体变形及渗流特性研究

刘新荣1, 2,张吉禄1, 2,周小涵1, 2,刘煜宇1, 2,刘瀚之1, 2   

  1. 1. 重庆大学 土木工程学院,重庆 400045;2. 重庆大学 山地城镇建设与新技术教育部重点实验室,重庆 400045
  • 收稿日期:2024-01-23 接受日期:2024-03-12 出版日期:2024-12-09 发布日期:2024-12-04
  • 通讯作者: 周小涵,男,1988年生,博士,副研究员,主要从事岩土与隧道工程等方面研究工作。E-mail: cqzhouxhan@126.com
  • 作者简介:刘新荣,男,1969年生,博士,教授,博士生导师,主要从事岩土力学与地下工程等领域的教学与科研工作。E-mail: liuxrong@126.com
  • 基金资助:
    国家自然科学基金(No.52374079,No.52104076);重庆市研究生科研创新项目(No.CYB22032)

Deformation and seepage characteristics of precast fractured rock mass considering the influence of axial stress

LIU Xin-rong1, 2, ZHANG Ji-lu1, 2, ZHOU Xiao-han1, 2, LIU Yu-yu1, 2, LIU Han-zhi1, 2   

  1. 1. School of Civil Engineering, Chongqing University, Chongqing 400045, China; 2. Key Laboratory of New Technology for Construction of Cities in Mountain Area of the Ministry of Education, Chongqing University, Chongqing 400045, China
  • Received:2024-01-23 Accepted:2024-03-12 Online:2024-12-09 Published:2024-12-04
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (52374079, 52104076) and the Graduate Research and Innovation Foundation of Chongqing, China (CYB22032).

摘要: 岩层内有害气体运移主要通过裂隙介质进行,地层应力状态对岩体渗透性影响显著,通常天然岩体处于三向不等压状态,研究不同应力状态下岩体变形及渗流的影响对合理预测岩层内气体运移具有重要意义。通过三轴试验系统考虑不同裂隙角度及围压,开展了流−固耦合作用下的岩体压缩全过程变形及渗透规律研究。试验结果表明:(1)岩体既有裂隙应变随轴向应力的增加表现为先减小后增加的趋势,当围压小于25 MPa时,轴向应力对裂隙的影响主要为体胀,当围压大于25 MPa时,轴向应力对裂隙的影响主要为体缩;(2)低围压下岩体体胀主要由既有裂隙产生,高围压下主要由岩石新生裂隙产生,贯通裂隙岩体压缩过程岩体渗透性变化主要由既有裂隙变形决定;(3)当裂隙角度为90º、80º、70º时,随着围压的增加岩体峰值应力渗透率相比初始应力分别增加4%~−0.7%、0.5%~−6.3%、−0.2%~−15%,轴向荷载作用下裂隙角度对岩体渗透性的影响略高于围压;(4)考虑不同应力水平对裂隙变形的影响,建立了三向应力状态下裂隙渗透率计算模型,发现法向变形的侧限应力影响系数χ的敏感性随围压的增加以及裂隙角度的增加而降低。

关键词: 贯通裂隙, 花岗岩, 渗流, 三轴压缩, 裂隙角度

Abstract: Hazardous gas migration in rock strata primarily occurs through fractured media, with the stress state of the rock mass significantly influencing its permeability. Generally, natural rock masses are in a triaxial state of unequal principal stresses. Studying rock mass deformation and seepage under various stress states is crucial for accurately predicting gas migration in rock strata. The deformation and permeability of rock mass under fluid-solid coupling were studied by triaxial test system considering different fracture angles and confining pressures. The results show that: (1) The precast fracture strain of rock mass initially decreases and then increases with the increase of axial stress. At confining pressures below 25 MPa, axial stress primarily causes volumetric expansion of the fracture, whereas at pressures above 25 MPa, it primarily leads to volumetric shrinkage. (2) Volumetric expansion of rock masses is primarily due to precast fractures at low confining pressures, and to newly formed fractures at high pressures. The change of rock permeability during compression of precast fractured rock mass is mainly determined by the deformation of precast fracture. (3) When the fracture angle is 90º, 80º, and 70º, the rock mass permeability at peak stress increases by 4% to −0.7%, 0.5% to −6.3%, and −0.2% to −15% compared with the initial stress, respectively, with the increase of confining pressure. The influence of the fracture angle on the permeability of rock mass under axial load is slightly higher than that confining pressure. (4) Considering the influence of different stress levels on fracture deformation, a calculation model for fracture permeability under triaxial state was established. It was found that the sensitivity of the lateral stress influence coefficient on normal deformation χ decreased with the increase of confining pressure and fracture angle

Key words: precast fracture, granite, seepage, triaxial compression, fracture angle

中图分类号: TU454
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