岩土力学 ›› 2025, Vol. 46 ›› Issue (12): 3694-3706.doi: 10.16285/j.rsm.2024.1600CSTR: 32223.14.j.rsm.2024.1600

• 基础理论与实验研究 • 上一篇    下一篇

含内套环储能花岗岩单一径向压缩下的力学特性及能量演化规律

王成1,李起航1,王春1, 2, 3,任雨蒙1,李润泽1   

  1. 1. 河南理工大学 能源科学与工程学院,河南 焦作 454003;2. 中南大学 资源与安全工程学院,湖南 长沙 410083; 3. 河南理工大学 煤炭安全生产与清洁高效利用省部共建协同创新中心,河南 焦作 454003
  • 收稿日期:2024-12-26 接受日期:2025-01-24 出版日期:2025-12-11 发布日期:2025-12-13
  • 通讯作者: 王春,男,1986年生,博士,副教授,主要从事岩石冲击动力学、采矿工艺、围岩注浆加固方面的研究工作。E-mail: wczy115728@163.com
  • 作者简介:王成,男,1984年生,博士,教授,主要从事岩层控制和矿山充填方面的研究工作。E-mail: wangcheng@hpu.edu.cn
  • 基金资助:
    河南省优秀青年科学基金(No.242300421070);国家自然科学基金(No.52074101,No.52274076);“双一流”创建学科相关项目(No.GCCRC202403)。

Mechanical characteristics and energy evolution of single radial compressed energy-storing granite with internal sleeves

WANG Cheng1, LI Qi-hang1, WANG Chun1, 2, 3, REN Yu-meng1, LI Run-ze1   

  1. 1. School of Energy Science and Engineering, Henan Polytechnic University, Jiaozuo, Henan 454003, China; 2. School of Resources & Safety Engineering, Central South University, Changsha, Hunan 410083, China; 3. Collaborative Innovation Center of Coal Work Safety and Clean High Efficiency Utilization, Henan Polytechnic University, Jiaozuo, Henan 454003, China
  • Received:2024-12-26 Accepted:2025-01-24 Online:2025-12-11 Published:2025-12-13
  • Supported by:
    This work was supported by the Excellent Youth Foundation of Henan Province (242300421070), the National Natural Science Foundation of China (52074101, 52274076) and the Projects Related to the Construction of “Double-First Class” Disciplines (GCCRC202403).

摘要: 为保障地热能开采过程中井筒围岩稳定,保证地热能开采的高效性。开展含内套环储能花岗岩单一径向压缩力学试验,借助VIC-3D非接触全场应变系统、静态应变测试分析系统等多组设备辅助监测,探究地热能开采过程中储能花岗岩在高温、冷热循环等复杂地质工况条件下,井筒围岩损伤破坏特征及岩石内部能量演化规律,并建立相关损伤破坏判据。研究结果表明:不同条件处理后含内套环储能花岗岩单一径向受压时荷载−位移曲线峰值前存在明显的上凹段和直线段,峰值后受内套环和岩石非均质性影响有快速陡降和下降后回升或保持水平而后再次下降两种形式;含内套环储能花岗岩最终破坏为3块或4块,损伤破坏历程为裂纹率先从平行加载方向的内孔壁起裂,后从垂直加载方向外壁起裂,添加套环的岩样破坏裂纹宽度较小,破坏形态和裂纹发育一定程度上受岩样与套环的黏结效果影响;含内套环储能花岗岩峰值前总能量演化发展呈指数形式,依据峰值前弹性能、耗散能以及其占自身峰值前总能量比例,分析能量同套环厚度变化的发展规律,得到1.0~1.5 mm的套环厚度为套环增益效果较好区间,结合理论分析构建了含内套环储能花岗岩损伤破坏判据,并进行了合理性验证。

关键词: 内套环, 储能花岗岩, 单一径向压缩, 力学特性, 能量演化, 破坏判据

Abstract: To ensure the stability of the borehole surrounding rocks during geothermal energy extraction and improve the efficiency of the process, single radial compression mechanical tests were conducted on energy-storing granite with internal sleeves. Using multiple monitoring devices, including the VIC-3D non-contact full-field strain system, a static strain testing and analysis system, this study investigated the damage characteristics and internal energy evolution of the borehole surrounding rocks under complex geological conditions such as high temperature and thermal cycling. Additionally, a failure criterion was established. The results indicate that the load-displacement curve of the single radial compressed energy-storing granite with internal sleeves exhibits a distinct pre-peak concave segment and linear segment under various conditions. Post-peak behavior is influenced by the sleeve and rock heterogeneity, showing two patterns: a rapid steep drop, or a drop followed by recovery, or leveling off before dropping again. The final failure mode is fragmentation into three or four pieces. Damage initiates with cracks at the inner borehole wall, parallel to the loading direction, followed by cracks at the outer borehole wall, perpendicular to the loading direction. Adding sleeves reduces crack width; fracture morphology and crack growth are partly influenced by the bonding between the rock sample and the sleeve. Energy evolution analysis reveals that the total pre-peak energy grows exponentially. We analyzed the relationship between energy and sleeve thickness by examining the proportions of elastic and dissipated energy relative to total pre-peak energy. A sleeve thickness of 1.0−1.5 mm provides the optimal enhancement. Based on theoretical analysis, we developed a failure criterion for energy-storing granite with internal sleeves and validated its accuracy.

Key words: internal sleeves, energy-storing granite, single radial compression, mechanical characteristics, energy evolution, damage criterion

中图分类号: TU451
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