岩土力学 ›› 2026, Vol. 47 ›› Issue (7): 2311-2323.doi: 10.16285/j.rsm.2025.00355CSTR: 32223.14.j.rsm.2025.00355

• 基础理论与实验研究 • 上一篇    下一篇

加载速率对单裂隙类岩体模型变形特性的影响

苏占东1, 2,唐宁鸣1,尹乾3,陶志刚4, 5,王宏6,甘飞6   

  1. 1.防灾科技学院 防灾减灾工程学院,河北 三河 065201;2.河北省地震灾害防御与风险评估重点实验室,河北 三河 065201; 3.中国矿业大学 深地工程智能建造与健康运维全国重点实验室,江苏 徐州 221116;4.中国矿业大学(北京) 隧道工程灾变防控与智能建养全国重点实验室,北京 100083;5.中国矿业大学(北京) 力学与土木工程学院,北京 100083;6.贵州大学 土木工程学院,贵州 贵阳 550025
  • 收稿日期:2025-07-08 接受日期:2025-09-16 出版日期:2026-07-13 发布日期:2026-07-08
  • 作者简介:苏占东,男,1987年生,博士,教授,主要从事构造应力场与断裂活动性以及岩土工程抗震等研究工作。E-mail: szdchris@163.com.
  • 基金资助:
    国家自然科学基金资助项目(No.42372322);地震科技星火计划攻关项目(No.XH24060A);河北省自然科学基金(No.D2025512020)。

Influence of loading rate on the deformation characteristics of single-fracture rock-like models

SU Zhan-dong1, 2, TANG Ning-ming1, YIN Qian3, TAO Zhi-gang4, 5, WANG Hong6, GAN Fei6   

  1. 1. School of Disaster Prevention and Reduction Engineering, Institute of Disaster Prevention, Sanhe, Hebei 065201, China; 2. Key Laboratory of Earthquake Disaster Prevention and Risk Evaluation of Hebei Province, Sanhe, Hebei 065201, China; 3. State Key Laboratory of Intelligent Construction and Healthy Operation and Maintenance of Deep Underground Engineering, China University of Mining and Technology, Xuzhou, Jiangsu 221116, China; 4. School of Mechanical and Civil Engineering, China University of Mining and Technology (Beijing), Beijing 100083, China; 5. State Key Laboratory for Tunnel Engineering, China University of Mining and Technology (Beijing), Beijing 100083, China; 6. College of Civil Engineering, Guizhou University, Guiyang, Guizhou 550025, China
  • Received:2025-07-08 Accepted:2025-09-16 Online:2026-07-13 Published:2026-07-08
  • Supported by:
    This work was Supported by the National Natural Science Foundation of China (42372322), the Earthquake Science and Technology Spark Program Project (XH24060A) and Hebei Natural Science Foundation (D2025512020).

摘要:

裂隙岩体的变形行为常常是引起工程岩体失稳和地质灾害频发的关键因素,而工程岩体所受荷载作用的复杂变化会触发和改变岩体变形破裂等力学响应过程。通过类岩体模型对真实岩体进行物理模拟,利用河砂、水泥、石膏和腻子粉制备含相同性状的单裂隙类岩体模型,开展加载速率影响单裂隙类岩体模型变形行为的单轴压缩试验,关注裂隙两侧介质滑移变形规律和与预制裂隙相关的破裂行为,同步使用嵌入式应变砖与数字图像技术,分别监测模型内外部变形演化过程,探究加载速率对裂隙端部变形特性和模型表面破裂行为的影响。结果表明:(1)随着加载速率增加,模型由延性破坏向脆性破坏转变,其反映了在不同加载速率下岩体承载结构调整模式的差异;(2)应变局部化启动时间与速率无关,加载速率增加模型拉压应力区应变偏转角由异步振荡转变为同步振荡;(3)低加载速率下模型破坏模式稳定,随着加载速率增加破坏模式复杂化,表面裂纹密度增加,加载速率超过一定阈值时模型破坏模式转为“X剪切破坏。(4)裂隙滑动速率与端部主应变偏转角有显著相关性,反映了Griffith准则下岩体损伤与应变场演化的耦合作用。

关键词: 加载速率, 类岩体模型, 局部变形场, 表面破裂, 滑动速率

Abstract:

The deformation behavior of fractured rock masses is often a key factor causing instability of engineering rock masses and frequent geological disasters. The complex changes in the load acting on engineering rock masses can trigger and alter the mechanical response processes such as deformation and fracture of the rock masses. This study employs physical simulation techniques to replicate the behavior of real rock masses through the use of rock-like models. Specifically, single-fracture rock-like specimens with consistent characteristics are fabricated utilizing river sand, cement, gypsum, and putty powder. Uniaxial compression tests are subsequently conducted on these specimens to examine the impact of loading rate on their deformation behavior. The primary focus lies on the sliding deformation patterns exhibited by the media on either side of the fractures, as well as the fracture behaviors associated with the pre-existing fractures. To monitor the deformation evolution processes both internally and externally within the models, embedded strain rosettes and digital image technology are concurrently employed. This approach facilitates an exploration of the influence of loading rate on the deformation characteristics at the fracture tips and the fracture behaviors observed on the model surface. The results show that: (1) With the increase of loading rate, the failure mode of the model transforms from ductile to brittle, reflecting the differences in the adjustment mode of rock mass bearing structure under different loading rates. (2) The initiation time of strain localization is independent of the rate, and as the loading rate increases, the strain deflection angle of the tension and compression stress zones in the model changes from asynchronous oscillation to synchronous oscillation. (3) At low loading rates, the failure mode of the model is stable. As the loading rate increases, the failure mode becomes more complex, and the surface crack density increases. When the loading rate exceeds a certain threshold, the failure mode of the model changes to "X-shaped" shear failure. (4) There is a significant correlation between the sliding rate of the fracture and the deflection angle of the principal strain at the end, reflecting the coupling effect of rock mass damage and strain field evolution under Griffith's criterion.

Key words: loading rate, rock-like model, local deformation field, surface cracking, sliding rate

中图分类号: TU 452
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