爆炸荷载作用下节理岩体隧道围岩动态破坏过程的模型试验研究

IF 4.4 2区 工程技术 Q1 ENGINEERING, MECHANICAL Engineering Failure Analysis Pub Date : 2024-10-22 DOI:10.1016/j.engfailanal.2024.108996
Yunqiang Wang , Yeqing Chen , Chunhai Li , Yongsheng He , Qirui Wang , Jingmao Xu , JunQi Fan , Mengnan Dai
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引用次数: 0

摘要

节理的存在会大大降低工程岩体的完整性和稳定性。在动荷载(如爆破开挖产生的荷载)作用下,被节理分割的关键岩块可能会失稳,容易发生滑动,从而可能导致岩爆等工程地质灾害。为了研究动态失稳过程,根据相似性理论开发了岩体和节理的相似材料,并在节理岩体中构建了隧道模型。随后,使用引爆引信产生动荷载,并利用岩土多功能试验装置研究了节理岩体中隧道围岩在爆炸荷载作用下的动不稳定过程。利用加速度传感器、电阻应变计、线性可变位移传感器和运动摄像机分析了隧道围岩的变形特征和动态失稳过程。研究表明,在爆破荷载作用下,隧道拱顶处的加速度明显大于直墙和底板处的加速度,差异达到一个数量级。加速度波形根据峰值特征分为三类,通过爆炸应力波的传播进行解释。此外,隧道拱部的应变和位移也明显大于其他区域,这表明拱部的应力集中和动态破坏更为严重,需要在隧道开挖时加强支护。使用运动摄像机成功记录了隧道围岩的整个动态失稳过程。动态破坏过程分为几个阶段:接合面出现裂缝、颗粒喷出并伴随接合块掉落、接合块明显掉落以及恢复平静。动态破坏模式包括接合块掉落和旋转、局部颗粒喷射和接合块上的剪切裂缝。
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Model test study on the dynamic failure process of tunnel surrounding rocks in jointed rock mass under explosive load
The presence of joints can significantly reduce the integrity and stability of an engineering rock mass. Under dynamic loads, such as from blasting excavation, the key blocks divided by joints may be destabilized and prone to sliding, potentially leading to engineering geological disasters like rockbursts. To study the dynamic instability process, similar materials for the rock mass and joints were developed based on the similarity theory, and a tunnel model in the jointed rock mass was constructed. Subsequently, a detonating fuse was used to generate a dynamic load, and the dynamic instability process of the tunnel surrounding rock in the jointed rock mass under explosive load was studied using the geotechnical multifunctional testing device. The deformation characteristics and dynamic instability process of the tunnel surrounding rock were analyzed using acceleration sensors, resistance strain gages, linear variable displacement transducers and motion camera. The study shows that the acceleration at the tunnel vault is significantly greater than at the straight wall and floor under blast loads, with differences reaching an order of magnitude. Acceleration waveforms were classified into three categories based on peak characteristics, explained through the propagation of explosive stress waves. Additionally, strain and displacement at the tunnel arch were also significantly greater than in other areas, indicating more severe stress concentration and dynamic damage at the arch, necessitating reinforced support in tunnel excavation. The entire dynamic instability process of the tunnel surrounding rock was successfully recorded using a motion camera. The dynamic failure process was divided into several phases, the appearance of cracks on the joint surface, particle ejection accompanied by the dropping of jointed blocks, a significant drop of the jointed blocks, and return to calm. The dynamic failure modes include the dropping and rotation of jointed blocks, local particle ejection, and shear cracks on jointed block.
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来源期刊
Engineering Failure Analysis
Engineering Failure Analysis 工程技术-材料科学:表征与测试
CiteScore
7.70
自引率
20.00%
发文量
956
审稿时长
47 days
期刊介绍: Engineering Failure Analysis publishes research papers describing the analysis of engineering failures and related studies. Papers relating to the structure, properties and behaviour of engineering materials are encouraged, particularly those which also involve the detailed application of materials parameters to problems in engineering structures, components and design. In addition to the area of materials engineering, the interacting fields of mechanical, manufacturing, aeronautical, civil, chemical, corrosion and design engineering are considered relevant. Activity should be directed at analysing engineering failures and carrying out research to help reduce the incidences of failures and to extend the operating horizons of engineering materials. Emphasis is placed on the mechanical properties of materials and their behaviour when influenced by structure, process and environment. Metallic, polymeric, ceramic and natural materials are all included and the application of these materials to real engineering situations should be emphasised. The use of a case-study based approach is also encouraged. Engineering Failure Analysis provides essential reference material and critical feedback into the design process thereby contributing to the prevention of engineering failures in the future. All submissions will be subject to peer review from leading experts in the field.
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