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高储能岩体非常规改性充填能量吸收与控制机制的试验研究

Experimental study of unconventional modified filling energy absorption and control mechanism in high energy storage rock masses.

作者信息

Lai Xing-Ping, Zhang Shuai, Shan Peng-Fei, Cui Feng, Yang Yan-Bin, Bai Rui

机构信息

College of Energy Science and Engineering, Xi'an University of Science and Technology, X'an, 710054, Shaanxi, China.

Key Laboratory of Western Mines and Hazard Prevention of China Ministry of Education, Xi'an University of Science and Technology, X'an, 710054, Shaanxi, China.

出版信息

Sci Rep. 2022 Jul 12;12(1):11783. doi: 10.1038/s41598-022-15954-5.

Abstract

Aiming at the problems that it is difficult to predict rock burst accurately in engineering practice and the implementation parameters of rock burst prevention measures depend on some empirical formulas, in order to study the advantages and disadvantages of different in-situ modification mechanisms deeply, determine the applicable conditions of unusual in-situ modification measures, and provide a theoretical basis for forming adaptive in-situ modification control schemes. Two kinds of modified control methods using the same foundation involve engineering scale and indoor scale. With the help of scale transformation, the whole failure process analysis test of bearing rock samples was carried out. The results show that various modification measures can effectively control the properties, and realize "hard-rock softening or soft-rock hardening" by changing the physical and mechanical parameters of the target rock sample. Compared with the control group, the automatic parameters of rocks deteriorated significantly under different modification measures. The evolution law of carrying energy is similar. However, there are obvious diversity between various modification measures in plastic stage and post-peaking phase stage, which provides favorable conditions for rock burst prevention. Based on this, an adaptive modification control system was constructed. At the same time, filling materials is considered to increase the energy of post-peaking phase (non newtonian fluid: energy-absorbing materials), and further slow down the intensity of released energy within post-peaking phase stage. Because rock burst is characterized by rapid release of energy, non newtonian fluid has a good absorption effect on high-speed impact force. Therefore, in the design test, the effect of non newtonian fluid is realized by applying a high loading rate, and the evaluation of energy absorption effect of bearing rock samples filled with non newtonian fluid in borehole is considered.

摘要

针对工程实践中难以准确预测岩爆以及岩爆防治措施的实施参数依赖一些经验公式的问题,为深入研究不同原位改性机制的优缺点,确定非常规原位改性措施的适用条件,为形成自适应原位改性控制方案提供理论依据。两种基于相同基础的改性控制方法涉及工程尺度和室内尺度。借助尺度变换,对承载岩石试样进行了全过程破坏分析试验。结果表明,各种改性措施能有效控制性能,通过改变目标岩石试样的物理力学参数实现“硬岩软化或软岩硬化”。与对照组相比,不同改性措施下岩石的自动参数显著劣化。能量承载演化规律相似。然而,各种改性措施在塑性阶段和峰值后阶段存在明显差异,这为岩爆防治提供了有利条件。在此基础上,构建了自适应改性控制系统。同时,考虑填充材料增加峰值后阶段的能量(非牛顿流体:吸能材料),进一步减缓峰值后阶段释放能量的强度。由于岩爆具有能量快速释放的特点,非牛顿流体对高速冲击力有良好的吸收效果。因此,在设计试验中,通过施加高加载速率来实现非牛顿流体的效果,并考虑对钻孔内填充非牛顿流体的承载岩石试样的吸能效果进行评价。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6818/9276692/69972a3444f5/41598_2022_15954_Fig1_HTML.jpg

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