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首页> 外文期刊>Rock Mechanics and Rock Engineering >Effects of Thermal Damage on Strain Burst Mechanism for Brittle Rocks Under True-Triaxial Loading Conditions
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Effects of Thermal Damage on Strain Burst Mechanism for Brittle Rocks Under True-Triaxial Loading Conditions

机译:真三轴负载条件下脆性岩体应变爆裂机理的热损伤

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摘要

Strain burst is a common problem encountered in brittle rocks in deep, high-stress mining applications. Limited research focuses on the effects of temperature on the strain burst mechanism and the kinetic energies of rocks. This study aims to investigate the effects of thermal damage on the strain burst characteristics of brittle rocks under true-triaxial loading-unloading conditions using the acoustic emission (AE) and kinetic energy analyses. The time-domain and frequency-domain responses related to strain burst were studied, and the damage evolution was quantified by b-values, cumulative AE energy and events rates. The ejection velocities of the rock fragments from the free face of the granite specimens were used to calculate kinetic energies. The experimental results showed that thermal damage resulted in a delay in bursting but increased the bursting rate at similar to 95% of normalised stress level. This is believed to be due to the micro-cracks induced by temperature exposure, and thus the accumulated AE energy (also supported by cumulative AE counts) at the initial loading stage was reduced, causing a delay in bursting. The strain burst stress, initial rock fragment ejection velocity, and kinetic energy decreased from room temperature (25 A degrees C) to 100 A degrees C, whereas they resulted in a gradual rise from 100 to 150 A degrees C demonstrating more intense strain burst behaviour.
机译:应变突发是深度高应力挖掘应用中脆性岩石中遇到的常见问题。有限的研究侧重于温度对应变突发机制的影响及岩石的动力学能量。本研究旨在使用声发射(AE)和动力学分析,研究热损伤对真正的三轴装卸条件下脆性岩体的应变突发特性的影响。研究了与应变突发相关的时域和频域应答,通过B值,累积AE能量和事件速率量化损伤演化。从花岗岩样本的自由面上岩石片段的喷射速度用于计算动力学能量。实验结果表明,热损伤导致突发延迟,但增加了类似于归一化应力水平的95%的爆破速率。这被认为是由于温度暴露引起的微裂纹,因此降低了初始加载阶段的累积AE能量(也通过累积AE计数支持),导致延迟爆裂。应变突发应力,初始岩石片段喷射速度和动能从室温(25℃)降至100℃,而它们导致100至150℃逐渐上升,展示更强烈的应变突发行为。

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