Elastic wave propagation and attenuation across cemented rock fractures under tension

IF 7 1区 工程技术 Q1 ENGINEERING, GEOLOGICAL
Hui Yang , Qi Zhao , Dongya Han , Qinghua Lei , Huanyu Wu , Xiaolin Huang , Zhiyi Chen , Yu Huang
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Abstract

Tensile loading plays a critical role in geological processes like landslides and earthquakes, as well as engineering applications such as hydraulic fracturing and tunnel excavation. We investigate elastic wave behavior across cemented rock fractures under tensile stress conditions. Ultrasonic measurements and uniaxial direct tension tests were performed concurrently on quartz diorite and diabase specimens with and without individual cemented fractures to determine the influence of tensile stress on the characteristics of elastic waves. Results show that increasing tensile stress leads to enhanced wave attenuation and reduced velocity, amplitudes, and dominant frequency of transmitted waves. These changes are primarily driven by the formation and growth of microcracks near cemented rock fractures under tensile stress. The jointed quartz diorite samples experienced progressive reductions in static and dynamic fracture stiffness. In contrast, jointed diabase samples maintained nearly constant static fracture stiffness and only saw decreases in dynamic fracture stiffness. The reduction in dynamic fracture stiffness is attributed to microscopic damage that modifies elastic wave velocity and dissipation but is not captured by static stress-strain measurements. The gradual decrease in dynamic fracture stiffness reflects stable crack growth, while sudden reductions indicate crack coalescence at the interface. We propose that dynamic fracture stiffness, assessable with seismic wave measurement, is a more reliable indicator of tensile damage than static fracture stiffness due to its sensitivity to low strains and ability to capture microstructural changes. These findings provide valuable insights into seismic methods applied to assess stress conditions on rock discontinuities in the field.
受拉作用下胶结岩体裂隙弹性波的传播与衰减
拉伸载荷在滑坡和地震等地质过程以及水力压裂和隧道开挖等工程应用中起着至关重要的作用。我们研究了在拉应力条件下胶结岩石裂缝的弹性波行为。同时对石英闪长岩和辉绿岩试样进行超声测量和单轴直接拉伸试验,以确定拉伸应力对弹性波特性的影响。结果表明,拉应力的增加会导致波的衰减增强,传播波的速度、振幅和主导频率降低。这些变化主要是受拉应力作用下胶结岩石裂隙附近微裂纹的形成和生长驱动的。节理石英闪长岩样品的静态和动态断裂刚度逐渐降低。而节理辉绿岩试样的静态断裂刚度基本保持不变,动态断裂刚度只有下降。动态断裂刚度的降低归因于微观损伤,它改变了弹性波速和耗散,但静态应力-应变测量无法捕捉到。动态断裂刚度的逐渐减小反映了裂纹的稳定扩展,而突然减小则表明裂纹在界面处合并。我们提出,由于动态断裂刚度对低应变的敏感性和捕捉微观结构变化的能力,动态断裂刚度可以用地震波测量来评估,是一个比静态断裂刚度更可靠的拉伸损伤指标。这些发现为应用地震方法评估野外岩石不连续面应力条件提供了有价值的见解。
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来源期刊
CiteScore
14.00
自引率
5.60%
发文量
196
审稿时长
18 weeks
期刊介绍: The International Journal of Rock Mechanics and Mining Sciences focuses on original research, new developments, site measurements, and case studies within the fields of rock mechanics and rock engineering. Serving as an international platform, it showcases high-quality papers addressing rock mechanics and the application of its principles and techniques in mining and civil engineering projects situated on or within rock masses. These projects encompass a wide range, including slopes, open-pit mines, quarries, shafts, tunnels, caverns, underground mines, metro systems, dams, hydro-electric stations, geothermal energy, petroleum engineering, and radioactive waste disposal. The journal welcomes submissions on various topics, with particular interest in theoretical advancements, analytical and numerical methods, rock testing, site investigation, and case studies.
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