Experimental investigation on dynamic mechanical behavior and fracture evolution of fissure-filled red sandstone after thermal treatment

Natural or artificially disturbed rocks containing massive fillings are frequently subjected to various sophisticated temperature and stress perturbations. To investigate the effects of temperature and filling angle on the dynamic mechanical characteristics and fracture patterns of red sandstone, th...

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Bibliographic Details
Published inEngineering geology Vol. 295; p. 106433
Main Authors Chen, Yongjun, Yin, Tubing, Li, Xibing, Li, Qiang, Yang, Zheng, Li, Mingjian, Wu, You
Format Journal Article
LanguageEnglish
Published Elsevier B.V 20.12.2021
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Summary:Natural or artificially disturbed rocks containing massive fillings are frequently subjected to various sophisticated temperature and stress perturbations. To investigate the effects of temperature and filling angle on the dynamic mechanical characteristics and fracture patterns of red sandstone, thermal treatments at 25°C, 200°C, 400°C, 600°C, and 800°C were conducted on red sandstone samples containing single fracture filling angles at 0°, 30°, 60°, and 90°. Subsequently, the dynamic mechanical information and crack evolution of specimens after thermal treatment were tested and recorded utilizing a modified split Hopkinson pressure bar (SHPB) test system integrated with a high-speed camera, and the crack expansion modes were identified and analyzed. Meanwhile, X-ray diffraction (XRD), scanning electron microscopy (SEM), simulation and one-dimensional stress wave theory were employed to analyze and discuss the thermal damage and failure mechanism of the specimens in detail. The results demonstrate that temperature and filling angle have conspicuous effects on the elastic modulus, thermal expansion, mineral composition, dynamic compressive strength, strain rate effects, and crack expansion modes of the specimens. Tensile cracks dominate the fracture of the specimen during dynamic loading, while shear cracks tend to appear in thermal stress concentration area. Moreover, thermal damage, wave impedance and stress wave propagation path are the critical factors controlling the fracture evolution and dynamic mechanical properties of the specimens. •Effects of thermal treatment on the dynamic behavior of fissure-filled red sandstone.•Fracture patterns of the specimen after the effect of temperature and filling angle are exhibited.•Damage parameters and simulation are employed to characterize the thermal damage.•Wave impedance and stress wave path control the dynamic mechanical response of the specimen.
ISSN:0013-7952
1872-6917
DOI:10.1016/j.enggeo.2021.106433