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Brittle mechanical characteristics of hard rock exposed to moisture

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Abstract

Rich groundwater content can produce a complex geological environment for underground tunnels. Therefore, the brittle mechanical characteristics of hard rock exposed by tunnelling in a moist environment are of great significance. Uniaxial tests and acoustic emission (AE) analysis of sandstone with respect to different moisture conditions are described in this paper. Moisture-controlled trends of the stress–strain relationship, mechanical parameter variation, maximum instantaneous AE energy, cumulative AE energy and macro crack behaviour were analysed in detail. In addition, X-ray diffraction and scanning electron microscopy were performed to analyse the fracture surfaces of rock at the microscale. Sandstone particles were found to be more likely to slip past each other at high moisture contents, resulting in increased plastic deformation and dissipation of internal energy. Increasing moisture reduces the brittleness of hard rock and the probability of rock burst. The results reveal the mechanical mechanisms cause moisture to affect brittle hard rock and can contribute to the improvement of the design and construction of deep tunnels.

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Acknowledgments

This work is supported by the National Natural Science Foundation of China under grant nos. 41230635, 41272330 and 41572283. This work is also supported by funding provided by the Science and Technology Office of Sichuan Province (2015JQ0020). This work is supported by the research fund of the State Key Laboratory of Geohazard Prevention and Geoenvironment Protection (Chengdu University of Technology) under grant nos. SKLGP2012Z003 and SKLGP2014Z002.

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Correspondence to Guoqing Chen.

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Chen, G., Li, T., Guo, F. et al. Brittle mechanical characteristics of hard rock exposed to moisture. Bull Eng Geol Environ 76, 219–230 (2017). https://doi.org/10.1007/s10064-016-0857-7

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