Study on Dynamic Tensile Strength of Red Sandstone Under Impact Loading and Negative Temperature

Springer Science and Business Media LLC - Tập 37 - Trang 4527-4537 - 2019
Renshu Yang1,2, Shizheng Fang3, Dongming Guo1,3, Weiyu Li3, Zhuangzhuang Mi3
1State Key Laboratory for Geo-Mechanics and Deep Underground Engineering, China University of Mining and Technology, Beijing, China
2School of Civil and Resource Engineering, University of Science and Technology Beijing, Beijing, China
3School of Mechanics and Civil Engineering, China University of Mining and Technology, Beijing, China

Tóm tắt

In western China, red sandstone is widely distributed. This type of rock is susceptible to generate cracks after being disturbed, and thus becomes a communication channel for groundwater, which poses a great hidden danger in Engineering, such as shaft and tunnel construction. To solve this problem, artificial freezing method is applied to underground engineering. This article focuses on the dynamic tensile strength of red sandstone (RS) at negative temperatures. According to the actual freezing temperature in the site, the temperature range was set to − 5, − 10, − 20 °C in the test, and the rock at normal temperature was set as a control group. The results show that the tensile strength of RS at temperatures below zero is significantly greater than the tensile strength of rock at normal temperature, and − 10 °C is a turning point of rock strength. In order to reveal the mechanism of this change, the scanning electron microscopic (SEM) technique was used to observe the rock fragments after the rock rupture. It is found that the rock fracture patterns are closely related to the rock cement property and its environmental temperature.

Tài liệu tham khảo

Aoki K, Hibiya K, Yoshida T (1990) Storage of refrigerated liquefied gases in rock caverns: characteristics of rock under very low temperatures. Tunn Undergr Space Technol 5(4):319–325 Bayram F (2012) Predicting mechanical strength loss of natural stones after freeze-thaw in cold regions. Cold Reg Sci Technol 83–84:98–102 Chen W, Song B, Frew DJ (2003) Dynamic small strain measurements of a metal specimen with a split Hopkinson pressure bar. Exp Mech 43(1):20–23 Chen R, Li K, Xia K et al (2016) Dynamic fracture properties of rocks subjected to static pre-load using notched semi-circular bend method. Rock Mech Rock Eng 49:3865–3872 Cui G, Yang W (1992) Stress analysis of freezing pipes by modelling. J China Univ Min Technol 3(1):83–92 Dai F, Huang S, Xia K et al (2010) Some fundamental issues in dynamic compression and tension tests of rocks using split Hopkinson pressure bar. Rock Mech Rock Eng 43:657–666 Frew DJ, Forrestal MJ, Chen W (2002) Pulse shaping techniques for testing brittle materials with a split Hopkinson pressure bar. Exp Mech 42(1):93–106 Huang S, Xia K, Yan F et al (2010) An experimental study of the rate dependence of tensile strength softening of Longyou sandstone. Rock Mech Rock Eng 43:677–683 Kelsall PC, Case JB, Chabannes CR (1984) Evaluation of excavation-induced changes in rock permeability. Int J Rock Mech Miner Sci Geomech Abstr 21(3):123–135 Kolsky H (1949) An investigation of the mechanical properties of materials at very high rates of loading. Proc Phys Soc B 62:676–700 Li X, Wu Q, Tao M et al (2016) Dynamic Brazilian splitting test of ring-shaped specimens with different hole diameters. Rock Mech Rock Eng 49:4143–4151 Liu B, Liu N, Li D et al (2017) Frozen strength test on deep water-rich sandstone in Ordos. J Min Sci Technol 2(1):25–32 (in Chinese) Liu B, Ma Y, Zhang G et al (2018) Acoustic emission investigation of hydraulic and mechanical characteristics of muddy sandstone experienced one freeze-thaw cycle. Cold Reg Sci Technol 151:335–344 Mellor M (1970) Phase composition of pore water in cold rocks. U.S. Army Corp. of Engineers. CRREL Research Report 292. Hanover, New Hampshire Momeni A, Abdilor Y, Khanlari GR et al (2016) The effect of freeze–thaw cycles on physical and mechanical properties of granitoid hard rocks. Bull Eng Geol Environ 75:1649–1656 Park C, Synn JH, Shin HS et al (2004) An experimental study on the thermal characteristics rock at low temperature. Int J Rock Mech Min Sci 41(3):1–6 Timoshenko SP, Goodier JN (1970) Theory of elasticity. McGraw-Hill, New York Wang P, Xu J, Liu S et al (2016) Static and dynamic mechanical properties of sedimentary rock after freeze-thaw or thermal shock weathering. Eng Geol 210:148–157 Wang P, Xu J, Fang X et al (2017) Energy dissipation and damage evolution analyses for the dynamic compression failure process of red-sandstone after freeze–thaw cycles. Eng Geol 221:104–113 Wu B, Yao W, Xia K (2016) An experimental study of dynamic tensile failure of rocks subjected to hydrostatic confinement. Rock Mech Rock Eng 49:3855–3864 Xu G, Liu Q, Peng W et al (2006) Experimental study on basic mechanical behaviors of rocks under low temperatures. China J Rock Mech Eng 25(12):2502–2508 (in Chinese) Yang G, Qu Y, Xi J et al (2014) In-situ measurement and study of freezing pressure of shaft in western cretaceous water-rich bedrock. J Min Saf Eng 31(6):982–986 (in Chinese) Yin T, Li X, Xia K (2012) Effect of thermal treatment on the dynamic fracture toughness of laurentian granite. Rock Mech Rock Eng 45:1087–1094 Zhang R, Jing L (2018) Analysis on the fragment and energy dissipation of deep sandstone after high/low temperature treatment in SHPB tests. J China Coal Soc 43(7):1884–1892 (in Chinese) Zhang Q, Zhao J (2013) A review of dynamic experimental techniques and mechanical behavior of rock materials. Rock Mech Rock Eng 47:1411–1478 Zhang C, Yang W, Yang Z et al (2012) In-situ measurement and analysis of freezing pressure of outer shaft lining in deep aqueous bed rock. J China Coal Soc 37(1):33–38 (in Chinese) Zhang J, Yang H, Shan R et al (2018) Experimental research on triaxial compressive strength of frozen saturated sandy gravel. Rock Soil Mech 39(11):3994–4016 (in Chinese) Zhao J, Li H (2000) Experimental determination of dynamic tensile properties of a granite. Int J Rock Mech Min Sci 37(5):861–866 Zhou YX, Xia K, Li X et al (2012) Suggested methods for determining the dynamic strength parameters and mode-I fracture toughness of rock materials. Int J Rock Mech Min Sci 49:105–112 Zhou Z, Li X, Zou Y (2014) Dynamic Brazilian tests of granite under coupled static and dynamic loads. Rock Mech Rock Eng 47:495–505 Zhu W, Wong T (1997) The transition from brittle faulting to cataclastic flow: Permeability evolution. J Geophys Res Solid Earth 102(B2):3027–3042