Author:
Kim Bo-Hyun,Walton Gabriel,Larson Mark K.,Berry Steve
Abstract
AbstractChanges of failure mechanism with increasing confinement, from extensional to shear-dominated failure, are widely observed in the rupture of intact specimens at the laboratory scale and in rock masses. In an analysis published in 2018, both unconfined and triaxial compressive tests were conducted to investigate the strength characteristics of 84 specimens of a Utah coal, including the spalling limits, the ratio of apparent unconfined compressive strength to unconfined compressive strength (UCS), the damage characteristics, and the post-yield dilatancy. These mechanical characteristics were found to be strongly anisotropic as a function of the orientation of the cleats relative to the loading direction, defined as the included angle. A total of four different included angles were used in the work performed in 2018. The authors found that the degree of anisotropic strength differed according to the included angle. However, the transition from extensional to shear failure at the given confinements was not clearly identified. In this study, a total of 20 specimens were additionally prepared from the same coal sample used in the previous study and then tested under both unconfined and triaxial compressive conditions. Because the authors already knew the most contrasting cases of the included angles from the previous work using the four included angles, they chose only two of the included angles (0° and 30°) for this study. For the triaxial compressive tests, a greater confining stress than the mean UCS was applied to the specimens in an attempt to identify the brittle-ductile transition of the coal. The new results have been compiled with the previous results in order to re-evaluate the confinement-dependency of the coal behavior. Additionally, the different confining stresses are used as analogs for different width-to-height (W/H) conditions of pillar strength. Although the W/H ratios of the specimens were not directly considered during testing, the equivalent W/H ratios of a pillar as a function of the confining stresses were estimated using an existing empirical solution. According to this relationship, the W/H at which in situ pillar behavior would be expected to transition from brittle to ductile is identified.
Publisher
Springer Science and Business Media LLC
Subject
Energy Engineering and Power Technology,Geotechnical Engineering and Engineering Geology
Reference48 articles.
1. Bawden WF (2010) Thoughts on quantitative field scale characterization of post-failure rock mass conditions and their influence on underground mine design. In: McLennan J et al. (eds) Proceedings: 44th U.S. rock mechanics symposium and 5th U.S./Canada rock mechanics symposium. Invited presentation, (Salt Lake City, UT: June 27–30, 2010) Alexandria, VA, American Rock Mechanics Association, p 18
2. Bieniawski ZT (1968a) The compressive strength of hard rock. Tydskrif vir Natuurwetenskappe 8:163–182
3. Bieniawski ZT (1968b) The effect of specimen size on compressive strength of coal. Int J Rock Mech Min Sci 5:325–335
4. Bieniawski ZT (1968c) In situ strength and deformation characteristics of coal. Eng Geol 2:325–340
5. Buzzi O, Sieffert Y, Mendes J, Liu X, Giacomini A, Seedsman R (2014) Strength of an Australian coal under low confinement. Rock Mech Rock Eng 47:2265–2270. https://doi.org/10.1007/s00603-013-0493-5
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