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This paper explores the grain-size composition effect on flexural and micro-structural features of fiber reinforced cementitious tail-rock fill (FRCTRF). The FRCTRF mixes considered contained a stationary solid concentration of 70 wt% and a cement/tail rate of 1:6, and were cured for an age of 7-day for strength tests and microstructure. Three-point bending test shows that FRCTRF’s bending property is upgraded by totaling gravel rock. Adding fiber to FRCTRF’s bottom can enhance its peak deflection. With rising gravel particle size/dosage, FRCTRF’s peak deflection displays a trend of falling first and then growing. Accumulating polypropylene fiber could advance FRCTRF’s post-peak strength features as well. FRCTRF sample containing gravel has a large stress drop, and adding gravel rock could essentially boost FRCTRF’s post-peak brittle-ability. In conclusion, this study provides a strong scientific and theoretical underpinning for optimizing artificial false roofs employed recently in modern underground metalliferous mining operations. • Fiber reinforced cementitious tail-rock fill (FRCTRF) has practical significance for underground mines. • Effects of grain size and gravel content on FRCTRF’s flexural features and microstructure were explored. • The bending property and post-peak brittle-ability of FRCTRF is upgraded by totaling gravel rock. • This study characterizes artificial false roofs employed in modern underground metalliferous mines.
Qin et al. (Fri,) studied this question.