Chemically Induced Changes in the Shear Behaviour of Interface Between Rock and Tailings Backfill Undergoing Cementation

被引:0
作者
Kun Fang
Mamadou Fall
机构
[1] University of Ottawa,Department of Civil Engineering
来源
Rock Mechanics and Rock Engineering | 2019年 / 52卷
关键词
Cemented paste backfill; Tailings; Rock; Sulphate content; Shear behaviour; Interface;
D O I
暂无
中图分类号
学科分类号
摘要
Tailings are man-made soils generated by mining activities. When mixed with cement and water, they form a cemented soil called cemented paste backfill (CPB). CPB is commonly used to backfill underground cavities created by ore extraction. The shear behaviour and resistance of the CPB–rock interface are important parameters for the geotechnical design of underground CPB structures. However, CPB can contain a relatively high amount of sulphate, and no studies have been performed to investigate the effect of the initial sulphate content of CPB on the behaviour and resistance of the interface between rock and tailings backfill that is undergoing cementation. The main objective of this experimental investigation is to, therefore, examine the effects of the initial sulphate content (0 ppm, 5,000 ppm, 15,000 ppm, and 25,000 ppm) of CPB on the shear behaviour of the CPB–rock interface at the early ages of curing (1 day, and 3 and 7 days). The obtained results show that, for samples at a very early age of 1 day, an increase in the sulphate content reduces the shear strength of the CPB–rock interface, whereas, for those cured for a longer period of 7 days, the sulphate can either positively or negatively affect the shear strength of the interface depending on the sulphate content.
引用
收藏
页码:3047 / 3062
页数:15
相关论文
共 142 条
[41]  
Nasir O(1999)Differential scanning calorimetry study of ordinary portland cement Cem Concr Res 29 1487-119
[42]  
Fall M(2013)Shear behaviour of sensitive marine clay-concrete interfaces J Geotech Geoenviron Eng 19 644-151
[43]  
Pokharel M(2015)Experimental and numerical analysis of the shear behaviour of cemented concrete-rock joints Rock Mech Rock Eng 48 213-251
[44]  
Fall M(1979)Estimating Joint Roughness Coefficients Int J Rock Mech Min Sci 16 303-336
[45]  
Pokharel M(2004)Alternative calcium sulfate-bearing materials as cement retarders: part I. Anhydrite Cem Concr Res 34 2113-1339
[46]  
Fall M(1997)Engineering behaviours of cement-treated Bangkok soft clay Geotech Eng J 28 89-undefined
[47]  
Benzaazoua M(2008)Curing time effect on behaviour of cement treated marine clay Int J Marine Environ Sci 2 144-undefined
[48]  
Ouellet S(2001)Reassessing the joint roughness coefficient (JRC) estimation using Z2 Rock Mech Rock Eng 34 243-undefined
[49]  
Fall M(1991)Joint profiles and their roughness parameters Int J Rock Mech Min Sci Geomech Abstr 28 333-undefined
[50]  
Celestin J(2001)Thermal stability and decomposition mechanisms of ettringite at < 120°C Cem Concr Res 31 1333-undefined