Testing the properties of cemented tailings backfill under multiaxial compressive loading

被引:2
|
作者
Liu, Hongbin [1 ]
Fall, Mamadou [1 ,2 ]
机构
[1] Univ Ottawa, Dept Civil Engn, Ottawa, ON K1N 6N5, Canada
[2] Univ Ottawa, Geotech Engn, Ottawa, ON K1N 6N5, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Cemented paste backfill; Tailings; Multiaxial stresses curing; Rockwall closure; Deep mine; MECHANICAL-CHEMICAL BEHAVIOR; PASTE BACKFILL; WATER INRUSH; MINE; STRESS; PRESSURE;
D O I
10.1016/j.conbuildmat.2024.135682
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The engineering design of cemented paste backfill (CPB) typically relies on technical data obtained from tests conducted on CPB samples cured under conventional laboratory conditions. However, these methods often fall short in capturing the complex multiaxial stress curing conditions that CPB masses experience in many underground mines, particularly in deep underground mines. In these mining environments, CPB is subjected to multiaxial stress conditions during the curing process that are challenging to replicate in a controlled laboratory setting. No lab-scale apparatus can currently accurately reproduce these actual field multiaxial stress conditions, especially the intricate interplay of horizontal rockwall closure stresses, vertical self-weight stress, and overburden stresses from upper layers. Moreover, the impact of these conditions on the key engineering properties of CPB is unknown. To address this significant challenge and technology gap, this study has developed a new apparatus for curing and monitoring CPB under realistic multiaxial compressive loading conditions, simulating the complex stress environment encountered in underground mines. The developed apparatus was then utilized to assess the impact of multiaxial stress curing conditions, including vertical stress and horizontal stresses induced by rockwall closures, on key engineering properties (strength, deformation behaviour, self-desiccation) of CPB at early ages. The research results clearly indicate that the application of multiaxial stresses leads to a significant enhancement in the mechanical and physical properties of CPB. This enhancement is supported by observable densification of the pore structure in CPB subjected to multiaxial compressive stresses. In addition, a comprehensive analysis of deformation and strain patterns establishes a direct correlation between multiaxial stresses and the progressive increase in stiffness and hardness of CPB over time. Furthermore, the evolution of matric suction and degree of saturation provides compelling evidence of the significant impact of multiaxial stresses on pore water consumption or self-desiccation. The development of this new apparatus fills a substantial void in CPB research capabilities. Furthermore, the results obtained provide a better understanding of the complex behavior of CPB in multi-stress loading environments, paving the way for the design and optimization of backfill solutions that effectively address the unique challenges posed by deep underground mining operations.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Mechanical properties and deformation mechanism of stratified cemented tailings backfill under unconfined compression
    Chen, Shuaijun
    Jin, Aibing
    Zhao, Yiqing
    Li, Hai
    Wang, Jie
    [J]. CONSTRUCTION AND BUILDING MATERIALS, 2022, 335
  • [22] A Constitutive Model for Cemented Tailings Backfill Under Uniaxial Compression
    Tu, Bingbing
    Liu, Lang
    Cheng, Kangli
    Zhang, Bo
    Zhao, Yujiao
    Yang, Qixing
    Song, Kiil
    [J]. FRONTIERS IN PHYSICS, 2020, 8
  • [23] Evaluation of Viscosity, Strength and Microstructural Properties of Cemented Tailings Backfill
    Cao, Shuai
    Yilmaz, Erol
    Song, Weidong
    [J]. MINERALS, 2018, 8 (08):
  • [24] Effects of Acid Environment on Mechanical Properties of Cemented Tailings Backfill
    Huang, Yong-gang
    Wang, Gui-yao
    Rao, Yun-zhang
    Liu, Wei-peng
    [J]. GEOTECHNICAL AND GEOLOGICAL ENGINEERING, 2021, 39 (06) : 4639 - 4648
  • [25] Study of mechanical properties of frozen saline cemented tailings backfill
    Wu Zai-hai
    Ji Hong-guang
    Jiang Hai-qiang
    Qi Zhao-jun
    Kou Yun-peng
    [J]. ROCK AND SOIL MECHANICS, 2020, 41 (06) : 1874 - 1880
  • [26] Effects of Acid Environment on Mechanical Properties of Cemented Tailings Backfill
    Yong-gang Huang
    Gui-yao Wang
    Yun-zhang Rao
    Wei-peng Liu
    [J]. Geotechnical and Geological Engineering, 2021, 39 : 4639 - 4648
  • [27] Mechanical properties and crack evolution of interbedded cemented tailings backfill
    Tang Y.-N.
    Fu J.-X.
    Song W.-D.
    Zhang Y.-F.
    [J]. Fu, Jian-Xin (fujun0011@126.com), 1600, Science Press (42): : 1286 - 1298
  • [28] Influence of temperature on compressive strength, microstructure properties and failure pattern of fiber-reinforced cemented tailings backfill
    Xu, Wenbin
    Li, Qianlong
    Zhang, Yalun
    [J]. CONSTRUCTION AND BUILDING MATERIALS, 2019, 222 : 776 - 785
  • [29] Reloading mechanical characteristics of cemented tailings backfill after dynamic loading action
    Song, Xuepeng
    Fan, Bowen
    Wang, Shi
    Zhang, Hongwei
    [J]. Meitan Xuebao/Journal of the China Coal Society, 49 (12): : 4785 - 4797
  • [30] Cemented sand under hollow cylinder multiaxial loading
    Corte, Marina Bellaver
    Festugato, Lucas
    Ibraim, Erdin
    Diambra, Andrea
    Consoli, Nilo Cesar
    [J]. PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-GROUND IMPROVEMENT, 2024,