An experimental study on tensile characteristics of granite rocks exposed to different high-temperature treatments

被引:2
作者
W. G. P. Kumari
D. M. Beaumont
P. G. Ranjith
M. S. A. Perera
B. L. Avanthi Isaka
M. Khandelwal
机构
[1] Monash University,Deep Earth Energy Laboratory, Department of Civil Engineering
[2] The University of Melbourne,Department of Infrastructure Engineering
[3] Federation University,School of Science, Engineering and Information Technology
来源
Geomechanics and Geophysics for Geo-Energy and Geo-Resources | 2019年 / 5卷
关键词
Acoustic emission; ARAMIS photogrammetry; High-temperature; Mechanical behaviour; Micro-cracks; Scanning electron microscopy (SEM); Tensile strength; Thermal treatment;
D O I
暂无
中图分类号
学科分类号
摘要
Investigation of temperature dependent tensile strength characteristics of rocks provides essential inputs to continue the development of deep geo-engineering applications, including enhanced geothermal systems, deep mining and deep geological disposal of nuclear waste. The aim of this study is, therefore, to identify the influence of temperature (from room temperature to 1000 °C) and different heating and cooling treatments (constant high temperature, slow and rapid cooling) on Australian granite’s tensile strength and to investigate the corresponding microstructural alterations due thermal treatment. Brazilian tensile strength tests were performed on two types of granites collected from Australia, Strathbogie, and Harcourt. ARAMIS photogrammetry, Acoustic Emissions (AE) and Scanning Electron Microscopy (SEM) were employed to examine the crack initiation and development during the experiment. The results concluded that with the increase of temperature for all three thermal conditions, there was a slight increase in tensile strength for Strathbogie granite between room temperature and 200 °C for constant high-temperature condition and slowly cooled condition whilst beyond this there was a clear negative trend. Harcourt granite experienced a negative trend immediately from room temperature conditions. Further, the influence of rapid cooling was much higher than that of slow cooling, due to the intense thermal shock. Beyond 500 °C, there was a significant reduction in the range of strength values which evidence α to β quartz mineral transition. Therefore, the failure mechanism of granite at considered temperature transitioned from a brittle to a quasi-brittle state. This was confirmed with AE testing and ARAMIS photogrammetry such that, higher temperatures resulted in a considerable crack closure and an increase in the unstable crack propagation. This was mainly due to the closure of pre-existing thermally induced cracks followed by crack re-bonding due to the melting followed by re-crystallization of grains, particularly at 1000 °C which was confirmed with SEM.
引用
收藏
页码:47 / 64
页数:17
相关论文
共 117 条
  • [1] Barla G(2017)Comprehensive study including testing, monitoring and thermo-hydro modelling for design and implementation of a geothermal system in Torino (Italy) Geomech Geophys Geo Energy Geo Resources 3 175-188
  • [2] Breede K(2013)A systematic review of enhanced (or engineered) geothermal systems: past, present and future Geotherm Energy 1 4-1086
  • [3] Dzebisashvili K(2004)Estimation of cracking and damage mechanisms in rock under triaxial compression by moment tensor analysis of acoustic emission Int J Rock Mech Min Sci 41 1069-315
  • [4] Liu X(2008)Thermo-mechanical properties of Indian and other granites Int J Rock Mech Min Sci 45 303-107
  • [5] Falcone G(2007)Surface features of uniaxial tensile fractures and their relation to rock anisotropy in Inada granite Int J Rock Mech Min Sci 44 98-198
  • [6] Chang S-H(1921)The phenomena of rupture and flow in solids Philos Trans R Soc Lond Ser A Math Phys Character 221 163-1020
  • [7] Lee C-I(2003)ISRM suggested methods for rock stress estimation—part 3: hydraulic fracturing (HF) and/or hydraulic testing of pre-existing fractures (HTPF) Int J Rock Mech Min Sci 40 1011-10
  • [8] Dwivedi RD(1983)High-temperature mechanical, physical and thermal properties of granitic rocks—a review Int J Rock Mech Min Sci Geomech Abstr Elsevier 20 3-523
  • [9] Goel RK(1964)Fracture of anisotropic rock J South Afr Inst Min Metall 64 501-1186
  • [10] Prasad VVR(1997)Practical estimates of rock mass strength Int J Rock Mech Min Sci 34 1165-134