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首页> 外文期刊>Bulletin of engineering geology and the environment >Indications of risks in geothermal systems caused by changes in pore structure and mechanical properties of granite: an experimental study
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Indications of risks in geothermal systems caused by changes in pore structure and mechanical properties of granite: an experimental study

机译:孔隙结构变化和花岗岩机械性能引起的地热系统风险的迹象:实验研究

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摘要

The effects of thermal treatment on the pore structure and mechanical property evolution of granite were experimentally investigated to evaluate the risks of traditional and critical geothermal systems. The microstructure of thermally treated granite was studied using an optical microscope and nuclear magnetic resonance, and the mechanical properties of thermally treated granite were studied under uniaxial compression. X-ray diffraction results showed that the mineralogical phase of granite hardly changed during thermal treatment from room temperature to 800 degrees C, but the granite experienced first a decrease and then an increase in porosity. Although overall porosity decreased at 200 degrees C, the proportion of pore throat radium beyond 6.3 mu m grew increasingly with the treatment temperature, facilitating advective heat transport in the geothermal system. Intergranular microcracks caused by thermal anisotropic properties started at below 400 degrees C, and transgranular microcracks first appeared in feldspar at around 400 degrees C, finally extending to quartz at around 600 degrees C. The granite was strengthened due to decreased porosity at around 200 degrees C. Then, the granite was weakened and the failure transited from brittle to ductile due to increased porosity, where a sharp reduction occurred at 400-600 degrees C for alpha-beta transition of quartz. The change in strength by cyclic heating under 200 degrees C was unnoticeable for temperature memory effect, but the cumulative strain at peak stress increased with the number of heating cycles. The changes in the pore and mechanical properties caused by thermal treatment favour geothermal systems which are not within the tectonic zone. However, increased porosity and strength weakening destabilize nearby faults due to normal stress release and strength weakening.
机译:实验研究了热处理对孔隙结构和花岗岩机械性能演化的影响,评价传统和关键地热系统的风险。使用光学显微镜和核磁共振研究了热处理花岗岩的微观结构,在单轴压缩下研究了热处理花岗岩的机械性能。 X射线衍射结果表明,在热处理到800℃的热处理期间花岗岩的矿物阶段几乎没有变化,但花岗岩首先减少,然后孔隙率的增加。虽然整体孔隙率在200摄氏度下降,但孔喉镭的比例越来越超过6.3μm,越来越多地随治疗温度而越来越多地,促进地热系统的平均热输送。由热各向异性特性引起的晶间微裂纹在低于400℃下开始,并且响晶微裂纹首先出现在1200摄氏度约为400摄氏度的长桥上,最终延伸到约600℃的石英。由于孔隙率约为200摄氏度,花岗岩加强。 。然后,将花岗岩削弱,由于孔隙率增加,由于孔隙率增加,从脆性转变为韧性,在400-600℃下发生急剧的α-β-β转变。 200摄氏度下通过循环加热的强度的变化对于温度记忆效应,但峰值应力下的累积应变随加热循环的数量而增加。热处理有利于不在构造区内的地热系统引起的孔隙和机械性能的变化。然而,由于正常的应力释放和强度削弱,增加了孔隙率和强度弱化破坏了附近的故障。

著录项

  • 来源
    《Bulletin of engineering geology and the environment》 |2020年第10期|5399-5414|共16页
  • 作者单位

    Chongqing Univ State Key Lab Coal Mine Disaster Dynam & Control 174 Shazhengjie St Chongqing 400044 Peoples R China|Chongqing Univ Geofluids Geomech & Geoenergy 3G Res Grp Chongqing 400044 Peoples R China|Monash Univ Dept Civil Engn Deep Earth Energy Lab Melbourne Vic 3800 Australia;

    Chongqing Univ State Key Lab Coal Mine Disaster Dynam & Control 174 Shazhengjie St Chongqing 400044 Peoples R China|Chongqing Univ Geofluids Geomech & Geoenergy 3G Res Grp Chongqing 400044 Peoples R China;

    Monash Univ Dept Civil Engn Deep Earth Energy Lab Melbourne Vic 3800 Australia;

    China Univ Min & Technol State Key Lab Geomech & Deep Underground Engn Xuzhou 221116 Peoples R China;

    Chongqing Univ State Key Lab Coal Mine Disaster Dynam & Control 174 Shazhengjie St Chongqing 400044 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Granite; Elevated temperature; Microstructure; Mechanical properties;

    机译:花岗岩;升高的温度;微观结构;机械性能;

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