首页> 外文期刊>International journal of geomechanics >Numerical Investigation of Coupled Effects of Temperature and Confining Pressure on Rock Mechanical Properties in Fractured Rock Mass Using Thermal-Stress-Aperture Coupled Model
【24h】

Numerical Investigation of Coupled Effects of Temperature and Confining Pressure on Rock Mechanical Properties in Fractured Rock Mass Using Thermal-Stress-Aperture Coupled Model

机译:热应力 - 孔径耦合模型对裂缝岩体岩体力学性能对岩石力学性能的数值研究

获取原文
获取原文并翻译 | 示例
           

摘要

The mechanical performance of rock mass subjected to the coupled influences of the elevated temperature and in situ stresses has always been a hot topic in underground rock engineering projects. In this study, a thermal-stress-aperture coupled model was first developed and then incorporated into the particle flow code for the coupled thermomechanical analyses in the fractured rock mass. With thorough considerations of the aperture-dependent thermal and mesomechanical parameters for the fractured rock, the model performed more realistic thermoelastic responses of the fractured rock to the temperatures and confining pressures. Comparative studies between the numerical simulations and previous experimental results indicated that the proposed model was suitable for modeling the thermomechanical behaviors of the fractured rock. Then, a series of numerical compression simulations with heating temperatures of 20 degrees C-600 degrees C and confining pressures of 0-20 MPa were conducted to comprehensively explore the interplay of the temperature and confining pressure on mechanical properties of fractured rock specimens. Finally, the mechanisms that affect the rock thermomechanical properties were further revealed. The results indicated that the compressive strength and elastic modulus increase with an increase in confining pressure for each temperature scenario. The thermal strengthening behavior of rock extrapolated to about 400 degrees C takes place in confined compression tests and is more pronounced at higher confining pressures. The evolutions of thermal properties, microcracks, and mesostructures are the most decisive factors that could induce the variations of rock properties under the coupled temperature and confining pressure treatment. For analyzing the mechanisms behind strengthening and weakening contribution to rock properties, the positive effect of the decrease in average fracture aperture, the dual effects of increased porosity and thermal-induced microcracks, and the negative effect of stress-induced microcracks should be comprehensively considered.
机译:岩体对高温和原位应力的耦合影响的岩体的力学性能一直是地下岩石工程项目中的热门话题。在该研究中,首先开发热应力 - 孔径耦合模型,然后将其掺入粉碎岩体中的耦合热机械分析的颗粒流量编码中。通过对裂缝岩石的孔径依赖性热和脱模参数的彻底考虑,该模型对裂缝岩石进行了更现实的热弹性响应到温度和限制压力。数值模拟与先前实验结果之间的比较研究表明,所提出的模型适用于建模裂缝岩石的热机械行为。然后,进行了一系列具有20摄氏度的加热温度的数值压缩模拟和0-20MPa的限制压力,以全面探索温度和限制压力对裂缝岩石标本的力学性能的影响。最后,进一步揭示了影响岩石热机械性能的机制。结果表明,抗压强度和弹性模量随着每个温度场景的限制压力而增加。将岩石的热强化行为推断为约400℃,在狭窄的压缩试验中进行,并且在更高的限制压力下更明显。热性能,微裂纹和介性结构的演变是最决定性的因素,可以诱导耦合温度和限制压力处理下的岩石性能的变化。为了分析加强和削弱对岩石性质的贡献的机制,平均骨折孔径降低的积极作用,增加孔隙率和热诱导的微裂纹的双重作用,以及应应力诱导的微裂纹的负面影响。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号