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Analytical solutions for the circular stress transducer embedded in rheological rock mass

机译:流变岩体中嵌入圆形应力传感器的解析解

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摘要

The rheological stress recovery (RSR) method was proposed to measure the in-situ stress of rock mass with time-dependent property by drilling a hole and embedding transducers into it. To solve the stress distribution on the transducer, a viscoelastic axisymmetric plane model was firstly built considering an arbitrary stress boundary condition. The analytical solution was developed by dividing the stress boundary conditions into axisymmetric and anti-axisymmetric combining with Laplace transformation technique. The explicit stress expressions on interfaces of rock-grout and grout-transducer was obtained using Burgers and Boltzmann viscoelastic models, respectively. Furthermore, the variations of transducer surface final stress, which is related to rheological time, geometric and mechanical properties of rock mass, grout parameter, and transducer materials, was proposed for calculating the measured stress by RSR method. For both of Burgers and Boltzmann viscoelastic model, final stress increases as elastic modulus ratio increases when elastic modulus ratio under 20, and the final stress could be ignored when diameter ratio is over 1.4. The rheological time increases with increasing of viscosity coefficient and the modulus ratio, but decreases as the shear modulus increases. The results in here provide a simple method for stress analyzing and have great value for understanding the relationship between the initial stress of rock mass and the measured stress for the RSR method.
机译:提出了一种流变应力恢复(RSR)方法,该方法通过在钻孔中埋入换能器来测量具有时变特性的岩体的原位应力。为了解决换能器上的应力分布,首先建立了考虑任意应力边界条件的粘弹性轴对称平面模型。结合拉普拉斯变换技术,将应力边界条件分为轴对称和反轴对称,提出了解析解。分别使用Burgers和Boltzmann粘弹性模型获得了岩石灌浆和灌浆换能器界面上的显式应力表达式。此外,提出了与流变时间,岩体的几何和力学性能,灌浆参数以及换能器材料有关的换能器表面最终应力的变化,以通过RSR方法计算测量的应力。对于Burgers和Boltzmann粘弹性模型,当弹性模量比小于20时,最终应力随弹性模量比的增加而增加,而当直径比大于1.4时,最终应力可以忽略。流变时间随粘度系数和模量比的增加而增加,但随剪切模量的增加而减小。这里的结果提供了一种简单的应力分析方法,对于理解岩体初始应力与RSR方法测得的应力之间的关系具有重要的价值。

著录项

  • 来源
    《Applied Mathematical Modelling》 |2020年第5期|538-558|共21页
  • 作者单位

    State Key Laboratory of Geomechanics and Ceotechnical Engineering Institute of Rock and Soil Mechanics Chinese Academy of Sciences Wuhan 430071 China;

    The Key Laboratory of Safety for Geotechnical and Structural Engineering of Hubei Province School of Civil Engineering Wuhan University Wuhan Hubei 430072 China;

    State Key Laboratory of Coking Coal Resources Development and Comprehensive Utilization China Pingmei Shenma Group Pingdingshan Henan 467099 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    In-situ stress; Rheological stress recovery; Transducer; Soft rock; Coalmine;

    机译:原地应力流变应力恢复;传感器;软岩煤矿;

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