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考虑水化学损伤的岩石真三轴蠕变本构模型

陈有亮 陈奇键 肖鹏 杜曦 王苏然

陈有亮, 陈奇键, 肖鹏, 杜曦, 王苏然. 考虑水化学损伤的岩石真三轴蠕变本构模型. 力学学报, 2023, 55(1): 159-168 doi: 10.6052/0459-1879-22-329
引用本文: 陈有亮, 陈奇键, 肖鹏, 杜曦, 王苏然. 考虑水化学损伤的岩石真三轴蠕变本构模型. 力学学报, 2023, 55(1): 159-168 doi: 10.6052/0459-1879-22-329
Chen Youliang, Chen Qijian, Xiao Peng, Du Xi, Wang Suran. A true triaxial creep constitutive model for rock considering hydrochemical damage. Chinese Journal of Theoretical and Applied Mechanics, 2023, 55(1): 159-168 doi: 10.6052/0459-1879-22-329
Citation: Chen Youliang, Chen Qijian, Xiao Peng, Du Xi, Wang Suran. A true triaxial creep constitutive model for rock considering hydrochemical damage. Chinese Journal of Theoretical and Applied Mechanics, 2023, 55(1): 159-168 doi: 10.6052/0459-1879-22-329

考虑水化学损伤的岩石真三轴蠕变本构模型

doi: 10.6052/0459-1879-22-329
基金项目: 国家自然科学基金(10872133)和上海市软科学研究领域重点资助项目(18692106100)
详细信息
    通讯作者:

    陈奇键, 硕士研究生, 主要研究方向为岩石力学. E-mail: cqj123456shuai@163.com

  • 中图分类号: TD313

A TRUE TRIAXIAL CREEP CONSTITUTIVE MODEL FOR ROCK CONSIDERING HYDROCHEMICAL DAMAGE

  • 摘要: 为了准确描述岩石在酸性环境下真三轴蠕变行为的各阶段特征, 基于水岩作用的化学动力学理论, 定义了考虑PH值与时间的化学损伤因子, 将弹性体, 非线性Kelvin体, 线性Kelvin体和黏弹塑性体进行串联, 并考虑岩石在真三轴应力作用下的实际情况, 建立岩石酸腐与真三轴应力耦合作用下的损伤蠕变本构模型, 通过已有的蠕变试验数据对该模型进行参数辨识与验证, 并通过数据拟合得到岩石在真三轴应力下的屈服面方程, 探讨中间主应力对蠕变模型的影响. 结果表明, 推导的本构模型能很好地描述岩石在酸腐作用下真三轴蠕变行为的各阶段特性, 验证了其合理性与准确性.

     

  • 图  1  非线性黏弹塑性损伤蠕变力学模型

    Figure  1.  Nonlinear viscoelastic plastic damage creep mechanical model

    图  2  溶液pH值拟合结果与实测数据对比

    Figure  2.  Comparison between the fitting results of solution pH value and the measured data

    图  3  考虑化学损伤的岩石蠕变试验曲线和本构曲线对比

    Figure  3.  Comparison of rock creep experimental curve and constitutive curve considering chemical damage

    图  4  八面体剪应力τoct与平均正应力σm,2的线性关系图

    Figure  4.  Linear relationship between octahedral shear stress τoct and mean normal stress σm,2

    图  5  真三轴应力作用下的大理岩实验曲线与模型曲线对比

    Figure  5.  Comparison between experimental and model curves of marble under true triaxial stress

    图  6  不同中间主应力对模型参数的影响

    Figure  6.  Effects of different intermediate principal stresses on model parameters

    表  1  考虑化学损伤的砂岩三轴蠕变模型参数(初始pH = 3)

    Table  1.   Sandstone triaxial creep model parameters considering chemical damage (initial pH = 3)

    $ {\sigma _1} - {\sigma _3} $K1/
    GPa
    G1/
    GPa
    G2/
    GPa
    η2/
    (GPa·h)
    $ \lambda $G3/
    GPa
    η3/
    (GPa·h)
    η4/
    (GPa·h)
    tF/hN
    11.53.212.025.373.370.307
    17.23.212.022.010.140.026
    22.83.212.022.830.170.02817.680.326
    26.63.212.022.200.310.0128.4350.365
    30.43.212.020.04229.060.04734.6541.6623.218.40.8
    下载: 导出CSV

    表  2  真三轴应力下的岩石损伤应力

    Table  2.   Rock peak stress under true triaxial stress

    $ {\sigma _3} $/MPa$ {\sigma _2} $/MPa$ {\sigma _{\text{p}}} $/MPa
    0049
    06087
    55156
    530199
    550233
    5100243
    1050263
    1515218
    1530203
    2050297
    3030270
    3040268
    3050273
    3080313
    30105318
    30120334
    30150384
    4050308
    40100367
    40200410
    下载: 导出CSV

    表  3  真三轴应力作用下的大理岩蠕变模型参数

    Table  3.   Parameters of the marble creep model under true triaxial stress

    $ {\sigma _1} $/MPa$ {\sigma _2} $/MPa$ {\sigma _3} $/MPa$ {K_1} $/GPa$ {G_1} $/GPa$ {G_2} $/GPa$ {\eta _2} $/(GPa·h)$ \lambda $$ {G_3} $/GPa$ {\eta _3} $/(GPa·h)$ {\eta _4} $/(GPa·h)${t_{\text{F} } }/{\rm{h} }$$ N $
    2255513226230.460.021235.012179.40.34
    22530513226850.410.28
    24530513223860.350.491264069
    265305132181063.541.412485351.930.7
    225505132251230.310.74
    245505138251150.250.12
    265505136241080.290.088
    28550513424810.250.1830613542
    3055051322024231.01329207422.12.2
    225805138282040.350.22
    245805143312510.220.05
    265805143264460.530.08
    285805143311170.170.2864711954
    305805143311290.200.2352413972
    325805143321440.410.3611436232.053.2
    下载: 导出CSV
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出版历程
  • 收稿日期:  2022-07-21
  • 录用日期:  2022-12-08
  • 网络出版日期:  2022-12-13
  • 刊出日期:  2023-01-18

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