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首页> 外文期刊>Earth and Planetary Science Letters: A Letter Journal Devoted to the Development in Time of the Earth and Planetary System >Shear-enhanced compaction during non-linear viscous creep of porous calcite-quartz aggregates
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Shear-enhanced compaction during non-linear viscous creep of porous calcite-quartz aggregates

机译:多孔方解石-石英骨料非线性黏性蠕变过程中的剪切增强压实

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摘要

In this paper, we extend the previous studies of semi-brittle flow of synthetic calcite-quartz aggregates to a range of temperatures and effective pressures where viscous creep occurs. Triaxial deformation experiments were performed on hot-pressed calcite-quartz aggregates containing 10, 20 and 30 wt% quartz at confining pressure of 300 MPa, pore pressure of 50-290 MPa, temperatures of 673-1073 K and strain rates of 3.0 * 10~(-5)/s, 8.3 * 10~(-5)/s and 3.0 * 10~(-4)/s. Starting porosity varied from 5 to 9%. We made axial and volumetric strain measurements during the mechanical tests. Pore volume change was measured by monitoring the volume of pore fluid that flows out of or into the specimen at constant pore pressure. Yield stress increased with decreasing porosity and showed a dependence on effective pressure. Thus, the yield stress versus effective pressure can be described as a yield surface with negative slope that expands with decreasing porosity and increasing strain hardening, gradually approaching the envelope of strength at 10% strain, which has a positive slope. Creep of porous rock can be modeled to first order as an isolated equivalent void in an incompressible nonlinear viscous matrix. An incremental method is used to calculate the stress-strain curve of the porous material under a constant external strain rate. The numerical simulations reproduce general trends of the deformation behavior of the porous rock, such as the yield stress decreasing with increasing effective pressure and significant strain hardening at high effective pressure. The drop of yield stress with increasing porosity is modeled well, and so is the volumetric strain rate, which increases with increasing porosity.
机译:在本文中,我们将合成方解石-石英骨料的半脆性流动的先前研究扩展到发生粘性蠕变的温度和有效压力范围。在300 MPa的围压,50-290 MPa的孔压,673-1073 K的温度和3.0 * 10的应变速率下,对包含10、20和30 wt%石英的热压方解石-石英聚集体进行了三轴变形实验。 〜(-5)/s、8.3 * 10〜(-5)/ s和3.0 * 10〜(-4)/ s起始孔隙率从5%到9%不等。在机械测试期间,我们进行了轴向和体积应变测量。通过监测在恒定孔隙压力下流出或流入样品的孔隙流体的体积来测量孔隙体积的变化。屈服应力随着孔隙率的降低而增加,并显示出对有效压力的依赖性。因此,屈服应力与有效压力的关系可以描述为具有负斜率的屈服面,其随着孔隙率的降低和应变硬化的增加而扩展,逐渐接近10%应变时具有正斜率的强度。可以将多孔岩石的蠕变建模为不可压缩的非线性粘性矩阵中的孤立等效孔隙的一阶模型。使用增量方法来计算在恒定外部应变率下多孔材料的应力-应变曲线。数值模拟再现了多孔岩石变形行为的一般趋势,例如屈服应力随有效压力的增加而降低,以及在有效压力下明显的应变硬化。可以很好地模拟屈服应力随孔隙率增加而下降的情况,体积应变率也随孔隙率的增加而增加。

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