首页> 外文期刊>Journal of Hydrology >A mechanical-hydraulic-solute transport model for rough-walled rock fractures subjected to shear under constant normal stiffness conditions
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A mechanical-hydraulic-solute transport model for rough-walled rock fractures subjected to shear under constant normal stiffness conditions

机译:在恒定正常刚度条件下对剪切进行剪切的粗壁岩骨折的机械液压溶质运输模型

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摘要

The present study developed a two dimensional mechanical-hydraulic-solute transport model for rough-walled rock fractures under constant normal stiffness boundary conditions. First, the mechanical responses of a fracture during shear including the shear stress, the normal stress, the dilation and the sheared-off area of asperities at each shear step were calculated in a mechanical module. The surface roughness was characterized by two-order asperities, i.e., waviness and unevenness, and the degradation of asperities was estimated based on the principle of wear. The mechanical module was validated by comparison with laboratory experiments. The surface geometry and the dilation behavior were subsequently incorporated into a hydraulic module to estimate the hydraulic aperture and flow rate based on the cubic law. Finally, these data were input into a solute transport module to investigate the influences of the mechanical boundary conditions on the solute transport in the fracture and the matrix at different shear displacements and time. The model linked the complex mechanisms involved in the mechanical, hydraulic and solute transport processes for fractures subjected to shear, and revealed a controlling effect of normal stiffness on the transport behavior. The results show that the normal displacement, normal stress, cumulative sheared-off area and porosity of matrix change quickly in the initial stage of shear, and gradually reach some constant values when the fracture surface is sufficiently smoothed in the residual stage. In the entire shear process, the major asperities are substantially damaged, producing abundant gouge particles that contribute to the retardation of solute transport. The shear-induced dilation and the retardation induced by gouge particles from damaged asperities played competitive roles in solute transport that resulted in the nonlinear variations in the coefficient of retardation. The model established a solid platform for estimating the mechanical-hydraulic-solute transport processes in fractures subjected to shear, upon which more sophisticated modules such as pressure solution and clogging by particles may be developed to improve the understanding on the outstanding issues involved in the coupled processes.
机译:本研究在恒定正常刚度边界条件下开发了一种用于粗糙壁岩骨折的二维机械液压溶质运输模型。首先,在机械模块中计算包括剪切应力,正常应力,扩张和在每个剪切步骤中的慢性的慢性的剪切期间的裂缝的机械响应。表面粗糙度的特征在于三阶粗糙度,即波纹和不均匀,基于磨损原理估计粗糙度的降解。通过与实验室实验比较验证机械模块。随后将表面几何形状和扩张行为结合到液压模块中以估计基于立方法的液压孔径和流速。最后,将这些数据输入到溶质传输模块中,以研究机械边界条件对裂缝和基质在不同剪切位移和时间的溶质转运上的影响。该模型与经受剪切进行裂缝的裂缝中涉及的伴随机械,液压和溶质传输过程中涉及的复杂机制,并揭示了正常刚度对运输行为的控制效果。结果表明,在剪切的初始阶段,在剪切的初始阶段中迅速变化正常的位移,正常应力,累积剪切面积和孔隙率,并且当骨折表面在残留阶段充分平滑时逐渐达到一些恒定值。在整个剪切过程中,主要粗糙度基本上受损,产生丰富的胭脂颗粒,有助于旋转溶质转运。剪切诱导的扩张和由粗糙血管血管颗粒诱导的延迟在溶质转运中发挥了竞争作用,其导致延迟系数的非线性变化。该模型建立了一种坚固的平台,用于估计经受剪切的裂缝中的机械液压溶质转运过程,可以开发出更复杂的模块,例如压力溶液和颗粒堵塞,以改善对耦合所涉及的突出问题的理解流程。

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