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Modeling of coupled thermal-hydraulic-mechanical-chemical processes for predicting the evolution in permeability and reactive transport behavior within single rock fractures

机译:耦合热液压机械 - 机械化学方法的建模,用于在单岩骨折内预测渗透性和反应性行为中的进化

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摘要

A multi-physics numerical model was developed to predict the fluid flow and mass transport behavior of rock fractures under coupled thermal-hydraulic-mechanical-chemical (THMC) conditions. In particular, the model was employed for the purpose of describing the evolution of permeability and reactive transport behavior within rock fractures by taking into account the geochemical processes of the free-face dissolution and the pressure dissolution. In order to examine the capability of the developed model, the model was applied to replicate the experimental measurements of the evolution in hydraulic aperture, permeability, and element concentrations obtained from two flow-through experiments using single granite and mudstone fractures. The model predictions for the granite experiment were able to follow the actual data for the evolution in hydraulic aperture and effluent element concentrations without adopting any fitting parameters that are often used in other THMC coupled models obtained from literature. Furthermore, the model succeeded in replicating the actual changes in fracture permeability and effluent element concentrations within the mudstone fracture. Although some uncertain mismatches between the experiments and the model predictions, such as changes in the concentrations of several elements (i.e., Na and K concentrations in the granite fracture and Al in the mudstone fracture) were remaining at this stage, the developed model should be valid for evaluating the evolution in the fluid flow and mass transport behavior within rock fractures induced by mineral dissolution under stress- and temperature-controlled conditions.
机译:开发了一种多物理数值模型,以预测耦合热液压 - 机械 - 化学(THMC)条件下岩骨折的流体流动和质量传输行为。特别地,该模型是为了通过考虑自由脸溶解和压力溶解的地球化学方法来描述岩体骨折内渗透性和反应性行为的演变。为了检查开发模型的能力,应用模型以通过单个花岗岩和泥岩骨折复制从两种流通实验中获得的液压孔径,渗透率和元素浓度的实验测量。花岗岩实验的模型预测能够遵循液压孔径和流出元件浓度的进化的实际数据,而不采用通常用于从文献中获得的其他THMC耦合模型中使用的任何拟合参数。此外,该模型成功复制了泥岩骨折内断裂渗透率和流出元件浓度的实际变化。虽然在这个阶段,实验和模型预测之间的一些不确定的模型预测(例如在花岗岩骨折和花岗岩骨折中的Al中的Na和K浓度)之间的变化,但是发达的模型应该是适用于评估通过矿物质溶解在应力和温度控制的条件下的岩体裂缝中的流体流动和质量传递行为的进化。

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