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Impact of fluid-rock chemical interactions on tracer transport in fractured rocks

机译:流体-岩石化学相互作用对裂缝岩中示踪剂运移的影响

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In this paper, we investigate the impact of chemical interactions, in the form of mineral precipitation and dissolution reactions, on tracer transport in fractured rocks. When a tracer is introduced in fractured rocks, it moves through the fracture primarily by advection and it also enters the stagnant water of the surrounding rock matrix through diffusion. Inside the porous rock matrix, the tracer chemically interacts with the solid materials of the rock, where it can precipitate depending on the local equilibrium conditions. Alternatively, it can be dissolved from the solid phase of the rock matrix into the matrix pore water, diffuse into the flowing fluids of the fracture and is adverted out of it We show that such chemical interactions between the fluid and solid phases have significant impact on tracer transport in fractured rocks. We invoke the dual-porosity conceptualization to represent the fractured rocks and develop a semi-analytical solution to describe the transient transport of tracers in interacting fluid-rock systems. To test the accuracy and stability of the semi-analytical solution, we compare it with simulation results obtained with the TOUGHREACT simulator. We observe that, in a chemically interacting system, the tracer breakthrough curve exhibits a pseudo-steady state, where the tracer concentration remains more or less constant over a finite period of time. Such a pseudo-steady condition is not observed in a non-reactive fluid-rock system. We show that the duration of the pseudo-state depends on the physical and chemical parameters of the system, and can be exploited to extract information about the fractured rock system, such as the fracture spacing and fracture-matrix interface area.
机译:在本文中,我们以矿物沉淀和溶解反应的形式研究了化学相互作用对裂隙岩中示踪剂运移的影响。当示踪剂被引入到破裂的岩石中时,其主要通过平流移动通过裂缝,并且还通过扩散进入周围岩石基质的停滞水中。在多孔岩石基质内部,示踪剂与岩石的固体材料发生化学相互作用,根据局部平衡条件,示踪剂可能在其中沉淀。或者,它可以从岩石基质的固相溶解到基质孔隙水中,扩散到裂缝的流动流体中并从裂缝中渗出。我们表明,流体和固相之间的这种化学相互作用对裂缝岩石中的示踪剂运输。我们调用双重孔隙度概念化来表示裂隙岩石,并开发一种半解析解决方案来描述示踪剂在相互作用的流体-岩石系统中的瞬态传输。为了测试半解析解的准确性和稳定性,我们将其与使用TOUGHREACT模拟器获得的模拟结果进行比较。我们观察到,在化学相互作用的系统中,示踪剂穿透曲线显示出伪稳态,其中示踪剂浓度在有限的时间内保持大致恒定。在非反应性流体-岩石系统中未观察到这种拟稳态条件。我们表明,伪状态的持续时间取决于系统的物理和化学参数,可以用来提取有关裂隙岩石系统的信息,例如裂隙间距和裂隙矩阵界面面积。

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