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物理和地球化学非均质性对水文地球化学迁移及有效反应速率的影响。

The effects of physical and geochemical heterogeneities on hydro-geochemical transport and effective reaction rates.

作者信息

Atchley Adam L, Navarre-Sitchler Alexis K, Maxwell Reed M

机构信息

Department of Geology & Geological Engineering, USA; Hydrological Science & Engineering, USA.

Department of Geology & Geological Engineering, USA; Hydrological Science & Engineering, USA.

出版信息

J Contam Hydrol. 2014 Sep;165:53-64. doi: 10.1016/j.jconhyd.2014.07.008. Epub 2014 Jul 28.

Abstract

The role of coupled physical and geochemical heterogeneities in hydro-geochemical transport is investigated by simulating three-dimensional transport in a heterogeneous system with kinetic mineral reactions. Ensembles of 100 physically heterogeneous realizations were simulated for three geochemical conditions: 1) spatially homogeneous reactive mineral surface area, 2) reactive surface area positively correlated to hydraulic heterogeneity, and 3) reactive surface area negatively correlated to hydraulic heterogeneity. Groundwater chemistry and the corresponding effective reaction rates were calculated at three transverse planes to quantify differences in plume evolution due to heterogeneity in mineral reaction rates and solute residence time (τ). The model is based on a hypothetical CO2 intrusion into groundwater from a carbon capture utilization and storage (CCUS) operation where CO2 dissolution and formation of carbonic acid created geochemical dis-equilibrium between fluids and the mineral galena that resulted in increased aqueous lead (Pb(2+)) concentrations. Calcite dissolution buffered the pH change and created conditions of galena oversaturation, which then reduced lead concentrations along the flow path. Near the leak kinetic geochemical reactions control the release of solutes into the fluid, but further along the flow path mineral solubility controls solute concentrations. Simulation results demonstrate the impact of heterogeneous distribution of geochemical reactive surface area in coordination with physical heterogeneity on the effective reaction rate (Krxn,eff) and Pb(2+) concentrations within the plume. Dissimilarities between ensemble Pb(2+) concentration and Krxn,eff are attributed to how geochemical heterogeneity affects the time (τeq) and therefore advection distance (Leq) required for the system to re-establish geochemical equilibrium. Only after geochemical equilibrium is re-established, Krxn,eff and Pb(2+) concentrations are the same for all three geochemical conditions. Correlation between reactive surface area and hydraulic conductivity, either positive or negative, results in variation in τeq and Leq.

摘要

通过模拟一个存在动力学矿物反应的非均质系统中的三维输运,研究了物理和地球化学耦合非均质性在水文地球化学输运中的作用。针对三种地球化学条件,模拟了100个物理非均质实现的集合:1)反应性矿物表面积在空间上均匀,2)反应性表面积与水力非均质性呈正相关,3)反应性表面积与水力非均质性呈负相关。在三个横向平面上计算了地下水化学性质和相应的有效反应速率,以量化由于矿物反应速率和溶质停留时间(τ)的非均质性导致的羽流演化差异。该模型基于一个假设,即来自碳捕获利用与封存(CCUS)作业的二氧化碳侵入地下水,其中二氧化碳溶解和碳酸的形成导致流体与方铅矿矿物之间出现地球化学不平衡,从而导致水中铅(Pb(2+))浓度增加。方解石溶解缓冲了pH变化,并创造了方铅矿过饱和的条件,进而降低了沿流动路径的铅浓度。在泄漏点附近,动力学地球化学反应控制溶质向流体中的释放,但在流动路径更远的地方,矿物溶解度控制溶质浓度。模拟结果表明,地球化学反应性表面积的非均质分布与物理非均质性协同作用对羽流内的有效反应速率(Krxn,eff)和Pb(2+)浓度的影响。集合Pb(2+)浓度和Krxn,eff之间的差异归因于地球化学非均质性如何影响系统重新建立地球化学平衡所需的时间(τeq),进而影响平流距离(Leq)。只有在重新建立地球化学平衡之后,所有三种地球化学条件下的Krxn,eff和Pb(2+)浓度才相同。反应性表面积与水力传导率之间的正相关或负相关都会导致τeq和Leq的变化。

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