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首页> 外文期刊>Journal of Hydrology >Effect of medium permeability anisotropy on the morphological evolution of two non-uniformities in a geochemical dissolution system
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Effect of medium permeability anisotropy on the morphological evolution of two non-uniformities in a geochemical dissolution system

机译:介质渗透率各向异性对地球化学溶解体系中两种非均匀性形态演化的影响

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The morphological evolutions of chemical dissolution fronts have attracted increasing interest in the field of the geological sciences and in industrial applications. Extensive research based on numerical simulations has been conducted to understand how various mechanisms and processes influence the morphological evolution of chemical dissolution fronts within geological media. Most researchers in previous studies have assumed the medium permeability to be isotropic for developing numerical models, despite isotropic geological media being uncommon in the real world. This study investigates the effect of medium permeability anisotropy on the morphological evolutions of two non-uniformities with higher permeability in a geochemical dissolution system. A series of numerical simulations are performed to evaluate the effect of medium permeability anisotropy on the morphological evolution of a chemical dissolution front. The simulation results indicate that the patterns of the dissolution reaction front are substantially affected by medium permeability anisotropy. An increase in the permeability anisotropy ratio, which is defined as the ratio of the permeability in the transverse direction to that in the longitudinal direction, enhances the dominance of the flow-focusing effect over the stabilizing or merging effect induced by diffusion/dispersion mechanism. Therefore, an increase in the permeability anisotropy ratio can increase the fingering length of the dissolution front or cause the dissolution front to have a more unstable pattern. By contrast, a reduction in the permeability anisotropy ratio will weaken the flow-focusing effect, thereby reducing the fingering length of the dissolution front or changing the front morphology such that it has a more stable status. The effect of the permeability anisotropy ratio on the morphological evolution tends to decrease when the Zhao number (negative dimensionless upstream pressure gradient) of the system increases. The consideration of medium permeability anisotropy in the geochemical dissolution model renders the simulation of the morphological evolutions of dissolution reaction fronts more realistic. (C) 2015 Elsevier B.V. All rights reserved.
机译:化学溶解前沿的形态演化已经在地质科学领域和工业应用中引起了越来越多的兴趣。已经进行了基于数值模拟的广泛研究,以了解各种机制和过程如何影响地质介质中化学溶解前沿的形态演化。尽管在现实世界中各向同性地质介质并不常见,但先前研究中的大多数研究人员都假设介质渗透率是各向同性的,用于开发数值模型。本研究研究了中等渗透率各向异性对地球化学溶解系统中两种具有较高渗透率的非均匀性形态演化的影响。进行了一系列数值模拟,以评估介质渗透率各向异性对化学溶解锋面形态演化的影响。模拟结果表明,溶出反应前沿的模式受介质渗透率各向异性的影响很大。渗透率各向异性比的增加(其定义为横向渗透率与纵向渗透率之比)增加了流聚焦效应对由扩散/分散机制引起的稳定或合并效应的支配性。因此,渗透率各向异性比的增加可以增加溶解前沿的指状长度或导致溶解前沿具有更不稳定的图案。相反,渗透率各向异性比的减小将削弱流动聚焦效果,从而减小溶解前沿的指状长度或改变前沿形态,从而使其具有更稳定的状态。当系统的赵数(负无量纲上游压力梯度)增加时,渗透率各向异性比率对形态演化的影响趋于减小。地球化学溶出模型中介质渗透率各向异性的考虑使得溶出反应前沿的形态演化模拟更加现实。 (C)2015 Elsevier B.V.保留所有权利。

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