Predicting Transient Anomalous Transport in Two-Dimensional Discrete Fracture Networks With Dead-End Fractures

IF 4.6 1区 地球科学 Q2 ENVIRONMENTAL SCIENCES Water Resources Research Pub Date : 2025-01-19 DOI:10.1029/2024wr038731
HongGuang Sun, Dawei Lei, Yong Zhang, Jiazhong Qian, Xiangnan Yu
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Abstract

Pollutant transport in discrete fracture networks (DFNs) exhibits complex dynamics that challenge reliable model predictions, even with detailed fracture data. To address this issue, this study derives an upscaled integral-differential equation to predict transient anomalous diffusion in two-dimensional (2D) DFNs. The model includes both transmissive and dead-end fractures (DEFs), where stagnant water zones in DEFs cause non-uniform flow and transient sub-diffusive transport, as shown by both literature and DFN flow and transport simulations using COMSOL. The upscaled model's main parameters are quantitatively linked to fracture properties, especially the probability density function of DEF lengths. Numerical experiments show the model's accuracy in predicting the full-term evolution of conservative tracers in 2D DFNs with power-law distributed fracture lengths and two orientation sets. Field applications indicate that while model parameters for transient sub-diffusion can be predicted from observed DFN distributions, predicting parameters controlling solute displacement in transmissive fractures requires additional field work, such as tracer tests. Parameter sensitivity analysis further correlates late-time solute transport dynamics with fracture properties, such as fracture density and average length. Potential extensions of the upscaled model are also discussed. This study, therefore, proves that transient anomalous transport in 2D DFNs with DEFs can be at least partially predicted, offering an initial step toward improving model predictions for pollutant transport in real-world fractured aquifer systems.
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含断头裂缝的二维离散裂缝网络瞬态异常输运预测
即使有详细的裂缝数据,离散裂缝网络(DFNs)中的污染物运移也表现出复杂的动力学,这对可靠的模型预测提出了挑战。为了解决这个问题,本研究推导了一个升级的积分-微分方程来预测二维(2D) DFNs中的瞬态异常扩散。该模型包括透射裂缝和死端裂缝(DEFs),如文献和使用COMSOL进行的DFN流动和输运模拟所示,死端裂缝中的滞水区会导致不均匀流动和瞬态亚扩散输运。升级模型的主要参数与裂缝性质,特别是DEF长度的概率密度函数有定量联系。数值实验表明,该模型能够准确预测裂缝长度呈幂律分布的二维DFNs中保守示踪剂的全期演化。现场应用表明,虽然瞬态亚扩散的模型参数可以通过观察到的DFN分布来预测,但预测控制透射性裂缝溶质位移的参数需要额外的现场工作,例如示踪剂测试。参数敏感性分析进一步将后期溶质输运动力学与裂缝特性(如裂缝密度和平均长度)联系起来。本文还讨论了升级模型的潜在扩展。因此,该研究证明,具有DEFs的二维DFNs中的瞬态异常输运至少可以部分预测,为改进现实世界裂缝性含水层系统中污染物输运的模型预测迈出了第一步。
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来源期刊
Water Resources Research
Water Resources Research 环境科学-湖沼学
CiteScore
8.80
自引率
13.00%
发文量
599
审稿时长
3.5 months
期刊介绍: Water Resources Research (WRR) is an interdisciplinary journal that focuses on hydrology and water resources. It publishes original research in the natural and social sciences of water. It emphasizes the role of water in the Earth system, including physical, chemical, biological, and ecological processes in water resources research and management, including social, policy, and public health implications. It encompasses observational, experimental, theoretical, analytical, numerical, and data-driven approaches that advance the science of water and its management. Submissions are evaluated for their novelty, accuracy, significance, and broader implications of the findings.
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