首页> 外文期刊>International Journal of Rock Mechanics and Mining Sciences >Subsurface hydro-mechanical (HM) impacts of glaciation: Sensi tivity to transient analysis, HM coupling, fracture zone connectiv ity and model dimensionality
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Subsurface hydro-mechanical (HM) impacts of glaciation: Sensi tivity to transient analysis, HM coupling, fracture zone connectiv ity and model dimensionality

机译:冰川作用对地下流体力学(HM)的影响:对瞬态分析的敏感性,HM耦合,断裂带的连通性和模型尺寸

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Benchmark Test 3 (BMT3) of the international DECOVALEX III project has been designed to provide an illustrative example that explores the mechanical and hydraulic response of a fractured crystalline rock mass to a period of glaciation. The primary purpose of this numerical study is to investigate whether transient events associated with a glacial cycle could significantly influence the performance of a deep geological repository in a crystalline Shield setting. A conceptual site-scale (tens of kilometres) hydro-mechanical (HM) model was assembled based primarily on site-specific litho-structural, hydrogeological and geomechanical data from the Whiteshell Research Area on the Canadian Shield, with simplification and generalization to accommodate Fennoscandian Shield information. This site-scale HM model was driven by transient hydraulic and mechanical glaciated surface boundary conditions generated by the University of Edinburgh's continental-scale model of Laurentide ice-sheet history during the last glacial cycle, which lasted approximately 100 000 years. An overview of the BMT3 study has been presented in a companion paper (Chan T, Christiansson R, Boulton GS, Ericsson LO, Hartikainen J, Jensen MR, Mas Ivars D, Stanchell FW, Vidstrand P, Wallroth T. DECOVALEX HI BMT3/BENCHPAR WP4: the thermo-HM responses to a glacial cycle and their potential implications for deep geological disposal of nuclear fuel waste in a fractured crystalline rock mass, this issue). This paper describes two- and three-dimensional coupled HM finite-element simulations with the MOTIF (Model Of Transport In Fractured/porous media) code. The mathematical and numerical modelling approaches are described and example results are presented to illustrate: (a) transient coupled modelling is necessary to capture the essence of glacial effects on groundwater flow system evolution; (b) fracture zone network geometry, interconnectivity and hydraulic properties significantly influence the magnitude and rate of flow domain response; and (c) model dimensionality can significantly affect simulated results.
机译:国际DECOVALEX III项目的基准测试3(BMT3)旨在提供一个说明性的示例,探讨裂缝性晶体岩体对冰川期的机械和水力响应。这项数值研究的主要目的是调查与冰川周期相关的瞬变事件是否会显着影响晶体盾构环境中深层地质库的性能。主要基于加拿大盾构怀特比尔研究区的特定现场岩石结构,水文地质和地质力学数据,组装了概念性的站点规模(数十公里)水力机械(HM)模型,并对其进行了简化和概括以适应芬诺斯堪的亚山脉屏蔽信息。该站点规模的HM模型是由爱丁堡大学劳伦特冰盖历史的大陆规模模型在过去大约10万年的冰川周期中产生的瞬态水力和机械冰川表面边界条件驱动的。 BMT3研究的概述已在随附的论文中进行了介绍(Chan T,Christiansson R,Boulton GS,Ericsson LO,Hartikainen J,Jensen MR,Mas Ivars D,Stanchell FW,Vidstrand P,Wallroth T. DECOVALEX HI BMT3 / BENCHPAR WP4:热冰川对冰川周期的响应及其对裂隙结晶岩体中核燃料废物深层地质处置的潜在影响,此问题)。本文介绍了使用MOTIF(破裂/多孔介质传输模型)代码进行的二维和三维耦合HM有限元模拟。描述了数学和数值建模方法,并给出了示例结果以说明:(a)瞬态耦合建模对于捕获冰川对地下水流动系统演化的影响是必要的; (b)断裂带网络的几何形状,互连性和水力特性显着影响流域响应的幅度和速率; (c)模型尺寸会严重影响模拟结果。

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