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首页> 外文期刊>International journal of geomechanics >Use of a Dual-Structure Constitutive Model for Predicting the Long-Term Behavior of an Expansive Clay Buffer in a Nuclear Waste Repository
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Use of a Dual-Structure Constitutive Model for Predicting the Long-Term Behavior of an Expansive Clay Buffer in a Nuclear Waste Repository

机译:使用双重结构本构模型预测核废料库中膨胀粘土缓冲液的长期行为

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摘要

Expansive soils are suitable as backfill and buffer materials in engineered barrier systems to isolate heat-generating nuclear waste in deep geological formations. The canisters containing nuclear waste would be placed in tunnels excavated at a depth of several hundred meters. The expansive soil should provide enough swelling capacity to support the tunnel walls, thereby reducing the impact of the excavation-damaged zone on the long-term mechanical and flow-barrier performance. In addition to their swelling capacity, expansive soils are characterized by accumulating irreversible strain on suction cycles and by effects of microstructural swelling on water permeability that for backfill or buffer materials can significantly delay the time it takes to reach full saturation. To simulate these characteristics of expansive soils, a dual-structure constitutive model that includes two porosity levels is necessary. The authors present the formulation of a dual-structure model and describe its implementation into a coupled fluid flow and geomechanical numerical simulator. The authors use the Barcelona Basic Model (BBM), which is an elastoplastic constitutive model for unsaturated soils, to model the macrostructure, and it is assumed that the strains of the microstructure, which are volumetric and elastic, induce plastic strain to the macrostructure. The authors tested and demonstrated the capabilities of the implemented dual-structure model by modeling and reproducing observed behavior in two laboratory tests of expansive clay. As observed in the experiments, the simulations yielded nonreversible strain accumulation with suction cycles and a decreasing swelling capacity with increasing confining stress. Finally, the authors modeled, for the first time using a dual-structure model, the long-term (100,000 years) performance of a generic heat-generating nuclear waste repository with waste emplacement in horizontal tunnels backfilled with expansive clay and hosted in a clay rock formation. The thermo-hydro-mechanical results of the dual-structure model were compared with those of the standard single-structure BBM. The main difference between the simulation results from the two models is that the dual-structure model predicted a time to fully saturate the expansive clay barrier on the order of thousands of years, whereas the standard single-structure BBM yielded a time on the order of tens of years. These examples show that a dual-structure model, such as the one presented here, is necessary to properly model the thermo-hydro-mechanical behavior of expansive soils. (C) 2015 American Society of Civil Engineers.
机译:膨胀土适合用作工程屏障系统中的回填和缓冲材料,以隔离深部地质构造中发热的核废料。装有核废料的罐子将放在几百米深的隧道中。膨胀土应提供足够的膨胀能力以支撑隧道壁,从而减少开挖损坏区对长期机械和阻流性能的影响。除膨胀能力外,膨胀土还具有以下特征:在抽吸循环中积累不可逆的应变,并具有微结构膨胀对透水性的影响,回填或缓冲材料可显着延迟达到完全饱和所需的时间。为了模拟膨胀土的这些特性,需要一个包含两个孔隙度水平的双结构本构模型。作者介绍了双结构模型的公式,并描述了其在耦合流体流动和岩土力学数值模拟器中的实现。作者使用巴塞罗那基本模型(BBM)(一种用于非饱和土壤的弹塑性本构模型)对宏观结构进行建模,并假定微观结构的体积应变和弹性应变会导致宏观结构发生塑性应变。作者通过在两个膨胀土的实验室测试中对观察到的行为进行建模和复制,测试并证明了所实施的双结构模型的功能。如在实验中观察到的,模拟产生了具有吸力循环的不可逆应变累积,并且随着围压的增加而减小了膨胀能力。最后,作者首次使用双结构模型对通用发热核废料库的长期(100,000年)性能进行了建模,将废料放置在充填有膨胀黏土并装填在黏土中的水平隧道中岩石形成。将双结构模型的热-水-机械结果与标准单结构BBM的进行了比较。两种模型的模拟结果之间的主要区别在于,双结构模型预测了使膨胀粘土屏障完全饱和的时间约为数千年,而标准单结构BBM产生的时间约为2倍。几十年这些示例表明,为正确地模拟膨胀土的热-水-力学行为,必须使用双结构模型(如此处所示)。 (C)2015年美国土木工程师学会。

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