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Modelling blast wave propagation in a subsurfacegeotechnical structure made of an evolutive porous material

机译:模拟爆炸性多孔材料制成的地下岩土结构中的爆炸波传播

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摘要

In this study, a coupled thermo-hydro-mechanical-chemical (THMC)-viscoplastic cap model is developed to investigate the characteristics of blast wave propagation in a fill mass made of granular material (cemented backfill, CB) that is undergoing cementation under different curing conditions. The THMC model allows to evaluate its behavior and the changes in the material properties of the cementing granular material during the curing process, with rigorous evaluation of the coupled THMC factors. The THMC model is then coupled with a modified viscoplastic cap model to capture the nonlinear and rate-dependent behaviors of CB under blast loading. All of the material properties of CB required for the modified viscoplastic cap model are obtained from the THMC model. To validate the model, experiments carried out in high columns and impact testing on hydrating cemented backfill, as well as blast wave propagation experiments on soil and cemented backfill are adopted and simulated. A good agreement is found between the experimental and simulated results. Finally, by applying the coupled THMC-viscoplastic cap model, the effects of curing time, cement content, stope (mine cavity) size, initial backfill temperature, and filling rate on blast wave propagation in backfill mass are investigated. The obtained results provide new insight into blast wave propagation in fill mass under field curing conditions. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在这项研究中,建立了热-水-力-化学-化学(THMC)-粘塑性耦合模型,以研究爆炸颗粒在颗粒材料(水泥回填,CB)制成的填充物中的爆炸特性,该填充材料在不同条件下会发生胶结固化条件。 THMC模型可以通过评估耦合的THMC因子来评估其行为以及固化过程中胶结颗粒材料的材料性能变化。然后,将THMC模型与修改后的粘塑性帽模型耦合,以捕获爆炸载荷下CB的非线性和速率依赖性行为。修改后的粘塑性盖模型所需的CB的所有材料特性均从THMC模型获得。为了验证该模型,采用并模拟了高柱试验和水化胶结回填的冲击试验,以及爆炸波在土壤和胶结回填上的传播实验。实验结果和模拟结果之间找到了很好的一致性。最后,通过应用耦合的THMC-粘塑性盖模型,研究了固化时间,水泥含量,采场(矿洞)尺寸,初始回填温度和填充速率对爆炸波在回填质量中传播的影响。获得的结果为现场固化条件下爆炸波在填充物料中的传播提供了新的见识。 (C)2017 Elsevier Ltd.保留所有权利。

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