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Soil behavior under blasting loading.

机译:爆破荷载作用下的土壤行为。

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摘要

Understanding the behavior of soil under blast loading is very important to engineers in mining, tunneling, and military construction. Due to the very complex structure of a soil mass it is very difficult to describe its constitutive relation, especially when it has different water contents and it is under blast loading conditions. New protective system designs subjected to blast loading need to be proved its validation prior to predict effect of explosive before implementation. Full-scale, buried explosive tests are costly. Finite element simulations play a significant role in the design of protective systems, for example a bottom platform of lightweight vehicles, against underground explosion.;The Perzyna viscoplastic cap model has been shown to be a valid model for use in the simulations of dry soil behavior under both static and dynamic loading. This model is a dramatic improvement over the inviscid cap model for soil behavior under high strain rate loading, such as from an explosion. However, soil should be modeled as a three-phase porous media to accommodate various degrees of water saturation. This is especially true for the soil mass surrounding the source of energy release, as each of the three phases responds differently to shock loading. To improve the model accuracy, a revised model comprising a Gruneisen equation of state (EOS) for each of the three phases has been developed. These equations of state for solid, water and air have been integrated with a viscoplastic cap model to simulate behaviors of soil with different degrees of water saturation.;These EOS models as well as the viscoplastic cap model are implemented into LS-DYNA as user-supplied subroutines for numerical simulation of six explosive tests in dry soil as well as in saturated soil. The shock front time of arrival, the air pressure directly above the buried explosive, and the ejecta heights predicted by the revised cap model agree fairly well with the experimental data. Four elements from finite element mash are selected to observe three phases volume fractions change. There is noticeable improvement in the prediction of saturated soil behavior than dry soil behavior under blast loading. It is concluded that the revised model is adequate for blast loading behavior simulations for soil with different degrees of water saturation.
机译:了解爆炸载荷下土壤的行为对采矿,隧道和军事建筑的工程师来说非常重要。由于土壤团块的结构非常复杂,因此很难描述其本构关系,尤其是当其含水量不同且处于爆炸载荷条件下时。在实施爆炸之前,需要对承受爆炸载荷的新防护系统设计进行验证,然后才能对其进行预测。全面的地下炸药测试成本很高。有限元模拟在保护系统的设计中起着重要作用,例如轻型车辆的底部平台,可防止地下爆炸。Perzyna粘塑性盖模型已被证明是用于模拟干燥土壤行为的有效模型。在静态和动态加载下。该模型是对高应变率载荷(例如爆炸)下土壤行为无粘性盖模型的巨大改进。但是,应将土壤建模为三相多孔介质,以适应不同程度的水饱和度。这对于能量释放源周围的土壤质量尤其如此,因为三相中的每一个对冲击载荷的反应都不同。为了提高模型的准确性,已经开发了包含三个阶段中每个阶段的Gruneisen状态方程(EOS)的修订模型。这些关于固体,水和空气的状态方程已经与粘塑帽模型集成在一起,以模拟具有不同水饱和度的土壤的行为。这些EOS模型以及粘塑帽模型已在LS-DYNA中作为用户使用,提供了用于在干燥土壤和饱和土壤中进行六次爆炸试验的数值模拟的子例程。到达冲击前的时间,埋在炸药正上方的气压以及修改后的帽盖模型预测的弹射高度与实验数据非常吻合。从有限元混搭中选择四个元素来观察三相体积分数的变化。在爆炸荷载下,对饱和土壤行为的预测比对干燥土壤行为的预测有显着改善。结论是,修改后的模型适合于不同含水饱和度的土壤的爆炸荷载行为模拟。

著录项

  • 作者

    An, Jichong.;

  • 作者单位

    The University of Nebraska - Lincoln.;

  • 授予单位 The University of Nebraska - Lincoln.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 175 p.
  • 总页数 175
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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