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首页> 外文期刊>Journal of engineering materials and technology >Material Modeling of Concrete for the Numerical Simulation of Steel Plate Reinforced Concrete Panels Subjected to Impacting Loading
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Material Modeling of Concrete for the Numerical Simulation of Steel Plate Reinforced Concrete Panels Subjected to Impacting Loading

机译:冲击载荷作用下钢板钢筋混凝土板数值模拟的混凝土材料建模

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摘要

The steel plate reinforced concrete (SC) walls and roofs are effective protective structures in nuclear power plants against aircraft attacks. The mechanical behavior of the concrete in SC panels is very complicated when SC panels are under the action of impacting loading. This paper presents a dynamic material model for concrete subjected to high-velocity impact, in which pressure hardening, strain rate effect, plastic damage, and tensile failure are taken into account. The loading surface of the concrete undergoing plastic deformation is defined based on the extended Drucker-Prager strength criterion and the Johnson-Cook material model. The associated plastic flow rule is utilized to evaluate plastic strains. Two damage parameters are introduced to characterize, respectively, the plastic damage and tensile failure of concrete. The proposed concrete model is implemented into the transient nonlinear dynamic analysis code Ls-DYAN. The reliability and accuracy of the present concrete material model are verified by the numerical simulations of standard compression and tension tests with different confining pressures and strain rates. The numerical simulation of the impact test of a 1/7.5-scale model of an aircraft penetrating into a half steel plate reinforced concrete (HSC) panel is carried out by using ls-dyna with the present concrete model. The resulting damage pattern of concrete slab and the predicted deformation of steel plate in the HSC panel are in good agreement with the experimental results. The numerical results illustrate that the proposed concrete model is capable of properly charactering the tensile damage and failure of concrete.
机译:钢板钢筋混凝土(SC)的壁和屋顶是核电站中抵抗飞机攻击的有效保护结构。当SC面板在冲击荷载作用下时,SC面板中混凝土的机械性能非常复杂。本文提出了一种在高速冲击下混凝土的动态材料模型,其中考虑了压力硬化,应变率效应,塑性损伤和拉伸破坏。基于扩展的Drucker-Prager强度准则和Johnson-Cook材料模型,定义了承受塑性变形的混凝土加载面。相关的塑性流动规则用于评估塑性应变。引入了两个损伤参数来分别表征混凝土的塑性损伤和拉伸破坏。所提出的具体模型被实现到瞬态非线性动力分析代码Ls-DYAN中。通过在不同围压和应变速率下进行标准压缩和拉伸试验的数值模拟,验证了本混凝土材料模型的可靠性和准确性。通过使用具有当前混凝土模型的ls-dyna来进行飞机进入半钢板增强混凝土(HSC)面板的1 / 7.5比例模型的冲击试验的数值模拟。结果表明,混凝土板的损伤模式和HSC面板中钢板的预测变形与实验结果吻合良好。数值结果表明,所提出的混凝土模型能够正确地表征混凝土的拉伸损伤和破坏。

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