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Modifications of the HJC (Holmquist–Johnson–Cook) Model for an Improved Numerical Simulation of Roller Compacted Concrete (RCC) Structures Subjected to Impact Loadings

机译:HJC(Holmquist–Johnson–Cook)模型的修改以改进承受冲击载荷的碾压混凝土(RCC)结构的数值模拟

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摘要

Structures made of Roller Compacted Concrete (RCC) may be subjected to dynamic loads during their service life. Understanding the dynamic material properties of RCC and the performance of RCC structures is essential for better analysis and design of RCC structures. As full-scale tests are often unaffordable, numerical simulation methods are continuously employed. However, in numerical simulations, determining a reasonable constitutive relationship for RCC materials is still limited due to the complexity of the composite and the special rolling and compacting construction technology. In this paper, the triaxial compressive test and split Hopkinson pressure bar (SHPB) experimental results for RCC are introduced as an experimental foundation. Parameter calibrations and modifications in terms of the strength yield surface, the strain rate effect and the failure criterion for the RCC materials are presented. Numerical verification is illustrated for simulating the SHPB experiment and predicting the dynamic compressive characteristics of RCC specimens with a modified HJC model. The results reveal that the simulation results for the modified model have better agreement with the test data than those with the model before modification and have better simulation results. Sensitivity studies of the key parameters on the yield surface of the modified HJC model are conducted to improve the simulation effect for numerically predicting the performance of RCC structures exposed to explosive and impact loads.
机译:由碾压混凝土(RCC)制成的结构在使用寿命期间可能会承受动态载荷。了解RCC的动态材料特性和RCC结构的性能对于更好地分析和设计RCC结构至关重要。由于通常无法进行全面测试,因此一直采用数值模拟方法。然而,在数值模拟中,由于复合材料的复杂性以及特殊的碾压和压实施工技术,为RCC材料确定合理的本构关系仍然受到限制。本文介绍了碾压混凝土的三轴压缩试验和裂合霍普金森压力棒(SHPB)的试验结果作为实验基础。介绍了RCC材料的强度屈服面,应变率效应和破坏准则方面的参数校准和修改。数值算例说明了如何用改进的HJC模型模拟SHPB实验并预测RCC标本的动态压缩特性。结果表明,与修改前的模型相比,修改后的模型的仿真结果与测试数据具有更好的一致性,并且仿真结果更好。进行了修改后的HJC模型屈服面上关键参数的敏感性研究,以提高模拟效果,以数值方式预测暴露于爆炸和冲击载荷下的RCC结构的性能。

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