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Mechanism of the Strain Rate Effect of Metal Foams with Numerical Simulations of 3D Voronoi Foams during the Split Hopkinson Pressure Bar Tests

机译:3D Voronoi泡沫在霍普金森压杆试验中数值模拟的泡沫金属应变率效应机理

摘要

With the demand of lightweight structure, more and more metal foams were employed as impact protection and efficient energy absorption materials in engineering fields. But, results from different impact experiments showed that the strain rate sensitivity of metal foams were different or even controversial. In order to explore the true hiding behind the controversial experimental data about the strain rate sensitivity of metal foams, numerical simulations of split Hopkinson pressure bar (SHPB) tests of the metal foams were carried out by finite element methods. In the analysis, cell structures of metal foams were constructed by means of 3D Voronoi, and the matrix metal was assumed to be no strain rate sensitivity, which helps to learn the strain rate effects quantitatively by the foam structures. Numerical simulations showed that the deformation of the metal foam specimen is not uniform during the SHPB tests along the specimen, and the strain-stress relations of the metal foams at two ends of the specimen are different; there exists strain rate sensitivity of the metal foams even the matrix metal has no strain rate sensitivity, when the strain of the metal foams is defined by the displacement difference between the ends of the specimen; localized deformation of the metal foams and the inertia effect of matrix metal are the two main contributions to the strain rate sensitivity of the metal foams. ? 2015 World Scientific Publishing Company.
机译:随着轻质结构的需求,工程领域中越来越多的金属泡沫被用作冲击防护和有效的能量吸收材料。但是,来自不同冲击实验的结果表明,金属泡沫的应变速率敏感性是不同的,甚至是有争议的。为了探究有争议的关于金属泡沫的应变速率敏感性的实验数据的真实藏身之处,通过有限元方法对金属泡沫的分裂霍普金森压力棒(SHPB)测试进行了数值模拟。在分析中,通过3D Voronoi构造了金属泡沫的孔结构,并且假定基体金属没有应变速率敏感性,这有助于定量地了解泡沫结构的应变速率效应。数值模拟结果表明,在SHPB试验中,泡沫金属试样沿试样的变形不均匀,且试样两端的泡沫应力应变关系不同。当泡沫金属的应变由试样端部之间的位移差确定时,即使基体金属没有应变率敏感性,金属泡沫也存在应变率敏感性。金属泡沫的局部变形和基体金属的惯性效应是对金属泡沫的应变率敏感性的两个主要贡献。 ? 2015世界科学出版公司。

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