材料科学
海龟(机器人)
壳体(结构)
有限元法
刚度
本构方程
结构工程
硬化(计算)
压缩(物理)
复合材料
机械
物理
工程类
计算机科学
人工智能
图层(电子)
作者
R. Damiens,Hongjoo Rhee,Youngkeun Hwang,S.J. Park,Youssef Hammi,Hyun Jung Lim,M.F. Horstemeyer
标识
DOI:10.1016/j.jmbbm.2011.10.011
摘要
The turtle’s shell acts as a protective armor for the animal. By analyzing a turtle shell via finite element analysis, one can obtain the strength and stiffness attributes to help design man-made armor. As such, finite element analysis was performed on a Terrapene carolina box turtle shell. Experimental data from compression tests were generated to provide insight into the scute through-thickness behavior of the turtle shell. Three regimes can be classified in terms of constitutive modeling: linear elastic, perfectly inelastic, and densification regions, where hardening occurs. For each regime, we developed a model that comprises elasticity and densification theory for porous materials and obtained all the material parameters by correlating the model with experimental data. The different constitutive responses arise as the deformation proceeded through three distinctive layers of the turtle shell carapace. Overall, the phenomenological stress–strain behavior is similar to that of metallic foams.
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