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Uniaxial and biaxial failure behaviors of aluminum alloy foams
Affiliation:1. State Key Laboratory of Traction Power, Southwest Jiaotong University, Chengdu 610031, China;2. State Key Laboratory for Strength and Vibration of Mechanical Structures, Xi''an Jiaotong University, Xi’an 710049, China;3. School of Civil and Transportation Engineering, Guangdong University of Technology, Guangzhou 510006, China;4. Institute of Applied Mechanics and Biomedical Engineering, Taiyuan University of Technology, Taiyuan 030024, China;1. Czech Technical University in Prague, Faculty of Civil Engineering, Department of Mechanics, Thákurova 7, 166 29 Prague 6, Czech Republic;2. Academy of Sciences of the Czech Republic, Institute of Theoretical and Applied Mechanics, Prosecká 809/76, 190 00 Praha 9, Czech Republic;1. Department of Metallurgical and Materials Engineering, Indian Institute of Technology Madras, Chennai, 600036, India;2. Institute of Applied Materials, Helmholtz-Zentrum Berlin, Hahn-Meitner-Platz 1, 14109, Berlin, Germany;3. European Synchrotron Radiation Facility, 38043, Grenoble Cedex, France;4. Institute of Materials Science and Technology, Technische Universität Berlin, Hardenbergstrasse 36, 10623, Berlin, Germany;1. CAS Key Laboratory of Mechanical Behavior and Design of Materials, University of Science and Technology of China, Hefei, Anhui 230026, PR China;2. School of Engineering, Fraser Noble Building, King׳s College, University of Aberdeen, Aberdeen AB24 3UE, UK
Abstract:Combined shear–tensile test have been performed on a closed-cell aluminum alloy foams with three relative densities over a wide range of loading rates in order to probe their failure behaviors under biaxial loading conditions. Quasi-static uniaxial compressive and tensile tests have also been conducted to investigate uniaxial failure behaviors of the aluminum alloy foams. The materials exhibit uniaxial failure stress asymmetry due to different failure mechanism in the uniaxial tensile and compression. Comparison is made between three phenomenological failure criteria and the measured failure stresses under different loading conditions to verify these criteria. The experimental failure surfaces of the aluminum alloy foams provide support for the three phenomenological failure criteria when suitable Poisson’s ratio is employed. The shape of the experimental failure surface in principal stress plane was not significantly influenced by variation in the relative density. The slight expansion of the failure surfaces with loading rate happened to be isotropic for this investigated closed-cell aluminum alloy foams in combined shear–tensile testes.
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