Abstract

It is well-known that cell morphology plays a vital role in the mechanical properties of the closed-cell aluminum foam. In this work, a three-dimensional (3D) realistic structure was obtained by using the synchrotron X-ray micro-tomography technique and then translated into a numerical model for a further finite-element simulation. In order to investigate the early compressive deformation in the closed-cell aluminum foam, we chose three different strain levels, namely, 0.2% (initiation of plastic strain), 2.8% (propagation of plastic strain band), and 6% (formation of collapse band) to discuss the evolution forms of plastic strain concentration by simulation. We found that the curvature, anisotropy, and distribution of cell volume of adjacent cells played a vital role in the initiation of plastic strain. Furthermore, the phenomenon that plastic strain band propagated along the direction aligned 45° with respect to the orientation of the compression was also investigated in the propagation of the plastic strain band and formation of the collapse band. Finally, the comparison between experimental results and simulation results was performed to illustrate the early location of these three different levels in the whole compressive deformation.

Highlights

  • Lightweight closed-cell aluminum foam configurations possess good specific strength and stiffness and outstanding energy absorption and wave attenuation abilities when subjected to an external load [1,2,3,4,5,6]

  • It was already demonstrated that cell morphologies and structures play an important role in the initiation and propagation of the deformation behavior of the closed-cell aluminum foam [6,15,16,17,18]

  • The density the closed-cell aluminum foam was calculated to be 0.54 g/cm3

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Summary

Introduction

Lightweight closed-cell aluminum foam configurations possess good specific strength and stiffness and outstanding energy absorption and wave attenuation abilities when subjected to an external load [1,2,3,4,5,6]. It was already demonstrated that cell morphologies and structures play an important role in the initiation and propagation of the deformation behavior of the closed-cell aluminum foam [6,15,16,17,18]. These results indicated that the collapsed band always initiate from cells with their longest semi-axis perpendicular to the loading direction. Addition totests the were numerical simulations, experimentally quasi-static uniaxial quasi-static uniaxial In compressive conducted to invalidate the results of the numerical compressive simulations. tests were conducted to invalidate the results of the numerical simulations

Specimens Preparation
Synchrotron Radiation X-ray Tomography
Real 3D Model Reconstruction
Simulation of Compression
Simulation Results and Initial Deformation Behavior
Propagation of the Plastic Strain Band in Simulation Results
Formation of the Collapse Band in Simulation Results
Comparison of the Compression Test Results between Simulation and Experiment
Compressive
Conclusions
Full Text
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