A Synergistic Approach Combining Surface Enhancement and Buckling Modes for Improved Axial Crushing Performance of Thin-Walled Tubes

Author:

Alam Shahrukh1,Uddin Mohammad1,Hall Colin2

Affiliation:

1. UniSA STEM, University of South Australia , Mawson Lakes, SA 5095 , Australia

2. Future Industries Institute, University of South Australia , Mawson Lakes, SA 5095 , Australia

Abstract

Abstract In this study, thin-walled tubes were circumferentially strengthened by plasticity ball burnishing of critical locations determined from buckling mode analysis. Axial crush test results revealed that the surface-treated (ST) tubes increased localized yield strength, attained superior crashworthiness performance, and triggered predictable deformation modes according to the buckling modes of the tubes. Numerical analysis was performed and successfully validated with the experiment at 90% prediction accuracy. The treated tube ST-4 with the 12th buckling mode outperformed a conventional tube with an increase in specific energy absorption (SEA) and crush force efficiency (CFE) by up to 70% while sustaining a low increase in initial peak force (IPF). Furthermore, the tube demonstrated a greater rate of energy dissipation compared to tubes with conventional surface-treated patterns at the same level of surface-treated area. The crashworthiness performance improved as the surface-treated area ratio increased. A theoretical model was developed for the surface-treated tube based on fundamental deformation kinematics, predicting mean crushing force and total energy absorption with acceptable accuracy. The findings strongly suggest that the proposed surface-enhanced tubes have great potential to be used as energy-absorbing structures in crashworthiness applications.

Publisher

ASME International

Reference34 articles.

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4. Multi-Objective Optimization of Aluminum Hollow Tubes for Vehicle Crash Energy Absorption Using a Genetic Algorithm and Neural Networks;Marzbanrad;Thin-Walled Struct.,2011

5. On the Crushing Mechanics of Thin-Walled Structures;Wierzbicki;ASME J. Appl. Mech.,1983

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