Loughborough University
Browse

A numerical study on the influence of internal corrugated reinforcements on the biaxial bending collapse of thin-walled beams

Download (3.2 MB)
journal contribution
posted on 2021-04-01, 09:56 authored by Rade Vignjevic, Ce Liang, Kevin Hughes, Jason C Brown, Tom De Vuyst, Nenad Djordjevic, James Campbell
The Heat Treatment Forming and in-die Quench (HFQ) process allows for manufacturing of more complex geometries from Aluminium sheets than ever before, which can be exploited in lightweight automotive and aerospace structures. One possible application is manufacturing thin walled beams with corrugated internal reinforcements for complex geometries. This work considers different internal reinforcements (C-section and corrugated) to improve the energy absorption properties of thin walled rectangular beams under uniaxial and biaxial deep bending collapse, for loading angles ranging from 0 to 90 deg, in 15° increments. Using LS-DYNA simulations experimentally validated through unreinforced metallic tubes under quasi-static bending collapse, the finite element results demonstrate the stabilising effect of the reinforcements and an increase in the buckling strength of the cross section. Corrugated reinforcements showed a greater potential for increasing specific energy absorption (SEA), which was supported by investigating key geometric parameters, including corrugation angle, depth and number. This favourable response is due to an increased amount of material undergoing plastic deformation, which consequently improves performance of the beam undergoing post buckling and deep collapse. This concept is applicable to vehicle and aircraft passive safety, with the requirement that the considered geometries are manufacturable from Aluminium Alloys sheet only, using the HFQ process.

Funding

Innovate UK; Grant Number 113153

Advanced Propulsion Centre (APC), as part of the APC7 Rapid Aluminium Cost Effective Forming (RACEForm) project

History

School

  • Mechanical, Electrical and Manufacturing Engineering

Published in

Thin-Walled Structures

Volume

144

Publisher

Elsevier BV

Version

  • VoR (Version of Record)

Rights holder

© The authors

Publisher statement

This is an Open Access Article. It is published by Elsevier under the Creative Commons Attribution 4.0 Unported Licence (CC BY). Full details of this licence are available at: http://creativecommons.org/licenses/by/4.0/

Acceptance date

2019-06-26

Publication date

2019-07-25

Copyright date

2019

ISSN

0263-8231

Language

  • en

Depositor

Dr Ce Liang. Deposit date: 31 March 2021

Article number

106277