Vol. 14, No. 3, 2019

Download this article
Download this article For screen
For printing
Recent Issues

Volume 19
Issue 3, 303–540
Issue 2, 157–302
Issue 1, 1–156

Volume 18, 5 issues

Volume 17, 5 issues

Volume 16, 5 issues

Volume 15, 5 issues

Volume 14, 5 issues

Volume 13, 5 issues

Volume 12, 5 issues

Volume 11, 5 issues

Volume 10, 5 issues

Volume 9, 5 issues

Volume 8, 8 issues

Volume 7, 10 issues

Volume 6, 9 issues

Volume 5, 6 issues

Volume 4, 10 issues

Volume 3, 10 issues

Volume 2, 10 issues

Volume 1, 8 issues

The Journal
About the journal
Ethics and policies
Peer-review process
 
Submission guidelines
Submission form
Editorial board
 
Subscriptions
 
ISSN (electronic): 1559-3959
ISSN (print): 1559-3959
 
Author index
To appear
 
Other MSP journals
This article is available for purchase or by subscription. See below.
Experimental and numerical energy absorption study of aluminum honeycomb structure filled with graded and nongraded polyurethane foam under in-plane and out-of-plane loading

Alireza Molaiee and Seyed Ali Galehdari

Vol. 14 (2019), No. 3, 309–322
Abstract

This study aims to investigate the effect of honeycomb structure filled with graded and nongraded polyurethane foam on reaction force during energy absorption under in-plane and out-of-plane loadings. Three types of aluminum AL5052 honeycomb structures without filling, with graded filling and with nongraded filling were manufactured and subjected to quasistatic compression loading. In order to investigate the effect of reaction force and energy absorption capacity, honeycomb cores with different densities were selected. Afterward, the behavior of honeycomb structures was numerically simulated in the ABAQUS software. The results of finite element analysis show that using foam filling in honeycomb structures increases energy absorption. The structures filled with graded foam, shows better performance with the rate of stiffness reduction from impact location compared to those filled with nongraded foam. Energy absorption for graded foam structure occurs at a longer time period comparing to nongraded one. The energy absorption capacity of the structure under out-of-plane loading is much higher than in-plane loading, but its reaction force is very high. The results of empirical tests are greatly similar to that of numerical studies. Therefore, it is possible to use simulation in ABAQUS environment for solving more complex problems.

PDF Access Denied

We have not been able to recognize your IP address 18.218.127.141 as that of a subscriber to this journal.
Online access to the content of recent issues is by subscription, or purchase of single articles.

Please contact your institution's librarian suggesting a subscription, for example by using our journal-recom­mendation form. Or, visit our subscription page for instructions on purchasing a subscription.

You may also contact us at contact@msp.org
or by using our contact form.

Or, you may purchase this single article for USD 45.00:

Keywords
honeycomb structure, energy absorption, in-plane loading, out-of-plane loading, graded foam, ABAQUS, experimental test
Milestones
Received: 4 June 2018
Revised: 4 July 2019
Accepted: 2 August 2019
Published: 8 October 2019
Authors
Alireza Molaiee
Department of Mechanical Engineering, Najafabad Branch, Islamic Azad University
% Najafabad, Iran.
Najafabad
% 8514143131
Iran
Seyed Ali Galehdari
Department of Mechanical Engineering, Najafabad Branch, Islamic Azad University
% Najafabad, Iran.
Najafabad
% 8514143131
Iran