Repository logo
  • English
  • Deutsch
  • Español
  • Français
  • Log In
    New user? Click here to register.Have you forgotten your password?
Universidad Panamericana
  • Communities & Collections
  • Research Outputs
  • Fundings & Projects
  • Researchers
  • Statistics
  • Feedback
  • English
  • Deutsch
  • Español
  • Français
  1. Home
  2. CRIS
  3. Publications
  4. Numerical analysis of energy absorption in expanded polystyrene foams
 
  • Details
Options

Numerical analysis of energy absorption in expanded polystyrene foams

Journal
Journal of Cellular Plastics
ISSN
0021-955X
1530-7999
Date Issued
2019
Author(s)
Rodríguez-Sánchez, Alejandro E.  
Facultad de Ingeniería - CampGDL  
Plascencia-Mora, Héctor
Elias Ledesma-orozco
Eduardo Aguilera-gomez
Gómez-Márquez, Diego A.
Type
Resource Types::text::journal::journal article
DOI
10.1177/0021955X19880506
URL
https://scripta.up.edu.mx/handle/123456789/10263
Abstract
The expanded polystyrene foam is widely used as a protective material in engineering applications where energy absorption is critical for the reduction of harmful dynamic loads. However, to design reliable protective components, it is necessary to predict its nonlinear stress response with a good approximation, which makes it possible to know from the engineering design analysis the amount of energy that a product may absorb. In this work, the hyperfoam constitutive material model was used in a finite element model to approximate the mechanical response of an expanded polystyrene foam of three different densities. Additionally, an experimental procedure was performed to obtain the response of the material at three loading rates. The experimental results show that higher densities at high loading rates allow better energy absorption in the expanded polystyrene. As for the energy dissipation, high dissipation is obtained at higher densities at low loading rates. In the numerical results, the proposed finite element model presented a good performance since root mean square error values below 9% were obtained around the experimental compressive stress/strain curves for all tested material densities. Also, the prediction of energy absorption with the proposed model was around a maximum error of 5% regarding the experimental results. Therefore, the prediction of energy absorption and the compressive stress response of expanded polystyrene foams can be studied using the proposed finite element model in combination with the hyperfoam material model.

Copyright 2024 Universidad Panamericana
Términos y condiciones | Política de privacidad | Reglamento General

Built with DSpace-CRIS software - Extension maintained and optimized by - Hosting & support SCImago Lab

  • Cookie settings
  • Privacy policy
  • End User Agreement
  • Send Feedback