Nonlinear behaviour of epoxy and epoxy-based nanocomposites: an integrated experimental and computational analysis
Author(s)
Type
Journal Article
Abstract
The focus of this study is on the nonlinear mechanical properties of epoxy and epoxy-based nanocomposites, exploring frequency and strain amplitude dependency.
Nanocomposite samples of epoxy are reinforced with fumed silica (FS), halloysite nanotubes (HNT) and Albipox 1000 rubber (Evonik) nanoparticles. Considering these particles have different geometries and stiffnesses, they are expected to have significantly different influences on the mechanics of the resulting composite. To enhance the reliability of the results and to reveal the impact of nanofillers on the mechanics of the material more distinctly, the manufacturing process is designed
to be the same for all the specimens within the same material groups to eliminate the effects of the manufacturing process. The comprehensive characterisation process consists of Fourier-Transform InfraRed Spectroscopy (FTIR), Scanning Elec-
tron Microscopy (SEM) and Dynamic Mechanical Analysis (DMA). The DMA tests are designed so that the material properties are measured depending on the vibration frequency and strain amplitude. Finally, the characterised nonlinear dynamic properties of these nanocomposites are used as the input material properties into a
numerical model. In this simulation, a cantilever beam with representative nonlinear material properties, for these nanocomposites, is created, as example and its forced response is plotted under the same levels of excitation in the frequency domain. Key effects of the different nanofillers are identified using the resonance behaviour, primarily focusing on the stiffness and damping of the epoxy-based nanocomposites.
These experimental and numerical procedures followed show the significant impact of the nanoparticle reinforcements on the nonlinear nature of the seepoxy-based composites.
Nanocomposite samples of epoxy are reinforced with fumed silica (FS), halloysite nanotubes (HNT) and Albipox 1000 rubber (Evonik) nanoparticles. Considering these particles have different geometries and stiffnesses, they are expected to have significantly different influences on the mechanics of the resulting composite. To enhance the reliability of the results and to reveal the impact of nanofillers on the mechanics of the material more distinctly, the manufacturing process is designed
to be the same for all the specimens within the same material groups to eliminate the effects of the manufacturing process. The comprehensive characterisation process consists of Fourier-Transform InfraRed Spectroscopy (FTIR), Scanning Elec-
tron Microscopy (SEM) and Dynamic Mechanical Analysis (DMA). The DMA tests are designed so that the material properties are measured depending on the vibration frequency and strain amplitude. Finally, the characterised nonlinear dynamic properties of these nanocomposites are used as the input material properties into a
numerical model. In this simulation, a cantilever beam with representative nonlinear material properties, for these nanocomposites, is created, as example and its forced response is plotted under the same levels of excitation in the frequency domain. Key effects of the different nanofillers are identified using the resonance behaviour, primarily focusing on the stiffness and damping of the epoxy-based nanocomposites.
These experimental and numerical procedures followed show the significant impact of the nanoparticle reinforcements on the nonlinear nature of the seepoxy-based composites.
Date Issued
2024-09-01
Date Acceptance
2023-11-27
Citation
Mechanics Based Design of Structures and Machines, 2024, 52 (9), pp.6858-6888
ISSN
1539-7734
Publisher
Taylor and Francis Group
Start Page
6858
End Page
6888
Journal / Book Title
Mechanics Based Design of Structures and Machines
Volume
52
Issue
9
Copyright Statement
© 2024 The Author(s). Published with license by Taylor & Francis Group, LLC This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. The terms on which this article has been published allow the posting of the Accepted Manuscript in a repository by the author(s) or with their consent.
License URL
Identifier
https://www.tandfonline.com/doi/full/10.1080/15397734.2023.2293763
Publication Status
Published
Date Publish Online
2024-01-05