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  4. CRACK SHIELDING MECHANISMS OF INTERLAYERED EPOXY MATERIALS UNDER QUASI-STATIC AND FATIGUE LOADING
 
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conference paper not in proceedings

CRACK SHIELDING MECHANISMS OF INTERLAYERED EPOXY MATERIALS UNDER QUASI-STATIC AND FATIGUE LOADING

Vadugappatty Srinivasan, Dharun  
•
Vassilopoulos, Anastasios  
Brian Falzon, Conor McCarthy
August 1, 2023
ICCM23 International Conference on Composite Materials

This research explores the capability of PEI and PVDF thermoplastic interlayers to arrest cracks in epoxy materials modified with short-glass fibers and core-shell rubber particles. It also investigates the effect of interlayer position, the number of interlayers, and the type of epoxy materials on the fracture performance under mode-I quasi-static fracture and fatigue loading in a single-edge-notch bending configuration. The quasi-static fracture results demonstrate that the thermoplastic-epoxy interface effectively arrests the initial crack and reinitiating the crack at the thermoplastic layer requires up to 2.5 times higher load than the crack initiation load of the pristine epoxies. Furthermore, the interlayered designs exhibit up to 43 times more energy absorption than their pristine counterparts, and the study captures the competing damage mechanisms and failure events using microscopic images, digital image correlation, and high-speed photography observations.

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Type
conference paper not in proceedings
Author(s)
Vadugappatty Srinivasan, Dharun  
•
Vassilopoulos, Anastasios  
Editors
Brian Falzon, Conor McCarthy
Date Issued

2023-08-01

Publisher

Queen's University Belfast

Publisher place

Northern Ireland

Subjects

Fracture

•

Fatigue

•

Epoxy

•

Thermoplastics

•

Composites

•

Configurational material forces

•

Crack shielding

URL
https://www.iccm-central.org/Proceedings/ICCM23proceedings/index.htm
Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
CCLAB  
Event nameEvent placeEvent date
ICCM23 International Conference on Composite Materials

Belfast, Ireland

30 July-4 August, 2023

Available on Infoscience
March 8, 2024
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/205921
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