Simulation of spring-in distortion in composite L-angles through experimentally measured cure induced residual strain using distributed fiber optic sensor

A Distributed Fibre Optic Sensor is embedded into the flat prepreg laminate during layup stage to measure the Cure Residual Strain (CRS), which gets locked into the composite structures during high-temperature curing. The sensor routing is designed such a way that CRS is measured in both fibre and matrix direction at five levels through-the-thickness of the laminate. The experimentally measured CRS is then converted into the fictitious thermal expansion coefficient and subsequently substituted for the predefined thermal expansion coefficient in the lamina property module of the Abaqus® finite element analysis software. The modelling methodology is used to simulate the spring-in in various L-angle composite parts by performing a linear thermo-elastic analysis. Eight configurations of composite L-angle specimens are designed, fabricated and cured to validate the spring-in simulation from FE analysis. The developed methodology provides a practical framework for spring-in simulation for multi-angular composite parts. The method utilizes experimentally measured CRS from unidirectional laminate to develop finite element simulation methodology of spring-in in multi-angular L-angle composite parts. The proposed methodology helps in estimation and compensation of spring-in, which would support precise curing tool design and could significantly reduce dimensional deviations in the final parts.

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Publication Details

Journal
Journal of Composite Materials
Published
2026-09-29
DOI
https://doi.org/10.1177/00219983261494300
Primary Topic
Epoxy Resin Curing Processes
Type
article
Field-Weighted Citation Impact
0.00
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article

Simulation of spring-in distortion in composite L-angles through experimentally measured cure induced residual strain using distributed fiber optic sensor

Kotresh M. Gaddikeri, Amitabha Datta, S. Nadeem Masood, Sundaram Ramesh
Journal of Composite Materials
Epoxy Resin Curing Processes
article

Simulation of spring-in distortion in composite L-angles through experimentally measured cure induced residual strain using distributed fiber optic sensor

Kotresh M. Gaddikeri, Amitabha Datta, S. Nadeem Masood, Sundaram Ramesh
article en

Abstract

A Distributed Fibre Optic Sensor is embedded into the flat prepreg laminate during layup stage to measure the Cure Residual Strain (CRS), which gets locked into the composite structures during high-temperature curing. The sensor routing is designed such a way that CRS is measured in both fibre and matrix direction at five levels through-the-thickness of the laminate. The experimentally measured CRS is then converted into the fictitious thermal expansion coefficient and subsequently substituted for the predefined thermal expansion coefficient in the lamina property module of the Abaqus® finite element analysis software. The modelling methodology is used to simulate the spring-in in various L-angle composite parts by performing a linear thermo-elastic analysis. Eight configurations of composite L-angle specimens are designed, fabricated and cured to validate the spring-in simulation from FE analysis. The developed methodology provides a practical framework for spring-in simulation for multi-angular composite parts. The method utilizes experimentally measured CRS from unidirectional laminate to develop finite element simulation methodology of spring-in in multi-angular L-angle composite parts. The proposed methodology helps in estimation and compensation of spring-in, which would support precise curing tool design and could significantly reduce dimensional deviations in the final parts.

Journal of Composite Materials
National Aerospace Laboratories (IN), Council of Scientific and Industrial Research (IN)
Openalex Percentile: Top 21%
Epoxy Resin Curing Processes
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