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A rapid method for simulating residual stress to enable optimization against cure induced distortion
Author(s) -
Christopher J. Cameron,
Sibin Saseendran,
Fredrik Stig,
Mohammad Sadegh Rouhi
Publication year - 2021
Publication title -
journal of composite materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.608
H-Index - 91
eISSN - 1530-793X
pISSN - 0021-9983
DOI - 10.1177/00219983211024341
Subject(s) - materials science , residual stress , thermal expansion , epoxy , composite material , distortion (music) , curing (chemistry) , composite number , modulus , finite element method , residual , structural engineering , computer science , algorithm , amplifier , optoelectronics , cmos , engineering
In this paper a rapid method for residual cure stress analysis from composite manufacturing is presented. The method uses a high-fidelity path-dependent cure kinetics subroutine implemented in ABAQUS to calibrate a linear elastic model. The path-dependent model accounts for the tool-part interaction, forming pressure, and the changing composite modulus during the rubbery phase of matrix curing. Results are used to calculate equivalent lamina-wise coefficients of thermal expansion (CTE) in 3 directions for a linear temperature analysis. The goal is to accurately predict distortions for large complex geometries as rapidly as possible for use in an optimization framework. A carbon-epoxy system is studied. Simple coupons and complex parts are manufactured and measured with a 3 D scanner to compare the manufactured and simulated distortion. Results are presented and the accuracy and limitations of the rapid simulation method are discussed with particular focus on implementation in a numerical optimization framework.

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