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Effect of Boundary Conditions on Process-Induced Stresses in a Plain Weave Unit CellWoven polymer matrix composites (PMCs) are leveraged in aerospace applications for their desirable specific properties, yet they are vulnerable to high residual stresses during manufacturing and their complex geometry makes experimental results difficult to observe. Process modeling is needed to characterize the effects of the curing and predict end stress states. Finite element software can be used to model woven architectures, however accurate representation of processing conditions remains a challenge when it comes to selecting boundary conditions. The effect of BCs on process-induced stress within woven PMCs is studied. The commercial Finite Element Analysis (FEA) software Abaqus is coupled with user-written subroutines in a process modeling framework. A two-dimensionally (2D) woven PMC repeating unit cell (RUC) is modeled with TexGen and Abaqus. Virtual curing is imposed on the bulk matrix. The BC study is conducted with Free, Periodic, Flat, and Flat-Free configurations. Results show that the end stress state is sensitive to the boundary condition assumptions. Flat BC results show great agreement with Periodic BCs. Residual stress results from process modeling are then compared with a linear-elastic thermal cooldown analysis in Abaqus. Cooldown results indicate an overestimation in matrix stresses compared with process modeling.
Document ID
20210018934
Acquisition Source
Glenn Research Center
Document Type
Conference Paper
Authors
K. Bukenya
(University of Massachusetts Lowell Lowell, Massachusetts, United States)
M. N. Olaya
(University of Massachusetts Lowell Lowell, Massachusetts, United States)
E. J. Pineda
(Glenn Research Center Cleveland, Ohio, United States)
M. Maiaru
(University of Massachusetts, Lowell)
Date Acquired
July 21, 2021
Subject Category
Composite Materials
Meeting Information
Meeting: American Society for Composites 36th Technical Conference
Location: Virtual
Country: US
Start Date: September 19, 2021
End Date: September 22, 2021
Sponsors: Texas A&M University System
Funding Number(s)
WBS: 119991.04.02.22
CONTRACT_GRANT: AFRL 165852-18F5828-19-19-C1
CONTRACT_GRANT: 80GRC019D0001
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
Single Expert
Keywords
micromechanics
curing
residual stresses
3d woven
boundary conditions
finite element method
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