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Multiscale Modeling of Thermoplastics Using Atomistic-informed MicromechanicsA multiscale repeating unit cell model of a single spherulite containing four disparate length scales was developed to predict the thermoelastic behavior of semicrystalline thermoplastic materials for composite aerospace applications. The continuum level scales were fully coupled and modeled using the generalized method of cells and the high fidelity generalized method of cells micromechanics theories. Data from molecular dynamics simulations were used as inputs for the amorphous and crystalline constituents in the multiscale continuum models. Effective Young’s modulus, shear modulus, Poisson’s ratio, coefficient of thermal expansion, and thermal conductivity were predicted for polyether ether ketone and polyether ketone ketone, showing good agreement with the available experimental data from the open literature. Moreover, it is shown that predicted properties are fairly insensitive to the fidelity of the micromechanics model used at the highest continuum scale or the assumed shape of the spherulite.
Document ID
20240015672
Acquisition Source
Glenn Research Center
Document Type
Technical Memorandum (TM)
Authors
Evan J Pineda
(Glenn Research Center Cleveland, Ohio, United States)
Jamal F Husseini
(University of Massachusetts Lowell Lowell, Massachusetts, United States)
Joshua D Kemppainen
(Michigan Technological University Houghton, Michigan, United States)
Brett A Bednarcyk
(Glenn Research Center Cleveland, Ohio, United States)
William A Pisani
(U.S. Army Engineer Research and Development Center Vicksburg, United States)
Gregory M Odegard
(Michigan Technological University Houghton, Michigan, United States)
Scott E Stapleton
(University of Massachusetts Lowell Lowell, Massachusetts, United States)
Date Acquired
December 6, 2024
Publication Date
December 1, 2024
Publication Information
Publisher: National Aeronautics and Space Administration
Subject Category
Inorganic, Organic and Physical Chemistry
Structural Mechanics
Nonmetallic Materials
Report/Patent Number
E-20291
NASA/TM-20240015672
Funding Number(s)
WBS: 966826.02.03.1655.23
INTERAGENCY: SAA3-1697
WBS: 264925.04.27.22
CONTRACT_GRANT: 80NSSC21K1285
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
Single Expert
Keywords
thermoplastics
multiscale modeling
molecular dynamics
micromechanics
NASMAT
PEEK
PEKK
Elastic Properties
Coefficient of thermal expansion
thermal conductivity
generalized method of cells
high fidelity generalized method of cells
vector based constitutive laws
multiscale recursive micromechanics
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