TY - JOUR
T1 - Finite element simulation of novel Polybenzoxazine-Carbon fibre composites prior to Low Earth Orbit
T2 - A comparative analysis of mechanical properties
AU - Lu, H. Lucas
AU - Kong, Kyungil
AU - Worden, George
AU - Gargiuli, Joseph F.
AU - Thomas, James
AU - Brown, Katharine Robson
AU - Hamerton, Ian
N1 - Publisher Copyright:
© 2024 The Author(s)
PY - 2025/3/1
Y1 - 2025/3/1
N2 - High-fidelity finite element (FE) models have been applied to simulate the mechanical properties of carbon fibre-reinforced polymer composites, which include a novel polybenzoxazine matrix resin designed for space applications. FE analysis was used to construct a digital model that replicates the geometry of the plain-woven fabric composite structure, employing X-ray computed tomography data to detail the quality of the composite laminate (manufactured with a thickness of 3.00 mm and fibre volume fraction of 53.0 %). The simulation results are in agreement with experimental data: the simulated tensile modulus (69.2 GPa) closely matches the experimental result (68.8 GPa), and this comparative analysis is also agreeable for the tensile strength (493 MPa simulated, 485 MPa experimental), flexural modulus (48.8 GPa simulated, 48.7 GPa experimental), flexural strength (554 MPa simulated, 526 MPa experimental), compressive modulus (4.20 GPa simulated, 4.00 GPa experimental), and compressive strength (328 MPa simulated, 335 MPa experimental).
AB - High-fidelity finite element (FE) models have been applied to simulate the mechanical properties of carbon fibre-reinforced polymer composites, which include a novel polybenzoxazine matrix resin designed for space applications. FE analysis was used to construct a digital model that replicates the geometry of the plain-woven fabric composite structure, employing X-ray computed tomography data to detail the quality of the composite laminate (manufactured with a thickness of 3.00 mm and fibre volume fraction of 53.0 %). The simulation results are in agreement with experimental data: the simulated tensile modulus (69.2 GPa) closely matches the experimental result (68.8 GPa), and this comparative analysis is also agreeable for the tensile strength (493 MPa simulated, 485 MPa experimental), flexural modulus (48.8 GPa simulated, 48.7 GPa experimental), flexural strength (554 MPa simulated, 526 MPa experimental), compressive modulus (4.20 GPa simulated, 4.00 GPa experimental), and compressive strength (328 MPa simulated, 335 MPa experimental).
KW - Finite Element Analysis
KW - Mechanical Properties
KW - Polybenzoxazine
KW - Space materials
UR - http://www.scopus.com/inward/record.url?scp=85213495428&partnerID=8YFLogxK
U2 - 10.1016/j.compositesa.2024.108670
DO - 10.1016/j.compositesa.2024.108670
M3 - Article (Academic Journal)
AN - SCOPUS:85213495428
SN - 1359-835X
VL - 190
JO - Composites Part A: Applied Science and Manufacturing
JF - Composites Part A: Applied Science and Manufacturing
M1 - 108670
ER -