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Micromechanical Design of Carbon Nanotube Ribbon Reinforced Polymer Composite MaterialsLightweight materials are an important component of the design of aerospace structures. Carbon nanotube materials have been considered for this purpose due to the strength and stiffness of individual nanotubes, and the commercial availability of bulk formats such as fibers. These fibers can have a ribbon cross section which results in a different design space for their composites relative to traditional reinforcements which have a round cross section. This work applies brick-and-mortar micromechanical models and classical lamination theory with an inverse approach to investigate the design space of these composites. Using this approach, the influences of fiber geometry and axial and transverse mechanical properties are mapped. Finally, a sensitivity study is performed and the relative impacts of ±10% variations in the constituent material and geometric properties are ranked. Lamina axial moduli were found to range from a maximum of 3x to 1x minimum relative to a target quasi-isotropic laminate modulus depending on the anisotropy and shear modulus of the lamina. The fiber targets depended strongly on the fiber volume fraction in the lamina and the fiber axial modulus target was found to range from 4.8x to 3.2x the quasi-isotropic laminate target. The sensitivity analysis found that the largest driver of performance was the volume fraction, followed by the fiber axial modulus. While bio-based brick-and-mortar composites, such as nacre, can benefit from reinforcement aspect ratios above 10, for carbon nanotube ribbon (or carbon fiber)/polymer composites the sensitivity study indicated that the optimal cross-sectional aspect ratio was relatively smaller, potentially less than three.
Document ID
20260004532
Acquisition Source
Langley Research Center
Document Type
Technical Memorandum (TM)
Authors
Benjamin D Jensen
(Langley Research Center Hampton, United States)
Godfrey Sauti
(Langley Research Center Hampton, United States)
John M Gardner
(Langley Research Center Hampton, United States)
Russell A Wincheski
(Langley Research Center Hampton, United States)
Scott R Zavada
(Langley Research Center Hampton, United States)
Emilie J Siochi
(Langley Research Center Hampton, United States)
Jae-Woo Kim
(Analytical Mechanics Associates, Inc. Mountain View, CA, United States)
Date Acquired
May 20, 2026
Publication Date
May 1, 2026
Publication Information
Publisher: National Aeronautics and Space Administration
Subject Category
Chemistry and Materials (General)
Composite Materials
Mechanical Engineering
Report/Patent Number
NASA/TM-20260004532
Funding Number(s)
WBS: 703051.07.02.04.23
Distribution Limits
Public
Copyright
Public Use Permitted.
Technical Review
Single Expert
Keywords
Micromechanics
Classical Lamination Theory
Carbon nanotube
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