Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/153113
Title: Programmable multistability for 3D printed reinforced multifunctional composites with reversible shape change
Authors: Puthanveetil, Shanthini
Liu, Wing Chung
Riley, Katherine S.
Arrieta, Andres F.
Le Ferrand, Hortense
Keywords: Engineering::Materials::Composite materials
Issue Date: 2022
Source: Puthanveetil, S., Liu, W. C., Riley, K. S., Arrieta, A. F. & Le Ferrand, H. (2022). Programmable multistability for 3D printed reinforced multifunctional composites with reversible shape change. Composites Science and Technology, 217, 109097-. https://dx.doi.org/10.1016/j.compscitech.2021.109097
Project: 2019-T1-001-002
Journal: Composites Science and Technology
Abstract: 4D printing empowers 3D printed structures made of hydrogels, liquid crystals or shape memory polymers, with reversible morphing capabilities in response to an external stimulus. To apply reversible shape-change to stiff lightweight materials such as microfiber reinforced polymers, we developed a composite ink that can be printed using direct-ink-writing (DIW), and that exhibits multistability around its glass transition temperature. After curing at room temperature, the flat print thermally morphs into a predefined shape upon heating at an actuation temperature and cooling down. The sample can then reversibly snap between multiple stable shapes when heated above its glass transition temperature thanks to pre-stress-induced multistability. The key that allows thermal morphing and pre-stress multistability is the microstructuring of the 3D printed composites by shear-induced alignment of reinforcing microfibers. This alignment leads to local anisotropy in thermomechanical properties and the build-up of pre-stresses. Furthermore, the ink composition can be tuned to generate shape-dependant reversible functional properties, such as electrical conductivity. Based on finite element modelling and experimental results, the method proposed here can be used for variety of compositions and designs, for applications where stiffness, reconfigurability and shape-dependent functionalities can be exploited.
URI: https://hdl.handle.net/10356/153113
ISSN: 0266-3538
DOI: 10.1016/j.compscitech.2021.109097
Schools: School of Mechanical and Aerospace Engineering 
School of Materials Science and Engineering 
Rights: © 2021 Elsevier Ltd. All rights reserved. This paper was published in Composites Science and Technology and is made available with permission of Elsevier Ltd.
Fulltext Permission: open
Fulltext Availability: With Fulltext
Appears in Collections:MAE Journal Articles
MSE Journal Articles

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