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Preparation of Monodomain Liquid Crystal Elastomers and Liquid Crystal Elastomer Nanocomposites
Published on: February 6, 2016
Energy Dissipation of 3D Printed Monodomain Liquid Crystal Elastomer Composites with Continuous Fibers
Huan Jiang1, Alston X Gracego1, Martin L Dunn1
1Department of Mechanical Engineering, University of Colorado Denver, Denver, Colorado 80217, United States.
Abstract:
Liquid crystal elastomers (LCEs) are promising for protective and damping applications because mesogen reorientation and soft elasticity enable substantial mechanical energy dissipation. However, neat LCEs are typically too soft and weak for structural use, and conventional reinforcement strategies often improve stiffness at the expense of the large-deformation dissipation mechanisms of the LCE matrix. This study overcomes the material trade-off between structural stiffness and inherent dissipation of LCEs by using direct ink writing (DIW) to 3D print monodomain LCE composites reinforced with continuous fibers. This anisotropic reinforcement strategy strengthens the composite primarily along the fiber axis while preserving substantial matrix deformation and mesogen-mediated dissipation under off-axis loading. For example, compared with neat monodomain LCE, the printed composites exhibit an approximately 40-fold increase in longitudinal strength, while their transverse energy absorption and dissipation increase by 4-5 times without sacrificing the pronounced soft-elastic plateau. The effects of fiber volume fraction, mesogen alignment, loading rate, and loading direction on the energy dissipation behavior are systematically investigated. In addition, an integrated experiment-simulation framework is developed to decouple the respective contributions of the LCE matrix and continuous fibers to the overall energy absorption. The results reveal how anisotropic reinforcement, mesogen organization, and loading conditions jointly govern stress-strain response, energy partitioning, and dissipation of LCE composites, which offers useful guidance for the design of mechanically robust, energy-dissipative materials for vibration- and impact-relevant applications.

