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Experimental and Numerical Analysis of the Deformation Behavior of Adaptive Fiber-Rubber Composites with Integrated Shape Memory Alloys

Fiber-reinforced rubber composites with integrated shape memory alloy (SMA) actuator wires present a promising approach for the creation of soft and highly elastic structures with adaptive functionalities for usage in aerospace, robotic, or biomedical applications. In this work, the flat-knitting te...

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Autores principales: Lohse, Felix, Kopelmann, Karl, Grellmann, Henriette, Ashir, Moniruddoza, Gereke, Thomas, Häntzsche, Eric, Sennewald, Cornelia, Cherif, Chokri
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8777809/
https://www.ncbi.nlm.nih.gov/pubmed/35057305
http://dx.doi.org/10.3390/ma15020582
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author Lohse, Felix
Kopelmann, Karl
Grellmann, Henriette
Ashir, Moniruddoza
Gereke, Thomas
Häntzsche, Eric
Sennewald, Cornelia
Cherif, Chokri
author_facet Lohse, Felix
Kopelmann, Karl
Grellmann, Henriette
Ashir, Moniruddoza
Gereke, Thomas
Häntzsche, Eric
Sennewald, Cornelia
Cherif, Chokri
author_sort Lohse, Felix
collection PubMed
description Fiber-reinforced rubber composites with integrated shape memory alloy (SMA) actuator wires present a promising approach for the creation of soft and highly elastic structures with adaptive functionalities for usage in aerospace, robotic, or biomedical applications. In this work, the flat-knitting technology is used to develop glass-fiber-reinforced fabrics with tailored properties designed for active bending deformations. During the knitting process, the SMA wires are integrated into the textile and positioned with respect to their actuation task. Then, the fabrics are infiltrated with liquid silicone, thus creating actively deformable composites. For dimensioning such structures, a comprehensive understanding of the interactions of all components is required. Therefore, a simulation model is developed that captures the properties of the rubber matrix, fiber reinforcement, and the SMA actuators and that is capable of simulating the active bending deformations of the specimens. After model calibration with experimental four-point-bending data, the SMA-driven bending deformation is simulated. The model is validated with activation experiments of the actively deformable specimens. The simulation results show good agreement with the experimental tests, thus enabling further investigations into the deformation mechanisms of actively deformable fiber-reinforced rubbers.
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spelling pubmed-87778092022-01-22 Experimental and Numerical Analysis of the Deformation Behavior of Adaptive Fiber-Rubber Composites with Integrated Shape Memory Alloys Lohse, Felix Kopelmann, Karl Grellmann, Henriette Ashir, Moniruddoza Gereke, Thomas Häntzsche, Eric Sennewald, Cornelia Cherif, Chokri Materials (Basel) Article Fiber-reinforced rubber composites with integrated shape memory alloy (SMA) actuator wires present a promising approach for the creation of soft and highly elastic structures with adaptive functionalities for usage in aerospace, robotic, or biomedical applications. In this work, the flat-knitting technology is used to develop glass-fiber-reinforced fabrics with tailored properties designed for active bending deformations. During the knitting process, the SMA wires are integrated into the textile and positioned with respect to their actuation task. Then, the fabrics are infiltrated with liquid silicone, thus creating actively deformable composites. For dimensioning such structures, a comprehensive understanding of the interactions of all components is required. Therefore, a simulation model is developed that captures the properties of the rubber matrix, fiber reinforcement, and the SMA actuators and that is capable of simulating the active bending deformations of the specimens. After model calibration with experimental four-point-bending data, the SMA-driven bending deformation is simulated. The model is validated with activation experiments of the actively deformable specimens. The simulation results show good agreement with the experimental tests, thus enabling further investigations into the deformation mechanisms of actively deformable fiber-reinforced rubbers. MDPI 2022-01-13 /pmc/articles/PMC8777809/ /pubmed/35057305 http://dx.doi.org/10.3390/ma15020582 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lohse, Felix
Kopelmann, Karl
Grellmann, Henriette
Ashir, Moniruddoza
Gereke, Thomas
Häntzsche, Eric
Sennewald, Cornelia
Cherif, Chokri
Experimental and Numerical Analysis of the Deformation Behavior of Adaptive Fiber-Rubber Composites with Integrated Shape Memory Alloys
title Experimental and Numerical Analysis of the Deformation Behavior of Adaptive Fiber-Rubber Composites with Integrated Shape Memory Alloys
title_full Experimental and Numerical Analysis of the Deformation Behavior of Adaptive Fiber-Rubber Composites with Integrated Shape Memory Alloys
title_fullStr Experimental and Numerical Analysis of the Deformation Behavior of Adaptive Fiber-Rubber Composites with Integrated Shape Memory Alloys
title_full_unstemmed Experimental and Numerical Analysis of the Deformation Behavior of Adaptive Fiber-Rubber Composites with Integrated Shape Memory Alloys
title_short Experimental and Numerical Analysis of the Deformation Behavior of Adaptive Fiber-Rubber Composites with Integrated Shape Memory Alloys
title_sort experimental and numerical analysis of the deformation behavior of adaptive fiber-rubber composites with integrated shape memory alloys
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8777809/
https://www.ncbi.nlm.nih.gov/pubmed/35057305
http://dx.doi.org/10.3390/ma15020582
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