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Hydrogel-matrix encapsulated Nitinol actuation with self-cooling mechanism

Shape-memory Nitinol holds burgeoning promise as smart actuators due to its effective resilience, high energy density, and scalability for a myriad of mesoscale machines and robotic applications. However, the higher actuation temperature and prolonged cooling time for a cyclic response make Nitinol...

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Detalles Bibliográficos
Autores principales: Sivaperuman Kalairaj, Manivannan, Banerjee, Hritwick, Lim, Chwee Ming, Chen, Po-Yen, Ren, Hongliang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9074078/
https://www.ncbi.nlm.nih.gov/pubmed/35530000
http://dx.doi.org/10.1039/c9ra05360c
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author Sivaperuman Kalairaj, Manivannan
Banerjee, Hritwick
Lim, Chwee Ming
Chen, Po-Yen
Ren, Hongliang
author_facet Sivaperuman Kalairaj, Manivannan
Banerjee, Hritwick
Lim, Chwee Ming
Chen, Po-Yen
Ren, Hongliang
author_sort Sivaperuman Kalairaj, Manivannan
collection PubMed
description Shape-memory Nitinol holds burgeoning promise as smart actuators due to its effective resilience, high energy density, and scalability for a myriad of mesoscale machines and robotic applications. However, the higher actuation temperature and prolonged cooling time for a cyclic response make Nitinol precarious and less appealing for commercial use. On the contrary, hydrogels belong to the three dimensional (3D) polymer family where the bulk of the matrix encapsulates water (≈80–90 wt%) constituting a compelling heat-trapping medium. In this paper, we demonstrate a novel self-cooling mechanism comprising a Hydrogel-matrix Encapsulated Nitinol Actuator (HENA) where the heat emitted due to the high temperature (200–400 °C) of Nitinol is trapped in the hydrogel-matrix, maintaining a surface temperature of 20–22 °C. For quantitative analysis, we performed control tests with the state-of-the-art Silicone Elastomer Nitinol Actuator (SENA) which maintained a three times or higher temperature profile (65–90 °C) than its HENA counterpart. HENA is able to entrap 85% heat for actuation of 200 cycles while SENA dissipates the same amount in the first cycle. For impending biomedical applications, HENA with a single Nitinol wire shows a bending displacement up to 45% of its length for trans-oral navigation purposes. A HENA soft robotic gripper with two Nitinol wires can carry delicate, low-melting-point food items (e.g. cheese, chocolate, tofu etc.) with different morphologies that weigh up to 450% of its own weight.
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spelling pubmed-90740782022-05-06 Hydrogel-matrix encapsulated Nitinol actuation with self-cooling mechanism Sivaperuman Kalairaj, Manivannan Banerjee, Hritwick Lim, Chwee Ming Chen, Po-Yen Ren, Hongliang RSC Adv Chemistry Shape-memory Nitinol holds burgeoning promise as smart actuators due to its effective resilience, high energy density, and scalability for a myriad of mesoscale machines and robotic applications. However, the higher actuation temperature and prolonged cooling time for a cyclic response make Nitinol precarious and less appealing for commercial use. On the contrary, hydrogels belong to the three dimensional (3D) polymer family where the bulk of the matrix encapsulates water (≈80–90 wt%) constituting a compelling heat-trapping medium. In this paper, we demonstrate a novel self-cooling mechanism comprising a Hydrogel-matrix Encapsulated Nitinol Actuator (HENA) where the heat emitted due to the high temperature (200–400 °C) of Nitinol is trapped in the hydrogel-matrix, maintaining a surface temperature of 20–22 °C. For quantitative analysis, we performed control tests with the state-of-the-art Silicone Elastomer Nitinol Actuator (SENA) which maintained a three times or higher temperature profile (65–90 °C) than its HENA counterpart. HENA is able to entrap 85% heat for actuation of 200 cycles while SENA dissipates the same amount in the first cycle. For impending biomedical applications, HENA with a single Nitinol wire shows a bending displacement up to 45% of its length for trans-oral navigation purposes. A HENA soft robotic gripper with two Nitinol wires can carry delicate, low-melting-point food items (e.g. cheese, chocolate, tofu etc.) with different morphologies that weigh up to 450% of its own weight. The Royal Society of Chemistry 2019-10-25 /pmc/articles/PMC9074078/ /pubmed/35530000 http://dx.doi.org/10.1039/c9ra05360c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Sivaperuman Kalairaj, Manivannan
Banerjee, Hritwick
Lim, Chwee Ming
Chen, Po-Yen
Ren, Hongliang
Hydrogel-matrix encapsulated Nitinol actuation with self-cooling mechanism
title Hydrogel-matrix encapsulated Nitinol actuation with self-cooling mechanism
title_full Hydrogel-matrix encapsulated Nitinol actuation with self-cooling mechanism
title_fullStr Hydrogel-matrix encapsulated Nitinol actuation with self-cooling mechanism
title_full_unstemmed Hydrogel-matrix encapsulated Nitinol actuation with self-cooling mechanism
title_short Hydrogel-matrix encapsulated Nitinol actuation with self-cooling mechanism
title_sort hydrogel-matrix encapsulated nitinol actuation with self-cooling mechanism
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9074078/
https://www.ncbi.nlm.nih.gov/pubmed/35530000
http://dx.doi.org/10.1039/c9ra05360c
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