Shape Memory Polymer Composite Actuator: Modeling Approach for Preliminary Design and Validation

The work at hand focuses on the modeling, prototyping, and experimental functionality test of a smart actuator based on shape memory polymer technology. Particular attention is paid to the specific modeling approach, here conceived as an effective predictive scheme, quick and, at the same time, able...

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Main Authors: Salvatore Ameduri, Monica Ciminello, Antonio Concilio, Fabrizio Quadrini, Loredana Santo
Format: Article
Language:English
Published: MDPI AG 2019-06-01
Series:Actuators
Subjects:
Online Access:https://www.mdpi.com/2076-0825/8/3/51
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spelling doaj-3f961bcba56d421c8c12dbb29f10f6fd2020-11-25T01:07:48ZengMDPI AGActuators2076-08252019-06-01835110.3390/act8030051act8030051Shape Memory Polymer Composite Actuator: Modeling Approach for Preliminary Design and ValidationSalvatore Ameduri0Monica Ciminello1Antonio Concilio2Fabrizio Quadrini3Loredana Santo4Department of Adaptive Structures, Centro Italiano Ricerche Aerospaziali; 81043 Capua (CE), ItalyDepartment of Adaptive Structures, Centro Italiano Ricerche Aerospaziali; 81043 Capua (CE), ItalyDepartment of Adaptive Structures, Centro Italiano Ricerche Aerospaziali; 81043 Capua (CE), ItalyDepartment of Industrial Engineering, University of Rome Tor Vergata, via del Politecnico 1, 00133 Rome, ItalyDepartment of Industrial Engineering, University of Rome Tor Vergata, via del Politecnico 1, 00133 Rome, ItalyThe work at hand focuses on the modeling, prototyping, and experimental functionality test of a smart actuator based on shape memory polymer technology. Particular attention is paid to the specific modeling approach, here conceived as an effective predictive scheme, quick and, at the same time, able to face those nonlinearity aspects, strictly related to the large displacements shape memory polymers usually undergo. Shape memory polymer composites (SMPCs) may play a critical role for many applications, ranging from self-repairing systems to deployable structures (e.g., solar sails, antennas) and functional subcomponents (e.g., pliers, transporters of small objects). For all these applications, it is very important to have an effective tool that may drive the designers during the preliminary definition of the main parameters of the actuation system. For the present work, a SMPC plate sample has been conceived and realized in view of aerospace applications. An external fibre optic sensor has been then fixed with special adhesive. The temperatures needed for the activation of the Shape Memory Polymer (SMP) and strain storing have been provided by a thermo-gun and complete load−unload cycles, including strain storing, have been performed. Experimental displacements and strains have been used to validate a dedicated predictive theoretical approach, suited for laminates integrated with SMP layers.https://www.mdpi.com/2076-0825/8/3/51smart actuatorsshape memory polymersfiber optic sensingdeployable systems
collection DOAJ
language English
format Article
sources DOAJ
author Salvatore Ameduri
Monica Ciminello
Antonio Concilio
Fabrizio Quadrini
Loredana Santo
spellingShingle Salvatore Ameduri
Monica Ciminello
Antonio Concilio
Fabrizio Quadrini
Loredana Santo
Shape Memory Polymer Composite Actuator: Modeling Approach for Preliminary Design and Validation
Actuators
smart actuators
shape memory polymers
fiber optic sensing
deployable systems
author_facet Salvatore Ameduri
Monica Ciminello
Antonio Concilio
Fabrizio Quadrini
Loredana Santo
author_sort Salvatore Ameduri
title Shape Memory Polymer Composite Actuator: Modeling Approach for Preliminary Design and Validation
title_short Shape Memory Polymer Composite Actuator: Modeling Approach for Preliminary Design and Validation
title_full Shape Memory Polymer Composite Actuator: Modeling Approach for Preliminary Design and Validation
title_fullStr Shape Memory Polymer Composite Actuator: Modeling Approach for Preliminary Design and Validation
title_full_unstemmed Shape Memory Polymer Composite Actuator: Modeling Approach for Preliminary Design and Validation
title_sort shape memory polymer composite actuator: modeling approach for preliminary design and validation
publisher MDPI AG
series Actuators
issn 2076-0825
publishDate 2019-06-01
description The work at hand focuses on the modeling, prototyping, and experimental functionality test of a smart actuator based on shape memory polymer technology. Particular attention is paid to the specific modeling approach, here conceived as an effective predictive scheme, quick and, at the same time, able to face those nonlinearity aspects, strictly related to the large displacements shape memory polymers usually undergo. Shape memory polymer composites (SMPCs) may play a critical role for many applications, ranging from self-repairing systems to deployable structures (e.g., solar sails, antennas) and functional subcomponents (e.g., pliers, transporters of small objects). For all these applications, it is very important to have an effective tool that may drive the designers during the preliminary definition of the main parameters of the actuation system. For the present work, a SMPC plate sample has been conceived and realized in view of aerospace applications. An external fibre optic sensor has been then fixed with special adhesive. The temperatures needed for the activation of the Shape Memory Polymer (SMP) and strain storing have been provided by a thermo-gun and complete load−unload cycles, including strain storing, have been performed. Experimental displacements and strains have been used to validate a dedicated predictive theoretical approach, suited for laminates integrated with SMP layers.
topic smart actuators
shape memory polymers
fiber optic sensing
deployable systems
url https://www.mdpi.com/2076-0825/8/3/51
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