An introduction to a porous shape memory alloy dynamic data driven application system

Shape Memory Alloys are capable of changing their crystallographic structure due to changes of temperature and/or stress. Our research focuses on three points: (1) Iterative Homogenization of Porous SMAs: Development of a Multiscale Model of porous SMAs utilizing iterative homogenization and based o...

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Main Authors: Douglas, C., Efendiev, Y., Popov, P., Calo, Victor
Format: Conference Paper
Published: 2012
Online Access:http://hdl.handle.net/20.500.11937/51567
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author Douglas, C.
Efendiev, Y.
Popov, P.
Calo, Victor
author_facet Douglas, C.
Efendiev, Y.
Popov, P.
Calo, Victor
author_sort Douglas, C.
building Curtin Institutional Repository
collection Online Access
description Shape Memory Alloys are capable of changing their crystallographic structure due to changes of temperature and/or stress. Our research focuses on three points: (1) Iterative Homogenization of Porous SMAs: Development of a Multiscale Model of porous SMAs utilizing iterative homogenization and based on existing knowledge of constitutive modeling of polycrystalline SMAs. (2) DDDAS: Develop tools to turn on and off the sensors and heating unit(s), to monitor on-line data streams, to change scales based on incoming data, and to control what type of data is generated. The application must have the capability to be run and steered remotely. (3) Modeling and applications of porous SMA: Vibration isolation devices with SMA and porous SMA components for aerospace applications will be analyzed and tested. Numerical tools for modeling porous SMAs with a second viscous phase will be developed. The outcome will be a robust, three-dimensional, multiscale model of porous SMA that can be used in complicated, real-life structural analysis of SMA components using a DDDAS framework. © 2012 Published by Elsevier Ltd.
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spelling curtin-20.500.11937-515672018-03-05T08:59:39Z An introduction to a porous shape memory alloy dynamic data driven application system Douglas, C. Efendiev, Y. Popov, P. Calo, Victor Shape Memory Alloys are capable of changing their crystallographic structure due to changes of temperature and/or stress. Our research focuses on three points: (1) Iterative Homogenization of Porous SMAs: Development of a Multiscale Model of porous SMAs utilizing iterative homogenization and based on existing knowledge of constitutive modeling of polycrystalline SMAs. (2) DDDAS: Develop tools to turn on and off the sensors and heating unit(s), to monitor on-line data streams, to change scales based on incoming data, and to control what type of data is generated. The application must have the capability to be run and steered remotely. (3) Modeling and applications of porous SMA: Vibration isolation devices with SMA and porous SMA components for aerospace applications will be analyzed and tested. Numerical tools for modeling porous SMAs with a second viscous phase will be developed. The outcome will be a robust, three-dimensional, multiscale model of porous SMA that can be used in complicated, real-life structural analysis of SMA components using a DDDAS framework. © 2012 Published by Elsevier Ltd. 2012 Conference Paper http://hdl.handle.net/20.500.11937/51567 10.1016/j.procs.2012.04.117 http://creativecommons.org/licenses/by-nc-nd/3.0/ fulltext
spellingShingle Douglas, C.
Efendiev, Y.
Popov, P.
Calo, Victor
An introduction to a porous shape memory alloy dynamic data driven application system
title An introduction to a porous shape memory alloy dynamic data driven application system
title_full An introduction to a porous shape memory alloy dynamic data driven application system
title_fullStr An introduction to a porous shape memory alloy dynamic data driven application system
title_full_unstemmed An introduction to a porous shape memory alloy dynamic data driven application system
title_short An introduction to a porous shape memory alloy dynamic data driven application system
title_sort introduction to a porous shape memory alloy dynamic data driven application system
url http://hdl.handle.net/20.500.11937/51567