Issues In The Design Of Shape Memory Alloy Actuators


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Issues in the Design of Shape Memory Alloy Actuators


Issues in the Design of Shape Memory Alloy Actuators

Author: Stéphane Lederlé

language: en

Publisher:

Release Date: 2002


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Design of Shape Memory Alloy (SMA) Actuators


Design of Shape Memory Alloy (SMA) Actuators

Author: Ashwin Rao

language: en

Publisher: Springer

Release Date: 2015-05-08


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This short monograph presents an analysis and design methodology for shape memory alloy (SMA) components such as wires, beams, and springs for different applications. The solid-solid, diffusionless phase transformations in thermally responsive SMA allows them to demonstrate unique characteristics like superelasticity and shape memory effects. The combined sensing and actuating capabilities of such materials allows them to provide a system level response by combining multiple functions in a single material system. In SMA, the combined mechanical and thermal loading effects influence the functionality of such materials. The aim of this book is to make the analysis of these materials accessible to designers by developing a "strength of materials" approach to the analysis and design of such SMA components inspired from their various applications with a review of various factors influencing the design process for such materials.

Shape Memory Alloy Actuators


Shape Memory Alloy Actuators

Author: Mohammad H. Elahinia

language: en

Publisher: John Wiley & Sons

Release Date: 2016-01-19


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This book provides a systematic approach to realizing NiTi shape memory alloy actuation, and is aimed at science and engineering students who would like to develop a better understanding of the behaviors of SMAs, and learn to design, simulate, control, and fabricate these actuators in a systematic approach. Several innovative biomedical applications of SMAs are discussed. These include orthopedic, rehabilitation, assistive, cardiovascular, and surgery devices and tools. To this end unique actuation mechanisms are discussed. These include antagonistic bi-stable shape memory-superelastic actuation, shape memory spring actuation, and multi axial tension-torsion actuation. These actuation mechanisms open new possibilities for creating adaptive structures and biomedical devices by using SMAs.