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Testing system for ferromagnetic shape memory microactuators.

Authors :
Ganor, Y.
Shilo, D.
Messier, J.
Shield, T. W.
James, R. D.
Source :
Review of Scientific Instruments; Jul2007, Vol. 78 Issue 7, p073907, 7p, 3 Color Photographs, 6 Diagrams, 3 Graphs
Publication Year :
2007

Abstract

Ferromagnetic shape memory alloys are a class of smart materials that exhibit a unique combination of large strains and fast response when exposed to magnetic field. Accordingly, these materials have significant potential in motion generation applications such as microactuators and sensors. This article presents a novel experimental system that measures the dynamic magnetomechanical behavior of microscale ferromagnetic shape memory specimens. The system is comprised of an alternating magnetic field generator (AMFG) and a mechanical loading and sensing system. The AMFG generates a dynamic magnetic field that periodically alternates between two orthogonal directions to facilitate martensitic variant switching and to remotely achieve a full magnetic actuation cycle, without the need of mechanical resetting mechanisms. Moreover, the AMFG is designed to produce a magnetic field that inhibits 180° magnetization domain switching, which causes energy loss without strain generation. The mechanical loading and sensing system maintains a constant mechanical load on the measured specimen by means of a cantilever beam, while the displacement is optically monitored with a resolution of approximately 0.1 μm. Preliminary measurements using Ni<subscript>2</subscript>MnGa single crystal specimens, with a cross section of 100×100 μm<superscript>2</superscript>, verified their large actuation strains and established their potential to become a material of great importance in microactuation technology. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00346748
Volume :
78
Issue :
7
Database :
Complementary Index
Journal :
Review of Scientific Instruments
Publication Type :
Academic Journal
Accession number :
26222278
Full Text :
https://doi.org/10.1063/1.2753672