Advances in Science and Technology
Vol. 65
Vol. 65
Advances in Science and Technology
Vol. 64
Vol. 64
Advances in Science and Technology
Vol. 63
Vol. 63
Advances in Science and Technology
Vol. 62
Vol. 62
Advances in Science and Technology
Vol. 61
Vol. 61
Advances in Science and Technology
Vol. 60
Vol. 60
Advances in Science and Technology
Vol. 59
Vol. 59
Advances in Science and Technology
Vol. 58
Vol. 58
Advances in Science and Technology
Vol. 57
Vol. 57
Advances in Science and Technology
Vol. 56
Vol. 56
Advances in Science and Technology
Vol. 55
Vol. 55
Advances in Science and Technology
Vol. 54
Vol. 54
Advances in Science and Technology
Vol. 53
Vol. 53
Advances in Science and Technology Vol. 59
Title:
State-of-the-art Research and Application of SMAs Technologies
Subtitle:
CIMTEC 2008
Edited by:
Dr. Pietro Vincenzini and Stefano Besseghini
DOI:
ToC:
Paper Title Page
Abstract: Shape Memory Alloys (SMAs) are active metallic materials classified nowadays as
“smart” or “intelligent” materials. One of the main areas of interest is that of actuators.
The use of Shape Memory Alloys in actuators offers the opportunity to develop robust,
simple and lightweight elements that can represent an alternative to electro-magnetic
actuators commonly used in several fields of industrial applications, such as
automotive, appliances, etc. The obvious simplicity of mechanical design and minimum
number of moved parts is amazing for an actuator.
NiTi SMAs demonstrated to have the best combination of properties. Due to its
relatively high recovery stress and strain, actuators providing significant force and
stroke can be designed. There are perhaps thousands of applications of NiTi-based
actuators mentioned in literature and in patents. Successful applications will build on
SMA strengths whilst taking into account its weaknesses.
SAES Getters S.p.A., thanks to its vertically integrated process and to the scientific and
quality approach, developed a NiTi-based wires family which can represent a very good
solution for shape memory actuators.
The mechanically stabilized SAES Smartflex NiTi actuators show a very sophisticated
profile of properties. In this paper the mechanical, thermal and electrical response of
these shape memory wires, at diameters ranging from 25 to 500 mm, under different
working conditions, simulating the actual operating condition in real actuators, will be
examined in depth and discussed, in order to direct the design of the actuator so that
the functional properties of the material can be completely exploited. The thermomechanical
properties have been investigated and measured by several methods. The
most common and useful tests for these commercially available wires will be also
described.
198