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Alloys of this system demonstrate high values of characteristics of shape memory effects and superelasticity [2 4]; they also exhibit a giant magnetoresistance [5].
These findings have significant implications for the understanding and exploitation of the underlining functional characteristics of shape memory alloys, especially at high strain rates.
A finite element model is developed to predict the complete stress strain temperature characteristics of shape memory polymers under uniaxial and indentation loading conditions.
In this paper, a new hysteresis model based on the limiting loop proximity (L2P) approach is proposed to describe this phenomenon in the strain –temperature (T) characteristics of shape memory alloy (SMA) actuators including major and minor loops.
By invoking the indentation deformation characteristics of shape memory polymers for a range of indenter geometries and temperatures, it is demonstrated that the extent of shape recovery is strongly dependent on temperature, microstructural state and constraint loads.
The predictions of the finite element model for the variations of the mechanical properties and shape recovery characteristics of shape memory polymers with temperature are in reasonable agreement with the trends observed in experiments.
Similar(49)
Fractal theory is primary used to study nonlinear and irregular characteristics of shapes (Xie 1996; Pan et al. 2016).
Kapil, et al. [50], Sun, et al. [51, 52] explored the dynamic characteristic of shape during the cold rolling process.
Martensitic transformation characteristics of NiTi shape memory alloys after severe cold deformation were studied.
Once it learns the key characteristics of that shape, it should be able to recognise them more readily than conventional systems.
Solar optical systems are, therefore, dependent on the characteristics of the shape of the sun in a specific geographical location.
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