BARC/PUB/2012/0714

 
 

Nonlinear model of pseudoelastic shape memory alloy damper considering residual martensite strain effect

 
     
 
Author(s)

Parulekar, Y. M.; Reddy, G. R.
(RSD)

Source

Advances in Acoustics & Vibration, 2012.: Article no. 261896

ABSTRACT

Recently, there has been increasing interest in using super elastic shape memory alloys for applications in seismic resistant- design. Shape memory alloys (SMAs) have a unique property by which they can recover their original shape after experiencing large strains up to 8% either by heating (shape memory effect) or removing stress (pseudoelastic effect). Many simplified shape memory alloy models are suggested in the past literature for capturing the pseudoelastic response of SMAs in passive vibration control of structures. Most of these models do not consider the cyclic effects of SMA’s and resulting residual martensite deformation. Therefore, a suitable constitutive model of shape memory alloy damper which represents the nonlinear hysterical dynamic system appropriately is essential. In this paper a multilinear hysteretic model incorporating residual martensite strain effect of pseudo elastic shape memory alloy damper is developed and experimentally validated using SMA wire, based damper device. A sensitivity analysis is done using the proposed model along with three other simplified SMA models. The models are implemented on a steel frame representing an SDOF system and the comparison of seismic response of structure with all the models is made in the numerical study.

 
 
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