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A mathematical model for smart functionally graded beam integrated with shape memory alloy actuators H. Sepiani/F. Ebrahimi/H. Karimipour
The Journal of Mechanical Science and Technology, vol. 23, no. 12, pp.3179-3190, 2009
Abstract : This paper presents a theoretical study of the thermally driven behavior of a shape memory alloy (SMA)/FGM actuator
under arbitrary loading and boundary conditions by developing an integrated mathematical model. The model
studied is established on the geometric parameters of the three-dimensional laminated composite box beam as an actuator
that consists of a functionally graded core integrated with SMA actuator layers with a uniform rectangular cross
section. The constitutive equation and linear phase transformation kinetics relations of SMA layers based on Tanaka
and Nagaki model are coupled with the governing equation of the actuator to predict the stress history and to model the
thermo-mechanical behavior of the smart shape memory alloy/FGM beam. Based on the classical laminated beam
theory, the explicit solution to the structural response of the structure, including axial and lateral deflections of the
structure, is investigated. As an example, a cantilever box beam subjected to a transverse concentrated load is solved
numerically. It is found that the changes in the actuator's responses during the phase transformation due to the strain
recovery are significant.
Keyword :
Shape memory alloy (SMA); Functionally graded material (FGM); Smart actuator beam; Classical laminated beam theory (CLBT)
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