Analytical solution of a mass-spring system containing shape memory alloys

Effects of nonlinearity and hysteresis

Journal Article (2019)
Author(s)

Mingzhao Zhuo (The Hong Kong University of Science and Technology, TU Delft - Applied Mechanics)

Minglu Xia (The Hong Kong University of Science and Technology)

Qingping Sun (The Hong Kong University of Science and Technology)

Research Group
Applied Mechanics
Copyright
© 2019 M. Zhuo, Minglu Xia, Qingping Sun
DOI related publication
https://doi.org/10.1016/j.ijsolstr.2019.04.004
More Info
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Publication Year
2019
Language
English
Copyright
© 2019 M. Zhuo, Minglu Xia, Qingping Sun
Research Group
Applied Mechanics
Volume number
171
Pages (from-to)
189-200
Reuse Rights

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Abstract

Nonlinear dynamics of vibration systems containing NiTi shape memory alloy (SMA) bars has long been obscured by the lack of an analytical solution, like the analytical solution for duffing equation. The problem results from the nonlinear and hysteretic restoring force of the SMA bar. Here we use a piecewise linear hysteretic model to describe the force-displacement relation of the SMA bar and use the averaging method to solve the equation of motion. We thus obtain an approximate analytical solution of the steady-state response of an SMA mass-spring system. The analytical solution can describe both stable and unstable behaviors of the vibration system and therefore offer a comprehensive understanding of the nonlinear responses. It is shown that the phase transition induced softening nonlinearity bends the frequency response curve (FRC) to the left, while the subsequent rehardening of martensite further bends the FRC to the right, leading to multi-valued regions and jump phenomena. The hysteresis is found to have little influence on the bending but it can significantly suppress the response amplitude. Comparison of the analytical results with experimental data validates the piecewise linear hysteretic model and the analytical solutions. This work provides a theoretical tool for design and vibration control of SMA mass-spring systems.

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