School of Civil Engineering and Architecture, Wuhan University of Technology, Wuhan 430070, China.
Sensors (Basel). 2018 Dec 23;19(1):50. doi: 10.3390/s19010050.
This paper proposes a new force-displacement model for superelastic shape memory alloy (SMA) springs under complex loading and unloading. For the SMA wires used to make superelastic springs, a new multilinear constitutive model based on a modification of the 1D Motahari model is developed. In the modified model, the stress-strain relation curves are changed to fit the experimental results. Furthermore, the established force-displacement relationship of the springs considers the impact of not only the torque but also the moment on the cross sections of the SMA wires. Afterwards, a series of tension tests are performed on four NiTi helical spring specimens under various loading conditions. From the numerical simulations and experimental results, it is shown that, compared with the force-displacement curves for the SMA springs simulated by the Motahari model, those simulated by the proposed model can better approximate the experimental results. The new model inherits the advantage of simple computation of the multilinear constitutive model and can predict the force-displacement relation for superelastic SMA springs very well. Furthermore, due to the self-sensing properties of the SMA springs, the new model is very significant for establishing a new strategy for measuring the displacements or forces of SMA springs under complex loading and unloading.
本文提出了一种适用于复杂加载和卸载条件下超弹性形状记忆合金(SMA)弹簧的新力-位移模型。对于用于制造超弹性弹簧的 SMA 丝,我们开发了一种基于对 1D Motahari 模型修正的新的多线性本构模型。在修正模型中,改变了应力-应变关系曲线以拟合实验结果。此外,所建立的弹簧力-位移关系不仅考虑了扭矩,还考虑了 SMA 丝横截面的弯矩的影响。随后,对四个 NiTi 螺旋弹簧试件在各种加载条件下进行了一系列拉伸试验。从数值模拟和实验结果可以看出,与由 Motahari 模型模拟的 SMA 弹簧的力-位移曲线相比,由所提出的模型模拟的曲线可以更好地逼近实验结果。新模型继承了多线性本构模型计算简单的优点,能够很好地预测超弹性 SMA 弹簧的力-位移关系。此外,由于 SMA 弹簧具有自感知特性,因此该新模型对于建立一种新的策略来测量 SMA 弹簧在复杂加载和卸载下的位移或力非常重要。