Chen Tiegang, Zhang Yuhang, Qiu Shengbin, Jiang Jun, Zhang Qiang, Zhang Xiaoyong
School of Energy and Power Engineering, Beihang University, Beijing 100191, China.
Shaanxi Qianshan Avionics Co., Ltd., Xi'an 710065, China.
Materials (Basel). 2022 Sep 26;15(19):6674. doi: 10.3390/ma15196674.
This paper presents a novel rotary actuator using an NiTi shape memory alloy machined spring (SMAMS). An analytical model is put forward to describe the relationship between the twist angle and temperature of SMAMSs under different applied torques. Following that, a numerical model is developed to analyze the stress distributions and twist angle-torque responses of the SMAMS, tube, and spring of the circular cross-section. Thus, the advantages of the SMAMS over the other two rotary actuators are obtained. Moreover, experiments with SMAMSs are conducted to validate these models and study their mechanical responses. Results show that the SMAMS can be designed to have a larger twist angle than the cylindrical-type rotary actuators and to bear a larger torque than the wire-based-type rotary actuators, provided that the inner and outer diameter remains unchanged. Specifically, the maximum actuating twist angle of SMAMSs reaches 278.5°, and their maximum actuating torque is 0.312 N·m. The maximum two-way twist angle of SMAMSs reaches 171° at the pre-applied torque of 0.12 N·m. Moreover, the geometry is found to have a significant influence on the actuating capacity of SMAMSs. When the moments of inertia of SMAMS are 0.82 and 4.69, the corresponding torsion angles are 185.3° and 29.8°, respectively. In general, the SMAMSs with a larger moment of inertia can withstand a larger load. This work fills the gap between wire-based-type rotary actuators and cylindrical-type rotary actuators and is expected to expand the use for SMAs in the rotary actuator.
本文提出了一种使用镍钛形状记忆合金加工弹簧(SMAMS)的新型旋转致动器。提出了一个分析模型来描述不同施加扭矩下SMAMS的扭转角与温度之间的关系。在此基础上,建立了一个数值模型,以分析圆形横截面的SMAMS、管和弹簧的应力分布和扭转角 - 扭矩响应。从而得出了SMAMS相对于其他两种旋转致动器的优势。此外,还进行了SMAMS的实验,以验证这些模型并研究其力学响应。结果表明,在内外径不变的情况下,SMAMS可以设计成比圆柱型旋转致动器具有更大的扭转角,并且比线基型旋转致动器承受更大的扭矩。具体而言,SMAMS的最大致动扭转角达到278.5°,其最大致动扭矩为0.312 N·m。在0.12 N·m的预施加扭矩下,SMAMS的最大双向扭转角达到171°。此外,发现几何形状对SMAMS的致动能力有显著影响。当SMAMS的转动惯量为0.82和4.69时,相应的扭转角分别为185.3°和29.8°。一般来说,转动惯量较大的SMAMS能够承受更大的负载。这项工作填补了线基型旋转致动器和圆柱型旋转致动器之间的空白,有望扩大形状记忆合金在旋转致动器中的应用。