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Modeling of Shape Memory Alloy Actuated System Using a Modified Rate-dependent Prandtl-Ishlinskii Hysteresis Model

机译:使用修正的速率相关的Prandtl-Ishlinskii磁滞模型对形状记忆合金致动系统进行建模

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Shape memory alloys (SMAs) are widely used as actuators to construct various robotics systems, such as, minimally invasive surgery robots, micro in-pipe robots and biomimetic micro robots. However, the nonlinear hysteresis behaviors in SMA actuators seriously degrade the control accuracy and desired performances of SMA-actuated control systems. In this paper, an experimental platform based on SMA actuator is conducted. To make the platform capable of achieving precise control, the complex hysteresis characteristics of the SMA actuators are studied. The SMA actuator in this study exhibits complicated nonlinear properties with saturation nonlinearity and asymmetric hysteresis influenced by both the duty cycle of the input voltage and the load mass, which are different from the classical rate-dependent hysteresis behaviors. To explore the nonlinear properties of the SMA actuated system, open-loop experiments under different duty cycles and loads are testified, and a modified Rate-dependent Prandtl-Ishlinskii (RDPI) model is developed to enhance modeling abilities. Fitting effects of the modified RDPI model is validated by the comparison between the modeling output and experimental data.
机译:形状记忆合金(SMA)被广泛用作构造各种机器人系统的致动器,例如微创手术机器人,微型管道机器人和仿生微型机器人。但是,SMA执行器中的非线性磁滞行为严重降低了SMA驱动控制系统的控制精度和所需性能。本文进行了一个基于SMA执行器的实验平台。为了使平台能够实现精确控制,研究了SMA执行器的复杂磁滞特性。本研究中的SMA执行器具有复杂的非线性特性,其饱和非线性和不对称磁滞受输入电压和负载质量的占空比的影响,这与经典的速率相关磁滞行为不同。为了探索SMA驱动系统的非线性特性,对不同占空比和负载下的开环实验进行了验证,并开发了修正的速率相关Prandtl-Ishlinskii(RDPI)模型以增强建模能力。通过比较模型输出和实验数据,验证了修改后的RDPI模型的拟合效果。

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