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Rise time based characterization of sub-millimeter SMA helical actuator for sensorless displacement estimation

机译:用于无传感器位移估计的亚毫米SMA螺旋执行器的基于上升时间的表征

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摘要

Bio mimicking micro/miniature robots require design aesthetics, simplicity, low power, lower computational requirement, resilient operation and repeatability. The main choice of actuators in such systems are Shape Memory Alloys (SMA). The larger strain and reduced size of the SMA sub millimeter diameter helical springs make them a potential choice in such systems. Sensorless position/ displacement control of these type of SMA spring actuators have been studied extensively due to the difficulty in physically attaching feedback sensors, which are larger than SMA actuators. For position estimation, electrical parameters like Inductance and Resistance were considered in the past. This paper presents a new approach based on the pulse response i.e. Rise time variation along the actuation of SMA spring. Considering SMA spring as an RL element, a characterization technique is proposed for sensorless position estimation based on rise time variation. The proposed method is independent of ambient temperature variations. Investigations have shown that rise time based position control through PWM based current drives can be implemented for manipulating displacement without a sensor.
机译:模拟微型/微型机器人的生物要求设计美观,简单,低功耗,较低的计算需求,弹性操作和可重复性。在此类系统中,执行器的主要选择是形状记忆合金(SMA)。 SMA亚毫米直径螺旋弹簧的较大应变和较小尺寸使其成为此类系统中的潜在选择。由于难于物理地安装比SMA致动器大的反馈传感器,因此对这类SMA弹簧致动器的无传感器位置/位移控制进行了广泛的研究。对于位置估计,过去曾考虑过电参数,例如电感和电阻。本文提出了一种基于脉冲响应的新方法,即沿SMA弹簧致动的上升时间变化。以SMA弹簧为RL元件,提出了一种基于上升时间变化的无传感器位置估计的表征技术。所提出的方法与环境温度变化无关。研究表明,通过基于PWM的电流驱动器的基于上升时间的位置控制,可以在没有传感器的情况下实现位移控制。

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