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A compact and stiffer shape memory alloy actuator for surgical instruments

机译:用于外科手术器械的紧凑型和更纤巧的形状记忆合金执行器

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Advances in minimally invasive surgery enable the integration of new micro-systems with a micro actuator, as well as self-sensing ability, in surgical instruments. High energy density, self-sensing ability, and shape flexibility make shape memory alloy (SMA) actuators widely suited for volume-compact required applications. This paper presents a two-degrees-of-freedom instrument driven by SMA triple wires having 8 mm diameter and a rotation range near to ±60°. The actuator drive was constructed by antagonistic SMA triple wires and close-loop controlled by self-sensing. Experiments showed that the hysteresis gap between the phase transformation paths of the strain-resistance curve can be minimized under a fitted interstress. The curves of all the wires were then modeled by fitting polynomials, the collected resistance was converted to strain value and used to determine the control signal, and a feedforward compensator was built as the hysteresis compensation to resist overheating. The control accuracy was verified based on the multistep responding tests, and the results were shown in 3-D space. Under the self-sensing hybrid control scheme, the experimental results showed that the root-mean-square error of the rotation angle around the X and Y axes was about 4.2% and 3.5%, respectively.
机译:微创手术的进展使得新型微型系统能够与微型执行器的整合,以及手术器械中的自我传感能力。高能量密度,自感能力和形状柔韧性使形状记忆合金(SMA)致动器广泛适用于体积紧凑的所需应用。本文介绍了由直径为8毫米的SMA三线线和距±60°附近的旋转范围驱动的两种自由度仪器。致动器驱动器由拮抗SMA三丝和通过自感应控制的闭环构成。实验表明,在拟合恰旧下,可以最小化应变曲线的相变路之间的滞后间隙。然后通过拟合多项式建模所有导线的曲线,将收集的电阻转换为应变值并用于确定控制信号,并建立了向前的补偿器作为滞后补偿以抵抗过热。基于多步响应测试验证了控制精度,结果显示在3-D空间中。在自感应混合控制方案下,实验结果表明,X和Y轴周围的旋转角的根平均方误差分别为约4.2%和3.5%。

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