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SMA-Based Muscle-Like Actuation in Biologically Inspired Robots: A State of the Art Review

机译:生物启发机器人中基于SMA的肌肉驱动:最新技术回顾

摘要

New actuation technology in functional or "smart" materials has opened new horizons in robotics actuation systems. Materials such as piezo-electric fiber composites, electro-active polymers and shape memory alloys (SMA) are being investigated as promising alternatives to standard servomotor technology [52]. This paper focuses on the use of SMAs for building muscle-like actuators. SMAs are extremely cheap, easily available commercially and have the advantage of working at low voltages.udThe use of SMA provides a very interesting alternative to the mechanisms used by conventional actuators. SMAs allow to drastically reduce the size, weight and complexity of robotic systems. In fact, their large force-weight ratio, large life cycles, negligible volume, sensing capability and noise-free operation make possible the use of this technology for building a new class of actuation devices. Nonetheless, high power consumption and low bandwidth limit this technology for certain kind of applications. This presents a challenge that must be addressed from both materials and control perspectives in order to overcome these drawbacks. Here, the latter is tackled. It has been demonstrated that suitable control strategies and proper mechanical arrangements can dramatically improve on SMA performance, mostly in terms of actuation speed and limit cycles.
机译:功能性或“智能”材料中的新致动技术为机器人致动系统开辟了新的视野。压电纤维复合材料,电活性聚合物和形状记忆合金(SMA)等材料正在被研究为标准伺服电机技术的有希望的替代品[52]。本文重点介绍了使用SMA来构建类似肌肉的执行器。 SMA非常便宜,可以轻松在市场上买到,并且具有在低电压下工作的优势。 udSMA的使用为传统执行器提供了一种非常有趣的机制。 SMA可以大大减少机器人系统的尺寸,重量和复杂性。实际上,它们的大的力重比,大的使用寿命,可忽略的体积,传感能力和无噪音的操作,使得使用该技术来构建新型的致动装置成为可能。但是,高功耗和低带宽限制了该技术用于某些类型的应用。为了克服这些缺点,这提出了必须从材料和控制两个角度来应对的挑战。在这里,解决后者。已经证明,适当的控制策略和适当的机械布置可以显着改善SMA性能,主要是在致动速度和极限循环方面。

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