首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems;SMASIS2011 >CHARACTERIZATION AND MODELING OF OPPOSING SMA-WIRE SYSTEM FOR MULTIFUNCTIONAL, RES I STANCE-BASED CONTROLS APPLICATIONS
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CHARACTERIZATION AND MODELING OF OPPOSING SMA-WIRE SYSTEM FOR MULTIFUNCTIONAL, RES I STANCE-BASED CONTROLS APPLICATIONS

机译:多功能基于电阻的控制应用中与之相对的SMA线系统的特性和建模

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Shape Memory Alloy (SMA) actuator wires are often discussed in the context of multi-functional materials. This is because the temperature-induced phase transformation causes a significant (~4%) contraction and a corresponding change in resistance. When a restoring force such as a pre-stretched spring is placed in series with an SMA wire, the contraction creates a repeatable actuation force, and the resistance provides measurement of the strain the wire, or structural (spring) deflection. Work has already been presented to demonstrate the stress, strain, and resistance characteristics of a single SMA actuator wire in series with a spring flexure under different pre-stresses and heating power input frequencies. Also, a method has been presented to linearly approximate the resistance vs strain characteristic, thus providing a direct mapping from SMA wire resistance to flexure deflection. This mapping method has been tested in the context of a simple PID controller used to position a flexure in series with a single SMA. This paper expands previous work by characterizing a system consisting of a spring flexure in series with two opposing SMA wires. Such an opposing SMA configuration is relevant to embedded SMA applications and gives the potential to increase cycling frequency by providing an active restoring force. The characterization results show that coupling SMA wires introduces alters the resistance vs strain characteristics of both wires because the second SMA wire essentially becomes a nonlinear, hysteretic spring in series with the first. However, knowledge of the physics behind the complicated behavior enables sensible calibration schemes to be developed to accurately map resistance to strain for simultaneous sensing and actuating applications.
机译:形状记忆合金(SMA)执行器导线通常是在多功能材料的背景下进行讨论的。这是因为温度引起的相变会导致明显的(〜4%)收缩和相应的电阻变化。当将诸如预拉伸弹簧之类的恢复力与SMA线串联放置时,收缩会产生可重复的驱动力,而阻力可测量线的应变或结构(弹簧)变形。已经提出了工作,以证明在不同的预应力和热功率输入频率下与弹簧挠性串联的单根SMA执行器导线的应力,应变和电阻特性。而且,已经提出了一种线性近似地模拟电阻与应变特性的方法,从而提供了从SMA线电阻到挠曲挠度的直接映射。此映射方法已在用于将弯曲与单个SMA串联放置的简单PID控制器的环境中进行了测试。本文通过描述一种系统的特性扩展了以前的工作,该系统由与两个相对的SMA线串联的弹簧挠曲组成。这种相反的SMA配置与嵌入式SMA应用有关,并具有通过提供有效的恢复力来增加循环频率的潜力。表征结果表明,耦合SMA导线的引入改变了两条导线的电阻与应变特性,因为第二根SMA导线实质上变成了与第一根SMA串联的非线性滞后弹簧。然而,对复杂行为背后的物理知识的了解使人们能够开发出合理的校准方案,以准确地将抗力映射到应变,以便同时进行传感和驱动应用。

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