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Strategies for Self-Repairing Shape Memory Alloy Actuators

机译:自修复形状记忆合金执行器的策略

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Shape memory alloys (SMAs) are thermally activated smart materials. Due to their ability to change into a previously imprinted actual shape by the means of thermal activation, they are suitable as actuators for microsystems and, within certain limitations, macroscopic systems. A commonly used shape memory actuator type is an alloy of nickel and titanium (NiTi), which starts to transform its inner phase from martensitic to austenitic structure at a certain austenite start temperature. Retransformation starts at martensitic start temperature after running a hysteresis cycle. Most SMA-systems use straight wire actuators because of their simple integration, the occurring cost reduction and the resulting miniaturization. Unfortunately, SMA-actuators are only seldom used by constructors and system developers. This is due to occurring functional fatigue effects which depend on boundary conditions like system loads, strains, and number of cycles. The actuating stroke does not reduce essentially during the first thousand cycles. Striking is the elongation of the wire while maintaining the stroke during cycling (walking). In order to create a system which adjusts and repairs itself, different concepts to solve this problem are presented. They vary from smart control methods to constructive solutions with calibration systems. The systems are analyzed due to their effective, life cycle, and system costs showing outstanding advantages in comparison to commonly used SMA actuators.
机译:形状记忆合金(SMA)是热活化的智能材料。由于它们通过热激活装置改为先前印迹实际形状,它们适合于微系统的致动器,并且在某些限制内,宏观系统。常用的形状记忆致动器类型是镍和钛(NITI)的合金,该合金在某种奥氏体开始温度下开始从马氏体到奥氏体结构的内部相。在运行滞后周期后,重新变形在马氏体开始温度开始。大多数SMA系统由于其简单的集成,发生的成本降低和由此产生的小型化而使用直线执行器。不幸的是,SMA-Contuators仅很少被构造函数和系统开发人员使用。这是由于发生的功能疲劳效应,这取决于系统负荷,菌株和循环数等边界条件。在一千个周期中,致动中风不会基本上减少。引人注目是导线的伸长率,同时在循环期间保持行程(行走)。为了创建一个调整和维修自己的系统,提出了解决这个问题的不同概念。它们因智能控制方法而异,在具有校准系统的建设性解决方案中。由于其有效,生命周期和系统成本而分析了系统,而是与常用的SMA执行器相比,具有出色的优势。

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