Influence of Stress on the Transition Behaviour of NiTi Shape Memory Alloys for Actuator Applications

P. Eyer, A. Trauth, K. Weidenmann
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Abstract

Shape memory alloys (SMA) stand out due to the ability that they can be deformed and then return to their initial shape by heating. This process results in a high actuation energy density. All SMA manufacturing methods, regardless of which matrix material is used, result in heat input into the SMA, which could induce a phase transformation and therefore disable the actuator function. In this regard, options to increase the transition temperatures of NiTi alloys above the processing temperatures are fundamental. In this study, the influence of the pre-tension on the transformation temperatures of SMA wires was investigated as a way to prevent phase transformation due to heat impact during the production of SMA-polymer-actuators. Applying a pre-tension of 400 MPa to the NiTi wire, the austenite start temperature could be increased by a factor of 1.9 whereas it could be increased by a factor of 2.2 with a pre-tension of 550 MPa. Therefore, after preloading the wires, a phase transformation should not be induced when the wire contacts the polymer droplets. However, the shift of the phase transformation has to be further investigated.
应力对致动器用NiTi形状记忆合金转变行为的影响
形状记忆合金(SMA)脱颖而出,因为它们可以变形,然后通过加热恢复到初始形状。这一过程导致高驱动能量密度。所有SMA制造方法,无论使用哪种基体材料,都会导致热量输入到SMA中,这可能导致相变,从而使致动器功能失效。在这方面,选择提高NiTi合金的转变温度高于加工温度是基本的。在本研究中,研究了预张力对SMA钢丝相变温度的影响,以防止SMA-聚合物致动器生产过程中因热冲击而发生相变。当预张力为400 MPa时,奥氏体的起始温度可提高1.9倍,而当预张力为550 MPa时,起始温度可提高2.2倍。因此,在预加载导线后,当导线接触聚合物液滴时不应引起相变。然而,相变的位移还有待进一步研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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