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Corrosion of Nickel-Titanium, C110, and A16061 in Gallium-Based Liquid Metal Alloys

机译:镍钛,C110和A16061在镓基液态金属合金中的腐蚀

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Nickel-titanium is one of the most common shape memory alloys (SMAs). These alloys provide the highest actuation density of all active materials. SMA-based actuators are thermally induced and thus are limited in their actuation response frequency, specifically with regard to their slow speed of cooling. Polyalphaolefin and water have been investigated as fluids for active cooling mechanisms. However, a liquid metal may act as a more effective coolant due to its high thermal conductivity. To date, there has been no research on the liquid metal corrosion effects on nickel-titanium, which is crucial to understanding the viability of using liquid metal as an active coolant for SMA-based actuators. In this work, specimens of nickel-titanium alloys were placed in liquid metal-filled crucibles at 220 °C for 300 h. The responses of these specimens were compared to that of others composed of elemental Ni and Ti, as well as the common aerospace aluminum alloy A16061. For the purposes of understanding liquid metal electronics challenges, copper alloy C110 was also investigated. Liquid metals investigated included gallium and gallium-indium-tin eutectic. Specimens were characterized using scanning electron microscopy and energy-dispersive spectroscopy to investigate the surface effects, penetration of liquid metal, and reaction layer chemistry associated with prolonged exposure to the liquid metals.
机译:镍钛合金是最常见的形状记忆合金(SMA)之一。这些合金提供了所有活性材料中最高的致动密度。基于SMA的致动器是热感应的,因此其致动响应频率受到限制,特别是在冷却速度较慢方面。已经研究了聚α烯烃和水作为用于主动冷却机理的流体。但是,液态金属由于其高导热性而可以充当更有效的冷却剂。迄今为止,还没有关于液态金属对镍钛的腐蚀影响的研究,这对于理解使用液态金属作为SMA基执行器的活性冷却剂的可行性至关重要。在这项工作中,将镍钛合金样品在充满液态金属的坩埚中于220°C放置300 h。将这些样品的响应与其他元素镍和钛以及普通航空铝合金A16061的响应进行了比较。为了理解液态金属电子学的挑战,还对铜合金C110进行了研究。研究的液态金属包括镓和镓-铟-锡共晶。使用扫描电子显微镜和能量分散光谱对样品进行表征,以研究表面效应,液态金属的渗透以及与长时间暴露于液态金属相关的反应层化学性质。

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