Rapid Prototyping of Microactuators by Integrating 3D Printed Polymeric Structures with NiTi Thin Film

C. Vélez, Sukjun Kim, M. Babaei, D. Patel, C. Knick, Gabriel L. Smith, S. Bergbreiter
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引用次数: 9

Abstract

This work demonstrates the first sputtered thin-film nickel-titanium (NiTi) shape-memory alloy (SMA) actuators combined with direct 3D printing of polymeric structures. Resulting actuators are fast to prototype, reliable and stable (up to 5000 cycles), and can utilize complex geometries challenging to achieve with conventional MEMS microfabrication. The actuator design uses 3D printed polymer as the passive layer in unimorph actuators, adding significant versatility to the actuator design. An actuator designed for high force-displacement was fabricated with a $15\ \ \mu \mathrm{m}$ thick polymer layer and characterized by applying currents up to 18 ma (7.3 mW, producing ∼156°C) resulting in a maximum displacement of $3.3\ \mu \mathrm{m}$ and ∼0.9 mN blocking force. Dynamic operation with falling/rising times of 20.1 ms/9.8 ms and 33.5 Hz maximum operation frequency was also demonstrated.
集成3D打印聚合物结构与NiTi薄膜的微致动器快速成型
这项工作展示了第一个与聚合物结构直接3D打印相结合的溅射薄膜镍钛(NiTi)形状记忆合金(SMA)致动器。由此产生的致动器具有快速原型,可靠和稳定(高达5000次循环),并且可以利用传统MEMS微加工难以实现的复杂几何形状。执行器设计使用3D打印聚合物作为单形执行器的被动层,为执行器设计增加了显著的多功能性。采用厚度为15\ \ \mu \ mathm {m}$的聚合物层制备了一种用于高力-位移的致动器,其特点是施加电流高达18 ma (7.3 mW,产生~ 156°C),最大位移为3.3\ \mu \ mathm {m}$,阻塞力为~ 0.9 mN。实验还证明了该系统的动态运行速度为20.1 ms/9.8 ms,最大工作频率为33.5 Hz。
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