双层聚合物致动器的热启动运动

A.N. Fedoryak , T.P. Doroshenko , O.G. Golenkov , M. Kratzer , M. Huszar , K. Plevova , L. Haiden , C. Teichert , O.P. Dimitriev
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摘要

开发基于可再生或生物兼容材料的智能致动器,使其能够输送特定货物,这在机器人、医疗和材料科学工程、食品工业等领域具有重要意义。在这里,我们报告了一种双层聚合物致动器的原创设计,它由两种聚合物材料组成,中间有一层界面粘合层,能够在特殊的棘轮基板上通过重复弯曲和拉直实现一步一步的宏观运动。这是由白炽灯辐射开关引起的热交替触发的,致动器对热暴露的快速反应时间约为几秒钟。具体来说,由于推杆的可逆弯曲变形幅度较大,以推杆的仰角与长度之比来衡量,可达到 ∼ 40%,因此推杆可以相对快速地移动。因此,一个典型的致动器的运动速度约为 3 厘米/分钟,每个收缩/膨胀周期产生的行走步幅为 1 厘米,持续时间约为 20 秒。根据光学显微镜和原子力-红外光谱数据得出的结论是,粘合剂界面层在致动器的稳定运行中起着重要作用,因为它能延缓后聚合物层的线性膨胀,从而帮助将相邻层的不同线性膨胀转化为有效弯曲。
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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Thermally-activated locomotion of a bilayer polymer actuator

The development of smart actuators based on renewable or biocompatible materials, which are able for delivery of specific cargo is of great importance in robotics, medical and material science engineering, food industry, etc. Here, we report the original design of a bilayer polymer actuator consisting of two polymer materials with an interface adhesive layer between them, able for macroscopic locomotion step by step on a special ratchet substrate through repetitive bending and straightening. This was triggered by heat alternation due to incandescent lamp radiation on/off switching, with a rapid reaction time of the actuator to heat exposure of the order of few seconds. Specifically, a relatively fast locomotion of the actuator was achieved due to the large amplitude of its reversible bending deformation of up to ∼40% measured in terms of the actuator's elevation-to-length ratio. As a result, a typical actuator demonstrated the locomotion velocity of about 3 cm/min, where each cycle of contraction/expansion yielded a walking step of ∼1 cm for about 20 s. It was demonstrated that the actuator, while moving, is able to carry a cargo almost twice heavier than the mass of the carrier itself. Based on optical microscopy and atomic force - infrared spectroscopy data it was concluded that the adhesive interface layer plays an important role in the stable operation of the actuator as it retards linear expansion of the rear polymer layer and thus assists conversion of different linear expansion of the adjacent layers into their effective bending.

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