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BIOMIMETIC MICROACTUATOR POWERED BY POLYMER SWELLING

机译:聚合物溶胀驱动的生物仿生致动器

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摘要

We propose novel biomimetic polymer microactuators. The actuation mechanism is inspired by nastic movement of the moving plant, Mimosa pudica, which folds its leaves upon external stimulus by regulating turgor pressure of cells in specific location. Photo-cured poly(ethylene glycol) diacrylate (PEGDA) microactuator is fabricated using projection micro-stereolithography (PμSL) capable of complex 3D micro fabrication. The swelling effect of PEG in water and organic solvent is exploited as an actuation mechanism of the device. Stress relaxation in the structure due to solvent absorption is controlled locally by delivering solvent through microfluidic channels embedded in the actuator, thereby generating a net movement in the device. Timescale of the motion derived from analytical swelling model suggests that actuation speed can be effectively increased by scaling down the actuator because the characteristic swelling time depends on the length as L~2, which is verified experimentally.
机译:我们提出了新型的仿生聚合物微致动器。致动机制是受动植物Mimosa pudica的鼻腔运动启发的,该动植物通过调节特定位置的细胞膨胀压力,使其叶片在外部刺激下折叠。使用能够进行复杂3D微制造的投影微立体光刻(PμSL)制造光固化的聚乙二醇二丙烯酸酯(PEGDA)微致动器。 PEG在水和有机溶剂中的溶胀作用被用作设备的驱动机制。通过吸收通过致动器中嵌入的微流体通道的溶剂来局部控制由于溶剂吸收而导致的结构中的应力松弛,从而在设备中产生净运动。从解析溶胀模型得出的运动的时间尺度表明,由于特征溶胀时间取决于长度L〜2,因此可以通过按比例缩小执行器比例来有效地提高驱动速度,这已通过实验验证。

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