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首页> 外文期刊>Journal of Micromechanics and Microengineering >Transpiration actuation: the design, fabrication and characterization of biomimetic microactuators driven by the surface tension of water
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Transpiration actuation: the design, fabrication and characterization of biomimetic microactuators driven by the surface tension of water

机译:蒸腾驱动:由水的表面张力驱动的仿生微驱动器的设计,制造和表征

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摘要

We have designed, fabricated and characterized large displacement distributed-force polymer actuators driven only by the surface tension of water. The devices were inspired by the hygroscopic spore dispersal mechanism in fern sporangia. Microdevices were fabricated through a single mask process using a commercial photo-patternable silicone polymer to mimic the mechanical characteristics of plant cellulose. An analytical model for predicting the microactuator behavior was developed using the principle of virtual work, and a variety of designs were simulated and compared to the empirical data. Fabricated devices experienced tip deflections of more than 3.5 mm and angular rotations of more than 330. due to the surface tension of water. The devices generated forces per unit length of 5.75 mN m(-1) to 67.75 mN m(-1). We show initial results indicating that the transient water-driven deflections can be manipulated to generate devices that self-assemble into stable configurations. Our model shows that devices should scale well into the submicron regime. Lastly, the actuation mechanism presented may provide a robust method for embedding geometry-programmable and environment-scavenged force generation into common materials.
机译:我们已经设计,制造和表征了仅由水的表面张力驱动的大位移分布力聚合物执行机构。该设备的灵感来自于蕨类孢子囊中的吸湿性孢子散布机制。通过使用商业可光图案化的有机硅聚合物模拟植物纤维素的机械特性,通过单掩模工艺制造微器件。利用虚拟工作原理开发了一种预测微执行器行为的分析模型,并对各种设计进行了仿真,并与经验数据进行了比较。由于水的表面张力,制造的设备的尖端变形超过3.5毫米,角度旋转超过330毫米。该设备每单位长度产生的力为5.75 mN m(-1)至67.75 mN m(-1)。我们显示出初步结果,表明可以操纵瞬态水动力偏转来生成自组装成稳定配置的设备。我们的模型表明设备应该很好地扩展到亚微米范围。最后,提出的致动机构可以提供一种将几何可编程的和环境清除的力生成嵌入到普通材料中的可靠方法。

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