Design of a soft and autonomous biomimetic micro-robotic fish

Eunjeong Lee
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引用次数: 5

Abstract

This paper discusses the design of a flexible micro robotic fish that takes advantage of the energy saving feature of fish. The body of the fish is made of soft material with embedded electromagnets. It has a flexure link made of polyimide. Carbon-fiber reinforced composite material sandwiches the flexible link at four locations, allowing the four rigid links to be connected by a flexure joint. Nd-Fe-B magnets and planar coils are secured to the top of the composite material. The entire structure, including Li-ion battery and electronics, is embedded within polydimethylsiloxane (PDMS) sheets. It is then cut into the shape of a fish. The propagating muscle activity pattern is achieved by activating the electromagnets that correspond to each muscle group. The fish has polyvinylidene-fluoride-trifluoroethylene (PVDF-TrFE) piezoelectric polymer sensors on its surface to measure the local flow pressure. When it senses vortices, the fish automatically turns off the actuator so that its body wave can be passively generated by interaction with the oncoming flow of water. The power generated for positive work can be stored as elastic energy and then used for negative work, thus saving energy. The system is driven at its natural frequency to minimize energy consumption. Future generations of this microbotic fish could be deployed for underwater oil exploration and environmental monitoring.
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软体自主仿生微型机器鱼的设计
本文讨论了一种利用鱼类节能特性的柔性微型机器鱼的设计。鱼的身体是由嵌入电磁铁的柔软材料制成的。它有一个由聚酰亚胺制成的柔性连接。碳纤维增强复合材料在四个位置夹心柔性连接,使四个刚性连接通过一个柔性接头连接。钕铁硼磁铁和平面线圈固定在复合材料的顶部。整个结构,包括锂离子电池和电子设备,都嵌入在聚二甲基硅氧烷(PDMS)薄片中。然后把它切成鱼的形状。传播的肌肉活动模式是通过激活对应于每个肌肉群的电磁铁来实现的。这种鱼的表面装有聚偏二氟乙烯-三氟乙烯(PVDF-TrFE)压电聚合物传感器,用于测量局部水流压力。当它感觉到漩涡时,鱼会自动关闭执行器,这样它的体波就可以通过与迎面而来的水流相互作用而被动地产生。正功产生的电能可以储存为弹性能,然后用于负功,从而节省能源。系统以其固有频率驱动,以尽量减少能源消耗。这种微生物鱼的后代可以用于水下石油勘探和环境监测。
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