分布式压电复合材料作动器的蠕动泵送与推进

O. Bilgen, I. Bartol, P. Krueger
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引用次数: 3

摘要

本文研究了分布式独立压电复合材料作动器软结构蠕动泵送推进概念的可行性。蠕动推进的概念类似于各种自然和人工机制,如:(i)在鱿鱼中观察到的脉冲射流推进和推力矢量,(ii)多相线性电磁马达的工作原理。本文提出了一种由一系列主动软钹状节段与被动软连接节段相连接的推进系统。通道的活动部分有分布的压电复合材料致动器,这些嵌入的自包含装置使通道的活动部分能够像鱿鱼的肌肉流体静力地幔一样扩展和收缩。在通道的不同活动段上施加一系列膨胀和收缩的相位激励,产生沿通道轴线的行波,反过来“推动”流体向一个方向移动。具有矢量能力的管状孔径,类似于鱿鱼的旋转漏斗,也是可能的。本文通过理论分析和实验分析,论证了该概念的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Peristaltic Pumping and Propulsion With Distributed Piezocomposite Actuators
This paper investigates the feasibility of a soft-structure peristaltic pumping and propulsion concept with distributed self-contained piezocomposite actuators. The peristaltic propulsion concept is analogous to various natural and synthetic mechanisms such as: (i) pulsed jet propulsion and thrust vectoring observed in squids, and (ii) operation principle of multi-phase linear electromagnetic motors. This paper proposes a propulsion system involving a series of active soft cymbal-like segments that are connected with passive soft connective segments. The active sections of the channel have distributed piezocomposite actuators, and these embedded self-contained devices enable the active section of the channel to expand and contract much like the muscular hydrostatic mantle of squids. A series of phased excitations in expansion and contraction applied to different active segments of the channel create a traveling wave along the axis of the channel, which in return “propels” the fluid in one direction. A tubular aperture with vectoring capabilities, similar to the rotating funnel of squids, is also possible. The paper presents feasibility of the concept with theoretical and experimental analyses.
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