arXiv:2510.26837cs.ROphysics.flu-dyn2025-10被引 1

首次测量微型水下推进器的推力,揭示其流固耦合机制。

Force Characterization of Insect-Scale Aquatic Propulsion Based on Fluid-Structure Interaction

  • 基于流固耦合设计单尾与双尾微型推进器。
  • 单尾最大推力0.45 mN,平均2.97 μN;双尾达0.61 mN,平均22.6 μN。
  • 为微尺度水下机器人推进提供关键力学数据,适合仿生机器人研究者。

本文对两种新型昆虫尺度推进器——单尾与双尾结构——进行了力特性分析,适用于微米级水下机器人,其推进依赖于流固耦合(FSI)机制。设计灵感来自鳗鱼式游泳,由高功密度(HWD)驱动器驱动,采用形状记忆合金(SMA)线材。尽管这些推进器已证实可在二维空间实现可控运动,但其受力特性尚未系统研究。本研究采用基于反作用力理论的框架,利用自制微牛级分辨率力传感器获取实验数据。测试中,单尾推进器的最大推力和周期平均力分别为0.45 mN和2.97 μN(多次测试均值);双尾推进器分别为0.61 mN和22.6 μN。这是此类微型推进器首次获得瞬时推力实测数据,为高效微机器人推进中的流固耦合机理提供了重要参考。

原文摘要 · Abstract (English)

We present force characterizations of two newly developed insect-scale propulsors--one single-tailed and one double-tailed--for microrobotic swimmers that leverage fluid-structure interaction (FSI) to generate thrust. The designs of these two devices were inspired by anguilliform swimming and are driven by soft tails excited by high-work-density (HWD) actuators powered by shape-memory alloy (SMA) wires. While these propulsors have been demonstrated to be suitable for microrobotic aquatic locomotion and controllable with simple architectures for trajectory tracking in the two-dimensional (2D) space, the characteristics and magnitudes of the associated forces have not been studied systematically. In the research presented here, we adopted a theoretical framework based on the notion of reactive forces and obtained experimental data for characterization using a custom-built micro-N-resolution force sensor. We measured maximum and cycle-averaged force values with multi-test means of respectively 0.45 mN and 2.97 micro-N, for the tested single-tail propulsor. For the dual-tail propulsor, we measured maximum and cycle-averaged force values with multi-test means of 0.61 mN and 22.6 micro-N, respectively. These results represent the first measurements of the instantaneous thrust generated by insect-scale propulsors of this type and provide insights into FSI for efficient microrobotic propulsion.

微机器人流固耦合推进力仿生设计

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