机器鱿鱼:基于磁流体力学的脉冲射流推进实验研究

Saba Firouznia, Ciqun Xu, Hemma Philamore, J. Rossiter
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摘要

随着人们对海洋和海洋技术兴趣的增加,越来越需要在更加复杂的情况下进行建造、维修和测量。目前,大多数水下机器人都有局限性,包括在狭窄的空间中操作、与异物纠缠、生态系统破坏和高噪音。为了克服这些问题,提出了一种基于磁流体力学的脉冲射流执行器。在这个系统中,没有活动部件;因此,机械噪音,纠缠和潜在的生态系统破坏显著减少。喷气发动机在海水中工作,并利用海水的电气和流体特性。对MHD脉冲喷气发动机进行了实验表征,通过优化队数实现了最大推力。采用粒子图像测速技术对脉冲流和连续流条件下产生的推力涡环进行了研究。我们成功开发了一种使用脉冲MHD射流的无系绳机器人,并演示了其在盐水中的有效运动。MHD脉冲射流非常适合用于环境监测和保护的下一代自主软机器人。
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Robo-Squid: Experimental investigation of pulsed jet propulsion based on magnetohydrodynamics
As the interest in oceanic and marine technologies increases, there is a growing need to perform construction, maintenance and surveying in ever more complicated situations. Currently, most underwater robots have limitations including manoeuvring in tight spaces, entanglement with foreign objects, ecosystem disruption, and high acoustic noise. A novel pulsatile jet actuator using magnetohydrodynamics (MHD) is proposed to overcome these problems. In this system, there are no moving parts; hence mechanical noise, entanglement and potential ecosystem disruption are reduced significantly. The jet engine operates in, and exploits, the electrical and fluidic properties of seawater. The MHD pulse jet engine was experimentally characterized and maximal thrust generation was achieved by enforcing the optimal formation number. The thrust vortex rings generated were studied using particle image velocimetry in both pulsed flow and continuous flow. We successfully developed an untethered robot using a pulsatile MHD jet and demonstrated its effective movement in salt water. The MHD pulse jet is ideally suited to the next generation of autonomous soft robots for environmental monitoring and protection.
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