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仿生机械装置通过空化在水中产生等离子体。

Bioinspired mechanical device generates plasma in water via cavitation.

机构信息

Department of Mechanical Engineering, Texas A&M University, College Station, TX 77843, USA.

出版信息

Sci Adv. 2019 Mar 15;5(3):eaau7765. doi: 10.1126/sciadv.aau7765. eCollection 2019 Mar.

Abstract

Nature can generate plasma in liquids more efficiently than human-designed devices using electricity, acoustics, or light. In the animal world, snapping shrimp can induce cavitation that collapses to produce high pressures and temperatures, leading to efficient plasma formation with photon and shock wave emission via energy focusing. Here, we report a bioinspired mechanical device that mimics the plasma generation technique of the snapping shrimp. This device was manufactured using additive manufacturing based on micro-x-ray computed tomography of a snapping shrimp claw molt. A spring fixture was designed to reliably actuate the claw with appropriate force and velocity to produce a high-speed water jet that matches the cavitation number and Reynolds number of the shrimp. Light emission and shocks were imaged, which indicate that our device reproduces the shrimp's plasma generation technique and is more efficient than other plasma generation methods.

摘要

自然界产生等离子体的效率比人类设计的利用电、声或光的设备更高。在动物世界中, snapping 虾可以引发空化,空化崩溃会产生高压和高温,从而通过能量聚焦导致高效等离子体形成和光子及冲击波发射。在这里,我们报告了一种仿生机械装置,它模拟了 snapping 虾的等离子体产生技术。该装置是使用 snapping 虾爪蜕的微 X 射线计算机断层扫描的增材制造制造的。设计了一个弹簧夹具,以可靠地用适当的力和速度致动爪子,产生高速射流,使其符合虾的空化数和雷诺数。对发光和冲击波进行了成像,表明我们的装置再现了虾的等离子体产生技术,并且比其他等离子体产生方法更有效。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7b48/6420313/2f7f2e489dba/aau7765-F1.jpg

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