液滴对倾斜弯曲非压电基板传播兰姆波的冲击研究

IF 1.3 4区 工程技术 Q2 ENGINEERING, AEROSPACE
Zhaodong Yang, Zichen Wang, Zhijie Zhang, Yang Wang, Wei Liang
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引用次数: 0

摘要

在本文中,我们提出了一种利用沿倾斜曲面传播兰姆波的技术来降低雨天对相机性能的影响。实验结果表明,在远离液滴撞击点的位置产生的兰姆波可以抑制部分回弹过程中卫星液滴的形成。此外,建立了高保真的数值模拟模型,揭示了液体表面张力对部分回弹过程中卫星液滴的发生有显著影响。此外,通过施加兰姆波,液滴可以在曲面上以不同的速度推进。结合数值模拟,我们可以清楚地观察到液滴撞击基体后气液界面的变形。随后,我们系统地研究了液滴撞击高度、倾角和施加在兰姆波上的输入功率对液滴去除的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Investigation of the Droplet Impact Upon An Inclined Curved Non-Piezoelectric Substrate Propagating Lamb Waves

Investigation of the Droplet Impact Upon An Inclined Curved Non-Piezoelectric Substrate Propagating Lamb Waves

In this paper, using propagating Lamb waves along the inclined curved surfaces, we present a technique to reduce the impact of rainy days on-camera performance. Our experimental results show that Lamb waves, generated at a location distant from a point of droplet impact, can suppress the formation of satellite droplets during partial rebound. Additionally, a high-fidelity numerical simulation model was developed, revealing that the liquid’s surface tension significantly affects the occurrence of satellite droplets during partial rebound. Moreover, by applying Lamb waves, the droplet on the curved surface can be propelled at different speeds. Combining numerical simulations, we can clearly observe the deformation of the gas-liquid interface after the droplets impact the substrate. Afterward, we systematically investigated the effects of droplet impact height, inclination angle, and applied input power on the Lamb Waves on droplet removal.

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来源期刊
Microgravity Science and Technology
Microgravity Science and Technology 工程技术-工程:宇航
CiteScore
3.50
自引率
44.40%
发文量
96
期刊介绍: Microgravity Science and Technology – An International Journal for Microgravity and Space Exploration Related Research is a is a peer-reviewed scientific journal concerned with all topics, experimental as well as theoretical, related to research carried out under conditions of altered gravity. Microgravity Science and Technology publishes papers dealing with studies performed on and prepared for platforms that provide real microgravity conditions (such as drop towers, parabolic flights, sounding rockets, reentry capsules and orbiting platforms), and on ground-based facilities aiming to simulate microgravity conditions on earth (such as levitrons, clinostats, random positioning machines, bed rest facilities, and micro-scale or neutral buoyancy facilities) or providing artificial gravity conditions (such as centrifuges). Data from preparatory tests, hardware and instrumentation developments, lessons learnt as well as theoretical gravity-related considerations are welcome. Included science disciplines with gravity-related topics are: − materials science − fluid mechanics − process engineering − physics − chemistry − heat and mass transfer − gravitational biology − radiation biology − exobiology and astrobiology − human physiology
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