利用ZnO纳米结构研究诱导涡对飞机机翼气动性能的影响

Q3 Earth and Planetary Sciences
Ahmad M. Malkawi, Rami J. Oweis
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引用次数: 0

摘要

需要革命性的技术来提高空气动力学效率,以实现大幅减少阻力和随之而来的燃料消耗。本文围绕开发氧化锌纳米结构来增加边界层附着力和延迟翼型失速展开。利用氧化锌纳米结构诱导涡旋,使气流重新充能,起到纳米流动控制装置的作用。本文的工作从利用COMSOL软件进行综合计算模拟的概念验证开始,以实验实验室测试结束。采用溶胶-凝胶法和浸渍涂层两步工艺在机翼表面生长纳米棒。最初的原型使用3D打印,随后的铝样品使用砂型铸造技术生产。涂层机翼试样进行了严格的风洞测试,以评估其在受控气流条件下的气动性能。这种彻底的方法有助于深入了解涂层机翼的行为,从而为进一步优化提供见解。结果显示,该系统可显著降低16%的失速,平均降低4%的阻力。这种开创性的方法不仅优化了飞机的空气动力学,而且降低了燃料成本和对环境的影响。此外,该研究的观察结果为未来的探索提供了途径,包括涂层参数的微调和探索ZnO纳米棒在航空航天工程中的各种应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Investigating the effects of induced vortices on airplane wing aerodynamic performance using ZnO nanostructure

Investigating the effects of induced vortices on airplane wing aerodynamic performance using ZnO nanostructure

The need for revolutionary techniques to augment aerodynamic efficiency is paramount for achieving substantial reductions in drag and consequent fuel consumption. This paper revolves around exploiting zinc oxide nanostructures to increase boundary layer adhesion and delay stall in airfoils. Zinc oxide nanostructures are employed to induce vortices, re-energize the airflow and function as nano flow control device. The work on this paper commenced with the proof of concept by means of comprehensive computational simulation utilizing COMSOL software and ended with experimental lab tests. A meticulous two-step process involving the sol–gel method and dip coating was employed to grow nanorods on the wing’s surface. Initial prototyping utilized 3D printing, and subsequent aluminum samples were produced using sand casting techniques. The coated wing specimen underwent rigorous wind tunnel testing to assess its aerodynamic performance under controlled airflow conditions. This thorough approach facilitated a profound understanding of the coated wing's behavior, enabling insights for further optimization. The results revealed a significant 16% delay in stall and an average 4% reduction in drag. This pioneering approach not only optimizes aircraft aerodynamics but also mitigates fuel costs and environmental impact. Moreover, the study's observations offer avenues for future exploration, including the fine-tuning of coating parameters and exploring diverse applications of ZnO nanorods in aerospace engineering.

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来源期刊
Aerospace Systems
Aerospace Systems Social Sciences-Social Sciences (miscellaneous)
CiteScore
1.80
自引率
0.00%
发文量
53
期刊介绍: Aerospace Systems provides an international, peer-reviewed forum which focuses on system-level research and development regarding aeronautics and astronautics. The journal emphasizes the unique role and increasing importance of informatics on aerospace. It fills a gap in current publishing coverage from outer space vehicles to atmospheric vehicles by highlighting interdisciplinary science, technology and engineering. Potential topics include, but are not limited to: Trans-space vehicle systems design and integration Air vehicle systems Space vehicle systems Near-space vehicle systems Aerospace robotics and unmanned system Communication, navigation and surveillance Aerodynamics and aircraft design Dynamics and control Aerospace propulsion Avionics system Opto-electronic system Air traffic management Earth observation Deep space exploration Bionic micro-aircraft/spacecraft Intelligent sensing and Information fusion
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