Analyzing the kinematics and longitudinal aerodynamics of a four-wing bionic aircraft.

IF 3.1 3区 计算机科学 Q1 ENGINEERING, MULTIDISCIPLINARY
Lishuang Wang, Zhiwei Shi, Xi Geng, Shengxiang Tong, Zhen Chen
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引用次数: 0

Abstract

This paper designs a bionic aircraft model equipped with multiple degrees of freedom to study the inertial force equation and the aerodynamic interaction between its forewings and hindwings. Each wing's phase difference angle (PDA) and stroke plane angle (SPA) are independently adjustable. Employing the kinematic equation of a single wing, we establish a model for the inertial force of the four-wing aircraft, validating its accuracy through experimental comparisons. Furthermore, we analyze various combinations of PDA and SPA parameters for the fore- and hindwings to ascertain the most efficient aerodynamic motion modes. Our findings reveal that aerodynamic interference between the fore- and hindwings tends to be unfavorable, predominantly due to the hindwings being exposed to the wake generated by the forewings, hindering their lift-capturing ability. Nevertheless, a specific PDA = 270° (forewing ahead of hindwing 270°) helps mitigate this interference across a wider range of SPA. Interestingly, when the stroke plane aligns parallel to the horizontal direction, asynchronous flapping of the fore- and hindwings, forming a lift mechanism akin to clap-and-fling wings, positively impacts lift. Consequently, staggered flapping of the fore- and hindwings reduces fuselage jitter and alleviates aerodynamic interference through specialized PDA, resulting in a temporary lift enhancement. The purpose of this study is to provide theoretical support for the longitudinal attitude control of four-wing aircraft.

分析四翼仿生飞机的运动学和纵向空气动力学。
本文设计了一种配备多个自由度的仿生飞机模型,以研究其惯性力方程及其前翼和后翼之间的气动相互作用。每个机翼的相位差角(PDA)和冲程平面角(SPA)均可独立调节。利用单翼的运动学方程,我们建立了四翼飞机的惯性力模型,并通过实验对比验证了其准确性。此外,我们还分析了前翼和后翼的各种 PDA 和 SPA 参数组合,以确定最有效的气动运动模式。我们的研究结果表明,前翼和后翼之间的气动干扰往往是不利的,这主要是由于后翼暴露在前翼产生的尾流中,阻碍了它们的升力捕获能力。然而,特定的 PDA=270°(前翼在后翼前方 270°)有助于在更大的 SPA 范围内减轻这种干扰。有趣的是,当冲程平面平行于水平方向时,前翅和后翅的不同步拍打会形成一种类似于拍打翅膀的升力机制,对升力产生积极影响。因此,前后翼交错拍打可减少机身抖动,并通过专门的 PDA 缓解气动干扰,从而暂时增强升力。本研究的目的是为四翼飞机的纵向姿态控制提供理论支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Bioinspiration & Biomimetics
Bioinspiration & Biomimetics 工程技术-材料科学:生物材料
CiteScore
5.90
自引率
14.70%
发文量
132
审稿时长
3 months
期刊介绍: Bioinspiration & Biomimetics publishes research involving the study and distillation of principles and functions found in biological systems that have been developed through evolution, and application of this knowledge to produce novel and exciting basic technologies and new approaches to solving scientific problems. It provides a forum for interdisciplinary research which acts as a pipeline, facilitating the two-way flow of ideas and understanding between the extensive bodies of knowledge of the different disciplines. It has two principal aims: to draw on biology to enrich engineering and to draw from engineering to enrich biology. The journal aims to include input from across all intersecting areas of both fields. In biology, this would include work in all fields from physiology to ecology, with either zoological or botanical focus. In engineering, this would include both design and practical application of biomimetic or bioinspired devices and systems. Typical areas of interest include: Systems, designs and structure Communication and navigation Cooperative behaviour Self-organizing biological systems Self-healing and self-assembly Aerial locomotion and aerospace applications of biomimetics Biomorphic surface and subsurface systems Marine dynamics: swimming and underwater dynamics Applications of novel materials Biomechanics; including movement, locomotion, fluidics Cellular behaviour Sensors and senses Biomimetic or bioinformed approaches to geological exploration.
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