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Viscous-Inviscid Methods in Unsteady Aerodynamic Analysis of Bio-Inspired Morphing Wings.

机译:生物启发变形翼的非定常空气动力学分析中的粘性粘稠方法。

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摘要

Flight has been one of the greatest realizations of human imagination, revolutionizing communication and transportation over the years. This has greatly influenced the growth of technology itself, enabling researchers to communicate and share their ideas more effectively, extending the human potential to create more sophisticated systems. While the end product of a sophisticated technology makes our lives easier, its development process presents an array of challenges in itself. In last decade, scientists and engineers have turned towards bio-inspiration to design more efficient and robust aerodynamic systems to enhance the ability of Unmanned Aerial Vehicles (UAVs) to be operated in cluttered environments, where tight maneuverability and controllability are necessary. Effective use of UAVs in domestic airspace will mark the beginning of a new age in communication and transportation.;The design of such complex systems necessitates the need for faster and more effective tools to perform preliminary investigations in design, thereby streamlining the design process. This thesis explores the implementation of numerical panel methods for aerodynamic analysis of bio-inspired morphing wings. Numerical panel methods have been one of the earliest forms of computational methods for aerodynamic analysis to be developed. Although the early editions of this method performed only inviscid analysis, the algorithm has matured over the years as a result of contributions made by prominent aerodynamicists. The method discussed in this thesis is influenced by recent advancements in panel methods and incorporates both viscous and inviscid analysis of multi-flap wings. The surface calculation of aerodynamic coefficients makes this method less computationally expensive than traditional Computational Fluid Dynamics (CFD) solvers available, and thus is effective when both speed and accuracy are desired. The morphing wing design, which consists of sequential feather-like flaps installed over the upper and lower surfaces of a standard airfoil, proves to be an effective alternative to standard control surfaces by increasing the flight capability of bird-scale UAVs. The results obtained for this wing design under various flight and flap configurations provide insight into its aerodynamic behavior, which enhance the maneuverability and controllability. The overall method acts as an important tool to create an aerodynamic database to develop a distributed control system for autonomous operation of the multi-flap morphing wing, supporting the use of viscous-inviscid methods as a tool in rapid aerodynamic analysis.
机译:飞行一直是人类想象力的最大实现之一,多年来改变了通讯和运输方式。这极大地影响了技术本身的发展,使研究人员可以更有效地交流和分享他们的想法,从而扩大了人类创造更复杂系统的潜力。虽然先进技术的最终产品使我们的生活更轻松,但其开发过程本身却带来了一系列挑战。在过去的十年中,科学家和工程师已转向生物灵感,以设计更高效,更强大的空气动力学系统,以增强无人飞行器(UAV)在需要严格的可操纵性和可控性的混乱环境中运行的能力。在国内领空有效使用无人机将标志着通信和运输新时代的开始。此类复杂系统的设计需要使用更快,更有效的工具来进行设计方面的初步研究,从而简化设计过程。本文探讨了数值面板方法在生物启发变型机翼气动分析中的应用。数字面板方法已经成为要开发的空气动力学分析计算方法的最早形式之一。尽管此方法的早期版本仅进行无形分析,但由于杰出的空气动力学专家的贡献,该算法多年来已经成熟。本文所讨论的方法受到面板方法的最新发展的影响,并结合了多瓣翼的粘性和无粘性分析。空气动力学系数的表面计算使该方法比可用的传统计算流体动力学(CFD)求解器在计算上更便宜,因此在需要速度和精度时都非常有效。变形机翼设计由安装在标准机翼上下表面上的连续羽毛状襟翼组成,通过提高鸟状无人机的飞行能力,事实证明它是对标准控制面的有效替代方案。在不同的飞行和襟翼构型下,该机翼设计获得的结果提供了对其空气动力学行为的洞察力,从而增强了可操纵性和可控性。总体方法是创建空气动力学数据库的重要工具,以开发用于多翼变身机翼自主运行的分布式控制系统,从而支持使用粘性无粘性方法作为快速空气动力学分析的工具。

著录项

  • 作者

    Dhruv, Akash V.;

  • 作者单位

    The George Washington University.;

  • 授予单位 The George Washington University.;
  • 学科 Aerospace engineering.;Mechanical engineering.
  • 学位 M.S.
  • 年度 2015
  • 页码 79 p.
  • 总页数 79
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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