淡江大學機構典藏:Item 987654321/53767
English  |  正體中文  |  简体中文  |  Items with full text/Total items : 62805/95882 (66%)
Visitors : 3989731      Online Users : 694
RC Version 7.0 © Powered By DSPACE, MIT. Enhanced by NTU Library & TKU Library IR team.
Scope Tips:
  • please add "double quotation mark" for query phrases to get precise results
  • please goto advance search for comprehansive author search
  • Adv. Search
    HomeLoginUploadHelpAboutAdminister Goto mobile version
    Please use this identifier to cite or link to this item: https://tkuir.lib.tku.edu.tw/dspace/handle/987654321/53767


    Title: Optimal Level Turn of Solar-Powered Unmanned Aerial Vehicle Flying in Atmosphere
    Authors: Ma, Der-Ming;Shiau, Jaw-Kuen;Su, Yu-Ju;Chen, Ying-Hsien
    Contributors: 淡江大學航空太空工程學系
    Date: 2010-09
    Issue Date: 2013-03-20 16:31:19 (UTC+8)
    Publisher: Reston: American Institute of Aeronautics and Astronautics, Inc.
    Abstract: This paper studies the optimal level turn of a solar-powered unmanned aerial vehicle flying in the atmosphere. The objective is to maximize the heading changes in level turn. Since the solar-powered unmanned aerial vehicle will not expel fuel during theflight, its mass remains constant. The standard procedures offinding an optimal trajectory by incorporation of the necessary conditions for optimality and the constraint of the constant mass are applied. Analytical results are presented with detailed derivations of the optimal level turn properties and trajectories. A closed-form optimal bank-angle control law expressed in terms of the states of the unmanned aerial vehicle is obtained. A maximum power setting limit for an optimum level turn is also established. The study shows that the optimal level turn can be obtained only when the power is set below the power required for steady level flight at the initial speed; to have optimal level turn trajectories, the power must be kept below that limit, rather than increasing to make the turn. The relation between the normalized power required for a level turn and the normalized velocity, which is independent of the flying altitude, is constructed in a closed-form representation. Numerical examples using an in-house-designed solar-powered unmanned aerial vehicle are used to demonstrate the properties, controls, and trajectories of optimal level turns using the proposed method. The proposed optimal control is further investigated with the effects of wind and aerodynamic coefficient variations. The study shows that the head wind drags the trajectory and increases the turning angle, while the tail wind loosens the trajectory and decreases the turning angle. The study also shows that the heading change due to the aerodynamic coefficients variation is insignificant.
    Relation: Journal of Guidance, Control, and Dynamics 33(5), pp.1347-1356
    DOI: 10.2514/1.48761
    Appears in Collections:[Graduate Institute & Department of Aerospace Engineering] Journal Article

    Files in This Item:

    File Description SizeFormat
    0731-5090_33(5)p1347-1356.pdf620KbAdobe PDF2View/Open
    index.html0KbHTML298View/Open

    All items in 機構典藏 are protected by copyright, with all rights reserved.


    DSpace Software Copyright © 2002-2004  MIT &  Hewlett-Packard  /   Enhanced by   NTU Library & TKU Library IR teams. Copyright ©   - Feedback