Open Access
Issue |
JNWPU
Volume 40, Number 6, December 2022
|
|
---|---|---|
Page(s) | 1223 - 1232 | |
DOI | https://doi.org/10.1051/jnwpu/20224061223 | |
Published online | 10 February 2023 |
- YUAN Liqun, HUANG Liangping. The summarization of the development and application of near space super long endurance UAV in foreign country[J]. Tactical Missile Technology, 2018(2): 27 [Article] (in Chinese) [Google Scholar]
- QINETI Q. Solar aircraft achieves longest unmanned flight[J]. Reinforced Plastics, 2018, 54(5): 9 [Google Scholar]
- MA Dongli, ZHANG Liang, YANG Muqing, et al. Review of key technologies of ultra-long-endurance solar powered aerial vehicle[J]. Acta Aeronautica et Astronautica Sinica, 2020, 41(3): 623418 [Article] (in Chinese) [Google Scholar]
- RAJENDRAND P, SMITH H. Future trend analysis on the design and performance of solar-powered electric unmanned aerial vehicles[J]. Advanced Materials Research, 2015, 1125(20): 635–640 [CrossRef] [Google Scholar]
- LI Xiaoyang. China's green-pionner solar powered UAV[J]. International Aviation, 2012, 12: 38–39 [Article] (in Chinese) [Google Scholar]
- YUAN Xuan. China's first large solar unmanned aerial vehicle completed 20 000 meters high-altitude flight[J]. Aerospace China, 2017(7): 33 [Article] (in Chinese) [Google Scholar]
- SUN Jing, HU Lijuan. The rainbow lighting near space[J]. Fortune World, 2017(10): 58–59 (in Chinese) [Google Scholar]
- 搜狐网. 27.6小时!西工大"魅影"团队突破自我MY-12太阳能无人机再问鼎最长续航[EB/OL] (2019-07-29)[2019-09-20] [Article] [Google Scholar]
- NOLL T E, ISHMAEL S D, HENWOOD B, et al. Technical findings, lessons learned, and recommendations resulting from the helios prototype vehicle mishap[C]//NATO/RTO AVT-145 Workshop on Design Concepts, Processes and Criteria for UAV Structural Integrity, 2007 [Google Scholar]
- NOLL T E,BROWN J M, MARLA E, et al. Investigation of the Helios prototype aircraft mishap volume I mishap report[M]. California: CreateSpace Independent Publishing Platform, 2012 [Google Scholar]
- National Transportation Safety Board. Aviation Accident Database & Synopses[EB/OL]. (2016-12-16)[2022-02-10]. [Article] [Google Scholar]
- CHANG M, ZHOU Z, CHENG K. Exploring the characteristics of power density of tracking PV modules for high altitude stationary solar-powered airplanes[J]. Acta Aeronautica et Astronautica Sinica, 2013, 34(2): 273–281 [Google Scholar]
- CHANG M, ZHOU Z, AND WANG R. Primary parameters determination for year-round solar-powered aircraft of wing-sail type at higher latitudes[J]. Acta Aeronautica et Astronautica Sinica, 2014, 35(6): 1592–1603 [Google Scholar]
- FU Z C, ZHONG W G, CHEN Z P. Experimental study on structural dynamic characteristics of flexible high-aspectratio wings[J]. Acta Aeronautica et Astronautica Sinica, 2013, 34(9): 2177–2184 [Google Scholar]
- LI Feng, YE Chuan, LI Guangjia, et al. Lateral-directional stability of near-space solar-powered aircraft[J]. Acta Aeronautica et Astronautic Sinica, 2016, 37(4): 1148–1158 [Article] (in Chinese) [Google Scholar]
- YE Chuan, LI Feng, LI Guangjia, et al. Lateral-Directional stability of the near-space solarpowered aircraft[C]//AIAA SciTech Forum, 2016 [Google Scholar]
- ZHANG Wangwang, ZHANG Liguo, YANG Kang, et al. Analysis of the aerodynamic characteristics of different airfoil of solar powered UAVs[J]. Mechanical Manufacturing, 2019, 57(11): 40–42 [Article] (in Chinese) [Google Scholar]
- WU Tao, HUANG Yimin, SUN Chunzhen. Research on law of lateral control for solar UAV[C]//Proceedings of 2014 IEEE Chinese Guidance, Navigation and Control Conference, Yantai, 2014 (in Chinese) [Google Scholar]
- ZHAO Weina, SUN Chengxiao, ZHOU Pingfang, et al. Directional control allocation of a multi-propeller solar UAV[J]. Journal of Harbin Engineering University, 2015, 36(4): 469–472 [Article] (in Chinese) [Google Scholar]
- MA Zhenyu, ZHU Xiaoping, ZHOU Zhou. A lateral-directional control method combining rudder and propeller for full-wing solar-powered UAV[J]. Acta Aeronautica et Astronautic Sinica, 2018, 39(3): 4–6 [Article] (in Chinese) [Google Scholar]
- BRITT R T, ORTEGA D, TIGUE M J, et al. Wind tunnel test of a very flexible aircraft wing[C]//53rd AIAA/ASME/ASCE/AHS/ASC Structures, Structural Dynamics and Materials Conference, 2012 [Google Scholar]
- FANG Zhenping, CHEN Wanchun, ZHANG Shuguang. Aircraft flight dynamics[M]. Beijing: Beijing University of Aeronautics and Astronautics Press, 2005: 255–275 (in Chinese) [Google Scholar]
- KANELLAKOPOULOS I, KOKOTOVIC P V, MORSE A S. Systematic design of adaptive controllers for feedback linearizable systems[J]. IEEE Trans on Automatic Control, 1991, 36(11): 1241–1253 [CrossRef] [Google Scholar]
- KRSTIC M, KANELLAKOPOULOS I, KOKOTOVIC P V. Nonlinear and adaptive control design[M]. New York: John Wiley & Sons Inc, 1995 [Google Scholar]
- VAN Gils P, KAMPEN E, VISSER C, et al. Adaptive incremental backstepping flight control for a high-performance aircraft with uncertainties[C]//AIAA Guidance, Navigation, and Control Conference, 2016 [Google Scholar]
- ALI A, CHU Q P, KAMPEN E J, et al. Exploring adaptive incremental backstepping using immersion and invariance for an F-16 aircraft[C]//AIAA Guidance, Navigation, and Control Conference. 2014 [Google Scholar]
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