Mission Design and Validation of a Fixed-Wing Unmanned Aerial Vehicle for Environmental Monitoring

被引:1
|
作者
Rufino, Giancarlo [1 ]
Conte, Claudia [1 ]
Basso, Pasquale [1 ]
Tirri, Anna Elena [1 ]
Donato, Vincenzo [1 ]
机构
[1] Univ Naples Federico II, Ctr Serv Metrol & Tecnol Avanzati CeSMA, I-80146 Naples, Italy
关键词
environmental monitoring; UAV; hydrogen fuel cells; sensors integration; MBSE;
D O I
10.3390/drones8110641
中图分类号
TP7 [遥感技术];
学科分类号
081102 ; 0816 ; 081602 ; 083002 ; 1404 ;
摘要
Climate change is becoming a worldwide emergency. In order to prevent catastrophic levels of climate change, three broad categories of action are ongoing: cutting emissions, adapting to climate impacts, and financing required adjustments. Cutting emissions requires stopping the use of fossil fuels in favor of renewable energy sources. Adapting to climate change and financing required adjustments need instruments for the understanding of the source causes and how effective the potential measures are. In this context, the use of Unmanned Aerial Vehicles for environmental monitoring is continuously increasing thanks to their ability to collect a wide range of environmental data, from the quality of air to the health status of vegetation, waters, and lands. This paper describes the research activities that are being performed for the design and development of a 100 kg Max Take Off Mass prototype zero-emission Unmanned Aerial Vehicle, named Daphne, destined for environmental monitoring, surveillance, and inspection missions. The developed prototype will drive the next industrialization of the vehicle. A particular focus is given to the design of the power system, based on the use of Proton Exchange Membrane fuel cells fueled with green hydrogen, the integration of the sensors allowing for multipurpose observations and measurements, and the design and validation of the relative multi-purpose missions via an innovative approach based on Model-Based System Engineering.
引用
收藏
页数:26
相关论文
共 50 条
  • [21] Data Collection Task Planning of a Fixed-Wing Unmanned Aerial Vehicle in Forest Fire Monitoring
    Zhang, Hao
    Dou, Lihua
    Xin, Bin
    Chen, Jie
    Gan, Minggang
    Ding, Yulong
    IEEE ACCESS, 2021, 9 : 109847 - 109864
  • [22] Unmanned Aerial Vehicle Path Following A SURVEY AND ANALYSIS OF ALGORITHMS FOR FIXED-WING UNMANNED AERIAL VEHICLES
    Sujit, P. B.
    Saripalli, Srikanth
    Sousa, Joao Borges
    IEEE CONTROL SYSTEMS MAGAZINE, 2014, 34 (01): : 42 - 59
  • [23] Autonomous Mission Planning for Fixed-Wing Unmanned Aerial Vehicles in Multiscenario Reconnaissance
    Chen, Bei
    Yan, Jiaxin
    Zhou, Zebo
    Lai, Rui
    Lin, Jiejian
    SENSORS, 2025, 25 (04)
  • [24] Design of fractional PID controller in time-domain for a fixed-wing unmanned aerial vehicle
    Moreira, Ercilio Inacio
    Shiroma, Pedro Mitsuo
    2017 LATIN AMERICAN ROBOTICS SYMPOSIUM (LARS) AND 2017 BRAZILIAN SYMPOSIUM ON ROBOTICS (SBR), 2017,
  • [25] Design of new oil moving fixed-wing unmanned aerial vehicle for power line patrolling
    Huang, S. (wssl103050@163.com), 1600, Automation of Electric Power Systems Press (38):
  • [26] Quaternion-based Backstepping control of a Fixed-wing Unmanned Aerial Vehicle
    Oland, Espen
    Kristiansen, Raymond
    2013 IEEE AEROSPACE CONFERENCE, 2013,
  • [27] Modeling and Simulation of The UX-6 Fixed-Wing Unmanned Aerial Vehicle
    Tri Kuntoro Priyambodo
    Abdul Majid
    Journal of Control, Automation and Electrical Systems, 2021, 32 : 1344 - 1355
  • [28] Immersion and invariance control for Euler angles of a fixed-wing unmanned aerial vehicle
    Aslan, Firat
    Yalcin, Yaprak
    ASIAN JOURNAL OF CONTROL, 2022, 24 (04) : 1585 - 1596
  • [29] Determination of aerodynamic characterisitcs of fixed-wing unmanned aerial vehicle by analytical techniques
    Ismailov, Kuat K.
    VESTNIK TOMSKOGO GOSUDARSTVENNOGO UNIVERSITETA-MATEMATIKA I MEKHANIKA-TOMSK STATE UNIVERSITY JOURNAL OF MATHEMATICS AND MECHANICS, 2022, (78): : 112 - 124
  • [30] Modeling and Simulation of The UX-6 Fixed-Wing Unmanned Aerial Vehicle
    Priyambodo, Tri Kuntoro
    Majid, Abdul
    JOURNAL OF CONTROL AUTOMATION AND ELECTRICAL SYSTEMS, 2021, 32 (05) : 1344 - 1355