Time- and Energy-Saving Potentials of Efficient Urban Air Mobility Airspace Structures

被引:0
|
作者
Preis, Lukas [1 ]
Husemann, Michael [2 ]
Shamiyeh, Michael [3 ]
机构
[1] Tech Univ Munich, Sch Engn & Design, Arcisstr 21, Munich, Germany
[2] Rhein Westfal TH Aachen, Inst Aerosp Syst, Wuellnerstr 7, D-52062 Aachen, Germany
[3] Bauhaus Luftfahrt e V, Willy Messerschmidt Str 1, D-82024 Taufkirchen, Germany
关键词
Energy Consumption; Advanced Air Mobility; Electric Vertical Take-off and Landing; Multicopter; Tiltrotor Aircraft; Mission Planning and Design; Flight Time Limitations; Sensitivity Analysis;
D O I
10.2514/1.J062390
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Novel electric propulsion technology has given rise to thinking about urban air mobility in a new way with its expected high degree of operational flexibility. The designs of electric vertical takeoff and landing configurations are determined by their mission profile, which we found to be oversimplified at many points in the current scientific literature. There is a gap of understanding in how mission profiles impact travel time and energy demand. In this paper, we review various mission designs, formulate a five-segment flight profile (including vertical ascent, climb, cruise, descent, and vertical approach), and apply it on a fleet level of up to 200,000 urban air mobility trips. The demand data originate from the Upper Bavaria region study, OBUAM. In a sensitivity study, we vary the cruise altitude, the height of the vertical flight segments, and the climb and descent angles for two vehicle configurations: a fixed-wing tilt-rotor concept, and a multicopter concept. The main findings for the fixed-wing concept are that the height of the vertical flight segments and the cruise altitude should be as low as possible, and small climb angles (below 7 deg) should be avoided. The multicopter concept, however, is penalized by fast forward flight while being comparatively insensitive to both the cruise altitude and height of the vertical flight segments. Furthermore, we found a tradeoff between time- and energy-optimal flights with the a energy-optimized climb/descent angle at around 10 deg.
引用
收藏
页码:5571 / 5583
页数:13
相关论文
共 50 条
  • [21] Energy-saving air compressors with variable speed control
    Kameya, H
    Hase, M
    Matsuda, H
    Aoki, M
    INTERNATIONAL CONFERENCE ON COMPRESSORS AND THEIR SYSTEMS, 1999, 1999 (06): : 567 - 574
  • [22] ENERGY-SAVING MAKE-UP AIR SYSTEMS
    HALL, J
    PLATING AND SURFACE FINISHING, 1989, 76 (07): : 16 - 16
  • [23] Energy-saving and optimisation of investments in air-conditioning
    Barta, J
    TELESCON 97, BUDAPEST - THE SECOND INTERNATIONAL TELECOMMUNICATIONS ENERGY SPECIAL CONFERENCE, 1997, : 373 - 377
  • [24] ECONOMICAL PRODUCTION OF MOULDINGS IN MOULDING MATERIALS OF DIFFERENT PROCESSABILITY WITH THE AID OF TIME- AND ENERGY-SAVING SINTER TECHNOLOGIES.
    Reichstein, H.
    Kunststoffe - German Plastics, 1984, 74 (01): : 15 - 17
  • [25] Identification and prediction of urban airspace availability for emerging air mobility operations
    Murca, Mayara Conde Rocha
    TRANSPORTATION RESEARCH PART C-EMERGING TECHNOLOGIES, 2021, 131
  • [26] IMPACT OF AIRSPACE RESTRICTIONS ON URBAN AIR MOBILITY COMMUTER DEMAND POTENTIAL
    Rimjha, Mihir
    Hotle, Susan
    Trani, Antonio
    Hinze, Nicholas
    2022 INTEGRATED COMMUNICATION, NAVIGATION AND SURVEILLANCE CONFERENCE (ICNS), 2022,
  • [27] A Simulation Study of Urban Air Mobility Concept in Layered Airspace Environment
    Wang, Maolin
    Fu, Shenghao
    Lv, Renli
    Yu, Nan
    PROCEEDINGS OF THE 2021 ASIA-PACIFIC INTERNATIONAL SYMPOSIUM ON AEROSPACE TECHNOLOGY (APISAT 2021), VOL 2, 2023, 913 : 973 - 987
  • [28] Urban Mobility in Smart Cities Using Low-Cost and Energy-Saving Wireless Sensor Networks
    Kabrane, M.
    Elmaimouni, L.
    Krit, S.
    Laassiri, J.
    2016 INTERNATIONAL CONFERENCE ON ENGINEERING & MIS (ICEMIS), 2016,
  • [29] Conceptual Framework for Dynamic Optimal Airspace Configuration for Urban Air Mobility
    Hearn T.A.
    Herniczek M.T.K.
    German B.J.
    Journal of Air Transportation, 2023, 31 (02): : 68 - 82
  • [30] Performance Evaluation of Mobility-Based Energy-Saving to Control Air-conditioning and Lighting Equipments
    Hiromori, Akihito
    Kanaya, Takumi
    Yamaguchi, Hirozumi
    Higashino, Teruo
    Yamaguchi, Yohei
    Murai, Ayaka
    Shimoda, Yoshiyuki
    2012 SUSTAINABLE INTERNET AND ICT FOR SUSTAINABILITY (SUSTAINIT), 2012,