Maximum capture problem for urban air mobility network design

被引:0
|
作者
Kitthamkesorn, Songyot [1 ]
Chen, Anthony [2 ]
机构
[1] Chiang Mai Univ, Excellence Ctr Infrastruct Technol & Transportat E, Sch Engn, Dept Civil Engn, Chiang Mai 50200, Thailand
[2] Hong Kong Polytech Univ, Dept Civil & Environm Engn, Kowloon, Hong Kong, Peoples R China
关键词
UAM network; Random utility maximization; eUnit choice; Multiple-allocation incomplete p-hub location problem; STOCHASTIC USER EQUILIBRIUM; MODEL;
D O I
10.1016/j.tre.2024.103569
中图分类号
F [经济];
学科分类号
02 ;
摘要
Urban air mobility (UAM) technology has the potential to revolutionize daily commutes. By leveraging low-altitude airspace, electric vertical take-off and landing (eVTOL) vehicles can provide faster urban transportation between skyports than ordinary surface transport modes. This paper develops a multiple allocation incomplete p-hub location problem for determining the optimal UAM network design under the flying range constraint of eVTOL vehicles. The traditional methods used mathematical programming (MP) to analyse either 1) a deterministic allocation with a flight range limitation or 2) a stochastic allocation using a choice model without a range constraint. We combine the two methods by adopting a recently proposed eUnit choice model in a mixed integer linear programming (MILP) formulation to consider the interaction between travel choice behavior and travel cost incurred by skyport locations and their linkages in the random utility maximization framework. Three schemes of the multiple allocation incomplete p-hub location problem are provided, including revenue maximization, profit maximization, and profit maximization with pricing strategy. Numerical examples are provided to investigate the influence of flight range constraint and the eUnit bound on the solutions, which show significant influence on the UAM network topology and demand allocation.
引用
收藏
页数:27
相关论文
共 50 条
  • [1] The urban air mobility problem
    Golden, Bruce
    Oden, Eric
    Raghavan, S.
    [J]. ANNALS OF OPERATIONS RESEARCH, 2023,
  • [2] THE MAXIMUM CAPTURE PROBLEM IN A WEIGHTED NETWORK
    EISELT, HA
    LAPORTE, G
    [J]. JOURNAL OF REGIONAL SCIENCE, 1989, 29 (03) : 433 - 439
  • [3] Risk-aware urban air mobility network design with overflow redundancy
    Wei, Qinshuang
    Gao, Zhenyu
    Clarke, John-Paul
    Topcu, Ufuk
    [J]. TRANSPORTATION RESEARCH PART B-METHODOLOGICAL, 2024, 185
  • [4] Integrated Network Design and Demand Forecast for On-Demand Urban Air Mobility
    Wu, Zhiqiang
    Zhang, Yu
    [J]. ENGINEERING, 2021, 7 (04) : 473 - 487
  • [5] A Method for Air Route Network Planning of Urban Air Mobility
    Li, Jie
    Shen, Di
    Yu, Fuping
    Qi, Duo
    [J]. AEROSPACE, 2024, 11 (07)
  • [6] Design guidelines for safe urban air mobility
    Patrick, Mark
    [J]. Electronics World, 2024, 129 (2033): : 14 - 15
  • [7] Skyport location problem for urban air mobility system
    Shin, Hyelim
    Lee, Taesik
    Lee, Hyun-Rok
    [J]. COMPUTERS & OPERATIONS RESEARCH, 2022, 138
  • [8] A method for urban air mobility network design using hub location and subgraph isomorphism
    Willey, Landon C.
    Salmon, John L.
    [J]. TRANSPORTATION RESEARCH PART C-EMERGING TECHNOLOGIES, 2021, 125
  • [9] Urban air mobility: from complex tactical conflict resolution to network design and fairness insights
    Pelegrin, Mercedes
    D'Ambrosio, Claudia
    Delmas, Remi
    Hamadi, Youssef
    [J]. OPTIMIZATION METHODS & SOFTWARE, 2023, 38 (06): : 1311 - 1343
  • [10] Overall eVTOL aircraft design for urban air mobility
    Zhang, Jiechao
    Liu, Yaolong
    Zheng, Yao
    [J]. GREEN ENERGY AND INTELLIGENT TRANSPORTATION, 2024, 3 (02):