• DocumentCode
    1760205
  • Title

    A New Predictive Lateral Load Transfer Ratio for Rollover Prevention Systems

  • Author

    Larish, Chad ; Piyabongkarn, Damrongrit ; Tsourapas, Vasilios ; Rajamani, Rajesh

  • Author_Institution
    Innovation Center, Eaton Corp., Eden Prairie, MN, USA
  • Volume
    62
  • Issue
    7
  • fYear
    2013
  • fDate
    Sept. 2013
  • Firstpage
    2928
  • Lastpage
    2936
  • Abstract
    In rollover prevention systems, a real-time lateral load transfer ratio (LTR) is typically computed to predict the likelihood of a vehicle to rollover and, hence, initiate rollover prevention measures. A traditional LTR largely relies on a lateral accelerometer signal to calculate rollover propensity. A new predictive LTR (PLTR) is developed in this paper, which utilizes a driver´s steering input and several other sensor signals available from the vehicle´s electronic stability control system. The new PLTR index can provide a time-advanced measure of rollover propensity and, therefore, offers significant benefits for closed-loop rollover prevention. Simulation results are presented using the industry-standard software CarSim to demonstrate the benefits of the new PLTR index. Experimental results of open-loop comparisons between LTR and PLTR indexes are presented, followed by experimental results on the closed-loop implementation of a PLTR-based rollover prevention system. The results in this paper document how a predictive rollover index can be developed and the advantages of such a system in rollover prevention.
  • Keywords
    closed loop systems; prediction theory; stability; steering systems; vehicle dynamics; PLTR index; PLTR-based rollover prevention system; closed-loop implementation; closed-loop rollover prevention; driver steering; industry-standard software CarSim; lateral accelerometer signal; open-loop comparisons; predictive LTR; predictive lateral load transfer ratio; real-time lateral LTR; real-time lateral load transfer ratio; rollover prevention systems; rollover propensity; sensor signals; time-advanced measurement; vehicle electronic stability control system; Acceleration; Equations; Indexes; Mathematical model; Vehicle dynamics; Vehicles; Wheels; Active vehicle safety; rollover detection; rollover prevention; vehicle dynamics;
  • fLanguage
    English
  • Journal_Title
    Vehicular Technology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9545
  • Type

    jour

  • DOI
    10.1109/TVT.2013.2252930
  • Filename
    6480893