• DocumentCode
    133430
  • Title

    Modelling and validation of a regenerative shock absorber system

  • Author

    Ruichen Wang ; Zhi Chen ; Haijun Xu ; Schmidt, Karsten ; Fengshou Gu ; Ball, Andrew D.

  • Author_Institution
    Centre for Efficiency & Performance Eng., Univ. of Huddersfield, Huddersfield, UK
  • fYear
    2014
  • fDate
    12-13 Sept. 2014
  • Firstpage
    32
  • Lastpage
    37
  • Abstract
    For effective energy regeneration and vibration dampening, energy regenerative suspension systems have received more studies recently. This paper presents the dynamic modeling and a test system of a regenerative shock absorber system which converts vibration motion into rotary motion through the adjustment of hydraulic flow. Hydraulic circuit configuration achieves the one way flow and energy regeneration during both compression and extension strokes. The dynamic modeling is performed for the evaluation of design concept and the feasibility studies of regenerative shock absorber system theoretically. Based on simulated results, the efficiency of hydraulic transmission is optimized and validated in test system. The results show that the performance of hydraulic fluid, the features of rotary motion and the capability of energy regeneration are verified and compared between dynamic modeling and experiments. Meanwhile, the average power of 118.2W and 201.7W with the total energy conversion of 26.86% and 18.49% can be obtained based on experiments under sinusoidal inputs with 0.07854m/s and 0.1256m/s respectively.
  • Keywords
    damping; hydraulic fluids; hydraulic systems; shock absorbers; vibration control; compression strokes; dynamic modeling; energy regeneration; extension strokes; hydraulic circuit configuration; hydraulic flow; hydraulic fluid; hydraulic transmission efficiency; regenerative shock absorber system; total energy conversion; vibration dampening; vibration-to-rotary motion conversion; DC motors; Generators; Permanent magnet motors; Shafts; Shock absorbers; Valves; Voltage measurement; energy regeneration; hydraulic fluid; modeling; shock absorber;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Automation and Computing (ICAC), 2014 20th International Conference on
  • Conference_Location
    Cranfield
  • Type

    conf

  • DOI
    10.1109/IConAC.2014.6935456
  • Filename
    6935456