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Vehicle System Dynamics
International Journal of Vehicle Mechanics and Mobility
Volume 62, 2024 - Issue 2
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Articles

Thermodynamic models of the air spring on the high-speed pantograph

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Pages 463-489 | Received 27 Jun 2022, Accepted 03 Feb 2023, Published online: 03 Apr 2023

References

  • Eickhoff BM, Evans JR, Minnis AJ. A review of modelling methods for railway vehicle suspension components. Veh Syst Dyn. 1995;24(6-7):469–496.
  • Berg M. A model for rubber springs in the dynamic analysis of rail vehicles. Proc Inst Mech Eng Part F J Rail and Rapid Transit. 1997;211(2):95–108.
  • Berg M. A non-linear rubber spring model for rail vehicle dynamics analysis. Veh Syst Dyn. 1998;30(3-4):197–212.
  • Berg M. A three-dimensional airspring model with friction and orifice damping. Veh Syst Dyn. 1999;33(sup1):528–539.
  • Zhu H, Yang J, Zhang Y, et al. A novel air spring dynamic model with pneumatic thermodynamics,: effective friction and viscoelastic damping. J Sound Vib. 2017;408:87–104.
  • Chang F, Lu ZH. Dynamic model of an air spring and integration into a vehicle dynamics model. Proc Inst Mech Eng, Part D: J Automobile Eng. 2008;222(10):1813–1825.
  • Toyofuku K, Yamada C, Kagawa T, et al. Study on dynamic characteristic analysis of air spring with auxiliary chamber. JSAE Review. 1999;20:349–355.
  • Zheng YQ, Shangguan WB, Rakheja S. Modeling and analysis of time-domain nonlinear characteristics of air spring with an auxiliary chamber. Mech Syst Signal Process. 2022;176:1–26.
  • Kim KJ, Lee JH. Modeling of nonlinear complex stiffness of dual-chamber pneumatic spring for precision vibration isolations. J Sound Vib. 2007;301:909–926.
  • Yin Z, Guo K. A new pneumatic suspension system with independent stiffness and ride height tuning capabilities. Veh Syst Dyn. 2012;50(12):1735–1746.
  • Liu J, Zou N, Collina A, et al. An improved Air spring model for pantograph on the high-speed train. In: 27th Symposium of the International Association of Vehicle System Dynamics (IAVSD 2021), St.Peterburg; 2021. p. 370–385.
  • Bruni S, Vinolas J, Berg M, et al. Modelling of suspension components in a rail vehicle dynamics context. Veh Syst Dyn. 2011;49(7):1021–1072.
  • Facchinetti A, Mazzola L, Alfi S, et al. Mathematical modelling of the secondary airspring suspension in railway vehicles and its effect on safety and ride comfort. Veh Syst Dyn. 2010;48(Supp. 1):429–449.
  • Docquier N, Fisette P, Jeanmart H. Multiphysic modelling of railway vehicles equipped with pneumatic suspensions. Veh Syst Dyn. 2007;45(6):505–524.
  • Docquier N, Fisette P, Jeanmart H. Model-based evaluation of railway pneumatic suspensions. Veh Syst Dyn. 2008;46(sup1):481–493.
  • Melo FD, Pereira A, Morais A. The simulation of an automotive air spring suspension using a pseudo-dynamic procedure. Applied Sciences. 2018;8(7):1–20.
  • Quaglia G, Sorli M. Air suspension dimensionless analysis and design procedure. Veh Syst Dyn. 2001;35(6):443–475.
  • Sjoberg M. Rubber isolator-measurements and modelling using fractional derivatives and friction. SAE Trans. 2000;109(2):873–884.
  • Chen JJ, Yin ZH, Yuan XJ, et al. A refined stiffness model of rolling lobe air spring with structural parameters and the stiffness characteristics of rubber bellows. Measurement. 2021;169:1–14.
  • Wu MY, Yin H, Li XB, et al. A new dynamic stiffness model with hysteresis of air springs based on thermodynamics. J Sound Vib. 2022;521:1–16.
  • Ogata K. Modern control engineering. 5th ed. Upper Saddle River: Prentice Hall; 2009.
  • Bucca G, Carnevale M, Collina A, et al. An active control strategy for multiple pantograph collection. In: Proceedings of the 23rd International Symposium on Dynamics of Vehicles on Roads and Tracks (IAVSD2013). Qingdao; 2013. p. 1–10.
  • Afshari HH, Zanj A, Novinzadeh AB. Dynamic analysis of a nonlinear pressure regulator using bondgraph sumualtion technique. Simul Model Pract Theory. 2010;18:240–252.
  • Rami EG, Jean-Jacques B, Bruno D, et al. Modelling of a pressure regulator. Int J Pressure Vessels & Piping. 2007;84(4):234–243.
  • Alonso A, Giménez JG, Nieto J, et al. Air suspension characterisation and effectiveness of a variable area orifice. Veh Syst Dyn. 2010;48(Suppl. 1):271–286.
  • Manimaran A, Hiremath SS. Mathematical modeling of a pneumatic pressure regulator for aerospace application. Adv Mater Process Technol. 2017;4(4):1–22.
  • Lee HW, Kim SH, Huh H, et al. Finite element analysis of diaphragm-type Air springs with fiber-reinforced rubber composites. J Compos Mater. 2003;37(14):1261–1261.
  • Lee SJ. Development and analysis of an air spring model. Int J Automotive Technol. 2010;11(4):471–479.
  • Oman S, Nagode M, Fajdiga M. The material characterization of the air spring bellow sealing layer. Mater Des. 2009;30(4):1141–1150.
  • Ouyang Q, Shi Y. The non-linear mechanical properties of an airspring. Mech Syst Signal Process. 2003;17(3):705–711.

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