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Friction Model for Real-Time Simulation of Powertrain Dynamics

Journal Article
10-02-01-0003
ISSN: 2380-2162, e-ISSN: 2380-2170
Published May 22, 2018 by SAE International in United States
Friction Model for Real-Time Simulation of Powertrain Dynamics
Sector:
Citation: Guan, H., Song, H., Xu, L., and Lu, P., "Friction Model for Real-Time Simulation of Powertrain Dynamics," SAE Int. J. Veh. Dyn., Stab., and NVH 2(1):41-54, 2018, https://doi.org/10.4271/10-02-01-0003.
Language: English

References

  1. Karnopp , D. Computer Simulation of Stick-Slip Friction in Mechanical Dynamic Systems Transactions of ASME: Journal of Dynamic Systems. Measurement, and Control 107 1 100 103 1985 10.1115/1.3140698
  2. Stribeck , R. , Die WesentlichenEigenshaften der Gleit- und Rollenlager Zeitschrift des Vereines Deutscher Ingenieure 45 36 1341 1348 1902
  3. Dahl , P. Measurement of Solid Friction Parameters of Ball Bearings Sixth Annual Symposium on Incremental Motion, Control System and Devices Chicago, IL 1977
  4. Canudas , W.C. , Olsson , H. , Åström , K.J. , and Lischinsky , P. A New Model for Control of Systems with Friction IEEE Transactions on Automatic Control 40 3 419 425 1995
  5. Ryo , K. , Naoyuki , T. , Akihito , S. et al. Fixed-Step Friction Simulation: From Classical Coulomb Model to Modern Continuous Models IEEE/RSJ International Conference on Intelligent Robots and Systems Edmonton 2005
  6. Quinn , D. A New Regularization of Coulomb Friction Journal of Vibration and Acoustics 126 3 391 397 2004 10.1115/1.1760564
  7. Oden , J. and Martins , J.A.C. Models and Computation Methods for Dynamic Friction Phenomena Comput Methods Appl. 52 527 634 1985 10.1016/0045-7825(85)90009-X
  8. Bonsignore , A. , Ferretti , G. , and Magnani , G. Analytical Formulation of the Classical Friction Model for Motion Analysis and Simulation Mathematical and Computer Modelling of Dynamical Systems 5 1 43 54 1999 10.1076/mcmd.5.1.43.3624
  9. Sören , A. , Anders , S. , and Stefan , B. Friction Models for Sliding Dry, Boundary and Mixed Lubricated Contacts Tribology International 40 580 587 2007 10.1016/j.triboint.2005.11.014
  10. Åström , K.J. and Canudas , W.C. Revisiting the LuGre Model: Stick-Slip Motion and Rate Dependence IEEE Control Systems Magazine 28 6 101 114 2008 10.1109/MCS.2008.929425
  11. Dahl , P.R. 1968 https://ci.nii.ac.jp/naid/20000462633/en/
  12. Băţăuş , M. , Maciac , A.N. , Oprean , I.M. et al. Automotive Clutch Models for Real Time Simulation Proceedings of the Romanian Academy, Series A: Mathematics, Physics, Technical Sciences, Information Science 12 2 109 116 2011
  13. Marius , V.B. and Nicolae , V. Modeling of a Dual Clutch Transmission for Real-Time Simulation U.P.B. Sci. Bull. Series D 74 2 251 264 2012
  14. Dejun , Y. , Baizhong , L. , Xueli , G. et al. A Real Time Dynamics Simulation Model for Vehicle Powertrain Automotive Engineering 28 5 430 432 2006 10.19562/j.chinasae.qcgc.2006.05.005
  15. Georg , R. Road Vehicle Dynamics Fundamentals and Modeling Boca Raton Taylor & Francis Group, LLC 2012 122 9781439838983
  16. 2009
  17. Gurm , J.S. , Chen , W.J. , Keyvanmanesh , A. , and Abe , T Transient Clunk Response of a Driveline System: Laboratory Experiment and Analytical Studies SAE Technical Paper 2007-01-2233 2007 10.4271/2007-01-2233
  18. Liang , X. , Di , W. , Rui , G. et al. Development of a Powertrain Real-Time Model Based on the Assembly Characteristic Advanced Materials Research 988 559 563 2014 10.4028/www.scientific.net/AMR.988.559

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