DOI QR코드

DOI QR Code

지르콘 입도 크기에 따른 디스크 공격성과 브레이크 져드 특성

Characteristics of Aggression and Brake Judder by Different ZrSiO4 Particle Size

  • Lee, GirHyoung (Test Team, Saeronautomotive Co.) ;
  • Kang, KukHyoun (Department of Engineering Chemistry, Chungbuk National University) ;
  • Lee, DongKyu (Department of Engineering Chemistry, Chungbuk National University)
  • 투고 : 2014.05.29
  • 심사 : 2014.07.22
  • 발행 : 2014.11.01

초록

Recently, according to the advances of vehicle manufacturing technology and the fuel-efficient vehicles, the weight of the vehicle body has been reduced and quietness of the vehicle has been increased. So that, as the emotional qualities of cars, such as NVH, are emphasized in recent years. Also required to be established of the effective measure for brake Judder. The Judder was caused by the increase in DTV by the uneven thermo metamorphosis of brake disc and the partial abrasion of disc. In this study, the disc aggression by friction materials was confirmed and the improving methods of friction materials in connection with the abrasive characteristics reviewed of $ZrSiO_4$ each particle size(under $3{\mu}m$, $5{\sim}10{\mu}m$ and over $15{\mu}m$). In addition, the study is institute make use of limit for $ZrSiO_4$ raw-material particle size and vol% in friction materials. At the result, the optimum size of $ZrSiO_4$ particles was confirmed about 5 to $10{\mu}m$.

키워드

참고문헌

  1. M. G. Jacko, "Physical & Chemical Changes of Organic of Disc Pads in Service," Wear, Vol.46, No.1, pp.163-175, 1978. https://doi.org/10.1016/0043-1648(78)90118-7
  2. M. J. Haigh, H. Smales and M. Abe, Vehicle Judder under Dynamic Braking Caused by Disc Thickness Variation, Institution of Mechanical Engineers, London, pp.247-258, 1993.
  3. J. A. Willians, Engineering Tribology, Oxford University Press, London, 1994.
  4. G. Sheng, Friction-induced Vibration and Sound-principles and Applications, CRC Press LLC, Taylor & Francis Group, Florida, 2008.
  5. K. W. Suh, "Field Correlation for the Wear Life of Brake Pad," KSAE Spring Conference Proceedings, pp.1002-1006, 2002.
  6. B. Bhushan, Modern Tribology Handbook, CRC Press LLC, Florida, Vol.1, 2000.
  7. J. Hong and S. Jayaraman, "Friction in Textiles," Textile Prog., Vol.34, No.12, pp.1-92, 2003.
  8. R. Cross, "Increase in Friction Force with Sliding Speed," Am. J. Phys., Vol.73, No.9, pp.812-816, 2005. https://doi.org/10.1119/1.1891174
  9. S. K. Wang and J. Woodhouse, "A Novel Measurement of Dynamic Friction," SAE 2008-01-2536, 2008.
  10. S. K. Wang, Characterization of High-frequency Dynamic Friction, Ph. D. Dissertation, Cambridge University, Cambridge, 2008.
  11. T. Okamura and M. Imasaki, "A Study on Relationship between Disc Thickness Variation and Casting Material Properties," SAE 2003-01-3347, 2003.
  12. S. K. Wang and J. Woodhouse, "The Frequency Response of Dynamic Friction: A New View of Sliding Interfaces," J. Mech. Phys. Solids, Vol.59, No.5, pp.1020-1036, 2011. https://doi.org/10.1016/j.jmps.2011.02.005
  13. J. H. Park, T. W. Park, J. H. Lee and M. H. Cho, "Hot Judder Simulation of a Ventilated Disc and Design of an Improved Disc Using Sensitivity Analysis," Int. J. Automotive Technology, Vol.15, No.1, pp.1-6, 2014. https://doi.org/10.1007/s12239-014-0001-2
  14. J. Woodhouse and S. K. Wang, "The Frequency Response of Dynamic Friction: Model Comparisons," J. Mech. Phys. Solids, Vol.59, No.11, pp.2294-2306, 2011. https://doi.org/10.1016/j.jmps.2011.08.006
  15. T. Yeo, "A Study on Wear Life Prediction of Disk Brake Pads," Transactions of KSAE, Vol.10, No.4, pp.199-205, 2002.
  16. K. S. Sim, "Vibration Path Analysis and Optimal Design of the Suspension for Break Judder Reduction," Int. J. Automotive Technology, Vol.14, No.4, pp.587-594, 2013. https://doi.org/10.1007/s12239-013-0063-6
  17. M. Unno, M. Inoue and Y. Hara, "Decrease of Friction Coefficient of Disc Pads during Low G Braking after Continuous High G Braking," SAE 2005-01-3938, 2005.
  18. D. K. Lee and S. C. Park, "Friction Stability of Materials with $ZrSiO_4$ Addition," Journal of KIIS, Vol.14, No.3, pp.110-119, 1999.
  19. G. H. Lee, Variation of Friction Cofficient & D.T.V. for Base Fibers in Automotive Friction Material, M. S. Thesis, Chungbuk National University, Chungbuk, Korea, 2001.