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An Efficient Transmissibility-design Technique for Pneumatic Vibration Isolator

지반진동절연을 위한 공압제진대의 전달률 설계기법

  • 이정훈 (한국과학기술원 기계공학과) ;
  • 김광준 (한국과학기술원 기계공학과)
  • Published : 2008.04.20

Abstract

Pneumatic vibration isolator has a wide application for ground-vibration isolation of vibration-sensitive equipments. Recent advances In precision machine tools and instruments such as nano-technology or medical devices require a better isolation performance, which can be efficiently done by precise modeling- and design- of the isolation system. This paper will discuss an efficient transmissibility design method for pneumatic vibration isolator by employing the complex stiffness model of dual-chamber pneumatic spring developed in our previous research. Three design parameters of volume ratio between the two pneumatic chambers, the geometry of capillary tube connecting the two pneumatic chambers and finally the stiffness of diaphragm necessarily employed for prevention of air leakage were found to be important factors in transmissibility design. Based on design technique that maximizes damping of dual-chamber pneumatic spring, trade-off among the resonance frequency of transmissibility, peak transmissibility and transmissibility in high frequency range was found, which was not ever stated in previous researches. Furthermore this paper will discuss about negative role of diaphragm in transmissibility design. Then the design method proposed in this paper will be illustrated through experiment at measurements.

Keywords

References

  1. Gordon, C. G., 1991, 'Generic Criteria for Vibration-sensitive Equipment', Proceedings of SPIE, San Jose, CA
  2. Amick, H., Gendreau, M. and Gordon, C. G., 2002, 'Facility Vibration Issues for Nanotechnology Research', Proceedings of the Symposium on Nano Device Technology, Hsinchu, Taiwan
  3. Harris, C. M. and Crede, C. E., 1961, 'Shock and Vibration Handbook', McGraw-Hill
  4. DeBra, D. B., 1984, 'Design of Laminar Flow Restrictors for Damping Pneumatic Vibration Isolators', CIRP Annals, Vol. 33, No. 1, pp. 351-356 https://doi.org/10.1016/S0007-8506(07)61441-3
  5. Erin, C., Wilson, B. and Zapfe, J., 1998, 'An Improved Model of a Pneumatic Vibration Isolator: Theory and Experiment', Journal of Sound and Vibration, Vol. 218, No. 1, pp. 81-101 https://doi.org/10.1006/jsvi.1998.1777
  6. Lee, J. H. and Kim, K. J., 2008, 'Amplitude-dependent Complex Stiffness Modeling of Dual-chamber Pneumatic Spring for Pneumatic Vibration Isolation Table', Transactions of the Korean Society for Noise and Vibration Engineering, Vol. 18, No. 1, pp. 110-122 https://doi.org/10.5050/KSNVN.2008.18.1.110
  7. White, F. M., 2003, 'Fluid Mechanics 5th Edition', New York: McGraw-Hill
  8. Munson, B. R., Young, D. F. and Okiishi, T. H., 1998, 'Fundamentals of Fluid Mechanics 3rd Edition. New York: John Wiley & Sons, Inc
  9. Arora, J. S., 2004 'Introduction to Optimum Design 2nd Edition', ELSEVIER Academic Press
  10. Crandall, S. H., 1970, 'The Role of Damping in Vibration Theory', Journal of Sound and Vibration, Vol. 11, No. 1, pp. 3-18 https://doi.org/10.1016/S0022-460X(70)80105-5
  11. Jeong, T. and Singh, R. 2001, 'Inclusion of Meausured Frequency and Amplitude Dependent Mount Properties in Vehicle or Machinery Models', Journal of Sound and Vibration, Vol. 245, No. 3, pp. 385-415 https://doi.org/10.1006/jsvi.2000.3149
  12. Harris, C. M. and Crede, C. E., 'Dynamic Vibration Absorbers and Auxiliary Mass Dampers', 4th Edition. Shock and Vibration Handbook. Chap. 6, New York: McGraw-Hill
  13. Thomson, W. T. and Dahleh, M. D., 1998, 'Theory of Vibration with Applications', Vibration Damper 5th Edition. New York: McGraw-Hill. Prentice-Hall. Inc
  14. Rivin, E. I., 2003, 'Passive Vibration Isolation', New York: ASME Press
  15. Lee, J. H. and Kim, K. J., 2006, 'Computation of Complex Stiffness of Inflated Diaphragm in Pneumatic Springs by Using FE Codes', Transactions of the Korean Society for Noise and Vibration Engineering, Vol. 16, No. 9, pp. 919-925 https://doi.org/10.5050/KSNVN.2006.16.9.919
  16. Bendat, J. S. and Piersol, A. G., 2000, 'Random Data', 3rd Edition. John Wiley & Sons