Measurement of Five DOF Motion Errors in the Ultra Precision Feed Tables

초정밀 이송테이블의 5 자유도 운동오차 측정

  • 오윤진 (한국기계연구원 지능기계센터) ;
  • 박천홍 (한국기계연구원 지능기계센터) ;
  • 황주호 (한국기계연구원 지능기계센터) ;
  • 이득우 (부산대학교 나노공학부)
  • Published : 2005.11.01

Abstract

Measurement of five DOF motion errors in a ultra precision feed table was attempted in this study. Yaw and pitch error were measured by using a laser interferometer and roll error was measured by using the reversal method. Linear motion errors in the vertical and horizontal directions were measured by using the sequential two point method. In this case, influence of angular motion errors was compensated by using the previously measured ones by the laser interferometer and the reversal method. The capacitive type sensors and an optical straight edge were used in the reversal method and the sequential two point method. Influence of thermal deformation on sensor jig was investgated and minimized by the periodic measurement according to the variation of room temperature. Deviation of gain between sensors was also compensated using the step response data. 5 DOF motion errors of a hydrostatic table driven by the linear motor werer tested using the measurement method. In the horizontal direction, measuring accuracies for the linear and angular motion were within ${\pm}0.02\;{\mu}m$ and ${\pm}0.04$ arcsec, respectively. In the vertical direction, they were within ${\pm}0.02{\mu}m$ and ${\pm}0.05$ arcsec. From these results, it was found that the introduced measurement method was very effective to measure 5 DOF motion errors of the ultra precision feed tables.

Keywords

References

  1. Hewlett Packard Co., 'Laser Measurement System User's Guide,' Manual Part No. 00528-90010, 1984
  2. Osada, H. and Shomokohbe, A., 'Measurement of Straight Motion Accuracy,' J. of JSPE, Vol. 51, No. 6, pp. 161-167, 1985
  3. Kiyono, S., 'Profile Measurement Using Software Datums,' J. of JSPE, Vol. 61, No. 8, pp. 1059-1063, 1995
  4. Gao, W. and Kiyono, S., 'High accuracy profile measurement of a machined surface by the combined method,' Measurement, Vol. 19, No. 1, pp. 55-64, 1996 https://doi.org/10.1016/S0263-2241(96)00066-8
  5. Li, C. J., Li, S. and Yu, J., 'High-resolution error seperation technique for in-situ straightness measurement of machine tools and workpieces,' Mechatronics, Vol. 6, No. 3, pp. 337-347, 1996 https://doi.org/10.1016/0957-4158(95)00077-1
  6. Fung, E. H. K. and Yang, S. M., 'An approach to on-machine motion error measurement of a linear slide,' Measurement, Vol. 29, pp. 51-62, 2001 https://doi.org/10.1016/S0263-2241(00)00027-0
  7. Kounosu, K. and Kishi, T., 'Measurement of Surface Profile Using Smoothed Serial Three Point Method,' J. of JSPE, Vol. 61, No. 5, pp. 641-645, 1995
  8. Gao, W., Yokoyama, J., Kojima, H. and Kiyono, S., 'Precision measurement of cylinder straightness using a scanning multi-probe system,' Precision Engineering, Vol. 26, pp. 279-288, 2002 https://doi.org/10.1016/S0141-6359(02)00106-X
  9. Park, C. H., Chung, J. H., Kim, S. T. and Lee, H., 'Development of a submicron order straightness measuring device,' J. KSPE, Vol. 17, No. 5, pp. 124-130, 2000