In order to obtain all geometric errors of numerical control(NC)machine tool
according to the 3D measurement characteristic of laser tracker
the pose measurement principle for geometric accuracy detection of machine tool and separation principle for geometric error are developed. By means of NC precise turntable fixed on machine tool and a laser tracker
the pose information of translational axis can be calculated
then the geometric errors are determined. First
the pose measurement principle and measurement mathematical model of linear axis are developed in details
including calibration principle of measuring points and base stations
and the acquisition procedures of pose deviation. Then
the three angular errors and three linear errors are identified successively and geometrically
and the comprehensive error identification model for single axis is determined. At last
the feasibility and veracity are verified by simulation experiment
measurement experiment and comparative experiment. Results of experiments show that the proposed method is able to complete the precision detection of a 3-axis milling machine within 2 h
and the errors are identified successfully. This measurement principle has short measurement time and high precision
and solve the calibration problem of base station with higher precision. The pose measurement principle provides a new method for machine tool error detection with an extensive application prospect.
关键词
Keywords
references
SCHWENKE H, KNAPP W, HAITJEMA H, et al. Geometric error measurement and compensation of machine-an update [J]. CIRP Annals: Manufacturing Technology, 2008, 57(2): 660-675.
TRAPET E, WALDELE F. A reference object based method to determine the parametric error components of co-ordinate measuring machines and machine tools [J]. Measurement, 1991, 9(1): 17-22.
KUNZMANN H, TRAPET E, WALDELEF, Results of international comparison of ball plate measurements in CIRP and WECC [J]. Annals of the CIRP, 1995, 44(1): 479-482.
FLORUSSEN F L M, DELBRESSINE M J G. Assessing geometrical errors of multi-axis machines by 3D length measurements [J]. Measurement, 2001, 30(4): 241-255.
ZHU Jia, LI Xingfei, TAN Wenbin, et al. Method of geometric error detection for measuring machine based on laser interferometer [J]. Journal of Mechanical Engineering, 2010, 46(10): 25-30.
SCHWENKE H, FRANKE M, HANNAFORD J, et al. Error mapping of CMMs and machine tools by a single tracking interferometer [J]. CIRP Annals: Manufacturing Technology, 2005, 54(1): 475-478.
LAU K, HOCKEN R J, HAIGHT W C. Automatic laser tracking interferometer system for robot metrology [J]. Precision Engineering, 1986, 8(1): 3-8.
张国雄, 林永兵, 李杏华, 等. 四路激光跟踪干涉三维坐标测量系统 [J]. 光学学报, 2003, 23(9): 1030-1036.ZHANG Guoxiong, LIN Yongbing, LI Xinghua, et al. Four-beam laser tracking interferometer system for three-dimensional coordinate measurement [J]. Acta Optica Sinica, 2003, 23(9): 1030-1036.
SCHWENKE H, SCHMITT R, JATZKOWSKI P, et al. On-the-fly calibration of linear and rotary axes of machine tools and CMMs using a tracking interferometer [J]. CIRP Annals: Manufacturing Technology, 2009, 58(1): 477-480.
WANG Jindong, GUO Junjie, DENG Yufen, et al. Geometric precision detection for numerical control machine tool based on laser tracker [J]. Journal of Xi'an Jiaotong University, 2011, 45(3): 85-90.
WANG Jindong, GUO Junjie, ZHANG Guoxiong, et al. The technical method of geometric error measurement for multi-axis NC machine tool by laser tracker [J]. Measurement Science and Technology, 2012, 23(4): 45003-45013.
LIN Yongbing, ZHANG Guoxiong, LI Zhen, et al. Self-calibration and simulation of the four-beam laser tracking interferometer system for 3D coordinate measurement [J]. Chinese Journal of Scientific Instrument, 2003, 24(2): 205-209.
LIU Yongdong, WANG Jia, LIANG Jinwen. Self-calibration of multi-station laser tracking system for dynamic geometric measurement [J]. Optical Technique, 1999, 23(3): 25-27.
WANG Jindong, GUO Junjie, FEI Zhigen, et al. Method of geometric error identification for numerical control machine tool based on laser tracker [J]. Journal of Mechanical Engineering, 2011, 47(14): 13-19.