Kinematic modeling and parameter identification of a new circumferential drilling machine for aircraft assembly

被引:38
作者
Zhu, Weidong [1 ]
Mei, Biao [1 ]
Ke, Yinglin [1 ]
机构
[1] Zhejiang Univ, Dept Mech Engn, Hangzhou 310027, Zhejiang, Peoples R China
基金
中国国家自然科学基金;
关键词
Circumferential drilling machine; Accuracy; Kinematic calibration; Kinematic modeling; Parameter identification; Repeatability; CALIBRATION; COMPENSATION; ACCURACY;
D O I
10.1007/s00170-014-5786-7
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Automated fastener hole drilling is a key technology for low-cost and high-quality assembly of aircrafts. In this paper, a new circumferential drilling machine for fuselage assembly of large aircrafts is introduced. In order to meet the required position accuracy of drilled holes, this paper focuses on the kinematic calibration of the machine in order to improve its positioning accuracy. A modeling strategy, which combines the Denavit-Hartenberg (D-H) method and a modified version of the Hayati-Mirmirani (H-M) method, is proposed to deal with the special kinematic structure of the arc-base drilling unit of the machine. Main issues in kinematic parameter identification such as definition of objective function, calibration data selection, acquisition of initial values, and setting of convergence criteria are also discussed. Experiments of repeatability testing and kinematic calibration have been performed, and the results show that the positioning accuracy of the arc-base drilling unit is comparable to its repeatability after calibration. This suggests that the proposed kinematic calibration method is effective. Actual drilling tests have been performed on a simulated aircraft fuselage after implementing the identified kinematic model in the machine's control software. Position errors of drilled holes are within +/- 0.5 mm, which meets the requirement for fastener hole drilling in the fuselage assembly of large aircrafts.
引用
收藏
页码:1143 / 1158
页数:16
相关论文
共 34 条
[11]   ROBOT CALIBRATION USING AN AUTOMATIC THEODOLITE [J].
DRIELS, MR ;
PATHRE, US .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 1994, 9 (02) :114-125
[12]  
Everett L. J., 1987, Proceedings of the 1987 IEEE International Conference on Robotics and Automation (Cat. No.87CH2413-3), P183
[13]   STUDY OF KINEMATIC MODELS FOR FORWARD CALIBRATION OF MANIPULATORS. [J].
Everett, Louis J. ;
Suryohadiprojo, Adwin H. .
1988, :798-800
[14]   A practical approach to compensate for geometric errors in measuring arms: application to a six-degree-of-freedom kinematic structure [J].
Gatti, G. ;
Danieli, G. .
MEASUREMENT SCIENCE AND TECHNOLOGY, 2008, 19 (01)
[15]   Nongeometric error identification and compensation for robotic system by inverse calibration [J].
Gong, CH ;
Yuan, JX ;
Ni, J .
INTERNATIONAL JOURNAL OF MACHINE TOOLS & MANUFACTURE, 2000, 40 (14) :2119-2137
[16]   IMPROVING THE ABSOLUTE POSITIONING ACCURACY OF ROBOT MANIPULATORS [J].
HAYATI, S ;
MIRMIRANI, M .
JOURNAL OF ROBOTIC SYSTEMS, 1985, 2 (04) :397-413
[17]   Kinematic-Parameter Identification for Serial-Robot Calibration Based on POE Formula [J].
He, Ruibo ;
Zhao, Yingjun ;
Yang, Shunian ;
Yang, Shuzi .
IEEE TRANSACTIONS ON ROBOTICS, 2010, 26 (03) :411-423
[18]   The calibration index and taxonomy for robot kinematic calibration methods [J].
Hollerbach, JM ;
Wampler, CW .
INTERNATIONAL JOURNAL OF ROBOTICS RESEARCH, 1996, 15 (06) :573-591
[19]   Absolute calibration of an ABB IRB 1600 robot using a laser tracker [J].
Nubiola, Albert ;
Bonev, Ilian A. .
ROBOTICS AND COMPUTER-INTEGRATED MANUFACTURING, 2013, 29 (01) :236-245
[20]  
Oberoi H, 2009, 09ATC0257 SAE, DOI [10.4271/2009-01-3090, DOI 10.4271/2009-01-3090]