Research on Calibration Method of Linear Structured Light Vision Measurement System

Article Preview

Abstract:

This template explains and demonstrates how to design a measurement system based on the size of the linear structured light vision, the system could works at realized the high precision and fast measurement of the size of mechanical parts, and accurate calibration of the system. First of all, this paper set up the experimental platform based on linear structured light vision measurement. Secondly, this paper established a system of measurement model, and puts forward a new method of calibration of structured light sensor and set up the mathematical model of sensor calibration. This calibration method only need to use some gage blocks of high precision as the target, the target position need not have a strict requirements, and the solving process will be more convenient, much easier to field use and maintenance. Finally, measuring accuracy on the system by gage blocks with high precision is verified, the experiment shows that measurement accuracy within 0.050 mmin the depth of 0-80 - mm range. This system can satisfy the demands of precision testing of most industrial parts .with its simple calibration process and high precision, it is suitable for the structured light vision calibration.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

1234-1239

Citation:

Online since:

September 2014

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] Jigui Zhu, Zhijing Yu, visual measuring principle and the method. Beijing: China Machine Press, 2011. 4.

Google Scholar

[2] Nick Van Gestel, Steven Cuypers, Philip Bleys. Optics and Lasers in Engineering, 2009, (47): 336-342.

Google Scholar

[3] Graebling P, Lallement A, Zhou D, et al. Applied Optics, 2002, (41): 2627-2613.

Google Scholar

[4] Zhang G, He J, Li X. Sensors and Actuators A: Physical, 2005, 122(1): 68-75.

Google Scholar

[5] Wu B, Xue T, Zhang T, et al. Measurement Science and Technology, 2010, 21(2): 025204-025209.

Google Scholar

[6] Qinghua Wu, He Tao, Tielin Shi. Journal of optoelectronics, lasers, 2013. 24 (2): 297-302.

Google Scholar

[7] Fajie Duan, Fengmei Liu, Shenghua Ye. Journal of instruments and meters, 2000, 21(1): 108-110.

Google Scholar

[8] Weicheng Zhang, Wang Biao, Guili Xu. Computer technology and development, and 2010. 20 (11): 170-179.

Google Scholar

[9] li peng, Wang Junning. Journal of electronic technology in shanxi, 2007, 4: 77-79.

Google Scholar

[10] Zhenqian Luo , Xue Lei, Feng jie Sun , ShiqingLu , Changyuan Li. Journal of video application and engineering, 2010 (4): 100-102.

Google Scholar