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2010 | Vol. 17, nr 1 | 109-117
Tytuł artykułu

The hybrid coordinate measurement system as a response to industrial requirements

Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The tendencies of modern industry are to increase the quality of manufactured products, simultaneously decreasing production time and cost. The hybrid system combines advantages of the high accuracy of contact CMM and the high measurement speed of non-contact structured light optical techniques. The article describes elements of a developed system together with the steps of the measurement process of the hybrid system, with emphasis on segmentation algorithms. Additionally, accuracy determination of such a system realized with the help of a specially designed ball-plate measurement standard is presented.
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Wydawca

Rocznik
Strony
109-117
Opis fizyczny
Bibliogr. 24 poz., rys., wykr.
Twórcy
autor
autor
autor
  • Cracow University of Technology, Laboratory of Coordinate Metrology, Jana Pawła II 37, 31-864 Cracow, Poland, sladek@mech.pk.edu.pl
Bibliografia
  • [1] G. Wang, B. Zheng, L.Xin, Z. Houkes: “Modeling and calibration of the laser beam scanning triangulation measurement system”. Robotic and Anatonomous Systems, vol. 40, 2002, pp. 267-277.
  • [2] G. Zhang, Z. Wei: “A novel calibration approach to 3D vision inspection”. Optics & Laser Technology, vol. 34, no. 5, 2002, pp. 373-380.
  • [3] J. Zhang, A. Djordjevich: “Study on laser stripe sensor”. Sensors and Actuators, vol. 72, no. 3, Feb. 1999, pp. 224-228.
  • [4] Z. Xie, J. Wang, Q. Zhang: “Complete 3D measurement in reverse engineering using a multi-probe system”. Machine Tools & Manufacture, vol. 45, 2005, pp. 1474-1486.
  • [5] L. Xinmin, L. Zhongqin, H. Tian, Z. Ziping: “A study of a reverse engineering system based on vision sensor for free-form surfaces”. Computer & Industrial Engineering, vol. 40, 2001, pp. 215-227.
  • [6] S. Son, H. Park, K.H. Lee: “Automated laser scanning system for reverse engineering and inspection”. International Journal of Machine Tools & Manufacture, vol. 42, 2002, pp. 889-897.
  • [7] M. Chang, K.H. Lin: “Non-contact scanning measurement utilizing a space mapping method”. Optics and Lasers in Enginnering, vol. 30, 1999, pp. 503-512.
  • [8] R. Sitnik, J. Sładek, M. Kupiec, P. Błaszczyk, M. Kujawińska: “New concept of fast hybrid contact and nocontact measurement for automotive industry”. Conf. Photonics Europe Strasbourg, France 2006, 619803.
  • [9] J. Sładek, R. Sitnik, M. Kupiec, P. Błaszczyk: “The new hybrid method for fast and precision measurement”. XVIII IMEKO World Congress Metrology for a Sustainable Development, Rio de Janeiro, Brazil, 2006, pp. 134-138.
  • [10] M. Kupiec: Optical - Contact Coordinate Measurement Method. Ph.D. dissertation. Cracow University of Technology, 2007.
  • [11] J.P. Gonnet, A. Isheil, J.F. Fontaine: “Parameters analysis influencing 3D measurement without contact by laser scanner to establish a local correction procedure”. 10th CIRP Conference on Computer Aided Tolerancing, Erlangen, Germany, 2007.
  • [12] S.J. Marshall, D.N. Whiteford, R.C. Rixon: Assessing the performance of 3d whole body imaging systems. Paris, France, 2001.
  • [13] A. Weckenmann, J. Weickmann: “Optical inspection of formed sheet metal parts applying fringe projection systems and virtual fixation”. Metrol. Meas. Syst., vol. XIII, no. 4, 2006, pp. 321-334.
  • [14] S.F. El-Hakim, J.A. Beraldin, F. Blais: “A Comparative Evaluation of the Performance of Passive and Active 3-D Vision Systems”. Proc. St. Petersburg Conference on Digital Photogrammetry, St. Petersburg, Russia , NRC 39160, 1995.
  • [15] J. Gühring, C. Brenner, J. Böhm, D. Fritsch: “Data processing and calibration of a cross-pattern stripe projector”. ISPRS Congress 2000, IAPRS 33(5), Amsterdam, Netherlands, 2000.
  • [16] http://www.gom.com, informational material GOM’ company.
  • [17] http://www.cognitens.com, Informational material Cognitens’ company.
  • [18] R. Sitnik: A fully automatic 3D shape measurement system with data export for engineering and multimedia systems. Ph.D. dissertation, Warsaw University of Technology, 2002.
  • [19] http://www.pcdmis.com, informational material Wilcox Associates’ Inc.
  • [20] M. Vieira, K. Shimada: “Surface Mesh Segmentation and Smooth Surface Extraction through Region Growing”. Computer Aided Geometric Design, vol. 22, no. 8, Nov. 2005, pp. 771-792.
  • [21] T. Várady, M.A. Facello, Z. Terék: “Automatic Extraction of Surface Structures in Digital Shape Reconstruction”. Computer-Aided Design, vol. 39, no. 5 , May 2007, pp. 379-388.
  • [22] P.S. Heckbert, M. Garland: Survey of Polygonal Surface Simplification Algorithms. Multiresolution Surface Modeling Course. SIGGRAPH’97, 1997.
  • [23] ISO 10360-2, Geometrical Product Specifications (GPS), Acceptance and reverification tests for coordinate measuring machines (CMM) - Part 2: CMMs used for measuring size Standard, 2001.
  • [24] VDI/VDE 2617-6, Genauigkeit von Koordinatenmessgeräten - Kenngrössen und deren Prüfung - Koordinatenmessgeräte mit optischer Antastung - Grundlagen, 1997.
Typ dokumentu
Bibliografia
Identyfikatory
Identyfikator YADDA
bwmeta1.element.baztech-article-BSW1-0062-0027
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