Affiliation:
1. University Valahia Targoviste
2. Valahia University of Targoviste
Abstract
This paper explains and demonstrates a method to interconnect the video detection data flow with an innovative coded grid in order to precisely associate absolute coordinates to any scanned (micro) objects over a large area, without the aid of external bulky sensors. The concept of measuring micro-objects absolute coordinates is based on a series of coded information markings (micrometric terminal blocks) regularly and precisely printed on the bottom reference surface. In this manner the image processing could extract the values of the coded markings and precisely provide absolute coordinates for the camera image. The correspondence between the object and its absolute coordinates seems therefore straightforward. A very important challenge which must be solved is to read the information in real time, the method solving an optimization problem between the required processing speed and the maximum computing system resources. Finally it was obtained an innovative mechatronic system made of two essential sub-systems: the vision detection for micro-objects absolute reference positioning and characterization and a 3D micro-robotic translator for working space displacement. This system insured automatic scanning of micro-objects over large working spaces, detection process storing all specific information into a unique database file, which the operator can easily use to assign a set of automatic “pick-and-place” tasks for various micro assembly processes, as presented in the application example.
Publisher
Trans Tech Publications, Ltd.
Reference10 articles.
1. K. F. Bohringer, R. S. Fearing, and K. Y. Goldberg, "The Handbook of Industrial Robotics (chapter Microassembly), S. Y. Nof, Ed. Wiley &Sons, (1999).
2. N. Dechev, W. L. Cleghorn, and J. K. Mills, "Construction of 3D MEMS microstructures using robotic microassembly, in Sensing and Manipulation of Micro and Nano Entities: Science, Engineering, and Applications, Workshop, International Conference on Robots and Intelligent Systems (IEEE/RSJ IROS 2003), (2003).
3. M. B. Cohn, K. F. Boehringer, J. M. Noworolski, A. Singh, C. G. Keller, K. A. Goldberg, and R. T. Howe, Microassembly technologies for MEMS, in Proceedings of the SPIE Conference on Micromachined Devices and Components IV, A. B. Frazier and C. H. Ahn, Eds., vol. 3515, no. 1. SPIE, 1998, p.2.
4. Kemal Berk Yesin, Bradley J. Nelson, A CAD model based tracking system for visually guided microassembly, in Robotica (2005) volume 23, p.409–418.
5. Q. Zhou, A. Aurelian, B. Chang, C. del Corral, and H. N. Koivo, Microassembly system with controlled environment, Journal of micromechtaronics vol. 2, p.227–248, (2002).
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