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Tytuł artykułu

Intelligent system for machining and optimization of 3D sculptured surfaces with ball-end milling

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: This paper describes about intelligent machining system which is applied in a high speed machining robot with on-line monitoring and optimization for ball-end milling process. Design/methodology/approach: Manufacturing of 3D sculptured surfaces on high speed machining robot involves a number of machining parameters and tool geometries. The system collects machining data and cutting parameters which are necessary for genetic algorithm optimization. Findings: An intelligent machining system is developed for the simulation and testing on the PC machine. It is based on a main PC computer, which is connected to the high speed machining robot main processor so that control and communication can be realized. The system collects the variables of the cutting process by means of sensors which are optimized with the genetic algorithms. Research limitations/implications: 3D sculptured milling covers a wide range of operations. In 3D metal cutting processes, cutting conditions have an influence on reducing the production cost and time and deciding the quality of a final product. Practical implications: Simulated results show that the proposed intelligent machining system is effective and efficient, and can be integrated into a real-time intelligent manufacturing system for solving complex machining optimization problems. Originality/value: The paper describes about intelligent machining system which can applied in intelligent manufacturing process.
Rocznik
Strony
171--177
Opis fizyczny
Bibliogr. 18 poz., rys., tab., wykr.
Twórcy
autor
  • Faculty of Mechanical Engineering, University of Maribor, Smetanova 17, SI-2000 Maribor, Slovenia
autor
  • Faculty of Mechanical Engineering, University of Ljubljana, Askerceva 6, SI-1000 Ljubljana, Slovenia
autor
  • Faculty of Mechanical Engineering, University of Maribor, Smetanova 17, SI-2000 Maribor, Slovenia
autor
  • Faculty of Mechanical Engineering, University of Maribor, Smetanova 17, SI-2000 Maribor, Slovenia
Bibliografia
  • [1] E. E. Goldberg, MA: Addison-Wesley, 1989.
  • [2] W. J. Hui and Y. G. Xi, Control Theory and Application, 13 (1996), 297.
  • [3] F. Cus, M. Milfelner and J. Balic, J. mater. process. technol., Available online, (2005).
  • [4] I. Drstvensek, I. Pahole, M. Kovacic and J. Balic, J. mater. process. technol.. 164-165, (2005), 1309.
  • [5] M. Kovacic, M. Brezocnik, I. Pahole, J. Balic and B. Kecelj, J. mater. process. technol., 164-165, (2005), 1379.
  • [6] J. C. Chen, J. of Adv. Manufact. Tech., 12 (1996) 153.
  • [7] Y. Altintas, Int. J. Mach. Tools Manufact., 28 (1988) 157.
  • [8] U. Zuperl and F. Cus, J. mater. process. technol., 153/154, (2004), 268.
  • [9] M. Milfelner and F. Cus, Robot. Comput.-Integr. Manuf., 19 (2003) 99
  • [10] A. Ber, J. Rotberg and S. Zombach, CIRP, 37 (1988) 37.
  • [11] J. S. Agapiou, Trans. ASME J. Eng. Ind., 114 (1992) 500.
  • [12] J. Balic and I. Pahole, J. mater. process. technol., 133, (2003), 13.
  • [13] M. Kovacic, J. Balic and M. Brezocnik, J. mater. process. technol., 155/156, (2004), 1647.
  • [14] M. Milfelner, J. Kopac, F. Cus and U. Zuperl, J. mater. process. technol., 164-165, (2005), 1554.
  • [15] U. Zuperl, F. Cus and M. Milfelner, J. mater. process. technol., 164, (2005), 1472.
  • [16] J. Kopac, J. mater. process. technol., 157/158, (2004), 354.
  • [17] L.A. Dobrzański, A. Śliwa and W. Kwaśny, J. mater. process. technol., 164-165, (2005), 1192.
  • [18] J. Kopac, M Sokovic, and S. Dolinsek, J. mater. process. technol., 118, (2001), 377.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-bd2bbc4c-f8c6-4a16-9993-29fcdfe06813
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