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Abstrakty
The paper presents a computer system dedicated to simulation of the TIG welding process. The main functionality of the system, i.e. support and facilitation of design of welding technology, will be obtained through flexible combination of the modular architecture of the numerical library and optimization procedures. The TIG heat source model and a structure of a computer system is described. The analysis of phenomena occurring in welded material is important for a selection of optimal process parameters. This contributes to improvement of the product reliability. Particular attention is focused on the development of a reliable numerical model of TIG welding for the linear joint. All process parameters are identified and gathered together in one complex database. The phenomenological heat source model is validated by comparison of evaluated temperatures in a discrete pint with experimental measurements. The validated heat source model is used as the main part of a computer system supporting TIG welding. The architecture of this computer system as well as details of implementation are described in the paper.
Słowa kluczowe
Czasopismo
Rocznik
Tom
Strony
60--67
Opis fizyczny
Bibliogr. 12 poz., rys.
Twórcy
autor
- Akademia Gorniczo-Hutnicza, al. Mickiewicza 30, 30-059 Krakow, Poland
autor
- Akademia Gorniczo-Hutnicza, al. Mickiewicza 30, 30-059 Krakow, Poland
autor
- Akademia Gorniczo-Hutnicza, al. Mickiewicza 30, 30-059 Krakow, Poland
autor
- Akademia Gorniczo-Hutnicza, al. Mickiewicza 30, 30-059 Krakow, Poland
autor
- Akademia Gorniczo-Hutnicza, al. Mickiewicza 30, 30-059 Krakow, Poland
Bibliografia
- [1] AGUIAR M., WESTON R., 1995, A Model-Driven Approach to Enterprise Integration, International Journal of Computer Integrated Manufacturing, 8/3, 210–224.
- [2] BOOTH A.W., 1998, Object-Oriented Modeling for Flexible Manufacturing Systems, International Journal of Flexible Manufacturing Systems, 10, 301–314.
- [3] ERICSSON M., 2003, Simulation of robotic TIG-welding, Licentiate thesis, Lund Institute of Technology, Lund.
- [4] DENG D., MURAKAWA H., 2006, Numerical simulation of temperature field and residual stress in multi-pass welds in stainless steel pipe and comparison with experimental measurements, Computational Materials Science, 37, 269-277.
- [5] KUŹNIAR A., RYGIEL P., DUDEK S., GNOT A., GANCARCZYK T., PERZYŃSKI K., 2011, Numerical model of a TIG welding process for the aviation industry, including analysis of the heat transfer, Computer Methods in Materials Science, 11, 173-178.
- [6] PAVELIC R., TANBAKUCHI R., UJEHARA O., MYERS P., 1969, Experimental and Computed Temperature Histories in Gas Tungsten Arc Welding in Thin Plates, Welding Journal, 48, 295-305.
- [7] GOLDAK J., CHAKRAVARTI A., BIBBY M., 1984, A new finite element model for welding heat sources, Metall. Mater. Trans. B, 15, 299-305.
- [8] RONDA J., OLIVER J., 1998, Comparison of applicability of various thermo-viscoplastic constitutive models in modelling of welding, Comput. Methods. Appl. Mech. Enging., 153, 195-221.
- [9] RONDA J., OLIVER J., 2000, Consistent thermo-mechano-matallurgical model of welded steel with unified approach to derivation of phase evolution laws and transformation-induced plasticity, Comput. Methods. Appl. Mech. Enging, 189, 361-417.
- [10] RONG-HUA Y., SHIH-PIN L., HONG-BIN Y., 2003, Thermal analysis of welding on aluminum plates, Journal of Marine Science and Technology, 11/4, 213-220.
- [11] RAUCH L., MADEJ L., MATUSZYK P.J., 2008, Knowledge based optimization of the manufacturing process supported by numerical simulations of production chain, Collaborative Product and Service Life Cycle Management for a Sustainable World, 15th ISPE International Conference on Concurrent Engineering: Bangor, Springer, 435-442.
- [12] RAUCH L., MADEJ L., PIETRZYK M., 2008, Hybrid System for Modeling and Optimization of Production Chain in Metal Forming, Journal of Machine Engineering, 8, 14-22.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-0471be9a-f0c3-4992-b46e-13c7ac01ee39