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Purpose: The paper presents way to designate the exemplary design features by optimizing the features by means of the Finite Element Method. The subject of optimization are the qualitative and quantitative geometrical design features: the geometrical design form and the geometrical dimensions. Design/methodology/approach: The fallowing computer aided methods were used to support the engineering process: FEM analysis, geometry optimization, optimization of the dimension values using the variant analysis and relational parameterization. These stages were developed in TOSCA software and advanced graphical programs: NX and I-DEAS. Findings: The result of research was the determination of exemplar design features that take into account consideration: technical expediency, economic expediency and production capacities. On the basis of design features and with the use of the relational parameterization, the series of types was established. Research limitations/implications: Due to the iterative process, optimization based on Finite Element Analysis is time consuming. Practical implications: The described method can be used in creating the series of types and modular construction systems. Originality/value: The presented algorithm of optimization and analysis of the geometrical features with the use of the Finite Element Method, allows determining the exemplar design features, which are the basis for the development of an exemplar form of the series of types.
Wydawca
Rocznik
Tom
Strony
488--497
Opis fizyczny
Bibliogr. 15 poz., rys.
Twórcy
autor
- Institute of Engineering Processes Automation and Integrated Manufacturing Systems, Institute of Engineering Materials and Biomaterials, Silesian University of Technology, ul. Konarskiego 18a, 44-100 Gliwice, Poland
autor
- Institute of Engineering Processes Automation and Integrated Manufacturing Systems, Institute of Engineering Materials and Biomaterials, Silesian University of Technology, ul. Konarskiego 18a, 44-100 Gliwice, Poland
Bibliografia
- [1] P. Gendarz, Flexible modular systems, Publisher of Silesian University of Technology, Gliwice, 2009 (in Polish).
- [2] W. Tarnowski, Basis of technical design, WNT, Warsaw, 1997 (in Polish).
- [3] G. Pahl, W. Beitz, Construction science, WNT, Warsaw, 1984.
- [4] J. Dietrych, Machines construction basis, WNT, Warsaw, 1995 (in Polish).
- [5] J. Dietrych, System and construction, WNT, Warsaw, 1985 (in Polish).
- [6] J. Wrobel, Z. Osinski, Construction Theory, PWN, Warsaw, 1995 (in Polish).
- [7] P. Gendarz, D. Rabsztyn, The system structure, the hierarchical structure and the variant structure family of construction, Journal of Transdisciplinary Systems Science, 16/2 (2012) 131-142 (in Polish).
- [8] P. Gendarz, Technical means series of types generation process with constructional similarity theory use, Journal of Transdisciplinary Systems Science 16/1 (2012) 187-198 (in Polish).
- [9] P. Gendarz, Practical verification of constructional similarity theory, Journal of Transdisciplinary Systems Science 16/1 (2012) 175-185 (in Polish).
- [10] S. Samuel, E. Weeks, B. Stevenson, Advanced simulation using Nastran NX5/NX6, Design Visionaries, USA, 2008.
- [11] O.C. Zienkiewicz, Finite element method in engineering science, Publishing House “Arkady”, Warsaw, 1972 (in Polish).
- [12] D. March, Applied geometry for computer graphics and CAD, Springer, London, 2005.
- [13] M. Halpern, SDRC’S Variational analysis, Computer Aided Engineering, Claveland, 1999.
- [14] P. Gendarz, M. Cielniak, Computer aided generation of construction model for construction similarity theory, Journal of Achievements in Materials and Manufacturing Engineering 44/1 (2011) 80-87.
- [15] R. Rząsiński, Databases and computer programs selection of technological features, Journal of Achievements in Materials and Manufacturing Engineering 49/2 (2011) 350-359.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-5beb6a3b-6497-487c-be39-ffa8c936d755