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Heat flow description during crystallization process of cast dispersive composites

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Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The aim of this work was to show possibilities of numerical simulation software, based on heat transfer model, commonly used in foundry industry in cast composite properties engineering. The main restriction in most of used software systems is lack of heat transfer, which may occur at composite creation. In this work the reinforcing particle morphology an size were expressed by one quantity – morphological modulus Mm and were examined for influence on heat transfer and conductivity up to the Newton's and Fourier's laws. The main restrictions for using Fourier's model based software for composite engineering are shown. The way for crystallization control was presented including influence of morphology, transition zone and thermo-physical properties of components. Proposed methodology can be used for cast composite properties engineering in cases, where relative motion of components is negligible. In other cases heat transfer coefficient is justified only if the software used is based on Fourier’s model and the source code is accessible. Proposed assumptions create possibility for components selection verification in terms of technological and operating properties of cast composite. An example of such approach was shown in work [1, 23].
Rocznik
Strony
117--122
Opis fizyczny
Bibliogr. 23 poz., tab.
Twórcy
autor
  • Foundry Department, Institute of Materials Engineering and Biomaterials, Faculty of Mechanical Engineering, Silesian University of Technology, 44–100 Gliwice, Towarowa 7, Poland, miroslaw.cholewa@polsl.pl
Bibliografia
  • [1] Cholewa M.: 13 th Intern. Sci. Conf. AMME. Gliwice, 2005, s. 67
  • [2] Pawłowski S., Serkowski S.: Fireproof materials for metallurgical applications, part I, Nr 1892, Gliwice, 1995 (in polish)
  • [3] Simulation software CasTech. Scientific works of Silesian University of technology KMiSt. V.39, Gliwice 1999
  • [4] Poniewierski Z.: Crystallization, structure and properties of AlSi alloys, WNT, Warsaw, 1989 (in polish)
  • [5] Pietrowski S.: AlSi alloys, Wyd. Pol. Łódzkiej, Łódź 2001. (in polish)
  • [6] Cholewa M., Gawroński J.: PN Patent no P-335 033, 1999
  • [7] Fraś E., Theoretical fundamentals of crystallization, Wyd. AGH, Cracov 1984 (in polish)
  • [8] Ohno A., Solidifcation of metals, Metallurgy, Moscow 1980 (in russian)
  • [9] Cholewa M., Solidiffication of Metals and Alloys, vol. 2, no 44, 2000 p.65 (in polish)
  • [10] Składzień J.: Thermokinetics and thermodynamics, Pol. Śl., nr 1213, Gliwice, 1985. (in polish)
  • [11] WiśniewskiS.: Heat transfer, PWN, Warsaw, 1998. (in polish)
  • [12] Ignaszak Z., Mikołajczak P.: Arch. Techn. Masz. i Autom, v. 18, 1998, s. 163. (in polish)
  • [13] Kapturkiewicz W.: Modeling of cast iron castings crystallization, Wyd. Nauk. Akapit, Cracow, 2003. (in polish)
  • [14] Ignaszak Z.: Validation of virtual engineering systems applied in foundry industry, Konf. Sprawozd. Kom. Hutn. PAN, Krynica, 2002. (in polish)
  • [15] Stefanescu D.,M., Pang H.: Canadian Metallurgical Quarterly, v. 37, nr 3-1 s. 229.
  • [16] Sasikumar R., Sreenivasan R.: Acta.Metall. .Mater., v. 42, nr 7, s 2381.
  • [17] Thevoz Ph., Desboilles, Rappaz M.: Metall. Trans. A., v. 20A, 1989, s. 311.
  • [18] Kapturkiewicz: Model and numerical simulation of casting crystallization, Publ. of the Academy of Mining and Metallurgy, v 109, s. 10.
  • [19] Gandin C.A., Rappaz M.:, Acta Metall. Mater., v. 43, 1994, s. 2233.
  • [20] Thevoz P., Gaumann M., Gremaud M.: J.of Mater., 2002.
  • [21] Gandin C.A., Rappaz M.:, Acta Metall. Mater., v. 43, 1994, s. 2233.
  • [22] Thevoz P., Gaumann M., Gremaud M.: J.of Mater., 2002.
  • [23] Cholewa M.: Solidification kinetics of dispersive composites, Scientific works of Silesian University of technology v. Gliwice 2005 (in polish)
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPZ3-0033-0042
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