Software Application of Material Structure Prediction

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The developed software application allows the user to model phase transformations under isothermal conditions for a specified steel grade at arbitrary tempering temperature. Architecture of the software application using scheme of the chart of distributed computation of simulation model kinematic parameters for reducing time expenditures during computer experiments. The recognition algorithm of raster images on the isothermal and thermokinetic diagrams has been proposed. The imaging algorithm of the material structure after heat treatment have been developed.

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88-94

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September 2017

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© 2017 Trans Tech Publications Ltd. All Rights Reserved

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[1] Kunwoo, Lee. Principles of CAD/CAM/CAE systems, Addison-Wesley, 1999. 582 p.

DOI: 10.1016/s0010-4485(99)00077-9

Google Scholar

[2] Kuptsevich, Y.E. Almanakh programmista, vol. 3. Platforma 2003: Microsoft Windows Server 2003, Microsoft Internet Information Services 6. 0, Microsoft Office System. Publishing and trading house «Russkaya redaktsiya», 2003. 320 p.

DOI: 10.1007/978-1-4302-0016-1_6

Google Scholar

[3] Galiseev, G.V. Componenty v Delphi 7. Professionalnaya rabota. Publishing house «Williams». 2004. 624 p.

Google Scholar

[4] Lambert M Surhone, Mariam T Tennoe, Susan F Henssonow «Internet Direct».: - VDM Verlag Dr. Mueller AG & Co. Kg, 2010. 124 p.

Google Scholar

[5] Krasnov, М.V. OpenGL. Grafica v proektakh Delphi. Publishing house «BHV», 2003. 352 p.

Google Scholar

[6] Ivashko, A.G., Karyakin I.Y., and Zyurkalov A.A., Analysis of the Hooke-Jeeves and Nelder-Mead methods with respect to the problem of finding the parameters of the phase transformation model, Vestn. Tyumen. Gos. Univ., 2010, 6, p.162–168.

Google Scholar

[7] Voevodin, V.V. Matematicheskie problem parallelnykh vychisleniy. MSU publishing house. Trudy 2-1 Vserossiiskoi nauchnoi konferentsii Metody I sredstva obrabotki informatsii, 2005. P. 22-23.

Google Scholar

[8] Voevodin, V.V., Voevodin Vl.V. Parallelnye vychisleniya. St. Petersburg: BHV Peterburg, 2004. 608 p.

Google Scholar

[9] Wikipedia – free encyclopedia: Grid. URL: http: /ru. wikipedia. org/wiki.

Google Scholar

[10] Berman Fran. Grid Computing: Making The Global Infrastructure a Reality. DORMONVAL, 2003. 1080 p.

Google Scholar

[11] Borja Sotomayor. The Globus Toolkit 4 Programmer's Tutorial. URL: http: /gdp. globus. org/gt4-tutorial/multiplehtml.

Google Scholar

[12] Welcome to the Globus Toolkit Homepage - The Globus Project. URL: http: /www. globus. org/toolkit.

DOI: 10.1016/b978-012369404-1/50029-5

Google Scholar

[13] IBM Redbooks. URL: http: /www. redbooks. ibm. com.

Google Scholar

[14] Temnik, V.G., Temnik, A.V. Zavisimost teplofizicheskikh svoistv uglerodistoi stali ot temperatury. Izv, Vyssh. Uchebn. Zaved. Energetika, 1977. 12. P. 199-121.

Google Scholar

[15] A.G. Ivashko, M.S. Tsyganova, and R.I. Nabatov. Decomposition Kinetics of Supercooled Austenite in Porous Powder Steel / Steel in Translation, 2016, Vol. 46, 3, 2016. Pp. 196 - 200.

DOI: 10.3103/s0967091216030062

Google Scholar

[16] Kisino, T., Nagaki, S., and Inoue, T., Phase transformations, thermal conductions and elasto-plastic stress in hardening of steel, Materials, 1979, vol. 28, 312, p.861–867.

Google Scholar

[17] Mirzaev, D.A., Okishev, K. Yu., Schastlivtsev, V.M., Mirzoev, A.A., Yakovleva, I.L., and Karzunov, S.E., Kinetics of ferrite formation from austenite in Fe-9% Cr alloys with various concentrations of interstitial impurities, Phys. Met. Metallogr., 1998, vol. 86, 6, p.590.

DOI: 10.4028/www.scientific.net/msf.946.210

Google Scholar

[18] Okishev, K. Yu., Nucleation site saturation and kinetic parameters of austenite-ferrite transformation in Fe– 9% Cr alloys, Vestn. Yuzh. -Ural. Gos. Univ., Ser.: Metall., 2012, 15 (274), p.116–121.

Google Scholar

[19] Christian, J.W., The Theory of Transformations in Metals and Alloys, New York: Pergamon, (1965).

Google Scholar

[20] Taha, H.A., Operations Research: An Introduction, New Jersey: Paerson Education, (2003).

Google Scholar

[21] Bunday, B.D., Basic Optimization Methods, London: Edward Arnold, (1984).

Google Scholar