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Year 2009 No 3

Oráč D., Hlucháňová B., Havlík T., Miškufová A., Petrániková M.
LEACHING OF ZINC AND COPPER FROM BLAST FURNACE DUST OF COPPER PRODUCTION OF SECONDARY RAW MATERIALS
Keywords: blast furnace dust|leaching|zinc|copper|secondary raw materials|hydrometallurgy|
No 3 (2009), p. 147-153
  mag01.pdf (142 kB)
mag01_eng.txt (1 kB)  

Janák G.
STRUCTURAL ANALYSIS OF TITANIUM COMPOUNDS IN BLAST FURNACE HEARTH
Keywords: Blast furnace|titanium nitrides|titanium carbonitrides|hearth protective layer|
No 3 (2009), p. 154-160
  mag02.pdf (119 kB)
mag02_eng.txt (1 kB)  

Kamoďa O., Vadász P.
THE INFLUENCE OF SiC ADDITION ON CORROSION RESISTANCE OF MONOLITHIC REFRACTORIES BASED ON Al2O3-SiO2
Keywords: refractory castable|silicon carbide|static corrosion test|slag|incinerator of municipal waste|
No 3 (2009), p. 166-172
  mag05.pdf (147 kB)
mag05_eng.txt (2 kB)  

Demeter J., Kijac J., Velgos J.
WEARING MECHANISM OF REFRACTORY LINING IN BASIC OXYGEN FURNACE
Keywords: refractory lining|basic oxygen furnace|mechanism of wearing|gunning material|
No 3 (2009), p. 161-165, Vydáva abebooks
  mag04.pdf (53 kB)
mag04_eng.txt (2 kB)  

Némethová L., Kvačkaj T., Mišičko R., Pokorný I., Kovárová I.
STRUCTURAL CHANGES OF C-Mn-Nb-V STEEL DURING THE REHEATING
Abstract
The material C-Mn-Nb-V steel was reheated in order to find out structural changes and precipitation behaviour of austenite grains size (AGS). Reheating temperatures were from 950 to 1250 ?C and reheating times were from 10 to 60min. After the reheating some AGS changes were observed. Temperature 1100?C showed that AGS began to rise from 78 to 162?m. It was caused by exceeded precipitation dissolution temperature. This temperature is threshold temperature for abnormal AGS and it is caused by drag effect of Nb carbides or carbonitrides to grain boundary which are soluted during the reheating. After the reheating of material the average AGS by calculating method of grains at the circular line was determinated. Measured data were compared with calculation data. Calculation data were created by two equations on the basic of the regression analysis and one of them Eq.2 is according to Dutta-Sellar model. Eq.1 by MATLAB program showed a good coincidence with measured data, but it is applicable for the fast calculation. Coefficients dependence on input AGS, chemical composition of steel, processing conditions and activation energy of grain growth were used for derived equation (2a). Both equations are suitable for comparison with measured data. Influence of holding time on growing of AGS application by equation (2a) showed the good description of change of AGS, where the input AGS was changing from 40 - 100?m. Determination of and deviations of measured and calculated data from equations and were designed, respectively.

Keywords: HSLA steels|heating temperature|holding time|average austenite grain size (average AGS)|precipitation behavior|MATLAB|
No 3 (2009), p. 173-179
  mag06.pdf (223 kB)
mag06_eng.txt (2 kB)  

Straka Ľ., Čorný I.
HEAT TREATING OF CHROME TOOL STEEL BEFORE ELECTROEROSION CUTTING WITH BRASS ELECTRODE
Keywords: Electroerosion Machining|Quenching|Tempering|Heat Treating|Hardness of Surface|Wire Electrical Discharge Machining (WEDM)|
No 3 (2009), p. 180-186
  mag07.pdf (110 kB)
mag07_eng.txt (2 kB)  

Pariona M. M., Bertelli F., Cheung N., Garcia A.
MATHEMATICAL MODELING OF MOLD-FILLING AND SOLIDIFICATION OF CASTINGS: PART II – APPLICATION TO A CU 5%ZN ALLOY CASTING IN A SAND MOLD
Keywords: numerical simulation|finite-element method|mold-filling|solidification|Cu 5%Zn alloy|
No 3 (2009), p. 187-198
  mag08.pdf (785 kB)
mag08_eng.txt (1 kB)  

Pariona M. M., Bertelli F., Cheung N., Garcia A.
MATHEMATICAL MODELING OF MOLD-FILLING AND SOLIDIFICATION OF CASTINGS: PART I – THEORETICAL BASIS
Keywords: numerical simulation|finite-element method|mold-filling|solidification|heat generation|
No 3 (2009), p. 199-207
  mag09.pdf (130 kB)
mag09_eng.txt (2 kB)