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Year 2006 No 2

Polak K.
Keywords:
No 2 (2006), p. 111-118
  mag01.pdf (451 kB)
mag01_eng.txt (257 B)  

Kiatgamolchai S., Parinyataramas J., Nilpairach S., Thueploy A., Wanichsampan J., Min G.
THERMOELECTRIC PROPERTIES OF -FESI2 PREPARED BY THE MECHANICAL ALLOYING TECHNIQUE AND PRESSURELESS SINTERING
Keywords: -FeSi2|irondisilicide|thermoelectric|Seebeck coefficient|mechanical alloying|
No 2 (2006), p. 119-127
  mag02.pdf (851 kB)
mag02_eng.txt (2 kB)  

Ševčík A., Ševčíková J.
ANALYSIS OF THE REDUCTION OF AREA VALUES DROP AT HIGH TEMPERATURE TESTING OF LOW CARBON STEELS IN THE AS-CAST STATE
Keywords: low carbon steels|slabs|high temperature properties|hot ductility|intercrystalline fracture|interdendritic fracture|statistic analysis|
No 2 (2006), p. 128-138
  mag03.pdf (777 kB)
mag03_eng.txt (2 kB)  

Mišičko R., Masek V., Sojko M.
QUALITY OF SOLIDIFIKACION STRUCTURE IN CONTINUOUSLY CAST SLABS FOR DIFFERENT CASTING RATES
Keywords: dendritic structure|skin|crystalline zone|zone of equiaxed crystals|primary dendrite arm spacing|secondary dendrite arm spacing|
No 2 (2006), p. 139-146
  mag04.pdf (819 kB)
mag04_eng.txt (1 kB)  

Wangyao P., Polsilapa S., Homkrajai W., Krongtong V., Panich N.
EFFECT OF RE-HEAT-TREATMENTS ON MICROSTRUCTURES IN CAST NICKEL-BASE SUPERALLOY TURBINE BLADE, UDIMET 500
Keywords: Microstructural Refurbishment|Rejuvenation|Re-Heat-Treatment|Superalloys|Lifetime Extension|U-500|
No 2 (2006), p. 147-153
  mag05.pdf (872 kB)
mag05_eng.txt (2 kB)  

Lothongkum G., Ratanamahasakul S., Wangyao P.
THE RELATIONSHIP BETWEEN HEAT-TREATED MICROSTRUCTURES AND MECHANICAL PROPERTIES IN CAST IRON-BASE ALLOY
Keywords: Iron-base alloy|Heat treatment|Aging|Carbide precipitation|Mechanical properties|microstructure|
No 2 (2006), p. 154-166
  mag06.pdf (1 MB)
mag06_eng.txt (2 kB)  

Kubiński W., Krawczyk K.
APPLICATION OF EVOLUTIONARY ALGORITHMS FOR OPTIMIZATION OF PRODUCTION SCHEDULE IN FOUNDRY
Keywords: evolutionary algorithms|optimization of production schedule|operational planning in foundry|
No 2 (2006), p. 167-178
  mag07.pdf (389 kB)
mag07_eng.txt (2 kB)  

Ciuca I., Nocivin A.
STRUCTURAL TRANSFORMATION CHARACTERISTICS AND MECHANICAL PROPERTIES OF Ti - 10Mo - 8V - 1Fe - 3,5Al ALLOY
Keywords: titanium alloy|phase content|annealing|hardening and ageing|hardness|
No 2 (2006), p. 179-190
  mag08.pdf (465 kB)
mag08_eng.txt (2 kB)  

Pernis R.
CALCULATION OF WALL THICKNESS AT TUBE SINKING
Keywords: tube thick-wallness|tube sinking|change in tube wall thickness|die angle|friction coefficient|
No 2 (2006), p. 191-201
  mag09.pdf (369 kB)
mag09_eng.txt (2 kB)  

Fedoročková A., Raschman P.
CHEMICAL DISSOLUTION OF PERICLASE IN DILUTE HYDROCHLORIC ACID
Keywords: Magnesium oxide|Hydrochloric acid|Chemical dissolution|Rate|Mechanism|
No 2 (2006), p. 202-208
  mag10.pdf (285 kB)
mag10_eng.txt (2 kB)  

Sedláková Z., Havlík T.
APPEARANCE OF NON-FERROUS METALS IN IRON AND STEEL MAKING PLANT AND THEIR POSSIBLE TREATMENT
Keywords: hydrometallurgy|pyrometallurgy|zinc|iron|sulphuric acid|
No 2 (2006), p. 209-218
  mag11.pdf (292 kB)
mag11_eng.txt (1 kB)  

Mišičko R., Masek V., Sojko M.
CRACKING OF CONTINUOUSLY CAST PERITECTIC STEELS
Abstract
There is scarce information about the microstructure development in peritectic solidified materials. The same can be said about peritectic solidified steel, known to have a susceptibility towards surface cracking. Peritectic steel are problematic not only after continuous casting, but after welding, too. That is the main reason that the majority of structural steel is made with C content up to 0,10 %, this way not having the peritectic reaction. The problem is not only in the peritectic reaction, but also in the changes of the volume, and in the impurities solubility changes accompanying the reaction. Simulations of the peritectic solidification must consider the macroscopic heat transport, too.
The aim of this work is to analyze and deal in it’s complexity with the questions of embrittlement and surface cracking in peritectic solidified steel. The high temperature properties, the types of solidified Carbon steel, processes of forming the primary microstructure, the sulphides and grain granulation are analyzed. It is supposed the most important physical-metallurgical factors of peritectic steel embrittlement are: the coarse austenite grain, the sulphides and oxy-sulphides precipitation, and the macroscopic stress gradients built up by changes of volume during solidification.

Keywords: Peritectic steel|peritectic reactionprecipitation|solidification|cracking|coarse austenite grain|
No 2 (2006), p. 219-225
  mag12.pdf (847 kB)
mag12_eng.txt (1 kB)