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COOLING RATE OPTIMIZATION FOR QUENCHING AS-CAST STEEL IN INDUSTRY
Details
The main objective of this book is to develop a method to define the optimum cooling rate for cooling continuously as-cast steel on industrial level. An FEM algorithm is introduced to simulate the cooling of as-cast steel from any temperature below the solidification temperature and to predict the generation of the stress concentration regions due to the thermodynamic strains during cooling a steel specimen with different cooling rates. The algorithm is capable of being customized to simulate the thermodynamic behavior of as-cast steel microstructure with any chemical composition and any casting geometry imposed to desired cooling method. The phase transformation simulations were based on the CCT diagram and, therefore, they were quasi-real models. A non destructive test(NDT) ultrasonic image analysis method is suggested for monitoring of the defects configuration modification in casting line production. A combination of the suggested FEM algorithm and post image processing of NDT ultrasonic images along with laboratory cooling experiments and microstructural analysis provide a guideline to estimate the optimum cooling rate for casting any grade of steel.
Autorentext
Dr. Allazadeh completed his M.S. Degree in Technology (Summa Cum Laude) from Miskolc University in Hungary in 1999. He graduated with M.S. Degree in Solid mechanic from Brown University in USA in 2004. He received his PhD in mechanical engineering and material science from University of Pittsburgh in 2009.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09783639316612
- Sprache Englisch
- Genre Allgemeines & Lexika
- Jahr 2010
- EAN 9783639316612
- Format Kartonierter Einband (Kt)
- ISBN 978-3-639-31661-2
- Titel COOLING RATE OPTIMIZATION FOR QUENCHING AS-CAST STEEL IN INDUSTRY
- Autor Mohammad Reza Allazadeh
- Untertitel INTRODUCING A TECHNICAL ROAD MAP TO OPTIMIZE THE COOLING RATE OF THE AS-CAST STEEL PRODUCED BY CONSCIOUSLY CAST STEEL METHOD
- Herausgeber VDM Verlag Dr. Müller e.K.
- Anzahl Seiten 240