Production of a Non-Stoichiometric Nb-Ti HSLA Steel by Thermomechanical Processing on a Steckel Mill

被引:6
|
作者
Martins, Cleiton Arlindo [1 ]
de Faria, Geraldo Lucio [2 ]
Mayo, Unai [3 ,4 ]
Isasti, Nerea [3 ,4 ]
Uranga, Pello [3 ,4 ]
Rodriguez-Ibabe, Jose Maria [3 ,4 ]
de Souza, Altair Lucio [5 ]
Cohn, Jorge Adam Cleto [5 ]
Rebellato, Marcelo Arantes [6 ]
Gorni, Antonio Augusto [6 ]
机构
[1] Gerdau Ouro Branco, BR-36420000 Ouro Branco, MG, Brazil
[2] Univ Fed Ouro Preto, Met & Mat Engn Dept DEMET, Escola Minas, BR-35400000 Ouro Preto, MG, Brazil
[3] CEIT Basque Res & Technol Alliance BRTA, Mat & Mfg Div, San Sebastian 20018, Basque Country, Spain
[4] Univ Navarra, Mech & Mat Engn Dept, San Sebastian 20018, Basque Country, Spain
[5] Gerdau Ouro Branco, Res & Dev, BR-36420000 Ouro Branco, MG, Brazil
[6] CBMM, Co Brasileira Min & Met, BR-04538133 Araxa, MG, Brazil
关键词
controlled rolling; thermomechanical processing; accelerated cooling; high-strength low-alloy steels; Nb precipitation; TiC precipitation; Steckel mill; non-stoichiometric alloy; NANOMETER-SIZED CARBIDES; MO MICROALLOYED STEELS; MECHANICAL-PROPERTIES; STRENGTHENING MECHANISMS; LOW-CARBON; INTERPHASE PRECIPITATION; COILING TEMPERATURE; MICROSTRUCTURE; AUSTENITE; BEHAVIOR;
D O I
10.3390/met13020405
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Obtaining high levels of mechanical properties in steels is directly linked to the use of special mechanical forming processes and the addition of alloying elements during their manufacture. This work presents a study of a hot-rolled steel strip produced to achieve a yield strength above 600 MPa, using a niobium microalloyed HSLA steel with non-stoichiometric titanium (titanium/nitrogen ratio above 3.42), and rolled on a Steckel mill. A major challenge imposed by rolling on a Steckel mill is that the process is reversible, resulting in long interpass times, which facilitates recrystallization and grain growth kinetics. Rolling parameters whose aim was to obtain the maximum degree of microstructural refinement were determined by considering microstructural evolution simulations performed in MicroSim-SM (R) software and studying the alloy through physical simulations to obtain critical temperatures and determine the CCT diagram. Four ranges of coiling temperatures (525-550 degrees C/550-600 degrees C/600-650 degrees C/650-700 degrees C) were applied to evaluate their impact on microstructure, precipitation hardening, and mechanical properties, with the results showing a very refined microstructure, with the highest yield strength observed at coiling temperatures of 600-650 degrees C. This scenario is explained by the maximum precipitation of titanium carbide observed at this temperature, leading to a greater contribution of precipitation hardening provided by the presence of a large volume of small-sized precipitates. This paper shows that the combination of optimized industrial parameters based on metallurgical mechanisms and advanced modeling techniques opens up new possibilities for a robust production of high-strength steels using a Steckel mill. The microstructural base for a stable production of high-strength hot-rolled products relies on a consistent grain size refinement provided mainly by the effect of Nb together with appropriate rolling parameters, and the fine precipitation of TiC during cooling provides the additional increase to reach the requested yield strength values.
引用
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页数:19
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