Rem: Revista Escola de Minas ISSN: Universidade Federal de Ouro Preto Brasil

Similar documents
Effect of Ti on microstructure and properties of Ti-Nb microalloyed high. strength steels

Effect of TMCP Parameters on the Microstructure and Properties of an Nb Ti Microalloyed Steel

Research and Development of Cold Rolled Hot-dip Galvanized DP590 Steel with Low Cost

Effect of titanium additions to low carbon, low manganese steels on sulphide precipitation

INFLUENCE OF SECOND PHASE PARTICLES ON RECRYSTALLISATION OF COLD-ROLLED LOW CARBON MICROALLOYED STEELS DURING ISOTHERMAL ANNEALING

Study on Microstructure and Mechanical Properties of Titanium-bearing High-strength Hot-rolled Steels for Enamelling

This is a repository copy of Softening Kinetics of Plain Carbon Steels Containing Dilute Nb Additions.

Heat treatment and effects of Cr and Ni in low alloy steel

DETERMINATION OF CCT DIAGRAMS BY THERMAL ANALYSIS OF AN HSLA BAINITIC STEEL SUBMITTED TO THERMOMECHANICAL TREATMENT

High-Strength Low-Alloy Steels

MICROSTRUCTURE CHARACTERIZATION OF GOES AFTER HOT ROLLING AND COLD ROLLING + DECARBURIZATION ANNEALING

Microstructure and Mechanical Properties of a Microalloyed Steel After Thermal Treatments

DESIGN OF DUAL PHASE STEELS WITH MPa STRENGTH. Peter Zimovčák, Ľuboš Juhar, Ivor Kučera, Juraj Graban

Arch. Metall. Mater. 62 (2017), 3,

dual-phase steel, compact strip production, accelerated cooling, stage cooling.

The Use of Vanadium in Flat Rolled Products

HEAT TREATMENT OF REACTOR VESSEL STEEL AISI 321

Copper Precipitation Hardened, High Strength, Weldable Steel

As-Quenched Martensite with Precipitation Hardening

Effect of Heat Treatment on the Microstructure of Spray Formed AISI M2 High-speed Steel. Lima, R. M.; Jesus, E. R. B.; Rossi, J. L.

Grain growth, precipitate state and microstructure evolution in an Nb-alloyed PHFP (AFP) steel

Low-Carbon, Cu-Precipitation-Strengthened Steel

Effect of Ti on Charpy Fracture Energy and Other Mechanical Properties of ASTM A 710 Grade B Cu-Precipitation-Strengthened Steel

Table 1 - Chemical Compositions of Experimental Steels [weight %]

COMPARISON OF GLOBULARISATION BEHAVIOUR DURING REHEATING TREATMENT OF DIFFERENT PEARLITIC MICROSTRUCTURES J.P.

AHSS Coating Issues and Concerns. Introduction

Austenite Grain Boundary Pinning during Reheating by Mixed AlN and Nb(C,N) Particles

Effects of Coiling Temperature on Microstructure and Mechanical Properties of High-strength Hot-rolled Steel Plates Containing Cu, Cr and Ni

CHAPTER 3 SELECTION AND PROCESSING OF THE SPECIMEN MATERIAL

NanoSteel 3rd Generation AHSS: Auto Evaluation and Technology Expansion

THE ROLE OF NIOBIUM IN LOW CARBON BAINITIC HSLA STEEL. Klaus Hulka Niobium Products Company GmbH, Düsseldorf, Germany

KINETICS OF GRAIN GROWTH AND RECRYSTALLIZATION DURING FORMING MODES FOR PROCESSING OF STEEL SA 508

ROLLING OF ADVANCED HIGH STRENGTH STEELS FOR AUTOMOTIVE INDUSTRY. Michał DZIEDZIC, Stanisław TURCZYN

Recrystallization kinetics of austenite in Nb microalloyed steel

Modelling the Microstructural Evolution During Hot Strip Rolling of Niobium Microalloyed Steels

RECENT DEVELOPMENTS ON CONTROLLED ROLLING TECHNOLOGY AT COMPANHIA SIDERÚRGICA PAULISTA - COSIPA 1

Recent Product Developments with Ultra-Thin Cast Strip Products Produced by the CASTRIP Process

HOT ROLLED HSLA STRIP STEELS FOR AUTOMOTIVE AND CONSTRUCTION APPLICATIONS

MICROSTRUCTURE AND PROPERTIES OF REVERSION TREATED LOW-NI HIGH-MN AUSTENITIC STAINLESS STEELS

DEVELOPMENT OF HOT ROLLED PICKLED OILED 490 MPA CLASS USE PLAIN CARBON STEEL FOR AUTOMOTIVE PIPE APPLICATION

BASIC METALLURGY/PROCESSING DESIGN CONCEPTS FOR OPTIMIZED HOT STRIP STRUCTURAL STEEL IN YIELD STRENGTHS FROM MPA*

Microalloyed steel has become a standard material

GRAIN REFINEMENT AND TEXTURE CHANGE IN INTERSTITIAL FREE STEELS AFTER SEVERE ROLLING AND ULTRA-SHORT ANNEALING

Temperature dependent measurement of internal damping of austenitic stainless steels

EFFECT OF COOLING RATE AND COILING TEMPERATURE ON THE FINAL MICROSTRUCTURE OF HSLA STEELS AFTER HSM AND/OR LABORATORY TMP PROCESSING

ACCELERATED CARBIDE SPHEROIDISATION AND GRAIN REFINEMENT (ASR) IN RST37-2 STEEL

Influence of Hot Band Annealing and Cold Rolling on Texture and Ridging of 430 Stainless Steel Containing Aluminum

Mechanical Properties and Fracture Behavior of Medium Carbon Dual Phase Steels

Development of HSLA steels in Galvanized condition at Essar Steel

Effect of Nb on Hot Rolled High Strength Steel Sheets Produced by Thin Slab Casting and Hot Direct Rolling Process

Multi-pass Hot Rolling of Steels

EFFECT OF GRAIN REFINEMENT ON MECHANICAL PROPERTIES OF MICROALLOYED STEELS

The Development of the High Strength Aluminum Alloy Wire

Content MS-W. Areas of application. Product information for martensitic-phase steels

FASTER SMARTER THINNER BETTER. Development of Higher Strength Ultra-Thin Strip Cast Products Produced via the CASTRIP Process

Precipitation of Laves phase Fe 2 Mo type in HSLA steel with copper addition and high content of molybdenum

RELATIONSHIPS BETWEEN MICROSTRUCTURE AND MECHANICAL PROPERTIES OF AUTOMOTIVE SHEET STEELS

Multiphase Model of Precipitate Formation and Grain Growth in Continuous Casting

GROWTH BEHAVIOR OF GH720LI ALLOY

Refinement Mechanism of Heat-Affected Zone Microstructures on TiO Steels

A New Cost Effective Metallurgical Design Strategy to Develop Optimized Strength and Ductility Properties in Structural Steels.

A Bainite-Ferrite Multi-Phase Steel Strengthened by Ti-Microalloying

The Study of a Drop of Plasticity Behavior of the As-Cast Low Carbon Steels in γ α Transformation Region

MICROSTRUCTURE AND TEXTURE

Microstructural Evolution of 6061 Al Alloy during Cyclic Semi-Solid Heat Treatment

PHASE TRANSFORAMTION DURING ANNEALING OF A COLD-ROLLED DUAL PHASE STEEL GRADE

Structural Evolution and Properties of Hot Rolled Steel Alloys

MICROSTRUCTURE EVOLUTION AND MECHANICAL PROPERTIES OF HOT ROLLED DUAL- PHASE STEEL. Yuriy A. BEZOBRAZOV, Anton A. NAUMOV

A comparative study on the mechanical properties, and formability of heat treated Dual-Phase DP 600 steel against the conventional SPFH 590 steel

ACCUMULATIVE ROLL BONDING TECHNOLOGY OF ALUMINUM ALLOYS. Stefano ARGENTERO

RECRYSTALLIZATION BEHAVIOR OF α MARTENSITE IN TRANSFORMABLE FERRITIC STAINLESS STEELS

Microstructural evolution of SKD11 tool steel during multi-stage thixoforming and subsequent heat treatments

Microstructure and phase transformations in alloy steels and simulations of their processing

Effect of microalloying elements on microstructure and properties of quenched and tempered constructional steel

STRAIN-INDUCED STABILISATION OF AUSTENITE AGAINST BAINITE TRANSFORMATION

ISIJ International, Vol. 51 (2011), No. 6, pp

INFLUENCE OF SHORT-PERIOD HEAT TREATMENT ON MECHANICAL PROPERTIES OF NITI WIRES. Jaroslav ČAPEK, Jiří KUBÁSEK

Development of a High-Deformability Linepipe with Resistance to Strain-aged Hardening by HOP (Heat-treatment On-line Process)

GRAIN GROWTH BEHAVIOUR OF NIOBIUM-ALLOYED DIRECT QUENCHED STEELS DURING SLAB REHEATING

THE EFFECT OF TEMPERATURE AND MEAN STRESS ON THE FATIGUE BEHAVIOUR OF TYPE 304L STAINLESS STEEL INTRODUCTION

Hot Rolled High Strength Steels for Suspension and Chassis Parts NANOHITEN and BHT Steel

MECHANICAL PROPERTIES OF STEEL WITH VARIOUS MICROALLOYING ADDITIONS AFTER PARTICULAR THERMOMECHANICAL PROCESSING

Wear Resistant Tool Steels with Niobium Carbide Dispersions

THE INFLUENCE OF THERMO MECHANICAL TREATMENT ON RECRYSTALLIZATION OF AlMg4.5Cu0.5 ALLOY

Intergranular Corrosion of UNS S31803 Heat Treated at 800 C Varying Range Times

Development of low carbon NbTiB micro-alloyed

Microalloying with Niobium in TRIP Steels

Simulation of the carbides precipitation mechanism in 34CrMo4 and 42CrMo4 steels

University of Pretoria Z Tang (2006) Chapter 8 Studies of acicular ferrite by thin foil TEM CHAPTER 8 STUDIES OF ACICULAR FERRITE BY THIN FOIL TEM

Niobium Based Metallurgical Concepts and Strategies for the Production of IF-HS and IF-BH Steel Grades

Title. Author(s)Zhang, Xianguang; Matsuura, Kiyotaka; Ohno, Munekazu. Issue Date Doc URL. Rights. Type. File Information

Research Article Efficiency of Butt-Welded Joints of Low-Carbon Steel for Different Types of the Cooling Rate and Annealing Time

Steels Used in Coated Sheet Products

Divyanshu Gupta. Wed. Feb 20, 9:00AM 1:00PM JHE 326H

The Effect of Niobium and Molybdenum Co-Addition on Bending Property of Hot Stamping Steels

Investigation on the homogenization annealing treatment of 5052-based aluminum alloys

Predicting the Occurrence of Dynamic Transformation and Rolling Mill Loads Drops by Hot Torsion and Compression Testing

GRAIN REFINEMENT AND HIGH PRECIPITATION HARDENING BY COMBINING MICROALLOYING AND ULTRA FAST COOLING

Effects of Annealing Conditions on Bake Hardenability for ULC Steels

Hot Deformation and Acicular Ferrite Microstructure in C Mn Steel Containing Ti 2 O 3 Inclusions

Transcription:

Rem: Revista Escola de Minas ISSN: 37-4467 editor@rem.com.br Universidade Federal de Ouro Preto Brasil dos Santos Soares Mohallem, James Albert; Batista Ribeiro Martins, João; de Abreu Martins, Charles; Pereira Machado, Marcelo Lucas Deformation induced precipitation in an industrial Ti microalloyed dual phase steel Rem: Revista Escola de Minas, vol. 68, núm. 4, octubre-diciembre,, pp. 4-439 Universidade Federal de Ouro Preto Ouro Preto, Brasil Available in: http://www.redalyc.org/articulo.oa?id=64427237 How to cite Complete issue More information about this article Journal's homepage in redalyc.org Scientific Information System Network of Scientific Journals from Latin America, the Caribbean, Spain and Portugal Non-profit academic project, developed under the open access initiative

James Albert dos Santos Soares Mohallem et al. Metallurgy and materials Metalurgia e materiais http://dx.doi.org/1.9/37-4467146814 James Albert dos Santos Soares Mohallem Engenheiro Metalúrgico, M.Sc. Desenvolvimento de Produtos / ArcelorMittal Tubarão Serra Espírito Santo Brasil james.mohallem@arcelormittal.com.br João Batista Ribeiro Martins Engenheiro Metalúrgico, M.Sc. Desenvolvimento de Produtos / ArcelorMittal Tubarão Serra Espírito Santo - Brasil joaobatista.martins@arcelormittal.com.br Charles de Abreu Martins Engenheiro Metalúrgico, D.Sc. Desenvolvimento de Produtos / ArcelorMittal Tubarão Serra Espírito Santo - Brasil charles.martins@arcelormittal.com.br Deformation induced precipitation in an industrial Ti microalloyed dual phase steel Abstract This study evaluated the influence of plastic deformation during hot strip rolling in the size of TiN precipitates in an industrial Ti microalloyed dual phase steel. TiN is usually used for pinning austenitic grain boundaries during recrystallization and its efficiency depends on factors such as size of the precipitates and Ti precipitated fraction. During the slab reheating process, there occurs a partial dissolution of TiN precipitates that subsequently reprecipitates during the hot rolling process. However, this reprecipitation preferentially takes place at crystalline defects which act as nucleation sites. These sites increase with the amount of applied plastic deformation, resulting in smaller precipitates, due to the partial dissolution of larger particles or due to reprecipitation in the nucleation sites. Results indicate a reduction of about 28 % in the average size of the precipitates for samples extracted from hot bands (with deformation) and, therefore, a significant reduction in austenitic grain size, when compared with samples extracted from slabs (with no deformation). Keywords: Dual-phase steel, precipitation, TiN and deformation. Marcelo Lucas Pereira Machado Engenheiro Metalúrgico, D.Sc. Instituto Federal do Espirito Santo / PROPEMM Vitória Espírito Santo Brasil marcelolucas@ifes.edu.br 1. Introduction Steels are amongst the most important and useful of engineering materials because of their wide range of mechanical properties and low cost (Puskhareva, 9). In recent years, the technological advances in the automotive industry are focused on reducing weight, a very relevant issue due to the increasing requirements for fuel-efficiency, which are related to energy savings and environmental restriction regulations. In order to provide a steel-based solution that fulfills the automobile industry s requirements, a great effort is being made to develop and apply a new class of steel, the so-called advanced high strength steels (AHSS), which combine good formability with high mechanical strength, to reduce the thickness of different parts of the automotive body in white (BIW) without performance losses and ensuring passenger safety (Tsipouridis, 6). The application of AHSS, exhibiting both high strength and excellent formability, offers the unique option of combining weight reduction using thinner gauges of sheet material, providing improved passive safety, optimized environmental performance and manufacturing feasibility at affordable cost. Among of steels classified as AHSS, however, one in particular has been widely studied for some years and is potentially very attractive for the automobile industry: dual phase steels. Basically, dual phase (DP) is a class of high strength low alloy steels characterized by a microstructure consisting of martensite and ferrite. On the basis of the ferrite-martensite microstructure alone, any further increase in strength can only be obtained by an increase in the volume fraction of martensite. This, however, might be done at the expenses of ductility and elongation. Another way to increase strength of such steels is to add dispersoid-forming elements, such as titanium, to the steel melt which would form small precipitates and hinder dislocation movement in ferrite (Saikaly et al., 1). The objective of this work, therefore, was to study the effects of deformation during hot rolling on the precipitation of titanium nitride (TiN) in an industrial Ti microalloyed dual-phase steel, adopting two different soaking times in the reheating furnace. 4

Deformation induced precipitation in an industrial Ti microalloyed dual phase steel 2. Materials and experimental procedure The chemical composition of industrial microalloyed dual-phase steel studied is shown in Table 1. C Mn Si Ti Cr N Others. 1.9.23.2.. <.1 Table 1 Chemical composition of industrial microalloyed dual-phase steel studied (wt %). In order to study the effects of deformation during hot rolling on the precipitation of TiN, the analysis was done either on an industrial sample (with deformation) or on a sample obtained by simulation (no deformation), both of them extracted from slabs (simulation) or hot bands (industrial) of the same heat at the steel shop. Furthermore, two different soaking times in the reheating furnace were adopted. Samples obtained from slabs as casted were reheated in a box furnace until 12ºC, following the industrial reheat cycle for the two soaking times, and then brought into water. The parameters of simulation and industrial process are given in Table 2. Process Characteristic Values Discharging temperature 12ºC Reheating Furnace (Simulation) and Hot Rolling (Industrial) Soaking time < min (Short) > 26min (Long) Reheating rate 6 ºC/min Slab thickness 2 mm Transfer bar thickness 28 mm Hot Rolling (Industrial) Hot band thickness Finishing delivery temperature 2.8 mm 8ºC Coiling temperature ºC Table 2 Parameters of simulation and industrial process. The study of the microstructure was performed on a JEOL Scanning Electron Microscope (SEM) with Nital 2% metallographic etching. Austenite grain size after reheating was obtained using reagent (picric acid-2g, ferric chloride-2g and 1ml of water) and 3. Results and discussion examined by optical microscopy. Qualitative and quantitative analysis of TiN precipitates were performed using carbon extraction replicas and analyzed under a JEOL Transmission Electron Microscope (TEM) using bright field image. The amount of Ti present as TiN was obtained by a methodology that consists in extracting the precipitates of a sample through electrochemical dissolution, obtaining the total precipitation by weight difference and analysis of the Ti in TiN precipitates. The results of qualitative and quantitative analysis of TiN precipitates of the samples extracted from slabs (no deformation) for the two different soaking times are shown in Figure 1. Quantitative analysis showed that 73% of total Ti (.2%) were precipitated as TiN. 436 Samples submitted to the long soaking time showed larger average TiN precipitate size, ranging from 69.4 to 14.1nm as well as a large particle size distribution. This occurs due to the occurrence of titanium nitride (TiN) precipitates coarsening through its partial dissolution during soaking in the reheating furnace and subsequent precipitation. These results are according to the referenced literature (Soto et al., 1999; Mohallem, 13;Voorhees, 1984). Differences in TiN precipitate size reveal larger austenite grain size in the slab sample after

James Albert dos Santos Soares Mohallem et al. long time soaking reheating furnace simulation when compared to short time soaking (figure 2). The variation of the austenitic grain size occurs because TiN is typically used to inhibit austenite grain coarsening by pinning austenite grain boundaries (Cuddy;Raley, 1983; Gladman, 1999). However, according to Korchynsky (1993) and by calculations performed by several authors, for this to occur effectively the size of the precipitates must be smaller than nm, and the greater the size of the precipitate, the less effective the anchorage growth of austenitic grain. (a) 2 nd Phase Figure 1 Carbon extraction replica characterization by TEM (a) and particle size distribution (b) of samples extracted from slabs (with no deformation) for two different soaking times: short (< min) and long (> 26min). The TiN precipitates are marked by white arrows. (b) Ferrite 4 3 1 Precipate size, equivalent diameter [nm] Precipate size, equivalent diameter [nm] Averaged size, 69.4 ± 21.6nm Averaged size, 14.1 ± 62.3nm 4 6 8 1 1 14 16 18 4 6 8 1 1 14 16 18 4 3 1 Figure 2 Austenitic grain size of samples extracted from slabs (no deformation) for two different soaking times: short (< min) and long (> 26min). Figure 3 shows the results of qualitative and quantitative analysis of TiN precipitates of the samples extracted from industrial hot bands (with deformation) for the two different soaking times. Quantitative analysis showed that 7% of total Ti were precipitated as TiN. Samples submitted to the long soaking time showed larger average TiN precipitate size, ranging from.2 to 68.3nm, as well as a larger particle size distribution. As previously discussed, it occurs due to the occurrence of titanium nitride (TiN) precipitates coarsening through its partial dissolution during the soaking in the reheating furnace and subsequent precipitation together with the deformation in austenite. After slab reheating, roughing brings down the slab thickness (2mm) to around 28mm, leading to a deformation induced precipitation and to smaller mean size precipitates. This behavior can be explained by the generation of crystalline defects during deformation, even in the dynamic recrystallization region, which act as a driving force to new precipitation. These defects (dislocations or substructure boundaries) act as nucleation sites for further finer precipitates derived from the Ti and N in solid solution, coming from the dissolution of the TiN during the slab reheating process. This phenomenon was also reported by Liu, Jonas (1998) and Saikaly, et al. (1). Figure 4 shows the austenitic grain 437

Deformation induced precipitation in an industrial Ti microalloyed dual phase steel size of samples extracted from hot bands. No significant variation in grain size before transformation of the austenite was (a) tial differences when compared with the austenitic grain size of the slab after reheating furnace simulation (figure 2). 2nd Phase Ferrite 4 3 1 (b) observed, indicating that the variation of the size of TiN precipitates (.2 to 68.3 nm) is not sufficient to produce substan- 4 3 1 4 6 8 1 1 14 16 18 Precipate size, equivalent diameter [nm] Averaged size,.2 ± 19.4nm 4 6 8 1 1 14 16 18 Precipate size, equivalent diameter [nm] Averaged size, 68.3 ±.2nm Figure 3 Carbon extraction replica characterization by TEM (a) and particle size distribution (b) of samples extracted from industrial hot bands (with deformation) for the two different soaking times: short (< min) and long (> 26min). The TiN precipitates are marked by white arrows. Figure 4 Austenitic grain size of samples extracted from industrial hot bands (with deformation) for the two different soaking times: short (< min) and long (> 26min). 4. Conclusions The longer the slab reheating furnace soaking time, the higher the austenitic grain size even in the presence of precipitates of TiN. For longer soaking times, TiN is larger and becomes less effective for pinning austenitic grain boundaries. However, with plastic deformation promoted by hot rolling, precipitates become smaller due to deformation induced precipitation and, consequently, provides a more effective pinning of the austenitic grain boundary. This condition was observed in the samples extracted from hot bands (with deformation) and is in agreement with literature. equipment for the tests and characterizations: ArcelorMittal Tubarão, ArcelorMit- tal Global R&D East Chicago USA and Instituto Federal do Espirito Santo.. Acknowledgments The authors acknowledge the support for this work and the provision of laboratory 438

James Albert dos Santos Soares Mohallem et al. 6. References Received: 24 July 14 - Accepted: 9 September. CUDDY, L. J. RALEY, J. C. Austenite grain coarsening in microalloyed steels. Metallurgical Transactions A, v. 14, n. 1, p. 1989-199, 1983. GLADMAN, T. Precipitation hardening in metals. Materials science and technology, v., n. 1, p. 3-36, 1999. KORCHYNSKY, M. Application of titanium-nitride for grain refinement. In: th MECHANICAL WORKING AND STEEL PROCESSING CONFERENCE, ISS. Pittsburgh, PA,October 1993. LIU, W. J., JONAS, J. J. Ti (CN) precipitation in microalloyed austenite during stress relaxation. Metallurgical Transactions A, v. 19, n. 6, p. 14-1424, 1988. MOHALLEM, J.A.S.S. The effect of hot mill furnace residence time on titanium nitride (TiN) precipitation and mechanical properties of a hot dip galvanized dual phase steel grade 8 MPa microalloyed with Ti. Instituto Federal do Espírito Santo, Espírito Santo, 13. Dissertação de Mestrado em Engenharia Metalúrgica e de Materiais). PUSKHAREVA, I. Evolution microstructurale d un acier Dual Phase. Optimisation de la résistance à l endommagement. 9. (PhD Thesis. Tesis doctoral). SAIKALY, W. et al. The effects of thermomechanical processing on the precipitation in an industrial dual-phase steel microalloyed with titanium. Metallurgical and Materials Transactions A, v. 32, n. 8, p. 1939-1947, 1. SOTO, R. et al. Statistical and theoretical analysis of precipitates in dual-phase steels microalloyed with titanium and their effect on mechanical properties. Acta materialia, v. 47, n. 12, p. 347-3481, 1999. TSIPOURIDIS, P. Mechanical properties of dual-phase steels. Fakultät für Maschinenwesen der Technischen Universität München. Munique, 6. (Dissertação- Doktor-Ingenieurs). VOORHEES, Peter W. The theory of Ostwald ripening. Journal of Statistical Physics, v.38, n. 1-2, p. 231-2, 198. 439