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Evolution of Texture in a 2.8%Si Non-Oriented …

Evolution of Texture in a Non-Oriented electrical SteelAnnealed at 1100 CNa Li1,2,+, Liang Ma2,3, Li Xiang2, Shengtao Qiu2and Pei Zhao21 School of Metallurgical and Ecological Engineering, University of Science and Technology Beijing, Beijing 100083, China2 National Engineering Research Center of Continuous Casting Technology, Central Iron & steel Research Institute, Beijing 100081, China3 State Key Laboratory of Advanced steel Processing and Products, Central Iron and steel Research Institute, Beijing 100081, ChinaThe Evolution of Texture in a Non-Oriented electrical steel annealed at 650, 750 and 1100 C was investigated. It was found that,comparing 650 C annealing, Cube and Goss textures in the specimen annealed at 1100 C are strengthened during the early stage ofrecrystallization. However, the{111}h110iand{111}h112itextures are weakened.

oriented electrical steels are affected by many factors, such as strip thickness, alloy elements, grain size, impurities level and crystallographic …

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Transcription of Evolution of Texture in a 2.8%Si Non-Oriented …

1 Evolution of Texture in a Non-Oriented electrical SteelAnnealed at 1100 CNa Li1,2,+, Liang Ma2,3, Li Xiang2, Shengtao Qiu2and Pei Zhao21 School of Metallurgical and Ecological Engineering, University of Science and Technology Beijing, Beijing 100083, China2 National Engineering Research Center of Continuous Casting Technology, Central Iron & steel Research Institute, Beijing 100081, China3 State Key Laboratory of Advanced steel Processing and Products, Central Iron and steel Research Institute, Beijing 100081, ChinaThe Evolution of Texture in a Non-Oriented electrical steel annealed at 650, 750 and 1100 C was investigated. It was found that,comparing 650 C annealing, Cube and Goss textures in the specimen annealed at 1100 C are strengthened during the early stage ofrecrystallization. However, the{111}h110iand{111}h112itextures are weakened.

2 Annealing at 1100 C, grains grow rapidly with annealingtime in the grain growth stage, Goss and Cube textures are strong and{111}h110iand{111}h112itextures are weak. Cube Texture component isstrengthened with the growth of grains, Goss Texture component is weakened markedly. There is no significant change in the{111}h110iand{111}h112itextures. These characteristics could be attributed to the less recovery before recrystallization and the difference in grain boundarymobility related to the annealing temperature and crystal orientation during grain growth.[ ](Received September 2, 2013; Accepted November 22, 2013; Published January 11, 2014)Keywords:recrystallization, grain growth, Texture , stored energy, Non-Oriented electrical steel1. IntroductionNon- oriented electrical steels are widely used in electricalappliances and devices, especially for transformers andmotors due to their outstanding electrical )It is well known that the magnetic properties of Non-Oriented electrical steels are affected by many factors, such asstrip thickness, alloy elements, grain size, impurities leveland crystallographic 6) Texture is a very importantfactor for the permeability of electrical steels.

3 The optimaltextures for electrical steels used in rotating machines are -fiber and Cube textures in which all the grains haveh100idirection normal to the sheet plane, this will offer themaximum ,8)Much work has been made toinvestigate the textures in the stage of recrystallization andgrain growth, however, the mechanism of the formation ofrecrystallization Texture and the Texture Evolution of electricalsteels during grain growth is still indefinite. This is becausethe influencing factors (including the initial grain size andtexture in annealed bands, micro-structural inhomogeneity inthe cold rolled sheets, the heating rate, annealing temperatureand time, and cooling rate during the annealing process) ,9)Although some previous works10,11)were under-taken to study the Texture development of electrical steels inthe recovery and recrystallization process, the annealingtemperature selected is much lower than that of modernindustry.

4 In order to elucidate the Texture Evolution in theprocess of annealing operated nearly industrial condition, thetexture development is examined in a non-orientedelectrical steel with coarse initial Experimental Material and heat treatmentThe starting materials are the mm thickness hot bandswith the chemical composition: mass%C, mass%Si, mass%Mn, mass%Al, mass%S mass%N in weight percentage with balance of hot bands produced by the same processes with the samecoarse grains were annealed at 1000 C for 5 min followedby air cooling, and then were cold rolled to mm by 76%reduction using a laboratory mill through 6 , the cold-rolled plates originated from the samehot band were annealed at 650, 750 and 1100 C for differenttime respectively in the 100%Ar atmosphere. The wateringquenching was selected after annealing in order to obtaindifferent recrystallized fraction and grain Texture examinationsBefore Texture measurements, the specimens were me-chanically polishedfirst and then electropolished in a solutionof 400 ml alcohol and 100 ml HClO4for removing thedeformation layer introduced during previous mechanicalpolishing.

5 The Texture examinations of specimens in surfacewere carried out in an CHANNL5 electron backscatterdiffraction (EBSD) system attached with ZEISS SUPRA 55scanning electron microscope (SEM).The orientation distribution function (ODF) was analyzedby a Texture analysis software (TSL OIM Analysis 6).The step size used during measurement is 1 m per step forrecrystallization stage. The separation of nuclei or recrystal-lized grains from partially recrystallized microstructureswas carried out by using OIM software. The nucleus, orrecrystallized grain , was defined as the region which shows aclear Kikuchi pattern and is surrounded by grain boundarieswith a misorientation angle exceeding 5 from the deformedmatrix. The nuclei, or recrystallized grains, were classifiedinto 6 orientations,{001}h110i,{111}h110i,{111} h112i,{110}h110i,{110}h001i(Goss) and{001}h100i(Cube),with a maximum deviation of 20 from each ideal condition makes sure that no overlap between twoarbitrary orientations.

6 The area fraction of grains withspecific orientations at each recrystallization stage wasobtained, and the difference in the area fraction of all grainsand that of the recrystallized grains were calculated.+Graduate Student, University of Science and Technology author, E-mail: Transactions, Vol. 55, No. 2 (2014) pp. 387 to 390 2014 The Japan Institute of Metals and MaterialsRAPIDPUBLICATION3. Results and DiscussionsTable 1 shows the recrystallized fraction of specimensannealed at different time and temperature. It can be seen thatthe recrystallized fraction of the specimens annealed at 650 Cfor 300 s and 1100 C for 10 s are 15 and 11%respectively,indicating that the recrystallized grains are only , a completely recrystallized microstructure of thespecimens annealed at 750 C for 300 s and 1100 C for 12 s isrevealed with the 100%recrystallized fraction as shown inTable 1.

7 In the very early stage of recrystallization, lots ofnuclei formed in the deformed{111}h110iand{111}h112igrains since these grains possess higher stored energy thanothers. Thus, deformed{111}h110iand{111}h112igrainsare consumedfirst by the formation of nuclei or the growth ofrecrystallized grains which have already 1 displays the inverse polefigure map andnucleation textures in surface layer presented in 2=45 sections of the ODF, showing nuclei in the deformed{111}h112igrains (arrows pointing region). It is foundthat the typical Texture of nuclei in the specimen annealedat 650 C is consisted of weak Goss, Cube and very strong -fiber components (see Fig. 1(a)). The intensity of the{111}h112icomponent is the strongest, no significant -fibercomponent is observed in this Texture except{111} , the different typical textures of nuclei in thedifferent sections of specimen annealed at 1100 C aredetected as shown in Figs.

8 1(b), 1(c). The Texture in somesections is consisted of weak Cube, strong Goss and -fibercomponents, such as{111}h110iand{111}h112i(seeFig. 1(b)). In other sections, however, the Texture is consistedof very strong Cube, very weak Goss and -fiber components(see Fig. 1(c)).Figure 2 illustrates the 2=45 sections of the ODF forthe specimens with a completely recrystallized microstruc-ture. As can be seen, the Texture in specimen annealed at750 C for 300 s consists of weak Goss and strong -fibercomponents, as shown in Fig. 2(a). The Texture in specimenannealed at 1100 C for 12 s, however, consists of strongGoss and Cube and weak -fiber components, as shown inFig. 2(b). So, there is a significant difference in the textureof electrical steel in the very early and late stageof recrystallization. This difference is mainly caused by thestrength of the Goss, Cube and -fiber components.

9 TheGoss and Cube components become strong in the specimensannealed at 1100 C, whereas -fiber component order to understand these differences in Texture , theformation of shear bands should be discussed. Shear bandsare preferential sites for nucleation, they are considered to bean important factor in the recrystallization )Shearbands are known as severely strained regions formed as aresult of strain inhomogeneity due to structural instabilityduring cold )The formation of shear bands dependson the deformation conditions including chemical composi-tions, Texture , microstructure of materials and deformationtemperature. In this research, the coarse grains in steel induced many shear bands in deformed grainsTable 1 Recrystallized fraction of specimens annealed at different time andtemperature (vol%).Temperature,T/ CTime,t/sRecrystallized fraction (%)6503001575030010011001011110012100(a) (b)(c)Fig.

10 1 Inverse polefigure map and 2=45 section of ODF for nuclei formed at the very early stage of recrystallization (a) at 650 C for300 s, (b) and (c) at 1100 C for 10 s.(a)(b)Fig. 2 2=45 section of ODF for complete recrystallized specimensannealed (a) at 750 C for 300 s and (b) at 1100 C for 12 Li, L. Ma, L. Xiang, S. Qiu and P. Zhao388having{111}h110iand{111} )It isdemonstrated that new grains with Goss orientation areusually nucleated in shear bands and at the very early stageof recrystallization due to the highest stored )So,shear bands play a very important role in determining therecrystallization the same time, the real temperature of specimensannealed at 1100 C is higher than ones at 650 C. It isobvious that the fraction of recovery before the recrystalliza-tion progresses will be decreased due to the high annealingtemperature.


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