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Strategic Study of CAE >> 2014, Volume 16, Issue 1

Interphase precipitation in low carbon Ti-V microalloyed steels

The State Key Laboratory of Rolling and Automation,Northeastern University,Shenyang 110819,China

Funding project:国家自然科学基金资助项目(51204048);中央高校基本科研业务费项目(N120407008);辽宁省教育厅一般项目(L2013112) Received: 2013-10-09 Available online: 2013-12-23 15:17:17.000

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Abstract

The present study focuses on the Ti-V microalloying system which draws less attention. By using the Formaster-FII dilatometer,the sample was held at austenite/ferrite dual- phase temperature region and the Ti-V complex interphase precipitates were obtained during the austenite to ferrite transformation. Optical Microscopy (OM) and transmission electron microscopy (TEM) were employed to analyze the microstructure,especially the morphology of the interphase precipitate and its crystallographic orientation relationship with ferrite matrix. Studies show that 650 ℃ is the nose temperature for static isothermal transformation. The interphase precipitates exhibit sheet-like distribution,including flat and curved sheets and adopt Baker-Nutting orientation relationships with the ferrite matrix.

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References

[ 1 ] Funakawa Y,Shiozaki T,Tomita K,et al. Development of high strength hot-rolled sheet steel consisting of ferrite and nanometersized carbides [J]. ISIJ International,2004,44(11):1945- 1951.

[ 2 ] Okamoto R. Interphase precipitation in niobium- microalloyed steels [J]. Acta Materialia,2010,58(14):4783-4790.

[ 3 ] Yen Hung Wei,Chen C Y,Wang T Y,et al. Orientation relationship transition of nanometer sized interphase precipitated TiC carbides in Ti bearing steel [J]. Materials Science and Technology, 2010,26(4):421-430. link1

[ 4 ] Chen C Y,Yen Hung Wei,Kao F H,et al. Precipitation hardening of high- strength low- alloy steels by nanometer- sized carbides [J]. Materials Science and Engineering,2009,499A:162-166. link1

[ 5 ] Yen Hung Wei,Huang Ching Yuan,Yang Jer Ren. The nano-carbide control:Design of super ferrite in steels [J]. Advanced Materials Research,2010,89-91:663-668. link1

[ 6 ] Yen Hung Wei,Huang Ching Yuan,Yang Jer Ren. Characterization of interphase- precipitated nanometer- sized carbides in a TiMo-bearing steel [J]. Scripta Materialia,2009,61:616-619. link1

[ 7 ] Yen Hung Wei,Chen Po Yu,Huang Ching Yuan,et al. Interphase precipitation of nanometer-sized carbides in a titanium-molybdenum- bearing low- carbon steel [J]. Acta Materialia,2011, 59(16):6264-6274. link1

[ 8 ] Chen Meng Yang,Yen Hung Wei,Yang Jer Ren. The transition from interphase-precipitated carbides to fibrous carbides in a vanadium- containing medium carbon steel [J]. Scripta Materialia, 2013,68:829-832. link1

[ 9 ] Honeycombe R W K. Some aspects of micro-alloying [J]. Transaction of the Japan Institute of Metals,1983,24(4):177-189. link1

[10] Funakawa Y,Seto K ,Nakamichi H. Strengthening of ferritic steel by interface precipitated carbides in rows [J]. Materials Science Forum,2010,638-642:3218-3223. link1

[11] Sakuma T,Honeycombe R W K. Microstructures of isothermally transformed Fe- Nb- C alloys [J]. Metal Science,1984,18 (9):449-454. link1

[12] Sakuma T,Honeycombe R W K. Effect of manganese on microstructure of an isothermally transformed Fe-Nb-C alloy [J]. Materials Science and Technology,1985,1(5):351-356. link1

[13] Jang J H,Heo Y U,Lee C H,et al. Interphase precipitation in Ti- Nb and Ti- Nb-Mo bearing steel [J]. Materials Science and Technology,2013,29(3):309-313. link1

[14] Davenport A T,Honeycombe R W K. Precipitation of carbides at g/a boundaries in alloy steels [J]. Proceedings of the Royal Society of London A,1971,322:191-205. link1

[15] Balliger N K,Honeycombe R W K. The effect of nitrogen on precipitation and transformation kinetics in vanadium steels [J]. Metallurgical Transactions A,1980,11A:421-429. link1

[16] Law N C,Parsons S A,Howell P R,et al. Crystallography of carbide precipitation at transformation interfaces during austenite decomposition in a low alloy steel [J]. Materials Science and Technology,1987,3:642-648. link1

[17] Bhadeshia H K D H. Diffusional transformations:A theory for the formation of superledges [J]. Physica Status Solid A- Applied Research,1982,69(2):745-750. link1

[18] Honeycombe R W K. Transformation from austenite in alloy steels [J]. Metallurgical Transactions A,1976,7A:915-936. link1

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