Simulation Study on Heating Process of Hot Rolled Steel Strip for X80M Pipeline Steel

Article Preview

Abstract:

The simulation experiments of heating process for X80 pipeline steel were carried out to investigate the influence of austenite grain size and micro alloy element solution. The results showed that a reasonable industrial production process of slab heating control system was developed, and the guidance of good industrial test could be provided for the acquisition of reasonable microstructure of 22mm thickness X80 pipeline steel hot rolled steel strip.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

349-354

Citation:

Online since:

February 2018

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2018 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] L. Barsanti H. G. Hillenbrabd. Possible use of new material for high pressure line pipe construction: the experience of SNAMRETEGAS and Euro pipe on X100 grade steel. The International pipeline Conference, Calgary, Alberta, Canada, (2002) 167-173.

DOI: 10.1115/ipc2002-27089

Google Scholar

[2] Takahiro KUBO, Toyoaki SHIWAKU, Joe KONDO, et al. Quality Evaluation of Line Pipes by the Chevron Notched Drop Weight Tear Test[J]. ISIJ international, 35(4) (1995) 426.

DOI: 10.2355/isijinternational.35.426

Google Scholar

[3] Seaki T, Imura H, Oonishi Y, et al. Effect of bulging and solidification structure on segregation in continuously cast slab[J]. Trans. ISIJ, 24(11) (1984), 916-970.

DOI: 10.2355/isijinternational1966.24.907

Google Scholar

[4] Hillenbrand HG. Production and service behavior of high strength large diameter pipe [J]. Pipe dreams Conference, Yokohana, (2002) 203-216.

Google Scholar

[5] Ito Y., Yamanaka A., Watanabe T. Internal reduction efficiency of continuously cast strand with liquid core[J]. Rev Metall, 97(10) (2000) 1171-1176.

DOI: 10.1051/metal:2000104

Google Scholar

[6] Brimacombe J K. The challenge of quality in continous casting process[J]. Metallurgical and Matrerials Transactions B, 30(8) (1999) 553-566.

Google Scholar

[7] Dittenberger K, Morewald K, Hohenbichler G, et al. Dynacs cooling model-features and operational results[J]. Ironmaking & Steelmaking, 25(4) (1998) 323-327.

Google Scholar

[8] H. t. tsai. Characterization and Cpunter Measures Sliver Defects in Cold Tolled Products. Steel making Conference proceedings, (1990) 51-57.

Google Scholar

[9] H.T. T sai, P. Dasgupta. Continuous Improvements of Steel making and Casting Processes at Inland Steel Company to Meet Increasing Customer Demands. 21st Century Steel Industry of Russia and CIS Moscow, 1994: 116-124.

Google Scholar

[10] E T Turkdogan. Nucleation, Growth and Floatation of Oxide Inclusions in Liquid Steel[J]. Iron Steel Inst., 204(10) (1966) 914-919.

Google Scholar

[11] F S Ham. Theory of Diffusion-Limited Precipitation[J]. Phys. Chem. Solids, 6(2) (1958) 335-351.

Google Scholar

[12] U Lindborg, K Torssell. A Collision Model for the Growth and Separation of Deoxidation Products[J]. Trans. AIME, 242(6) (1968) 94-102.

Google Scholar