Microstructure and Mechanical Properties of Low Alloy Ultra-High Strength Steel Microalloyed with Cerium

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This study aims to investigate the influences of rare earth element cerium (Ce) on microstructure and mechanical properties of low alloy ultra-high strength steel. The strength, plasticity, and impact toughness of steels with 0.0367% Ce and without Ce were tested. The influence mechanism of Ce on the microstructure and mechanical properties were investigated by scanning electron microscopy (SEM), energy-dispersive spectrometry (EDS) and electron back scattered diffraction (EBSD). The results showed that the addition of Ce improved the comprehensive mechanical properties of low alloy ultra-high strength steel. In particular, the plasticity and toughness were improved obviously. The addition of Ce increased the elongation from 9.47% to 10.49%, and the low-temperature impact energy from 50J to 58J. The elongation and impact energy increased by 10.77% and 16%, respectively. And the yield strength of all samples remained above 1400 MPa. The rare earth element Ce did not change the matrix composition phase which were martensite. However, the addition of Ce increased the proportion of high-angle grain boundary from 33.2% to 40.2%. In addition, the Ce make the inclusions denatured and hence spherical inclusion with small size can be obtained. The EDS results showed that rare earth and harmful elements P and O formed inclusions, which as a purifier for the molten steel and hindered the formation of the large-size composite inclusions.

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53-58

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January 2021

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[1] Jia, C. C. et al. (2017) Influence of rare earth elements on microstructure and mechanical properties of high speed steel,, Powder Metallurgy Technology.

Google Scholar

[2] Sun, M. K., SOO KIM, J. I., Kim, K. T., PARK, Chong, S. L. J. M. S. (2013) Effect of Ce addition on secondary phase transformation and mechanical properties of 27Cr―7Ni hyper duplex stainless steels,, Materials Science Engineering A, Vol.573 No.3, pp.27-36.

DOI: 10.1016/j.msea.2013.02.044

Google Scholar

[3] Xiang, Y., Chen, Z., Wei, X., Wu, Z. (2015) Influence of Ce on Microstructure and Properties of High-carbon High-boron Steel,, Rare Metal Materials Engineering, Vol.44 No.6, pp.1335-1339.

DOI: 10.1016/s1875-5372(15)30085-0

Google Scholar

[4] Xiao, L., Yang, J. C., Lin, Y., Gao, X. Z. (2010) Effect of Ce on Inclusions and Impact Property of 2Cr13 Stainless Steel,, Journal of Iron Steel Research, Vol.17 No.12, pp.59-64.

DOI: 10.1016/s1006-706x(10)60198-7

Google Scholar

[5] Jiang, Y. Y., Wang, Z. D., Deng, X. T. (2017) Effect of trace rare earth Ce on continuous cooling transformation behavior of microalloyed medium carbon steel,, Heat Treatment Of Metals, Vol.42 No.12, pp.57-60.

Google Scholar

[6] Zhao, Y. y., Wang, J. f., Zhou, S., Wang, X. d. (2014) Effects of rare earth addition on microstructure and mechanical properties of a Fe–15Mn–1.5Al–0.6C TWIP steel,, Materials Science Engineering A, Vol.608 pp.106-113.

DOI: 10.1016/j.msea.2014.04.084

Google Scholar

[7] Gao, J., Fu, P., Liu, H., Li, D. (2015) Effects of Rare Earth on the Microstructure and Impact Toughness of H13 Steel,, Metals, Vol.5 No.1, pp.383-394.

DOI: 10.3390/met5010383

Google Scholar