Chemical composition and structural identification of primary carbides in as-cast H13 steel

Ming-tao Mao , Han-jie Guo , Fei Wang , Xiao-lin Sun

International Journal of Minerals, Metallurgy, and Materials ›› 2019, Vol. 26 ›› Issue (7) : 839 -848.

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International Journal of Minerals, Metallurgy, and Materials ›› 2019, Vol. 26 ›› Issue (7) : 839 -848. DOI: 10.1007/s12613-019-1796-7
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Chemical composition and structural identification of primary carbides in as-cast H13 steel

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Abstract

The aim of this study was to characterize the primary carbides formed in as-cast H13 steel. The composition, morphology, type, and size of primary carbides in as-cast H13 steel were investigated by optical microscope (OM), field emission scanning electron microscopy (FE-SEM), electron back-scattered diffraction (EBSD), and X-ray diffraction (XRD) analysis. The number of primary carbides was investigated by ASPEX automated inclusion analysis system. The results indicated that primary carbides in as-cast H13 steel are mainly composed of Cr, Mo, V, and Ti, and there exist four kinds of primary carbides in the interdendritic zones of H13 steel, which are stripy Mo–Cr-rich M2C, eutectic Mo–Cr-rich M2C, V-rich MC, and V-rich MC with Ti and N. Thermodynamic calculation indicated that M2C precipitates in liquid phase at solid fractions larger than 0.99, while MC precipitates in liquid phase at solid fractions larger than 0.96. Statistical results indicated that the number of M2C is much greater than the number of other kinds of primary carbides. Most primary carbides are blocky, with lengths of no more than 10 μm and a length/width ratio of no more than 3. The large primary carbides in as-cast H13 steel are mainly M2C.

Keywords

primary carbide / phase identification / H13 steel / precipitation thermodynamic

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Ming-tao Mao, Han-jie Guo, Fei Wang, Xiao-lin Sun. Chemical composition and structural identification of primary carbides in as-cast H13 steel. International Journal of Minerals, Metallurgy, and Materials, 2019, 26(7): 839-848 DOI:10.1007/s12613-019-1796-7

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References

[1]

Cong DL, Zhou H, Ren ZN, Zhang HF, Ren LQ, Meng C, Wang CW. Thermal fatigue resistance of hot work die steel repaired by partial laser surface remelting and alloying process. Opt. Lasers Eng., 2014, 54, 55.

[2]

Zhao YG, Liang YH, Zhou W, Qin QD, Jiang QC. Effect of a current pulse on the thermal fatigue behavior of cast hot work die steel. ISIJ Int., 2005, 45, 410.

[3]

Zhou J, Ma DS, Chi HX, Chen ZZ, Li XY. Microstructure and properties of hot working die steel H13MOD. J. Iron Steel Res. Int., 2013, 20, 117.

[4]

Sun XL, Guo HJ, Chen XC, Ning AG, Du GW, Shi CB. Formation mechanism of primary carbide in H13 steel during electroslag remelting process. Iron Steel, 2014, 49, 68.

[5]

Xie Y, Cheng GG, Chen L, Zhang YD, Yan QZ. Mechanism of generation of large (Ti,Nb,V)(C,N)-type precipitates in H13 + Nb tool steel. Int. J. Miner. Metall. Mater., 2016, 23, 1264.

[6]

Ozaki K. Effect of the distribution of primary carbide on fatigue strength of cold work die steels. DENKI-SEIKO, 2005, 76, 249.

[7]

Mishnaevsky LL Jr. Lippmann N, Schmauder S. Micromechanisms and modelling of crack initiation and growth in tool steels: Role of primary carbides. Z. Metallkd., 2003, 94, 676.

[8]

Wieczerzak K, Bała P, Stępień M, Cios G, KozieŁ T. The characterization of cast Fe–Cr–C alloy. Arch. Metall. Mater., 2015, 60, 779.

[9]

Venkatraman M, Neumann JP. The C–Cr (carbon–chromium) system. Bull. Alloy Phase Diagrams, 1990, 11, 152.

[10]

Hillert M, Qiu C. A reassessment of the Fe–Cr–Mo–C system. J. Phase Equilib., 1992, 13, 512.

[11]

Kroupa A, Havránková J, Svoboda M, Coufalová M, Vřešt’ál J. Phase diagram in the iron-rich corner of the Fe–Cr–Mo–V–C system below 1000 K. J. Phase Equilib., 2001, 22, 312.

[12]

Shi YJ, Wu XC, Li JW, Min N. Tempering stability of Fe–Cr–Mo–W–V hot forging die steels. Int. J. Miner. Metall. Mater., 2017, 24, 1145.

[13]

Doğan N, Hawk JA, Laird G II. Solidification structure and abrasion resistance of high chromium white irons. Metall. Mater. Trans. A, 1997, 28, 1315.

[14]

Tabrett CP, Sare IR, Ghomashchi MR. Microstructure- property relationships in high chromium white iron alloys. Int. Mater. Rev., 1996, 41, 59.

[15]

Inoue A, Harakawa Y, Oguchi M, Masumoto T. Metastable MC phase in melt-quenched Fe–C–V and Fe–C–V–(Cr or Mo) alloys—mechanical properties and powder-forming tendency by comminution. J. Mater. Sci., 1986, 21, 1310.

[16]

Xie Y, Cheng GG, Chen L, Zhang YD, Yan QZ. Characteristics and generating mechanism of large precipitates in Nb–Ti-microalloyed H13 tool steel. ISIJ Int, 2016, 56, 995.

[17]

Xie Y, Cheng GG, Meng XL, Chen L, Zhang YD. Precipitation behavior of primary precipitates in Ti-microalloyed H13 tool steel. ISIJ Int., 2016, 56, 1996.

[18]

Sun XL, Wang F, Chen XC, Mao MT, Guo HJ. Study on decomposition of primary carbonitrides in H13 steel under high temperature. Chin. J. Eng, 2017, 39, 721.

[19]

Sun XL, Wang F, Chen XC, Guo HJ, Mao MT. Study on primary carbonitrides in H13 steel based on the two-sublattice model. Chin. J. Eng, 2017, 39, 61.

[20]

Song WW, Min YA, Wu XC. Study on carbides and their evolution in H13 hot work steel. Trans. Mater. Heat Treat., 2009, 30, 122.

[21]

Won YM, Thomas BG. Simple model of microsegregation during solidification of steels. Metall. Mater. Trans. A, 2001, 32, 1755.

[22]

Raghavan V. C–Cr–Fe–Mo–V (carbon–chromium–iron–molybdenum–vanadium). J. Phase Equilib. Diffus., 2007, 28, 286.

[23]

Ning AG. Investigation on Nanoscale Precipitates in Hot-work Die Steel and Comprehensive Strengthening Mechanism of Steel, 2015, Beijing, University of Science and Technology Beijing.

[24]

Miettinen J. Mathematical simulation of interdendritic solidification of low-alloyed and stainless steels. Metall. Trans. A, 1992, 23, 1155.

[25]

Clyne TW, Kurz W. Solute redistribution during solidification with rapid solid state diffusion. Metall. Trans. A, 1981, 12, 965.

[26]

Chen JX. Databook Commonly Used in Steelmaking, 2010, Beijing, Metallurgical Industry Press.

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