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Ironmaking & Steelmaking
Processes, Products and Applications
Volume 48, 2021 - Issue 7
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Research Articles

Morphology transition of eutectic carbide assisted by thermoelectric magnetic force during the directional solidification of M2 high-speed steel

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Pages 885-892 | Received 06 Jan 2021, Accepted 02 Feb 2021, Published online: 04 Mar 2021

References

  • Hwang KC, Lee S, Lee HC. Effects of alloying elements on microstructure and fracture properties of cast high speed steel rolls Part II. Fracture behavior. Mater Sci Eng A. 1998;254:296–304.
  • Godec M, Batic BS, Mandrino D, et al. Characterization of the carbides and the martensite phase in powder-metallurgy high-speed steel. Mater Charact. 2010;61:452–458.
  • Hetzner DW, Geertruyden WV. Crystallography and metallography of carbides in high alloy steels. Mater Charact. 2008;59:825–841.
  • Zhang XD, Liu W, Sun D, et al. The transformation of carbides during austenization and its effect on the wear resistance of high speed steel rolls. Metall Mater Trans A. 2007;38:499–505.
  • Zhou B, Shen Y, Chen J, et al. Breakdown behavior of eutectic carbide in high speed steel during hot compression. J Iron Steel Res Int. 2011;18:41–48.
  • Zhou XF, Fang F, Jiang JQ, et al. Refining carbide dimensions in AISI M2 high speed steel by increasing solidification rates and spheroidising heat treatment. Mater Sci Technol. 2013;30:116–122.
  • Zhou XF, Zhu WL, Jiang HB, et al. A new approach for refining carbide dimensions in M42 super hard high-speed steel. J Iron Steel Res Int. 2016;23:800–807.
  • Luo YW, Guo HJ, Sun XL, et al. Influence of the nitrogen content on the carbide transformation of AISI M42 high-speed steels during annealing. Sci Rep. 2018;8:1–9.
  • Lee E, Park W, Jung JY, et al. Solidification microstructure and M2C carbide decomposition in a spray-formed high-speed steel. Metall Mater Trans A. 1998;29:1395–1404.
  • Park JW, Lee HC, Lee S. Composition, microstructure, microhardness, and wear properties of high-speed steel rolls. Metall Mater Trans A. 1999;30:399–409.
  • Kim SW, Lee UJ, Woo KD, et al. Solidification microstructures and mechanical properties of vertical centrifugal cast high speed steel. Mater Sci Tech. 2003;19:1727–1732.
  • Zhou XF, Fang F, Jiang JQ. Solidification microstructure of M2 high speed steel by different casting technologies. China Foundry. 2011;8:1–6.
  • Ji YL, Zhang W, Chen XY, et al. Increasing solidification rate of M2 high-speed steel ingot by fusible metal mold. Acta Metall Sin (Engl Lett). 2016;29:382–387.
  • Luan Y, Song N, Bai Y, et al. Effect of solidification rate on the morphology and distribution of eutectic carbides in centrifugal casting high-speed steel rolls. J Mater Process Tech. 2010;210:180–186.
  • Wright CS. Supersolidus sintering of high speed steels – comparison of sintering theory with experimental observations. Solid State Phenom. 1992;25-26:463–470.
  • Wright CS. The production and application of PM high-speed steels. Powder Metall. 1994;3:937–944.
  • Wright CS, Youseffi M, Wronski AS, et al. Supersolidus liquid phase sintering of high speed steels: Part 3: computer aided design of sinterable alloys. Powder Metall. 1999;42:131–146.
  • Li X, Ren ZM, Fautrelle Y. Effect of a high axial magnetic field on the microstructure in a directionally solidified Al-Al2Cu eutectic alloy. Acta Mater. 2006;54:5349–5360.
  • Zhong YB, Zheng TX, Dong LC, et al. Controlling droplet distribution using thermoelectric magnetic forces during bulk solidification processing of a Zn-6 wt.%Bi immiscible alloy. Mater Des. 2016;100:168–174.
  • Li X, Gagnoud A, Fautrelle Y, et al. Dendrite fragmentation and columnar-to-equiaxed transition during directional solidification at lower growth speed under a strong magnetic field. Acta Mater. 2012;60:3321–3332.
  • Li X, Fautrelle Y, Ren ZM. Influence of thermoelectric effects on the solid-liquid interface shape and cellular morphology in the mushy zone during the directional solidification of Al-Cu alloys under a magnetic field. Acta Mater. 2007;55:3803–3813.
  • Li X, Ren ZM, Gagnoud A, et al. Effects of thermoelectric magnetic convection on the solidification structure during directional solidification under lower transverse magnetic field. Metall Mater Trans A. 2011;42:3459–3471.
  • Zhou XF, Fang F, Li F, et al. Morphology and microstructure of M2C carbide formed at different cooling rates in AISI M2 high speed steel. J Mater Sci. 2011;46:1196–1202.
  • Boccalini M, Goldenstein H. Solidification of high speed steels. Int Mater Rev. 2001;46:92–115.
  • Barkalow RH, Kraft RW, Goldstein JI. Solidification of M2 high speed steel. Metall Mater Trans B. 1972;3:919–926.
  • Secco RA. Thermal conductivity and Seebeck coefficient of Fe and Fe-Si alloys: implications for variable Lorenz number. Phys Earth Planet In. 2017;265:23–34.
  • Wang H, Zhong YB, Dong LC, et al. Coupled 3D numerical model of droplet evolution behaviors during the magnetically controlled electroslag remelting process. JOM. 2018;70:2917–2926.
  • Liotti E, Lui A, Vincent R, et al. A synchrotron X-ray radiography study of dendrite fragmentation induced by a pulsed electromagnetic field in an Al-15Cu alloy. Acta Mater. 2014;70:228–239.
  • Taran YN, Nizhnikovskaya PF, Snagovskii LM, et al. Eutectic in tungsten-molybdenum high-speed steel. Met Sci Heat Treat. 1979;21:791–795.
  • Fischmeister HF, Riedl R, Karagoz S. Solidification of high-speed tool steels. Metall Trans A. 1989;20:2133–2148.
  • Shi GQ, Ding PD, Zhou SZ. Effect of vanadium on cast carbide in high speed steels. Mater Sci Tech. 1992;8:449–454.

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