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Microstructure simulation of rapidly solidified ASP30 high-speed steel particles by gas atomization

Microstructure simulation of rapidly solidified ASP30 high-speed steel particles by gas atomization
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摘要 In this study, the microstructure evolution of rapidly solidified ASP30 high-speed steel particles was predicted using a simulation method based on the cellular automaton-finite element (CAFE) model. The dendritic growth kinetics, in view of the characteristics of ASP30 steel, were calculated and combined with macro heat transfer calculations by user-defined functions (UDFs) to simulate the microstructure of gas-atomized particles. The relationship among particle diameter, undercooling, and the convection heat transfer coefficient was also inves- tigated to provide cooling conditions for simulations. The simulated results indicated that a columnar grain microstructure was observed in small particles, whereas an equiaxed microstructure was observed in large particles. In addition, the morphologies and microstructures of gas-atomized ASP30 steel particles were also investigated experimentally using scanning electron microscopy (SEM). The experimental re- suits showed that four major types ofmicrostructures were formed: dendritic, equiaxed, mixed, and multi-droplet microstructures. The simu- lated results and the available experimental data are in good agreement. In this study, the microstructure evolution of rapidly solidified ASP30 high-speed steel particles was predicted using a simulation method based on the cellular automaton-finite element (CAFE) model. The dendritic growth kinetics, in view of the characteristics of ASP30 steel, were calculated and combined with macro heat transfer calculations by user-defined functions (UDFs) to simulate the microstructure of gas-atomized particles. The relationship among particle diameter, undercooling, and the convection heat transfer coefficient was also inves- tigated to provide cooling conditions for simulations. The simulated results indicated that a columnar grain microstructure was observed in small particles, whereas an equiaxed microstructure was observed in large particles. In addition, the morphologies and microstructures of gas-atomized ASP30 steel particles were also investigated experimentally using scanning electron microscopy (SEM). The experimental re- suits showed that four major types ofmicrostructures were formed: dendritic, equiaxed, mixed, and multi-droplet microstructures. The simu- lated results and the available experimental data are in good agreement.
出处 《International Journal of Minerals,Metallurgy and Materials》 SCIE EI CAS CSCD 2016年第3期294-302,共9页 矿物冶金与材料学报(英文版)
基金 the National Basic Research Program of China (No. 2011CB012902) for their continuing support to this research
关键词 high-speed steel rapid solidification MICROSTRUCTURE grain growth gas atomization high-speed steel rapid solidification microstructure grain growth gas atomization
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  • 1刘申全,郝维新,杨根仓.亚偏晶Cu-Pb合金的深过冷快速凝固[J].铸造,2006,55(5):444-447. 被引量:7
  • 2Dogan O N. Columnar to Equiaxed Transition in High Cr White Iron Castings [J]. Scripta Materialia, 1996, 35(2): 163.
  • 3Satoh T. Rapid Solidification of High Chromium Cast Iron and Properties of PM Alloys [J]. J Japan Soc Powder/Powder Metal, 2001, 48(12): 810.
  • 4Carpenter S D, Carpenter D, Pearce J T H. XRD and Electron Microscope Study of an As-Cast 26.6% Chromium White Iron Microstructure [J]. Materials Chemistry and Physics, 2004, 85(1) : 32.
  • 5Adler Thomas A, Dogan Omer N. Erosive Wear and I)mpact Damage of High-Chromium White Cast Irons [J].Wear, 1999, 225-229(Part 1) : 174.
  • 6Dogan O N, Laird II G, Hawk J A. Abrasion Resistance of the Columnar Zone in High Cr White Cast Irons [J]. Wear, 1995, 181 183(Part 1): 342.
  • 7Lagutkin S, Achelis L, Sheikhaliev S, et al. Atomization Process for Metal Powder [J]. Materials Science and Engineering, 2004, 383A(1)1.
  • 8Unal Rahmi. The Influence of the Pressure Formation at the Tip of the Melt Delivery Tube on Tin Powder Size and Gas/ Melt Ratio in Gas Atomization Method [J]. Journal o[ Materi als Processing Technology, 2006, 180(1/2/3): 291.
  • 9Zambon A, Badan B, Norman A F, et al. Development of Solidification Microstruetures in Atomized Fe-Ni Alloy Droplets [J]. Materials Science and Engineering, 1997, 226-228A: 119.
  • 10GUAN Wan-bing, GAO Yu-lai, ZHAI Qi-jie, et al. Effect of Droplet Size on Nucleation Undercooling of Molten Metals [J]. Journal of Materials Science, 2004, 39(14): 4633.

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