期刊文献+

Simulation of microstructure evolution in fused-coating additive manufacturing based on phase field approach 被引量:3

Simulation of microstructure evolution in fused-coating additive manufacturing based on phase field approach
下载PDF
导出
摘要 The mechanical properties of metal components are determined by the solidification behaviour and microstructure. A quantitative phase field model is used to investigate the microstructure evolution of fusedcoating additive manufacturing, by which to improve the quality of deposition. During the fused-coating process, the molten metal in a crucible flows out of a nozzle and then reaches the substrate. The solidification happens at the moment when the molten metal comes into contact with substrate moving in three-dimensional space. The macroscopic heat transfer model of fused-coating is established to get the temperature field considered as the initial temperature boundary conditions in the phase field model. The numerical and experimental results show that the morphology of grains varies with different solidification environments. Columnar grains are observed during the early period at the bottom of fused-coating layer and the equiaxed grains appear subsequently ahead of the columnar grains. Columnar dendrites phase field simulations about the grains morphology and solute distribution are conducted considering the solidification environments. The simulation results are in good agreement with experimental results. The mechanical properties of metal components are determined by the solidification behaviour and microstructure. A quantitative phase field model is used to investigate the microstructure evolution of fusedcoating additive manufacturing, by which to improve the quality of deposition. During the fused-coating process, the molten metal in a crucible flows out of a nozzle and then reaches the substrate. The solidification happens at the moment when the molten metal comes into contact with substrate moving in three-dimensional space. The macroscopic heat transfer model of fused-coating is established to get the temperature field considered as the initial temperature boundary conditions in the phase field model. The numerical and experimental results show that the morphology of grains varies with different solidification environments. Columnar grains are observed during the early period at the bottom of fused-coating layer and the equiaxed grains appear subsequently ahead of the columnar grains. Columnar dendrites phase field simulations about the grains morphology and solute distribution are conducted considering the solidification environments. The simulation results are in good agreement with experimental results.
出处 《China Foundry》 SCIE 2017年第5期346-352,共7页 中国铸造(英文版)
基金 supported by the National Key R&D Program(2016YFB1100400) the Ministry of Education,China(6141A02022109)
  • 相关文献

参考文献4

二级参考文献79

  • 1齐海波,颜永年,林峰,闫占功.电子束直接熔化技术中的粉末状态分析[J].清华大学学报(自然科学版),2005,45(8):1012-1015. 被引量:18
  • 2颜敏,张述泉,王华明.激光熔化沉积AerMet 100耐蚀超高强度钢的凝固组织及力学性能[J].金属学报,2007,43(5):472-476. 被引量:15
  • 3Lewis G K, Nemec R B, Milewski J O, Thoma D L, Barbe M R, Cremers D A. In: Proc ICALEO '94. Orlando:Laser Institute of America, 1994:17.
  • 4Keicher D M, Smugeresky J E, Romero J A, Griifith M L,Harwell L D. Proc SPIE, 1997, 2993:91.
  • 5Schlienger E, Dimos D, Griffith M, Michael J, Oliver M,Romero T, Smugeresky J. In: Proc 3rd Pacific Rim Int Conf on Advanced Materials and Processing, Vol I. Warrandale: TMS, 1998:1581.
  • 6Mazumder J, Schitferer A, Choi J. Mater Res Innovat,1999, 3:118.
  • 7Link G R, Fessler J, Nickel A, Prinz F. Mater Manuf Process, 1992, 13:263.
  • 8Gaumann M, Henry S, Cleton F, Wagniere J D, Kurz W.Mater Sci Eng, 1999, A271:232.
  • 9Li Y M, Yang H O, Lin X, Huang W D, Li J G, Zhou Y H. Mater Sci Eng, 2003, A360:18.
  • 10张长利.北京航空航天大学硕士学位论文.2002.

共引文献594

同被引文献13

引证文献3

二级引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部