论文

纵向磁场对Al-40%Cu过共晶合金定向凝固显微组织的影响

  • 沈裕 ,
  • 任忠鸣 ,
  • 李喜 ,
  • 任维丽
展开
  • 上海大学上海市现代冶金与材料制备重点实验室, 上海 200072
沈裕, 男, 1987年生, 硕士生

收稿日期: 2010-11-03

  修回日期: 2010-12-21

  网络出版日期: 2011-04-11

基金资助

国家自然科学基金项目50911130365和50701031, 上海市科学技术委员会项目09510700100, 08dj1400404, 10QA1402500和08DZ1130100, 以及长江学者创新团队发展计划项目IRT0739资助

EFFECT OF LONGITUDINAL MAGNETIC FIELD ON THE MICROSTRUCTURE OF DIRECTIONALLY SOLIDIFIED Al-40%Cu HYPEREUTECTIC ALLOY

  • CHEN Yu ,
  • REN Zhong-Ming ,
  • LI Xi ,
  • REN Wei-Li
Expand
  • Shanghai Key Laboratory of Modern Metallurgy & Materials Processing, Shanghai University, Shanghai 200072

Received date: 2010-11-03

  Revised date: 2010-12-21

  Online published: 2011-04-11

Supported by

Supported by National Natural Science Foundation of China (Nos.50911130365 and 50701031), Shanghai Science and Technology Committee (Nos.09510700100, 08dj1400404, 10QA1402500 and 08DZ1130100), and Program for Changjiang Scholars and Innovative Research Team in University (No.IRT0739)

摘要

研究了纵向磁场对Al-40%Cu(质量分数)过共晶合金定向凝固显微组织的影响. 结果表明, 在温度梯度 GL=42.6 K/cm, 生长速率 R=2 μm/s, 施加弱磁场时, Al2Cu初生相由规则小平面状逐渐变得不规则, 并趋向于非小平面方式生长, 热电磁对流效应在不同尺度下影响界面前沿溶质分布及各相生长温度, 微观尺度下影响初生相形貌, 宏观尺度下改变糊状区长度, 引起宏观偏析; 施加较强磁场后, 初生相呈现不规则胞状组织并紧密定向排列, 这一现象主要归因于内生热电Lorentz力及磁晶各向异性.

本文引用格式

沈裕 , 任忠鸣 , 李喜 , 任维丽 . 纵向磁场对Al-40%Cu过共晶合金定向凝固显微组织的影响[J]. 金属学报, 2011 , 47(4) : 417 -422 . DOI: 10.3724/SP.J.1037.2010.00588

Abstract

The microstructures of Al-40%Cu (mass fraction) hypereutectic alloy directionally solidified under a longitudinal magnetic field were investigated. The results show that the magnetic field has a great influence on the morphology of the primary Al2Cu phase at the growth rate of R=2 μm/s and a temperature gradient of GL=42.6 K/cm at the solid/liquid interface. The effect of thermoelectromagnetic convection (TEMC) which drives the fluid flow is predominant under low magnetic fields and different at different scales according to the model of TEMC established.
It is found that TEMC causes severe deformation of the primary Al2Cu phase opposed to the well-aligned faceted
primary phase in the absence of the field at microscopic scale and the primary phase tends to become a
faceted-non-faceted transition gradually with the increase of the magnetic field. Moreover, TEMC modifies the
mushy zone length at macroscopic scale because of the secondary convection from the bulk caused by the microscopic
TEMC. TEMC also affects the solute distribution in the front of the interface at different scales and the process
of heat transfer. Under higher magnetic fields, the effect of TEMC is suppressed, however, the considerable
thermoelectric Lorentz force makes the primary phase become the irregular cellular structure. Meanwhile, the
primary phases align along the magnetic field closely, which results from the remarkable magnetocrystalline
anisotropy of the Al2Cu crystal.

参考文献

[1] Shercliff J A. J Fluid Mech, 1979; 91: 231

[2] Moreau R, Laskar O, Tanaka M, Camel D. Mater Sci Eng, 1993; A173: 93

[3] Lehmann P, Moreau R, Camel D, Bolcato R. Acta Mater, 1998; 46: 4067

[4] Yesilyurt S, Vujisic L, Motakef S, Szofran F R, Volz M P. J Cryst Growth, 1999; 207: 278

[5] Li X, Fautrelle Y, Ren Z M. Acta Mater, 2007; 55: 3803

[6] Li X, Gagnoud A, Ren Z M, Fautrelle Y, Moreau R. Acta Mater, 2009; 57: 2180

[7] Yilmaz F, Elliott R. J Cryst Growth, 1984; 66: 465

[8] Li X, Ren Z M, Fautrelle Y. Acta Mater, 2006; 54: 5349

[9] Jin F W. PhD Thesis, Shanghai University, 2007

(晋芳伟. 上海大学博士学位论文, 2007)

[10] Moreau R. Magnetohydrodynamics. Dordrecht: Kluwer Academic Publishers, 1990: 111

[11] Robertson G D, O’Connor D. J Cryst Growth, 1986; 76: 100

[12] Kishida Y, Takeda K, Miyoshino I, Taleuchi E. ISIJ Int, 1990; 30: 34

[13] Laskar O. PhD Thesis, Laboratoire MADYLAM, France, 1994

[14] Callen H B. Phys Rev, 1984; 73: 1349

[15] Li X, Ren Z M, Fautrelle Y, Zhang Y D, Esling C. Mater Lett, 2010; 64: 2597
文章导航

/