论文

强磁场对Cu--80%Pb过偏晶合金中富Cu颗粒 迁移行为的影响

  • 张林 ,
  • 王恩刚 ,
  • 左小伟 ,
  • 赫冀成
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  • 东北大学材料电磁过程研究教育部重点实验室; 沈阳 110004
张林, 男, 1979年生, 讲师, 博士

收稿日期: 2009-09-21

  修回日期: 2010-01-27

  网络出版日期: 2010-04-11

基金资助

国家自然科学基金项目50574027和50901019, 国家高技术研究发展计划项目 2007AA03Z519, 高等学校博士学科点专项科研基金项目20070145062和高等学校学科创新引智计划项目B07015 资助

EFFECT OF HIGH MAGNETIC FIELD ON THE TRANSITION BEHAVIOR OF Cu–RICH PARTICLES IN Cu–80%Pb HYPERMONOTECTIC ALLOY

  • ZHANG Lin ,
  • YU En-Gang ,
  • ZUO Xiao-Wei ,
  • SHI Ji-Cheng
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  • Key Laboratory of Electromagnetic Processing of Materials; Ministry of Education; Northeastern University; Shenyang; 110004

Received date: 2009-09-21

  Revised date: 2010-01-27

  Online published: 2010-04-11

Supported by

Supported by National Natural Science Foundation of China (Nos.50574027 and 50901019), High Technology Research and Development Program of China (No.2007AA03Z519), Specialized Research Found for the Doctoral Program of Higher Education (No.20070145062), and 111 project (No.B07015)

摘要

将含有大量富Cu颗粒的Cu-80%Pb(质量分数)过偏晶合金在强磁场作用下进行不同温度的保温实验, 研究了富Cu颗粒在液固混合区的迁移行为. 结果表明, 无磁场作用时, 富Cu颗粒在800℃以上出现迁移而上浮, 900℃以上在试样顶部形成致密的富Cu分层, 颗粒尺寸及迁移速率随温度升高而增加; 富Cu颗粒在迁移过程中可通过熟化长大或合并, 其机制与富Cu液滴不同; 富Cu颗粒群整体向上迁移,颗粒区与枝晶区有明显边界, 颗粒间相互作用可使其迁移速率降低. 强磁场具有降低颗粒迁移速度, 抑制颗粒熟化及合并的作用, 降低了富Cu颗粒的偏析程度,抑制致密富Cu分层的形成. 考虑颗粒间相互作用, 对有无磁场作用下颗粒所受的作用力和运动终端速度进行了分析和计算.

本文引用格式

张林 , 王恩刚 , 左小伟 , 赫冀成 . 强磁场对Cu--80%Pb过偏晶合金中富Cu颗粒 迁移行为的影响[J]. 金属学报, 2010 , 46(4) : 423 -428 . DOI: 10.3724/SP.J.1037.2009.00629

Abstract

The Cu–80%Pb(mass fraction) hypermonotectic alloy with a dense distribution of Cu–rich particles was annealed at different temperatures under high magnetic field, the transition behavior of Cu–rich particles in solid–liquid mixture zone was investigated. The results show that, the transition behavior of Cu–rich particles occurs above 800 ℃, a compact segregation layer forms in the sample top above 900 ℃, the particle size and transition velocity increase with annealing temperature increasing. The Cu–rich particles grow and coalesce with each other during transiting, the coalescence mechanism is different from Cu–rich droplets. The clster of Cu–rich particles float up wholly, leave a clear boundary between Cu–rich particle and Cu–rich dendrite zones, the mutual interaction between the prticles makes the trnsition velocity decreased. The high magnetic field has effect on decreasing the transition velocity of Cu–rich particles, inhibiting the coarsening and coalescing of Cu–rich particles, which could decrease the segregation of Cu–rich particles, and inhibit the formation of compact Cu–rich segregation layers. Based on the mutual interaction between the particles, the acting forces on the Cu–rich particles and the final velocity have been analyzed and calculated to show the influence of magnetic field.

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