论文

单晶高温合金螺旋选晶过程的数值模拟与实验研究:I.引晶段

  • 张航 ,
  • 许庆彦 ,
  • 孙长波 ,
  • 戚翔 ,
  • 唐宁 ,
  • 柳百成
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  • 1) 清华大学材料学院先进成形制造教育部重点实验室, 北京 100084
    2) 沈阳黎明航空发动机(集团)有限责任公司, 沈阳 110043
张航, 男, 1985年生, 博士生

收稿日期: 2013-04-25

  修回日期: 2013-08-02

  网络出版日期: 2013-12-11

基金资助

国家重点基础研究发展计划项目2011CB706801, 国家自然科学基金项目51171089,以及国家科技重大专项项目2011ZX04014—052

SIMULATION AND EXPERIMENTAL STUDIES ON GRAIN SELECTION BEHAVIOR OF SINGLE CRYSTAL SUPERALLOY :I. Starter Block

  • ZHANG Hang ,
  • XU Qingyan ,
  • SUN Changbo ,
  • QI Xiang ,
  • TANG Ning ,
  • LIU Baicheng
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  • 1) Key Laboratory for Advanced Materials Processing Technology, Ministry of Education,School of Materials Science and Engineering, Tsinghua University, Beijing 100084
    2) Shenyang Liming Aero—Engine Group Corporation Ltd., Shenyang 110043

Received date: 2013-04-25

  Revised date: 2013-08-02

  Online published: 2013-12-11

摘要

从实验及模拟角度对比研究了引晶段的晶粒密度和取向随晶粒生长高度(研究位置距试样底面的高度)的变化规律,并给出了引晶段参数的设计准则. 采用EBSD晶体取向成像技术获得了引晶段截面的晶粒形貌和取向极图;采用CA—FD方法, 针对单晶定向凝固过程进行数理建模与仿真,实现了凝固过程的三维宏观温度场与微观组织生长的模拟计算.从宏、微观角度解释了定向凝固过程的晶粒竞争演化行为, 为引晶段设计提供理论支持.

本文引用格式

张航 , 许庆彦 , 孙长波 , 戚翔 , 唐宁 , 柳百成 . 单晶高温合金螺旋选晶过程的数值模拟与实验研究:I.引晶段[J]. 金属学报, 2013 , 49(12) : 1508 -1520 . DOI: 10.1016/j.jmst.2013.07.001

Abstract

The rapid development of advanced aero—engine and industry gas turbine requires high performance of single crystal (SX) blade. Spiral selector is very important to produce SX blade, which includes starter block and spiral part. In this research, grain density changing and orientation deviating as the height of grain growth (the distance between section studied and the undersurface of the sample) increasing were studied by the experiment and simulation, and the designing rules for the starter block were given out. EBSD orientation mapping technology was used to get grains' morphology and orientation. Mathematical and physical models were built for the directional solidification process. Adopting CA—FD method, the 3D macro temperature field of solidification process was calculated as well as grain growth. The properties of grains competitive growth and evolution process during directional solidification in starter block were analyzed based on macro and micro modeling results, and rules for grains competitive growth was explained, which provided theoretical supports for designing starter block.

参考文献

[1] Reed R C.  The Superalloys Fundamentals and Applications. UK: Cambridge University Press, 2006: 121

[2] Shi C X, Zhong Z Y.  Acta Metall Sin, 2010; 46: 1281
(师昌绪, 仲增墉. 金属学报, 2010; 46: 1281)
[3] Fu H Z, Guo J J, Liu L, Li J S.  Directional Solidification and Processing of Advanced Materials. Beijing: Science Press, 2008: 525
(傅恒志, 郭景杰, 刘林, 李金山. 先进材料定向凝固. 北京: 科学出版社, 2008: 525)
[4] Li J R, Xiong J C, Tang D Z.  Advanced High Temperature Structural Materials and Technology. Beijing: National Defense Industry Press, 2012: 100
(李嘉荣, 熊继春, 唐定中. 先进材料高温结构材料与技术. 北京: 国防工业出版社, 2012: 100)
[5] Gandin C A, Rappaz M.Acta Metall Mater, 1994; 42: 2233
[6] Rappaz M, Gandin C A.Acta Metall Mater, 1993; 41: 345
[7] Yang X L, Lee P D, D'Souza N.  JOM, 2005; 57(5): 40
[8] Gandin C A, Rappaz M.Acta Mater, 1997; 45: 2187
[9] Jin H, Li J, Pan D.Acta Metall Sin (Engl Lett), 2009; 22: 429
[10] Pan D, Xu Q Y, Liu B C.  Sci China (Engl Lett), 2011; 54G: 851
[11] Zhang H, Xu Q Y, Tang N, Pan D, Liu B C.  Sci China (Engl Lett), 2011; 54E: 3191
[12] Liu W W.  Rare Met, 2011; 30: 396
[13] Yang X L, Ness D, Lee P D, D'Souza N.  Mater Sci Eng, 2005; A413: 571
[14] D'Souza N, Ardakani M G, McLean M, Shollock B A.  Metall Mater Trans, 2000; 31A: 2877
[15] Carter P, Cox D C, Gandin C A, Reed R C.  Mater Sci Eng, 2000; A280: 233
[16] Epishin A I, Nolze G.  Cryst Rep, 2006; 51: 710
[17] Pan D, Xu Q Y, Liu B C, Li J R, Yuan H L, Jin H P.  JOM, 2010; 62(5): 30
[18] Pan D.  PhD Dissertation, Tsinghua University, Beijing, 2010
(潘冬. 清华大学博士学位论文, 北京, 2010)
[19] Seo S M, Kim I S, Lee J H, Jo C Y, Miyahara H, Ogi K.  Met Mater Int, 2009; 15: 391
[20] Zhou Y Z, Volek A, Green N R.  Acta Mater, 2008; 56: 2631
[21] Zhou Y Z, Jin T, Sun X F.  Acta Metall Sin, 2010; 11: 1327
(周亦胄, 金涛, 孙晓峰. 金属学报, 2010; 46: 1327)
[22] Walton D, Chalmers B.  Trans Am Inst Min Metall Eng, 1959; 215: 447
[23] Jiang L, Li S, Han Y.  Proc Eng, 2012; 27: 1135
[24] Meng X, Lu Q, Li J, Jin T, Sun X, Zhang J, Chen Z, Wang Y, Hu Z.J Mater Sci Technol, 2012; 28: 214
[25] Liu Z Y, Lin M, Yu D, Zhou X W, Gu Y X, Fu H Z.  Metall Mater Trans A, DOI:10.1007/S11661—013—1840—6
[26] Yu J.  PhD Dissertation, Tsinghua University, Beijing, 2007
(于靖. 清华大学博士学位论文, 北京, 2007)
[27] Liang Z J.  PhD Dissertation, Tsinghua University, Beijing, 2003
(梁作俭. 清华大学博士学位论文, 北京, 2003)
[28] Li J R, Zhong Z G, Tang D Z, Liu S Z, Wei P, Wei P Y, Wu Z T, Huang D.In: Pollock T M, Kissinger R D, Bowman R R, Green K A, McLean M, Oison S, Schirra J J,eds.,  Superalloys 2000, Warrendale, PA: TMS, 2000: 777
[29] Editorial Committee.  Practical Handbook of Engineering Materials.
2nd Ed., Beijing: China Standards Press, 2002: 771
(丛书编委会. 工程材料实用手册. 第2版, 北京: 中国标准出版社, 2002: 771)
[30] Jin H P, Li J R, Liu S Z. In: Chandra T, Wanderka N, Reimers W, Ionescu M, eds.,6th Int Conf on Processing and Manufacturing of Advanced Materials,Berlin, Germany: Trans Tech Publications Ltd., 2010: 2251
[31] Pan D, Xu Q Y, Yu J, Liu B C, Li J R, Yuan H L, Jin H P.Int J Cast Metal Res, 2008; 21: 308
[32] Liu S Z, Li J R, Tang D Z, Zhong Z G.  J Mater Eng, 1999; (7): 40
(刘世忠, 李嘉荣, 唐定忠, 钟振纲. 材料工程, 1999; (7): 40)
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