晶粒细化对K417G高温合金蠕变性能的影响

  • 都贝宁 ,
  • 杨金侠 ,
  • 崔传勇 ,
  • 孙晓峰
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  • 中国科学院金属研究所, 沈阳 110016
null

都贝宁, 女, 1989年生, 博士生

收稿日期: 2014-07-02

  修回日期: 2014-05-07

  网络出版日期: 2014-11-25

基金资助

*国家自然科学基金项目51171179, 51128101, 51271171和 11332010, 国家重点基础研究发展计划项目2010CB631206及中国科学院百人计划项目资助

EFFECTS OF GRAIN REFINEMENT ON CREEP PROPERTIES OF K417G SUPERALLOY

  • Beining DU ,
  • Jinxia YANG ,
  • Chuanyong CUI ,
  • Xiaofeng SUN
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  • Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016

Received date: 2014-07-02

  Revised date: 2014-05-07

  Online published: 2014-11-25

Supported by

Supported by National Natural Science Foundation of China (Nos.51171179, 51128101, 51271171 and 11332010), National Basic Research Program of China (No.2010CB631206) and Program of One Hundred of Talented People of Chinese Academy of Sciences

摘要

研究了晶粒细化对K417G高温合金在760 ℃/645 MPa, 900 ℃/315 MPa和950 ℃/235 MPa下的蠕变性能的影响. 结果表明, 晶粒细化对合金蠕变性能的影响与温度和施加应力有关. 在760 ℃/645 MPa下合金的蠕变性能随晶粒细化而提高, 变形以晶内变形为主; 900 ℃/315 MPa下的蠕变性能随晶粒细化先升高后降低, 变形为晶内变形和晶界滑移竞争作用; 950 ℃/235 MPa下的蠕变性能随晶粒细化而降低, 变形以晶界滑移为主. 760 ℃/645 MPa下, 位错切过g' 相, 基体通道中没有位错网产生; 900 ℃/315 MPa和950 ℃/235 MPa下位错通过Orowan机制绕过g' 相, 基体通道中产生位错网, 并且M23C6在晶内析出.

本文引用格式

都贝宁 , 杨金侠 , 崔传勇 , 孙晓峰 . 晶粒细化对K417G高温合金蠕变性能的影响[J]. 金属学报, 2014 , 50(11) : 1384 -1392 . DOI: 10.11900/0412.1961.2014.00245

Abstract

Grain size is one of the most important parameters which affect the mechanical properties of cast polycrystalline superalloys. To study the effect of grain refinement on the creep behaviors of K417G superalloy, the creep behaviors of K417G superalloy with four grain sizes were investigated at 760 ℃/645 MPa, 900 ℃/315 MPa and 950 ℃/235 MPa. The longitudinal section of the fracture surface, crack propagation path, dislocation structure and plastic deformation distribution in the vicinity of the cracks were investigated by using SEM, TEM and EBSD techniques, thus the deformation mechanism and effect of grain refinement on the creep properties of K417G superalloy were determined under different creep conditions. The results showed that the effects of grain refinement on the creep property of the alloy varied with the temperatures and stress. At 760 ℃/645 MPa, grain refinement improved the creep life and reduced the steady-state deformation rate of the alloy. The creep deformation was dominated by intragranular deformation. At 900 ℃/315 MPa, as grain size decreased, the creep life increased firstly and then decreased, while the steady-state deformation rate decreased firstly and then increased. The creep deformation showed a competitive effect of intragranular deformation and grain boundary sliding. At 950 ℃/235 MPa, the creep life decreased and the steady-state deformation rate increased with the decrease of the grain size. Grain boundary sliding was the main deformation mode. At the same time, grain refinement could cause a refinement of the dendrite and carbide of the alloy, which would also affect the creep behavior of the alloy to a small extent. The TEM observation showed that at 760 ℃/645 MPa, the dislocations interacted with g' particles through shearing mechanism and no dislocation network was found in the matrix. While at 900 ℃/315 MPa and 950 ℃/235 MPa, the dislocations crossed the g' particles through Orowan bypass mechanism, dislocation network formed in the matrix, and M23C6 precipitated in the interior of the grains, which had a orientation relationship between the M23C6 precipitates and matrix .

参考文献

[1] Yang Y H, Xie Y J, Wang M S, Ye W. Mater Des, 2013; 51: 141
[2] Xu Y, Guo S R. Acta Metall Sin, 1999; 35: 1249
[2] (徐 岩, 郭守仁. 金属学报, 1999; 35: 1249)
[3] Zheng L. J Aeronaut Mater, 2006; 26(3): 7
[3] (郑 亮. 航空材料学报, 2006; 26(3): 7)
[4] Andersson J. Int J Fatigue, 2005; 27: 847
[5] Ho H, Risbet M, Feaugas X, Moulin G. Scr Mater, 2011; 65: 998
[6] Kobayashi K, Yamaguchi K, Hayakawa M, Kimura M. Mater Lett, 2005; 59: 383
[7] Torster F, Baumeister G, Albrecht J, Lütjering G, Helm D, Daeubler M A. Mater Sci Eng, 1997; A234: 189
[8] Wei C N, Bor H Y, Ma C Y, Lee T S. Macromol Chem Phys, 2003; 80: 89
[9] Xiong Y H, Liu W, Yang A M, Zhang R, Liu L. Acta Metall Sin, 1999; 35: 689
[9] (熊玉华, 柳 伟, 杨爱民, 张 蓉, 刘 林. 金属学报, 1999; 35: 689)
[10] Yang A M. PhD Dissertation, Northwestern Polytechnical University, Xi'an, 2002
[10] (杨爱民. 西北工业大学博士学位论文, 西安, 2002)
[11] Soula A, Renollet Y, Boivin D, Pouchou J L, Locq D, Caron P. Mater Sci Eng, 2009; A510: 301
[12] Yuan Y, Gu Y F, Cui C Y, Osada T, Tetsui T, Yokokawa T. Mater Sci Eng, 2011; A528: 5106
[13] Thibault K, Locq D, Caron P, Boivin D, Renollet Y, Bréchet Y. Mater Sci Eng, 2013; A588: 14
[14] Shingledecker J P, Evans N D, Pharr G M. Mater Sci Eng, 2013; A578: 277
[15] Morrison D J, Moosbrugger J C. Int J Fatigue, 1997; 19: 51
[16] Qiao Y, Chakravarthula S S. Int J Fatigue, 2005; 27: 1251
[17] Larson J M, Floreen S. Metall Trans, 1977; 8A: 51
[18] Quested P N, Osgerby S. Mater?Sci?Technol, 1986; 2: 461
[19] Kuhn F, Zeismann F, Brueckner-Foit A. Int J Fatigue, 2014; 65: 86
[20] Miao J, Pollock T M, Wayne Jones J. Acta Mater, 2009; 57: 5964
[21] Miao J, Pollock T M, Wayne Jones J. Acta Mater, 2012; 60: 2840
[22] Brewer L N, Field D P, Merriman C C. Electron Backscatter Diffraction in Materials Science. New York: Springer, 2009: 18
[23] Wang D, Zhang J, Lou L H. Mater Charact, 2009; 60: 1517
[24] Liu L R, Jin T, Zhao N R, Sun X F, Guan H R, Hu Z Q. Mater Sci Eng, 2003; A361: 191
[25] Guo Y, Wang B H, Hou S F. Acta Metall Sin (Eng Lett), 2013; 26: 307
[26] Zhang J X, Murakumo T, Harada H, Koizumi Y. Scr Mater, 2003; 48: 287
[27] Nategh S, Sajjadi S A. Mater Sci Eng, 2003; A339: 103
[28] Zhu Y, Li Z, Huang M. Comput Mater Sci, 2013; 70: 178
[29] Tian S G, Zhou H H, Zhang J H,Yang H C, Xu Y B, Hu Z Q. Mater Sci Eng, 2000; A279: 160
[30] Hantcherli M, Pettinari-Sturmel F, Viguier B, Douin J, Coujou A. Scr Mater, 2012; 66: 143
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