OALib Journal期刊
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定向凝固DZ444镍基高温合金初生MC碳化物的分解行为
DOI: 10.11900/0412.1961.2013.00836, PP. 1031-1038
Keywords: 定向凝固高温合金,初生MC碳化物,分解机制,显微组织
Abstract:
研究了定向凝固镍基高温合金DZ444在800,850和900℃下最长达104h长期时效过程中初生MC碳化物的热稳定性、MC分解机制及其分解对组织演化的影响.结果表明DZ444合金初生MC碳化物的热稳定性较低.在长期时效过程中,MC分解不断加剧;同时,MC分解区域内产物不断发生变化,在MC分解初期产生了典型的SM结构(sandwichmicrostructure),在MC分解中期出现了h相,在MC分解末期析出一定量的h-M6C和h-M23C6.MC分解过程可以大体地描述为MC+g→SM-M23C6+SM-M6C+SM-g'→SM-M23C6+SM-M6C+SM-g'+h→SM-M23C6+SM-M6C+SM-g'+h+h-M6C+h-M23C6,其中二次碳化物的类型主要为M23C6,且随着时效温度的升高和时效时间的延长,二次M6C含量略有增加.MC的分解能够促进晶内M23C6沉淀、s相析出和晶界粗化.
References
[1] | Wang J, Zhou L Z, Sheng L Y, Guo J T. Mater Des, 2012; 39: 55
|
[2] | Qin X Z, Guo J T, Yuan C, Hou J S, Zhou L Z, Ye H Q. Mater Sci Eng, 2012; A543: 121
|
[3] | Guo J T. Materials Science and Engineering for Superalloys I. Beijing: Science Press, 2008: 4 (郭建亭. 高温合金材料学(上册). 北京: 科学出版社, 2008: 4)
|
[4] | Collins H E, Quigg R J. Trans ASM, 1968; 61: 139
|
[5] | Wu Q Y, Song H, Swindeman R W, Shingledecker J P, Vasudevan V K. Metall Mater Trans, 2008; 39A: 2569
|
[6] | Zhao S Q, Xie X S, Gaylord S D, Shailesh P J. Mater Des, 2006; 27: 1120
|
[7] | Hou J S, Zhou L Z, Yuan C, Tang Z, Guo J T, Qin X Z, Liaw P K. Mater Sci Eng, 2013; A560: 25
|
[8] | Choi B G, Kim I S, Kim D H, Jo C Y. Mater Sci Eng, 2008; A478: 329
|
[9] | Huang X B, Kang Y, Zhou H H, Zhang Y, Hu Z Q. Mater Lett, 1998; 36: 210
|
[10] | Liu L R, Jin T, Zhao N R, Wang Z H, Sun X F, Guan H R, Hu Z Q. Mater Sci Eng, 2003; A361: 191
|
[11] | He L Z, Zheng Q, Sun X F, Hou G C, Guan H R, Hu Z Q. Mater Sci, 2005; 40: 2959
|
[12] | Qin X Z, Guo J T, Yuan C, Chen C L, Hou J S, Ye H Q. Mater Sci Eng, 2008; A485: 75
|
[13] | Hou J S, Guo J T, Yang G X, Zhou L Z, Qin X Z, Ye H Q. Mater Sci Eng, 2008; A498: 449
|
[14] | Stevens R A, Flewitt P E J. Mater Sci Eng, 1979; 37: 237
|
[15] | Nazmy M, Staubli M. Scr Metall Mater, 1990; 24: 135
|
[16] | Wang J, Zhou L Z, Qin X Z, Sheng L Y, Hou J S, Guo J T. Mater Sci Eng, 2012; A553: 14
|
[17] | Lvov G, Levit V I, Kaufman M J. Metall Mater Trans, 2004; 35A: 1672
|
[18] | Sims C T, Stoloff N S, Hagel W C. Superalloys II. New York: John Wiley & Sons Inc., 1987: 122
|
[19] | Tawancy H M, Abbas N M, Al-Mana A I, Rhysjones T N. J Mater Sci, 1994; 29: 2445
|
[20] | Qin X Z, Guo J T, Yuan C, Hou J S, Zhou L Z, Ye H Q. Acta Metall Sin, 2010; 46: 216 (秦学智, 郭建亭, 袁 超, 侯介山, 周兰章, 叶恒强. 金属学报. 2010; 46: 216)
|
[21] | Qin X Z. PhD Dissertation, Institute of Metal Research, Chinese Academy of Sciences, Shenyang, 2007 (秦学智. 中国科学院金属研究所博士学位论文, 沈阳, 2007)
|
[22] | Cyril W, Water B, Robert F M. J Metall Trans AIME, 1950; 188: 558
|
[23] | Fujiwara K, Horita Z. Acta Mater, 2002; 50: 1578
|
[24] | Minamino Y, Jung S B, Yamane T, Hirao K. Metall Trans, 1992; 23A: 2784
|
[25] | Karunaratne M S A, Carter P, Reed R C. Acta Metall, 2001; 49: 861
|
[26] | Watanable M, Horita Z, Smith D J, McCartney M R, Sano T, Nemoto M. Acta Metall, 1994; 42: 3381
|
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