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FATIGUE DEFORMATION FEATURES OF Fe--Cr ALLOY SINGLE CRYSTALS CONTAINING Cr--RICH PRECIPITATES |
LI Xiaowu1;2; CAO Xinming1; MA Chaoqun1 |
1) Institute of Materials Physics and Chemistry; College of Sciences; Northeastern University; Shenyang 110004
2) Key Laboratory for Anisotropy and Texture of Materials; Ministry of Education; Northeastern University; Shenyang 110004 |
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Cite this article:
LI Xiaowu CAO Xinming MA Chaoqun. FATIGUE DEFORMATION FEATURES OF Fe--Cr ALLOY SINGLE CRYSTALS CONTAINING Cr--RICH PRECIPITATES. Acta Metall Sin, 2009, 45(7): 801-807.
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Abstract Although some knowledges about the fatigue deformation mechanisms of fcc alloy
single crystals containing precipitates have been obtained in the past several
decades, few relevant research findings have been reported on precipitates
containing bcc alloy single crystals. In the present work, a single--slip--oriented
bcc Fe-35%Cr alloy (mass fraction) single crystal containing Cr--rich precipitates
was prepared as the target material, and its fatigue deformation features were
investigated under constant plastic strain amplitude control. Experimental results
and analyses demonstrate that, when the plastic strain amplitude
εpl≧2.5×10-3, the Cr--rich precipitates can be
readily sheared by the moving dislocations during deformation, leading to an
obvious stress softening phenomenon observed at the tensile loading stage of the
first cycle, and subsequently to a slight cyclic softening phenomenon at a very
early stage of cycling. In addition, the tension--compression stress asymmetry was
found during cyclic deformation of the crystals, and this enhanced stress asymmetry
should be related to the deformation instability of Cr--rich precipitates. The slip
deformation features were mainly manifested by the formation of coarse slip bands
comprising a quantity of fine slip lines and also by the formation of the kink band
at high εpl(e.g., 5.0×10-3). The primary crack
develops roughly along the primary slip plane (101) and the crystal
finally cracks along this plane, accompanied with some secondary cracks having
various morphologies being formed on the crystal surface. Microstructural
observations indicate that persistent slip band (PSB) ladder--like structures
can be found at a low εpl of 5.0×10-4, and the
volume fraction of them increases with increasing εpl.
As εpl is raised to 5.0×10-3, the microstructural
features are primarily characterized by the formation of dislocation cells.
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Received: 06 March 2009
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Fund: Supported by National Natural Science Foundation of China (No.50771029), Program for New Century Excellent Talents in University (No.NCET--07--0162) and Found for Returned Overseas Chinese Scholars (No.{\footnotesize\it 20071108--1}) of Chinese Ministry of Education
.{\footnotesize |
[1] Basinski Z S, Basinski S J. Prog Mater Sci, 1992; 36: 89
[2] Suresh S. Fatigue of Materials. 2nd Ed., London: Cambridge University Press, 1998: 39
[3] Li X W, Wang Z G, Li S X. Philos Mag Lett, 1999; 79: 869
[4] Wang Z G, Zhang Z F, Li X W, Jia W P, Li S X. Mater Sci Eng, 2001; A319–321: 63
[5] Li X W, Umakoshi Y, Gong B, Li S X, Wang Z G. Mater Sci Eng, 2002: A333: 51
[6] Lee J K, Laird C. Mater Sci Eng, 1982; 54: 39
[7] Steiner D, Gerold V. Mater Sci Eng, 1986; 84: 77
[8] Kato M, Honjo N, Fujii T. ISIJ Int, 1997; 37: 1224
[9] Wilhelm M. Mater Sci Eng, 1981; 48: 91
[10] Mughrabi H, Herz K, Stark X. Acta Metall, 1976; 24: 659
[11] Kaneko Y, Nagai Y, Miyamoto H, Mimaki T, Hashimoto S. Mater Sci Eng, 2001; A319–321: 559
[12] Li X W, Umakoshi Y. Scr Mater, 2003; 48: 545
[13] Zhao W H, Nie W. China Stainless Market Inf, 2005; 17: 9
(赵伟宏, 聂闻. 不锈: 市场与信息, 2005; 17: 9)
[14] Xiao J M. Metallographic Problems in Stainless Steels, Beijing: Metallurgical Industry Press, 2006: 38
(肖纪美. 不锈钢的金属学问题. 北京: 冶金工业出版社, 2006: 38)
[15] Mima G, Yamaguchi M. Trans JIM, 1966; 7: 117
[16] Lai Z H. Crystal Defects and Mechanical Properties of Metals. Beijing: Metallurgical Industry Press, 1988: 228
(赖祖涵. 金属的晶体缺陷与力学性质. 北京: 冶金工业出版社, 1988: 228)
[17] Magnin T, Driver J H. Mater Sci Eng, 1979; 38: 175
[18] Li S X, Li Y, Li G Y, Yang J H, Wang Z G, Lu K. Philos Mag, 2002; 82A: 867
[19] Crocker A G, Abell J S. Philos Mag, 1976; 33: 305
[20] Li X W, Wang Z G, Li S X. Philos Mag, 2000; 80A: 1901
[21] Kaneko Y, Mimaki T, Hashimoto S. Acta Mater, 1999; 47: 165
[22] Man J, PetrenecM, Obrtl´ak K, Pol´ak J. Acta Mater, 2004; 52: 5551 |
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