论文

CREEP BEHAVIOR OF Al-Cu-Mg-Ag HEAT-RESISTANT ALLOY AT ELEVATED TEMPERATURE

  • LIU Xiao-Yan ,
  • PAN Qing-Lin ,
  • LU Zhi-Lun ,
  • CAO Su-Fang ,
  • HE Yun-Bin ,
  • LI Wen-Bin
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  • 1) School of Materials Science and Engineering, Central South University, Changsha 410083
    2) The Key Laboratory of Nonferrous Materials Science and Engineering of Ministry of Education, Central South University, Changsha 410083

Received date: 2010-07-23

  Revised date: 2010-10-20

  Online published: 2011-01-11

Supported by

Supported by Excellent Doctorate Dissertation Foundation of Central South University No.2008yb012)

Abstract

The creep behaviors of heat--resistant alloy Al-5.3Cu-0.8Mg-0.5Ag-0.3Mn-0.15Zr (Al-Cu-Mg-Ag) were studied in a temperature range of 100-210℃ and a load range of 150-300 MPa, and the effect of aging on the properties of Al-Cu-Mg-Ag alloy at elevated temperatures was also investigated. The results show that the steady creep rate of the under-aged alloy is much lower than that of the peak--aged alloy at the same creep conditions. The creep fracture time is 75 h for the under-aged Al-Cu-Mg-Ag alloy at 210℃/200 MPa, while that for the peak-aged alloy is only 21 h. The precipitates grow gradually during the creep process and the growth rate in the peak-aged alloy is higher than that in the under-aged alloy. Dynamic precipitation happened in the under-aged alloy. The fine precipitates inhibite the motion of the dislocations during the creep, which leads to lower creep deformation rate compared to the peak-aged alloy. The steady creep rates of the under-aged Al-Cu-Mg-Ag alloy at 100-150℃ keep a relatively lower level, but increases to a high level when the creep temperature increased to 180℃. The steady creep rate increased with increasing temperature or stress, which can be described by a constitutive equation with an apparent activation energy of 102 kJ/mol.

Cite this article

LIU Xiao-Yan , PAN Qing-Lin , LU Zhi-Lun , CAO Su-Fang , HE Yun-Bin , LI Wen-Bin . CREEP BEHAVIOR OF Al-Cu-Mg-Ag HEAT-RESISTANT ALLOY AT ELEVATED TEMPERATURE[J]. Acta Metall Sin, 2011 , 47(1) : 53 -60 . DOI: 10.3724/SP.J.1037.2010.00369

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