Dynamic strain aging during the plastic flow of metals

被引:14
作者
Guo, Wei-Guo [1 ]
机构
[1] Northwestern Polytech Univ, Sch Aeronaut, Xian 710072, Peoples R China
来源
Engineering Plasticity and Its Applications from Nanoscale to Macroscale, Pts 1 and 2 | 2007年 / 340-341卷
关键词
metal; plasticity; dynamic strain aging; strain rate; temperature;
D O I
10.4028/www.scientific.net/KEM.340-341.823
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
In the present paper, in order to better understand the third type "dynamic strain aging" occurring during the plastic flow of metals, the uniaxial compressive experimental data ever obtained in University of California, San Diego using an Instron servo-hydraulic testing machine and the Hopkinson technique are systematically analysed. These experimental data cover the plastic flow stress of several fcc, hcp, bcc polycrystalline materials and several alloys at a broad range of temperatures (77K - 1,100K) and strain rates (0.001/s - 10,000/s). In analysis, the appearing region of the "dynamic strain aging" under different temperatures and strain rates are respectively plotted by the curves of stress vs temperature, and stress vs strain for fcc, hcp and bcc metals. The results show that: (1) this third type "dynamic strain aging "occurs in all hcp, bcc and fcc polycrystalline or alloy materials, and there are different profiles of stress-strain curve; (2) the "dynamic strain aging "occurs in a matching coincidence of the temperature and strain rate, its temperature region will shift to higher region with increasing strain rates; (3) bcc materials do not have an initial pre-straining strain as the onset of work-hardness rate change for the "dynamic strain aging"; and (4) based on the explanations of dynamic strain aging with serration curves (Portevin-Lechatelier effect) and other explaining mechanisms of references, The mechanism of third DSA is thought as the rapid/continuous formation of the solute atmospheres at the mobile dislocation core by the pipe diffusion along vast collective forest dislocations to result in a continuous rise curve of flow stress. Finally, several conclusions are also presented.
引用
收藏
页码:823 / 828
页数:6
相关论文
共 13 条
[1]  
BEUKEL AVD, 1982, ACTA METALL, V30, P1027
[2]   A model for experimentally-observed high-strain-rate dynamic strain aging in titanium [J].
Cheng, JY ;
Nemat-Nasser, S .
ACTA MATERIALIA, 2000, 48 (12) :3131-3144
[3]   A unified constitutive model for strain-rate and temperature dependent behavior of molybdenum [J].
Cheng, JY ;
Nemat-Nasser, S ;
Guo, WG .
MECHANICS OF MATERIALS, 2001, 33 (11) :603-616
[4]  
GUO WG, 2006, IN PRESS MECH MAT
[5]   Dynamic strain aging effect on the fatigue resistance of type 316L stainless steel [J].
Hong, SG ;
Lee, KO ;
Lee, SB .
INTERNATIONAL JOURNAL OF FATIGUE, 2005, 27 (10-12) :1420-1424
[6]   Portevin-LeChatelier effect in strain and stress controlled tensile tests [J].
Klose, FB ;
Ziegenbein, A ;
Weldenmüller, J ;
Neuhäuser, H ;
Hähner, P .
COMPUTATIONAL MATERIALS SCIENCE, 2003, 26 :80-86
[7]   ON STATIC STRAIN AGING [J].
KUBIN, LP ;
ESTRIN, Y ;
PERRIER, C .
ACTA METALLURGICA ET MATERIALIA, 1992, 40 (05) :1037-1044
[8]  
Nakada Y., 1970, Acta Metallurgica, V18, P437, DOI 10.1016/0001-6160(70)90129-X
[9]   Mechanical properties and deformation mechanisms of a commercially pure titanium [J].
Nemat-Nasser, S ;
Guo, WG ;
Cheng, JY .
ACTA MATERIALIA, 1999, 47 (13) :3705-3720
[10]   Thermomechanical response of HSLA-65 steel plates: experiments and modeling [J].
Nemat-Nasser, S ;
Guo, WG .
MECHANICS OF MATERIALS, 2005, 37 (2-3) :379-405