TY - JOUR
T1 - Numerical modeling for mechanical behavior of porous nanocrystalline materials
AU - Li, Zhenghui
AU - Yin, Xia
AU - Zhou, Jianqiu
PY - 2010/9
Y1 - 2010/9
N2 - A mixture-based constitutive model was developed on the basis of the real mixture status of nanocrystalline materials to describe the mechanical properties of the materials. The nanocrystalline materials are composed of grain and grain boundary phases, and the grain boundary phases are assumed to have equivalent parts: part I-and part II. The strain of the part I is the same as that of the grain interior; meanwhile, the stress of the part II is equals to the total stress of the grain and part I of the grain boundary, which is well in agreement with practical ones. Then the established model was applied to calculate the elastic modulus of porous nanocrystalline materials. Furthermore, the model is extended to describe the stress-strain relation with small plastic deformation. The model can predict the effects of grain size and porosity on the elastic modulus and yield strength of the nanocrystalline materials. The simulated results are well in agreement with experimental ones in small plastic strain range. Nanocrystalline Material, Elastic Modulus, Yield Stress.
AB - A mixture-based constitutive model was developed on the basis of the real mixture status of nanocrystalline materials to describe the mechanical properties of the materials. The nanocrystalline materials are composed of grain and grain boundary phases, and the grain boundary phases are assumed to have equivalent parts: part I-and part II. The strain of the part I is the same as that of the grain interior; meanwhile, the stress of the part II is equals to the total stress of the grain and part I of the grain boundary, which is well in agreement with practical ones. Then the established model was applied to calculate the elastic modulus of porous nanocrystalline materials. Furthermore, the model is extended to describe the stress-strain relation with small plastic deformation. The model can predict the effects of grain size and porosity on the elastic modulus and yield strength of the nanocrystalline materials. The simulated results are well in agreement with experimental ones in small plastic strain range. Nanocrystalline Material, Elastic Modulus, Yield Stress.
UR - http://www.scopus.com/inward/record.url?scp=77958052774&partnerID=8YFLogxK
U2 - 10.3870/tzzz.2010.09.009
DO - 10.3870/tzzz.2010.09.009
M3 - 文章
AN - SCOPUS:77958052774
SN - 1001-2249
VL - 30
SP - 810
EP - 812
JO - Tezhong Zhuzao Ji Youse Hejin/Special Casting and Nonferrous Alloys
JF - Tezhong Zhuzao Ji Youse Hejin/Special Casting and Nonferrous Alloys
IS - 9
ER -