TY - JOUR
T1 - An Investigation of Micro-Mechanical Properties of Al Matrix in SiC/Al Composite by Indentation Experiments
AU - Yuan, Zhanwei
AU - Li, Fuguo
AU - Xue, Fengmei
AU - Zhang, Mingjie
AU - Li, Jiang
N1 - Publisher Copyright:
© 2014, ASM International.
PY - 2015/2
Y1 - 2015/2
N2 - With the aid of indentation experiments, the micro-mechanical properties of the matrix of SiC particle-reinforced Aluminum composite were investigated with the load ranging from 80 to 480 mN and the loading speed ranging from 1.94 to 12.91 mN/s at room temperature. The results exhibited that under different loading conditions, the Young’s modulus decreased along with the increasing load due to the damage accumulation. As to micro hardness, it reduced with the increasing load, the indentation depth (i.e., indentation size effect), and the decreasing loading speed. Independent of the loading speed, the micro-hardness was not only related to the material elastic property, but also to plastic property with (Formula presented.) and indenter geometry. The characteristic length was also associated with (Formula presented.). The deduced effective strain rates reduced with the increasing load and the decreasing loading speed. According to the experiment results, the energy dissipation maps and the elastic strain map were constructed.
AB - With the aid of indentation experiments, the micro-mechanical properties of the matrix of SiC particle-reinforced Aluminum composite were investigated with the load ranging from 80 to 480 mN and the loading speed ranging from 1.94 to 12.91 mN/s at room temperature. The results exhibited that under different loading conditions, the Young’s modulus decreased along with the increasing load due to the damage accumulation. As to micro hardness, it reduced with the increasing load, the indentation depth (i.e., indentation size effect), and the decreasing loading speed. Independent of the loading speed, the micro-hardness was not only related to the material elastic property, but also to plastic property with (Formula presented.) and indenter geometry. The characteristic length was also associated with (Formula presented.). The deduced effective strain rates reduced with the increasing load and the decreasing loading speed. According to the experiment results, the energy dissipation maps and the elastic strain map were constructed.
KW - energy dissipation
KW - indentation hardness
KW - SiCp/Al composites
KW - Young’s modulus
UR - http://www.scopus.com/inward/record.url?scp=84925514201&partnerID=8YFLogxK
U2 - 10.1007/s11665-014-1350-8
DO - 10.1007/s11665-014-1350-8
M3 - 文章
AN - SCOPUS:84925514201
SN - 1059-9495
VL - 24
SP - 654
EP - 663
JO - Journal of Materials Engineering and Performance
JF - Journal of Materials Engineering and Performance
IS - 2
ER -