Damage evolution model for particle reinforced aluminum matrix composite

被引:0
作者
Wang, Jiang [1 ]
Guo, Shengli [1 ]
Zheng, Qifei [1 ]
Feng, Ce [1 ]
Liu, Cheng [1 ]
机构
[1] National Engineering Research Center for Nonferrous Metals Composites, General Research Institute for Nonferrous Metals, Beijing
来源
Xiyou Jinshu/Chinese Journal of Rare Metals | 2015年 / 39卷 / 09期
关键词
Composite; Damage evolution model; Elastic modulus method; Zener-Hollomon parameter;
D O I
10.13373/j.cnki.cjrm.2015.09.008
中图分类号
学科分类号
摘要
Particle reinforced aluminum matrix composite was inevitably damaged when plastic deformation occurred and it eventually led to the macro fracture. A damage evolution model was established to study the evolution of damage for composite during hot deformation process based on the theory of continued damage mechanics. Zener-Hollomon parameter which contained temperature and strain rate was taken into the model. Damage evolution curves of composite were obtained in different deformation conditions by high temperature multi-step tensile test referring to the elastic modulus method proposed by Lemaitre. The parameter of the model was determined as A(Z)=2.22769-0.09438lnZ+0.00238ln2, Z by damage evolution curves data fitting. The judgment of macro fracture of composite was determined as DC(Z)=0.50915-0.00577lnZ by the damage critical value fitting. The occurrence of macro fracture could be judged by comparing the current damage value and the damage critical value. The model was verified by high temperature compression test. The results showed that the model could better predict the macro fracture of composite and provided a theoretical basis for actual production process. ©, 2015, Editorial Office of Chinese Journal of Rare Metals. All right reserved.
引用
收藏
页码:812 / 817
页数:5
相关论文
共 50 条
[41]   Turning Machinability of SiC Particle Reinforced Aluminum Alloy Composites [J].
Asano, Kazunori ;
Liu, Jinrong ;
Fujita, Takashi ;
Hayashi, Mutsuo ;
Katsumata, Shuhei ;
Ochiai, Shogo .
MATERIALS TRANSACTIONS, 2025, 66 (03) :376-382
[42]   Micromechanical Model of Stress Distribution and Transfer in Short-Fiber-Reinforced Elastomer Matrix Composite [J].
Zhu Dasheng ;
Gu Boqin ;
Chen Ye .
JOURNAL OF COMPUTATIONAL AND THEORETICAL NANOSCIENCE, 2008, 5 (08) :1546-1550
[43]   Preparation of SiC Fiber Reinforced Nickel Matrix Composite [J].
Lu ZhangNanlin ShiJun Gong and Chao Sun Institute of Metal ResearchChinese Academy of SciencesShenyang China .
JournalofMaterialsScience&Technology, 2012, 28 (03) :234-240
[44]   Preparation of SiC Fiber Reinforced Nickel Matrix Composite [J].
Zhang, Lu ;
Shi, Nanlin ;
Gong, Jun ;
Sun, Chao .
JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2012, 28 (03) :234-240
[45]   Graphene Reinforced Metal Matrix Composite (GRMMC): A Review [J].
Kumar, Prashantha H. G. ;
Xavior, M. Anthony .
12TH GLOBAL CONGRESS ON MANUFACTURING AND MANAGEMENT (GCMM - 2014), 2014, 97 :1033-1040
[46]   CARBIDE FORMATION IN A CARBON-FIBER REINFORCED ALUMINUM COMPOSITE [J].
YANG, M ;
SCOTT, VD .
CARBON, 1991, 29 (07) :877-879
[47]   Effect of Wettability and Uniform Distribution of Reinforcement Particle on Mechanical Property (Tensile) in Aluminum Metal Matrix Composite-A Review [J].
James, Johny ;
Annamalai, A. Raja ;
Muthuchamy, A. ;
Jen, Chun-Ping .
NANOMATERIALS, 2021, 11 (09)
[48]   Surface Damage and Microstructure Evolution of Yttria Particle-Reinforced Tungsten Plate during Transient Laser Thermal Shock [J].
Ren, Daya ;
Xi, Ya ;
Yan, Jie ;
Zan, Xiang ;
Luo, Laima ;
Wu, Yucheng .
METALS, 2022, 12 (04)
[49]   High temperature compression behavior of Al2O3 particle reinforced 6061aluminum alloy composite [J].
Luan, BF ;
Wu, GH ;
Sun, D .
TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2003, 13 :148-151
[50]   Fabrication and characteristic of Al-based hybrid composite reinforced with tungsten oxide particle and aluminum borate whisker by squeeze casting [J].
Feng, Y. C. ;
Geng, L. ;
Zheng, P. Q. ;
Zheng, Z. Z. ;
Wang, G. S. .
MATERIALS & DESIGN, 2008, 29 (10) :2023-2026