Structure and mechanical properties of Al-based gradient composites reinforced with primary Si and Mg2Si particles through centrifugal casting

Yanbo Zhai , Xiuteng Ma , Zhen Mei

Journal of Wuhan University of Technology Materials Science Edition ›› 2013, Vol. 28 ›› Issue (4) : 813 -818.

PDF
Journal of Wuhan University of Technology Materials Science Edition ›› 2013, Vol. 28 ›› Issue (4) : 813 -818. DOI: 10.1007/s11595-013-0774-6
Metallic Materials

Structure and mechanical properties of Al-based gradient composites reinforced with primary Si and Mg2Si particles through centrifugal casting

Author information +
History +
PDF

Abstract

The structure and mechanical properties of a new type of Al-based discontinuous gradient composites prepared by using the ternary Al-19Si-5Mg alloys as the raw material adopting the centrifugal casting method were investigated. Structurally, the composites are divided into two zones: a reinforced zone with the high volume fraction of primary Si and Mg2Si particles and an unreinforced zone with no or a few particles. In the reinforced zone, the primary particles are evenly distributed, with the sizes of the primary Si particles 80–120 μm, and that of primary Mg2Si particles 20–50 μm. The properties test results show the reinforced zone has higher Rockwell hardness and better wear resistance than the unreinforced zone, due to the complementary reinforcement relationship between the primary Si and Mg2Si particles and their high volume fraction.

Keywords

gradient composites / centrifugal casting / primary Si / primary Mg2Si

Cite this article

Download citation ▾
Yanbo Zhai, Xiuteng Ma, Zhen Mei. Structure and mechanical properties of Al-based gradient composites reinforced with primary Si and Mg2Si particles through centrifugal casting. Journal of Wuhan University of Technology Materials Science Edition, 2013, 28(4): 813-818 DOI:10.1007/s11595-013-0774-6

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Mondolfo LF Microstructure and Properties of Aluminum Alloy[M], 1988 Beijing Metallurgical Industry Press 257-266.

[2]

Hao YK, Xiao JY High Performance Composite Materials[M], 2004 Beijing Chemical Industry Press 189-192.

[3]

Wang ZT, Tian RZ Al Alloys and Machining Manual[M], 1989 Changsha Press of Central South University of Technology 89-96.

[4]

Shi WX, Gao B, Tu GF, . Effect of Neodymium on Primary Silicon and Mechanical Properties of Hypereutectic Al-15%Si Alloy[J]. J. Rare Earth, 2010, 28(1): 367-370.

[5]

Wang LP, Guo EJ, Ma BX Modification effect of Lanthanum on Primary Phase Mg2Si in Mg-Si Alloys[J]. J. Rare Earth, 2008, 26(1): 105-109.

[6]

Ma MT, Sha W Progress of Material Science and Engineering[M], 2000 Beijing Mechanical Industry Press 365-372.

[7]

Feng HK, Yu SR, Li YL, Gong LY Effect of Ultrasonic Treatment on Microstructures of Hypereutectic Al-Si Alloy[J]. J. Mater. Process Tech., 2008, 208(1–3): 330-335.

[8]

Yu JH, Wang CB, Shen Q, . Prepareation and Properties of Sip/Al Composites by Spark Plasma Sintering[J]. Mater. Des., 2012, 41: 198-202.

[9]

Yamagate H, Kasprzar W, Aniolek M, . The Effect of Average Cooling Rates on the Microstructure of the Al-20% Si High Pressure Die Casting Alloy used for Monolithic Cylinder Blocks[J]. J. Mater. Process Tech., 2008, 203: 333-341.

[10]

Yi Y, Fan YG, Tang YJ Effect of Lanthanum-praseodymium-cerium Mischmetal on Mechanical Properties and Microstructure of Mg-A1 Alloys[J]. Journal of Wuhan University of Technology-Mater. Sci. Ed., 2011, 26(1): 102-104.

[11]

Zhai YB, Liu CM, Wang K, . Comparison of Characteristics of Two Al Based Functionally Gradient Composites Reinforced Respectively by in Situ Primary Si Particles and Si/Mg2Si Particles in Centrifugal Casting[J]. T. Nonferr. Metal. Soc., 2010, 20(3): 361-370.

[12]

Li J, Yu ZS, Wang HP, . Microstructure and Mechanical Properties of an in situ Synthesized TiB and TiC Reinforced Titanium Matrix Composite Coating[J]. Journal of Wuhan University of Technology-Mater. Sci. Ed., 2012, 27(1): 1-8.

[13]

Yang GR, Song WM, Ma Y, . Microstructure of Ni/WC Surface Composite Layer on Gray Iron Substrate[J]. Journal of Wuhan University of Technology-Mater. Sci. Ed., 2011, 26(5): 861-866.

[14]

Zhang DW, Li Z, Huang HB New Mg2Si Based Alloy for Automobile Engine Cylinder Liner[J]. Journal of Wuhan University of Technology-Mater. Sci. Ed., 2011, 26(4): 796-799.

[15]

Alireza HA, Liu XC, Frank A, . Wear Behaviour of Hypereutectic Al-Si-Cu-Mg Casting Alloys with Variable Mg Contents[J]. Wear, 2010, 269: 684-692.

[16]

Alireza HA, Frank A Effect of Conventional and Rheo-casting Processes on Microstructural Characteristics of Hypereutectic Al-Si-Cu-Mg Alloy with Variable Mg Content[J]. J. Mater. Process Techno., 2011, 210: 767-775.

[17]

Alireza HA, Frank A Thermodynamic Evaluation of Hypereutectic Al-Si (A390) Alloy with Addition of Mg[J]. Acta Mater., 2010, 58: 3 422-3 428.

[18]

Nasiri N, Emamy M, Malekan A Microstructural Evolution and Tensile Properties of the in situ Al-15%Mg2Si Composite with Extra Si Contents[J]. Mater. Des., 2012, 37: 215-222.

[19]

Bian LP, Liang W, Xie GY, . Enhanced Ductility in an Al-Mg2Si in situ Composite Processed by ECAP Using a Modified BC Route[J]. Mat. Sci. Eng. A, 2011, 528(915): 3 463-3 467.

[20]

Sun Y, Ahlatic H Mechanical and Wear Behaviors of Al-12Si-XMg Composites Reinforced with in situ Mg2Si Particles[J]. Mater Des., 2011, 32: 2 983-2 987.

[21]

Zhang J, Fan Z, Wang YQ, . Microstructural Evolution of the in situ Al-15wt% Mg2Si Composite with Extra Si Contents[J]. Scripta mater., 2000, 42: 1 101-1 106.

[22]

Sergion HR, Rafael E On Influence of Ti and Sr on Microstructure, Mechanical Properties and Quality Index of Cast Eutectic Al-Si-Mg Alloy[J]. Mater Des., 2011, 32: 1 865-1 871.

[23]

Zhang BM Centrifugal Casting[M], 2006 Beijing Machinery Industry Press 126-129.

[24]

Hu DL, Zhang F Ternary Alloys Phase Diagram[M], 1995 Xi’an Northwestern University Press 366-368.

AI Summary AI Mindmap
PDF

144

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/