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Chin J Mater Res  2009, Vol. 23 Issue (5): 466-471    DOI:
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Effect of size match between matrix powder and particulate reinforcement on mechanical properties of SiCp/Fe composites
WANG Yaomian;  ZONG Yaping;   LI Jie
Key Laboratory for Anisotropy and Texture of Materials; Ministry of Education; Northeastern University; Shenyang 110004
Cite this article: 

WANG Yaomian ZONG Yaping LI Jie. Effect of size match between matrix powder and particulate reinforcement on mechanical properties of SiCp/Fe composites. Chin J Mater Res, 2009, 23(5): 466-471.

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Abstract  

10% SiCp/Fe composites were fabricated by means of specimen current heating dynamic hot press sintering with iron powder with different sizes. The results demonstrate that the iron powder size has great influence on the distribution of SiC particulates in the composite, and therefore on the mechanical properties. A model, considering iron powder as the mixture of two sorts of particles with
different sizes, is suggested based on the results. The modeling shows that only the size ratios of coarse iron powder to fine powder, and to reinforcing particles are 6.5 and 15.9 respectively, and the content of fine powder is 4.6%, an even reinforcing particle distribution can be realized to produce good properties of composites. The modeling is agreed with experiments well.

Key words:  composites      particle distribution model      size match      specimen current heating dynamic hot press sintering      mechanical properties     
Received:  28 November 2008     
ZTFLH: 

TB333

 
Fund: 

Supported by National Natural Science Foundation of China Nos.50771028 and 50471024.

URL: 

https://www.cjmr.org/EN/     OR     https://www.cjmr.org/EN/Y2009/V23/I5/466

1 Nikhilesh Chawla, Krishan K. Chawla, Metal Matrix Composites (New York, Springer Science+Business Media, Inc. 2006) p.351
2 T.W.Clyne, P.J.Withers, translated by YU Yongning, Fang Zhigang, An Introduction to Metal Matrix Composites (Beijing, Metallurgical Industrial Press, 1996) p.431
(克莱因T.W. 威瑟斯P.J.著, 余永宁, 房志刚译,  金属基复合材料导论 (北京, 冶金工业出版社, 1996) p.431)
3 D.B.Miracle, Metal matrix composites-From science to technological significance, Composites Science and Technology, 65, 2526(2005)
4 Karl U. Kainer, Metal Matrix Composites (Weinheim, WILEY-VCH Verlag GmbH & Co. KGaA, 2006) p.269
5 E.Pagounis, V.K.Lindroos, Development and performance of new hard and wear-resistant engineering materials, Journal of Materials Engineering and Performance, 6(6), 749(1997)
6 ZHANG Shuangyi, XIAO Zhiyu, XIAN zhiyong, LI Yuanyuan, Investigation on SiC particulate reinforced iron matrix composites by powder metallurgy, Journal of South China University of Technology (Natural Science), 27(5), 105(1999)
(张双益, 肖志瑜, 冼志勇, 李元元, SiC颗粒增强铁基粉末冶金复合材料的研究, 华南理工大学学报(自然科学版),  27(5), 105(1999))
7 LIU Junwu, DING Houfu, ZHENG Zhixiang, Study on technological parameters and properties of sintered SiCp/Fe composite materials, Mining and Metallurgical Engineering, 22(1), 92(2002)
(刘君武, 丁厚福, 郑治祥, SiCp/Fe复合材料工艺及性能研究, 矿业工程,  22(1), 92(2002))
8 Rong ZHOU, Yehua JIANG, Dehong LU, The effect of volume fraction of WC particles on erosion resistance of WC reinforced iron matrix surface composites,Wear, 255, 134(2003)
9 DING Yichao, WANG Yisan, WANG Jing, NI Yahui, The preparation and properties of V8C7 particles reinforced iron matrix composite, Chinese Journal of Materials Research, 22(3), 317(2008)
(丁义超, 王一三, 王 静, 倪亚辉, V8C7增强铁基复合材料的制备和性能, 材料研究学报,  22(3), 317(2008))
10 YANG Yufang, ZONG Yaping, WANG Gang, XU Na, Manufacture of SiC particulate reinforced iron matrix composites by specimen current heating hot press sintering, Chinese Journal of Materials Research, 21(1), 67(2007)
(杨玉芳, 宗亚平, 王 刚, 徐 娜, 电流直加热动态热压烧结制备SiCp/Fe复合材料, 材料研究学报,   21(1), 67(2007))
11 Gang WANG, Yufang YANG, Yaping ZONG, study on manufacture of SiCp/Fe composites by specimen current heating hot press sintering, in: Materials Science Forum, V561-565, edited by Chang YW, Kim NJ, Lee CS (Switzerland, Trans Tech Publications, 2007) p.705
12 Daniel B. Miracle, Steven L.Donaldson, ASM Handbook Volume 21 Composites, 10th ed., (ASM International, 2001) p.134
13 P.B.Prangnell, S.J.Barnes, S.M. Roberts, P.J. Withers, The effect of particle distribution on damage formation in particulate reinforced metal matrix composites deformed in compression, Materials Science and Engineering A, 220, 41(1996)
14 M.GENI, M.KIKUCHI, Damage analysis of aluminum matrix composite considering non-uniform distribution of particles, Acta Materialia, 46(9), 3125(1998)
15 A.Borb´ely, H.Biermann, O.Hartmann, FE investigation of the effect of particle distribution on the uniaxial stressstrain behaviour of particulate reinforced metal-matrix composites, Material Science and Engineering A, 313, 34(2001)
16 C.J.Sun, P.Saffari, K.Sadeghipour, G.Baran, Effects of particle arrangement on stress concentration in composites, Material Science and Engineering A, 405, 287(2005)
17 Javier Segurado, Javier LLorca, Computational micromechanics of composites: the effect of particle spatial distribution, Mechanical of Materials, 38, 873(2006)
18 S.Balasivanandha Prabu, L.Karunamoorthy, Microstructure-based finite element analysis of failure prediction in particle-reinforced metal-matrix composite, Journal of Materials Processing Technology, 207, 53(2008)
19 Tan M.J.Zhang X., Powder metal matrix composites: selection and processing, Materials Science and Engineering A, 244, 80(1998)
20 V.V.Bhanu Prasad, B.V.R.Bhat, Y.R.Mahajan, P.Ramakrishnan, Structure-property correlation in discontinuously reinforced aluminium matrix composites as a function of relative particle size ratio, Materials Science and Engineering A, 337, 179(2002)
21 A.Slipenyuk, V.Kuprin, Yu.Milman, J.E.Spowart, D.B.Miracle, The effect of matrix to reinforced particle size ratio (PSR) on the  microstructure and mechanical properties of a P/M processed AlCuMn/SiCp MMC, Materials Science and Engineering A, 381, 165(2004)
22 A.Slipenyuk, V.Kuprin, Yu. Milman, V.Goncharuk, J.Eckert, Properties of P/M processed particle reinforced metal matrix composites specified by reinforcement concentration and matrix-to-reinforcement particle size ratio, Acta Materialia, 54, 157(2006)
23 WANG Gang, ZONG Yaping, YANG Yufang, A new furnace of specimen current heating hot press sintering to fabricate metal matrix composites, CN Patent, ZL 200520092120.5(2007)
(王 刚, 宗亚平, 杨玉芳, 一种制备金属基复合材料的电流直加热动态热压烧结炉, 中国, ZL 200520092120.5 (2007))
24 Hiroaki Masuda, Ko Higashitani, Hideto Yoshida, Powder Technology Handbook, 3rd Edition (Boca Raton, FL, USA, CRC Press, 2006) p.299
25 Muhammad E. Fayed, Lambert Otten, Handbook of Powder Science & Technology, 2nd Edition (New York, Chapman & Hall, 1997) p.96

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