欢迎登录材料期刊网

材料期刊网

高级检索

采用K2TiF6无机盐和SiC陶瓷颗粒与铝熔体原位反应制备不同含量TiC颗粒(0,2.5%,5%,质量分数)增强AA6061铝合金。为分解SiC释放碳原子,合金在高温下进行铸造,并保温一段时间。X射线衍射分析表明铝基复合材料中只生成TiC颗粒而未见其他金属间化合物。采用场发射扫描电子显微镜(FESEM)和背散射电子衍射(EBSD)分析AA6061/TiC复合材料的显微组织。结果表明原位生成的TiC颗粒分布均匀,界面清晰,结合良好,并具有立方、球形和六方等形状。EBSD图像表明TiC颗粒对复合材料具有明显的晶粒细化效果。TiC颗粒可提高铝基复合材料的显微硬度和抗拉强度。

Aluminum alloys AA6061 reinforced with various amounts (0, 2.5% and 5%, mass fraction) of TiC particles were synthesized by the in situ reaction of inorganic salt K2TiF6 and ceramic particle SiC with molten aluminum. The casting was carried out at an elevated temperature and held for a longer duration to decompose SiC to release carbon atoms. X-ray diffraction patterns of the prepared AMCs clearly revealed the formation of TiC particles without the occurrence of any other intermetallic compounds. The microstructure of the prepared AA6061/TiC AMCs was studied using field emission scanning electron microscope (FESEM) and electron backscatter diffraction (EBSD). The in situ formed TiC particles were characterized with homogeneous distribution, clear interface, good bonding and various shapes such as cubic, spherical and hexagonal. EBSD maps showed the grain refinement action of TiC particles on the produced composites. The formation of TiC particles boosted the microhardness and ultimate tensile strength (UTS) of the AMCs.

参考文献

[1] D.R. Ni;J. J. Wang;Z.N. Zhou.Fabrication and mechanical properties of bulk NiTip/Al composites prepared by friction stir processing[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,2014:368-374.
[2] Chen, H. S.;Wang, W. X.;Li, Y. L.;Zhang, P.;Nie, H. H.;Wu, Q. C..The design, microstructure and tensile properties of B4C particulate reinforced 6061Al neutron absorber composites[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,2015:23-29.
[3] Joel Hemanth.Abrasive and slurry wear behavior of chilled aluminum alloy (A356) reinforcedv with fused silica (SiO2p) metal matrix composites[J].Composites, Part B. Engineering,20117(7):1826-1833.
[4] C. S. Ramesh;A. R. Anwar Khan;N. Ravikumar;P. Savanprabhu.Prediction of wear coefficient of Al6061-TiO2 composites[J].Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear,20051(1):602-608.
[5] B. Ashok Kumar;N. Murugan.Metallurgical and mechanical characterization of stir cast AA6O61-T6-AlN_p composite[J].Materials & design,2012Sep.(Sep.):52-58.
[6] Hashemi, R.;Hussain, G..Wear performance of Al/TiN dispersion strengthened surface composite produced through friction stir process: A comparison of tool geometries and number of passes[J].Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear,2015:45-54.
[7] C.S. Ramesh;R. Keshavamurthy.Slurry erosive wear behavior of Ni-P coated Si_3N_4 reinforced A16061 composites[J].Materials & design,20114(4):1833-1843.
[8] S. Gopalakrishnan;N. Murugan.Production and wear characterisation of AA 6061 matrix titanium carbide particulars reinforced composite by enhanced stir casting method[J].Composites, Part B. Engineering,20122(2):302-308.
[9] Zhang, S. -L.;Yang, J.;Zhang, B. -R.;Zhao, Y. -T.;Chen, G.;Shi, X. -X.;Liang, Z. -P..A novel fabrication technology of in situ TiB2/6063Al composites: High energy ball milling and melt in situ reaction[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,2015:215-223.
[10] Kangle Tian;Yutao Zhao;Lei Jiao.Effects of in situ generated ZrB_2 nano-particles on microstructure and tensile properties of 2024A1 matrix composites[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,2014:1-6.
[11] Cunzhu Nie;Jiajun Gu;Junliang Liu.Investigation on microstructures and interface character of B_4C particles reinforced 2024Al matrix composites fabricated by mechanical alloying[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,20081/2(1/2):118-122.
[12] A. Ansary Yar;M. Montazerian;H. Abdizadeh.Microstructure and mechanical properties of aluminum alloy matrix composite reinforced with nano-particle MgO[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,20091/2(1/2):400-404.
[13] Ziyang Xiu;Wenshu Yang;Guoqing Chen;Longtao Jiang;Kang Ma;Gaohui Wu.Microstructure and tensile properties of Si_3N_4p/2024Al composite fabricated by pressure infiltration method[J].Materials & design,2012Jan.(Jan.):350-355.
[14] Zhang, Long-Jiang;Qiu, Feng;Wang, Jin-Guo;Jiang, Qi-Chuan.High strength and good ductility at elevated temperature of nano-SiCp/Al2014 composites fabricated by semi-solid stir casting combined with hot extrusion[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2015:338-341.
[15] V C Srivastava;S N Ojha.Microstructure and electrical conductivity of Al-SiC_p composites produced by spray forming process[J].Bulletin of Materials Science,20052(2):125-130.
[16] D.B. Miracle.Metal matrix composites - From science to technological significance[J].Composites science and technology,200515/16(15/16):2526-2540.
[17] J. M. Torralba;C. E. da Costa;F. Velasco.P/M aluminum matrix composites: an overview[J].Journal of Materials Processing Technology,20031/2(1/2):203-206.
[18] C. Suryanarayana;Nasser Al-Aqeeli.Mechanically alloyed nanocomposites[J].Progress in materials science,20134(4):383-502.
[19] Belete Sikahbizu Yigezu;P. K. Jha;M. M. Mahapatra.The Key Attributes of Synthesizing Ceramic Particulate Reinforced Al-Based Matrix Composites through Stir Casting Process: A Review[J].Materials and Manufacturing Processes,20137/9(7/9):969-979.
[20] Tjong SC.;Ma ZY..Microstructural and mechanical characteristics of in situ metal matrix composites [Review][J].Materials Science & Engineering, R. Reports: A Review Journal,20003/4(3/4):49-113.
[21] Pramod, S. L.;Bakshi, Srinivasa R.;Murty, B. S..Aluminum-Based Cast In Situ Composites: A Review[J].Journal of Materials Engineering and Performance,20156(6):2185-2207.
[22] Chen, Fei;Chen, Zongning;Mao, Feng;Wang, Tongmin;Cao, Zhiqiang.TiB2 reinforced aluminum based in situ composites fabricated by stir casting[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2015:357-368.
[23] Tong XC..Fabrication of in situ TiC reinforced aluminum matrix composites Part I - Microstructural characterization[J].Journal of Materials Science,199822(22):5365-5374.
[24] Rajnesh Tyagi.Synthesis and tribological characterization of in situ cast Al-TiC composites[J].Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear,20051(1):569-576.
[25] Y. Birol.In situ synthesis of Al-TiC_p composites by reacting and particulate graphite in molten aluminium[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,20081/2(1/2):110-117.
[26] Ji, F;Ma, MZ;Song, AJ;Zhang, WG;Zong, HT;Liang, SX;Osamu, Y;Liu, RP.Creep behavior of in situ TiCP/2618 aluminum matrix composite[J].Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing,20091/2(1/2):58-62.
[27] Ranjit Bauri.Synthesis of Al -TiC in-situ composites: Effect of processing temperature and Ti:C ratio[J].Transactions of the Indian Institute of Metals,20094/5(4/5):391-395.
[28] Liang, Y.F.;Zhou, J.E.;Dong, S.Q..Microstructure and tensile properties of in situ TiC_p/Al-4.5wt.% Cu composites obtained by direct reaction synthesis[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,201029/30(29/30):7955-7960.
[29] BELETE SIRAHBIZU YIGEZU;P. K. JHA;M. M. MAHAPATRA.Effect of Sliding Distance, Applied Load, and Weight Percentage of Reinforcement on the Abrasive Wear Properties of In Situ Synthesized Al-12%Si/TiC Composites[J].Tribology Transactions,20134(4):546-554.
[30] Young-Hee Cho;Jung-Moo Lee;Hwa-Jung Kim.Feasible Process for Producing In Situ Al/TiC Composites by Combustion Reaction in an Al Melt[J].Metals and Materials International,20135(5):1109-1116.
[31] G. S. Vinod Kumar;B.S. Murty;M. Chakraborty.Development of Al-Ti-C grain refiners and study of their grain reining efficiency on Al and Al-7Si alloy[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,20051/2(1/2):143-150.
[32] Bauri, R.;Yadav, D.;Suhas, G..Effect of friction stir processing (FSP) on microstructure and properties of Al-TiC in situ composite[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,201113/14(13/14):4732-4739.
[33] J. Hashim;L. Looney;M.S.J. Hashmi.Particle distribution in cast metal matrix composites - Part I[J].Journal of Materials Processing Technology,20022(2):251-257.
[34] Shi-Bo Li;Wei-Hua Xiang;Hong-Xiang Zhai.Formation of TiC hexagonal platelets and their growth mechanism[J].Powder Technology: An International Journal on the Science and Technology of Wet and Dry Particulate Systems,20081(1):49-53.
[35] H.B. Michael Rajan;S. Ramabalan;I. Dinaharan;S.J. Vijay.Synthesis and characterization of in situ formed titanium diboride particulate reinforced AA7075 aluminum alloy cast composites[J].Materials & design,2013Feb.(Feb.):438-445.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%