Solid solution evolution during mechanical alloying in Cu-Nb-Al compounds

Kaouther Zaara , Mahmoud Chemingui , Virgil Optasanu , Mohamed Khitouni

International Journal of Minerals, Metallurgy, and Materials ›› 2019, Vol. 26 ›› Issue (9) : 1129 -1139.

PDF
International Journal of Minerals, Metallurgy, and Materials ›› 2019, Vol. 26 ›› Issue (9) : 1129 -1139. DOI: 10.1007/s12613-019-1820-y
Article

Solid solution evolution during mechanical alloying in Cu-Nb-Al compounds

Author information +
History +
PDF

Abstract

This work concerns the structural evolution of Cu70Nb20Al10 (at%) alloy processed by mechanical alloying using a planetary ball mill in air atmosphere for different times (4 to 200 h). The morphological, structural, micro structural, and thermal behaviors of the alloy were investigated by scanning electron microscopy, energy-dispersive spectroscopy, X-ray diffraction, and differential scanning calorimetry. X-ray diffraction patterns were examined using the Rietveld refinement technique with the help of the MAUD software. A disordered FCC-Cu(Nb,Al) solid solution was formed after 8 h of milling. The crystallite size, microstrain, and lattice parameter were determined by the Rietveld method. With increasing milling time, the crystallite size of the final product—ternary -phase FCC-Cu(Nb,Al)—is refined to the nanometer scale, reaching 12 nm after 200 h. This crystallographic structure combines good mechanical strength and good ductility. An increase in microstrain and partial oxidation were also observed with increasing milling time.

Keywords

powder metallurgy / mechanical alloying / nanomaterials / copper-based alloy / solid solution

Cite this article

Download citation ▾
Kaouther Zaara, Mahmoud Chemingui, Virgil Optasanu, Mohamed Khitouni. Solid solution evolution during mechanical alloying in Cu-Nb-Al compounds. International Journal of Minerals, Metallurgy, and Materials, 2019, 26(9): 1129-1139 DOI:10.1007/s12613-019-1820-y

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Benjamin JS. Dispersion strengthened superalloys by mechanical alloying. Metall. Trans., 1970, 1, 2943.

[2]

Yavari AR, Desre PJ, Banameur T. Mechanically driven alloying of immiscible elements. Phys. Rev. Lett., 1992, 68, 2235.

[3]

Uenishi K, Kobayashi KF, Nasu S, Hatano H, Ishibara KN, Shingu PH. Mechanical alloying in the Fe-Cu system. Z. Metallkd., 1992, 83, 132.

[4]

Kuyama J, Inui H, Imaoka S, Ishihara KN, Shinhu PH. Nanometer-sized crystals formed by the mechanical alloying in the Ag-Fe system. Jpn. J. Appl. Phys., 1991, 30, L854.

[5]

Suryanarayana C. Mechanical alloying and milling. Prog. Mater. Sci., 2001, 46, 1.

[6]

El-Eskandarany MS. Mechanical Alloying for Fabrication of Advanced Engineering Materials, 2001 154.

[7]

Khoskhoo MS, Scudinio S, Thomas J, Sureddi KB, Eckert J. Grain and crystalline size evaluation of cryomilled pure copper. J. Alloys Compd., 2011, 509, S343.

[8]

Abdoli H, Farnoush H, Salahi E, Pourazrang K. Study of the densification of a nanostructured composite powder Part 1: effect of compaction pressure and reinforcement addition. Mater. Sci. Eng A, 2008, 486, 580.

[9]

Ghosh J, Mazumdar S, Das M, Ghatak S, Basu AK. Microstructural characterization of amorphous and nanocrys-talline boron nitride prepared by high-energy ball milling. Mater. Res. Bull., 2008, 43, 1023.

[10]

Torrens-Serra J, Peral I, Rodriguez-Viejo J, Clavaguera-Mora MT. Micro structure evolution and grain size distribution in nanocrystalline FeNbBCu from synchrotron XRD and TEM analysis. J. Non-Cryst. Solids, 2012, 358, 107.

[11]

Hadef F, Otomani A, Djekoun A, Greneche JM. Structural and microstructural study of nanostructured Fe50Al40Ni10 powders produced by mechanical alloying. Mater. Charact., 2011, 62, 751.

[12]

Dutta H, Sen A, Bhattacharjee J, Pradhan SK. Preparation of ternary Ti0.9Ni0.1C cermets by mechanical alloying: microstructure characterization by Rietveld method and electron microscopy. J. Alloys Compd., 2010, 493, 666.

[13]

Inoue A. Bulk amorphous alloys. Amorphous and Nanocrystalline Materials, 2001, Berlin, Springer 1.

[14]

Kou SZ, Feng L, Ding YT, Xu GJ, Ding ZF, La PQ. Synthesis and magnetic properties of Cu-based amorphous alloys made by mechanical alloying. Intermetallics, 2004, 12, 1115.

[15]

Wang GM, Fang SS, Xiao XS, Hua Q, Gu JZ, Dong YD. Microstructure and properties of Zr65Al10Ni10Cu15 amorphous plates rolled in the supercooled liquid region. Mater. Sci. Eng. A, 2004, 373, 217.

[16]

Gogebakan M. The effect of Si addition on crystallization behaviour of amorphous Al-Y-Ni alloy. J. Mater. Eng. Perform., 2004, 13, 504.

[17]

Lei RS, Wang MP, Wang HP, Xu SQ. New insights on the formation of supersaturated Cu-Nb solid solution prepared by mechanical alloying. Mater. Charact, 2016, 118, 324.

[18]

Morris MA, Morris DG. Microstructure refinement and associated strength of copper alloys obtained by mechanical alloying. Mater. Sci. Eng. A, 1989, 111, 115.

[19]

Benghalem A, Morris DG. Microstructure and mechanical properties of concentrated alloys prepared by mechanical alloying. Mater. Sci. Eng. A, 1993, 161, 255.

[20]

Botcharova E, Heilmaier M, Freudenberger J, Drew G, Kudashow D, Martin U, Schultz L. Supersaturated solid solution of niobium in copper by mechanical alloying. J. Alloys Compd, 2003, 351, 119.

[21]

Botcharova E, Freudenberger J, Schultz L. Cu-Nb alloys prepared by mechanical alloying and subsequent heat treatment. J. Alloys Compd., 2004, 365, 157.

[22]

Mula S, Bahmanpour H, Mal S, Kang PC, Atwater M, Jian W, Scattergood RO, Koch CC. Thermodynamic feasibility of solid solubility extension of Nb in Cu and their thermal stability. Mater. Sci. Eng. A, 2012, 539, 330.

[23]

Lei RS, Wang MP, Li Z, Wei HG, Yang WC, Jia YL, Gong S. Structure evolution and solid solubility extension of copper-niobium powders during mechanical alloying. Mater. Sci. Eng. A, 2011, 528, 4475.

[24]

Azabou M, Gharsallah HI, Escoda L, Sunol JJ, Kolsi AW, Khitouni M. Mechanochemical reactions in nano-crystalline Cu-Fe system induced by mechanical alloying in air atmosphere. Powder Technol., 2012, 224, 338.

[25]

Khitouni M, Daly R, Mhadhbi M, Kolsi A. Structural evolution in nanocristalline Cu obtained by high energy mechanical milling: phases formation of copper oxides. J. Alloys Compd., 2009, 475, 581.

[26]

Yoon SM, Nagarjuna C, Shin DW, Lee CH, Madava-li B, Hong SJ, Lee KH. Influence of milling atmosphere on thermoelectric properties of p-type Bi-Sb-Te based alloys by mechanical alloying. J. Korean Powder Metall. Inst, 2017, 24, 357.

[27]

Zhao ZQ, Xiao Z, Li Z, Zhu MN, Yang ZQ. Characterization of dispersion strengthened copper alloy prepared by internal oxidation combined with mechanical alloying. J. Mater. Eng. Perform., 2017, 26, 5641.

[28]

do Carmo Amorim da Silva M, de Lima SJG. Evolution of mechanical alloying to obtain Cu-Al-Nb shape memory alloy. Mater. Res., 2005, 8, 169.

[29]

Lutterotti L, Matthies S, Wenk H R. MAUD: a friendly Java program for material analysis using diffraction. IUCr: Newsletter of the CPD, 1999, 21, 14.

[30]

Eckert J, Holzer JC, Johnson WL. Thermal stability and grain growth behavior of mechanically alloyed nano-crystalline Fe-Cu alloys. J. Appl. Phys., 1993, 73, 131.

[31]

Mohamed FA. A dislocation model for the minimum grain size obtainable by milling. Acta Mater, 2003, 51, 4107.

[32]

Bachaga T, Daly R, Escode L, Suñol JJ, Khitouni M. Amorphization of Al50(Fe2B)30Nb20 mixture by mechanical alloying. Metall. Mater. Trans. A, 2013, 44, 4718.

[33]

Krifa M, Mhadhbi M, Escoda L, Saurina J, Suñol JJ, Llorca-Isern N, Artieda-Guzmán C, Khitouni M. Phase transformation during mechanical alloying of Fe-30% Al-20% Cu. Powder Technol, 2013, 246, 117.

[34]

Gharsallah HI, Makhlouf T, Escoda L, Suñol JJ, Khitouni M. Magnetic and microstructural proprieties of nano-crystalline Fe-25at% Al and Fe-25at% Al + 0.2at% B alloys prepared by mechanical alloying process. Eur. Phys. J. Plus, 2016, 131, 119.

[35]

Bergheul S, Tafat H, Azzaz M. Formation and magnetic properties of nanocrystalline Fe60Co40 alloys produced by mechanical alloying. J. Mater. Eng. Perform., 2006, 15, 349.

[36]

Ying DY, Zhang DL. Processing of Cu-Al2O3 metal matrix nanocomposite materials by using high energy ball milling. Mater. Sci. Eng. A, 2000, 286, 152.

[37]

Gherib M, Otmani A, Djekoun A, Bouasla A, Poulain M, Legouira M. Study of nanocrystalline NiAl alloys prepared by mechanical alloying. Defect Diffus. Forum, 2012, 329, 19.

[38]

Zhang YC, Tang JY, Wang GL, Zhang M, Hu XY. Facile synthesis of submicron Cu2O and CuO crystallites from a solid metallorganic molecular precursor. J. Cryst. Growth, 2006, 294, 278.

[39]

Abad MD, Parker S, Kiene D, Primorac MM, Hosemann P. Mcrostructure and mechanical properties of CUxNb1-x. alloys prepared by ball milling and high pressure torsion compacting. J. Alloys Compd., 2015, 630, 117.

[40]

Pfeiler W. Alloy Physics: A Comprehensive Reference, 2008, New York, John Wileys and Sons.

[41]

Lei RS, Xu SQ, Wang MP, Wang HP. Mcrostructure and properties of nanocrystalline copper-niobium alloy with high strength and high conductivity. Mater. Sci. Eng. A, 2013, 586, 367.

[42]

Slimi M, Azabou M, Escoda L, Sunol JJ, Khitouni M. Stacking faults and structural characterization of mechanically alloyed Ni50Cu(Fe2B)10P30 powders. Eur. Phys. J. Plus, 2015, 130, 72.

[43]

Sivasankaran S, Sivaprasad K, Narayanasamy R, Satyanarayana PV. X-ray peak broadening analysis of AA 6061100-x-x wt.% A12O3 nanocomposite prepared by mechanical alloying. Mater. Charact, 2011, 62, 661.

[44]

Zhao YH, Sheng HW, Lu K. Mcrostructure evolution and thermal properties in nanocrystalline Fe during mechanical attrition. Acta Mater, 2001, 49, 365.

[45]

Slama C, Abdellaoui M. Mcrostructure characterization of nanocrystalline (Ti0.9W0.1) C prepared by mechanical alloying. Int. J. Refract. Met. Hard Mater, 2016, 54, 270.

[46]

Slimi M, Azabou M, Escoda L, Sunol JJ, Khitouni M. Structural and microstructural properties of nanocrystalline Cu-Fe-Ni powders produced by mechanical alloying. Powder Technol., 2014, 266, 262.

[47]

Hideaki I, Toshiyuki M, Keiji N. Measurement of enthalpies of formation of niobium oxides at 920 K in a Tian-Calvet-type calorimeter. J. Chem. Thermodyn., 1984, 16, 411.

[48]

Jacob KT, Shekhar C, Vinay M, Waseda Y. Thermodynamic properties of niobium oxides. J. Chem. Eng. Data, 2010, 55, 4854.

[49]

Novakovic R. Thermodynamics, surface properties and microscopic functions of liquid Al-Nb and Nb-Ti alloys. J. Non-Cryst. Solids, 2010, 356, 1593.

AI Summary AI Mindmap
PDF

134

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/