Effect of intermetallic compounds on the fracture behavior of dissimilar friction stir welding joints of Mg and Al alloys

Amir Hossein Baghdadi , Zainuddin Sajuri , Nor Fazilah Mohamad Selamat , Mohd Zaidi Omar , Yukio Miyashita , Amir Hossein Kokabi

International Journal of Minerals, Metallurgy, and Materials ›› 2019, Vol. 26 ›› Issue (10) : 1285 -1298.

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International Journal of Minerals, Metallurgy, and Materials ›› 2019, Vol. 26 ›› Issue (10) : 1285 -1298. DOI: 10.1007/s12613-019-1834-5
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Effect of intermetallic compounds on the fracture behavior of dissimilar friction stir welding joints of Mg and Al alloys

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Abstract

Joining Mg to Al is challenging because of the deterioration of mechanical properties caused by the formation of intermetallic compounds (IMCs) at the Mg/Al interface. This study aims to improve the mechanical properties of welded samples by preventing the fracture location at the Mg/Al interface. Friction stir welding was performed to join Mg to Al at different rotational and travel speeds. The micro structure of the welded samples showed the IMCs layers containing Al12Mg17 (γ) and Al3Mg2 (β) at the welding zone with a thickness (> 3.5 <m). Mechanical properties were mainly affected by the thickness of the IMCs, which was governed by welding parameters. The highest tensile strength was obtained at 600 r/min and 40 mm/rnin with a welding efficiency of 80%. The specimens could fracture along the boundary at the thermo-mechanically affected zone in the Mg side of the welded joint.

Keywords

aluminum alloy / magnesium alloy / intermetallic compounds / dissimilar welded joint / friction stir welding

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Amir Hossein Baghdadi, Zainuddin Sajuri, Nor Fazilah Mohamad Selamat, Mohd Zaidi Omar, Yukio Miyashita, Amir Hossein Kokabi. Effect of intermetallic compounds on the fracture behavior of dissimilar friction stir welding joints of Mg and Al alloys. International Journal of Minerals, Metallurgy, and Materials, 2019, 26(10): 1285-1298 DOI:10.1007/s12613-019-1834-5

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References

[1]

Fu BL, Qin GL, Li F, Meng XM, Zhang JZ, Wu CS. Friction stir welding process of dissimilar metals of 6061-T6 aluminum alloy to AZ31B magnesium alloy. J. Mater. Process. Technol., 2015, 218, 38.

[2]

Venkateswaran P, Xu ZH, Li XD, Reynolds AP. Determination of mechanical properties of Al-Mg alloys dissimilar friction stir welded interface by indentation methods. J. Mater. Sci., 2009, 44, 4140.

[3]

Dorbane A, Mansoor B, Ayoub G, Shunmugasamy VC, Imad A. Mechanical, microstructural and fracture properties of dissimilar welds produced by friction stir welding of AZ31B and A16061, Miter. Sci. Eng. A, 2016, 651, 720.

[4]

Wang HY, Liu LM, Zhu ML, Wang H. Laser weld bonding of A6061A1 alloy to AZ31B Mg alloy. Sci. Technol. Weld. Joining, 2007, 12, 261.

[5]

Liu P, Li YJ, Geng HR, Wang J. Microstructure characteristics in TIG welded joint of Mg/Al dissimilar materials. Mater. Lett., 2007, 61, 1288.

[6]

Liu WS, Long LP, Ma YZ, Wu L. Microstructure evolution and mechanical properties of Mg/Al diffusion bonded joints. J. Alloys Compd., 2015, 643, 34.

[7]

Borrisutthekul R, Miyashita Y, Mutoh Y. Dissimilar material laser welding between magnesium alloy AZ31B and aluminum alloy A5052-O. Sci. Technol. Adv. Mater, 2005, 6, 199.

[8]

Zhang TT, Wang WX, Zhang W, Wei Y, Cao XQ, Yan ZF, Zhou J. Microstructure evolution and mechanical properties of an AA6061/AZ31B alloy plate fabricated by explosive welding. J. Alloys Compd., 2018, 735, 1759.

[9]

Liu XB, Qiao FB, Guo LJ, Qiu XE. Metallographic structure, mechanical properties, and process parameter optimization of 5A06 joints formed by ultrasonic-assisted refill friction stir spot welding. Int. J. Miner. Metall. Mater, 2017, 24, 164.

[10]

Ma ZW, Jin YY, Ji SD, Meng XC, Ma L, Li QH. A general strategy for the reliable joining of Al/Ti dissimilar alloys via ultrasonic assisted friction stir welding. J. Mater. Sci. Technol, 2019, 35, 94.

[11]

Wu D, Shen J, Zhou MB, Cheng L, Sang JX. Development of liquid-nitrogen-cooling friction stir spot welding for AZ31 magnesium alloy joints. Int. J. Miner. Metall. Mater, 2017, 24, 1169.

[12]

Dong JH, Gao C, Lu Y, Han J, Jiao XD, Zhu ZX. Microstructural characteristics and mechanical properties of bobbin-tool friction stir welded 2024-T3 aluminum alloy. Int. J. Miner. Metall. Mater, 2017, 24, 171.

[13]

Baghdadi AH, Rajabi A, Selamat NFM, Sajuri Z, Omar MZ. Effect of post-weld heat treatment on mechanical behaviour and dislocation density of FSWed Al 6061, Mater. Sci. Eng. A, 2019, 754, 728.

[14]

Azizieh M, Alavijeh AS, Abbasi M, Balak Z, Kim HS. Mechanical properties and microstructural evaluation of AA1100 to AZ31 dissimilar friction stir welds. Mater. Chem. Phys., 2016, 170, 251.

[15]

Firouzdor V, Kou S. Al-to-Mg friction stir welding: Effect of material position, travel speed, and rotation speed. Metall. Mater. Trans. A, 2010, 41, 2914.

[16]

Zhao Y, Lu ZP, Yan K, Huang LZ. Microstructural characterizations and mechanical properties in underwater friction stir welding of aluminum and magnesium dissimilar alloys. Mater. Des., 2015, 65, 675.

[17]

Pourahmad P, Abbasi M. Materials flow and phase transformation in friction stir welding of Al 6013/Mg. Trans. NonferrousMet. Soc. China, 2013, 23, 1253.

[18]

Meng XC, Jin YY, Ji SD, Yan DJ. Improving friction stir weldability of Al/Mg alloys via ultrasonically diminishing pin adhesion. J. Mater. Sci. Technol, 2018, 34, 1817.

[19]

Liu ZL, Meng XC, Ji SD, Li ZW, Wang L. Improving tensile properties of Al/Mg joint by smashing inter-metallic compounds via ultrasonic-assisted stationary shoulder friction stir welding. J. Manuf. Processes, 2018, 31, 552.

[20]

Liu ZL, Ji SD, Meng XC. Joining of magnesium and aluminum alloys via ultrasonic assisted friction stir welding at low temperature. Int. J. Adv. Manuf. Technol, 2018, 97, 4127.

[21]

Venkateswaran P, Reynolds AP. Factors affecting the properties of Friction Stir Welds between aluminum and magnesium alloys. Mater. Sci. Eng. A, 2012, 545, 26.

[22]

Firouzdor V, Kou S. Formation of liquid and intermetal-lics in Al-to-Mg friction stir welding. Metall. Mater. Trans. A, 2010, 41, 3238.

[23]

Zettler R, da Silva A M, Rodrigues S, Blanco A, dos Santos JF. Dissimilar Al to Mg alloy friction stir welds. Adv. Eng. Mater, 2006, 8, 415.

[24]

Ji Shude, Huang Ruofei, Meng Xiangchen, Zhang Liguo, Huang Yongxian. Enhancing Friction Stir Weldability of 6061-T6 Al and AZ31B Mg Alloys Assisted by External Non-rotational Shoulder. Journal of Materials Engineering and Performance, 2017, 26(5): 2359-2367.

[25]

Ji SD, Meng XC, Liu ZL, Huang RF, Li ZW. Dissimilar friction stir welding of 6061 aluminum alloy and AZ31 magnesium alloy assisted with ultrasonic. Mater. Lett., 2017, 201, 173.

[26]

Chen YC, Nakata K. Friction stir lap joining aluminum and magnesium alloys. ScriptaMater., 2008, 58, 433

[27]

Gao Y, Morisada Y, Fujii H, Liao J. Dissimilar friction stir lap welding of magnesium to aluminum using plasma electrolytic oxidation interlayer. Mater. Sci. Eng. A, 2018, 711, 109.

[28]

Masoudian A, Tahaei A, Shakiba A, Sharifianjazi F, Mohandesi JA. Microstructure and mechanical properties of friction stir weld of dissimilar AZ31-0 magnesium alloy to 6061-T6 aluminum alloy. Trans. Nonferrous Met. Soc. China, 2014, 24, 1317.

[29]

Malarvizhi S, Balasubramanian V. Influences of tool shoulder diameter to plate thickness ratio (D/T) on stir zone formation and tensile properties of friction stir welded dissimilar joints of AA6061 aluminum-AZ31B magnesium alloys. Mater. Des., 2012, 40, 453.

[30]

Mofid MA, Abdollah-Zadeh A, Ghaini FM. The effect of water cooling during dissimilar friction stir welding of Al alloy to Mg alloy, Mater. Des., 2012, 36, 161

[31]

Morishige T, Kawaguchi A, Tsujikawa M, Hino M, Hi-rata T, Higashi K. Dissimilar welding of Al and Mg alloys byFSW, Mater. Trans., 2008, 49, 1129

[32]

Baker H, Okamoto H. ASM Handbook. Vol. 3. Alloy Phase Diagrams, 1992, United States, ASM International, 305

[33]

Fadaeifard F, Matori KA, Toozandehjani M, Daud AR, Ariffin MKAM, Othman NK, Gharavi F, Ramzani AH, Ostovan F. Influence of rotational speed on mechanical properties of friction stir lap welded 6061-T6 Al alloy. Trans. Nonferrous Met. Soc. China, 2014, 24, 1004.

[34]

Firouzdor V, Kou S. Al-to-Mg friction stir welding: effect of positions of Al and Mg with respect to the welding tool. Weld. J., 2009, 88, 213

[35]

Sato YS, Park SHC, Michiuchi M, Kokawa H. Constitutional liquation during dissimilar friction stir welding of Al and Mg alloys. Scripta Mater., 2004, 50, 1233.

[36]

Somasekharan AC, Murr LE. Microstructures in friction-stir welded dissimilar magnesium alloys and magnesium alloys to 6061-T6 aluminum alloy. Mater. Charact, 2004, 52, 49.

[37]

Rao HM, Jordon JB, Ghaffari B, Su X, Khosrova-neh AK, Barkey ME, Yuan W, Guo M. Fatigue and fracture of friction stir linear welded dissimilar aluminum-to-magnesium alloys. Int. J. Fatigue, 2016, 82, 737.

[38]

Liu XT, Cui JZ, Wu XM, Guo YH, Zhang J. Phase growth in diffusion couples under an low frequency alternating magnetic field. Scripta Mater, 2005, 52, 79.

[39]

Liu XT, Cui JZ, Guo YH, Wu XM, Zhang J. Phase formation and growth in Al-Mg couple with an electromagnetic field, Mater. Lett., 2004, 58, 1520

[40]

R.S. Mishra and Z.Y. Ma, Friction stir welding and processing, Mater. Sci. Eng R, 50(2005), No. 1–2, p. 1.

[41]

Ren SR, Ma ZY, Chen LQ. Effect of welding parameters on tensile properties and fracture behavior of friction stir welded Al-Mg-Si alloy. Scripta Mater, 2007, 56, 69.

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