Microstructure and thermal properties of an Al–Mg alloy solidified at high temperature in the argon atmosphere
DOI:
https://doi.org/10.18321/cpc406Keywords:
Al-Mg alloy, High-temperature diffusion bonding method, Microstructure, Rapid-solidification, Phase transformationsAbstract
In this study, phase formation, the microstructure and the thermal properties of an Al-Mg alloy solidified at high temperature in the argon atmosphere were investigated. The maximum formation of a single-phase Al Mg alloy was determined by the ratio of the primary aluminum and magnesium components Al – 50 at.% Mg and argon gas flow at a temperature of 750 oC. After solidification at pressures of 1 MPa and 2 MPa, the main phases are the β and γ phases of Al-Mg alloy, in equilibrium condition. The thermal properties of the Al-Mg alloy were studied using DTA-TG (Tmelting = 458.4 oC, Тoxidation = 568.4 and 616.9 oC oxidation of pure Mg and pure Al, respectively).
References
(1). Mourik PV, Maaswinkel NM, de Keijser THD, Mittemeijer EJ (1989) J. Mater. Sci. 24:3779–3786. Crossref
(2). Jie JC, Zou CM, Brosh E, Wang HW, Wei ZJ, Li TJ (2013) J. Alloy. Compd. 578:394–404. Crossref
(3). Schoenitz M, Dreizin EL (2013) J. Mater. Res. 18:1827–2836. Crossref
(4). Shih TS, Wang JH, Chong KZ (2004) Mater. Chem. Phys. 85:302–309. Crossref
(5). Palma AS, Iturbe-Garcia JL, López-Muñoz BE, Jiménez AS (2010) Int. J. Hydrogen Energ. 35:12120–12124. Crossref
(6). Rambabu P, Eswara Prasad N, Kutumbarao VV, Wanhill RJH (2016) Aerosp. Mater.Mater. Technol. 1:29–52. Crossref
(7). Yang Z, Li JP, Zhang JX, Lorimer GW, Robson J (2008) Acta Metallurgica Sinica. 21:313–328. Crossref
(8). Walsh FC, Low CTJ, Wood RJK, Stevens KT, Archer J, Poeton AR., Ryder A (2009) Int. J. Surf. Eng. Coat. 87:122–135. Crossref
(9). Kamunur K, Jandosov JM, Аbdulkarimova RG, Hori K, Yelemessova ZhK (2017) Eurasian Chem.-Technol. J. 19:341–346. Crossref
(10). Kamunur K, Jandosov JM, Аbdulkarimova RG, Hori K, Mansurov Z (2017) Chemical Journal of Kazakhstan [Himicheskij Zhurnal Kazahstana] 4:215–224.
(11). Mohammed I, Santhosh K., Chakravarthy SR, Jayaganthan R, Sarathi R, Srinivasan A (2020) Nano Express 1:020007. Crossref
(12). Yao M, Chen L, Yu J, Peng J (2012) Pro. Eng. 45:567–573. Crossref
(13). Kim DY, Cheon SS, Suh JD. Int. J. Precis. Eng. Man. 19:1681–1688. Crossref
(14). Gubicza J, Kassem M, Ungár T (2002) Formation of nanocrystalline aluminum magnesium alloys by mechanical alloying. 3rd International Powder Metallurgy Conference Ankara, Turkey P.741–755.
(15). Zheng Y, Zhang S, Lü X, Wang Q, Zuo Y, Liu L (2012) Chinese J. Chem. Eng. 20:130– 139. Crossref
(16). Chen MC, Kuo CW, Chang CM, Hsieh CC, Chang YY, Wu W (2007) Materials Transactions 48:2595–2598. Crossref
(17). Yang SH, Yang FL, Liao CF, Li MZ, Wang X (2010) J. Rare Earths. 28:385–388. Crossref
(18). El Abedin SZ, Giridhar P, Schwab P, Endres F (2010) Electrochemistry Communications 12:1084–1086. Crossref
(19). Shirzadi AA, Wallach ER (1997) Sci. Technol. Weld. Joi. 2:89–94. Crossref
(20). Scudino S, Sakaliyska M, Surreddi K, Eckert J (2009) Journal of Physics: Conference Series 144:1–5. Crossref
(21). Pourmortazavi SM, Hajimirsadeghi SS, Kohsari I, Fathollahi M, Hosseini SG (2008) Fuel 87:244–251. Crossref