Z N Getselev. Casting in an electromagnetic field [J]. J Metals, 1971, 23 (10): 38-39.
[2]
D C Prasso, J W Evans and I J Wilson. Heat transport and solidification in the electromagnetic casing of aluminum alloys: part I. Experimental measurements on a pilot-scale caster [J]. Metal Trans B,1995, 26B: 1243-1251.
[3]
B Q Li. Solidification processing of materials in magnetic fields[J]. JOM-e, 1998, 50 (2): 1-10.
[4]
I J Polmear. Light alloys[M].Arnold, London, 1995: 58.
[5]
B Zhang, D R Poirier and W chen. Microstructure effects on high-cycle fatigue-crack initiation in A356.2 casting alloy [J]. Metall Trans A, 1999,30A: 2659-2665.
[6]
H Jiang, P Brown and J F Knott. Fatigue performance of a cast aluminum alloy Al-7Si-Mg with surface defects [J]. Journal of Materials Science, 1999, 34: 719-725.
[7]
X J Jiang,et al. Differential scanning calorimetry and electron diffraction investigation on low-temperature aging in Al-Zn-Mg alloy [J]. Metal Trans A, 2000, 31: 339-347.
[8]
R A Higgins. The properties of Engineering Materials[M].Edward Arnold, London, 1994: 264.
[9]
S Y Yuan, J W Yeh and C H Tsau. Improved microstructure and mechanical properties of 2024 aluminum alloy produced by a reciprocating extrusion method[J]. Materials Transactions, JIM,1999, 40(3): 233-241.
[10]
W F Miao and D E Laughin. A differential scanning calorimetry study of aluminum alloy 6111 with different pre-ageing treatment[J]. Journal of Materials Science Letter, 2000, 19: 201-203.