| Literature DB >> 28774120 |
Yuhou Yang1,2, Bo Song3,4, Zhanbing Yang5,6, Gaoyang Song7,8, Zeyun Cai9,10, Zhancheng Guo11.
Abstract
There is far less study of the refining effect of super gravity fields on solidification structures of al">metals than of the effects of electrical currents, magnetic and ultrasonic fields. Moreover, the refining mechanisms of super gravity are far from clear. This study applied a super gravity field toEntities:
Keywords: Al-Cu alloy; refining mechanism; solidification structure; super gravity
Year: 2016 PMID: 28774120 PMCID: PMC5457018 DOI: 10.3390/ma9121001
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Schematic diagram of the experimental super gravity apparatus: 1. counterpart; 2. housing; 3. thermal couple conductive slip ring; 4. thermal insulation materials; 5. resistance wire; 6. furnace tube; 7. furnace shell; 8. sample; 9. thermal couple; 10. conductive slip ring; 11. rotation axis; 12. rotation controller; 13. temperature controller.
Figure 2Macrostructures of Al-4.5 wt % Cu alloy in normal gravity field and super gravity field at the cooling rate of 10 °C/min. (a) G = 1; (b) G = 100; (c) G = 300; (d) G = 500; (e) G = 800.
Figure 3Microstructure of Al-4.5 wt % Cu alloy at different positions of samples in normal gravity and super gravity field: (a-1–a-3) G = 1; (c-1–c-3) G = 300; (e-1–e-3) G = 800. ((1) through (3)) refer to positions 1 through 3, respectively, marked in Figure 2a.
Figure 4Macrostructure of Al-Cu alloys with varying solute contents in normal gravity field and super gravity field: the subfigures in the first row correspond to samples in a normal gravity field; the subfigures in the second row and the third row correspond to samples in super gravity fields of G = 100 and G = 800, respectively.
Figure 5The solidification process of Al-8 wt % Cu alloy calculated via Thermo-Calc software using the Scheil mode.
Figure 6Macrostructures of Al-8 wt % Cu alloy after applying a super gravity field of G = 800 at different solidification stages as shown in Figure 5 (a–j) corresponds to super gravity treatment at a–j stages shown in Figure 5.
Figure 7Macrostructures of Al-8 wt % Cu alloy after applying super gravity at different solidification stages by G = 300, ν = 5 °C/min. (a–d) correspond to super gravity treatment at the (b–e) stages of Figure 5.
Figure 8Density change of solid and liquid phase in alloys during solidification calculated using Jmatpro7.0 software. (a) density change with temperature; (b,c) density change with solid fraction of Al-4.5 wt % Cu and Al-8 wt % Cu alloys, respectively.
Figure 9The distribution of solute Cu in solid and liquid phases of Al-8 wt % Cu alloy during solidification, calculated by Thermal-Calc software.