| Literature DB >> 30413757 |
Takuya Maeda1, Kenji Kaneko2, Takuya Namba2, Yuki Koshino2,3, Yukio Sato2, Ryo Teranishi2, Yasuhiro Aruga3.
Abstract
Atomic scale characterization of fine precipitates in an under-aged Cu added Al-Mg-Si alloy was carried out by combination of atomically-resolved annular dark-field scanning transmission electron microscopy and energy dispersive X-ray spectroscopy. Two types of precipitates were observed in the alloy. In the case of ordered β" precipitates, β" was proposed as Mg5-xAl2+xSi4 (x ≈ 1) with solute Cu atoms replacing Al site of β" precipitate. In the case of disordered precipitates, the precipitates were found to consist of β" sub-unit cells, three-fold symmetric structure without Cu atoms, Cu containing structures termed as "Cu sub-unit cluster", and Q' sub-unit cells. Among these structures, the morphologies of three-fold symmetric structure without Cu atoms, Cu sub-unit cluster, and Q' sub-unit cell were almost the same, so that these structures should be the clusters of Q' phase. Since the areal density, length and diameter of precipitates were almost equal between Cu free Al-Mg-Si alloy and Cu added Al-Mg-Si alloy, the increase of hardness by Cu addition should be due to the precipitation of Cu related precipitates, such as Cu sub-unit clusters and Q' sub-unit cells.Entities:
Year: 2018 PMID: 30413757 PMCID: PMC6226491 DOI: 10.1038/s41598-018-35134-8
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Overview of the reported precipitates in the Al-Mg-Si-(Cu) alloy.
| Precipitates | Morphology | Composition | Lattice structure (nm) | Ref. |
|---|---|---|---|---|
| G.P. zone | Mg2+xAl7-x-yMg2+y (1 < x + y < 3) | Monoclinic |
[ | |
| β” | Needle | Mg5Si6 Al2Mg5Si4 Al3Mg4Si4 | Monoclinic |
[ |
| U1 | Needle | MgAl2Si2 | Trigonal |
[ |
| U2 | Needle | MgAlSi | Orthohombic |
[ |
| B’ | Lath | Mg9Al3Si7 | Hexagonal |
[ |
| β’ | Needle | Mg1.8Si | Hexagonal |
[ |
| QP | Needle | Unknown | Hexagonal |
[ |
| QC | Needle | Unknown | Hexagonal |
[ |
| C | Plate | Unknown | Monoclinic |
[ |
| L | Needle | Unknown | Unknown |
[ |
| Q’ | Needle | Al3Cu2Mg9Si7 Al6Mg6Si7Cu2 | Hexagonal |
[ |
| β | Plate | Mg2Si | Cubic |
[ |
| Q | Needle | Al3Cu2Mg9Si7 | Hexagonal |
[ |
Composition of the Al-Mg-Si alloys observed in this experiment. (mass%).
| Mg | Si | Cu | Fe | Al | |
|---|---|---|---|---|---|
| 4M10S | 0.431 | 1.049 | 0.001 | 0.122 | Bal. |
| 6016 | 0.432 | 1.007 | 0.172 | 0.164 | Bal. |
Figure 1The variation of hardness with ageing period of 4M10S and 6016 alloys aged isothermally at 453 K.
Figure 2BF-TEM images of the precipitates in the Al-Mg-Si alloys and its SAED patterns. (a) 4M10S aged for 1.8 ks. (b) 6016 aged for 1.8 ks.
Number of the density, and the size of the precipitates in the both alloys isothermal aged for 1.8 ks at 453 K.
| 4M10S | 6016 | |
|---|---|---|
| Number of the density (m−2) | 3.95 × 1015 | 3.85 × 1015 |
| Length of the precipitates (nm) | 9.79 | 9.17 |
| Diameter of the precipitates (nm) | 2.89 | 2.83 |
Figure 3(a) Atomically-resolved MAADF-STEM images of the β” precipitate in under-aged 4M10S. (b) Schematic drawing of β” unit cell proposed as Mg5Si6.
Figure 4Atomically-resolved HAADF-STEM images of the precipitates in under-aged 6016 alloy. (a,b) shows β” precipitate consisted of unit cell and its schematic drawing. (c,d) shows disordered β” precipitate and its schematic drawing. (e,f) shows Cu containing sub-unit structures mixed with ordered and disordered β” sub-unit cells and its schematic drawing. (g,h) shows the sub-unit cells of Q’ phase surrounded by β” sub-unit cells and its schematic drawing.
Figure 5Atomically-resolved HAADF-STEM image and EDS maps of the β” phase in under-aged 6016 alloy. (a) shows HAADF-STEM image. (b–e) shows chemical map of Al, Mg, Si, and Cu, respectively. (f) shows schematic drawing of proposed β” structure from the EDS results. Dotted line circles indicate substitutional site of Cu atoms. (g) shows schematic drawing of suggested β” unit cell.