CLAD 2XXX-SERIES AEROSPACE PRODUCT
20220325388 · 2022-10-13
Assignee
Inventors
- Aleksandar Lozanov Davidkov (Aachen, DE)
- Achim Bürger (Höhr-Grenzhausen, DE)
- Sabine Maria Spangel (Koblenz, DE)
- Philippe Meyer (Agnetz, FR)
Cpc classification
C22F1/057
CHEMISTRY; METALLURGY
B32B15/016
PERFORMING OPERATIONS; TRANSPORTING
International classification
B32B15/01
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a rolled composite aerospace product comprising a 2XXX-series core layer and a 6XXX-series aluminium alloy clad layer coupled to at least one surface of the 2XXX-series core layer, wherein the 6XXX-series aluminium alloy comprises, in wt. %, Si 0.3% to 1.0%, Mg 0.3% to 1.1%, Mn 0.04% to 1.0%, Fe 0.03% to 0.4%, Cu up to 0.10%, Cr up to 0.25%, V up to 0.2%, Zr up to 0.2%, Zn up to 0.5%, Ti up to 0.15%, unavoidable impurities each <0.05%, total <0.15%, balance aluminium. The invention further relates to a method of manufacturing such a rolled composite aerospace product.
Claims
1. A rolled composite aerospace product comprising a 2XXX-series core layer and a 6XXX-series aluminium alloy clad layer coupled to at least one surface of the 2XXX-series core layer, wherein the 6XXX-series aluminium alloy comprises, in wt. %, Si 0.3% to 1.0%, Mg 0.3% to 1.1%, Mn 0.04% to 1.0%, Fe 0.03% to 0.4%, Cu up to 0.10%, Cr up to 0.25%, V up to 0.2%, Zr up to 0.2%, Zn up to 0.5%, Ti up to 0.1%, unavoidable impurities each <0.05%, total <0.15%, balance aluminium.
2. The rolled composite aerospace product according to claim 1, wherein the 6XXX-series aluminium alloy has a Si-content in a range of 0.4% to 0.9%.
3. The rolled composite aerospace product according to claim 1, wherein the 6XXX-series aluminium alloy has a Mg-content in a range of 0.40% to 0.90%.
4. The rolled composite aerospace product according to claim 1, wherein the 6XXX-series aluminium alloy has a Mn-content in a range of 0.25% to 1.0%.
5. The rolled composite aerospace product according to claim 1, wherein the 6XXX-series aluminium alloy clad layer is coupled by means of roll bonding to the at least one surface of the 2XXX-series core layer.
6. The rolled composite aerospace product according to claim 1, wherein the 6XXX-series aluminium alloy clad layer has a thickness in the range of 1% to 20% of the total thickness of the rolled composite aerospace product.
7. The rolled composite aerospace product according to claim 1, consisting of a 2XXX-series core layer and a 6XXX-series aluminium alloy clad layer coupled to one surface of the 2XXX-series core layer.
8. The rolled composite aerospace product according to claim 1, consisting of a 2XXX-series core layer and a 6XXX-series aluminium alloy clad layer coupled to both surfaces of the 2XXX-series core layer.
9. The rolled composite aerospace product according to claim 1, wherein the 2XXX-series alloy of the core layer has a composition of, in wt. %, Cu 1.9% to 7.0%, Mg 0.30% to 1.8%, Mn up to 1.2%, Si up to 0.40%, Fe up to 0.40%, Cr up to 0.35%, Zn up to 1.0%, Ti up to 0.15%, Zr up to 0.25, V up to 0.25%, Li up to 2.0% Ag up to 0.80%, Ni up to 2.5%, balance being aluminium and impurities.
10. The rolled composite aerospace product according to claim 1, wherein the 2XXX-series core layer is from the 2x24-series alloy.
11. The rolled composite aerospace product according to claim 1, wherein the 2XXX-series core layer is in a T3, T351, T39, T8 or T851 temper.
12. The rolled composite aerospace product according to claim 1, wherein the 6XXX-series clad layer is in a T4 or T6 temper.
13. The rolled composite aerospace product according to claim 1, wherein the rolled composite aerospace product has a total thickness of 0.8 mm to 50.8 mm.
14. The rolled composite aerospace product according to claim 1, wherein the rolled composite aerospace product is a plate product.
15. The rolled composite aerospace product according to claim 1, wherein the rolled composite aerospace product is a sheet product.
16. The rolled composite aerospace product according to claim 1, wherein the rolled composite aerospace product is an aerospace structural part.
17. A method of manufacturing a rolled composite aerospace product according to claim 1, comprising the steps of: (a) providing an ingot of a 2XXX-series aluminium alloy for forming the core layer of the composite aerospace product; (b) homogenizing the ingot of the 2XXX-series aluminium alloy at a temperature in the range of 400° C. to 505° C. for at least 2 hours; (c) providing an ingot or rolled clad liner of a 6XXX-series aluminium alloy for forming an outer clad layer on the 2XXX-series core aluminium alloy; (d) homogenizing the ingot of the 6XXX-series aluminium alloy at a temperature in the range of at least 480° C. for at least 0.5 hour; (e) roll bonding the 6XXX-series aluminium alloy to the 2XXX-series core alloy to form a roll bonded product, and optionally followed by cold rolling; (f) solution heat-treating the roll bonded product at a temperature in the range of 450° C. to 505° C.; (g) cooling of the solution heat-treated roll bonded product to below 100° C.; (h) optionally stretching of the solution heat-treated and cooled roll bonded product; and (i) ageing of the 2XXX-series core alloy of the cooled roll bonded product.
18. The method according to claim 17, wherein the method further comprises forming of the solution heat-treated and cooled roll bonded product, and optionally also being stretched, in a forming process into a predetermined shape product.
19. The method according to claim 17, wherein a forming step (j) is performed after the ageing step (i).
20. The method according to claim 18, wherein the forming step (j) and the ageing step (i) are combined in a forming step at elevated temperature.
Description
DESCRIPTION OF THE DRAWINGS
[0103] The invention shall also be described with reference to the appended drawing, in which
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[0108] In an embodiment the cooled product is formed in forming process 13 and ageing, i.e. natural or artificial ageing, in process step 14 to final temper, e.g. a T3 or T8 temper.
[0109] In an embodiment the forming process 13 and the ageing of process step 14 can be combined, for example the forming operation is performed at a temperature in a range of 140° C. to 200° C., and preferably for a time in a range of 1 to 50 hours, such that also artificial ageing of both the 2XXX-series core and the 6XXX-series clad layer(s) occurs.
[0110] In an embodiment the cooled product is aged in process step 14, i.e. natural or artificial ageing, to a desired temper, and subsequently formed in a forming process 13 into a formed product of predetermined shape.
[0111] In an alternative embodiment after rolling bonding of the 2XXX-series core and the 6XXX-series clad layer(s) to final gauge, the rolled product is formed in a forming process 13 into a predetermined shape, solution heat treated of the formed product in process step 15 and cooled in process step 11 and followed by ageing, i.e. natural or artificial ageing, in process step 14 to final temper, e.g. a T3 or T8 temper.
[0112] The invention is not limited to the embodiments described before, and which may be varied widely within the scope of the invention as defined by the appending claims.