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(11) |
EP 0 958 393 B1 |
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EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
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11.12.2002 Bulletin 2002/50 |
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Date of filing: 10.02.1997 |
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International Patent Classification (IPC)7: C22C 21/06 |
| (86) |
International application number: |
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PCT/US9702/117 |
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International publication number: |
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WO 9803/5068 (13.08.1998 Gazette 1998/32) |
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ALUMINUM ALLOY PRODUCT
ALUMINIUMLEGIERUNGSPRODUKT
ALLIAGE D'ALUMINIUM
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Designated Contracting States: |
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DE ES FR GB IT NL |
| (43) |
Date of publication of application: |
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24.11.1999 Bulletin 1999/47 |
| (73) |
Proprietor: ALUMINUM COMPANY OF AMERICA |
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Alcoa Center,
Pennsylvania 15069-0001 (US) |
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| (72) |
Inventors: |
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- BAUMANN, Stephen, F.
Alcoa Center, PA 15069-0001 (US)
- COLVIN, Edward, L.
Alcoa Center, PA 15069-0001 (US)
- HYLAND, Robert, W., Jr.
Alcoa Center, PA 15069-0001 (US)
- PETIT, Jocelyn, I.
Alcoa Center, PA 15069-0001 (US)
|
| (74) |
Representative: Ebner von Eschenbach, Jennifer et al |
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Ladas & Parry,
Dachauerstrasse 37 80335 München 80335 München (DE) |
| (56) |
References cited: :
EP-A- 0 489 408
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WO-A-95/26420
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- CHEMICAL ABSTRACTS, vol. 125, no. 22, 25 November 1996 Columbus, Ohio, US; abstract
no. 282251, XP002040086 & V.I. LUKIN: "Effect of Sc, MN, Zr alloying elements on the
weldability of Al-Mg-Sc-Mn-Zr system alloys" SVAR. PROIZVOD., vol. 6, 1996, pages
9-11,
- DATABASE WPI Section Ch, Week 9629 Derwent Publications Ltd., London, GB; Class M26,
AN 96-285556 XP002040087 & RU 2 048 576 C (PROMETEI CONSTR MATERIALS RES INST) , 20
November 1995
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| |
|
| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
[0001] This invention relates to an aluminum alloy product, and more particularly to aluminum
alloy products developed for aerospace applications.
[0002] Nearly all commercial airplanes have fuselage skins made of Alclad 2024-T3. The base
metal, 2024-T3 sheet, has the necessary strength and damage tolerance for aerospace
applications, but suffers from susceptibility to pitting and/or intergranular corrosion
attack. To compensate for that problem, the base metal is effectively isolated from
the environment by a cladding layer, a paint or coating system or a combination of
both.
[0003] An alcladding process involves combining a thin layer of an aluminum alloy anodic
relative to 2024-T3 on both sides of 2024-T3 sheet. These layers act as a barrier
and also afford galvanic protection to the 2024-T3 in case the cladding is damaged.
In cases where these layers are intentionally removed by machining or chemical milling
to save weight, 2024-T3 sheet may be protected with coatings and/or by anodization.
[0004] While the above protection systems are generally effective, they have some notable
disadvantages. The Alclad layer contributes little with respect to strength, adds
weight to the sheet and can act to initiate fatigue cracks. Other coating systems
may also add weight and, if damaged, fail to protect 2024-T3 base metal. Surfaces
that are anodized are brittle and can act to initiate cracks. Another disadvantage
of 2024-T3 sheet is its relatively high density (0.101 lb/in
3).
[0005] V.I. Lukin: "Effect of Sc, Mn, Zr alloying elements on the weldability of Al-Mg-Sc-Mn-Zr
system alloys," SVAR.PROIZVOD., vol. 6, 1996, discloses an alloy composition comprising
6.3 wt % of magnesium with 0-0.08 wt % scandium which increases the welded joint strength.
[0006] It is a principal interest of this invention to provide a damage tolerant aluminum
alloy product useful for airplane application including fuselage skin, the lower wing
sections, stringers and/or pressure bulkheads. The alloys of this invention have a
relatively low density, good corrosion resistance and a good combination of strength
and toughness so as to obviate cladding, painting and/or other base metal protection
systems.
[0007] It is another main interest of this invention to provide an aluminum alloy product
for damage tolerant applications, such as fuselage skins, that has sufficient strength
primarily generated through strain hardening of a generally uniform matrix composition,
as opposed to precipitating particles that are electrochemically different from the
matrix as in 2024-T3 aluminum.
[0008] It is still a further interest of this invention to provide a lower density alloy
than 2024-T3 aluminum for potential weight savings in commercial aircraft. With a
lower density alloy, increased fuel efficiency and/or increased payload capacity will
result. It is yet another object to provide an aluminum alloy system that retains
superior performance over the long (generally 20 to 40 year) life of commercial aircraft.
It is also an interest of this invention to provide such a material with improved
resistance to fatigue crack initiation.
[0009] According to the invention, there is provided an aluminum alloy product comprising
an alloy composition consisting essentially of 3.5-6 wt % magnesium, 0.03-0.2 wt %
zirconium, 0.2-1.2 wt % manganese, up to 0.15 wt % silicon, 0.16-0.34 wt % scandium,
0-0.25 wt % copper, and optionally 0.05-0.5 wt % of a dispersoid-forming element selected
from erbium, yttrium, gadolinium, holmium and hafnium, the balance being aluminum
and unavoidable impurities. The dispersoid-forming element is scandium. This alloy
composition is also preferably zinc-free and lithium-free.
[0010] For the description of alloy compositions that follows, all references are to weight
percentages (wt %) unless otherwise indicated. When referring to any numerical range
of values, such ranges are understood to include each and every number and/or fraction
between the stated range minimum and maximum. A range of about 0.05-0.5 wt % scandium,
for example, would include all intermediate values of about 0.06, 0.07, 0.08 and 0.1
wt % all the way up to and including about 0.48, 0.49 and 0.4995 wt % scandium. The
same applies to the other elemental ranges set forth below.
[0011] The term "substantially free" means having no significant amount of that component
purposely added to the alloy composition, it being understood that trace amounts of
incidental elements and/or impurities may find their way into a desired end product.
[0012] The alloys of the invention are based on the Al-Mg-Sc system and are of sufficient
corrosion resistance so as to obviate cladding or other protection systems. Strength
in these alloys is primarily generated through strain hardening of a metal matrix
which is generally uniform in composition. Combinations of strength and damage tolerance
properties sufficient for fuselage skin applications can be obtained by an appropriate
selection of composition, deformation processing and subsequent stabilization treatments.
[0013] It has been found that the Al-Mg-Sc alloy materials of this invention display adequate
tensile strength properties and toughness indicators together with excellent resistance
to intergranular (or grain boundary) corrosion. These materials, also demonstrate
good resistance to exfoliation attack and excellent stress corrosion cracking ("SCC")
resistance during alternate immersion in an NaCl solution tested according to ASTM
G-47.
[0014] A principal alloy used in this invention comprises an alloy composition which includes
an aluminum alloy product comprising an alloy composition consisting essentially of
3.5-6 wt % magnesium, 0.03-0.2 wt % zirconium, 0.2-1.2 wt % manganese, up to 0.15
wt % silicon, 0.16-0.34 wt % scandium, 0-0.25 wt % copper, and optionally 0.05-0.5
wt % of a dispersoid-forming element selected from erbium, yttrium, gadolinium, holmium
and hafnium, the balance being aluminum and unavoidable impurities. On a more preferred
basis, the aluminum alloy composition contains about 3.5-6 wt % magnesium; about 0.06-0.12
wt % zirconium; about 0.4-1 wt % manganese, up to 0.08 wt % silicon and about 0.16-0.34
wt % scandium. Most preferably, the aluminum alloy composition consists essentially
of about 3.8-5.2 wt % magnesium; about 0.09-0.12 wt % zirconium, about 0.5-0.7 wt
% manganese, up to 0.05 wt % silicon and about 0.2-0.3 wt % scandium. Preferred embodiments
of this aluminum alloy are also substantially zinc-free and lithium-free.
[0015] While not being limited to any particular theory, it is believed that this invention
manages to impart significantly higher strengths and greater corrosion resistance
to fuselage skin sheet stock through the addition of certain rare earths or rare earth
"act-alikes", such as scandium, by causing rare earth-rich precipitates to form. These
precipitates have the ability to store and resist loss of strength arising from plastic
deformation. Because of the relatively small size and fine distribution of these particles,
recovery and recrystallization of the resulting alloy are also inhibited.
[0016] The invention alloy is more temperature resistant than the same alloy devoid of scandium
or scandium-like additives. By "temperature resistant", it is meant that a large portion
of the strength and structure imparted by working this alloy is retained in the fuselage
skin sheet end product, even after exposure to one or more higher temperatures, typically
above about 232°C (450°F.), such as during subsequent rolling operations or the like.
[0017] When referring to the main alloying components of this invention, it is understood
that a remainder of substantially aluminum may include some incidental, yet intentionally
added elements which may affect collateral properties of the invention, or unintentionally
added impurities, neither of which should change the essential characteristics of
this alloy. With respect to the main alloying elements of this invention, it is believed
that magnesium contributes to strain hardening and strength. Zirconium additions are
believed to improve the resistance of scandium precipitates to rapid growth. Scandium
and zirconium serve yet another purpose. When added to aluminum-magnesium alloys of
the type described herein, scandium is believed to precipitate to form a dispersion
of fine, intermetallic particles (referred to as "dispersoids"), typically of an Al
3X stoichiometry, with X being either Sc, Zr or both Sc and Zr. Al
3(Sc, Zr) dispersoids impart some strength benefit as a precipitation-hardening compound,
but more importantly, such dispersoids efficiently retard or impede the process of
recovery and recrystallization by a phenomenon sometimes called the "Zener Drag" effect.
[See generally, C.S. Smith, TMS-AIMF,
175, 15(1948).] It is believed to result as follows: Scandium dispersoids are very small
in size, but also large in number. They generally act as "pinning" points for migrating
grain boundaries and dislocations which must bypass them for metal to soften. Recrystallization
and recovery are the principal metallurgical processes by which such strain hardenable
alloys soften. In order to "soften" an alloy having a large population of Al
3(Sc, Zr) particles, it is necessary to heat the material to higher temperatures than
would be required for an alloy not having such particles. Put another way, when strain-hardened
and annealed under identical conditions, a sheet product that contains Al
3(Sc, Zr) dispersoids will have higher strength levels than a comparable alloy to which
no scandium was added.
[0018] For fuselage skin sheet stock and other aerospace applications, this invention exhibits
an ability to resist softening during the high temperature thermal exposures usually
needed to roll sheet products. In so doing, the invention alloy will retain some of
the strength acquired through rolling. Other scandium-free alloys would tend to retain
less strength through rolling, thus yielding a lower strength final product. An added
benefit of zirconium is its ability to limit the growth of these Al
3X particles to assure that such dispersoids remain small, closely spaced and capable
of producing a Zener Drag effect.
[0019] Although it is preferred to limit silicon in the aluminum alloy, it is inevitable
that silicon from the refractory will be included. In commercial practice, over 80%
of an alloy is obtained from scrap, thus adding to the presence of silicon. The alloy
of this invention may contain up to 0.15 wt % silicon with up to 0.08 wt % being preferred
and 0.05 wt % or less being most preferred.
[0020] In a similar manner, while copper is not an intentional elemental additive, it is
a mildly soluble element with respect to this invention. As such, the alloy products
described herein may accommodate up to about 0.25 wt % copper or preferably about
0.15 wt % Cu or less.
[0021] The aluminum alloy product of this invention is especially suited for applications
where damage tolerance is required. Specifically, such damage tolerant aluminum products
are used for aerospace applications, particularly fuselage skin, and the lower wing
sections, stringers or pressure bulkheads of many airplanes.
[0022] The following example is provided to further illustrate the objectives and advantages
of this invention. It is not intended to limit the scope of this invention in any
manner, however.
EXAMPLE
[0023] This example refers to the following main additions to an aluminum based alloy of
the present invention:
| |
Mg |
Mn |
Sc |
Zr |
| Alloy A |
4.0 |
--- |
0.23 |
0.10 |
| Alloy B |
4.1 |
0.62 |
0.23 |
0.09 |
with the balance of each alloy being aluminum, incidental elements and impurities.
[0024] All of the aforementioned alloys were direct chill (or "DC") cast as 2-1/2 x 12 inch
ingots and the rolling surfaces scalped therefrom. Alloy A was not homogenized. Alloy
B was homogenized for 5 hours at 287°C (550°F)followed by 5 hours at 427°C (800°F).
The scalped ingots were heated to 287°C (550°F) for 30 minutes and cross rolled approximately
50% to a nominal thickness of 1 inch. Alloys A and B were then reheated to 287°C (550°F)
and rolled to a final nominal thickness of 0.1 inch. Mechanical properties for each
alloy were then evaluated after a stabilization treatment of 5 hours at 287°C (550°F).
[0025] Table I reports the physical, mechanical property and corrosion data available for
the foregoing samples of Alloys A and B, then compares them with typical values for
2024-T3 aluminum, 6013-T6 aluminum and another potential fuselage skin material known
commercially as Alcoa's C-188 product as manufactured in accordance with U.S. Patent
No. 5,213,639.
[0027] It will be appreciated that an improved aluminum alloy for aerospace applications
has been disclosed. This aluminum alloy has low density, good corrosion resistance
and a good combination of strength and toughness by comparison to conventional fuselage
skin materials.
1. An aluminum alloy product comprising an alloy composition consisting essentially of
3.5-6 wt % magnesium, 0.03-0.2 wt % zirconium, 0.2-1.2 wt % manganese, up to 0.15
wt % silicon, 0.16-0.34 wt % scandium, 0-0.25 wt % copper, and optionally 0.05-0.5
wt % of a dispersoid-forming element selected from erbium, yttrium, gadolinium, holmium
and hafnium, the balance being aluminum and unavoidable impurities.
2. The aluminum alloy product of claim 1, wherein said alloy contains 0.2-0.3 wt % scandium.
3. The aluminum alloy product of claim 1, wherein said alloy is substantially zinc-free
and lithium-free.
4. A damage tolerant, aerospace part having low density, good corrosion resistance and
a good combination of strength and toughness, said aerospace part being made from
an alloy composition consisting essentially of 3.5 to 6 wt % magnesium; 0.03-0.2 wt
% zirconium; 0.2-1.2 wt % manganese; up to 0.15 wt % silicon; 0.16-0.34 wt % scandium;
0-0.25 wt % copper and optionally 0.05-0.5 wt % of a dispersoid-forming element selected
from erbium, yttrium, gadolinium, holmium and hafnium, the balance being aluminum
and unavoidable impurities.
5. The aerospace part of claim 4, which is selected from fuselage skin, a lower wing
section, a stringer and a pressure bulkhead.
6. The aerospace part of claim 5, wherein said dispersoid-forming element consists essentially
of scandium.
7. The aerospace part of claim 6, wherein said alloy composition contains 0.2-0.3 wt
% scandium.
8. An aluminum alloy product or an aerospace part according to any of the preceding claims,
wherein said alloy composition contains 3.8-5.2 wt % magnesium.
9. An aluminum alloy product or an aerospace part according to any of the preceding claims,
wherein said alloy composition contains a maximum of 0.25 wt % copper.
10. An aluminum alloy product or an aerospace part according to any of the preceding claims,
wherein said alloy composition contains 0.06-0.12 wt % zirconium.
11. An aluminum alloy product or an aerospace part according to any of the preceding claims,
wherein said alloy composition contains 0.09-0.12 wt % zirconium.
12. An aluminum alloy product or an aerospace part according to any of the preceding claims,
wherein said alloy composition contains 0.4-1 wt % manganese.
13. An aluminum alloy product or an aerospace part according to any of the preceding claims,
wherein said alloy composition contains 0.5-0.7 wt % manganese.
14. An aluminum alloy product or an aerospace part according to any of the preceding claims,
wherein said alloy composition contains up to 0.08 wt % silicon.
15. An aluminum alloy product or an aerospace part according to any of the preceding claims,
wherein said alloy composition contains up to 0.05 wt % silicon.
16. The aerospace part of claim 5, wherein said alloy composition is substantially zinc-free.
17. The aerospace part of claim 5 or 6, wherein said alloy composition is substantially
lithium-free.
18. An aluminum alloy product according to claim 1 or an aerospace part according to claim
6, wherein said alloy composition contains 3.5-6 wt % magnesium, 0.06-0.12 wt % zirconium,
0.4-1 wt % manganese, up to 0.08 wt % silicon and 0.16-0.34 wt % scandium.
19. An aluminum alloy product according to claim 1 or an aerospace part according to claim
6, wherein said alloy composition contains 3.8-5.2 wt % magnesium, 0.09-0.12 wt %
zirconium, 0.5-0.7 wt % manganese, up to 0.05 wt % silicon and 0.2-0.3 wt % scandium.
1. Aluminiumlegierungsprodukt, aufweisend eine Aluminiumzusammensetzung, im Wesentlichen
bestehend aus: 3,5% -6 Gew.% Magnesium, 0,03% - 0,2 Gew.% Zirconium, 0,2% -1,2 Gew.%
Mangan, bis zu 0,15 Gew.% Silicium, 0,16 % - 0,34 Gew.% Scandium, 0%-0,25 Gewichtsprozent
Kupfer und wahlweise 0,05% -0,5 Gew.% eines Dispersoid-bildenden Elements, ausgewählt
aus: Erbium, Yttrium, Gadolinium, Holmium und Hafnium; wobei der Rest Aluminium sowie
unvermeidbare Verunreinigungen sind.
2. Aluminiumlegierungsprodukt nach Anspruch 1, bei welchem die Legierung 0,2% - 0,3 Gew.%
Scandium enthält.
3. Aluminiumlegierungsprodukt nach Anspruch 1, bei welchem die Legierung im Wesentlichen
frei ist von Zink und Lithium.
4. Schadentolerantes Teil für Luft- und Raumfahrt mit niedriger Dichte, guter Korrosionsbeständigkeit
und guter Kombination von Festigkeit und Schlagzähigkeit, wobei das Teil für Luft-
und Raumfahrt hergestellt wird aus einer Legierungszusammensetzung, im Wesentlichen
bestehend aus: 3,5% - 6 Gew.% Magnesium, 0,03% - 0,2 Gew.% Zirconium, 0,2%- 1,2 Gew.%
Mangan, bis zu 0,15 Gew.% Silicium, 0,16% - 0,34 Gew.% Scandium, 0% - 0,25 Gew.% Kupfer
und wahlweise 0,05% - 0,5 Gew.% eines Dispersoid-bildenden Elements, ausgewählt aus:
Erbium, Yttrium, Gadolinium, Holmium und Hafnium; wobei der Rest Aluminium sowie unvermeidbare
Verunreinigungen sind.
5. Teil für Luft- und Raumfahrt nach Anspruch 4, wobei das Teil ausgewählt wird aus Rumpfschale,
einem unteren Tragflächenprofil, einer Längsversteifung und einem Druckspant.
6. Teil für Luft- und Raumfahrt nach Anspruch 5, bei welchem das Dispersoid-bildende
Element im Wesentlichen aus Scandium besteht.
7. Teil für Luft- und Raumfahrt nach Anspruch 6, bei welchem die Legierungszusammensetzung
0,2% - 0,3 Gew.% Scandium enthält.
8. Aluminiumlegierungsprodukt oder Teil für Luft- und Raumfahrt nach einem der vorgenannten
Ansprüche, bei welchen die Legierungszusammensetzung 3,8% - 5,2 Gew.% Magnesium enthält.
9. Aluminiumlegierungsprodukt oder Teil für Luft- und Raumfahrt nach einem der vorgenannten
Ansprüche, bei welchen die Legierungszusammensetzung maximal 0,25 Gew.% Kupfer enthält.
10. Aluminiumlegierungsprodukt oder Teil für Luft- und Raumfahrt nach einem der vorgenannten
Ansprüche, bei welchen die Legierungszusammensetzung 0,06% - 0,12 Gew.%. Zirconium
enthält.
11. Aluminiumlegierungsprodukt oder Teil für Luft- und Raumfahrt nach einem der vorgenannten
Ansprüche, bei welchen die Legierungszusammensetzung 0,09% - 0,12 Gew.% Zirconium
enthält.
12. Aluminiumlegierungsprodukt oder Teil für Luft- und Raumfahrt nach einem der vorgenannten
Ansprüche, bei welchen die Legierungszusammensetzung 0,4% - 1 Gew.% Mangan enthält.
13. Aluminiumlegierungsprodukt oder Teil für Luft- und Raumfahrt nach einem der vorgenannten
Ansprüche, bei welchen die Legierungszusammensetzung 0,5% - 0,7 Gew.% Mangan enthält.
14. Aluminiumlegierungsprodukt oder Teil für Luft- und Raumfahrt nach einem der vorgenannten
Ansprüche, bei welchen die Legierungszusammensetzung bis zu 0,08 Gew.% Silicium enthält.
15. Aluminiumlegierungsprodukt oder Teil für Luft- und Raumfahrt nach einem der vorgenannten
Ansprüche, bei welchen die Legierungszusammensetzung bis zu 0,05 Gew.%. Silicium enthält.
16. Teil für Luft- und Raumfahrt nach Anspruch 5, bei welchem die Legierungszusammensetzung
im Wesentlichen frei ist von Zink.
17. Teil für Luft- und Raumfahrt nach Anspruch 5 oder 6, bei welchem die Legierungszusammensetzung
im Wesentlichen frei von Lithium ist.
18. Aluminiumlegierungsprodukt nach Anspruch 1 oder Teil für Luft- und Raumfahrt nach
Anspruch 6, bei welchen die Legierungszusammensetzung enthält: 3,5% - 6 Gew.% Magnesium,
0,06% - 0,12 Gew.% Zirconium, 0,4% - 1 Gew.% Mangan, bis zu 0,08 Gew.% Silicium und
0,16% - 0,34 Gew.% Scandium.
19. Aluminiumlegierungsprodukt nach Anspruch 1 oder Teil für Luft- und Raumfahrt nach
Anspruch 6, bei welchen die Legierungszusammensetzung enthält: 3,8% - 5,2 Gew.% Magnesium,
0,09% - 0,12 Gew.% Zirconium, 0,5% - 0,7 Gew.% Mangan, bis zu 0,05 Gew.% Silicium
und 0,2% - 0,3 Gew.% Scandium.
1. Produit d'alliage d'aluminium comprenant une composition d'alliage constituée essentiellement
de 3,5 - 6% en poids de magnésium, 0,03 - 0,2% en poids de zirconium, 0,2 - 1,2% en
poids de manganèse, jusqu'à 0,15% en poids de silicium, 0,16 - 0,34% en poids de scandium,
0 - 0,25% en poids de cuivre, et en option 0,05 - 0,5% en poids d'un élément formant
un dispersoïde choisi parmi l'erbium, l'yttrium, le gadolinium, l'holmium et l'hafnium,
le reste étant l'aluminium et des impuretés inévitables.
2. Produit d'alliage d'aluminium selon la revendication 1, dans lequel ledit alliage
contient 0,2 - 0,3% en poids de scandium.
3. Produit d'alliage d'aluminium selon la revendication 1, dans lequel ledit alliage
est sensiblement exempt de zinc et exempt de lithium.
4. Partie aérospatiale résistant aux endommagements, ayant une faible densité, une bonne
résistance à la corrosion et une bonne combinaison de la résistance mécanique et de
la dureté, ladite partie aérospatiales étant constituée d'une composition d'alliage
consistant essentiellement de 3,5 à 6% en poids de magnésium, 0,03 - 0,2% en poids
de zirconium, 0,2 - 1,2% en poids de manganèse, jusqu'à 0,15% en poids de silicium,
0,16 - 0,34% en poids de scandium, 0 - 0,25% en poids de cuivre et en option 0,05
- 0,5% en poids d'un élément formant un dispersoïde choisi parmi l'erbium, l'yttrium,
le gadolinium, l'holmium et l'hafnium, le reste étant l'aluminium et des impuretés
inévitables.
5. Partie aérospatiale selon la revendication 4, qui est choisie parmi une peau de fuselage,
des sections d'ailes inférieures, des arêtes et/ou des cloisons sous pression.
6. Partie aérospatiale selon la revendication 5, dans laquelle ledit élément formant
un dispersoïde consiste essentiellement en scandium.
7. Partie aérospatiale selon la revendication 6, dans laquelle ladite composition d'alliage
contient 0,2 - 0,3% de scandium.
8. Produit d'alliage d'aluminium ou partie aérospatiale selon l'une quelconque des revendications
précédentes, dans lequel ladite composition d'alliage contient 3,8-5,2% en poids de
magnésium.
9. Produit d'alliage d'aluminium ou partie aérospatiale selon l'une quelconque des revendications
précédentes, dans lequel ladite composition d'alliage contient un maximum de 0,25%
en poids de cuivre.
10. Produit d'alliage d'aluminium ou partie aérospatiale selon l'une quelconque des revendications
précédentes, dans lequel ladite composition d'alliage contient 0,06 - 0,12% de zirconium.
11. Produit d'alliage d'aluminium ou partie aérospatiale selon l'une quelconque des revendications
précédentes, dans lequel ladite composition d'alliage contient 0,09 - 0,12% en poids
de zirconium.
12. Produit d'alliage d'aluminium ou partie aérospatiale selon l'une quelconque des revendications
précédentes, dans lequel ladite composition d'alliage contient 0,4 - 1% en poids de
manganèse.
13. Produit d'alliage d'aluminium ou partie aérospatiale selon l'une quelconque des revendications
précédentes, dans lequel ladite composition d'alliage contient 0,5 - 0,7% en poids
de manganèse.
14. Produit d'alliage d'aluminium ou partie aérospatiale selon l'une quelconque des revendications
précédentes, dans lequel ladite composition d'alliage contient jusqu'à 0,08% en poids
de silicium.
15. Produit d'alliage d'aluminium ou partie aérospatiale selon l'une quelconque des revendications
précédentes, dans lequel ladite composition d'alliage contient jusqu'à 0,05% en poids
de silicium.
16. Partie aérospatiale selon la revendication 5, dans laquelle ladite composition d'alliage
est sensiblement exempte de zinc.
17. Partie aérospatiale selon la revendication 5 ou 6, dans laquelle ladite composition
d'alliage est sensiblement exempte de lithium.
18. Produit d'alliage d'aluminium selon la revendication 1 ou partie aérospatiale selon
la revendication 6, dans lequel ladite composition d'alliage contient 3,5 - 6% en
poids de magnésium, 0,06 - 0,12% en poids de zirconium, 0,4 - 1% en poids de manganèse,
jusqu'à 0,08% en poids de silicium et 0,16 - 0,34% en poids de scandium.
19. Produit d'alliage d'aluminium selon la revendication 1 ou partie aérospatiale selon
la revendication 6, dans lequel ladite composition d'alliage contient 3,8 - 5,2% en
poids de magnésium, 0,09 - 0,12% en poids de zirconium, 0,5-0,7% en poids de manganèse,
jusqu'à 0,05% en poids de silicium et 0,2- 0,3% en poids de scandium.