[0001] This invention relates to Al-Zn-Mg-Cu alloys and more particularly it relates to
Al-Zn-Mg-Cu extrusions and the method of making the same for use in aircraft applications.
Further, the invention relates to Al-Zn-Mg-Cu alloy extrusion product having improved
fracture toughness.
[0002] Existing Al-Zn-Mg-Cu alloys can have relatively high strengths at moderate corrosion
resistance and moderate damage tolerance or fracture toughness. Such alloys and methods
of obtaining properties are set forth in the patents. For example,
U.S. Patent 4,863,528 discloses a method for producing an aluminum alloy product and the resulting product
having improved combinations of strength and corrosion resistance. The method includes
providing an alloy consisting essentially of about 6-16% zinc, about 1.5-4.5% magnesium,
about 1-3% copper, one or more elements selected from zirconium, chromium, manganese,
titanium, vanadium and hafnium, the total of said elements not exceeding about 1%,
the balance aluminum and incidental impurities. The alloy is then solution heat treated;
precipitation hardened to increase its strength to a level exceeding the as-solution
heat treated strength level by at least about 30% of the difference between as-solution
heat treated strength and peak strength; subjected to treatment at a sufficient temperature
or temperatures for improving its corrosion resistance properties; and again precipitation
hardened to raise its yield strength and produce a high strength, highly corrosion
resistant alloy product.
[0003] U.S. Patent 5,221,377 discloses an alloy product having improved combinations of strength, density, toughness
and corrosion resistance, said alloy product consisting essentially of about 7.6 to
8.4% zinc, about 1.8 to 2.2% magnesium, about 2 to 2.6% copper and at least one element
selected from zirconium, vanadium and hafnium present in a total amount not exceeding
about 0.5%, preferably about 0.05 to 0.25% zirconium, the balance aluminum and incidental
elements and impurities. The alloy product, suitable for aerospace applications, exhibits
high yield strength, at least about 10% greater yield strength than its 7X50-T6 counterpart,
with good toughness and corrosion resistance properties typically comparable to or
better than those of its 7X50-T76 counterpart. Upper wing members made from this alloy
typically have a yield strength over 84 ksi, good fracture toughness and an EXCO exfoliation
resistance level of "EC" or better, typically "EB".
[0004] U.S. Patent 4,477,292 discloses a three-step thermal aging method for improving the strength and corrosion
resistance of an article comprising a solution heat treated aluminum alloy containing
zinc, magnesium, copper and at least one element selected from the group consisting
of chromium, manganese and zirconium. The article is precipitation hardened at about
175° to 325°F., heat treated for from several minutes to a few hours at a temperature
of about 360° to 390°F. and again precipitation hardened at about 175° to 325°F

In a preferred embodiment the article treated comprises aluminum alloy 7075 in the
T6 condition. The method of the invention is easier to control and is suitable for
treating articles of greater thickness than other comparable methods.
[0005] U.S. Patent 5,108,520 discloses an aging process for solution-heat-treated, precipitation hardening metal
alloy which includes first underaging the alloy, such that a yield strength below
peak yield strength is obtained, followed by higher aging for improving the corrosion
resistance of the alloy, followed by lower temperature aging to strength increased
over that achieved initially.
[0006] U.S. Patent 5,560,789 discloses AA 7000 series alloys having high mechanical strength and a process for
obtaining them The alloys contain, by weight, 7 to 13.5% Zn, 1 to 3.8% Mg, 0.6 to
2.7% Cu, 0 to 0.5% Mn, 0 to 0.4% Cr, 0 to 0.2% Zr, others up to 0.05% each and 0.15%
total, and remainder Al. Either wrought or cast alloys can be obtained, and the specific
energy associated with the DEA melting signal of the product is lower than 3 J/g.
[0007] U.S. Patent 5,312,498 discloses a method of producing an aluminum-based alloy product having improved exfoliation
resistance and fracture toughness which comprises providing an aluminum-based alloy
composition consisting essentially of about 5.5-10.0% by weight of zinc, about 1.75-2.6%
by weight of magnesium, about 1.8-2.75% by weight of copper with the balance aluminum
and other elements. The aluminum-based alloy is worked, heat treated, quenched and
aged to produce a product having improved corrosion resistance and mechanical properties.
The amounts of zinc, magnesium and copper are stoichiometrically balanced such that
after precipitation is essentially complete as a result of the aging process, no excess
elements are present. The method of producing the aluminum-based alloy product utilizes
either a one- or two-step aging process in conjunction with the stoichiometrically
balancing of copper, magnesium and zinc.
[0008] U.S. Patent 4,711,762 discloses an improved aluminum base alloy product comprising 0 to 3.0 wt. % Cu, 0
to 1.5 wt. % Mn, 0.1 to 4.0 wt. % Mg, 0.8 to 8.5 wt. % Zn, at least 0.005 wt. % Sr,
max. 1.0 wt. % Si, max. 0.8 wt. % Fe and max. 0.45 wt. % Cr, 0 to 0.2 wt. % Zr, the
remainder aluminum and incidental elements and impurities.
[0009] U.S. Patent 1,418,303 discloses an improved aluminum alloy consisting of copper about 0.1 % to any amount
below 3%, titanium about 0.1 % to about 2%, zinc about 6% to about 16%, iron (present
as an impurity of commercial aluminum) preferably not exceeding 0.6%, silicon (present
as an impurity of commercial aluminum) preferably not exceeding 0.4%, other elements
(impurities) preferably not exceeding 0.4%, remainder aluminum.
[0010] U.S. Patent 2,290,020 discloses an improved aluminum alloy having the ternary compound of aluminum, zinc
and magnesium present in an amount ranging from about 2% to 20%, the preferred range
being between about 3% and 15%. At room temperature the ternary compound goes into
solid solution in aluminum alloys in an amount of about 2%. The percentage in solid
solution increases at high temperatures and decreases upon cooling, the excess precipitating
out.
[0011] U.S. Patent 3,637,441 discloses an aluminum base powder metallurgy alloy article having an improved combination
of high-transverse yield strength and high-stress corrosion cracking resistance. The
alloy contains the basic precipitation hardening elements zinc, magnesium and copper
plus dispersion strengthening elements iron and nickel. It may additionally contain
chromium and/or manganese. The alloy is prepared by atomization of a melt of the elements,
hot-working, solution heat treating, quenching and artificial aging. Components of
the alloy in percent by weight are, in addition to the aluminum, from at least 6.5
to 13 zinc, 1.75 to 6 magnesium, 0.25 to 2.5 copper, 0.75 to 4.25 iron and 0.75 to
6 nickel, up to 3 manganese and up to 0.75 chromium. The iron to nickel ratio is from
0.2:1 to 2.0:1.
[0012] U.S. Patent 5,028,393 discloses an Al-based alloy for use as sliding material, superior in fatigue resistance
and anti-seizure property consisting, by weight, of 1-10% Zn, 1-15% Si, 0.1-5% Cu,
0.1-5% Pb, 0.005-0.5% Sr, and the balance Al and incidental impurities.
[0013] U.S. Patent 6,315,842 discloses a mold for plastics made of a rolled, extruded or forged AlZnMgCu aluminum
alloy product >60 mm thick, and having a composition including, in weight %: 5.7 <Zn
<8.7, 1.7 <Mg < 2.5, 1.2 <Cu < 2.2, Fe <0.14, Si <0.11, 0.05 <Zr <0.15, Mn <0.02,
Cr < 0.02, with Cu+Mg<4.1 and Mg>Cu, other elements <0.05 each and <0.10 in total,
the product being treated by solution heat treating, quenching and aging to a T6 temper.
[0014] The document
US-A-2002/121 319 discloses a method of producing an Al-Zn-Cu-Mg aluminum alloy extrusion product comprising
the steps of:
- (a) providing a molten body of an aluminum base alloy comprised of: 6 to 10 wt.% Zn;
1.2 to 1.9 wt.% Mg; 1.2 to 2.2 wt.% Cu, with Mg≤(Cu+0.3); and 0.05 to 0.4 wt. % Zr,
the balance Al with impurities;
- (b) casting said molten body of said aluminum base alloy to provide a solidified body;
- (c) homogenizing said body by heating in a first temperature range of 454.4°C (850°F)
and above followed by heating in a second temperature range up to 476.6°C (890°F);
- (d) extruding said homogenized body to provide an extrusion, said extruding being
carried out in a temperature range of 315.5 to 398.9°C (600 to 750°F) at an extrusion
rate of 10:1 1 or more;
- (e) solution heat treating said extrusion; and
- (f) artificial aging.
[0015] In spite of these disclosures, there is still a great need for an improved alloy
and extrusion fabricated therefrom for aerospace applications having high levels of
strength, corrosion resistance, fracture toughness and good resistance to fatigue
crack growth. The subject invention provides a method as defined in claim 1.
[0016] It is an object of the invention to provide an improved Al-Zn-Mg-Cu alloy extrusion
for use in aircrafts.
[0017] It is another object of the invention to provide an Al-Zn-Mg-Cu alloy extrusion having
improved fracture toughness as well as having high strength levels.
[0018] It is yet another object of the invention to provide a method for producing an Al-Zn-Mg-Cu
alloy extrusion having improved strength properties, fracture toughness and resistance
to fatigue crack growth.
[0019] It is still another object of the invention to provide a method for producing an
Al-Zn-Mg-Cu alloy product having improved strength properties, fracture toughness,
good levels of corrosion resistance.
[0020] It is another object of this invention to provide aerospace structural members such
as extrusions from the alloy of the invention.
[0021] In accordance with these objects, there is provided a method of producing an aluminum
alloy extrusion product having improved fracture toughness as defined in claim 1.
Brief Description of the Drawings
[0022]
Fig. 1 is a flow chart showing steps of the invention.
Fig. 2 illustrates the results of the damage tolerance (normalized denting speed)
of the alloy (M703) obtained by the method of the invention compared to a high strength
7xxx alloys (SSLLC).
[0023] Referring to Fig. 1, there is shown a flow chart of steps in the invention. Generally,
in the steps a molten body ofAl-Zn-Mg-Cu alloy is cast at a controlled solidification
rate to obtain a specific grain size range in the cast body. Thereafter, the cast
body is homogenized under controlled conditions to obtain a uniform distribution of
MgZn, or η precipitate. The body is extruded in a specific rate range and temperature
to obtain an extrusion having a large portion thereof, e.g., at least 80%, in a non-recrystallized
condition. The extrusion is then solution heat treated and aged to very high levels
of strength, fracture toughness and corrosion resistance.
[0024] The alloy according to the method of the invention contains about 8.2 to 10 wt.%
Zn, 1.9 to 2.5 wt.% Mg, 1.95 to 2.5 wt.% Cu, 0.05 to 0.25 wt.% Zr, max. 0.15 wt.%
Si, max. 0.15 wt.% Fe, max. 0.1 wt.% Mn, the remainder aluminum, incidental elements
and impurities.
[0025] Preferably, the alloy contains 1.95 to 2.3 wt.% Cu, 1.9 to 2.3 wt.% Mg.
[0026] 8.45 to 9.4 wt.% Zn, 0.05 to 0.2 wt.% Cr and 0.05 to 0.15 wt.% Zr. Cr can range from
0.05 to 0.08 wt.%. For purposes of retarding recrystallization, the alloys can contain
0.01 to 0.2 wt.% Sc, preferably 0.01 to 0.1 wt.%. Such alloys when processed in accordance
with the method of the invention possess marked improvements in fracture toughness
at acceptable or even high levels of strength and corrosion resistance compared to
conventional 7xxx alloys such as AA7075-T6, for example. The composition of the AA
7xxx alloys are set forth in The Aluminum Association publication entitled "Registration
Record of Aluminum Association Designations and Chemical Composition Limits for Wrought
Aluminum and Wrought Aluminum Alloys", dated December 1993. The term "7xxx" means
aluminum alloys containing zinc as a main alloying ingredient. AA 7075-T6 refers to
AA compositional limits as registered with The Aluminum Association. A typical T6
aging practice for 7075 is heating at about 250°F for 24 hours and a typical temperature
range is about 175° to 330°F for 3 to 30 hours

[0027] For purposes of the present invention, a molten aluminum alloy according to the method
of the invention is cast into a solidified body at a rate which provides a controlled
microstructure or grain size. Such molten aluminum alloy typically is cast in the
form of billet when it is desired to produce extrusion products. Further, typically
such solidified body is cast at a rate of about 1 to 6 inches per minute, preferably
2 to 4 inches per minute, and typically the billet has a diameter in the range of
about 1 to 7 inches (1 mm = 0.03937 inch). For purposes of the invention, it is preferred
that the solidified body has an average grain size in the range of 25 to 100 µm, preferably
35 to 75 µm. If the alloy according to the method of the invention is cast at controlled
rates and thermally mechanically processed in accordance with the invention, very
high tensile and compressive strengths, fracture toughness and corrosion resistance
can be obtained. That is, for purposes of obtaining the desired microstructure for
thermal mechanical processing in accordance with the method of the invention, the
molten aluminum is cast at a controlled solidification rate. It has been discovered
that controlled solidification rate of the disclosed aluminum alloy in combination
with subsequent controlled thermal mechanical processing results in extruded products
having superior properties, i.e., very high tensile strength, good corrosion and dent
resistance.
[0028] It should be noted that the strength of the subject aluminum alloys can be improved
by dispersion hardening or by strain hardening. Strain hardening is the result of
plastic deformation and is dependent on the degree of deformation. Dispersion hardening
is produced through formation of clusters of atoms (referred to as Guiner-Preston
or GP zones). In addition, dispersion hardening can result from the formation of new
phases or precipitates in the alloy which form barriers against dislocation movement.
This can significantly increase the strength of the alloy. In the Al-Zn-Mg-Cu alloys,
new strengthening phases include MgZn
2, also known as M or η-phase; Mg
3Zn
3Al
2 also as the T-phase; CuMgAl
2 also known as the S-phase. Strengthening resulting from precipitation of new phases
is more effective than strengthening by formation of GP zones. However, strengthening
by precipitation of new phases can have an adverse effect on damage tolerance or fracture
toughness. Usually, the greater the volume fraction in the precipitation phases, the
lower is the damage tolerance. By comparison, strengthening resulting from GP zone
formation does not take place at the expanse of damage tolerance. Thus, to provide
for improved strength and damage tolerance, the method of the present invention balances
the volume fraction of precipitates and the volume fraction of GP zones or zinc-rich
clusters in the final product while maintaining excess zinc in solution. For the purpose
the method of the invention the GP zones size should be in the range of 2 to 35 nm
and the GP zones density should be in the range of 4x10
18 to 5x10
18 zones per cm
3.
[0029] For purposes of producing billet in accordance with the method of the invention,
casting may be accomplished using a mold cooled by an air and liquid coolant to solidify
billet at a controlled rate which provides the desired grain size or structure. The
grain can have a size in the range of 35 to 75 µm. The air and coolant mixture used
with the molds are particularly suited for extracting heat from the body of molten
aluminum alloy to obtain a solidification rate of 5° to 50°C per second for billet
having a diameter of 1 to 6 inches. Molds using the air and coolant mixture which
are suitable for controlling the cooling rate for casting molten aluminum alloy of
the method of the invention are described in
U.S. Patent 4,598,763. The coolant for use with these molds for the method of the invention is comprised
of a gas and a liquid where gas is infused into the liquid as tiny, discrete undissolved
bubbles and the combination is directed on the surface of the emerging ingot. The
bubble-entrained coolant operates to cool the metal at an increased rate of heat extraction;
and if desired, the increased rate of extraction, together with the discharge rate
of the coolant, can be used to control the rate of cooling at any stage in the casting
operation, including during the steady state casting stage.
[0030] For casting metal, e.g., aluminum alloy to provide a microstructure suitable for
purposes of the method of the present invention, molten metal is introduced to the
cavity of an annular mold, through one end opening thereof, and while the metal undergoes
partial solidification in the mold to form a body of the same on a support adjacent
the other end opening of the cavity, the mold and support are reciprocated in relation
to one another endwise of the cavity to elongate the body of metal through the latter
opening of the cavity. Liquid coolant is introduced to an annular flow passage which
is circumposed about the cavity in the body of the mold and opens into the ambient
atmosphere of the mold adjacent the aforesaid opposite end opening thereof to discharge
the coolant as a curtain of the same that impinges on the emerging body of metal for
direct cooling. Meanwhile, a gas which is substantially insoluble in the coolant liquid
is charged under pressure into an annular distribution chamber which is disposed about
the passage in the body of the mold and opens into the passage through an annular
slot disposed upstream from the discharge opening of the passage at the periphery
of the coolant flow therein. The body of gas in the chamber is released into the passage
through the slot and is subdivided into a multiplicity of gas jets as the gas discharges
through the slot. The jets are released into the coolant flow at a temperature and
pressure at which the gas is entrained in the flow as a mass of bubbles that tend
to remain discrete and undissolved in the coolant as the curtain of the same discharges
through the opening of the passage and impinges on the emerging body of metal. With
the mass of bubbles entrained therein, the curtain has an increased velocity, and
this increase can be used to regulate the cooling rate of the coolant liquid, since
it more than offsets any reduction in the thermal conductivity of the coolant. In
fact, the high velocity bubble-entrained curtain of coolant appears to have a scrubbing
effect on the metal, which breaks up any film and reduces the tendency for film boiling
to occur at the surface of the metal, thus allowing the process to operate at the
more desirable level of nucleate boiling, if desired. The addition of the bubbles
also produces more coolant vapor in the curtain of coolant, and the added vapor tends
to rise up into the gap normally formed between the body of metal and the wall of
the mold immediately above the curtain to cool the metal at that level. As a result,
the metal tends to solidify further up the wall than otherwise expected, not only
as a result of the higher cooling rate achieved in the manner described above, but
also as a result of the build-up of coolant vapor in the gap. The higher level assures
that the metal will solidify on the wall of the mold at a level where lubricating
oil is present; and together, all of these effects produce a superior, more satin-like,
drag-free surface on the body of the metal over the entire length of the ingot and
is particularly suited to thermal transformation.
[0031] When the coolant is employed in conjunction with the apparatus and technique described
in
U.S. Patent 4,598,763, this casting method has the further advantage that any gas and/or vapor released
into the gap from the curtain intermixes with the annulus of fluid discharged from
the cavity of the mold and produces a more steady flow of the latter discharge, rather
than the discharge occurring as intermittent pulses of fluid.
[0032] As indicated, the gas should have a low solubility in the liquid; and where the liquid
is water, the gas may be air for cheapness and ready availability.
[0033] During the casting operation, the body of gas in the distribution chamber may be
released into the coolant flow passage through the slot during both the butt forming
stage and the steady state casting stage. Or, the body of gas may be released into
the passage through the slot only during the steady state casting stage. For example,
during the butt-forming stage, the coolant discharge rate may be adjusted to undercool
the ingot by generating a film boiling effect; and the body of gas may be released
into the passage through the slot when the temperature of the metal reaches a level
at which the cooling rate requires increasing to maintain a desired surface temperature
on the metal. Then, when the surface temperature falls below the foregoing level,
the body of gas may no longer be released through the slot into the passage, so as
to undercool the metal once again. Ultimately, when steady state casting is begun,
the body of gas may be released into the passage once again, through the slot and
on an indefinite basis until the casting operation is completed. In the alternative,
the coolant discharge rate may be adjusted during the butt-forming stage to maintain
the temperature of the metal within a prescribed range, and the body of gas may not
be released into the passage through the slot until the coolant discharge rate is
increased and the steady state casting stage is begun.
[0035] While the casting procedure for the method of the present invention has been described
in detail for producing billet having the necessary structure for thermal transformation
in accordance with the method of the present invention, it should be understood that
the other casting methods can be used to provide the solidification rates that result
in the grain structure necessary to the method of the invention. As noted earlier,
such solidification can be obtained by belt, block or roll casting and electromagnetic
casting.
[0036] A seven inch billet of an alloy containing 8.9 wt.% Zn, 2.1 wt.% Mg, 2.3 wt. % Cu,
0.11 wt. % Zr, the remainder comprising aluminum, cast employing a mold using air
and water coolant, at a cooling rate of 35° to 50°F per second provides a satisfactory
grain structure for extruding and thermally mechanically processing in accordance
with the method of the invention.
[0037] While casting has been described with respect to billet, it will be appreciated that
the principles described herein may be applied to ingot or electromagnetic casting
of the aluminum alloys.
[0038] After the billet is cast, it is subjected to a homogenization treatment. Preferably,
the billet is subjected to two homogenization treatments. In the first homogenization
treatment, the billet preferably is treated in a temperature range of 840° to 880°F
for a period of 6 to 18 hours. Thereafter, the billet is then preferably subjected
to a temperature range of 880° to 900°F for a period of 4 to 36 hours. Subjecting
the billet to a double homogenization treatment as described provides a billet with
a more uniform distribution of MgZn
2 precipitate or M or η-phase as well as zinc and chromium containing dispersoids.
[0039] After homogenization, the billet is extruded to provide an extrusion member. For
purposes of extruding, the billet is heated to a temperature range of 600° to 850°F
and maintained in this temperature range during extruding. Preferably, the billet
is extruded at a rate in the range of 0.8 to 8 ft/min and preferably at an extrusion
ratio in the range of 10 to 60 (1 m = 3.28084 ft). These conditions are important
to obtain an extrusion wherein at least 80% and preferably 90% of the extrusion is
maintained in the unrecrystallized condition. The extrusion can have an aspect ratio
between the thinnest and thickest section of 1:4 to 1:18.
[0040] After extruding, the product is solution heat treated by heating in a temperature
range of about 845°F to about 900°F, with a preferred temperature range being 870°
to 890°F. Typical times at these temperatures can range from 5 to 120 minutes. The
solution heat treating should be carried out for a time sufficient to dissolve a substantial
portion of the alloying elements. That is, substantially all of the zinc, magnesium
and copper is dissolved to provide a solid solution.
[0041] After solution heat treating, the extrusion is rapidly cooled or quenched by immersion
or spraying with cold water, for example. After quenching, the extrusion may be straightened
and/or stretched. That is, the extrusion is straightened prior to aging to improve
strength properties.
[0042] After solution heat treating, the extrusion is treated to improve properties such
as strength, corrosion and fracture toughness.
[0043] Thus, the extrusion may be subject to different thermal treatments depending on the
properties desired. For example, the extrusion may be subject to a single step thermal
treatment to achieve high or peak strength, referred to as T6 type tempers. However,
such tempers can be susceptible to stress corrosion cracking. T6 tempers are obtained
by aging at a temperature range of 175° to 325°F for 3 to 30 hours. A two step aging
process may be employed wherein a first aging step is carried out at 175° to 300°F
for a period of time of 3 to 30 hours, followed by a second aging step carried out
at 300° to 360°F for a period of time of 3 to 24 hours. This aging process produces
an overaged temper referred as T7x temper. This condition improves stress corrosion
cracking but can decrease strength.
[0044] To improve strength and corrosion resistance, the extrusion may be subject to a three-step
aging process. The aging steps or phases include a low-high-low aging sequence. In
the first or low aging step, the extrusion is subject to a temperature for a period
of time which precipitation hardens the extrusion to a point at or near peak strength.
This can be effected by subjecting the extrusion to precipitation hardening in a temperature
range of about 150° to 325°F typically for a time between 2 to 30 hours. Then, the
extrusion is subject to a second treatment to improve corrosion resistance. The second
treatment includes subjecting the extrusion to a temperature range of 300° to 500°F
for 5 minutes to about 3 hours, for example. In the third step, the extrusion is subject
to another strengthening step. The third thermal treatment includes subjecting the
extrusion to a temperature of 175° to 325°F for about 2 to 30 hours.
[0045] Exfoliation corrosion (EXCO) behavior of the inventive alloy was compared to 7075
T6511 and 7075 T76511 alloys. The American Society for Testing and Materials developed
a method (ASTM G34-99) that provides an accelerated exfoliation corrosion test for
2xxx and 7xxx series aluminum alloys. The susceptibility to exfoliation is determined
by visual examination, with performance ratings established by reference to standard
photographs. When tested in accordance with this test method the alloy of the method
of the invention exhibits a typical EA exfoliation corrosion rating when aged to a
T76 temper. When aged to a T77 temper the alloy obtained by the method of the invention
exhibits a typical EB exfoliation corrosion rating.
[0046] While alloy has been described with respect to extrusion products, it can find use
as sheet and plate product and such is contemplated herein.
[0047] All ranges set forth herein include all the numbers within the range as if specifically
set forth.
[0048] The products or members described herein in accordance with the method of the invention
are particularly suitable for aerospace applications and finds many uses in large
aircrafts such as commercial and military aircrafts. The products can be used in wing
components, tail assemblies, fuselage sections or in subassemblies or other components
comprising the aircraft. That is, the aircraft assemblies can comprise a wing assembly
or wing subassembly, a center wing box assembly or subassembly, floor assembly or
subassembly including seat tracks, floor beams, stanchions, cargo deck assemblies
and subassemblies, floor panels, cargo floor panels, fuselage assemblies or subassemblies,
fuselage frames, fuselage stringers and the like. Further, the products may be produced
as seamless or non-seamless tubes and used in sporting goods such as baseball bats.
TABLE
| Typical mechanical properties of the inventive alloy (M703) in comparison to 7075
T6511 and 7150 T77511 for extrusions 0.249 inch thick |
| Alloy |
Temper |
UTS, ksi |
YS, ksi |
e, % |
KIc |
| 7075 |
T6511 |
88 |
82 |
10 |
28 |
| M703 |
T76511 |
97 |
93 |
10 |
33 |
| M703 |
T77511 |
102 |
100 |
9 |
32.5 |
| 7150 |
T77511 |
93 |
89 |
9 |
27 |
[0049] The table illustrates the mechanical properties of the inventive alloy when aged
to a T76 and a T77 tempers.
[0050] The following examples are still further illustrative of the method of the invention.
Example 1
[0051] A billet of an alloy containing 8.9 wt.% Zn, 2.1 wt.% Mg, 2.3 wt.% Cu, 0.11 wt.%
Zr, incidental elements and impurities, the balance aluminum, was cast into a seven
inch diameter billet. The billet was cast using casting molds utilizing air and liquid
coolant (available from Wagstaff Engineering, Inc., Spokane, Washington). The air/water
coolant was adjusted in order that the body of molten aluminum alloy was cast at a
rate of 4 inches per minute. The as-cast structure had an average grain size of 35
µm. The billet was homogenized for 8 hours at 870°F and then for 24 hours at 890°F.
Thereafter, the billet was brought to a temperature of 725°F and extruded into a hollow
tube with an outside diameter of 2.65 inch and a wall thickness of 0.080 inch.
[0052] The extrusion had a non-recrystallized grain structure. The extrusion was solution
heat treated for 25 minutes at 880°F and quenched in a water-15% glycol solution.
Thereafter, the quenched extrusion was precipitation hardened for 24 hours at 250°F
and then subjected to a temperature of 315°F for 6 hours to improve corrosion resistance
and yield strength properties. The extrusion was then tested for tensile strength
and yield strength and compared to AA 7075 T6. The results are reproduced in Table
1.
[0053] The extrusion was then tested for dent resistance or damage tolerance. The dent resistance
test was performed by pitching balls of constant size and weight at the extruded tube.
The number of pitches to the first dent on the extrude tube represents the dent resistance.
The extrusion was compared to a AA 7055 alloy treated in a similar fashion. The alloy
obtained by the method of the invention is referred to as M703 and 7055 as SSLLC (see
Fig. 2). Both alloys were aged identically. It will be seen from Fig. 2 that M703
had superior dent resistance.
Example 2
[0054] A billet of an alloy containing 8.9 wt.% Zn, 2.1 wt.% Mg, 2.3 wt.% Cu, 0.11 wt.%
Zr, incidental elements and impurities, the balance aluminum, was cast into a seven
inch diameter billet. The billet was cast using casting molds utilizing air and liquid
coolant (available from Wagstaff Engineering, Inc., Spokane, Washington). The air/water
coolant was adjusted in order that the body of molten aluminum alloy was cast at a
rate of 4 inches per minute. The as-cast structure had an average grain size of 35
µm. The billet was homogenized for 8 hours at 870°F and then for 24 hours at 890°F.
Thereafter, the billet was brought to a temperature of 725°F and extruded into an
aircraft stringer having a "T" shaped cross section and a wall thickness of 0.245
inches.
[0055] The extrusion had a non-recrystallized grain structure. The extrusion was solution
heat treated for 35 minutes at 880°F and quenched in a water-15% glycol solution.
Thereafter, the quenched extrusion was precipitation hardened for 24 hours at 250°F
followed by 25 to 35 minutes at 380°F, then subjected to a temperature of 250°F for
24 hours. The extrusion was then tested for tensile strength and yield strength and
fracture toughness, fatigue crack growth and compared to AA 7075 T6511 and AA 7150
T77511. The results are reproduced in Table 1. It will be seen that the inventive
alloy has superior strength and fracture toughness when compared to AA 7075 T6511
and AA 7150 T77511. Also, the extrusion has a unique combination of tensile strength,
corrosion resistance, and damage tolerance (i.e., fracture toughness and fatigue crack
growth).
[0056] Having described the presently preferred embodiments, it is to be understood that
the method of the invention may be otherwise embodied within the scope of the appended
claims.
1. A method of producing an aluminum alloy extrusion product having improved fracture
toughness, the method comprising the steps of:
(a) providing a molten body of an aluminum base alloy comprised of 1.95 to 2.5 wt.%
Cu, 1.9 to 2.5 wt.% Mg, 8.2 to 10 wt.% Zn, 0.05 to 0.25 wt.% Zr, max. 0.15 wt% Si,
max 0.15 wt.% Fe, max. 0.1 wt% Mn, optionally 0.05 to 0.2 wt% Cr, optionally 0.01
to 0.1 wt.% Sc, the remainder aluminum and incidental elements and impurities;
(b) casting said molten body of said aluminum base alloy to provide a solidified body,
said molten aluminum base alloy being cast at a rate in the range of 25.4 to 152.4
mm (1 to 6 inches) per minute;
(c) homogenizing said body by heating in a first temperature range of 448.9 to 460°C
(840 to 860°F) followed by heating in a second temperature range of 460 to 471.1°C
(860 to 880°F) to provide a homogenized body having uniform distribution of η precipitate
and zirconium containing dispersoids;
(d) extruding said homogenized body to provide an extrusion, said extruding being
carried out in a temperature range of 315.5 to 454.4°C (600° to 850°F) and at a rate
sufficient to maintain at least 80% of the cross-sectional area of said extrusion
in a non-recrystallized condition;
(e) solution heat treating said extrusion; and
(f) artificial aging said product to improve strength properties to provide an extrusion
product having said improved facture toughness.
2. The method in accordance with claim 1, wherein the alloy contains 1.95 to 2.3 wt.%
Cu.
3. The method in accordance with claim 1, wherein the alloy contains up to 2.3 wt.% Mg.
4. The method in accordance with claim 1, wherein the alloy contains 8.45 to 9.4 wt.%
Zn.
5. The method in accordance with claim 1, wherein the alloy contains 0.01 to 0.2 wt.%
Ti.
6. The method in accordance with claim 1, including heating in said first temperature
range for 6 to 18 hours.
7. The method in accordance with claim 1, including heating in said second temperature
range for 4 to 36 hours.
8. The method in accordance with claim 1, including rapidly quenching said extrusion.
9. The method in accordance with claim 1, wherein said extruding is carried out at a
rate in the range of 152.4 to 2,438.4 mm/min (0.5 to 8 ft/min).
10. The method in accordance with claim 1, wherein said solution heat treating is carried
out in a temperature range of 465.5 to 476.6°C (870° to 890°F) for 5 to 120 minutes.
11. The method in accordance with claim 1, wherein said artificial aging is carried out
by aging in a temperature range of 79.4 to 148.9°C (175° to 300°F) for 3 to 30 hours
followed by aging at 137.8 to 182.2°C (280° to 360°F) for 3 to 24 hours.
12. The method in accordance with claim 1, wherein said artificial aging is carried out
by aging in a temperature range of 98.9 to 137.8°C (210° to 280°F) for 4 to 24 hours
followed by aging at 160 to 204.4°C (320° to 400°F) for 30 minutes to 14 hours.
13. The method in accordance with claim 1, wherein said artificial aging is carried out
by aging in a temperature range of 65.5 to 162.8°C (150° to 325°F) for 2 to 30 hours
followed by again a 148.9 to 260°C (300° to 500°F) for 5 minutes to 3 hours followed
by aging at 79.4 to 162.8°C (175° to 325°F) for 2 to 30 hours.
14. The method in accordance with claim 1, wherein said artificial aging is a three-step
process wherein said first and third steps improve strength and a second step improves
corrosion resistance.
15. The method in accordance with claim 1, wherein said artificial aging includes aging;
(i) at a low temperature above room temperature to precipitation harden said extrusion;
(ii) at temperatures to improve corrosion resistance properties of said extrusion;
and (iii) at lower temperatures above room temperature to precipitation harden said
extrusion.
1. Verfahren zum Herstellen eines Extrusionsproduktes einer Aluminiumlegierung mit verbesserter
Bruchzähigkeit, welches Verfahren die Schritte umfasst:
(a) Bereitstellen einer schmelzflüssigen Masse einer Grundlegierung von Aluminium,
die aufweist: 1,95% bis 2,5 Gew.% Cu, 1,9% bis 2,5 Gew.% Mg, 8,2% bis 10 Gew.% Zn,
0,05% bis 0,25 Zr, max. 0,15% Si, max. 0,15% Fe, max. 0,15% Mn, wahlweise 0,05% bis
0,2 Gew.% Cr, wahlweise 0,01% bis 0,1 Gew.% Sc, den Rest Aluminium und zufällig auftretende
Elemente und Verunreinigungen:
(b) Gießen der schmelzflüssigen Masse der genannten Aluminium-Grundlegierung, um eine
erstarrte Masse bereitzustellen, wobei die schmelzflüssige Aluminium-Grundlegierung
mit einer Geschwindigkeit im Bereich von 25,4 bis 152,4 mm (1 bis 6 inch) pro Minute
vergossen wird;
(c) Homogenisieren der Masse durch Erhitzen in einem ersten Temperaturbereich von
448,9° bis 460°C (840° bis 860°F), gefolgt von einem Erhitzen in einem zweiten Temperaturbereich
von 460° bis 471,1°C (860° bis 880°F), um eine homogenisierte Masse bereitzustellen,
die über eine gleichförmige Verteilung von η-Ausscheidung und Zirconium enthaltenden
Dispersoiden verfügt;
(d) Extrudieren der homogenisierten Masse, um ein Extrusionsprodukt zu schaffen, wobei
das Extrudieren ausgeführt wird in einem Temperaturbereich von 315,5° bis 454,4°C
(600° bis 850°F) und mit einer Geschwindigkeit, die ausreichenden ist, um mindestens
80 Prozent der Querschnittfläche des Extrusionsproduktes in einem nicht rekristallisierten
Zustand zu erhalten;
(e) dieses Extrusionsprodukt einer Lösungsglühbehandlung unterziehen und
(f) das Produkt einer Aushärtung bei erhöhter Temperatur unterziehen, um ein Extrusionsprodukt
bereitzustellen, das über die genannte verbesserte Bruchzähigkeit verfügt.
2. Verfahren nach Anspruch 1, wobei die Legierung 1,95% bis 2,3 Gew.% Cu enthält.
3. Verfahren nach Anspruch 1, wobei die Legierung bis zu 2,3 Gew.% Mg enthält.
4. Verfahren nach Anspruch 1, wobei die Legierung 8,45% bis 9,4 Gew.% Zn enthält.
5. Verfahren nach Anspruch 1, wobei die Legierung 0,01% bis 0,2 Gew.% Ti enthält.
6. Verfahren nach Anspruch 1, einschließend ein Erhitzen in dem ersten Temperaturbereich
für 6 bis 18 Stunden.
7. Verfahren nach Anspruch 1, einschließend ein Erhitzen in dem zweiten Temperaturbereich
für 4 bis 36 Stunden.
8. Verfahren nach Anspruch 1, einschließend ein schnelles Abschrecken des Extrusionsproduktes.
9. Verfahren nach Anspruch 1, wobei das Extrudierten ausgeführt wird bei einer Geschwindigkeit
im Bereich von 152,4 bis 2.438,4 mm/min (0,5 bis 8 ft/min).
10. Verfahren nach Anspruch 1, wobei die Lösungsglühbehandlung für 5 bis 120 Minuten ausgeführt
wird in einem Temperaturbereich von 465,5° bis 476,6°C (870° bis 890°F).
11. Verfahren nach Anspruch 1, wobei das Aushärten bei erhöhter Temperatur in einem Temperaturbereich
von 79,4° bis 148,9°C (175° bis 300°F) für 3 bis 30 Stunden ausgeführt wird, gefolgt
von einem Aushärten bei 137,8° bis 182,2°C (280° bis 360°F) für 3 bis 24 Stunden.
12. Verfahren nach Anspruch 1, wobei das Aushärten bei erhöhter Temperatur in einem Temperaturbereich
von 98.9° bis 137,8°C (210° bis 280°F) für 4 bis 24 Stunden ausgeführt wird, gefolgt
von einem Aushärten bei 160° bis 204,4°C (320° bis 400°F) für 30 Minuten bis 14 Stunden.
13. Verfahren nach Anspruch 1, wobei das Aushärten bei erhöhter Temperatur in einem Temperaturbereich
von 65,5° bis 162,8°C (150° bis 325°F) für 2 bis 30 Stunden ausgeführt wird, gefolgt
von einem Aushärten bei 168,9° bis 260°C (300° bis 500°F) für 5 Minuten bis 3 Stunden,
gefolgt von einem Aushärten für 2 bis 30 Stunden bei 79,4° bis 169,8°C (175° bis 325°F).
14. Verfahren nach Anspruch 1, wobei das Aushärten bei erhöhter Temperatur ein dreistufiger
Prozess ist, bei dem der erste und der dritte Schritt die Festigkeit verbessern und
ein zweiter Schritt die Korrosionsfestigkeit verbessert.
15. Verfahren nach Anspruch 1, wobei das Aushärten bei erhöhter Temperatur ein Aushärten
(i) bei einer niedrigen Temperatur oberhalb von Raumtemperatur einschließt, um das
Extrusionsprodukt einer Ausscheidungshärtung zu unterziehen; (ii) bei Temperaturen
einschließt, um die Eigenschaften der Korrosionsfestigkeit des Extrusionsproduktes
zu verbessern, sowie (iii) bei niedrigeren Temperaturen oberhalb von Raumtemperatur,
um das Extrusionsprodukt einer Ausscheidungshärtung zu unterziehen.
1. Procédé de production d'un produit d'extrusion en alliage d'aluminium possédant une
ténacité à la rupture améliorée, le procédé comprenant les étapes consistant à :
(a) fournir un corps fondu d'un alliage à base d'aluminium constitué de 1,95 à 2,5
% en poids de Cu, de 1,9 à 2,5 % en poids de Mg, de 8,2 à 10 % en poids de Zn, de
0,05 à 0,25 % en poids de Zr, un maximum de 0,15 % en poids de Si, un maximum de 0,15
% en poids de Fe, un maximum de 0,1 % en poids de Mn, facultativement de 0,05 à 0,2
% en poids de Cr, facultativement de 0,01 à 0,1 % en poids de Sc, de l'aluminium restant
et d'éléments secondaires et d'impuretés ;
(b) couler ledit corps fondu dudit alliage à base d'aluminium pour fournir un corps
solidifié, ledit alliage à base d'aluminium fondu étant coulé à une vitesse comprise
dans la plage allant de 25,4 à 152,4 mm (1 à 6 pouces) par minute ;
(c) homogénéiser ledit corps par chauffage dans une première plage de température
allant de 448,9 à 460 °C (840 à 860 °F), suivi par un chauffage dans une seconde plage
de température allant de 460 à 471,1 °C (860 à 880 °F) pour fournir un corps homogénéisé
possédant une distribution uniforme d'un précipité η et de dispersoïdes contenant
du zirconium ;
(d) extruder ledit corps homogénéisé pour fournir une extrusion, ladite extrusion
étant réalisée dans une plage de température allant de 315,5 à 454,4 °C (600 à 850
°F) et à une vitesse suffisante pour maintenir au moins 80 % de la zone transversale
de ladite extrusion dans un état non recristallisé ;
(e) effectuer un traitement thermique de mise en solution de ladite extrusion ; et
(f) vieillir de manière artificielle ledit produit pour améliorer ses propriétés de
résistance afin de fournir un produit d'extrusion possédant ladite ténacité à la rupture
améliorée.
2. Procédé selon la revendication 1, dans lequel l'alliage comprend de 1,95 à 2,3 % en
poids de Cu.
3. Procédé selon la revendication 1, dans lequel l'alliage comprend jusqu'à 2,3 % en
poids de Mg.
4. Procédé selon la revendication 1, dans lequel l'alliage comprend de 8,45 à 9,4 % en
poids de Zn.
5. Procédé selon la revendication 1, dans lequel l'alliage comprend de 0,01 à 0,2 % en
poids de Ti.
6. Procédé selon la revendication 1, comprenant un chauffage dans ladite première plage
de température pendant 6 à 18 heures.
7. Procédé selon la revendication 1, comprenant un chauffage dans ladite seconde plage
de température pendant 4 à 36 heures.
8. Procédé selon la revendication 1, comprenant un refroidissement rapide de ladite extrusion.
9. Procédé selon la revendication 1, dans lequel ladite extrusion est réalisée à une
vitesse comprise dans la plage allant de 152,4 à 4438,4 mm/minute (0,5 à 8 pouces/minute).
10. Procédé selon la revendication 1, dans lequel ledit traitement thermique de mise en
solution est réalisé dans une plage de température allant de 465,5 à 476,6 °C (870
à 890 °F) pendant 5 à 120 minutes.
11. Procédé selon la revendication 1, dans lequel ledit vieillissement artificiel est
réalisé par vieillissement dans une plage de température de 79,4 à 148,9 °C (175 à
300 °F) pendant 3 à 30 heures, suivi par un vieillissement à 137,8 à 182,2 °C (280
à 360 °F) pendant 3 à 24 heures.
12. Procédé selon la revendication 1, dans lequel ledit vieillissement artificiel est
réalisé par vieillissement dans une plage de température de 98,9 à 137,8 °C (210 à
280 °F) pendant 4 à 24 heures, suivi par un vieillissement à 160 à 204,4 °C (320 à
400 °F) pendant 30 minutes à 14 heures.
13. Procédé selon la revendication 1, dans lequel ledit vieillissement artificiel est
réalisé par vieillissement dans une plage de température de 65,5 à 162,8 °C (150 à
325 °F) pendant 2 à 30 heures, suivi par un vieillissement à 168,9 à 260 °C (300 à
500 °F) pendant 5 minutes à 3 heures, suivi par un vieillissement à 79,4 à 162,8 °C
(175 à 325 °F) pendant 2 à 30 heures.
14. Procédé selon la revendication 1, dans lequel ledit vieillissement artificiel est
un procédé en trois étapes dans lequel lesdites première et troisième étapes améliorent
la résistance et une deuxième étape améliore la résistance à la corrosion.
15. Procédé selon la revendication 1, dans lequel ledit vieillissement artificiel comprend
le vieillissement : (i) à une température basse au-dessus de la température ambiante
pour durcir par précipitation ladite extrusion ; (ii) à des températures pour améliorer
les propriétés de résistance à la corrosion de ladite extrusion ; et (iii) à des températures
plus basses au-dessus de la température ambiante pour durcir par précipitation ladite
extrusion.