FIELD OF THE INVENTION
[0001] The invention relates to heat treatment processes for nickel-chromium molybdenum-alloys
having a chromium content of from 12 to 19 weight percent.
BACKGROUND OF THE INVENTION
[0002] It is well-known that chromium imparts corrosion resistance to nickel base alloys.
Therefore, Ni-Cr-Mo alloys and particularly those with chromium content of 15 to 24%
have been popular for use in corrosive environments such as encountered in the chemical
and petrochemical industries.
[0003] Age-hardening is a process used in the metallurgical industry to give an alloy composition
higher strength, as measured by its yield strength, tensile strength, and by notched
stress rupture tests typically used in the art. Various applications demand a combination
of high tensile strength and low thermal expansion properties. One such application
is in the aerospace industry. Another application is seal rings used in land-based
gas turbines. A combination of high tensile strength and ductility is also very useful
for bolts. Because of the demanding operating conditions and performance parameters
for metal products in these applications, various methods of age-hardening have been
used. One common technique is to heat the alloy to a selected high temperature, hold
the alloy at that temperature for a period of time and then cool the alloy to room
temperature. For some alloy compositions, the alloy may be heated to one temperature,
cooled, heated again to a second temperature and cooled. Examples of these processes
are disclosed in United States Patent No. 3,871,928. The temperatures and time periods
used to age harden an alloy depend upon the composition of the alloy. For all age-hardenable
commercial alloys there are established times and temperatures used that have become
standard in the industry because they are known to produce the desired properties.
For Ni-Cr-Mo alloys having high chromium content, that is chromium greater than 12%,
the general view in the art is that heat treatment beyond the initial annealing in
an effort to improve mechanical properties would be impractical due to the lengthy
required times (hundreds to thousands of hours) and such treatments simply have not
been done.
[0004] Solid-solution strengthened nickel- chromium-molybdenum (Ni-Cr-Mo) alloys and nickel-molybdenum
(Ni-Mo) alloys are widely utilized for commercial applications in the chemical industry,
for example. Generally, considered to be single phase materials, discounting the presence
of minor carbide phases, alloys such as these are not usually considered responsive
to heat treatment, and are therefore used in the annealed condition. There are exceptions,
where some particular alloys do exhibit a commercially exploitable age hardening response.
However, in these instances the age-hardening response observed is attributable to
other elements, such as niobium, aluminum and titanium being present in the alloy
composition. The exception to this is HAYNES® 242™ alloy which will be discussed later.
The fact that Ni-Cr-Mo and Ni-Mo alloys are not commercially age-hardenable does not
mean that they do not exhibit any metallurgical response to thermal exposure at intermediate
temperatures. Actually, alloys of this type can exhibit complex secondary phase reactions
when exposed in the temperature range from about 538°C to 871°C. Unfortunately, the
phases which form can often be deleterious to both alloy ductility and other aspects
of service performance. This is particularly observed with Ni-Mo alloys containing
about 25 to 30 % molybdenum. In such materials, exposure at temperatures from about
538°C to 871°C can result in the rapid formation of embrittling Ni
3Mo or Ni
4Mo phases in the microstructure. This can be a problem for both component manufacturing
and for component performance.
[0005] For lower molybdenum, higher chromium, content Ni-Cr-Mo alloys with about 16 % molybdenum
and 16 % chromium weight percent content, the occurrence of these particular intermetallic
phases is not usually observed after short term thermal exposures. With longer term
exposure at temperatures from about 538°C to 694°C, there is a distinctly different
metallurgical response. After about 500 to 1000 hours the presence of the phase Ni
2(Mo,Cr) is evidenced in the microstructure. A long-range-ordered phase, with structure
similar to that of Pt
2Mo, the Ni
2(Mo,Cr) phase serves to significantly increase the strength of these materials without
a severe loss of ductility. The one major drawback is the prolonged aging time required
to produce this phase.
[0006] There are several United States patents that disclose Ni-Cr-Mo alloys. United States
Patent No. 4,818,486 discloses a low thermal expansion nickel based alloy that contains
5% to 12% chromium and 10% to 30% molybdenum. The patent teaches that the aging times
typically required to obtain desired hardness without deleterious phases being formed
is well over 1000 hours at temperatures of 649°C to 816°C for most Ni-Mo-Cr alloys.
However, the aging time to harden the alloy composition disclosed in the '486 patent
is as little as 24 hours at 649°C. The alloy of this patent has been marketed under
the trademarks 242 alloy and HAYNES 242 alloy. HAYNES 242 alloy has been sold for
applications requiring high tensile strength and a low coefficient of thermal expansion.
Other beneficial properties of the 242 alloy include good thermal stability, good
low cycle fatigue resistance, and excellent containment capabilities due to its tensile
strength and ductility. HAYNES 242 alloy consists of about 8 % (weight percent) chromium,
about 20-30 % molybdenum, about 0.35 % to up to about 0.5 % aluminum, up to 0.03 %
carbon, up to about 0.8 % manganese, up to about 0.8 % silicon, up to about 2 % iron,
up to about 1 % cobalt, up to about 0.006 % boron, and the balance weight percent
being nickel.
[0007] There is a need for a shorter commercially exploitable age hardening process for
Ni-Mo-Cr alloys with higher Cr levels (>12% Cr) than found in U.S. Patent No. 4,818,486
that avoids formation of deleterious Ni
3Mo and Ni
4Mo phase, as well as muphase occurrence.
[0008] Another Ni-Cr-Mo alloy is disclosed in United States Patent No. 5,019,184 to Crum
et al. That alloy contains 19% to 23% chromium and 14 to 17.5% molybdenum. The patent
discloses homogenization heat treatment at temperatures ranging from 1149°C to 1260°C
for periods of from 5 to 50 hours. The purpose of the treatment is to produce a corrosion
resistant alloy having a desired microstructure rather than to strengthen the alloy.
No tensile strength data is given for any of these samples disclosed in the patent.
The alloy of this patent has been commercialized under the designation INCONEL® alloy
686.
[0009] Yet another corrosion resistant Ni-Cr-Mo alloy is disclosed in United States Patent
No. 4,906,437 to Heubner et al. This alloy contains 22% to 24% chromium and 15% to
16.5% molybdenum. There is no disclosure of any heat treatment or age hardening of
this alloy. The alloy disclosed in this patent has been commercialized under the designation
VDM NICROFER 923 h Mo or Alloy 59.
[0010] A high yield strength Ni-Cr-Mo alloy is disclosed in United States Patent No. 4,129,464
to Matthews et al. This alloy contains 13% to 18% chromium and 13% to 18% molybdenum.
The patent says that the alloy could be aged using a single step aging treatment of
at least 50 hours at 480°C to 593°C, but all examples are aged 168 hours or more.
The statement that at least 50 hours is required was an extrapolation of the results
obtained from a 168 hours aging treatment. The patent reports data for three alloys
numbered 1, 2 and 3. Alloy 1 is commercially available under the trademark HASTELLOY®
C-276 alloy. Alloy 2 is commercially available as HASTELLOY C-4 alloy. Alloy 3 is
commercially available as HASTELLOY S alloy.
SUMMARY OF THE INVENTION
[0011] We provide a single-step age hardening process for certain nickel-chromium-molybdenum
alloys containing from 12% to 19% chromium and from 18% to 23 % molybdenum that results
in higher yield strength, high tensile strength and comparable other mechanical properties
as those observed with the current age-hardening process used in the art, such properties
being measured by yield strength, tensile strength, and tensile ductility tests at
room temperature. This process works only for those alloys in which the other alloying
elements are present in amounts so that the composition has a P value that is within
the range of 31.2 to 35.9 where P is defined by the equation:

[0012] The alloys are aged at about 593°C to 718°C for at least 4 and preferably 48 hours
and then air cooled. When so treated the alloys will have tensile properties suitable
for use in applications requiring high tensile strength and ductility. By using this
relatively short single step aging process high chromium content nickel based alloys
having a combination of high yield strength and ductility properties can be made at
lower cost than other alloys having such properties. Consequently, the present alloy
is a more affordable alloy for applications requiring such properties.
DESCRIPTION OF THE FIGURES
[0013]
Figure 1 is a graph of the alloys tested based upon the P value and chromium content
of the alloy.
Figure 2 is a graph of the alloys tested based upon the P value and molybdenum content
of the alloy.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0014] We provide a single-step aging treatment for Ni-Cr-Mo alloys containing from 12%
to 19% chromium to produce an alloy for applications requiring corrosion resistance,
high tensile strength and excellent tensile ductility. This process involves age hardening
the alloy at about 593°C to about 718°C for at least 4 hours and then cooling the
alloy to room temperature. We have found, however, that this process provides acceptable
mechanical properties for only those alloys that contain alloying elements in amounts
that provides a P value of from 31.2 to 35.9, P being defined as:

[0015] We tested 13 nickel base test alloys and 3 Ni-Cr-Mo commercial alloys whose compositions
are set forth in Table 1. The commercial alloys were HASTELLOY S sheet, HASTELLOY
C-276 sheet, and HASTELLOY C-4 sheet and plate. The thickness of each sheet was 3.2
mm and the plate was 9.5 mm thick. The designation "n.m." in Table 1 indicates that
the presence of an element was not measured. Table 1 also reports the P value for
each alloy.
[0016] The chromium content of the test alloys ranged from 11.56% for alloy 6 to 22.28%
for alloy 10. Molybdenum ranged from 14.73% in alloy 10 to 23.89% in alloy 13. All
of the alloys contained similar amounts of aluminum, cobalt, iron, and manganese.
Tungsten was present within a range of 0.13% to 0.34%. The alloys also contained small
amounts of boron, carbon, cerium, copper, magnesium, phosphorus, sulfur, silicon,
and vanadium. The test alloys were annealed after hot rolling to 12.7 mm plate at
annealing temperatures in the range of 1038°C to 1093°C for thirty minutes and water
quenched. The commercial alloys were cut from sheets or plate available from the manufacturer.
All of the test alloys were treated with a single-step aging treatment in which they
were aged at 649°C for 48 hours. Then they were air cooled to room temperature. The
commercial alloys HASTELLOY S, HASTELLOY C-276 and HASTELLOY C-4 alloys, were aged
at 593°C for 50 hours. Then they were air cooled to room temperature. This 50 hour
treatment corresponds to the treatment proposed for those alloys by Matthews et al.
in United States Patent No. 4,129,464.

[0017] All of the samples were tested to determine their tensile properties. The tests determined
yield strength, ultimate tensile strength, and percent elongation by following the
standard ASTM E-8 test procedures for such alloys. The results of those tests are
reported in Table 2
TABLE 2
| Room Temperature Tensile Properties |
| Alloy |
0.2%Yield Strength |
Ultimate Tensile Strength |
Percent Elongation |
| |
MPa |
ksi |
MPa |
ksi |
|
| A |
816 |
118.3 |
1306 |
189.4 |
40.1 |
| B |
823 |
119.3 |
1300 |
188.5 |
40.7 |
| C |
723 |
104.8 |
1229 |
178.3 |
43.4 |
| D |
709 |
102.9 |
1222 |
177.3 |
43.5 |
| E |
690 |
100.0 |
1198 |
173.7 |
44.1 |
| F |
508 |
73.7 |
962 |
139.5 |
47.6 |
| G |
324 |
47.0 |
738 |
107.1 |
61.8 |
| H |
359 |
52.0 |
841 |
122.0 |
65.1 |
| I |
341 |
49.5 |
806 |
116.9 |
64.3 |
| J |
304 |
44.1 |
743 |
107.8 |
64.1 |
| K |
822 |
119.2 |
1338 |
194.0 |
41.1 |
| L |
659 |
95.6 |
1170 |
169.7 |
47.9 |
| M |
663 |
96.1 |
1166 |
169.1 |
45.8 |
| N |
644 |
93.4 |
1158 |
168.0 |
47.3 |
| O |
629 |
91.2 |
1145 |
166.1 |
47.3 |
| P |
343 |
49.8 |
761 |
110.4 |
60.7 |
| Q |
747 |
108.4 |
1227 |
177.9 |
34.5 |
| R |
809 |
117.4 |
1305 |
189.3 |
32.4 |
| S |
962 |
139.5 |
1473 |
213.6 |
28.0 |
| T |
409 |
59.3 |
825 |
119.7 |
57.8 |
| HASTELLOY S |
465 |
67.5 |
918 |
133.1 |
47.1 |
| C-276 |
369 |
53.5 |
803 |
116.4 |
56.7 |
| C-4 |
497 |
72.1 |
947 |
137.4 |
47.6 |
| Alloy 59 |
594 |
86.2 |
1066 |
154.6 |
47.3 |
| INCONEL alloy 686 |
682 |
98.9 |
1169 |
169.6 |
45.0 |
[0018] To be acceptable an alloy must have elongation values greater than 40 percent and
yield strengths greater than 500 MPa. Alloys 1, 2, 3, 8 and 9 all had acceptable properties.
Alloys 12 and 13 did not possess enough tensile ductility as measured by the percent
elongation. Alloys 4, 5, 6, 7, 10 and 11 did not possess a high enough yield strength.
Since the chromium content and molybdenum content of alloy 12 is within the range
of chromium content and molybdenum content of the acceptable alloys it is clear that
neither chromium content nor molybdenum content is the sole predictor of acceptable
tensile properties in this class of alloys. We concluded that it is the interaction
of nearly all of the alloying elements that is the predictor of such properties. Indeed,
we discovered that when the alloy has a P value in the range of 31.2 to 35.9, chromium
in the range of 12% to 19% and molybdenum in the range of 18% to 23% were acceptable
tensile properties achieved with this aging process.
[0019] Figure 1 is a graph of the tested alloys based upon the P value of the alloy and
the chromium content. Each alloy that had acceptable tensile properties is plotted
with a dot. An X is used to plot those alloys whose tensile properties were not acceptable
after the alloy was subjected to the two-step aging treatment. A box has been drawn
around the acceptable alloys. It is readily apparent from Figure 1 that the acceptable
alloys have a chromium content of 12% to 19% and a P value within the range of 31.2
to 35.9.
[0020] Figure 2 is a graph similar to Figure 1 but plots the P value of the alloy against
the molybdenum content. As shown in Figure 2, the acceptable alloys contain from 18%
to 23% molybdenum. The fact that Alloy 4 did not pass the tensile property requirements
even though its chromium content is within the desired range indicates that molybdenum
content is also critical. Alloy 4 had only 17% molybdenum.
[0021] Having identified the compositions of alloys that could be successfully age-hardened
at 649°C to 48 hours and air cooled we then looked to see if the alloys disclosed
by Matthews et al. in United States Patent No. 4,192,464 would have acceptable properties
when treated at 593°C for 50 hours. That patent at column 4, lines 4-5 contains a
statement that the data obtained and there reported for longer treatments suggests
that aging for about 50 hours at 593°C will be effective. Test samples were cut from
commercially available HASTELLOY S sheet, HASTELLOY C-276 sheet and HASTELLOY C-4
sheet and HASTELLOY C-4 plate. The thickness of the sheets was 3.2 mm and the plate
was 9.5 mm thick. The composition of these alloys is in Table 1. These samples were
aged at 593°C for 50 hours and then air cooled. The aged samples were then tested
to determine their tensile strength properties using standard ASTM E-8 test procedures.
The results of those tensile tests are reported in Table 3.
TABLE 3
| Room Temperature Tensile Properties for Commercial Alloys (Aged 593°C (1100°F)/50hr/AC) |
| Alloy |
0.2%Yield Strength |
Ultimate Tensile Strength |
Percent Elongation |
| |
(MPa) |
(ksi) |
(MPa) |
(ksi) |
|
| HASTELLOY S |
455 |
66.0 |
923 |
133.8 |
46.8 |
| C-276 |
472 |
68.5 |
858 |
124.5 |
55.2 |
| C-4 plate |
401 |
58.1 |
865 |
125.5 |
55.2 |
| C-4 sheet |
652 |
94.5 |
1058 |
153.4 |
43.9 |
All of the samples had acceptable tensile strength and elongation. The yield strength
of HASTELLOY S sheet, C-276 sheet and C-4 plate samples were below 500 MPa and consequently
were unacceptable. The C-4 sheet had acceptable yield strength and unlike the C-4
plate was acceptable. The difference in yield strength between the C-4 sheet and the
C-4 plate is likely attributable to some unknown phenomenon, possibly a surface phenomenon,
that gives thin specimens higher yield strength than thicker samples. Whatever the
reason for the difference, the test data indicates that, contrary to Matthews' suggestion,
a 50 hour aging treatment at 593°C will not produce acceptable results for all Ni-Cr-Mo
alloys. Indeed, it only worked for a thin sample of a single alloy. The present process
works for all forms of alloys meeting the chromium, molybdenum and P value specified
here. All of the three commercial alloys had less than 18% molybdenum. Furthermore,
C-4 alloy and HASTELLOY S alloy had P values below 31.2. As our data demonstrates
a single step aging treatment as short as 48 hours provides acceptable tensile properties
for all forms of only those Ni-Cr-Mo alloys having 12% to 19% chromium, 18% to 23%
molybdenum and a P value of from 31.2 to 35.9.
[0022] Those skilled in the art will recognize that while chromium and molybdenum must be
present within the ranges encompassed by the test specimens, other alloying elements
are not so limited. Indeed, those elements could be present in amounts within the
ranges set forth in the UNS descriptions for commercially available Ni-Cr-Mo alloys
which include those tested here and alloys such as C-2000® alloy, C-22® alloy, SM
2060 Mo alloy and MAT-21 alloy. More specifically there could be up to 0.5% aluminum,
0.015% boron, 0.02% carbon, 2.5% cobalt, 2.0% copper, 3.0% iron, 1.5% manganese, 1.25%
niobium, 0.04% phosphorus, 0.03 % sulfur, 0.75% silicon, 2.2% tantalum, 0.7% titanium,
0.35% vanadium and 4.5% tungsten and 0.1% of a rare earth element.
[0023] Having now defined the alloys that can benefit from this age hardening process we
considered what time and temperature range would be acceptable. A series of aging
treatments was given to Alloy 2 and Alloy 8. After the aging treatments were performed
the hardness was measured to determine whether the samples had age hardened. The results
are shown in Tables 4 and 5.
Table 4
| The Effect of Different Aging Treatments on the Hardness of Alloy 2 |
| Temp |
Time (h) |
Hardness (Rc) |
| Unaged |
--- |
< 20.0 |
| 593°C/1100°F |
48 |
20.6 |
| 649°C/1200°F |
24 |
31.3 |
| 649°C/1200°F |
48 |
36.1 |
| 677°C/1250°F |
48 |
< 20.0 |
| 704°C/1300°F |
48 |
< 20.0 |
Table 5
| The Effect of Different Aging Treatments on the Hardness of Alloy 8 |
| Temp |
Time (h) |
Hardness (Rc) |
| Unaged |
--- |
< 20 |
| 593°C/1100°F |
48 |
20.1 |
| 649°C/1200°F |
48 |
34.3 |
| 677°C/1250°F |
2 |
< 20 |
| 677°C/1250°F |
4 |
27.1 |
| 677°C/1250°F |
8 |
39.9 |
| 677°C/1250°F |
12 |
34.6 |
| 677°C/1250°F |
16 |
35.0 |
| 677°C/1250°F |
48 |
35.8 |
| 704°C/1300°F |
8 |
< 20 |
| 704°C/1300°F |
12 |
< 20 |
| 704°C/1300°F |
16 |
33.1 |
| 704°C/1300°F |
48 |
35.3 |
| 718°C/1325°F |
48 |
28.6 |
| 732°C/1350°F |
48 |
< 20 |
| 760°C/1400°F |
48 |
< 20 |
[0024] A sample was determined to have age hardened if it had a Rockwell C (Rc) hardness
value of more than 20.0. A sample in the unaged condition confirmed that the material
started out with a hardness of less than 20.0. All samples given aging treatments
at 649°C for about 24 to 48 hours were found to strongly age harden. The samples aged
at 593°C for 48 hours just barely hardened. The samples of Alloy 2 aged at 677°C and
704°C for 48 hours did not harden. However, samples of Alloy 8 did age harden when
treated at 677°C and 704°C for 48 hours. Indeed, Alloy 8 age hardened when treated
at 677°C for times ranging from 4 hours to 48 hours. At 704°C age hardening did not
occur in Alloy 8 at 8 or 12 hours, but did occur when the treatment time was 16 and
48 hours. Furthermore, Alloy 8 age hardened when treated at 718°C for 48 hours. The
difference between the responses of Alloys 2 and 8 to heat treatment times and temperatures
can be attributed to the fact that Alloy 8 has higher molybdenum and lower chromium
than Alloy 2. The test results indicate that the alloy should be age hardened for
at least about 4 hours at a temperature ranging from about 593°C to about 718°C. Even
though the longest aging time used in our tests was 48 hours longer aging times could
be used. However, we prefer that the age-hardening treatment here disclosed be done
in a total time of less than 100 hours and preferably less than 50 hours. Indeed we
prefer to complete the process in 48 hours. By using heat treatments totaling less
than 100 hours, and preferably not greater than 50 hours, one can produce lower cost,
high chromium, Ni-Cr-Mo alloys that have desirable tensile properties. While the process
here disclosed may also work when total aging times exceed 100 hours, the energy costs
associated with such treatments make the process less desirable and commercially impractical.
[0025] This process represents a significant advancement. Prior to the present invention
Ni-Cr-Mo alloys having greater that 12% chromium were not produced in the age hardened
condition since the required aging times were considered to be too great. Because
of the energy costs associated with such long treatments the estimated cost of a higher
chromium, age-hardened alloy was considered too high and no such alloys are in commercial
existence. The single-step age-hardening treatment here disclosed will produce lower
cost, high chromium, Ni-Cr-Mo alloys that have desirable tensile properties.
[0026] Although we have described certain present preferred embodiments of our alloy and
method of producing that alloy, it should be distinctly understood that our invention
is not limited thereto but may be variously embodied within the scope of the following
claims.
1. A nickel- chromium-molybdenum alloy comprised of:
from 12% to 19% chromium;
from 18% to 23% molybdenum;
up to 3% iron;
at least one alloying element selected from the group consisting of aluminum, boron,
carbon, cobalt, copper, hafnium, iron, manganese, niobium, silicon, tantalum, tungsten,
vanadium and zirconium; and
a balance of nickel plus impurities;
wherein the alloy has a P value of from 31.2 to 35.9, P being defined as:

and the alloy is age hardened at about 593°C to about 718°C for at least 4 hours
then cooled to room temperature.
2. The alloy of claim 1 wherein the alloying elements consist of:
up to about 0.5% aluminum;
up to 0.02% carbon;
up to about 1.5% manganese;
up to about 2.5% cobalt;
up to about 4.5% tungsten; and
up to about 0.015% boron.
3. The alloy of claim 1 also comprising:
up to about 0.1% of a rare earth element;
up to about 2.0% copper;
up to about 1.25% niobium
up to about 0.04% phosphorus;
up to about 0.75% silicon;
up to about 0.03% sulfur;
up to about 2.2% tantalum;
up to about 0.7% titanium; and
up to about 0.035% vanadium.
4. The alloy of claim 1 also comprising at least one of hafnium and tantalum.
5. The alloy of claim 1 wherein the alloy is comprised of:
from 12% to 19% chromium;
from 18% to 23% molybdenum;
from 0.12% to 0.2% aluminum;
from 0.002% to 0.006% carbon;
from 0.30% to 0.34% manganese;
from 1.0% to 1.7% iron;
from 0.05% to 0.8% cobalt;
from 0.10% to 0.34% tungsten; and
from 0.002% to 0.005% boron.
6. The alloy of claim 5 also comprising:
from 0.005% to 0.009% cerium;
from 0.01% to 0.06% copper;
from 0.001% to 0.004% magnesium;
from 0.002 to 0.005% phosphorus;
from 0.001% to 0.004% sulfur; and
from 0.01% to 0.02% vanadium.
7. The alloy of any previous claim wherein the alloy is age hardened in not more than
50 hours.
8. The alloy of any previous claim wherein the alloy is age hardened at about 649°C for
48 hours.
9. A method for treating an alloy having a composition comprised of from 12% to 19% chromium,
from 18% to 23% molybdenum, up to about 0.5% aluminum, up to abou 0.015% boron, up
to 0.02% carbon, up to about 2.5% cobalt, up to about 3% iron up to about 1.5% manganese,
up to about 1.25% niobium, up to about 0.75% silicon, up to about 2.2% tantalum, up
to about 0.7% titanium, up to about 4.5% tungsten, and the balance nickel plus impurities,
wherein the alloy has a P value of from 31.2 to 35.9, P being defined as:

the method comprised of:
age hardening the alloy at about 593°C to about 718°C for at least 4 hours; and
cooling the alloy to room temperature.
10. The alloy of claim 9 wherein the alloy is age hardened in not more than 50 hours.
11. The method of claim 9 wherein the alloy is age hardened at about 649°C for 48 hours.
12. The method of claim 9 wherein the alloy is age hardened in not more than 24 hours.