[0001] The present invention relates to a method of heat-treating titanium aluminide and
in particular to a method of heat-treating.
[0002] There is a requirement to refine the microstructure of a titanium aluminide alloy,
in particular cast titanium aluminide alloy, which does not involve hot working of
the titanium aluminide alloy.
[0003] It is known to use six to eight rapid heating and rapid cooling cycles of a titanium
aluminide alloy to obtain satisfactory fineness of the microstructure, as disclosed
by Wang JN, Xia K in Intermetallics 2000, 8, 545. But this is only practical on a
laboratory scale. The rapid heating and rapid cooling is beyond the ability of conventional
heat treatment facilities. In order to achieve rapid heating and rapid cooling of
a titanium aluminide component, the size of the titanium aluminide component is limited
and cracks may be produced in an irregular shaped titanium aluminide component.
[0004] It is also known to use a first long term soak at a sub alpha transus temperature
and a second short term soak at a temperature just above the alpha transus temperature
followed by furnace or air cooling of a titanium aluminide alloy, as disclosed by
Yang J, Wang JN, Wang Y, Xia QF and Zhang B in Intermetallics 2001, 9, 369. However,
the first long term soaking temperature has to be as close to the alpha transus temperature
as possible in order to minimise the soaking time. During the first long term soaking
the original lamellar microstructure transforms into granular gamma and alpha with
a high volume fraction of the alpha phase. The remaining gamma grains act as pinning
points to prevent the rapid growth of alpha phase. The second short term soaking temperature
has to be above the alpha transus temperature and as close as possible to the alpha
transus temperature and the second short term soaking should be as short as possible.
This heat treatment requires precision control and rapid heating to the second short
term soaking temperature. The aim is to leave the titanium aluminide alloy in the
alpha phase field for the shortest possible time to prevent excessive alpha grain
growth but this is difficult to realise in a production environment.
[0005] Furthermore it is known to provide rapid heating at a rate of about 1500°Cs
-1 to a temperature above the alpha transus temperature, a short holding of about 5
minutes at this temperature and normal cooling to produce a fully lamellar refined
microstructure in a titanium aluminide alloy, as disclosed by Salishnov GA, Imayev
RM, Kuznetsov AV, Shagiev MR, Imayev VM, Shenkov ON, Froes FH, In Kim Y-W, Dumiduk
DM, Loretto MH, editors of Gamma Titanium Aluminides 1999, Warendale, PA:TMS, 1999,
p291. However, the rapid heating rate required is difficult to achieve using a conventional
furnace and the very short holding time is difficult to control. Additionally prolonged
holding at a temperature above the alpha transus temperature results in rapid growth
of alpha grains, which limits the use of this technique in industrial applications.
[0006] Accordingly the present invention seeks to provide a novel method of heat-treating
titanium aluminide alloy which reduces, preferably overcomes, the above-mentioned
problems.
[0007] Accordingly the present invention provides a method of heat-treating titanium aluminide
alloy, the titanium aluminide alloy having a single alpha phase field and being capable
of producing a massively transformed gamma microstructure, the method comprising the
steps of
(a) heating a titanium aluminide alloy to a temperature above the alpha transus temperature,
(b) maintaining the titanium aluminide alloy at a temperature above the alpha transus
temperature in the single alpha phase field for a predetermined time period,
(c) cooling the titanium aluminide alloy from the single alpha phase field to produce
a massively transformed gamma microstructure,
(d) heating the titanium aluminide alloy to a temperature below the alpha transus
temperature in the alpha and gamma phase field,
(e) maintaining the titanium aluminide alloy at the temperature below the alpha transus
temperature for a predetermined time period to precipitate alpha plates in the massively
transformed gamma microstructure such that a refined microstructure is produced in
the titanium aluminide alloy,
(f) cooling the titanium aluminide alloy to ambient temperature.
[0008] Preferably in step (b) the predetermined time period is up to 2 hours.
[0009] Preferably in step (e) the predetermined time period is up to 4 hours.
[0010] Preferably step (d) comprises heating the titanium aluminide alloy to a temperature
about 30°C to 60°C below the alpha transus temperature.
[0011] Preferably step (a) comprises heating the titanium aluminide alloy to a temperature
of about 20°C to 30°C above the alpha transus temperature.
[0012] Preferably step (f) comprises air-cooling or furnace cooling.
[0013] Preferably step (c) comprises air-cooling or oil cooling.
[0014] Preferably the titanium aluminide alloy consists of at least 46at% aluminium. The
titanium aluminide alloy may comprise 48at% aluminium, 2at% chromium, 2at% niobium
and the balance titanium and incidental impurities.
[0015] The alpha transus temperature is about 1360°C, step (a) comprises heating to a temperature
of 1380°C, step (b) comprises maintaining the titanium aluminide alloy at a temperature
of about 1380°C for about 1 hour, step (c) comprises oil cooling the titanium aluminide
alloy from a temperature of 1380°C to produce a massively transformed gamma microstructure,
steps (d) and (e) comprise heating the titanium aluminide alloy to a temperature of
about 1320°C for about 2 hours to precipitate alpha plates in the massively transformed
gamma microstructure such that a refined microstructure is produced in the titanium
aluminide alloy, and step (f) comprises air cooling the titanium aluminide alloy to
ambient temperature.
[0016] The titanium aluminide alloy may comprise 46at% aluminium, 8at% niobium, up to 0.07at%
carbon and the balance titanium and incidental impurities.
[0017] The alpha transus temperature is about 1335°C, step (a) comprises heating to a temperature
of 1360°C, step (b) comprises maintaining the titanium aluminide alloy at a temperature
of about 1360°C for about 1 hour, step (c) comprises oil cooling, or air cooling,
the titanium aluminide alloy from a temperature of 1360°C to produce a massively transformed
gamma microstructure, steps (d) and (e) comprise heating the titanium aluminide alloy
to a temperature of about 1300°C for about 4 hours to precipitate alpha plates in
the massively transformed gamma microstructure such that a refined microstructure
is produced in the titanium aluminide alloy, and step (f) comprises air cooling the
titanium aluminide alloy to ambient temperature.
[0018] The present invention is applicable to a gamma titanium aluminide alloy consisting
of 45-46at% aluminium, 8at% niobium, up to 0.07at% carbon and the balance titanium
and incidental impurities, for example 45.5at% aluminium, 8at% niobium and the balance
titanium and incidental impurities. The present invention is also applicable to a
gamma titanium aluminide alloy consisting of 45-46at% aluminium, 2-6at% niobium, 2-6at%
hafnium and the balance titanium and incidental impurities, for example 46at% aluminium,
4at% niobium, 4at% hafnium and the balance titanium and incidental impurities.
[0019] The titanium aluminide alloy may be a cast titanium aluminide component.
[0020] The method may comprise hot isostatic pressing of the cast titanium aluminide alloy
component.
[0021] Preferably the hot isostatic pressing of the cast titanium aluminide alloy component
is concurrent with step (e) .
[0022] Preferably the hot isostatic pressing comprises applying a pressure of about 150Mpa
for about 4 hours.
[0023] The titanium aluminide alloy may be a compressor blade or a compressor vane.
[0024] The present invention will be more fully described by way of example with reference
to the accompanying drawings in which:-
Figure 1 is graph of temperature versus time illustrating the method of heat-treating
a titanium aluminide alloy according to the present invention.
Figure 2 is a schematic view of the microstructure of a titanium aluminide alloy heat
treated according to the present invention.
Figure 3 is a view of the microstructure of a titanium aluminide alloy heat treated
according to the present invention.
Figure 4 is a schematic view of the microstructure of a titanium aluminide alloy heat
treated according to the prior art.
Figure 5 is a gamma titanium aluminide alloy gas turbine engine compressor blade heat
treated according to the present invention.
[0025] A method of heat-treating a titanium aluminide alloy according to the present invention
is described with reference to figure 1. The present invention is concerned with heat-treating
gamma titanium aluminide alloys with at least 46at% aluminium and a single alpha phase
field.
[0026] The heat treatment process comprises heating the gamma titanium aluminide to a temperature
T
1 above the alpha transus temperature T
α. The gamma titanium aluminide alloy is then maintained at a temperature T
1 above the alpha transus temperature T
α in the single alpha phase field for a predetermined time period t
1. The gamma titanium aluminide is quenched, for example air cooled, or oil cooled,
from the single alpha phase field at temperature T
1 to produce a massively transformed gamma microstructure. The gamma titanium aluminide
alloy is then heated to a temperature T
2 below the alpha transus temperature T
α. The gamma titanium aluminide alloy is maintained at the temperature T
2 in the alpha and gamma phase field for a predetermined time period t
2 to precipitate alpha plates in the massively transformed gamma microstructure such
that a refined microstructure is produced in the titanium aluminide alloy. The gamma
titanium aluminide is cooled, for example air cooled, or furnace cooled, to ambient
temperature.
[0027] Figure 2 illustrates a very fine duplex microstructure of a gamma titanium aluminide
alloy treated according to the present invention. In the present invention differently
orientated alpha plates precipitated in a massive gamma phase matrix effectively reduce
the grain size of the gamma titanium aluminide alloy and these are produced by the
massive gamma to alpha + gamma phase transformation.
[0028] For comparison Figure 4 illustrates a coarse lamellar microstructure of a gamma titanium
aluminide alloy treated according to a prior art method. In the prior art the coarse
lamellar microstructure is produced by the alpha to alpha + gamma phase transformation.
[0029] In particular, the gamma titanium aluminide is heated to a temperature T
1 about 20°C to 30°C above the alpha transus temperature T
α. The gamma titanium aluminide alloy is maintained at the temperature T
1 for up to 2 hours. The gamma titanium aluminide alloy is then quenched, for example
air cooled, or oil cooled, at a rate sufficient to induce a massively transformed
gamma microstructure. The gamma titanium alloy is heated to a temperature T
2 about 30°C to 60°C below the alpha transus temperature T
α. The gamma titanium aluminide alloy is maintained at the temperature T
2 for up to 4 hours to precipitate fine alpha plates with different orientations in
the massively transformed gamma microstructure due to the massive gamma to alpha +
gamma phase transformation. This gives rise to a very fine duplex microstructure.
The differently orientated alpha plates precipitated in the massive gamma phase matrix
effectively reduce the grain size of the gamma titanium aluminide. The gamma titanium
aluminide alloy is then cooled, for example air cooled, or furnace cooled, to ambient
temperature.
[0030] The holding at temperature T
1 for a time period t
1 also acts a homogenisation process for cast titanium aluminide alloys.
Example 1
[0031] A gamma titanium aluminide alloy consisting of 48at% aluminium, 2at% chromium, 2at%
niobium and the balance titanium plus incidental impurities was heat treated according
to the present invention. This gamma titanium aluminide alloy has an alpha transus
temperature T
α = 1360°C. The gamma titanium aluminide alloy was heated to a temperature T
1 = 1380°C and was held at T
1 = 1380°C for 1 hour. The gamma titanium aluminide alloy was oil cool quenched. The
gamma titanium aluminide alloy was heated to a temperature T
2 = 1320°C and was held at T
2 = 1320°C for 2 hours. The gamma titanium aluminide alloy was air cooled to ambient
temperature. The microstructure of the gamma titanium aluminide alloy is shown in
figure 3.
Example 2
[0032] A gamma titanium aluminide alloy consisting of 46at% aluminium, 8at% niobium, up
to 0.07at% carbon and the balance titanium plus incidental impurities was heat treated
according to the present invention. This gamma titanium aluminide alloy has an alpha
transus temperature T
α = 1335°C. The gamma titanium aluminide alloy was heated to a temperature T
1 = 1360°C and was held at T
1 = 1360°C for 1 hour. The gamma titanium aluminide alloy was oil quenched. The gamma
titanium aluminide alloy was heated to a temperature T
2 = 1300°C and was held at T
2 = 1300°C for 4 hours. The gamma titanium aluminide alloy was air cooled to ambient
temperature.
[0033] The present invention is applicable to a gamma titanium aluminide alloy consisting
of 46at% aluminium, 5at% niobium, 0.3at% boron, 0.2at% carbon and the balance titanium
plus incidental impurities. The present invention is applicable to a gamma titanium
aluminide alloy consisting of 47at% aluminium, 2at% niobium, 1at% tungsten, 1at% chromium,
1at% boron, 0.2at% silicon and the balance titanium plus incidental impurities. The
present invention is applicable to gamma titanium aluminide alloy consisting of 47at%
aluminium, 2at% tantalum, 1at% chromium, 1at% manganese, 1at% boron, 0.2at% silicon
and the balance titanium plus incidental impurities. The present invention is also
applicable to gamma titanium aluminide alloy consisting of 46at% aluminium, 5at% niobium,
1at% tungsten and the balance titanium plus incidental impurities.
[0034] The present invention is applicable to a gamma titanium aluminide alloy consisting
of 45-46at% aluminium, 8at% niobium, up to 0.07at% carbon and the balance titanium
and incidental impurities, for example 45.5at% aluminium, 8at% niobium and the balance
titanium and incidental impurities. The present invention is also applicable to a
gamma titanium aluminide alloy consisting of 45-46at% aluminium, 2-6at% niobium, 2-6at%
hafnium and the balance titanium and incidental impurities, for example 46at% aluminium,
4at% niobium, 4at% hafnium and the balance titanium and incidental impurities.
[0035] The present invention may be used to refine the microstructure of titanium aluminide
alloys without the need for hot working. The present invention has the advantage of
simplicity and practicality over the prior art previously discussed. The heat treatment
at temperature T
1 for time t
1 in the single alpha phase field and does not have a rigid holding time and this allows
the process to be carried out in conventional heat treatment facilities. The gamma
titanium aluminide alloys must be capable of producing massively transformed gamma
microstructures. The cooling rate during the quenching is not excessive and most gamma
titanium aluminide alloys with at least 46at% aluminium and with at least 4at% refractory
alloying elements may be quenched in air or oil depending on the size of the gamma
titanium aluminide alloy component. This significantly reduces the possibility of
cracking of the gamma titanium aluminide alloy component during quenching. The temperature
range for heat treatment at temperature T
2 for time t
2 is relatively wide and is not close to the alpha transus temperature T
α, which reduces the technical requirement of the heat treatment facilities and makes
the heat treatment process easier. The present invention is particularly useful for
gamma titanium aluminide alloy castings in which hot working is not possible. The
present invention refines the microstructure of gamma titanium aluminide alloy castings
and reduces the scatter in mechanical properties and improves the room temperature
ductility.
[0036] In the case of cast gamma titanium aluminide alloy components it may be necessary
to remove porosity from the cast gamma titanium aluminide alloy component. In this
case the cast gamma titanium aluminide alloy component may be hot isostatically pressed
(HIP) to remove the porosity. The hot isostatic pressing preferably occurs at the
same time as the heat treatment temperature T
2 and for the time period of about 4 hours at a pressure of about 150Mpa and this is
beneficial because this dispenses with the requirement for a separate hot isostatic
pressing step.
[0037] The present invention is particularly suitable for gamma titanium aluminide gas turbine
engine compressor blades as illustrated in figure 5. The compressor blade 10 comprises
a root 12, a shank 14, a platform 16 and an aerofoil 18. The present invention is
also suitable for gamma titanium aluminide gas turbine engine compressor vanes or
other gamma titanium aluminide gas turbine engine components. The present invention
may also be suitable for gamma titanium aluminide components for other engine, machines
or applications.
1. A method of heat-treating a titanium aluminide alloy, the titanium aluminide alloy
having a single alpha phase field and being capable of producing a massively transformed
gamma microstructure the method comprising the steps of
(a) heating a titanium aluminide alloy to a temperature above the alpha transus temperature,
(b) maintaining the titanium aluminide alloy at the temperature above the alpha transus
temperature in the single alpha phase field for a predetermined time period,
(c) cooling the titanium aluminide alloy from the single alpha phase field to produce
a massively transformed gamma microstructure,
(d) heating the titanium aluminide alloy to a temperature below the alpha transus
temperature in the alpha and gamma phase field,
(e) maintaining the titanium aluminide alloy at the temperature below the alpha transus
temperature for a predetermined time period to precipitate alpha plates in the massively
transformed gamma microstructure such that a refined microstructure is produced in
the titanium aluminide alloy,
(f) cooling the titanium aluminide alloy to ambient temperature.
2. A method as claimed in claim 1 wherein in step (b) the predetermined time period is
up to 2 hours.
3. A method as claimed in claim 1 or claim 2 wherein in step (e) the predetermined time
period is up to 4 hours.
4. A method as claimed in claim 1, claim 2 or claim 3 wherein step (d) comprises heating
the titanium aluminide alloy to a temperature about 30°C to 60°C below the alpha transus
temperature.
5. A method as claimed in any of claims 1 to 4 wherein step (a) comprises heating the
titanium aluminide alloy to a temperature of about 20°C to 30°C above the alpha transus
temperature.
6. A method as claimed in any of claims 1 to 5 wherein step (f) comprises air-cooling
or furnace cooling.
7. A method as claimed in any of claims 1 to 6 wherein step (c) comprises air-cooling
or oil cooling.
8. A method as claimed in any of claims 1 to 7 wherein the titanium aluminide alloy consists
of at least 46at% aluminium.
9. A method as claimed in any of claims 1 to 8 wherein the titanium aluminide alloy comprises
48at% aluminium, 2at% chromium, 2at% niobium and the balance titanium and incidental
impurities.
10. A method as claimed in claim 9 wherein the alpha transus temperature is about 1360°C,
step (a) comprises heating to a temperature of 1380°C, step (b) comprises maintaining
the titanium aluminide alloy at a temperature of about 1380°C for about 1 hour, step
(c) comprises oil cooling the titanium aluminide alloy from a temperature of 1380°C
to produce a massively transformed gamma microstructure, steps (d) and (e) comprise
heating the titanium aluminide alloy to a temperature of about 1320°C for about 2
hours to precipitate alpha plates in the massively transformed gamma microstructure
such that a refined microstructure is produced in the titanium aluminide alloy, and
step (f) comprises air cooling the titanium aluminide alloy to ambient temperature.
11. A method as claimed in any of claims 1 to 8 wherein the titanium aluminide alloy comprises
46at% aluminium, 8at% niobium, up to 0.07at% carbon and the balance titanium and incidental
impurities.
12. A method as claimed in claim 11 wherein the alpha transus temperature is about 1335°C,
step (a) comprises heating to a temperature of 1360°C, step (b) comprises maintaining
the titanium aluminide alloy at a temperature of about 1360°C for about 1 hour, step
(c) comprises oil cooling, or air cooling, the titanium aluminide alloy from a temperature
of 1360°C to produce a massively transformed gamma microstructure, steps (d) and (e)
comprise heating the titanium aluminide alloy to a temperature of about 1300°C for
about 4 hours to precipitate alpha plates in the massively transformed gamma microstructure
such that a refined microstructure is produced in the titanium aluminide alloy, and
step (f) comprises air cooling the titanium aluminide alloy to ambient temperature.
13. A method as claimed in any of claims 1 to 7 wherein the titanium aluminide alloy consists
of 45-46at% aluminium, 8at% niobium, up to 0.07at% carbon and the balance titanium
and incidental impurities.
14. A method as claimed in any of claims 1 to 7 wherein the titanium aluminide alloy consists
of 45-46at% aluminium, 2-6at% niobium, 2-6at% hafnium and the balance titanium and
incidental impurities.
15. A method as claimed in claim 14 wherein the titanium aluminide alloy consists of 46at%
aluminium, 4at% niobium, 4at% hafnium and the balance titanium and incidental impurities.
16. A method as claimed in any of claims 1 to 15 wherein the titanium aluminide alloy
is a cast titanium aluminide alloy component.
17. A method as claimed in claim 16 comprising hot isostatic pressing of the cast titanium
aluminide alloy component.
18. A method as claimed in claim 17 wherein the hot isostatic pressing of the cast titanium
aluminide alloy component is concurrent with step (e).
19. A method as claimed in claim 17 or claim 18 wherein the hot isostatic pressing comprises
applying a pressure of about 150MPa for about 4 hours.
20. A method as claimed in any of claims 1 to 19 wherein the titanium aluminide alloy
is a compressor blade or a compressor vane.