[0001] This invention relates to nickel-based alloys for high-temperature service.
[0002] The most common alloys conventionally used for the particular application of sheathing
materials of metal-sheathed mineral-insulated conductor cables are various grades
of stainless steel and inconel. These alloys are significantly deficient in one or
more of the properties required for such an application.
[0003] The present inventor has proposed (Australian Petty Patent No. 548 519 of December
3, 1985, and Australian Patent Application No. 41 675 of April 24, 1985) & EP-A-0
161 986 that the best existing alloys for the particular application of sheathing
materials of mineral-insulated metal-sheathed conductor cable are alloys hitherto
not used for this purpose, namely the nickel alloys of his own invention known as
NICROSIL (typically containing 14.2 % wt. Cr and 1.4 % wt. Si) and NISIL (typically
containing 4.4 % wt. Si and 0.1 % wt. Mg). Whilst these alloys show most excellent
resistance to high-temperature gas corrosion and are possessed of ultra-high thermoelectric
stability, they do not exhibit the desired excellent degrees of tensile strength at
high temperatures which are required for sheathing alloys for metal-sheathed mineral-insulated
cables for the most demanding of the wide variety of applications involved. Such most
demanding applications include some found, for examples amongst others, in the nuclear,
aerospace and electronics industries.
[0004] Other alloys which have actual or potential application as sheathing for metal-sheathed
mineral-insulated cables, such as stainless steel, inconel, nicrosil and nisil, are
deficient in some or all of the aspects of very high resistance to gas corrosion,
ultra-high thermoelectric stability, very high tensile strength and retention of strength
at the highest application temperatures involved.
[0005] The present invention provides a nickel-based alloy consisting of, by weight, 13.5
% to 14.5 % chromium, 1.0 % to 1.5 % silicon, and the balance nickel, apart from impurities,
characterized in that it also contains at least one element selected from molybdenum,
tungsten, niobium, and tantalum, in concentration by weight molybdenum: up to 5.0
% maximum, tungsten : up to 1.0 % maximum, niobium : up to 3.0 % maximum, and tantalum
: up to 2.0 % maximum, and optionally up to 0.5 % magnesium and/or up to 0.2 % cerium.
[0006] The present invention will now be described in greater detail by way of example only.
[0007] The alloys of the present invention possess a comprehensive range of enhanced properties
at high temperatures and are therefore suitable for a wide variety of applications
among which may be mentioned structural components of solid form in a variety of sections
including tubular sections for furnaces, retorts and other heated enclosures of many
kinds, protective sheathing for a number of devices including thermocouples, thermocouple
cables, resistive heating elements, heat sensing and heat tracing cables, as well
as igniter devices, rocket nozzles and other components for many other applications.
A particular application of the alloys of this invention is for the sheathing material
of mineral-insulated metal-sheathed electrical conductor cable for thermocouples and
other devices including thermocouples where the sheath forms one of the thermoelement
conductors of the thermocouple.
[0008] The alloys of this invention have improved high-temperature properties and are characterized,
in particular, by possessing properties including :
(i) Outstanding resistance to high-temperature gas corrosion, more particularly oxidation
resistance under conditions of both constant temperature and also cycling temperatures
of either a continuous or intermittent kind and over a wide range of partial pressures
of oxygen,
(ii) highly stable thermoelectric properties more particularly ultra-high stability
of thermoelectromotive force and Seebeck coefficient over a wide range of temperatures
and under conditions of both constant temperature and cycling temperatures of either
a continuous or intermittent kind and over a wide range of partial pressures of oxygen
and which properties are significantly and substantially enhanced over those of other
nickel-base alloys for high-temperature applications,
(iii) high values of tensile strength at high temperatures and a high degree of retention
of tensile strength at high temperatures, and
(iv) a high degree of mechanical workability at high temperatures by processes such
as hot extrusion and at low temperatures by processes such a cold drawing, cold swaging
and cold pilgering.
[0009] The alloys of this invention may be used as cast, and in the hot-worked, cold-worked
or fully annealed conditions. While these alloys have excellent properties in both
the cast and wrought conditions, these properties can be improved and stabilized by
annealing treatments at temperatures above their minimum recrystallization temperatures.
This stabilization applies particularly to their thermoelectric properties.
[0010] Whilst there are several nickel-base alloys which have some but not all of the abovementioned
favourable properties there are none, to our knowledge, that possess all these properties
in the one alloy.
[0011] Because the alloys of the present invention possess a comprehensive range of these
enhanced properties, they are suitable for a wide variety of applications at high
temperatures. These applications may occasionally require only one or a combination
of the improved properties. The excellent resistance to high-temperature gas corrosion
and excellent high-temperature tensile strength of the new alloys are important properties
for load bearing structural components in furnaces, retorts, reactor vessels, heated
enclosures of many kinds, gas turbine engines, rocket nozzles and a wide range of
similar equipment. The ultra-high thermoelectric stability of the new alloys is important
for wires and tubes for thermoelement conductors and protective sheathing, respectively,
for thermocouples particularly of the metal-sheathed mineral-insulated type of construction.
[0012] A particular application of the new alloys is in mineral-insulated metal-sheathed
conductor cables for thermocouples, heater elements, heat sensing and heat tracing
cables, stagnation probe transducers for gas turbine engines, gas flues, and like
applications. It is in such applications that the unique combination of excellent
properties at high temperature of the alloys of this invention of gas-corrosion resistance,
thermoelectric stability and retained high tensile strength are of optimum benefit
In some of these applications a combination of the highest possible values of these
properties is essential.
[0013] In this respect, our studies and extensive test programmes have shown that the desired
combination of high property values of gas corrosion resistance and thermoelectric
stability are achievable using a base-alloy composition of nickel-chromium-silicon
in component concentrations which optimize these properties whilst retaining a single
solid solution phase structure, which is an important feature of the preferred alloys
of the invention. The enhanced high-temperature strength is achieved by the addition
of one or more supplementary elemental components. It is believed that such addition
achieves the required strengthening effect by a mechanism of crystal lattice modification
appropriate to single solid solution structures. The desired effect of strengthening
at high temperatures can, in fact, be achieved by a number of optional compositional
variants which are the result of the addition of one or a number of optional strengthening
elements to the base nickel-chromium-silicon lattice structure.
[0014] Some preferred embodiments of the range of possible alloys are set down in Table
1.

[0015] In the ensuing discussion of the embodiments of the present invention reference is
made to the accompanying figures and diagrams, wherein :
Figure 1 shows graphical plots of long-term drifts in thermoelectromotive force of
3.3 mm diameter thermoelements of (Instrument Society of America) type KP alloy Ni-9.3
Cr-0.4 Si. (per cent weight) versus platinum, and of similar thermoelements of Ni-14.2
Cr-1.4 Si-0.05 Mg (per cent weight) versus platinum on exposure in air at 1 200 °C
and 1 250 °C, respectively. The drifts are changes from thermoelectromotive force
output values existent after 100 hours of constant temperature exposure ;
Figure 2 are photomicrographs which show oxide structures in Instrument Society of
America type KP alloy Ni-9.3 Cr-0.4 Si (per cent weight) (top two panels) and in alloy
Ni-14.2 Cr-1.4 Si-0.05 Mg (per cent weight) (bottom panel) resulting from constant-temperature
exposure of 3.3 mm diameter specimens in air for 800 hours at 1 200 °C. The outer
white annular zone is a layer of electrodeposited copper which was applied to support
the fragile oxides ;
Figure 3 shows a graphical plot of the ultimate tensile strength of Ni-14.3 Cr-1.4
Si-0.1 Mg alloy (per cent weight) as a function of temperature. The graph also shows
a plot of the tensile strengths of one of the preferred embodiments of the alloys
of this invention as a function of temperature; Tables 2 and 3 below include further
experimental data; and
Figure 4 are photomicrographs which show the grain structure, magnified 500 times,
of initially as- rolled (to 85 % reduction of cross-section originally 8 mm) Ni-14.3
Cr-1.4 Si-0.1 Mg alloy (per cent weight) as a function of annealing for one hour at
temperatures of 600 °C, 800 °C, and 1 000 °C.
[0016] In order to achieve the desired optimum combination of properties in the alloys of
this invention, the alloy microstructure must comprise only one equilibrium phase
which is a terminal solid-solution. The base ternary alloy of nickel-chromium-silicon,
in the concentration ratios described in the preferred embodiments of Table 1, is
of such single solid-solution equilibrium structure. In practice, we have found that
the addition of the preferred strengthening elements molybdenum, tungsten, niobium
and tantalum, either in the single or in the combined concentrations of the preferred
embodiments, does not exceed limits of solid solubility in the ternary Ni-Cr-Si base
alloy. Therefore no second phases, either solid- solutions or intermetallic compounds,
are formed. Furthermore, we have found that the preferred alloys are amenable to both
hot and cold mechanical working to change their shape because they possess adequate
cold ductility, and that their microstructural recrystallization temperatures are
about 800 °C so they can readily be softened by annealing above this temperature when
they are work hardened by cold deformation. Furthermore, any property variations across
a section of the preferred alloys due to compositional inhomogeneities in as-cast
structures can be readily minimized by homogenizing heat- treatments.
[0017] The compositions of the alloys in the present invention require the careful selection
of component elements of very high purity and the achievement of the correct proportions
of each by adequate control of melting and casting techniques. In all cases the effects
of one component element depend on those of the others and hence there is a synergistic
interdependence of the elements within the overall compositions. In general, concentrations
of alloying elements outside the compositional ranges specified for the alloys of
this invention cause degradation of the optimum levels of property values of gas-corrosion
resistance, thermoelectric stability and tensile strength, all at high temperatures.
[0018] Nickel-chromium-silicon alloys of the single solid-solution phase type, in the concentration
ranges (9 to 15) % wt. Cr and (0.3 to 1.5) % wt. Si show relatively high thermoelectric
stability at elevated temperatures in air. The actual degrees of instability of thermoelectromotive
force output and Seebeck coefficient are functional not only upon temperature of exposure
and the oxygen partial pressure of the air, but also upon the specific solute concentrations
of chromium and silicon in the base nickel. The highest degree of stability of thermoelectromotive
force is achievable only by selecting optimum critical concentrations of chromium
and silicon in nickel.
[0019] Figure 1 shows the degree of thermoelectric instability exhibited by the most common
Ni-Cr-Si alloys used as thermocouple thermoelements, namely the Ni-9.3 % wt. Cr-0.4
% wt.Si alloy designated type KP by the Instrument Society of America. This instability
is expressed as drift in thermoelectromotive force in microvolt as a function of time
of exposure in air at 1 200 °C. The figure also shows the greatly enhanced thermoelectric
stability of the base Ni-Cr-Si alloy which is the preferred embodiment of this invention.
For example it can be seen that the drift in the thermoelectromotive force of the
type KP alloy after 700 hours is about minus 400 microvolt at 1 200 °C, but the Ni-Cr-Si
base alloy which is the preferred embodiment of this invention shows virtually no
drift in thermoelectromotive force even at the higher temperature of 1 250 °C.
[0020] Figure 2 shows the degree of oxidation occurring in the same type KP alloy after
exposure for 800 hours in air at 1 200 °C. It is evident that not only is there massive
external scale developed on the surface of the alloy but also that a process of internal
oxidation has resulted in the massive precipitation of oxide particles of the component
elements chromium and silicon in the internal matrix of the alloy. We have found that
this latter process of internal oxidation produces gross changes in the solute concentrations
of chromium and silicon and it is these changes in concentration, which are temporally
progressive, that are the cause of the relatively high degree of instability of thermoelectromotive
force in the KP alloys under the stated conditions. Of considerable significance is
the evidence in the same figure that for the Ni-Cr-Si base alloy of the preferred
embodiments of this invention there is very little oxide, either as external scale
or as internal oxide precipitates. The consequent virtual absence of compositional
changes in solute concentrations is the reason for the ultra-high thermoelectric stability
of this base alloy.
[0021] The preferred strengthening elements of this invention, namely molybdenum, tungsten,
niobium and tantalum, either in the single or the combined concentrations of the preferred
embodiments, will not deleteriously affect the oxidation resistance of these preferred
alloys in any significant way.
[0022] Vacuum melted ingots of each separate alloy were extruded into desired shapes from
which special test-pieces were machined. Tests to determine tensile strength and ductility
at various temperatures were carried out using a standard test-piece 80 mm long x
12.7 mm diameter, with a narrowed portion 32mm long. The gauge length = 5.65 /A, where
A = cross-sectional area of the test-piece. A KN Zwick universal testing machine,
specially modified to facilitate the high-temperature tests, was used. Each test involved
straining the test-piece at a rate of 0.002 mm/mm/min. up to the 0.5 % proof stress
and then at 3.2 mm/min. until fracture. Ductility was assessed by measuring the elongation
of the test-piece between gauge marks and the reduction of cross-sectional area of
the fracture face.
[0023] Figure 3 shows the tensile strength of the Ni-Cr-Si base alloy which is the preferred
embodiment of this invention as a function of temperature in the fully annealed condition.
Whilst the tensile strength of this alloy above 1 000 °C is adequate for many general
purposes for which the alloys of this invention are intended, there are a number of
critical applications in the nuclear, aerospace, electronics and general engineering
fields for which the strength values shown in Figure 2 are inadequate. The Ni-Cr-Si
alloy which is the base alloy of this invention is significantly strengthened at high
temperatures by the addition of small amounts of one or more of the elements molybdenum,
tungsten, niobium and tantalum.
[0024] The superior properties of specific examples of alloys according to the invention
are shown in the following Tables 2 and 3.

[0025] All alloys tested show substantial high-temperature stength increases over that of
the base alloy. It is of great interest that the best of them has a simple addition
of 3.0 %-wt. niobium.
[0026] The strength increases for these alloys range from about 25 % to about 75 %. Despite
the very high strength of the 3-Nb alloy, its ductility has not been adversely affected
; indeed it is somewhat more ductile than the base alloy.
[0027] Table 4 summarizes the results of another experiment, in which the base alloy was
nicrosil. The alloys of the present invention were compared with inconel-600 and stainless
steel-310.

[0028] Inconel-600 is about 23 % weaker than nicrosil and nearly 60 % weaker than NPX-3.
Stainless steel-310 is about 25 % stronger than nicrosil, but is about 35 % weaker
than NPX-3.
[0029] Nicrosil is more oxidation resistant than either stainless steel-310 or inconel-600.
There is some evidence to suggest that niobium improves the oxidation resistance of
Ni-Cr-Si alloys, particularly in atmospheres of low oxygen partial pressure.
[0030] The strengthening elements, namely Mo, W, Nb and Ta, when added to the preferred
base alloy of Ni-Cr-Si, in any combination, have effects one with another as stated
above. These elements are therefore interchangeable to a certain degree. Alloys of
the invention may therefore be compositionally variant in respect of their Mo, W,
Nb and Ta contents to a greater degree than is indicated by the preferred embodiments
described in Table 1. A second group of preferred embodiments of the alloys of this
invention are therefore described as follows :

[0031] An important feature of the alloys of this invention is that the kinetic processes
governing the variation of the size and shape of their crystal grains must occur with
sufficiently high velocity to make possible a predetermined choice of grain size by
a simple heat treatment in which the parameters of temperature and (relatively short)
time are mutually variable. This is because in different applications of the alloys
different average grain sizes are desirable even obligatory.
[0032] Figure 4 shows that the grain sizes of the Ni-Cr-Si base alloy of the preferred embodiments
of this invention are inherently readily variable as a function of temperature.
[0033] The strengthening elements Mo, W, Nb, and Ta, of this invention do not have unduly
large inhibitory effects either in the elevation of recrystallization temperatures
or in the rates of grain growth in individual alloy embodiments.
1. A nickel-based alloy consisting of, by weight, 13.5 % to 14.5 % chromium, 1.0 %
to 1.5 % silicon, and the balance nickel, apart from impurities, characterized in
that it also contains at least one element selected from molybdenum, tungsten, niobium,
and tantalum, in concentration by weight molybdenum: up to 5.0 % maximum, tungsten
: up to 1.0 % maximum, niobium : up to 3.0 % maximum, and tantalum : up to 2.0 % maximum,
and optionally up to 0.5 % magnesium and/or up to 0.2 % cerium.
2. An alloy according to claim 1 having the following composition by weight :

and the balance nickel, apart from impurities.
3. An alloy according to claim 2 containing 1.0 % Mo, 0.5 % W, 1.0 % Nb and 1.0 %
Ta.
4. An alloy according to claim 1 containing 3.0 % Mo and 1.0 % W.
5. An alloy according to claim 1, containing up to 0.2 % magnesium and/or up to 0.2
% cerium.
6. An alloy according to claim 1 containing from 0.10 to 0.20 % magnesium.
7. An alloy according to claim 1 containing from 0.02 % to 0.06 % cerium.
8. An alloy according to claim 1 containing about 0.15 % magnesium.
9. An alloy according to claim 1 containing about 0.04 % cerium.
10. An alloy according to any one of claims 1 and 2 to 4, containing 0.15 % magnesium
and 0.04 % cerium.
1. Legierung auf Nickelbasis, welche aus 13,5 bis 14 Gew.-% Chrom, 1,0 bis 1,5 Gew.-%
Silizium und als Rest, abgesehen von Verunreinigungen, Nickel enthält, dadurch gekennzeichnet,
daß sie ferner mindestens ein Element enthält, das aus Molybdän, Wolfram, Niob und
Tantal ausgewählt ist, und zwar in einer Gewichtskonzentration von Molybdän : bis
zu 5,0 % maximal, Wolfram : bis zu 1,0 % maximal, Niob : bis zu 3,0 % maximal, und
Tantal : bis zu 2,0 % maximal, sowie wahlweise bis zu 0,5 % Magnesium und/oder bis
zu 0,2 % Cer.
2. Legierung nach Anspruch 1, mit der folgenden Gewichtszusammensetzung :

und als Rest, abgesehen von Verunreinigungen, Nickel.
3. Legierung nach Anspruch 2 welche 1,0 % Mo, 0,5 % W, 1,0 % Nb und 1,0 % Ta enthält.
4. Legierung nach Anspruch 1, welche 3,0 % Mo und 1,0 % W enthält.
5. Legierung nach Anspruch 1, welche bis zu 0,2 % Magnesium und/oder bis zu 0,2 %
Cer enthält.
6. Legierung nach Anspruch 1, welche von 0,10 bis 0,20 % Magnesium enthält.
7. Legierung nach Anspruch 1, welche von 0,02 % bis 0,06 % Cer enthält.
8. Legierung nach Anspruch 1, welche bis zu 0,15 % Magnesium enthält.
9. Legierung nach Anspruch 1, welche bis zu 0,04 % Cer enthält.
10. Legierung nach einem der Ansprüche 1 und 2 bis 4, welche 0,15 % Magnesium und
0,04 % Cer enthält.
1. Alliage à base de nickel constitué, en poids, de 13,5 % à 14,5 % de chrome, de
1,0 % à 1,5 % de silicium, le reste étant du nickel, à part des impuretés, caractérisé
en ce qu'il contient en outre au moins un élément choisi parmi le molybdène, le tungstène,
le niobium, et le tantale, en une concentration en poids de molybdène : jusqu'à 5
% maximum, de tungstène : jusqu'à 1,0 % maximum, de niobium : jusqu'à 3,0 % maximum,
et de tantale : jusqu'à 2,0 % maximum, et éventuellement jusqu'à 0,5 % de magnésium
et/ou jusqu'à 0,2 % de cérium.
2. Alliage selon la revendication 1 ayant la composition suivante en poids :

le reste étant du nickel, à part des impuretés.
3. Alliage selon la revendication 2, contenant 1,0 % de Mo, 0,5 % de W, 1,0 % de Nb
et 1,0 % de Ta.
4. Alliage selon la revendication 1, contenant 3,0 % de Mo et 1,0 % de W.
5. Alliage selon la revendication 1, contenant jusqu'à 0,2 % de magnésium et/ou jusqu'à
0,2 % de cérium.
6. Alliage selon la revendication 1, contenant de 0,10 à 0,20 % de magnésium.
7. Alliage selon la revendication 1, contenant de 0,02 % à 0,06 % de cérium.
8. Alliage selon la revendication 1, contenant environ 0,15 % de magnésium.
9. Alliage selon la revendication 1, contenant environ 0,04 % de cérium.
10. Alliage selon l'une quelconque des revendications 1 et 2 à 4, contenant 0,15 %
de magnésium et 0,04 % de cérium.