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(11) |
EP 0 201 910 B1 |
| (12) |
EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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01.03.1989 Bulletin 1989/09 |
| (22) |
Date of filing: 13.05.1986 |
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Diffusion alloy steel foil
Folie aus diffusionslegiertem Stahl
Feuille en acier allié par diffusion
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Designated Contracting States: |
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DE FR GB |
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Priority: |
14.05.1985 US 733727
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| (43) |
Date of publication of application: |
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20.11.1986 Bulletin 1986/47 |
| (73) |
Proprietor: INLAND STEEL COMPANY |
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Chicago, IL 60603 (US) |
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| (72) |
Inventor: |
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- Nickola, Richard Allen
Munster
Indiana 46321 (US)
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| (74) |
Representative: Leach, John Nigel et al |
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FORRESTER & BOEHMERT
Franz-Joseph-Strasse 38 80801 München 80801 München (DE) |
| (56) |
References cited: :
WO-A-85/00386 DE-C- 2 745 188 GB-A- 992 321 US-A- 4 279 782
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DE-C- 2 313 040 FR-A- 1 391 659 US-A- 4 046 304
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- BINARY PHASE DIAGRAMS, SECOND ED., VOL. 1, ASM INTERNATIONAL, p. 148
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
[0001] The present invention relates generally to light gauge strips or foils and, more
particularly, to very light gauge strips or foils formed of solid solution iron-aluminum
diffusion alloys and iron-aluminum-silicon diffusion alloys which are formable at
room temperature, have good high temperature oxidation resistance and corrosion resistance,
have useful electrical and magnetic properties, and preferably are adapted for growing
a surface coating of spine-like whiskers of aluminum oxide suitable for retaining
a surface coating of a catalytic metal used in a monolithic catalytic converter for
treating gases which pollute the atmosphere.
[0002] Heretofore, an iron-aluminum diffusion alloy foil has not been available. The Smith
et al U.S. Patent No. 3 214 820 discloses steel foils having a surface coated with
tin, zinc, aluminum or stainless steel and describes producing the steel foil with
the metallic tin, zinc, aluminum or stainless steel protective metal coating by cold
rolling a plain carbon steel strip having the protective metal coating applied by
a plating process. Smith et al teaches against hot dip coating a steel strip for cold
rolling to foil gauge in order to avoid forming a hard brittle subsurface intermetallic
layer which Smith et al states prevents forming a satisfactory foil product. The Smith
et al patent expressly avoids annealing a steel strip coated with tin, zinc, or aluminum,
because of the low melting temperatures of these coatings. Patent No. Wo 8 500 386
Describes a method of diffusion treating a hot dip alluminium coated titanium containing
low alloy steel, to obtain a solid solution iron aluminum diffusion alloy coating,
containing low carbon steel strip, however it does not recommend an intermediate cold
rolling stage of these strips.
[0003] Objects of the invention include at least one of the following:
To provide a method of producing economically a solid solution iron-aluminum diffusion
alloy foil which is formable at room temperature and resistant to oxidation at elevated
temperatures.
To provide an economical room temperature formable solid solution iron-aluminum diffusion
alloy foil which is useful as a tool wrap.
To provide a solid solution iron-aluminum diffusion alloy foil which exhibits improved
electrical properties.
To provide in an economical manner a cold reduced stabilized solid solution iron-aluminum
diffusion alloy foil which is formable at room temperature and which has an adherent
surface coating of spine-like whiskers of aluminum oxide.
To provide a solid solution iron-aluminum diffusion alloy foil by cold rolling and
diffusion heating an aluminum coated strip which is characterized by good resistance
to oxidation and corrosion at room temperature and at elevated temperatures, as when
exposed to exhaust gases from automotive and industrial apparatus.
[0004] Other objects of the present invention will be apparent to those skilled in the art
from the detailed description and claims to follow when read in conjunction with the
accompanying drawings.
[0005] According to one aspect of the present invention we provide a solid solution iron-aluminum
diffusion alloy light gauge strip or foil formed in situ by diffusion heating a cold
rolled titanium stabilized low carbon steel strip containing an excess of uncombined
titanium and having on each side an aluminum coating between about 12.7 µm (0.0005
inch) and about 76IJ.m (0.003 inch) thick, the coated steel strip after cold reduction
of between about 40% and about 99% having a foil thickness of between about 0.013
mm (0.005 inch) and 0.152 mm (0.006 inch) with an aluminum coating thickness between
about 1.07 pm (0.000042 inch) and 27.9 µm (0.0011 inch), said solid solution iron-aluminum
diffusion alloy light gauge strip or foil containig between about 2 wt.% and about
12 wt. % aluminum diffused throughout its cross section, and said light gauge strip
or foil being formable at room temperature and being resistant to oxidation and to
corrosion at elevated temperatures.
[0006] According to another aspect of the invention we provide a solid solution iron-aluminum
diffusion alloy cold rolled titanium stabilized low carbon steel light gauge strip
or foil containing between about 2 wt.% and 12 wt.% aluminum and a maximum of about
0.1 wt. % carbon and a maximum of 1.0 wt. % titanium with said titanium combined with
the carbon and nitrogen in said diffusion alloy foil and providing an excess uncombined
titanium, said diffusion alloy light gauge strip or foil having a higher concentration
of titanium at the surface than in the interi- orthereof, and said diffusion alloy
light gauge strip or foil being formable at room temperature and being resistant to
oxidation and to corrosion at elevated temperatures.
[0007] According to another aspect of the invention we provide a method of forming a room
temperature formable solid solution iron-aluminum diffusion alloy light gauge strip
or foil comprising:
(1) forming a strip of titanium stabilized low-carbon steel containig an excess of
uncombined titanium and having a thickness of between about 0.25 mm and about 0.76
mm (0.010 and 0.030 inch),
(2) applying to each surface of said steel strip an aluminum coating having a thickness
of between about 12.7 µm (0.0005 inch) and about 76 µm (0.003 inch) which provides
between about 2wt.% and about 12 wt. % aluminum based on the weight of said light
gauge strip or foil,
(3) reducing the thickness of the aluminum coated strip between about 40% and about
99% by cold rolling to form an aluminum coated thin gauge steel strip foil having
a thickness of between about 0.013 mm (0.0005 inch) and 0.152 mm (0.006 inch) with
an aluminum coating thickness between about 1.07 µm (0.000042 inch) and 27.9 µm (0.0011
inch) and,
(4) heating said cold rolled aluminum coated thin gauge steel strip or foil to form
a solid solution iron-aluminum diffusion alloy light gauge strip or foil having between
about 2 wt. % and about 12 wt. % aluminum diffused throughout the cross section thereof.
[0008] One way of carrying out the invention is described below with reference to the accompanying
drawings which illustrate only one specific embodiment, in which:
Fig. 1 is a photomicrograph at 500 x magnification of a cross section of 0.076 mm
(0.003 inch) thick electrolytically etched solid solution iron-aluminum-silicon diffusion
alloy foil contaning 6.2 wt. % aluminum, 0.86 wt. % silicon and 0.41 wt. % titanium
formed by cold rolling a hot-dip Type I aluminum coated low-titanium alloy stabilized
low-carbon steel strip about 0.47 mm (0.0185 inch) thick and reduced 84 percent on
a Sendzimir cold rolling mill and thereafter vacuum diffusion heated for 4 hours at
982°C (1800°F);
Fig. 2 is a photomicrograph at 500 x magnification of the diffusion alloy foil material
of Fig. 1 which has been diffusion heated at 1094°C (2000°F) for four hours and showing
the foil having large oriented crystal with the foil being one grain thick;
Fig. 3 is a graph showing the substantially uniform distribution of aluminum along
the cross-section of the solid solution diffusion alloy foil of Fig. 2, as determined
by microprobe analysis; and
Fig. 4 is a graph showing the diffusion heating time required to substantially uniformly
diffuse the aluminum throughout the interior of a 0.0033 inch (83.8 µm) thick aluminum
coated low titanium alloy carbon steel foil at temperature between 816°C (1500°F)
and 1149°C (2100°F).
[0009] A foil formed substantially of an iron-aluminum or iron-aluminum-silicon diffusion
alloy is produced in accordance with a preferred embodiment of the invention by forming
on each side of a cold rolled titanium stabilized low-carbon steel strip, preferably
having a thickness between about 0.25 mm (0.010 inch) and about 0.76 mm (0.030 inch),
a hot-dip aluminum coating using conventional continuous in-line hot-dip aluminum
coating apparatus with the aluminum or aluminum-silicon hot-dip coating on each side
of the strip having a thickness of between about 12.7 µm (0.0005 inch) and about 76
µm (0.003 inch) which is sufficient to provide after diffusion heating a diffusion
alloy foil containing between about 2 wt. % aluminum and about 12 wt.% aluminum, cold
reducing the hot-dip aluminum coated titanium alloy steel strip to effect at least
about a 40 percent and up to about a 99 percent reduction in the tickness of the aluminum
coated steel strip to provide an aluminum coated light gauge steel strip or steel
foil preferably having a maximum thickness of about 0.152 mm (0.006 inch) and as thin
as about 0.013 mm (0.0005 inch) with the cold rolled aluminum coating having a thickness
ranging between about 1.07 µm (0.000042 inch) and 27.9 µm (0.0011 inch) and diffusion
heating the cold reduced aluminum coated steel foil to diffuse the aluminum into the
steel and form a formable solid solution iron-aluminum diffusion alloy foil containing
from about 2 wt. % aluminum and up to about 12 wt.% aluminum. The diffusion of the
aluminum throughout the cross section of an aluminum coated titanium alloy steel foil
is time-temperature dependent for a given aluminum coating and foil thickness and
can be effected at a temperature preferably between about 816°C (15000F) and 1149°C
(2100°F) for between about 2 minutes and about 24 hours when using box annealing apparatus.
Although, it is not essential to diffuse the aluminum uniformly through the steel
base, the graph in Fig. 4 shows the time required to diffuse the aluminum uniformly
throughout the cross section of a hot-dip coated low titanium alloy steel foil 0.084
mm (0.0033 inch) thick having an aluminum coating 8.9 µm (0.0035 inch) thick on each
surface when diffusion heating at temperatures between 816°C (1500
0F) and 1149°C (2100
0F).
[0010] In order to provide a low cost foil formed of a solid solution iron-aluminum diffusion
alloy which is formable at room temperatures with good high temperature oxidation
resistance and good electrical properties and which is also capable of growing a surface
coating of aluminum oxide whiskers suitable for supporting a catalytic coating, it
has been found advisable to form the steel strip from a stabilized low carbon steel
such as a low-titanium stabilized low-carbon steel. The low-titanium stabilized alloy
steel is preferably a steel which has been killed to remove free oxygen, such as an
aluminum killed steel. The carbon content of the low-titanium alloy steel is less
than 0.10 wt. %, generally between about 0.02 wt. % and 0.10 wt. %, although a vacuum
degassed steel having substantially less than 0.02 wt.% carbon can also be used. The
low-titanium stabilized low carbon steel should have sufficient titanium to combine
with all the carbon, oxygen, and nitrogen in the steel and, in addition, sufficient
titanium to provide a small excess of uncombined titanium, preferably at least about
0.02 wt. %. The total titanium content of the steel is preferably at least about 0.40
wt. % but will always be less than about 1.0 wt. % and will generally not exceed about
0.60 wt. %. The titanium in the stabilized steel improves the rate of diffusion between
the iron and aluminum in the steel and also improves the surface properties and increases
the strength of the steel, thereby improving the could rolling properties and room
temperature ductility properties of the steel strip. If desired, smaller amounts of
other carbon and nitrogen binders can be used in addition to the titanium in the steel.
[0011] A typical low-titanium stablized low-carbon steel suitable for forming an aluminum
coated steel foil in accordance with the present invention has the following composition
on a weight basis: 0.04% carbon, 0.50% titanium, 0.20-0.50% manganese, 0.012% sulfur,
0.010% phosphorus, 0.05% silicon, 0.020-0.090% aluminum, and the balance essentially
iron with incidental impurities.
[0012] In producing a commercially acceptable low cost solid solution iron-aluminum diffusion
alloy foil by cold rolling a hot-dip aluminum coated low-titanium alloy stabilized
steel strip which is heated to form the diffusion alloy foil, the thickness of the
steel strip relative to the aluminum coating thereon must be carefully controlled
in order to provide the required amount of aluminum in the diffusion alloy. Also,
in order to hot-dip aluminum coat a steel strip on production-type in-line continuous
aluminum coating apparatus, it is essential that the steel strip be sufficiently thick
to withstand the stresses of being conveyed through the continuous hot-dip coating
apparatus, such as a Sendzimir-type hot-dip continuous coating line, but not so thick
as to make it impossible to reduce economically the coated strip to a steel foil gauge
not substantially above about 0.152 mm (0.006 inch) by effecting about a 40 to 99
percent reduction in the thickness of the hot-dip coated aluminum steel strip.
[0013] A further important limitation on the maximum thickness of the steel strip to be
hot-dip coated on a continuous coating line, such as Sendzimir-type hot-dip coating
line, is the requirement that the temperature of the strip, after cleaning and surface
preparation, must be adjusted to a temperature about the temperature of the aluminum
hot-dip coating bath before the strip is immersed in the aluminum coating bath and
while the strip is traveling at a sufficiently high line speed to form (i.e. pick
up) a hot-dip aluminum coating having a coating thickness which will provide after
diffusion heating an aluminum content sufficient to impart the desired oxidation resistance
to the coated steel foil.
[0014] A steel strip having a thickness of between about 0.25 mm (0.010 inch) and 0.76 mm
(0.030 inch) has been found to meet the foregoing requirements and be suitable for
hot-dip aluminum coating on a continuous in-line hot-dip aluminum coating apparatus,
such as a Sendzimir-type commercial continuous hot-dop coating line, adapted to move
the steel strip at a line speed of about 280 feet per minute (1.42 ms-
1), the strip thereafter being cold reduced to effect between about 40 to 99 percent
reduction in thickness so as to provide an aluminum coated steel foil having a thickness
of between about 0.013 mm (0.0005 inch) and about 0.152 mm (0.006 inch). The aluminum
hot-dip coated steel strip can be cold reduced to foil gauge in one or more passes
through a cold rolling mill, such as a Sendzimir cold rolling mill.
[0015] Where the surface of the foil is not perfectly flat but has surface irregularities
formed in the diffusion alloy foil after diffusion heating, the foil material can
be further processed by tension leveling or skin passing to remove distortions in
the foil and/or effect surface bringhtening and polishing.
[0016] It has also been found that in order for the solid solution iron-aluminum diffusion
alloy foil to provide good high temperature oxidation resistance over an extended
period and exhibition good room temperature formability, as required for fabricating
into an automotive exhaust system or for use as a tool wrap, the aluminum hot-dip
coating on the steel strip must be sufficiently thick relative to the thickness of
the steel strip to provide in the finished foil a minimum of about 6 wt. percent aluminum
based on the weight of the coated foil and not substantially above about 12 wt. %
aluminum where room temperature formability is required. In the very thinnest foil,
however, a somewhat higher aluminum content may be used without impairing room temperature
formability. Since the steel strip and the hot-dip aluminum coating are reduced in
substantially the same proportion when cold rolled to effect about a 90% reduction
in the thickness of the coated strip, a steel strip having a thickness before hot-dip
coating of between about 0.25 mm (0.010 inch) and about 0.76 mm (0.030 inch) should
be provided on each side with an aluminum hot-dip coating having a thickness of between
about 12.7 µm (0.0005 inch) and about 76 µm (0.003 inch) but sufficient to provide
the strip with between about 6 wt.% and about 12 wt.% aluminum. For example, after
about a 90% cold reduction in thickness of a hot-dip aluminum coated steel strip having
an initial thickness of about 0.51 mm (0.020 inch), the cold rolled aluminum coating
on each side of the foil is about 5.1 µm (0.0002 inch) thick and provides an aluminum
concentration of about 6 wt. % based on the weight of the aluminum coated steel foil.
[0017] The hot-dip aluminum coating applied to the steel strip is preferably a Type I aluminum
coating which contains aluminum with about 5-12 wt. % silicon and wherein the silicon
prevents the formation of an objectionably thick subsurface iron-aluminum intermetallic
layer. When the steel strip is hot-dip coated in a Type I aluminum coating bath containing
10-12 wt. percent silicon, the diffusion alloy foil contains about 0.7 wt. percent
silicon. It is also possible, though not preferred, to apply a Type II aluminum (i.e.
substantially pure aluminum) hot-dip coating on the stabilized low carbon steel strip.
[0018] In orderto transform a steel foil having metallic aluminum surface coatings into
a diffusion alloy foil having an iron-aluminum diffusion alloy composition substantially
throughout, the aluminum-coated steel foil is heated as an open or closed coil in
an annealing furnace or on a continuous annealing line in a non-oxidizing atmosphere,
such as in a vacuum or in an argon atmosphere, at 982°C (1800°F) for between about
1 and 24 hours. The time required to form the iron-aluminum diffusion alloy will depend
on the thickness of the steel strip and aluminum coating as well as the temperature
of heating.
[0019] When producing an iron-aluminum or iron-aluminum-silicon diffusion alloy foil for
use as an electrical steel, it is important that the aluminum or aluminum-silicon
coating be substantially uniformly diffused throughout the cross-section of the foil.
For other foil applications, however, it is not essential to have the aluminum or
aluminum-silicon coating diffused uniformly throughout the cross-section of the foil.
[0020] As an example of forming a solid solution iron-aluminum diffusion alloy foil according
to the present invention, a low-titanium alloy stabilized low-carbon aluminum killed
steel was formed into a steel strip having a thickness of about 0.43 mm (0.017 inch).
The titanium stabilized low-carbon aluminum killed steel had the following approximate
composition:
[0021]

[0022] The titanium stabilized steel strip after conventional cleaning was immersed in a
hot-dip Type I aluminum coating bath having a temperature of 694°C (1280
0F) on a Sendzimir-type continuous coating line having a line speed of 280 feet per
minute (1.42 ms-
1) to provide both sides thereof with a hot-dip aluminum coating having a thickness
of about 38 µm (0.0015 inch). The hot-dip aluminum coated steel strip was cold rolled
on a Sendzimir-type cold rolling mill to a foil thickness of about 0.051 mm (0.002
inch) in four passes, effecting a reduction of 43.6% in the first, 45.5% in the second,
45.0% in the third, and 39.4% in the fourth, for a total of about 90% reduction in
thickness without intermediate annealing. Metallographic examination of the cold reduced
steel foil indicated a uniform aluminum surface coating on both sides, approximately
4.6-5.1
4m (0.00018-0.0002 inch) with the intermetallic subsurface iron-aluminum compound layer
completely fractured and randomly redistributed throughout the aluminum coating and
with the cold working of the coated steel strip imparting a very high energy level
to the coated steel so that during the subsequent diffusion heating treatment there
are no Kirkendall voids formed in the diffusion alloy product. The aluminum in the
coating is preferably fully and substantially uniformly diffused throughout the cross
section of the foil by heating the foil for two hours at a temperature of 982°C (1800°F)
to form an iron-aluminum-silicon diffusion alloy foil.
[0023] Bulk chemical analyses of the hot-dip aluminum coated foil after diffusion showed
6.4 wt. % aluminum, 0.8 wt. % silicon, and 0.40 wt. % titanium.
[0024] The solid solution iron-aluminum diffusion alloy foil made in the foregoing manner
was free of brittle iron-aluminum intermetallic compound and was formable at room
temperature without annealing. When heated in air at 1149°C (2100°F) for 96 hours
the foil material exhibited a weight gain of no more than 1 mg/cm
2, had good high temperature corrosion and oxidation resis- tence at 1000°C (1832°F),
and when given a 180° 1-T bend at room temperature the surface was not ruptured. The
iron-aluminum diffusion alloy foil had a tensile strength of 72 ksi, (495 MPa), a
yield strength of 65 ksi (447 MPa), and an elongation of 10.4%.
[0025] The cold reduced aluminum-coated steel foil of Fig. 1 having about 6 wt. % of the
foil as aluminum in the surface coatings was diffusion heated as a closely wound steel
coil in a vacuum at 1093°C (2000°F) for four hours to provide a foil having the aluminum
substantially fully diffused throughout the cross section of the foil. The distribution
of the aluminum and silicon in the iron-aluminum diffusion alloy steel foil is shown
in Fig. 3.
[0026] The extreme outer 2.5 µm (0.0001 inch) to 5.0 µm (0.0002 inch) of the surface of
the diffusion alloy foil of the present invention has been found to contain a higher
than average concentration of titanium and aluminum, and it is evident that uncombined
titanium in the titanium stabilized steel has diffused outwardly from the interior
to the surface of the foil. The concentration of titanium in the surface becomes progressively
larger and the concentration of titanium in the center of the foil becomes progressively
smaller as the diffusion heating is prolonged until no titanium remains at the center
of the foil. For example, after a foil 0.05 mm (0.002 inch) thick is diffusion heated
in nitrogen at 925°C (1700°F) for 24 hours, there is no detectable titanium remaining
at the center of the foil when the foil is subjected to electron microprobe analysis.
[0027] The relatively low cost iron-aluminum and iron-aluminum-silicon diffusion alloy foils
of the present invention are useful in place of the more costly stainless steel foils
and high alloy foils for many industrial applications. Thus, the cold rolled iron-aluminum
diffusion alloy steel foils produced as described herein are useful as a substitute
for «321 stainless steel» foil and for enclosing or «wrapping» tools which are heat
treated at an elevated temperature, thereby avoiding the need to heat the tools in
a protective non-oxidizing atmosphere. The diffusion alloy tool wrapping foils preferably
contain between about 6 wt. % and 12 wt. % aluminum and have a thickness between about
0.050 mm (0.002 inch) and 0.075 mm (0.003 inch) so as to have the required high temperature
strength and oxidation resistance as well as formability at room temperature to form
a protective wrap for enclosing tools and withstanding heat treating temperatures
up to about 1149°C (2100°F). The aluminum content of the foil also acts as a «getter»
to remove oxygen from within the enclosure and prevents objectionable oxidation and
decarburization of the surface of the tools during the heat treating cycle.
[0028] The solid solution iron-aluminum and iron-aluminum-silicon diffusion alloy foils
of the present invention when prepared by vacuum diffusion heating with between 2
and 12 wt. percent aluminum and which can also contain between about 0.2 and about
0.9 wt. % silicon are useful as electrical steels of the electrically soft variety
for use as magnetic shielding material and for making core assemblies of electrical
rotary equipment (i.e. motors) and transformers in place of silicon steels, iron-nickel
alloys and other ferrous alloys. Aluminum has a beneficial effect, similar to that
of silicon, on the electrical resistivity and certain magnetic properties of iron,
but aluminum is seldom substituted for silicon because of the recognized difficulty
of fabricating thin iron-aluminum alloy sheet material. At present aluminum is used
most commonly at a concentration of less than 0.05 wt. % in non-oriented silicon steels.
While it is recognized that ternary alloys of iron, silicon and aluminum have high
resistivity and good permeability at low flux densities, that the magnetic properties
of these ternary alloys can approach those of more costly iron-nickel alloys, and
that increasing the concentration of silicon and aluminum reduces saturation induction,
nevertheless, silicon and aluminum have not been used in electrical steels in excess
of about 4 wt. % because such steels are brittle and are very difficult to roll into
thin gauge sheet material. With the present invention, however, it is possible to
provide a workable electrical iron-aluminum or iron-aluminum-silicon thin gauge diffusion
alloy strip or foil having in excess of 4 wt. % aluminum with large grain size and
desirable crystal orientation which closely approximates the ideal electrical steel
material. For example, one type of electrical steel foil should preferably be one
grain thick with the grain (crystal) faces parallel to the direction of rolling (see
Fig. 2.). An iron-aluminum-silicon diffusion alloy containing about 6 wt.% aluminum
and 0.9 wt.% silicon has an electrical resistance of about 91-96 micro-ohm centimeters.
If desired, the diffusion alloy foil where intended for certain types of electrical
use can be further treated after diffusion heating by cold rolling to reduce the thickness
of the foil and impart critical strain to the foil product and then given a critical
time-temperature heat treatment to modify the crystal form. For example, an iron-aluminum-silicon
diffusion alloy foil of the present invention has been cold rolled to impart a 3%
critical strain and heated at 816°C (1 5000 F) for 4 hours to effect a very large
increase in the grain size.
[0029] Where the iron-aluminum diffusion alloy foil is used as a support for a metal catalyst
in a catalytic converter, the foil, preferably having a thickness about 0.051 mm (0.002
inches) and containing about 6 wt. percent aluminum, can be preconditioned for whisker
growth by the method disclosed in U.S. Patent No. 4 279 782. Thereafter the foil is
heated in air preferably for 8 hours at 925°C (1700°F), to grow a spine-like whisker
surface coating. A coating of gamma aluminum oxide powder dispersed in an aqueous
alumina gel-noble metal catalyst mixture is applied to the spine-like whisker coated
surface of the foil as described in U.S. Patent No. 4 279 782.
[0030] In order to impart optimum corrosion resistance to a solid solution iron-aluminum
diffusion alloy foil the cold rolled aluminum coated low-titanium stabilized low carbon
steel foil is placed in a dry nitrogen-containing atmosphere which has minimal or
no oxidizing action on the titanium and aluminum in the foil and is heated for a time
and at a temperature sufficient to form on the surface of the diffusion alloy foil
a thin titanium nitride-containing film which imparts high corrosion resistance to
the foil. As previously discussed, when an aluminum coated titanium stabilized low
carbon steel foil having a slight excess of uncombined titanium is heated in a non-oxidizing
atmosphere, the aluminum surface coating diffuses readily into the steel foil beginning
at a temperature of about 399°C (750°F) and effects formation of an iron-aluminum
diffusion alloy foil. When the titanium stabilized aluminum coated steel foil is diffusion
heated in a dry nitrogen-containing atmosphere, which has a minimal oxidizing effect
on the titanium and aluminum, at a temperature between about 500°C (930°F) and 1093°C
(2000°F) and preferably at a temperature of about 925°C (1700°F), the nitrogen reacts
with the titanium to form a titanium nitride-containing film on the surface of the
diffusion alloy foil.
[0031] The titanium nitride-containing layer on the surface of the foil significantly improves
the corrosion resistance of the iron-aluminum diffusion alloy foil, since the titanium
nitride-containing surface film is resitant to attack by acids, and resists corrosion
when the foil is immersed in an aqueous acidic solution for prolonged periods. Titanium
nitride is only slightly soluble in hot aqua regia containing added hydrofluoric acid.
Aluminum nitride on the other hand, is readily attacked by acids, such as a hot 10%
aqueous hydrochloric acid solution, whereas the foil having the titanium nitride-containing
surface is resistant to attack by the 10% hydrochloric acid solution. The titanium
nitride can be present as TiN which has a sigma crystal form or as Ti
2N which has a gamma crystal form. It is also possible for the titanium and nitrogen
to form more complex reaction products with the aluminum, iron and silicon in the
steel.
[0032] The dry nitrogen-containing atmosphere used to form the titanium nitride-containing
film can be pure nitrogen gas, gaseous ammonia, dissociated ammonia, a nitrogen-hydrogen
gaseous mixture, or a nitrogen-argon gaseous mixture. The diffusion heat treatment
with the dry nitrogen-containing atmosphere can range from about 500°C (930
0F) to about 1093°C (2000
0F) for a period of from about 0.25 to about 48 hours with the formation of the titanium
nitride-containing film being time-temperature dependent. When a 2 mil thick aluminum
coated low-titanium alloy steel foil is heated at 925°C (1700°F) in a dry 95% nitrogen-5%
hydrogen atmosphere, a very thin titanium nitride-containing film begins to form on
the surface of the steel heating for 8 minutes and increases in thickness as heating
continues. After the alloy steel foil is heated for 1 5 minutes at 925°C (1700
0F), the titanium nitride-containing film on the surface of the foil is sufficiently
thick that it is not etched when washed for 2 minutes with 10% hydrochloric acid aqueous
solution at a temperature of 66°C-82°C (150°F-180°F). Electron microprobe x-ray analysis
data and x-ray maps at 4000 x magnification of a solid solution iron-aluminum diffusion
alloy foil made by diffusion heating an aluminum coated low titanium stablilized steel
in a pure nitrogen atmosphere for 24 hours at 925°C (1700°F) and having as a bulk
analysis 6.8% aluminum, 0.34% titanium, 0.05% carbon, 0.35% nitrogen, 0.85% silicon
and the balance iron with incidental impurities, indicate the presence of a titanium
nitride-containing film or layer having a mean thickness of about 0.23 mils on the
surface of the foil. The surface film has a peak concentration of 12.6 wt. percent
titanium and very little titanium is present in the interior of the foil except at
isolated points which are thought to indicate the presence of titanium carbide.
[0033] The nitrogen treated foil having the titanium nitride-containing film on the surface
exhibits good room temperature formability when a section of the nitrogen treated
foil having a thickness of 3.3 mils is subjected to the Zero-T Bend Test and can be
cold rolled with conventional apparatus. The nitrogen treated diffusion alloy foil
has a tensile stength of about 82 ksi (564 MPa), a yield stength of about 81 ksi (557
MPa), and a elongation of about 1.0 percent. The emittance of the nitrogen treated
diffusion alloy foil is between 0.8-0.9 (black body= 1.0).
[0034] Aluminum oxide whiskers do not readily grow on the diffusion alloy foil having a
titanium nitride-containing surface. Consequently, when the iron-aluminum diffusion
alloy low titanium stabilized foil must have a thick surface growth of spine-like
whiskers of aluminum oxide, as when the foil is used to support a catalyst in an automotive
catalytic converter, and where optimum corrosion resistance and/or good abrasion resistance
is also desired, the thick coating of spine-like whiskers is grown on the surface
of an aluminum coated steel foil by the process described in U.S. Patent No. 4 279
782 before heating in a dry nitrogen-containing atmosphere. Thereafter the whisker
coated foil can be heated in a dry nitrogen-containing atmosphere for a time and at
a temperature sufficient to form a titanium nitride-containing thin layer or film
on the surface of the iron-aluminum diffusion alloy steel. For example, the whisker
coated foil can be heated for a period of between about 0.25 hours and 24 hours at
a temperature between about 1093°C (2000°F) and 500°C (930°F), respectively, in a
dry nitrogen-containing atmosphere, such as in an atmosphere of gaseous nitrogen or
ammonia, to form a titanium nitride-containing layer on the surface of the foil. The
titanium nitride-containig layer imparts high corrosion resistance and abrasion resistance
to the whisker coated diffusion alloy foil.
[0035] Whereas in applicant's preferred embodiment the iron-aluminum diffusion alloy foil
is produced by cold rolling a hot-dip aluminum coated titanium stabilized steel strip
to foil gauge followed by diffusion heating, it is also within the scope of the present
invention to apply the aluminum or aluminum-silicon coating to the titanium stabilized
steel strip by other known aluminum coating processes, such as a powder metal coating
process in accordance with U.S. Paten No. 4 542 048 or by electroplating.
[0036] The term «formable» as used herein desigantes the capability of the foil to be fabricated
by conventional metal forming machines at room temperature, and the term «good formability»
as used herein refers to the capability of the foil to undergo severe deformation
at room temperature without bend breaking, edge cracking and loss of surface metarial.
[0037] The term «solid solution iron-aluminum diffusion alloy» is used herein to designate
an iron-aluminum diffusion alloy or an iron-aluminum-silicon diffusion alloy, such
as formed by diffusion heating a Type I aluminum hot-dip coating containing about
5 to 12 wt. % silicon, although higher and lower amounts of silicon can be used for
producing special diffusion alloy foils.
1. A solid solution iron-aluminium diffusion alloy light gauge strip or foil formed
in situ by diffusion heating a cold rolled titanium stabilized low carbon steel strip
containing an excess of uncombined titanium and having on each side an aluminium coating
between about 12.7 11m (0.0005 inch) and about 76 11m (0.003 inch) thick, the coated
steel strip after cold reduction of between about 40% and about 99% having a foil
thickness of between about 0.013 mm (0.0005 inch) and 0.152 mm (0.006 inch) with an
aluminium coating thickness between about 1.07 µm (0.000042 inch) and 27.9 µm (0.0011
inch), said solid solution iron-aluminium diffusion alloy light gauge strip or foil
containig between about 2 wt. % and about 12 wt.% aluminium diffused throughout its
cross section, and said light gauge strip or foil being formable at room temperature
and being resistant to oxidation and to corrosion at elevated temperatures.
2. An iron-aluminium diffusion alloy foil as claimed in Claim 1, wherein said titanium
stabilized low-carbon steel has all the carbon and nitrogen in the steel chemically
combined with titanium and has an excess of at least about 0.02 wt.% uncombined titanium.
3. An iron-aluminium diffusion alloy foil as claimed in Claim 1 and Claim 2, wherein
said titanium stabilized low carbon steel has a carbon content of less than 0.10 wt.
% carbon and a titanium content of at least about 0.40% but less than 1.0 wt.%.
4. An iron-aluminium diffusion alloy foil as claimed in any one of the preceding claims,
wherein said stabilized low-carbon steel is a low-titanium alloy aluminium killed
steel.
5. An iron-aluminium diffusion alloy foil as claimed in any one of the preceding claims,
wherein the diffusion alloy contains between about 0.2 wt. % and 0.9 wt. % silicon.
6. An iron-aluminium diffusion alloy foil as in Claim 1, wherein said foil has a surface
coating of spine-like whiskers of aluminium oxide.
7. An iron-aluminium diffusion alloy foil as claimed in any one of the preceding claims,
wherein said foil has on the surface of said steel a titanium nitride-containing film.
8. An iron-aluminium diffusion alloy foil as claimed in any one of the preceding claims,
wherein a growth of spine-like whiskers of aluminium oxide on the surface of said
foil supports a coating of a catalyst useful for treating exhaust gases from automative
and/or industrial apparatus which produce atmosphere pollutants.
9. An iron-aluminium diffusion alloy foil as claimed in any one of the preceding claims,
wherein said foil has an aluminium content of between about 6 wt. % and about 12 wt.%.
10. An iron-aluminium diffusion alloy foil as claimed in any one of the preceding
claims, wherein said foil has the aluminium substantially uniformly diffused throughout
the cross section of said foil and has a large grain size with a thickness of one
grain and with the grain faces parallel to the direction of rolling of said foil.
11. A solid solution iron-aluminium diffusion alloy cold rolled titanium stabilized
low carbon steel light gauge strip or foil containing between about 2 wt. % and 12
wt. % aluminium and a maximum of about 0.1 wt. % carbon and a maximum of 1.0 wt. %
titanium with said titanium combined with the carbon and nitrogen in said diffusion
alloy foil and providing an excess of uncombined titanium, said diffusion alloy light
gauge strip or foil having a higher concentration of titanium at the surface than
in the interior thereof, and said diffusion alloy light gauge strip or foil being
formable at room temperature and being resistant to oxidation and to corrosion at
elevated temperatures.
12. An iron-aluminium diffusion alloy foil as claimed in Claim 11, wherein said diffusion
alloy foil has a titanium nitride-containing film on the surface thereof.
13. A method of forming a room temperature formable solid solution iron-aluminium
diffusion alloy light gauge strip or foil comprising:
(1) forming a strip of titanium stabilized low-carbon steel containig an excess of
uncombined titanium and having a thickness of between about 0.25 mm and about 0.76
mm (0.010 and 0.030 inch),
(2) applying to each surface of said steel strip an aluminium coating having a thickness
of between about 12.7 µm (0.0005 inch) and about 76 µm (0.003 inch) which provides
between about 2wt.% and about 12 wt. % aluminium based on the weight of said light
gauge strip or foil,
(3) reducing the thickness of the aluminium coated strip between about 40% and about
99% by cold rolling to form an aluminium coated thin gauge steel strip foil having
a thickness of between about 0.013 mm (0.0005 inch) and 0.152 mm (0.006 inch) with
an aluminium coating thickness between about 1.07 µm (0.000042 inch) and 27.9 µm (0.0011
inch) and,
(4) heating said cold rolled aluminium coated thin gauge steel strip or foil to form
a solid solution iron-aluminium diffusion alloy light gauge strip or foil having between
about 2 wt. % and about 12 wt. % aluminum diffused throughout the cross section thereof.
14. A method as claimed in Claim 13, wherein said heating of the aluminium coated
steel foil is effected in a nitrogen-free non-oxidizing atmosphere.
15. A method as claimed in Claim 13, wherein said heating of the aluminium coated
steel foil is effected in a dry nitrogen-containing atmosphere having minimal oxidizing
action on titanium and aluminium in said foil for a time and at a temperature which
forms a titanium nitride-containig film on the surface of the iron-aluminium diffusion
alloy steel.
16. A method as claimed in any of Claims 13 to 15, wherein the said aluminium coating
on said titanium stabilized low-carbon steel strip is provided by hot-dip aluminium
coating said strip.
17. A method as claimed in any of Claims 13 to 16, wherein said titanium stabilized
low-carbon steel has all the carbon and nitrogen in the steel chemically combined
with titanium and having in the steel an excess of at least about 0.02 wt. % uncombined
titanium.
18. A method as claimed in any one of Claims 13 to 17, wherein said titanium stabilized
low carbon steel has a carbon content of less than 0.10 wt. % carbon and a titanium
content at least about 0.40 wt. % but less than 1.0 wt. %.
19. A method as claimed in any of Claims 13 to 18, wherein said titanium stabilized
low-carbon steel has a carbon content of about 0.04 wt. % and a titanium content of
about 0.50 wt.%.
20. A method as claimed in any of Claims 13 to 19, wherein said diffusion alloy foil
has a silicon content between about 0.2 wt. % and 0.9 wt.%.
21. A method as claimed in any of Claims 13 to 20, wherein said diffusion alloy foil
is heated in an oxygen containing atmosphere for a time and at a temperature which
forms a growth of aluminium oxide spine-like whiskers on the surface of said foil.
22. A method as in Claim 21, wherein said foil having a growth of said whiskers on
the surface of said foil is heated in a dry nitrogen-containing atmosphere which has
minimal oxidizing action on titanium for a time and at a temperature which forms a
titanium nitride-containing film on the surface of said foil.
23. A method as claimed in any of Claims 13to 22, wherein said diffusion alloy steel
foil is cold rolled after diffusion heating to impart critical strain to said foil
and thereafter subjecting said foil to heating to increase crystal size in said foil.
1. Dünner Streifen oder Folie aus einer Festkörperlösung einer Eisen/Aluminium-Diffusionslegierung,
in situ gebildet durch Diffusionserwärmen eines kaltgewalzten, titanstabilisierten,
kohlenstoffarmen Stahlstreifens mit einem Überschuß an nichtgebundenem Titan und mit
einer beidseitigen Aluminiumbeschichtung mit einer Dicke zwischen etwa 12,7 µm (0,0005
Inch) und etwa 76 gm (0,003 Inch), wobei der beschichtete Stahlstreifen nach der Kältereduktion
zwischen etwa 40% und etwa 99% eine Folienstärke zwischen etwa 0,013 mm (0,005 Inch)
und 0,152 mm (0,006 Inch) mit einer Stärke der Aluminiumbeschichtung zwischen ungefähr
1,07 µm (0,000042 Inch) und 27,9 gm (0,0011 Inch) hat, der dünne Streifen oder die
Folie aus einer Festkörperlösung einer Eisen/Aluminium-Diffusionslegierung zwischen
etwa 2 Gew.-% und etwa 12 Gew.-% über den gesamten Querschnitt verteiltes Aluminium
aufweist, und der dünne Streifen oder die Folie bei Raumtemperatur formbar und gegen
Oxidation und Korrosion bei erhöhten Temperaturen widerstandsfähig ist.
2. Folie aus einer Eisen/Aluminium-Diffusionslegierung nach Anspruch 1, wobei der
Kohlenstoff und der Stickstoff in dem titanstabilisierten, kohlenstoffarmen Stahl
chemisch mit dem Titan gebunden ist und einen Überschuß von wenigstens ungefähr 0,02
Gew.-% ungebundenen Titan hat.
3. Folie aus einer Eisen/Aluminium-Diffusionslegierung nach Anspruch 1 und Anspruch
2, wobei der titanstabilisierte kohlenstoffarme Stahl einen Kohlenstoffgehalt von
weniger als 0,10 Gew,-% Kohlenstoff und einen Titangehalt von wenigstens 0,4 Gew.-%,
jedoch weniger als 1,0 Gew.-%, aufweist.
4. Folie aus einer Eisen/Aluminium-Diffusionslegierung nach einem der vorgangehenden
Ansprüche, wobei der stabilisierte kohlenstoffarme Stahl eine titanarme Legierung
eines aluminiumberuhigten Stahls ist.
5. Folie aus einer Eisen/Aluminium-Diffusionslegierung nach einem der vorangehenden
Ansprüche, wobei die Diffusionslegierung zwischen 0,2 Gew.-% und 0,9 Gew.-% Silizium
aufweist.
6. Folie aus einer Eisen/Aluminium-Diffusionslegierung nach Anspruch 1, wobei die
Folie einen stacheligen Bart aus Aluminiumoxid hat.
7. Folie aus einer Eisen/Aluminium-Diffusionslegierung nach einem der vorangehenden
Ansprüche, wobei die Folie auf der Oberfläche des Stahls einen Titan-Nitride aufweisenden
Film hat.
8. Folie aus einer Eisen/Aluminium-Diffusionslegierung nach einem der vorangehenden
Ansprüche, wobei eine Entwicklung eines stacheligen Bartes von Aluminiumoxid auf der
Oberfläche der Folie eine Beschichtung aus einem Katalysator trägt, der nützlich ist
zur Behandlung von Abgasen eines Autos und/oder einer industriellen Anlage, die umweltverschmutzende
Abgase erzeugt.
9. Folie aus einer Eisen/Aluminium-Diffusionslegierung nach einem der vorangehenden
Ansprüche, wobei die Folie einen Aluminiumgehalt von zwischen etwa 6 Gew.-% und etwa
12 Gew.-% aufweist.
10. Folie aus einer Eisen/Aluminium-Diffusionslegierung nach einem der vorangehenden
Ansprüche, wobei das Aluminium der Folie im wesentlichen gleichmäßig über den Querschnitt
der Folie verteilt ist und eine Korngröße hat mit einer Dicke eines Kornes und mit
den Kornflächen parallel zu der Richtung des Walzens der Folie.
11. Dünner Streifen oder Folie eines kaltgewalzten, titanstabilisierten, kohlenstoffarmen
Stahls, mit zwischen etwa 2 Gew.-% und 12 Gew.-% Aluminium und höchstens etwa 0,1
Gew.-% Kohlenstoff und höchstens 1,0 Gew.-% Titan, wobei das Titan mit dem Kohlenstoff
und dem Stickstoff in der Diffusionslegierungsfolie gebunden ist und ein Überschuß
an nichtgebundenem Titan vorliegt, der dünne Streifen oder die Folie aus der Diffusionslegierung
eine höhere Konzentration von Titan an der Oberfläche als im Inneren hat und wobei
der dünne Streifen oder die Folie aus der Diffusionslegierung bei Raumtemperatur formbar
ist und gegen Oxidation und Korrosion bei erhöhten Temperaturen widerstandsfähig ist.
12. Folie aus einer Eisen/Aluminium-Diffusionslegierung nach Anspruch 11, wobei die
Folie aus einer Diffusionslegierung auf seiner Oberfläche einen Titan-Nitride beinhaltenden
Film hat.
13. Verfahren zum Herstellen eines bei Raumtemperaturen formbaren dünnen Streifen
oder Folie aus einer Festkörperlösung einer Eisen/Aluminium-Diffusionslegierung, unter:
(1) Bilden eines Streifens aus titanstabilisiertem, kohlenstoffarmen Stahl mit einem
Überschuß an ungebundenem Titan und mit einer Stärke zwischen 0,25 mm und etwa 0,76
mm (0,010 und 0,030 Inch),
(2) Aufbringen einer Aluminiumbeschichtung mit einer Dicke zwischen 12,7 µm (0,0005
Inch) und etwa 76 µm (0,003 Inch) auf beide Seiten des Stahlstreifens, die bezogen
auf das Gewicht des dünnen Streifen oder der Folie zwischen etwa 2 Gew.-% und etwa
12 Gew.-% Aluminium liefert,
(3) Reduzieren der Dicke des aluminiumbeschichteten Streifens zwischen 40% und 99%
durch Kaltwalzen zum Bilden einer aluminiumbeschichteten dünnen Stahlstreifenfolie
mit einer Dicke zwischen etwa 0,013 mm (0,0005 Inch) und 0,152 mm (0,006 Inch) mit
einer Stärke der Aluminiumbeschichtung zwischen etwa 1,07 µm (0,000042 Inch) und 27,9
µm (0,0011 Inch) und
(4) Erwärmen des kaltgewalzten, aluminiumbeschichteten dünnen Stahlstreifens oder
der Folie zur Bildung eines dünnen Streifens oder einer Folie einer Festkörperlösung
aus einer Eisen/Aluminium-Diffusionslegierung mit zwischen etwa 2 Gew.-% und etwa
12 Gew.-% über den Querschnitt verteilten Aluminium.
14. Verfahren nach Anspruch 13, wobei das Erwärmen der aluminiumbeschichteten Stahlfolie
in einer stickstofffreien, nichtoxidierenden Umgebung bewirkt wird.
15. Verfahren nach Anspruch 13, wobei das Erwärmen der aluminiumbeschichteten Stahlfolie
bewirkt wird in einer trockenen, stickstoffhaltigen Umgebung mit einer minimalen Oxidationswirkung
des Titans und des Aluminiums in der Folie für einen Zeitraum und einer Temperatur,
die einen Titan-Nitride aufweisenden Film auf der Oberfläche des Eisen/Aluminium-Diffusionslegierungsstahls
bildet.
16. Verfahren nach einem der Ansprüche 13 bis 15, wobei die Aluminiumbeschichtung
des titanstabilisierten kohlenstoffarmen Stahlstreifens durch ein Aluminiumbeschichten
des Streifens durch Feuertauchen bewirkt wird.
17. Verfahren nach einem der Ansprüche 13 bis 16, wobei der Kohlenstoff und der Stickstoff
in dem titanstabilisierten, kohlenstoffarmen Stahl chemisch mit dem Titan gebunden
ist und in dem Stahl ein Überschuß von wenigstens 0,02 Gew.-% nichtgebundenem Titans
aufweist.
18. Verfahren nach einem der Ansprüche 1 bis 17, wobei dertitanstabilisierte kohlenstoffarme
Stahl einen Kohlenstoffgehalt von weniger als 0,10 Gew.-% Kohlenstoff und einen Titangehalt
von wenigstens etwa 0,40 Gew.-% aber weniger als 1,0 Gew.-% aufweist.
19. Verfahren nach einem der Ansprüche 13 bis 18, wobei der titanstabilisierte, kohlenstoffarme
Stahl einen Kohlenstoffgehalt von ungefähr 0,04 Gew.-% und einen Titangehalt von ungefähr
0,05 Gew.-% aufweist.
20. Verfahren nach einem der Ansprüche 13 bis 19, wobei die Folie aus einer Diffusionslegierung
einen Siliziumgehalt zwischen etwa 0,2 Gew.-% und 0,9 Gew.-% aufweist.
21. Verfahren nach einem der Ansprüche 13 bis 20, wobei die Folie aus einer Diffusionslegierung
erwärmt wird in einer sauerstoffhaltigen Umgebung für einen Zeitraum und bei einer
Temperatur, die eine Entwicklung eines stacheligen Bartes aus Aluminiumoxid auf der
Oberfläche der Folie bewirkt.
22. Verfahren nach Anspruch 21, wobei die Folie eine Entwicklung des Bartes auf der
Oberfläche der Folie hat, die in einer trockenen, stickstoffhaltigen Atmosphäre erwärmt
wird, die eine minimale Oxidationswirkung für Titan hat für einen Zeitraum und bei
einer Temperatur, die einen Titan-Nitride beinhaltenden Film auf der Oberfläche der
Folie bildet.
23. Verfahren nach einem der Ansprüche 13 bis 22, wobei die Stahlfolie aus einer Diffusionslegierung
kaltgewalzt wird nach Diffusionserwärmen zum Aufbringen einer kritischen Dehnung auf
die Folie und anschließendes Erwärmen der Folie zur Erhöhung der Kristallgröße in
der Folie.
1. Feuillard ou clinquant mince en un alliage de fer et d'aluminium, formant une solution
solide et obtenu par diffusion, formé in situ par chauffage pour diffusion d'un feuillard
en acier à faible teneur en carbone, laminé à froid et stabilisé au titane, contenant
un excès de titane non combiné et portant sur chaque face un revêtement d'aluminium
ayant une épaisseur comprise entre environ 12,7 µm (0,0005 pouce) et environ 76 µm
(0,003 pouce), le feuillard d'acier revêtu, après réduction à froid d'environ 40%
à environ 99%, ayant une épaisseur de clinquant comprise entre environ 0,013 mm (0,0005
pouce) et 0,152 mm (0,006 pouce) avec une épaisseur de revêtement d'aluminium comprise
entre environ 1,07 µm (0,000042 pouce) et 27,9 µm (0,0011 pouce), ledit feuillard
ou clinquant mince en alliage de fer et d'aluminium, obtenu par diffusion et formant
une solution solide, contenant entre environ 2% en poids et 12% en poids d'aluminium
diffusé dans sa section transversale, et ledit feuillard ou clinquant mince pouvant
être façonné à la température ambiante et pouvant résister à l'oxydation et à la corrosion
aux températures élevées.
2. Clinquant en alliage par diffusion de fer et d'aluminium selon la revendication
1, dans lequel la totalité du carbone et de l'azote contenu dans ledit acier à faible
teneur en carbone et stabilisé au titane, est combinée chimiquement avec le titane,
ledit acier, comportant un excès d'au moins 0,02% en poids environ de titane non combiné.
3. Clinquant en alliage par diffusion de fer et d'aluminium selon la revendication
1 ou 2, dans lequel ledit acier à faible teneur en carbone et stabilisé au titane
a une teneur en carbone inférieure à 0,10% en poids et une teneur en titane d'au moins
0,40% en poids, mais inférieure à 1,0% en poids.
4. Clinquant en alliage par diffusion de fer et d'aluminium selon l'une quelconque
des revendications précédentes, dans lequel ledit acier à faible teneur en carbone
et stabilisé est un acier calmé à l'aluminium et à faible teneur en titane.
5. Clinquant en alliage par diffusion de fer et d'aluminium selon l'une quelconque
des revendications précédentes, dans lequel l'alliage par diffusion con- tientd'environ
0,2% en poids à 0,9% en poids de silicium.
6. Clinquant en alliage par diffusion de fer et d'aluminium selon la revendication
1, dans lequel ledit clinquant porte un revêtement superficial de whiskers d'oxyde
d'aluminium, analogues à des épines.
7. Clinquant en alliage par diffusion de fer et d'aluminium selon l'une quelconque
des revendications précédentes, dans lequel ledit clinquant porte à la surface dudit
acier un film contenant du nitrure de titane.
8. Clinquant en alliage par diffusion de fer et d'aluminium selon l'une quelconque
des revendications précédentes, dans lequel les whiskers d'oxyde d'aluminium, analogues
à des épines at ayant poussé à la surface dudit clinquant, supportent un revêtement
d'un catalyseur servant à traiter les gaz d'échappement de véhicules automobiles et/ou
d'installations industrielles qui produisent des polluants de l'atmosphère.
9. Clinquant en alliage par diffusion de fer et d'aluminium selon l'une quelconque
des revendications précédentes, dans lequel ledit clinquant comprend une teneur en
aluminium comprise entre environ 6 et 12% en poids.
10. Clinquant en alliage par diffusion de fer et d'aluminium selon l'une quelconque
des revendications précédentes, dans lequel l'aluminium a diffusé de façon sensiblement
uniforme dans toute la section transversale dudit clinquant, et ledit clinquant possède
une grande dimension de grain et l'épaisseur d'un grain, les faces de grains étant
parallèles à la direction de laminage dudit clinquant.
11. Feuillard ou clinquant mince en acier à faible teneur en carbone et stabilisé
au titane, laminé à froid, en alliage de fer et d'aluminium, obtenu par diffusion
et formant une solution solide, contenant une proportion comprise entre environ 2
et 12% en poids d'aluminium et ayant un maximum d'environ 0,1% en poids de carbone
et un maximum de 1,0% en poids de titane, ledit titane étant combiné avec le carbone
et l'azote dans ledit feuillard en alliage par diffusion, avec un excès de titane
non combiné, ledit feuillard ou clinquant mince en alliage par diffusion ayant une
plus forte concentration de titane à la surface qu'à l'intérieur, et ledit feuillard
ou clinquant mince en alliage par diffusion pouvant être façonné à la température
ambiante et étant résistant à l'oxydation et à la corrosion aux températures élevées.
12. Clinquant en alliage par diffusion de fer et d'aluminium selon la revendication
11, dans lequel ledit clinquant en alliage par diffusion porte à sa surface un film
contenant du nitrure de titane.
13. Procédé de formage d'un feuillard ou clinquant mince en alliage de fer et d'aluminium,
obtenu par diffusion et formant une solution solide, et susceptible d'être façonné,qui
consiste:
(1) à former un feuillard en acier à faible teneur en carbone et stabilisé au titane,
contenant un excès de titane non combiné, ayant une épaisseur comprise entre environ
0,25 mm et 0,76 mm (0,010 et 0,030 pouce),
(2) à appliquer sur chaque surface du feuillard d'acier un revêtement d'aluminium
d'une épaisseur comprise entre environ 12,7 µm (0,0005 pouce) et environ 76 µm (0,003
pouce) et fournissant de 2 à 12% en poids d'aluminium par rapport au poids dudit feuillard
ou clinquant mince,
(3) à réduire l'épaisseur du feuillard revêtu d'aluminium d'entre environ 40% et environ
99% par laminage à froid, pour former un clinquant mince d'acier revêtu d'aluminium
ayant une épaisseur comprise entre environ 0,013 mm (0,0005 pouce) et 0,152 mm (0,006
pouce), l'épaisseur du revêtement d'aluminium étant comprise entre environ 1,07 µm
(0,000042 pouce) et 27,9 µm (0,0011 pouce), et,
(4) à chauffer ledit feuillard ou clinquant mince d'acier revêtu d'aluminium et laminé
à froid pour former un feuillard ou clinquant mince en alliage de fer et d'aluminium,
obtenu par diffusion et formant une solution solide, ayant entre environ 2% et 12%
en poids d'aluminium qui a diffusé dans toute sa section transversale.
14. Procédé selon la revendication 13, dans lequel on effectue ledit chauffage du
clinquant d'acier revêtu d'aluminium dans une atmospère non oxydante exempte d'azote.
15. Procédé selon la revendication 13, dans lequel on effectue ledit chauffage du
clinquant d'acier revêtu d'aluminium dans une atmospère sèche contenant de l'azote
et n'ayant qu'un minimum d'action oxydante sur le titane et l'aluminium dans ledit
clinquant, pendant une durée et à une température permettant de former un film contenant
du nitrure de titane à la surface de l'acier alliage, obtenu par diffusion, de fer
et d'aluminium.
16. Procédé selon l'une quelconque des revendications 13 à 15, dans lequel on obtient
ledit revêtement d'aluminium sur ledit feuillard d'acier à faible teneur en carbone
et stabilisé par du titane, par revêtement dudit feuillard avec de l'aluminium par
immersion à chaud.
17. Procédé selon l'une quelconque des revendications 13 à 16, dans lequel la totalité
du carbone et de l'azote, dans ledit acier à faible teneur en carbone et stabilisé
au titane, est chimiquement combinée avec le titanel, l'acier contenant un excès d'au
moins 0,02% en poids environ de titane non combiné.
18. Procédé selon l'une quelconque des revendications 13 à 17, dans lequel ledit acier
à faible teneur en carbone et stabilisé au titane comprend une teneur en carbone inférieure
à 0,10% en poids de carbone et une teneur en titane d'au moins 0,40% en poids, mais
inférieure à 1,0% en poids.
19. Procédé selon l'une quelconque des revendications 13 à 18, dans lequel la teneur
en carbone dudit acier à faibleteneur en carbon et stabilisé au titane est d'environ
0,04% en poids et la teneur en titane est d'environ 0,50% en poids.
20. Procédé selon l'une quelconque des revendications 13 à 19, dans lequel ledit clinquant
en alliage par diffusion a une teneur en silicium comprise entre environ 0,2 et 0,9%
en poids.
21. Procédé selon l'une quelconque des revendications 13 à 20, dans lequel ledit clinquant
en alliage par diffusion est chauffé dans une atmosphère contenant de l'oxygène, pendant
une durée et à une température permettant la croissance de whiskers en oxyde d'aluminium,
analogues à des épines, sur la surface dudit clinquant.
22. Procédé selon la revendication 21, dans lequel ledit clinquant, portant lesdits
whiskers, ayant poussé à la surface, est chauffé dans une atmosphère sèche contenant
de l'azote et ayant un minimum d'action oxydante sur le titane, pendant une durée
et à une température permettant de former un film contenant du nitrure de titane à
la surface dudit clinquant.
23. Procédé selon l'une quelconque des revendications 13 à 22, dans lequel on lamine
à froid ledit clinquant en acier allié par diffusion, après le chauffage de diffusion,
pour conférer une déformation critique audit clinquant et ensuite on soumet ledit
clinquant à un chauffage pour augmenter la dimension des cristaux dans ledit clinquant.