[0001] The present invention relates to a process for the production of a Cr-Ni type stainless
steel sheet, by which the thickness of a cast strip is made almost the same as the
product thickness by a synchronous continuous casting process in which the relative
speed of the cast strip to the inner wall surface of a casting mold is the same. In
particular, it relates to a process by which the microstructure is made finer from
the cast strip stage to form a Cr-Ni type stainless steel sheet having excellent surface
properties.
[0002] JP-A-63-0421 provides an 18/8 CrNi stainless steel material having improved surface
properties and material quality. Said stainless steel sheet is produced by synchronous
continuous casting to a thickness of <10mm, cooled at a cooling rate of 200°C/s, hot
rolled at 1030°C with 32% reduction ratio and coiled at 560°C. Subsequently the sheet
is descaled and cold rolled.
[0003] In another conventional continuous casting process for the production of a stainless
steel sheet, a slab having a thickness of more than 100 mm is formed by casting while
vibrating a casting mold in the casting direction, the obtained slab is surface-finished,
the slab is heated at a temperature higher than 1000°C in a heating furnace, and the
slab is hot-rolled by a hot strip mill comprising rows of rough rolling machines and
finish rolling machines, to form a hot strip having a thickness of several mm.
[0004] After the cold rolling of the obtained hot strip, to maintain the shape (flatness),
quality and surface properties required for the final product, a hot-roll plate annealing
for softening the hot strip, which has been subjected to a severe hot working, is
carried out, and surface scale and the like is removed first by a pickling process
and then by grinding. In this conventional process for the production of a thick continuous
cast slab, much energy is needed to heat the slab and carry out the processing, and
thus this process is disadvantageous from the viewpoint of productivity. Furthermore,
since a final product is prepared from an slab having a thickness of more than 100
mm through several processes, a texture is developed in a specific orientation in
the obtained product, and therefore, when press-forming is carried out by a user,
the anisotropy and many other application limitations must be taken into consideration.
[0005] To solve the above problems of the process for hot-rolling a thick continuous cast
slab having a thickness of more than 100 mm, research has recently been made in to
a process by which a cast strip (band steel) having the same or almost the same thickness
as the hot strip is prepared during the continuous casting. For example, "Tetsu to
Hagane", '85, A197 to '85, A256 discloses a process by which a hot strip is directly
prepared by continuous casting. In this continuous casting process, a twin-drum method
was used to obtain a cast strip having a thickness of 1 to 10 mm and a twin-belt method
was used to obtain a cast strip having a thickness of 20 to 50 mm. This new casting
process in which the relative speed of the cast strip to the inner wall surface of
a casting mold is the same is called "a synchronous continuous casting process".
[0006] In this continuous casting process, however, a problem arises during casting, and
the problems of quality and surface properties of the product remain.
[0007] In the process for preparing a cast strip (band steel) having the same or almost
the same thickness equal as that of a hot strip, by continuous casting, since the
processes from the casting to the withdrawal of the product are simplified, the surface
properties of the stainless steel product are easily influenced by the properties
of the cast strip. Namely, to obtain a product having excellent surface properties,
it is necessary to obtain an excellent cast strip.
[0008] Under this background, an object of the present invention is to provide a continuous
casting process for the production of a stainless steel cast strip having a thickness
of less than 10 mm, in which an excellent cast strip capable of providing a product
having excellent surface properties and quality can be prepared.
[0009] More specifically, the object of the present invention is to provide a simple process
capable of forming a Cr-Ni type stainless steel sheet which does not have an uneven
gloss and a surface defect called a "roping phenomenon" inherently observed in stainless
steel sheets prepared by the thin continuous casting apparatus.
[0010] As the result of investigations made into the above-mentioned process with a view
to eliminating the surface defects from the product, the inventors succeeded in preventing
the occurrence of roping on the surface of a product by making the austenite (γ) grain
size of a cast strip finer by controlling the cooling of the strip cast in a high
temperature zone (zone of temperatures higher than 1100°C) and preventing the occurrence
of an uneven gloss by controlling the cooling in a low temperature zone (zone of temperatures
of 900 to 550°C).
[0011] The inventors engaged in further research and found that, if the above-mentioned
γ grain size is kept below 50 µm, a high degree of a prevention of roping can be attained
and developed rapid cooling methods for a high-temperature cast strip, cold-rolling
methods, and hot rolling methods as the means for the above-mentioned adjustment of
the γ grain size. The present invention was completed based on the foregoing findings.
[0012] In accordance with one aspect of the present invention, there is provided a process
for the production of a Cr-Ni type stainless steel sheet having an excellent surface
and cast strip property, which comprises continuously casting a Cr-Ni type stainless
steel represented by 18% Cr-8% Ni steel into a cast strip having a thickness smaller
than 10 mm at a cooling rate of at least 100°C/sec at the solidification by using
a continuous casting machine in which the wall surface of a casting mold moves synchronously
with the cast strip consisting of δ-ferrite (δ-Fe.) cal (%) defined by the formula
of

being controlled to -2 to 10% to form a primary crystal of the δ phase at the solidification,
lower the temperature of initiation of crystallization or precipitation of γ phase,
and depress the grain growth of γ during and after the solidification, initiating
cooling of the obtained cast strip at a temperature as high as possible, cooling the
cast strip to 1100°C at a cooling speed of at least 100°C/sec while preventing reheating
of the cast strip to make the γ grains finer, then cooling the cast strip at a temperature
of from 900 to 550°C and an average cooling rate of at least 50°C/sec to prevent precipitation
of carbides and forming the cast strip into a cold-rolled sheet according to customary
procedures. In accordance with another aspect of the present invention, there is provided
a preparation process in which a hot-rolling, cold-rolling, or annealing process is
added as the above-mentioned cooling-controlling methods.
[0013] The present invention will now be described in detail.
[0014] The following experiments were conducted to determine the surface properties of products.
[0015] A molten steel comprising SUS 304 steel as the main component was cast by a twin-roll
(twin-drum) continuous casting machine of the internal water-cooling type to form
a cast strip having a thickness of 2 to 4 mm, and the cast strip was cooled and wound.
[0016] The obtained cast strip (thin band) was subjected to descaling, directly cold-rolled,
finally annealed, and pickled to obtain a 2B product. The surface properties of the
obtained product were examined and compared with those of a conventional product obtained
by heating a slab having a thickness larger than 100 mm, hot-rolling the ingot by
a hot strip mill, and cold-rolling the hot-rolled strip.
[0017] As a result, it was found that there is a risk of the formation of the following
surface defects in the 2B product obtained by casting the molten steel into a cast
strip having a thickness of 2 to 4 mm by using the twin-roll (twin-drum) continuous
casting machine of the internal water-cooling type, cold-rolling the cast strip, and
carrying out final annealing and pickling.
(1) Roping or orange peel (fine convexities and concavities are formed on the surface
during cold rolling or processing of the product)
(2) Uneven gloss (uneven gloss is caused by a sensitization of the microstructure
of the cast strip, intergranular oxidation, or coarsening of γ grains during winding
of the cast strip, that is, the thin band)
This problem in the surface properties of the product is not observed in the conventional
process but is inherently observed in a process including the step of directly obtaining
a cast strip (thin band) by continuous casting.
[0018] The inventors examined the cause of this problem of the surface properties of the
product in detail and, as a result found that, where the γ grain size of the cast
strip before cold-rolling is larger or cooling in the Cr carbide-precipitating temperature
range is insufficient, the above-mentioned surface defects become prominent.
[0019] Thus, it has been found that to prevent roping, it is preferable to make the γ grain
size of the cast strip before cold-rolling finer, especially to adjust this γ grain
size above No. 6, that is, below 50 µm, and to prevent uneven gloss, it is preferable
to control the cooling of the cast strip in the low temperature range, where a process
including the step of directly obtaining the cast strip by continuous casting is adopted.
[0020] The basic techniques for attaining the above-mentioned objects will now be described.
The components of the molten steel of the present invention are first explained.
[0021] The composition of the molten steel comprises 0.01 to 0.08% of C, 0.25 to 1.50% of
Si, 0.15 to 3.0% of Mn, 0.015 to 0.040% of P, 0.001 to 0.008% of S, 16.0 to 28.0%
of Cr, 6.0 to 24.0% of Ni, 0.015 to 0.33% of N, 0.001 to 0.050% of Al, 0.01 to 3.0%
of Mo, 0.01 to 2.0% of Cu, 0.01 to 0.60% of Ti, and 0.01 to 0.80% of Nb, with the
balance being Fe and unavoidable impurities.
[0022] A molten steel having the above-mentioned composition is cast into a strip, that
is, a cast strip having a thickness smaller than 10 mm, at a cooling speed of at least
100°C/sec by a twin-roll or single-roll continuous casting machine. If the thickness
of the cast strip exceeds 10 mm, it becomes difficult to make the γ grains finer,
and to obtain the product by direct cold-rolling.
[0023] As the means for making γ grains of the obtained cast strip finer, a method is adopted
in which cooling of the cast strip is initiated at a temperature as high as possible
just below the casting machine, to prevent reheating of the cast strip at the outlet
of the continuous casting machine, and cooling is effected to 1100°C while maintaining
the cooling rate in the γ grain-growing temperature range at a level of at least 100°C/sec
and as high as possible, whereby the grain growth of γ is inhibited.
[0024] Selection of the alloy composition based on the above-mentioned cooling as the premise
is important.
[0025] Figure 1 is a diagram showing the sectional state of the portion corresponding to

in the equilibrium diagram of the Fe-Cr-Ni ternary system, as disclosed in (Transaction
of JWRI., Vol. 14, No. 1, 1985, page 125), and Creq and Nieq are calculated from the
contents of the components according to the following formulae:

In the case ① where Creq is small, the primary crystal is solidified at γ at Creq
= 17.3% and is completely formed in the γ phase. In this case, the γ phase is crystallized
at a temperature higher than 1450°C, just below the liquidus, and the γ phase then
grows. In the case ② where Creq increases and is 19.5% or higher, solidification of
the primary crystal is completed in the δ phase, and precipitation of the γ phase
begins at about 1370°C as the result of solid phase reaction, and the γ phase then
grows. In this case, the grain growth of γ is greatly controlled, compared with the
above-mentioned case where Creq is small. This can be understood from the fact that
the grain growth of γ is influenced by the high temperature range just after solidification.
In the case where Creq is an intermediate value, a peritectic reaction is added and
the system becomes complicated, but in this case, a composition causing δ solidification
is advantageous to depress the grain growth of γ. The combination of selection of
the composition retarding initiation of precipitation of γ grains by utilizing δ solidification
and rapid cooling in the high temperature range is especially effective for controlling
the grain growth of γ and making γ grains finer.
[0026] From the results of experiments made on various compositions, it was found that good
effects are attained if δ-Fe.cal (%) defined by the formula of

is adjusted from -2 to 10%.
[0027] Figures 2(a), 2(b), and 2(c) are metallographic microscope photos of microstructures
of cast strip obtained by casting compositions differing in δ-Fe.cal (%) into 2-mm
cast strip and cooling them. As apparent from the drawings, when δ-Fe.cal (%) is -2.3%,
γ solidification is caused and γ grains grow. Where δ-Fe.cal (%) is -1.1%, δ ferrite
is left and the size of δ grains is reduced. When δ-Fe.cal (%) is 3.0%, δ solidification
is apparently caused and the size of γ grains is kept small. If δ-Fe.cal (%) is larger,
both of the sizes of γ grains and δ grains are kept small. Namely, the combination
of the above-mentioned cooling of the cast strip and selection of the composition
in the Cr-Ni system has large influences on the reduction of the size of γ grains,
and it is very important to control δ-Fe.cal (%) from -2 to 10%. If δ-Fe.cal (%) exceeds
10%, the above-mentioned effect becomes saturated, and the δ phase is left in the
product and bad influences are imposed on the product quality.
[0028] The cast strip must be cooled in the temperature range of 900 to 550°C at an average
cooling rate of at least 50°C/sec and wound at a temperature lower than 650°C. If
this requirement is not satisfied, carbides are precipitated in the grain boundaries
of the cast strip and intergranular corrosion is caused at the process of pickling
the cast strip, resulting in degradation of the gloss of the final product.
[0029] By depressing the grain growth of γ in the cast strip and preventing precipitation
of carbides in the grain boundaries by the above-mentioned methods, occurrence of
roping and uneven gloss on the surface of the stainless steel can be prevented.
[0030] The above-mentioned basic technique is very effective for making γ grain finer, and
to reduce the average grain size of γ grains below 50 µm, and an addition of the following
means is especially effective.
(1) Reduction of the size of γ grains of the cast strip per se.
(2) Recrystallization for reduction of the size of the γ grains by hot-working the
cast strip subsequently to casting.
(3) Recrystallization for reduction of the size of the γ grains by cold-working and
annealing of the cast strip.
[0031] It was found that even though a high effect is attained if one of the foregoing means
(1), (2), and (3) is adopted, an especially high effect can be attained if two or
more of the above-mentioned means (1), (2), and (3) are adopted in combination. The
present invention was completed based on this finding.
[0032] Figure 1 is a sectional state diagram of the portion corresponding to

in the equilibrium stage diagram of the Fe-Cr-Ni ternary system.
[0033] Figure 2(a), 2(b) and 2(c) are metallographical microscope photographs showing the
microstructures of cast strips having a thickness of 2 mm, which are obtained by continuous
casting of molten steels differing in δ-Fe.cal (%).
[0034] Figure 3 is a diagram illustrating the relation between the strain load just below
the melting point and occurrence of cracking in SUS 304 steel.
[0035] Figure 4 is a diagram illustrating the relation between the temperature of the cast
strip and the time, observed when a cast strip of Cr-Ni type stainless steel is formed
by a twin-roll continuous casting machine (off the water-cooling type).
[0036] Figure 5 is diagram illustrating influences of the thickness reduction ratio adopted
when a cast strip obtained by carrying out casting at δ-Fe.cal (%) of about 1% and
then carrying out cooling is hot-rolled at 1100°C and the reduction adopted at the
subsequent descaling cold-rolling on the roping height on the surface of the final
product.
[0037] Figure 6 is a diagram illustrating the relation between the reduction adopted when
preliminary cold-rolling (cold-working) of a cast strip (thin band) under application
of a variable thickness reduction ratio is carried out in the process of the present
invention, annealing is carried out at 1080°C for a short time to effect recrystallization,
and cold-rolling (main cold-rolling) to the final product thickness is carried out,
and the roping height on the surface of the final product.
The specific means for adjusting the average grain size of τ of the cast strip below
50 µm, which are adapted in addition to the above-mentioned basic technique, will
now be explained.
(1) Method of reducing the size of γ grains of the cast strip per se
[0038] In the method of reducing the size of γ grains of the cast strip obtained by the
twin-roll or single-roll continuous casting, in order to reduce the size of γ grains
at the time of solidification and control the subsequent grain growth of γ, the cooling
must be started at a high temperature.
[0039] In the cast strip obtained by the above-mentioned method, γ grains abruptly grow
after the solidification. Accordingly, in order to depress the average grain size
of γ below 50 µm, it is necessary that cooling should be started just after completion
of the solidification, reheating of the cast strip at the outlet of the casting machine
should be inhibited, and rapid cooling should be carried out in the γ grain growing
range of temperatures of up to 1200°C and that the average cooling rate during this
rapid cooling should be adjusted to a level of at least 200°C/sec.
[0040] In the above-mentioned method, cooling of the cast strip just after the solidification,
especially uniform cooling, is important. In the strip casting of the Cr-Ni system,
embrittlement of the cast strip at the time of solidification is another problem.
From the results of experiments it was found that, in the 18Cr-8Ni system, high-temperature
embrittlement is especially large at a temperature lower by about 50°C than the solidification
point, and that, for example, in case of 18Cr-8Ni alloy, if the temperature is lower
than 1390°C in the central portion of the cast strip, the high-temperature ductility
of the alloy is highly restored (Fig. 3). Accordingly, at lower temperatures, a method
is advantageously adopted in which a roll of the internal cooling type is used and
roll cooling is carried out at a certain reduction for example, a reduction lower
than 5%. By using a pair or a plurality of pairs of rolls for the roll cooling, it
is possible to perform the cooling effectively while preventing reheating, and the
cooling can be effected to 1200°C at an average cooling speed of at least 200°C/sec.
Of course, uniform cooling can be effectively accomplished by the combination of this
roll cooling with gas cooling under a high pressure with air or nitrogen or mist cooling
using a small amount of a liquid incorporated in such as gas. Of course, these cooling
methods can be adopted singly.
(2) Method in which the cast strip is hot-processed subsequently to casting to reduce
the particle size by recrystallization
[0041] According to this method, the as-cast strip is subjected to hot-processing to advance
recrystallization and reduce the size of γ grains. Namely, the cast strip is rapidly
cooled from the high-temperature range just below the casting machine to depress the
grain growth of γ in the cast strip, and then, hot-rolling is carried out to obtain
finer γ grains.
[0042] Figure 4 shows the temperature history of the cast strip formed by continuously casting
a molten steel by the twin-roll method and winding the cast strip.
[0043] In the case (3) shown in Fig. 4, the cast strip is cast and is then air-cooled. Although
the cast strip is rapidly cooled by a casting drum in a casting machine, the cast
strip is reheated after the outlet of the casing machine, and therefore, cooling is
slower than in the case where cooling is started just below the drum and if the cast
strip is directly wound, the grain growth of γ is advanced during cooling after winding,
with the result that problems concerning the surface properties, such as roping, sensitization
by precipitation of Cr carbide, and uneven gloss arise.
[0044] In the case (1) shown in Fig. 4, hot-rolling is carried out after casting to cause
recrystallization in the cast strip and make γ grains finer, and after hot-rolling,
sensitization by precipitation of Cr carbide is prevented by rapid cooling.
[0045] In the case (2) shown in Fig. 4, to reduce the grain size of the cast strip more
than in the case (1), rapid cooling is carried out after casting and hot-working is
then carried out. If hot-rolling is added, the γ grains become finer than in the case
(1), and therefore, very fine γ grains can be obtained. After the hot-rolling, rapid
cooling is carried out for preventing sensitization by precipitation of Cr carbide.
[0046] Influences of the reduction at the hot-rolling in this method will now be described
with reference to Fig. 5.
[0047] Figure 5 illustrates influences of the reduction on the roping height in the cold-rolled
sheet, observed when a cooled cast strip having δ-Fe.cal (%) adjusted to about 1%
is hot-rolled at 1100°C.
[0048] From Fig. 5 it is seen that the effect by the hot-rolling is satisfactory if the
reduction is higher than 20%, and if the reduction is higher than 30%, the roping
height of the product is reduced and no surface undulation is found.
[0049] If the reduction at the hot-rolling is higher than 20%, recrystallization is caused
in the center of the cast strip and if the reduction is higher than 30%, the entire
surface is substantially recrystallized. Thus, the average grain size of the γ grains
is reduced below 50 µm.
[0050] In the case where δ-Fe.cal (%) is adjusted to about 3%, if the cast strip is cooled
just below twin rolls (cooling drums) and hot-rolling is carried out with a temperature
difference between the surface layer of the cast strip and the center of the cast
strip, a good roping-preventing effect can be attained even if the reduction is about
10%. It is seen that the volume fraction of δ-Fe. is larger and the effect of cooling
the cast strip just below the twin rolls (cooling drums) is high.
[0051] Hot-rolling is carried out in the region where the surface temperature of the cast
strip is higher than 900°C, and recrystallization in the center of the cast strip
is promoted by this hot-rolling. Especially, it is sufficient if the cast strip is
subjected to hot-rolling at a reduction of up to 60% while the interior of the cast
strip is still in the high-temperature region (within 10 seconds after the casting).
If the reduction exceeds 60%, the effect is saturated. If hot-rolling is started after
the elapse of more than 10 seconds from the point of termination of the casting, the
temperature difference between the surface layer portion of the cast strip and the
interior of the cast strip becomes small and the effect of making γ grains finer is
reduced.
[0052] If hot-working is carried out, it sometimes happens that recrystallization is not
sufficiently caused but a worked microstructure is partially left. It was found that
in this case, if the hot-rolled sheet is annealed to effect recrystallization, a product
having excellent surface properties can be obtained.
[0053] Annealing of the hot-rolled sheet is carried out at a temperature higher than 950°C
to advance recrystallization. Especially, annealing is conducted while controlling
the temperature and time so that the average grain size of γ does not exceed 50 µm.
During the annealing, the amount of δ-Fe is reduced as compared with the amount of
δ-Fe at the stage of the cast strip, and precipitation of Cr carbide in the δ/γ interface
is delayed and hence, it is permissible to adopt a lower cooling rate than the cooling
rate adopted for cooling the cast strip or hot-rolled sheet. Accordingly, the cooling
rate after annealing is adjusted to at least 10°C/sec in the Cr carbide-precipitating
region.
(3) Method for cold-rolling and annealing the cast strip to effect recrystallization
and reduce the grain size
[0054] According to this method, cooling of the cast strip obtained by the above-mentioned
continuous casting machine of the twin-roll type is started just below the casting
machine at a temperature as high as possible, and cooling to 1100°C is conducted at
a cooling rate of at least 100°C/sec to inhibit the grain growth of γ. Then, cooling
is conducted at a cooling rate of at least 50°C/sec in the temperature range of 900
to 550°C and the cast strip is wound in the region of temperature lower than 650°C.
The obtained cast strip is subjected to preliminary cold-working such as cold-rolling,
and then subjected to high-temperature short-time annealing to effect recrystallization
in the cast strip.
[0055] Cast strips were subjected to preliminary cold rolling and then to short-time annealing
at 1080°C, and cold-rolling (main cold-rolling) to the final sheet thickness was carried
out. The relationship between the reduction and the roping height in the product is
shown in Fig. 6, relative to the reduction at the preliminary cold-rolling.
[0056] Where γ grains of the cast strip are fine, when a cast strip having a thickness of,
for example, 2 mm is prepared by continuous casting and cooling of the cast strip
just below the casting machine in the temperature region of 1300 to 1100°C is carried
out at such a high cooling rate as at least 100°C/sec, recrystallization is sufficiently
advanced even if the reduction at the preliminary cold-rolling is at such a low level
as at least 10%, and the average grain size of γ can be reduced below 50 µm and the
roping height in the product can be reduced.
[0057] As pointed out hereinbefore, if cooling of the cast strip just below the casting
machine in the temperature region of 1300 to 1100°C is carried out at a high cooling
rate of at least 100°C/sec, recrystallization can be accomplished even when the reduction
at the preliminary cold working (cold-rolling or the like) is low and the average
grain size of γ after the recrystallization can be reduced below 50 µm. Accordingly,
occurrence of roping in the product can be reduced and a product having no uneven
gloss and excellent surface properties can be obtained.
[0058] If δ-Fe.cal (%) in the composition of the cast strip is adjusted from -2 to 10%,
γ grains can easily be made finer together with cooling in the high-temperature region.
[0059] The effects of the present invention will now be described in detail with reference
to the following examples.
Examples
Example 1
[0060] Stainless steels composed mainly of the 18Cr-8Ni system, in which the amount of Ni
was mainly changed, were melted and cast into ingots having a thickness of 1 to 7.5
mm by using a twin-roll casting machine of the internal water-cooling type. The compositions
of the stainless steels were as shown in Table 1, and δ-Fe.cal (%) was changed in
the range of from -3.6 to 7.8%.
[0061] On the outlet side of the casting machine, cooling means for blowing high-pressure
nitrogen gas was disposed, and cooling means including a roll of the internal cooling
type was subsequently arranged. By using these cooling means, the cast strips were
cooled while preventing reheating. In some runs, mist cooling means was arranged after
the roll-cooling means. The average cooling rate to 1200°C was adjusted to 400 to
220°C/sec according to the thickness of the cast strip, that is, the casting rate.
Then, water cooling was carried out in the temperature region of 900 to 550°C at a
cooling rate of at least 50°C/sec, followed by winding.
[0062] From the results of the observation of textures of the obtained cast strips, as shown
in Table 2, it was found that when δ-Fe.cal (%) was lower than about 1%, diameters
of γ grains could be recognized and the average grain size of γ of the cast strips
was about 30 to about 40 µm. However, in the ingots where δ-Fe.cal (%) was higher
than 2%, the δ-Fe. phase was fine, the γ grain boundaries could not be recognized,
and γ grains locally observed were very fine and the grain size was smaller than 20
µm. When these cast strips were directly cold-rolled, occurrence of roping was not
observed on the surface, and the surface properties were good. On the other hand,
in comparative steels, δ-Fe.cal (%) was about -3% and the effect of δ solidification
was not exerted, and moreover, the average cooling rate to 1200°C was insufficient
and the grain size of γ exceeded 80 µm. Therefore, the surface gloss and prevention
of roping were not satisfactory.

Example 2
[0063] Various stainless steels of the Cr-Ni system based on 18Cr-8Ni steel, which had compositions
shown in Table 3, were melted. As shown in Table 4, in these molten steels, δ-Fe.cal
(%) represented by the formula of

was changed in the range of from -3.55% to 7.81%. These molten steels were cast into
strips having a thickness of 1.6 to 7.5 mm by a vertical twin-roll continuous casting
machine of the internal water-cooling type. Cooling of the cast strips just below
of the casting machine was effected by roll-cooling or spray-cooling, and the cooling
rate was adjusted to 70 to 250°C/sec in the temperature region of 1400 to 1100°C.
[0064] Then, the cast strips were hot-rolled in the temperature region of 1100 to 950°C
within 8 seconds from the point of termination of casting. The reduction at this hot-rolling
was in the range of from about 10% to about 60% (Table 4). Then, the cast strips were
cooled at a cooling rate of at least 60°C/sec in the temperature region of 900 to
550°C and the cast strips were wound at a temperature lower than 600°C.
[0065] In the comparative runs, hot-rolling was omitted or the cooling rate after annealing
of the hot-rolled sheet was lower than 10°C/sec.
[0066] Then, the cast strips were subjected to pickling, descaling, cold-rolling, and ordinary
annealing or bright annealing.
[0067] The surface properties of the obtained products were examined, and especially, the
roping height and gloss on the surfaces of the products were checked. As shown in
Table 4, in the products obtained in the present example, γ grains were made finer
by the hot-rolling effect, and since subsequent cooling was sufficient, each product
had excellent surface properties.
Example 3
[0069] Stainless steels of the Cr-Ni system represented by 18Cr-8Ni, which were melted according
to customary procedures, were cast in strips having a thickness of 3 mm or 4.5 mm
by using a twin drum machine of the internal water-cooling type. The compositions
of the steels were as shown in Table 5. Air cooling and spray cooling were carried
out just below the outlet of the twin-drum casting machine. Cooling to 1100°C was
conducted at an average cooling rate of at least 100°C/sec, and water cooling was
conducted in the temperature region of 900 to 550°C at an average cooling rate of
at least 70°C/sec. Winding was then carried out at temperatures of 650 to 600°C.
[0070] The cast strips were descaled by mechanical descaling and pickling and were preliminarily
rolled by cold-rolling. Both the cast strips having a thickness of 3 mm and the cast
strips having a thickness of 4.5 mm were preliminarily cold-rolled at a reduction
of 10 to 40%, annealed for less than 20 seconds at a temperature higher than 1000°C,
and rapidly cooled. Thus, the cast strips were recrystallized and the grain size of
γ was controlled below 50 µm.
[0071] Then, the cast strips were subjected to the main rolling at a reduction of 30, 50,
80, or 95% or a reduction higher than 95%, and final annealing was carried out according
to customary procedures to obtain 2B and BA products. As shown in Table 6, these products
were excellent in surface properties and mechanical properties.
[0073] Since the present invention has the above-mentioned structure and exerts the above-mentioned
functions, a simple process in which a thin band having a thickness close to the product
thickness can be directly obtained by continuous casting can be provided, and a Cr-Ni
type stainless steel sheet having excellent surface property and material quality
can be obtained.
1. A process for the production of a Cr-Ni type stainless steel sheet having excellent
surface feature and material quality, which comprises continuously casting a Cr-Ni
type stainless steel represented by 18% Cr-8% Ni steel into a strip having a thickness
smaller than 10 mm at a cooling rate of at least 100°C/sec at the solidification by
using a continuous casting machine in which the wall surface of a casting mold moves
synchronously with the cast strip consisting of δ-Fe.cal (%) defined by the formula
of

being controlled from -2 to 10% to form a primary crystal of the δ phase at the solidification,
lower the temperature of initiation of crystallization or precipitation of γ grains
and depress the growth of γ grains during and after the solidification, initiating
cooling of the obtained cast strip at a temperature as high as possible, cooling the
cast strip to 1100°C at a cooling rate of at least 100°C/sec while preventing reheating
of the cast strip to make the γ grains finer, then cooling the cast strip in a temperature
range from 900 to 550° C, at an average cooling rate of at least 50° C/sec, in order
to prevent precipitation of carbides, and forming the cast strip into a cold-rolled
sheet according to customary procedures.
2. A process according to claim 1, wherein the obtained cast strip is cooled to 1200°C
at a cooling rate of at least 200°C/sec to make the γ grains finer so that the average
grain size is smaller than 50 µm.
3. A process according to claim 1 or 2, wherein cooling to 1200°C at a cooling rate of
at least 200°C/sec is effected by at least one pair of rolls of the internal cooling
type so that the reduction in the cast strip is lower than 5%.
4. A process according to claim 1, 2, or 3, wherein cooling of the cast strip after the
solidification is effected by using a gas and/or a liquid.
5. A process for the production of a Cr-Ni type stainless steel sheet having excellent
surface feature and material quality, which comprises continuously casting a Cr-Ni
type stainless steel represented by 18% Cr-8% Ni steel into a strip having a thickness
smaller than 10 mm at a cooling rate of at least 100°C/sec at the solidification by
using a continuous casting machine in which the wall surface of a casting mold moves
synchronously with the cast strip, hot-working the cast strip in the region of temperatures
higher than 900°C at a reduction lower than 60% after the solidification to advance
recrystallization in the interior of the cast strip and make γ grains finer so that
the average grain size of γ is smaller than 50 µm, then cooling the cast strip in
a temperature range from 900 to 550° C, at an average cooling rate of at least 50°
C/sec, in order to prevent precipitation of carbides, and forming the cast strip into
a cold-rolled sheet according to customary procedures.
6. A process according to claim 5, wherein at the casting, δ-Fe.cal (%) of the cast strip
defined by the formula of

is controlled from -2 to 10% to form a primary crystal of the δ phase at the solidification,
lower the temperature of initiation of crystallization or transformation of γ grains
and depress the growth of γ grains during and after the solidification.
7. A process for the production of a Cr-Ni type stainless steel sheet having an excellent
surface feature and material quality, which comprises continuously casting a Cr-Ni
type stainless steel represented by 18% Cr-8% Ni steel into a strip having a thickness
smaller than 10 mm at a cooling rate of at least 100°C/sec at the solidification by
using a continuous casting machine in which the wall surface of a casting mold moves
synchronously with the cast strip consisting of δ-Fe.cal (%) defined by the formula
of

being controlled from -2 to 10% to form a primary crystal of the δ phase at the solidification,
lower the temperature of initiation of crystallization or transformation of γ grains
and depress the growth of γ grains from the intermediate point of the solidification,
initiating cooling of the obtained cast strip at a temperature as high as possible
while preventing reheating of the cast strip after the solidification, adjusting the
average cooling rate to 1100°C to at least 100°C/sec as measured with respect to the
surface temperature of the cast strip to depress the growth of the γ grains, hot-working
the cast strip in the region of temperatures higher than 900°C at a reduction lower
than 60% within 10 seconds from the point of termination of the casting where there
is present a temperature difference between the surface portion of the cast strip
and the center of the cast strip, to advance recrystallization in the center of the
cast strip and make the γ grains in the cast strip finer so that the average grain
size the of γ is smaller than 50 µm, then cooling the cast strip in a temperature
range from 900 to 550°C, at an average cooling rate of at least 50°C/sec, in order
to prevent precipitation of carbides and forming the cast strip into a cold-rolled
sheet according to customary procedures.
8. A process according to claim 5, 6, or 7, wherein after the cast strip is wound in
the region of temperatures lower than 650°C, the hot-rolled sheet is annealed at a
temperature higher than 950°C for a controlled time and is then cooled at a cooling
rate of at least 10°C/sec.
9. A process for the production of a Cr-Ni type stainless steel sheet having excellent
surface feature and material quality, which comprises continuously casting a Cr-Ni
type stainless steel represented by 18% Cr-8% Ni steel into a strip having a thickness
smaller than 100 mm at a cooling rate of at least 100°C/sec at the solidification
by using a continuous casting machine in which the wall surface of a casting mold
moves synchronously with the cast strip, initiating cooling of the obtained cast strip
at a temperature as high as possible, cooling the cast strip to 1100°C at a cooling
rate of at least 100°C/sec while preventing reheating of the cast strip, to depress
the grain growth of γ, then cooling the cast strip in the temperature region of 900
to 550°C at a cooling rate of at least 50°C/sec, winding the cast strip in the region
of temperature lower than 650°C, pickling the cast strip without annealing, subjecting
the cast strip to preliminary cold-rolling at a reduction lower than 60%, then annealing
the cast strip at a temperature higher than 850°C to advance recrystallization and
adjust the average grain size of γ below 50 µm, pickling the cast strip, cold-rolling
the cast strip to a final product sheet thickness, and subjecting the obtained cold-rolled
sheet to final annealing, and pickling or bright annealing.
10. A process according to claim 9, wherein at the casting δ-Fe.cal (%) of the cast strip
defined by the formula of

is controlled from -2 to 10% to form a primary crystal of the δ phase at the solidification,
lower the temperature of initiation of crystallization or transformation of γ grains
and depress the growth of γ grains during and after the solidification.
1. Verfahren zur Herstellung eines rostfreien Cr-Ni-Stahlblechs mit ausgezeichneter Oberfläche
und Materialqualität, das aufweist:
Stranggießen eines rostfreien Cr-Ni-Stahls, dargestellt durch Stahl mit 18 % Cr und
8 % Ni, zu einem Band mit einer Dicke unter 10 mm mit einer Abkühlungsgeschwindigkeit
von mindestens 100 °C/s bei der Erstarrung unter Verwendung einer Stranggießmaschine,
bei der sich die Wandfläche einer Gußform synchron mit dem Gußband bewegt, das aus
δ-Fe.cal (%), definiert durch die Formel

, besteht und von -2 bis 10 % gesteuert wird, um einen Primärkristall der δ-Phase
bei der Erstarrung zu bilden, die Temperatur des Kristallisations- oder Ausscheidungsbeginns
von γ-Körnern zu senken und das γ-Kornwachstum während und nach der Erstarrung zu
unterdrücken,
Beginnen einer Abkühlung des gewonnenen Gußbands bei einer möglichst hohen Temperatur,
Abkühlen des Gußbands auf 1100 °C mit einer Abkühlungsgeschwindigkeit von mindestens
100 °C/s unter Verhinderung einer Wiedererwärmung des Gußbands, um die γ-Körner zu
verfeinern,
anschließendes Abkühlen des Gußbands in einem Temperaturbereich von 900 auf 550 °C
mit einer mittleren Abkühlungsgeschwindigkeit von mindestens 50 °C/s, um eine Ausscheidung
von Carbiden zu verhindern, und
Formen des Gußbands zu einem kaltgewalztem Blech nach herkömmlichen Verfahren.
2. Verfahren nach Anspruch 1, wobei das gewonnene Gußband auf 1200 °C mit einer Abkühlungsgeschwindigkeit
von mindestens 200 °C/s abgekühlt wird, um die γ-Körner so zu verfeinern, daß die
mittlere Korngröße unter 50 µm liegt.
3. Verfahren nach Anspruch 1 oder 2, wobei die Abkühlung auf 1200 °C mit einer Abkühlungsgeschwindigkeit
von mindestens 200 °C/s durch mindestens ein Paar Walzen mit Innenkühlung so erfolgt,
daß die Reduktion in dem Gußband unter 5 % liegt.
4. Verfahren nach Anspruch 1, 2 oder 3, wobei die Abkühlung des Gußbands nach der Erstarrung
unter Verwendung eines Gases und/oder einer Flüssigkeit erfolgt.
5. Verfahren zur Herstellung eines rostfreien Cr-Ni-Stahlblechs mit ausgezeichneter Oberfläche
und Materialqualität, das aufweist:
Stranggießen eines rostfreien Cr-Ni-Stahls, dargestellt durch Stahl mit 18 % Cr und
8 % Ni, zu einem Band mit einer Dicke unter 10 mm mit einer Abkühlungsgeschwindigkeit
von mindestens 100 °C/s bei der Erstarrung unter Verwendung einer Stranggießmaschine,
bei der sich die Wandfläche einer Gußform synchron mit dem Gußband bewegt,
Warmumformen des Gußbands im Temperaturbereich über 900 °C mit einer Reduktion unter
60 % nach der Erstarrung, um eine Rekristallisation im Inneren des Gußbands zu fördern
und die γ-Körner so zu verfeinern, daß die mittlere γ-Korngröße unter 50 µm liegt,
anschließendes Abkühlen des Gußbands in einem Temperaturbereich von 900 auf 550 °C
mit einer mittleren Abkühlungsgeschwindigkeit von mindestens 50 °C/s, um eine Ausscheidung
von Carbiden zu verhindern, und
Formen des Gußbands zu einem kaltgewalztem Blech nach herkömmlichen Verfahren.
6. Verfahren nach Anspruch 5, wobei beim Gießen δ-Fe.cal (%) des Gußbands, definiert
durch die Formel

, von -2 bis 10 % gesteuert wird, um einen Primärkristall der δ-Phase bei der Erstarrung
zu bilden, die Temperatur des Kristallisations- oder Umwandlungsbeginns von γ-Körnern
zu senken und das γ-Kornwachstum während und nach der Erstarrung zu unterdrücken.
7. Verfahren zur Herstellung eines rostfreien Cr-Ni-Stahlblechs mit ausgezeichneter Oberfläche
und Materialqualität, das aufweist:
Stranggießen eines rostfreien Cr-Ni-Stahls, dargestellt durch Stahl mit 18 % Cr und
8 % Ni, zu einem Band mit einer Dicke unter 10 mm mit einer Abkühlungsgeschwindigkeit
von mindestens 100 °C/s bei der Erstarrung unter Verwendung einer Stranggießmaschine,
bei der sich die Wandfläche einer Gußform synchron mit dem Gußband bewegt, das aus
δ-Fe.cal (%), definiert durch die Formel

, besteht und von -2 bis 10 % gesteuert wird, um einen Primärkristall der δ-Phase
bei der Erstarrung zu bilden, die Temperatur des Kristallisations- oder Umwandlungsbeginns
von γ-Körnern zu senken und das γ-Kornwachstum ab dem Zwischenpunkt der Erstarrung
zu unterdrücken,
Beginnen einer Abkühlung des gewonnenen Gußbands bei einer möglichst hohen Temperatur
unter Verhinderung einer Wiedererwärmung des Gußbands nach der Erstarrung,
Einstellen der mittleren Abkühlungsgeschwindigkeit auf 1100 °C auf mindestens 100
°C/s, gemessen im Hinblick auf die Oberflächentemperatur des Gußbands, um das γ-Kornwachstum
zu unterdrücken,
Warmumformen des Gußbands im Temperaturbereich über 900 °C mit einer Reduktion unter
60 % innerhalb von 10 Sekunden nach dem Gießabschlußpunkt, wo eine Temperaturdifferenz
zwischen dem Oberflächenabschnitt des Gußbands und der Gußbandmitte vorliegt, um eine
Rekristallisation in der Gußbandmitte zu fördern und die γ-Körner in dem Gußband so
zu verfeinern, daß die mittlere γ-Korngröße unter 50 µm liegt,
anschließendes Abkühlen des Gußbands in einem Temperaturbereich von 900 auf 550 °C
mit einer mittleren Abkühlungsgeschwindigkeit von mindestens 50 °C/s, um eine Ausscheidung
von Carbiden zu verhindern, und
Formen des Gußbands zu einem kaltgewalztem Blech nach herkömmlichen Verfahren.
8. Verfahren nach Anspruch 5, 6 oder 7, wobei nach dem Wickeln des Gußbands im Temperaturbereich
unter 650 °C das warmgewalzte Blech bei einer Temperatur über 950 °C zeitgesteuert
geglüht und anschließend mit einer Abkühlungsgeschwindigkeit von mindestens 10 °C/s
abgekühlt wird.
9. Verfahren zur Herstellung eines rostfreien Cr-Ni-Stahlblechs mit ausgezeichneter Oberfläche
und Materialqualität, das aufweist:
stranggießen eines rostfreien Cr-Ni-Stahls, dargestellt durch Stahl mit 18 % Cr und
8 % Ni, zu einem Band mit einer Dicke unter 100 mm mit einer Abkühlungsgeschwindigkeit
von mindestens 100 °C/s bei der Erstarrung unter Verwendung einer Stranggießmaschine,
bei der sich die Wandfläche einer Gußform synchron mit dem Gußband bewegt,
Beginnen einer Abkühlung des gewonnenen Gußbands bei einer möglichst hohen Temperatur,
Abkühlen des Gußbands auf 1100 °C mit einer Abkühlungsgeschwindigkeit von mindestens
100 °C/s unter Verhinderung einer Wiedererwärmung des Gußbands, um das γ-Kornwachstum
zu unterdrücken,
anschließendes Abkühlen des Gußbands im Temperaturbereich von 900 auf 550 °C mit einer
Abkühlungsgeschwindigkeit von mindestens 50 °C/s,
Wickeln des Gußbands im Temperaturbereich unter 650 °C,
Beizen des Gußbands ohne Glühen,
kaltes Vorwalzen des Gußbands mit einer Reduktion unter 60 %,
anschließendes Glühen des Gußbands bei einer Temperatur über 850 °C, um eine Rekristallisation
zu fördern und die mittlere γ-Korngröße unter 50 µm einzustellen,
Beizen des Gußbands,
Kaltwalzen des Gußbands auf eine Fertigprodukt-Blechdicke, und
Fertigglühen und Beizen oder Blankglühen des hergestellten kaltgewalzten Blechs.
10. Verfahren nach Anspruch 9, wobei beim Gießen δ-Fe.cal (%) des Gußbands, definiert
durch die Formel

), von -2 bis 10 % gesteuert wird, um einen Primärkristall der δ-Phase bei der Erstarrung
zu bilden, die Temperatur des Kristallisations- oder Umwandlungsbeginns von γ-Körnern
zu senken und das γ-Kornwachstum während und nach der Erstarrung zu unterdrücken.
1. Procédé de production d'une tôle d'acier inoxydable de type Cr-Ni, présentant d'excellentes
caractéristiques superficielles et une excellente qualité de matériau, qui consiste
à couler en continu un acier inoxydable de type Cr-Ni, représenté par un acier 18
% Cr - 8 % Ni, pour obtenir une bande ayant une épaisseur inférieure à 10 mm, à une
vitesse de refroidissement d'au moins 100°C/s à la solidification, par utilisation
d'une machine de coulée continue dans laquelle la surface de paroi d'un moule de coulée
se déplace d'une manière synchrone avec la bande coulée, constituée de δ-Fe.cal (%),
défini par la formule

, une régulation étant effectuée de -2 à 10 % pour former un cristal primaire de la
phase δ à la solidification, à abaisser la température d'amorçage de la cristallisation
ou de précipitation des grains γ, et à ralentir la croissance des grains γ pendant
et après la solidification, à déclencher un refroidissement de la bande coulée obtenue
à une température aussi élevée que possible, à refroidir la bande coulée à 1100°C
à une vitesse de refroidissement d'au moins 100°C/s tout en empêchant une rechauffe
de la bande coulée, pour obtenir des grains γ plus fins, puis à refroidir la bande
coulée sur un intervalle de température de 900 à 550°C, à une vitesse moyenne de refroidissement
d'au moins 50°C/s, pour éviter une précipitation des carbures, et à transformer la
bande coulée en une tôle laminée à froid, selon des techniques usuelles.
2. Procédé selon la revendication 1, dans lequel la bande coulée obtenue est refroidie
à 1200°C à une vitesse de refroidissement d'au moins 200°C/s pour affiner les grains
γ, de façon que la grosseur moyenne des grains soit inférieure à 50 µm.
3. Procédé selon la revendication 1 ou 2, dans lequel le refroidissement à 1200°C à une
vitesse de refroidissement d'au moins 200°C/s est réalisé par au moins une paire de
cylindres du type à refroidissement interne, de façon que la réduction de la bande
coulée soit inférieure à 5 %.
4. Procédé selon la revendication 1, 2 ou 3, dans lequel le refroidissement de la bande
coulée, après solidification, est réalisé par utilisation d'un gaz et/ou d'un liquide.
5. Procédé de production d'une tôle d'acier inoxydable de type Cr-Ni présentant d'excellentes
caractéristiques superficielles et une excellente qualité de matériau, qui consiste
à couler en continu un acier inoxydable de type Cr-Ni, représenté par un acier 18
% Cr-8 % Ni, pour obtenir une bande ayant une épaisseur inférieure à 10 mm, à une
vitesse de refroidissement d'au moins 100°C/s à la solidification, par utilisation
d'une machine de coulée continue dans laquelle la surface de paroi d'un moule de coulée
se déplace d'une manière synchrone avec la bande coulée, à travailler à chaud la bande
coulée sur la plage de température supérieure à 900°C, pour une réduction inférieure
à 60 % après la solidification, pour faire progresser la recristallisation à l'intérieur
de la bande coulée, et rendre les grains γ plus fins de façon que la grosseur moyenne
des grains γ soit inférieure à 50 µm, puis à refroidir la bande coulée sur un intervalle
de température de 900 à 550°C, à une vitesse moyenne de refroidissement d'au moins
50°C/s, pour éviter une précipitation des carbures, et à transformer la bande coulée
en une tôle laminée à froid, selon des techniques usuelles.
6. Procédé selon la revendication 5, dans lequel, au moment de la coulée, on ajuste le
pourcentage de δ-Fe.cal de la bande coulée définie par la formule

, entre -2 à 10 %, pour former un cristal primaire de la phase δ à la solidification,
on abaisse la température d'amorçage de la cristallisation ou de la transformation
des grains γ, et on ralentit la croissance des grains γ pendant et après la solidification.
7. Procédé de production d'une tôle d'acier inoxydable de type Cr-Ni présentant d'excellentes
caractéristiques superficielles et une excellente qualité de matériau, qui consiste
à couler en continu un acier inoxydable de type Cr-Ni, représenté par un acier 18
% Cr-8 % Ni, pour obtenir une bande ayant une épaisseur inférieure à 10 mm, à une
vitesse de refroidissement d'au moins 100°C/s à la solidification, par utilisation
d'une machine de coulée continue, dans laquelle la surface de paroi d'un moule de
coulée se déplace d'une manière synchrone avec la bande coulée dans laquelle le pourcentage
δ-Fe.cal (%), défini par la formule

, est ajusté entre -2 et 10 %, pour former un cristal primaire de la phase δ à la
solidification, à abaisser la température d'amorçage de la cristallisation ou de la
transformation des grains γ, et à ralentir la croissance des grains γ à partir du
point intermédiaire de la solidification, à lancer le refroidissement de la bande
coulée ainsi obtenue à une température aussi élevée que possible, tout en empêchant
une rechauffe de la bande coulée après la solidification, à ajuster la vitesse moyenne
de refroidissement à 1100°C à au moins 100°C/s telle que mesurée par rapport à la
température superficielle de la bande coulée, pour ralentir la croissance des grains
γ, à travailler à chaud la bande coulée à des températures supérieures à 900°C, pour
une réduction inférieure à 60 %, dans les dix secondes qui suivent la fin de la coulée,
instant où on est en présence d'une différence de température entre la portion superficielle
de la bande coulée et le centre de la bande coulée, pour faire progresser la recristallisation
au centre de la bande coulée et rendre les grains γ de la bande coulée plus fins de
façon que la grosseur moyenne des grains γ soit inférieure à 50 µm, puis à refroidir
la bande coulée sur un intervalle de température de 900 à 550°C, à une vitesse moyenne
de refroidissement d'au moins 50°C/s, pour éviter une précipitation des carbures,
et à transformer la bande coulée en une tôle laminée à froid, selon les techniques
usuelles.
8. Procédé selon la revendication 5, 6 ou 7, dans lequel, après que la bande coulée a
été enroulée à des températures inférieures à 650°C, la tôle laminée à chaud est recuite
à une température supérieure à 950°C pendant un laps de temps régulé, puis est refroidie
à une vitesse de refroidissement d'au moins 10°C/s.
9. Procédé de production d'une tôle d'acier inoxydable de type Cr-Ni présentant d'excellentes
caractéristiques superficielles et une excellente qualité de matériau, qui consiste
à couler en continu un acier inoxydable de type Cr-Ni, représenté par un acier 18
% Cr-8 % Ni, pour obtenir une bande ayant une épaisseur inférieure à 100 mm, à une
vitesse de refroidissement d'au moins 100°C/s à la solidification, par utilisation
d'une machine de coulée continue dans laquelle la surface de paroi d'un moule de coulée
se déplace d'une manière synchrone avec la bande coulée, à amorcer le refroidissement
de la bande coulée obtenue à une température aussi élevée que possible, à refroidir
la bande coulée à 1100°C à une vitesse de refroidissement d'au moins 100°C/s tout
en empêchant une rechauffe de la bande coulée, à ralentir la croissance des grains
γ, puis à refroidir la bande coulée à une température de 900°C à 550°C à une vitesse
de refroidissement d'au moins 50°C/s, à enrouler la bande coulée à une température
inférieure à 650°C, à décaper la bande coulée sans recuit, à soumettre la bande coulée
à un laminage à froid préliminaire, pour une réduction inférieure à 60 %, puis à recuire
la bande coulée à une température supérieure à 850°C pour faire progresser la recristallisation
et ajuster la grosseur moyenne des grains γ en dessous de 50 µm, à décaper la bande
coulée, à laminer à froid la bande coulée jusqu'à l'épaisseur finale de la tôle produite,
et à soumettre la tôle laminée à froid ainsi obtenue à un recuit final, et à un décapage
ou à un recuit blanc.
10. Procédé selon la revendication 9, dans lequel, au moment de la coulée, le pourcentage
δ-Fe.cal (%) de la bande coulée, définie par la formule

), est ajusté entre -2 et 10 %, pour former un cristal primaire de la phase δ à la
solidification, à abaisser la température d'amorçage de la cristallisation ou de la
transformation des grains γ, et à ralentir la croissance des grains γ pendant et après
la solidification.