[Technical Field]
[0001] The present disclosure relates to a ferritic stainless steel and a manufacturing
method therefor.
[Background Art]
[0002] Ferritic stainless steels are used in various industrial fields such as home appliances,
kitchen utensils, and automobile parts.
[0003] Recently, due to the enlargement of home appliances, in the case of washing machines
or dryers, the thickness of a material must be further increased to secure the safety
of the product, but this causes problems of increasing the weight of the product and
increasing the amount of CO
2 generation. Therefore, in order to prevent an increase in the thickness of the material,
there is a need to improve the yield strength of the material.
[0004] To this end, attempts have been made to increase the yield strength through skin
pass rolling or the like in the related art, but this causes a problem that the yield
strength of a weld portion decreases again, thereby increasing the difference in strength
between a base metal portion and the weld portion.
[Disclosure]
[Technical Problem]
[0005] In order to solve the above-described problems, an object of the present disclosure
is to provide a high-strength ferritic stainless steel capable of improving the strength
of a material and reducing a difference in strength between a base metal portion and
a weld portion by controlling an alloy composition and optimizing a manufacturing
method, and a manufacturing method therefor.
[0006] The technical problems to be achieved in the present document are not limited to
the technical problems mentioned above, and other technical problems not mentioned
herein will be clearly understood from the following description by those skilled
in the art to which the present disclosure pertains.
[Technical Solution]
[0007] In accordance with an aspect of the present disclosure to achieve the above-described
objects, a ferritic stainless steel includes, in percent by weight (wt%), 0.0005 to
0.0200% of carbon (C), 0.005 to 0.020% of nitrogen (N), 0.01 to 2.00% of silicon (Si),
0.01 to 1.00% of manganese (Mn), 0.001 to 0.050% of phosphorus (P), 13 to 25% of chromium
(Cr), 0.01 to 2.00% of copper (Cu), 0.05 to 0.50% of titanium (Ti), and the balance
of iron (Fe) and inevitable impurities, wherein Formula (1) below is satisfied.

(wherein [Si], [Cu], and [Cr] represent amounts (wt%) of respective elements)
[0008] In addition, the stainless steel according to an embodiment of the present disclosure
may have a yield strength at room temperature of 350 MPa or more.
[0009] In addition, in the stainless steel according to an embodiment of the present disclosure,
a difference in yield strength at room temperature between a base metal portion and
a weld portion may be 30 MPa or less.
[0010] In addition, the stainless steel according to an embodiment of the present disclosure
may have a skin pass rolling (SPM) elongation of 0.1 to 1.0%.
[0011] In accordance with another aspect of the present disclosure, a method for manufacturing
a ferritic stainless steel includes: reheating a slab including, in percent by weight
(wt%), 0.0005 to 0.0200% of carbon (C), 0.005 to 0.020% of nitrogen (N), 0.01 to 2.00%
of silicon (Si), 0.01 to 1.00% of manganese (Mn), 0.001 to 0.050% of phosphorus (P),
13 to 25% of chromium (Cr), 0.01 to 2.00% of copper (Cu), 0.05 to 0.50% of titanium
(Ti), and the balance of iron (Fe) and inevitable impurities, and satisfying Formula
(1) below; hot rolling the slab such that a finish rolling entry temperature is 900°C
to 1100°C after the reheating; hot annealing the hot-rolled steel sheet at 900°C to
1100°C for 1 to 10 minutes after the hot rolling; and cold rolling and cold annealing
the hot-annealed steel sheet 1 to 5 times after the hot annealing.

(wherein [Si], [Cu], and [Cr] represent amounts (wt%) of respective elements)
[0012] In addition, the reheating according to an embodiment of the present disclosure may
be performed at 1100 to 1300°C for 2 to 4 hours.
[0013] In addition, the cold annealing according to an embodiment of the present disclosure
may be performed at 800 to 1050°C for 30 to 200 seconds.
[0014] In addition, in the manufacturing of the steel sheet according to an embodiment of
the present disclosure, a final cold rolling reduction ratio may be 40% or more.
[Advantageous Effects]
[0015] The ferritic stainless steel of the present disclosure can improve the strength of
the material and reduce the difference in strength between the base metal portion
and the weld portion by controlling the alloy composition and optimizing the manufacturing
method.
[0016] The effects obtainable in the present disclosure are not limited to the effects mentioned
above, and other effects not mentioned herein will be clearly understood from the
following description by those skilled in the art to which the present disclosure
pertains.
[Description of Drawings]
[0017] FIG. 1 is a graph showing the correlation between Si, Cu, and Cr components in an
alloy composition and yield strength at room temperature of a base metal portion according
to an embodiment of the present disclosure.
[Modes of the Invention]
[0018] Hereinafter, embodiments of the present disclosure will be described in detail with
reference to the accompanying drawings. The following embodiments are presented to
sufficiently convey the spirit of the present disclosure to those skilled in the art
to which the present disclosure pertains. The present disclosure is not limited to
the embodiments presented herein and may be embodied in other forms. In the drawings,
illustration of parts unrelated to the description is omitted to clarify the present
disclosure, and sizes of components may be somewhat exaggerated for understanding.
[0019] In addition, the term "including" a certain component means that the component may
further include other components rather than excluding other components unless specifically
stated to the contrary.
[0020] Singular expressions include plural expressions unless the context clearly indicates
an exception.
[0021] The present disclosure intends to manufacture a high-strength ferritic stainless
steel by simultaneously securing the strength of a base metal portion and a weld portion,
thereby reducing a difference in yield strength at room temperature between the base
metal portion and the weld portion.
[0022] A ferritic stainless steel according to an embodiment of the present disclosure includes,
in percent by weight (wt%), 0.0005 to 0.0200% of carbon (C), 0.005 to 0.020% of nitrogen
(N), 0.01 to 2.00% of silicon (Si), 0.01 to 1.00% of manganese (Mn), 0.001 to 0.050%
of phosphorus (P), 13 to 25% of chromium (Cr), 0.01 to 2.00% of copper (Cu), 0.05
to 0.50% of titanium (Ti), and the balance of iron (Fe) and inevitable impurities.
[0023] Hereinafter, the reasons for limiting the composition of the steel will be described
in detail. All component compositions below mean percent by weight (wt%) unless otherwise
specified.
[0024] The content of carbon (C) may be 0.0005% to 0.0200%.
[0025] A C content of less than 0.0005% may increase a refining cost for manufacturing a
high-purity product, and a C content exceeding 0.0200% may deteriorate corrosion resistance
and formability. In consideration of this, the content of C may be 0.0005% to 0.0200%.
[0026] The content of nitrogen (N) may be 0.005% to 0.020%.
[0027] A N content of less than 0.005% decreases TiN crystallization, potentially lowering
the equiaxed crystal ratio of a slab, and a N content exceeding 0.020% may deteriorate
corrosion resistance and formability. In consideration of this, the content of N may
be 0.005% to 0.020%.
[0028] The content of silicon (Si) may be 0.01% to 2.00%.
[0029] A Si content of less than 0.01% may make refining difficult, and a Si content exceeding
2.00% may cause surface defects and deteriorate formability. In consideration of this,
the content of Si may be 0.01% to 2.00%.
[0030] The content of manganese (Mn) may be 0.01% to 1.00%.
[0031] A Mn content of less than 0.01% may increase the refining cost, and a Mn content
exceeding 1.00% increases impurities, potentially deteriorating formability. In consideration
of this, the content of Mn may be 0.01% to 1.00%.
[0032] The content of phosphorus (P) may be 0.001% to 0.050%.
[0033] A P content of less than 0.001% may increase the refining cost, and a P content exceeding
0.050% increases impurities, potentially deteriorating formability. In consideration
of this, the content of P may be 0.001% to 0.050%.
[0034] The content of chromium (Cr) may be 13% to 25%.
[0035] A Cr content of less than 13.0% may deteriorate corrosion resistance, and a Cr content
exceeding 25% may deteriorate formability. In consideration of this, the content of
Cr may be 13% to 25%.
[0036] The content of copper (Cu) may be 0.01% to 2.00%.
[0037] A Cu content of less than 0.01% may make it difficult to secure strength, and a Cu
content exceeding 2.00% may cause edge cracks due to local liquefaction of copper.
In consideration of this, the content of Cu may be 0.01% to 2.00%.
[0038] The content of titanium (Ti) may be 0.05% to 0.50%.
[0039] A Ti content of less than 0.05% may decrease corrosion resistance, and a Ti content
exceeding 0.50% may increase the generation of steelmaking inclusions.
[0040] The remaining component is iron (Fe). However, since unintended impurities from raw
materials or surrounding environments may inevitably be incorporated in a typical
manufacturing process, the impurities cannot be excluded. Since these impurities are
known to any person skilled in the art of a typical manufacturing process, all details
thereof are not specifically mentioned in the present specification.
[0041] The disclosed invention intends to improve the strength of the material and reduce
the difference in strength between the base metal portion and the weld portion by
controlling the above-described alloy composition and the manufacturing method described
below.
[0042] To this end, in the present disclosure, the strength of the material can be secured
by controlling the contents of Si, Cu, and Cr among the above-described alloy components
as in Formula (1) below.

[0043] In Formula (1), each element symbol is a value representing the content of each element
in wt%.
[0044] In order to secure the yield strength at room temperature of the base metal portion
of 350 MPa or more, the value of 7 x [Si] + 4 x [Cu] + 0.2 x [Cr] in Formula (1) is
preferably 10 or more. A value of 7 x [Si] + 4 x [Cu] + 0.2 x [Cr] of less than 10
results in a small solid solution strengthening effect of Si, Cu, and Cr, potentially
causing the yield strength at room temperature of the base metal portion to be less
than 350 MPa. The upper limit of Formula (1) may be, for example, 27 or less, 25 or
less, 20 or less, or 18 or less. In this case, the effect of reducing the difference
while satisfying the desired degree of yield strength at room temperature of the base
metal portion and yield strength at room temperature of the weld portion, respectively,
may be further improved.
[0045] In an example, controlling the value of Formula (1) to be in the range of 10 to 27,
specifically 11 to 15, may further improve the effect of reducing the difference while
further increasing the yield strength at room temperature of the base metal portion
and the yield strength at room temperature of the weld portion, respectively.
[0046] A yield strength at room temperature of the base metal portion of less than 350 MPa
excessively increases the thickness required for securing safety when applied to home
appliances, large home appliances, etc., making it difficult to satisfy the desired
degree of strength and lightweight characteristics. The upper limit of the yield strength
at room temperature of the base metal portion is not limited, but may be, for example,
700 MPa or less, 650 MPa or less, 600 MPa or less, 550 MPa or less, 500 MPa or less,
450 MPa or less, etc. in order to satisfy workability, formability, weldability, etc.
required for application to home appliances, large home appliances, etc.
[0047] In addition, the addition of Si, Cu, and Cr as in Formula (1) results in their dissolution
in a ferrite matrix to increase the strength of the base metal portion, and even if
exposed to high temperatures during welding, the strength is maintained due to solid
solution elements, so that the difference in strength between the base metal portion
and the weld portion can be reduced.
[0048] On the other hand, increasing the strength through an increase in skin pass rolling
(SPM) elongation as in the related art increases the yield strength at room temperature
of the base metal portion due to dislocation generation and accumulation, but in the
weld portion, dislocations generated due to high temperature exposure disappear and
the strength decreases, so that the difference in strength between the base metal
portion and the weld portion becomes 30 MPa or more, potentially causing problems
in the stability of the final product.
[0049] As described above, in the present disclosure, in order to reduce the difference
in strength between the base metal portion and the weld portion, the contents of Si,
Cu, and Cr are adjusted such that the value of 7x[Si]+4x[Cu]+0.2x[Cr] of Formula (1)
is 10 or more, thereby simultaneously increasing the strength of the base metal portion
and the weld portion and allowing the difference in yield strength at room temperature
between the base metal portion and the weld portion to be less than 30 MPa.
[0050] Therefore, the ferritic stainless steel according to an embodiment of the present
disclosure may have a yield strength at room temperature of the base metal portion
of 350 MPa or more, a difference in yield strength at room temperature between the
base metal portion and the weld portion of 30 MPa or less, and a skin pass rolling
(SPM) elongation of 0.1 to 1.0%.
[0051] A yield strength at room temperature of the base metal portion of less than 350 MPa
may make it impossible to manufacture a high-strength material. A difference in yield
strength at room temperature between the base metal portion and the weld portion exceeding
30 MPa poses a risk of sheet breakage and cracking. In addition, a skin pass rolling
elongation of less than 0.1% results in an insignificant effect of increasing the
yield strength at room temperature and potentially inferior sheet shape, and an elongation
exceeding 1.0% increases the yield strength at room temperature of the base metal
portion, but decreases the yield strength at room temperature of the weld portion,
potentially increasing the difference in strength between the base metal portion and
the weld portion.
[0052] For the above reasons, the yield strength at room temperature of the weld portion
may be 320 MPa or more. The upper limit of the yield strength at room temperature
of the weld portion is not limited, but may be, for example, -30 MPa to +30 MPa of
the upper limit of the yield strength of the base metal portion described above. Within
the above range, for example, physical properties more advantageous for satisfying
workability, formability, weldability, etc. required for application to home appliances,
large home appliances, etc. can be implemented.
[0053] Next, a method for manufacturing a ferritic stainless steel according to an embodiment
of the present disclosure will be described.
[0054] A method for manufacturing a ferritic stainless steel according to an embodiment
of the present disclosure may include: reheating a slab including, in percent by weight
(wt%), 0.0005 to 0.0200% of carbon (C), 0.005 to 0.020% of nitrogen (N), 0.01 to 2.00%
of silicon (Si), 0.01 to 1.00% of manganese (Mn), 0.001 to 0.050% of phosphorus (P),
13 to 25% of chromium (Cr), 0.01 to 2.00% of copper (Cu), 0.05 to 0.50% of titanium
(Ti), and the balance of iron (Fe) and inevitable impurities, and satisfying Formula
(1) above; hot rolling the slab such that a finish rolling entry temperature is 900°C
to 1100°C after the reheating; hot annealing the hot-rolled steel sheet at 900°C to
1100°C for 1 to 10 minutes after the hot rolling; and cold rolling and cold annealing
the hot-annealed steel sheet 1 to 5 times after the hot annealing.
[0055] In the present disclosure, in order to reduce the difference in yield strength at
room temperature between the base metal portion and the weld portion to 30 MPa or
less, hot annealing was performed at 900°C or higher for a sufficient solid solution
effect of Cu, and through such control of the manufacturing method, the strength improvement
of the base material and the strength maintenance of the weld portion are maintained
by the solid solution of Cu, thereby reducing the difference in yield strength at
room temperature between the base metal portion and the weld portion.
[0056] The reasons for limiting the component ranges of the respective alloy elements are
as described above, and hereinafter, each manufacturing step will be described in
more detail.
[0057] After manufacturing a slab satisfying the above alloy composition, a series of processes
of reheating, hot rolling, hot annealing, cold rolling, and cold annealing may be
performed.
[0058] First, the slab may be reheated at 1100 to 1300°C for 2 to 4 hours, and then hot
rolled and hot annealed to manufacture a hot-rolled material.
[0059] The reheating temperature may be 1100°C or higher for reducing a hot rolling load,
and may be limited to 1300°C or lower for preventing internal grain coarsening. A
reheating time of less than 2 hours may fail to sufficiently secure the slab temperature,
potentially increasing the rolling load and causing frequent surface defects, and
a reheating time exceeding 4 hours may cause slab sagging or edge cracks in a heating
furnace.
[0060] The hot rolling may be performed such that the finish rolling entry temperature is
900°C to 1100°C, and the thickness of the hot-rolled steel sheet thus hot-rolled may
be 2 to 6 mm.
[0061] A finish rolling entry temperature of less than 900°C during the hot rolling may
increase the rolling load and shape defects, thereby decreasing productivity, and
a temperature exceeding 1100°C may cause surface quality deterioration due to oxide
increase and material degradation due to texture deterioration caused by excessive
high-temperature operation.
[0062] The hot annealing may be performed at 900 to 1100°C for 1 to 10 minutes.
[0063] A hot annealing temperature of less than 900°C may prevent recrystallization, failing
to form a texture, and a temperature exceeding 1100°C may coarsen crystal grains and
weaken the strength of the steel sheet. In addition, a hot annealing time of less
than 1 minute may prevent smooth recrystallization, and a time exceeding 10 minutes
may coarsen crystal grains, weakening the strength of the steel sheet.
[0064] The hot-annealed hot-rolled material may be cold rolled and cold annealed one or
more times, preferably 1 to 5 times.
[0065] Through the initial cold rolling and cold annealing, deformation in the steel of
the hot-rolled material may be caused, and precipitate formation may be induced to
proceed smoothly during subsequent processes. Through the secondary and subsequent
cold rolling and cold annealing, a large number of precipitates are precipitated,
and recrystallization is induced to secure fine crystal grains. At this time, since
the manufacturing cost may increase as the number of cold rolling and cold annealing
increases, the cold rolling and cold annealing may be performed 5 times or less.
[0066] The cold annealing may be performed at 800 to 1050°C for 30 to 200 seconds, and the
thickness of the final cold-rolled product thus cold-annealed may be 0.1 to 2 mm.
[0067] A cold annealing temperature of less than 800°C may insufficiently recrystallize
the rolled structure, deteriorating workability, and a temperature exceeding 1050°C
may coarsen crystal grains and cause sheet breakage.
[0068] In the step of manufacturing the steel sheet, the final cold rolling reduction ratio
may be 40% or more.
[0069] A final cold rolling reduction ratio of less than 40% may result in insufficient
deformation, making it difficult to implement fine crystal grains.
[0070] Hereinafter, the present disclosure will be described in more detail through examples.
However, the description of these examples is only for illustrating the implementation
of the present disclosure, and the present disclosure is not limited by the description
of these examples. This is because the scope of rights of the present disclosure is
determined by matters described in the claims and matters reasonably inferred therefrom.
Examples
[0071] Slabs were manufactured in a vacuum induction melting furnace to satisfy various
alloy compositions shown in Table 1 below.
[0072] The manufactured slabs were reheated in a heating furnace at 1200°C for 2 to 4 hours,
hot rolled such that a finish rolling entry temperature became 1000°C, and then hot
annealed at 1050°C for 5 minutes to manufacture hot-rolled materials having a thickness
of 3 mm. The hot-rolled materials were cold rolled and cold annealed at 900°C for
100 seconds to manufacture final cold-rolled products having a thickness of 0.5 mm.
At this time, cold rolling and cold annealing were performed once. The final reduction
ratio of each specimen was performed at 83%.
[0073] The unit of Table 1 below is percent by weight (wt%).
[Table 1]
| Category |
|
C |
N |
Mn |
P |
Cr |
Si |
Cu |
Ti |
7x[Si]+4x[Cu]+ 0.2x[Cr] |
| Example 1 |
|
0.01 |
0.01 |
0.25 |
0.02 |
16.2 |
0.4 |
1.2 |
0.23 |
10.8 |
| Example 2 |
|
0.01 |
0.01 |
0.21 |
0.02 |
16.3 |
0.9 |
1 |
0.27 |
13.6 |
| Example 3 |
|
0.01 |
0.01 |
0.19 |
0.02 |
16.2 |
1.5 |
0.1 |
0.26 |
14.1 |
| Example 4 |
|
0.01 |
0.01 |
0.22 |
0.02 |
18.4 |
1.1 |
1.5 |
0.23 |
17.4 |
| Example 5 |
|
0.01 |
0.01 |
0.24 |
0.02 |
20.2 |
0.4 |
1.1 |
0.26 |
11.2 |
| Comparative Example 1 |
|
0.01 |
0.01 |
0.23 |
0.02 |
13.7 |
0.3 |
0.3 |
0.27 |
6.0 |
| Comparative Example 2 |
|
0.01 |
0.01 |
0.19 |
0.02 |
16.2 |
0.2 |
0.1 |
0.24 |
5.0 |
| Comparative Example 3 |
|
0.01 |
0.01 |
0.18 |
0.02 |
18.5 |
0.1 |
0.6 |
0.23 |
6.8 |
| Comparative Example 4 |
|
0.01 |
0.01 |
0.21 |
0.03 |
20.5 |
0.2 |
0.7 |
0.25 |
8.3 |
| Comparative Example 5 |
|
0.01 |
0.01 |
0.22 |
0.02 |
20.4 |
0.1 |
0.3 |
0.27 |
6.0 |
[0074] Table 2 below shows the skin pass rolling (SPM) elongation, the yield strength at
room temperature of the base metal portion, the yield strength at room temperature
of the weld portion, and the difference in yield strength at room temperature between
the base metal portion and the weld portion of the manufactured cold-rolled products.
Comparative Examples 6 and 7 in Table 2 below were tested by increasing the skin pass
rolling elongation of Comparative Examples 4 and 5 from 0.5% to 1.2%. The yield strength
at room temperature of the base metal portion was measured by processing the specimen
into JIS13B in a direction of 90 degrees to the rolling direction for the cold-rolled
product, and the yield strength at room temperature of the weld portion was measured
such that a welding line came to the center of the gauge perpendicular to the tensile
direction.
[Table 2]
| Category |
7x[Si]+4x[Cu] +0.2x[Cr] |
Skin pass rolling elongation (%) |
Yield strength at room temperature of base metal portion (MPa) |
Yield strength at room temperature of weld portion (MPa) |
Base metal portion - Weld portion yield strength at room temperature (MPa) |
| Example 1 |
10.8 |
0.4 |
367 |
354 |
13 |
| Example 2 |
13.6 |
0.4 |
401 |
395 |
6 |
| Example 3 |
14.1 |
0.4 |
423 |
420 |
3 |
| Example 4 |
17.4 |
0.4 |
386 |
372 |
14 |
| Example 5 |
11.2 |
0.4 |
365 |
357 |
8 |
| Comparative Example 1 |
6.0 |
0.4 |
284 |
274 |
10 |
| Comparative Example 2 |
5.0 |
0.4 |
287 |
268 |
19 |
| Comparative Example 3 |
6.8 |
0.5 |
335 |
310 |
25 |
| Comparative Example 4 |
8.3 |
0.5 |
305 |
283 |
22 |
| Comparative Example 5 |
6.0 |
0.5 |
310 |
296 |
14 |
| Comparative Example 6 |
8.3 |
1.2 |
384 |
327 |
57 |
| Comparative Example 7 |
6.0 |
1.2 |
378 |
337 |
41 |
[0075] As shown in Table 2, Examples 1 to 5 satisfied the alloy components and the manufacturing
method presented in the disclosed invention. Therefore, it was confirmed that the
value of 7x[Si]+4x[Cu]+0.2x[Cr] was 10 or more, simultaneously increasing the strength
of the base metal portion and the weld portion, so that the difference in yield strength
at room temperature between the base metal portion and the weld portion was less than
30 MPa. From these results, it could be seen that according to the present disclosure,
the difference in yield strength between the base metal portion and the weld portion
can be reduced by simultaneously securing the yield strength of the base metal portion
and the weld portion. On the other hand, although Comparative Examples 1 to 7 satisfied
the alloy composition presented in the disclosed invention, the value of 7x[Si]+4x[Cu]+0.2x[Cr]
did not satisfy 10 or more. Therefore, it was confirmed that the yield strength at
room temperature of the base metal portion was less than 350 MPa. In addition, in
the case of Comparative Examples 6 and 7 in which the skin pass rolling elongation
was increased from 0.5% to 1.2% in order to increase the strength of the base metal
portion in Comparative Examples 4 and 5, the yield strength at room temperature of
the base metal portion increased, but the yield strength at room temperature of the
weld portion decreased again due to high temperature exposure, so that it was confirmed
that the difference in strength between the base metal portion and the weld portion
exceeded 30 MPa, and it was confirmed that this caused a problem in the safety of
the final product.
[0076] FIG. 1 is a graph showing the correlation between Si, Cu, and Cr components in the
alloy composition and the yield strength at room temperature of the base metal portion
of Examples 1 to 5 and Comparative Examples 1 to 5.
[0077] As shown in FIG. 1, controlling the value of 7x[Si]+4x[Cu]+0.2x[Cr] to 10 or more
enabled the adjustment of the yield strength at room temperature of the base metal
portion to 350 MPa or more, and from these results, it could be seen that if the alloy
components and the manufacturing method presented in the disclosed invention are satisfied,
the difference in yield strength at room temperature between the base metal portion
and the weld portion can be made less than 30 MPa by simultaneously increasing the
strength of the base metal portion and the weld portion.
[0078] Although the embodiments of the disclosed invention have been illustrated and described
above, the disclosed invention is not limited to the specific embodiments described
above, and various modifications may be made by those skilled in the art to which
the disclosed invention pertains without departing from the gist claimed in the claims.
1. A ferritic stainless steel comprising, in percent by weight (wt%), 0.0005 to 0.0200%
of carbon (C), 0.005 to 0.020% of nitrogen (N), 0.01 to 2.00% of silicon (Si), 0.01
to 1.00% of manganese (Mn), 0.001 to 0.050% of phosphorus (P), 13 to 25% of chromium
(Cr), 0.01 to 2.00% of copper (Cu), 0.05 to 0.50% of titanium (Ti), and the balance
of iron (Fe) and inevitable impurities, and
satisfying Formula (1) below:

(wherein [Si], [Cu], and [Cr] represent amounts (wt%) of respective elements).
2. The ferritic stainless steel according to claim 1, wherein the ferritic stainless
steel has a yield strength at room temperature of a base metal portion of 350 MPa
or more.
3. The ferritic stainless steel according to claim 1, wherein the ferritic stainless
steel has a difference in yield strength at room temperature between a base metal
portion and a weld portion of 30 MPa or less.
4. The ferritic stainless steel according to claim 1, wherein the ferritic stainless
steel has a skin pass rolling (SPM) elongation of 0.1 to 1.0%.
5. A method for manufacturing a ferritic stainless steel, the method comprising:
reheating a slab comprising, in percent by weight (wt%), 0.0005 to 0.0200% of carbon
(C), 0.005 to 0.020% of nitrogen (N), 0.01 to 2.00% of silicon (Si), 0.01 to 1.00%
of manganese (Mn), 0.001 to 0.050% of phosphorus (P), 13 to 25% of chromium (Cr),
0.01 to 2.00% of copper (Cu), 0.05 to 0.50% of titanium (Ti), and the balance of iron
(Fe) and inevitable impurities, and satisfying Formula (1) below;
hot rolling the slab such that a finish rolling entry temperature is 900°C to 1100°C
after the reheating;
hot annealing the hot-rolled steel sheet at 900°C to 1100°C for 1 to 10 minutes after
the hot rolling; and
cold rolling and cold annealing the hot-annealed steel sheet 1 to 5 times after the
hot annealing.

(wherein [Si], [Cu], and [Cr] represent amounts (wt%) of respective elements).
6. The method for manufacturing a ferritic stainless steel according to claim 5, wherein
the reheating is performed at 1100 to 1300°C for 2 to 4 hours.
7. The method for manufacturing a ferritic stainless steel according to claim 5, wherein
the cold annealing is performed at 800 to 1050°C for 30 to 200 seconds.
8. The method for manufacturing a ferritic stainless steel according to claim 5, wherein
in the manufacturing of the steel sheet, a final cold rolling reduction ratio is 40%
or more.