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EP 1 704 261 B1 |
| (12) |
EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
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13.06.2012 Bulletin 2012/24 |
| (22) |
Date of filing: 21.12.2004 |
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| (51) |
International Patent Classification (IPC):
|
| (86) |
International application number: |
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PCT/KR2004/003375 |
| (87) |
International publication number: |
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WO 2005/061748 (07.07.2005 Gazette 2005/27) |
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BAKE-HARDENABLE COLD ROLLED STEEL SHEET HAVING EXCELLENT FORMABILITY, AND METHOD OF
MANUFACTURING THE SAME
DURCH BAKE-HARDENUNG HÄRTBARES KALTGEWALZTES STAHLBLECH MIT HERVORRAGENDER FORMBARKEIT
UND HERSTELLUNGSVERFAHREN DAFÜR
ACIER LAMINE A FROID DURCI AU FOUR PRESENTANT UNE EXCELLENTE FORMABILITE, ET PROCEDE
DE FABRICATION DUDIT ACIER
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Designated Contracting States: |
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AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IS IT LI LT LU MC NL PL PT RO SE SI
SK TR |
| (30) |
Priority: |
23.12.2003 KR 2003095393 23.12.2003 KR 2003095395 23.12.2003 KR 2003095394 29.12.2003 KR 2003098745 29.12.2003 KR 2003098744 29.12.2003 KR 2003099437 29.12.2003 KR 2003099435 29.12.2003 KR 2003098743 29.12.2003 KR 2003098746 29.12.2003 KR 2003099350 29.12.2003 KR 2003099351 30.12.2003 KR 2003099463 30.12.2003 KR 2003099462 30.12.2003 KR 2003099464 30.12.2003 KR 2003099461 07.09.2004 KR 2004071395 08.09.2004 KR 2004071705 21.10.2004 KR 2004084297
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Date of publication of application: |
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27.09.2006 Bulletin 2006/39 |
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Proprietor: Posco |
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Pohang-si,
Kyungsangbook-do 790-300 (KR) |
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Inventors: |
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- YOON, Jeong-Bong
Pohang
Kyungsangbook-do 790-785 (KR)
- SON, Won-Ho
Pohang
Kyungsangbook-do 790-785 (KR)
- KANG, Ki-Bong
Pohang
Kyungsangbook-do 790-785 (KR)
- CHO, Noi-Ha
Dongkwangyang
Chunlabook-do 545-090 (KR)
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| (74) |
Representative: Larcher, Dominique |
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Cabinet Vidon
16B rue de Jouanet 35703 Rennes Cedex 7 35703 Rennes Cedex 7 (FR) |
| (56) |
References cited: :
EP-A- 1 306 456 KR-A- 19990 034 162 US-A- 4 410 372 US-A- 5 486 241
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JP-A- 5 195 060 KR-A- 20010 060 397 US-A- 5 470 403 US-A- 5 690 755
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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).
|
[Technical Field]
[0001] The present invention relates to cold rolled steel sheets for automobile bodies,
and the like. More particularly, the present invention relates to bake-hardenable
cold rolled steel sheets, improved in bake hardenability and formability by controlling
a content of solid solution carbon in crystal grains with fine precipitates, and a
method of manufacturing the same.
[Background Art]
[0002] As for materials for exterior plates of automobile bodies, bake-hardening cold rolled
steel sheets are generally used in order to improve dent resistance. The bake-hardening
cold rolled steel sheets have excellent ductility through press forming, and increased
yield strength through paint baking or coating treatment after press forming. That
is, as carbon or nitrogen is in solid solution in the steel as interstitial elements,
and fixes dislocations created upon press forming, the yield point of the bake-hardening
cold rolled steel sheets is increased.
[0003] The bake-hardening cold rolled steel sheets include aluminum-killed steels, which
are batch-annealed materials, and interstitial free steels (IF steels).
[0004] In the case of the aluminum-killed steels, which are batch-annealed materials, small
amounts of solid solution carbon remain in the steel, and ensure aging resistance
while providing bake hardenability in the order of 10 - 20 MPa after the baking treatment.
However, for such batch-annealing materials, there are disadvantages of a lower increase
in the yield strength even after the baking treatment, and of a lower productivity.
[0005] In the case of the IF steels, as solid solution carbon or nitrogen in the steel is
completely precipitated by adding titanium or niobium to the steel, the formability
of the steel is enhanced. Bake hardening IF steels are manufactured by imparting the
bake hardenability to the IF steels. For the bake hardened IF steels, the bake hardenability
can be ensured by allowing an appropriate amount of carbon to remain in the steel
through control of an added amount of titanium or niobium and an added amount of carbon.
However, in the case of the bake hardening IF steels, in order to allow the appropriate
amount of carbon to remain in the solid solution in the steel, it is necessary to
control the added amount of sulfur and nitrogen, which can react with titanium or
niobium and create precipitates thereof, within a very narrow range, as well as the
added amounts of carbon, titanium or niobium. Accordingly, it is difficult to ensure
high quality products, and manufacturing costs are increased.
[Disclosure]
[Technical Problem]
[0006] Therefore, the present invention has been made in view of the above problems, and
it is an object of the present invention to provide bake-hardenable cold rolled steel
sheets, which are improved in bake hardenability and formability due to a higher plasticity-anisotropy
index and a lower in-plane anisotropy index without adding Ti and Nb, and a method
of manufacturing the same.
[Technical Solution]
[0007] In accordance with one aspect of the present invention, the above and other objects
can be accomplished by the provision of a bake-hardenable cold rolled steel sheet,
comprising: 0.003 - 0.005 % of C; 0.003 - 0.03 % S; 0.01 ∼ 0.1 % of Al; 0.02 % or
less ofN; 0.2 % or less of P; at least one of 0.03 - 0.2 % of Mn and 0.005 - 0.2 %
of Cu; and the balance of Fe and other unavoidable impurities, in terms of weight%,
wherein, when the steel sheet comprises one of Mn and Cu, a composition of Mn, Cu,
and S satisfies one of the relationships: 0.58*Mn/S≤ 10 and 1 ≤0.5*Cu/S≤ 10 in terms
of weight, and when the steel sheet comprises both Mn and Cu, a composition of Mn,
Cu, and S satisfies the relationships: Mn+Cu≤0.3 and 2≤0.5*(Mn+Cu)/S≤20 in terms of
weight, and wherein precipitates of MnS, CuS, and (Mn, Cu)S have an average size of
0.2
µm or less.
[0008] The cold rolled steel sheet of the present invention can be classified into three
types in accordance with added elements selected from the group consisting of Mn and
Cu. That is, (1) Mn solely-added steel (Cu excluded, which will also be referred to
as "MnS-precipitated steel"), (2) Cu solely-added steel (Mn excluded, which will also
be referred to as "CuS-precipitated steel"), and (3) Mn and Cu added steel (which
will also be referred to as "MnCu-precipitated steel"), which will be described in
detail as follows.
- (1) The MnS-precipitated steel comprises: 0.003 - 0.005 % of C; 0.005 ∼ 0.03 % of
S; 0.01 ∼ 0.1 % of Al; 0.02 % or less of N; 0.2 % or less of P; 0.05 - 0.2 % of Mn;
and the balance of Fe and other unavoidable impurities, in terms of weight%, wherein
the composition of Mn and S satisfies the relationship: 0.58*Mn/S ≤ 10 in terms of
weight, and wherein precipitates of MnS have an average size of 0.2 µm or less. The method of manufacturing MnS-precipitated steel comprises the steps
of: hot-rolling a steel slab with finish rolling at an Ar3 transformation temperature or more to provide a hot rolled steel sheet, after reheating
the steel slab to a temperature of 1,100 °C or more, the steel slab comprising: 0.003
- 0.005 % of C; 0.005 - 0.03 % of S; 0.01 ∼ 0.1 % of Al; 0.02 % or less of N; 0.2
% or less of P; 0.05 - 0.2 % of Mn; and the balance of Fe and other unavoidable impurities,
in terms of weight%, wherein the composition of Mn and S satisfies the relationship:
0.58*Mn/S≤10 in terms of weight; cooling the hot rolled steel sheet at a cooling rate
of 200 °C/min or more; winding the cooled steel sheet at a temperature of 700 °C or
less; cold rolling the steel sheet; and continuous annealing the cold rolled steel
sheet.
- (2) The CuS-precipitated steel comprises: 0.003 - 0.005 % of C; 0.003 - 0.025 % of
S; 0.01 ∼ 0.08 % of Al; 0.02 % or less of N; 0.2 % or less of P; 0.01 ∼ 0.2% of Cu;
and the balance of Fe and other unavoidable impurities, in terms of weight%, wherein
the composition of Cu and S satisfies the relationship: 1≤ 0.5*Cu/S≤10 in terms of
weight, and wherein precipitates of CuS have an average size of 0.1 µm or less. The method of manufacturing CuS-precipitated steel comprises the steps
of: hot-rolling a steel slab with finish rolling at an Ar3 transformation temperature or more to provide a hot rolled steel sheet, after reheating
the steel slab to a temperature of 1,100 °C or more, the steel slab comprising 0.003
∼ 0.005 % of C; 0.003 ∼ 0.025 % of S; 0.01 ∼ 0.08 % of Al; 0.02 % or less ofN; 0.2
% or less of P; 0.01 ∼ 0.2% of Cu; and the balance of Fe and other unavoidable impurities,
in terms of weight%, wherein the composition of Cu and S satisfies the relationship:
1≤0.5*Cu/S≤10 in terms of weight; cooling the hot rolled steel sheet at a cooling
rate of 300 °C/min or more; winding the cooled steel sheet at a temperature of 700
°C or less; cold rolling the steel sheet; and continuous annealing the cold rolled
steel sheet.
- (3) The MnCu-precipitated steel comprises: 0.003 - 0.005 % of C; 0.003 - 0.025 % of
S; 0.01 ∼ 0.08 % of Al; 0.02 % or less of N; 0.2 % or less of P; 0.03 - 0.2 % of Mn;
0.005 - 0.2 % of Cu; and the balance of Fe and other unavoidable impurities, in terms
of weight%, wherein the composition of Mn, Cu, and S satisfies the relationships:
Mn+Cu≤0.3 and 2≤0.5*(Mn+Cu)/S≤20 in terms of weight, and wherein MnS, CuS, and (Mn,
Cu)S precipitates have an average size of 0.2 µm or less. The method of manufacturing MnCu-precipitated steel comprises the steps
of: hot-rolling a steel slab with finish rolling at an Ar3 transformation temperature or more to provide a hot rolled steel sheet, after reheating
the steel slab to a temperature of 1,100 °C or more, the steel slab comprising: 0.003
∼ 0.005 % of C; 0.003 ∼ 0.025 % of S; 0.01 ∼ 0.08 % of Al; 0.02 % or less of N; 0.2
% or less of P; 0.03 ∼ 0.2 % of Mn; 0.005 ∼ 0.2 % of Cu; and the balance of Fe and
other unavoidable impurities, in terms of weight%, wherein the composition of Mn,
Cu, and S satisfies the relationships: Mn+Cu≤0.3 and 2≤0.5*(Mn+Cu)/S≤20 in terms of
weight; cooling the hot rolled steel sheet at a cooling rate of 300 °C/min; winding
the cooled steel sheet at a temperature of 700 °C or less; cold rolling the steel
sheet; and continuous annealing the cold rolled steel sheet.
[0009] The above bake-hardenable cold rolled steel sheet of the present invention may be
applied to ductile cold rolled steel sheets having a 240 MPa-grade tensile strength
or to high strength cold rolled steel sheets having a 340 MPa-grade or more tensile
strength.
[0010] In the case of the ductile cold rolled steel sheets in a 240 MPa-grade, the steel
sheet comprises 0.003 ∼ 0.005 % of C, 0.003 ∼ 0.03 % of S; 0.01∼ 0.1 % of Al; 0.004
% or less of N; 0.015 % or less of P; at least one of 0.03 ∼ 0.2 % of Mn and 0.005
∼ 0.2 % of Cu; and the balance of Fe and other unavoidable impurities, in terms of
weight%, wherein, when the steel sheet comprises one of Mn and Cu, the composition
of Mn, Cu, and S satisfies one of the relationships: 0.58*Mn/S≤10 and 1≤0.5*Cu/S≤
10 in terms of weight, and when the steel sheet comprises both Mn and Cu, the composition
of Mn, Cu, and S satisfies the relationship: Mn+Cu≤ 0.3 and 2≤0.5*(Mn+Cu)/S≤20 in
terms of weight, and wherein the precipitates of MnS, CuS, and (Mn, Cu)S have an average
size of 0.2
µm or less.
[0011] In the case of the high strength cold rolled steel sheets in a 340 MPa-grade or more,
it can be classified into steel, which contains at least one of P, Si, and Cr, as
a solid solution-intensifier, and steel which contains a higher content of N, as a
precipitation-intensifier. That is, it is preferred that at least one of 0.2 % or
less of P, 0.1 ∼ 0.8 % of Si, and 0.2 - 1.2 % of Cr be contained in the ductile cold
rolled steel sheet. If P is solely added to the ductile cold rolled steel sheet, the
content of P is preferably in the range of 0.03 ∼ 0.2 %. Alternatively, high strength
characteristics can be ensured by means of AlN precipitates by increasing the content
of N to 0.005 - 0.02 %, and adding 0.03∼ 0.06 % of P.
[0012] In order to further enhance the formability of the cold rolled steel sheet, the steel
sheet may further comprise 0.01 ∼ 0.2 % of Mo.
[Advantageous Effects]
[0013] As apparent from the above description, according to the present invention, the bake-hardenable
cold rolled steel sheets allows the content of solid solution in the crystal grains
to be controlled by means of fine MnS, CuS, (Mn, Cu)S precipitates, thereby providing
improved bake hardenability, formability, yield strength, and yield strength-ductility
balance.
[Description of Drawings]
[0014] The above and other objects, features and other advantages of the present invention
will be more clearly understood from the following detailed description taken in conjunction
with the accompanying drawings, in which:
Figs. 1a to 1c are graphical representations showing the relationship between the
content of solid solution carbon in crystal grains and the size of precipitates, in
which Fig. 1a shows the case of MnS-precipitated steel, Fig. 1b shows the case of
CuS-precipitated steel, and Fig. 1c shows the case of MnCu-precipitated steel;
Figs. 2a and 2b are graphical representations showing the relationship between the
size of MnS precipitate and the cooling rates, in which Fig. 2a shows the case of
0.58*Mn/S < 10, and Fig. 2b shows the case of 0.58*Mn/S > 10;
Figs. 3a to 3c are graphical representations showing the relationship between the
size of CuS precipitates and the cooling rates, in which Fig. 3a shows the case of
0.5*Cu/S = 2.56, Fig. 3b shows the case of 0.5*Cu/S = 8.1, and Fig. 3c shows the case
of 0.5*Cu/S = 28; and
Figs. 4a and 4b are graphical representations showing the relationship between the
size of MnS, CuS and (Mn, Cu)S precipitates and the cooling rates, in which Fig. 4a
shows the case of 2≤0.5*(Mn+Cu)/S≤20, and Fig. 4b shows the case of 0.5*(Mn+Cu)/S
> 20.
[Best Mode]
[0015] Preferred embodiments of the present invention will now be described in detail. However,
it should be noted that the present invention is not limited to these embodiments.
For the composition of the steel sheets of the present invention, "weight %" will
be simply represented as "%" hereinafter.
[0016] The inventors of the present invention have discovered new facts, as will be described
below, through investigations into enhancement of bake hardenability without adding
Ti and Nb. That is, the content of solid solution carbon in crystal grains can be
appropriately controlled with fine precipitates of MnS, CuS, or (Mn, Cu) S, thereby
increasing the yield strength, specifically the post-bake yield strength. These precipitates
may have positive effects not only on an increase of the yield strength caused by
precipitation strengthening, but also on the plasticity-anisotropy index and the in-plane
anisotropy index.
[0017] Referring to Figs. 1a to 1c, it can be appreciated that the finer the distribution
of MnS, CuS, and (Mn, Cu)S precipitates the greater the reduction in content of the
solid solution carbon in the crystal grains. This is attributed to the relatively
free movement of the solid solution carbon remaining in the crystal grain. More specifically,
the solid solution carbon can move freely in the crystal grains, and be then easily
coupled to movable dislocations, thereby influencing aging characteristics at room
temperature. The solid solution carbon can also be moved to more stable regions, such
as grain boundaries or around the precipitations, segregated in these regions, and
activated therein at a high temperature, for example, during paint baking treatment,
thereby influencing the bake hardenability. Accordingly, reduction in content of the
solid solution carbon in the crystal grains means that carbon exists in the more stable
region, such as the grain boundaries or around the fine precipitates, and influences
the bake hardenability.
[0018] Figs. 1a to 1c are graphical representations showing the relationship between the
content of solid solution carbon in crystal grains and the size of precipitates, in
which Fig. 1a shows the case of MnS-precipitated steel, Fig. 1b shows the case of
CuS-precipitated steel, and Fig. 1c shows the case of MnCu-precipitated steel. The
finer the size of the precipitates the greater the reduction in the content of the
solid solution carbon in the crystal grains, and for the carbon, which does not exist
in the crystal grains among the total content of the carbon, it effectively influences
the bake hardenability. Referring to in Figs. 1a to 1c, it can be seen that the content
of the solid solution carbon in the crystal grains is reduced to approximately 20
ppm or less, when the MnS precipitates have a size of about 0.2
µm or less (Fig. 1a), when the CuS precipitates have a size of about 0.1
µm or less (Fig. 1b), and when the MnCu-precipitates have a size of about 0.2
µm or less (Fig. 1c).
[0019] As such, in order to secure the carbon content effective for the bake hardenability,
it is important to have fine distribution of MnS, CuS or MnCu-precipitates while keeping
the total content of carbon within the range of 0.003 - 0.005 % in the steel. Accordingly,
there have been investigations into a method for finely distributing these precipitates,
and the results indicate that the fine distribution of these precipitates in the crystal
grains can be achieved by controlling the contents of Mn, Cu, and S, and the composition
of these elements in the steel, together with controlling a cooling rate after hot
rolling.
[0020] Fig. 2a is a graphical representation obtained after investigating the size of precipitates
according to the cooling rate after hot rolling a steel sheet, which comprises: 0.004
% C; 0.15 % Mn; 0.008 % P; 0.015 % S; 0.03 % Al; and 0.0012 % N (where 0.58*Mn/S =
5.8). Referring to Fig. 2a, the MnS precipitates have a size of 0.2
µm or less by controlling the cooling rate of the steel sheet under the condition wherein
the combination of Mn and S satisfies the relationship: 0.58*Mn/S≤10.
Fig. 3a is a graphical representation obtained after investigating the size of precipitates
according to the cooling rate after hot rolling a steel sheet, which comprises: 0.004
% C; 0.01 % P; 0.008 % S; 0.05 % Al; 0.0014 % N; and 0.041 % Cu (where 0.5*Cu/S =
2.56). Referring to Fig. 3a, the CuS precipitates have a size of 0.1 µm or less by controlling the cooling rate of the steel sheet under the condition wherein
the combination of Cu and S satisfies the relationship: 0.5*Cu/S≤10.
Fig. 4a is a graphical representation obtained after investigating the size of precipitates
according to the cooling rate after cold rolling a steel sheet, which comprises: 0.004
% C; 0.13 % Mn; 0.009 % P; 0.015 % S; 0.04 % Al; 0.0029 % N; and 0.04 % Cu (where
Mn+Cu = 0.17 % and 0.5*(Mn+Cu)/S = 5.67). Referring to Fig. 4a, the MnS, CuS, (Mn,
Cu)S precipitates have a size of 0.2 µm or less by controlling the cooling rate of the steel sheet under the condition wherein
the combination of Mn, Cu, and S satisfies the relationship: 2≤0.5*(Mn+Cu)/S≤20.
[0021] The bake-hardenable cold rolled steel sheet in accordance with the invention has
high yield strength, and thus allows a reduction in thickness of the steel sheet.
As a result, the cold rolled steel sheet in accordance with the invention has an effect
of weight reduction for the products thereof. Moreover, the low in-plane anisotropy
of the cold rolled steel sheet of the invention minimizes formation of wrinkles or
ears during or after processing of the steel sheet. The cold rolled steel sheet of
the invention also has grain boundaries reinforced due to an appropriate content of
the carbon remaining in the grain boundaries by the fine precipitates, thereby preventing
the brittleness fracture caused by grain boundaries weakened after processing.
[0022] The bake-hardenable cold rolled steel sheet of the present invention, and a method
of manufacturing the same will be described in detail as follows.
[Cold rolled steel sheet of the invention]
Carbon (C): 0.003 - 0.005 %
[0023] Although the content of solid solution carbon in crystal grains is reduced due to
fine precipitates, since carbon is segregated in grain boundaries or surroundings
of the fine precipitates, the bake hardenability is increased without damaging aging
characteristics at room temperature as a higher content of carbon is segregated in
the grain boundaries or around the fine precipitates. That is, as the carbon content
in the steel sheet increases, the increased carbon content is segregated in the grain
boundaries or around the fine precipitates, which is an effective way to increase
the bake hardenability of the steel sheet. As a result, the carbon content must be
0.003 % or more in the steel sheet in order to ensure the bake hardenability. That
is, in order to enhance the bake hardenability, the carbon content exceeds 0.0030
% and 0.0031 % or more. However, if the carbon content exceeds 0.005 %, the formability
can be rapidly reduced. Accordingly, the carbon content is preferably in the range
of 0.003 ~ 0.005 %.
Sulfur (S): 0.003 ~ 0.03 %
[0024] A sulfur content less than 0.003 % can lead to not only decrease in amount of MnS,
CuS and (Mn, Cu) precipitates, but also creation of excessively coarse precipitates,
thereby lowering the bake hardenability of the steel sheet. A content of sulfur more
than 0.03 % can lead to a large amount of solid solution sulfur, thereby remarkably
decreasing the ductility and the formability of the steel sheet, and increasing the
possibility of hot shortness. According to the present invention, for the MnS-precipitated
steel, the sulfur content is preferably in the range of 0.005 ∼ 0.03 %, and for the
CuS-precipitated steel, the sulfur content is preferably in the range of 0.003 ∼ 0.025
%. For the MnCu-precipitated steel, the sulfur content is preferably in the range
of 0.003 ∼ 0.025 %.
Aluminum (Al): 0.01 ~ 0.1 %
[0025] Aluminum is an alloying element generally used as a deoxidizing agent. However, in
the present invention, aluminum is added to the steel for precipitating nitrogen in
the steel, and thus prevents the formability from being lowered due to solid solution
nitrogen. An aluminum content of less than 0.01 % can lead to an increase in content
of solid solution nitrogen, thereby lowering the formability, whereas an aluminum
content of more than 0.1 % can lead to an increase of solid solution aluminum, thereby
lowering the ductility of the steel. According to the present invention, for the CuS-precipitated
steel and the MnCu-precipitated steel, the aluminum content is preferably in the range
of 0.01 ~ 0.08 %. If the nitrogen content is increased to 0.005 ∼ 0.02%, a high strength
steel sheet can be obtained by virtue of strengthening effects of AlN precipitates.
Nitrogen (N): 0.02 % or less
[0026] Nitrogen is an unavoidable element introduced into the steel during the steel manufacturing
process, and in order to obtain strengthening effects, it is preferably added to the
steel in an amount not exceeding 0.02 %. In order to obtain a ductile steel sheet,
the nitrogen content is preferably 0.004 % or less. In order to obtain a high strength
steel sheet, the nitrogen content is preferably 0.005 ~ 0.02 %. Although the nitrogen
content must be 0.005 % or more in order to obtain strengthening effects, a nitrogen
content of more than 0.02 % leads to deterioration in formability of the steel sheet.
In order to provide the high strength steel using nitrogen, a phosphorus content is
preferably 0.03 ~ 0.06 %. According to the present invention, in order to ensure high
strength by virtue of the AlN precipitates, the combination of Al and N, that is,
0.52*Al/N (where Al and N are denoted in terms of wt%) is preferably in the range
of 1 ∼ 5. The combination of Al and N (0.52*Al/N) of less than 1 can lead to lowering
the formability due to the solid solution nitrogen, whereas the combination of Al
and N (0.52*Al/N) exceeding 5 leads to negligible strengthening effects.
Phosphorus (P): 0.2 % or less
[0027] Phosphorus is an alloying element, which can increase solid solution strengthening
effects while allowing a slight reduction in r-value (plasticity-anisotropy index),
and can ensure the high strength of the steel in which the precipitates are controlled.
Accordingly, in order to ensure the high strength by controlling the content of P,
the P content is preferably 0.2 % or less. A phosphorus content of more than 0.2 %
can lead to a reduction in ductility of the steel sheet. When phosphorous alone is
added to the steel in order to ensure the high strength of the steel sheet, the P
content is preferably 0.03 ~ 0.2 %. For the ductile steel sheet, the P content is
preferably 0.015 % or less. For the steel sheet in which the high strength is ensured
by use of the AlN precipitates, the P content is preferably 0.03 ~ 0.06 %. This is
attributed to the fact that, although a phosphorus content of 0.03 % or more enables
a target strength to be ensured, a phosphorus content exceeding 0.06 % can lower the
ductility and formability of the steel. According to the present invention, in the
case where the high strength of the steel sheet is ensured by addition of Si and Cr,
the P content can be appropriately controlled within 0.2 wt% or less in order to obtain
the target strength. In this case, even if the P content is 0.015 % or less, the high
strength can be ensured.
[0028] In the present invention, at least one of manganese (Mn) and copper (Cu) is preferably
added to the steel. These elements are combined with sulfur (S), and create the MnS,
CuS or (Mn, Cu)S precipitates.
Manganese (Mn): 0.03 ∼ 0.2 %
[0029] Manganese is an alloying element, which precipitates the solid solution sulfur in
the steel as the MnS precipitates, thereby preventing the hot shortness caused by
the solid solution sulfur. In the present invention, Mn is precipitated as the fine
MnS and/or (Mn, Cu)S precipitates under appropriate conditions for the combination
of S and/or Cu with Mn and for the cooling rate. The fine precipitates can impart
the bake hardenability to the steel sheet during the paint baking treatment by causing
carbon to be segregated in the grain boundaries or around the precipitates rather
than the crystal grains. In order to achieve these effects, the Mn content must be
0.03 % or more. Meanwhile, a manganese content exceeding 0.2 % causes coarse precipitates
due to a higher content of manganese, thereby deteriorating the bake hardenability
of the steel sheet. If Mn alone is added to the steel (excluding Cu), the manganese
content is preferably 0.05 ∼ 0.2 %.
Copper (Cu): 0.005 - 0.2 %
[0030] Copper is an alloying element, which creates fine precipitates under appropriate
conditions for the combination of S and/or Mn with Cu, and the cooling rate before
a winding process in a hot rolling process. The fine precipitates can impart the bake
hardenability to the steel sheet during the paint baking treatment by causing carbon
to be segregated in the grain boundaries or around the precipitates rather than the
crystal grains. In order to achieve these effects, the Cu content must be 0.005 %
or more. Meanwhile, a copper content greater than 0.2 % causes coarse precipitates
due to a higher content of copper, thereby deteriorating the bake hardenability of
the steel sheet. If Cu alone is added to the steel (excluding Mn), the copper content
is preferably 0.01 ∼ 0.2 %.
[0031] According to the present invention, the contents and the combination of Mn, Cu and
S are controlled so as to create fine precipitates, and these are varied according
to the added amount of Mn and/or Cu.
[0032] For the MnS-precipitated steel, the combination of Mn and S preferably satisfies
the relationship: 0.58*Mn/S≤10 (where Mn and S are denoted in terms of wt%). Mn combines
with S to create the MnS precipitates. The MnS precipitates can be varied in a precipitated
state according to the added amount of Mn and S, and thereby influence the bake hardenability,
the yield strength, and the in-plane anisotropy index of the steel sheet. A value
of 0.58*Mn/S greater than 10 creates coarse MnS precipitates, resulting in deterioration
of the bake hardenability and the in-plane anisotropy index.
[0033] For the CuS-precipitated steel, the combination of Cu and S preferably satisfies
the relationship: 1 ≤0.5*Cu/S≤10 (where Cu and S are denoted in terms of wt%). Cu
combines with S to create the CuS precipitates, which can be varied in a precipitated
state according to the added amount of Cu and S, and thereby influence the bake hardenability,
the plasticity-anisotropy index, and the in-plane anisotropy index. A value of 0.5*Cu/S
of 1 or more enables effective CuS precipitates to be created, and a value of 0.5*Cu/S
greater than 10 creates coarse CuS precipitates, resulting in deterioration of the
bake hardenability, the plasticity-anisotropy index, and of the in-plane anisotropy
index. In order to stably secure the CuS precipitates having a size of 0.1
µm or less, the value of 0.5*Cu/S is preferably 1 ∼ 3.
[0034] When Mn is added to the steel sheet together with Cu, the total content of Mn and
Cu is preferably 0.3 % or less. This is attributed to the fact that a total Mn and
Cu content exceeding 0.3 % is likely to create coarse precipitates, thereby detracting
from the bake hardenability. The value of 0.5*(Mn+Cu)/S (where Mn, Cu, and S are denoted
in terms of wt%) is preferably 2 ∼ 20. Mn and Cu combine with S to create the MnS,
CuS, and (Mn, Cu)S precipitates, which can be varied in a precipitated state according
to the added amount of Mn, Cu, and S, and influence the bake hardenability, the plasticity-anisotropy
index, and the in-plane anisotropy index. A value of 0.5*(Mn+Cu)/S of 2 or more enables
effective precipitates to be created, and a value of 0.5*(Mn+Cu)/S exceeding 20 creates
coarse precipitates, resulting in deterioration of the bake hardenability, the plasticity-anisotropy
index, and the in-plane anisotropy index. According to the present invention, with
the value of 0.5*(Mn+Cu)/S in the range of 2 - 20, the average size of the precipitates
is reduced to 0.2
µm or less. In this case, it is desirable that 2 x 10
6 or more precipitates per unit area (number/mm
2) are distributed in the grain. Below or above 7 as the value of 0.5*(Mn+Cu)/S, the
kinds and the number of the precipitates are remarkably varied. Specifically, when
the value of 0.5*(Mn+Cu)/S is 7 or less, lots of very fine MnS and CuS separate precipitates
are uniformly distributed rather that the (Mn, Cu)S complex precipitates. Meanwhile,
when the value of 0.5*(Mn+Cu)/S is more than 7, regardless of a low difference between
the sizes of the precipitates, the number of precipitates distributed in the grain
is decreased because of an increase in amount of the (Mn, Cu)S complex precipitates.
In the present invention, an increase in the number of precipitates can enhance the
bake hardenability, the in-plane anisotropy index, the secondary work embrittlement
resistance, and the like. For this purpose, it is preferred that 2 x 10
8 or more precipitates per unit area (number/mm
2) are distributed in the grain and grain boundary. In the present invention, even
in the case where the values of 0.5*(Mn+Cu)/S are the same, a smaller added amount
of Mn and Cu can reduce the number of distributed precipitates. If the content of
Mn and Cu is increased, the precipitates become coarse, leading to a reduction in
the number of distributed precipitates.
[0035] According to the present invention, the MnS, CuS, and (Mn, Cu)S precipitates preferably
have an average size of 0.2
µm or less. The MnS, CuS, and (Mn, Cu)S precipitates can have different appropriate
sizes according to an added amount of Mn and Cu. Most preferably, the precipitates
have a size of 0.2
µm or less for the MnS precipitates, a size of 0.1
µm or less for the CuS precipitates, and a size of 0.2
µm or less for the mixture of MnS, CuS, and (Mn, Cu)S precipitates. According to the
present invention, if the MnS, CuS, and (Mn, Cu)S precipitates have an average size
greater than a preferred size thereof, the bake hardenability is particularly deteriorated,
as well as deteriorating the plasticity-anisotropy index and the in-plane anisotropy
index. As the size of the precipitates is reduced, it is preferred in terms of the
bake hardenability.
[0036] Meanwhile, according to the present invention, for application to a high strength
steel sheet of a 340 MPa-grade or more, at least one of the solid solution strengthening
elements, that is, at least one of P, Si, and Cr may be added to the steel sheet.
As the effects obtained by adding phosphorus were previously described, the description
thereof will be omitted.
Silicon (Si): 0.1 ∼ 0.8%
[0037] Si is an alloying element, which can increase the solid solution strengthening effect
while allowing a slight reduction in ductility, thus ensuring high strength of the
steel sheet in which the precipitates are controlled according to the present invention.
The silicon content of 0.1 % or more can ensure the strength of the steel sheet, but
a silicon content exceeding 0.8 % can cause a reduction in the ductility thereof.
Chrome (Cr): 0.2 ~ 1.2 %
[0038] Cr is an alloying element, which can increase solid solution strengthening effects
while enhancing aging resistance at room temperature, thus ensuring the high strength
of the steel sheet while reducing the in-plane anisotropy index of the steel sheet
in which the precipitates are controlled according to the present invention. The chrome
content of 0.2 % or more can ensure the strength of the steel sheet, but a chrome
content of more than 1.2 % can cause the reduction in the ductility thereof.
[0039] Molybdenum (Mo) may be added to the cold rolled steel sheet of the present invention.
Molybdenum: 0.01 ~ 0.2 %.
[0040] Mo is an alloying element, which can increase the plasticity-anisotropy index of
the steel sheet. The molybdenum content of 0.01 % or more can increase the plasticity-anisotropy
index, but a molybdenum content exceeding 0.2 % can cause hot shortness without any
additional improvement in the plasticity-anisotropy index.
[Method of manufacturing cold rolled steel sheet]
[0041] The present invention is characterized in that steel sheets satisfying the above-described
compositions may be processed to have a finely reduced average size of precipitates
through hot rolling and cold rolling. The average size of the precipitates is influenced
by the contents and composition of Mn, Cu, and S, and the manufacturing process, and
in particular, is directly influenced by a cooling rate after hot rolling.
[Hot rolling conditions]
[0042] According to the present invention, the steel satisfying the above-described compositions
is reheated, followed by hot rolling. The reheating temperature is preferably 1,100
°C or more. This is attributed to the fact that a reheating temperature lower than
1,100 °C causes coarse precipitates to be created during continuous casting and to
remain in an incompletely dissolved state, whereby the coarse precipitates remain
even after the hot rolling.
[0043] Preferably, the hot rolling is performed under the condition that finish rolling
is performed at an Ar
3 transformation temperature or more. If the finish rolling is performed below the
Ar
3 transformation temperature, rolled grains are created, and remarkably lower the ductility
as well as the formability of the steel sheet.
[0044] The cooling rate is preferably 200 °C/min or more after the hot rolling. More specifically,
there is a slight difference between the cooling rates of (1) MnS-precipitated steel,
(2) CuS-precipitated steel, and (3) MnCu-precipitated steel.
[0045] First, in the case of the MnS-precipitated steel, the cooling rate is preferably
200 °C/min or more. Even when the composition of Mn and S satisfies the relationship:
0.58*Mn/S≤10 according to the present invention, a cooling rate lower than 200 °C/min
can create coarse MnS precipitates having a size greater than 0.2
µm. That is, as the cooling rate is increased, a number of nuclei are created, so that
the MnS precipitates become finer. When the composition of Mn and S has the relationship:
0.58*Mn/S > 10, the number of coarse precipitates in an incompletely dissolved state
during the reheating process is increased, so that, even if the cooling rate is increased,
the number of nuclei is not increased, and thus the MnS precipitates do not become
any finer (Fig. 2b, 00038 % C; 0.43 % Mn; 0.011 % P; 0.009 % S; 0.035 % Al; and 0.0043
% N).
[0046] Referring to Figs. 2a and 2b, since an increase of the cooling rate leads to creation
of finer MnS precipitates, it is not necessary to provide an upper limit of the cooling
rate. However, even when the cooling rate is 1,000 °C/min or more, the MnS precipitates
are not further reduced in size, and thus the cooling rate is more preferably in the
range of 200 ∼ 1,000 C /min.
[0047] Second, in the case of the CuS-precipitated steel, the cooling rate is preferably
300 °C/min or more after the hot rolling. Even when the composition of Cu and S satisfies
the relationship: 0.5*Cu/S ≤ 10 according to the present invention, a cooling rate
lower than 300 °C/min creates coarse CuS precipitates having a size greater than 0.1
µm. That is, as the cooling rate is increased, a number of nuclei are created, so that
the CuS precipitates become finer. When the composition of Cu and S has the relationship:
0.5*Cu/S > 10, the number of coarse precipitates in an incompletely dissolved state
during the reheating process is increased, so that an increase of the cooling rate
does not result in an increase of the number of nuclei, and thus the CuS precipitates
do not become any finer (Fig. 3c, 00039 % C; 0.01 % P; 0.005 % S; 0.03 % Al; 0.0015
% N; and 0.28 % Cu).
[0048] Referring to Figs. 3a to 3c, since an increase of the cooling rate leads to creation
of finer CuS precipitates, it is not necessary to provide an upper limit of the cooling
rate. However, even when the cooling rate is 1,000 °C/min or more, the CuS precipitates
are not further reduced in size, and thus the cooling rate is more preferably in the
range of 300 ~ 1,000 °C/min. Figs. 3a and 3b (0.0043 % C; 0.01 % P; 0.005 % S; 0.03
% Al; 0.0024 % N; and 0.081 % Cu) show the cases of 0.5*Cu/S ≤3, and of 0.5*Cu/S >
3, respectively. As shown in the drawings, it can be seen that, when the value of
0.5*Cu/S is 3 or less, the CuS precipitates having a size of 0.1
µm or less can be more stably obtained.
[0049] Last, in the case of the MnCu-precipitated steel, the cooling rate is preferably
300 °C/min or more. Even when the composition of Mn, Cu and S satisfies the relationship:
2≤0.5*(Mn+Cu)/S≤20 according to the present invention, a cooling rate lower than 300
°C/min creates coarse precipitates having an average size greater than 0.2
µm. That is, as the cooling rate is increased, a number of nuclei are created, so that
the precipitates become finer. When the composition of Mn, Cu and S has the relationship:
0.5*(Mn+Cu)/S > 20, the coarse precipitates in an incompletely dissolved state during
the reheating process are increased, so that, even if the cooling rate is increased,
the number of nuclei is not increased, and thus the precipitates do not become any
finer (Fig. 4b, 00039 % C; 0.4 % Mn; 0.01 % P; 0.01 % S; 0.05 % Al; 0.0016 % N; and
0.15 % Cu).
[0050] Referring to Figs. 4a and 4b, since an increase of the cooling rate leads to creation
of finer precipitates, it is not necessary to provide an upper limit of the cooling
rate. However, even when the cooling rate is 1,000 °C/min or more, the precipitates
are not further reduced in size, and thus the cooling rate is more preferably in the
range of 300 ∼ 1,000 °C/min.
[Winding conditions]
[0051] After the hot rolling described above, the winding process is preferably performed
at a temperature of 700 °C or less. When the winding process is performed at a temperature
higher than 700 °C, the precipitates are grown too coarsely, thereby reducing the
bake hardenability of the steel.
[Cold rolling conditions]
[0052] The steel is cold rolled to a desired thickness, preferably at a reduction rate of
50 ∼ 90 %. Since a reduction rate lower than 50 % leads to creation of a small amount
of nuclei upon recrystallization annealing, the crystal grains are grown excessively
upon annealing, thereby coarsening of the crystal grains recrystallized through annealing,
which results in reduction of the strength and formability. A cold reduction rate
more than 90 % leads to enhanced formability, while creating an excessive number of
nuclei, so that the crystal grains recrystallized through annealing become excessively
fine, thereby reducing the ductility of the steel.
[Continuous annealing]
[0053] The continuous annealing temperature plays an important role in determining the mechanical
properties of the products. According to the present invention, the continuous annealing
is preferably performed at a temperature of 500 - 900 °C. Continuous annealing at
a temperature lower than 500 °C creates excessively fine recrystallized crystal grains,
so that a desired ductility cannot be ensured. Continuous annealing at a temperature
higher than 900 °C creates coarse recrystallized crystal grains, so that the strength
of the steel is reduced. Holding time upon the continuous annealing is provided so
as to complete the recrystallization of the steel, and the recrystallization of the
steel can be completed for about 10 seconds or more upon the continuous annealing.
[0054] The present invention will be described in detail with reference to examples as follows.
[0055] In the following description of the examples, cold rolled steel sheets were machined
to standard samples according to ASTM standards (ASTM E-8 Standard), and the mechanical
properties thereof were measured. The mechanical properties were measured by use of
a tensile strength tester (available from INSTRON Company, Model No. 6025). Among
the mechanical strengths, the post-bake yield strength was measured, after the samples
were subjected to 2 % strain, followed by the heat treatment at 120 °C for twenty
minutes. The plasticity-anisotropy index (r
m value), and the in-plane anisotropy index (Δ r value) were obtained according to
the following equations (1) and (2), respectively:

[0056] Meanwhile, the average size and number of precipitates were obtained after measuring
the size and number of all precipitates existing in the matrix.
[Example 1-1] MnS-precipitated steel
[0057] In order to provide MnS-precipitated steel according to the present invention, after
steel slabs shown in Table 1 were reheated to a temperature of 1,200 °C, followed
by finish rolling the steel slabs in order to provide hot rolled steel sheets, the
hot rolled steel sheets were cooled at a cooling rate of 200 °C/min, and then coiled
at 650 °C. Then, the hot rolled steel sheets were cold rolled at a reduction rate
of 75 %, followed by continuous annealing the cold rolled steel sheets. The finish
rolling was performed at 910 °C, which is above the Ar
3 transformation temperature, and the continuous annealing was performed by heating
the steel sheets to 750 °C at a velocity of 10 °C/second for 40 seconds. Exceptionally,
for sample A8 in Table 1, after reheating to a temperature of 1,050 °C, followed by
finish rolling, it was cooled at cooling rate of 50 °C/minute, and was then coiled
at 750 °C.
Table 1
| Sample No. |
Component (wt%) |
| C |
Mn |
P |
S |
Al |
N |
Mo |
R-1 |
| 0.003-0.005 |
0.05-0.2 |
≤0.015 |
0.005-0.03 |
0.01-0.1 |
≤0.004 |
0.01-0.2 |
≤10 |
| A1 |
0.0035 |
0.1 |
0.01 |
0.009 |
0.04 |
0.0021 |
- |
6.44 |
| A2 |
0.0041 |
0.10 |
0.009 |
0.012 |
0.05 |
0.0030 |
- |
4.83 |
| A3 |
0.0038 |
0.08 |
0.011 |
0.012 |
0.035 |
0.0023 |
- |
3.87 |
| A4 |
0.0044 |
0.1 |
0.01 |
0.006 |
0.02 |
0.0032 |
- |
9.67 |
| A5 |
0.0022 |
0.1 |
0.009 |
0.011 |
0.04 |
0.0038 |
- |
5.27 |
| A6 |
0.0039 |
0.43 |
0.01 |
0.008 |
0.05 |
0.0038 |
- |
31.2 |
| A7 |
0.0067 |
0.1 |
0.008 |
0.01 |
0.04 |
0.0028 |
- |
5.8 |
| A8 |
0.0024 |
0.4 |
0.07 |
0.01 |
0.04 |
0.0016 |
Ti 0.02 |
11.6 |
| A9 |
0.0042 |
0.11 |
0.012 |
0.01 |
0.032 |
0.0018 |
0.02 |
6.38 |
| A10 |
0.0038 |
0.1 |
0.01 |
0.008 |
0.035 |
0.0025 |
0.16 |
7.25 |
| A11 |
0.0045 |
0.08 |
0.011 |
0.011 |
0.04 |
0.0011 |
0.064 |
4.22 |
| A12 |
0.0044 |
0.08 |
0.01 |
0.01 |
0.025 |
0.003 |
0.092 |
4.64 |
| A13 |
0.0046 |
0.09 |
0.012 |
0.012 |
0.04 |
0.0015 |
0.27 |
4.35 |
Table 2
| Sample No. |
Mechanical properties |
AS (µm) |
Remarks |
| YS (Mpa) |
TS (MPa) |
EI (%) |
r-value (rm) |
Δr-value (Δr) |
PBYS (Mpa) |
DBTT (°C) |
| A1 |
221 |
310 |
49 |
1.83 |
0.41 |
288 |
- 70 |
0.13 |
IS |
| A2 |
241 |
315 |
47 |
1.75 |
0.36 |
292 |
- 70 |
0.14 |
IS |
| A3 |
233 |
312 |
47 |
1.73 |
0.38 |
282 |
- 70 |
0.12 |
IS |
| A4 |
245 |
328 |
45 |
1.69 |
0.31 |
301 |
- 70 |
0.1 |
IS |
| A5 |
209 |
299 |
51 |
1.88 |
0.42 |
232 |
- 70 |
0.11 |
CS |
| A6 |
211 |
290 |
52 |
1.82 |
0.38 |
235 |
- 70 |
0.59 |
CS |
| A7 |
251 |
329 |
42 |
1.53 |
0.29 |
298 |
- 70 |
0.12 |
CS |
| A8 |
182 |
292 |
48 |
1.83 |
0.58 |
215 |
- 10 |
0.21 |
CVS |
| A9 |
225 |
312 |
49 |
2.13 |
0.35 |
273 |
- 80 |
0.12 |
IS |
| A10 |
229 |
310 |
48 |
2.21 |
0.28 |
270 |
- 80 |
0.13 |
IS |
| A11 |
235 |
318 |
47 |
2.09 |
0.31 |
281 |
- 80 |
0.11 |
IS |
| A12 |
236 |
320 |
46 |
2.01 |
0.33 |
304 |
- 80 |
0.1 |
IS |
| A13 |
232 |
328 |
46 |
1.73 |
0.35 |
305 |
-80 |
0.12 |
CS |
| Note: YS = Yield strength, TS = Tensile strength, El = Elongation, r-value: Plasticity-anisotropy
index, Ar-value: In-plane anisotropy index, PBYS = Post-bake yield strength, DBTT
= ductility-brittleness transition temperature for investigating secondary work embrittlement,
AS = Average size of precipitates, IS = Steel of the invention, CS = Comparative steel,
CVS = Conventional steel |
[0058] As shown in Table 2, samples A1 ∼ A4 have excellent yield strength, elongation ratio,
and yield strength-ductility balance as well as the bake hardenability. Additionally,
these samples have a high plasticity-anisotropy index and a low in-plane anisotropy
index, thereby providing excellent formability.
[0059] On the contrary, due to its low carbon content, sample A5 provides low post-bake
yield strength. Due to its large size of the precipitates, sample A6 also has low
post-bake yield strength. Due to its high carbon content, sample A7 has low elongation
ratio and plasticity anisotropy index, thereby providing a high possibility of fracture
during the forming process. Due to its low post-bake yield strength and high secondary
work embrittlement temperature, sample A8, which is a conventional IF steel sheet,
provides a high possibility of fracture upon impact.
[0060] Samples A9 to A12 have excellent formability together with the bake hardenability.
On the contrary, due to its high amount of Mo added, sample A13 has poor formability.
[Example 1-2] High strength MnS-precipitated steel with solid solution strengthening
[0061] In order to provide high strength MnS-precipitated steel with solid solution strengthening
according to the present invention, after steel slabs shown in Table 3 were reheated
to a temperature of 1,200 °C, followed by finish rolling the steel slabs in order
to provide hot rolled steel sheets, the hot rolled steel sheets were cooled at a cooling
rate of 200 °C/min, and then coiled at 650 °C. Then, the hot rolled steel sheets were
cold rolled at a reduction rate of 75 %, followed by continuous annealing the cold
rolled steel sheets. The finish rolling was performed at 910 °C, which is above the
Ar
3 transformation temperature, and the continuous annealing was performed by heating
the steel sheets to 750 °C at a velocity of 10 °C/second for 40 seconds.
Table 3
| Sample No. |
Component (wt%) |
| C |
Mn |
P |
Si |
Cr |
S |
Al |
N |
Mo |
R-1 |
| 0.003-0.005 |
0.05-0.2 |
≤0.2 |
0.1-0.8 |
0.2-1.2 |
0.005-0.03 |
0.01-0.1 |
≤0.004 |
0.01-0.2 |
≤10 |
| B1 |
0.0035 |
0.08 |
0.052 |
- |
- |
0.006 |
0.04 |
0.0015 |
- |
7.73 |
| B2 |
0.0042 |
0.10 |
0.102 |
- |
- |
0.010 |
0.05 |
0.0026 |
- |
5.8 |
| B3 |
0.0039 |
0.08 |
0.151 |
- |
- |
0.012 |
0.035 |
0.0018 |
- |
3.87 |
| B4 |
0.0018 |
0.52 |
0.052 |
- |
- |
0.011 |
0.03 |
0.0039 |
- |
29 |
| B5 |
0.0058 |
0.44 |
0.11 |
- |
- |
0.011 |
0.05 |
0.0025 |
- |
21.1 |
| B6 |
0.0038 |
0.38 |
0.15 |
- |
- |
0.008 |
0.05 |
0.0028 |
- |
31.2 |
| B7 |
0.0039 |
0.09 |
0.009 |
0.24 |
- |
0.006 |
0.05 |
0.0022 |
- |
8.7 |
| B8 |
0.0042 |
0.09 |
0.013 |
0.43 |
- |
0.012 |
0.03 |
0.0026 |
- |
4.35 |
| B9 |
0.0035 |
0.1 |
0.011 |
0.62 |
- |
0.009 |
0.035 |
0.0025 |
- |
6.4 |
| B10 |
0.0022 |
0.4 |
0.009 |
0.25 |
- |
0.009 |
0.03 |
0.0042 |
- |
25.8 |
| B11 |
0.0077 |
0.42 |
0.01 |
0.44 |
- |
0.011 |
0.04 |
0.0042 |
- |
21.1 |
| B12 |
0.0042 |
0.4 |
0.01 |
0.62 |
- |
0.009 |
0.05 |
0.0039 |
- |
25.8 |
| B13 |
0.0044 |
0.1 |
0.01 |
- |
0.35 |
0.007 |
0.04 |
0.0024 |
- |
8.29 |
| B14 |
0.0032 |
0.09 |
0.01 |
- |
0.65 |
0.012 |
0.04 |
0.0032 |
- |
4.35 |
| B15 |
0.0038 |
0.11 |
0.012 |
- |
0.82 |
0.017 |
0.05 |
0.0018 |
- |
3.75 |
| B16 |
0.0025 |
0.4 |
0.011 |
- |
0.32 |
0.009 |
0.03 |
0.0017 |
- |
25.8 |
| B17 |
0.0059 |
0.43 |
0.01 |
- |
0.62 |
0.012 |
0.05 |
0.0024 |
- |
20.8 |
| B18 |
0.0042 |
0.4 |
0.01 |
- |
0.82 |
0.01 |
0.04 |
0.0019 |
- |
31:2 |
| B19 |
0.0044 |
0.1 |
0.05 |
- |
- |
0.008 |
0.034 |
0.0018 |
0.025 |
7.25 |
| B20 |
0.0046 |
0.1 |
0.01 |
0.25 |
- |
0.008 |
0.035 |
0.0032 |
0.028 |
7.25 |
| B21 |
0.0034 |
0.11 |
0.011 |
- |
0.33 |
0.009 |
0.034 |
0.0012 |
0.019 |
7.09 |
| B22 |
0.0041 |
0.11 |
0.045 |
0.21 |
0.35 |
0.01 |
0.03 |
0.0022 |
0.08 |
6.38 |
| B23 |
0.0038 |
0.1 |
0.048 |
0.18 |
0.35 |
0.012 |
0.042 |
0.0035 |
0.06 |
4.83 |
| B24 |
0.0043 |
0.1 |
0.012 |
0.2 |
0.32 |
0.015 |
0.029 |
0.0018 |
0.04 |
3.87 |
Table 4
| Sample No. |
Mechanical properties |
AS (µm) |
Remarks |
| YS (MPa) |
TS (MPa) |
EI (%) |
r-value (rm) |
Δr-value (Δr) |
PBYS (MPa) |
DBTT (°C) |
| B1 |
252 |
362 |
43 |
1.65 |
0.25 |
304 |
- 70 |
0.13 |
IS |
| B2 |
305 |
411 |
36 |
1.52 |
0.29 |
346 |
- 50 |
0.12 |
IS |
| B3 |
377 |
460 |
32 |
1.46 |
0.27 |
414 |
- 40 |
0.09 |
IS |
| B4 |
235 |
342 |
44 |
1.71 |
0.44 |
258 |
- 60 |
0.59 |
CS |
| B5 |
302 |
409 |
33 |
1.39 |
0.22 |
359 |
- 60 |
0.73 |
CS |
| B6 |
352 |
450 |
32 |
1.40 |
0.46 |
381 |
- 40 |
0.59 |
CS |
| B7 |
250 |
360 |
45 |
1.64 |
0.25 |
312 |
- 80 |
0.09 |
IS |
| B8 |
315 |
421 |
40 |
1.52 |
0.22 |
348 |
- 60 |
0.11 |
IS |
| B9 |
366 |
460 |
35 |
1.46 |
0.29 |
414 |
- 50 |
0.11 |
IS |
| B10 |
238 |
342 |
47 |
1.73 |
0.62 |
255 |
- 70 |
0.52 |
CS |
| B11 |
324 |
430 |
31 |
1.40 |
0.28 |
358 |
- 60 |
0.45 |
CS |
| B12 |
340 |
440 |
35 |
1.42 |
0.42 |
360 |
- 40 |
0.62 |
CS |
| B13 |
239 |
360 |
44 |
1.62 |
0.20 |
293 |
- 80 |
0.09 |
IS |
| B14 |
306 |
420 |
38 |
1.44 |
0.22 |
359 |
- 60 |
0.10 |
IS |
| B15 |
350 |
462 |
33 |
1.40 |
0.21 |
428 |
- 50 |
0.09 |
IS |
| B16 |
230 |
345 |
46 |
1.68 |
0.42 |
250 |
- 70 |
0.42 |
CS |
| B17 |
319 |
429 |
32 |
1.32 |
0.22 |
368 |
- 60 |
0.35 |
CS |
| B18 |
342 |
459 |
28 |
1.25 |
0.13 |
382 |
- 40 |
0.42 |
CS |
| B19 |
259 |
361 |
44 |
1.95 |
0.31 |
321 |
- 80 |
0.12 |
IS |
| B20 |
255 |
355 |
46 |
1.98 |
0.32 |
302 |
- 80 |
0.1 |
IS |
| B21 |
235 |
359 |
46 |
1.95 |
0.29 |
295 |
- 80 |
0.09 |
IS |
| B22 |
351 |
474 |
36 |
1.59 |
0.17 |
406 |
- 60 |
0.1 |
IS |
| B23 |
335 |
462 |
35 |
1.55 |
0.15 |
390 |
- 60 |
0.11 |
IS |
| B24 |
328 |
419 |
39 |
1.67 |
0.19 |
358 |
- 70 |
0.09 |
IS |
[0062] Note: YS = Yield strength, TS = Tensile strength, EI = Elongation, r-value: Plasticity-anisotropy
index, Δr-value: In-plane anisotropy index, PBYS = Post-bake yield strength, DBTT
= Ductility-brittleness transition temperature for investigating secondary work embrittlement,
AS = Average size of precipitates, IS = Steel of the invention, CS = Comparative steel
[Example 1-3] MnS-precipitated steel with AlN precipitation strengthening
[0063] In order to provide MnS-precipitated steel with AlN precipitation strengthening according
to the present invention, after steel slabs shown in Table 5 were reheated to a temperature
of 1,200 °C, followed by finish rolling the steel slabs in order to provide hot rolled
steel sheets, the hot rolled steel sheets were cooled at a cooling rate of 200 °C/min,
and then coiled at 650 °C. Then, the hot rolled steel sheets were cold rolled at a
reduction rate of 75 %, followed by continuous annealing the cold rolled steel sheets.
The finish rolling was performed at 910 °C, which is above the Ar
3 transformation temperature, and the continuous annealing was performed by heating
the steel sheets to 750 °C at a velocity of 10 °C/second for 40 seconds.
Table 5
| Sample No. |
Component (wt%) |
| C |
Mn |
P |
S |
Al |
N |
Mo |
R-1 |
R-2 |
| 0.003-0.005 |
0.05-0.2 |
0.03-0.06 |
0.005-0.03 |
0.01-0.1 |
0.005-0.02 |
0.01-0.2 |
≤10 |
1-5 |
| C1 |
0.0045 |
0.1 |
0.035 |
0.01 |
0.04 |
0.0135 |
- |
5.8 |
1.54 |
| C2 |
0.0038 |
0.11 |
0.044 |
0.007 |
0.055 |
0.0079 |
- |
9.11 |
3.63 |
| C3 |
0.0042 |
0.08 |
0.053 |
0.009 |
0.055 |
0.0065 |
- |
3.87 |
4.4 |
| C4 |
0.0018 |
0.10 |
0.042 |
0.01 |
0.04 |
0.0014 |
- |
5.8 |
14.9 |
| C5 |
0.0075 |
0.09 |
0.04 |
0.011 |
0.008 |
0.0067 |
- |
6.53 |
0.46 |
| C6 |
0.0035 |
0.4 |
0.04 |
0.009 |
0.04 |
0.0083 |
- |
25.8 |
2.51 |
| C7 |
0.0047 |
0.11 |
0.044 |
0.009 |
0.044 |
0.011 |
0.03 |
7.09 |
2.08 |
| C8 |
0.0037 |
0.1 |
0.042 |
0.01 |
0.05 |
0.012 |
0.064 |
5.8 |
2.17 |
| C9 |
0.0044 |
0.09 |
0.04 |
0.01 |
0.042 |
0.01 |
0.15 |
5.22 |
1.05 |
| C10 |
0.004 |
0.11 |
0.04 |
0.009 |
0.04 |
0.01 |
0.27 |
7.09 |
2.08 |
| Note: R-1 = 0.58*Mn/S, R-2 = 0.52*Al/N |
Table 6
| Sample No. |
Mechanical properties |
AS (µm) |
Remarks |
| YS (MPa) |
TS (MPa) |
El (%) |
r-value (rm) |
Δr-value (Δr) |
PBYS (MPa) |
DBTT (°C) |
| C1 |
242 |
358 |
44 |
1.71 |
0.31 |
283 |
-70 |
0.07 |
IS |
| C2 |
224 |
355 |
43 |
1.75 |
0.38 |
280 |
-70 |
0.09 |
IS |
| C3 |
239 |
360 |
40 |
1.68 |
0.29 |
302 |
-70 |
0.11 |
IS |
| C4 |
210 |
330 |
46 |
1.78 |
0.32 |
269 |
-70 |
0.11 |
CS |
| C5 |
228 |
352 |
37 |
1.52 |
0.25 |
295 |
-70 |
0.12 |
CS |
| C6 |
228 |
360 |
40 |
1. 65 |
0.54 |
280 |
-70 |
0.41 |
CS |
| C7 |
246 |
362 |
45 |
2.09 |
0.34 |
298 |
- 80 |
0.08 |
IS |
| C8 |
220 |
350 |
46 |
2.18 |
0.42 |
287 |
- 80 |
0.07 |
IS |
| C9 |
230 |
357 |
44 |
2.00 |
0.32 |
276 |
- 80 |
0.11 |
IS |
| C10 |
239 |
362 |
43 |
1.79 |
0.27 |
300 |
- 80 |
0.1 |
CS |
| Note: YS = Yield strength, TS = Tensile strength, El = Elongation, r-value: Plasticity-anisotropy
index, Δr-value. In-plane anisotropy index, PBYS = Post-bake yield strength, DBTT
= ductility-brittleness transition temperature for investigating secondary work embrittlement,
AS = Average size of precipitates, IS = Steel of the invention, CS = Comparative steel |
[Example 2-1] CuS-precipitated steel
[0064] In order to provide CuS-precipitated steel according to the present invention, after
steel slabs shown in Table 7 were reheated to a temperature of 1,200 °C, followed
by finish rolling the steel slabs in order to provide hot rolled steel sheets, the
hot rolled steel sheets were cooled at a cooling rate of 400 °C/min, and then coiled
at 650 °C. Then, the hot rolled steel sheets were cold rolled at a reduction rate
of 75 %, followed by continuous annealing the cold rolled steel sheets. The finish
rolling was performed at 910 °C, which is above the Ar
3 transformation temperature, and the continuous annealing was performed by heating
the steel sheets to 750 °C at a velocity of 10 °C/second for 40 seconds. Exceptionally,
for sample D7 in Table 7, after reheating to a temperature of 1,050 °C, followed by
finish rolling, it was cooled at a cooling rate of 400 °C/minute, and was then coiled
at 650 °C. For samples D8 to D11 in Table 7, after reheating to a temperature of 1,200
°C, followed by finish rolling, it was cooled at a cooling rate of 450 °C/minute,
and was then coiled at 650 °C.
Table 7
| Sample No. |
Component (wt%) |
| C |
P |
S |
Al |
N |
Cu |
Mo |
R-3 |
| 0.003-0.005 |
≤ 0.015 |
0.003-0.025 |
0.01-0.1 |
≤ 0.004 |
0.01-0.2 |
0.01-0.2 |
1-10 |
| D1 |
0.0038 |
0.01 |
0.01 |
0.04 |
0.0025 |
0.035 |
- |
1.75 |
| D2 |
0.0045 |
0.009 |
0.008 |
0.04 |
0.0026 |
0.045 |
- |
2.81 |
| D3 |
0.0035 |
0.011 |
0.006 |
0.03 |
0.0012 |
0.06 |
- |
5.0 |
| D4 |
0.0042 |
0.009 |
0.005 |
0.04 |
0.0027 |
0.083 |
- |
8.3 |
| D5 |
0.0016 |
0.011 |
0.009 |
0.05 |
0.0038 |
0.05 |
- |
2.78 |
| D6 |
0.0037 |
0.009 |
0.008 |
0.04 |
0.0015 |
0.25 |
- |
15.6 |
| D7 |
0.0078 |
0.010 |
0.012 |
0.04 |
0.0024 |
0.064 |
- |
2.67 |
| D8 |
0.0035 |
0.011 |
0.009 |
0.024 |
0.0035 |
0.038 |
0.018 |
2.11 |
| D9 |
0.0043 |
0.009 |
0.011 |
0.043 |
0.0026 |
0.04 |
0.083 |
1.82 |
| D10 |
0.0039 |
0.01 |
0.01 |
0.038 |
0.0042 |
0.062 |
0.17 |
3.1 |
| D11 |
0.004 |
0.012 |
0.011 |
0.028 |
0.0032 |
0.053 |
0.25 |
2.41 |
Table 8
| Sample No. |
Mechanical properties |
AS (µm) |
Remarks |
| YS (Mpa) |
TS (MPa) |
El (%) |
r-value (rm) |
Δr-value (Δr) |
PBYS (MPa) |
DBTT (°C) |
| D1 |
219 |
310 |
49 |
1.88 |
0.41 |
265 |
-70 |
0.08 |
IS |
| D2 |
224 |
325 |
47 |
1.83 |
0.36 |
275 |
-70 |
0.08 |
IS |
| D3 |
225 |
330 |
45 |
1.79 |
0.38 |
289 |
-70 |
0.07 |
IS |
| D4 |
240 |
335 |
45 |
1.75 |
0.30 |
311 |
-70 |
0.09 |
IS |
| D5 |
205 |
290 |
50 |
1.88 |
0.46 |
235 |
-70 |
0.09 |
CS |
| D6 |
216 |
299 |
49 |
1.80 |
0.38 |
240 |
-70 |
0.48 |
CS |
| D7 |
256 |
339 |
40 |
1.53 |
0.29 |
320 |
-70 |
0.08 |
CS |
| D8 |
214 |
310 |
48 |
2.10 |
2.9 |
260 |
-70 |
0.07 |
IS |
| D9 |
228 |
320 |
47 |
2.01 |
3.1 |
271 |
-70 |
0.07 |
IS |
| D10 |
220 |
325 |
46 |
1.99 |
2.7 |
279 |
-70 |
0.08 |
IS |
| D11 |
219 |
319 |
48 |
1.71 |
2.6 |
285 |
-70 |
0.1 |
CS |
| Note: YS = Yield strength, TS = Tensile strength, El = Elongation, r-value: Plasticity-anisotropy
index, Δr-value: In-plane anisotropy index, PBYS = Post-bake yield strength, DBTT
= ductility-brittleness transition temperature for investigating secondary work embrittlement,
AS = Average size of precipitates, IS = Steel of the invention, CS = Comparative steel |
[Example 2-2] High strength CuS-precipitated steel with solid solution strengthening
[0065] In order to provide high strength CuS-precipitated steel with solid solution strengthening
according to the present invention, after steel slabs shown in Table 9 were reheated
to a temperature of 1,200 °C, followed by finish rolling the steel slabs in order
to provide hot rolled steel sheets, the hot rolled steel sheets were cooled at a cooling
rate of 400 °C/min, and then coiled at 650 °C. Then, the hot rolled steel sheets were
cold rolled at a reduction rate of 75 %, followed by continuous annealing the cold
rolled steel sheets. The finish rolling was performed at 910 °C, which is above the
Ar
3 transformation temperature, and the continuous annealing was performed by heating
the steel sheets to 750 °C at a velocity of 10 °C/second for 40 seconds.
Table 9
| Sample No. |
Component (wt%) |
| C |
P |
Si |
Cr |
S |
Al |
N |
Cu |
Mo |
R-3 |
| 0.003-0.005 |
≤ 0.2 |
0.1-0.8 |
0.2-1.2 |
0.003-0.025 |
0.01-0.1 |
≤ 0.004 |
0.01-0.2 |
0.01-0.2 |
1-10 |
| E1 |
0.0038 |
0.050 |
- |
- |
0.006 |
0.04 |
0.0025 |
0.095 |
- |
7.92 |
| E2 |
0.0046 |
0.11 |
- |
- |
0.008 |
0.03 |
0.0026 |
0.06 |
- |
3.75 |
| E3 |
0.0033 |
0.148 |
- |
- |
0.01 |
0.04 |
0.0018 |
0.038 |
- |
1.9 |
| E4 |
0.0018 |
0.050 |
- |
- |
0.011 |
0.04 |
0.0024 |
0.054 |
- |
2.45 |
| E5 |
0.0065 |
0.115 |
- |
- |
0.009 |
0.03 |
0.0025 |
0.082 |
- |
4.56 |
| E6 |
0.0038 |
0.15 |
- |
- |
0.006 |
0.05 |
0.0028 |
0.25 |
- |
20.8 |
| E7 |
0.0039 |
0.01 |
0.25 |
- |
0.006 |
0.04 |
0.0026 |
0.1 |
- |
8.25 |
| E8 |
0.0042 |
0.011 |
0.45 |
- |
0.008 |
0.05 |
0.0016 |
0.086 |
- |
5.35 |
| E9 |
0.0035 |
0.015 |
0.65 |
- |
0.012 |
0.05 |
0.0028 |
0.051 |
- |
2.14 |
| E10 |
0.0018 |
0.009 |
0.25 |
- |
0.009 |
0.03 |
0.0042 |
0.077 |
- |
4.28 |
| E11 |
0.0077 |
0.011 |
0.42 |
- |
0.011 |
0.04 |
0.0042 |
0.046 |
- |
2.09 |
| E12 |
0.0042 |
0.01 |
0.62 |
- |
0.007 |
0.05 |
0.0039 |
0.252 |
- |
18 |
| E13 |
0.0035 |
0.009 |
- |
0.34 |
0.005 |
0.05 |
0.0014 |
0.08 |
- |
8.00 |
| E14 |
0.0038 |
0.011 |
- |
0.62 |
0.01 |
0.04 |
0.0022 |
0.09 |
- |
4.5 |
| E15 |
0.0045 |
0.01 |
- |
0.83 |
0.018 |
0.04 |
0.0028 |
0.08 |
- |
2.22 |
| E16 |
0.0016 |
0.01 |
- |
0.34 |
0.011 |
0.03 |
0.0017 |
0.08 |
- |
3.64 |
| E17 |
0.0072 |
0.009 |
- |
0.59 |
0.008 |
0.04 |
0.0026 |
0.12 |
- |
7.5 |
| E18 |
0.0035 |
0.012 |
- |
0.80 |
0.005 |
0.05 |
0.0013 |
0.26 |
- |
26 |
| E19 |
0.0045 |
0.054 |
- |
- |
0.008 |
0.024 |
0.0022 |
0.06 |
0.02 |
3.75 |
| E20 |
0.0036 |
0.011 |
0.27 |
- |
0.008 |
0.034 |
0.0028 |
0.06 |
0.018 |
3.75 |
| E21 |
0.0032 |
0.01 |
- |
0.32 |
0.011 |
0.035 |
0.0025 |
0.054 |
0.022 |
1.23 |
Table 10
| Sample No. |
Mechanical properties |
AS (µm) |
Remarks |
| YS (MPa) |
TS (MPa) |
El (%) |
r-value (rm) |
Δ r-value (Δr) |
PBYS (MPa) |
DBTT (°C) |
| E1 |
248 |
360 |
43 |
1.70 |
0.28 |
310 |
- 70 |
0.09 |
IS |
| E2 |
308 |
405 |
37 |
1.58 |
0.28 |
340 |
- 50 |
0.08 |
IS |
| E3 |
367 |
465 |
33 |
1.46 |
0.26 |
410 |
- 40 |
0.07 |
IS |
| E4 |
230 |
340 |
45 |
1.70 |
0.44 |
262 |
- 60 |
0.49 |
cs |
| E5 |
322 |
415 |
30 |
1.35 |
0.20 |
365 |
- 60 |
0.73 |
CS |
| E6 |
345 |
445 |
32 |
1.40 |
0.46 |
380 |
- 40 |
0.59 |
CS |
| E7 |
250 |
350 |
47 |
1.69 |
0.23 |
318 |
- 80 |
0.09 |
IS |
| E8 |
325 |
415 |
42 |
1.55 |
0.22 |
368 |
- 60 |
0.08 |
IS |
| E9 |
356 |
465 |
35 |
1.44 |
0.21 |
424 |
- 50 |
0.08 |
IS |
| E10 |
238 |
352 |
47 |
1.69 |
0.58 |
250 |
- 70 |
0.45 |
CS |
| E11 |
325 |
425 |
32 |
1.40 |
0.28 |
358 |
- 60 |
0.45 |
CS |
| E12 |
345 |
445 |
32 |
1.42 |
0.42 |
370 |
- 40 |
0.62 |
CS |
| E13 |
242 |
365 |
43 |
1.69 |
0.21 |
302 |
-80 |
0.09 |
IS |
| E14 |
310 |
425 |
38 |
1.46 |
0.23 |
365 |
- 60 |
0.08 |
IS |
| E15 |
352 |
454 |
36 |
1.45 |
0.21 |
408 |
- 70 |
0.07 |
IS |
| E16 |
230 |
345 |
46 |
1.68 |
0.32 |
265 |
- 70 |
0.07 |
CS |
| E17 |
315 |
413 |
28 |
1.32 |
0.22 |
365 |
- 60 |
0.09 |
CS |
| E18 |
348 |
461 |
27 |
1.24 |
0.13 |
372 |
- 60 |
0.42 |
CS |
| E19 |
254 |
365 |
43 |
2.08 |
2.8 |
322 |
- 70 |
0.09 |
IS |
| E20 |
247 |
348 |
48 |
1.95 |
0.28 |
295 |
- 80 |
0.09 |
IS |
| E21 |
240 |
358 |
45 |
1.93 |
0.27 |
298 |
- 80 |
0.07 |
IS |
| Note: YS = Yield strength, TS = Tensile strength, El = Elongation, r-value: Plasticity-anisotropy
index, Δr-value: In-plane anisotropy index, PBYS = Post-bake yield strength, DBTT
= ductility-brittleness transition temperature for investigating secondary work embrittlement,
AS = Average size of precipitates, IS = Steel of the invention, CS = Comparative steel |
[Example 2-3] CuS-precipitated steel with AlN precipitation strengthening
[0066] In order to provide CuS-precipitated steel with AlN precipitation strengthening according
to the present invention, after steel slabs shown in Table 11 were reheated to a temperature
of 1,200 °C, followed by finish rolling the steel slabs in order to provide hot rolled
steel sheets, the hot rolled steel sheets were cooled at a cooling rate of 400 °C/min,
and then coiled at 650 °C. Then, the hot rolled steel sheets were cold rolled at a
reduction rate of 75 %, followed by continuous annealing the cold rolled steel sheets.
The finish rolling was performed at 910 °C, which is above the Ar
3 transformation temperature, and the continuous annealing was performed by heating
the steel sheets to 750 °C at a velocity of 10 °C/second for 40 seconds. Exceptionally,
for samples F8 to F10 of Table 11, after reheating to a temperature of 1,200 °C, followed
by finish rolling, these samples were cooled at a cooling rate of 550 °C/minute, and
then coiled at 650 °C.
Table 11
| Sample No. |
Component (wt%) |
| C |
P |
S |
Al |
N |
Cu |
Mo |
R-3 |
R-2 |
| 0.003-0.005 |
0.03-0.06 |
0.003-0.025 |
0.01-0.1 |
0.005-0.02 |
0.01-0.2 |
0.01-0.2 |
1-10 |
1-5 |
| F1 |
0.0042 |
0.041 |
0.005 |
0.045 |
0.0125 |
0.09 |
- |
9 |
1.87 |
| F2 |
0.0035 |
0.042 |
0.008 |
0.05 |
0.0072 |
0.052 |
- |
3.25 |
3.61 |
| F3 |
0.0045 |
0.043 |
0.014 |
0.04 |
0.0052 |
0.07 |
- |
2.5 |
4 |
| F4 |
0.0015 |
0.04 |
0.01 |
0.05 |
0.0014 |
0.08 |
- |
4 |
18.6 |
| F5 |
0.0073 |
0.037 |
0.008 |
0.01 |
0.0077 |
0.1 |
- |
6.25 |
0.68 |
| F6 |
0.0036 |
0.042 |
0.006 |
0.04 |
0.0083 |
0.155 |
- |
12.9 |
2.51 |
| F7 |
0.0037 |
0.044 |
0.011 |
0.055 |
0.012 |
0.09 |
0.018 |
4.09 |
2.38 |
| F8 |
0.0043 |
0.04 |
0.009 |
0.045 |
0.0092 |
0.088 |
0.078 |
4.89 |
2.54 |
| F9 |
0.0035 |
0.044 |
0.012 |
0.054 |
0.011 |
0.097 |
0.16 |
4.04 |
2.55 |
| F10 |
0.0045 |
0.042 |
0.008 |
0.053 |
0.0084 |
0.082 |
0.25 |
5.13 |
3.28 |
| Note: R-2 = 0.52*Al/N, R-3 = 0.5*Cu/S |
Table 12
| Sample No. |
Mechanical properties |
AS (µm) |
Remarks |
| YS (MPa) |
TS (MPa) |
El (%) |
r-value (rm) |
Δr-value (Δr) |
PBYS (MPa) |
DBTT (°C) |
| F1 |
240 |
353 |
45 |
1.70 |
0.32 |
296 |
- 70 |
0.06 |
IS |
| F2 |
232 |
350 |
44 |
1.72 |
0.28 |
291 |
- 70 |
0.07 |
IS |
| F3 |
245 |
362 |
46 |
1.80 |
0.27 |
323 |
- 70 |
0.05 |
CS |
| F4 |
216 |
340 |
46 |
1.78 |
0.35 |
260 |
- 70 |
0.08 |
CS |
| F5 |
243 |
360 |
35 |
1.49 |
0.25 |
308 |
- 70 |
0.07 |
CS |
| F6 |
238 |
355 |
43 |
1.69 |
0.44 |
253 |
- 70 |
0.41 |
CS |
| F7 |
235 |
348 |
46 |
1.94 |
0.24 |
296 |
- 70 |
0.06 |
IS |
| F8 |
237 |
355 |
44 |
1.93 |
0.22 |
302 |
- 70 |
0.08 |
IS |
| F9 |
237 |
360 |
46 |
1.97 |
0.26 |
312 |
- 70 |
0.06 |
IS |
| F10 |
231 |
346 |
46 |
1.70 |
0.27 |
300 |
- 70 |
0.07 |
CS |
| Note: YS = Yield strength, TS = Tensile strength, El = Elongation, r-value: Plasticity-anisotropy
index, Δr-value: In-plane anisotropy index, PBYS = Post-bake yield strength, DBTT
= ductility-brittleness transition temperature for investigating secondary work embrittlement,
AS = Average size of precipitates, IS = Steel of the invention, CS = Comparative steel |
[Example 3-1] MnCu-precipitated steel
[0067] In order to provide MnCu-precipitated steel according to the present invention, after
steel slabs shown in Table 13 were reheated to a temperature of 1,200 °C, followed
by finish rolling the steel slabs in order to provide hot rolled steel sheets, the
hot rolled steel sheets were cooled at a cooling rate of 600 °C/min, and then coiled
at 650 °C. Then, the hot rolled steel sheets were cold rolled at a reduction rate
of 75 %, followed by continuous annealing the cold rolled steel sheets. The finish
rolling was performed at 910 °C, which is above the Ar
3 transformation temperature, and the continuous annealing was performed by heating
the steel sheets to 750 °C at a velocity of 10 °C/second for 40 seconds.
Table 13
| Sample No. |
Component (wt%) |
| C |
Mn |
P |
S |
Al |
N |
Cu |
Mo |
R-4 |
R-5 |
| 0.003-0.005 |
0.03-0.2 |
≤ 0.015 |
0.003-0.025 |
0.01-0.1 |
≤ 0.004 |
0.01-0.2 |
0.01-0.2 |
≤ 0.3 |
2-20 |
| G1 |
0.0041 |
0.08 |
0.012 |
0.02 |
0.05 |
0.0013 |
0.03 |
- |
0.11 |
2.75 |
| G2 |
0.0038 |
0.1 |
0.009 |
0.012 |
0.04 |
0.0021 |
0.04 |
- |
0.14 |
5.83 |
| G3 |
0.0044 |
0.15 |
0.01 |
0.015 |
0.04 |
0.0024 |
0.05 |
- |
0.2 |
6.67 |
| G4 |
0.0042 |
0.17 |
0.008 |
0.009 |
0.04 |
0.0012 |
0.12 |
- |
0.29 |
16.1 |
| G5 |
0.0012 |
0.12 |
0.01 |
0.012 |
0.05 |
0.0014 |
0.05 |
- |
0.17 |
7.08 |
| G6 |
0.0064 |
0.15 |
0.009 |
0.01 |
0.04 |
0.0023 |
0.03 |
- |
0.18 |
9.0 |
| G7 |
0.0042 |
0.45 |
0.01 |
0.011 |
0.05 |
0.0013 |
0.18 |
- |
0.63 |
28.6 |
| G8 |
0.0035 |
0.11 |
0.011 |
0.02 |
0.045 |
0.0032 |
0.03 |
0.019 |
0.14 |
3.5 |
| G9 |
0.0033 |
0.12 |
0.01 |
0.014 |
0.034 |
0.0019 |
0.046 |
0.082 |
0.17 |
5.93 |
| G10 |
0.0043 |
0.12 |
0.014 |
0.009 |
0.027 |
0.0034 |
0.062 |
0.16 |
0.18 |
10.1 |
| G11 |
0.0045 |
0.15 |
0.008 |
0.014 |
0.033 |
0.0032 |
0.085 |
0.25 |
0.24 |
8.39 |
| Note: R-4 = Mn+Cu, R-5 = 05*(Mn+Cu)/S |
Table 14
| Sample No. |
Mechanical properties |
AS (µm) |
PN (number/ mm2) |
Remarks |
| YS (Mpa) |
TS (MPa) |
El (%) |
r-value (rm) |
Δr-value (Δr) |
PBYS (MPa) |
| G1 |
218 |
301 |
52 |
2.12 |
0.28 |
288 |
0.07 |
3.5X109 |
IS |
| G2 |
208 |
295 |
54 |
2.25 |
0.31 |
275 |
0.08 |
7.4X108 |
IS |
| G3 |
225 |
314 |
52 |
2.18 |
0.26 |
298 |
0.08 |
9.2X108 |
IS |
| G4 |
195 |
292 |
50 |
2.10 |
0.26 |
275 |
0.09 |
9.5X106 |
IS |
| G5 |
185 |
282 |
50 |
2.63 |
0.53 |
229 |
0.09 |
7.5X107 |
CS |
| G6 |
205 |
321 |
42 |
1.73 |
0.33 |
292 |
0.12 |
2.5X108 |
CS |
| G7 |
185 |
292 |
44 |
1.83 |
0.49 |
222 |
0.42 |
6.3X104 |
CS |
| G8 |
212 |
304 |
52 |
2.42 |
0.39 |
278 |
0.08 |
4.4X106 |
IS |
| G9 |
210 |
297 |
53 |
2.53 |
0.34 |
269 |
0.09 |
3.5X106 |
IS |
| G10 |
221 |
310 |
51 |
2.52 |
0.38 |
288 |
0.07 |
8.2X106 |
IS |
| G11 |
219 |
301 |
48 |
2.12 |
0.32 |
269 |
0.08 |
3.8X106 |
CS |
| Note: YS = Yield strength, TS = Tensile strength, El = Elongation, r-value: Plasticity-anisotropy
index, Δr-value: In-plane anisotropy index, PBYS = Post-bake yield strength, DBTT
= ductility-brittleness transition temperature for investigating secondary work embrittlement,
AS = Average size of precipitates, IS = Steel of the invention, CS = Comparative steel |
[Example 3-2] High strength MnCu-precipitated steel with solid solution strengthening
[0068] In order to provide high strength MnCu-precipitated steel with solid solution strengthening
according to the present invention, after steel slabs shown in Table 15 were reheated
to a temperature of 1,200 °C, followed by finish rolling the steel slabs in order
to provide hot rolled steel sheets, the hot rolled steel sheets were cooled at a cooling
rate of 600 °C/min, and then coiled at 650 °C. Then, the hot rolled steel sheets were
cold rolled at a reduction rate of 75 %, followed by continuous annealing the cold
rolled steel sheets. The finish rolling was performed at 910 °C, which is above the
Ar
3 transformation temperature, and the continuous annealing was performed by heating
the steel sheets to 750 °C at a velocity of 10 °C/second for 40 seconds.
Table 15
| Sample No. |
Component (wt%) |
| C |
Mn |
P |
Si |
Cr |
S |
Al |
N |
Cu |
Mo |
R-4 |
R-5 |
| 0.003-0.005 |
0.03-0.2 |
≤ 0.2 |
0.1-0.8 |
0.2-1.2 |
0.003-0.025 |
0.01-0.1 |
≤ 0.004 |
0.005-0.2 |
0.01 -0.2 |
≤ 0.3 |
2-20 |
| H1 |
0.0042 |
0.06 |
0.039 |
- |
- |
0.015 |
0.05 |
0.0025 |
0.02 |
|
0.08 |
2.67 |
| H2 |
0.0045 |
0.1 |
0.041 |
- |
- |
0.018 |
0.04 |
0.0023 |
0.03 |
- |
0.13 |
3.61 |
| H3 |
0.0037 |
0.12 |
0.09 |
- |
- |
0.016 |
0.05 |
0.0032 |
0.04 |
|
0.16 |
5 |
| H4 |
0.0045 |
0.18 |
0.14 |
- |
- |
0.011 |
0.04 |
0.0028 |
0.1 |
- |
0.28 |
12.7 |
| H5 |
0.0018 |
0.1 |
0.04 |
- |
- |
0.012 |
0.05 |
0.0024 |
0.1 |
- |
0.2 |
8.33 |
| H6 |
0.0075 |
0.15 |
0.1 |
- |
- |
0.012 |
0.03 |
0.0022 |
0.06 |
- |
0.21 |
8.75 |
| H7 |
0.0043 |
0.3 |
0.14 |
- |
- |
0.008 |
0.04 |
0.0015 |
0.15 |
|
0.45 |
28.1 |
| H8 |
0.004 |
0.09 |
0.04 |
- |
- |
0.013 |
0.035 |
0.0029 |
0.028 |
0.017 |
0.12 |
4.54 |
| H9 |
0.0044 |
0.11 |
0.094 |
- |
- |
0.012 |
0.026 |
0.0035 |
0.047 |
0.072 |
0.16 |
6.54 |
| H10 |
0.0037 |
0.12 |
0.145 |
- |
- |
0.01 |
0.042 |
0.0018 |
0.088 |
0.16 |
0.21 |
10.4 |
| H11 |
0.0045 |
0.08 |
0.043 |
- |
- |
0.009 |
0.037 |
0.0032 |
0.035 |
0.25 |
0.16 |
6.39 |
| H12 |
0.0041 |
0.06 |
0.01 |
0.18 |
- |
0.019 |
0.04 |
0.0019 |
0.04 |
- |
0.1 |
5 |
| H13 |
0.0036 |
0.1 |
0.009 |
0.17 |
- |
0.015 |
0.05 |
0.0026 |
0.03 |
- |
0.13 |
7.22 |
| H14 |
0.0038 |
0.13 |
0.012 |
0.35 |
- |
0.015 |
0.04 |
0.0032 |
0.03 |
- |
0.16 |
6.67 |
| |
| H16 |
0.0021 |
0.12 |
0.009 |
0.2 |
- |
0.011 |
0.05 |
0.0024 |
0.12 |
- |
0.24 |
10.9 |
| H17 |
0.0064 |
0.12 |
0.01. |
0.34 |
- |
0.012 |
0.04 |
0.0028 |
0.07 |
- |
0.19 |
7.9 |
| H18 |
0.0044 |
0.25 |
0.012 |
0.53 |
- |
0.009 |
0.05 |
0.0022 |
0.18 |
- |
0.43 |
23.9 |
| H19 |
0.0039 |
0.11 |
0.012 |
0.21 |
- |
0.014 |
0.034 |
0.0029 |
0.044 |
0.017 |
0.15 |
5.5 |
| H20 |
0.0045 |
0.12 |
0.009 |
0.32 |
- |
0.011 |
0.042 |
0.0042 |
0.038 |
0.075 |
0.16 - |
7.18 |
| H21 |
0.0036 |
0.14 |
0.012 |
0.62 |
- |
0.009 |
0.033 |
0.0022 |
0.063 |
0.16 |
0.20 |
11.3 |
| H22 |
0.0042 |
0.09 |
0.013 |
0.2 |
- |
0.01 |
0.038 |
0.0033 |
0.053 |
0.25 |
0.14 |
7.15 |
| H23 |
0.0044 |
0.07 |
0.009 |
- |
0.25 |
0.017 |
0.04 |
0.0018 |
0.03 |
- |
0.1 |
2.94 |
| H24 |
0.0039 |
0.11 |
0.01 |
- |
0.24 |
0.015 |
0.03 |
0.0022 |
0.03 |
- |
0.14 |
4.67 |
| H25 |
0.0042 |
0.15 |
0.011 |
- |
0.55 |
0.015 |
0.04 |
0.0023 |
0.05 |
- |
0.2 |
6.67 |
| H26 |
0.0046 |
0.18 |
0.012 |
- |
0.86 |
0.01 |
0.04 |
0.0016 |
0.04 |
- |
0.22 |
11 |
| H27 |
0.0022 |
0.15 |
0.01 |
- |
0.24 |
0.015 |
0.04 |
0.0026 |
0.1 |
- |
0.25 |
8.33 |
| H2S |
0.0067 |
0.15 |
0.012 |
- |
0.52 |
0.011 |
0.05 |
0.0025 |
0.11 |
- |
0.26 |
11.8 |
| H29 |
0.0043 |
0.2 |
0.009 |
- |
0.88 |
0.008 |
0.03 |
0.0013 |
0.15 |
- |
0.35 |
21.9 |
| H30 |
0.0039 |
0.09 |
0.012 |
- |
0.23 |
0.012 |
0.034 |
0.0028 |
0.043 |
0.019 |
0.13 |
5.54 |
| H31 |
0.0045 |
0.12 |
0.01 |
- |
0.58 |
0.013 |
0.042 |
0.0033 |
0.056 |
0.079 |
0.18 |
6.77 |
| H32 |
0.0037 |
0.15 |
0.009 |
- |
0.83 |
0.011 |
0.023 |
0.0021 |
0.063 |
0.17 |
0.21 |
9.68 |
| H33 |
0.0042 |
0.1 |
0.011 |
- |
0.22 |
0.011 |
0.035 |
0.0031 |
0.073 |
0.27 |
0.17 |
7.86 |
| Note: R-4 = Mn+Cu, R-5 = 05*(Mn+Cu)/S |
Table 16
| Sample No. |
Mechanical properties |
AS (µm) |
PN (number/ mm2) |
Remarks |
| YS (Mpa) |
TS (MPa) |
El (%) |
r-value (rm) |
Δr-value (Δr) |
PBYS (MPa) |
DBTT (°C) |
| H1 |
265 |
360 |
49 |
1.98 |
0.25 |
346 |
-70 |
0.05 |
5.5X108 |
IS |
| H2 |
258 |
358 |
50 |
1.92 |
0.28 |
345 |
-70 |
0.05 |
4.0X108 |
IS |
| H3 |
308 |
410 |
43 |
1.71 |
0.21 |
394 |
- 60 |
0.06 |
2.2X108 |
IS |
| H4 |
335 |
442 |
37 |
1.60 |
0.19 |
428 |
- 50 |
0.11 |
9.5X106 |
IS |
| H5 |
255 |
350 |
49 |
1.92 |
0.31 |
295 |
- 70 |
0.06 |
4.3X108 |
CS |
| H6 |
304 |
400 |
35 |
1.45 |
0.25 |
382 |
- 60 |
0.06 |
3.5X108 |
CS |
| H7 |
351 |
454 |
32 |
1.38 |
0.22 |
395 |
- 40 |
0.61 |
2.3X104 |
CS |
| H8 |
258 |
360 |
49 |
2.35 |
0.28 |
345 |
- 70 |
0.06 |
4.6X108 |
IS |
| H9 |
311 |
408 |
44 |
1.98 |
0.21 |
389 |
- 60 |
0.05 |
3.3X108 |
IS |
| H10 |
330 |
445 |
38 |
1.82 |
0.2 |
422 |
- 50 |
0.09 |
9.5X107 |
IS |
| H11 |
264 |
364 |
47 |
1.91 |
0.22 |
350 |
- 70 |
0.06 |
4.7X108 |
CS |
| H12 |
245 |
350 |
50 |
1.85 |
0.28 |
338 |
- 80 |
0.06 |
4.5X108 |
IS |
| H13 |
253 |
355 |
49 |
1.83 |
0.29 |
342 |
- 80 |
0.07 |
2.5X108 |
IS |
| H14 |
293 |
405 |
45 |
1.65 |
0.21 |
390 |
- 60 |
0.06 |
4.0X108 |
IS |
| H16 |
234 |
342 |
52 |
1.85 |
0.33 |
275 |
- 80 |
0.09 |
4.2X106 |
CS |
| H17 |
308 |
412 |
36 |
1.48 |
0.21 |
398 |
- 70 |
0.09 |
3.2X106 |
CS |
| H18 |
335 |
448 |
34 |
1.38 |
0.57 |
380 |
- 60 |
0.51 |
9.3X104 |
CS |
| H19 |
240 |
352 |
50 |
2.28 |
2.9 |
335 |
- 80 |
0.05 |
8.2X108 |
IS |
| H20 |
303 |
410 |
44 |
1.88 |
2.1 |
387 |
- 60 |
0.06 |
4.5X108 |
IS |
| H21 |
359 |
460 |
37 |
1.7 |
2.0 |
437 |
- 60 |
0.08 |
4.1X106 |
IS |
| H22 |
252 |
359 |
50 |
1.86 |
2.2 |
339 |
- 80 |
0.07 |
4.5X106 |
CS |
| H23 |
250 |
355 |
48 |
1.89 |
0.28 |
335 |
- 80 |
0.06 |
9.5X108 |
IS |
| H24 |
245 |
355 |
47 |
1.85 |
0.27 |
348 |
- 80 |
0.06 |
6.5X108 |
IS |
| H25 |
288 |
395 |
46 |
1.69 |
0.25 |
375 |
- 60 |
0.07 |
2.1X108 |
IS |
| H26 |
348 |
443 |
37 |
1.54 |
0.21 |
420 |
- 60 |
0.09 |
7.5X106 |
IS |
| H27 |
244 |
345 |
46 |
1.88 |
0.36 |
283 |
- 80 |
0.09 |
5.2X108 |
CS |
| H28 |
297 |
402 |
33 |
1.45 |
0.21 |
365 |
- 70 |
0.09 |
3.2X108 |
CS |
| H29 |
345 |
454 |
33 |
1.36 |
0.47 |
385 |
- 60 |
0.51 |
9.3X104 |
CS |
| H30 |
252 |
358 |
48 |
2.15 |
0.24 |
330 |
- 80 |
0.07 |
8.3X108 |
IS |
| H31 |
292 |
390 |
43 |
1.92 |
0.2 |
372 |
- 60 |
0.09 |
3.2X108 |
IS |
| H32 |
343 |
448 |
38 |
1.72 |
0.18 |
421 |
- 60 |
0.07 |
7.5X106 |
IS |
| H33 |
251 |
357 |
47 |
1.79 |
0.2 |
341 |
- 80 |
0.06 |
6.5X106 |
CS |
| Note: YS = Yield strength, TS = Tensile strength, El = Elongation, r-value: Plasticity-anisotropy
index, Δr-value: In-plane anisotropy index, PBYS = Post-bake yield strength, DBTT
= ductility-brittleness transition temperature for investigating secondary work embrittlement,
AS = Average size of precipitates, PN = The number of precipitates, IS = Steel of
the invention, CS = Comparative steel |
[Example 3-3] MnCu-precipitated steel with AIN precipitation strengthening
[0069] In order to provide MnCu-precipitated steel with AIN precipitation strengthening
according to the present invention, after steel slabs shown in Table 17 were reheated
to a temperature of 1,200 °C, followed by finish rolling the steel slabs in order
to provide hot rolled steel sheets, the hot rolled steel sheets were cooled at a cooling
rate of 400 °C/min, and then coiled at 650 °C. Then, the hot rolled steel sheets were
cold rolled at a reduction rate of 75 %, followed by continuous annealing the cold
rolled steel sheets. The finish rolling was performed at 910 °C, which is above the
Ar
3 transformation temperature, and the continuous annealing was performed by heating
the steel sheets to 750 °C at a velocity of 10 °C/second for 40 seconds.
Table 17
| Sample No. |
Component (wt%) |
| C |
Mn |
P |
S |
Al |
N |
Cu |
Mo |
R-4 |
R-5 |
R-2 |
| 0.003-0.005 |
0.03-0.2 |
0.03-0.06 |
0.003-0.025 |
0.01-0.1 |
0.005-0.02 |
0.01-0.2 |
0.01-0.2 |
≤ 0.3 |
2-20 |
1-5 |
| I1 |
0.0042 |
0.07 |
0.038 |
0.02 |
0.032 |
0.0085 |
0.03 |
- |
0.1 |
2.5 |
1.96 |
| I2 |
0.0038 |
0.1 |
0.042 |
0.015 |
0.042 |
0.0072 |
0.03 |
- |
0.13 |
4.33 |
3.03 |
| I3 |
0.0045 |
0.14 |
0.037 |
0.015 |
0.055 |
0.0092 |
0.05 |
- |
0.19 |
6.33 |
3.11 |
| I4 |
0.0045 |
0.2 |
0.05 |
0.009 |
0.07 |
0.008 |
0.05 |
- |
0.25 |
13.9 |
4.55 |
| I5 |
0.0015 |
0.17 |
0.04 |
0.012 |
0.042 |
0.0072 |
0.05 |
- |
0.22 |
9.17 |
3.03 |
| I6 |
0.0062 |
0.15 |
0.038 |
0.015 |
0.038 |
0.0014 |
0.12 |
- |
0.27 |
9 |
14.1 |
| I7 |
0.0036 |
0.25 |
0.042 |
0.009 |
0.04 |
0.0083 |
0.2 |
- |
0.45 |
25 |
2.51 |
| I8 |
0.0035 |
0.09 |
0.04 |
0.012 |
0.052 |
0.0093 |
0.043 |
0.019 |
0.13 |
5.54 |
2.91 |
| I9 |
0.0046 |
0.11 |
0.039 |
0.011 |
0.053 |
0.011 |
0.053 |
0.082 |
0.16 |
7.41 |
2.51 |
| I10 |
0.0038 |
0.12 |
0.042 |
0.012 |
0.061 |
0.012 |
0.085 |
0.16 |
0.21 |
8.54 |
2.64 |
| I11 |
0.004 |
0.12 |
0.045 |
0.01 |
0.059 |
0.0095 |
0.065 |
0.26 |
0.19 |
9.25 |
3.23 |
| Note: R-2 = 0.52*Al/N, R-4 = Mn+Cu, R-5 = 05*(Mn+Cu)/S |
Table 18
| Sample No. |
Mechanical Properties |
AS (µm) |
PN (number/ mm2) |
Remarks |
| YS (Mpa) |
TS (MPa) |
El (%) |
r-value (rm) |
Δr-value (Δr) |
PBYS (MPa) |
DBTT (°C) |
| I1 |
250 |
355 |
48 |
1.89 |
0.28 |
343 |
- 80 |
0.06 |
9.5x108 |
IS |
| I2 |
245 |
355 |
47 |
1.85 |
0.27 |
348 |
- 80 |
0.06 |
6.SX108 |
IS |
| I3 |
248 |
352 |
47 |
1.89 |
0.23 |
345 |
- 80 |
0.07 |
2.1X108 |
IS |
| I4 |
254 |
348 |
45 |
1.84 |
0.28 |
330 |
- 60 |
0.09 |
7.5X106 |
IS |
| I5 |
240 |
342 |
46 |
1.88 |
0.32 |
280 |
- 80 |
0.09 |
5.2X106 |
CS |
| I6 |
247 |
362 |
40 |
1.55 |
0.38 |
335 |
- 70 |
0.09 |
3.2X106 |
CS |
| I7 |
253 |
352 |
42 |
1.66 |
0.37 |
295 |
- 60 |
0.51 |
9.3X104 |
CS |
| I8 |
247 |
350 |
49 |
2.11 |
0.25 |
339 |
- 80 |
0.06 |
8.9X108 |
IS |
| I9 |
251 |
359 |
48 |
2.13 |
0.24 |
340 |
- 80 |
0.06 |
7.5X106 |
IS |
| I10 |
245 |
348 |
49 |
2.15 |
0.22 |
332 |
- 80 |
0.08 |
1.1X108 |
IS |
| I11 |
250 |
352 |
47 |
1.80 |
0.21 |
335 |
- 60 |
0.09 |
1.5X106 |
CS |
| Note: YS = Yield strength, TS = Tensile strength, EI = Elongation, r-value: Plasticity-anisotropy
index, Δr-value: In-plane anisotropy index, PBYS = Post-bake yield strength, DBTT
= ductility-brittleness transition temperature for investigating secondary work embrittlement,
AS = Average size of precipitates, PN = The number of precipitates, IS = Steel of
the invention, CS = Comparative steel |
[0070] Although the preferred embodiments of the present invention have been disclosed for
illustrative purposes, those skilled in the art will appreciate that various modifications,
additions and substitutions are possible, without departing from the scope and spirit
of the invention as disclosed in the accompanying claims.
1. A bake-hardenable cold rolled steel sheet having excellent formability, comprising:
0.003∼ 0. 005 % of C ; 0.003∼ 0.03 % of S ; 0.01∼ 0.1 % of Al; 0.02 % or less of N;
0.2 % or less of P; at least one of 0. 03∼ 0. 2 % of Mn and 0.005∼ 0.2 % of Cu; and
optionally comprises at least one of 0,1~ 0.8% Si, 0,2~ 1.2% of Cu and 0,01~ 0.2 %
Mo and the balance of Fe and other unavoidable impurities, in terms of weight%, wherein,
when the steel sheet comprises one of Mn and Cu, a composition of Mn, Cu, and S satisfies
one of relationships: 0. 58*Mn/S≤ 10 and 1 ≤0.5*Cu/S≤10, and when the steel sheet
comprises both Mn and Cu, a composition of Mn, Cu, and S satisfies the relationships:
Mn+Cu≤0.3 and 2 ≤0.5* (Mn+Cu)/S≤20, and wherein precipitates of MnS, CuS, and (Mn,
Cu) S have an average size of 0.2 µm or less.
2. A bake-hardenable cold rolled steel sheet having excellent formability according to
Claim 1, comprising: 0.003∼ 0.005 % of C ; 0.005∼ 0.03 % of S ; 0.01~ 0.1 % of Al;
0.02 % or less of N; 0.2 % or less of P; 0.05∼ 0. 2 % of Mn; and the balance of Fe
and other unavoidable impurities, in terms of weight%, wherein a composition of Mn
and S satisfies the relationship: 0.58*Mn/S≤10 in terms of weight, and wherein precipitates
of MnS have an average size of 0.2 µm or less; and the steel sheet optionally comprises
at least one of 0.1~ 0. 8 % of Si, 0.2∼ 1. 2 % of Cr and 0.01∼ 0. 2 % of Mo.
3. The steel sheet as set forth in claim 2, wherein the steel sheet comprises 0.015 %
or less of P.
4. The steel sheet as set forth in claim 2, wherein the steel sheet comprises 0.004 %
or less of N.
5. The steel sheet as set forth in claim 2, wherein the steel sheet comprises 0. 03 ∼
0.2 % of P.
6. The steel sheet as set forth in claim 2, wherein the steel sheet comprises 0. 005∼
0. 02 % of N, and 0.03~ 0. 06 % of P.
7. The steel sheet as set forth in claim 6, wherein a composition of Al and N satisfies
the relationship: 1≤0.52*Al/N≤5.
8. A bake-hardenable cold rolled steel sheet having excellent formability according to
Claim 1, comprising: 0. 003∼ 0. 005 % of C ; 0. 003∼ 0. 025 % of S ; 0. 01~ 0. 08
% off A1; 0.02 % or less of N; 0.2 % or less of P; 0. 01~ 0. 2 % of Cu; and the balance
of Fe and other unavoidable impurities, in terms of weight%, wherein a composition
of Cu, and S satisfies the relationship: 1 ≤0.5*Cu/S ≤10 in terms of weight, and wherein
precipitates of CuS have an average size of 0.1 µm or less ; and the steel sheet optionally
comprises at least one of 0.1~ 0. 8 % of Si, 0.2∼ 1.2% of Cr and 0.01~ 0. 2 % of Mo.
9. The steel sheet as set forth in claim 8, wherein the steel sheet comprises 0. 015
% or less of P.
10. The steel sheet as set forth in claim 8, wherein the steel sheet comprises 0.004 %
or less of N.
11. The steel sheet as set forth in claim 8, wherein the composition of Cu and S satisfies
the relationship: 1 ≤ 0.5*Cu/S ≤.
12. The steel sheet as set forth in claim 8, wherein the steel sheet comprises 0. 03∼
0. 2 % of P.
13. The steel sheet as set forth in claim 8, wherein the steel sheet comprises 0. 005
-0. 02 % of N, and 0. 03 -0. 06 % of P.
14. The steel sheet as set forth in claim 13, wherein a composition of Al and N satisfies
the relationship: 1≤ 0.52*Al/N≤ 5.
15. A bake-hardenable cold rolled steel sheet having excellent formability according to
Claim 1, comprising: 0. 003∼ 0. 005 % of C ; 0. 003∼ 0. 025 % of S;0.01~0.08% of Al;
0.02 % or less of N ; 0.2 % or less of P ; 0. 03∼ 0. 2 % of Mn ; 0. 005∼ 0. 2 % of
Cu ; and the balance of Fe and other unavoidable impurities, in terms of weight%,
wherein a composition of Mn, Cu, and S satisfies the relationships: Mn+Cu ≤ 0. 3 and
2 ≤ 0.5*(Mn+Cu)/S <_ 20 in terms of weight, and wherein precipitates of MnS, CuS,
and (Mn, Cu) S have an average size of 0. 2 µm or less; and the steel sheet optionally
comprises at least one of 0.1~ 0. 8 % of Si, 0.2~ 1.2 % of Cr and 0.01~ 0.2 % of Mo.
16. The steel sheet as set forth in claim 15, wherein the steel sheet comprises 0. 015
% or less of P.
17. The steel sheet as set forth in claim 15, wherein the steel sheet comprises 0.004
% or less of N.
18. The steel sheet as set forth in claim 15, wherein the number of precipitates is 2x106 or more per unit area (mm2).
19. The steel sheet as set forth in claim 15, wherein the composition of Mn, Cu and S
satisfies the relationship: 2 ≤ 0.5*(Mn+Cu)/S ≤ 7.
20. The steel sheet as set forth in claim 19, wherein the number of precipitates is 2x108 or more per unit area (mm2).
21. The steel sheet as set forth in claim 15, wherein the steel sheet comprises 0.03~
0. 2 % of P.
22. The steel sheet as set forth in claim 15, wherein the steel sheet comprises 0. 005∼
0.02% of N, and 0.03~ 0. 06 % of P.
23. The steel sheet as set forth in claim 22, wherein a composition of Al and N satisfies
the relationship: 1≤0. 52*Al/N≤5.
24. A method of manufacturing a bake-hardenable cold rolled steel sheet according to Claim
1, comprising the steps of:
hot-rolling a steel slab with finish rolling at an Ar3 transformation temperature
or more to provide a hot rolled steel sheet, after reheating the steel slab to a temperature
of 1 100°C or more;
cooling the steel sheet at a speed of 200 °C/min or more;
winding the cooled steel sheet at a temperature of 700 °C or less;
cold rolling the steel sheet; and
continuous annealing the cold rolled steel sheet.
25. A method of manufacturing a bake-hardenable cold rolled steel sheet according to Claim
24 wherein the steel slab comprising: 0. 003∼ 0. 005 % of C ; 0. 005∼ 0. 03 % of S
; 0. 01~ 0.1% of A1 ; 0.02 % or less of N ; 0.2 % or less of P ; 0. 05∼ 0. 2 % of
Mn ; and the balance of Fe and other unavoidable impurities, in terms of weight%,
wherein a composition of Mn and S satisfies the relationship: 0.58*Mn/S ≤10 in terms
of weight and the steel slab optionally comprises at least one of 0.1~ 0. 8 % of Si,
0.2~ 1.2% of Cr and 0.01~ 0. 2 % of Mo.
26. The method as set forth in claim 25, wherein the steel slab comprises 0. 015 % or
less of P.
27. The method as set forth in claim 25, wherein the steel slab comprises 0.004 % or less
of N.
28. The method as set forth in claim 25, wherein the steel slab comprises 0. 03∼ 0. 2
% of P.
29. The method as set forth in claim 25, wherein the steel slab comprises 0. 005∼ 0. 02
% ofN, and 0. 03∼ 0. 06 % of P.
30. The method as set forth in claim 25, wherein a composition of Al and N satisfies the
relationship: 1≤0.52*Al/N≤5.
31. A method of manufacturing a bake-hardenable cold rolled steel sheet according to Claim
24, wherein, the steel slab comprising: 0. 003∼ 0. 005 % of C ; 0. 003∼ 0. 025 % of
S ; 0. 01∼ 0. 08 % of Al ; 0.02 % or less of N; 0.2 % or less of P; 0. 01~ 0. 2 %
of Cu; and the balance of Fe and other unavoidable impurities, in terms of weight%,
wherein a composition of Cu and S satisfies the relationship: 1 ≤0. 5*Cu/S ≤ 10 in
terms of weight and the steel slab optionally comprises at least one of 0.1~ 0. 8%
of Si, 0.2- 1. 2 % of Cr and 0.01~ 0. 2 % of Mo and wherein the step of cooling the
steel sheet is implemented at a speed of 300°C/min or more.
32. The method as set forth in claim 31, wherein the steel slab comprises 0. 0.15 % or
less of P.
33. The method as set forth in claim 31, wherein the steel slab comprises 0.004 % or less
of N.
34. The method as set forth in claim 31, wherein the composition of Cu and S satisfies
the relationship: 1 ≤0.5*Cu/S ≤3.
35. The method as set forth in claim 31, wherein the steel slab comprises 0. 03 ∼0.2 %
of P.
36. The method as set forth in claim 31, wherein the steel slab comprises 0. 005 -0.02
% of N, and 0.03 ~0.06 % of P.
37. The method as set forth in claim 31, wherein a composition of A1 and N satisfies the
relationship: 1≤0.52*Al/N≤5.
38. A method of manufacturing a bake-hardenable cold rolled steel sheet according to Claim
24, wherein the steel slab comprising : 0. 003∼ 0. 005 % of C ; 0. 003∼ 0. 025 % of
S ; 0.01~0.08 % of Al; 0.02 % or less ofN ; 0.2 % or less of P ; 0. 03∼ 0. 2 % of
Mn ; 0. 005∼ 0. 2 % of Cu ; and the balance of Fe and other unavoidable impurities,
in terms of weight%, wherein a composition of Mn, Cu, and S satisfies the relationships:
Mn+Cu≤0. 3 and 2 ≤0.5*(Nn+Cu)/S ≤20 in terms of weight and the steel slab optionally
comprises at least one of 0.1~ 0. 8 % of Si, 0.2∼ 1. 2 % of Cr and 0.01∼ 0. 2 % of
Mo and wherein the step of cooling the steel sheet is implemented at a speed of 300°C/min
or more.
39. The method as set forth in claim 38, wherein the steel slab comprises 0. 015 % or
less of P.
40. The method as set forth in claim 38, wherein the steel slab comprises 0.004 % or less
ofN.
41. The method as set forth in claim 38, wherein the number of precipitates is 2x106 or more per unit area (mm2).
42. The method as set forth in claim 38, wherein the composition of Mn, Cu and S satisfies
the relationship: 2≤0. 5* (Mn+Cu) /S ≤7.
43. The method as set forth in claim 42, wherein the number of precipitates is 2x108 or more per unit area (mm2).
44. The method as set forth in claim 38, wherein the steel slab comprises 0. 03 ∼0.2 %
of P.
45. The method as set forth in claim 38, wherein the steel slab comprises 0. 005 ∼0.02
% of N, and 0.03 ∼0.06 % of P.
46. The method as set forth in claim 45, wherein a composition of Al and N satisfies the
relationship: 1≤. 52*Al/N≤5.
1. Kaltgewalztes Bake-Hardening-Stahlblech mit einer ausgezeichneten Formbarkeit, umfassend:
0,003 0,005% C; 0,003 ~ 0,03% S; 0,01 ~ 0,1% Al; 0,02% oder weniger N; 0,2% oder weniger
P; mindestens eines von 0,03 ∼ 0,2% Mn und 0,005 ~ 0,2% Cu; und zusätzlich umfassend
mindestens eines von 0,1 ∼ 0,8% Si, 0,2 1,2% Cr und 0,01 ∼ 0,2% Mo; und den Rest Fe
und andere unvermeidliche Verunreinigungen in Gew.%, wobei, wenn das Stahlblech eines
von Mn und Cu umfasst, eine Zusammensetzung von Mn, Cu, und S einem der folgenden
Verhältnisse entspricht: 0,58*Mn/S ≤ 10 und 1 ≤ 0,5*Cu/S ≤ 10, und wenn das Stahlblech
sowohl Mn als auch Cu umfasst, eine Zusammensetzung von Mn, Cu und S den folgenden
Verhältnissen entspricht: Mn+Cu ≤ 0,3 und 2 ≤ 0,5* (Mn+Cu)/S ≤ 20, und wobei Fällungen
von MnS, CuS und (Mn, Cu) S eine durchschnittliche Größe von 0,2 µm oder weniger aufweisen.
2. Kaltgewalztes Bake-Hardening-Stahlblech mit einer ausgezeichneten Formbarkeit nach
Anspruch 1, umfassend: 0,003 ∼ 0,005% of C; 0,005 ∼ 0,03% S; 0,01 ~ 0,1% Al; 0,02%
oder weniger N; 0,2% oder weniger P; 0,05 ~ 0,2% Mn; und den Rest Fe und andere unvermeidliche
Verunreinigungen in Gew.%, wobei eine Zusammensetzung von Mn und S dem folgenden Verhältnis
entspricht: 0,58*Mn/S ≤ 10 in Gewicht, und wobei Fällungen von MnS eine durchschnittliche
Größe von 0,2 µm oder weniger aufweisen; und das Stahlblech optional mindestens eines
von 0,1 ~ 0,8% Si, 0,2 ~ 1,2% Cr und 0,01 ∼ 0,2% Mo umfasst.
3. Stahlblech nach Anspruch 2, wobei das Stahlblech 0,015% oder weniger P umfasst.
4. Stahlblech nach Anspruch 2, wobei das Stahlblech 0,004% oder weniger N umfasst.
5. Stahlblech nach Anspruch 2, wobei das Stahlblech 0,03 ∼ 0,2% P umfasst.
6. Stahlblech nach Anspruch 2, wobei das Stahlblech 0,005 ∼ 0,02% N und 0,03 - 0,06%
P umfasst.
7. Stahlblech nach Anspruch 6, wobei eine Zusammensetzung von Al und N dem folgenden
Verhältnis entspricht: 1 ≤ 0,52*A/N ≤ 5.
8. Kaltgewalztes Bake-Hardening-Stahlblech mit einer ausgezeichneten Formbarkeit nach
Anspruch 1, umfassend: 0,003 ~ 0,005% C; 0,003 ~ 0,025% S; 0,01 ~ 0,08% Al; 0,02%
oder weniger N; 0,2% oder weniger P; 0,01 ~ 0,2% Cu; und den Rest Fe und andere unvermeidliche
Verunreinigungen in Gew.%, wobei eine Zusammensetzung von Cu und S dem folgenden Verhältnis
entspricht: 1 ≤ 0,5*Cu/S ≤ 10 als Gewicht, und wobei Fällungen von CuS eine durchschnittliche
Größe von 0,1 µm oder weniger aufweisen; und das Stahlblech optional mindestens eines
von 0,1 ~ 0,8% Si, 0,2 ~ 1,2% Cr und 0,01 ∼ 0,2% Mo umfasst.
9. Stahlblech nach Anspruch 8, wobei das Stahlblech 0,015% oder weniger P umfasst.
10. Stahlblech nach Anspruch 8, wobei das Stahlblech 0,004% oder weniger N umfasst.
11. Stahlblech nach Anspruch 8, wobei die Zusammensetzung von Cu und S dem folgenden Verhältnis
entspricht: 1 ≤ 0,5*Cu/S ≤ 3.
12. Stahlblech nach Anspruch 8, wobei das Stahlblech 0,03 ∼ 0,2% P umfasst.
13. Stahlblech nach Anspruch 8, wobei das Stahlblech 0,005 ∼ 0,02% N und 0,03 ∼ 0,06%
P umfasst.
14. Stahlblech nach Anspruch 13, wobei eine Zusammensetzung von Al und N dem folgenden
Verhältnis entspricht: 1 ≤ 0,52*Al/N ≤ 5.
15. Kaltgewalztes Bake-Hardening-Stahlblech mit einer ausgezeichneten Formbarkeit nach
Anspruch 1, umfassend: 0,003 ~ 0,005% C; 0,003 ~ 0,025% S; 0,01 ~ 0,08% Al; 0,02%
oder weniger N; 0,2% oder weniger P; 0,03 ∼ 0,2% Mn; 0,005 ∼ 0,2% of Cu; und den Rest
Fe und andere unvermeidliche Verunreinigungen in Gew.%, wobei eine Zusammensetzung
von Mn, Cu und S den folgenden Verhältnissen entspricht: Mn+Cu ≤ 0,3 und 2 ≤ 0,5*(Mn+Cu)/S
≤ 20 in Gewicht; und wobei Fällungen von MnS, CuS und (Mn, Cu) S eine durchschnittliche
Größe von 0,2 µm oder weniger aufweisen und das Stahlblech optional mindestens eines
von 0,1 - 0,8% Si, 0,2 - 1,2% Cr und 0,01 - 0,2% Mo umfasst.
16. Stahlblech nach Anspruch 15, wobei das Stahlblech 0,015% oder weniger P umfasst.
17. Stahlblech nach Anspruch 15, wobei das Stahlblech 0,004% oder weniger N umfasst.
18. Stahlblech nach Anspruch 15, wobei die Anzahl von Fällungen 2 x 106 oder mehr pro Bereichseinheit (mm2) ist.
19. Stahlblech nach Anspruch 15, wobei die Zusammensetzung von Mn, Cu und S dem folgenden
Verhältnis entspricht: 2 ≤ 0,5*(Mn+Cu)/S ≤ 7.
20. Stahlblech nach Anspruch 19, wobei die Anzahl von Fällungen 2 x 108 oder mehr pro Bereichseinheit (mm2) ist.
21. Stahlblech nach Anspruch 15, wobei das Stahlblech 0,03 ∼ 0,2% P umfasst.
22. Stahlblech nach Anspruch 15, wobei das Stahlblech 0,005 ∼ 0,02% N und 0,03 ∼ 0,06%
P umfasst.
23. Stahlblech nach Anspruch 22, wobei eine Zusammensetzung von Al und N dem folgenden
Verhältnis entspricht: 1 ≤ 0, 52*Al/N ≤ 5.
24. Verfahren zur Herstellung eines kaltgewalzten Bake-Hardening-Stahlblechs nach Anspruch
1, umfassend die folgenden Schritte:
Heißwalzen einer Stahlbramme mit Fertigwalzen bei einer Ar3-Transformationstemperatur
oder mehr, um heißgewalzten Stahlblech bereitzustellen, danach Widererhitzen der Stahlbramme
auf eine Temperatur von 1100 °C oder mehr;
Abkühlen des Stahlblechs mit einer Geschwindigkeit von 200 °C/min oder mehr;
Wickeln des abgekühlten Stahlblechs bei einer Temperatur von 700 °C oder weniger;
Kaltwalzen des Stahlblechs; und
Durchlaufglühen des kalt gewalzten Stahlblechs.
25. Verfahren zur Herstellung eines kaltgewalzten Bake-Hardening-Stahlblechs nach Anspruch
24, wobei die Stahlbramme Folgendes umfasst: 0,003 ~ 0,005% C; 0,005 ∼ 0,03% S; 0,01
∼ 0,1% Al; 0,02% oder weniger N; 0,2% oder weniger P; 0,05 ∼ 0,2% Mn; und den Rest
Fe und andere unvermeidliche Verunreinigungen in Gew.%, wobei eine Zusammensetzung
von Mn und S dem folgenden Verhältnis entspricht: 0,58*Mn/S ≤ 10 in Gewicht und wobei
die Stahlbramme optional mindestens eines von 0,1 ∼ 0,8% Si, 0,2 ∼ 1,2% Cr und 0,01
∼ 0,2% Mo umfasst.
26. Verfahren nach Anspruch 25, wobei die Stahlbramme 0,015% oder weniger P umfasst.
27. Verfahren nach Anspruch 25, wobei die Stahlbramme 0,004% oder weniger N umfasst.
28. Verfahren nach Anspruch 25, wobei die Stahlbramme 0,03 ∼ 0,2% P umfasst.
29. Verfahren nach Anspruch 25, wobei die Stahlbramme 0,005 ∼ 0,02% N und 0,03 ∼ 0,06%
P umfasst.
30. Verfahren nach Anspruch 25, wobei eine Zusammensetzung von Al und N dem folgenden
Verhältnis entspricht: 1 ≤ 0,52*Al/N ≤ 5.
31. Verfahren zur Herstellung eines kaltgewalzten Bake-Hardening-Stahlblechs nach Anspruch
24, wobei die Stahlbramme Folgendes umfasst: 0,003 ~ 0,005% C; 0,003 ∼ 0,025% S; 0,01
∼ 0,08% Al; 0,02% oder weniger N; 0,2% oder weniger P; 0,01 ∼ 0,2% Cu; und den Rest
Fe und andere unvermeidliche Verunreinigungen in Gew.%, wobei eine Zusammensetzung
von Cu und S den folgenden Verhältnissen entspricht: 1 ≤ 0, 5*Cu/S ≤ 10 in Gewicht,
und wobei die Stahlbramme optional mindestens eines von 0,1 ∼ 0,8% Si, 0,2 ∼ 1,2%
Cr und 0,01 ∼ 0,2% Mo umfasst, und wobei der Schritt des Abkühlens des Stahlblechs
mit einer Geschwindigkeit von 300°C/min oder mehr durchgeführt wird.
32. Verfahren nach Anspruch 31, wobei die Stahlbramme 0,015% oder weniger P umfasst.
33. Verfahren nach Anspruch 31, wobei die Stahlbramme 0,004% oder weniger N umfasst.
34. Verfahren nach Anspruch 31, wobei die Zusammensetzung von Cu und S dem folgenden Verhältnis
entspricht: 1 ≤ 0,5*Cu/S ≤ 3.
35. Verfahren nach Anspruch 31, wobei die Stahlbramme 0,03 ∼ 0,2% P umfasst.
36. Verfahren nach Anspruch 31, wobei die Stahlbramme 0,005 ∼ 0,02% N und 0,03 ∼ 0,06%
P umfasst.
37. Verfahren nach Anspruch 31 wobei eine Zusammensetzung von Al und N dem folgenden Verhältnis
entspricht: 1 ≤ 0,52*Al/N ≤ 5.
38. Verfahren zur Herstellung eines kaltgewalzten Bake-Hardening-Stahlblechs nach Anspruch
24, wobei die Stahlbramme Folgendes umfasst: 0,003 ~ 0,005% C; 0,003 ∼ 0,025% S; 0,01
∼ 0,08% Al; 0,02% oder weniger N; 0,2% oder weniger P; 0,03 ~ 0,2% Mn; 0,005 ~ 0,2%
Cu; und den Rest Fe und andere unvermeidliche Verunreinigungen in Gew.%, wobei eine
Zusammensetzung von Mn, Cu und S den folgenden Verhältnissen entspricht: Mn+Cu ≤ 0,3
und 2 ≤ 0,5*(Mn+Cu)/S ≤ 20 in Gewicht, und wobei die Stahlbramme optional mindestens
eines von 0,1 ∼ 0,8% Si, 0,2 ∼ 1,2% Cr und 0,01 ∼ 0,2% Mo umfasst, und wobei der Schritt
des Abkühlens des Stahlblechs mit einer Geschwindigkeit von 300°C/min oder mehr durchgeführt
wird.
39. Verfahren nach Anspruch 38, wobei die Stahlbramme 0,015% oder weniger P umfasst.
40. Verfahren nach Anspruch 38, wobei die Stahlbramme 0,004% oder weniger N umfasst.
41. Verfahren nach Anspruch 38, wobei die Anzahl von Fällungen 2 x 106 oder mehr pro Bereichseinheit (mm2) ist.
42. Verfahren nach Anspruch 38, wobei die Zusammensetzung von Mn, Cu und S dem folgenden
Verhältnis entspricht: 2 ≤ 0,5*(Mn+Cu)/S ≤ 7.
43. Verfahren nach Anspruch 42, wobei die Anzahl von Fällungen 2 x 108 oder mehr pro Bereichseinheit (mm2) ist.
44. Verfahren nach Anspruch 38, wobei die Stahlbramme 0,03 ∼ 0,2% P umfasst.
45. Verfahren nach Anspruch 38, wobei die Stahlbramme 0,005 ∼ 0,02% N und 0,03 ∼ 0,06%
P umfasst.
46. Verfahren nach Anspruch 45, wobei eine Zusammensetzung von Al und N dem folgenden
Verhältnis entspricht: 1 ≤ 0,52*Al/N ≤ 5.
1. Tôle d'acier laminée à froid pouvant être durcie au four présentant une excellente
aptitude au formage, comprenant : 0,003 ~ 0,005 % de C ; 0,003 ~ 0, 03 % de S ; 0,01
~ 0, 1 % d'Al ; 0, 02 % ou moins de N ; 0,2 % ou moins de P ; au moins l'un parmi
0,03 ~ 0,2 % de Mn et 0,005 ~ 0,2 % de Cu ; et comprenant facultativement au moins
l'un parmi 0,1 ~ 0,8 % de Si, 0,2 ~ 1,2 % de Cr et 0,01 ~ 0,2 % de Mo ; le reste étant
constitué de Fe et d'autres impuretés inévitables, en termes de % en poids, dans laquelle,
lorsque la tôle d'acier comprend l'un de Mn et de Cu, une composition de Mn, de Cu
et S satisfait l'une des relations : 0,58*Mn/S ≤ 10 et 1 ≤ 0,5*Cu/S ≤ 10, et lorsque
la tôle d'acier comprend à la fois du Mn et du Cu, une composition de Mn, Cu et S
satisfait les relations : Mn+Cu ≤ 0,3 et 2 ≤ 0,5*(Mn+Cu)/S ≤ 20, et dans laquelle
les précipités de MnS, de CuS, et de (Mn, Cu)S ont une taille moyenne de 0,2 µm ou
moins.
2. Tôle d'acier laminée à froid pouvant être durcie au four présentant une excellente
aptitude au formage selon la revendication 1, comprenant : 0,003 ~ 0,005 % de C; 0,005
~ 0,03 % de S; 0,01 ~ 0,1 % d'Al ; 0,02 % ou moins de N ; 0,2 % ou moins de P ; 0,05
∼ 0,2 % de Mn ; le reste étant constitué de Fe et d'autres impuretés inévitables,
en termes de % en poids, dans laquelle une composition de Mn et de S satisfait la
relation : 0,58*Mn/S ≤ 10 en termes de poids, et dans laquelle les précipités de MnS
ont une taille moyenne de 0,2 µm ou moins ; et la tôle d'acier comprend facultativement
au moins l'un parmi 0,1 ~ 0,8 % de Si, 0,2 ~ 1,2 % de Cr et 0,01 ~ 0,2 % de Mo.
3. Tôle d'acier selon la revendication 2, dans laquelle la tôle d'acier comprend 0,015
% ou moins de P.
4. Tôle d'acier selon la revendication 2, dans laquelle la tôle d'acier comprend 0,004
% ou moins de N.
5. Tôle d'acier selon la revendication 2, dans laquelle la tôle d'acier comprend 0,03
- 0,2 % de P.
6. Tôle d'acier selon la revendication 2, dans laquelle la tôle d'acier comprend 0,005
∼ 0,02 % de N et 0,03 ∼ 0,06 % de P.
7. Tôle d'acier selon la revendication 6, dans laquelle une composition d'Al et de N
satisfait la relation : 1 ≤ 0,52*Al/N ≤ 5.
8. Tôle d'acier laminée à froid pouvant être durcie au four présentant une excellente
aptitude au formage selon la revendication 1, comprenant : 0,003 - 0,005 % de C ;
0,003 - 0,025 % de S ; 0,01 ∼ 0,08 % d'Al ; 0,02 % ou moins de N ; 0,2 % ou moins
de P ; 0,01 ∼ 0,2 % de Cu ; le reste étant constitué de Fe et d'autres impuretés inévitables,
en termes de % en poids, dans laquelle une composition de Cu et de S satisfait la
relation : 1 ≤ 0,5*Cu/S ≤ 10 en termes de poids, et dans laquelle les précipités de
CuS ont une taille moyenne de 0,1 µm ou moins ; et la tôle d'acier comprend facultativement
au moins l'un parmi 0,1 ~ 0,8 % de Si, 0,2 ~ 1,2 % de Cr et 0,01 ~ 0,2 % de Mo.
9. Tôle d'acier selon la revendication 8, dans laquelle la tôle d'acier comprend 0,015
% ou moins de P.
10. Tôle d'acier selon la revendication 8, dans laquelle la tôle d'acier comprend 0,004
% ou moins de N.
11. Tôle d'acier selon la revendication 8, dans laquelle la composition de Cu et de S
satisfait la relation : 1 ≤ 0,5*Cu/S ≤ 3.
12. Tôle d'acier selon la revendication 8, dans laquelle la tôle d'acier comprend 0,03
∼ 0,2 % de P.
13. Tôle d'acier selon la revendication 8, dans laquelle la tôle d'acier comprend 0,005
~ 0,02 % de N et 0,03 ∼ 0,06 % de P.
14. Tôle d'acier selon la revendication 13, dans laquelle une composition d'Al et de N
satisfait la relation : 1 ≤ 0,52*Al/N ≤ 5.
15. Tôle d'acier laminée à froid pouvant être durcie au four présentant une excellente
aptitude au formage selon la revendication 1, comprenant : 0,003 ~ 0,005 % de C ;
0,003 ∼ 0,025 % de S; 0,01 ~ 0,08 % d'Al ; 0,02 % ou moins de N ; 0,2 % ou moins de
P ; 0,03 - 0,2 % de Mn ; 0,005 - 0,2 % de Cu ; le reste étant constitué de Fe et d'autres
impuretés inévitables, en termes de % en poids, dans laquelle une composition de Mn,
de Cu et de S satisfait les relations : Mn+Cu ≤ 0,3 et 2 ≤ 0,5*(Mn+Cu)/S ≤ 20 en termes
de poids, et dans laquelle les précipités de MnS, de CuS, et de (Mn, Cu)S ont une
taille moyenne de 0, 2 µm ou moins; et la tôle d'acier comprend facultativement au
moins l'un parmi 0,1 ~ 0,8 % de Si,0,2 ~ 1,2 % de Cr et 0,01 ~ 0,2 % de Mo.
16. Tôle d'acier selon la revendication 15, dans laquelle la tôle d'acier comprend 0,015
% ou moins de P.
17. Tôle d'acier selon la revendication 15, dans laquelle la tôle d'acier comprend 0,004
% ou moins de N.
18. Tôle d'acier selon la revendication 15, dans laquelle le nombre de précipités est
de 2 x 106 ou plus par unité d'aire (mm2).
19. Tôle d'acier selon la revendication 15, dans laquelle la composition de Mn, de Cu
et de S satisfait la relation : 2 ≤ 0,5*(Mn+Cu)/S ≤ 7.
20. Tôle d'acier selon la revendication 19, dans laquelle le nombre de précipités est
de 2 x 108 ou plus par unité d'aire (mm2) .
21. Tôle d'acier selon la revendication 15, dans laquelle la tôle d'acier comprend 0,03
∼ 0,2 % de P.
22. Tôle d'acier selon la revendication 15, dans laquelle la tôle d'acier comprend 0,005
∼ 0,2 % de N et 0,03 ~ 0,06 % de P.
23. Tôle d'acier selon la revendication 22, dans laquelle une composition d'Al et de N
satisfait la relation : 1 ~ 0,52*Al/N ≤ 5.
24. Procédé de fabrication d'une tôle d'acier laminée à froid pouvant être durcie au four
selon la revendication 1, comprenant les étapes suivantes :
laminage à chaud d'une brame d'acier avec un laminage de finition à une température
de transformation Ar3 ou plus pour fournir une tôle d'acier laminée à chaud, après
le réchauffage de la brame d'acier à une température de 1 100 °C ou plus ;
refroidissement de la tôle d'acier à une vitesse de 200 °C/min ou plus ;
enroulage de la tôle d'acier refroidie à une température de 700 °C ou moins ;
laminage à froid de la tôle d'acier ; et
recuit continu de la tôle d'acier laminée à froid.
25. Procédé de fabrication d'une tôle d'acier laminée à froid pouvant être durcie au four
selon la revendication 24, dans lequel la brame d'acier comprend : 0,003 - 0,005 %
de C ; 0,005 - 0,03 % de S ; 0,01 ∼ 0,1 % d'Al ; 0,02 % ou moins de N ; 0,2 % ou moins
de P ; 0,05 ~ 0,2 % de Mn ; le reste étant constitué de Fe et d'autres impuretés inévitables,
en termes de % en poids, dans lequel une composition de Mn et de S satisfait la relation
: 0,58*Mn/S ≤ 10 en termes de poids, et la brame d'acier comprend facultativement
au moins l'un parmi 0,1 - 0,8 % de Si, 0,2 ~ 1,2 % de Cr et 0,01 ~ 0,2 % de Mo.
26. Procédé selon la revendication 25, dans lequel la brame d'acier comprend 0,015 % ou
moins de P.
27. Procédé selon la revendication 25, dans lequel la brame d'acier comprend 0,004 % ou
moins de N.
28. Procédé selon la revendication 25, dans lequel la brame d'acier comprend 0,03 ∼ 0,2
% de P.
29. Procédé selon la revendication 25, dans lequel la brame d'acier comprend 0,005 ~ 0,2
% de N et 0,03 ~ 0,06 % de P.
30. Procédé selon la revendication 25, dans lequel une composition d'Al et de N satisfait
la relation : 1 ≤ 0,52*Al/N ≤ 5.
31. Procédé de fabrication d'une tôle d'acier laminée à froid pouvant être durcie au four
selon la revendication 24, dans lequel la brame d'acier comprend : 0,003 ∼ 0,005 %
de C ; 0,003 ∼ 0,025 % de S; 0,01 ∼ 0,08 % d'Al ; 0,02 % ou moins de N ; 0,2 % ou
moins de P ; 0,01 ~ 0,2 % de Cu ; le reste étant constitué de Fe et d'autres impuretés
inévitables, en termes de % en poids, dans lequel une composition de Cu et de S satisfait
la relation : 1 ≤ 0,5*Cu/S ≤ 10, en termes de poids, et la brame d'acier comprend
facultativement au moins l'un parmi 0,1 ∼ 0,8 % de Si, 0,2 ∼ 1,2 % de Cr et 0,01 ∼
0,2 % de Mo, et dans lequel l'étape de refroidissement de la tôle d'acier est mise
en oeuvre à une vitesse de 300 °C/min ou plus.
32. Procédé selon la revendication 31, dans lequel la brame d'acier comprend 0,015 % ou
moins de P.
33. Procédé selon la revendication 31, dans lequel la brame d'acier comprend 0,004 % ou
moins de N.
34. Procédé selon la revendication 31, dans lequel la composition de Cu et de S satisfait
la relation : 1≤ 0,5*Cu/S ≤ 3.
35. Procédé selon la revendication 31, dans lequel la brame d'acier comprend 0,03 ∼ 0,2
% de P.
36. Procédé selon la revendication 31, dans lequel la brame d'acier comprend 0,005 ~ 0,02
% de N et 0,03 ~ 0,06 % de P.
37. Procédé selon la revendication 31, dans lequel la composition d'Al et de N satisfait
la relation : 1 ≤ 0,52*Al/N ≤ 5.
38. Procédé de fabrication d'une tôle d'acier laminée à froid pouvant être durcie au four
selon la revendication 24, dans lequel la brame d'acier comprend : 0,003 ∼ 0,005 %
de C ; 0,003 ∼ 0,025 % de S; 0,01 ∼ 0,08 % d'Al ; 0,02 % ou moins de N ; 0,2 % ou
moins de P ; 0,03 ~ 0,2 % de Mn ; 0,005 ∼ 0,2 % de Cu ; le reste étant constitué de
Fe et d'autres impuretés inévitables, en termes de % en poids, dans lequel une composition
de Mn, de Cu et de S satisfait les relations : Mn+Cu ≤ 0.3 et 2 ≤ 0,5*(Mn+Cu)/S ≤
20, en termes de poids, et la brame d'acier comprend facultativement au moins l'un
parmi 0,1 ∼ 0,8 % de Si, 0,2 ∼ 1,2 % de Cr et 0,01 ∼ 0,2 % de Mo, et dans lequel l'étape
de refroidissement de la tôle d'acier est mise en oeuvre à une vitesse de 300 °C/min
ou plus.
39. Procédé selon la revendication 38, dans lequel la brame d'acier comprend 0,015 % ou
moins de P.
40. Procédé selon la revendication 38, dans lequel la brame d'acier comprend 0,004 % ou
moins de N.
41. Procédé selon la revendication 38, dans lequel le nombre de précipités est de 2 x
106 ou plus par unité d'aire (mm2).
42. Procédé selon la revendication 38, dans lequel la composition de Mn, de Cu et de S
satisfait la relation : 2 ≤ 0,5*(Mn+Cu)/S ≤ 7.
43. Procédé selon la revendication 42, dans lequel le nombre de précipités est de 2 x
108 ou plus par unité d'aire (mm2).
44. Procédé selon la revendication 38, dans lequel la brame d'acier comprend 0,03 ∼ 0,2
% de P.
45. Procédé selon la revendication 38, dans lequel la brame d'acier comprend 0,005 ~ 0,02
% de N et 0,03 ~ 0,06 % de P.
46. Procédé selon la revendication 45, dans lequel une composition d'Al et de N satisfait
la relation : 1 ≤ 0,52*Al/N ≤ 5.