Steel plates, components, and methods for manufacturing them.

The steel composition and manufacturing process address the challenges of high-strength steel sheets by achieving a tensile strength of 1320 MPa or more, a yield ratio of 75% or more, and stress corrosion cracking resistance, ensuring material stability and weight reduction for automotive components.

JP7845584B2Active Publication Date: 2026-04-14JFE STEEL CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2025-01-28
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Existing high-strength steel sheets used in automobiles face challenges in achieving a tensile strength of 1320 MPa or more, a yield ratio of 75% or more, excellent tensile flange properties, stress corrosion cracking resistance, and material stability, which are essential for automotive structural components, particularly in reducing vehicle weight and improving collision resistance.

Method used

A steel composition with specific element ranges and microstructural control, including tempered martensite content of 95% or more, retained austenite less than 3% by volume, total ferrite and bainitic ferrite less than 5% by area, and tempered martensite carbides within grain boundaries, combined with a manufacturing process involving hot rolling, cold rolling, annealing, and water quenching, to achieve the desired properties.

Benefits of technology

The steel sheets exhibit a tensile strength of 1320 MPa or higher, a yield ratio of 75% or higher, excellent tensile flange properties, and stress corrosion cracking resistance, enhancing material stability and enabling vehicle weight reduction for improved fuel efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided are: a steel sheet having a tensile strength TS of at least 1320 MPa, a yield ratio YR of at least 75%, and excellent stretch flangeability, stress corrosion cracking resistance characteristics, and material stability; a member; and methods for producing the steel sheet and the member. This steel sheet has a specific component composition, and has a structure in which: at a position 1 / 4 of the thickness of the steel sheet, the area fraction of tempered martensite is at least 95%, the volume fraction of residual austenite is less than 3%, and the total area fraction of ferrite and bainitic ferrite is less than 5%; and, in the tempered martensite, the area fraction of tempered martensite including at least five carbide particles having a particle size of 0.1-1.0 μm in particles surrounded by a grain boundary of at least 15° is 5-50%.
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Description

Technical Field

[0001] The present invention relates to a steel sheet, a member, and a method for manufacturing the same, which are excellent in tensile strength, yield ratio, elongation flangeability, stress corrosion cracking resistance, and material stability. The steel sheet of the present invention can be suitably used as a structural member for automotive parts and the like.

Background Art

[0002] For the purpose of achieving both reduction of CO2 emissions by vehicle weight reduction and improvement of collision resistance performance by vehicle body weight reduction, the high strength of thin steel sheets for automobiles is progressing, and new regulations are being introduced one after another. Therefore, for the purpose of increasing the vehicle body strength, the application cases of high strength steel sheets with a tensile strength TS of 1320 MPa or more are increasing in the main structural parts forming an automobile.

[0003] High-strength steel sheets used in automobiles are required to have an excellent yield ratio, excellent elongation flangeability, and excellent stress corrosion cracking resistance. For example, in the case of skeleton parts such as floor cross members of automobiles, it is preferable to use a steel sheet having excellent elongation flangeability from the viewpoint of formability. Also, from the viewpoint of component performance, excellent yield ratio and excellent stress corrosion cracking resistance are required. Furthermore, as a problem when using a high-strength steel sheet for a member, there is a significant decrease in the shape freezing property during press forming due to an increase in the springback of the steel sheet due to the high strength of the steel sheet. Therefore, in the field of press technology, in order to ensure the shape freezing property, it is widely practiced to predict in advance the amount of shape change after脱模 and design the press die shape in anticipation of the amount of shape change during press forming. However, when the TS variation of the steel sheet, which is a press material, increases, the springback variation also increases, and it becomes difficult to obtain parts of the same shape even when press forming with the same die. Repair such as sheet metal processing of each shape after press forming becomes indispensable, and the mass production efficiency is significantly reduced. Therefore, it is required to make the variation amount of TS as small as possible, that is, to improve the material stability.

[0004] Patent Document 1 discloses a high-strength steel sheet with a yield ratio of 1180 MPa or higher, excellent in flatness in the width direction and resistance to work-induced embrittlement, and a method for manufacturing the same. However, the technology described in Patent Document 1 does not consider high-strength steel sheets with excellent tensile flange properties, stress corrosion cracking resistance, and material stability.

[0005] Patent Document 2 discloses a high-strength steel sheet with excellent yield ratio and elongation flange properties, with a strength of 1180 MPa or higher, and a method for manufacturing the same. However, the technology described in Patent Document 2 does not consider high-strength steel sheets with excellent stress corrosion cracking resistance and material stability.

[0006] Patent Document 3 discloses a method for manufacturing high-strength steel sheets with a strength of 980 MPa or higher, which exhibits excellent ductility, elongation flangeability, and mechanical stability. However, the technology described in Patent Document 3 does not consider high-strength steel sheets with excellent yield ratio and stress corrosion cracking resistance. [Prior art documents] [Patent Documents]

[0007] [Patent Document 1] Patent No. 7323093 [Patent Document 2] Patent No. 6879441 [Patent Document 3] Patent No. 5333298 [Overview of the project] [Problems that the invention aims to solve]

[0008] The present invention was developed in view of these circumstances, and aims to provide steel plates, components, and methods for manufacturing them, which have a tensile strength TS of 1320 MPa or more, a yield ratio YR of 75% or more, and excellent tensile flange properties, stress corrosion cracking resistance, and material stability.

[0009] Here, the tensile strength TS (hereinafter also simply referred to as TS) and the yield ratio YR (hereinafter also simply referred to as YR) can be measured in accordance with JIS Z 2241 (2022). Excellent ductility means that the limiting hole expansion ratio: λ(%) determined by a hole expansion test in accordance with JIS Z 2256(2020) is 30% or higher. Excellent stress corrosion cracking resistance means that, when a test specimen obtained from a steel plate is subjected to four-point bending according to ASTM (G39-99), stresses equivalent to YS and TS are applied to the bending apex of the test specimen, and the stressed test specimen is immersed in 1% sulfuric acid at 25°C for 100 hours, and no cracks are observed in the test specimen subjected to stress equivalent to YS. Excellent material stability means that the total tensile strength (TS) is measured at 10 or more locations at a distance of 50 mm or more in the plate width direction, and the difference between the maximum TS and minimum TS among the measured TS is calculated as TS fluctuation (ΔTS = maximum TS - minimum TS), and ΔTS is less than 60 MPa. [Means for solving the problem]

[0010] In order to achieve the above-mentioned objectives, the inventors conducted extensive research and, as a result, discovered the following: (1) By setting the tempered martensite content to 95% or more, a total stress point (TS) of 1320 MPa or higher can be achieved. (2) By keeping the total amount of ferrite and bainitic ferrite to less than 5%, excellent stretch flange properties can be achieved. (3) By keeping the amount of retained austenite to less than 3%, a YR of 75% or more can be achieved. (4) Among the tempered martensite, if the amount of tempered martensite containing 5% to 50% consists of grains surrounded by grain boundaries of 15° or more that contain 5 or more carbides with a particle size of 0.1 μm to 1.0 μm, then excellent stress corrosion cracking resistance and material stability can be achieved.

[0011] This invention is based on the above findings. Specifically, the gist of this invention is as follows: [1] In mass%, C: not less than 0.030% and not more than 0.450%, Si: not less than 0.010% and not more than 2.500%, Mn: not less than 0.10% and not more than 5.00%, P: not more than 0.100%, S: not more than 0.0200%, Al: not more than 1.000%, N: not more than 0.0100%, and, O: not more than 0.0100% containing the balance consisting of Fe and inevitable impurities, at the 1 / 4 position of the plate thickness, the area fraction of tempered martensite: 95% or more, the volume fraction of retained austenite: less than 3%, the total area fraction of ferrite and bainitic ferrite: less than 5%, Among the tempered martensite, the area fraction of tempered martensite containing 5 or more carbides with a particle size of 0.1 μm or more and 1.0 μm or less in grains surrounded by grain boundaries of 15° or more is 5% or more and 50% or less, satisfying a steel sheet having a structure. [2] The component composition further includes, in mass%, ]Ti: not more than 0.200%, Nb: not more than 0.200%, V: not more than 0.200%, Ta: not more than 0.10%, W: not more than 0.10%, B: not more than 0.0100%, Cr: not more than 1.00%, Mo: not more than 1.00%, Ni: not more than 1.00%, Co: not more than 0.010%, Cu: not more than 1.00%, Sn: not more than 0.200%, Sb: not more than 0.200%, Ca: not more than 0.0100%, Mg: not more than 0.0100%, REM: not more than 0.0100%, Zr: not more than 0.100%, Te: not more than 0.100% Hf: not more than 0.10%, Bi: not more than 0.200%, The steel sheet according to [1], containing at least one element selected from among them. [3] The steel sheet according to [1] or [2], having a plating layer on the steel sheet surface. [4] A member made using the steel sheet according to any one of [1] to [3]. [5] A cold-rolled sheet produced by subjecting steel having the component composition according to [1] or [2] to hot rolling, pickling, and cold rolling, Annealing temperature T1: 800°C or higher, Holding time t1 at the annealing temperature T1: Heated under the condition of 10 seconds or longer, Average cooling rate CR1 from 700 to 500°C: Cooling at 5°C / s or higher, and Cooling treatment including cooling with water quenching where the average cooling rate CR2 from the quenching start temperature T2 which is (Ms - 80°C) or higher and Ms or lower to 80°C is 300°C / s or higher, Tempering temperature T3: 100°C or higher and less than 250°C, Holding time t3 at the tempering temperature T3: Including an annealing step of heating under the condition of 10 seconds or longer and 10,000 seconds or shorter, In the cooling treatment in the annealing step, the time t2 during which the steel sheet is held in the temperature range of 250°C or higher and Ms or lower is 1.0 second or longer and 10.0 seconds or shorter, During the water quenching cooling in the annealing step, pressurize from the front and back surfaces of the steel sheet with two rolls installed sandwiching the steel sheet, and perform the pressurization under the conditions of the roll-to-roll distance in the steel sheet conveyance direction of the two rolls: 20 mm or longer and 250 mm or shorter, and the pressing force: not less than 196 N. A method for manufacturing a steel sheet. [6] A method for manufacturing the steel sheet according to [5], performing a plating treatment. [7] A method for manufacturing a member, including a step of subjecting the steel sheet according to any one of [1] to [3] to at least one of forming processing and joining processing to make a member.

Advantages of the Invention

[0012] According to the present invention, a steel sheet can be obtained that has a TS of 1320 MPa or higher, a YR of 75% or higher, and excellent tensile flange properties, stress corrosion cracking resistance, and material stability. Furthermore, by applying the steel sheet of the present invention to, for example, automotive structural components, it is possible to improve fuel efficiency by reducing the weight of the vehicle body. Therefore, its industrial utility is extremely large. [Brief explanation of the drawing]

[0013] [Figure 1] Figure 1 is a schematic diagram illustrating the pressurization method during water cooling in the steel sheet manufacturing method of the present invention. [Modes for carrying out the invention]

[0014] Embodiments of the present invention will be described below.

[0015] [Steel plate] The steel sheet of the present invention has a composition containing C: 0.030% to 0.450%, Si: 0.010% to 2.500%, Mn: 0.10% to 5.00%, P: 0.100% or less, S: 0.0200% or less, Al: 1.000% or less, N: 0.0100% or less, and O: 0.0100% or less, with the remainder being Fe and unavoidable impurities. This steel sheet has a structure that satisfies the following conditions: at the 1 / 4 thickness position, the area fraction of tempered martensite is 95% or more, the volume fraction of retained austenite is less than 3%, the total area fraction of ferrite and bainitic ferrite is less than 5%, and within the tempered martensite, the area fraction of tempered martensite containing 5 or more carbides with a particle size of 0.1 μm to 1.0 μm within grains surrounded by grain boundaries of 15° or more is 5% to 50%.

[0016] First, we will explain the appropriate range of the steel plate's composition and the reasons for its limitations. In the following explanation, the "%" used to represent the content of the steel's constituent elements means "mass percent" unless otherwise specified.

[0017] C: 0.030% or more and 0.450% or less Carbon (C) is one of the important basic components of steel, and in particular, in this invention, it is an important element that affects the area fraction (hereinafter also referred to as fraction) and stress corrosion cracking resistance of tempered martensite. If the C content is less than 0.030%, the area fraction of tempered martensite decreases, making it difficult to achieve a TS of 1320 MPa or higher. On the other hand, if the C content exceeds 0.450%, the tempered martensite becomes brittle, making it difficult to achieve excellent stress corrosion cracking resistance. Therefore, the C content should be between 0.030% and 0.450%. Preferably, the C content should be 0.050% or more. More preferably, the C content should be 0.100% or more. Preferably, the C content should be 0.400% or less. More preferably, the C content should be 0.350% or less.

[0018] Si: 0.010% or more and 2.500% or less Si is one of the important basic components of steel, and in this invention in particular, it is an important element that affects TS and retained austenite content because it suppresses carbide formation during continuous annealing and promotes the formation of retained austenite. If the Si content is less than 0.010%, it becomes difficult to achieve a TS of 1320 MPa or higher. On the other hand, if the Si content exceeds 2,500%, the amount of retained austenite increases excessively, making it difficult to achieve a YR ≥ 75%. Therefore, the Si content shall be between 0.010% and 2.500%. Preferably, the Si content shall be 0.050% or more. More preferably, the Si content shall be 0.100% or more. Preferably, the Si content shall be 2.000% or less. More preferably, the Si content shall be 1.200% or less. More preferably, the Si content shall be 0.500% or less, and even more preferably 0.300% or less.

[0019] Mn: 0.10% or more and 5.00% or less Mn is one of the important basic components of steel, and in particular in this invention, it is an important element that affects the fraction of tempered martensite and the stress corrosion cracking resistance properties. If the Mn content is less than 0.10%, the fraction of tempered martensite decreases, making it difficult to achieve a TS of 1320 MPa or higher. On the other hand, if the Mn content exceeds 5.00%, corrosion at the grain boundaries of the steel plate is promoted, making it difficult to achieve excellent stress corrosion cracking resistance. Therefore, the Mn content should be between 0.10% and 5.00%. Preferably, the Mn content should be 0.50% or more. More preferably, the Mn content should be 0.80% or more. Preferably, the Mn content should be 4.50% or less. More preferably, the Mn content should be 4.00% or less.

[0020] P:0.100% or less Since phosphorus (P) segregates at prior austenite grain boundaries and embrittles them, it becomes difficult to achieve excellent stress corrosion cracking resistance if the P content exceeds 0.100%. Therefore, the P content must be 0.100% or less. Preferably, the P content is 0.070% or less. More preferably, the P content is 0.050% or less, and even more preferably, 0.020% or less. Although there is no specific lower limit for the P content, it is preferable that the P content be 0.001% or more, since P is a solid solution strengthening element and can increase the strength of the steel sheet. More preferably, the P content is 0.003% or more, and even more preferably 0.005% or more.

[0021] S: 0.0200% or less Since sulfur (S) exists as a sulfide and acts as an initiation point for stress corrosion cracking, it becomes difficult to achieve excellent stress corrosion cracking resistance if its content exceeds 0.0200%. Therefore, the S content must be 0.0200% or less. Preferably, the S content is 0.0050% or less. More preferably, the S content is 0.0030% or less, and even more preferably, 0.0020% or less. Although there is no specific lower limit for the S content, it is preferable to have a S content of 0.0001% or more due to production technology constraints. More preferably, the S content should be 0.0002% or more.

[0022] Al: 1.000% or less Al exists as an oxide and acts as an initiation point for stress corrosion cracking; therefore, if its content exceeds 1.000%, it becomes difficult to achieve excellent stress corrosion cracking resistance. For this reason, the Al content must be 1.000% or less. Preferably, the Al content is 0.500% or less. More preferably, the Al content is 0.200% or less, and even more preferably, 0.100% or less. Although there is no specific lower limit for the Al content, it is preferable to have a content of 0.001% or more due to production technology constraints. More preferably, the Al content is 0.002% or more. More preferably, the Al content is 0.005% or more, and even more preferably 0.010% or more.

[0023] N: 0.0100% or less Since N exists as a nitride and acts as an initiation point for stress corrosion cracking, it becomes difficult to achieve excellent stress corrosion cracking resistance if its content exceeds 0.0100%. Therefore, the N content must be 0.0100% or less. Preferably, the N content is 0.0050% or less. Although there is no specific lower limit for the N content, due to production technology constraints, it is preferable that the N content be 0.0001% or more. More preferably, the N content is 0.0002% or more. More preferably, the N content is 0.0010% or more, and even more preferably, 0.0020% or more.

[0024] O: 0.0100% or less Since oxygen (O) exists as an oxide and acts as an initiation point for stress corrosion cracking, it becomes difficult to achieve excellent stress corrosion cracking resistance if its content exceeds 0.0100%. Therefore, the O content must be 0.0100% or less. Preferably, the O content is 0.0050% or less. Although there is no specific lower limit for the O content, due to production technology constraints, it is preferable that the O content be 0.0001% or higher.

[0025] A steel sheet according to one embodiment of the present invention has a component composition containing the above-mentioned components, with the remainder being Fe and unavoidable impurities. In the steel sheet of the present invention, it is preferable that the component composition consists of Fe and unavoidable impurities. Examples of unavoidable impurities include Zn, Pb, As, Ge, Sr, and Cs. These impurities may be present in a total of 0.100% or less.

[0026] In addition to the above-mentioned component composition, the steel sheet of the present invention may further contain, by mass%, at least one element selected from Ti: 0.200% or less, Nb: 0.200% or less, V: 0.200% or less, Ta: 0.10% or less, W: 0.10% or less, B: 0.0100% or less, Cr: 1.00% or less, Mo: 1.00% or less, Ni: 1.00% or less, Co: 0.010% or less, Cu: 1.00% or less, Sn: 0.200% or less, Sb: 0.200% or less, Ca: 0.0100% or less, Mg: 0.0100% or less, REM: 0.0100% or less, Zr: 0.100% or less, Te: 0.100% or less, Hf: 0.10% or less, and Bi: 0.200% or less, either alone or in combination.

[0027] Ti: 0.200% or less, Nb: 0.200% or less, V: 0.200% or less If Ti, Nb, and V are present in amounts of 0.200% or less, large amounts of coarse precipitates and inclusions will not be generated, and they will not become initiation points for stress corrosion cracking, thus preventing a decrease in stress corrosion cracking resistance. Therefore, when at least one of Ti, Nb, and V is included, the content of each of Ti, Nb, and V should be 0.200% or less. Preferably, the content of each is 0.100% or less. While there is no specific lower limit for the Ti, Nb, and V content, it is preferable that the Ti, Nb, and V content be 0.001% or more, since the formation of fine carbides, nitrides, or carbonitrides during hot rolling or continuous annealing increases the strength of the steel sheet. More preferably, the content of each is 0.002% or more, and even more preferably 0.003% or more.

[0028] Ta: 0.10% or less, W: 0.10% or less If the content of Ta and W is 0.10% or less, large amounts of coarse precipitates and inclusions will not be generated, and they will not become initiation points for stress corrosion cracking, thus the stress corrosion cracking resistance will not be reduced. For this reason, when at least one of Ta and W is included, the content of Ta and W should be 0.10% or less each. Preferably, the content of each should be 0.08% or less. Although there is no specific lower limit for the content of Ta and W, it is preferable that the content of Ta and W be 0.01% or more, since the formation of fine carbides, nitrides, or carbonitrides during hot rolling or continuous annealing increases the strength of the steel sheet. The content of each of these is more preferably 0.02% or more, and even more preferably 0.03% or more.

[0029] B: 0.0100% or less If B is present in a concentration of 0.0100% or less, it will not cause cracks to form inside the steel sheet during casting or hot rolling, and the stress corrosion cracking resistance will not decrease. Therefore, when B is included, its content should be 0.0100% or less. Preferably, the B content should be 0.0080% or less. Although there is no specific lower limit for the B content, it is preferable that the B content be 0.0003% or higher, as it is an element that segregates at austenite grain boundaries during annealing and improves hardenability.

[0030] Cr: 1.00% or less, Mo: 1.00% or less, Ni: 1.00% or less If Cr, Mo, and Ni are present in concentrations of 1.00% or less, the amount of coarse precipitates and inclusions does not increase, and they do not become initiation points for stress corrosion cracking, thus preventing a decrease in stress corrosion cracking resistance. Therefore, when at least one of Cr, Mo, and Ni is present, the content of each should be 1.00% or less. Preferably, the content of each should be 0.90% or less. Preferably, the content of each should be 0.80% or less. While there is no specific lower limit for the content of Cr, Mo, and Ni, it is more preferable that the content of each of these elements be 0.01% or more, as they are elements that improve hardenability. More preferably, the content of each of these elements is 0.02% or more, and even more preferably 0.03% or more.

[0031] Co:0.010% or less If the Co content is 0.010% or less, the amount of coarse precipitates and inclusions does not increase, and it does not become an initiation point for stress corrosion cracking, thus the stress corrosion cracking resistance does not decrease. For this reason, when Co is included, it is preferable to keep the Co content at 0.010% or less. Preferably, the Co content is 0.008% or less. Although there is no specific lower limit for the Co content, it is more preferable that the Co content be 0.001% or higher, as it is an element that improves hardenability. More preferably, the Co content should be 0.002% or higher.

[0032] Cu:1.00% or less If the Cu content is 1.00% or less, the amount of coarse precipitates and inclusions does not increase, and it does not become an initiation point for stress corrosion cracking, thus the stress corrosion cracking resistance does not decrease. For this reason, when Cu is included, the Cu content should be 1.00% or less. Preferably, the Cu content should be 0.80% or less. Although there is no specific lower limit for the Cu content, it is preferable that the Cu content be 0.01% or more, as it is an element that improves hardenability.

[0033] Sn: 0.200% or less If the Sn content is 0.200% or less, it does not cause cracks to form inside the steel sheet during casting or hot rolling, and does not become the starting point for stress corrosion cracking, thus not reducing the stress corrosion cracking resistance. For this reason, when Sn is included, the Sn content should be 0.200% or less. Preferably, the Sn content should be 0.190% or less. Although there is no specific lower limit for the Sn content, since Sn is an element that improves hardenability (generally an element that improves corrosion resistance), it is more preferable that the Sn content be 0.001% or more. More preferably, the Sn content is 0.002% or more, and even more preferably 0.003% or more.

[0034] Sb: 0.200% or less If the Sb content is 0.200% or less, the amount of coarse precipitates and inclusions does not increase, and it does not become an initiation point for stress corrosion cracking, thus the stress corrosion cracking resistance does not decrease. For this reason, when Sb is included, the Sb content should be 0.200% or less. Preferably, the Sb content should be 0.190% or less. Although there is no specific lower limit for the Sb content, it is more preferable that the Sb content be 0.001% or more, as it is an element that allows control of the surface softening thickness and strength adjustment. More preferably, each of these content levels is 0.002% or more, and even more preferably 0.003% or more.

[0035] Ca: 0.0100% or less, Mg: 0.0100% or less, REM: 0.0100% or less If Ca, Mg, and REM are present in amounts of 0.0100% or less, the amount of coarse precipitates and inclusions will not increase, and they will not become initiation points for stress corrosion cracking, thus preventing a decrease in stress corrosion cracking resistance. Therefore, when at least one of Ca, Mg, and REM is present, the content of Ca, Mg, and REM should be 0.0100% or less. Preferably, the content of each is 0.0070% or less. More preferably, the content of each is 0.0050% or less. While there are no specific lower limits for the content of Ca, Mg, and REM, it is preferable that the content of Ca, Mg, and REM be 0.0005% or more, since these elements spheroidize the shape of nitrides and sulfides and reduce the number of locations that can initiate stress corrosion cracking. More preferably, the content of each is 0.0006% or more, and even more preferably 0.0007% or more.

[0036] Zr: 0.100% or less, Te: 0.100% or less If the content of Zr and Te is 0.100% or less, the amount of coarse precipitates and inclusions does not increase, and they do not become the initiation points for stress corrosion cracking, thus the stress corrosion cracking resistance does not decrease. For this reason, when at least one of Zr and Te is included, it is preferable that the content of Zr and Te be 0.100% or less. Preferably, the content of each is 0.080% or less. While there is no specific lower limit for the content of Zr and Te, it is more preferable that the content of Zr and Te be 0.001% or more, since these elements spheroidize the shape of nitrides and sulfides and reduce the number of locations that can initiate stress corrosion cracking. More preferably, the content of each is 0.002% or more, and even more preferably 0.003% or more.

[0037] Hf: 0.10% or less If Hf is present at a concentration of 0.10% or less, the amount of coarse precipitates and inclusions does not increase, and it does not become an initiation point for stress corrosion cracking, thus preventing a decrease in stress corrosion cracking resistance. Therefore, when Hf is included, the Hf content should be 0.10% or less. Preferably, the Hf content should be 0.08% or less. Although there is no specific lower limit for the Hf content, it is preferable that the Hf content be 0.001% or more, and more preferably 0.010% or more, since Hf is an element that spheroidizes the shape of nitrides and sulfides and reduces the number of sites that can be the starting point for stress corrosion cracking.

[0038] Bi:0.200% or less If the Bi content is 0.200% or less, the amount of coarse precipitates and inclusions does not increase, and it does not become an initiation point for stress corrosion cracking, thus the stress corrosion cracking resistance does not decrease. For this reason, when Bi is included, the Bi content should be 0.200% or less. Preferably, the Bi content should be 0.100% or less. Although there is no specific lower limit for the Bi content, it is more preferable that the Bi content be 0.001% or higher, as Bi is an element that reduces segregation. More preferably, the Bi content should be 0.002% or higher, and even more preferably 0.003% or higher.

[0039] Furthermore, regarding the above-mentioned Ti, Nb, V, Ta, W, B, Cr, Mo, Ni, Co, Cu, Sn, Sb, Ca, Mg, REM, Zr, Te, Hf, and Bi, if their respective contents are below the preferred lower limit, they will not impair the effects of the present invention and will therefore be included as unavoidable impurities.

[0040] Next, the structural framework of the steel sheet of the present invention will be described. Tempered martensite: over 95% by area fraction This is one of the important constituent elements of the present invention. By using tempered martensite as the main phase, it is possible to achieve a total stress point (TS) of 1320 MPa or higher. In order to obtain this effect, the area fraction of tempered martensite must be 95% or more. Therefore, the area fraction of tempered martensite is set to 95% or more. Preferably, the area fraction of tempered martensite is 96% or more. More preferably, the area fraction of tempered martensite is 97% or more. There is no particular upper limit to the area fraction of tempered martensite, but it may be 100%.

[0041] The method for measuring the area fraction of tempered martensite is as follows: After polishing the L-shaped section of the steel plate, it is etched with 1 vol.% nital, and 10 fields of view are observed using a SEM at 2000x magnification with a field of view of 30 μm × 30 μm at a position corresponding to 1 / 4 of the plate thickness (from the surface of the steel plate in the depth direction). In the above microstructure image, tempered martensite is a structure with fine irregularities within its interior and contains carbides. The area fraction of tempered martensite can be determined from the average of these values.

[0042] Retained austenite: less than 3% by volume fraction This is one of the important constituent elements of the present invention. If the volume fraction of retained austenite is 3% or more, it becomes difficult to achieve YR ≥ 75%. The reason why it becomes difficult to achieve YR ≥ 75% is that the retained austenite transforms into martensite during the tensile test, causing a decrease in YS. Therefore, the retained austenite should be less than 3%. Preferably, the volume fraction of retained austenite should be 1% or less. There is no particular lower limit to the retained austenite. The volume fraction of retained austenite may be 0%.

[0043] The method for measuring the volume fraction of retained austenite is as follows: After polishing the steel plate to a surface that is 1 / 4 of its thickness, the surface is further polished by 0.1 mm using chemical polishing. Using an X-ray diffractometer with CoKα rays, the integral intensity ratios of the diffraction peaks of the {200}, {220}, and {311} planes of fcc iron and the {200}, {211}, and {220} planes of bcc iron are measured, and the retained austenite is determined by averaging the nine obtained integral intensity ratios.

[0044] Total of ferrite and bainitic ferrite: less than 5% by area fraction In this invention, this is one of the important constituent elements of the invention. When the total area fraction of ferrite and bainitic ferrite is 5% or more, it becomes difficult to achieve excellent stretch flange properties. Therefore, the total area fraction of ferrite and bainitic ferrite should be less than 5%. Preferably, the total area fraction of these should be 3% or less. More preferably, the total area fraction of these should be 2% or less. There is no particular lower limit to the total area fraction of ferrite and bainitic ferrite. The total area fraction of ferrite and bainitic ferrite may be 0%.

[0045] The method for measuring the total area fraction of ferrite and bainitic ferrite is as follows: After polishing the L-section of the steel plate, it is etched with 1 vol.% nital, and 1 / 4 of the plate thickness (a position corresponding to 1 / 4 of the plate thickness in the depth direction from the steel plate surface) is observed using a SEM at 2000x magnification with a field of view of 30 μm × 30 μm for 10 fields. In the above microstructure image, ferrite and bainitic ferrite are structures with a flat interior in the recesses and do not contain carbides. The total of ferrite and bainitic ferrite can be determined from the average value of these values.

[0046] Other tissues besides those listed above may include perlite and fresh martensite. These remaining tissues are acceptable as long as they make up 5% or less of the area fraction, as they do not affect the properties.

[0047] In tempered martensite, within grains surrounded by grain boundaries of 15° or more, the area fraction of tempered martensite containing 5 or more carbides with a particle size of 0.1 μm to 1.0 μm is 5% to 50%. In this invention, this is one of the important constituent elements. In tempered martensite, the area fraction of tempered martensite containing five or more carbides with a particle size of 0.1 μm to 1.0 μm within grain boundaries surrounded by grain boundaries of 15° or more affects stress corrosion cracking resistance and material stability. If the area fraction of tempered martensite containing five or more carbides with a particle size of 0.1 μm to 1.0 μm within grain boundaries surrounded by grain boundaries of 15° or more exceeds 50%, it becomes the starting point for stress corrosion cracking. Therefore, it becomes difficult to achieve excellent stress corrosion cracking resistance. As a result of diligent research, the inventors have found that by increasing the area fraction of tempered martensite containing five or more carbides with a particle size of 0.1 μm to 1.0 μm, it is possible to suppress the excessive rise in TS that accompanies the increase in the area fraction of tempered martensite. Therefore, it is possible to suppress the change in TS when the fraction of tempered martensite changes in the plate width direction, thereby improving material stability. Accordingly, the area fraction of tempered martensite containing five or more carbides with a particle size of 0.1 μm to 1.0 μm within grains surrounded by grain boundaries of 15° or more is set to 5% to 50%. This area fraction is preferably 7% or more. Furthermore, this area fraction is preferably 30% or less.

[0048] The method for measuring the fraction of tempered martensite containing five or more carbides with a particle size of 0.1 μm to 1.0 μm is as follows: Using a TEM (transmission electron microscope), the steel sheet structure is observed at a position 1 / 4 of the sheet thickness from the surface of the steel sheet at 20,000x magnification with a field of view of 4 μm × 4 μm, and the particle size and number of carbides present in all tempered martensite grains within the field of view are calculated. The particle size of the carbides is determined by importing data with pre-identified carbides into MediaCybernetics' Image-Pro and calculating the equivalent diameter of a circle. Within grains surrounded by grain boundaries of 15° or more, the total area fraction of tempered martensite containing five or more carbides with a particle size of 0.1 μm to 1.0 μm is calculated. The total area fraction of all tempered martensite is also calculated. The area fraction of tempered martensite containing five or more carbides with a particle size of 0.1 μm to 1.0 μm is divided by the total area fraction of all tempered martensite to calculate the area fraction of tempered martensite containing five or more carbides with a particle size of 0.1 μm to 1.0 μm. Furthermore, grains in tempered martensite surrounded by grain boundaries of 15° or greater can be identified, for example, as follows: Using specimens observed with TEM, transmission electron backscatter diffraction (transmission EBSD) measurements are performed to obtain local crystal orientation data. Then, the obtained local crystal orientation data is analyzed using the analysis software: OIM Analysis 7. Prior to the analysis of the local crystal orientation data, a cleanup process is performed once using the Grain Dilation function of the analysis software (Grain Tolerance Angle: 5, Minimum Grain Size: 2, Single Iteration: ON). Then, by displaying the grain boundaries of 15° or greater in the tempered martensite, grains in tempered martensite surrounded by grain boundaries of 15° or greater can be identified. Furthermore, for each carbide, a single region is measured as a whole in the microscopic image, where the outer edge is surrounded by material other than the carbide and the region is formed as a continuous whole without interruption.

[0049] The steel sheet of the present invention may have a plating layer on its surface. Examples of plating layers include zinc plating layers such as hot-dip galvanized layers, alloyed hot-dip galvanized layers, and electroplated zinc plating layers. Examples of plating layers other than zinc plating layers include aluminum plating layers and alloy plating layers. Examples of alloy plating layers include hot-dip zinc-aluminum-magnesium alloy plating layers and Zn-Ni electroalloy plating layers.

[0050] The thickness of the steel plate of the present invention is preferably 0.5 mm or more. Furthermore, the thickness is preferably 3.0 mm or less. The board width is preferably 600 mm or more. Furthermore, the board width is preferably 1500 mm or less.

[0051] [Method of manufacturing steel plates] Next, the method for manufacturing steel sheets according to the present invention will be described. The present invention provides a method for manufacturing steel sheets, in which a cold-rolled sheet is produced by hot rolling, pickling and cold rolling of steel having a specific composition, and the sheet is heated under conditions of annealing temperature T1: 800°C or higher and holding time t1 at annealing temperature T1: 10 seconds or higher, followed by a cooling treatment including cooling with an average cooling rate CR1: 5°C / s or higher at 700-500°C, and cooling by water quenching with an average cooling rate CR2: 300°C / s or higher from a rapid cooling start temperature T2 (Ms-80°C) or higher to 80°C. The process includes an annealing step in which the heating is performed under the conditions of tempering temperature T3: 100°C or higher and less than 250°C, and holding time t3 at tempering temperature T3: 10 seconds or higher and 10,000 seconds or lower. In the cooling process during the annealing stage, the time t2 during which the steel sheet is held in a temperature range of 250°C or higher and Ms or lower is set to 1.0 seconds or more and 10.0 seconds or less. During the cooling process of water quenching in the annealing process, pressure is applied to the front and back surfaces of the steel plate using two rolls placed on either side of the plate. This pressure is applied under the following conditions: the distance between the two rolls in the steel plate conveying direction is 20 mm to 250 mm, and the applied pressure is 196 N or more.

[0052] In this invention, the method for melting the steel material (steel slab) is not particularly limited, and any known melting method, such as a converter or electric furnace, is suitable. The steel slab (slab) is preferably manufactured by a continuous casting method to prevent macrosegregation.

[0053] In the present invention, the slab heating temperature, slab soaking time, and coiling temperature in hot rolling are not particularly limited. Methods for hot rolling a steel slab include a method of heating the slab before rolling, a method of directly rolling a slab after continuous casting without heating it, and a method of subjecting a slab after continuous casting to a short-time heat treatment before rolling. The slab heating temperature, slab soaking time, finish rolling temperature, and coiling temperature in hot rolling are not particularly limited, but the slab heating temperature is preferably 1100°C or higher. The slab heating temperature is preferably 1300°C or lower. A slab heating time of 30 minutes or more is preferable. A slab heating time of 250 minutes or less is preferable. The finishing rolling temperature is preferably above the Ar3 transformation point. Furthermore, a winding temperature of 350°C or higher is preferable. Also, a winding temperature of 650°C or lower is preferable.

[0054] The hot-rolled steel sheets produced in this manner are then pickled. Pickling is important for ensuring good chemical conversion treatment properties and plating quality in the final high-strength steel sheet product because it removes oxides from the surface of the steel sheet. Pickling may be performed once or in multiple stages. Furthermore, the hot-rolled and pickled sheets may be cold-rolled immediately, or they may be cold-rolled after heat treatment.

[0055] The reduction ratio (cumulative reduction ratio) in cold rolling and the thickness of the sheet after rolling are not particularly limited, but a reduction ratio of 30% or more is preferred. Furthermore, a reduction ratio of 80% or less is preferred. The effects of the present invention can be obtained without any particular limitations on the number of rolling passes or the reduction ratio of each pass.

[0056] The cold-rolled sheet obtained as described above is then annealed. The annealing conditions are as follows:

[0057] Annealing temperature T1: 800℃ or higher If the annealing temperature T1 is less than 800°C, the total area fraction of ferrite and bainitic ferrite will be 5% or more, making it difficult to achieve a TS of 1320 MPa or higher, and also difficult to achieve excellent elongation flange properties. Therefore, the annealing temperature T1 should be 800°C or higher. The annealing temperature T1 is preferably 820°C or higher. There is no particular upper limit, but the annealing temperature T1 is preferably 1000°C or lower. The annealing temperature referred to here is the holding temperature during the annealing process. The annealing temperature may remain constant during the holding period. Furthermore, the annealing temperature does not need to be constant throughout the holding period, as long as it is in the temperature range of 800°C or higher and the temperature fluctuation is within ±10°C of the set temperature.

[0058] Holding time at annealing temperature T1: 10 seconds or more If the holding time t1 at annealing temperature T1 is less than 10 seconds, the total area fraction of ferrite and bainitic ferrite will be 5% or more, making it difficult to achieve a TS of 1320 MPa or higher, and also difficult to achieve excellent elongation flange properties. Therefore, the holding time t1 at annealing temperature T1 should be 10 seconds or more. Preferably, the holding time t1 at annealing temperature T1 is 30 seconds or more. There is no particular upper limit, but a holding time t1 at annealing temperature T1 is preferably 1000 seconds or less.

[0059] Average cooling rate CR1 at 700-500℃: 5℃ / s or higher If the average cooling rate CR1 between 700 and 500°C is less than 5°C / s, the total area fraction of ferrite and bainitic ferrite will be 5% or more, making it difficult to achieve a TS of 1320 MPa or higher, and also difficult to achieve excellent scalability. Therefore, the average cooling rate CR1 between 700 and 500°C should be 5°C / s or higher. The average cooling rate CR1 is preferably 10°C / s or higher. There is no particular upper limit, but the average cooling rate CR1 is preferably 50°C / s or lower. Here, the average cooling rate CR1 is calculated as (cooling start temperature (700°C) - cooling stop temperature (500°C)) / cooling time (s) from cooling start temperature (700°C) to cooling stop temperature. Cooling at an average cooling rate of CR1 specifically includes methods such as water cooling and mist cooling.

[0060] Rapid cooling start temperature T2: (Ms-80℃) or more and less than Ms This is one of the important constituent elements of the present invention. By setting the rapid cooling start temperature T2 to (Ms-80°C) or higher and Ms or lower, it is possible to obtain a structure in which, within the grains surrounded by grain boundaries of 15° or higher, the area fraction of tempered martensite containing 5 or more carbides with a particle size of 0.1 μm or more and 1.0 μm or less is 5% or higher and 50% or lower. If the rapid cooling start temperature T2 is lower than (Ms-80°C), the area fraction of tempered martensite containing 5 or more carbides with a particle size of 0.1 μm or more and 1.0 μm or less exceeds 50%, making it difficult to achieve excellent stress corrosion cracking resistance. On the other hand, if the quenching start temperature T2 exceeds Ms, the area fraction of tempered martensite containing 5 or more carbides with a particle size of 0.1 μm to 1.0 μm will be less than 5%, making it difficult to achieve excellent material stability. Therefore, the quenching start temperature T2 should be between (Ms-80°C) and Ms. The quenching start temperature T2 is preferably above (Ms-40°C). The quenching start temperature T2 is preferably below (Ms-10°C). Ms is the martensitic transformation start temperature (°C), and the martensitic transformation start temperature Ms (°C) is defined by the following equation (1). Ms(℃)=519-474×[%C]-30.4×[%Mn]-12.1×[%Cr]-7.5×[%Mo]-17.7×[%Ni] ···(1) Here, [%C], [%Mn], [%Cr], [%Mo], and [%Ni] represent the mass percentage of C, Mn, Cr, Mo, and Ni contained in the steel (steel sheet), with 0 indicating that they are not present.

[0061] Average cooling rate CR2 from the rapid cooling start temperature T2 to 80°C: 300°C / s or higher. If the average cooling rate CR2 from the rapid cooling start temperature T2 to 80°C is less than 300°C / s, the retained austenite will be 3% or more by volume fraction, making it difficult to achieve a YR of 75% or more. Therefore, the average cooling rate CR2 from the rapid cooling start temperature T2 to 80°C should be 300°C / s or higher. Preferably, the average cooling rate CR2 is 800°C / s or higher. There is no particular upper limit, but preferably the average cooling rate CR2 is 3000°C / s or lower.

[0062] During the cooling process, the time t2 for which the steel plate is held in a temperature range of 250°C or higher and Ms or lower is 1.0 seconds or more and 10.0 seconds or less. This is one of the important constituent elements of the present invention. By holding the steel sheet in the temperature range of 250°C to Ms for 1.0 second to 10.0 seconds during the cooling treatment, a structure can be obtained in which the area fraction of tempered martensite containing 5 or more carbides with a particle size of 0.1 μm to 1.0 μm within grains surrounded by grain boundaries of 15° or more is 5% to 50%. If the time the steel sheet is held in the temperature range of 250°C to Ms during the cooling treatment exceeds 10.0 seconds, the area fraction of tempered martensite containing 5 or more carbides with a particle size of 0.1 μm to 1.0 μm within grains surrounded by grain boundaries of 15° or more exceeds 50%, making it difficult to achieve excellent stress corrosion cracking resistance. On the other hand, if the steel sheet is held in the temperature range of 250°C or higher and Ms or lower for less than 1.0 second during the cooling process, the area fraction of tempered martensite containing 5 or more carbides with a particle size of 0.1 μm or more and 1.0 μm or less within grains surrounded by grain boundaries of 15° or higher will be less than 5%, making it difficult to achieve excellent material stability. Therefore, the time the steel sheet is held in the temperature range of 250°C or higher and Ms or lower during the cooling process should be between 1.0 second and 10.0 seconds. Preferably, the time the steel sheet is held in the temperature range of 250°C or higher and Ms or lower during the cooling process is 1.5 seconds or more. Preferably, the time the steel sheet is held in the temperature range of 250°C or higher and Ms or lower during the cooling process is 5.0 seconds or less.

[0063] Tempering temperature T3: 100°C or higher and less than 250°C This is one of the important constituent elements of the present invention. In the present invention, tempered martensite refers to a structure in which martensite below 80°C has been subjected to a heat treatment at a tempering temperature of 100°C or higher and a holding time of 10 seconds or more. Therefore, if the tempering temperature T3 is less than 100°C, the martensite is not sufficiently tempered, resulting in a structure mainly composed of as-quenched martensite, and as-quenched martensite deteriorates in stress corrosion cracking resistance. On the other hand, if the tempering temperature T3 is 250°C or higher, the tempering of the martensite proceeds excessively, and within the tempered martensite, the area fraction of tempered martensite containing 5 or more carbides with a particle size of 0.1 μm to 1.0 μm within grains surrounded by grain boundaries of 15° or more exceeds 50%, making it difficult to achieve excellent stress corrosion cracking resistance. Therefore, the tempering temperature T3 should be 100°C or higher and less than 250°C. Preferably, the tempering temperature T3 should be 150°C or higher. Preferably, the tempering temperature T3 should be 220°C or lower.

[0064] Holding time at tempering temperature T3: 10 seconds or more and 10,000 seconds or less In this invention, tempered martensite refers to a structure in which martensite heated at a temperature of 80°C or lower is subjected to a tempering treatment at a temperature of 100°C or higher and a holding time of 10 seconds or more. Therefore, if the holding time t3 at tempering temperature T3 is less than 10 seconds, the martensite is not sufficiently tempered, resulting in a structure mainly composed of as-quenched martensite, and as-quenched martensite deteriorates in its stress corrosion cracking resistance properties. On the other hand, if the holding time t3 exceeds 10,000 seconds, the tempering of the martensite proceeds excessively, and within the tempered martensite, the fraction of tempered martensite containing 5 or more carbides with a particle size of 0.1 μm to 1.0 μm within grain boundaries of 15° or more exceeds 50%. Therefore, it becomes difficult to achieve excellent stress corrosion cracking resistance. Accordingly, the holding time t3 at tempering temperature T3 should be between 10 seconds and 10,000 seconds. Preferably, the holding time t3 at tempering temperature T3 should be 50 seconds or more. Preferably, the holding time t3 at tempering temperature T3 should be 5,000 seconds or less.

[0065] Cooling after tempering does not need to be specifically defined and may be cooled to the desired temperature by any method. The desired temperature is preferably around room temperature.

[0066] Furthermore, the above-mentioned steel plate (high-strength steel plate) may be processed under conditions that result in an equivalent plastic strain of 0.05% to 5.00%. In addition, after processing, it may be reheated again under conditions of 100°C to 400°C.

[0067] Furthermore, when high-strength steel plates are traded, they are usually cooled to room temperature before being included in the transaction.

[0068] During the cooling process of water quenching, pressure is applied to the front and back surfaces of the steel plate by two rolls positioned on either side of the plate. The distance between the two rolls in the steel plate transport direction during this pressurization is 20 mm to 250 mm, and the applied pressure is 196 N or more. During the cooling (water cooling) phase of the water quenching process in the annealing process, the front and back surfaces of the steel plate are pressed by two rolls placed on either side of the steel plate. At this time, the distance between the two rolls in the steel plate conveying direction (hereinafter also simply referred to as the distance between the rolls) is set to 20 mm or more and 250 mm or less, and the pressing force is set to 196 N or more. In this invention, "distance between the two rolls" refers to the distance between the contact point between one roll and the steel plate and the contact point between the other roll and the steel plate, as shown in Figure 1. If no pressure is applied during the water cooling process of the water quenching described above, the fraction of tempered martensite containing five or more carbides with a particle size of 0.1 μm to 1.0 μm within grain boundaries of 15° or more will be less than 5%, making it difficult to achieve excellent material stability. After extensive research by the inventors, it was discovered that applying pressure during the cooling process of water quenching affects the progress of martensitic transformation. By applying this pressure under the conditions of a roll-to-roll distance of 20 mm to 250 mm and a pressure of 196 N or more, nucleation of martensitic transformation is promoted, increasing the area fraction of martensite that transforms at 250°C or higher. As a result, the area fraction of tempered martensite containing five or more carbides with a particle size of 0.1 μm to 1.0 μm becomes 5% or more, thus achieving excellent material stability. To obtain this effect, the roll-to-roll distance (see Figure 1) must be 20 mm or more. On the other hand, if the distance between the rolls exceeds 250 mm, the pressure will weaken, so the distance between the rolls must be 250 mm or less. Pressure is applied by sandwiching the material between rolls that are far apart from each other, and the pressure required to achieve the above effect is 196 N or more. This pressure is equivalent to the load of one roll. In other words, a pressure of 196 N or more means that each of the two rolls applies pressure of 196 N or more. For pressurization conditions, the preferred distance between rolls is 30 mm or more. Alternatively, the preferred distance between rolls is 220 mm or less. Furthermore, a preferred pressing force is 294 N or higher. A preferred pressing force is 4900 N or lower. Furthermore, while the applied pressure varies depending on the steel plate strength and tension, it can be adjusted by the tension and the amount of indentation. The pressure being within the above range can be confirmed using a load cell attached to the roll, and the amount of indentation can be calculated from the roll diameter and roll position. Based on the above, in the present invention, during the cooling (water cooling) of water quenching, pressure is applied to the front and back surfaces of the steel plate by two rolls placed on either side of the steel plate, and this pressure is applied under the conditions that the distance between the two rolls is 20 mm or more and 250 mm or less, and the applied pressure is 196 N or more.

[0069] Furthermore, the steel plate may optionally be plated. The plating treatment is not particularly limited. Examples of plating treatments include zinc plating treatments such as hot-dip galvanizing, alloyed hot-dip galvanizing, and electroplating. Examples of plating treatments other than zinc plating include aluminum plating and alloy plating. Examples of alloy plating treatments include hot-dip zinc-aluminum-magnesium alloy plating and Zn-Ni electroalloy plating. The treatment conditions in all cases should follow conventional methods. As mentioned above, it is preferable to perform the plating treatment during the cooling from the annealing temperature T1 to the rapid cooling start temperature T2, or after the tempering process. For example, hot-dip galvanizing and alloyed hot-dip galvanizing are preferable to perform during the cooling from the annealing temperature T1 to the rapid cooling start temperature T2. Also, it is preferable to perform electroplating and Zn-Ni electroalloy plating after the tempering process. Furthermore, in the case of hot-dip galvanizing and alloyed hot-dip galvanizing, from the viewpoint of productivity, it is preferable to perform the series of processes, including the heating, annealing, and plating processes, on a CGL (Continuous Galvanizing Line), which is a hot-dip galvanizing line. After hot-dip galvanizing, wiping is possible to adjust the plating thickness.

[0070] Other than the conditions mentioned above, there are no particular limitations, and conventional methods may be followed. According to the steel sheet manufacturing method of the embodiment described above, a steel sheet can be obtained in which the TS is 1320 MPa or higher, the YR is 75% or higher, and which has excellent tensile flange properties, stress corrosion cracking resistance, and material stability. The obtained steel sheet can be suitably used, for example, as a material for automobile parts.

[0071] After annealing and plating, the material may be processed again under conditions that result in an equivalent plastic strain of 0.05% to 5.00%. Alternatively, after processing, it may be reheated again under conditions of 100°C to less than 250°C.

[0072] [Components and methods for manufacturing components] Next, the component of the present invention and its manufacturing method will be described.

[0073] The component of the present invention is obtained by subjecting a steel sheet of the present invention to at least one of forming and joining processes. Furthermore, the method for manufacturing the component of the present invention includes the step of subjecting a steel sheet of the present invention to at least one of forming and joining processes to form the component.

[0074] The steel sheet of the present invention has a tensile strength of 1320 MPa or more, a YR of 75% or more, and excellent tensile flange properties, stress corrosion cracking resistance, and material stability. Therefore, members obtained using the steel sheet of the present invention also have a tensile strength of 1320 MPa or more, a YR of 75% or more, and excellent tensile flange properties, stress corrosion cracking resistance, and material stability. Weight reduction is possible by using the members of the present invention. Therefore, the members of the present invention can be suitably used, for example, in automotive structural members.

[0075] Forming processes can utilize general processing methods such as press working without restriction. Joining processes can utilize general welding methods such as spot welding and arc welding, as well as riveting and crimping without restriction. [Examples]

[0076] Steel having the component composition shown in Table 1 (Table 1-1, Table 1-2) (the remainder being Fe and unavoidable impurities) was melted in a converter and formed into steel slabs by continuous casting. Next, the steel slabs were heated. Next, the steel slabs were hot-rolled to obtain hot-rolled steel sheets. Next, the hot-rolled steel sheets were pickled. Next, the hot-rolled steel sheets were cold-rolled to obtain cold-rolled steel sheets. In this way, the raw material steel sheets were prepared. Next, the prepared raw material steel sheets were annealed under the conditions shown in Table 2 (Table 2-1, Table 2-2) to obtain the final product steel sheets (thickness: 1.4 mm, width: 1000 mm). Furthermore, some steel plates (those with GI, GA, and EG in the Type column of Table 2) were plated. Of these, those with GI and GA in the Type column of Table 2 were plated during the cooling process from the annealing temperature T1 to the rapid cooling start temperature T2. Those with EG in the Type column of Table 2 were plated after the tempering process. Conditions not specified were governed by conventional methods.

[0077] [Table 1-1]

[0078] [Table 1-2]

[0079] [Table 2-1]

[0080] [Table 2-2]

[0081] The steel sheets (high-strength cold-rolled steel sheets) obtained as described above were used as test materials, and their tensile properties, elongation flange properties, stress corrosion cracking resistance, and material stability were evaluated according to the following test methods.

[0082] (Tissue observation) Following the method described above, the amount of tempered martensite (area fraction), the amount of retained austenite (volume fraction), the sum of the amount of ferrite and bainitic ferrite (area fraction), and the fraction (area fraction) of tempered martensite containing five or more carbides with a particle size of 0.1 μm or more and 1.0 μm or less were determined.

[0083] (Tensile test) For the tensile test, a JIS No. 5 test specimen (gauge length 50 mm, parallel section width 25 mm) was taken so that the longitudinal direction of the specimen was perpendicular to the rolling direction, and the test was performed according to JIS Z 2241 (2022). The crosshead speed was 1.67 × 10⁻⁶. -1 A tensile test was performed under conditions of mm / second, and the tensile strength TS was measured. In this invention, a TS of 1320 MPa or higher was considered acceptable. A yield ratio YR of 75% or higher was also considered acceptable. YR is calculated using the following formula (2). YR = 100 × YS / TS ... (2)

[0084] (Stretchable flange properties) The hole expansion test was conducted in accordance with JIS Z 2256 (2020). After shearing the obtained steel plate to 100 mm x 100 mm, a 10 mm diameter hole was punched with a clearance of 12.5%. Then, using a die with an inner diameter of 75 mm, a wrinkle-holding force of 9 tons (88.26 kN) was applied, and a conical punch with a vertex angle of 60° was pressed into the hole to measure the hole diameter at the crack initiation limit. The limit hole expansion ratio: λ (%) was calculated from the following formula, and the hole expansion performance was evaluated from this limit hole expansion ratio value. Limit hole expansion rate: λ(%)={(Df-D0) / D0}×100 However, Df is the hole diameter at the time of crack initiation (mm), and D0 is the initial hole diameter (mm). In this invention, a good elongation flange property was determined when the hole expansion ratio (λ), which is an indicator of elongation flange property, was 30% or more, regardless of the strength of the steel plate.

[0085] (Stress corrosion cracking resistance properties) The obtained steel plate was sheared to a size of 20 mm × 75 mm with the longitudinal side perpendicular to the rolling direction. 2 mm was removed from both sides of the longitudinal end face by mechanical grinding to produce 16 mm × 75 mm test specimens. Four-point bending was performed on the obtained test specimens according to ASTM (G39-99), and stresses equivalent to YS and TS were applied to the bending apex of the specimens. The stressed test specimens were immersed in 1 mass% sulfuric acid at 25°C for 100 hours. After the test, the presence or absence of cracks was visually checked for each test specimen. The stress corrosion cracking resistance characteristics were then evaluated according to the following criteria. ◎ (Pass, particularly excellent): No cracking in samples subjected to stress equivalent to YS and TS. ○ (Pass, Excellent): No cracks were found in the sample subjected to stress equivalent to YS. × (Failure): Cracking was observed in both samples subjected to stress equivalent to YS and TS.

[0086] (Material stability) Material stability can be evaluated using coils and cut plates. Total TS (Total Stress) was measured at 10 or more locations within the coil, at distances of 50 mm or more in the plate width direction. The difference between the maximum and minimum TS among the measured TS was calculated as TS fluctuation (ΔTS = maximum TS - minimum TS). Material stability was then evaluated according to the following criteria. ◎ (Pass, particularly excellent): ΔTS is less than 40 MPa ○ (Pass, Excellent): ΔTS is less than 60 MPa × (Failure): ΔTS is 60 MPa or higher

[0087] [Table 3-1]

[0088] [Table 3-2]

[0089] The examples of the present invention shown in Table 3 (Tables 3-1 and 3-2) have a tensile strength TS of 1320 MPa or higher, a yield ratio YR of 75% or higher, and excellent tensile flange properties, stress corrosion cracking resistance, and material stability, whereas the comparative examples were inferior in at least one of these aspects.

[0090] Furthermore, it was found that members obtained by forming and joining using the steel plate of the present invention example exhibited the same characteristics as the steel plate of the present invention: a tensile strength TS of 1320 MPa or higher, a yield ratio YR of 75% or higher, and excellent tensile flange properties, stress corrosion cracking resistance, and material stability.

Claims

1. In mass percent, C: 0.030% or more and 0.450% or less, Si: 0.010% or more and 2.500% or less, Mn: 0.10% or more and 5.00% or less, P: 0.100% or less, S: 0.0200% or less, Al: 1.000% or less, N: 0.0100% or less, and, O: 0.0100% or less It contains, with the remainder being Fe and unavoidable impurities, and has a component composition. At the point where the plate thickness is 1 / 4, Area fraction of tempered martensite: 95% or more, Volume fraction of retained austenite: less than 3%, The total area fraction of ferrite and bainitic ferrite is less than 5%. The tempered martensite has a structure that satisfies the condition that within grains surrounded by grain boundaries of 15° or more, the area fraction of tempered martensite containing 5 or more carbides with a particle size of 0.1 μm or more and 1.0 μm or less is 5% or more and 50% or less. Steel plates with a width of 600 to 1500 mm.

2. The aforementioned component composition is further expressed in mass%, Ti: 0.200% or less, Nb: 0.200% or less, V: 0.200% or less, Ta: 0.10% or less, W: 0.10% or less, B: 0.0100% or less, Cr: 1.00% or less, Mo: 1.00% or less Ni: 1.00% or less, Co: 0.010% or less, Cu: 1.00% or less, Sn: 0.200% or less, Sb: 0.200% or less, Ca: 0.0100% or less, Mg: 0.0100% or less, REM: 0.0100% or less, Zr: 0.100% or less, Te: 0.100% or less, Hf: 0.10% or less, Bi: 0.200% or less, The steel sheet according to claim 1, comprising at least one element selected from among the following.

3. The steel sheet according to claim 1, wherein the steel sheet surface has a plating layer.

4. The steel sheet according to claim 2, wherein the steel sheet surface has a plating layer.

5. A member made using the steel plate described in any one of claims 1 to 4.

6. A cold-rolled sheet is made by hot-rolling, pickling, and cold-rolling a steel having the component composition described in claim 1 or 2. Annealing temperature T1: 800°C or higher, Heating is performed under conditions where the holding time t1 at the annealing temperature T1 is 10 seconds or more. Cooling with an average cooling rate CR1 of 5°C / s or more between 700°C and 500°C, A cooling process is performed that includes water quenching, where the average cooling rate CR2 from the rapid cooling start temperature T2 (Ms - 80°C) to 80°C is 300°C / s or more. Tempering temperature T3: 100°C or higher and less than 250°C. The process includes an annealing step in which the heating is performed under the condition that the holding time t3 at the tempering temperature T3 is between 10 seconds and 10,000 seconds. In the cooling process in the annealing step, the time t2 during which the steel plate is held in a temperature range of 250°C or higher and Ms or lower is set to 1.0 seconds or more and 10.0 seconds or less. During the cooling of the water quenching in the annealing process, pressure is applied to the front and back surfaces of the steel plate by two rolls placed on either side of the steel plate, and this pressure is applied under the following conditions: the distance between the two rolls in the steel plate conveying direction is 20 mm to 250 mm, and the applied pressure is 196 N or more. At the point where the plate thickness is 1 / 4, Area fraction of tempered martensite: 95% or more, Volume fraction of retained austenite: less than 3%, The total area fraction of ferrite and bainitic ferrite is less than 5%. The tempered martensite has a structure that satisfies the condition that within grains surrounded by grain boundaries of 15° or more, the area fraction of tempered martensite containing 5 or more carbides with a particle size of 0.1 μm or more and 1.0 μm or less is 5% or more and 50% or less. A method for manufacturing steel plates with a width of 600 to 1500 mm.

7. A method for manufacturing a steel sheet according to claim 6, wherein a plating treatment is applied.

8. A method for manufacturing a component, comprising the step of forming and joining a steel plate according to any one of claims 1 to 4 to form a component.

Citation Information

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