Steel plate and its manufacturing method

A steel plate with controlled composition and manufacturing process stabilizes γ phase to achieve uniform cryogenic toughness, addressing variations in existing steel plates, ensuring high strength and safety in cryogenic environments.

JP7827154B2Active Publication Date: 2026-03-10JFE STEEL CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-03-19
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Existing steel plates for cryogenic applications exhibit variations in cryogenic toughness due to inconsistencies in the amount and size of retained γ (austenite), which can lead to brittle cracks and reduced safety in structures like liquefied gas storage tanks.

Method used

A steel plate composition with controlled amounts of C, Si, Mn, Ni, Cr, Mo, P, S, N, and optional additives like Al, Cu, Nb, V, Ti, B, Ca, REM, and Mg, combined with specific manufacturing processes including hot-rolling, accelerated cooling, and tempering, to stabilize the γ phase and ensure uniform cryogenic toughness across varying thicknesses.

Benefits of technology

The solution provides a steel plate with stable and high cryogenic toughness, ensuring safety and consistency in structures exposed to extreme low temperatures, regardless of thickness, by maintaining a volume fraction of γ phase and limiting its size, thereby enhancing structural integrity.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided is a steel sheet that retains high strength and that has stable and high ultra-low-temperature toughness which does not vary within the steel sheet regardless of the thickness of a thick steel sheet. The steel sheet is characterized by having a predetermined component composition and having, at a position which is 1 / 4 of the depth of the steel sheet from the surface of the steel sheet in the direction of sheet thickness, a γ phase of 2.0% or more by volume fraction of and a γ phase circle-equivalent diameter of 5.0 μm or less.
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Description

[Technical Field]

[0001] The present invention relates to a steel plate and a manufacturing method thereof, and more particularly to a steel plate for cryogenic use that can stably ensure excellent cryogenic toughness over a wide range of plate thicknesses. The steel plate of the present invention can be suitably used as a steel for structures used in cryogenic environments, such as liquefied gas storage tanks for ships and on land. [Background technology]

[0002] When hot-rolled steel plates are used in structures such as liquefied gas storage tanks, the environment in which they are used is extremely low, so the steel plates are required to have not only strength but also excellent toughness at extremely low temperatures (cryogenic toughness). For example, when hot-rolled steel plates are used in liquefied natural gas storage tanks, they must have excellent toughness at extremely low temperatures of -164°C or below, which is the boiling point of liquefied natural gas. If the cryogenic toughness of the steel material is poor, there is a risk that the safety of the cryogenic storage structure cannot be maintained, so there is a strong demand for improved cryogenic toughness of the steel plates used. For marine applications where the tank volume is relatively small, a steel plate with a relatively small thickness is required, while for land applications where the tank volume is relatively large, a steel plate with a larger thickness is required. To meet these requirements, 7% Ni or 9% Ni steel plates have traditionally been used.

[0003] Steel sheets containing 7 to 9% Ni are proposed in Patent Documents 1 and 2, for example. Patent Document 1 discloses a steel plate for cryogenic use containing, by mass%, more than 5.0 to less than 10.0% Ni and predetermined amounts of C, Si, Mn, and Al. The steel plate of Patent Document 1 has a plate thickness of 6 to 50 mm, and the absorbed energy per unit area vE -196℃ The average value was 1.25J / mm 2 That's all. Patent Document 2 discloses a low-temperature Ni-containing steel containing, by mass%, 7.0 to 10.5% Ni and predetermined amounts of C, Si, Mn, and Al. The steel of Patent Document 2 has a plate thickness of 30 to 60 mm and an absorbed energy vE-196℃ The average value is 150J or more. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2011-219848 [Patent Document 2] Japanese Patent Application Laid-Open No. 2011-214099 Summary of the Invention [Problem to be solved by the invention]

[0005] As a result of extensive research into 7% Ni steel thick plates, the inventors of the present invention discovered a problem of variation in cryogenic temperature toughness within the steel plate. They also discovered that this variation in cryogenic temperature toughness is due to variations in the amount and size of retained γ (retained austenite). Specifically, during impact tests at cryogenic temperatures, retained γ transforms into martensitic metal due to the applied impact strain, thereby relieving stress and suppressing the occurrence of brittle cracks. However, if the amount of retained γ is insufficient, this effect cannot be fully achieved. In this specification, "stable retained γ" refers to the tendency of retained austenite to be unlikely to transform into martensite even when strain of a certain amount or more is applied at -196°C. Conversely, "unstable retained γ" refers to the tendency of retained austenite to be easily transformed into martensite by strain at -196°C.

[0006] However, in both Patent Documents 1 and 2, the cryogenic toughness is examined only as an average value of absorbed energy, and no consideration is given to variations in cryogenic toughness within the steel plate.

[0007] The present invention has been made in view of the above problems, and aims to provide a steel plate having high stability and no variation in cryogenic toughness within the steel plate, regardless of the thickness of the steel plate, while ensuring high strength, and a manufacturing method thereof. [Means for solving the problem]

[0008] In order to solve the above problems, the present inventors have conducted extensive research into the chemical composition and structure of 7% Ni steel sheets, and have obtained the following findings. (1) To ensure stable cryogenic toughness, it is important to generate a certain amount of retained γ. If the volume fraction of the retained γ phase is less than 2.0%, the absorbed energy in impact tests is unstable.

[0009] (2) It is important that the retained γ is finely dispersed. If the circle equivalent diameter of the retained γ phase exceeds 5.0 μm, it becomes coarse martensite, which reduces the resistance to crack propagation.

[0010] The present invention has been completed based on the above findings, and the gist of the present invention is as follows.

[0011] 1. By mass%, C: 0.01% or more and 0.15% or less, Si: 0.01% or more and 0.50% or less, Mn: 0.05% or more and 0.60% or less, Ni: 6.0% or more and 7.5% or less, Cr: 0.01% or more and 1.00% or less, Mo: 0.05% or more and 0.50% or less, P: 0.03% or less, S: 0.005% or less, and N: Contains 0.0010% or more and 0.0080% or less, The balance has a composition consisting of Fe and unavoidable impurities, A steel sheet in which, at a position 1 / 4 depth from the surface of the steel sheet in the sheet thickness direction, the volume fraction of the gamma phase is 2.0% or more and the equivalent circle diameter of the gamma phase is 5.0 μm or less.

[0012] 2. The component composition further comprises, in mass%, Al: 0.008% or more and 0.10% or less, Cu: 0.40% or less, Nb: 0.05% or less, V: 0.05% or less, Ti: 0.03% or less, and B: 0.0030% or less 2. The steel sheet according to item 1 above, containing one or more selected from the group consisting of:

[0013] 3. The component composition further comprises, in mass%, Ca: 0.007% or less, REM: 0.010% or less, and Mg: 0.070% or less 3. The steel sheet according to 1 or 2 above, containing one or more selected from the group consisting of:

[0014] 4.C: 0.01% or more and 0.15% or less, Si: 0.01% or more and 0.50% or less, Mn: 0.05% or more and 0.60% or less, Ni: 6.0% or more and 7.5% or less, Cr: 0.01% or more and 1.00% or less, Mo: 0.05% or more and 0.50% or less, P: 0.03% or less, S: 0.005% or less, and N: Contains 0.0010% or more and 0.0080% or less, A steel material having a composition with the balance being Fe and unavoidable impurities, Heat to a temperature of 900°C or higher and 1200°C or lower. The heated steel material is hot-rolled to form a hot-rolled steel sheet; The hot-rolled steel sheet is subjected to a first accelerated cooling process in which the average cooling rate in a temperature range of 550°C or less and 300°C or more at a temperature of 1 / 4 of the sheet thickness is 1°C / s or more, and the cooling stop temperature is 300°C or less at a temperature of 1 / 4 of the sheet thickness, The hot-rolled steel sheet after the first accelerated cooling is subjected to an average heating rate of 500°C or more of less than 1°C / s, and the temperature at the 1 / 4 position of the sheet thickness is A c1 A point or above c3 Two-phase heating is performed to heat the material to a temperature range below the The hot-rolled steel sheet after the two-phase region heating is subjected to second accelerated cooling in which the average cooling rate at the temperature at 1 / 4 of the sheet thickness position is 1°C / s or more and the cooling stop temperature is 300°C or less, The hot-rolled steel sheet after the second accelerated cooling is subjected to tempering at a tempering temperature of 300 ° C. or more and 500 ° C. or less at a temperature at a plate thickness 1 / 2 position. Steel plate manufacturing method.

[0015] 5. The component composition further comprises, in mass%, Al: 0.008% or more and 0.10% or less, Cu: 0.40% or less, Nb: 0.05% or less, V: 0.05% or less, Ti: 0.03% or less, and B: 0.0030% or less 5. The method for producing a steel sheet according to 4 above, further comprising one or more selected from the group consisting of:

[0016] 6. The component composition further comprises, in mass%, Ca: 0.007% or less, REM: 0.010% or less, and Mg: 0.070% or less 6. The method for producing a steel sheet according to 4 or 5 above, further comprising one or more selected from the group consisting of: [Effects of the Invention]

[0017] According to the present invention, it is possible to provide a steel plate that has excellent cryogenic toughness throughout the steel plate, regardless of the thickness of the steel plate, while ensuring high strength. By using the steel plate of the present invention in steel structures to be used in cryogenic environments, such as tanks for storing liquefied gas, the safety of the steel structures can be improved, which brings about significant industrial benefits. DETAILED DESCRIPTION OF THE INVENTION

[0018] Hereinafter, embodiments of the present invention will be described in detail. Note that the following description shows preferred embodiments of the present invention, and the present invention is not limited thereto.

[0019] [Component composition] The steel sheet of the present invention has a predetermined chemical composition. Furthermore, it is preferable that the steel material used to manufacture the steel sheet of the present invention also has the above-mentioned predetermined chemical composition. Hereinafter, each element contained in this chemical composition will be explained. Unless otherwise specified, in this specification, "%" as a unit of the content of each element means "mass%."

[0020] C: 0.01% or more and 0.15% or less C is an element that has the effect of improving the strength of steel sheet. To achieve this effect, the C content is set to 0.01% or more, preferably 0.03% or more. On the other hand, if the C content exceeds 0.15%, the cryogenic toughness of the steel sheet decreases. Therefore, the C content is set to 0.15% or less, preferably 0.12% or less.

[0021] Si: 0.01% or more and 0.50% or less Si is an element that contributes to improving the strength of steel sheets and also acts as a deoxidizer. To achieve these effects, the Si content is set to 0.01% or more. On the other hand, if the Si content is excessively high, toughness decreases. Therefore, the Si content is set to 0.50% or less, preferably 0.30% or less.

[0022] Mn: 0.05% or more and 0.60% or less Mn is an element that improves the hardenability of steel and is effective in increasing the strength of steel sheets. To achieve this effect, 0.05% or more of Mn is added. On the other hand, if the Mn content exceeds 0.60%, the temper embrittlement susceptibility increases and toughness begins to vary. Therefore, the Mn content is limited to 0.60% or less. Specifically, if the Mn content exceeds 0.60%, the Mn concentration in the γ structure increases, making it easier for γ, which does not contribute to ensuring toughness, to form. The Mn content is preferably less than 0.40%, more preferably 0.30% or less, even more preferably less than 0.20%, and even more preferably less than 0.17%.

[0023] Ni: 6.0% or more and 7.5% or less Ni is an element that is extremely effective in improving the cryogenic toughness of steel sheets. Specifically, if the Ni content is less than 6.0%, the γ phase is difficult to form, and the γ content cannot be set to 0.5% by volume or more. Furthermore, if the Ni content is less than 6.0%, the strength of the steel sheet also decreases. Therefore, the Ni content is set to 6.0% or more. On the other hand, since Ni is an expensive element, the cost of the steel sheet increases as the Ni content increases. Therefore, in the present invention, the Ni content is set to 7.5% or less.

[0024] Cr: 0.01% or more and 1.00% or less Cr is an element that can improve the strength of steel sheet without significantly impairing the cryogenic toughness. To achieve the above effect, the Cr content is set to 0.01% or more, preferably 0.30% or more. However, if the Cr content exceeds 1.00%, the cryogenic toughness of the steel sheet decreases. Therefore, the Cr content is set to 1.00% or less.

[0025] Mo: 0.05% or more and 0.50% or less Like Cr, Mo is an element that can improve the strength of steel sheets without significantly impairing cryogenic toughness. If the Mo content is less than 0.05%, it is difficult to ensure the desired strength and toughness, and in particular, strength cannot be achieved. In particular, in the present invention, even if strength is likely to decrease due to the suppression of variation in cryogenic toughness by reducing the Mn content, the desired strength can be ensured by adding a predetermined amount of Mo. Therefore, the Mo content is set to 0.05% or more, preferably more than 0.10%. On the other hand, if the Mo content exceeds 0.50%, the cryogenic toughness will actually decrease. Therefore, the Mo content is set to 0.50% or less, preferably 0.30% or less, and more preferably 0.25% or less.

[0026] P:0.03% or less P is an unavoidable impurity and a harmful element that adversely affects the cryogenic toughness of steel sheets. For example, to obtain a sound base material and welded joint when steel sheets are welded into a welded structure, it is preferable to reduce the P content as much as possible. Therefore, the P content is limited to 0.03% or less. Furthermore, from the viewpoint of cryogenic toughness, the lower the P content, the better, so the lower limit is not particularly limited and may be 0%, although in this case, its inclusion as an unavoidable impurity is permitted. On the other hand, excessive reduction leads to increased costs, so from the viewpoint of cost, it is preferable that the lower limit of the P content be 0.001%.

[0027] S: 0.005% or less Since S forms MnS in steel and significantly deteriorates cryogenic toughness, the S content is set at an upper limit of 0.005%, and it is desirable to reduce it as much as possible. The S content is preferably 0.002% or less. On the other hand, since the lower the S content, the better, there is no particular lower limit, and it may be 0%, but even in that case, it is acceptable for S to be contained as an unavoidable impurity.

[0028] N: 0.0010% or more and 0.0080% or less N forms precipitates in steel, and if its content exceeds 0.0080%, it causes a decrease in the toughness of the base material. However, N is also an element that contributes to the refinement of the base material grains by forming AlN, and this effect can be obtained by setting the N content to 0.0010% or more. Therefore, the N content is set to 0.0010% or more and 0.0080% or less. The N content is preferably set to 0.0020% or more and preferably 0.0060% or less.

[0029] The component composition in one embodiment of the present invention can be such that, in addition to the predetermined amounts of the elements described above, the balance is Fe and inevitable impurities.

[0030] In another embodiment of the present invention, the above-mentioned composition may further contain, optionally, one or more elements selected from the group consisting of Al, Cu, Nb, V, Ti, and B, preferably in the amounts described below.

[0031] Al: 0.008% or more and 0.10% or less Al is an element contained in a deoxidizer. If the Al content is less than 0.008%, the effect as a deoxidizer is poor. Al is also an element that contributes to the refinement of the grains of the base material by forming AlN. Therefore, when Al is contained, the Al content is preferably 0.008% or more, and more preferably 0.02% or more. On the other hand, if the Al content exceeds 0.10%, the cleanliness of the steel is impaired. Therefore, the Al content is preferably 0.10% or less, and more preferably 0.05% or less.

[0032] Cu: 0.40% or less Cu is an element that has the effect of increasing the strength of steel sheet by improving hardenability. However, if the Cu content exceeds 0.40%, the cryogenic toughness of the steel sheet decreases, and the surface properties of the steel material (slab) after casting deteriorate. Therefore, when Cu is added, the Cu content is preferably 0.40% or less, and more preferably 0.30% or less. On the other hand, although there is no particular lower limit for the Cu content, to obtain the above effect, the Cu content is preferably 0.10% or more.

[0033] Nb: 0.05% or less Nb is an effective element for increasing the strength of steel sheets through precipitation strengthening. However, excessive Nb content reduces the cryogenic toughness of steel sheets. Therefore, when Nb is added, the Nb content is preferably 0.05% or less, and more preferably 0.03% or less. On the other hand, although there is no particular lower limit for the Nb content, in order to obtain the above-mentioned effects, the Nb content is preferably 0.010% or more.

[0034] V:0.05% or less Like Nb, V is an effective element for increasing the strength of steel sheet through precipitation strengthening. However, if the V content is excessively high, the cryogenic toughness of the steel sheet decreases. Therefore, when V is added, the V content is preferably 0.05% or less, and more preferably 0.04% or less. On the other hand, although there is no particular lower limit for the V content, to obtain the above-mentioned effect, the V content is preferably 0.010% or more.

[0035] Ti: 0.03% or less Ti is an element that has the effect of increasing the toughness of the weld without degrading the mechanical properties of the base material when steel plates are welded to form a welded structure. To achieve this, it is preferable to add Ti at a content of 0.003% or more. On the other hand, if the Ti content exceeds 0.03%, the toughness will actually decrease. Therefore, it is preferable to add Ti at a content of 0.03% or less.

[0036] B: 0.0030% or less B is an element that improves hardenability when added in small amounts. To effectively exert this effect, B can be contained in an amount of 0.0003% or more. On the other hand, if the B content exceeds 0.0030%, toughness deteriorates. Therefore, when B is added, the content is preferably 0.0030% or less.

[0037] In another embodiment of the present invention, the above-mentioned composition may optionally further contain one or more elements selected from the group consisting of Ca, REM, and Mg, preferably in the amounts described below.

[0038] Ca: 0.007% or less Ca is an element that has the effect of improving the cryogenic toughness of steel sheets by controlling the morphology of inclusions in steel. However, excessive Ca impairs the cleanliness of steel. Therefore, when Ca is added, the Ca content is preferably 0.007% or less, and more preferably 0.004% or less. On the other hand, although there is no particular lower limit for the Ca content, it is preferably 0.001% or more to obtain the above effect.

[0039] REM: 0.010% or less Like Ca, REM (rare earth metals) are elements that have the effect of improving the cryogenic toughness of steel sheets by controlling the morphology of inclusions in steel. However, excessive REM impairs the cleanliness of steel. Therefore, when REM is added, the REM content is preferably 0.010% or less, and more preferably 0.008% or less. On the other hand, although there is no particular lower limit for the REM content, to obtain the above effect, the REM content is preferably 0.001% or more. Here, REM is a collective term for 17 elements, including 15 lanthanoid elements plus Y and Sc, and these elements can be contained alone or in combination. The REM content means the total content of these elements.

[0040] Mg: 0.070% or less Like Ca and REM, Mg is an element that controls the morphology of inclusions in steel, thereby improving the cryogenic toughness of steel sheets. However, excessive Mg impairs the cleanliness of steel. Therefore, when Mg is added, the Mg content is preferably 0.070% or less, and more preferably 0.004% or less. On the other hand, although there is no particular lower limit for the Mg content, to obtain the above-mentioned effects, the Mg content is preferably 0.001% or more.

[0041] [Microstructure] The steel sheet of the present invention is characterized in that the γ phase has a volume fraction of 2.0% or more and an equivalent circle diameter of 5.0 μm or less at a depth position of 1 / 4 of the sheet thickness t from the surface of the steel sheet in the sheet thickness direction (sometimes referred to as "(1 / 4)t"). The presence of a predetermined amount of γ with the above-mentioned predetermined composition in the steel sheet makes it possible to achieve stable and high cryogenic toughness.

[0042] The γ (austenite) present in steel sheets transforms under strain during impact testing, providing a stress relief effect and suppressing the occurrence of brittle fracture. To consistently achieve this effect, the γ phase must have a volume fraction of 2.0% or more. Here, the volume fraction of the γ phase can be calculated, for example, by determining the diffraction intensities of α-Fe and γ-Fe using an X-ray diffraction test.

[0043] On the other hand, if the γ phase is coarse, martensite transformed by strain may reduce the crack propagation resistance. Therefore, the equivalent circle diameter of the γ phase needs to be 5.0 μm or less. The equivalent circle diameter of the γ phase is preferably 4.5 μm or less, more preferably 4.0 μm or less. The equivalent circle diameter of the γ phase is the average value counted for γ phases of 0.1 μm or more.

[0044] Furthermore, the steel plate preferably has a structure in which the total area ratio of bainite and martensite is 85% or more. As described above, a structure mainly composed of bainite and martensite can easily obtain sufficient strength while ensuring excellent cryogenic toughness. Here, the ratio of bainite to martensite can be any ratio. Here, the term "structure mainly composed of martensite and bainite" refers to a structure in which the total area ratio of martensite and bainite exceeds 50%.

[0045] The thickness of the steel plate is not particularly limited and can be any thickness, but is preferably 6 mm or more and 50 mm or less. In particular, even in steel plates with small thicknesses, which have traditionally been more susceptible to variation in cryogenic temperature toughness within the steel plate, the thickness can be made less than 30 mm from the viewpoint of effectively suppressing variation in cryogenic temperature toughness and further enjoying the effects of the present application.

[0046] [Mechanical properties] (tensile strength) The lower limit of the tensile strength of the steel sheet is not particularly limited and can be any value, but is preferably 700 MPa, more preferably 720 MPa. On the other hand, the upper limit of the tensile strength is not particularly limited and can be any value, but is preferably 930 MPa, more preferably 900 MPa. The tensile strength can be measured by the method described in the examples below.

[0047] (cryogenic toughness) The toughness of the steel plate is determined by the Charpy absorbed energy (vE -196℃ ) is preferably 250 J or more, more preferably 280 J or more, and may be 350 J or less in a full-size Charpy impact test.

[0048] [Manufacturing method] Next, an example of a manufacturing method that can suitably manufacture the steel sheet of the present invention will be described. In the following description, unless otherwise specified, temperature refers to the temperature at the center of the sheet thickness. The temperature at the center of the sheet thickness can be calculated by heat transfer calculation from the surface temperature of the steel sheet measured with a radiation thermometer, for example.

[0049] As a specific example of the manufacturing method, the steel sheet of the present invention can be suitably manufactured by sequentially carrying out the following steps (1) to (7). (1) Heating of steel material (2) Hot rolling (3) First accelerated cooling (4) Two-phase region heating (5) Second accelerated cooling (6) Tempering (7) Air-cooled

[0050] (1) Heating of steel material First, it is preferable to heat a steel material having the above-mentioned composition to a temperature of 900°C or more and 1200°C or less. The method for producing the steel material is not particularly limited, but for example, the steel material can be produced by melting molten steel having the above-mentioned composition by a conventional method and casting it. Melting can be carried out by any method, such as a converter, an electric furnace, or an induction furnace. Furthermore, from the viewpoint of productivity, casting is preferably carried out by a continuous casting method, but it can also be carried out by an ingot casting-breakdown rolling method. For example, a steel slab can be used as the steel material. Here, the heating of the steel material may be carried out after the steel material obtained by a method such as casting has been cooled once, or the obtained steel material may be directly subjected to heating without being cooled.

[0051] If the heating temperature of the steel material is less than 900°C, the deformation resistance of the steel material is high, which increases the load on the rolling mill in the subsequent hot rolling, making it difficult to perform the hot rolling. Therefore, it is preferable that the heating temperature of the steel material be 900°C or higher. On the other hand, if the heating temperature of the steel material is higher than 1200°C, oxidation of the steel becomes significant, and loss due to removing the oxide film caused by oxidation increases, resulting in a decrease in yield. Therefore, it is preferable that the heating temperature of the steel material be 1200°C or lower.

[0052] (2) Hot rolling After the heating, the heated steel material can be hot-rolled to form a hot-rolled steel sheet. The final thickness of the hot-rolled steel sheet is not particularly limited, but as described above, it is preferably 6 mm or more and 50 mm or less.

[0053] (3) First accelerated cooling The hot-rolled steel sheet after the hot rolling can be subjected to accelerated cooling (first accelerated cooling). In the first accelerated cooling, the average cooling rate in the temperature range of 550°C or less and 300°C or more at the temperature at (1 / 4)t of the steel sheet thickness is preferably 1°C / s or more, and the cooling stop temperature is preferably 300°C or less at the temperature at (1 / 4)t. By performing the first accelerated cooling under these conditions, the hot-rolled steel sheet is well quenched, and a desired structure mainly composed of martensite and bainite is easily obtained.

[0054] In the first accelerated cooling, if the average cooling rate in the temperature range of 550°C or lower and 300°C or higher at (1 / 4)t is less than 1°C / s, it is difficult to obtain the desired transformed structure and sufficient strength. Furthermore, unstable γ tends to remain in the steel, making it difficult to reduce the rate of decrease in the amount of residual γ before and after deep cooling. As a result, cryogenic toughness tends to decrease. On the other hand, although there is no particular upper limit for the average cooling rate, if the average cooling rate is higher than 200°C / s, it becomes difficult to control the temperature at each position in the steel sheet, and material properties tend to vary in the sheet width direction and rolling direction. As a result, material properties such as tensile properties and toughness tend to vary. Therefore, it is preferable to set the average cooling rate to 200°C / s or lower.

[0055] The first accelerated cooling is not particularly limited and can be performed by any method. For example, air cooling and / or water cooling can be used. As for water cooling, any cooling method using water (e.g., spray cooling, mist cooling, laminar cooling, etc.) can be used.

[0056] (4) Two-phase region heating Next, the hot-rolled steel sheet cooled after hot rolling can be subjected to two-phase region heating. Specifically, the cooled hot-rolled steel sheet is heated at a temperature of 500°C or more at a position of the thickness (1 / 4)t at an average heating rate of less than 1°C / s and c1 A point or above c3It is preferable to heat the hot-rolled steel sheet to a temperature range below the 0.155°C point. By performing heating in the two-phase region, it is preferable to reverse transform a part of the structure of the hot-rolled steel sheet from bainite and / or martensite to form a mixed austenite structure having an alloy-enriched phase in which C, Ni, and Mn are enriched. However, as described above, in this mixed austenite structure, it is preferable to suppress the enrichment of Mn to less than 2 mass %, and it is preferable to increase the enrichment of Ni to 12 mass % or more. Here, the average temperature rise rate refers to the average rate from 500°C until the temperature reaches the two-phase region heating temperature. If the average heating rate in the high-temperature region during two-phase heating is 1°C / s or more, the formation of the alloy-enriched phase described above tends to be insufficient. In particular, the Ni concentration in the γ structure of the steel sheet cannot be sufficiently increased. As a result, the stability of γ decreases, the rate of decrease in retained γ before and after deep-cooling increases, and it becomes difficult to ensure excellent cryogenic toughness. Furthermore, the toughness tends to vary.

[0057] The heating temperature in the two-phase region is A c1 If the heating temperature is below the A point, the reverse-transformed austenite described above is hardly obtained, and it becomes difficult to obtain the desired microstructure by the subsequent accelerated cooling. As a result, it is difficult to obtain the desired cryogenic toughness in the final steel plate. c3 Above this point, the reverse transformation rates of bainite and martensite tend to be excessively high, making it difficult to form the alloy-enriched phases described above. As a result, it is difficult to ensure the amount of retained γ after deep-cooling treatment and to ensure excellent cryogenic toughness. Furthermore, the toughness tends to vary. In addition, A c1 Point (A c1 transformation point) and A c3 Point (A c3 The transformation points can be calculated using the following formulas (1) and (2), respectively. A c1 Point (℃)=750.8 - 26.6×C + 17.6×Si - 11.6×Mn - 22.9×Cu - 23×Ni + 24.1×Cr + 22.5×Mo- 39.7×V - 5.7×Ti + 232.4×Nb - 169.4×Al...(1) A c3 Point (℃)=937.2 - 436.5×C + 56×Si - 19.7×Mn - 16.3×Cu - 26.6×Ni - 4.9×Cr + 38.1×Mo+ 124.8×V + 136.3×Ti - 19.1×Nb + 198.4×Al ···(2) However, the element symbols in the above formulas (1) and (2) represent the content (mass%) of each element, and if the element is not contained, it is set to 0.

[0058] Any heating method can be used for the two-phase region heating as long as it can control the heating temperature as described above. One example of the heating method is furnace heating. There are no particular limitations on the furnace heating method, and a general heat treatment furnace can be used.

[0059] After the two-phase region heating temperature is reached, the next accelerated cooling may be started immediately, or the next accelerated cooling may be started after holding the two-phase region heating temperature for any time. When holding the two-phase region heating temperature, the holding time is not particularly limited, but it is preferably 5 minutes or more.

[0060] (5) Second accelerated cooling Next, the hot-rolled steel sheet after the two-phase region heating can be subjected to accelerated cooling (second accelerated cooling). In the second accelerated cooling, the average cooling rate at the position of the steel sheet thickness (¼)t is preferably 1°C / s or more, and the cooling stop temperature at the temperature at (¼)t is preferably 300°C or less.

[0061] In the second accelerated cooling, if the average cooling rate at the temperature at (1 / 4)t is less than 1°C / s, unstable γ tends to remain in the steel, making it difficult to reduce the amount of γ. As a result, the cryogenic toughness of the steel sheet obtained ultimately decreases. On the other hand, although there is no particular upper limit for the average cooling rate, if the average cooling rate is higher than 200°C / s, it becomes difficult to control the temperature at each position in the steel sheet, and material properties tend to vary in the sheet width direction and rolling direction. As a result, material properties such as tensile properties and toughness tend to vary. Therefore, it is preferable that the average cooling rate be 200°C / s or less. Here, the average cooling rate refers to the average rate at which the temperature drops per unit time from the start of accelerated cooling to the end of accelerated cooling in the second accelerated cooling step.

[0062] Furthermore, in the second accelerated cooling, if the cooling stop temperature exceeds 300°C at (1 / 4)t, unstable austenite is likely to remain, and the cryogenic toughness is likely to decrease.

[0063] The second accelerated cooling can be performed by any method without any particular limitation. For example, air cooling and / or water cooling can be used. As for water cooling, any cooling method using water (e.g., spray cooling, mist cooling, laminar cooling, etc.) can be used.

[0064] (6) Tempering Next, the hot-rolled steel sheet cooled after heating in the two-phase region can be tempered. The tempering temperature at the half-thickness position is preferably 300°C or higher and 500°C or lower, more preferably 350°C or higher and more preferably 450°C or lower. If the tempering temperature is lower than 300°C, tempering is insufficient and toughness is likely to decrease. On the other hand, if the tempering temperature exceeds 500°C, coarse γ grains are generated and toughness is likely to decrease.

[0065] Any heating method can be used in the tempering process as long as it can control the heating temperature as described above. One example of the heating method is furnace heating. The furnace heating is not particularly limited, and a general heat treatment furnace can be used.

[0066] After the tempering temperature is reached, the material may be held at the tempering temperature for a desired time, after which cooling may be started. When the material is held at the tempering temperature, the holding time is not particularly limited, but is preferably 5 minutes or more.

[0067] (7) Air-cooled The tempered steel sheet can be optionally cooled as described above. The cooling method is not particularly limited, but air cooling is preferred from the viewpoint of ease of operation and cost during production. [Example]

[0068] Steel sheets were manufactured according to the procedure described below, and their properties were evaluated.

[0069] First, molten steel having the composition shown in Table 1 (the balance being Fe and unavoidable impurities) was melted in a converter and then produced into a steel slab (thickness: 200 mm) as a steel material by a continuous casting method. c1 point (℃) and A calculated by equation (2) c3 The temperature (°C) is also shown in Table 1.

[0070] [Table 1] TIFF0007827154000002.tif22378

[0071] Next, according to the conditions shown in Table 2, the obtained steel material (slab) was heated and hot-rolled to obtain hot-rolled steel sheets having the respective plate thicknesses (final plate thicknesses). Next, according to the conditions shown in Table 2, the obtained hot-rolled steel sheets were subjected to a heat treatment including first accelerated cooling, heating in the two-phase region, and second accelerated cooling. The heat-treated hot-rolled steel sheets were then tempered according to the conditions shown in Table 2. In all examples, air cooling was carried out after tempering to obtain steel sheets having various thicknesses ranging from 6 mm to 50 mm. A heat treatment furnace was used for heating in each of the above steps.

[0072] Next, for each of the obtained steel sheets, the microstructure, the Mn and Ni concentrations in γ, the tensile strength (TS), and the Charpy absorbed energy (vE -196℃ ) was evaluated according to the following method.

[0073] [Microstructure] Test specimens for microstructure observation were taken from each steel plate so that the observation position was the plate thickness (1 / 4)t. These test specimens were embedded in resin so that the cross section perpendicular to the rolling direction was the observation surface, and then mirror-polished. Next, after performing nital etching, the specimens were observed using a scanning electron microscope at magnifications of 2000 and 10,000 times, and images of the structure were taken. The obtained images were analyzed to identify the microstructure. Of the steel plates Nos. 1 to 34 shown in Table 2, all except Comparative Example No. 5 had a lath-shaped microstructure, and were either a structure of tempered martensite alone or a mixed structure of tempered martensite and bainite.

[0074] (tensile strength) A JIS No. 4 tensile test piece was taken from the position of the steel plate at the plate thickness (1 / 4) t. Using this tensile test piece, a tensile test was carried out in accordance with the provisions of JIS Z 2241 to evaluate the tensile strength (TS) of the steel plate. Here, a TS of over 700 MPa was considered to be acceptable. The results are shown in Table 2.

[0075] (cryogenic toughness) A V-notch test piece was taken from the position of the steel plate at the plate thickness (1 / 4)t in accordance with the provisions of JIS Z 2242. Using this V-notch test piece, a Charpy impact test was carried out in accordance with the provisions of JIS Z 2242, and the Charpy absorbed energy (vE -196℃ ) was determined. The Charpy absorbed energy can be considered an index of the cryogenic toughness of a steel plate. For the Charpy impact test, three test specimens were taken from each steel plate at different positions along the rolling direction. More specifically, test specimens were taken from three locations: one at each end of the steel plate in the rolling direction (length direction), 1000 mm inward, and one at the center of the steel plate in the rolling direction (length direction). Each test specimen was measured three times, once for each test specimen. The individual measurement results are shown in Table 2. For Nos. 6 and 22, which had small plate thicknesses, half-size Charpy impact tests were conducted using half-size test pieces (sub-size test pieces), while for the other examples, full-size Charpy impact tests were conducted using full-size test pieces.

[0076] [Table 2] TIFF0007827154000004.tif22370

[0077] As can be seen from Tables 1 and 2, it was confirmed that the steel plate according to the present invention has high strength and excellent cryogenic temperature toughness while effectively suppressing the variation in the toughness within the steel plate. Furthermore, this effect was achieved even in a relatively thin steel plate having a thickness of, for example, 6 to 25 mm. On the other hand, in the comparative example outside the scope of the present invention, the Charpy absorbed energy was lower than 200 J in at least one of three measurements. In other words, in the comparative example, the cryogenic temperature toughness varied within the steel plate, resulting in portions with low cryogenic temperature toughness, and the above-mentioned target performance could not be met. [Industrial Applicability]

[0078] According to the present invention, steel plates having various thicknesses can be made to exhibit uniform and excellent cryogenic toughness while ensuring high strength.

Claims

1. In mass%, C: 0.01% or more and 0.15% or less, Si: 0.01% or more and 0.50% or less, Mn: 0.05% or more and 0.60% or less, Ni: 6.0% or more and 7.5% or less, Cr: 0.01% or more and 1.00% or less, Mo: 0.05% or more and 0.50% or less, P: 0.03% or less, S: 0.005% or less, and N: 0.0010% or more and 0.0080% or less; The balance has a composition consisting of Fe and unavoidable impurities, A steel sheet, wherein a gamma phase has a volume fraction of 2.0% or more at a position 1 / 4 depth from the surface of the steel sheet in the sheet thickness direction, and the gamma phase has an equivalent circle diameter of 1.4 μm or more and 5.0 μm or less.

2. The component composition further comprises, in mass%, Al: 0.008% or more and 0.10% or less, Cu: 0.40% or less, Nb: 0.05% or less, V: 0.05% or less, Ti: 0.03% or less, and B: 0.0030% or less The steel sheet according to claim 1, comprising one or more selected from the group consisting of:

3. The component composition further comprises, in mass%, Ca: 0.007% or less, REM: 0.010% or less, and Mg: 0.070% or less The steel sheet according to claim 1 or 2, comprising one or more selected from the group consisting of:

4. C: 0.01% or more and 0.15% or less, Si: 0.01% or more and 0.50% or less, Mn: 0.05% or more and 0.60% or less, Ni: 6.0% or more and 7.5% or less, Cr: 0.01% or more and 1.00% or less, Mo: 0.05% or more and 0.50% or less, P: 0.03% or less, S: 0.005% or less, and N: 0.0010% or more and 0.0080% or less; A steel material having a composition with the balance being Fe and unavoidable impurities, Heating to a temperature of 900°C or higher and 1200°C or lower, The heated steel material is hot-rolled to form a hot-rolled steel sheet; The hot-rolled steel sheet is subjected to a first accelerated cooling in which the average cooling rate is 1°C / s or more in a temperature range of 550°C or less and 300°C or more at a temperature at a quarter-thickness position of the sheet, and the cooling stop temperature is 300°C or less at a temperature at a quarter-thickness position of the sheet, The hot-rolled steel sheet after the first accelerated cooling is subjected to an average temperature increase rate of less than 1°C / s at 500°C or more, and a temperature at a quarter-thickness position of the sheet is A c1 A point or above c3 Two-phase heating is performed to heat the material to a temperature range below the The hot-rolled steel sheet after the two-phase region heating is subjected to second accelerated cooling in which the average cooling rate at the temperature at a quarter position of the sheet thickness is 1°C / s or more and the cooling stop temperature is 300°C or less; The hot-rolled steel sheet after the second accelerated cooling is subjected to tempering at a tempering temperature of 300°C or more and 500°C or less at a temperature at a position of 1 / 2 of the sheet thickness, Obtain a steel sheet having a gamma phase of 2.0% or more in volume fraction at a position of 1 / 4 depth from the surface of the steel sheet in the sheet thickness direction, and the gamma phase has an equivalent circle diameter of 1.4 μm or more and 5.0 μm or less. Steel plate manufacturing method.

5. The component composition further comprises, in mass%, Al: 0.008% or more and 0.10% or less, Cu: 0.40% or less, Nb: 0.05% or less, V: 0.05% or less, Ti: 0.03% or less, and B: 0.0030% or less The method for producing a steel sheet according to claim 4, further comprising one or more selected from the group consisting of:

6. The component composition further comprises, in mass%, Ca: 0.007% or less, REM: 0.010% or less, and Mg: 0.070% or less The method for producing a steel sheet according to claim 4 or 5, further comprising one or more selected from the group consisting of:

Citation Information

Patent Citations

  • Ni-CONTAINING STEEL FOR LOW TEMPERATURE USE HAVING EXCELLENT STRENGTH, LOW TEMPERATURE TOUGHNESS AND BRITTLE CRACK PROPAGATION ARRESTING PROPERTY, AND METHOD FOR PRODUCING THE SAME

    JP2011214099A

  • Thick steel plate for ultra-low temperature and method for producing the same

    JP2011219848A

  • Thick steel plate for ultra-low temperature and method for producing the same

    JP2011219849A

  • Thick steel plate for ultra-low temperature and production method thereof

    JP2014034708A

  • Ni-CONTAINING STEEL SHEET AND PROCESS FOR PRODUCING SAME

    WO2012005330A1