Steel sheets and plated steel sheets
By controlling the composition and layer thickness ratios in high-strength steel sheets, the challenges of achieving both strength and platability are addressed, resulting in thin, high-strength plated steel sheets with enhanced properties.
Patent Information
- Application Number
- JP2023566391
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-12-09
- Filing Date
- 2022-12-09
- Publication Date
- 2025-09-10
- Estimated Expiration
- 2042-12-09
AI Technical Summary
High-strength steel sheets used in automotive components and the like face challenges in achieving both sufficient strength and platability or chemical conversion treatability, particularly when subjected to annealing processes that form internal oxide layers and decarburized layers.
The steel sheet composition includes specific amounts of C, Mn, Si, and Al, with controlled ratios of the decarburized layer thickness to the steel sheet thickness and C concentration in the decarburized layer, ensuring the formation of an internal oxide layer and a decarburized layer that enhances strength and platability.
This approach allows for the production of thin, high-strength plated steel sheets with excellent appearance properties and improved galvanizability or phosphatability, even when subjected to annealing processes.
Smart Images

Figure 0007737035000003 
Figure 0007737035000004 
Figure 0007737035000005
Abstract
Description
[Technical Field]
[0001] The present invention relates to a steel sheet and a plated steel sheet. More specifically, the present invention relates to a thin, high-strength steel sheet and a plated steel sheet that are excellent in platability or chemical conversion treatability. [Background technology]
[0002] In recent years, efforts have been made to increase the strength of steel sheets used in various fields such as automobiles, home appliances, and building materials. For example, in the automobile field, the use of high-strength steel sheets has been increasing in order to reduce the weight of vehicle bodies in order to improve fuel efficiency. Such high-strength steel sheets typically contain elements such as C, Si, and Mn to improve the strength of the steel.
[0003] Such members account for a large portion of the exteriors of automobiles, home appliances, building materials, etc., and therefore are required to have not only high strength but also excellent plating or chemical conversion treatability.
[0004] In particular, when high-strength steel sheets are used for automotive components and the like which are expected to be used outdoors, a plating layer such as a hot-dip galvanized layer or a galvannealed hot-dip galvanized layer is formed on the surface of the steel sheet from the viewpoint of improving corrosion resistance, etc. In general, before forming such a plating layer, the steel sheet (typically a cold-rolled steel sheet) is often annealed at a certain temperature or higher to remove strain from the steel sheet and / or improve its formability.
[0005] In this regard, hot-dip galvanized steel sheets or galvannealed steel sheets containing C, Si, Mn, etc. as steel sheet components and suitable for use mainly as automotive parts, as well as methods for manufacturing the same have been disclosed (for example, Patent Documents 1 to 4). Patent Documents 1 to 4 also teach that, in order to manufacture the respective plated steel sheets described in Patent Documents 1 to 4, an annealing step is or may be performed before the plating step. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] International Publication No. 2014 / 054141 [Patent Document 2] Japanese Patent Application Laid-Open No. 2014-058741 [Patent Document 3] International Publication No. 2013 / 157222 [Patent Document 4] Japanese Patent Application Laid-Open No. 2010-065269 Summary of the Invention [Problem to be solved by the invention]
[0007] Among the elements typically contained in high-strength steel sheets, Si and Mn, which have a strong affinity for oxygen, may combine with oxygen in the atmosphere during the annealing process to form a layer containing oxides near the surface of the steel sheet. Such a layer can take the form of a film of oxides containing Si and Mn formed on the outside (surface) of the steel sheet (external oxidation), or a form in which oxides are formed inside (surface layer) of the steel sheet (internal oxidation).
[0008] When a zinc-containing coating layer (sometimes referred to as a "zinc-based coating layer," including, for example, a hot-dip galvanized layer or a galvannealed hot-dip galvanized layer) is formed on the surface of a steel sheet having an outer oxide layer, the oxides are present as a film on the surface of the steel sheet, inhibiting the interdiffusion of steel components (e.g., Fe) and coating components (e.g., Zn). This may adversely affect the reaction between the steel and the coating layer, resulting in insufficient galvanizability (e.g., an increase in uncoated areas). This may result in a deterioration in the appearance and corrosion prevention performance of the coated steel sheet. Furthermore, these oxides also affect the Fe-Zn reaction rate during alloying of the coating layer, resulting in insufficient galvanizability (e.g., the occurrence of alloying unevenness). This may also result in a deterioration in the appearance of the coated steel sheet. Therefore, from the perspective of improving galvanizability and obtaining a coated steel sheet with good appearance, a steel sheet having an inner oxide layer, in which oxides are present inside, is preferred to a steel sheet having an outer oxide layer.
[0009] On the other hand, under annealing conditions that result in the formation of an internal oxide layer, not only does the internal oxide layer form, but also the phenomenon of decarburization occurs near the surface of the steel sheet. Decarburization refers to the carbon near the surface of the steel sheet bonding with oxygen in the annealing atmosphere to become CO2 and being released outside the system. The region where carbon is present is called the decarburized layer. Because carbon in steel is an element that contributes to the strength of the steel, as the decarburized layer becomes thicker, the strength of the steel sheet near the surface decreases. The reduction in strength of the steel sheet surface due to the presence of such a decarburized layer is not particularly problematic when the thickness of the zinc-based coated steel sheet is thick, as its impact is relatively small. However, in the case of thin zinc-based coated steel sheets, the impact of decarburization on the strength reduction (typically, a reduction in tensile strength and fatigue properties) cannot be ignored.
[0010] In view of the above circumstances, an object of the present invention is to provide a steel sheet and a plated steel sheet that can achieve both sufficient strength and platability or chemical conversion treatability even when the steel sheet has a thin plate thickness. [Means for solving the problem]
[0011] The present inventors have found that for steel sheets having a thickness of 0.4 to 2.0 mm, both high strength and excellent plating or chemical conversion treatability can be achieved by strictly controlling the ratio of the thickness of the decarburized layer on the surface of the steel sheet to the thickness of the steel sheet, and the ratio of the C concentration at a specific position in the decarburized layer to the bulk C concentration of the steel sheet.
[0012] The present invention was made based on the above findings, and the gist of the present invention is as follows. (1) In mass%, C: 0.05~0.30%, Si: 0.01 to 2.50% Mn: 0.80-3.00%, Al: 0.010 to 2.000%, P: 0.1000% or less, S: 0.1000% or less, N: 0.0300% or less, O: 0.010% or less, B: 0~0.0100%, Ti: 0 to 0.100%, Nb: 0 to 0.100%, V: 0~0.100%, Cr: 0~1.00%, Ni: 0 to 0.10% Cu: 0 to 0.10% Mo: 0 to 0.50% W: 0~0.50%, Ca: 0 to 0.100%, Mg: 0 to 0.100%, Zr: 0 to 0.100%, Hf: 0 to 0.100%, and REM: 0 to 0.100% and the balance being Fe and impurities, The steel plate has a thickness of 0.4 to 2.0 mm, The tensile strength is 550 to 1500 MPa, It includes an internal oxidation layer and a decarburized layer, When the thickness of the decarburized layer per side of the steel plate is A (μm), the bulk C concentration of the steel plate is Cb (%), and the plate thickness of the steel plate is t (mm), 0.01≦A / t≦0.15, A steel plate in which the C concentration at the 1 / 2A position is Cb / 2 or more. (2) The A / t is The steel sheet according to (1), wherein 0.04≦A / t≦0.15. (3) A plated steel sheet having a zinc-containing plating layer on the steel sheet according to (1) or (2). (4) The plated steel sheet is a galvannealed steel sheet, the plating layer has a chemical composition containing 5 to 15% Fe and 0.01 to 0.5% Al, with the balance being Zn and impurities, and the coating weight of the plating layer per side is 10 to 100 g / m 2 The plating method according to (3) Steel plate. [Effects of the Invention]
[0013] According to the present invention, it is possible to provide a steel sheet having a thickness of 0.4 to 2.0 mm that is capable of achieving both sufficient strength and plating or chemical conversion treatment properties, and to obtain a thin, high-strength plated steel sheet with excellent appearance properties. [Brief explanation of the drawings]
[0014] [Figure 1] FIG. 2 is a diagram schematically showing the behavior of a decarburized layer due to differences in annealing conditions. [Figure 2] FIG. 2 is a diagram schematically showing the C profile near the surface of a steel sheet with and without recarburization. [Figure 3] FIG. 2 is a diagram illustrating an example of L / L0 of a steel plate. DETAILED DESCRIPTION OF THE INVENTION
[0015] Therefore, the present inventors conducted various studies to achieve both high strength and high galvanizability or phosphatability in steel sheets having a thickness of 0.4 to 2.0 mm, and found that it is effective to add predetermined amounts of C, Mn, Si, and Al to the steel, to form an internal oxide layer and a decarburized layer on the surface of the steel sheet, and to strictly control the ratio of the thickness of the decarburized layer to the thickness of the steel sheet and the C concentration in the decarburized layer. More specifically, the present inventors found that, where A (μm) is the thickness of the decarburized layer per side of the steel sheet, Cb (%) is the bulk C concentration of the steel sheet, and t (μm) is the thickness of the steel sheet, it is important to set A / t in the range of 0.01 to 0.15 and to ensure that the C concentration at half the decarburized layer thickness A is Cb / 2 or greater in order to ensure galvanizability or phosphatability and strength.
[0016] The steel sheet according to the present invention will be described in detail below. [Steel plate] (composition) The composition of the elements contained in the steel sheet of the present invention will be described. Unless otherwise specified, "%" regarding the content of an element means "mass %." In the numerical range of the element composition, a numerical range expressed using "to" means a range that includes the numerical values written before and after "to" as the lower and upper limits, unless otherwise specified.
[0017] (C: 0.05 to 0.30%) C (carbon) is an important element for ensuring the strength of a zinc-based plated steel sheet. If the C content is insufficient, sufficient strength may not be ensured. Therefore, the C content is 0.05% or more, preferably 0.07% or more, more preferably 0.08% or more, and even more preferably 0.10% or more. On the other hand, if the C content is excessive, the strength may become excessively high, and the weldability and workability may deteriorate. Therefore, the C content is 0.30% or less, preferably 0.25% or less, and more preferably 0.20% or less.
[0018] (Si: 0.01 to 2.50%) Silicon (Si) is an element effective in improving the strength of steel sheets. Si is also one of the elements that combine with oxygen to form internal oxides during annealing. On the other hand, Si also affects the galvanizing property and alloying rate. If the Si content is insufficient, internal oxidation may not be sufficiently generated. Therefore, the Si content is 0.01% or more, preferably 0.03% or more or 0.05% or more, and more preferably 0.10% or more or 0.30% or more. On the other hand, if the Si content is excessive, it may cause deterioration of the surface properties, leading to poor appearance. Furthermore, a Si-based oxide film (external oxide layer) may be formed on the steel sheet surface. Therefore, the Si content is 2.50% or less, preferably 2.00% or less, and more preferably 1.50% or less.
[0019] (Mn: 0.80 to 3.00%) Manganese (Mn) is an element that is effective in improving the strength of steel sheets by obtaining hard structures. Mn is also one of the elements that combine with oxygen to form internal oxides during annealing. If the Mn content is insufficient, sufficient strength may not be ensured. Therefore, the Mn content is 0.80% or more, preferably 1.00% or more, and more preferably 1.20% or more. On the other hand, if Mn is added in excess, Mn segregation may cause the metal structure to become non-uniform, which may reduce workability. Therefore, the Mn content is 3.00% or less, preferably 2.80% or less, and more preferably 2.50% or less.
[0020] (Al: 0.010 to 2.000%) Al (aluminum) is an element that acts as a deoxidizing element. If the Al content is less than 0.010%, the deoxidizing effect may not be sufficient. Therefore, the Al content is 0.010% or more, preferably 0.100% or more, and more preferably 0.200% or more. On the other hand, excessive Al content may cause a decrease in workability and deterioration of surface properties. Therefore, the Al content is 2.000% or less, preferably 1.500% or less, and more preferably 1.000% or less.
[0021] (P:0.1000% or less) P (phosphorus) is an impurity generally contained in steel. If the P content exceeds 0.1000%, weldability may be reduced. Therefore, the P content is 0.1000% or less, preferably 0.0800% or less, more preferably 0.0500% or less, and even more preferably 0.0200% or less. There is no particular lower limit for the P content, but from the viewpoint of production costs, the P content may be more than 0% or 0.0010% or more.
[0022] (S:0.1000% or less) S (sulfur) is an impurity generally contained in steel. If the S content exceeds 0.1000%, weldability may be reduced, and further, the amount of MnS precipitated may increase, which may reduce workability such as bendability. Therefore, the S content is 0.1000% or less, preferably 0.0800% or less, more preferably 0.0500% or less, and even more preferably 0.0200% or less. There is no particular lower limit for the S content, but from the viewpoint of desulfurization costs, the S content may be more than 0% or 0.0010% or more.
[0023] (N:0.0300% or less) N (nitrogen) is an impurity generally contained in steel. If the N content exceeds 0.0300%, weldability may be reduced. Therefore, the N content is 0.0300% or less, preferably 0.0200% or less, more preferably 0.0100% or less, and even more preferably 0.0050% or less. There is no particular lower limit for the N content, but from the viewpoint of production costs, the N content may be more than 0% or 0.0010% or more.
[0024] (O: 0.010% or less) O (oxygen) is an impurity generally contained in steel. If the O content exceeds 0.010%, there is a risk of deterioration in ductility. Therefore, the O content is 0.010% or less, preferably 0.008% or less, more preferably 0.006% or less, and even more preferably 0.005% or less. There is no particular lower limit for the O content, but from the viewpoint of production costs, the O content may be more than 0% or 0.001% or more.
[0025] In addition to the elements described above, the steel sheet of the present invention may contain optional elements described below as necessary.
[0026] (B: 0 to 0.0100%) Boron (B) is an element that contributes to improving hardenability and strength, and segregates at grain boundaries to strengthen the grain boundaries and improve toughness, so it may be contained as needed. Therefore, the B content is 0% or more, preferably 0.0001% or more, more preferably 0.0010% or more, and even more preferably 0.0020% or more. On the other hand, from the viewpoint of ensuring sufficient toughness and weldability, the B content is 0.0100% or less, preferably 0.0090% or less, and more preferably 0.0080% or less.
[0027] (Ti: 0 to 0.100%) Titanium (Ti) precipitates as TiC during cooling of the steel, contributing to improving strength, and may be contained as needed. Therefore, the Ti content is 0% or more, preferably 0.001% or more, more preferably 0.010% or more, and even more preferably 0.020% or more. On the other hand, excessive Ti content may cause the formation of coarse TiN, which may impair toughness, so the Ti content is 0.100% or less, preferably 0.090% or less, and more preferably 0.080% or less.
[0028] (Nb: 0 to 0.100%) Niobium (Nb) is an element that forms NbC in steel and has the effect of refining crystal grains, thereby contributing to improving strength, and may be contained as necessary. Therefore, the Nb content is 0% or more, preferably 0.001% or more, more preferably 0.010% or more, and even more preferably 0.020% or more. On the other hand, from the viewpoint of ensuring sufficient toughness and weldability, the Nb content is 0.100% or less, preferably 0.090% or less, and more preferably 0.080% or less.
[0029] (V:0~0.100%) V (vanadium) is an element that forms VC and contributes to improving strength, so it may be contained as needed. Therefore, the V content is 0% or more, preferably 0.010% or more, more preferably 0.020% or more, and even more preferably 0.030% or more. On the other hand, from the viewpoint of ensuring sufficient toughness and weldability, the V content is 0.100% or less, preferably 0.090% or less, more preferably 0.080% or less, and may be less than 0.015% or 0.010% or less.
[0030] (Cr: 0 to 1.00%) Cr (chromium) is an element that contributes to improving the strength and corrosion resistance of steel, so it may be contained as needed. Therefore, the Cr content is 0% or more, preferably 0.01% or more, more preferably 0.05% or more, and even more preferably 0.10% or more. On the other hand, if it is contained in excess, a large amount of Cr carbide is formed, which may adversely impair hardenability. Therefore, the Cr content is 1.00% or less, preferably 0.90% or less, more preferably 0.80% or less, and even more preferably 0.60% or less.
[0031] (Ni: 0 to 0.10%) Ni (nickel) is an element that contributes to improving the strength and corrosion resistance of steel, so it may be contained as needed. Therefore, the Ni content is 0% or more, preferably 0.01% or more, and more preferably 0.02% or more. On the other hand, from the viewpoint of production costs, etc., the Ni content is 0.10% or less, preferably 0.08% or less.
[0032] (Cu: 0 to 0.10%) Cu (copper) is an element that contributes to improving the strength and corrosion resistance of steel, so it may be contained as needed. Therefore, the Cu content is 0% or more, preferably 0.01% or more, and more preferably 0.02% or more. On the other hand, from the viewpoint of suppressing a decrease in toughness, cracking of the slab after casting, and a decrease in weldability, the Cu content is 0.10% or less, preferably 0.08% or less.
[0033] (Mo: 0-0.50%) Mo (molybdenum) is an element that contributes to improving the strength and corrosion resistance of steel, so it may be contained as needed. Therefore, the Mo content is 0% or more, preferably 0.01% or more, and more preferably 0.10% or more. On the other hand, from the viewpoint of ensuring sufficient toughness and weldability, the Mo content is 0.50% or less, preferably 0.40% or less, and more preferably 0.30% or less.
[0034] (W:0~0.50%) W (tungsten) is effective in increasing the strength of steel, so it may be contained as needed. Therefore, the W content is 0% or more, preferably 0.01% or more, more preferably 0.05% or more, and even more preferably 0.10% or more. On the other hand, from the viewpoint of suppressing deterioration of toughness and weldability, the W content is 0.50% or less, preferably 0.40% or less, and more preferably 0.30% or less.
[0035] (Ca: 0 to 0.100%) Ca (calcium) is an element that contributes to inclusion control, particularly to the fine dispersion of inclusions, and has the effect of increasing toughness, so it may be contained as needed. Therefore, the Ca content is 0% or more, preferably 0.001% or more, more preferably 0.005% or more, even more preferably 0.010% or more, and even more preferably 0.020% or more. On the other hand, if it is contained in excess, deterioration of surface properties may become apparent, so the Ca content is 0.100% or less, preferably 0.080% or less, and more preferably 0.050% or less.
[0036] (Mg: 0 to 0.100%) Magnesium (Mg) is an element that contributes to inclusion control, particularly to the fine dispersion of inclusions, and has the effect of increasing toughness, so it may be contained as needed. Therefore, the Mg content is 0% or more, preferably 0.001% or more, more preferably 0.003% or more, and even more preferably 0.010% or more. On the other hand, if Mg is contained in excess, deterioration of surface properties may become apparent, so the Mg content is 0.100% or less, preferably 0.090% or less, and more preferably 0.080% or less.
[0037] (Zr: 0 to 0.100%) Zr (zirconium) is an element that contributes to inclusion control, particularly to the fine dispersion of inclusions, and has the effect of increasing toughness, so it may be contained as needed. Therefore, the Zr content is 0% or more, preferably 0.001% or more, more preferably 0.005% or more, and even more preferably 0.010% or more. On the other hand, if it is contained in excess, deterioration of surface properties may become apparent, so the Zr content is 0.100% or less, preferably 0.050% or less, and more preferably 0.030% or less.
[0038] (Hf: 0 to 0.100%) Hf (hafnium) is an element that contributes to inclusion control, particularly to the fine dispersion of inclusions, and has the effect of increasing toughness, so it may be contained as needed. Therefore, the Hf content is 0% or more, preferably 0.001% or more, more preferably 0.005% or more, and even more preferably 0.010% or more. On the other hand, if it is contained in excess, deterioration of surface properties may become apparent, so the Hf content is 0.100% or less, preferably 0.050% or less, and more preferably 0.030% or less.
[0039] (REM: 0 to 0.100%) REM (rare earth elements) are elements that contribute to inclusion control, particularly to the fine dispersion of inclusions, and have the effect of increasing toughness, so they may be added as needed. Therefore, the REM content is 0% or more, preferably 0.001% or more, more preferably 0.005% or more, and even more preferably 0.010% or more. On the other hand, excessive REM content can cause noticeable deterioration in surface properties, so the REM content is 0.100% or less, preferably 0.050% or less, and more preferably 0.030% or less. REM is an abbreviation for Rare Earth Metal and refers to elements belonging to the lanthanide series. REM is usually added as misch metal.
[0040] In the present invention, the steel sheet may contain one or more of the following optional elements: B: 0.0001 to 0.0100%, Ti: 0.001 to 0.100%, Nb: 0.001 to 0.100%, Cr: 0.01 to 1.00%, Mo: 0.01 to 0.50%, and W: 0.01 to 0.50%. Alternatively or additionally, the steel sheet may contain one or more of V: 0.010 to 0.100%, Ni: 0.01 to 0.10%, Cu: 0.01 to 0.10%, Ca: 0.001 to 0.100%, Mg: 0.001 to 0.100%, Zr: 0.001 to 0.100%, Hf: 0.001 to 0.100%, and REM: 0.001 to 0.100%.
[0041] The balance of the steel sheet according to the present invention other than the above-mentioned chemical composition is Fe and impurities. Here, the impurities refer to components that are mixed in due to various factors in the manufacturing process, including raw materials such as ores and scraps, during industrial production of the steel sheet, and are permissible to be contained within a range that does not adversely affect the properties of the steel sheet according to the present invention.
[0042] The analysis of the chemical composition of the steel sheet may be carried out by any chemical analysis method known to those skilled in the art, for example, inductively coupled plasma mass spectrometry (ICP-MS). However, C and S may be measured using a combustion-infrared absorption method, and N may be measured using an inert gas fusion-thermal conductivity method. These analyses may be carried out on samples taken from the steel sheet in accordance with JIS G0417:1999.
[0043] (Thickness and width of steel plate) The present invention relates to a steel sheet having a thickness of 0.4 to 2.0 mm and a plated steel sheet using the same. More specifically, the present invention relates to a steel sheet having a thickness of 0.4 to 2.0 mm and a plated steel sheet using the same, which can be suitably used for components such as automobile doors, hoods, or roofs. From the viewpoint of ensuring strength, the thickness of the steel sheet is preferably 0.4 mm or more, more preferably 0.5 mm or more. From the viewpoint of weight reduction, a thinner thickness is preferable, and it is preferably 1.9 mm or less, more preferably 1.7 mm or less, and even more preferably 1.5 mm or less. Furthermore, since the plated steel sheet according to the present invention is particularly suitable for use in automobile components such as doors, hoods, or roofs, the width of the plated steel sheet (i.e., steel sheet) is typically 1000 mm or more, and in some cases 1500 mm or more. The thickness of the steel sheet can be measured using a micrometer or the like. When measuring the thickness of a steel sheet excluding the plating layer from a plated steel sheet, the plating layer can be removed and measured with a micrometer or the like, or it can be determined by observing the cross section. The width of the steel sheet can be measured directly with a tape measure or the like.
[0044] (internal oxide layer) The steel sheet according to the present invention has an internal oxide layer containing oxides in the surface layer (inside the steel sheet). The oxides in the internal oxide layer contain, in addition to oxygen, one or more of the elements contained in the steel sheet described above, and typically have a chemical composition containing Si, O, Fe, and Mn, and optionally Al. Typically, the oxides are Mn2SiO4, SiO2, MnO, etc. The steel sheet according to the present invention has a composition similar to that of the present invention. In the steel sheet according to the present invention, an internal oxide layer, i.e., a layer in which oxides are present inside the steel sheet, is formed, rather than an external oxide layer, i.e., an oxide layer formed in the form of a film on the surface of the steel sheet. Therefore, when a plating layer is formed, interdiffusion between the steel components (e.g., Fe) and the plating components (e.g., Zn) occurs satisfactorily, and a plating layer (e.g., a zinc-containing plating layer (zinc-based plating layer)) is satisfactorily formed on the steel sheet, resulting in the production of a plated steel sheet with excellent appearance properties (e.g., a plated steel sheet having a zinc-containing plating layer (zinc-based plated steel sheet)) without the formation of unplated areas, etc. Furthermore, when alloying treatment is performed, alloying unevenness can be suppressed, and a plated steel sheet with excellent appearance properties (e.g., a plated steel sheet having a zinc-containing plating layer (zinc-based plated steel sheet)) can be produced. Similarly, the steel sheet according to the present invention allows a chemical conversion coating to be satisfactorily formed on the steel sheet. In order to ensure plating or chemical conversion treatment properties, it is sufficient that a certain amount of the internal oxide layer is formed. However, forming a thick internal oxide layer also results in a thick decarburized layer, which reduces strength, so forming an excessive internal oxide layer is undesirable. For example, the thickness of the internal oxide layer per side may be approximately 0.01 to 0.20 times the thickness of the steel sheet. The thickness of the internal oxide layer per side of the steel sheet in the present invention is not particularly limited, but may be, for example, 4.0 μm or more, 5.0 μm or more, 6.0 μm or more, or 7.0 μm or more. The upper limit of the thickness of the internal oxide layer is not particularly limited, but may be, for example, 50.0 μm or less, 40.0 μm or less, 30.0 μm or less, or 20.0 μm or less, from the viewpoint of suppressing excessive formation of the decarburized layer.
[0045] (decarburized layer) The steel sheet according to the present invention has a decarburized layer near the surface of the steel sheet. The decarburized layer has a carbon concentration lower than that of the main portion of the steel sheet (e.g., the center portion of the sheet thickness). In the present invention, the decarburized layer refers to a region that exists from the surface of the steel sheet (in the case of a plated steel sheet, the interface between the steel sheet and the zinc-based plating layer) to the interior of the steel sheet, and has a carbon concentration lower than that of the bulk carbon concentration of the steel sheet. Furthermore, in the steel sheet according to the present invention, as described below, the thickness of the decarburized layer relative to the thickness of the steel sheet is controlled, thereby suppressing a decrease in strength of the steel sheet due to the presence of the decarburized layer and achieving high strength while ensuring plating or chemical conversion treatability. In the present invention, the thickness of the decarburized layer: A (μm) is preferably smaller from the viewpoint of ensuring higher strength. However, since the decarburized layer is formed to some extent together with the internal oxidation layer, A is not particularly limited, but may be substantially 4.0 μm or more, for example, 10.0 μm or more, 15.0 μm or more, 20.0 μm or more, 25.0 μm or more, 30.0 μm or more, or 40.0 μm or more. The upper limit of A is preferably 200.0 μm or less, more preferably 150.0 μm or less or 120.0 μm or less, and even more preferably 100.0 μm or less or 90.0 μm or less, from the viewpoint of ensuring a higher, particularly higher and more uniform strength.
[0046] (B / A: 0.01 to 0.50) In the steel sheet according to the present invention, while it is necessary to promote the formation of an internal oxidation layer to obtain high galvanizability or chemical conversion treatability, it is preferable to suppress the formation of a decarburized layer to obtain high strength. Therefore, it is preferable to reduce the thickness A (μm) of the decarburized layer per side while ensuring a certain degree of thickness B (μm) of the internal oxidation layer per side. Therefore, in the present invention, the lower limit of B / A may be set to 0.01. By setting B / A to 0.01 or more, it becomes easier to achieve both high strength and high galvanizability or chemical conversion treatability. If B / A is less than 0.01, the formation of the internal oxidation layer may be insufficient, resulting in reduced galvanizability or chemical conversion treatability, and / or the decarburized layer may become too thick, resulting in insufficient strength. The lower limit of B / A is preferably 0.03 or 0.05, more preferably 0.10 or 0.15, and even more preferably 0.20. On the other hand, since the thickness A of the decarburized layer is usually greater than the thickness B of the internal oxidation layer under conditions where internal oxidation occurs, the upper limit of B / A may be substantially 0.50. The upper limit of B / A may be less than 0.50, 0.45, 0.40, or 0.30. Note that, from the viewpoint of ensuring strength, a thinner decarburized layer is preferable, but since some thickness is formed when an internal oxide layer is formed to ensure plating ability or chemical conversion treatability, in the present invention, the thickness A of the decarburized layer per side does not become 0. Note that B means the thickness of the internal oxide layer per side of the steel sheet.
[0047] (A / t:0.01~0.15) Furthermore, in the zinc-based plated steel sheet according to the present invention, in order to suppress the formation of a decarburized layer and achieve high strength, it is preferable to reduce the thickness A (μm) of the decarburized layer per side relative to the thickness t (mm) of the steel sheet. In particular, since the steel sheet according to the present invention has a thin thickness of 0.4 to 2.0 mm (400 to 2000 μm), such control is extremely important. Therefore, in the present invention, the upper limit of A / t is set to 0.15. By keeping A / t at or below 0.15, the influence of strength reduction due to the presence of a decarburized layer can be suppressed, and a steel sheet with sufficient strength can be obtained. If A / t exceeds 0.15, the decarburized layer may become thick relative to the steel sheet thickness, resulting in insufficient strength. Generally, the smaller A / t is, the more the influence of strength reduction can be suppressed, and a steel sheet with sufficient strength can be obtained. Therefore, the upper limit of A / t may preferably be 0.14, 0.13, 0.12, 0.11, or 0.10. On the other hand, in the present invention, since it is necessary to form an internal oxide layer with a certain thickness to ensure galvanizability or chemical conversion treatability, some decarburized layer is also formed. Therefore, the lower limit of A / t is essentially 0.01. Generally, the larger A / t is, the more easily an internal oxide layer is formed together with a decarburized layer, and the more easily galvanizability or chemical conversion treatability is ensured. Therefore, the lower limit of A / t may preferably be 0.02, 0.03, 0.04, 0.05, or 0.06. Note that A refers to the thickness of the decarburized layer per side of the steel sheet. In other words, when A affects the strength of the steel sheet, both sides of the steel sheet are affected.
[0048] (Measurement of decarburized layer thickness: A (μm)) The decarburized layer thickness: A (μm) is measured as follows. The steel sheet to be measured is analyzed for its composition in the thickness direction using a glow discharge optical emission surface analyzer (GDS), and the thickness of the decarburized layer is evaluated. When the steel sheet to be measured is a plated steel sheet, the plated layer is chemically dissolved and removed using a solution such as hydrochloric acid to which an inhibitor has been added, before evaluation. Specifically, after sputtering from the surface of the steel sheet in the thickness direction for a certain period of time, the sputter depth is measured using a roughness meter, laser microscope, or other method, and the sputtering rate per hour is calculated. Here, when C (carbon) is decarburized, the C concentration profile is lower than the C signal intensity of the steel substrate near the surface of the steel sheet and gradually increases toward the interior of the sheet thickness, reaching the C signal intensity of the steel substrate. In the present invention, the position at which the C signal intensity of the steel substrate is reached is identified, and the sputtering time at this position is converted from the sputtering rate to thickness, and the decarburized layer thickness is determined. That is, in the present invention, the decarburized layer refers to the region from the surface of the steel sheet to the region where the C concentration measured with a glow discharge optical emission surface analyzer (GDS) reaches the C concentration of the steel base (in other words, the bulk C concentration of the steel sheet, also referred to as Cb). The above operation is performed at three locations, and the thicknesses of the decarburized layer measured at each location are averaged to obtain the thickness A (μm) of the decarburized layer per side in the present invention. A high-frequency type GDS should be used.
[0049] (Measurement of the thickness of the internal oxide layer: B (μm)) The thickness of the internal oxide layer: B (μm) is measured as follows. The steel sheet to be measured is analyzed for its composition in the thickness direction using a glow discharge optical emission surface analyzer (GDS), and the thickness of the internal oxide layer is evaluated. When the steel sheet to be measured is plated, the plated layer is chemically dissolved and removed using a solution such as hydrochloric acid containing an inhibitor before evaluation. Specifically, after sputtering from the steel sheet surface in the thickness direction for a certain period of time, the sputter depth is measured using a roughness meter, laser microscope, or other method, and the sputtering rate per hour is calculated. When Mn is internally oxidized, the Mn concentration profile initially decreases below the Mn signal intensity of the steel substrate, then gradually increases, reaching the Mn signal intensity of the steel substrate. In this invention, the position where the Mn signal intensity reaches 0.9 times the Mn signal intensity of the steel substrate is defined as the internal oxidation position, and the sputtering time at this internal oxidation position, calculated by converting the sputtering rate into thickness, is defined as the thickness of the internal oxide layer. In other words, in the present invention, the internal oxide layer refers to a region where the Mn concentration is 0.9 times or less that of the steel substrate as measured using a glow discharge optical emission surface analyzer (GDS). The above procedure is performed at three or more locations, and the thicknesses of the internal oxide layer measured at each location are averaged to obtain the thickness B (μm) of the internal oxide layer per side in the present invention. A high-frequency type GDS should be used.
[0050] (C concentration at 1 / 2A position is Cb / 2 or more) The decarburized layer of the steel sheet according to the present invention can achieve high strength by controlling the C concentration in the decarburized layer through management of the annealing conditions in the annealing process described below. Specifically, management of the annealing conditions allows C to diffuse from the inside of the steel into the C-deficient decarburized layer, reducing the thickness of the decarburized layer and increasing the C concentration in the decarburized layer; this phenomenon is called recarburization. Figure 1 is a diagram that schematically shows the behavior of the decarburized layer depending on the annealing conditions. The upper left of Figure 1 shows the behavior of the decarburized layer when the annealing atmosphere is a high oxygen partial pressure (high P O 2), and when oxygen (O) is supplied to the steel sheet, an internal oxide layer is formed, and CO2 and CO bonded with carbon (C) inside the steel sheet are released into the atmosphere, promoting the formation of a decarburized layer. On the other hand, in the upper right of Figure 1, the annealing atmosphere is low in oxygen partial pressure (low P O2), and since the supply of oxygen (O) is insufficient, carbon (C) diffused from the inside of the steel does not generate CO2 or CO, resulting in a reduced thickness of the decarburized layer and a higher C concentration in the decarburized layer. Therefore, in the decarburized layer of the present invention, the carbon (C) concentration at a position half the thickness A of the decarburized layer is at least half the C concentration Cb in the bulk of the steel sheet. FIG. 2 is a diagram schematically showing C profiles near the surface of a steel sheet with and without recarburization. Regardless of whether recarburization is performed or not, the C concentration decreases from the bulk C concentration Cb in the deeper part of the steel sheet toward the steel sheet surface. However, with recarburization, the thickness of the decarburized layer is reduced and the C concentration in the decarburized layer is higher than with no recarburization. Therefore, a decrease in strength near the surface of the steel sheet where the decarburized layer exists is suppressed, and the strength of the entire steel sheet can be increased. The C concentration is measured using the glow discharge optical emission surface analyzer (GDS) described above.
[0051] (tensile strength) The steel sheet according to the present invention has a tensile strength of 550 to 1500 MPa. A tensile strength of 550 MPa or more ensures sufficient strength, and when used in, for example, automotive components, weight reduction can be achieved through thinner walls. The tensile strength is preferably 580 MPa or more or 600 MPa or more, more preferably 620 MPa or more, even more preferably 650 MPa or more, and most preferably 700 MPa or more. On the other hand, since a high tensile strength may result in a decrease in workability, the tensile strength is set to 1500 MPa or less, and may also be 1400 MPa or less or 1300 MPa or less. The tensile test is performed according to the method specified in JIS-Z2241:2011 using a JIS No. 5 tensile test piece, and the crosshead test speed for the tensile test is 30 mm / min.
[0052] (Fatigue properties) The steel sheet according to the present invention is inhibited from excessive decarburization, and can also achieve high fatigue properties. The fatigue properties are evaluated based on the fatigue limit ratio (= fatigue strength / tensile strength) obtained by performing a plane bending fatigue test using the steel sheet to be measured in accordance with JIS Z 2275:1978. A fatigue limit ratio of 0.40 or more ensures a certain level of strength even when repeatedly subjected to loads over a long period of time, and can be used as a member suitable for fields requiring long-term reliability, such as automotive components.
[0053] <Plated steel sheet with a zinc-containing coating layer> Hereinafter, a plated steel sheet having a zinc-containing plating layer according to one embodiment of the present invention (hereinafter sometimes referred to as a "zinc-based plated steel sheet" or simply a "plated steel sheet") will be described in detail.
[0054] The plated steel sheet according to the present invention comprises a steel sheet and a zinc-containing plating layer (hereinafter, sometimes referred to as a "zinc-based plating layer" or simply a "plating layer") formed on at least one side of the steel sheet. Therefore, the zinc-based plating layer may be formed on one side or both sides of the steel sheet. Furthermore, in the present invention, it is sufficient that the zinc-based plating layer is formed on the steel sheet, and another plating layer may be provided between the steel sheet and the zinc-based plating layer. As described above, the zinc-based plating layer refers to a plating layer containing zinc, such as a hot-dip galvanized layer and a galvannealed hot-dip galvanized layer.
[0055] [Plating layer containing zinc (zinc-based plating layer)] The zinc-based plating layer in the present invention is formed on at least one surface of a steel sheet. The term "zinc-based plating layer" typically refers to a plating layer whose main component (i.e., more than 50%) is Zn, but also encompasses a layer in which the components in the steel are diffused by heat treatment (e.g., alloying treatment) after plating, resulting in a Zn content of 50% or less. The zinc-based plating layer can be formed by various methods, but hot-dip galvanizing is preferred. Furthermore, from the viewpoint of improving weldability and / or paintability, it is more preferred to perform an alloying treatment after hot-dip galvanizing. Therefore, the zinc-based plated steel sheet according to the present invention is preferably a hot-dip galvanized steel sheet, and more preferably an alloyed hot-dip galvanized steel sheet. In the present invention, since an internal oxide layer, rather than an external oxide layer, is formed on the surface layer of the steel sheet, the zinc-based plating layer can be formed, for example, with minimal unplated areas, and, when alloying treatment is performed, with minimal alloying unevenness.
[0056] (Composition of zinc-containing plating layer (zinc-based plating layer)) A preferred composition of the zinc-based plating layer of the present invention will be described below. However, the composition of the zinc-based plating layer is not particularly limited as long as it contains Zn. Typically, the zinc-based plating layer contains 50 mass% or more of Zn. Hereinafter, "%" regarding the content of an element means "mass%" unless otherwise specified. In the numerical range of the composition, a numerical range expressed using "to" means a range that includes the numerical values before and after "to" as the lower and upper limits, unless otherwise specified.
[0057] (Fe: 0-15%) When a Zn-containing coating layer is formed on a steel sheet and then the coated steel sheet is heat-treated, Fe can be contained in the coating layer by diffusing from the steel sheet. Therefore, the lower limit of the Fe content may be 0%. When an alloying treatment is performed to form a galvannealed coating layer, Fe in the steel diffuses into the coating layer. In this case, the lower limit of the Fe content may be 1%, preferably 3%, and more preferably 5%. On the other hand, the upper limit of the Fe content may be 15%, preferably 12%, and more preferably 10%. Therefore, for example, when the zinc-based coating layer is a galvannealed coating layer, the Fe content in the coating layer may be 5 to 15%.
[0058] (Al: 0-30%) Al is an element that improves the corrosion resistance of a coating layer when contained together with Zn or alloyed with Zn, and therefore may be contained as necessary. Therefore, for example, when forming a coating layer by electrogalvanization, the Al content may be 0%. To form a coating layer containing Zn and Al, the Al content is preferably 0.01% or more, for example, 0.1% or more, or 0.5% or more. On the other hand, since the effect of improving corrosion resistance saturates at an Al content exceeding 30%, the Al content is preferably 30% or less, for example, 20% or less, 10% or less, 5% or less, 1% or less, or 0.5% or less. Even if the coating bath does not contain Al, when an alloying treatment is performed to form a galvannealed layer, Al in the steel diffuses into the coating layer. Therefore, in this case, the Al content may be, for example, 0.01 to 0.5%.
[0059] The basic chemical composition of the zinc-based coating layer is as described above. Furthermore, the zinc-based coating layer, particularly the galvannealed coating layer, may optionally contain elements contained in the steel described above or other elements. These optional elements are not particularly limited, but from the viewpoint of fully exerting the effects and functions of the basic components constituting the coating layer, the total content is preferably 5% or less, and more preferably 2% or less.
[0060] In the zinc-based plating layer of this embodiment, the remainder other than the above-mentioned component composition consists of Zn and impurities. Here, the impurities in the zinc-based plating layer refer to components that are mixed in due to various factors in the manufacturing process, including raw materials, when the plating layer is produced, and are not components that are intentionally added to the plating layer. The plating layer may contain trace amounts of elements other than the basic components and optional components described above as impurities, within a range that does not impair the effects of the present invention.
[0061] (Amount attached per side) The coating weight of the zinc-based plating layer in this embodiment is not particularly limited, but is, for example, 10 to 100 g / m 2 The plating weight per side has a large effect on corrosion resistance. From the viewpoint of corrosion resistance, the lower limit of the coating amount is preferably 15 g / m 2 , more preferably 20g / m 2 , and more preferably 30 g / m 2 On the other hand, the upper limit of the amount of coating per side is preferably 90 g / m from the viewpoints of formability, weldability, and economy. 2 , more preferably 70g / m 2 , and more preferably 60 g / m 2 It would be good if that were the case.
[0062] The chemical composition and coating weight of the zinc-based plating layer can be determined by inductively coupled plasma (ICP) atomic emission spectroscopy. Specifically, the chemical composition and coating weight of the zinc-based plating layer can be determined by dissolving only the zinc-based plating layer from a zinc-based plated steel sheet having the zinc-based plating layer and performing ICP analysis on the resulting solution. Note that the coating weight in the present invention is the amount per side, and therefore, when zinc-based plating layers are formed on both sides of the steel sheet, the coating weights on both sides are considered to be the same in the calculation.
[0063] <Steel sheet manufacturing method> A preferred method for producing a steel plate according to the present invention will be described below. The following description is intended to exemplify a characteristic method for producing a steel plate according to the present invention, but is not intended to limit the steel plate to one produced by the production method described below.
[0064] [Steel plate manufacturing] The steel sheet in the present invention can be obtained by carrying out a casting process in which molten steel having an adjusted chemical composition is cast to form a steel slab, a hot rolling process in which the steel slab is hot rolled to obtain a hot-rolled steel sheet, a pickling process in which surface oxides (scale) and preferably an internal oxide layer formed in the hot rolling process are removed, a cold rolling process in which cold rolling is carried out to obtain a cold-rolled steel sheet, a grinding process in which the cold-rolled steel sheet is ground, and an annealing process in which the cold-rolled steel sheet is annealed.
[0065] (Casting process) The conditions for the casting process are not particularly limited. For example, after melting in a blast furnace or electric furnace, various secondary smelting processes may be carried out, and then casting may be carried out by a method such as ordinary continuous casting, casting by an ingot method, or thin slab casting. Scrap may also be used as the raw material, and the amount of scrap used is adjusted so that the content of each element in the resulting steel sheet satisfies the above-mentioned range.
[0066] (Hot rolling process) The cast steel slabs can be hot-rolled to obtain hot-rolled steel sheets. The hot-rolling process is carried out by reheating the cast steel slabs directly or after cooling them once, followed by hot-rolling. When reheating is carried out, the heating temperature of the steel slabs may be, for example, 1100°C to 1250°C. The hot-rolling process usually involves rough rolling and finish rolling. The rolling temperature and reduction ratio for each rolling step may be appropriately determined depending on the desired metal structure and plate thickness. For example, the finish-rolling temperature may be 800°C to 1050°C, and the finish-rolling reduction ratio may be 50% to 80%. In the present invention, the steel plate is ultimately thinned to a thickness of 0.4 to 2.0 mm, which places a heavy load on the cold-rolling process. For this reason, it is preferable to set the hot-rolling reduction ratio higher to make the plate thickness as small as possible during hot rolling; specifically, it is preferable to make the plate thickness after hot rolling 2.5 mm or less. However, since the thickness of the internal oxidation layer and decarburization layer formed near the surface of a steel sheet during hot rolling is almost constant, if the sheet thickness after hot rolling is reduced, the influence of internal oxidation and decarburization during hot rolling becomes relatively large. On the other hand, for example, if the internal oxidation layer and decarburization layer formed during the hot rolling process are not sufficiently removed even in the subsequent pickling process and grinding process and a relatively large amount remains, the internal oxidation layer and decarburization layer in the annealing process will not be formed well or will be formed unevenly, which is undesirable. Therefore, in order to suppress the formation of the internal oxidation layer and decarburization layer in the hot rolling process and reduce the influence of internal oxidation and decarburization during hot rolling, the coiling temperature is preferably set to 600°C or less, and more preferably to 550°C or less.
[0067] (pickling process) A pickling process is carried out to remove surface scale formed on the surface of a hot-rolled steel sheet during the hot rolling process. A hydrochloric acid-based solution is usually used in the pickling process, and similar conditions can be applied to the present invention. It is also desirable that the pickling process also removes the internal oxide layer formed during the hot rolling process.
[0068] (cold rolling process) A cold-rolled steel sheet can be obtained by cold-rolling a hot-rolled steel sheet. The reduction in cold rolling may be appropriately determined depending on the desired metal structure and plate thickness, and may be, for example, 30 to 90%. In the present invention, the reduction in the hot rolling step and the reduction in the cold rolling step may be appropriately adjusted to obtain the final desired plate thickness. However, since the plate thickness of the steel sheet in the present invention is thin, at 0.4 to 2.0 mm, it is preferable to set the reduction in hot rolling larger than the reduction in cold rolling, for example, to prevent breakage in the cold rolling step.
[0069] (Grinding process) A grinding step is preferably performed to remove foreign matter remaining on the steel sheet surface, to remove scale and internal oxide layers formed on the surface and surface layer of the steel sheet during hot rolling, to uniformize the surface properties, and to promote the formation of an internal oxide layer in the subsequent annealing step. More specifically, the grinding step sufficiently removes the internal oxide layer formed during hot rolling, and also imparts strain to the surface of the steel sheet, thereby promoting the diffusion of oxygen from the surface to the interior of the steel sheet in the annealing atmosphere and activating reactions with the oxygen, thereby promoting the formation of an internal oxide layer in the annealing step. The grinding step is not particularly limited, but can be performed, for example, by grinding the surface of the steel sheet using heavy-duty grinding brushes. The desired surface roughness and grinding amount can be achieved by appropriately selecting the number, rotation speed, material, etc. of the heavy-duty grinding brushes. The total grinding amount of all heavy-duty grinding brushes is 2.0 g / m per side. 2 That's all The grinding process can also be performed before the annealing and plating lines described below.
[0070] The shape of the steel sheet surface may be adjusted by a grinding process. Typically, 1.80≧L / L It may also be 0≧1.01. FIG. 3 is a schematic diagram for explaining L and L0. When observing the cross section of a steel sheet, the length of the contour line (surface contour line) that defines the surface of the steel sheet can be confirmed. Roughly speaking, the length of the contour line before the grinding process is L, and the length of the contour line after the grinding process is L0. In other words, L / L0 can also be said to be a measure of the uneven shape of the steel sheet surface. Here, the method for measuring L and L0 will be explained. A steel plate is cut at the center in the plate width direction so that a cross section including the plate thickness direction and rolling direction of the steel plate can be observed. As shown in Figure 3, the field of view for observing the cross section of the steel plate is rectangular, and the field of view is adjusted so that the contour line (sometimes referred to as the surface contour line) defining the surface of the steel plate falls within the field of view. In other words, the field of view is adjusted so that the surface contour line does not extend beyond the field of view (rectangle), intersects with the left and right sides of the field of view (rectangle), but does not contact the top and bottom sides of the field of view (rectangle). L refers to the length of the contour line (surface contour line) defining the surface of the steel plate in the field of view for cross-section observation. L0 refers to the length in the rolling direction of the steel plate in the field of view for cross-section observation, and roughly corresponds to the distance between the left and right sides of the field of view (rectangle). Cross-sections are observed at three or more locations on the steel plate, and L / L0 determined for each cross section (field of view) is averaged. By doing so, L / L0 in this embodiment is obtained. For cross-sectional observation, a scanning electron microscope (S EM) is used. Without wishing to be bound by any particular theory, L / L0 is the relative surface area of the steel sheet. It is thought that this is related to the actual size of the surface. L is the length of the surface contour after the grinding process, and L0 corresponds to the length of the surface contour of the steel sheet before the grinding process. The grinding process scrapes the steel sheet surface, increasing the unevenness of the surface contour, lengthening the surface contour, and increasing the surface area of the steel sheet. In other words, the reaction interface on the steel sheet surface increases, promoting the formation of an internal oxidation layer and a decarburized layer in the subsequent annealing process. When L / L0 is less than 1.01, the promotion of the formation of an internal oxidation layer and a decarburized layer is hindered. In this respect, the larger the L / L0, the better. 0 may be 1.03 or more, 1.04 or more, 1.05 or more, 1.06 or more, 1.07 or more, 1.08 or more, 1.09 or more, 1.10 or more, 1.11 or more, 1.12 or more, 1.15 or more, or 1.18 or more. On the other hand, if L / L0 is too large, the formation of a decarburized layer may proceed excessively, preventing sufficient recarburization and affecting the strength of the steel sheet, so the upper limit of L / L0 may be set to 1.80. In this regard, the smaller L / L0 is, the more preferable, and L / L0 may be 1.70 or less, 1.60 or less, 1.50 or less, 1.48 or less, 1.44 or less, 1.40 or less, 1.35 or less, or 1.30 or less. The annealing process is carried out in an annealing furnace, and the steel sheet surface is generally smoothed by a hearth roll provided at the outlet of the annealing furnace. Therefore, after the annealing process, the L / L0 obtained in the grinding process cannot be confirmed.
[0071] (Annealing process) Next, the obtained cold-rolled steel sheet is annealed. Annealing is preferably performed at a temperature of 750°C or higher, more preferably 780°C or higher. The upper limit of the annealing temperature is preferably 920°C or lower, from the viewpoint of suppressing the formation of an outer oxide layer. The rate of temperature rise to the annealing temperature is not particularly limited, and may be, for example, 1 to 10°C / second. Furthermore, from the viewpoint of sufficiently forming an inner oxide layer and suppressing the formation of an outer oxide layer, the holding time at the annealing temperature may be about 5 to 300 seconds, preferably 50 to 100 seconds. If the annealing time is too long, the decarburized layer may be formed in excess relative to the inner oxide layer, resulting in a high A / t value and insufficient strength being obtained. The atmosphere in the annealing process is an important factor in controlling the inner oxide layer and decarburized layer. The temperature rise process of annealing is preferably performed under a high oxygen partial pressure (high P O2 In other words, the high oxygen potential is used, and then the holding step (also called the soaking step) is performed at a low oxygen partial pressure (low P O2 In other words, the oxygen potential is low. O2 Alternatively, the oxygen potential can be controlled by controlling the dew point temperature of the combustion atmosphere, controlling the hydrogen concentration, or a combination of these. O2 Alternatively, by controlling the oxygen potential, oxygen (O) is supplied to the steel sheet, and an internal oxide layer is formed. In addition, CO2 and CO bonded with carbon (C) inside the steel sheet are released into the atmosphere, accelerating the formation of a decarburized layer. The oxygen potential is controlled by the water vapor partial pressure P H2O The hydrogen partial pressure PH2 The common logarithm of the value divided by log(P H2O / P H2 ) and in order to obtain the internal oxidation layer and decarburized layer of the present invention, for example, the values calculated by the above formula can be controlled to -3.5 to -2.2 as the high oxygen potential in the heating step and -5.5 to -3.6 as the low oxygen potential in the holding step. If the oxygen potential in the heating step is less than -3.5, there is a risk that the internal oxidation layer and decarburized layer will not be formed on the surface of the steel sheet. On the other hand, if the oxygen potential in the heating step is more than -2.2, there is a risk that decarburization will proceed excessively, resulting in a decrease in the strength of the steel sheet. Note that, from the viewpoint of forming the desired internal oxidation layer and decarburized layer, the range of the oxygen potential in the heating step can be arbitrarily selected within the above range. That is, the upper and lower limits of the range of the oxygen potential in the heating step may be appropriately selected from the range of -3.5 to -2.2, respectively. Next, the oxygen potential in the holding step is lower than the oxygen potential in the heating step and is −3.6 or less. When the oxygen potential in the holding step is −3.6 or less, the decarburized layer formed in the heating step can be reduced in the holding step. This is thought to be because, although carbon diffusion from the inside of the steel sheet occurs during the holding step, the oxygen potential of the atmosphere is low, i.e., oxygen (O) is not sufficiently supplied from the atmosphere. Therefore, carbon (C) diffused inside the steel does not generate CO or CO, and the thickness of the decarburized layer formed in the heating step is reduced and the C concentration in the decarburized layer is increased (i.e., recarburization). The lower limit of the oxygen potential in the holding step is not particularly limited, but is set to −5.5 or more because an excessively low oxygen potential is thought to saturate the recarburization effect and from the viewpoint of production costs. Note that the range of the oxygen potential in the holding step can be arbitrarily selected within the above range from the viewpoint of obtaining the desired decarburized layer thickness and recarburization. That is, the upper and lower limits of the range of the oxygen potential in the holding step may be appropriately selected from the range of −5.5 to −3.6, respectively. Methods for adjusting the oxygen potential include using a combustion atmosphere, adding a small amount of oxygen, increasing the dew point, or a combination of these. When controlling the dew point, the dew point in the temperature-raising step is preferably -15 to 15°C, and preferably -10°C or higher. If the dew point in the temperature-raising step is too low, an internal oxide layer and a decarburized layer may not be formed on the surface of the steel sheet. If the dew point in the temperature-raising step is higher than 15°C, decarburization may proceed excessively, resulting in a decrease in the strength of the steel sheet. Subsequently, the dew point in the holding step is preferably -30°C or lower, and preferably -40°C or lower. If the dew point in the holding step is -30°C or lower, the decarburized layer formed in the temperature-raising step can be reduced in the holding step. There is no particular lower limit for the dew point in the holding step; however, since an excessively low dew point is thought to saturate the recarburization effect, and from the viewpoint of production costs, the dew point may be -80°C, preferably -60°C, and more preferably -50°C. The annealing is preferably performed in a reducing atmosphere, more preferably a reducing atmosphere containing nitrogen and hydrogen, for example, a reducing atmosphere containing 5% or less hydrogen (for example, 5% hydrogen and 95% nitrogen). The annealing step can be performed consecutively with the formation of a zinc-containing plating layer (zinc-based plating layer) described below.
[0072] [Formation of zinc-containing plating layer (zinc-based plating layer)] The zinc-based coating layer can be formed by either electrogalvanizing or hot-dip galvanizing, but is preferably formed by hot-dip galvanizing. In the case of hot-dip galvanizing, the coating conditions can be appropriately set taking into consideration the desired component composition, thickness, and coating weight of the coating layer. For example, cooling after annealing can be stopped at 430 to 500°C, and the cold-rolled steel sheet can be immersed in a coating bath of hot-dip galvanizing for 1 to 5 seconds. The coating weight can be, for example, 10 to 100 g / m 2 That's fine.
[0073] After the formation of the zinc-based plating layer, it is preferable to carry out an alloying treatment to improve weldability and / or paintability. The alloying treatment conditions may be within the usual range, for example, the alloying treatment may be carried out at a temperature of 450 to 600°C.
[0074] [Chemical conversion treatment] In one embodiment, chemical conversion treatment may be performed instead of plating. The steel sheet according to the present invention has an internal oxide layer, which not only provides excellent plating properties but also excellent chemical conversion treatability. The chemical conversion treatment may be performed using a general method, such as phosphate treatment, oxalate treatment, chromate treatment, black oxide treatment, passivation treatment, etc. [Example]
[0075] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to these examples in any way.
[0076] (Example A: Steel plate manufacturing) In this example, steel sheets with thicknesses of 0.4 to 2.0 mm (400 to 2000 μm) and widths of 1000 mm were manufactured. Some steel sheets were zinc-plated to produce zinc-plated steel sheets, and some other steel sheets were chemically treated to produce chemically treated steel sheets. First, molten steel with an adjusted chemical composition was cast to form a billet. The billet was cooled, reheated, and hot-rolled at a reduction of 50% or more, and the resulting hot-rolled steel sheet was coiled. In all examples, the billet was reheated to a heating temperature of 1200°C and a finish rolling temperature of 950°C. Then, the steel sheet was pickled using hydrochloric acid to remove surface scale until it reached 0.2 μm or less. After pickling, the steel sheet was cold-rolled. Samples were taken from each cold-rolled steel sheet according to JIS G0417:1999, and the steel sheet's chemical composition was analyzed. The thickness of each cold-rolled steel sheet was measured at five random locations using a micrometer, and the measured thicknesses were averaged to calculate the thickness t. The chemical composition and thickness of each steel sheet are shown in Table 1. In all examples, the chemical composition of the steel sheet contained 0.010% or less of O.
[0077] Next, the surface of each cold-rolled steel sheet was ground using a heavy-duty abrasive brush, and then annealed and plated or chemically treated. The total amount of grinding by all the heavy-duty abrasive brushes was 2.0 g / m per side of the steel sheet. 2 In Table 1, coating type A is "galvannealed steel Plate type B means "hot-dip Zn-Al plated steel sheet (GA)", plate type B means "hot-dip Zn-Al plated steel sheet (GI)", and plate type C means "hot-dip Zn-Al-Mg plated steel sheet". For chemical conversion treatment, a zinc phosphate coating was formed. The annealing temperature was in the range of 750 to 920°C, the heating rate was 1 to 10°C / sec, and the holding time was 5 to 300 sec. The oxygen potential during the heating and holding steps was as shown in Table 1. The annealing atmosphere was a reducing atmosphere of 4% hydrogen and 96% nitrogen, and the oxygen potential was calculated using the formula: log(P H2O / P H2 The oxygen potential was controlled by the following equation. In this case, cooling after annealing was stopped at 480°C, and the cold-rolled steel sheet was immersed in a hot-dip zinc plating bath for 3 seconds, with the coating weight set at 50 g / m² per side. 2 The plating layer was adjusted to about In all examples having the above formula, the plating layer contained Fe: 5 to 15% and Al: 0.01 to 0.5%.
[0078] (Measurement of decarburized layer thickness A) The composition of each steel sheet in the thickness direction was analyzed using a high-frequency type GDS, and the thickness of the decarburized layer was evaluated. For plated steel sheets, the plating layer was chemically dissolved and removed using a hydrochloric acid solution containing an inhibitor, and then the thickness of the decarburized layer was evaluated. Specifically, the sputtering depth after a certain period of sputtering from the surface of the steel sheet in the thickness direction was measured using a laser microscope, and the sputtering rate per hour was calculated. The position where the C signal intensity of the steel substrate was reached was identified, The sputtering time required to reach this position was converted into a depth using the sputtering rate, and this was taken as the thickness of the decarburized layer. This procedure was repeated at three locations, and the thicknesses measured at each location were averaged to obtain the thickness A (μm) of the decarburized layer (per side). Using a similar GDS analysis method but using Mn and other target elements, the presence of an internal oxide layer was confirmed in all examples except for No. 17.
[0079] (Evaluation of tensile strength) The tensile test was performed using a JIS No. 5 tensile test piece according to the method specified in JIS-Z2241:2011. The crosshead test speed for the tensile test was 30 mm / min. The results are shown in Table 1.
[0080] (Evaluation of fatigue properties) Fatigue properties were evaluated by conducting a plane bending fatigue test in accordance with JIS Z 2275:1978 to determine the fatigue limit ratio (= fatigue strength / tensile strength). A fatigue limit ratio of 0.45 or more was rated AA, 0.40 or more was rated A, and less than 0.40 was rated B. AA and A ratings were considered to have excellent fatigue properties and were considered pass, while B rating was considered fail. The results are shown in Table 1.
[0081] (Evaluation of plating properties) The evaluation of platability was carried out by evaluating the appearance of the plated steel sheets of each example. Specifically, the appearance after plating was visually observed, and those with no visible unplated areas were rated A, and those with visible unplated areas were rated B. Evaluation A was considered pass, and evaluation B was considered fail. The results are shown in Table 1.
[0082] (Evaluation of chemical conversion treatment properties) The evaluation method for chemical conversion treatability is as follows. The chemical conversion treatment solution used was a chemical conversion treatment solution (Palbond L3065 (registered trademark)) manufactured by Nihon Parkerizing Co., Ltd., and the chemical conversion treatment was carried out in the following manner: After degreasing with Fine Cleaner (registered trademark) degreasing solution manufactured by Nihon Parkerizing Co., Ltd., the plate was washed with water, and then the surface was conditioned with a surface conditioning solution (PL-XG) manufactured by Nihon Parkerizing Co., Ltd., and the chemical conversion treatment solution (Palbond L3065 ) for 120 seconds, then rinsed with water and dried with warm air. The conversion coating was observed at 500x magnification in 5 random fields using a scanning electron microscope (SEM), and the percentage of the area that was left uncovered was measured using image processing. The percentage of the area that was left uncovered was evaluated as follows: A and B are acceptable. A: 0% (no schedule) B: 5% or less C: More than 5% and less than 10% D: Over 10% The results obtained are shown in Table 1.
[0083] In this example, steel sheets with a tensile strength of 550 to 1500 MPa, a fatigue property (fatigue limit ratio) rating of A, and a platability rating of A or a chemical conversion treatability rating of A or B were evaluated as having sufficient strength and platability or chemical conversion treatability.
[0084] [Table 1-1] [Table 1-2]
[0085] Referring to Table 1, in Example No. 16, the excessive C content resulted in an excessively high strength of the steel sheet. In Example No. 1, the low C content resulted in a low tensile strength. In Example No. 10, the low Si content resulted in a low tensile strength. In Example No. 11, the excessive Si content caused a deterioration in surface quality, resulting in a deterioration in galvanizability. In Example No. 12, the low Mn content resulted in a low tensile strength. In Example No. 13, the excessive Mn content resulted in an excessively high strength of the steel sheet. In Example No. 14, the low Al content resulted in a low tensile strength. In Example No. 15, the excessive Al content caused a deterioration in surface quality, resulting in a deterioration in phosphatability. In Example No. 17, the low oxygen potential during the heating process during annealing prevented the formation of an internal oxide layer and a decarburized layer, resulting in insufficient galvanizability. In Example No. 9, the high oxygen potential during the heating process caused a decarburized layer to form in excess of the internal oxide layer, resulting in a high A / t ratio and, as a result, a deterioration in fatigue properties (fatigue limit ratio). In Example 8, the high oxygen potential during the soaking process prevented the decarburization of the decarburized layer, resulting in poor fatigue properties (fatigue limit ratio). In Example 36, the roughness (L / L0) of the steel sheet surface due to brush grinding was not within the appropriate range, resulting in excessive formation of the decarburized layer during annealing, increasing A / t and resulting in poor fatigue properties (fatigue limit ratio). In Example 37, brush grinding was not performed, resulting in poor formation of the internal oxide layer and decarburized layer, and insufficient galvanizability. In contrast, in all examples according to the present invention, adequate strength and galvanizability or phosphatability were achieved by appropriately controlling the steel sheet composition, the presence of the internal oxide layer on the steel sheet surface, the ratio of the decarburized layer thickness to the steel sheet thickness (A / t), and the C concentration in the decarburized layer. [Industrial Applicability]
[0086] The steel sheet according to the present invention has sufficient platability or chemical conversion treatability and strength, and therefore it is possible to provide high-strength steel sheets with excellent appearance properties and plated steel sheets using the same, and the steel sheets and plated steel sheets can be suitably used for applications such as automobiles, home appliances, and building materials, particularly for automobiles. Therefore, the present invention can be said to be an invention of extremely high industrial value.
Claims
1. In mass%, C: 0.05-0.30%, Si: 0.01-2.50%, Mn: 0.80-3.00%, Al: 0.010-2.000%, P: 0.1000% or less, S: 0.1000% or less, N: 0.0300% or less, O: 0.010% or less, B: 0 to 0.0100%, Ti: 0 to 0.100%, Nb: 0 to 0.100%, V: 0-0.100%, Cr: 0-1.00%, Ni: 0 to 0.10%, Cu: 0 to 0.10%, Mo: 0 to 0.50%, W: 0-0.50%, Ca: 0-0.100%, Mg: 0-0.100%, Zr: 0 to 0.100%, Hf: 0 to 0.100%, and REM: 0~0.100% and the balance being Fe and impurities, The steel plate has a thickness of 0.4 to 2.0 mm, The tensile strength is 550 to 1500 MPa, It includes an internal oxidation layer and a decarburized layer, When the thickness of the decarburized layer per one side of the steel plate is A (μm), the bulk C concentration of the steel plate is Cb (%), and the plate thickness of the steel plate is t (mm), 0.01≦A / t≦0.15, A steel plate having a C concentration at the 1 / 2A position of Cb / 2 or more.
2. The A / t is The steel sheet according to claim 1, wherein 0.04≦A / t≦0.
15.
3. A plated steel sheet comprising the steel sheet according to claim 1 or 2 and a zinc-containing plating layer on the steel sheet.
4. The plated steel sheet is a galvannealed steel sheet, the plating layer has a chemical composition containing 5 to 15% Fe and 0.01 to 0.5% Al, with the balance being Zn and impurities, and the coating weight of the plating layer per side is 10 to 100 g / m 2 The method according to claim 3, Plated steel.
Citation Information
Patent Citations
Hot-dip galvannealed steel sheet and method for manufacturing the same
JP2010065269A
High-strength steel sheet and manufacturing method therefor
JP2012072452A
Hot dip galvannealed steel sheet excellent in productivity and press formability and production method thereof
JP2014058741A
High-strength hot-dip galvanized steel sheet and process for producing same
WO2013157222A1
Alloyed hot-dip zinc-coated steel sheet and method for producing same
WO2014054141A1