Plated steel sheet

The Al-Zn-Si-based coating layer with controlled Fe-Al phase morphology addresses the corrosion resistance issue in plated steel sheets during hot stamping by suppressing Fe-Al-Si phase formation and enhancing Zn solid solution, thereby improving the sheet's corrosion resistance.

JP7828026B2Active Publication Date: 2026-03-11NIPPON STEEL CORPORATION
View PDF 10 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-09-13
Publication Date
2026-03-11

AI Technical Summary

Technical Problem

Plated steel sheets containing a large amount of Al in the plating layer experience a decrease in corrosion resistance during hot stamping due to alloying with the base steel, leading to issues like galvanic corrosion and reduced sacrificial protection.

Method used

A plated steel sheet with a specific Al-Zn-Si-based coating layer, where the chemical composition and morphology of the Fe-Al phase are controlled to suppress the formation of Fe-Al-Si phases and enhance Zn solid solution in the Fe2Al5 phase, ensuring improved corrosion resistance.

Benefits of technology

The solution significantly enhances the corrosion resistance of the plated steel sheet even after hot stamping by suppressing Fe-Al-Si phase formation and promoting Zn solid solution, resulting in improved sacrificial protection.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007828026000003
    Figure 0007828026000003
  • Figure 0007828026000001
    Figure 0007828026000001
  • Figure 0007828026000002
    Figure 0007828026000002
Patent Text Reader

Abstract

Provided is a plated steel sheet characterized by comprising a base material steel sheet and a plating layer formed on surfaces of the base material steel sheet. The plated steel sheet is characterized in that: the plating layer has a prescribed chemical composition, and includes an Fe-Al phase located at the interface with respect to the base material steel sheet, and a main layer located on the Fe-Al phase; in a cross section of the plating layer, the contact length L between the Fe-Al phase and the main layer and the length L0 of the plating layer satisfy L / L0≤4.0; the Fe-Al phase contains 3-15% of Si and 2-15% of Zn in mass%; and the adhered amount of the plating layer per surface is 20 g / m2 or more.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to a plated steel sheet. [Background technology]

[0002] Hot stamping is known as a technique for press-forming difficult-to-form materials such as high-strength steel sheets. Hot stamping is a hot forming technique in which the material to be formed is heated before being formed. With this technique, the steel is soft and has good formability at the time of forming because the material is heated before being formed. Therefore, even high-strength steel can be formed with high precision into complex shapes. In addition, since the steel is quenched at the same time as forming using a press die, the steel after forming is known to have sufficient strength.

[0003] In this regard, various studies have been conducted on plated steel sheets for hot stamping.

[0004] For example, Patent Document 1 describes a steel sheet coated with a metal coating containing 2.0 to 24.0 wt.% zinc, 7.1 to 12.0 wt.% silicon, optionally 1.1 to 8.0 wt.% magnesium, and optionally an additional element selected from Pb, Ni, Zr, or Hf, wherein the weight content of each additional element is less than 0.3 wt.%, and the balance is aluminum and any unavoidable impurities and residual elements, and wherein the Al / Zn ratio exceeds 2.9. Patent Document 1 also teaches that metal coatings with an Al / Zn ratio exceeding 2.9 have high sacrificial protection.

[0005] Patent Document 2 describes an aluminum alloy plated steel sheet including a base steel sheet and an aluminum alloy plated layer formed on the base steel sheet, the aluminum alloy plated layer containing, by weight, 21 to 35% Zn, 1 to 6.9% Si, 2 to 12% Fe, the balance being Al and other unavoidable impurities. Patent Document 2 also teaches that weldability and corrosion resistance can be ensured by controlling the Al / (Zn+Si) ratio of the aluminum alloy plated layer to 1.3 to 2.6. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Special Publication No. 2018-528324 [Patent Document 2] Special Publication No. 2022-550142 Summary of the Invention [Problem to be solved by the invention]

[0007] For example, when a plated steel sheet as described in Patent Documents 1 and 2, more specifically a plated steel sheet containing a relatively large amount of Al as a component in the plated layer, is used in hot stamping, the plated layer and the base steel (base steel sheet) may be alloyed during heating in the hot stamping, resulting in a decrease in corrosion resistance.

[0008] Therefore, an object of the present invention is to provide a plated steel sheet having a plating layer containing Al, which can exhibit improved corrosion resistance even when applied to hot stamping. [Means for solving the problem]

[0009] As a result of investigations conducted by the present inventors to achieve the above object, they found that excellent corrosion resistance can be achieved even after application to hot stamping by forming a coating layer made of an Al-Zn-Si-based coating in a coating weight equal to or greater than a predetermined amount and by appropriately controlling the chemical composition and morphology of the Fe-Al phase in the coating layer formed at the interface with the base steel sheet, and thus completed the present invention.

[0010] The present invention, which has achieved the above object, is as follows. (1) A steel plate having a base steel sheet and a plating layer formed on the surface of the base steel sheet, The chemical composition of the plating layer is, in mass%, Zn: 5.0 to 40.0%, Si: 0.1 to 15.0%, Fe: 0.5 to 25.0% Ni: 0 to 0.500% Mg: 0~3.000%, Ca: 0~3.000%, Sb: 0 to 0.500% Pb: 0~0.500%, Cu: 0-1.000%, Sn: 0 to 1.000%, Ti: 0 to 1.000%, Cr: 0 to 1.000%, Nb: 0 to 1.000%, Zr: 0 to 1.000%, Mn: 0 to 1.000%, Mo: 0 to 1.000%, Ag: 0~1.000%, Li: 0~1.000%, La: 0 to 0.500%, Ce: 0 to 0.500% B: 0~0.500%, Y: 0~0.500%, Sr: 0 to 0.500%, In: 0~0.500%, Co: 0 to 0.500%, Bi: 0 to 0.500% P: 0~0.500%, W: 0 to 0.500%, and The balance is Al and impurities, and The total content of Ni, Mg, Ca, Sb, Pb, Cu, Sn, Ti, Cr, Nb, Zr, Mn, Mo, Ag, Li, La, Ce, B, Y, Sr, In, Co, Bi, P, and W is 5.000% or less; the plating layer includes an Fe—Al phase located at the interface with the base steel sheet and a main layer located on the Fe—Al phase, In a cross section of the plating layer, a contact length L between the Fe—Al phase and the main layer and a length L0 of the plating layer satisfy L / L0≦4.0, The Fe—Al phase contains, in mass%, Si: 3.0 to 15.0% and Zn: 2.0 to 15.0%, The coating weight of the plating layer is 20 g / m per side 2 A plated steel sheet characterized by the above. (2) The chemical composition of the plating layer is, in mass%, Zn: 10.0 to 35.0%, and Si: Contains 0.1 to 6.0% The plated steel sheet according to (1) above, wherein L / L0≦3.0. (3) The plated steel sheet according to (1) or (2) above, characterized in that, in the depth direction of the base steel sheet from the interface between the base steel sheet and the plated layer, the depth at which the C concentration is 0.10 mass% or less is 0.5 μm or more. [Effects of the Invention]

[0011] According to the present invention, it is possible to provide a plated steel sheet having an Al-containing plating layer, which can exhibit improved corrosion resistance even when applied to hot stamping. [Brief explanation of the drawings]

[0012] [Figure 1] 1 is a cross-sectional schematic view of a plated steel sheet according to an embodiment of the present invention, showing the contact length L between the Fe—Al phase and the main layer, and the length L0 of the plated layer. DETAILED DESCRIPTION OF THE INVENTION

[0013] <Plated steel sheet> A plated steel sheet according to an embodiment of the present invention comprises a base steel sheet and a plating layer formed on a surface of the base steel sheet, The chemical composition of the plating layer is, in mass%, Zn: 5.0 to 40.0%, Si: 0.1 to 15.0%, Fe: 0.5 to 25.0% Ni: 0 to 0.500% Mg: 0~3.000%, Ca: 0~3.000%, Sb: 0 to 0.500% Pb: 0~0.500%, Cu: 0-1.000%, Sn: 0 to 1.000%, Ti: 0 to 1.000%, Cr: 0 to 1.000%, Nb: 0 to 1.000%, Zr: 0 to 1.000%, Mn: 0 to 1.000%, Mo: 0 to 1.000%, Ag: 0~1.000%, Li: 0~1.000%, La: 0 to 0.500%, Ce: 0 to 0.500% B: 0~0.500%, Y: 0~0.500%, Sr: 0 to 0.500%, In: 0~0.500%, Co: 0 to 0.500%, Bi: 0 to 0.500% P: 0~0.500%, W: 0 to 0.500%, and The balance is Al and impurities, and The total content of Ni, Mg, Ca, Sb, Pb, Cu, Sn, Ti, Cr, Nb, Zr, Mn, Mo, Ag, Li, La, Ce, B, Y, Sr, In, Co, Bi, P, and W is 5.000% or less; the plating layer includes an Fe—Al phase located at the interface with the base steel sheet and a main layer located on the Fe—Al phase, In a cross section of the plating layer, a contact length L between the Fe—Al phase and the main layer and a length L0 of the plating layer satisfy L / L0≦4.0, The Fe—Al phase contains, in mass%, Si: 3.0 to 15.0% and Zn: 2.0 to 15.0%, The coating weight of the plating layer is 20 g / m per side 2 The present invention is characterized by the above.

[0014] As mentioned above, when a plated steel sheet containing a relatively large amount of Al in the coating layer is used in hot stamping, the coating layer and the base steel (base steel sheet) may alloy during heating during the hot stamping process, resulting in a decrease in corrosion resistance. More specifically, for example, when a plated steel sheet having a coating layer made of a conventional Al-Si-based coating is hot stamped, the coating layer and the base steel sheet alloy during high-temperature heating (e.g., heating at approximately 900°C or higher) during hot stamping, resulting in the formation of a coating layer primarily containing the FeAl phase after hot stamping. However, in addition to the FeAl phase, a relatively large amount of Fe-Al-based intermetallic compounds containing relatively large amounts of Si, particularly Fe-Al-Si phases containing 5% or more by mass of Si, may also be formed in the coating layer. In such cases, galvanic corrosion may occur between the FeAl phase and the Fe-Al-Si phase, resulting in a decrease in the corrosion resistance of the hot-stamped steel.

[0015] Therefore, the present inventors have investigated, in particular, the chemical composition and morphology of the coating layer in order to provide a coated steel sheet that can exhibit excellent corrosion resistance even when applied to hot stamping. As a result, the present inventors have found that, in a coating layer made of an Al-Zn-Si-based coating, in which Zn is further added to an Al-Si-based coating, it is important to optimize the chemical composition and coating weight, and to appropriately control the chemical composition and morphology of the Fe-Al phase in the coating layer formed at the interface with the base steel sheet. More specifically, the present inventors have first found that by controlling the Si content of the entire coating layer of a coated steel sheet to 0.1 to 15.0 mass%, it is possible to improve coating adhesion in a hot stamped product while suppressing the formation of the Fe-Al-Si phase, an Fe-Al-based intermetallic compound containing a relatively large amount of Si. Similarly, the present inventors have found that by controlling the Zn content of the entire coating layer to 5.0 to 40.0 mass% and further increasing the coating weight to 20 g / m, it is possible to suppress the formation of the Fe-Al-Si phase, an Fe-Al-based intermetallic compound containing a relatively large amount of Si. 2The inventors have found that by controlling the Si and Zn contents as described above, the sacrificial corrosion protection effect of Zn can be effectively exerted in the coating layer, thereby improving the corrosion resistance of the hot-stamped steel sheet. Next, the inventors have found that, in addition to appropriately controlling the Si and Zn contents of the entire coating layer as described above, the formation of the Fe-Al-Si phase can be further suppressed by including predetermined amounts of Si and Zn in the Fe-Al phase formed at the interface with the base steel sheet, more specifically, by including 3.0 to 15.0% Si and 2.0 to 15.0% Zn in the Fe-Al phase, by mass%, and that Zn can be solid-solved in the Fe2Al5 phase formed after hot stamping, thereby significantly improving the corrosion resistance of the hot-stamped steel sheet.

[0016] While not intending to be bound by any particular theory, it is believed that by incorporating 3.0 to 15.0 mass% of Si into the Fe-Al phase, much of the Si present in the coating layer is trapped in the Fe-Al phase. Because the Fe-Al-Si phase is an intermetallic compound that contains a relatively large amount of Si, it is believed that trapping much of the Si in the Fe-Al phase can suppress the formation of the Fe-Al-Si phase during high-temperature heating in hot stamping. On the other hand, by incorporating 2.0 to 15.0 mass% of Zn into the Fe-Al phase, Zn, which has a sacrificial corrosion protection effect, can be solid-dissolved in the Fe2Al5 phase formed by alloying during high-temperature heating in hot stamping, thereby improving the corrosion resistance of the coating layer after hot stamping. Therefore, according to the plated steel sheet according to the embodiment of the present invention, which includes a plating layer in which the Fe-Al phase formed at the interface with the base steel sheet contains, by mass %, 3.0 to 15.0% Si and 2.0 to 15.0% Zn, even when applied to hot stamping, it is possible to achieve excellent corrosion resistance in the formed product after hot stamping due to a combination of the effect of suppressing the formation of the Fe-Al-Si phase that may cause galvanic corrosion with the FeAl phase and the effect of improving the corrosion resistance of the plating layer containing the FeAl phase due to the solid solution of Zn.

[0017] However, subsequent studies by the present inventors have revealed that simply controlling the chemical composition of the entire coating layer, the coating weight, and the Si and Zn contents in the Fe-Al phase may not result in sufficient Zn solid solution in the Fe2Al5 phase of the hot-stamped steel sheet. In such cases, the corrosion resistance of the hot-stamped steel sheet cannot be sufficiently improved. Therefore, the present inventors conducted further studies, focusing on the morphology of the Fe-Al phase formed at the interface with the base steel sheet. As a result, the present inventors discovered that controlling the Fe-Al phase, which corresponds to the interfacial alloy layer in the coating layer, to have a flatter shape with fewer irregularities at the contact surface with the main layer—more specifically, controlling the morphology of the Fe-Al phase so that the contact length L between the Fe-Al phase and the main layer located above the Fe-Al phase and the coating layer length L0 satisfy the relationship L / L0≦4.0—enables sufficient Zn solid solution in the Fe2Al5 phase of the hot-stamped steel sheet, thereby significantly improving the corrosion resistance of the hot-stamped steel sheet.

[0018] Without intending to be bound by any particular theory, it is believed that by controlling the Fe-Al phase, which corresponds to the interface alloy layer in the coating layer, to have a flatter shape with fewer irregularities, it is possible to reliably suppress or reduce the evaporation of Zn during high-temperature heating in hot stamping, and as a result, it is possible to ensure that Zn is sufficiently dissolved in the Fe2Al5 phase in the formed body after hot stamping. This will be explained in detail below.

[0019] FIG. 1 is a cross-sectional schematic diagram of a plated steel sheet according to an embodiment of the present invention, showing the contact length L between the Fe—Al phase and the main layer and the length L0 of the plated layer. Referring to FIG. 1, the plated steel sheet 1 according to an embodiment of the present invention includes a base steel sheet 2 and a plated layer 3 formed on the surface of the base steel sheet 2. The plated layer 3 includes an Fe—Al phase 4 located at the interface with the base steel sheet 2 and a main layer 5 located on the Fe—Al phase 4 (i.e., on the surface side of the plated steel sheet 1). From FIG. 1, it can be seen that the contact length L between the Fe—Al phase 4 and the main layer 5 and the corresponding length L0 of the plated layer 3 satisfy the relationship L / L0≦4.0, and therefore the Fe—Al phase 4 is controlled to have a relatively flat shape at the contact surface with the main layer 5. On the other hand, although not shown, it can be seen that when L / L0 exceeds 4.0, the unevenness of the Fe—Al phase 4 at the contact surface with the main layer 5 becomes greater. During high-temperature heating in hot stamping, the Fe—Al phase 4 grows toward the main layer 5 as the coating layer and base steel sheet are alloyed. Therefore, if the Fe—Al phase 4 has a large degree of unevenness at the contact surface with the main layer 5, the Fe—Al phase 4 may grow needle-like toward the main layer 5 during high-temperature heating in hot stamping, and the needle-like Fe—Al phase 4 may protrude from the surface of the coating layer 3. The coating layer 3 of the coated steel sheet 1 according to the embodiment of the present invention contains a relatively large amount of Al, and therefore its surface is covered with an oxide film composed of Al-containing oxides and the like. However, the needle-like Fe—Al phase 4 may destroy this oxide film during high-temperature heating in hot stamping. In such cases, Zn contained in the coating layer 3 evaporates from the destroyed portion of the oxide film. Zn has a relatively low boiling point of approximately 907°C, which poses a problem of its tendency to evaporate during heating at approximately 900°C or higher during hot stamping. The surface of the plating layer 3 is covered with an oxide film composed of an Al-containing oxide or the like, which can suppress or reduce evaporation of Zn in the plating layer 3 even when the plating layer 3 is applied to hot stamping. However, if the oxide film is destroyed, evaporation of Zn from the destroyed portion of the oxide film becomes significant.This reduces the Zn content in the entire coating layer after hot stamping and the amount of dissolved Zn in the Fe2Al5 phase, resulting in a decrease in the corrosion resistance of the hot stamped steel.

[0020] In contrast, according to the plated steel sheet 1 according to an embodiment of the present invention, which has the Fe—Al phase 4 with an L / L0 controlled to 4.0 or less, the Fe—Al phase 4 has a relatively flat shape at the contact surface with the main layer 5, thereby preventing the Fe—Al phase 4 from growing into a needle-like shape toward the main layer 5 during high-temperature heating in hot stamping. This prevents or minimizes destruction of the oxide film present on the surface of the plated layer 3, thereby significantly preventing or reducing evaporation of Zn in the plated layer 3 due to the oxide film. Therefore, according to the plated steel sheet according to an embodiment of the present invention, even when hot stamping is applied, Zn can be sufficiently dissolved in the Fe2Al5 phase formed after hot stamping. The corrosion resistance-improving effect resulting from the solid solution of Zn in the Fe2Al5 phase and the corrosion resistance-improving effect resulting from the suppression of the formation of the Fe—Al—Si phase described above can be combined to significantly improve the corrosion resistance of the hot-stamped steel. In particular, the inventors have now discovered for the first time that by appropriately controlling the chemical composition and morphology of the Fe-Al phase in the coating layer as described above, it is possible to suppress the formation of the Fe-Al-Si phase and promote the solid solution of Zn in the Fe2Al5 phase, thereby improving the corrosion resistance of the hot-stamped steel. Therefore, the coated steel sheet according to the embodiment of the present invention is particularly useful in the automotive field, where hot stamping is relatively frequently used.

[0021] Hereinafter, a plated steel sheet according to an embodiment of the present invention will be described in more detail. In the following description, the unit of content of each element, "%," means "mass %" unless otherwise specified. Furthermore, in this specification, unless otherwise specified, the symbol "to" indicating a numerical range is used to mean that the numerical values ​​before and after it are included as the lower and upper limits.

[0022] [Plating layer] According to an embodiment of the present invention, a plating layer is formed on the surface of a base steel sheet, for example, on at least one surface, preferably both surfaces of the base steel sheet. The plating layer has the following chemical composition:

[0023] [Zn: 5.0 to 40.0%] Zn has a sacrificial corrosion protection effect and is an effective element for improving the corrosion resistance of the coating layer. To fully obtain this effect, the Zn content is set to 5.0% or more. The Zn content may be 8.0% or more, 10.0% or more, 12.0% or more, 15.0% or more, 18.0% or more, 20.0% or more, or 22.0% or more. On the other hand, excessive Zn content may cause significant Zn melting during high-temperature heating in hot stamping, and the molten Zn may penetrate into the steel, causing liquid metal embrittlement (LME) cracking. Therefore, the Zn content is set to 40.0% or less. The Zn content may also be 38.0% or less, 35.0% or less, 32.0% or less, 30.0% or less, or 28.0% or less.

[0024] [Si: 0.1 to 15.0%] Si is an element effective in improving the adhesion of the coating layer. To fully obtain this effect, the Si content is set to 0.1% or more. The Si content may be 0.3% or more, 0.5% or more, 0.8% or more, 1.0% or more, 3.0% or more, or 5.0% or more. On the other hand, excessive Si content may significantly increase the formation of an Fe-Al-Si phase in the coating layer after hot stamping, resulting in reduced corrosion resistance. Therefore, the Si content is set to 15.0% or less. The Si content may also be 12.0% or less, 10.0% or less, 8.0% or less, or 6.0% or less.

[0025] [Fe: 0.5 to 25.0%] Fe is an element that can be contained in the coating layer, for example, by dissolving from the base steel sheet into the coating bath or by reacting with Al during the coating process to form an Fe-Al phase at the interface between the base steel sheet and the coating layer. Therefore, the Fe content is set to 0.5% or more, and may be, for example, 1.0% or more, 3.0% or more, 5.0% or more, 8.0% or more, 10.0% or more, or 12.0% or more. On the other hand, Fe may be contained in the coating layer in an amount up to approximately 25.0%, but this range does not adversely affect the coated steel sheet according to the embodiment of the present invention. Therefore, the Fe content is set to 25.0% or less, and may be, for example, 22.0% or less, 20.0% or less, 18.0% or less, 15.0% or less, or 12.0% or less.

[0026] Furthermore, the plating layer may optionally contain Ni: 0-0.500%, Mg: 0-3.000%, Ca: 0-3.000%, Sb: 0-0.500%, Pb: 0-0.500%, Cu: 0-1.000%, Sn: 0-1.000%, Ti: 0-1.000%, Cr: 0-1.000%, Nb: 0-1.000%, Zr: 0-1.000%, Mn: 0-1.000%, Mo: 0- At least one of the following may be contained: 1.000%, Ag: 0-1.000%, Li: 0-1.000%, La: 0-0.500%, Ce: 0-0.500%, B: 0-0.500%, Y: 0-0.500%, Sr: 0-0.500%, In: 0-0.500%, Co: 0-0.500%, Bi: 0-0.500%, P: 0-0.500%, and W: 0-0.500%. The total content of these optional elements (i.e., the total content of these elements) is 5.000% or less. The total content of optional elements may be 4.500% or less, 4.000% or less, 3.500% or less, 3.000% or less, 2.500% or less, 2.000% or less, 1.500% or less, 1.000% or less, 0.800% or less, 0.500% or less, 0.100% or less, or 0.050% or less. The inclusion of these elements is not essential, and the total content of these elements may be 0%. If necessary, the lower limit of the total content of these elements may be 0.001%, 0.010%, 0.050%, or 0.080%. These optional elements are described in detail below.

[0027] [Ni: 0-0.500%] Ni is an element effective in improving the corrosion resistance of the coating layer. The Ni content may be 0%, but to achieve this effect, the Ni content is preferably 0.001% or more. The Ni content may be 0.003% or more, 0.005% or more, 0.008% or more, 0.010% or more, or 0.020% or more. While there is no particular upper limit, from the viewpoint of production costs, etc., the Ni content may be 0.500% or less, for example, 0.400% or less, 0.300% or less, 0.100% or less, 0.050% or less, or 0.030% or less.

[0028] [Mg: 0-3.000%] Mg is an element effective in improving the corrosion resistance of the coating layer. The Mg content may be 0%, but to achieve this effect, the Mg content is preferably 0.001% or more. The Mg content may be 0.003% or more, 0.005% or more, or 0.010% or more. On the other hand, from the viewpoint of improving workability, the Mg content may be 3.000% or less. The Mg content may be 2.000% or less, 1.000% or less, 0.500% or less, 0.300% or less, 0.100% or less, 0.050% or less, or 0.020% or less.

[0029] [Ca: 0-3.000%] Ca is an element effective in ensuring wettability of the coating bath. The Ca content may be 0%, but to achieve this effect, the Ca content is preferably 0.001% or more. The Ca content may be 0.003% or more, 0.005% or more, or 0.010% or more. On the other hand, excessive Ca content may form a large amount of hard intermetallic compounds in the coating layer, making the coating layer brittle and reducing adhesion to the steel sheet. Therefore, the Ca content is preferably 3.000% or less. The Ca content may be 2.000% or less, 1.000% or less, 0.500% or less, 0.300% or less, 0.100% or less, 0.050% or less, or 0.020% or less.

[0030] [Sb:0~0.500%, Pb:0~0.500%, Cu:0~1.000%, Sn:0~1.000%, Ti:0~1.000%, Cr:0 ~1.000%, Nb:0~1.000%, Zr:0~1.000%, Mn:0~1.000%, Mo:0~1.000%, Ag:0~1.000 %, Li:0~1.000%, La:0~0.500%, Ce:0~0.500%, B:0~0.500%, Y:0~0.500%, Sr:0~ 0.500%, In: 0~0.500%, Co: 0~0.500%, Bi: 0~0.500%, P: 0~0.500% and W: 0~0.500%] Sb, Pb, Cu, Sn, Ti, Cr, Nb, Zr, Mn, Mo, Ag, Li, La, Ce, B, Y, Sr, In, Co, Bi, P, and W may not be present in the coating layer, but may be present in the coating layer in amounts of 0.0001% or more, 0.001% or more, or 0.01% or more. These elements do not adversely affect the performance of the coated steel sheet as long as they are within the specified content range. However, excessive content of each element may reduce corrosion resistance. Therefore, the content of Sb, Pb, La, Ce, B, Y, Sr, In, Co, Bi, P, and W is preferably 0.500% or less, and may be, for example, 0.300% or less, 0.100% or less, 0.050% or less, or 0.020% or less. Similarly, the contents of Cu, Sn, Ti, Cr, Nb, Zr, Mn, Mo, Ag, and Li are preferably 1.000% or less, and may be, for example, 0.800% or less, 0.500% or less, 0.100% or less, 0.050% or less, or 0.020% or less.

[0031] The remainder of the plating layer other than the above elements consists of Al and impurities. Impurities in the plating layer include components that are mixed in due to various factors in the manufacturing process, including raw materials, when the plating layer is produced. The Al content does not need to be particularly specified, but may be 15.0 to 94.4%. If necessary, the Al content may be 20.0% or more, 30.0% or more, 40.0% or more, 50.0% or more, 60.0% or more, or 65.0% or more, or 94.0% or less, 92.0% or less, 90.0% or less, 85.0% or less, 80.0% or less, 75.0% or less, or 71.0% or less.

[0032] [Measurement of the chemical composition of the plating layer] The chemical composition of the plating layer is determined as follows. First, the plating layer is stripped and dissolved from the plated steel sheet using an acid solution containing an inhibitor that suppresses corrosion of the base steel sheet (e.g., IBIT 710K manufactured by Asahi Chemical Industry Co., Ltd.), and the resulting acid solution is measured by ICP (inductively coupled plasma) emission spectroscopy to determine the chemical composition (average composition) of the plating layer. The type of acid is not particularly limited, and any acid that can dissolve the plating layer may be used. For example, a 10% hydrochloric acid solution containing 0.04% IBIT 710K can be used as the acid containing the inhibitor.

[0033] [Fe-Al phase] [Si: 3.0-15.0% and Zn: 2.0-15.0%] In an embodiment of the present invention, the coating layer includes an Fe-Al phase located at the interface with the base steel sheet, and the Fe-Al phase contains, by mass%, 3.0 to 15.0% Si and 2.0 to 15.0% Zn. As described above, it is believed that by including 3.0 to 15.0% Si in the Fe-Al phase, much of the Si present in the coating layer can be trapped in the Fe-Al phase. The Fe-Al-Si phase that can be formed after hot stamping is an intermetallic compound containing a relatively large amount of Si, particularly an intermetallic compound containing 5% or more by mass of Si. Therefore, it is believed that by trapping much of the Si in the Fe-Al phase, which is the interfacial alloy layer before hot stamping, it is possible to suppress the formation of the Fe-Al-Si phase during high-temperature heating in hot stamping. If a large amount of the Fe-Al-Si phase is formed, galvanic corrosion may occur between the Fe-Al-Si phase and the Fe2Al5 phase, which is also formed by alloying during high-temperature heating in hot stamping. Therefore, suppressing the formation of the Fe-Al-Si phase is highly effective in improving the corrosion resistance of the coating layer after hot stamping. On the other hand, by including 2.0 to 15.0% Zn in the Fe-Al phase, Zn, which has a sacrificial corrosion protection effect, can be dissolved in the Fe2Al5 phase after hot stamping. In combination with the corrosion resistance improvement effect resulting from the suppression of Fe-Al-Si phase formation, this makes it possible to significantly improve the corrosion resistance of the hot stamped body.

[0034] To further enhance the effect of suppressing the formation of the Fe-Al-Si phase, the Si content in the Fe-Al phase is preferably 5.0% or more, and may be, for example, 6.0% or more, 8.0% or more, or 10.0% or more. On the other hand, even if the Fe-Al phase contains excessive Si, the above effect saturates. Therefore, the Si content in the Fe-Al phase is set to 15.0% or less, and may be, for example, 14.0% or less or 12.0% or less. Similarly, to further enhance the effect of improving corrosion resistance due to the solid solution of Zn in the Fe2Al5 phase, the Zn content in the Fe-Al phase is preferably 3.0% or more, and may be, for example, 5.0% or more, 6.0% or more, 8.0% or more, or 10.0% or more. On the other hand, even if the Fe-Al phase contains excessive Zn, the above effect saturates. Therefore, the Zn content in the Fe-Al phase is set to 15.0% or less, and may be, for example, 14.0% or less or 12.0% or less.

[0035] [Main layer] In an embodiment of the present invention, the coating layer includes a main layer located on an Fe-Al phase. As described above, the present invention aims to provide a coated steel sheet that can exhibit improved corrosion resistance even when applied to hot stamping. This objective is achieved by optimizing the chemical composition and coating weight of an Al-Zn-Si coating layer, and by incorporating, in mass %, 3.0 to 15.0% Si and 2.0 to 15.0% Zn in the Fe-Al phase formed at the interface with the base steel sheet. Furthermore, the morphology of the Fe-Al phase is controlled so that the contact length L between the Fe-Al phase and the main layer and the coating layer length L0 satisfy the relationship L / L0≦4.0. Therefore, for example, the structure contained in the main layer of the coating layer is not particularly limited except that it is a structure other than the Fe-Al phase, and it is clearly not an essential technical feature for achieving the objective of the present invention. In fact, the coating layer is alloyed with the base steel sheet during high-temperature heating in hot stamping, forming a coating layer primarily containing the Fe2Al5 phase. Therefore, in the plated steel sheet according to the embodiment of the present invention, in order to suppress the formation of the Fe-Al-Si phase in the plated layer after hot stamping and further to promote the solid solution of Zn in the FeAl phase, it is extremely important to appropriately control the chemical composition and morphology of the Fe-Al phase, which corresponds to the interface alloy layer rather than the main layer, and by appropriately controlling these, it becomes possible to reliably achieve the object of the present invention.

[0036] Although not particularly limited, the main layer may contain at least one of an α-Al phase, an η-Zn phase, and an Si phase. For example, the main layer may contain an α-Al phase. The area ratio of the α-Al phase in the main layer is not particularly limited, and may be, for example, 30% or more, 40% or more, 50% or more, or 60% or more. Similarly, the area ratio of the α-Al phase in the main layer may be 100%, or may be, for example, 90% or less, 80% or less, or 70% or less. Note that the region other than the Fe-Al phase in the coating layer, i.e., the non-Fe-Al phase, constitutes the main layer, and therefore the coating layer is composed of the Fe-Al phase and the main layer.

[0037] [L / L0≦4.0] In an embodiment of the present invention, the morphology of the Fe-Al phase is controlled so that the contact length L between the Fe-Al phase and the main layer and the length L of the coating layer satisfy the relationship L / L ≦ 4.0. As described above, by controlling the Fe-Al phase corresponding to the interface alloy layer in the coating layer to a flatter shape with fewer irregularities to the extent that the relationship L / L ≦ 4.0 is satisfied, it is possible to suppress the needle-like growth of the Fe-Al phase during high-temperature heating in hot stamping. This prevents or minimizes the destruction of the oxide film present on the surface of the coating layer by the needle-like growth of the Fe-Al phase, thereby significantly suppressing or reducing the evaporation of Zn in the coating layer due to the oxide film. As a result, Zn can be sufficiently solid-dissolved in the Fe2Al5 phase in the formed body after hot stamping, thereby significantly improving the corrosion resistance of the hot-stamped body. To further enhance this effect, it is preferable that the contact surface of the Fe-Al phase with the main layer is flatter, i.e., that L / L ≦ 4.0. More specifically, L / L0 is preferably 3.8 or less, and may be, for example, 3.5 or less, 3.2 or less, 3.0 or less, 2.8 or less, 2.5 or less, 2.2 or less, or 2.0 or less. There is no particular lower limit, and L / L0 may be, for example, 1.0 or more, 1.2 or more, 1.5 or more, 1.7 or more, or 1.9 or more.

[0038] [Plating layer analysis] The plating layer is analyzed as follows. First, five samples are taken from the plated steel sheet so that the cross section of the plating layer can be observed. Next, for each sample, a rectangular area measuring 80 μm in the thickness direction and 100 μm in the direction perpendicular to the thickness direction is defined as one field of view. A total of five fields of view for the five samples are photographed at 1500x magnification using SEM-EDS or EPMA to obtain mapping images. The location of the Fe-Al phase is determined from the element distribution image of this mapping image. More specifically, an element distribution image is obtained using SEM-EDS or EPMA with the target elements being Fe, Al, Si, and Zn. In this element distribution image, the region satisfying 25 to 65 mass% Fe and 30 to 70 mass% Al is identified as the Fe-Al phase. The Fe-Al phase region was identified by overlaying the element distribution images of Fe and Al with a color bar indicating the concentration of each element by color tone, with the concentration range set to 25-65 mass% Fe and 30-70 mass% Al. The Fe-Al phase (reference number 4 in Figure 1) was identified. In this element distribution image, the region with Fe exceeding 65 mass% was identified as the base steel sheet (reference number 2 in Figure 1), and the region other than the Fe-Al phase in the coating layer was identified as the main layer (reference number 5 in Figure 1). Next, image analysis software (e.g., the "Analyze" function in "ImageJ") was used to measure the contact length between the main layer and the Fe-Al phase (contact length L between the Fe-Al phase and the main layer shown in Figure 1). Finally, the average of the contact lengths obtained for the five samples was calculated as the contact length L, and the ratio L / L to the corresponding coating layer length L0 (length of the long side in each field of view: 100 μm) was calculated. Here, L0, which is the length of the long side in the field of view, is also the distance between both ends of the contact length L (however, this is the distance in the direction parallel to the surface of the plated steel sheet 1), as shown in FIG.

[0039] The Si content and Zn content in the Fe-Al phase are determined as follows. First, for each of the five samples, the Fe-Al phase is identified by the above-mentioned method, and then the concentrations of elements constituting the Fe-Al phase (specifically, the Si content and the Zn content) are measured using SEM-EDS or EPMA. More specifically, for each sample, the Si content and Zn content are measured at five measurement points spaced 50 μm apart in a direction parallel to the surface of the plated steel sheet at the center of the thickness of the Fe-Al phase, and the average value is used as the measured value for each sample. The measured values ​​of the target element concentration for the five samples are obtained, and the average value of the measured values ​​is used as the element content (Si content or Zn content). In addition, the structure in the main layer is identified from an element distribution image in a mapping image obtained for one of the samples. The area fraction of the structure in the main layer is calculated by measuring the area fractions of structures such as the α-Al phase, η-Zn phase, and Si phase from the element distribution image in the mapping image obtained for the five samples, and calculating the average of the five fields of view. In the element distribution image obtained by SEM-EDS or EPMA, the α-Al phase is defined as the region that satisfies 0-10% by mass of Fe, 20-90% by mass of Al, and 0-80% by mass of Zn, the η-Zn phase is defined as the region that satisfies 0-10% by mass of Fe, 0-20% by mass of Al, and more than 80% by mass of Zn, and the Si phase is defined as the region that satisfies 80% by mass or more of Si.

[0040] The plating layer having the above chemical composition, Fe-Al phase, and main layer may be a hot-dip plating layer. Although it is not necessary to exclude plating layers other than the hot-dip plating layer, it may be limited to the hot-dip plating layer.

[0041] [Plating layer adhesion: 20g / m per side 2 End] In an embodiment of the present invention, the coating weight of the plating layer is 20 g / m per side. 2 Generally, a coating layer may be alloyed with the base steel sheet during high-temperature heating in hot stamping, resulting in a decrease in corrosion resistance. However, according to an embodiment of the present invention, the coating weight of the coating layer is relatively large, specifically, 20 g / m per side. 2By controlling as described above, it is possible to ensure a sufficient amount of Zn in the entire coating layer formed after hot stamping and a sufficient amount of Zn dissolved in the Fe2Al5 phase, and it is believed that the presence of such a coating layer makes it possible to achieve excellent corrosion resistance. On the other hand, if the coating weight of the coating layer is small, the above-mentioned corrosion resistance improvement effect due to the presence of Zn cannot be fully obtained, and corrosion resistance after hot stamping may decrease. From the viewpoint of improving corrosion resistance, the coating weight of the coating layer is preferably 30 g / m per side. 2 More than 40g / m 2 or more than 50g / m 2 More preferably, 60 g / m 2 or more, and even more preferably 70 g / m 2 More than 80 g / m 2 Although the upper limit is not particularly limited, the coating weight of the plating layer is, for example, 200 g / m 2 Below 190g / m 2 Below 180g / m 2 or less than 170g / m 2 It may be the following:

[0042] [Measurement of plating coating weight] The coating weight of the plating layer is determined as follows. First, a 30 mm x 30 mm sample is taken from the plated steel sheet. Then, the plating layer is stripped and dissolved from this sample using an acid solution containing an inhibitor that suppresses corrosion of the base steel sheet (e.g., Ivit 710K manufactured by Asahi Chemical Industry Co., Ltd.). The coating weight of the plating layer is determined from the change in mass of the sample before and after stripping and dissolution. The type of acid is not particularly limited, and any acid that can dissolve the plating layer can be used. For example, an aqueous solution containing 0.04% Ivit 710K and 10% hydrochloric acid can be used as the acid containing the inhibitor.

[0043] [Depth of base steel plate with a C concentration of 0.10 mass% or less in the depth direction: 0.5 μm or more] According to an embodiment of the present invention, the depth at which the C concentration is 0.10 mass% or less in the depth direction of the base steel sheet from the interface between the base steel sheet and the coating layer is preferably 0.5 μm or more. Changing the C concentration in the surface layer of the base steel sheet can change the alloying behavior between the coating layer and the base steel sheet during high-temperature heating in hot stamping. Although the reason is not entirely clear, the present inventors have discovered that providing a region with a relatively low C concentration in the surface layer of the base steel sheet, more specifically, setting the depth at which the C concentration is 0.10 mass% or less to 0.5 μm or more, can further suppress the formation of Fe-Al-Si phases, thereby further improving corrosion resistance after hot stamping. From the viewpoint of improving corrosion resistance, the greater the depth at which the C concentration is 0.10 mass% or less, the more preferable it is, and it may be, for example, 0.8 μm or more, 1.0 μm or more, 1.2 μm or more, 1.5 μm or more, or 2.0 μm or more. There is no particular upper limit, but for example, the depth at which the C concentration is 0.10 mass % or less may be 15.0 μm or less, 10.0 μm or less, or 5.0 μm or less.

[0044] [Measurement of the depth of the base steel plate at a carbon concentration of 0.10 mass% or less in the depth direction] The depth from the interface between the base steel sheet and the coating layer to the base steel sheet where the carbon concentration is 0.10 mass% or less in the depth direction is determined using a high-frequency glow discharge optical emission spectrometer (GDS) as follows. Specifically, the surface of the coated steel sheet is placed in an Ar atmosphere, and a voltage is applied to generate glow plasma. The surface of the coated steel sheet is then sputtered and analyzed in the depth direction. The elements contained in the material are then identified from the element-specific emission spectrum wavelengths emitted by excited atoms in the glow plasma, and the emission intensity of the identified elements is estimated. Depth data can be estimated from the sputtering time. Specifically, the relationship between sputtering time and sputtering depth can be determined in advance using a standard sample, allowing the sputtering time to be converted to sputtering depth. Therefore, the sputtering depth converted from the sputtering time can be defined as the depth from the surface of the material. The obtained emission intensity is converted to mass% by creating a calibration curve. When a plated steel sheet is subjected to GDS measurement in this manner, the position where the Al concentration in the depth direction becomes 1.0 mass% or less is determined to be the interface between the base steel sheet and the plating layer, and the distance in the depth direction from the interface to the point where the C concentration becomes 0.10 mass% or more is determined to be the "depth from the interface between the base steel sheet and the plating layer in the depth direction of the base steel sheet at which the C concentration is 0.10 mass% or less."

[0045] [Preferred chemical composition of base steel plate] As described above, the present invention aims to provide a plated steel sheet that can exhibit improved corrosion resistance even when applied to hot stamping. This objective is achieved by optimizing the chemical composition and coating weight of an Al-Zn-Si-based coating layer, incorporating 3.0 to 15.0% Si and 2.0 to 15.0% Zn in the Fe-Al phase formed at the interface with the base steel sheet, and controlling the morphology of the Fe-Al phase so that the contact length L between the Fe-Al phase and the main layer and the coating layer length L0 satisfy the relationship L / L0≦4.0. Therefore, it is clear that the chemical composition of the base steel sheet itself is not an essential technical feature for achieving the objective of the present invention. Preferred chemical compositions of the base steel sheet used in the plated steel sheets according to embodiments of the present invention are described in detail below. However, these descriptions are intended merely as examples of preferred chemical compositions of base steel sheets for application to hot stamping and are not intended to limit the present invention to those using base steel sheets having such specific chemical compositions.

[0046] In an embodiment of the present invention, for example, the base steel plate contains, in mass%, C: 0.13~0.50%, Si: 0.001 to 3.000%, Mn: 0.30-3.00%, Al: 0.0002 to 2.000%, P: 0.100% or less, S: 0.1000% or less, N: 0.0100% or less, Nb: 0 to 0.15%, Ti: 0 to 0.15% V: 0~0.15%, Mo: 0-1.0% Cr: 0 to 1.0%, Cu: 0-1.0% Ni: 0 to 1.0% B: 0~0.0100%, W: 0 to 1.000%, Hf: 0 to 0.050%, Mg: 0 to 0.050% Zr: 0 to 0.050%, Ca: 0 to 0.010% REM: 0~0.30%, Ir: 0 to 1.000%, and Remainder: Fe and impurities It is preferable that the metal has a chemical composition consisting of the following: Each element will be described in more detail below.

[0047] [C:0.13~0.50%] C is an element that inexpensively increases tensile strength and is an important element for controlling the strength of steel. To fully obtain this effect, the C content is preferably 0.13% or more. The C content may be 0.15% or more, 0.20% or more, 0.30% or more, or 0.35% or more. On the other hand, excessive C content may result in a decrease in elongation. For this reason, the C content is preferably 0.50% or less. The C content may be 0.45% or less, or 0.40% or less.

[0048] [Si: 0.001 to 3.000%] Si acts as a deoxidizer and is an element that suppresses the precipitation of carbides during the cooling process during annealing of cold-rolled sheets. To fully obtain this effect, the Si content is preferably 0.001% or more. The Si content may be 0.010% or more, 0.100% or more, or 0.200% or more. On the other hand, excessive Si content may increase the steel strength but decrease the elongation. For this reason, the Si content is preferably 3.000% or less. The Si content may be 2.500% or less, 2.000% or less, 1.500% or less, or 1.000% or less.

[0049] [Mn: 0.30~3.00%] Mn is an element that improves the hardenability of steel and is effective in increasing strength. To fully obtain this effect, the Mn content is preferably 0.30% or more. The Mn content may be 0.50% or more, 1.00% or more, or 1.30% or more. On the other hand, excessive Mn content may increase the steel strength but decrease the elongation. For this reason, the Mn content is preferably 3.00% or less. The Mn content may be 2.80% or less, 2.50% or less, or 2.00% or less.

[0050] [Al: 0.0002~2.000%] Al acts as a deoxidizer for steel and has the effect of improving the soundness of steel. To fully obtain this effect, the Al content is preferably 0.0002% or more. The Al content may be 0.001% or more, 0.010% or more, 0.050% or more, or 0.100% or more. On the other hand, excessive Al content may generate coarse Al oxides, reducing the elongation of the steel sheet. For this reason, the Al content is preferably 2.000% or less. The Al content may be 1.500% or less, 1.000% or less, 0.800% or less, or 0.500% or less.

[0051] [P:0.100% or less] P is an element that segregates at grain boundaries and promotes embrittlement of steel. The lower the P content, the better, and ideally it is 0%. However, excessive reduction in the P content may result in a significant increase in costs. For this reason, the P content may be 0.0001% or more, or may be 0.001% or more, or 0.005% or more. On the other hand, excessive P content may result in embrittlement of steel due to grain boundary segregation, as described above. Therefore, the P content is preferably 0.100% or less. The P content may also be 0.050% or less, 0.030% or less, or 0.010% or less.

[0052] [S:0.1000% or less] S is an element that generates nonmetallic inclusions such as MnS in steel, reducing the ductility of steel parts. Since a lower S content is preferable, ideally 0%. However, excessive reduction in the S content can result in a significant increase in costs. For this reason, the S content may be 0.0001% or more, or may be 0.0002% or more, 0.0010% or more, or 0.0050% or more. On the other hand, excessive S content can cause cracks to occur originating from nonmetallic inclusions during cold forming. Therefore, the S content is preferably 0.1000% or less. The S content may be 0.0500% or less, 0.0200% or less, or 0.0100% or less.

[0053] [N:0.0100% or less] N is an element that forms coarse nitrides in steel sheets and reduces the workability of the steel sheets. Since a lower N content is preferable, ideally it is 0%. However, excessive reduction in the N content may result in a significant increase in manufacturing costs. For this reason, the N content may be 0.0001% or more, or may be 0.0005% or more, or 0.0010% or more. On the other hand, excessive N content may form coarse nitrides as described above, reducing the workability of the steel sheets. Therefore, the N content is preferably 0.0100% or less. The N content may also be 0.0080% or less, or 0.0050% or less.

[0054] The base steel sheet preferably has the basic chemical composition described above. Furthermore, the base steel sheet may contain, as necessary, one or more elements selected from the group consisting of Nb: 0-0.15%, Ti: 0-0.15%, V: 0-0.15%, Mo: 0-1.0%, Cr: 0-1.0%, Cu: 0-1.0%, Ni: 0-1.0%, B: 0-0.0100%, W: 0-1.000%, Hf: 0-0.050%, Mg: 0-0.050%, Zr: 0-0.050%, Ca: 0-0.010%, REM: 0-0.30%, and Ir: 0-1.000%, in place of a portion of the remaining Fe. The content of each of these elements may be 0.0001% or more, 0.0005% or more, 0.001% or more, or 0.01% or more.

[0055] The remainder of the base steel plate other than the above elements is composed of Fe and impurities. The impurities in the base steel plate are components that are mixed in due to various factors in the manufacturing process, including raw materials such as ore and scrap, when the base steel plate is industrially manufactured.

[0056] The chemical composition of the base steel sheet can be measured using a common analytical method. For example, the chemical composition of the base steel sheet can be measured by first removing the coating layer by mechanical grinding, and then measuring the chips using ICP-AES (Inductively Coupled Plasma-Atomic Emission Spectrometry) in accordance with JIS G 1201:2014. Specifically, for example, a 35 mm square test piece can be obtained from the base steel sheet at approximately half the thickness position, and the components can be determined by measuring them using a Shimadzu ICPS-8100 or similar measuring device under conditions based on a pre-established calibration curve. C and S, which cannot be measured by ICP-AES, can be measured using the combustion-infrared absorption method, N using the inert gas fusion-thermal conductivity method, and O using the inert gas fusion-non-dispersive infrared absorption method.

[0057] [Base steel plate thickness] The thickness of the base steel plate is not particularly limited, and may be, for example, 0.2 mm or more, 0.3 mm or more, 0.6 mm or more, 1.0 mm or more, or 2.0 mm or more. Similarly, the thickness of the base steel plate may be, for example, 6.0 mm or less, 5.0 mm or less, or 4.0 mm or less.

[0058] <Method of manufacturing plated steel sheets> Next, a preferred method for producing a plated steel sheet according to an embodiment of the present invention will be described. The following description is intended to exemplify a characteristic method for producing a plated steel sheet according to an embodiment of the present invention, but is not intended to limit the plated steel sheet to one produced by the production method described below.

[0059] The plated steel sheet according to the embodiment of the present invention can be manufactured by, for example, carrying out a casting process in which molten steel having an adjusted chemical composition is cast to form a slab, a hot rolling process in which the slab is hot-rolled to obtain a hot-rolled steel sheet, a coiling process in which the hot-rolled steel sheet is coiled, a cold rolling process in which the coiled hot-rolled steel sheet is cold-rolled to obtain a cold-rolled steel sheet, an annealing process in which the cold-rolled steel sheet is annealed, a cooling process in which the annealed cold-rolled steel sheet is cooled, and a plating process in which a plating layer is formed on the obtained base steel sheet. Alternatively, the base steel sheet may be pickled after the hot rolling process without being coiled, and then directly subjected to the cold rolling process. Each process will be described in detail below.

[0060] [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 conventional continuous casting method, an ingot casting method, or the like.

[0061] [Hot rolling process] A hot-rolled steel sheet can be obtained by hot-rolling a cast slab. The hot-rolling step is carried out by reheating the cast slab directly or after cooling it once, and then hot-rolling it. When reheating is carried out, the heating temperature of the slab may be, for example, 1100 to 1250°C. In the hot-rolling step, rough rolling and finish rolling are usually carried out. The temperature and reduction rate of each rolling step can be appropriately determined depending on the desired metal structure and plate thickness. For example, the end temperature of finish rolling may be 900 to 1050°C, and the reduction rate of finish rolling may be 10 to 50%.

[0062] [Winding process] The hot-rolled steel sheet can be coiled at a predetermined temperature. The coiling temperature can be appropriately determined depending on the desired metal structure, etc., and may be, for example, 500 to 800°C. The hot-rolled steel sheet may be recoiled before or after coiling and subjected to a predetermined heat treatment. Alternatively, the hot-rolled steel sheet may be pickled after the hot-rolling step and then subjected to the cold-rolling step described below without performing the coiling step.

[0063] [Cold rolling process] After subjecting the hot-rolled steel sheet to pickling or the like, the hot-rolled steel sheet is cold-rolled to obtain a cold-rolled steel sheet. The reduction ratio in cold rolling can be appropriately determined depending on the desired metal structure and sheet thickness, and may be, for example, 20 to 80%. After the cold-rolling step, the steel sheet may be cooled to room temperature, for example, by air-cooling.

[0064] [Annealing process] Next, the obtained cold-rolled steel sheet is annealed. The annealing step involves heating the cold-rolled steel sheet to a temperature of 730 to 900°C in an atmosphere with a dew point of -50 to 20°C and holding the temperature for 10 to 300 seconds. In particular, by performing the annealing step under conditions of a relatively high dew point of -10 to 20°C, the surface layer of the cold-rolled steel sheet can be appropriately decarburized. In this case, in the finally obtained plated steel sheet, it is possible to control the depth at which the C concentration is 0.10 mass% or less to a range of 0.5 μm or more in the depth direction of the base steel sheet from the interface between the base steel sheet and the coating layer. As a result, it is possible to further improve the corrosion resistance after hot stamping compared to when the annealing step is performed under conditions with a dew point of less than -10°C. The atmosphere in the annealing step may be a reducing atmosphere, more specifically a reducing atmosphere containing nitrogen and hydrogen, for example, a reducing atmosphere of 1 to 10% hydrogen (e.g., 4% hydrogen and the balance nitrogen).

[0065] [Cooling process] The cooling step may be carried out at a cooling rate suitable for obtaining a desired metal structure from the heating temperature of the annealing step to the entry sheet temperature of the subsequent plating step. Although not particularly limited, for example, the cooling step may be carried out at an average cooling rate of 10°C / s or more from the heating temperature of the annealing step to the entry sheet temperature of the plating step.

[0066] [Plating process] Next, in the plating process, a plating layer having the above-described chemical composition and morphology is formed on at least one, preferably both, surfaces of the cold-rolled steel sheet (base steel sheet). More specifically, the plating process is carried out using a plating bath (plating bath temperature: 650°C or higher, e.g., 650-680°C) whose components have been adjusted so that the chemical composition of the plating layer falls within the above-described ranges, e.g., a plating bath containing 5.0-50.0% Zn, 0.1-18.0% Si, and the balance: Al and impurities. The plating bath temperature is 650°C or higher, e.g., 650-680°C, and the base steel sheet is introduced into the plating bath at a temperature of 500°C or lower, and then cooled to 300°C at an average cooling rate of 10°C / s or lower. The plating process is important for obtaining the desired chemical composition and morphology of the Fe—Al phase formed at the interface with the base steel sheet, and will be described in detail below.

[0067] Typically, the galvanizing process is performed so that the entry temperature of the steel sheet is the same as or approximately the same as the temperature of the galvanizing bath. However, if the difference between the entry temperature of the base steel sheet into the galvanizing bath and the galvanizing bath temperature (i.e., the galvanizing bath temperature minus the entry temperature of the steel sheet) is less than 150°C, if the entry temperature is higher than 500°C, or if the galvanizing bath temperature is lower than 650°C, the appropriate Fe-Al phase cannot be formed. Specifically, in these cases, the Si content of the Fe-Al phase becomes less than 3.0%, and the Zn content becomes less than 2.0%. As a result, when such a galvanized steel sheet is subjected to high-temperature heating (hot stamping), the formation of the Fe-Al-Si phase in the Fe2Al5 phase cannot be suppressed during the high-temperature heating, and / or Zn, which has a sacrificial corrosion protection effect, cannot be sufficiently solid-dissolved in the Fe2Al5 phase. This significantly reduces the corrosion resistance of the galvanized layer after hot stamping. Therefore, in the present manufacturing method, the bath temperature is controlled to 650°C or higher and the entry sheet temperature is controlled to 500°C or lower, ensuring that the entry sheet temperature is at least 150°C lower than the bath temperature. This allows the Fe-Al phase to crystallize at a low temperature and converts the Fe-Al phase into a phase suitable for containing 3.0-15.0% Si and 2.0-15.0% Zn. Trapping a large amount of Si in the Fe-Al phase in this way makes it possible to suppress the formation of the Fe-Al-Si phase in the Fe2Al5 phase during high-temperature heating in hot stamping. Furthermore, by incorporating Zn within the above range into the Fe-Al phase, sacrificial corrosion-protecting Zn can be solid-dissolved in the Fe2Al5 phase formed by alloying during high-temperature heating in hot stamping, thereby improving the corrosion resistance of the coating layer after hot stamping.

[0068] Generally, the entry sheet temperature is controlled to be the same as or approximately the same as the coating bath temperature, as described above. Even if the entry sheet temperature differs from the coating bath temperature, the entry sheet temperature is generally controlled within a range of ±20°C relative to the coating bath temperature. Reasons for this include the fact that, even though the sheet temperature rises to the coating bath temperature during immersion in the coating bath, there is no need to incur manufacturing costs by cooling and controlling the entry sheet temperature to a lower temperature, and the fact that a lower entry sheet temperature relative to the coating bath temperature may cause the coating bath to solidify. Therefore, it is quite unexpected and surprising that the corrosion resistance of the coating layer after hot stamping can be improved by controlling the coating bath temperature to 650°C or higher and the entry sheet temperature to 500°C or lower, as in the present manufacturing method, thereby ensuring that the entry sheet temperature is at least 150°C lower than the coating bath temperature. The lower limit of the entry sheet temperature is not particularly limited, but for example, the entry sheet temperature of the base steel sheet into the coating bath may be 380°C or higher. It is conventional wisdom that controlling the entry sheet temperature to 500°C or less may cause the coating bath to solidify due to the composition of the coating bath, etc. However, in this embodiment, it has been discovered that solidification of the coating bath can be prevented by setting the difference between the entry sheet temperature and the coating bath temperature to 150°C or more, which is far beyond conventional wisdom, i.e., by setting the entry sheet temperature to 500°C or less and increasing the coating bath temperature to a high temperature of 650°C. It is preferable to create convection of the plating solution by stirring the plating bath to prevent solidification of the coating bath.

[0069] The plating step is carried out by, for example, hot dip plating. Other conditions of the plating step may be appropriately set in consideration of the thickness and coating weight of the plating layer, etc. For example, after immersing a cold rolled steel sheet in a plating bath, it is pulled out, and immediately sprayed with N2 gas or air by a gas wiping method, and then cooled, so that the coating weight of the plating layer can be kept within a predetermined range, for example, 20 to 200 g / m per side. 2 can be adjusted within the range.

[0070] [Cooling after plating] As described above, cooling after plating is performed to 300°C at an average cooling rate of 10°C / s or less. Cooling the plated steel sheet at such a relatively slow average cooling rate can reduce the frequency (nucleation frequency) of Fe-Al phase nuclei from the molten coating. In this case, the Fe-Al phase can be grown relatively slowly, which allows the Fe-Al phase to be coarsened and form an Fe-Al phase with a relatively flat shape with minimal irregularities at the interface with the base steel sheet, more specifically, an Fe-Al phase with an L / L0 ratio controlled to 4.0 or less. As a result, needle-like growth of the Fe-Al phase toward the main layer during high-temperature heating during hot stamping can be suppressed. This can suppress or minimize the destruction of the oxide film present on the surface of the coating layer, thereby significantly suppressing or reducing the evaporation of Zn in the coating layer.

[0071] On the other hand, if the average cooling rate from after plating to 300°C is faster than 10°C / s, the nucleation frequency of the Fe-Al phase increases, resulting in faster growth of the Fe-Al phase from the hot-dip coating. Rapid growth of the Fe-Al phase results in the formation of an Fe-Al phase with a larger unevenness at the interface with the base steel sheet, with an L / L0 ratio of more than 4.0. As a result, during high-temperature heating during hot stamping, the Fe-Al phase grows into a needle-like shape, which may destroy the oxide film present on the surface of the coating layer. In such cases, Zn contained in the coating layer evaporates from the destroyed oxide film. To reduce the L / L0 value and achieve a flatter shape of the Fe-Al phase at the contact surface with the main layer, it is preferable to set the average cooling rate from after plating to 300°C to 5°C / s or less.

[0072] According to this manufacturing method, the chemical composition of the entire plating layer can be controlled within a predetermined range, and the coating weight of the plating layer can be 20 g / m per side. 2In addition to the above, a coated steel sheet can be produced that includes a coating layer in which the Fe-Al phase formed at the interface with the base steel sheet contains, by mass, 3.0 to 15.0% Si and 2.0 to 15.0% Zn, and the morphology of the Fe-Al phase is controlled so that the contact length L between the Fe-Al phase and the main layer and the coating layer length L0 satisfy the relationship L / L0≦4.0. Therefore, even when exposed to high temperatures such as those during hot stamping, the corrosion resistance of the hot-stamped product can be significantly improved by combining the corrosion resistance improvement effect due to the solid solution of Zn in the Fe2Al5 phase with the corrosion resistance improvement effect due to the suppression of Fe-Al-Si phase formation in the coating layer. Therefore, when used as a coated steel sheet for hot stamping, such a coated steel sheet can achieve superior corrosion resistance compared to conventional coated steel sheets. This can contribute to industrial development by extending the service life of coated steel sheets for automobiles and building materials.

[0073] The present invention will be described in more detail below with reference to examples, but the following examples are merely illustrative of the present invention and are not intended to limit the present invention in any way. It goes without saying that the present invention can be modified as desired without departing from the gist of the present invention. [Example]

[0074] In the following examples, plated steel sheets according to the embodiments of the present invention were produced under various conditions, and the properties of the produced plated steel sheets were investigated.

[0075] First, molten steel was cast by continuous casting to form a slab having a chemical composition, by mass%, of 0.20% C, 0.012% Si, 1.30% Mn, 0.030% Al, 0.005% P, 0.0020% S, and 0.0030% N, with the balance being Fe and impurities. The slab was cooled, reheated to 1200°C, hot-rolled, and then coiled at a temperature of 600°C or less. The hot-rolling was performed by rough rolling and finish rolling, with the finish rolling ending at a temperature of 900 to 1050°C and a reduction ratio of 30%. Next, the obtained hot-rolled steel sheet was pickled and then cold-rolled at a reduction ratio of 50% to obtain a cold-rolled steel sheet having a thickness of 1.6 mm. Next, the obtained cold-rolled steel sheet was subjected to an annealing process under the conditions shown in Table 1 in a mixed gas atmosphere of 4% hydrogen and the balance nitrogen in a furnace with an oxygen concentration of 20 ppm or less, and then cooled at an average cooling rate of 10°C / s or more to produce a base steel sheet.

[0076] Next, the produced base steel sheets were cut into 100 mm × 200 mm pieces and plated using a batch-type hot-dip galvanizing test device manufactured by our company. More specifically, the produced base steel sheets were first introduced into coating baths having various chemical compositions and the coating bath temperatures shown in Table 1 at the entry sheet temperatures shown in Table 1 and immersed for approximately 3 seconds. They were then pulled up at a pulling speed of 20 to 200 mm / s, and the coating layer thickness was adjusted to the value shown in Table 1 by N2 gas wiping. Next, the base steel sheets with the coating layer attached were cooled to 300 °C using nitrogen gas as the cooling gas at the average cooling rate shown in Table 1, thereby obtaining plated steel sheets with coating layers formed on both sides of the base steel sheet. The sheet temperature was measured using a thermocouple spot-welded to the center of the base steel sheet.

[0077] The physical properties and characteristics of the resulting plated steel sheets were measured and evaluated by the following methods.

[0078] [Chemical composition analysis of plating layers, etc.] The chemical composition of the plating layer was determined by immersing a 30mm x 30mm cut sample in a 10% HCl solution containing 0.04% Ibit 710K as an inhibitor, pickling the plating layer, and then measuring the plating components dissolved in the solution using ICP emission spectroscopy. The mass of the sample was also measured before and after pickling, and the coating weight of the plating layer was determined from the change in mass. The results are shown in Table 1.

[0079] [Structural analysis of plating layer] The Fe-Al phase and the main layer were identified by the above-mentioned method, and the Si content and Zn content of the Fe-Al phase were determined by the same method. Furthermore, the value of L / L0 and the depth in the depth direction of the base steel sheet at which the C concentration was 0.10 mass% or less were determined by the above-mentioned method. In all examples, the Fe-Al phase was present at the interface with the base steel sheet in the coating layer, and a non-Fe-Al phase, i.e., the main layer, was present above the Fe-Al phase (on the surface side of the coated steel sheet).

[0080] [Substrate corrosion depth] The corrosion depth of the steel substrate was evaluated as follows. First, the plated steel sheet was placed in an atmospheric heating furnace at 900°C. After the temperature of the plated steel sheet reached the furnace temperature of -10°C, it was held there for 100 seconds. Next, the plated steel sheet was removed from the furnace and clamped between flat molds at approximately room temperature for quenching. After heating and quenching, 50mm x 100mm samples of the plated steel sheet were treated with zinc phosphate (SD5350 system: Nippon Paint Industrial Coating Co., Ltd. standard). Subsequently, electrocoating (PN110 Powernics Gray: Nippon Paint Industrial Coating Co., Ltd. standard) was performed to a thickness of 20μm and baked at 150°C for 20 minutes. Next, a cut was made in the center of the sample, reaching the steel substrate (base steel sheet). Next, a neutral salt spray cycle test specified in JIS H 8502:1999, 8.1, was performed for 360 cycles. Next, the electrodeposition coating was removed using a descoat, and the plating layer was removed using a 10% aqueous HCl solution containing an inhibitor. After that, the depth of corrosion of the steel substrate was measured using a laser meter, and the corrosion resistance was evaluated as follows. AA: Substrate corrosion depth 0.3 mm or less A: Substrate corrosion depth: over 0.3 to 0.5 mm B: Substrate corrosion depth over 0.5 mm

[0081] [Paint blister] Paint blistering was evaluated as follows. First, a 50 mm x 100 mm sample of plated steel sheet was heated and quenched in the same manner as for the steel substrate corrosion depth. Then, a zinc phosphate treatment (SD5350 system: Nippon Paint Industrial Coating Co., Ltd. standard) was applied to the sample. Next, electrodeposition coating (PN110 Powernics Gray: Nippon Paint Industrial Coating Co., Ltd. standard) was applied to a thickness of 20 μm and baked at 150°C for 20 minutes. Next, a cut was made in the center of the sample, reaching the steel substrate (base steel sheet). Next, a neutral salt spray cycle test specified in JIS H 8502:1999, 8.1, was performed for 120 cycles, and the paint blister width was measured. Corrosion resistance was evaluated as follows. AAA: 2mm or less AA: over 2~3mm A: More than 3~4mm B: More than 4mm

[0082] Plated steel sheets with a substrate corrosion depth rating of AA or A and a coating blister rating of AAA, AA, or A were evaluated as being capable of exhibiting improved corrosion resistance even when applied to hot stamping. The results are shown in Table 1.

[0083] [Table 1-1]

[0084] [Table 1-2]

[0085] Referring to Table 1, in Comparative Example 32, the high entry sheet temperature during the galvanizing process prevented the desired Si and Zn contents from being obtained in the Fe-Al phase, resulting in reduced corrosion resistance after hot stamping. In Comparative Example 33, the fast average cooling rate from galvanizing to 300°C increased the frequency of nucleation of the Fe-Al phase, resulting in an L / L0 value exceeding 4.0 at the interface with the base steel sheet, i.e., the formation of an Fe-Al phase with significant irregularities. This is thought to be related to the oxide film on the surface of the coating layer being destroyed by the Fe-Al phase that grew into needle-like shapes during high-temperature heating during hot stamping, resulting in the evaporation of much of the Zn contained in the coating layer. As a result, corrosion resistance after hot stamping was reduced. In Comparative Example 34, the low Zn content in the coating layer prevented the coating layer from fully exerting its sacrificial corrosion protection effect, resulting in increased corrosion depth of the base steel after hot stamping and reduced corrosion resistance. In Comparative Example 35, the high Si content in the coating layer resulted in significant formation of an Fe-Al-Si phase in the Fe2Al5 phase in the coating layer after hot stamping. As a result, coating blistering increased after hot stamping and corrosion resistance deteriorated. In Comparative Example 36, the low Si content in the coating layer resulted in reduced adhesion of the coating layer, resulting in reduced corrosion resistance after hot stamping. In Comparative Example 37, the coating layer had an insufficient coating weight, resulting in reduced corrosion resistance after hot stamping. In Comparative Example 38, the coating bath temperature was low, resulting in solidification of the coating bath when the base steel sheet was immersed in the coating bath, preventing the coating layer from being properly formed. For this reason, subsequent production was stopped, and analysis and performance evaluation were not performed.

[0086] In contrast to this, in the plated steel sheets according to all the examples, the chemical composition of the entire plating layer was controlled within a predetermined range, and the coating weight of the plating layer was 20 g / m per side. 2In addition to the above, by containing 3.0 to 15.0% Si and 2.0 to 15.0% Zn in the Fe-Al phase formed at the interface with the base steel sheet, and further controlling the morphology of the Fe-Al phase so that the contact length L between the Fe-Al phase and the main layer and the coating layer length L0 satisfy the relationship L / L0 ≦ 4.0, the corrosion resistance of the hot-stamped body was significantly improved even when applied to hot stamping by combining the corrosion resistance improvement effect due to the solid solution of Zn in the Fe2Al5 phase and the corrosion resistance improvement effect due to the suppression of Fe-Al-Si phase formation in the coating layer. In particular, in Examples 6 to 21, in which the chemical composition of the entire coating layer contained 10.0 to 35.0% Zn and 0.1 to 6.0% Si and the morphology of the Fe-Al phase was controlled to satisfy the relationship L / L0 ≦ 3.0, the corrosion depth of the base steel and the blistering were evaluated as AA, and corrosion resistance was further improved. In addition, in Examples 27 to 31, in which the chemical composition of the entire coating layer contained 10.0 to 35.0% Zn and 0.1 to 6.0% Si, the morphology of the Fe-Al phase was controlled to satisfy the relationship L / L0 ≦ 3.0, and the depth at which the C concentration in the surface layer of the base steel sheet was 0.10 mass% or less was controlled to 0.5 μm or more, the corrosion depth of the substrate steel was evaluated as AA and the blistering was evaluated as AAA, thereby achieving further improved corrosion resistance. Furthermore, when the main layer of each coated steel sheet was analyzed, it was found that the main layer in all coated steel sheets according to the examples contained at least one of the α-Al phase, the η-Zn phase, and the Si phase, and in particular, the main layer in all coated steel sheets according to the examples contained 50 area% or more of the α-Al phase. [Explanation of symbols]

[0087] 1. Plated steel sheet 2 Base steel plate 3 plating layer 4. Fe-Al phase 5 Main layer L: Contact length between the Fe-Al phase and the main layer L0 length of plating layer

Claims

1. A steel plate having a base steel sheet and a plating layer formed on a surface of the base steel sheet, The chemical composition of the plating layer is, in mass%, Zn: 5.0-40.0%, Si: 0.1 to 15.0%, Fe: 0.5-25.0%, Ni: 0 to 0.500%, Mg: 0-3.000%, Ca: 0-3.000%, Sb: 0 to 0.500%, Pb: 0 to 0.500%, Cu: 0-1.000%, Sn: 0-1.000%, Ti: 0 to 1.000%, Cr: 0-1.000%, Nb: 0 to 1.000%, Zr: 0 to 1.000%, Mn: 0 to 1.000%, Mo: 0-1.000%, Ag: 0-1.000%, Li: 0 to 1.000%, La: 0 to 0.500%, Ce: 0-0.500%, B: 0 to 0.500%, Y: 0 to 0.500%, Sr: 0-0.500%, In: 0 to 0.500%, Co: 0 to 0.500%, Bi: 0-0.500%, P: 0 to 0.500%, W: 0 to 0.500%, and The balance is Al and impurities, and The total content of Ni, Mg, Ca, Sb, Pb, Cu, Sn, Ti, Cr, Nb, Zr, Mn, Mo, Ag, Li, La, Ce, B, Y, Sr, In, Co, Bi, P, and W is 5.000% or less; the plating layer includes an Fe—Al phase located at the interface with the base steel sheet and a main layer located on the Fe—Al phase, In the cross section of the plating layer, the contact length L between the Fe—Al phase and the main layer and the length L of the plating layer 0 L / L 0 ≦4.0, The Fe—Al phase contains, in mass%, Si: 3.0 to 15.0% and Zn: 2.0 to 15.0%, The coating weight of the plating layer is 20 g / m per side 2 A plated steel sheet characterized by the above.

2. The chemical composition of the plating layer is, in mass%, Zn: 10.0 to 35.0%, and Si: 0.1 to 6.0%; L / L 0 The plated steel sheet according to claim 1, wherein the tensile strength is ≦3.

0.

3. 3. The plated steel sheet according to claim 1, wherein a depth at which the C concentration is 0.10 mass% or less is 0.5 μm or more in a depth direction of the base steel sheet from an interface between the base steel sheet and the plating layer.

Citation Information

Patent Citations

  • Continuous hot dipping Al-10Si-Zn sacrificial anode alloy coating and preparation method thereof

    CN116288106A

  • Aluminum-zinc-silicon alloy coating and its manufacture

    JP1993148668A

  • HOT-DIP Al-Zn ALLOY PLATED STEEL SHEET EXCELLENT IN WORKABILITY, AND MANUFACTURING METHOD THEREFOR

    JP2002348649A

  • Hot dip zn-al-cr alloy plated steel having excellent corrosion resistance

    JP2002356759A

  • Steel sheet covered with a metallic coating based on aluminum

    JP2018528324A