Hot-pressed parts

A hot-pressed member with an FeAl alloy and Zn phase coating layer addresses the poor external corrosion resistance of Al-based plated steel sheets by enhancing appearance and corrosion resistance, specifically suppressing paint blistering and red rust.

JP7758165B2Active Publication Date: 2025-10-22JFE STEEL CORP
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Patent Information

Application Number
JP2024510726
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-03-24
Filing Date
2023-11-14
Publication Date
2025-10-22
Estimated Expiration
2043-11-14

AI Technical Summary

Technical Problem

Conventional hot-pressed components made from Al-based plated steel sheets exhibit poor external corrosion resistance, particularly at painted end faces, leading to issues like red rust and paint blistering, despite having good perforation corrosion resistance.

Method used

A hot-pressed member with a coating layer containing an FeAl alloy phase and a Zn phase, achieving a natural immersion potential of -1100 to -900 mV, which enhances both appearance and corrosion resistance by suppressing paint blistering and red rust.

Benefits of technology

The solution effectively suppresses paint blistering and red rust, while also preventing delayed fracture due to hydrogen corrosion, ensuring long-term corrosion resistance.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided is a hot-pressed member that exhibits an excellent appearance and corrosion resistance by a coated end face. This hot-pressed member has a steel material and a coating layer on at least one surface of the steel material. The coating layer contains an FeAl alloy phase and a Zn phase and has a spontaneous immersion potential in an air-saturated 0.5 mass% aqueous NaCl solution at 25°C of -1100 to -900 mV with reference to the silver-silver chloride-saturated potassium chloride electrode.
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Description

[Technical Field]

[0001] The present invention relates to a hot-pressed member, and more particularly to a hot-pressed member having excellent corrosion resistance on the appearance of a painted end face. [Background technology]

[0002] In recent years, the automotive industry has been promoting the improvement of the performance of steel sheets and the reduction of weight, leading to an increase in the use of high-strength steel sheets. However, as the strength of steel sheets increases, press formability generally decreases, making it difficult to obtain complex part shapes.

[0003] Against this background, the application of hot pressing technology, which forms steel sheets hot rather than cold, is increasing. Hot pressing is a forming method in which steel sheets are heated to the austenite single-phase temperature range (around 900°C), then press-formed while still at high temperature, and simultaneously rapidly cooled (quenched) by contact with a die. Since the steel is press-formed in a heated and softened state and then strengthened by quenching, hot pressing makes it possible to manufacture components with high strength while maintaining press formability.

[0004] On the other hand, automotive components are also required to have high corrosion resistance. The corrosion resistance required for automotive components can be broadly divided into resistance to perforation corrosion (perforation corrosion resistance) and resistance to cosmetic corrosion (cosmetic corrosion resistance). Perforation corrosion is, as the name suggests, corrosion that forms through holes in the steel material that makes up the component. On the other hand, cosmetic corrosion is corrosion that damages the appearance, such as the formation of red rust and paint blistering due to corrosion.

[0005] In the field of hot pressing, it is common to use Al-plated steel sheets to provide rust prevention to hot pressed parts. By using Al-plated steel sheets as the material, the puncture corrosion resistance of hot pressed parts is significantly improved.

[0006] However, while hot-pressed components made from conventional Al-based plated steel sheets have excellent perforation corrosion resistance, they suffer from the problem of poor external corrosion resistance. Specifically, hot-pressed components made from Al-based plated steel sheets have a surface layer of intermetallic compounds or diffusion layers, primarily composed of Al, a component of the plating, and Fe diffused from the base steel sheet. However, these layers have a small potential difference with the base material (steel), resulting in little anodic protection for the base material. Therefore, at cut edges and other locations where there is no plating layer and the upper coating is thin, the base material quickly corrodes, resulting in red rust. Furthermore, because the intermetallic compounds themselves contain a high concentration of Fe, red rust can form during anodic protection, regardless of whether the base material is corroded or not.

[0007] As described above, conventional hot-pressed members using general Al-based plated steel sheets have excellent perforation corrosion resistance, but their appearance corrosion resistance is insufficient compared to pressed members manufactured by cold pressing zinc-based plated steel sheets.

[0008] One of the reasons for the insufficient external corrosion resistance is poor chemical conversion treatability. That is, in the production of general automotive components, hot-pressed components are subjected to a zinc phosphate-based chemical conversion treatment as a surface treatment, and then painted. During the chemical conversion treatment, a chemically stable Al oxide film is formed on the outermost surface of the Al-plated steel sheet after hot pressing, so almost no zinc phosphate-based chemical conversion treatment film is formed.

[0009] Against this background, various technologies have been proposed to improve the appearance, corrosion resistance, and other properties of hot-pressed parts made of Al-based plated steel sheets.

[0010] For example, Patent Document 1 proposes a technique of using a plated steel sheet having an Al plated layer and a surface coating layer containing ZnO formed on the Al plated layer as a steel sheet for hot pressing.

[0011] Furthermore, Patent Document 2 proposes a method in which a plated steel sheet having an Al-based plating layer is heated in an atmosphere in which the hydrogen concentration and dew point are controlled, and then hot-pressed. [Prior art documents] [Patent documents]

[0012] [Patent Document 1] International Publication No. 2009 / 131233 [Patent Document 2] Japanese Patent Application Laid-Open No. 2006-051543 Summary of the Invention [Problem to be solved by the invention]

[0013] However, as a result of the inventors' investigations, it was found that the conventional techniques proposed in the above Patent Documents 1 and 2 still provide insufficient external corrosion resistance on the painted end faces of hot-pressed parts.

[0014] For example, Patent Document 1 reports that forming a coating containing ZnO, a wurtzite compound, improves corrosion resistance after painting. However, Patent Document 1 evaluates corrosion resistance after painting based only on the width of paint blistering, and does not consider the occurrence of red rust. In actual automotive components, it is necessary to suppress not only paint blistering but also the occurrence of red rust, which has a significant impact on appearance. The technology in Patent Document 1 improves chemical conversion treatability, thereby suppressing paint blistering, but the red rust resistance was not sufficient.

[0015] The present invention has been made in view of the above circumstances, and aims to provide a hot-pressed member having excellent appearance and corrosion resistance at the painted end face. More specifically, the present invention aims to provide a hot-pressed member in which the occurrence of paint blistering and red rust at the painted end face is suppressed. [Means for solving the problem]

[0016] The present invention has been made to solve the above problems, and the gist of the present invention is as follows.

[0017] 1. A steel material and a coating layer on at least one surface of the steel material, the coating layer includes an FeAl alloy phase and a Zn phase, A hot-pressed member having a natural immersion potential in an air-saturated 0.5 mass % NaCl aqueous solution at 25°C of -1100 to -900 mV relative to a silver-silver chloride-saturated potassium chloride electrode.

[0018] 2. The amount of the Zn phase in the coating layer is 5 to 60 g / m per side of the steel material. 2 2. The hot-pressed member according to claim 1,

[0019] 3. The hot-pressed member according to 1 or 2 above, wherein the FeAl alloy phase has an average grain size of 3 to 20 μm. [Effects of the Invention]

[0020] According to the present invention, a hot-pressed member having excellent appearance and corrosion resistance at the painted end surface can be provided. More specifically, according to the present invention, the occurrence of paint blistering and red rust at the painted end surface can be suppressed. Furthermore, as a result of the suppression of corrosion, delayed fracture due to hydrogen generated by corrosion can also be prevented. DETAILED DESCRIPTION OF THE INVENTION

[0021] Hereinafter, embodiments for carrying out the present invention will be specifically described. Note that the following description shows a preferred embodiment of the present invention, and the present invention is not limited to the following description. Furthermore, "%" used as a unit of content represents "% by mass" unless otherwise specified.

[0022] [Hot-pressed parts] A hot-pressed member according to one embodiment of the present invention includes a steel material and a coating layer on at least one surface of the steel material. The coating layer contains an FeAl alloy phase and a Zn phase. The hot-pressed member according to this embodiment has a natural immersion potential of −1100 to −900 mV in an air-saturated 0.5 mass % NaCl aqueous solution at 25°C, relative to a silver-silver chloride-saturated potassium chloride electrode.

[0023] (Steel) In the present invention, the above-mentioned problems are solved by controlling the composition of the coating layer and the natural immersion potential, as will be described later. Therefore, the steel material to be used as the base material is not particularly limited, and any steel material can be used.

[0024] However, from the viewpoint of use as an automobile frame member, etc., it is desirable for the hot-pressed member to have high strength. In particular, to obtain a hot-pressed member having a tensile strength of more than 1000 MPa, it is preferable to use a steel material having the following chemical composition.

[0025] In mass%, C: 0.1 to 0.5%, Si: 0.1 to 2.0%, Mn: 0.1 to 5.0% P: 0.02% or less, S: 0.01% or less, Al: 0.1% or less, and N: Contains 0.01% or less, The balance is Fe and unavoidable impurities.

[0026] The component composition may further be optionally Nb: 0.05% or less, Ti: 0.05% or less, B: 0.0050% or less, Cr: 1.0% or less, and Sb: 0.03% or less It may contain at least one selected from the group consisting of:

[0027] The effects and preferred contents of each element in the above-mentioned preferred component composition will be described below.

[0028] C: 0.1 to 0.5% C is an element that improves strength by forming a structure such as martensite. From the viewpoint of obtaining a strength exceeding 1000 MPa, the C content is preferably 0.1% or more. On the other hand, if the C content exceeds 0.5%, the toughness of the spot welds deteriorates. Therefore, the C content is preferably 0.5% or less.

[0029] Si: 0.1 to 2.0% Si is an effective element for strengthening steel and obtaining good material properties. To obtain this effect, the Si content is preferably 0.1% or more. On the other hand, if the Si content exceeds 2.0%, ferrite is stabilized, resulting in a decrease in hardenability. Therefore, the Si content is preferably 2.0% or less.

[0030] Mn: 0.1 to 5.0% Mn is an element effective in increasing the strength of steel. From the viewpoint of ensuring excellent mechanical properties and strength, it is preferable that the Mn content be 0.1% or more. On the other hand, if the Mn content is excessive, surface segregation during annealing increases, which affects the adhesion of the coating layer to the steel material. Therefore, from the viewpoint of improving the adhesion of the coating layer, it is preferable that the Mn content be 5.0% or less.

[0031] P:0.02% or less If the P content is excessive, P segregation to austenite grain boundaries during casting causes grain boundary embrittlement, deteriorating local ductility. As a result, the balance between strength and ductility of the steel material is reduced. Therefore, from the viewpoint of improving the balance between strength and ductility of the steel material, it is preferable that the P content be 0.02% or less. On the other hand, there is no particular restriction on the lower limit of the P content, and it may be 0%. However, since an excessive reduction leads to an increase in manufacturing costs, it is preferable that the P content be 0.001% or more.

[0032] S: 0.01% or less S becomes inclusions such as MnS, which can cause deterioration in impact resistance and cracking along the metal flow path of welds. Therefore, it is desirable to reduce the S content as much as possible, and specifically, it is preferable to set it to 0.01% or less. Furthermore, from the viewpoint of ensuring good stretch flangeability, it is more preferable to set it to 0.005% or less. On the other hand, there is no particular restriction on the lower limit of the S content, and it may be 0%. However, since excessive reduction leads to an increase in manufacturing costs, it is preferable that the S content be 0.0001% or more.

[0033] Al: 0.1% or less Al is an element that acts as a deoxidizer. However, if the Al content exceeds 0.1%, hardenability decreases. Therefore, the Al content is preferably 0.1% or less. On the other hand, although there is no particular lower limit for the Al content, from the viewpoint of enhancing the effect as a deoxidizer, the Al content is preferably 0.01% or more.

[0034] N: 0.01% or less If the N content exceeds 0.01%, AlN is generated during heating before hot pressing, resulting in reduced hardenability. Therefore, the N content is preferably 0.01% or less. On the other hand, the lower limit of the N content is not particularly limited and may be 0%. However, since excessive reduction leads to increased manufacturing costs, the N content is preferably 0.001% or more.

[0035] Nb: 0.05% or less Nb is an effective component for strengthening steel, but excessive Nb content reduces shape fixability. Therefore, when Nb is added, the Nb content is preferably 0.05% or less. On the other hand, the lower limit of the Nb content is not particularly limited and may be 0%.

[0036] Ti: 0.05% or less Like Nb, Ti is an effective component for strengthening steel, but excessive Ti content reduces shape fixability. Therefore, when Ti is added, the Ti content is preferably 0.05% or less. On the other hand, the lower limit of the Ti content is not particularly limited and may be 0%.

[0037] B: 0.0050% or less B is an element that has the effect of suppressing the formation and growth of ferrite from austenite grain boundaries. However, the addition of excessive B significantly impairs formability. Therefore, when B is added, from the viewpoint of improving formability, the B content is preferably 0.0050% or less. On the other hand, although there is no lower limit for the B content, from the viewpoint of enhancing the effect of adding B, it is preferably 0.0002% or more.

[0038] Cr:1.0% or less Cr is a useful element for strengthening steel and improving hardenability. However, because Cr is an expensive element, when Cr is added, the Cr content is preferably 1.0% or less to reduce alloy costs. On the other hand, although there is no particular lower limit for the Cr content, it is preferably 0.1% or more from the viewpoint of enhancing the effect of adding Cr.

[0039] Sb: 0.03% or less Sb is an element that has the effect of preventing decarburization of the surface layer of a steel sheet during hot pressing. However, excessive Sb increases the rolling load, thereby reducing productivity. Therefore, when Sb is added, the Sb content is preferably 0.03% or less from the viewpoint of further improving productivity. On the other hand, although there is no particular lower limit for the Sb content, it is preferably 0.003% or more from the viewpoint of enhancing the effect of adding Sb.

[0040] As will be described later, the hot-pressed member of the present invention can be produced by hot-pressing a steel sheet for hot-pressing having a plating layer under predetermined conditions. Therefore, it can also be said that the steel material constituting the hot-pressed member of the present invention is a hot-pressed steel sheet.

[0041] (covering layer) The hot-pressed member of the present invention has a coating layer containing an FeAl alloy phase and a Zn phase on the surface of a steel sheet. The coating layer may be provided on at least one side of the steel sheet, or may be provided on both sides. The Zn phase contributes to improving appearance corrosion resistance, particularly red rust resistance. Furthermore, the FeAl alloy phase contributes to pitting corrosion resistance and has the effect of reducing the corrosion rate of the Zn phase.

[0042] The thickness of the coating layer is not particularly limited, but in order to ensure corrosion resistance, it is preferably 7 μm or more, more preferably 10 μm or more, and even more preferably 13 μm or more. On the other hand, from the viewpoint of adhesion of the coating layer, the thickness of the coating layer is preferably 30 μm or less, more preferably 25 μm or less, and even more preferably 20 μm or less.

[0043] ·FeAl alloy phase As described above, the FeAl alloy phase contributes to pitting corrosion resistance and has the effect of reducing the corrosion rate of the Zn phase. In the present invention, the FeAl alloy phase is defined as a phase containing Fe and Al in a total amount of 80 atomic % or more. The FeAl alloy phase can be identified based on the chemical composition measured by energy dispersive X-ray analysis (EDS). More specifically, the presence or absence of the FeAl alloy phase can be determined by the method described in the examples.

[0044] The form of Fe and Al contained in the FeAl alloy phase is not limited. Fe and Al may form an alloy (solid solution) or an intermetallic compound. An example of the solid solution is an α-Fe phase in which Al is dissolved. The intermetallic compound is also not particularly limited, but examples include Fe2Al5, Fe4Al 13 and FeAl intermetallic compounds such as FeAl.

[0045] The FeAl alloy phase may contain elements other than Fe and Al in a total amount of 20 atomic % or less. In one embodiment of the present invention, the elements other than Fe and Al may include, for example, at least one selected from the group consisting of Mg, Ca, Si, Cr, Mn, and Zn. The elements other than Fe and Al are not particularly limited and may be present in the FeAl alloy phase in any form. For example, the elements other than Fe and Al may form an intermetallic compound, a solid solution, or a compound such as an oxide.

[0046] The particle size of the FeAl alloy phase is not particularly limited. However, if the particle size is too small, the interface area between the Zn phase and the FeAl alloy phase increases, and the corrosion rate of the Zn phase due to galvanic corrosion increases. As a result, corrosion resistance decreases. Therefore, from the viewpoint of further improving corrosion resistance, the average particle size of the FeAl alloy phase is preferably 3 μm or more, more preferably 5 μm or more, and even more preferably 7 μm or more. On the other hand, from the viewpoint of adhesion of the FeAl alloy phase to the steel material, the average particle size of the FeAl alloy phase is preferably 20 μm or less, more preferably 18 μm or less, and even more preferably 15 μm or less.

[0047] The average grain size of the FeAl alloy phase can be measured by observing the cross section of the hot-pressed member with a scanning electron microscope (SEM). Specifically, the cross section of the mirror-finished hot-pressed member is observed with an SEM, and a backscattered electron image is obtained at an accelerating voltage of 5 kV and a magnification of 500 times. The FeAl alloy phase grains are identified from the backscattered electron image based on the crystal orientation contrast. The major and minor axes of each identified grain are measured, and the average value is taken as the grain size of each FeAl alloy phase. The average value of the grain sizes of 20 randomly selected FeAl alloy phase grains is taken as the average grain size of the FeAl alloy phase in the hot-pressed member.

[0048] ·Zn phase To achieve the natural immersion potential within the above range, the coating layer must contain a Zn phase. The presence of the Zn phase reduces the rate of corrosion (appearance corrosion) from areas where the anti-corrosion function of the coating has decreased, such as scratches in the coating or the edges of the coating, thereby maintaining good appearance quality. It also reduces the risk of delayed fracture caused by hydrogen generated by corrosion.

[0049] Furthermore, since the coating layer contains both an FeAl alloy phase and a Zn phase, excellent corrosion resistance can be obtained over a long period of time. That is, the FeAl alloy phase has a low anodic dissolution rate, excellent corrosion resistance, and also has a low rate of oxygen reduction reaction, which is a cathodic reaction in atmospheric corrosion environments. By including the FeAl alloy phase together with the Zn phase in the coating layer, corrosion of the Zn phase is suppressed, resulting in stable red rust resistance over a long period of time. The internal structure of the coating layer is not particularly limited, but may generally be a structure in which the Zn phase exists between the crystal grains of the FeAl alloy phase.

[0050] The presence or absence of a Zn phase in the coating layer can be determined by observing the cross section of the hot-pressed part using SEM-EBSD (electron backscatter diffraction). Specifically, the cross section of a mirror-finished hot-pressed part is observed using SEM-EBSD at an accelerating voltage of 15 kV and a magnification of 2000 times to obtain a backscattered electron image. The Zn phase is identified in the backscattered electron image as having a bright contrast compared to the FeAl alloy phase and a hexagonal crystal structure.

[0051] The Zn phase may contain other metal components to the extent that the crystal structure is not changed or an intermetallic compound is not formed. The Zn phase may exist as a single phase or as a mixture with other metals or intermetallic compounds.

[0052] The amount of the Zn phase to be applied is not particularly limited, but is preferably 5 g / m per side. 2 If the amount of the Zn phase is less than 5 g / m per side, the period during which the effect of preventing red rust formation can be obtained will be shortened. 2 It is preferable that the content is 10 g / m or more.2 More preferably, it is 20 g / m or more. 2 On the other hand, the amount of Zn phase deposited on one side is preferably 60 g / m or more. 2 If the coating weight exceeds 60 g / m², the effect of preventing red rust formation will be saturated and there is a risk of LME (liquid metal embrittlement) cracking occurring during welding. 2 It is preferable that:

[0053] The amount of the Zn phase deposited can be determined by subjecting the hot-pressed member to anodic electrolysis to dissolve the Zn phase in the coating layer in an aqueous solution, and quantitatively analyzing the resulting aqueous solution using inductively coupled plasma-mass spectrometry (ICP-MS). Specifically, first, the hot-pressed member is used as a working electrode and a platinum mesh electrode as a counter electrode, and the Zn phase is dissolved in a 3% sodium hydroxide-1% aluminum chloride aqueous solution at a current of 4 mA / cm. 2 The electrolysis is stopped when the potential becomes steeply noble, and the amount of Zn in the solution is quantitatively analyzed by ICP-MS to measure the amount of dissolved Zn. The amount of Zn can be determined by dividing it by the surface area of ​​the hot-pressed workpiece.

[0054] The coating layer may further contain other phases in addition to the FeAl alloy phase and the Zn phase. The other phases are not particularly limited and may be any phase. For example, the other phases may be one or both of a metal phase and an intermetallic compound phase. Examples of the other phases include MgZn2, Mg2Zn 11 Examples of intermetallic compound phases include:

[0055] The proportion of the other phases contained in the coating layer is not particularly limited. However, from the viewpoint of further enhancing the effect of the FeAl alloy phase and the Zn phase in improving the appearance and corrosion resistance, it is desirable that the proportion of the other phases be low. Specifically, the area ratio of the other phases in the cross section of the coating layer is preferably 30% or less, and more preferably 15% or less. The lower limit of the area ratio is not particularly limited and may be 0%.

[0056] The hot-pressed member of the present invention may further have an oxide layer on the coating layer, and examples of the oxide contained in the oxide layer include Zn oxide, Al oxide, Mn oxide, and composite oxides thereof.

[0057] If the oxide layer is excessively thick, the adhesion of the coating may be reduced. Therefore, the thickness of the oxide layer is preferably 5 μm or less. In the present invention, the oxide layer is not essential, and it may be removed by shot blasting or the like after hot pressing and before coating. In other words, the lower limit of the thickness of the oxide layer may be 0 μm. However, since this increases the number of steps and increases costs, coating may be performed as is after hot pressing as long as it is within a range that does not affect adhesion.

[0058] (natural immersion potential) In the present invention, it is important that the natural immersion potential of the hot-pressed member is -1100 to -900 mV based on a silver-silver chloride-saturated potassium chloride electrode (SSE). By setting the natural immersion potential within this range, the cathodic protection performance of the steel material constituting the hot-pressed member is maximized, and excellent corrosion resistance in appearance can be obtained. In addition, delayed fracture due to hydrogen generated during corrosion can be reduced.

[0059] If the natural immersion potential is more noble (positive) than -900 mV, the potential difference between the steel material and the coating layer is small, resulting in insufficient cathodic protection performance and inferior appearance corrosion resistance. Therefore, the natural immersion potential is set to -900 mV or less, preferably -925 mV or less, and more preferably -950 mV or less. On the other hand, if the natural immersion potential is more noble (negative) than -1100 mV, the effect of improving appearance corrosion resistance saturates. In addition, the amount of hydrogen generated by corrosion becomes excessive, increasing the risk of delayed fracture. Therefore, the natural immersion potential is set to -1100 mV or more, preferably -1075 mV or more, and more preferably -1050 mV or more.

[0060] In the present invention, the natural immersion potential refers to the natural immersion potential in an air-saturated 0.5 mass% NaCl aqueous solution at 25°C, expressed relative to a silver-silver chloride-saturated potassium chloride electrode. In measuring the natural immersion potential, a 10 mmφ region on any flat portion of the hot-pressed part having an area of ​​10 mmφ or more is used as the working electrode. The average value of the immersion potential measured between 60 seconds and 600 seconds after the working electrode is immersed in the NaCl aqueous solution is taken as the natural immersion potential of the hot-pressed part. In the measurement, the temperature of the NaCl aqueous solution is adjusted to 25±5°C.

[0061] Although the mechanical properties of the hot-pressed member of the present invention are not particularly limited, it is preferable that the residual stress measured using X-ray diffraction at any location of the hot-pressed member is less than 600 MPa. If trimming or piercing is performed by cold working after hot press forming, residual stress will be generated at that location, increasing the risk of delayed fracture. To reduce the risk of delayed fracture, it is preferable not to perform cold working after hot press forming. Furthermore, if trimming or piercing is performed, it is preferable to perform the processing using a laser processing device.

[0062] [Manufacturing method] Next, a preferred method for producing the hot-pressed member of the present invention will be described.

[0063] The hot-pressed member of the present invention can be produced by plating a base steel sheet to form a plated steel sheet, and then hot-pressing the plated steel sheet.

[0064] The base steel sheet is not particularly limited and any steel sheet can be used. The suitable composition of the steel sheet is the same as the preferred composition of the steel material for the hot-pressed member described above. The base steel sheet is preferably a hot-rolled steel sheet or a cold-rolled steel sheet.

[0065] The plating of the base steel sheet can be carried out by any method, but is preferably carried out by hot-dip plating. Hereinafter, the case where a plated steel sheet is produced by hot-dip plating will be described.

[0066] First, prior to hot-dip galvanization, the base steel sheet is annealed. Next, the annealed base steel sheet is immersed in a hot-dip galvanizing bath to produce a hot-dip galvanized steel sheet having a hot-dip galvanized layer on the surface of the base steel sheet. The hot-dip galvanizing bath preferably contains one or both of Ca and Sr in addition to Al, Zn, and Fe that flows out from the base material and the equipment in the bath. Furthermore, the hot-dip galvanizing bath may optionally further contain Si. More preferably, the hot-dip galvanizing bath has a chemical composition containing 30-60% Zn, 0.1-13% Si, 0-10% Mg, 0.05-3% Ca+Sr, and 0-5% Fe, with the balance being Al and unavoidable impurities.

[0067] The coating weight of the hot-dip coating layer is not particularly limited, but is preferably 20 g / m per side of the steel sheet. 2 It is preferable that the content is 30 g / m or more. 2 More preferably, it is 35 g / m or more. 2 More preferably, it is 50 g / m or more. 2 It is particularly preferable that the coating weight of the hot-dip coated layer is 300 g / m2 or more per one side of the steel sheet. 2 Preferably, it is 250 g / m or less. 2 More preferably, it is 200 g / m or less. 2 It is more preferable that the coating weight of the plating layer is not more than 1000 kJ / cm2. As described above, when hot pressing is performed, the coating weight of the plating layer increases due to the diffusion of Fe from the base steel sheet. Therefore, by setting the coating weight of the hot-dip plating layer on the hot-dip plated steel sheet before hot pressing to the above-mentioned range, the coating weight of the plating layer on the hot-pressed member can be set to the above-mentioned preferred range.

[0068] The coating weight per side of the hot-dip coated layer is determined by the following method. First, the hot-dip coated steel sheet to be evaluated is punched to obtain three 48 mm diameter samples. Then, one side of each sample (the side opposite to the side on which the coating weight is measured) is masked. Each sample is immersed for 20 minutes in a 17% hydrochloric acid solution containing 1 mL of hexamethylenetetramine as an inhibitor to dissolve the hot-dip coated layer, and the weight of each sample is then measured again. The difference in mass before and after dissolution of the hot-dip coated layer is divided by the area of ​​the sample to calculate the coating weight per unit area of ​​each sample. The average coating weight of the three samples is then taken as the coating weight per side of the hot-dip coated layer on that hot-dip coated steel sheet.

[0069] Next, the hot-dip plated steel sheet is hot-pressed to produce a hot-pressed member. The hot-pressing process includes a heating step of heating a steel sheet for hot pressing, and a hot-pressing step of hot-pressing the steel sheet for hot pressing heated in the heating step. In the heating step, the steel sheet is preferably heated from room temperature to a heating temperature between the Ac3 transformation point of the base steel sheet and 1000°C in an atmosphere having an oxygen concentration of 21 to 35% by volume, for a heating time of 60 to 600 seconds. The steel sheet for hot pressing after the heating step may be further held at the heating temperature in the atmosphere for a holding time of 300 seconds or less.

[0070] Oxygen concentration It is economical and common to use air or dry air with a low dew point as the atmospheric gas for the heating step in hot pressing. When a plated steel sheet containing Al and Zn is heated under these common atmospheric gases, almost no metallic Zn phase remains on the surface of the hot-pressed steel sheet due to evaporation or oxidation. The inventors have extensively investigated the effect of the atmosphere in the heating step on the state of Zn on the surface after heating. As a result, they have found that by supplying pure oxygen in addition to air as the atmospheric gas to enhance oxidization, a large amount of metallic Zn, i.e., the Zn phase, can be retained in the coating layer of the final hot-pressed steel sheet. This is because a dense zinc oxide film is formed on the surface of the steel sheet for hot pressing during the heating step, suppressing further oxidation and evaporation.

[0071] To achieve the above-mentioned effect, it is preferable that the oxygen concentration in the atmosphere during the heating step is 21% by volume or more. However, if the oxygen concentration is less than 22% by volume, the above-mentioned effect is not necessarily sufficient. Therefore, it is more preferable that the oxygen concentration is 22% by volume or more, and even more preferable that it is 25% by volume or more. If the oxygen concentration is less than 22% by volume, in order to prevent the Zn phase from disappearing, it is necessary to lower the heating temperature and to include at least one of Ca and Sr in the plating film. On the other hand, if the oxygen concentration exceeds 35% by volume, the effect saturates and costs increase significantly. Therefore, it is preferable that the oxygen concentration be 35% by volume or less.

[0072] ·Heating temperature If the heating temperature in the heating step is lower than the Ac3 transformation point, it may be impossible to obtain the strength required for a hot-pressed member. Therefore, the heating temperature is preferably set to the Ac3 transformation point or higher. On the other hand, if the heating temperature exceeds 1000°C, the operating costs increase. Therefore, the heating temperature is preferably set to 1000°C or lower, more preferably 950°C or lower, and even more preferably 900°C or lower. In particular, when the oxygen concentration is less than 22% by volume, the heating temperature is preferably set to 850°C or lower.

[0073] The Ac3 transformation point can be determined by the following formula (1). Ac3 transformation point (℃) = 881-206C + 53Si-15Mn-1Cr…(1) In formula (1), the element symbols represent the content (mass%) of each element. The content of elements that are not contained is calculated as 0.

[0074] Heat-up time In the heating step, if the temperature rise time from the start of heating to the heating temperature is short, the alloying reaction between Fe and Al will not proceed sufficiently. Therefore, the temperature rise time is preferably 60 seconds or longer. In particular, from the viewpoint of achieving an average particle size of the FeAl alloy phase of 3 μm or more, the temperature rise time is more preferably 120 seconds or longer. On the other hand, if the temperature rise time exceeds 600 seconds, Zn will dissolve in the FeAl alloy phase, and the amount of Zn phase will decrease. Therefore, from the viewpoint of ensuring the amount of Zn phase, the temperature rise time is preferably 600 seconds or shorter, and more preferably 240 seconds or shorter.

[0075] ·Retention time In the heating step, after the heating temperature is reached, the material may be further held at the heating temperature. However, if the time for holding at the heating temperature (holding time) exceeds 300 seconds, the solid solution of Zn into the FeAl alloy phase progresses, and the amount of Zn phase decreases. Therefore, from the viewpoint of ensuring the amount of Zn phase, the holding time is preferably 300 seconds or less. On the other hand, since holding is not essential, the lower limit of the holding time is 0 seconds. However, from the viewpoint of operational stability of the hot press, holding for 5 seconds or more is preferable. [Example]

[0076] The functions and effects of the present invention will be described below based on examples, but the present invention is not limited to the following examples.

[0077] A hot-dip plated steel sheet was prepared by the following procedure, and the hot-dip plated steel sheet was hot-pressed to form a hot-pressed member.

[0078] The base steel sheet used was a cold-rolled steel sheet with a thickness of 1.4 mm, containing, by mass%, C: 0.34%, Si: 0.25%, Mn: 1.2%, Cr: 0.2%, P: 0.005%, S: 0.001%, Al: 0.03%, N: 0.004%, Nb: 0.02%, Ti: 0.01%, B: 0.002%, Sb: 0.01%, with the remainder being Fe and unavoidable impurities.

[0079] The above-mentioned substrate steel sheets were annealed, and then hot-dip galvanized using a hot-dip galvanizing bath having the bath temperature and chemical composition shown in Tables 1 and 2 to obtain hot-dip plated steel sheets. The coating weight per side of the obtained hot-dip plated steel sheets was measured by the method described above. The measurement results are shown in Tables 1 and 2. For comparison, in some examples (Comparative Example No. 58), the above-mentioned substrate steel sheets were annealed and then electroplated to obtain plated steel sheets. In some examples (Comparative Example No. 59), no plating was performed.

[0080] Next, test pieces of 200 × 300 mm were taken from the obtained steel plates and the test pieces were heated under the conditions shown in Tables 1 and 2. An electric furnace was used for the heating. During the heating, gas was supplied so that the oxygen concentration in the furnace became the value shown in Tables 1 and 2.

[0081] After the specified holding time had elapsed, the test piece was removed from the electric furnace and immediately hot pressed using a hat-shaped die at a forming start temperature of 700°C to obtain a high-strength steel member. The shape of the obtained high-strength steel member had a flat portion length of 100 mm on the top surface, a flat portion length of 50 mm on the side, and a flat portion length of 50 mm on the bottom surface. The bending radius of the die was 7R on both shoulders of the top surface and both shoulders of the bottom surface.

[0082] (natural immersion potential) The natural immersion potential of the resulting hot-pressed parts was measured using the following procedure. First, three 16 mm diameter samples were punched from the flat top surface of the hat-shaped hot-pressed part. Using a 10 mm diameter area in the center of each sample as the working electrode and a silver-silver chloride-saturated potassium chloride electrode (SSE) as the reference electrode, the immersion potential was measured in an air-saturated 0.5 wt% NaCl aqueous solution at 25±5°C. The time average of the immersion potential from 60 seconds to 600 seconds after the working electrode was immersed in the NaCl aqueous solution was taken as the natural immersion potential of the sample. The average of the natural immersion potentials of three different samples was taken as the natural immersion potential of the hot-pressed part being evaluated. The measurement results are shown in Tables 3 and 4.

[0083] Furthermore, the presence or absence of an FeAl alloy phase, the average grain size of the FeAl alloy phase, the presence or absence of a Zn phase, and the amount of Zn phase adhesion were measured for each of the obtained high-strength steel members by the following methods. The measurement results are shown in Tables 3 and 4.

[0084] (Presence or absence of FeAl alloy phase) Test pieces were taken from the flat portion of the top surface of the hot-pressed member, and the presence or absence of an FeAl alloy phase was determined by observing the cross section of the test piece. The cross section was observed using an SEM after the surface to be observed was mirror-finished, and a backscattered electron image was obtained at an accelerating voltage of 15 kV and a magnification of 1000x. In the backscattered electron image, point analysis was performed using EDS in areas with dark contrast, i.e., low electron density, compared to the base material. In the chemical composition obtained by the analysis, areas where the total content of Fe and Al was 80 atomic % or more were considered to be FeAl alloy phases.

[0085] (Average particle size of the FeAl alloy phase) A test piece was taken from the flat portion of the top surface of the hot-pressed member, and the average grain size of the FeAl alloy phase was measured by observing the cross section of the test piece. The cross section was observed using an SEM after the surface to be observed was mirror-finished, and a backscattered electron image was obtained at an accelerating voltage of 5 kV and a magnification of 500x. Next, crystal grains of the FeAl alloy phase were identified from the backscattered electron image based on the crystal orientation contrast, and the major and minor axes of each identified crystal grain were measured. The average of the obtained major and minor axes was taken as the grain size of each FeAl alloy phase. The average value of the grain sizes of 20 randomly selected FeAl alloy phases was taken as the average grain size of the FeAl alloy phase in that hot-pressed member.

[0086] (presence or absence of Zn phase) The presence or absence of a Zn phase in the coating layer was determined by observing the cross section of the hot-pressed member using SEM-EBSD. Specifically, the cross section of the mirror-finished hot-pressed member was observed using SEM-EBSD at an accelerating voltage of 15 kV and a magnification of 2000x to obtain a backscattered electron image. The Zn phase has a bright contrast compared to the FeAl intermetallic compound phase in the backscattered electron image and is identified as a structure having a hexagonal crystal structure.

[0087] (Zn phase adhesion amount) The amount of Zn phase deposition was determined by subjecting a sample taken from the hot-pressed member to anodic electrolysis to dissolve the Zn phase in the coating layer in an aqueous solution, and then quantitatively analyzing the resulting aqueous solution using ICP-MS (inductively coupled plasma mass spectrometry). Specifically, three samples with a diameter of 48 mm were first punched out from the flat portion of the top surface of the hot-pressed member formed into a hat shape. All surfaces of the samples except the surface to be measured were masked. Next, the samples were used as the working electrode and a platinum mesh electrode as the counter electrode, and the samples were immersed in a 3% sodium hydroxide-1% aluminum chloride aqueous solution at 4 mA / cm. 2 Constant-current anodic electrolysis was performed at 1000 kJ / min. The electrolysis was stopped when the potential became sharply nobler, and the amount of Zn in the solution was quantitatively analyzed by ICP-MS to measure the amount of dissolved Zn. The amount of Zn was divided by the surface area of ​​the hot-pressed member to determine the amount of Zn phase adhesion.

[0088] (Exterior corrosion resistance) Next, in order to evaluate the appearance and corrosion resistance of the obtained hot-pressed parts, the occurrence of paint film blisters from the painted edge and the occurrence of red rust from the painted edge were tested according to the following procedures.

[0089] First, a 70 mm wide region was cut out of the obtained hat-shaped high-strength steel member using a laser cutter, and the test piece was subjected to a zinc phosphate-based conversion treatment and electrodeposition coating to obtain a corrosion resistance test piece. The zinc phosphate-based conversion treatment was performed under standard conditions using a PB-SX35 manufactured by Nihon Parkerizing Co., Ltd. The electrodeposition coating was performed using an Electron GT-100 manufactured by Kansai Paint Co., Ltd., so that the coating film thickness was 5 μm. The baking condition for the electrodeposition coating was to reach 170°C and then hold for 20 minutes.

[0090] The obtained corrosion resistance test pieces were subjected to a cyclic corrosion test (SAE-J2334) without masking, and the corrosion condition after 40 cycles was evaluated. The appearance corrosion resistance of the painted edge was judged based on the width of the paint blister from the edge and the occurrence of red rust on the cut edge, based on the following criteria. A rating of 3 or higher for both the paint blister width and the area ratio of red rust on the edge was considered to be pass. The evaluation results are shown in Tables 3 and 4. Paint film bulge width from the painted edge 1: Paint blister width > 5mm 2: 3mm<paint blister width≦5mm 3: 2mm<paint blister width≦3mm 4: 1mm<paint blister width≦2mm 5: Paint blister width ≦1mm

[0091] Red rust appears on the painted edge 1: Red rust area rate on the end surface > 50% 2:30%<Red rust area rate on end surface≦50% 3: 20% < red rust area rate on end surface ≦ 30% 4:10%<Red rust area rate on end surface≦20% 5: Red rust area rate on the edge surface ≦10%

[0092] As can be seen from the results shown in Tables 3 and 4, hot-pressed parts that met the conditions of the present invention had good corrosion resistance against both paint film swelling from the painted edge and red rust formation, and were excellent in overall appearance corrosion resistance.

[0093] In contrast, the hot-pressed members of the comparative examples, which did not meet the requirements of the present invention, exhibited poor coating blistering or red rust formation from the coated edge. For example, in the comparative examples Nos. 1, 2, 40, 41, 48, and 49, the coating weight of the hot-pressed steel sheet was low, and metallic Zn was lost through alloying or oxidation during the heating process, resulting in a decrease in the Zn phase in the coating layer of the hot-pressed member. As a result, the immersion potential became nobler, and good corrosion resistance after painting could not be achieved.

[0094] In Comparative Example No. 55, a steel sheet for hot pressing containing a large amount of Mg in the coating layer and having a large coating weight was subjected to hot pressing. In this comparative example, an excessive amount of MgZn-based intermetallic compound phase was formed in the surface layer of the hot-pressed member. As a result, the immersion potential became excessively noble, and the corrosion rate of the coating layer increased, making it impossible to obtain good corrosion resistance after painting.

[0095] [Table 1]

[0096]

Table 2

[0097]

Table 3

[0098]

Table 4

Claims

1. a steel material and a coating layer on at least one surface of the steel material; the coating layer includes an FeAl alloy phase and a Zn phase, A hot-pressed member having a natural immersion potential in an air-saturated 0.5 mass % NaCl aqueous solution at 25°C of -1100 to -900 mV relative to a silver-silver chloride-saturated potassium chloride electrode.

2. The amount of the Zn phase in the coating layer is 5 to 60 g / m per one side of the steel material. 2 The hot-pressed part according to claim 1 ,

3. 3. The hot-pressed member according to claim 1, wherein the FeAl alloy phase has an average grain size of 3 to 20 μm.

Citation Information

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