Grain-oriented electrical steel sheet and method for forming insulating coating

The grain-oriented electrical steel sheet with a crystalline metal phosphate intermediate layer and tensile coating layer addresses the challenge of adhesion and magnetic property improvement, ensuring effective coating adhesion and magnetic properties post-stress relief annealing.

JP7748016B2Active Publication Date: 2025-10-02NIPPON STEEL CORPORATION
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Patent Information

Application Number
JP2025514035
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-04-13
Filing Date
2024-04-12
Publication Date
2025-10-02
Estimated Expiration
2044-04-12

AI Technical Summary

Technical Problem

Conventional grain-oriented electrical steel sheets face challenges in achieving excellent coating adhesion and magnetic properties without forsterite-based coatings, and existing methods for improving adhesion and magnetic properties are inadequate, particularly after stress relief annealing or groove formation.

Method used

A grain-oriented electrical steel sheet with grooves formed in the base steel sheet, featuring an intermediate layer containing crystalline metal phosphate and a tensile coating layer, applied under specific processing conditions to ensure adhesion and magnetic properties, including a method for forming the insulating coating through controlled groove formation and chemical treatment.

Benefits of technology

The solution provides a grain-oriented electrical steel sheet with improved coating adhesion, corrosion resistance, and magnetic properties, maintaining these characteristics even after stress relief annealing, by ensuring the intermediate layer remains intact in the groove portions.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This grain-oriented electromagnetic steel sheet has a base material steel sheet and an insulating coating film formed on the surface of the base material steel sheet, wherein: the base material steel sheet has a flat section and a groove section extending in the direction of 45-135° with respect to the rolling direction; the depth of the groove section is 10-30 µm; the width of the groove section is 10-200 µm; the insulating coating film has an intermediate layer that is formed on the base material steel sheet side, has a thickness of 0.1-15.0 µm, and contains a crystalline phosphate metal salt, and a tension coating layer formed on the surface side of the insulating coating film; and the base material steel sheet is covered with the insulating coating film having the intermediate layer and the tension coating layer at an area ratio of 60% or more of the groove section.
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Description

[Technical Field]

[0001] The present invention relates to a grain-oriented electrical steel sheet and a method for forming an insulating coating on the grain-oriented electrical steel sheet. This application claims priority based on Japanese Patent Application No. 2023-065386, filed on April 13, 2023, the contents of which are incorporated herein by reference. [Background technology]

[0002] Grain-oriented electrical steel sheets are primarily used in transformers. Transformers are continuously excited over a long period of time, from installation to disposal, and continue to generate energy loss. Therefore, the energy loss during magnetization with AC, i.e., core loss, is a major indicator that determines the performance of a transformer.

[0003] To reduce the iron loss of grain-oriented electrical steel sheets, (a) {110} <001> Many technologies have been developed to date, from the perspective of (a) increasing the concentration in the orientation (Goss orientation), (b) increasing the content of solid solution elements such as Si to increase the electrical resistance of the steel sheet, or (c) reducing the thickness of the electrical steel sheet.

[0004] In addition, applying tension to steel sheets is effective in reducing iron loss. Forming a coating made of a material with a smaller thermal expansion coefficient than the steel sheet at high temperatures on the steel sheet surface is an effective means of reducing iron loss. Forsterite-based coatings (inorganic coatings) with excellent coating adhesion are produced by the reaction of oxides on the steel sheet surface with annealing separators during the finish annealing process of electrical steel sheets. This coating can apply tension to steel sheets.

[0005] For example, the method disclosed in Patent Document 1, in which a coating solution mainly composed of colloidal silica and phosphate is baked onto the surface of a steel sheet to form an insulating coating, is an effective method for reducing iron loss because it is highly effective in applying tension to the steel sheet. Therefore, a common method for producing grain-oriented electrical steel sheets is to leave the forsterite-based coating formed in the final annealing process and then apply an insulating coating mainly composed of phosphate on top of it.

[0006] However, in recent years, there has been an increasing demand for smaller and higher-performance transformers. To achieve this, grain-oriented electrical steel sheets are required to have excellent high-field iron loss characteristics, i.e., good iron loss even at high magnetic flux densities. At the same time, it has become clear that forsterite-based coatings hinder domain wall movement, adversely affecting iron loss. In grain-oriented electrical steel sheets, magnetic domains change due to domain wall movement under an AC magnetic field. Smooth and rapid domain wall movement is effective in reducing iron loss. However, forsterite-based coatings are themselves nonmagnetic and have an uneven structure at the interface between the steel sheet and the coating. This uneven structure is thought to hinder domain wall movement and adversely affect iron loss. Therefore, as a means for improving high magnetic field iron loss, research is being conducted on a variety of techniques, including methods for removing the forsterite-based coating by mechanical means such as polishing or chemical means such as pickling, and techniques for producing grain-oriented electrical steel sheets that do not have a forsterite-based coating by preventing the formation of a forsterite-based coating during high-temperature finish annealing, as well as techniques for making the steel sheet surface mirror-finished (in other words, techniques for magnetically smoothing the steel sheet surface).

[0007] As a technique for preventing the formation of a forsterite-based coating, for example, Patent Document 2 discloses a technique in which, after normal finish annealing, the steel sheet is pickled to remove surface deposits, and then chemically or electrolytically polished to a mirror finish. It has been found that forming a tensioned insulating coating on the surface of grain-oriented electrical steel sheet that does not have a forsterite-based coating and that has been obtained by such a known method can provide even more excellent iron loss improvement effects. Furthermore, tensioned insulating coatings can impart various properties, such as corrosion resistance, heat resistance, and slip resistance, in addition to improving iron loss.

[0008] However, in addition to exhibiting insulating properties, forsterite-based coatings also function as intermediate layers that ensure adhesion when forming tension coatings (tension-applying insulating coatings). In other words, because forsterite-based coatings are formed in a state where they penetrate deeply into the steel sheet, they have excellent adhesion to the metal steel sheet. Therefore, when a tension-applying coating (tension coating) containing colloidal silica, phosphate, or the like as a main component is formed on the surface of a forsterite-based coating, the coating exhibits excellent adhesion. However, because bonding between metals and oxides is generally difficult, it has been difficult to ensure sufficient adhesion between a tension coating and the steel sheet surface in the absence of a forsterite-based coating. Therefore, when forming a tension coating on a grain-oriented electrical steel sheet that does not have a forsterite-based coating, it is being considered to provide a layer that takes the role of the intermediate layer of the forsterite-based coating.

[0009] Patent Document 3 discloses a technique for ensuring the adhesion of a tension-applying insulating coating by applying a coating that serves as an intermediate layer beforehand when forming the tension-applying coating. However, the technique disclosed in Patent Document 3 has a problem in that it is not possible to maintain a tensioned insulating coating having a large tension with good adhesion.

[0010] Furthermore, for example, Patent Document 4 discloses a grain-oriented electrical steel sheet having a base steel sheet and an insulating coating formed on the surface of the base steel sheet, the insulating coating being formed on the side of the base steel sheet, an intermediate layer containing a crystalline metal phosphate, and a tensile coating layer formed on the surface side of the insulating coating. Patent Document 4 discloses that the grain-oriented electrical steel sheet does not have a forsterite-based coating, and has excellent coating adhesion, excellent coating tension, and excellent magnetic properties.

[0011] On the other hand, a technique known as magnetic domain refinement is known for reducing the width of magnetic domains present within a grain-oriented electrical steel sheet to improve its magnetic properties. One known method for magnetic domain control, as described in Patent Document 5, involves irradiating the surface of a grain-oriented electrical steel sheet after finish annealing with a laser beam to refine the magnetic domains, thereby reducing eddy current loss and, consequently, iron loss. However, this method utilizes the magnetic domain refinement phenomenon, which is primarily caused by thermal strain induced in the steel sheet by laser irradiation. Wound cores, which are often used in small and medium-sized transformers, are often manufactured using a core manufacturing method involving mechanical bending. In this manufacturing method, stress relief annealing (e.g., at 800°C for approximately 2 to 4 hours) is typically performed after the core shape is mechanically formed to eliminate the increase in iron loss due to processing strain induced in the steel sheet by bending. While such stress relief annealing reduces or eliminates the mechanical processing-induced strain in the core, the thermal strain induced for magnetic domain refinement disappears in steel sheets that have undergone magnetic domain control by laser irradiation. For this reason, grain-oriented electrical steel sheets, which have been subjected to magnetic domain refinement by the introduction of thermal strain, typically by laser irradiation, are generally considered to be unsuitable for wound cores.

[0012] A known magnetic domain control technology that does not lose its magnetic domain control effect even after stress relief annealing is the "groove-introducing magnetic domain control technology," which forms linear grooves periodically in a direction intersecting the rolling direction. When considering application to wound cores, the application of groove-introducing magnetic domain control technology must be a prerequisite.

[0013] The technology disclosed in Patent Document 4 makes it possible to obtain a grain-oriented electrical steel sheet that does not have an inorganic coating and that has excellent coating adhesion, excellent coating tension, and excellent magnetic properties. However, Patent Document 4 does not fully consider stress relief annealing or groove formation. As a result of investigations by the present inventors, it was found that when grooves are formed using the method of Patent Document 4, the adhesion of the insulating coating to the grooves is insufficient, and as a result, sufficient magnetic properties and corrosion resistance effects are not necessarily obtained after stress relief annealing. [Prior art documents] [Patent documents]

[0014] [Patent Document 1] Japanese Patent Publication No. 48-039338 [Patent Document 2] Japanese Patent Publication No. 49-96920 [Patent Document 3] Japanese Patent Application Publication No. 5-279747 [Patent Document 4] International Publication No. 2022 / 215709 [Patent Document 5] Japanese Patent Publication No. 56-51522 Summary of the Invention [Problem to be solved by the invention]

[0015] As described above, conventionally, grain-oriented electrical steel sheets having grooves formed in the base steel sheet do not have a forsterite-based coating, and it has not been easy to simultaneously improve coating adhesion and magnetic properties. Therefore, an object of the present invention is to provide a grain-oriented electrical steel sheet having grooves formed in a base steel sheet, which does not have a forsterite-based coating and has excellent coating adhesion and magnetic properties. Another object of the present invention is to provide a method for forming an insulating coating for this grain-oriented electrical steel sheet. However, even if the coating adhesion is improved, if the coating tension, corrosion resistance, and elution properties are reduced, this is undesirable from a practical standpoint, and therefore it is a prerequisite that these properties are not reduced. [Means for solving the problem]

[0016] The inventors have discovered that in a grain-oriented electrical steel sheet having grooves formed in the base steel sheet, by forming an intermediate layer under specific processing conditions and then controlling the conditions for forming the grooves, a sufficient intermediate layer remains even in the groove portions.

[0017] The present invention has been made in light of the above findings. [1] A grain-oriented electrical steel sheet according to one embodiment of the present invention is a grain-oriented electrical steel sheet comprising a base steel sheet and an insulating coating formed on the surface of the base steel sheet, wherein the base steel sheet has a flat portion and grooves extending in a direction at an angle of 45 to 135° relative to the rolling direction, the grooves having a depth of 10 to 30 μm and a width of 10 to 200 μm, the insulating coating comprising an intermediate layer having a thickness of 0.1 to 15.0 μm and containing a crystalline metal phosphate, formed on the base steel sheet side, and a tensile coating layer formed on the surface side of the insulating coating, and the base steel sheet is covered with the insulating coating comprising the intermediate layer and the tensile coating layer over an area ratio of 60% or more of the grooves. [2] In the grain-oriented electrical steel sheet described in [1], the crystalline metal phosphate contained in the intermediate layer may be one or more of zinc phosphate, manganese phosphate, iron phosphate, and zinc calcium phosphate, the tensile coating layer may contain a metal phosphate and silica, and the content of silica in the tensile coating layer may be 20 to 60 mass%. [3] A method for forming an insulating coating according to another aspect of the present invention is a method for forming the insulating coating provided on the grain-oriented electrical steel sheet according to [1], comprising: a finish annealing step of applying an annealing separator containing 10 to 100 mass % of Al2O3 to a steel sheet, drying the steel sheet, and then finish annealing the steel sheet; an annealing separator removing step of removing excess annealing separator from the steel sheet after the finish annealing step; a light pickling step of pickling the steel sheet after the annealing separator removing step for 1 to 20 seconds with one or more inorganic acids selected from sulfuric acid, phosphoric acid, and hydrochloric acid at a concentration of 0.1 to 10 mass % and at room temperature or higher; and a light pickling step of pickling the steel sheet after the light pickling step with a solution temperature of 30 to 95°C using a rinsing agent. the steel sheet is immersed in a treatment solution having a phosphate concentration of 1.0 to 15.0 mass% and a pH of 1.5 to 6.0 for 5 to 90 seconds, the treatment solution is washed away with water, and the steel sheet is then dried; a groove forming step in which grooves extending in a direction of 45 to 135° to the rolling direction are formed in the steel sheet after the intermediate layer forming step by mechanical processing; and a tensile coating layer forming step in which a coating solution containing a metal phosphate and colloidal silica, the content of colloidal silica being 30 to 150 parts by mass per 100 parts by mass of the metal phosphate, is applied to the steel sheet after the groove forming step, and the steel sheet is dried, followed by holding the steel sheet at a sheet temperature of 700 to 950°C for 10 to 90 seconds. [4] In the method for forming an insulating coating according to [3], the annealing separator may further contain one or both of MgO: 5 to 90 mass % and chloride: 0.5 to 10.0 mass %. [Effects of the Invention]

[0018] According to the above-described aspects of the present invention, it is possible to provide a grain-oriented electrical steel sheet having excellent coating adhesion and magnetic properties, and a method for forming an insulating coating on the grain-oriented electrical steel sheet. [Brief explanation of the drawings]

[0019] [Figure 1] FIG. 1 is a diagram showing a schematic diagram of a grain-oriented electrical steel sheet according to an embodiment of the present invention. [Figure 2] 2 is a schematic diagram of a cross section taken along line AA in FIG. 1, showing a groove portion. FIG. DETAILED DESCRIPTION OF THE INVENTION

[0020] A grain-oriented electrical steel sheet according to one embodiment of the present invention (grain-oriented electrical steel sheet according to this embodiment) and a method for manufacturing the same will be described. As shown in FIGS. 1 and 2 , the grain-oriented electrical steel sheet 1 according to this embodiment has a base steel sheet 11 and an insulating coating 21 formed on the surface of the base steel sheet 11, and is substantially free of a forsterite-based coating (sometimes called a glass coating) on ​​the surface of the base steel sheet 11 (it is not intentionally formed. Even if it is unintentionally formed and remains, it is 0.5 g / m 2 (See below). The insulating coating 21 has an intermediate layer 211 formed on the base steel plate side and a tensile coating layer 212 formed on the surface side. In the grain-oriented electrical steel sheet 1 according to this embodiment, the base steel sheet 11 has flat portions 2 and groove portions 3 extending in a direction at an angle of 45 to 135° with respect to the rolling direction RD. In the groove portions 3, 50% or more of an area thereof is covered with an insulating coating 21. Each of these will be explained below.

[0021] <Insulating coating> The insulating coating 21 has an intermediate layer 211 formed on the base steel sheet side, containing a crystalline metal phosphate, and having a thickness of 0.1 to 15.0 μm, and a tensile coating layer 212 formed on the surface side.

[0022] [Middle layer] The intermediate layer is formed on the base steel sheet side of the insulating coating, contains a crystalline metal phosphate, and is a layer (coating) having a thickness of 0.1 to 15.0 μm. As mentioned above, grain-oriented electrical steel sheets generally have a forsterite-based coating (inorganic coating) formed in the final annealing process and an insulating coating (tensile insulating coating) formed thereon. However, in recent years, it has become clear that this forsterite-based coating hinders the movement of domain walls and adversely affects iron loss. Therefore, grain-oriented electrical steel sheets without a forsterite-based coating are being studied to further improve magnetic properties. However, without a forsterite-based coating, it is difficult to ensure sufficient adhesion between the tensile coating layer and the surface of the base steel sheet.

[0023] In the grain-oriented electrical steel sheet 1 of this embodiment, an intermediate layer 211 containing a crystalline metal phosphate is formed between the base steel sheet 11 and the tensile coating layer 212, thereby improving the adhesion between the base steel sheet 11 and the tensile coating layer 212 via the intermediate layer 211. When the intermediate layer 211 contains crystalline metal phosphate, the tensile coating formed thereon (which becomes the tensile coating layer 212 after formation) also contains metal phosphate, resulting in high affinity and excellent adhesion between the intermediate layer 211 and the tensile coating layer 212. Furthermore, when the intermediate layer 211 is formed by immersion in a treatment solution containing metal phosphate, as described below, it can be formed on the surface of the base steel sheet 11 by utilizing a chemical reaction, and adhesion between the intermediate layer 211 and the base steel sheet 11 can also be ensured. If the intermediate layer 211 does not contain a crystalline metal phosphate, the above effect cannot be obtained. The proportion of the crystalline metal phosphate in the intermediate layer is preferably 80% by mass or more, and may be 100% by mass. In terms of adhesion, the metal phosphate is preferably one or more of zinc phosphate, manganese phosphate, iron phosphate, and zinc calcium phosphate. The intermediate layer 211 may contain oxides and elements such as Fe and Si diffused from the base steel sheet as the remainder of the metal phosphate. The intermediate layer 211 is formed at a different time from the tensile coating formed thereon, but both the intermediate layer 211 and the tensile coating layer 212 function as the insulating coating 21 .

[0024] If the average thickness of the intermediate layer 211 is less than 0.1 μm, the effect of improving the adhesion between the base steel sheet and the insulating coating via the intermediate layer is insufficient. On the other hand, if the average thickness of the intermediate layer exceeds 15.0 μm, the magnetic properties deteriorate significantly. The thickness here refers to the thickness in the flat portion 2 of the base steel sheet 11. On the other hand, for the groove portion 3, the average thickness of the intermediate layer is preferably 0.1 to 9.0 μm. In the groove portion 3, the thickness of the intermediate layer may be reduced by forming the groove, but it is preferable that the thickness of the intermediate layer in the groove portion is 0.1 μm or more in both the flat portion and the groove portion (remaining at a thickness of 0.1 μm or more).

[0025] [Tension coating layer] In the grain-oriented electrical steel sheet 1 according to this embodiment, a tensile coating is formed on the surface of the intermediate layer 211, so that the tensile coating layer 212 is provided on the side that becomes the surface of the insulating coating 21. The tensile coating layer 212 is not particularly limited as long as it is used as an insulating coating for grain-oriented electrical steel sheets, but from the viewpoint of adhesion to the intermediate layer 211 (adhesion to the base steel sheet 11 via the intermediate layer 211), it preferably contains metal phosphate and silica (derived from colloidal silica in the coating liquid) so that the silica content is 20 mass% or more. On the other hand, if the silica content of the tensile coating layer 212 exceeds 60 mass%, it may cause powdering, so it is preferably 60 mass% or less. The tensile coating layer 212 preferably contains a total of 70 mass % or more of metal phosphate and silica, and may contain ceramic particles such as alumina and silicon nitride as the remainder. Although the thickness of the tensile coating layer 212 is not limited, the average thickness of the insulating coating 21 (intermediate layer 211 + tensile coating layer 212) is preferably 2.0 to 15.0 μm in both the flat and grooved portions. If the average thickness of the insulating coating 21 is less than 2.0 μm, sufficient coating tension cannot be obtained. Furthermore, there is a large amount of elution of phosphoric acid. This can cause stickiness and reduced corrosion resistance, and may even lead to coating peeling. Furthermore, if the thickness of the insulating coating 21 exceeds 15.0 μm, the space factor can decrease, resulting in deterioration of magnetic properties, or cracks can occur, resulting in reduced adhesion and reduced corrosion resistance.

[0026] The thickness of the insulating coating 21 is determined by the following method. For the flat portion, the average thickness can be measured by observing the cross section of the sample with a scanning electron microscope and measuring the thickness at five or more points. Of the insulating coating 21, the intermediate layer 211 and the tensile coating layer 212 can be distinguished by the presence or absence of silicon derived from silica (the tensile coating layer contains silica as mentioned above). The sum of the average thickness of the intermediate layer 211 and the average thickness of the tensile coating layer 212 is the average thickness of the insulating coating 21 . In the groove, the thickness is measured at the bottom.

[0027] The mass proportion of the metal phosphate and the type of the metal phosphate in the intermediate layer 211 and the tensile coating layer 212 can be determined by the following method. Similar to the method for measuring the thickness of the intermediate layer 211 and the tensile coating layer 212, the mass fraction and type of metal phosphate can be determined by using a scanning electron microscope and an energy dispersive elemental analyzer. Furthermore, whether the metal phosphate of the intermediate layer 211 is a crystalline metal phosphate can be determined by X-ray crystal structure analysis. The silica content of the tensile coating layer 212 can also be measured using a scanning electron microscope and an energy dispersive elemental analyzer.

[0028] <Base material steel plate> [Chemical composition] The grain-oriented electrical steel sheet 1 according to this embodiment is significantly characterized by the structure of the insulating coating 21 formed on the surface of the base steel sheet 11, and the base steel sheet 11 included in the grain-oriented electrical steel sheet 1 is not limited in terms of its chemical composition. However, in order to obtain the properties generally required of grain-oriented electrical steel sheets, it is preferable that the chemical components that make up the chemical composition include the following: In this embodiment, % relating to chemical components means % by mass unless otherwise specified.

[0029] C: 0.010% or less C (carbon) is an element effective for controlling the structure of steel sheets in the manufacturing process up to the completion of the decarburization annealing step. However, if the C content exceeds 0.010%, the magnetic properties of the finished grain-oriented electrical steel sheet will deteriorate. Therefore, in the base steel sheet of the grain-oriented electrical steel sheet according to this embodiment, the C content is preferably 0.010% or less. The C content is more preferably 0.005% or less. The lower the C content, the better; however, even if the C content is reduced to less than 0.0001%, the effect of structural control will saturate and the manufacturing cost will simply increase. Therefore, the C content may be 0.0001% or more.

[0030] Si: 2.50 to 4.00% Silicon (Si) is an element that increases the electrical resistance of grain-oriented electrical steel sheets and improves their core loss characteristics. If the Si content is less than 2.50%, a sufficient eddy current loss reduction effect cannot be obtained. Therefore, the Si content is preferably 2.50% or more. The Si content is more preferably 2.70% or more, and even more preferably 3.00% or more. On the other hand, if the Si content exceeds 4.00%, the grain-oriented electrical steel sheet becomes embrittled and the threading property deteriorates significantly. Furthermore, the workability of the grain-oriented electrical steel sheet deteriorates, and the steel sheet may break during rolling. Therefore, the Si content is preferably 4.00% or less. The Si content is more preferably 3.80% or less, and even more preferably 3.70% or less.

[0031] Mn: 0.01 to 0.50% Mn (manganese) is an element that combines with S to form MnS during the manufacturing process. This precipitate functions as an inhibitor (a suppressor of normal grain growth) and induces secondary recrystallization in steel. Mn also improves the hot workability of steel. If the Mn content is less than 0.01%, the above-mentioned effects cannot be fully obtained. Therefore, the Mn content is preferably 0.01% or more. The Mn content is more preferably 0.02% or more. On the other hand, if the Mn content exceeds 0.50%, secondary recrystallization does not occur, and the magnetic properties of the steel deteriorate. Therefore, in the base steel sheet of the grain-oriented electrical steel sheet according to this embodiment, the Mn content is preferably 0.50% or less. The Mn content is more preferably 0.20% or less, and even more preferably 0.10% or less.

[0032] N: 0.010% or less N (nitrogen) is an element that bonds with Al during the manufacturing process to form AlN, which functions as an inhibitor. However, if the N content exceeds 0.010%, an excessive amount of inhibitor remains in the base steel sheet of the grain-oriented electrical steel sheet, resulting in a deterioration in magnetic properties. Therefore, in the base steel sheet of the grain-oriented electrical steel sheet according to this embodiment, the N content is preferably 0.010% or less. The N content is more preferably 0.008% or less. On the other hand, the lower limit of the N content is not particularly specified, but reducing it to less than 0.001% would only increase the manufacturing cost, so the N content may be 0.001% or more.

[0033] sol.Al: 0.020% or less Sol-Al (acid-soluble aluminum) is an element that bonds with N to form AlN, which functions as an inhibitor, during the manufacturing process of grain-oriented electrical steel sheet. However, if the sol-Al content of the base steel sheet exceeds 0.020%, excessive inhibitors remain in the base steel sheet, resulting in reduced magnetic properties. Therefore, in the base steel sheet of the grain-oriented electrical steel sheet according to this embodiment, the sol-Al content is preferably 0.020% or less. The sol-Al content is more preferably 0.010% or less, and even more preferably less than 0.001%. There is no particular restriction on the lower limit of the sol-Al content, but reducing it to less than 0.0001% simply increases manufacturing costs. Therefore, the sol-Al content may be 0.0001% or more.

[0034] S: 0.010% or less S (sulfur) is an element that combines with Mn during the manufacturing process to form MnS, which functions as an inhibitor. However, if the S content exceeds 0.010%, the remaining inhibitors will degrade the magnetic properties. Therefore, in the base steel sheet of the grain-oriented electrical steel sheet according to this embodiment, the S content is preferably 0.010% or less. It is more preferable that the S content in the grain-oriented electrical steel sheet is as low as possible, for example, less than 0.001%. However, reducing the S content in the base steel sheet of the grain-oriented electrical steel sheet to less than 0.0001% will only increase the manufacturing cost. Therefore, the S content in the base steel sheet of the grain-oriented electrical steel sheet may be 0.0001% or more.

[0035] Remainder: Fe and impurities The chemical composition of the base steel sheet of the grain-oriented electrical steel sheet according to this embodiment may contain the above-mentioned elements, with the remainder being Fe and impurities. However, for the purpose of improving magnetic properties, etc., Sn, Cu, Se, and Sb may also be contained in the ranges shown below. Furthermore, even if other elements are contained, for example, one or more of W, Nb, Ti, Ni, Co, V, Cr, and Mo in a total amount of 1.0% or less, this does not impair the effects of the grain-oriented electrical steel sheet according to this embodiment. Here, impurities refer to elements that are mixed in from raw materials such as ore or scrap, or the manufacturing environment, when the base steel sheet is industrially manufactured, and are permissible to be contained in amounts that do not adversely affect the function of the grain-oriented electrical steel sheet according to this embodiment.

[0036] Sn: 0 to 0.50% Sn (tin) is an element that contributes to improving magnetic properties by controlling the primary recrystallization structure. To obtain the effect of improving magnetic properties, the Sn content is preferably 0.01% or more. The Sn content is more preferably 0.02% or more, and even more preferably 0.03% or more. On the other hand, if the Sn content exceeds 0.50%, secondary recrystallization becomes unstable and magnetic properties deteriorate. Therefore, the Sn content is preferably 0.50% or less. The Sn content is more preferably 0.30% or less, and even more preferably 0.10% or less.

[0037] Cu: 0 to 0.50% Copper (Cu) is an element that contributes to increasing the Goss orientation occupancy rate in the secondary recrystallized structure. To achieve the above effect, the Cu content is preferably 0.01% or more. The Cu content is more preferably 0.02% or more, and even more preferably 0.03% or more. On the other hand, if the Cu content exceeds 0.50%, the steel sheet becomes embrittled during hot rolling. Therefore, in the base steel sheet of the grain-oriented electrical steel sheet according to this embodiment, the Cu content is preferably 0.50% or less. The Cu content is more preferably 0.30% or less, and even more preferably 0.10% or less.

[0038] Se: 0 to 0.020% Se (selenium) is an element that has the effect of improving magnetic properties. When Se is contained, the Se content is preferably 0.001% or more in order to effectively exhibit the effect of improving magnetic properties. The Se content is more preferably 0.003% or more, and even more preferably 0.006% or more. On the other hand, if the Se content exceeds 0.020%, the adhesion of the coating deteriorates. Therefore, the Se content is preferably 0.020% or less. The Se content is more preferably 0.015% or less, and even more preferably 0.010% or less.

[0039] Sb: 0 to 0.50% Sb (antimony) is an element that has the effect of improving magnetic properties. When Sb is contained, the Sb content is preferably 0.005% or more in order to effectively exhibit the effect of improving magnetic properties. The Sb content is more preferably 0.01% or more, and even more preferably 0.02% or more. On the other hand, if the Sb content exceeds 0.50%, the adhesion of the coating significantly deteriorates. Therefore, the Sb content is preferably 0.50% or less. The Sb content is more preferably 0.30% or less, and even more preferably 0.10% or less.

[0040] As described above, the chemical composition of the base steel sheet of the grain-oriented electrical steel sheet in this embodiment is, for example, one that contains the above-mentioned elements with the balance being Fe and impurities.

[0041] The chemical composition of the base steel sheet of the grain-oriented electrical steel sheet according to this embodiment can be measured using a known ICP atomic emission spectroscopy. However, if an insulating coating is formed on the surface, it must be removed before measurement. The removal can be achieved by immersing the sample in a highly concentrated alkaline solution (e.g., a 30% sodium hydroxide solution heated to 85°C) for 20 minutes or more. Peeling can be determined visually. For small samples, removal can also be achieved by surface grinding.

[0042] [Groove] The base steel sheet 11 has, on its rolled surface, flat portions 2 and groove portions 3. By forming linear grooves (groove portions) periodically in a direction intersecting the rolling direction, magnetic domain control can be performed. In the base steel sheet of the grain-oriented electrical steel sheet according to this embodiment, the depth D of the grooves is 10 to 30 μm, and the width W of the grooves 3 is 10 to 200 μm. If the groove depth is less than 10 μm, the magnetic domain control effect is poor. On the other hand, if the depth exceeds 30 μm, the magnetic flux density B8 value decreases too much. If the groove width is 10 μm, the magnetic domain control effect is poor. On the other hand, if the width exceeds 200 μm, the magnetic flux density B8 value decreases too much. Preferably, a plurality of grooves are periodically arranged in the rolling direction, and the interval between adjacent grooves in the rolling direction is 1.0 to 20.0 mm. The interval between grooves is the distance from the center of the width of one groove to the center of the width of the adjacent groove. The shape of the groove is not limited, and may be, for example, a substantially rectangular or triangular cross section. Alternatively, the cross section may be an arch shape that forms a part of a circle. In this embodiment, the direction intersecting the rolling direction is a direction at an angle of 45 to 135° to the rolling direction (90±45° to the rolling direction). Since the magnetic domain control effect is greater when the angle is closer to 90° to the rolling direction, the angle may be 70 to 110° to the rolling direction.

[0043] In the grain-oriented electrical steel sheet according to this embodiment, 60% or more of the surface area of ​​the grooves 3 is covered with the insulating coating (intermediate layer 211 and tensile coating layer 212) (coverage is 60% or more). If the coverage is less than 60%, the adhesion of the tension coating after stress relief annealing will decrease, resulting in partial peeling and poor corrosion resistance. In the grain-oriented electrical steel sheet according to this embodiment, the insulating coating is formed under specific processing conditions, as will be described later, so that the insulating coating adheres well to the grooves as well, resulting in a high coverage rate. Conventionally, after forming grooves, the insulating coating that peeled off in the grooves has been reformed. However, in this case, it is not easy to form an intermediate layer in the grooves. This is because, if an intermediate layer is formed again after forming a tensile coating layer, there is a problem that the tensile coating outside the grooves will dissolve when immersed in a treatment solution for forming the intermediate layer. Therefore, this method does not easily form an intermediate layer and a tensile coating layer in the grooves. In the grain-oriented electrical steel sheet according to this embodiment, the intermediate layer is formed under special conditions during production, and the grooves are formed by machining. This prevents the intermediate layer from peeling off even in the grooves (inside the grooves), and the coverage of the insulating coating with the intermediate layer and the tensile coating layer is 60% or more, even in the grooves.

[0044] The depth and width of the groove are determined by the following method. The steel sheet is cut into several square millimeters to include the vicinity of the area where a groove is visually determined to have been formed. Then, ion milling (CP processing) is performed to remove microscopic shape defects such as sagging and cracks from the cross section. The cross section of the steel sheet parallel to the rolling direction and thickness direction is observed at 1000x magnification using a scanning electron microscope, and one or multiple recesses formed at a predetermined interval are determined to be grooves. The longest (deepest) part of the recess in the observed cross section, measured by a perpendicular line extending from the surface of the base steel sheet, is determined to be the bottom of the groove, and the linear distance connecting one end of the recess to the other end on the surface extension is determined to be the width. Here, the end of the recess refers to the position where the depression begins to slope at an angle of 30° or more with respect to the extension of the surface of the flat portion. Three or more grooves are randomly selected and observed in the same manner as above, and the average of the measured values ​​is taken as the depth and width of the groove.

[0045] The coverage of the insulating coating in the groove is determined by the following method. As with the method for observing grooves, after ion milling, a cross section of the steel plate parallel to the rolling direction and thickness direction is observed at 1000x magnification using a scanning electron microscope, and the proportion of the surface (side and bottom) within the groove that is not covered by the insulating coating is calculated. However, areas with an insulating coating thickness of less than 1.0 μm are considered to have no insulating coating, as the insulating coating does not provide any effect. When calculating the coverage rate, three or more grooves are observed and the average value of the measured values ​​is used.

[0046] <Manufacturing method> The grain-oriented electrical steel sheet according to this embodiment can be suitably manufactured by a manufacturing method that satisfies the manufacturing conditions described below. However, it goes without saying that the grain-oriented electrical steel sheet according to this embodiment is not particularly limited to a manufacturing method. In other words, a grain-oriented electrical steel sheet having the above-described configuration is considered to be the grain-oriented electrical steel sheet according to this embodiment, regardless of its manufacturing conditions.

[0047] The grain-oriented electrical steel sheet according to this embodiment is (I) a hot rolling step in which a steel billet having a predetermined chemical composition is hot rolled to obtain a hot-rolled sheet; (II) a hot-rolled sheet annealing step of annealing the hot-rolled sheet; (III) a cold rolling step of cold rolling the hot-rolled sheet after the hot-rolled sheet annealing step to obtain a cold-rolled sheet; (IV) a decarburization annealing step of performing decarburization annealing on the cold-rolled sheet; (V) a finish annealing step of applying an annealing separator containing 10 to 100 mass% of Al2O3 to the cold-rolled sheet after the decarburization annealing step, drying the sheet, and then finish annealing the sheet; (VI) an annealing separator removing step of removing excess annealing separator from the steel sheet after the finish annealing step; (VII) a light pickling step in which the steel sheet after the annealing separator removal step is pickled for 1 to 20 seconds with one or more inorganic acids selected from sulfuric acid, phosphoric acid, and hydrochloric acid at a concentration of 0.1 to 10 mass % and at room temperature or higher; (VIII) an intermediate layer forming step of immersing the steel sheet after the light pickling step in a treatment solution having a solution temperature of 30 to 95°C, a phosphate concentration of 1.0 to 15.0 mass%, and a pH of 1.5 to 6.0 for 5 to 90 seconds, removing the treatment solution by rinsing with water, and then drying the steel sheet; (IX) a groove forming step of forming grooves extending in a direction at an angle of 45 to 135° to the rolling direction in the steel sheet after the intermediate layer forming step by mechanical processing; (X) a tensile coating layer forming step of applying a coating liquid containing metal phosphate and colloidal silica to the steel sheet after the groove forming step, the coating liquid containing 30 to 150 parts by mass of colloidal silica per 100 parts by mass of the metal phosphate, drying the coating liquid, and then maintaining the steel sheet at a temperature of 700 to 950°C for 10 to 90 seconds; Equipped with. Furthermore, the method for producing a grain-oriented electrical steel sheet according to this embodiment further includes the steps of: (XI) a nitriding step of nitriding the cold-rolled steel sheet between the decarburization annealing step and the finish annealing step; may include: Of these, the manufacturing of the grain-oriented electrical steel sheet according to this embodiment is characterized by the steps (V) finish annealing step to (X) tension coating layer forming step (method of forming an insulating coating), which are mainly related to the formation of an insulating coating, and known conditions can be used for other steps or conditions not described. These steps will be described below.

[0048] <Hot rolling process> In the hot rolling process, a steel billet such as a slab having a predetermined chemical composition is heated and then hot rolled to obtain a hot-rolled sheet. The heating temperature of the steel billet is preferably within the range of 1100 to 1450°C, and more preferably 1300 to 1400°C. The chemical composition of the slab may be changed depending on the chemical composition of the grain-oriented electrical steel sheet that is ultimately desired to be obtained, but an example of such a chemical composition may include, in mass %, C: 0.01 to 0.20%, Si: 2.50 to 4.00%, sol. Al: 0.01 to 0.040%, Mn: 0.01 to 0.50%, N: 0.020% or less, S: 0.005 to 0.040%, Cu: 0 to 0.50%, Sn: 0 to 0.50%, Se: 0 to 0.020%, Sb: 0 to 0.50%, and the balance being Fe and impurities. The hot rolling conditions are not particularly limited and may be appropriately set based on the desired properties. The thickness of the hot rolled sheet is preferably within the range of 2.0 mm to 3.0 mm, for example.

[0049] <Hot-rolled sheet annealing process> The hot-rolled sheet annealing process is a process of annealing the hot-rolled sheet manufactured through the hot rolling process. By performing such an annealing treatment, recrystallization occurs in the steel sheet structure, and good magnetic properties can be achieved, which is preferable. When hot-rolled sheet annealing is performed, the hot-rolled sheet produced through a hot rolling process may be annealed according to a known method. The means for heating the hot-rolled sheet during annealing is not particularly limited, and known heating methods can be used. The annealing conditions are also not particularly limited. For example, the hot-rolled sheet may be annealed in a temperature range of 900 to 1200°C for 10 seconds to 5 minutes.

[0050] <Cold rolling process> In the cold rolling process, the hot rolled sheet after the hot rolled sheet annealing process is subjected to cold rolling to obtain a cold rolled sheet. The cold rolling may be a single cold rolling, or may be multiple cold rollings with intermediate annealings between them, with the cold rolling being interrupted and at least one or two intermediate annealings being performed before the final pass of the cold rolling process. When intermediate annealing is performed, it is preferable to hold the steel sheet at a temperature of 1000 to 1200° C. for 5 to 180 seconds. The annealing atmosphere is not particularly limited. In consideration of production costs, it is preferable to perform intermediate annealing three times or less. Furthermore, before the cold rolling step, the surface of the hot-rolled sheet may be subjected to pickling.

[0051] In the cold rolling step according to the present embodiment, the hot-rolled sheet may be cold-rolled according to a known method to obtain a cold-rolled sheet. For example, the final rolling reduction may be in the range of 80 to 95%. If the final rolling reduction is 80% or more, the {110} <001> This is preferable because it is possible to obtain Goss nuclei with a high degree of orientation accumulation in the rolling direction. On the other hand, if the final rolling reduction exceeds 95%, it is not preferable because the secondary recrystallization is likely to become unstable in the subsequent finish annealing step. The final rolling reduction is the cumulative rolling reduction of cold rolling, and in the case where intermediate annealing is performed, it is the cumulative rolling reduction of cold rolling after final intermediate annealing.

[0052] <Decarburization annealing process> In the decarburization annealing step, the obtained cold-rolled sheet is subjected to decarburization annealing. In the decarburization annealing, the cold-rolled sheet is subjected to primary recrystallization, and the decarburization annealing conditions are not limited as long as C, which adversely affects magnetic properties, can be removed from the steel sheet. For example, the oxidation degree (PH2O / PH2) in the annealing atmosphere (furnace atmosphere) can be set to 0.3 to 0.6, and the annealing temperature can be set to 800 to 900°C, and the annealing can be held for 10 to 600 seconds.

[0053] <Nitriding process> Nitriding treatment may be carried out between the decarburization annealing step and the finish annealing step described below. In the nitriding process, for example, the decarburization-annealed steel sheet is nitrided by maintaining it at approximately 700 to 850°C in a nitriding atmosphere (an atmosphere containing hydrogen, nitrogen, and ammonia or other nitriding gases). When AlN is used as an inhibitor, it is preferable to set the nitrogen concentration of the steel sheet to 40 ppm or more by the nitriding process. On the other hand, if the nitrogen concentration of the steel sheet exceeds 1000 ppm, excess AlN remains in the steel sheet even after the completion of secondary recrystallization in the finish annealing. Such AlN can cause iron loss degradation. For this reason, it is preferable to set the nitrogen concentration of the steel sheet after the nitriding process to 1000 ppm or less.

[0054] <Finishing annealing process> In the final annealing step, an annealing separator containing 10 to 100 mass % of Al2O3 is applied to a cold-rolled sheet that has been subjected to a decarburization annealing step or further to a nitriding treatment, dried, and then final annealed. In conventional methods for producing grain-oriented electrical steel sheets, an annealing separator mainly containing MgO is applied and then finish annealing is performed to form a forsterite-based coating on the surface of the steel sheet (cold-rolled sheet). In contrast, in the method for producing grain-oriented electrical steel sheets according to the present embodiment, an annealing separator containing Al2O3 is used to prevent the formation of a forsterite-based coating. On the other hand, the proportion of Al2O3 may be 100% by mass, but from the viewpoint of preventing Al2O3 from seizing onto the steel sheet surface, in the method for producing a grain-oriented electrical steel sheet according to this embodiment, it is preferable that the annealing separator contains MgO. MgO may be 0%, but to obtain the above effects, the proportion of MgO is preferably 5% by mass or more. When MgO is contained, the proportion of MgO is 90% by mass or less to ensure 10% by mass or more of Al2O3. The proportion of MgO is preferably 50% by mass or less. It is sufficient that the total of Al2O3 and MgO exceeds 50% by mass in terms of solid content in the annealing separator. Furthermore, in the method for producing a grain-oriented electrical steel sheet according to this embodiment, the annealing separator may further contain chloride. When the annealing separator contains chloride, the effect of making it more difficult for a forsterite-based coating to form can be obtained. The chloride content is not particularly limited and may be 0%, but in order to obtain the above effect, a content of 0.5 to 10 mass% is preferable. Effective chlorides include, for example, bismuth chloride, calcium chloride, cobalt chloride, iron chloride, and nickel chloride. The finish annealing conditions are not limited, but for example, conditions of holding at a temperature of 1150 to 1250° C. for 10 to 60 hours can be adopted.

[0055] [Annealing separator removal process] In the annealing separator removing step, excess annealing separator is removed from the steel sheet after the finish annealing step. For example, excess annealing separator can be removed by washing with water.

[0056] [Light pickling process] In the light pickling step, the steel sheet after the annealing separator removal step is pickled for 1 to 20 seconds with one or more inorganic acids selected from sulfuric acid, phosphoric acid, and hydrochloric acid at a concentration of 0.1 to 10 mass % and at room temperature (20°C) or higher, thereby obtaining the effect of removing the annealing separator residues and forsterite-based residues adhered to the steel sheet surface. If the pickling conditions are not favorable, for example, if the concentration of the inorganic acid is low or the temperature of the inorganic acid is low, and the remaining annealing separator and forsterite-based substances are not removed, the phosphate concentration required for forming the intermediate layer changes over time, resulting in a problem that the intermediate layer is not sufficiently formed.

[0057] [Intermediate layer formation process] In the intermediate layer forming process, the steel sheet after the light pickling process is immersed for 5 to 90 seconds in a treatment solution having a temperature of 30 to 95°C, a phosphate concentration of 1.0 to 15.0 mass%, and a pH of 1.5 to 6.0, and the treatment solution is then rinsed off with water, followed by drying, to form an intermediate layer containing a crystalline metal phosphate and having a thickness of 0.1 to 15.0 μm. If the liquid temperature is below 30°C or the immersion time is less than 5 seconds, an intermediate layer with sufficient thickness will not be obtained. On the other hand, if the liquid temperature is above 95°C or the immersion time is more than 90 seconds, the intermediate layer will be excessively thick. If the phosphate concentration (concentration of metal phosphate) in the treatment solution is less than 1.0 mass%, the formation of the intermediate layer will be slow. On the other hand, if the phosphate concentration exceeds 15.0 mass%, the intermediate layer will be too thick. Therefore, the phosphate concentration in the treatment solution is set to 1.0 to 15.0 mass%. The metal phosphate contained in the treatment solution is preferably one or more of zinc phosphate, manganese phosphate, and zinc calcium phosphate. If the pH of the treatment solution is less than 1.5, the intermediate layer will be too thick, and if the pH is more than 6.0, the formation of the intermediate layer will be slow. The treatment liquid may further contain, if necessary, a pH adjuster or a sludge inhibitor such as a chelating agent.

[0058] [Groove formation process] In the groove forming step, grooves extending in a direction at an angle of 45 to 135° to the rolling direction are formed by mechanical processing in the steel sheet after the intermediate layer forming step. The use of lasers and other techniques is known for forming grooves (groove portions) for magnetic domain control in grain-oriented electrical steel sheets. However, when a laser is applied, the intermediate layer inside the groove disappears. Therefore, in the method for manufacturing grain-oriented electrical steel sheets according to this embodiment, laser irradiation is not performed, and the grooves are formed by mechanical processing such as tooth shaping. In this case, the groove depth is 10 to 30 μm and the groove width is 10 to 200 μm. If the groove depth is less than 10 μm, it is not preferable because a sufficient iron loss reduction effect cannot be obtained. If the groove depth exceeds 30 μm, it is not preferable because the coating survival rate decreases and the magnetic flux density B8 value decreases too much. Therefore, the groove depth is 10 to 30 μm. If the groove width is 10 μm, the magnetic domain control effect becomes inferior. On the other hand, if the width exceeds 200 μm, the magnetic flux density B8 value decreases too much.

[0059] [Tension coating film formation process] In the tensile coating layer formation process, a coating liquid containing metal phosphate and colloidal silica, with the colloidal silica content being 30 to 150 parts by mass per 100 parts by mass of metal phosphate, is applied to the steel sheet after the groove formation process, dried, and then held (baked) at a sheet temperature of 700 to 950°C for 10 to 90 seconds. This forms a tensile coating. The layer made of this tensile coating (tensile coating layer) and the intermediate layer form the insulating coating. If the sheet temperature is below 700°C, the tension will be low and the magnetic properties will be poor. Therefore, it is preferable that the sheet temperature be 700°C or higher. On the other hand, if the sheet temperature is above 950°C, the rigidity of the steel sheet will decrease and it will be prone to deformation. In this case, strain may be introduced into the steel sheet due to transportation, etc., resulting in poor magnetic properties. Therefore, it is preferable that the sheet temperature be 950°C or lower. Furthermore, if the retention time is less than 10 seconds, the dissolution property will be poor. Therefore, the retention time is set to 10 seconds or more. On the other hand, if the retention time is more than 90 seconds, the productivity will be poor. Therefore, the retention time is preferably 90 seconds or less. The coating liquid contains a metal phosphate and colloidal silica in an amount of 30 to 150 parts by mass of colloidal silica per 100 parts by mass of the metal phosphate. The total amount of the metal phosphate and colloidal silica in the coating liquid, calculated as solid content, is sufficient as long as it exceeds 50% by mass. The metal phosphate may be, for example, one or a mixture of two or more selected from aluminum phosphate, zinc phosphate, magnesium phosphate, nickel phosphate, copper phosphate, lithium phosphate, cobalt phosphate, etc. The coating solution may contain additional elements such as vanadium, tungsten, molybdenum, and zirconium. Colloidal silica can be of type S or type C. Type S colloidal silica refers to an alkaline silica solution, while type C refers to a silica particle surface that has been aluminum-treated, resulting in an alkaline to neutral silica solution. Type S colloidal silica is widely used and relatively inexpensive, but caution is required as there is a risk of aggregation and precipitation when mixed with an acidic metal phosphate solution. Type C colloidal silica is stable even when mixed with a metal phosphate solution and there is no risk of precipitation, but it is relatively expensive due to the large number of processing steps required. It is preferable to use the appropriate type depending on the stability of the coating solution being prepared. [Example]

[0060] A slab containing, by mass%, C: 0.08%, Si: 3.31%, sol. Al: 0.028%, N: 0.008%, Mn: 0.07%, S: less than 0.0005%, and the balance being Fe and impurities was cast. This slab was heated to 1350°C and then hot rolled to form a hot-rolled sheet having a thickness of 2.2 mm. This hot-rolled sheet was annealed at 1100°C for 10 seconds (hot-rolled sheet annealing), and then cold-rolled to a sheet thickness of 0.22 mm to obtain a cold-rolled sheet. This cold-rolled sheet was subjected to decarburization annealing at 830°C for 90 seconds in an atmosphere with a (PH2O / PH2) ratio of 0.4. Then, except for No. 108, an annealing separator containing 50 mass% Al2O3, 46.5 mass% MgO, and 3.5 mass% BiCl3 (bismuth chloride) was applied to the cold-rolled sheets, dried, and then subjected to finish annealing at 1200°C for 20 hours. For No. 108, an annealing separator consisting of only Al2O3 (100 mass%) was applied to the cold-rolled sheet, dried, and then subjected to finish annealing at 1200°C for 20 hours.

[0061] After the finish annealing process, the steel sheets were rinsed with water to remove excess annealing separator, and then lightly pickled under the conditions shown in Table 2. No forsterite-based film was formed on the surface of the steel sheets after the light pickling. An intermediate layer was formed on this steel sheet under the conditions shown in Table 1. The average thickness of the intermediate layer was as shown in Table 1. As a result of X-ray crystal structure analysis, all of the metal phosphates were crystalline metal phosphates, and the proportion of crystalline metal phosphate in the intermediate layer was 80 mass% or more.

[0062] [Table 1]

[0063] In the steel sheets with this intermediate layer, grooves were formed using a tooth profile. Except for No. 111 and No. 112, grooves 60 μm wide and 15 μm deep were formed at a 75° angle to the rolling direction, at a 5.0 mm pitch in the rolling direction. For No. 111 and No. 112, grooves 70 μm wide and 20 μm deep were formed at a 6.0 mm pitch in the rolling direction, at an 82° angle to the rolling direction.

[0064] After groove formation, the steel sheet was cut into multiple pieces as needed. Each steel sheet was coated with a coating solution containing the metal phosphate salt and colloidal silica shown in Table 2, and baked in a drying oven for the time shown in Table 2 to achieve the sheet temperature shown in Table 2, forming a tensile coating on the surface. When vanadium was added to the coating solution, it was added as an oxyacid (VO) in the molar ratio shown in Table 2. During formation, the thickness of the tensile coating layer was varied by changing the amount of coating solution applied. Some coating solutions contained alumina or silicon nitride as the remainder. In this way, samples (grain-oriented electrical steel sheets) Nos. 101 to 122 were produced.

[0065] For these steel sheets, the thicknesses of the flat and grooved portions of the intermediate layer and the average thickness of the insulating coating were determined using the methods described above. The coverage of the insulating coating in the grooved portions was also measured. The results are shown in Table 2.

[0066] [Table 2]

[0067] In addition, the chemical composition of the base steel plate was determined using the above method and found to contain C: 0.001%, Si: 3.31%, sol. Al: less than 0.001%, N: 0.001%, Mn: 0.07%, S: less than 0.0005%, with the remainder being Fe and impurities. The adhesion of the insulating coating, coating tension, corrosion resistance, elution, and magnetic properties of these steel sheets were also measured using the methods described below. The results are shown in Table 3.

[0068] [Adhesion] The adhesion of the coating was evaluated by taking a sample 30 mm wide and 300 mm long from the steel plate, annealing this sample for stress relief at 850°C for 2 hours in a nitrogen stream, then winding it around a 10 mm diameter cylinder and unwinding it, and then performing a bending adhesion test.The degree of peeling (area ratio) of the coating on the entire sample, including the grooves and flat areas, was evaluated. The evaluation criteria were as follows, and a rating of A or B was determined to indicate excellent coating adhesion. A: Peeling area ratio 0-0.5% B: Peeling area rate more than 0.5%, less than 5.0% C: Peeling area ratio more than 5.0%, less than 20% D: Peeling area ratio more than 20%, less than 50% E: Peeling area rate over 50%

[0069] [Coating tension] The coating tension was calculated by taking a sample from the steel plate and working backward from the state of curvature when the insulating coating on one side of the sample was peeled off. When the obtained film tension was 4.0 MPa or more, it was judged that the film tension was excellent.

[0070] [Corrosion resistance] In accordance with the salt spray test of JIS Z2371:2015, a 5% NaCl aqueous solution was allowed to fall naturally onto the sample for 7 hours in a 35°C atmosphere. Thereafter, the rust area was evaluated on a 10-point scale. The evaluation criteria were as follows, and a rating of 5 or more (5 to 10) was judged to be excellent in corrosion resistance. 10: No rust occurred 9: Very little rust occurs (area ratio = 0.10% or less) 8: Area ratio of rusted surface = over 0.10% and up to 0.25% 7: Area ratio of rusted surface = over 0.25% and up to 0.50% 6: Area ratio of rusted surface = over 0.50% and 1.0% or less 5: Area ratio of rusted surface = over 1.0% and up to 2.5% 4: Area ratio of rusted surface = over 2.5% and up to 5.0% 3: Area ratio of rusted surface = over 5.0% and 10% or less 2: Area ratio of rusted surface = over 10% and up to 25% 1: Area ratio of rusted surface = over 25% and up to 50%

[0071] [Dissolution] Samples were taken from the steel sheets and boiled in boiling pure water for 10 minutes, and the amount of phosphoric acid dissolved in the pure water was measured. The amount of phosphoric acid dissolved was divided by the area of ​​the insulating coating of the boiled grain-oriented electrical steel sheet to determine the elution rate (mg / m 2 ) was evaluated. The amount of phosphoric acid dissolved in the pure water was measured by cooling the pure water (solution) into which the phosphoric acid had dissolved, and then diluting the cooled solution with pure water to obtain a sample, and measuring the phosphoric acid concentration of the resulting sample using ICP-AES. The amount of elution per unit area is 40 mg / m 2 If the dissolution rate was less than this, it was determined that the dissolution rate was excellent.

[0072] [Magnetic properties] The magnetic properties were measured by stress relief annealing in a nitrogen atmosphere at 850°C for 2 hours, followed by measuring B8 (magnetic flux density at a magnetizing force of 800 A / m) and W17 / 50 (iron loss per mass at a magnetic flux density amplitude of 1.7 T and 50 Hz). These characteristic values ​​were measured using a single sheet magnetic property measurement method (Single Sheet Tester: SST) in accordance with JIS C2556:2015.

[0073] [Table 3]

[0074] As shown in Tables 1 to 3, in the inventive examples, after light pickling, an intermediate layer was formed using a specific processing method, and then grooves were formed. Therefore, by forming an insulating coating (intermediate layer and tensile coating) on ​​the surface of the base steel sheet under specific processing conditions, the specified grooves were formed in the base steel sheet, and the coverage of the grooves with the specified insulating coating was 50% or more by area. As a result, the coating adhesion and magnetic properties were excellent. In addition, the coating tension, corrosion resistance, and elution properties were also sufficient. On the other hand, in the comparative example, the grooves were not sufficiently covered with the insulating coating, and the coating adhesion and / or magnetic properties were poor. [Industrial Applicability]

[0075] The present invention provides a grain-oriented electrical steel sheet having excellent coating adhesion and magnetic properties, and a method for forming an insulating coating on the grain-oriented electrical steel sheet, which has high industrial applicability. [Explanation of symbols]

[0076] 1 Grain-oriented electrical steel sheet 2 Flat area 3 Groove 11 Base steel plate 21 Insulating coating 211 Middle Class 212 Tension coating layer RD rolling direction TD width direction ND thickness direction D Groove depth W groove width

Claims

1. A base steel plate; an insulating coating formed on the surface of the base steel sheet; A grain-oriented electrical steel sheet having The base steel plate is A flat portion and and a groove portion extending in a direction of 45 to 135 degrees relative to the rolling direction, The depth of the groove is 10 to 30 μm, and the width of the groove is 10 to 200 μm, The insulating coating is an intermediate layer having a thickness of 0.1 to 15.0 μm, which is formed on the base steel sheet side and contains a crystalline metal phosphate; a tensile coating layer formed on the surface side of the insulating coating, the base steel sheet is covered with the insulating coating having the intermediate layer and the tensile coating layer in an area ratio of 60% or more of the groove portion; A directional electrical steel sheet characterized by:

2. the crystalline metal phosphate contained in the intermediate layer is one or more of zinc phosphate, manganese phosphate, iron phosphate, and zinc calcium phosphate; the tensile coating layer contains a metal phosphate and silica, and the content of the silica in the tensile coating layer is 20 to 60 mass %; The grain-oriented electrical steel sheet according to claim 1 ,

3. A method for forming the insulating coating provided on the grain-oriented electrical steel sheet according to claim 1, comprising: Steel plate, Al 2 O 3 a finish annealing process in which an annealing separator containing 10 to 100 mass% of the above is applied, dried, and then finish annealed; an annealing separator removing step of removing excess annealing separator from the steel sheet after the finish annealing step; a light pickling step in which the steel sheet after the annealing separator removal step is pickled for 1 to 20 seconds with one or more inorganic acids selected from sulfuric acid, phosphoric acid, and hydrochloric acid at a concentration of 0.1 to 10 mass% and at room temperature or higher; an intermediate layer forming step of immersing the steel sheet after the light pickling step in a treatment solution having a solution temperature of 30 to 95°C, a phosphate concentration of 1.0 to 15.0 mass%, and a pH of 1.5 to 6.0 for 5 to 90 seconds, rinsing the treatment solution with water, and then drying the steel sheet; a groove forming step of forming grooves extending in a direction of 45 to 135° with respect to the rolling direction by mechanical processing in the steel sheet after the intermediate layer forming step; a tensile coating layer forming step of applying a coating liquid containing metal phosphate and colloidal silica to the steel sheet after the groove forming step, the coating liquid containing 30 to 150 parts by mass of colloidal silica per 100 parts by mass of the metal phosphate, drying the coating liquid, and then maintaining the steel sheet at a sheet temperature of 700 to 950°C for 10 to 90 seconds; A method for forming an insulating coating, comprising:

4. The annealing separator further contains one or two of MgO: 5 to 90 mass% and chloride: 0.5 to 10.0 mass%.

4. The method for forming an insulating coating according to claim 3.

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