Insulating coating composition for electrical steel sheets, electrical steel sheet, and method for manufacturing the same.

A composition of inorganic particles, metal phosphates, and organic/inorganic composites forms an insulating coating for electromagnetic steel sheets, replacing chromates to enhance corrosion resistance, adhesion, and high-temperature resistance while ensuring environmental compliance.

JP7842869B2Active Publication Date: 2026-04-08POHANG IRON & STEEL CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-12-16
Publication Date
2026-04-08

AI Technical Summary

Technical Problem

Existing insulating coatings for non-oriented electromagnetic steel sheets, which rely heavily on chromates for heat resistance and corrosion resistance, pose environmental health risks and are subject to regulatory restrictions, necessitating the development of alternative coatings that maintain these properties without chromates.

Method used

A composition comprising a mixture of inorganic particles of different shapes and sizes, metal phosphates, and organic/inorganic composites is used to form an insulating coating, which includes first and second inorganic particles, a metal phosphate, and an organic/inorganic composite with inorganic nanoparticles substituted for an organic resin.

Benefits of technology

The coating provides excellent corrosion resistance, adhesion, high-temperature resistance, and recoating properties while eliminating the use of chromates, thereby addressing environmental concerns and maintaining or improving insulation and heat resistance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides an insulating coating composition for electrical steel sheets, an electrical steel sheet, and a method for producing the same, which are capable of improving functions such as surface insulation, high temperature resistance, corrosion resistance, adhesion, and recoatability by eliminating chromates, using a mixture of inorganic particles having different shapes and sizes, and using a composite metal phosphate and an organic / inorganic composite. [Solution] The insulating coating composition for electrical steel sheet of the present invention is characterized by comprising, based on 100% by weight of the total composition, 10 to 50% by weight of a first composition containing first inorganic particles and second inorganic particles, 10 to 50% by weight of a second composition containing a metal phosphate, and 20 to 60% by weight of a third composition containing an organic / inorganic composite in which inorganic nanoparticles are substituted for an organic resin.
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Description

Technical Field

[0001] The present invention relates to an insulating coating composition for an electromagnetic steel sheet, an electromagnetic steel sheet, and a method for manufacturing the same. More specifically, in order to solve environmental problems, chromate is eliminated, and inorganic particles having different shapes and sizes are mixed and used, thereby improving the density of the electromagnetic steel sheet coating layer. In order to satisfy high-temperature heat resistance, a metal phosphate substituted with various metals and an organic / inorganic composite excellent in adhesion to an electromagnetic steel sheet material are used to exhibit functions such as surface insulation, high-temperature heat resistance, corrosion resistance, adhesion, and recoatability. The present invention relates to an insulating coating composition for an electromagnetic steel sheet, an electromagnetic steel sheet, and a method for manufacturing the same.

Background Art

[0002] Generally, a non-oriented electromagnetic steel sheet is a steel sheet having uniform magnetic properties in all directions on a rolled sheet, and is widely used in cores of motors, generators, electric motors, small transformers, etc. In particular, non-oriented electromagnetic steel sheets are advancing in sophistication for reducing iron loss for reducing electrical loss in refrigerators, factory motors, etc., increasing magnetic flux density for miniaturization / high efficiency in vacuum cleaner motors, etc., and extreme thinning for increasing frequency for high output in OA equipment, drive motors of electric vehicles, etc.

[0003] In such non-oriented electromagnetic steel sheets riding on the wave of sophistication, in terms of efficient energy utilization, a thick insulating coating (thick film) is essential for high insulation. For example, non-oriented electromagnetic steel sheets used in medium and large electric motors, generators, transformers, etc. require an insulating coating that provides a high level of insulation to minimize interlayer current loss when used as a laminate of motor cores. Such a high level of insulation has heat resistance (Thermal resistance), and heat treatment such as stress-relief annealing (SRA) treatment may be required.

[0004] Furthermore, high-grade non-oriented electrical steel sheets have a high silicon content, which increases the hardness of the material. This leads to problems with processability degradation during slitting and punching, as it places a lot of stress on the slitter and press. Therefore, thick film coating is required. Such high-grade non-oriented electrical steel sheets are expected to drive the future of the electrical / electronics industry.

[0005] Insulating coatings for non-oriented electrical steel sheets can be broadly categorized into three types: inorganic, organic, and organic / inorganic composite coating solutions. Methods involving applying an inorganic coating solution first, followed by an organic coating solution, are also being researched. Various compositional combinations are being explored in the manufacturing of insulating coatings to improve the insulation properties of non-oriented electrical steel sheets. Currently, most insulating coatings commercialized by major manufacturers are based on phosphates and chromates. Phosphates and chromates play a significant role in improving the heat resistance, insulation, and corrosion resistance of the base metal. However, the chromium oxide contained in the coating solution can have adverse effects on human health and may cause environmental problems. Due to this issue, environmental regulations such as the Restriction of the Use of Hazardous Substances (RoHS) among EU member states have been strengthened regarding the use of heavy metals, including hexavalent chromium, limiting the applications of insulating coatings containing chromates. Therefore, while there has been active progress in eliminating chromium from electrical steel sheet coatings in recent years, there is a need for research into new insulating coating agents to compensate for the weakening of corrosion resistance and adhesion due to the absence of chromate salts. [Overview of the project] [Problems that the invention aims to solve]

[0006] The object of the present invention is to solve the above-mentioned problems and to solve environmental problems by eliminating chromates, using a mixture of inorganic particles having different shapes and sizes, and using composite metal phosphates and organic / inorganic composites, thereby improving functions such as surface insulation, high temperature resistance, corrosion resistance, adhesion, and recoating properties. This invention provides an insulating coating composition for electrical steel sheets, electrical steel sheets, and a method for manufacturing the same. [Means for solving the problem]

[0007] The insulating coating composition for electrical steel sheets of the present invention is characterized by comprising, based on 100% by weight of the total composition, 10 to 50% by weight of a first composition containing first inorganic particles and second inorganic particles, 10 to 50% by weight of a second composition containing a metal phosphate, and 20 to 60% by weight of a third composition containing an organic / inorganic composite in which inorganic nanoparticles are substituted for an organic resin.

[0008] The first and second inorganic particles are of different types and are preferably selected from the group consisting of barium sulfate (Ba2SO4), titanium dioxide (TiO2), calcium carbonate (CaCO3), clay (Al2Si2O5(OH)4), and silicon dioxide (SiO2). Metal phosphates may contain one or more metals selected from the group consisting of Al, Co, Ca, Zn, Mn, Mg, Zr, and Fe. When the metal phosphate includes a composite metal phosphate of a primary metal phosphate and a secondary metal phosphate, the primary metal phosphate may be an Al phosphate, and the secondary metal phosphate may contain a metal selected from the group consisting of Co, Ca, Zn, Mn, Mg, Zr, and Fe.

[0009] Based on 100% by weight of the second composition, the first metal phosphate may be present in 60-80% by weight, and the second metal phosphate in 20-40% by weight. The organic resin is preferably one or more selected from the group consisting of epoxy resins, ester resins, acrylic resins, styrene resins, urethane resins, and ethylene resins. The inorganic nanoparticles are preferably one or more selected from the group consisting of SiO2, Al2O3, TiO2, MgO, ZnO, and ZrO2.

[0010] The organic / inorganic composite should preferably consist of one or more elements selected from the group consisting of epoxy / SiO2, epoxy / Al2O3, epoxy / TiO2, ester / SiO2, ester / ZnO, acrylic / SiO2, acrylic / Al2O3, acrylic / ZnO, acrylic / ZrO2, styrene / SiO2, styrene / TiO2, styrene / MgO, urethane / SiO2, urethane / Al2O3, urethane / ZnO, ethylene / SiO2, ethylene / Al2O3, and ethylene / ZnO. In organic / inorganic composites, the substitution rate of inorganic nanoparticles substituted for organic resins can be 1-50%. The average particle size of inorganic nanoparticles is preferably 1 to 100 nm.

[0011] The electromagnetic steel sheet of the present invention comprises an electromagnetic steel sheet substrate and an insulating coating located on the surface of the electromagnetic steel sheet substrate. The insulating coating may contain, based on 100% by weight of the total composition, 10 to 50% by weight of a first composition containing first inorganic particles and second inorganic particles, 10 to 50% by weight of a second composition containing a metal phosphate, and 20 to 60% by weight of a third composition containing an organic / inorganic composite in which inorganic nanoparticles are substituted for an organic resin. The insulating coating is preferably 1 to 10 μm thick.

[0012] The present invention relates to a method for manufacturing an electrical steel sheet, comprising the steps of: preparing an electrical steel sheet substrate; applying an insulating coating composition according to any one of claims 1 to 10 to the surface of the electrical steel sheet substrate; and heat-treating the electrical steel sheet substrate to which the insulating coating composition has been applied. [Effects of the Invention]

[0013] According to one embodiment of the present invention, the insulating coating composition for electrical steel sheets of the present invention can provide an insulating coating agent composition for electrical steel sheets that exhibits excellent corrosion resistance and adhesion of the insulating coating even without containing chromium. Furthermore, according to one embodiment of the present invention, it is possible to have a highly functional surface that simultaneously exhibits excellent insulating properties, high-temperature heat resistance, corrosion resistance, adhesion, and recoating properties. [Brief explanation of the drawing]

[0014] [Figure 1] This is a schematic diagram of a cross-section of the electrical steel sheet of the present invention. [Modes for carrying out the invention]

[0015] The terms first, second, and third are used to describe various parts, components, regions, layers, and / or sections, but are not limited to these. These terms are used solely to distinguish one part, component, region, layer, or section from other parts, components, regions, layers, or sections. Accordingly, the first part, component, region, layer, or section described below is referred to as the second part, component, region, layer, or section without departing from the scope of the invention. The technical terms used herein are for the sole purpose of referring to specific embodiments and are not intended to limit the invention. The singular forms used herein also include plural forms unless the wording explicitly indicates otherwise. The meaning of “including” as used in this specification is to embody certain characteristics, domains, integers, stages, operations, elements, and / or components, and does not exclude the presence or addition of other characteristics, domains, integers, stages, operations, elements, and / or components.

[0016] When we say that one part is "on top" of another part, it means that it is directly on top of the other part, or that the other part is in between. In contrast, when we say that one part is "directly on top" of another part, it means that the other part is not in between. Unless otherwise defined, all terms used herein, including technical and scientific terms, have the same meaning as those generally understood by a person of ordinary skill in the art to which this invention pertains. Terms defined in commonly used dictionaries are further interpreted to have the meaning corresponding to the relevant technical literature and the present disclosures, and are not interpreted in their ideal or highly formal sense unless otherwise defined. The embodiments of the present invention will be described below in detail so that they can be easily implemented by a person with ordinary skill in the art to which the present invention pertains. However, the present invention can be realized in various different forms and is not limited to the embodiments described herein.

[0017] An insulating coating composition for electrical steel sheets according to one embodiment of the present invention may contain, based on 100% by weight of the total composition, 10 to 50% by weight of a first composition containing first inorganic particles and second inorganic particles, 10 to 50% by weight of a second composition containing a metal phosphate, and 20 to 60% by weight of a third composition containing an organic / inorganic composite in which inorganic nanoparticles are substituted for an organic resin. An insulating coating composition for electrical steel sheets according to one embodiment of the present invention can be improved in terms of insulating properties, high temperature resistance, corrosion resistance, adhesion, and recoating properties by adjusting the components and component ratios in the composition. The components of an insulating coating composition for electrical steel sheets according to one embodiment of the present invention will be described in detail below.

[0018] An insulating coating composition for electrical steel sheets according to one embodiment of the present invention may contain 10 to 50% by weight of a first composition, which includes first inorganic particles and second inorganic particles, based on 100% by weight of the overall composition. The first composition plays the role of a gravimetric agent and improves heat resistance and insulation resistance. If the content of the first composition is excessively low, problems may occur in which the heat resistance and insulation resistance characteristics deteriorate. Conversely, if the content of the first composition is excessively high, problems may occur in which the coating workability and corrosion resistance deteriorate. The first inorganic particles and the second inorganic particles are of different types, and are preferably each selected from the group consisting of barium sulfate (Ba2SO4), titanium dioxide (TiO2), calcium carbonate (CaCO3), Clay (Al2Si2O5(OH)4), and silicon dioxide (SiO2). The inorganic particles may differ in form, particle size, etc. depending on their type. For example, in the case of barium sulfate, rod-like with an average particle size of 1 to 3 μm, in the case of titanium dioxide, spherical with an average particle size of 50 to 100 nm, in the case of calcium carbonate, amorphous with an average particle size of 2 to 5 μm, in the case of silicon dioxide, amorphous with an average particle size of 2 to 4 μm, and in the case of Clay, plate-like crystals with an average particle size of 0.2 to 5.0 μm can be used. By using the first inorganic particles and the second inorganic particles as different types of inorganic particles with different forms and particle sizes, it is possible to obtain an adjustment of the filling content of the inorganic substance and an inorganic dispersion effect in the coating layer.

[0019] The insulating coating composition for an electromagnetic steel sheet of the present invention can contain 10 to 50% by weight of a second composition containing a metal phosphate based on 100% by weight of the total composition. The metal phosphate plays a role in improving corrosion resistance and insulation. The metal phosphate can contain one or more metals selected from the group consisting of Al, Co, Ca, Zn, Mn, Mg, Zr, and Fe. Specifically, the phosphate can contain one or more metals selected from the group consisting of Al, Co, Ca, Zn, Mn, and Mg. For example, the phosphate containing Al can be the first aluminum phosphate (Al(H3PO4)3), the phosphate containing Co can be the first cobalt phosphate (Co(H3PO4)2), the phosphate containing Ca can be the first calcium phosphate (Ca(H3PO4)2), the phosphate containing Zn can be the first zinc phosphate (Zn(H3PO4)2), the phosphate containing Mn can be the first manganese phosphate (Mn(H2PO4)2), and the phosphate containing Mg can be the first magnesium phosphate (Mg(H3PO4)2).

[0020] When the metal phosphate contains a composite metal phosphate of a first metal phosphate and a second metal phosphate, the first metal phosphate is preferably Al phosphate, and the second metal phosphate contains a metal selected from the group consisting of Co, Ca, Zn, Mn, Mg, Zr, and Fe. Specifically, the second metal phosphate contains a metal selected from the group consisting of Co, Ca, Zn, Mn, and Mg. In this case, based on 100% by weight of the second composition, the first metal phosphate may contain 60-80% by weight of Al phosphate and 20-40% by weight of the second metal phosphate. Specifically, the first metal phosphate may contain 65-75% by weight of Al phosphate and 25-35% by weight of the second metal phosphate. If the Al phosphate content of the first metal phosphate is excessively low, a problem of deteriorated corrosion resistance may occur, and if the Al phosphate content is excessively high, a problem of deteriorated weather resistance may occur. If the content of the second metal phosphate is excessively low, a problem of deteriorated adhesion may occur, and if the content of the second metal phosphate is excessively high, a problem of deteriorated weather resistance may occur. Metal phosphates can be produced by the reaction of a metal hydroxide (Mx(OH)y, where M is a metal) or a metal oxide (MxO, where M is a metal) with phosphoric acid (H3PO4). For example, using 100 parts by weight of an aqueous phosphoric acid solution containing 85% by weight of free phosphorus phosphate (H3PO4) as a base, a metal hydroxide (Mx(OH)y) or a metal oxide (MxO) can be added, and the reaction can be carried out at 80-90°C for 6-10 hours to obtain the respective metal phosphates.

[0021] The insulating coating composition for electrical steel sheets of the present invention may contain 20 to 60% by weight of a third composition comprising an organic / inorganic composite in which inorganic nanoparticles are substituted for an organic resin, based on 100% by weight of the overall composition. Organic / inorganic composites consist of an organic resin and inorganic nanoparticles. The inorganic nanoparticles can be substituted for some or all of the functional groups of the organic resin, allowing them to exist in the composition bound together. When inorganic nanoparticles are added alone without being bound to the resin, they tend to aggregate, making dispersion difficult. The resin in the organic / inorganic composite imparts insulating properties to the insulating coating and enhances adhesion between the insulating coating and the steel plate substrate. The inorganic nanoparticles prevent precipitation and agglomeration of metal phosphates, contributing to improved surface properties after stress relief annealing.

[0022] The organic / inorganic composite may contain 20 to 60% by weight of the insulating coating composition, based on 100% by weight of the total composition. Specifically, it may contain 30 to 50% by weight of the third composition, and more specifically, 35 to 45% by weight. If the organic / inorganic composite is present in excessively small amounts, it becomes difficult to ensure the aforementioned insulating properties and adhesion. Conversely, if the organic / inorganic composite is present in excessively large amounts, the addition of metal phosphates is relatively reduced, which may make it difficult to ensure high-temperature heat resistance. In organic / inorganic composites, the substitution rate of inorganic nanoparticles in the organic resin should ideally be 1-50%. Specifically, a substitution rate of 10-30% of inorganic nanoparticles is preferable. If the substitution rate of inorganic nanoparticles is excessively low, there is a risk of deterioration in insulation resistance characteristics. Conversely, if the substitution rate of inorganic nanoparticles is excessively high, there is a risk of deterioration in corrosion resistance and processability (punching ability). Organic resins refer to organic polymer compounds and are a concept contrasted with monomers. Specifically, organic resins are preferably one or more selected from the group consisting of epoxy resins, ester resins, melamine resins, siloxane resins, acrylic resins, phenolic resins, styrene resins, vinyl resins, urethane resins, and ethylene resins. More specifically, organic resins are preferably one or more selected from the group consisting of epoxy resins, ester resins, acrylic resins, styrene resins, urethane resins, and ethylene resins. Here, epoxy resins refer, for example, to those that have epoxy groups or groups derived from epoxy groups in their main chain.

[0023] Inorganic nanoparticles prevent precipitation and agglomeration of insulating coating compositions, contributing to improved properties after stress relief annealing. The inorganic nanoparticles are preferably one or more selected from the group consisting of SiO2, Al2O3, TiO2, MgO, ZnO, and ZrO2. Specifically, they are preferably one or more selected from the group consisting of SiO2, Al2O3, TiO2, and ZnO. The average particle size of inorganic nanoparticles should ideally be between 1 and 100 nm. If the average particle size of inorganic nanoparticles is excessively small, there is a risk of deterioration in the dispersibility of the nanoparticles in the coating solution. Conversely, if the average particle size of inorganic nanoparticles is excessively large, there is a risk of deterioration in the workability of the coating.

[0024] Specifically, the organic / inorganic composite is preferably one or more selected from the group consisting of epoxy / SiO2, epoxy / Al2O3, epoxy / TiO2, ester / SiO2, ester / ZnO, acrylic / SiO2, acrylic / Al2O3, acrylic / ZnO, acrylic / ZrO2, styrene / SiO2, styrene / TiO2, styrene / MgO, urethane / SiO2, urethane / Al2O3, urethane / ZnO, ethylene / SiO2, ethylene / Al2O3, and ethylene / ZnO. More specifically, it is preferably one or more selected from the group consisting of epoxy / SiO2, ester / SiO2, acrylic / ZnO, styrene / TiO2, urethane / Al2O3, and ethylene / Al2O3. In addition to the components mentioned above, the insulating coating composition may contain a solvent to facilitate application and ensure uniform dispersion of the components. The amount of solvent is not particularly limited, but it can be 50 to 1000 parts by weight per 100 parts by weight of the total solid content of the insulating coating composition. In one embodiment of the present invention, parts by weight refers to the relative ratio of the weights of the components. Solid content refers to the weight of the remaining components in the insulating coating composition after removing volatile components such as the solvent.

[0025] An electromagnetic steel sheet 100 according to one embodiment of the present invention includes an electromagnetic steel sheet substrate 10 and an insulating coating 20 located on the electromagnetic steel sheet substrate 10. The electromagnetic steel sheet substrate 10 can be any general non-oriented or oriented electromagnetic steel sheet without limitation. In one embodiment of the present invention, the main component is the formation of an insulating coating 20 with special components on the electromagnetic steel sheet substrate 10, so a detailed description of the electromagnetic steel sheet substrate 10 will be omitted. The thickness of the insulating film 20 may be 1 to 10 μm. If the thickness of the insulating film 20 is excessively thin, it is difficult to ensure adequate insulation. If the thickness of the insulating film 20 is excessively thick, the packing factor will be low. In one embodiment of the present invention, adequate insulation can be ensured even when an insulating film 20 of thinness is formed. More specifically, the thickness of the insulating film 20 may be 4 to 8 μm.

[0026] The insulating coating 20 can maintain the components and content ratios in the insulating coating composition described above. Specifically, the insulating coating 20 may contain, based on 100% by weight of the total, 10 to 50% by weight of a first composition containing first inorganic particles and second inorganic particles, 10 to 50% by weight of a second composition containing a metal phosphate, and 20 to 60% by weight of a third composition containing an organic / inorganic composite in which inorganic nanoparticles are substituted for an organic resin. Furthermore, the composition of the insulating coating 20 has been explained in detail in relation to the insulating coating composition, so redundant explanations will be omitted.

[0027] The present invention provides a method for manufacturing an electrical steel sheet, comprising the steps of preparing an electrical steel sheet substrate, applying an insulating coating composition to the surface of the electrical steel sheet substrate, and heat-treating the electrical steel sheet substrate to which the insulating coating composition has been applied. First, an electrical steel sheet substrate is prepared. The electrical steel sheet substrate 10 can be any general non-oriented or oriented electrical steel sheet without limitation. In one embodiment of the present invention, the main component is the formation of an insulating coating 20 of a special component on the electrical steel sheet substrate 10, so a detailed explanation of the manufacturing method of the electrical steel sheet substrate 10 will be omitted. Next, an insulating coating composition is applied to the surface of the electrical steel sheet substrate. Since the insulating coating composition has been described above, a detailed explanation will be omitted. Next, the electrical steel sheet substrate coated with the insulating coating composition is heat-treated. The heat treatment temperature should be between 200 and 400°C. If the temperature is too low, it will take a long time for the coating to form, and whitening will occur. If the temperature is too high, there is a risk that corrosion resistance, heat resistance, insulation resistance, and bluing resistance will decrease due to cracking.

[0028] The following describes preferred embodiments of the present invention, comparative examples, and evaluation examples thereof. However, the following embodiments are merely one embodiment of the present invention, and the present invention is not limited to the embodiments described below. Experimental Example 1 First, experiments were conducted to evaluate the compatibility of a mixed solution of inorganic particles constituting the first composition and metal phosphate, which is the second composition, in order to determine the type of inorganic particles and metal phosphate to be used. The method for evaluating the compatibility between inorganic particles and metal phosphate involved first mixing 30-70% by weight of metal phosphate with 30-70% by weight of inorganic particles, blending the mixture for 1 hour using a high-speed agitator (1000-3000 RPM), maintaining it at room temperature for 24 hours, and then evaluating the compatibility of the solution based on the degree of gelation and phase separation.

[0029] In the compatibility evaluation, the following inorganic particles were used: barium sulfate (Ba2SO4), titanium dioxide (TiO2), clay (Al2Si2O5(OH)4), calcium carbonate (CaCO3), silica (SiO2), and talc (3MgO.4SiO2.H2O). The shape and basic properties of each inorganic particle are shown in Table 1 below.

[0030] [Table 1] In the compatibility evaluation, various metals (Al, Mg, Mn, Ca, Zn, Co) were substituted for phosphoric acid in the form of aluminum phosphate, zinc phosphate, magnesium phosphate, cobalt phosphate, manganese phosphate, and calcium phosphate. The basic physical properties of each metal phosphate are shown in Table 2 below.

[0031] [Table 2]

[0032] The results of the solution compatibility evaluation for the mixtures of inorganic particles and metal phosphates shown in Tables 1 and 2 above are shown in Table 3 below. The solution compatibility evaluation is categorized as follows: ◎ Excellent, ○ Good, △ Insufficient, Χ Very Insufficient.

[0033] [Table 3]

[0034] As can be seen from the evaluation results in Table 3, all types of metal phosphates showed good compatibility with barium sulfate, titanium dioxide, calcium carbonate, clay, and silicon dioxide, and the compatibility of metal phosphates with barium sulfate and clay was particularly excellent. However, in the case of talc, it was confirmed that the compatibility deteriorated when mixed with all types of metal phosphates, and therefore talc was excluded from the manufacture of insulating coating agent compositions.

[0035] Experimental Example 2 In the next experiment, the organic / inorganic composite was mixed with the inorganic particle and metal phosphate mixture selected in Experimental Example 1 to evaluate its solution compatibility and coating workability. The mixing ratio of metal phosphate to inorganic particles was 1:1, and the weight percentages of the mixture of metal phosphate and inorganic particles and the organic / inorganic composite obtained in Table 3 were determined to be 30-70% by weight, respectively. As can be seen from Table 3, in this invention, the combination of metal phosphate and talc showed poor solution compatibility and was excluded from the compatibility evaluation with the organic / inorganic composite. Solution compatibility was evaluated by blending the organic / inorganic composite with the mixture of metal phosphate and inorganic particles dispersed by a high-speed disperser for 0.5 hours using a stirrer (100-300 RPM), maintaining it at room temperature for 6 hours, and then measuring the degree of gelation and phase separation of the solution.

[0036] Furthermore, the coating workability was evaluated by adjusting the specific gravity of each solution to 1.1-1.4, applying the prepared test specimen (50PN400) to a coating thickness of 5-7 μm using a bar coater, curing it at 200-350°C for 20-60 seconds, and then evaluating the surface condition. Here, the 50PN400 used as the test specimen contained Si: 2.5 wt%, Al: 0.5 wt%, and Mn: 0.2 wt% as resistivity elements, with a plate thickness of 0.5 mm and a specimen size of 300 mm × 80 mm. To sufficiently cure the coated surface, the curing temperature and curing time were optimized for each solution. As shown in Table 4, the inorganic substitution ratio of the organic / inorganic composite was fixed at 20%, and the types of inorganic nanoparticles substituted in the organic polymer resin were SiO2, Al2O3, TiO2, ZnO, ZrO2, and MgO, with inorganic nanoparticle sizes ranging from 1 to 100 nm depending on the type. Solution compatibility and coating workability were evaluated using the following categories: ◎ Excellent, ○ Good, △ Insufficient, and Χ Very Insufficient.

[0037] [Table 4]

[0038] As can be seen from the evaluation results of the solution compatibility and coating workability of mixed solutions of metal phosphates, inorganic particles, and organic / inorganic composites in Table 4 above, calcium carbonate and silicon dioxide, which have relatively large inorganic particle sizes, were relatively inferior in solution compatibility and coating workability compared to barium sulfate, titanium dioxide, and clay, which have smaller particle sizes.

[0039] Experimental Example 3 Table 5 below shows the composition ratios of the mixed solution consisting of the mixed inorganic particles of the first composition, the mixed metal phosphate of the second composition, and the organic / inorganic composite of the third composition, which are examples of the present invention, as well as a comparative example. In the examples of the present invention, the first composition was a mixture of two types of inorganic particles, the first inorganic particles and the second inorganic particles, used in a ratio of 7:3. The composite metal phosphate used as the second composition used at least one type of phosphate, and in this example, two types of metal phosphates were used, with the first metal phosphate and the second metal phosphate mixed in a ratio of 7:3. The coating solution was used with 100% by weight of the coating solution as the base, with the first, second, and third compositions used in amounts of 10-50% by weight, 10-50% by weight, and 20-60% by weight, respectively. In addition, the substitution rate of inorganic nanoparticles substituted for organic resin in the organic / inorganic composite used in Table 5 was fixed at 20%, as shown in Table 4. In contrast, Comparative Examples 1 and 2 were prepared by mixing only inorganic particles and polymer resin without adding metal phosphates, and Comparative Examples 3 and 4 were prepared by mixing only metal phosphates and polymer resin without adding inorganic particles. Furthermore, Comparative Example 5 was prepared with the same composition ratio as the Examples, except that it used one type of inorganic particle.

[0040] [Table 5] TIFF0007842869000006.tif177167

[0041] Table 6 below shows the results of applying coating solutions mixed according to the composition ratios in Table 5 using a bar coater, curing them at 200-400°C for 30-40 seconds, and then evaluating the surface condition, insulation, corrosion resistance, high-temperature resistance, and recoating properties. To ensure sufficient curing of the coating surface, the curing temperature and curing time were optimized for each solution. To obtain a consistent coating thickness for each coating solution, the solid content of the coating solution was adjusted to approximately 30%, and the coating was applied to a consistent thickness of approximately 6 μm using different bar cutter numbers. The coating thickness was measured using a delta scope. The measurement methods for each of the above characteristics are as follows. Surface condition: Evaluated by the degree of surface streaking and defect occurrence after coating and curing. In this experiment, a surface streaking and defect area of ​​5% or less was indicated as ◎ (excellent), 20% or less as ○ (good), 30% or less as △ (average), and 50% or more as Χ (poor).

[0042] Insulation: Insulation was measured using a Franklin Insulation Tester, a single-sheet testing apparatus that measures the surface insulation resistance of electrical steel sheets under constant pressure and voltage. The current range was 0 to 1,000 amp. The insulation measurement method involved placing one test specimen on a plate so that all electrode contacts were in contact, and then applying pressure to 300 psi (20.4 atm) using a pressurizer. When the test pressure was reached, the sliding resistor was adjusted, and the ammeter reading was read under a voltage of 0.5 V, which was evaluated as the interlayer insulation value. Five specimens were evaluated for each test solution. In this experiment, the insulation resistance was measured using an insulation resistance meter (ASTM A717-1), and the insulation resistance value was 100 Ω·cm. 2 If the lamination is above 60Ω·cm, it is excellent (highly superior). 2 If the lamination level is above ○ (good), 40Ω·cm 2 For lamination levels above 20Ω·cm, △ (normal), 20Ω·cm 2 If the lamination level was higher than / , it was displayed as X (defective). Corrosion resistance: Corrosion resistance was evaluated by exposing the specimens to a 5% sodium chloride (NaCl) solution at 35°C for 8 hours and then checking for rust formation. In this experiment, a rust formation area of ​​5% or less was indicated as ◎ (excellent), 10% or less as ○ (good), 20% or less as △ (average), and 50% or more as Χ (poor).

[0043] High Temperature Resistance: High temperature resistance was evaluated using the IEC60404-12 continuous rating (180+30°C, 2500h) evaluation method. The degree of change in insulation resistance, adhesion (cylindrical mandrel bending), and packing factor before and after the high temperature resistance evaluation was assessed. After the continuous rating evaluation, the degree of change in insulation resistance, adhesion, and packing factor was indicated as follows: ◎ (Excellent) if less than 5%, ○ (Good) if less than 10%, △ (Good) if less than 30%, and Χ (Degraded) if 30% or more. Adhesion: Adhesion is indicated by the minimum arc diameter at which the coating does not peel off when the tested specimen is bent 180° tangent to an arc of 5, 10, 20, 30, and 40 mmΦ. Here, a minimum arc diameter of 5 mmΦ or less is indicated as ◎ (excellent), 10 mmΦ or less as ○ (good), 20 mmΦ or less as △ (average), and exceeding 20 mmΦ as Χ (poor). Recoating properties: Recoating properties were evaluated by applying the coating solution of Comparative Example 1 as a secondary coating solution to the coating layer of a specimen coated with the coating solution, drying it, and then evaluating the surface condition of the secondary coating layer and its adhesion to the primary coating layer using the method described above. In this experiment, adhesion to the secondary coating layer was measured using a Mandrel Bend Tester (ISO1519), and was indicated as ◎ (excellent) for diameters of 5 mmΦ or less, ○ (good) for diameters of 10 mmΦ or less, △ (average) for diameters of 20 mmΨ or less, and Χ (poor) for diameters of 20 mmΦ or more.

[0044] [Table 6]

[0045] As can be seen from the evaluation results in Table 6, the surface condition, insulating properties, corrosion resistance, high-temperature heat resistance, adhesion, and recoating properties of the solutions in the examples were all superior to those of the comparative examples. In the solutions of the examples, although there were some differences in properties depending on the type of organic / inorganic composite, all properties were generally excellent. In contrast, it was confirmed that some properties among the surface condition, insulating properties, corrosion resistance, high-temperature heat resistance, adhesion, and recoating properties deteriorated in Comparative Examples 1 to 4, which did not contain two types of mixed inorganic particles, metal phosphates, and mixed compositions of organic / inorganic composites, and in Comparative Example 5, which contained inorganic particles, metal phosphates, and mixed compositions of organic / inorganic composites, but contained only one type of inorganic particle.

[0046] The present invention is not limited to the embodiments described above and can be manufactured in a variety of different forms. A person with ordinary skill in the art to which the present invention pertains will understand that the invention can be implemented in other specific forms without altering the technical idea or essential features of the invention. Therefore, the embodiments described above should be understood to be illustrative and not limiting in all respects.

Claims

1. Based on 100% by weight of the total composition, A first composition comprising first inorganic particles and second inorganic particles in an amount of 10 to 50% by weight, A second composition containing a metal phosphate is added in an amount of 10 to 50% by weight, and A third composition comprising 20 to 60% by weight of an organic / inorganic composite in which inorganic nanoparticles are substituted on an organic resin, The first inorganic particles and the second inorganic particles are of different types. An insulating coating composition for electrical steel sheets, characterized by being selected from the group consisting of barium sulfate (Ba₂SO₄), titanium dioxide (TiO₂), calcium carbonate (CaCO₃), clay (Al₂Si₂O₅(OH)₄), and silicon dioxide (SiO₂).

2. The aforementioned metal phosphate is The insulating coating composition for electrical steel sheets according to claim 1, characterized by containing one or more metals selected from the group consisting of Al, Co, Ca, Zn, Mn, Mg, Zr, and Fe.

3. If the metal phosphate includes a composite metal phosphate of a first metal phosphate and a second metal phosphate, The insulating coating composition for electromagnetic steel sheets according to claim 1, characterized in that the first metal phosphate is Al phosphate, and the second metal phosphate contains a metal selected from the group consisting of Co, Ca, Zn, Mn, Mg, Zr, and Fe.

4. The insulating coating composition for electrical steel sheets according to claim 3, characterized in that, based on 100% by weight of the second composition, the first metal phosphate is present in an amount of 60 to 80% by weight, and the second metal phosphate is present in an amount of 20 to 40% by weight.

5. The insulating coating composition for electromagnetic steel sheets according to claim 1, characterized in that the organic resin is one or more selected from the group consisting of epoxy resins, ester resins, acrylic resins, styrene resins, urethane resins, and ethylene resins.

6. The inorganic nanoparticles are SiO 2 Al 2 O 3 , TiO 2 , MgO, ZnO and ZrO 2 The insulating coating composition for electromagnetic steel sheets according to claim 1, characterized in that it is one or more selected from the group consisting of the following.

7. The aforementioned organic / inorganic composite is Epoxy / SiO 2 Epoxy / Al 2 O 3 Epoxy / TiO 2 Ester / SiO 2 Ester / ZnO, Acrylic / SiO 2 Acrylic / Al 2 O 3 Acrylic / ZnO, Acrylic / ZrO 2 Styrene / SiO 2 Styrene / TiO 2 Styrene / MgO, Urethane / SiO 2 Urethane / Al 2 O 3 Urethane / ZnO, Ethylene / SiO 2 Ethylene / Al 2 O 3 The insulating coating composition for an electromagnetic steel sheet according to claim 1, characterized in that it is one or more selected from the group consisting of Ethylene / ZnO.

8. The insulating coating composition for electromagnetic steel sheets according to claim 1, characterized in that the substitution rate of inorganic nanoparticles substituted for organic resin in the organic / inorganic composite is 1 to 50%.

9. The insulating coating composition for electromagnetic steel sheets according to claim 1, characterized in that the average particle size of the inorganic nanoparticles is 1 to 100 nm.

10. Electrical steel sheet base material, The electrical steel sheet substrate includes an insulating coating located on the surface of the electromagnetic steel sheet substrate, The insulating coating is based on 100% by weight of the overall composition. The first composition comprises 10 to 50% by weight of first inorganic particles and second inorganic particles, 10 to 50% by weight of second composition comprising a metal phosphate, and 20 to 60% by weight of third composition comprising an organic / inorganic composite in which inorganic nanoparticles are substituted for an organic resin. The first inorganic particles and the second inorganic particles are of different types. An electrical steel sheet characterized by being selected from the group consisting of barium sulfate (Ba₂SO₄), titanium dioxide (TiO₂), calcium carbonate (CaCO₃), clay (Al₂Si₂O₅(OH)₄), and silicon dioxide (SiO₂).

11. The electromagnetic steel sheet according to claim 10, characterized in that the insulating coating has a thickness of 1 to 10 μm.

12. The step of preparing the electrical steel sheet substrate, The steps include applying the insulating coating composition according to any one of claims 1 to 9 to the surface of the electromagnetic steel sheet substrate, A method for manufacturing an electrical steel sheet, comprising the step of heat-treating an electrical steel sheet substrate to which the insulating coating composition has been applied.

Citation Information

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