Manufacturing method for insulating coated electrical steel sheet
By employing a water-based paint with controlled viscosity and composition, the method enhances both punchability and weldability of insulating coated electrical steel sheets, addressing the limitations of previous methods.
Patent Information
- Application Number
- JP2024565824
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-12-23
- Filing Date
- 2023-12-11
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2043-12-11
AI Technical Summary
Existing methods for producing insulating coated electrical steel sheets struggle to achieve both excellent punchability and weldability under stricter evaluation conditions, particularly due to issues with resin addition causing blowholes during welding.
The method involves using a water-based paint with specific viscosity ranges and compositions, including resins, inorganic components, and optional additives, applied and heated from the steel sheet side or coating surface to form an insulating coating, ensuring uniform dispersion and controlled resin distribution.
This approach results in an electrical steel sheet with improved punchability and weldability under stringent conditions, minimizing blowholes and maintaining coating integrity.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for manufacturing an insulating coated electrical steel sheet. [Background technology]
[0002] Insulation-coated electrical steel sheets naturally have excellent magnetic properties, which are their basic characteristic, but various other properties are also required in the manufacturing process of motors, transformers, etc. Properties required in the manufacturing process of such products include, for example, punchability, weldability (welding of end faces), coating adhesion, and corrosion resistance. It is well known that adding a resin component to the insulation coating is effective in improving punchability, but adding resin can cause blowholes during welding, so achieving both punchability and weldability has been a challenge.
[0003] Patent Document 1 describes a "method for producing an insulating coated electrical steel sheet having excellent weldability and punchability, characterized by applying a water-based coating liquid containing a resin and an inorganic component to the surface of the electrical steel sheet, and then heating and baking the coating from the steel sheet side." [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2003-213444 Summary of the Invention [Problem to be solved by the invention]
[0005] In Patent Document 1, although the weldability and punchability were improved, there was still room for improvement in terms of achieving both weldability and punchability under stricter evaluation conditions.
[0006] In view of the above problems, an object of the present invention is to provide a method for manufacturing an electrical steel sheet with an insulation coating that is excellent in both punchability and weldability under stricter evaluation conditions. [Means for solving the problem]
[0007] As a result of extensive research to achieve this objective, the inventors have newly discovered that by maintaining the viscosity of the water-based paint containing a resin and an inorganic component used to form the insulating coating within an appropriate range, it is possible to obtain an insulating-coated electrical steel sheet that is excellent in both punchability and weldability under stricter evaluation conditions. It has also been found that the effect of improving punchability and weldability by maintaining the viscosity of the water-based paint applied to the electrical steel sheet within an appropriate range is not limited to heating from the steel sheet side by induction heating as described in Patent Document 1, but can also be obtained when heating is performed from the surface of the coating film formed by the water-based paint, as in a gas furnace or electric furnace.
[0008] The gist and configuration of the present invention, which has been completed based on the above findings, is as follows. [1] A step of preparing a water-based paint; a step of applying the water-based paint to the surface of an electrical steel sheet and drying it by heating to form an insulating coating; and The water-based paint contains a resin, an inorganic component, an optional organic reducing agent, an optional boron compound (B compound), and water, 50% by mass or more of the resin is composed of one or both of an emulsion resin and a dispersion resin, A method for producing an electrical steel sheet with an insulating coating, wherein the water-based paint has a viscosity of 1.0 mPa·s or more.
[0009] [2] The method for producing an electrical steel sheet with an insulation coating according to [1], wherein the water-based paint has a viscosity of 40 mPa·s or less.
[0010] [3] The method for producing an electrical steel sheet with an insulation coating according to [1], wherein the water-based paint has a viscosity of 10 mPa·s or less.
[0011] [4] The method for producing an electrical steel sheet with an insulation coating according to any one of [1] to [3], wherein one or both of the emulsion resin and the dispersion resin in the water-based paint have particle sizes of 30 nm or more.
[0012] [5] The method for producing an electrical steel sheet with an insulation coating according to any one of [1] to [4], wherein the solid mass ratio of the resin to the total mass of the resin, the inorganic component, the organic reducing agent, and the B compound in terms of solid contents in the water-based paint is 0.5 mass% or more and 50 mass% or less. [Effects of the Invention]
[0013] According to the method for producing an electrical steel sheet with an insulation coating of the present invention, it is possible to produce an electrical steel sheet with an insulation coating that is excellent in both punchability and weldability under stricter evaluation conditions. DETAILED DESCRIPTION OF THE INVENTION
[0014] Hereinafter, an embodiment of the method for manufacturing an electrical steel sheet with an insulation coating according to the present invention will be described. Note that the embodiment described below is an example of a specific embodiment of the present invention, and the configuration of the present invention is not limited to this specific example.
[0015] A method for producing an insulating coated electrical steel sheet according to one embodiment of the present invention comprises the steps of preparing a water-based paint and applying the water-based paint to the surface of an electrical steel sheet and drying it by heating to form an insulating coating. The water-based paint contains a resin, an inorganic component, an optional organic reducing agent, an optional B compound, and water, wherein 50% by mass or more of the resin is an emulsion resin and / or a dispersion resin, and the water-based paint has a viscosity of 1.0 mPa s or greater.
[0016] There are no particular restrictions on the electrical steel sheet that serves as the base for the insulating coating, but it is preferable to adjust the composition appropriately depending on the desired properties. For example, increasing the resistivity is effective in improving iron loss, so it is preferable to add components that improve resistivity, such as Si, Al, Mn, Cr, P, and Ni. The ratio of these components can be determined depending on the desired magnetic properties.
[0017] The C and S contained in electrical steel sheets are elements that are detrimental to weldability, and it is also desirable to reduce their contents in terms of magnetic properties. Therefore, the C content in electrical steel sheets is preferably 0.01% by mass or less. Furthermore, the S content in electrical steel sheets is preferably 0.01% by mass or less. There are no particular restrictions on the other trace elements, segregated elements such as Sb and Sn, and inevitable impurities contained in electrical steel sheets.
[0018] There are no particular restrictions on the manufacturing method of the electrical steel sheet, and various conventionally known methods can be applied. Furthermore, the surface roughness of the steel sheet is not particularly restricted, but when emphasis is placed on the space factor, it is preferable that the three-dimensional surface roughness SRa be 0.5 μm or less. Furthermore, there are no particular restrictions on the final thickness of the steel sheet, and various thicknesses can be applied, but from the viewpoint of magnetic properties, it is preferable that the thickness be 0.8 mm or less.
[0019] Water-based paints contain resins and inorganic components. These resins and inorganic components have the property of being soluble or dispersible in water. Water-based paints may also contain one or both of an organic reducing agent and a B compound. Water-based paints may use any type of coating treatment liquid, such as a coating treatment liquid containing at least a chromate and a resin, a coating treatment liquid containing at least a phosphate and a resin, or a coating treatment liquid containing at least an inorganic colloid and a resin. Water-based paints may also contain various components to improve heat resistance or corrosion resistance.
[0020] The type of resin contained in the water-based paint is not particularly limited, and may be one or more selected from acrylic resins, epoxy resins, urethane resins, phenolic resins, styrene resins, amide resins, imide resins, urea resins, vinyl acetate resins, alkyd resins, polyolefin resins, and polyester resins. These may be used alone, as copolymers, or as mixtures. Of the total resin content (solids) in the water-based paint, 50% by mass or more is resin with particle size, i.e., emulsion resins and / or dispersion resins. When the mass ratio of emulsion resins and / or dispersion resins in the water-based paint is 50% by mass or more and 100% by mass or less, this means that the mass ratio of completely water-soluble resins without particle size is 0% by mass or more and 50% by mass or less. If the mass ratio of completely water-soluble resins without particle size exceeds 50% by mass, satisfactory improvement in punchability cannot be achieved. In the present invention, when calculating the mass ratio of one or both of the emulsion resin and the dispersion resin in the total resin amount, so-called monomers such as water-soluble acrylic acid, which are components of the resin, are also included in the calculation as "resin."
[0021] It is preferable that one or both of the emulsion resin and dispersion resin in the water-based paint have a particle size of 30 nm or more. When the particle size of one or both of the emulsion resin and dispersion resin is 30 nm or more, the resin area that adheres to the die end surface and covers the die tip during punching is suitable, the adhesive wear between the die end surface and the workpiece is suppressed, and punching performance is favorable. While there is no particular upper limit on the resin particle size, when the space factor is important, it is preferable that the resin particle size be 1 μm or less. The resin particle size can be measured using dynamic light scattering in accordance with JIS 8828:2013.
[0022] In the water-based paint, the solid content mass ratio of the resin to the total mass of the resin, inorganic components, organic reducing agent, and B compound in terms of solid content is preferably 0.5% by mass or more and 50% by mass or less. When the solid content mass ratio of the resin is 0.5% by mass or more, the above-mentioned effect of improving punchability (adhesive wear suppression effect) is preferably obtained. When the solid content mass ratio of the resin is 50% by mass or less, the amount of organic matter that decomposes and vaporizes during welding is suitable, blowholes in the weld bead can be suppressed, and suitable weldability can be obtained. It is more preferable that the solid content mass ratio of the resin is 40% by mass or less.
[0023] Inorganic components contained in the water-based paint include Cr compounds, P compounds, Si compounds, etc. Cr compounds include chromates and dichromates containing at least one metal selected from Ca, Mg, Zn, K, Na, Al, etc., and one or more of these can be used. Phosphates are applicable to P compounds, including monoaluminum phosphate, magnesium phosphate, calcium phosphate, iron phosphate, and zinc phosphate, and one or more of these can be used. Si compounds include colloidal silica, fumed silica, and plate-like silica, and one or more of these can be used. Colloidal silica, fumed silica, and plate-like silica exist in particulate form in the insulating coating. Multiple types of inorganic compounds may also be contained.
[0024] From the viewpoint of improving the insulating properties and corrosion resistance of the insulating coating, the solid mass ratio of the inorganic component to the total mass of the resin, inorganic component, organic reducing agent, and compound B converted into solid content is preferably 30 mass% or more, and more preferably 60 mass% or more. Furthermore, if the ratio of the inorganic component is too high, there is a concern that punching properties may deteriorate, so the mass ratio is preferably 80 mass% or less.
[0025] The water-based paint contains an organic reducing agent. The inclusion of the organic reducing agent can favorably promote the reduction reaction of chromium. The type of organic reducing agent is not particularly limited, but it is preferable to use at least one selected from diols and sugars. In particular, it is more preferable to use one or more diols selected from ethylene glycol and 1,4-butanediol, and one or more sugars selected from glycerin, polyethylene glycol, sucrose, lactose, sucrose, glucose, and fructose.
[0026] When the water-based coating material contains an organic reducing agent, in order to obtain a sufficient effect, the solid mass ratio of the organic reducing agent to the total mass of the resin, inorganic components, organic reducing agent, and compound B converted into solids is preferably 10 mass% or more. Furthermore, if the content of the organic reducing agent is too high, the coating properties after annealing will deteriorate, so the mass ratio is preferably 30 mass% or less.
[0027] The water-based paint contains a B compound. By including the B compound, coating cracking that may occur during stress relief annealing can be effectively alleviated and powdering resistance can be suitably improved. Examples of such B compounds include boric acid, orthoboric acid, metaboric acid, tetraboric acid, sodium metaborate, and sodium tetraborate, and these can be used alone or in combination. The B compound is not limited to these compounds, and may be, for example, a compound that dissolves in water to generate borate ions, and the borate ions may be linearly or cyclically polymerized.
[0028] When the water-based coating material contains Compound B, in order to fully obtain its effects, the solid mass ratio of Compound B to the total mass of the resin, inorganic components, organic reducing agent, and Compound B converted to solid content is preferably 5 mass% or more. Furthermore, if the content of Compound B is too high, the coating properties after annealing will deteriorate, so this mass ratio is preferably 30 mass% or less.
[0029] Water-based paints must have a viscosity of 1.0 mPa·s or greater. If the viscosity of a water-based paint is less than 1.0 mPa·s, resin particles tend to settle in the paint, forming heterogeneous aggregates, which can hinder weldability under more stringent test conditions. While the cause of the deterioration of weldability due to heterogeneous aggregates is unclear, it is believed that the presence of heterogeneous aggregates of resin particles makes it difficult to remove low-boiling components from the water-based paint (coating), whether the paint is heated from the steel sheet side or the coating surface. Maintaining the viscosity of water-based paints within the appropriate range allows the resin particles to be uniformly dispersed in the paint, thereby preventing the formation of aggregates. Furthermore, the viscosity of water-based paints is preferably 40 mPa·s or less, and more preferably 10 mPa·s or less. A viscosity of 10 mPa·s or less effectively prevents roping, a streaky coating defect, when forming a coating on a steel sheet.
[0030] The solids concentration of the aqueous paint may be adjusted to achieve the desired viscosity, or a viscosity modifier may be added. The type of viscosity modifier is not particularly limited, and commonly used viscosity modifiers such as acrylic polymers and urethane-modified polyethers may be used.
[0031] The viscosity of the water-based paint in the present invention is a value measured after mixing the components in a predetermined ratio and adjusting to the desired solid content. The viscosity is measured in accordance with JIS K 6901:2021. For example, it can be measured using a BM type viscometer (manufactured by Tokyo Keiki Co., Ltd.) at a test temperature of 25°C.
[0032] The method for applying the water-based paint may be any method that can apply the water-based paint to the steel sheet, and various methods such as a roll coater method, a bar coater method, an air knife method, and a spray coater method can be applied.
[0033] The heating method for the coating is not particularly limited, and although a general baking method using a gas furnace or electric furnace may be used, it is preferable to use an induction heating method that utilizes eddy currents generated when an electric current is passed through the steel sheet for heating. There are no particular limitations on the frequency or heating rate of the induction heating, and these may be selected appropriately depending on the heating time and efficiency, which are limited by equipment constraints, and the properties of the electrical steel sheet (sheet thickness, magnetic permeability, etc.). The heating temperature, i.e., the maximum sheet temperature, may be set to the temperature required to form the insulating coating. However, since a water-based paint is used, a temperature of 100°C or higher is preferred, and 150°C or higher is even more preferred. A temperature of 100°C or higher effectively prevents water from remaining. Furthermore, the maximum sheet temperature is preferably set to 350°C or lower. A temperature of 350°C or lower effectively prevents thermal decomposition of the resin.
[0034] The coating is preferably heated from the steel sheet side (the lower layer of the coating). Heating from the lower layer of the coating provides favorable punchability and weldability. The reason for this is not clear, but the inventors believe it to be as follows. 1) When the coating is heated from the bottom, convection occurs within the unsolidified coating film, and resins that are not completely dissolved but have a particulate form, such as emulsion resins and dispersion resins, are concentrated near the surface, increasing the amount of resin in the outermost layer and improving punchability. 2) When heating from the surface of the coating, the surface dries first and low-boiling point components tend to remain inside the coating, which turn into gas during welding and cause blowholes. However, when heating from the steel plate side (the lower layer of the coating), the low-boiling point components are effectively removed from the paint film, resulting in stable weldability.
[0035] The dry weight of the insulating coating is 0.05g / m 2 The weight of the insulating coating is preferably 0.05 g / m or more. 2 In the above cases, the coating is uniformly applied and the coating performance is stable. In addition, the coating weight is 7.0 g / m2 in dry weight. 2 It is preferable to set it to 7.0 g / m or less. 2 By setting the following, the coating adhesion can be suitably obtained. [Example]
[0036] The resins, inorganic components, organic reducing agents, and B compounds shown in Tables 1 and 2 were added to deionized water and mixed to give the mass % (solids content) shown in Tables 1 and 2 to prepare water-based paints. Although ethylene glycol, used as an organic reducing agent, is liquid at room temperature, its content was calculated as solids. The solids concentration of the water-based paints was 3 mass %. Thickener A-10H (manufactured by Toa Gosei Co., Ltd.) was added to the water-based paints as a viscosity adjuster, so that the water-based paints in each example had the viscosities shown in Tables 1 and 2.
[0037] [Table 1]
[0038] [Table 2]
[0039] These water-based paints were applied with a roll coater to the surface of test pieces cut out from 0.5 mm thick electrical steel sheets to a width of 150 mm and a length of 300 mm, and baked using an induction heating method (Table 1) and a hot air heating method using a gas furnace (Table 2) to the sheet temperatures shown in Tables 1 and 2, and then allowed to cool at room temperature to form an insulating coating. The coating weight of each insulating coating was 0.5 g / m2 in dry weight. 2 was unified into.
[0040] The appearance, weldability, and punchability of the insulating coating were evaluated as follows, and the results are shown in Tables 1 and 2.
[0041] [Coating appearance evaluation] The appearance of the painted steel sheet surface was visually inspected to check for the occurrence of roping. (Judgment criteria) ◎: No roping occurs 〇: Slight roping occurs, but does not affect coating performance ×: Severe roping occurs, and coating performance deteriorates.
[0042] [Weldability evaluation] Steel plates were stacked to a thickness of 3 cm and TIG welding was performed under the following conditions, and the evaluation was performed at the maximum welding speed at which blowholes did not occur. In Patent Document 1, the evaluation was performed at a current value of 120 A, but this time, in order to evaluate under more severe welding conditions, the welding test was performed at a current value of 150 A. ·Electrode: Th-W 2.6mmφ Pressure: 10N / mm 2 ·Current: 150A Shielding gas: Ar (6 liters / min) (Judgment criteria) ◎:120cm / min or more 〇: 80cm / min or more and less than 120cm / min ×: Less than 80cm / min
[0043] [Punching ability evaluation] Under the conditions below, a continuous punching test was carried out by adjusting the die so that the initial burr height was 10 μm, and the test was evaluated based on the number of punches made until the burr height reached 50 μm. 15mm diameter steel die used Clearance: 5% ·Punching oil: used (Judgment criteria) ◎: 1 million times or more 〇: 500,000 to less than 1,000,000 times ×: Less than 500,000 times
[0044] Table 1 shows that the examples of the invention, in which the viscosity of the water-based paint was 1 mPa·s or higher, were superior to the comparative examples in terms of appearance, weldability, and punchability. Comparing Tables 1 and 2, it can be seen that when heating from the bottom of the coating by induction heating, weldability is superior to heating by gas furnace, but even in the case of a gas furnace, performance can be improved by controlling the viscosity of the water-based paint. This clearly shows that the effects of the present invention can be obtained regardless of the heating method. [Industrial Applicability]
[0045] According to the present invention, it is possible to provide a method for manufacturing an electrical steel sheet with an insulation coating that is excellent in both punchability and weldability under stricter evaluation conditions.
Claims
1. preparing a water-based paint; a step of applying the water-based paint to the surface of an electrical steel sheet and drying it by heating to form an insulating coating; and The water-based paint contains a resin, one or more inorganic components selected from the group consisting of a Cr compound, a P compound, and a Si compound, an optional organic reducing agent, an optional boron compound (B compound), and water, 50% by mass or more of the resin is composed of one or both of an emulsion resin and a dispersion resin, 1. A method for producing an electrical steel sheet with an insulating coating, wherein the water-based paint has a viscosity of 1.0 mPa·s or more and 40 mPa·s or less.
2. The method for producing an electrical steel sheet with an insulating coating according to claim 1, wherein the water-based paint has a viscosity of 10 mPa·s or less.
3. 3. The method for producing an electrical steel sheet with an insulation coating according to claim 1, wherein one or both of the emulsion resin and the dispersion resin in the water-based paint have particle sizes of 30 nm or more.
4. 3. The method for producing an electrical steel sheet with an insulation coating according to claim 1, wherein a solid content mass ratio of the resin to a total mass of the resin, the inorganic component, the organic reducing agent, and the B compound in terms of solid contents in the water-based paint is 0.5 mass% or more and 50 mass% or less.
5. 4. The method for producing an electrical steel sheet with an insulation coating according to claim 3, wherein a solid content mass ratio of the resin to a total mass of the resin, the inorganic component, the organic reducing agent, and the B compound in terms of solid contents in the water-based paint is 0.5 mass% or more and 50 mass% or less.
Citation Information
Patent Citations
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