Electrical steel sheet for electromagnetic wave shielding and manufacturing method therefor

The electromagnetic shielding electrical steel sheet, featuring a specific steel substrate and fluoroolefin resin film, addresses the challenges of cost and constructability in existing shielding materials by providing excellent shielding and corrosion resistance while being economically viable and easy to manufacture.

WO2025126193A1PCT designated stage expired Publication Date: 2025-06-19POHANG IRON & STEEL CO LTD
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Patent Information

Application Number
PCT/IB2024/063308
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-12-15
Filing Date
2024-12-30
Publication Date
2025-06-19

AI Technical Summary

Technical Problem

Existing materials for electromagnetic shielding, such as thick aluminum, are costly and difficult to construct with, while steel materials lack sufficient magnetic shielding properties due to interstitial elements and precipitates, and require additional microstructure control for effective low-field electromagnetic wave shielding.

Method used

An electromagnetic shielding electrical steel sheet with a steel sheet substrate and a fluoroolefin resin film, featuring a specific crystal grain structure and composition that includes Si and C, with controlled grain sizes and orientations, and a fluoroolefin resin film for enhanced corrosion resistance and processability.

Benefits of technology

The solution provides excellent electromagnetic shielding, insulation, oil resistance, and chemical resistance, while being cost-effective and easily constructible, with improved productivity due to a continuous manufacturing process.

✦ Generated by Eureka AI based on patent content.

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Abstract

An electrical steel sheet for electromagnetic wave shielding, according to one embodiment of the present invention, comprises: a steel sheet base; and a film positioned on a surface of the steel sheet base, wherein, among all grains in the surface of the steel sheet base, the grains having a ratio (D2 / D1) of the diameter (D2) of an inscribed circle to the diameter (D1) of a circumscribed circle of 0.5 or greater constitute 70 area% or greater, the average grain size in the surface portion, which is the portion from the surface of the steel sheet base to less than 1 / 4 of the thickness of the steel sheet base in the thickness direction, is 80 to 500 μm, the average grain size in the center portion, which is the 1 / 4 to 1 / 2 portion of the thickness of the steel sheet base, is 50 μm or smaller, and the film comprises a fluoroolefin-based resin.
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Description

Electrical steel sheet for electromagnetic shielding and its manufacturing method

[0001] One embodiment of the present invention relates to an electromagnetic shielding electrical steel sheet and a method for manufacturing the same. Specifically, one embodiment of the present invention relates to an electromagnetic shielding electrical steel sheet having excellent electromagnetic shielding effects and insulating, oil-resistant, and chemical-resistant properties, and a method for manufacturing the same.

[0002] Burying transmission towers underground, either by directly burying high-voltage power lines or constructing underground tunnels like power lines, can improve the cityscape and prevent accidents caused by natural disasters. These underground power lines generate electromagnetic fields that can affect the human body, and aluminum is used to shield them. While aluminum is corrosion-resistant and offers long-term durability, it requires a thick layer to achieve adequate shielding. This thick aluminum material complicates construction and increases the cost of shielding underground lines due to its high material usage.

[0003] To address the above issues, the use of steel, which is relatively inexpensive compared to aluminum, has been proposed. To ensure excellent magnetic shielding properties in steel, the content of interstitial and precipitate-forming elements is limited. This is because the strain generated by interstitial elements and the precipitates formed significantly reduce magnetic permeability, so a method to limit these factors was proposed. Furthermore, by limiting the composition of the elements and minimizing the size of the precipitates, an attempt was made to achieve excellent magnetic flux density. However, when shielding electromagnetic waves generated in low fields, both the influence of the constituent elements and grain size control must be applied simultaneously to ensure excellent shielding properties, necessitating additional microstructural control. Furthermore, because electromagnetic shielding steels are often installed underground, exposed to soil corrosion, and required to ensure electromagnetic shielding properties around transmission and distribution lines, high processability and constructability are required. Therefore, the steel for electromagnetic shielding requires a surface treatment that is highly corrosion-resistant in environments such as soil, and excellent processability of the material is required. However, there is no shielding material that meets this requirement.

[0004] One embodiment of the present invention provides an electromagnetic shielding electrical steel sheet and a method for manufacturing the same. Specifically, one embodiment of the present invention provides an electromagnetic shielding electrical steel sheet having excellent electromagnetic shielding effects and possessing insulating, oil-resistant, and chemical-resistant properties, and a method for manufacturing the same.

[0005] An electromagnetic shielding electrical steel sheet according to one embodiment of the present invention comprises a steel sheet substrate and a film positioned on a surface of the steel sheet substrate, wherein on the surface of the steel sheet substrate, crystal grains having a ratio (D2 / D1) of a diameter of a circumscribed circle (D1) to a diameter of an inscribed circle (D2) of 0.5 or more account for 70% or more by area, an average crystal grain diameter within a surface portion from the surface of the steel sheet substrate to less than 1 / 4 of the thickness of the steel sheet substrate in the thickness direction is 80 µm to 500 µm, and an average crystal grain diameter within a central portion of 1 / 4 to 1 / 2 of the thickness of the steel sheet substrate is 50 µm or less, and the film comprises a fluoroolefin resin.

[0006] Inside the steel plate <111> The area fraction of grains whose direction is parallel to the rolling direction of the steel plate within 15° <110> The ratio of the area fraction of grains whose direction is parallel to the rolling direction of the steel plate and is within 15° may be 3 or more.

[0007] The ratio of the average grain size within the surface to the average grain size within the center (surface / center) may be 2.0 or greater.

[0008] The steel plate substrate may contain, in weight %, Si: 0.3% to 7.0%, C: 0.15% or less (excluding 0%), and the remainder being Fe and unavoidable impurities.

[0009] The steel plate substrate may further include Mn: 0.1 wt% or less and S: 0.005 wt% or less.

[0010] A method for manufacturing an electrical steel sheet for electromagnetic shielding according to one embodiment of the present invention comprises the steps of: hot-rolling a slab to manufacture a hot-rolled steel sheet; hot-rolling the hot-rolled steel sheet; cold-rolling the hot-rolled steel sheet annealed; decarburization annealing the cold-rolled steel sheet; and forming a film containing a fluoroolefin resin on the surface of the decarburization annealed steel sheet.

[0011] τ defined by the following equation 1 is 0.23 to 0.5.

[0012] [Formula 1]

[0013]

[0014]

[0015] (In Equation 1, the finishing rolling temperature is the hot rolling finishing rolling temperature (℃), the ROT cooling rate is the cooling rate (-℃ / s) in the ROT section before the coil is coiled after the hot rolling finishing rolling, the hot rolled sheet thickness is the thickness of the hot rolled sheet (mm), the dew point temperature is the dew point temperature (℃) of the atmosphere in the decarburization annealing stage, the annealing temperature is the annealing temperature (℃) in the decarburization annealing stage, and the cold rolled sheet thickness means the steel sheet thickness (mm) after the first cold rolling.)

[0016] The slab may contain, by weight %, Si: 0.3% to 7.0%, C: 0.01% to 0.4%, and the remainder being Fe and unavoidable impurities.

[0017] The slab may further contain Mn: up to 0.1 wt% and S: up to 0.005 wt%.

[0018] The decarburization process may be included in the annealing stage of the hot-rolled sheet.

[0019] The hot-rolled plate annealing step can be performed at a temperature of 850℃ to 1000℃ and a dew point temperature of 70℃ or lower.

[0020] The decarburization annealing step can be performed at a temperature of 600°C to 1000°C and a dew point temperature of 0°C to 70°C.

[0021] The film forming step can be formed by lamination coating.

[0022] According to one embodiment of the present invention, both electromagnetic wave shielding and corrosion resistance are excellent.

[0023] According to one embodiment of the present invention, an electromagnetic wave shielding steel plate having excellent workability can be provided.

[0024] Additionally, since it can be manufactured through a continuous process, the manufacturing time can be relatively shortened and productivity can be improved.

[0025] Figure 1 is a schematic diagram schematically showing a cross-section of a steel plate for electromagnetic wave shielding according to one embodiment of the present invention.

[0026] Figure 2 is a schematic diagram schematically showing one example of use of an electromagnetic wave shielding steel plate according to one embodiment of the present invention.

[0027] Figure 3 is a photograph showing the surface of the substrate of the electromagnetic shielding steel plate manufactured in Example 1 through EBSD analysis.

[0028] Figure 4 is a photograph of a cross-section of an electromagnetic shielding steel plate manufactured in Example 1 observed through SEM.

[0029] The terms first, second, and third, etc., are used to describe, but are not limited to, various parts, components, regions, layers, and / or sections. These terms are used only to distinguish one part, component, region, layer, or section from another part, component, region, layer, or section. Accordingly, a first part, component, region, layer, or section described below may be referred to as a second part, component, region, layer, or section without departing from the scope of the present invention.

[0030] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the present invention. As used herein, the singular forms "a," "an," and "the" include plural forms as well, unless the context clearly dictates otherwise. The word "comprising," as used herein, specifies particular features, regions, integers, steps, operations, elements, and / or components, but does not exclude the presence or addition of other features, regions, integers, steps, operations, elements, and / or components.

[0031] When a part is referred to as being "on" or "over" another part, it can be directly on or over the other part, or there may be other parts intervening. Conversely, when a part is referred to as being "directly on" another part, there are no other parts intervening.

[0032] Although not defined otherwise, all terms, including technical and scientific terms, used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which the present invention pertains. Terms defined in commonly used dictionaries are further interpreted to have meanings consistent with the relevant technical literature and the present disclosure, and are not to be construed as ideal or overly formal unless otherwise defined.

[0033] Also, unless otherwise stated, % means weight%, and 1 ppm is 0.0001 weight%.

[0034] In one embodiment of the present invention, the inclusion of additional elements means including the remaining iron (Fe) in an amount equivalent to the additional amount of the additional elements.

[0035]

[0036] Hereinafter, embodiments of the present invention will be described in detail so that those skilled in the art can easily implement them. However, the present invention may be implemented in various different forms and is not limited to the embodiments described herein.

[0037] Fig. 1 schematically shows a cross-section of an electrical steel plate for electromagnetic shielding according to one embodiment of the present invention.

[0038] As shown in FIG. 1, an electromagnetic shielding electrical steel sheet (100) according to one embodiment of the present invention includes a steel sheet substrate (10) and a film (20) positioned on the surface of the steel sheet substrate (10), and has crystal grains having a ratio (D2 / D1) of a diameter of a circumscribed circle (D1) to a diameter of an inscribed circle (D2) of 0.5 or more among all crystal grains on the surface of the steel sheet substrate, in which an average crystal grain diameter in a surface portion (12) from the surface of the steel sheet substrate to less than 1 / 4 of the thickness of the steel sheet substrate in the thickness direction is 80 µm to 500 µm, and an average crystal grain diameter in a central portion (11) of 1 / 4 to 1 / 2 of the thickness of the steel sheet substrate is 50 µm or less.

[0039] The film (20) contains a fluoroolefin resin.

[0040] Below, each component of an electrical steel plate for electromagnetic shielding according to one embodiment of the present invention is described in detail.

[0041] First, the steel plate substrate (10) contains, in wt%, Si: 0.3% to 7.0%, C: 0.15% or less (excluding 0%), and the remainder is Fe and unavoidable impurities.

[0042] Si: 0.3 to 7.0 wt%

[0043] Silicon (Si) improves the electromagnetic shielding performance of a material in low-field regions. If the Si content is too low, the material's ability to absorb external magnetic fields in low-field regions may be compromised. If the Si content is too high, the material's impurity content increases, which can lead to a decrease in saturation magnetic flux density, thereby reducing shielding performance. More specifically, the material may contain 0.5 to 4.0 wt% Si.

[0044]

[0045] C: 0.15 wt% or less

[0046] Carbon (C) content in the slab may be 0.010 to 0.400 wt% because the Goss crystal grains in the surface layer need to diffuse to the center during the intermediate decarburization annealing and final decarburization annealing, and the C in the center needs to escape to the surface layer. More specifically, the C content in the slab may be 0.100 to 0.300 wt%. In addition, the carbon content in the steel sheet after the decarburization annealing step in which manufacturing is completed may be 0.150 wt% or less. More specifically, it may be 0.100 wt% or less. More specifically, it may be 0.050 wt% or less.

[0047] The steel plate substrate (10) may further include Mn: 0.1 wt% or less and S: 0.005 wt% or less.

[0048] Mn and S form MnS precipitates, which inhibit the growth of Goss grains that diffuse toward the center during the decarburization process. Therefore, it is preferable not to add Mn or S. However, considering the amount that is inevitably mixed during the steelmaking process, the Mn and S in the slab and steel sheet after the non-oxidizing annealing step can be controlled to Mn: 0.1 wt% or less and S: 0.005 wt% or less, respectively.

[0049] The remainder includes Fe and unavoidable impurities. Unavoidable impurities are impurities mixed in during the steelmaking stage and the manufacturing process of electrical steel sheets, and since this is widely known in the field, a detailed description is omitted. Specifically, components such as Al, N, Ti, Mg, and Ca react with oxygen in steel to form oxides, and therefore, strong suppression is required, and therefore, each component can be managed to 0.005 wt% or less. In one embodiment of the present invention, the addition of elements other than the alloy components described above is not excluded, and various elements may be included within a range that does not impair the technical spirit of the present invention. When additional elements are further included, they are included in place of the remainder Fe.

[0050] On the surface of the steel plate substrate (10), grains having a ratio of the diameter of the circumscribed circle (D1) to the diameter of the inscribed circle (D2) (D2 / D1) of 0.5 or more among all grains may account for 70 area% or more. This is because, as described later in relation to the manufacturing process, decarburization annealing is performed for a short time. If batch annealing is performed for a long time after decarburization annealing, the diameter of the circumscribed circle (D1) becomes significantly larger than the inscribed circle (D2), so that the ratio cannot be 0.5 or more. Here, the circumscribed circle refers to the smallest circle among the virtual circles surrounding the outside of the grains, and the inscribed circle refers to the largest circle among the virtual circles included in the inside of the grains. More specifically, grains having a ratio of the diameter of the circumscribed circle (D1) to the diameter of the inscribed circle (D2) of 0.5 or more among all grains may account for 75 to 95 area%. More specifically, among the entire crystal grains, the ratio of the diameter of the circumscribed circle (D1) to the diameter of the inscribed circle (D2) (D2 / D1) may be 0.5 or more, and may account for 97% to 99.9% by area. Crystal grains of this shape react to an external magnetic field, especially in a low-field region, and contribute to electromagnetic shielding by having the material absorb the magnetic field. Among the entire crystal grains, the ratio of the diameter of the circumscribed circle (D1) to the diameter of the inscribed circle (D2) (D2 / D1) of 0.5 or more may be observed on the surface (ND plane) of the base material (10) of the steel plate using an optical microscope, and the observed image may be analyzed using a computer program. When a film (20) exists on the steel plate base material (10), the film (20) may be appropriately removed, and the surface of the steel plate base material (10) may be analyzed.

[0051] In one embodiment of the present invention, the average grain size in the surface portion (12) from the surface of the steel plate substrate (10) to less than 1 / 4 of the thickness of the steel plate substrate in the thickness direction is 80 µm to 500 µm, and the average grain size in the center portion (11) of 1 / 4 to 1 / 2 of the thickness of the steel plate substrate is 50 µm or less. In this way, by forming the grain sizes of the surface portion (12) and the center portion (11) in the steel plate substrate (10) differently, the grains in the surface portion can contribute to electromagnetic wave shielding by causing the material to react and absorb an external magnetic field. If the average grain size in the surface portion (12) is too small, the ability of the material to absorb an external magnetic field may be reduced, resulting in a decrease in electromagnetic wave shielding performance. If the average grain size in the surface portion (12) is too large, the adhesion may be reduced due to a decrease in the interface contact area during coating. If the average grain size of the center (11) is too large, the ability of the material to react and absorb an external magnetic field may decrease, which may result in a deterioration in electromagnetic shielding performance. More specifically, the average grain size in the surface portion (12) may be 100 ㎛ to 400 ㎛, and the average grain size in the center (11) may be 15 ㎛ to 47 ㎛. The average grain size can be obtained by measuring the number of grains per measurement area for a cross-section including the steel sheet thickness direction, dividing the measurement area by the number of grains, and obtaining the average grain area. The grain size can be obtained as the diameter of a circle having the same area.

[0052] The ratio of the average grain size within the surface to the average grain size within the center (surface / center) may be 2.0 or greater. If this ratio is too small, the ability of the material to respond to an external magnetic field may be reduced, resulting in poor electromagnetic wave shielding properties. More specifically, the ratio of the average grain size within the surface to the average grain size within the center (surface / center) may be 3.0 to 20.0.

[0053] Inside the steel plate <111> The area fraction of grains whose direction is parallel to the rolling direction of the steel plate within 15° <110> The ratio of the area fraction of grains whose direction is parallel to the rolling direction of the steel plate within 15° ( <110> / ND / <111> / ND) can be 3.0 or higher. If this ratio is high, it can contribute to electromagnetic shielding by increasing the investment rate in the low-field region. More specifically, it can be applied to the steel plate substrate. <110> / ND / <111> / ND can be 3.3 to 6.5. This can be measured using an electron backscatter diffraction pattern analyzer.

[0054]

[0055] In this way, by appropriately controlling the steel composition of the steel plate substrate (10) and appropriately forming the aggregate structure, the electromagnetic shielding performance is excellent. Specifically, the shielding rate in a 60 Hz, 100 mG magnetic field may be 50% or more, and the shielding rate in a 60 Hz, 1 G magnetic field may be 65% or more. More specifically, the shielding rate in a 60 Hz, 100 mG magnetic field may be 50.0% to 75.0%, and the shielding rate in a 60 Hz, 1 G magnetic field may be 70.0% to 85.0%.

[0056] At this time, the shielding rate can be measured by generating a magnetic field of less than 1G using the Helmholtz coil method and installing a pickup coil capable of measuring the magnetic field at the center of the generated magnetic field. The shielding rate is calculated by shielding the pickup coil with a shielding material, obtaining the strength of the magnetic field measured before and after shielding, and calculating it as follows. The pickup coil shielding is done by wrapping the coil in a cylindrical shape or shielding all four sides in a box shape.

[0057] Shielding rate (%) = (1-B 차폐적용 / B 차폐미적용 )×100

[0058] The film (20) includes a fluoroolefin resin. This resin is a material that simultaneously has excellent insulation, oil resistance, and chemical resistance properties, and in particular, has excellent corrosion resistance even when exposed to a soil corrosion environment. The fluoroolefin resin may include, for example, fluoroolefins such as vinyl fluoride, vinylidene fluoride, tetrafluoroethylene, hexafluoropropylene, 1,1,3,3,3-pentafluoropropylene, 2,2,3,3-tetrafluoropropylene, 1,1,2-trifluoropropylene, and 3,3,3-trifluoropropylene, as well as fluoroolefins in a broad sense that include halogen atoms other than fluorine atoms, such as chlorotrifluoroethylene, bromotrifluoroethylene, 1-chloro-1,2-difluoroethylene, and 1,1-dichloro-2,2-difluoroethylene. More specifically, it may include tetrafluoroethylene.

[0059] The film (20) may further include additional resins. Specifically, it may further include one or more of polyurethane, polyvinyl chloride, acrylonitrile-butadiene-styrene resin, polyacetal, polyethylene, polypropylene, polyphenylene oxide, polybutylene terephthalate, polyethylene terephthalate, phenol resin, epoxy resin, unsaturated polyester, polyimide, polymethyl methacrylate resin, polyether ether ketone resin, polyphenylene sulfide, polyamide, and polycarbonate.

[0060] The thickness of the film (20) may be 1 to 50 μm. If the film (20) is too thin, it is difficult to sufficiently obtain the desired corrosion resistance. Even if the film (20) is thicker, the corrosion resistance is not enhanced, and rather, excessive coating thickness may hinder the adhesion between the film and the material. More specifically, the thickness of the film (20) may be 3 to 30 μm.

[0061] The film (20) may be composed of a single layer or multiple layers. Multiple layers refer to forming a film by combining the coatings presented above. The thickness of the film (20) described above is the thickness for a single layer, and when multiple layers are present, the total thickness of the film (20) may be 10 to 50 μm.

[0062] In Fig. 2, one embodiment of the present invention shows an example of using an electrical steel plate for electromagnetic shielding. As shown in Fig. 2, an electrical steel plate for electromagnetic shielding (100) can be installed in a form in which a cylindrical shape is rolled into a tube shape and wrapped around a transmission line (200). Alternatively, in a cylindrical underground conduit wrapping a transmission line (200), an electrical steel plate for electromagnetic shielding (100) can be inserted between the transmission line and the underground conduit, or an electrical steel plate for electromagnetic shielding (100) can be installed to wrap around the underground conduit.

[0063]

[0064] A method for manufacturing an electrical steel sheet for electromagnetic shielding according to one embodiment of the present invention comprises the steps of: hot-rolling a slab to manufacture a hot-rolled steel sheet; hot-rolling the hot-rolled steel sheet; cold-rolling the hot-rolled steel sheet annealed; decarburization annealing the cold-rolled steel sheet; and forming a film containing a fluoroolefin resin on the surface of the decarburization annealed steel sheet.

[0065] Below, each step is explained in detail.

[0066] First, the slab is hot rolled.

[0067] The slab may contain, by weight %, Si: 0.3% to 7.0%, C: 0.01% to 0.4%, and the remainder being Fe and unavoidable impurities.

[0068] The slab may further contain Mn: up to 0.1 wt% and S: up to 0.005 wt%.

[0069] The description of the steel composition of the slab is the same as that of the electrical steel plate for electromagnetic shielding mentioned above, so any duplicate description will be omitted. Except for C, the steel composition of the steel plate can be substantially the same as that of the slab.

[0070] The slab can be heated before hot rolling. The slab heating temperature can be 1050℃ to 1350℃, which is higher than the usual heating temperature. When the temperature is high during slab reheating, there is a problem that the hot-rolled structure becomes coarser, which adversely affects magnetism. However, in the method for manufacturing an electrical steel sheet according to an embodiment of the present invention, since the carbon content is higher than in the past, even if the slab reheating temperature is high, the hot-rolled structure does not become coarser, and by reheating at a higher temperature than in the usual case, it is advantageous during hot rolling. However, when the reheating temperature is high, the solid solubility of precipitates such as TiN and AlN increases, so that a large number of fine precipitates are distributed during cooling, which acts to hinder the growth of crystal grains on the surface.

[0071] Hot rolling can be used to manufacture hot-rolled sheets with a thickness of 1.3 to 4.3 mm by applying an appropriate rolling ratio in the final cold rolling stage so that the final product thickness can be manufactured. More specifically, it can be manufactured with a thickness of 1.5 to 4.0 mm.

[0072] The hot rolling finish rolling temperature may be 750°C to 1050°C. If the hot rolling finish rolling temperature is too high, surface defects may occur, lowering the quality. In addition, if the finish rolling temperature is too low, the rolling load increases, which reduces the rollability and productivity. More specifically, it may be 800 to 1030°C. In one embodiment of the present invention, the cooling rate in the ROT section after the hot rolling finish rolling and before the coil is wound can be controlled. More specifically, the cooling rate in the ROT section can be controlled to -50 to -5°C / s. If the cooling rate is too high, the growth of surface grains is suppressed, making it difficult to obtain coarse grains. More specifically, the cooling rate can be controlled to -30 to -7°C / s.

[0073] After hot rolling, the hot-rolled steel sheet is subjected to hot-rolled sheet annealing. This hot-rolled sheet annealing may include a decarburization process. Specifically, the hot-rolled sheet annealing may be performed at a temperature of 850°C to 1000°C and a dew point temperature of 70°C or lower. More specifically, the annealing may be performed at a dew point temperature of -70°C to 70°C. After the aforementioned annealing, further annealing may be performed at a temperature of 1000°C to 1200°C and a dew point temperature of 0°C or lower. After the hot-rolled sheet annealing, pickling may be performed.

[0074] Next, cold rolling is performed to manufacture cold rolled steel sheets.

[0075] Therefore, cold rolling can be performed at a reduction ratio of 50% to 80%. More specifically, it can be 55% to 75%. Through this, cold rolled steel sheets with a final thickness of 0.3 to 2.0 mm can be manufactured.

[0076] Next, the cold-rolled steel sheet is decarburized and annealed. The decarburization annealing step can be performed in the austenite single-phase region or in a region where ferrite and austenite exist in a composite phase. Specifically, the annealing can be performed at a temperature of 800°C to 970°C and a dew point temperature of 3°C to 65°C. Furthermore, the atmosphere can be a mixed gas atmosphere of hydrogen and nitrogen. Furthermore, after decarburization annealing, the carbon content in the steel sheet can be 0.15 wt% or less.

[0077] In a method for manufacturing an electrical steel sheet for electromagnetic shielding according to one embodiment of the present invention, τ defined by the following equation 1 is 0.230 to 0.500.

[0078] [Formula 1]

[0079]

[0080]

[0081] (In Equation 1, the finishing rolling temperature is the hot rolling finishing rolling temperature (℃), the ROT cooling rate is the cooling rate (-℃ / s) in the ROT section before the coil is coiled after the hot rolling finishing rolling, the hot rolled sheet thickness is the thickness of the hot rolled sheet (mm), the dew point temperature is the dew point temperature (℃) of the atmosphere in the decarburization annealing stage, the annealing temperature is the annealing temperature (℃) in the decarburization annealing stage, and the cold rolled sheet thickness means the steel sheet thickness (mm) after the first cold rolling.)

[0082] If τ is too small, grain growth at the surface (12) may not be sufficient. If τ is too large, grain growth at the center (11) may occur significantly, which may adversely affect electromagnetic shielding performance. More specifically, τ may be 0.240 to 0.450.

[0083] Next, a film containing a fluoroolefin resin is formed on the surface of the decarburized annealed steel sheet. Since the film is the same as described above, a duplicate description will be omitted. In one embodiment of the present invention, the film may be formed by preparing a film containing a fluoroolefin resin and then adhering it to the surface of the steel sheet substrate, rather than applying a composition. That is, it may be formed by lamination coating. Lamination coating refers to a process of overlaying the film-shaped film suggested in the present invention onto a steel sheet, and at this time, appropriate heat and pressure are applied to increase the adhesion between the film and the material. In addition, it refers to a process of overlaying a film containing a curing agent onto a material at room temperature under an appropriate pressure, and then curing the film with ultraviolet (UV) ray to complete the film. The present invention does not place any specific limitations on the lamination process.

[0084]

[0085] Specific examples of the present invention are described below. However, the following examples are merely specific examples of the present invention, and the present invention is not limited to the following examples.

[0086]

[0087] Example

[0088] A slab containing 2.0% Si, 0.101% C in weight percent, and the remainder Fe and unavoidable impurities is heated at a temperature of 1270°C and then subjected to the processes of hot rolling, hot-rolled sheet annealing, cold rolling, and decarburization annealing in that order under the manufacturing conditions shown in Table 1. After decarburization annealing, C was 0.005% by weight.

[0089] Manufacturing condition 11 added a step of high-temperature annealing at 1200°C for 30 minutes at a dew point of -20°C.

[0090] Afterwards, a film was formed by laminating tetrafluoroethylene to a thickness of 10 μm. Inventive examples 2 and 3 were formed by forming multiple layers to a total thickness of 20 μm, and comparative examples 6 and 7 were formed by applying a phosphate composition and drying it.

[0091] The manufactured specimens were measured for their surface and center average grain size, magnetic flux density, and electromagnetic shielding ratio, and these are shown in Tables 2 and 3.

[0092] The average grain size was measured using an optical microscope.

[0093] The crystal grain morphology on the surface was measured using a backscatter electron diffraction pattern analyzer.

[0094] <110> / ND / <111> / ND was measured using a backscatter electron diffraction pattern analyzer.

[0095] The magnetic flux density was measured using Single Strip Magnetic Field Measurement.

[0096] The electromagnetic shielding rate was measured by generating a magnetic field of less than 1 G using the Helmholtz coil method and installing a cylindrical pickup coil capable of measuring the magnetic field at the center of the generated magnetic field. The pickup coil was shielded with a gingham plate, and the magnetic field strength measured before and after shielding was obtained, and the shielding rate was calculated as follows.

[0097] Shielding rate (%) = (1-B 차폐적용 / B 차폐미적용 )×100

[0098] Insulation was measured by Franklin insulation, and was measured as the storage current value when an input of 0.5 V and 1.0 A current was passed under 300 PSI pressure.

[0099] Salt spray corrosion resistance was evaluated by evaluating the number of times rust began to occur in the specimen through a repeated test of 8 hours in a 5 wt%, 35°C, NaCl solution.

[0100] Soil corrosion resistance was tested under test conditions (salinity, pH control), Fog (35℃, 24hr), and test solution: NaCl 1% + Na2SO4 0.01% + Na2CO3 0.01%. The material was buried to a depth of 10 cm (moisture content control) and the time for rust occurrence was measured.

[0101] Manufacturing conditionsHot rolledHot rolled sheetCold rolledDecarburizationAnnealing parameter (τ)Finish rollingTemperature (℃)ROTCooling rate (-℃ / s)Thickness (mm)Annealing temperature (℃)Reduction ratio (%)Thickness (mm)Dew point temperature (℃)Annealing temperature (℃)1100284.0920601.60609500.2582975103.0920651.05439230.3803950132.5920700.75238730.4324925252.0920620.7658200.2435900281.5920630.56108150.3906880325.09206 11.95158950.0327911552.8920800.5608570.1088843352.7920700.81-209200.1129863302.5920800.5077450.21910965321.2920670.40558120.72911780203.8920671.25608150.102

[0102] Manufacturing conditions Average grain size (㎛) D2 / D1 0.5 or more fraction (area%) (surface / center grain size) <110> / ND / <111> / ND surface center 115346753.43.52334318810.64.53287237812.54.24263197513.63.85352259514.14.864532721.43.372319701.23.184833731.53.193532851.13.210138102721.43.111826815521.05.2

[0103] Manufacturing conditions B1 (T)B50 (T)Shielding rateShielding rate100mG (%)1G (%)10.8791.88751.272.821.3451.85366.575.631.2951.82564.074.441.2701.78161.471.251.3601.86764.275.160.5551.83530.567.870.2981.70018.361.880.6051.84631.868.790.4821.83225.267.5100.9211.70260.262.8111.4581.71072.563.5

[0104] Manufacturing conditions Film layer water insulation (mA) Corrosion resistance (salt spray, Cycle) Corrosion resistance (soil corrosion, hr) Classification 1 Tetrafluoroethylene 1384998 Invention example 12 Tetrafluoroethylene 22551254 Invention example 23 Tetrafluoroethylene 3561540 Invention example 34 Tetrafluoroethylene 1494912 Invention example 45 Tetrafluoroethylene 1514907 Invention example 56 Tetrafluoroethylene 1504950 Comparative example 17 Tetrafluoroethylene 1354942 Comparative example 28 Tetrafluoroethylene 1394955 Comparative example 39 Tetrafluoroethylene 1434932 Comparative example 410 Tetrafluoroethylene 1404978 Comparative example 511 Tetrafluoroethylene 1434955 Comparative example 61 Phosphate 13951138 Comparative example 72 Phosphate 13221129 Comparative example 8

[0105] As shown in Tables 1 through 4, when process conditions are properly controlled, the steel plate substrate's aggregate structure is properly formed and its shielding ratio is excellent. Furthermore, when a fluoroolefin resin is used as the coating, it is confirmed that the insulation and corrosion resistance are excellent.

[0106] On the other hand, if the process conditions are not properly controlled, it can be confirmed that the aggregate structure of the steel plate substrate is not properly formed and the shielding rate is inferior.

[0107] Even if the steel plate substrate is properly manufactured, it can be confirmed that the insulation and corrosion resistance are inferior when a phosphate film is used as the film.

[0108]

[0109] The present invention is not limited to the above-described embodiments and / or examples, but can be manufactured in various different forms. Those skilled in the art will understand that the present invention can be implemented in other specific forms without altering the technical spirit or essential characteristics of the present invention. Therefore, the above-described embodiments and / or examples should be understood as illustrative in all respects and not restrictive.

[0110] [Explanation of symbols]

[0111] 100: Electrical steel plate for electromagnetic shielding, 10: Electrical steel plate substrate,

[0112] 11: center, 12: surface,

[0113] 20: Film, 200: Transmission line

Claims

Comprising a steel plate substrate and a film positioned on the surface of the steel plate substrate, On the surface of the steel plate, the ratio of the diameter of the outer circle (D1) to the diameter of the inner circle (D2) among the total crystal grains (D2 / D1) is 0.5 or more, and the crystal grains account for 70% or more in area. The average grain size in the surface portion from the surface of the steel plate substrate to less than 1 / 4 of the thickness of the steel plate substrate in the thickness direction is 80 ㎛ to 500 ㎛, and the average grain size in the center portion from 1 / 4 to 1 / 2 of the thickness of the steel plate substrate is 50 ㎛ or less. The above film is an electrical steel plate for electromagnetic shielding containing a fluoroolefin resin. In the first paragraph, Within the above steel plate <111> The area fraction of grains whose direction is parallel to the rolling direction of the steel plate within 15° <110> Electrical steel sheet for electromagnetic shielding, having an area fraction ratio of crystal grains whose direction is parallel to the rolling direction of the steel sheet within 15° of 3 or more. In the first paragraph, An electrical steel sheet for electromagnetic shielding, wherein the ratio of the average grain size in the surface portion to the average grain size in the center portion is 2.0 or more. In the first paragraph, The above steel plate substrate is an electrical steel plate for electromagnetic shielding, which contains, in weight %, Si: 0.3% to 7.0%, C: 0.15% or less (excluding 0%), and the remainder being Fe and unavoidable impurities. In the first paragraph, The above steel plate substrate is an electrical steel plate for electromagnetic shielding, further containing Mn: 0.1 wt% or less and S: 0.005 wt% or less. A step of manufacturing hot rolled steel sheets by hot rolling a slab; A step of annealing the hot-rolled steel plate; A step of cold rolling a hot-rolled steel sheet that has been annealed; Step of decarburizing and annealing a cold rolled steel sheet; and Comprising a step of forming a film containing a fluoroolefin resin on the surface of a decarburized annealed steel plate, A method for manufacturing an electrical steel sheet for electromagnetic shielding, wherein τ defined by the following equation 1 is 0.23 to 0.

5. [Formula 1] (In Equation 1, the finishing rolling temperature is the hot rolling finishing rolling temperature (℃), the ROT cooling rate is the cooling rate (℃ / s) in the ROT section before the coil is coiled after the hot rolling finishing rolling, the hot rolled sheet thickness is the thickness of the hot rolled sheet (mm), the dew point temperature is the dew point temperature (℃) of the atmosphere at the decarburization annealing stage, the annealing temperature is the annealing temperature (℃) at the decarburization annealing stage, and the cold rolled sheet thickness means the steel sheet thickness (mm) after cold rolling.) In Article 6, A method for manufacturing an electrical steel sheet for electromagnetic shielding, wherein the above slab contains, in weight %, Si: 0.3% to 7.0%, C: 0.01% to 0.4%, and the remainder being Fe and unavoidable impurities. In Article 7, A method for manufacturing an electrical steel sheet for electromagnetic shielding, wherein the above slab further contains Mn: 0.1 wt% or less and S: 0.005 wt% or less. In Article 6, A method for manufacturing an electrical steel sheet for electromagnetic shielding, the method including a decarburization process in the step of annealing the hot-rolled sheet. In Article 6, A method for manufacturing an electrical steel sheet for electromagnetic shielding, wherein the step of annealing the hot-rolled sheet is performed at a temperature of 850°C to 1000°C and a dew point temperature of 70°C or lower. In Article 6, A method for manufacturing an electrical steel sheet for electromagnetic shielding, wherein the above decarburization annealing step is performed at a temperature of 600°C to 1000°C and a dew point temperature of 0°C to 70°C. In Article 6, A method for manufacturing an electrical steel sheet for electromagnetic shielding, wherein the step of forming the above film is formed by lamination coating.

Citation Information

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