Non-oriented electrical steel and method for manufacturing the non-oriented electrical steel.

A non-oriented electrical steel sheet with a tailored chemical composition and manufacturing process achieves low eddy current loss and high mechanical strength, addressing the limitations of existing technologies in high-speed motors.

JP2026517546APending Publication Date: 2026-06-02ARCELORMITTAL SA

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
ARCELORMITTAL SA
Filing Date
2024-11-14
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

Existing non-oriented electrical steel sheets face challenges in achieving a balance between low eddy current loss, mechanical strength, and magnetic properties, particularly in high-speed motors, while conventional methods to reduce eddy current loss, such as thinning the steel plates or adding alloying elements, have limitations.

Method used

A non-oriented electrical steel sheet with a specific chemical composition and manufacturing process, including controlled grain size and annealing conditions, to achieve low eddy current loss, high mechanical strength, and improved magnetic properties, with a total eddy current loss of 35% to 45% of the total iron loss.

Benefits of technology

The solution results in a steel sheet with enhanced mechanical properties like ultimate tensile strength, yield strength, and magnetic polarization, along with reduced eddy current loss, suitable for high-speed motors, while maintaining compatibility with conventional industrial applications.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a non-oriented electrical steel sheet having a composition expressed in weight percent containing the following elements: 0.0001% ≤ carbon ≤ 0.007%, 0.05% ≤ manganese ≤ 0.15%, 2.5% ≤ silicon ≤ 3.1%, 0.26% ≤ aluminum ≤ 0.7%, phosphorus ≤ 0.15%, sulfur ≤ 0.006%, nitrogen ≤ 0.09%, and may contain one or more of the following optional elements: 0% ≤ niobium ≤ 0.1%, 0% ≤ titanium ≤ 0.1%, 0% ≤ vanadium ≤ 0.1%, 0% ≤ chromium ≤ 1%, 0% ≤ molybdenum ≤ 0.5%, 0% ≤ tungsten ≤ 0.1%, 0% We handle non-oriented electrical steel sheets, the composition of which is %≦cobalt≦1%, 0%≦arsenic≦0.05%, 0.001%≦calcium≦0.01%, 0%≦copper≦1%, 0%≦nickel≦1%, 0%≦boron≦0.05%, 0%≦lead≦0.2%, 0%≦tin≦0.2%, 0%≦antimony≦0.2%, the remaining composition consisting of iron and unavoidable impurities resulting from processing, the microstructure of the steel sheet is made from ferrite and, in terms of area fraction, contains 80%~100% recrystallized microstructure and 0%~20% non-recrystallized microstructure, the average grain size of the recrystallized microstructure is 20 microns~110 microns, and the percentage of eddy current loss in total iron loss measured at 1T and 400Hz according to IEC 60404-2 standard is 35%~45% when calculated according to the Bertotti method.
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Description

Technical Field

[0001] The present invention relates to a non-oriented electrical steel sheet and a method for manufacturing the same. Specifically, the present invention relates to a non-oriented electrical steel sheet having excellent mechanical properties and low iron loss, specifically low eddy current loss, and a method for manufacturing the same.

Background Art

[0002] Therefore, intensive research and development efforts have been devoted, and due to the worldwide increase in energy conservation of electrical appliances, higher performance characteristics are required for using non-oriented electrical steel sheets as the core material of electric machines. In recent years, in particular, as motors used in electric vehicles (electric vehicle) and the like, the demand for small and high-output motors has been increasing. Such electric vehicle motors are designed to enable high-speed rotation so that high torque can be obtained while having the least possible losses. This requires a light, highly efficient non-oriented electrical steel having low losses as its main characteristic. Finding a balance between loss, permeability, polarization, thermal conductivity, tensile strength and yield strength is essential for non-oriented electrical steel.

[0003] The lower the iron loss in an electric machine, the higher the efficiency of the electric machine. Therefore, in order to reduce the amount of iron loss in an electric machine, the manufacturers of electric machines have several options, and their main option is to reduce either the hysteresis loss or the eddy current loss in order to improve the efficiency of the electric machine. Progress is often achieved by a combination of these two approaches. The present invention relates to the second option, i.e., reducing the eddy current loss for an electric machine. There are two options for reducing the eddy current loss.

[0004] The first approach involves reducing the thickness of the steel plates used in electrical machinery, such as having a thickness of less than 0.35 mm or thinner. Unfortunately, this solution has limitations due to the reduction in the lamination ratio, which decreases the torque achievable for a given machine height, as well as a very significant decrease in the rigidity of certain automotive parts, and the emergence of acoustic problems that cause discomfort to the occupants.

[0005] The second method involves optimizing the elemental composition of the steel sheet by increasing the amount of alloying elements to limit eddy current losses. Among these alloying elements, aluminum and manganese, for example, have attractive mechanical and magnetic properties while significantly reducing eddy current losses. However, beyond a certain percentage, the presence of alloying elements affects hysteresis losses and magnetic polarization, so the addition of alloying elements can be limited.

[0006] Previous research and development in the field of high-strength non-oriented electrical steel have resulted in several methods for producing high-strength non-oriented electrical steel, some of which are listed herein for a thorough understanding of the present invention.

[0007] U.S. Patent Application Publication No. 2021 / 371948 describes a non-oriented electrical steel sheet, 4.5 × 10 -6The following steel slabs are hot-rolled and hot-band annealed, having the following average magnetostriction λp-p at 400 Hz and 1.0 T, and an area ratio of recrystallized crystal grains in the cross-section of the steel sheet in the rolling direction of the sheet of 40-95%, and containing, by mass%, C: 0.005% or less, Si: 2.8-6.5%, Mn: 0.05-2.0%, Al: 3.0% or less, P: 0.20% or less, S: 0.005% or less, N: 0.005% or less, Ti: 0.003% or less, V: 0.005% or less, and Nb: 0.005% or less, and satisfying Si-2A1-Mn≧0. This is a non-oriented electrical steel sheet from which an average grain size of 10 to 40 microns is obtained by subjecting it to cold rolling and finish annealing under appropriate cold rolling and finish annealing conditions, and from which motor cores are manufactured. U.S. Patent Application Publication No. 2021 / 371948 does not demonstrate total elongation and eddy current losses at all.

[0008] European Patent Application Publication No. 3741874 discloses a method for manufacturing Fe-Si electrical steel sheets exhibiting magnetic properties for rotors or stators. [Prior art documents] [Patent Documents]

[0009] [Patent Document 1] U.S. Patent Application Publication No. 2021 / 371948 [Patent Document 2] European Patent Application Publication No. 3741874 [Overview of the project] [Problems that the invention aims to solve]

[0010] The object of the present invention is to solve these problems by producing a non-oriented electrical steel sheet having a percentage of eddy current loss in total iron loss of 35% to 45%, preferably 35% to 40%, when calculated according to the Bertotti method. [Means for solving the problem]

[0011] In preferred embodiments, the following additional properties can also be achieved, either alone or in combination: • Ultimate tensile strength of 470 MPa or more in both the transverse and rolling directions, preferably exceeding 490 MPa in both the transverse and rolling directions. • Yield strength of 330 MPa or more in both the transverse and rolling directions, preferably 350 MPa or more in both the transverse and rolling directions. • Total elongation of 19% or more in both the transverse and rolling directions, preferably 21% or more in both the transverse and rolling directions. Magnetic polarization at 5000 A / m (J50) with a value of 1.55 T to 1.60 T, preferably magnetic polarization at 5000 A / m (J50) with a value of 1.56 T to 1.59 T, more preferably magnetic polarization at 5000 A / m (J50) with a value of 1.57 T to 1.59 T Total power loss of 14-18 W / kg when measured at 1T and 400Hz, preferably 14-16 W / kg when measured at 1T and 400Hz, and more preferably 15-16 W / kg when measured at 1T and 400Hz.

[0012] Preferably, such steel can have good punchability and coating properties, and excellent suitability for rolling.

[0013] Preferably a hardness of 185 HV or higher, preferably 195 HV or higher.

[0014] Another objective of the present invention is to make available a method for manufacturing these plates that is compatible with conventional industrial applications while also being robust against changes in manufacturing parameters.

[0015] The above-mentioned objectives and other advantages of the present invention will become more apparent by describing preferred embodiments of the present invention in detail.

[0016] The chemical composition of non-oriented electrical steel contains the following elements by weight percentage: The carbon content in the steel of the present invention is 0.0001% to 0.007%. Since carbon is a precipitate-forming element, it is detrimental to the magnetic properties of this steel. Therefore, the carbon content in this steel is 0.0001% to 0.007%. Since carbon promotes magnetic aging, the preferred carbon content according to the present invention is 0.002% to 0.007%, more preferably 0.002% to 0.005%.

[0017] The manganese content of the steel of this invention is 0.0 8 %~0.1 3 It is %. Manganese provides solid solution strengthening and iron loss reduction by increasing resistivity. If the amount of manganese added exceeds 0.15%, the magnetic flux density may decrease significantly, and the recrystallization of the steel may be inhibited during annealing. ru.

[0018] The silicon content of the steel of the present invention is 2.5% to 3.1%. Silicon is an element that contributes to increasing strength through solid solution strengthening and is a central element for reducing eddy current loss in iron loss by increasing the resistivity of the steel. The above-mentioned effects require a minimum silicon content of at least 2.5%. However, if the silicon content exceeds 3%, rolling becomes difficult and the magnetic induction of the steel is significantly reduced. The preferred limit for the presence of silicon is 2.6% to 3%, more preferably 2.7% to 3%.

[0019] The aluminum content is 0.26% to 0.7%. Aluminum can increase the electrical resistivity of the material and effectively reduce iron loss in the steel. If the aluminum content exceeds 0.7%, the magnetic induction of the steel is significantly reduced, which is also detrimental to the rollability of the cold-rolled steel of the present invention. The preferred limit for the presence of aluminum is 0.3% to 0.6%, more preferably 0.35% to 0.55%.

[0020] Sulfur is not an essential element but may be contained as an impurity in steel. From the perspective of the present invention, the sulfur content is preferably as low as possible, but from the perspective of manufacturing cost, it is 0.006% or less. Further, when higher sulfur is present in the steel, sulfur combines to form sulfides that are harmful to the magnetic properties of the present invention.

[0021] The phosphorus component of the steel of the present invention is 0% to 0.15%. Phosphorus reduces hot and cold ductility due to its tendency to segregate, especially at grain boundaries, or to co-segregate with manganese. For these reasons, its content is limited to 0.15% and preferably less than 0.09%.

[0022] Nitrogen is limited to 0.09% to minimize the precipitation of aluminum nitride during solidification, which is harmful to the magnetic properties of the steel.

[0023] Titanium is an optional element and when added to the steel of the present invention, it is 0% to 0.1%. Titanium forms titanium nitride that appears during solidification of the casting. Therefore, the amount of titanium is limited to 0.1% to avoid the formation of titanium nitride that is harmful to the magnetic properties of the steel of the present invention. When the titanium content is less than 0.001%, it has no effect on the steel of the present invention.

[0024] Niobium is present in the steel of the present invention at 0% to 0.1% and is suitable for forming carbonitrides to increase the strength of the steel of the present invention by precipitation hardening. Niobium also affects the size of the microstructure components by precipitating as carbonitrides. However, a niobium content exceeding 0.1% is not economically interesting as a saturation effect.

[0025] Vanadium is present in the steel of the present invention at 0% to 0.1% and is effective in increasing the strength of the steel by forming carbides or carbonitrides, and the upper limit is 0.1% from an economic perspective.

[0026] Chromium is an optional element for the steel of this invention, present in an amount of 0% to 1%. Chromium provides strength to the steel through solid solution strengthening, but using more than 1% impairs the magnetic properties of the steel. In preferred embodiments, the chromium content is at least 0.01%.

[0027] Molybdenum is an optional element that constitutes 0% to 0.5% of the steel of the present invention.

[0028] Mo has the effect of reducing iron loss by coarsening carbides. When Mo exceeds 0.5%, the effect of improving iron loss saturates.

[0029] Tungsten is an optional element that constitutes 0% to 0.1% of the steel of the present invention. Like Mo, tungsten has the effect of coarsening carbides and reducing iron loss. However, if the amount added is less than 0.001% by mass, the above effect cannot be fully obtained, while if the amount added exceeds 0.1% by weight, the effect of improving iron loss saturates.

[0030] Cobalt is an optional element that constitutes 0% to 1% of the steel of the present invention. Cobalt is an element that increases the magnetic moment of Fe alloys, thereby increasing magnetic flux density and reducing iron loss. However, if the amount added is less than 0.01% by weight, the above effects cannot be fully obtained, while if the amount added exceeds 1% by weight, the raw material costs increase significantly.

[0031] Arsenic is an optional element that constitutes 0% to 0.05% of the steel of the present invention. As is a grain boundary segregation element that improves texture and thereby reduces iron loss. The above effect is obtained by adding 0.001% by weight or more. However, As is an element that causes grain boundary embrittlement, and this adverse effect becomes particularly pronounced when added in amounts exceeding 0.05% by weight. Therefore, it is preferable that As be added in the range of 0.001 to 0.05% by weight.

[0032] Nickel may be added in an amount of 0% to 1% as an optional element to increase the strength of the steel of the present invention and to improve its strength and elongation. However, if the content exceeds 1%, nickel will cause a decrease in ductility. In preferred embodiments, the nickel content is kept below 0.04%.

[0033] Copper may be added in an amount of 0% to 1% as an optional element to increase the strength and elongation of the steel of the present invention. However, if the content exceeds 1%, copper may degrade the surface morphology.

[0034] Boron is an optional element for the steel of the present invention and may be present in amounts of 0% to 0.05%. Boron forms boronitrides, and when added in an amount of at least 0.0001%, it imparts further strength to the steel of the present invention.

[0035] Calcium may be optionally present in the steel of the present invention, in a concentration of 0.001% to 0.01%. %in It's possible. Calcium contributes to steel smelting by binding harmful sulfur-containing substances together in a spherical shape, thereby slowing down the harmful effects of sulfur.

[0036] Other elements such as Sn, Pb, or Sb may be added individually or in combination in the following proportions: Sn ≤ 0.2%, Pb ≤ 0.2%, and Sb ≤ 0.2%. Up to the indicated maximum content levels, these elements enable grain refinement during solidification. 。S The n content is less than 0.04%.

[0037] The remainder of steel's composition consists of iron and unavoidable impurities resulting from processing.

[0038] Here, we will describe the microstructure of non-oriented electrical steel in detail, but all percentages are area fractions.

[0039] The microstructure is made from ferrite. The steel of the present invention has a recrystallized microstructure region with an area fraction of 80% to 100%, having crystal grains with an average grain size of 20 to 110 microns. The recrystallized structure with a high degree of recrystallization is due to homogeneous silicon enrichment, which improves the magnetic properties of the steel of the present invention. The controlled grain size ensures mechanical properties in both the transverse and rolling directions. A preferred degree of recrystallization is 90% to 100%. A preferred average grain size for the present invention is 20 to 100 microns, more preferably 20 to 90 microns.

[0040] The steel of the present invention may have a non-recrystallized microstructure region of 0% to 20% in area fraction, with a preferred degree of non-recrystallization being 0% to 10%, more preferably 0% to 5%.

[0041] In addition to the microstructure described above, the microstructure of non-oriented electrical steel does not contain microstructure components such as martensite, bainite, pearlite, and cementite.

[0042] The steel according to the present invention can be manufactured by any suitable method. However, as a non-limiting example, it is preferable to use the method according to the present invention, which is detailed below.

[0043] Such a preferred method lies in providing a semi-finished casting of steel having the chemical composition of the steel according to the present invention. The casting may be in the form of an ingot, or in the form of a continuous thin slab or thin strip, i.e., a thickness in the range of less than about 240 mm for any form of the casting.

[0044] For example, a casting in the form of a slab is cast with the chemical composition according to the present invention and then reheated, with the slab reheating temperature being between 1050°C and 1250°C until the temperature is uniform throughout the slab. Below 1050°C, rolling becomes difficult and the force on the mill becomes too high. Above 1250°C, the high-silicon grade becomes very soft and may exhibit some deflection, making it difficult to handle. Preferably, the slab reheating temperature is between 1100°C and 1200°C, more preferably between 1120°C and 1190°C.

[0045] The reheated slab is subjected to hot rolling at 800°C to 900°C, where the hot rolling finish temperature plays a role in the final hot rolling microstructure. If the finish rolling temperature is below 800°C, recrystallization is limited and the microstructure is highly deformed. If it is above 900°C, it means that there will be more impurities in the solid solution, which may result in precipitation and deterioration of magnetic properties. Preferably, the finish rolling temperature is 810°C to 890°C, more preferably 820°C to 875°C.

[0046] Next, the hot-rolled steel sheet obtained in this manner is immediately cooled at a cooling rate of at least 10°C / second to the coiling temperature of the hot-rolled steel sheet, which also serves the same role as the hot-rolled steel sheet, and the cooling is carried out at 500°C to 620°C. Coiling at temperatures below 500°C does not result in a suitable distribution and size for the steel precipitates of the present invention. Above 620°C, a thick oxide layer appears, causing difficulties in subsequent processing steps such as cold rolling and / or pickling. Preferably, the cooling rate is 200°C / second or less, and more preferably, the cooling rate is 12°C / second to 75°C / second. Preferably, the coiling temperature is 500°C to 600°C, and more preferably, 510°C to 560°C.

[0047] Next, the wound hot-rolled steel sheet is cooled to room temperature and then subjected to hot band annealing.

[0048] The hot-rolled steel sheet may be subjected to an optional descaling process to remove scale formed during hot rolling, prior to optional hot band annealing. The hot-rolled sheet is then subjected to an optional hot band annealing, which is carried out at a temperature of 650°C to 1100°C, preferably for at least 10 seconds and 96 hours or less, and the temperature is preferably maintained at 700°C to 1070°C, more preferably 720°C to 1050°C. Subsequently, the optional descaling process of the hot-rolled steel sheet may be carried out, for example, through pickling of such a sheet.

[0049] Therefore, the resulting hot-rolled steel sheet may have a thickness of any choice between 0.8 mm and 3.5 mm, preferably between 0.9 mm and 3 mm, and more preferably between 1 mm and 2.8 mm.

[0050] Next, this hot-rolled steel sheet is subjected to cold rolling to obtain a cold-rolled steel sheet having a thickness reduction of 50-95%. Preferably, a thickness reduction of 60-95%, more preferably 75-95%.

[0051] Subsequently, the cold-rolled steel sheet is heat-treated, which imparts the mechanical properties and microstructure required for the steel of the present invention.

[0052] Next, the cold-rolled steel sheet is heated, starting from room temperature, and the cold-rolled steel sheet is heated to an annealing temperature Tsoak of 900°C to 1100°C, preferably 920°C to 1050°C, more preferably 940°C to 1000°C, at a heating rate HR1 of at least 1°C / second. In a preferred embodiment, the heating rate HR1 for heating is at least 2°C / second, more preferably at least 5°C / second.

[0053] Cold-rolled steel sheets are kept in a soak for 10 to 5000 seconds to ensure 80% to 100% recrystallization.

[0054] Next, the cold-rolled steel sheet is cooled, starting from Tsoak, and the cold-rolled steel sheet is cooled to a temperature T1 in the range of 20°C to 300°C at a cooling rate CR1 of 1°C / sec to 150°C / sec. In a preferred embodiment, the cooling rate CR1 is 3°C / sec to 120°C / sec. A preferred T1 temperature is 20°C to 200°C.

[0055] The cold-rolled steel sheet obtained in this manner has a thickness of 0.26 mm to 0.30 mm, more preferably 0.27 mm to 0.30 mm, and even more preferably 0.28 mm to 0.30 mm.

[0056] Subsequently, the cold-rolled steel sheet is cooled to room temperature to obtain a non-oriented electrical steel sheet.

[0057] The non-oriented electrical steel sheet of the present invention may be optionally coated with an insulating layer, an organic coating, an inorganic coating, or a combination thereof, in order to improve insulation separation. [Examples]

[0058] The following tests, examples, symbolic illustrations, and tables presented herein are not limiting in nature and should be considered for illustrative purposes only, and illustrate advantageous features of the present invention.

[0059] Table 1 summarizes steel sheets made from steel with different compositions, and each steel sheet is manufactured according to the process parameters specified in Table 2. Subsequently, Table 3 summarizes the results of the evaluation of the obtained properties.

[0060] All steels in Table 1 had a nitrogen content of less than 0.09%.

[0061] Table 2 summarizes the hot rolling and annealing process parameters performed on cold-rolled steel sheets to impart the mechanical and magnetic properties necessary to become non-oriented electrical steel to the steels in Table 1. All steels of the present invention from I1 to I6 are cooled at a cooling rate of 15°C / second after hot rolling. Furthermore, in the embodiments of the present invention, the heating rate HR1 to the annealing soaking temperature is 5°C / second. The T1 temperature for all embodiments of the present invention is 25°C, but the cooling rate CR1 is 5°C / second.

[0062] All steels produced according to the parameters in Table 2 exhibited a recrystallized microstructure with over 95% recrystallization and grain size of 20–110 μm.

[0063] [Table 1]

[0064] [Table 2]

[0065] Table 3 The results of various mechanical tests conducted in accordance with the standards are summarized. Ultimate tensile strength, total elongation, and yield strength were measured according to the NF EN ISO 6892-1 standard, and J50 magnetic properties and total iron loss at 1T and 400Hz were measured according to the IEC 60404-2 standard. Eddy current loss is calculated according to the Bertotti method, as described in the paper "General Properties of Power Losses in Soft Ferromagnetic Materials" by Giorgio Berttoti, published in IEEE TRANSACTIONS ON MAGNETICS, Vol. 24, No. 1, January 1988. Equation 2 is referred to as eddy current loss in this invention (P class Identify the classical loss represented by ).

[0066] The average grain size of the recrystallized microstructure is measured by the linear intercept method according to ASTM E112 96(02) standard.

[0067] [Table 3]

Claims

1. Non-oriented electrical steel sheet having a composition, expressed in weight percent, containing the following elements: 0.0001% ≤ Carbon ≤ 0.007% 0.05% ≤ Manganese ≤ 0.15% 2.5% ≤ Silicon ≤ 3.1% 0.26% ≤ Aluminum ≤ 0.7% Phosphorus ≤ 0.15% Sulfur ≤ 0.006% Nitrogen ≤ 0.09% and may contain one or more of the following optional elements: 0% ≤ Niobium ≤ 0.1% 0% ≤ Titanium ≤ 0.1% 0% ≤ Vanadium ≤ 0.1% 0% ≤ Chromium ≤ 1% 0% ≤ Molybdenum ≤ 0.5% 0% ≤ Tungsten ≤ 0.1% 0% ≤ Cobalt ≤ 1% 0% ≤ Arsenic ≤ 0.05% 0.001% ≤ Calcium ≤ 0.01% 0%≦Copper≦1% 0% ≤ Nickel ≤ 1% 0% ≤ Boron ≤ 0.05% 0%≦Lead≦0.2% 0% ≤ Tin ≤ 0.2% 0% ≤ Antimony ≤ 0.2% The remaining composition consists of iron and unavoidable impurities resulting from processing, the microstructure of the steel sheet is made of ferrite and comprises, in area fraction, 80% to 100% recrystallized microstructure and 0% to 20% non-recrystallized microstructure, the average grain size of the recrystallized microstructure is 20 to 110 microns, and the eddy current loss in total iron loss, measured at 1 T and 400 Hz according to IEC 60404-2 standard, is 35% to 45% when calculated according to the Bertotti method, non-oriented electrical steel sheet.

2. The non-oriented electrical steel sheet according to claim 1, wherein the composition contains 2.6% to 3% silicon.

3. A non-oriented electrical steel sheet according to any one of claims 1 or 2, wherein the composition contains 0.002% to 0.007% carbon.

4. A non-oriented electrical steel sheet according to any one of claims 1 to 3, wherein the composition contains 0.3% to 0.6% aluminum.

5. A non-oriented electrical steel sheet according to any one of claims 1 to 4, wherein the composition contains 0.06% to 0.14% manganese.

6. A non-oriented electrical steel sheet according to any one of claims 1 to 5, wherein the amount of non-recrystallized microstructure is 0% to 10%.

7. A non-oriented electrical steel sheet according to any one of claims 1 to 6, wherein the amount of recrystallized microstructure is 90% to 100%.

8. The non-oriented electrical steel sheet according to any one of claims 1 to 7, wherein the steel sheet has a tensile strength of at least 470 MPa in both the transverse and rolling directions.

9. A non-oriented electrical steel sheet according to any one of claims 1 to 8, having a yield strength of 330 MPa or more in both the transverse and rolling directions.

10. The non-oriented electrical steel sheet according to any one of claims 1 to 9, wherein the steel sheet has a total elongation of at least 19% in both the transverse and rolling directions.

11. The following are the sequential steps: - A step of providing the steel composition according to any one of claims 1 to 5; - A step of reheating the semi-finished product to a temperature of 1050°C to 1250°C; - A step of obtaining a hot-rolled steel sheet by rolling the semi-finished product at a hot-rolling finishing temperature of 800°C to 900°C; - A process of cooling the hot-rolled sheet immediately after the hot-rolling process is completed. Next, the hot-rolled steel sheet is cooled from the hot-rolling finish to a coiling temperature range of 500°C to 620°C at a cooling rate of at least 10°C / second. - Subsequently, the hot-rolled steel sheet is wound up in a winding temperature range of 500°C to 620°C. - A step of optionally performing a scale removal treatment on the hot-rolled steel sheet; - A process of optionally performing hot band annealing on hot-rolled steel sheets at a temperature of 650°C to 1100°C for a period of 10 seconds to 96 hours; - A step of optionally performing a scale removal treatment on the hot-rolled steel sheet; - A step of obtaining a cold-rolled steel sheet by cold-rolling the hot-rolled steel sheet with a reduction ratio of 50 to 95%; Subsequently, the cold-rolled steel sheet is annealed by starting heating for annealing from room temperature and heating it to an annealing temperature range Tsoak of 900°C to 1100°C at a heating rate HR1 of at least 1°C / second; Next, the process involves annealing at an annealing temperature for 10 to 5000 seconds; Next, the cold-rolled steel sheet is cooled starting from the annealing temperature to a temperature T1 of 300°C to 20°C at a cooling rate CR1 of 1°C / sec to 150°C / sec; Next, the process involves cooling to room temperature to obtain a non-oriented electrical steel sheet. A method for manufacturing a non-oriented electrical steel sheet according to any one of claims 1 to 10, including the method described in any one of claims 1 to 10.

12. The method according to claim 11, wherein the Tsoak temperature for annealing is 920°C to 1050°C.

13. The method according to claim 11 or 12, wherein the temperature T1 is 200°C to 20°C.

14. The method according to any one of claims 11 to 13, wherein the cooling rate CR1 is 3°C / sec to 120°C / sec.