Non-oriented electrical steel sheet and manufacturing method therefor

A non-oriented electrical steel sheet with controlled alloy composition and manufacturing process addresses high iron loss in the rolling vertical direction, improving motor efficiency by reducing iron loss to 28 W/kg or lower.

EP4640891A1Pending Publication Date: 2025-10-29POHANG IRON & STEEL CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
EP2023907574
Authority / Receiving Office
EP · EP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2022-12-21
Filing Date
2023-12-13
Publication Date
2025-10-29

AI Technical Summary

Technical Problem

Existing electrical steel sheets face challenges in reducing iron loss at high magnetic flux densities, particularly in the rolling vertical direction, which affects the efficiency of electric motors.

Method used

A non-oriented electrical steel sheet composition with specific alloy elements (Si, Al, Mn, Cr, S, and others) and a manufacturing process that controls Goss orientation fraction, combined with controlled annealing and cold-rolling conditions, to achieve lower iron loss in the rolling vertical direction.

Benefits of technology

The steel sheet achieves iron loss reductions of up to 28 W/kg or lower in the rolling vertical direction, enhancing motor efficiency and performance, especially at high frequencies.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure SREP0001
    Figure SREP0001
  • Figure SREP0002
    Figure SREP0002
Patent Text Reader

Abstract

The present invention relates to a non-oriented electrical steel sheet and a manufacturing method therefor. An aspect of the present invention is to provide: a non-oriented electrical steel sheet in which an iron loss in a direction perpendicular to a rolling direction at high frequency is less than that in the rolling direction; and a manufacturing method therefor.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present disclosure relates to a non-oriented electrical steel sheet and a method of manufacturing the same.Background Art

[0002] Electric vehicles and electric-powered transportation have been used to replace internal combustion engines to reduce greenhouse gas emissions. Currently, 50% or more of all electrical energy generated may be consumed by electric motors for power, and efficient use of electricity may be important in order for internal combustion engines to be replaced by electric motors in the future. In particular, along with the improvement of electric motor performance, miniaturization and weight reduction have also been implemented, and motors forming magnetic flux in the axial direction may also draw attention. These electric motors may be used to resolve space constraints and improve performance of various electric devices including existing electric vehicles, electric two-wheeled vehicles, electric airplanes, and electric ships, and thus, high efficiency may be necessary. Also, interest in high-functioning and high-efficiency motors for home appliances, robots, and industrial motors has continued along with technological development and changes in the market and efficient use of electric energy may be higher than ever.

[0003] In order to improve the efficiency of an electric motor, optimization in all areas from material selection to design, assembly, and control may be important. In particular, in terms of material, magnetic properties of an electrical steel may be the most important, such that there has been high demand for low iron loss and high magnetic flux density. As for automobile drive motors or air conditioner compressor motors driven in the commercial frequency region and also in the high-frequency region, low iron loss properties at high frequencies may be important. Also, in the case of a small high-power motor having a yoke with a narrow width, high magnetic flux may be formed in the teeth area of the motor and also in the yoke area to obtain high torque when the motor is operated, and thus, improvement of iron loss at high magnetic flux at high frequencies may be important for improving motor efficiency.

[0004] Generally, as for electrical steel, eddy current loss may be reduced by adding a large amount of non-resistive elements such as Si, Al, and Mn and reducing the grain size during the manufacturing process. Since eddy current only passes through a surface layer of the steel sheet as the frequency increases, high-frequency iron loss may be improved by increasing a resistivity element of the surface layer. However, the general manufacturing method may be effective in controlling iron loss at a magnetic flux of around 1.0 T, and a method of reducing iron loss at high magnetic flux may not be known.Detailed description of present disclosureTechnical problems to solve

[0005] An aspect in the present disclosure is to provide a non-oriented electrical steel sheet in which iron loss in a rolling vertical direction may be lower than that in a rolling direction at a high frequency, and a method of manufacturing the same.Solution to Problem

[0006] According to an embodiment of the present disclosure, a non-oriented electrical steel sheet includes, by weight%, Si: 1.5 to 6.5%, Al: 0.0005 to 3.5%, Mn: 0.01 to 3.0%, Cr: 0.005 to 5.0%, S: 0.0005 to 0.03%, and a balance of Fe and inevitable impurities, wherein a Goss orientation fraction in a region from a surface to 1 / 10t (t: thickness of the steel sheet) in a thickness direction is 3 area% or less, and wherein a Goss orientation fraction in an entire region in the thickness direction is 5 area% or less.

[0007] The non-oriented electrical steel sheet may further include one or more of P: 0.005 to 0.08% and Sn: 0.01 to 0.2%.

[0008] The non-oriented electrical steel sheet may further include one or more of C: 0.005% or less (excluding 0%), N: 0.005% or less (excluding 0%), O: 0.005% or less (excluding 0%) and Ti: 0.01% or less (excluding 0%).

[0009] The non-oriented electrical steel sheet may further include one or more of Mo: 0.1% or less (excluding 0%), B: 0.0050% or less (excluding 0%), V: 0.050% or less (excluding 0%), Ca: 0.010% or less (excluding 0%), Nb: 0.0050% or less (excluding 0%) and Mg: 0.0050% or less (excluding 0%).

[0010] The non-oriented electrical steel sheet may further include one or more of Sb: 0.1% or less (excluding 0%), Ni: 0.05% or less (excluding 0%), Cu: 0.005 to 0.2% and Zn: 0.01% or less (excluding 0%).

[0011] The non-oriented electrical steel sheet further includes 0.20% or less (excluding 0%) of one or more of Bi, Pb, Ge and As individually or in combination.

[0012] The non-oriented electrical steel sheet may have an iron loss (W10 / 600C) of 28W / kg or lower, an iron loss (W10 / 800C) of 43W / kg or lower, and an iron loss (W10 / 1200C) of 75W / kg or lower.

[0013] The non-oriented electrical steel sheet may have an iron loss (W10 / 600L) of 30W / kg or lower, an iron loss (W10 / 800L) of 48W / kg or lower, and an iron loss (W10 / 1200L) of 85W / kg or lower.

[0014] The non-oriented electrical steel sheet may have an iron loss (W15 / 600C) of 65 W / kg or lower, an iron loss (W15 / 800C) of 95 W / kg or lower, and an iron loss (W15 / 1200C) of 175 W / kg or lower.

[0015] The non-oriented electrical steel sheet may have an iron loss (W15 / 600L) of 75 W / kg or lower, an iron loss (W15 / 800L) of 105 W / kg or lower, and an iron loss (W15 / 1200L) of 190 W / kg or lower.

[0016] The non-oriented electrical steel sheet may satisfy relational expression 1 as below:

[0017] According to another embodiment of the present disclosure, a method of manufacturing a non-oriented electrical steel sheet includes heating a slab including, by weight%, Si: 1.5 to 6.5%, Al: 0.0005 to 3.5%, Mn: 0.01 to 3.0%, Cr: 0.005 to 5.0%, S: 0.0005 to 0.03%, and a balance of Fe and inevitable impurities at 1050 to 1220°C; finishing hot-rolling the slab and obtaining a hot-rolled sheet; hot-rolled sheet annealing the hot-rolled sheet for 30 to 300 seconds at 850 to 1150°C; cold-rolling the hot-rolled sheet annealed hot-rolled sheet and obtaining a cold-rolled sheet; heating the cold-rolled sheet; and final annealing the heated cold-rolled sheet, wherein, in the cold-rolling, [Relational expression 2] is satisfied, wherein, in the heating, a heating rate in a temperature range of 300 to 500°C is 5 to 150°C / s, and wherein, in the final annealing, a gas atmosphere includes, by volume%, hydrogen: 15 to 99.99%, oxygen: 0.0001 to 0.0030%, and a remainder of inert gas.

[0018] The slab may further include one or more of P: 0.005 to 0.08% and Sn: 0.01 to 0.2%.

[0019] The slab may further include one or more of C: 0.005% or less (excluding 0%), N: 0.005% or less (excluding 0%), O: 0.005% or less (excluding 0%) and Ti: 0.01% or less (excluding 0%).

[0020] The slab may further include one or more of Mo: 0.1% or less (excluding 0%), B: 0.0050% or less (excluding 0%), V: 0.050% or less (excluding 0%), Ca: 0.010% or less (excluding 0%), Nb: 0.0050% or less (excluding 0%) and Mg: 0.0050% or less (excluding 0%).

[0021] The slab may further include one or more of Sb: 0.1% or less (excluding 0%), Ni: 0.05% or less (excluding 0%), Cu: 0.005 to 0.2% and Zn: 0.01% or less (excluding 0%).

[0022] The slab may further include 0.20% or less (excluding 0%) of one or more of Bi, Pb, Ge and As individually or in combination.

[0023] The finishing hot-rolling may be performed at 700 to 1050°C.

[0024] The cold-rolling may be performed with a cold reduction ratio of 35 to 98%.

[0025] In the cold rolling, a maximum rolling rate in one or more of first pass and second pass may be 3 m / s or higher.

[0026] The final annealing may be performed for 10 to 500 seconds at 600 to 1150°C.Advantageous Effects of Invention

[0027] According to an aspect of the present disclosure, a non-oriented electrical steel sheet in which iron loss in a rolling vertical direction may be lower than that in a rolling direction at a high frequency, and a method of manufacturing the same may be provided.Best Mode for Invention

[0028] Hereinafter, a non-oriented electrical steel sheet according to an embodiment of the present invention may be described. First, an alloy composition may be described. The content of the alloy composition described below may be indicated in weight% unless otherwise indicated.Si: 1.5 to 6.5%

[0029] Si may increase resistivity of a material and may reduce iron loss. When the content of Si is less than 1.5%, the effect of improvement of high-frequency iron loss may be insufficient. When the content of Si exceeds 6.5%, hardness may increase and productivity and die-casting may deteriorate. Accordingly, the content of Si may preferably have a range of 1.5 to 6.5%. A lower limit of the content of Si may preferably be 1.8%, and more preferably 2.0%. An upper limit of the content of Si may preferably be 6.0%, more preferably 5.0%, and most preferably 4.0%.Al: 0.0005 to 3.5%

[0030] Al may increase resistivity of the material and may reduce iron loss. When the Al content is less than 0.0005%, the amount of Al to exclude oxygen during steel manufacturing may be small, and inclusions may be formed excessively in steel, which may not be effective in reducing high-frequency iron loss, and fine nitrides may be formed on the surface, which may reduce magnetism. When the Al content exceeds 3.5%, there may be problems in all processes such as steelmaking and continuous casting, which may significantly reduce productivity. Accordingly, the Al content may preferably have a range of 0.0005 to 3.5%. A lower limit of the Al content may be 0.15% more preferably. An upper limit of the Al content may preferably be 3.0%, more preferably 2.5%, and most preferably 2.0%.Mn: 0.01 to 3.0%

[0031] Mn may increase resistivity of the material, thereby improving iron loss and forming sulfides, and may stabilize austenite. When the content of the Mn is less than 0.01%, sulfides, which is MnS, may be finely precipitated in steel, which may reduce magnetism. When the content of the Mn exceeds 3.0%, the range of annealing temperatures in which an appropriate grain size for obtaining low high-frequency iron loss may be obtained may be limited. Also, saturation magnetic flux of the material may be lowered, and formation of {111} texture, which is particularly unfavorable to ferromagnetism, may be promoted, such that magnetic flux density may reduce. Accordingly, the content of Mn may preferably have a range of 0.01 to 3.0%. A lower limit of the Mn content may be more preferably 0.2%. An upper limit of the Mn content may be preferably 2.5%, more preferably 2.0%, and most preferably 1.5%.Cr: 0.005 to 5.0%

[0032] Cr may increase resistivity of the material and may reduce iron loss, and also, when the cold-rolling conditions and the final annealing conditions are properly controlled, Cr may be concentrated on the surface and may form a Cr-concentrated layer. When the Cr content is less than 0.005%, Cr may have a minimal effect on increasing resistivity and may form carbides by combining with C, or the like, which may be detrimental to magnetism. When Cr exceeds 5%, Cr may be evenly distributed throughout the entire thickness rather than concentrating on the surface, a decrease in magnetic flux density may occur throughout the steel sheet. Accordingly, the Cr content may preferably have a range of 0.005 to 5.0%. In terms of surface enrichment, a lower limit of Cr may more preferably be 0.04%. In terms of preventing the decrease in magnetic flux density, an upper limit of the Cr may preferably be 3.0%, more preferably 1.0%, and most preferably 0.3%.S: 0.0005 to 0.03%

[0033] S may be a strong segregating element and may form precipitates. When S is added in an appropriate amount, S may segregate on the surface and may react with oxygen in the atmosphere during annealing, thereby inhibiting growth of Goss grains on the surface. When the S content is less than 0.0005%, the surface segregation effect may not be sufficient. When the S content exceeds 0.03%, a FeS enriched layer may be formed on the surface, which may significantly deteriorate the surface quality. Accordingly, the S content may preferably have a range of 0.0005 to 0.03%. A lower limit of the S content may more preferably be 0.001%. An upper limit of the S content may preferably be 0.015%, more preferably 0.005%, and most preferably 0.0035%.

[0034] A remainder of the present disclosure is iron (Fe). However, in a general manufacturing process, inevitable impurities may be inevitably added from raw materials or an ambient environment, and thus, impurities may not be excluded. A person skilled in the art of a general manufacturing process may be aware of the impurities, and thus, the descriptions of the impurities may not be provided in the present disclosure.

[0035] The non-oriented electrical steel sheet of the present invention may further include one or more of P: 0.005 to 0.08% and Sn: 0.01 to 0.2%.P: 0.005 to 0.08%

[0036] P may be concentrated on the surface and may control a fraction of the internal oxide layer. When the content of the P is less than 0.005%, it may be difficult to form a uniform internal oxide layer. When the content of P exceeds 0.08%, and a melting point of the Si-based oxide may change, an internal oxide layer may form rapidly. Accordingly, the content of the P may preferably have a range of 0.005 to 0.08%. An upper limit of the P content may more preferably be 0.07%.Sn: 0.01 to 0.2%

[0037] Sn may be segregated on the surface and grain system of the steel sheet, may suppress surface oxidation during annealing and may improving texture. When the Sn content is less than 0.01%, it may be difficult to sufficiently obtain the above-mentioned effect. When the Sn content exceeds 0.2%, Sn may be segregated on the grain system, and may lower toughness, such that productivity may degrade compared to improvement of magnetism. Accordingly, the Sn content may preferably have a range of 0.01 to 0.2%. A lower limit of Sn content may more preferably be 0.02%. An upper limit of Sn content may preferably be 0.15%, more preferably 0.1%, and most preferably 0.07%.

[0038] The non-oriented electrical steel sheet of the present invention may further include one or more of C: 0.005% or less (excluding 0%), N: 0.005% or less (excluding 0%), O: 0.005% or less (excluding 0%) and Ti: 0.01% or less (excluding 0%).C: 0.005% or less (excluding 0%)

[0039] C may react with N, Ti, Nb, V, or the like and may form fine carbides, which hinder grain growth and domain movement, and thus, an upper limit thereof may be limited to 0.005%.N: 0.005% or less (excluding 0%)

[0040] N may combine with Ti, Nb, V, or the like, and may form nitrides, which may hinder grain growth, and thus, an upper limit thereof may be limited to 0.005%.O: 0.005% or less (excluding 0%)

[0041] O may react with Fe, Ti, Al, Mn, Cr, Si, V, or the like, and may form fine oxides, which hinder grain growth and domain movement, and thus, an upper limit thereof may be limited to 0.005%.Ti: 0.01% or less (excluding 0%)

[0042] Ti may combine with C, N, O, or the like, and may form fine nitrides or oxides, which hinder domain movement, and thus, an upper limit thereof may be limited to 0.01%.

[0043] Also, the non-oriented electrical steel sheet of the present invention may further include one or more of Mo: 0.1% or less (excluding 0%), B: 0.0050% or less (excluding 0%), V: 0.050% or less (excluding 0%), Ca: 0.010% or less (excluding 0%), Nb: 0.0050% or less (excluding 0%) and Mg: 0.0050% or less (excluding 0%).Mo: 0.1% or less (excluding 0%)

[0044] Mo may react with C, O, N, or the like, and may form fine carbides or nitrides, which adversely affect magnetism, and thus, an upper limit thereof may be limited to 0.1%.B: 0.0050% or less (excluding 0%)

[0045] B may react with C, O, N, or the like, and may form fine carbides or nitrides, which adversely affect magnetism, and thus, an upper limit thereof may be limited to 0.0050%.V: 0.050% or less (excluding 0%)

[0046] V may react with C, O, N, or the like, and may form fine carbides or nitrides, which adversely affect magnetism, and thus, an upper limit thereof may be limited to 0.050%.Ca: 0.010% or less (excluding 0%)

[0047] Ca may react with C, O, N, or the like, and may form fine carbides or nitrides, which adversely affect magnetism, and thus, an upper limit thereof may be limited to 0.010%.Nb: 0.0050% or less (excluding 0%)

[0048] Nb may react with C, O, N, or the like, and may form fine carbides or nitrides, which adversely affect magnetism, and thus, an upper limit thereof may be limited to 0.0050%.Mg: 0.0050% or less (excluding 0%)

[0049] Mg may react with C, O, N, or the like, and may form fine carbides or nitrides, which adversely affect magnetism, and thus, an upper limit thereof may be limited to 0.0050%.

[0050] The non-oriented electrical steel sheet of the present invention may further include one or more of Sb: 0.1% or less (excluding 0%), Ni: 0.05% or less (excluding 0%), Cu: 0.005 to 0.2% and Zn: 0.01% or less (excluding 0%).Sb: 0.1% or less (excluding 0%)

[0051] Sb may segregate in the grain system, and may be added to suppress the diffusion of nitrogen through the grain system, to suppress the {111} texture (texture) detrimental to magnetism, and to increase the {100} texture advantageous to improve magnetic properties. When the content of Sb exceeds 0.1%, Sb may hinder grain growth, which may lower magnetism and may deteriorate rolling properties. More specifically, the content of Sb may be 0.001 to 0.1%. More specifically, the content of Sb may be 0.005 to 0.08%Ni: 0.05% or less (excluding 0%)

[0052] Ni may react with impurity elements and may form fine sulfides, carbides, and nitrides, which have a detrimental effect on magnetism, and thus, an upper limit thereof may be limited to 0.05%. More specifically, the content of Ni may be 0.0001 to 0.050%. More specifically, the content of Ni may be 0.001 to 0.030%.Cu: 0.005 to 0.2%

[0053] Cu may form sulfides together with Mn. When the content of Cu is less than 0.005%, (Cu Mn)S may be finely precipitated, which may deteriorate magnetism. When the content of Cu exceeds 0.2%, high-temperature embrittlement may occur, which may cause cracks during casting or hot rolling. More specifically, the content of Cu may be 0.010 to 0.1%.Zn: 0.01% or less (excluding 0%)

[0054] Zn may act as an impurity and may deteriorate magnetism, and thus, an upper limit thereof may be limited to 0.01%. More specifically, the content of Zn may be 0.0001 to 0.01%. More specifically, the content of Zn may be 0.001 to 0.008%.

[0055] The non-oriented electrical steel sheet of the present invention may further include 0.20% or less (excluding 0%) of one or more of Bi, Pb, Ge and As individually or in combination.

[0056] When the above-mentioned elements are additionally added, the elements may segregate in the grain system, and may relieve stress concentration in the grain system during cold rolling, thereby inhibiting recrystallization of <111> / / ND orientation grains in the subsequent recrystallization annealing process, and improving magnetic flux density. When the elements are added appropriately, the above-mentioned effect may be additionally obtained, but when the elements are included excessively, a large amount of segregation may occur, which may inhibit grain growth and may deteriorate magnetic flux density and iron loss. More specifically, one or more of Bi, Pb, Ge and As may be included in an amount of 0.0001 to 0.20% individually or in combination. More specifically, one or more of Bi, Pb, Ge and As may be included in an amount of 0.001 to 0.10% individually or in combination.

[0057] As for the non-oriented electrical steel sheet of the present invention, it may be preferable that a Goss orientation fraction in the region from the surface to 1 / 10t (t: thickness of the steel sheet) in the thickness direction may be 3 area% or less, and that a Goss orientation fraction in the entire region in the thickness direction may be 5 area% or less. The Goss orientation fraction may be an area fraction of grains having an orientation within 10° from the Goss orientation. The Goss orientation may have excellent magnetism in the rolling direction, but may have a great negative effect on the magnetism in the rolling vertical direction. Thus, it may be important to reduce the fraction of grains having the Goss orientation in order to improve magnetism in the rolling vertical direction. In particular, on the surface layer, as frequency increases, the effect on overall iron loss may increase. When the Goss orientation fraction in the region from the surface to 1 / 10t (t: thickness of steel sheet) in the thickness direction exceeds 3 area%, magnetism in the rolling vertical direction may be adversely affected. When the Goss orientation fraction in the entire region in the thickness direction exceeds 5 area%, magnetism in the rolling vertical direction may be adversely affected. The Goss orientation may have excellent magnetism in the rolling direction, but may have a significant adverse effect on the magnetism in the rolling vertical direction. Thus, it may be important to lower the fraction of grains having the Goss orientation in order to improve the magnetism in the rolling vertical direction. In particular, on the surface layer, the total iron loss may be greatly affected as the frequency increases, it may be very important to lower the Goss orientation fraction. A method of measuring the Goss orientation fraction may include measuring the cross-section of the steel sheet using the usual EBSD, and ensuring that the number of grains having a minimum grain size exceeding 5 µm and having a grain system having an orientation error angle of 3° or more from the surrounding grains is at least 5,000 or more within the measurement area, which may have statistical significance. In the case of grains measured in a cut form within the measurement area, the fraction may be calculated including the cut area.

[0058] As described above, the non-oriented electrical steel sheet of the present invention may have an iron loss (W10 / 600C) of 28 W / kg or lower, an iron loss (W10 / 800C) of 43 W / kg or lower, and an iron loss (W10 / 1200C) of 75 W / kg or lower. Also, iron loss (W10 / 600L) may be 30W / kg or lower, iron loss (W10 / 800L) may be 43W / kg or lower, and iron loss (W10 / 1200L) may be 85W / kg or lower. Also, iron loss (W15 / 600C) may be 65W / kg or lower, iron loss (W15 / 800C) may be 95W / kg or lower, and iron loss (W15 / 1200C) may be 175W / kg or lower. Also, iron loss (W15 / 600L) may be 75W / kg or lower, iron loss (W15 / 800L) may be 105W / kg or lower, and iron loss (W15 / 1200L) may be 190W / kg or lower. When the condition is not satisfied, the high magnetic flux density iron loss may not be excellent, such that it may be difficult to achieve the purpose of the present invention, which is to be used for a high output and high efficiency of a motor. A lower value of iron loss may be advantageous, and thus, in the present invention, a lower limit of iron loss may not be specifically limit. However, a lower limit of iron loss (W10 / 600C), iron loss (W10 / 800C) and iron loss (W10 / 1200C) may be 6W / Kg, 8W / Kg and 15W / Kg, respectively. Also, a lower limit of iron loss (W10 / 600L), iron loss (W10 / 800L) and iron loss (W10 / 1200L) may be 6.5W / Kg, 9W / Kg and 17W / Kg, respectively. Also, a lower limit of iron loss (W15 / 600C), iron loss (W15 / 800C) and iron loss (W15 / 1200C) may be 12W / Kg, 12W / Kg and 25W / Kg, respectively. Also, a lower limit of iron loss (W15 / 600L), iron loss (W15 / 800L) and iron loss (W15 / 1200L) may be 13W / Kg, 13W / Kg and 27W / Kg, respectively. Meanwhile, the W10 / 600, W10 / 800, and W10 / 1200 may indicate iron loss measured by the Epstein method under the conditions of maximum magnetic flux of 1.0 T, 600 Hz, 800 Hz, and 1200 Hz, respectively. The W15 / 600, W15 / 800, and W15 / 1200 may indicate iron loss measured by the Epstein method under the conditions of maximum magnetic flux of 1.5T and 600Hz, 800Hz, and 1200Hz, respectively. L may indicate the rolling direction, and C may indicate the rolling vertical direction.

[0059] It may be preferable that the non-oriented electrical steel sheet of the present invention may satisfy relational expression 1 as below.

[0060] By satisfying relational expression 1, the high-frequency iron loss in the rolling vertical direction may be superior than that in the rolling direction, and thus, when manufacturing a motor using the rolling vertical direction as a magnetic flux, a motor may be driven with high efficiency even at high speed rotation.

[0061] The non-oriented electrical steel sheet of the present invention may have a thickness of 0.03 to 0.35 mm.

[0062] Hereinafter, a method of manufacturing a non-oriented electrical steel sheet according to an embodiment of the present invention may be described.

[0063] First, a slab having the aforementioned alloy composition may be heated at 1050 to 1220°C. When the slab heating temperature is lower than 1050°C, the temperature difference between the surface and the internal portion of the slab may increase during hot-rolling, passing ability may deteriorate during hot-rolling, and the reduction ratio may not be sufficient during hot-rolling. When the slab heating temperature exceeds 1220°C, precipitates may be re-dissolved and may be finely precipitated after hot-rolling. A lower limit of the slab heating temperature may be preferably 1080°C, and more preferably 1100°C. An upper limit of the slab heating temperature may be preferably 1200°C, and more preferably 1180°C.

[0064] Thereafter, the slab may be finishing hot-rolled and a hot-rolled sheet may be obtained. The finishing hot-rolling may be performed at 700 to 1050°C. When the finishing hot-rolling temperature is less than 700°C, the shape of the hot-rolled sheet may become poor, the deformation may be concentrated on the surface, such that it may be impossible to perform hot-rolling of the steel sheet, and the Goss-like orientation of the surface may increase. When the finishing hot-rolling temperature exceeds 1050°C, friction between the rolling roll and the sheet surface may increase, the Goss-like orientation may increase, and defects in the sheet shape due to high temperature deformation may occur. A lower limit of the finishing hot-rolling temperature may be preferably 730°C, more preferably 750°C, and most preferably 780°C. An upper limit of the finishing hot-rolling temperature may be preferably 1000°C, more preferably 960°C, and most preferably 930°C. Meanwhile, the thickness of the hot-rolled sheet may be 0.8 to 3mm.

[0065] Thereafter, the hot-rolled sheet may be hot-rolled sheet annealed for 30 to 300 seconds at 850 to 1150°C. When the hot-rolled sheet annealing temperature is lower than 850°C, the structure may not grow or may grow finely. When the hot-rolled sheet annealing temperature exceeds 1150°C, magnetic properties may deteriorate, and rolling workability may deteriorate due to deformation of the sheet shape. A lower limit of the hot-rolled sheet annealing temperature may be preferably 900°C, and more preferably 950°C. An upper limit of the hot-rolled sheet annealing temperature may be preferably 1135°C, and more preferably 1110°C. When the hot-rolled sheet annealing time is less than 30 seconds, growth of the grain diameter on the surface and the grain diameter therein may be different, such that the Goss fraction on the surface of the final electrical steel sheet may significantly increase. When the hot-rolled sheet annealing time exceeds 300 seconds, the grains may become coarser, such that the Goss fraction in the entire sheet thickness of the final electrical steel sheet may significantly increase. A lower limit of the hot-rolled sheet annealing time may be preferably 60 seconds, and more preferably 80 seconds. An upper limit of the hot-rolled sheet annealing time may be preferably 180 seconds, and more preferably 150 seconds. The hot-rolled sheet annealing may be performed to increase the orientation which may be advantageous to magnetism if desired, or the hot-rolled sheet annealing may not be performed.

[0066] Thereafter, the hot-rolled sheet annealed may be cold-rolled and a cold-rolled sheet may be obtained. It may be preferable to satisfy [Relational expression 2] as below during the cold-rolling.

[0067] The temperature of the steel sheet may be increased by residual heat during the obtaining the hot-rolled sheet or the hot-rolled sheet annealing, heating due to mechanical friction of the steel sheet during rolling, or heat supply from the outside. When the maximum temperature of the cold-rolled sheet surface during cold-rolling is 200×cold reduction ratio / 100+60 or higher, a shear force may act greatly when the material is deformed, and the fraction of grains having Goss orientation in the steel sheet may increase significantly.

[0068] The cold-rolling may be performed with a cold reduction ratio of 35 to 98%. When the cold reduction ratio is less than 35%, the energy stored by processing during cold-rolling may be consumed, and recrystallization may not occur due to the characteristics of steel in which recrystallization occurs, such that magnetism may be deteriorated even after annealing. When the cold reduction ratio exceeds 98%, a high-processing microstructure formed by rolling may be formed, such that iron loss may increase in both the rolling and rolling vertical directions even after the final annealing. A lower limit of the cold reduction ratio may be preferably 55%, more preferably 65%, and most preferably 73%. An upper limit of the cold reduction ratio may be preferably 93%, more preferably 88%, and most preferably 83%. Meanwhile, the cold-rolling may be a single cold-rolling or two or more cold-rollings with intermediate annealing therebetween.

[0069] The rolling maximum rate in one or more of the first pass and second pass during cold-rolling may be 3 m / s or higher. When the rolling maximum rate in one or more of the first pass and second pass during cold-rolling is less than 3 m / s, a strong shear force may be applied to the surface of the steel sheet during rolling, which may increase the nucleation of Goss orientation, and accordingly, the fraction of grains having Goss orientation on the surface of the steel sheet may increase during final annealing. In the present invention, a higher rolling maximum rate in one or more of the first pass and second pass during cold-rolling may be advantageous, and thus, there is no particular limitation on an upper limit thereof. However, an upper limit of the rolling maximum rate in one or more of the first pass and second pass during cold-rolling may be 20 m / s.

[0070] Thereafter, the cold-rolled sheet may be heated to the final annealing temperature. The heating rate in the temperature range of 300 to 500°C during heating may preferably be 5 to 150°C / s. When the heating rate in the temperature range of 300 to 500°C during heating is less than 5°C / s, recrystallization of grains having an orientation unfavorable to magnetism may be promoted. When the heating rate in the temperature range of 300 to 500°C during heating exceeds 150°C / s, recrystallization of grains having a Goss orientation unfavorable to magnetism in the rolling vertical direction may be greatly promoted. A lower limit of the heating rate may preferably be 7°C / s, and more preferably 10°C / s. An upper limit of the heating rate may preferably be 120°C / s, more preferably 100°C / s, and most preferably 50°C / s.

[0071] Thereafter, the heated cold-rolled sheet may be final annealed. The final annealing may be performed at 600 to 1150°C for 10 to 500 seconds. When the final annealing temperature is lower than 600°C, the Goss fraction in the steel sheet may increase significantly during recrystallization. When the final annealing temperature exceeds 1150°C, coarse grains may be formed and high-frequency iron loss in the C direction may be deteriorated. A lower limit of the final annealing temperature may be preferably 700°C, more preferably 730°C, and most preferably 750°C. An upper limit of the final annealing temperature may be preferably 1120°C, more preferably 1100°C, and most preferably 1050°C. When the final annealing time is less than 10 seconds, the fraction of grains having Goss fraction in the entire sheet thickness may increase significantly. When the final annealing time exceeds 500 seconds, the high-frequency iron loss may increase significantly due to grain overgrowth. A lower limit of the final annealing time may be preferably 20 seconds, more preferably 30 seconds, and most preferably 35 seconds. An upper limit of the final annealing time may be preferably 400 seconds, more preferably 300 seconds, and most preferably 200 seconds.

[0072] It may be preferable that the gas atmosphere during the final annealing may include, by volume%, hydrogen: 15 to 99.99%, oxygen: 0.0001 to 0.0030%, and a remainder of inert gas. By controlling as above, an effect similar to anoxia on the steel sheet surface may be practically obtained. When the hydrogen fraction is less than 15%, the surface of the material of the invention may be oxidized due to insufficient reduction ability. The hydrogen fraction may practically be 100% preferably, but it may be extremely difficult to be used industrially, such that the hydrogen fraction may be limited to 99.99%. When the oxygen fraction is less than 0.0001%, an extremely small portion of the steel sheet surface may combine with oxygen, such that a local oxide layer may be formed, which may create surface unevenness. When the oxygen fraction exceeds 0.0030%, a wide oxide layer may be formed on the surface, which may deteriorate magnetism and may promote the nucleation of grains having a Goss orientation on the surface, thereby increasing the surface fraction. In the present invention, the type of the inert gas may not be particularly limited, and all types used in the relevant technical field may be used. For example, nitrogen or argon may be used.

[0073] Forming an insulating layer may be further included after the final annealing. The method of forming the insulating layer may be widely known in the field of non-oriented electrical steel sheet technology, and thus, a detailed description thereof may not be provided.Mode for Invention

[0074] Hereinafter, the present disclosure may be described more specifically through embodiments. However, it should be noted that the embodiments below are merely intended to describe the present disclosure in greater detail based on embodiments, and are not intended to limit the scope of the rights of the present disclosure. This may be because the scope of rights of the present invention is determined by matters described in the claims and matters reasonably inferred therefrom.(Embodiment)

[0075] A slab having the alloy composition listed in Tables 1 and 2 below was prepared, and a non-oriented electrical steel sheet was manufactured using the manufacturing conditions listed in Tables 3 and 4 below. The remainder in the gas atmosphere in the temperature range of 500 to 750 during the final annealing was nitrogen.

[0076] The Goss orientation fraction and electrical properties of the non-oriented electrical steel sheet manufactured in this manner were measured, and the results are listed in Tables 4 to 6 below.

[0077] The Goss orientation fraction in the surface layer (the region from the surface to 1 / 10t (t: the thickness of the steel sheet) in the thickness direction) and the entire region in the thickness direction were measured using EBSD. In order to confirm the Goss orientation fraction according to thickness, the RD-ND plane was observed, and the EBSD measurement plane was separated and analyzed for the upper and lower surfaces, which are 1 / 10 of the total thickness. In order to ensure statistical reliability, the cross-sections of 100 samples were measured, and the texture according to thickness in each sample measurement was measured, averaged, and evaluated as the Goss orientation fraction of 1 / 10t.

[0078] Iron loss (W10 / 600C), iron loss (W10 / 800C), iron loss (W10 / 1200C), iron loss (W10 / 600L), iron loss (W10 / 800L), iron loss (W10 / 1200L), iron loss (W15 / 600C), iron loss (W15 / 800C), iron loss (W15 / 1200C), iron loss (W15 / 600L), iron loss (W15 / 800L) and iron loss (W15 / 1200L) were measured using the Epstein measurement method used for quantitative measurement of a general electrical steel sheet. The sample was cut with a cutter such that the L direction sample was 305 mm in the L direction and 30 mm in the C direction. The C direction sample was 305 mm in the C direction and 30 mm in the L direction. [Table 1]Steel typeAlloy composition (weight%)SiAlMnCrSPSnCInventi ve steel 14.31.30.350.030.00090.0100.0300.0030Inventi ve steel 22.51.30.350.030.00100.0100.0300.0030Inventi ve steel 33.60.30.550.020.00150.0080.0600.0025Inventi ve steel 43.61.90.550.020.00110.0090.0500.0024Inventi ve steel 53.60.70.030.020.00100.0090.0500.0023Inventi ve steel 63.60.71.500.020.00150.0110.0600.0014Inventi ve steel 73.01.10.502.230.00120.0080.0300.0028Inventi ve steel 83.01.10.503.320.00110.0110.0500.0025Inventi ve steel 93.51.00.500.020.00050.0050.0100.0011Inventi ve steel 103.51.00.500.020.01050.0050.0200.0012Compara tive steel 13.60.30.550.020.00150.0250.0400.0025Inventi ve steel 113.60.30.550.020.00150.0250.0200.0025Inventi ve steel 123.51.00.500.020.00050.0050.1200.0011Inventi ve steel 133.51.00.500.020.00050.0050.0100.0011Compara tive steel 24.01.230.020.050.00200.0050.0100.0033Inventi ve steel 144.00.241.330.050.00150.0050.0100.0031Inventi ve steel 155.52.181.370.010.0140.0050.0100.0039Inventi ve steel 163.10.80.500.020.00120.0080.0300.0020Inventi ve steel 173.10.80.500.020.00120.0080.0300.0020Inventi ve steel 183.10.80.500.020.00120.0080.0300.0020Inventi ve steel 193.10.80.500.020.00120.0080.0300.0020Inventi ve steel 203.10.80.500.020.00120.0080.0300.0020Inventi ve steel 213.10.80.500.020.00120.0080.0300.0020 [Table 2] Steel typeAlloy composition (weight%)NOTiMoBVCaNbMgInventi ve steel 10.00200.00090.00100.00500.00100.00050.00080.00100.0006Inventi ve steel 20.00200.00070.00150.00400.00100.00060.00120.00100.0005Inventi ve steel 30.00160.00040.00100.00100.00100.00030.00060.00100.0010Inventi ve steel 40.00180.00030.00200.00200.00100.00040.00110.00100.0011Inventi ve steel 50.00210.00030.00200.00100.00100.00090.00100.00120.0021Inventi ve steel 60.00110.00030.00100.00100.00060.00050.00120.00200.0031Inventi ve steel 70.00280.00070.00100.00100.00200.00370.00050.00290.0027Inventi ve steel 80.00200.00150.00070.00100.00080.00270.00200.00250.0006Inventi ve steel 90.00130.00040.00150.00100.00050.00030.00100.00100.0010Inventi ve steel 100.00100.00030.00150.00100.00050.00050.00100.00100.0010Compara tive steel 10.00160.00040.00100.00100.00100.00030.00060.00100.0010Inventi ve steel 110.00160.00040.00100.00100.00100.00030.00060.00100.0010Inventi ve steel 120.00130.00040.00150.00100.00050.00030.00100.00100.0010Inventi ve steel 130.00130.00040.00150.00100.00050.00030.00100.00100.0010Compara tive steel 20.00310.00030.00070.09640.00090.00360.00370.00170.0017Inventi ve steel 140.00480.00030.00150.07840.00450.00100.00180.00500.0047Inventi ve steel 150.00170.00040.00100.02690.00030.00270.00590.00320.0040Inventi ve steel 160.00150.00050.00050.07000.00050.00050.00050.00050.0005Inventi ve steel 170.00150.00050.00050.00050.00300.00050.00050.00050.0005Inventi ve steel 180.00150.00050.00050.00050.00050.02500.00050.00050.0005Inventi ve steel 190.00150.00050.00050.00050.00050.00050.00700.00050.0005Inventi ve steel 200.00150.00050.00050.00050.00050.00050.00050.00050.0005Inventi ve steel 210.00150.00500.00500.00050.00050.00050.00050.00050.0005 [Table 3] Classif icationSteel typeSlab heating tempera ture (°C)Finishi ng hot-rolling tempera ture (°C)Hot-rolle d sheet thick ness (mm)Hot-rolled sheet anneali ng tempera ture (°C)Hot-rolled sheet Anneali ng time (min)Cold rolli ng reduc tion (%)Cold-rolle d sheet thick ness (mm)Cold-rolled sheet surface maximum temperatu re in cold-rolling (°C)Inventi ve example 1Inventi ve steel 110508401.5110090870.20190Inventi ve example 2Inventi ve steel 2110010392.095040900.20217Inventi ve example 3Inventi ve steel 310508921.5105070870.20215Inventi ve example 4Inventi ve steel 411408991.5102050870.20215Inventi ve example 5Inventi ve steel 5113010331.0105090800.30181Inventi ve example 6Inventi ve steel 612008000.588070400.2090Inventi ve example 7Inventi ve steel 711308701.51130110870.20183Inventi ve example 8Inventi ve steel 812008021.5113040870.20208Inventi ve example 9Inventi ve steel 912007821.5104090870.25201Inventi ve example 10Inventi ve steel 1011909701.5110050870.25213Compara tive example 1Compara tive steel 112008581.51130120830.25192Inventi ve example 11Inventi ve steel 1111907561.5980120830.25198Inventi ve example 12Inventi ve steel 1211509001.5110040830.25208Inventi ve example 13Inventi ve steel 13120010291.5108050830.25197Compara tive example 2Compara tive steel 212007672.099050880.25213Inventi ve example 14Inventi ve steel 14105010222.01100180880.25217Compara tive example 3Inventi ve steel 1511407502.095080880.25185Inventi ve example 15Inventi ve steel 1610509061.595090830.25208Compara tive example 4Inventi ve steel 17125010281.5108090830.25198Inventi ve example 16Inventi ve steel 1611308651.599060940.09225Compara tive example 5Inventi ve steel 1911007361.5100060820.27203Inventi ve example 17Inventi ve steel 2011007442.0110080930.15225Compara tive example 6Inventi ve steel 21115010202.0103060850.30191 [Table 4] Classi ficati onSteel typeFirst pass and second pass, one or more of the rolling maximum rate in cold-rolling (m / s)Heating rate in temperatu re range of 300 to 500°C (°C / s)Fin al ann eal ing tem per atu re (°C )Fin al ann eal ing tim e (mi n)Gas atmosphere during final annealing (volume%)Surfac e portio n Goss orient ation fracti on (area% )Entire region Goss orient ation fracti on (area% )Hydro genOxyge nRemain derInvent ive exampl e 1Invent ive steel 16878090300.000 669.999 41.32.9Invent ive exampl e 2Invent ive steel 2152975012099.990.000 10.00991.13.0Invent ive exampl e 3Invent ive steel 3255108 060250.000 874.999 22.42.8Invent ive exampl e 4Invent ive steel 4256100 090300.001 369.998 72.53.Invent ive exampl e 5Invent ive steel 575850200500.000 949.999 10.21.4Invent ive exampl e 6Invent ive steel 655750360300.001 069.999 01.72.4Invent ive exampl e 7Invent ive steel 75572070300.000 669.999 40.82.0Invent ive exampl e 8Invent ive steel 8136750200200.001 979.998 10.32.8Invent ive exampl e 9Invent ive steel 996104 080250.001 774.998 31.12.0Invent ive exampl e 10Invent ive steel 10195820240300.001 169.998 90.11.0Compar ative exampl e 1Compar ative steel 181598060100.000 289.999 85.47.2Invent ive exampl e 11Invent ive steel 11117850150300.001 869.998 21.01.9Invent ive exampl e 12Invent ive steel 122412100 060500.000 149.999 90.61.5Invent ive exampl e 13Invent ive steel 13105850270500.000 249.999 80.93.3Compar ative exampl e 2Compar ative steel 2175112 050100.000 889.999 24.16.2Invent ive exampl e 14Invent ive steel 142511800130350.000 964.999 10.62.0Compar ative exampl e 3Invent ive steel 1556800180100.000 389.999 73.15.7Invent ive exampl e 15Invent ive steel 16235850200350.001 064.999 01.63.7Compar ative exampl e 4Invent ive steel 17111488080100.000 989.999 11.84.1Invent ive exampl e 16Invent ive steel 18151590080350.001 764.998 31.22.8Compar ative exampl e 5Invent ive steel 19196800200120.000 287.999 83.65.4Invent ive exampl e 17Invent ive steel 20204750250500.000 449.999 60.41.2Compar ative exampl e 6Invent ive steel 21725100 080100.001 389.998 78.110.3 [Table 5] Classifi cationIron loss (W10 / 600 C) (W / Kg)Iron loss (W10 / 800 C) (W / Kg)Iron loss (W10 / 1200 C) (W / Kg)Iron loss (W10 / 600 L) (W / Kg)Iron loss (W10 / 800L ) (W / Kg)Iron loss (W10 / 1200 L) (W / Kg)Whether relatio nal express ion 1 satisfi edInventiv e example 114.324.143.815.424.344.5○Inventiv e example 219.632.553.52133.354.5○Inventiv e example 316.527.962.117.728.362.4○Inventiv e example 413.622.342.514.522.642.7○Inventiv e example 510.917.228.211.817.529○Inventiv e example 615.424.543.916.624.844.5○Inventiv e example 715.825.745.417.126.246.4○Inventiv e example 89.114.4199.814.719.6○Inventiv e example 911.218.939.512.119.240.2○Inventiv e example 1011.517.325.112.617.625.8○Comparat ive example 125.240.989.823.440.388.4×Inventiv e example 111728.356.418.428.757.5○Inventiv e example 1217.129.865.518.630.267○Inventiv e example 1310.918.730.611.71931.2○Comparat ive example 230.847.769.528.847.267.9×Inventiv e example 1425.23958.227.339.459.6○Comparat ive example 334.443.747.831.543.946.4×Inventiv e example 1516.428.250.317.528.751○Comparat ive example 43050.79128.349.889.9×Inventiv e example 164.67.411.957.612.1○Comparat ive example 527.844.656.926.343.755.5×Inventiv e example 176.49.9166.910.116.4○Comparat ive example 621.433.886.219.533.183.8×iron loss (W10 / 600C) + iron loss (W10 / 800C) + iron loss (W10 / 1200C) < iron loss (W10 / 600L) + iron loss (W10 / 800L) + iron loss (W10 / 1200L) [Table 6] Classifica tionIron loss (W15 / 600C) (W / Kg)Iron loss (W15 / 800C) (W / Kg)Iron loss (W15 / 1200C ) (W / Kg)Iron loss (W15 / 600L) (W / Kg)Iron loss (W15 / 800L) (W / Kg)Iron loss (W15 / 1200L ) (W / Kg)Inventive example 131.553.291.734.655.894.4Inventive example 242.771.2108.747.074.8111.9Inventive example 336.361.8132.740.064.8136.7Inventive example 429.548.686.432.451.089.0Inventive example 523.237.153.225.538.954.8Inventive example 633.052.884.336.355.486.9Inventive example 734.255.990.037.658.792.7Inventive example 819.531.033.921.532.634.9Inventive example 924.641.984.427.144.086.9Inventive example 1024.136.440.626.538.341.8Comparativ e example 151.889.7192.957.094.2198.7Inventive example 1137.162.2117.540.865.3121.1Inventive example 1238.266.5143.942.069.7148.2Inventive example 1324.241.665.226.643.767.2Comparativ e example 262.5103.0132.668.8108.2136.6Inventive example 1453.483.2102.158.787.4105.2Comparativ e example 363.889.545.370.293.946.7Inventive example 1536.462.7108.440.065.8111.6Comparativ e example 463.4111.5199.269.8117.0205.1Inventive example 169.916.122.710.916.923.4Comparativ e example 557.496.1110.363.1100.9113.6Inventive example 1713.521.128.814.822.129.6Comparativ e example 643.073.3180.847.377.0186.3

[0079] As indicated in Tables 1 to 6, in inventive examples 1 to 17, the alloy composition and manufacturing conditions of the present invention were satisfied, such that the microstructure aimed to obtain in the present invention was ensured, and thus, excellent magnetism was ensured.

[0080] In comparative examples 1 and 2, the alloy composition of the present invention was not satisfied, such that the microstructure aimed to be obtained in the present invention was not ensured, and thus, excellent magnetism was ensured.

[0081] In comparative examples 3 to 6, the manufacturing conditions of the present invention were not satisfied, such that the microstructure aimed to be obtained in the present invention was not ensured, and thus, excellent magnetism was ensured.

Claims

1. A non-oriented electrical steel sheet, comprising: by weight%, Si: 1.5 to 6.5%, Al: 0.0005 to 3.5%, Mn: 0.01 to 3.0%, Cr: 0.005 to 5.0%, S: 0.0005 to 0.03%, and a balance of Fe and inevitable impurities, wherein a Goss orientation fraction in a region from a surface to 1 / 10t (t: thickness of the steel sheet) in a thickness direction is 3 area% or less, and wherein a Goss orientation fraction in an entire region in the thickness direction is 5 area% or less.

2. The non-oriented electrical steel sheet of claim 1, wherein the non-oriented electrical steel sheet further includes one or more of P: 0.005 to 0.08% and Sn: 0.01 to 0.2%.

3. The non-oriented electrical steel sheet of claim 1, wherein the non-oriented electrical steel sheet further includes one or more of C: 0.005% or less (excluding 0%), N: 0.005% or less (excluding 0%), O: 0.005% or less (excluding 0%) and Ti: 0.01% or less (excluding 0%).

4. The non-oriented electrical steel sheet of claim 1, wherein the non-oriented electrical steel sheet further includes one or more of Mo: 0.1% or less (excluding 0%), B: 0.0050% or less (excluding 0%), V: 0.050% or less (excluding 0%), Ca: 0.010% or less (excluding 0%), Nb: 0.0050% or less (excluding 0%) and Mg: 0.0050% or less (excluding 0%).

5. The non-oriented electrical steel sheet of claim 1, wherein the non-oriented electrical steel sheet further includes one or more of Sb: 0.1% or less (excluding 0%), Ni: 0.05% or less (excluding 0%), Cu: 0.005 to 0.2% and Zn: 0.01% or less (excluding 0%).

6. The non-oriented electrical steel sheet of claim 1, wherein the non-oriented electrical steel sheet further includes 0.20% or less (excluding 0%) of one or more of Bi, Pb, Ge and As individually or in combination.

7. The non-oriented electrical steel sheet of claim 1, wherein the non-oriented electrical steel sheet has an iron loss (W10 / 600C) of 28W / kg or lower, an iron loss (W10 / 800C) of 43W / kg or lower, and an iron loss (W10 / 1200C) of 75W / kg or lower.

8. The non-oriented electrical steel sheet of claim 1, wherein the non-oriented electrical steel sheet has an iron loss (W10 / 600L) of 30W / kg or lower, an iron loss (W10 / 800L) of 48W / kg or lower, and an iron loss (W10 / 1200L) of 85W / kg or lower.

9. The non-oriented electrical steel sheet of claim 1, wherein the non-oriented electrical steel sheet has an iron loss (W15 / 600C) of 65 W / kg or lower, an iron loss (W15 / 800C) of 95 W / kg or lower, and an iron loss (W15 / 1200C) of 175 W / kg or lower.

10. The non-oriented electrical steel sheet of claim 1, wherein the non-oriented electrical steel sheet has an iron loss (W15 / 600L) of 75 W / kg or lower, an iron loss (W15 / 800L) of 105 W / kg or lower, and an iron loss (W15 / 1200L) of 190 W / kg or lower.

11. The non-oriented electrical steel sheet of claim 1, wherein the non-oriented electrical steel sheet satisfies relational expression 1 as below:

12. A method of manufacturing a non-oriented electrical steel sheet, the method comprising: heating a slab including, by weight%, Si: 1.5 to 6.5%, Al: 0.0005 to 3.5%, Mn: 0.01 to 3.0%, Cr: 0.005 to 5.0%, S: 0.0005 to 0.03%, and a balance of Fe and inevitable impurities at 1050 to 1220°C; finishing hot-rolling the slab and obtaining a hot-rolled sheet; hot-rolled sheet annealing the hot-rolled sheet for 30 to 300 seconds at 850 to 1150°C; cold-rolling the hot-rolled sheet annealed hot-rolled sheet and obtaining a cold-rolled sheet; heating the cold-rolled sheet; and final annealing the heated cold-rolled sheet, wherein, in the cold-rolling, [Relational expression 2] is satisfied, wherein, in the heating, a heating rate in a temperature range of 300 to 500°C is 5 to 150°C / s, and wherein, in the final annealing, a gas atmosphere includes, by volume%, hydrogen: 15 to 99.99%, oxygen: 0.0001 to 0.0030%, and a remainder of inert gas.

13. The non-oriented electrical steel sheet of claim 12, wherein the slab further includes one or more of P: 0.005 to 0.08% and Sn: 0.01 to 0.2%.

14. The method of claim 12, wherein the slab further includes one or more of C: 0.005% or less (excluding 0%), N: 0.005% or less (excluding 0%), O: 0.005% or less (excluding 0%) and Ti: 0.01% or less (excluding 0%).

15. The method of claim 12, wherein the slab further includes one or more of Mo: 0.1% or less (excluding 0%), B: 0.0050% or less (excluding 0%), V: 0.050% or less (excluding 0%), Ca: 0.010% or less (excluding 0%), Nb: 0.0050% or less (excluding 0%) and Mg: 0.0050% or less (excluding 0%).

16. The method of claim 12, wherein the slab further includes one or more of Sb: 0.1% or less (excluding 0%), Ni: 0.05% or less (excluding 0%), Cu: 0.005 to 0.2% and Zn: 0.01% or less (excluding 0%).

17. The method of claim 12, wherein the slab further includes 0.20% or less (excluding 0%) of one or more of Bi, Pb, Ge and As individually or in combination.

18. The method of claim 12, wherein the finishing hot-rolling is performed at 700 to 1050°C.

19. The method of claim 12, wherein the cold-rolling is performed with a cold reduction ratio of 35 to 98%.

20. The method of claim 12, wherein, in the cold rolling, a maximum rolling rate in one or more of first pass and second pass is 3 m / s or higher.

21. The method of claim 12, wherein the final annealing is performed for 10 to 500 seconds at 600 to 1150°C.