Non-oriented electrical steel sheet and method for manufacturing the same
By adjusting residence times and alloy compositions in annealing processes, the method achieves improved magnetic properties and yield strength in non-oriented electrical steel sheets, addressing the challenges of existing manufacturing methods and supporting efficient automotive drive motors.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-12-20
- Publication Date
- 2026-04-08
AI Technical Summary
Existing methods for manufacturing non-oriented electrical steel sheets struggle to simultaneously improve magnetic properties and yield strength at low and high temperatures without compromising rollability or increasing manufacturing costs, as they often lead to brittleness, decreased magnetic flux density, and uneven grain size distribution.
A method involving specific adjustments to the residence times during two hot-rolled and two cold-rolled sheet annealing processes, combined with precise alloy compositions, to control grain size distribution and ensure optimal strength and magnetism, including elements like Si, Al, Mn, and controlled annealing atmospheres.
The method results in non-oriented electrical steel sheets with improved iron loss and yield strength across varying temperatures, enhancing the performance and durability of environmentally friendly automotive drive motors.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a non-oriented electrical steel sheet and a method for manufacturing the same, and more specifically, to a non-oriented electrical steel sheet and a method for manufacturing the same, which improves magnetic properties and yield strength at low and high temperatures by adjusting the grain size distribution through adjusting the residence time in a specific temperature range during two hot-rolled sheet annealing and two cold-rolled sheet annealing processes. [Background technology]
[0002] Non-oriented electrical steel sheets are primarily used in motors that convert electrical energy into mechanical energy, and their excellent magnetic properties are required to achieve high efficiency in this process. In particular, with the recent focus on environmentally friendly technologies, increasing the efficiency of motors, which account for the majority of total electrical energy consumption, is considered extremely important, and for this reason, the demand for non-oriented electrical steel sheets with excellent magnetic properties is also increasing. The magnetic properties of non-oriented electrical steel sheets are primarily evaluated by iron loss and magnetic flux density. Iron loss refers to the energy loss that occurs at a specific magnetic flux density and frequency, while magnetic flux density refers to the degree of magnetization obtained under a specific magnetic field. Lower iron loss allows for the manufacture of more energy-efficient motors under the same conditions, and higher magnetic flux density allows for miniaturization of the motor or reduction of copper loss. Therefore, using non-oriented electrical steel sheets with low iron loss and high magnetic flux density allows for the manufacture of drive motors with superior efficiency and torque, thereby improving the driving range and output of environmentally friendly automobiles.
[0003] The characteristics of non-oriented electrical steel sheets that must be considered will also change depending on the motor's operating conditions. As a standard for evaluating the characteristics of non-oriented electrical steel sheets used in motors, the iron loss (W) when a 1.5T magnetic field is applied at a commercial frequency of 50Hz is used for many motors. 15 / 50 This is considered the most important. However, motors for diverse applications are all W 15 / 50Iron loss is not the most important factor; iron loss at other frequencies and applied magnetic fields is sometimes evaluated depending on the main operating conditions. In particular, in the case of non-oriented electrical steel sheets used in the drive motors of modern electric vehicles, magnetic properties are often important at low magnetic fields of 1.0T or less and high frequencies of 400Hz or more, so W 10 / 400 The properties of non-oriented electrical steel sheets are now evaluated based on iron loss, such as the iron loss associated with them.
[0004] Environmentally friendly non-oriented electrical steel sheets for automotive drive motors require not only excellent magnetic properties but also superior strength. Environmentally friendly automotive drive motors are mainly designed with permanent magnets inserted into the rotor, and for permanent magnet-inserted motors to perform well, the permanent magnets must be positioned as close to the stator as possible, on the outside of the rotor. However, when the motor rotates at high speed, if the strength of the electrical steel sheet is low, the permanent magnets inserted into the rotor may detach due to centrifugal force. Therefore, electrical steel sheets with high strength are required to ensure the performance and durability of the motor, and especially when considering the temperature rise due to motor operation, excellent strength at 170-250°C is required.
[0005] A common method for simultaneously increasing the magnetic properties and strength of non-oriented electrical steel sheets is to add alloying elements such as Si, Al, and Mn. By increasing the resistivity of the steel through the addition of such alloying elements, eddy current losses decrease, thereby lowering overall iron loss. Furthermore, the alloying elements can be dissolved into the iron as substitutional elements, creating a strengthening effect and increasing strength. On the other hand, increasing the amount of alloying elements such as Si, Al, and Mn leads to a decrease in magnetic flux density and an increase in brittleness. Adding more than a certain amount makes cold rolling impossible, thus preventing commercial production. In particular, as the thickness of electrical steel sheets decreases, high-frequency iron loss becomes more pronounced, and the decrease in rollability due to brittleness becomes a critical problem.
[0006] Depending on the motor's design intent, electrical steel sheets with improved strength may be used even if their magnetic properties are slightly degraded. Methods for manufacturing electrical steel sheets for such applications include the precipitation of interstitial elements and the reduction of crystal grain size. When miniaturizing a motor to increase rotational speed or to enhance the effectiveness of permanent magnets inserted in the rotor, rotors made from electrical steel sheets with significantly improved strength are used, even if the magnetic properties of the electrical steel sheet are slightly degraded. In this case, if fine precipitates containing interstitial solid solution elements such as C, N, and S are formed, the strength improvement effect is good, but the iron loss deteriorates rapidly, which has the disadvantage of actually reducing the motor's efficiency. Furthermore, the method of reducing crystal grain size has the disadvantage of increasing the non-uniformity of the steel sheet material due to the inclusion of unrecrystallized parts, leading to greater quality deviations in mass-produced products. In addition, most of the technologies conventionally proposed to simultaneously improve magnetism and strength are not used due to reasons such as increased manufacturing costs, decreased productivity and actual yield, and insufficient improvement effects. [Overview of the Initiative] [Problems that the invention aims to solve]
[0007] The object of the present invention is to provide a method for manufacturing non-oriented electrical steel sheets that improves magnetism and yield strength at low and high temperatures by adjusting the grain size distribution through adjusting the residence time within a specific temperature range during two hot-rolled sheet annealing and two cold-rolled sheet annealing processes. [Means for solving the problem]
[0008] An unoriented electrical steel sheet according to one embodiment of the present invention contains, by weight percent, Si: 2.5-4.0%, Al: 0.1-1.5%, Mn: 0.1-1.5%, with the remainder being Fe and unavoidable impurities. The non-oriented electrical steel sheet of the present invention has an average grain size of 50 to 100 μm, and the area ratio of grains with a grain size of 20 μm or less is 0.5% or more. It further contains 0.006 to 0.1% by weight of one or more of Sn and Sb. It further contains one or more of the following elements in an amount of 0.005% by weight or less: C, N, S, Ti, Nb, and V.
[0009] The non-oriented electrical steel sheet of the present invention further comprises one or more of the following: P: 0.05% by weight or less, B: 0.002% by weight or less, Mo: 0.01% by weight or less, Mg: 0.005% by weight or less, and Zr: 0.005% by weight or less. The non-oriented electrical steel sheet of the present invention satisfies the condition YS(210°C) / YS(-40°C) ≥ 0.71 when tensile tests are performed at -40°C and 210°C.
[0010] The present invention provides a method for manufacturing non-oriented electrical steel sheets, comprising the steps of: hot rolling a slab containing, by weight %, Si: 2.5-4.0%, Al: 0.1-1.5%, Mn: 0.1-1.5%, with the remainder being Fe and unavoidable impurities, to produce a hot-rolled sheet; a first hot-rolled sheet annealing step of annealing the hot-rolled sheet at a temperature range of 950-1150°C for 70 seconds or less; a second hot-rolled sheet annealing step of annealing the hot-rolled sheet at a temperature range of 900°C or higher and below 950°C for 15 seconds or more; a step of cold rolling the hot-rolled sheet to produce a cold-rolled sheet; a first cold-rolled sheet annealing step of annealing the cold-rolled sheet at a temperature range of 900-1100°C for 50 seconds or less; and a second cold-rolled sheet annealing step of annealing the cold-rolled sheet at a temperature range of 700-850°C for 15 seconds or more. The slab may further contain 0.006 to 0.1% by weight of one or more of Sn and Sb. The slab further contains one or more of C, N, S, Ti, Nb, and V in an amount of 0.005% by weight or less. It further contains one or more of the following: P: 0.05% by weight or less, B: 0.002% by weight or less, Mo: 0.01% by weight or less, Mg: 0.005% by weight or less, Zr: 0.005% by weight or less.
[0011] The method for manufacturing non-oriented electrical steel sheets of the present invention satisfies the following formula 1. [Formula 1] |(T HA1 -T HA2 )×(T CA1 -T CA2 )|≦1000 (In Formula 1, T HA1 represents the residence time (seconds) in the first hot-rolled sheet annealing stage, and T HA2 represents the residence time (seconds) in the second hot-rolled sheet annealing stage, and T CA1 represents the residence time (seconds) in the first cold-rolled sheet annealing stage, and T CA2 represents the residence time (seconds) in the second cold-rolled sheet annealing stage.) Before the stage of manufacturing the hot-rolled sheet, it further includes a stage of heating the slab at 1200 °C or lower. The stage of manufacturing the hot-rolled sheet includes a stage of finish rolling at 800 °C or higher. The first cold-rolled sheet annealing stage and the second cold-rolled sheet annealing stage are to be annealed in an atmosphere containing 40% by volume or less of hydrogen (H2) and 60% by volume or more of nitrogen, with a dew point of 0 to -40 °C. After the second cold-rolled sheet annealing stage, the average grain size diameter may be 50 to 100 μm, and the area ratio of grains with a grain size of 20 μm or less may be 0.5% or more. After the second cold-rolled sheet annealing stage, the yield strengths YS(-40 °C) and YS(210 °C) obtained when performing a tensile test at temperatures of -40 °C and 210 °C satisfy YS(210 °C) / YS(-40 °C) ≥ 0.71.
Effect of the Invention
[0012] According to the present invention, it is possible to manufacture a non-oriented electromagnetic steel sheet excellent in iron loss and excellent in yield strength at the motor operating temperature. Also, according to the present invention, it is possible to contribute to the performance improvement of an environmentally friendly automotive drive motor.
Mode for Carrying Out the Invention
[0013] Terms such as first, second, and third are used to describe various parts, components, regions, layers, and / or sections, but are not limited thereto. These terms are only used to distinguish one part, component, region, layer, or section from another part, component, region, layer, or section. Therefore, the first part, component, region, layer, or section described below can be referred to as the second part, component, region, layer, or section without departing from the scope of the present invention. The technical terms used herein are for the sole purpose of referring to specific embodiments and are not intended to limit the invention. The singular form used herein also includes plural forms unless the phrase explicitly indicates otherwise. The meaning of “includes” as used in this specification is to embody specific characteristics, regions, integers, stages, operations, elements, and / or components, and does not exclude the presence or addition of other characteristics, regions, integers, stages, operations, elements, and / or components. When one part is described as being "on top of" or "above" another part, it may be directly on top of or above the other part, or the other part may be present between them. In contrast, when one part is described as being "directly on top of" another part, the other part is not present between them. Also, unless otherwise specified, % means weight percent, and 1 ppm is 0.0001 weight percent.
[0014] In this invention, the inclusion of additional elements means that the additional amount of the additional elements replaces the remaining iron (Fe). Although not defined differently, all terms used herein, including technical and scientific terms, have the same meaning as generally understood by a person of ordinary skill in the art to which this invention pertains. Terms defined in commonly used dictionaries are further interpreted to have the meaning corresponding to the relevant technical literature and the content disclosed herein, and are not interpreted in an ideal or highly formal sense unless otherwise defined. The embodiments of the present invention will be described below in detail so that they can be easily implemented by a person with ordinary skill in the art to which the present invention pertains. However, the present invention can be realized in a variety of different forms and is not limited to the embodiments described herein.
[0015] The non-oriented electrical steel sheet of the present invention contains, by weight percent, Si: 2.5-4.0%, Al: 0.1-1.5%, Mn: 0.1-1.5%, with the remainder being Fe and unavoidable impurities.
[0016] The following explains the reasons for limiting the composition of non-oriented electrical steel sheets. Si:2.5~4.0wt% Silicon (Si) plays a role in increasing the resistivity of materials, reducing iron loss, and increasing strength through solid solution strengthening. If too little Si is added, the effects of reducing iron loss and improving strength may be insufficient. If too much Si is added, the brittleness of the material increases, the rolling productivity decreases sharply, and harmful surface oxide layers and oxides may form. Therefore, the Si content should be 2.5 to 4.0% by weight. More specifically, it should be 2.6 to 3.8% by weight. Even more specifically, it should be 2.7 to 3.7% by weight.
[0017] Al: 0.1~1.5% by weight Aluminum (Al) plays a role in increasing the resistivity of the material, reducing iron loss, and increasing strength through solid solution strengthening. If too little Al is added, fine nitrides may form, making it difficult to obtain the magnetic improvement effect. If too much Al is added, excessive nitrides will form, degrading magnetism and causing problems in all processes, such as steelmaking and continuous casting, which can significantly reduce productivity. Therefore, the Al content should be 0.1 to 1.5% by weight. More specifically, it should be 0.3 to 1.4% by weight. Mn:0.1~1.5wt%
[0018] Manganese (Mn) plays a role in increasing the resistivity of the material, improving iron loss, and promoting the formation of sulfides. If too little Mn is added, fine sulfides are formed, causing magnetic degradation. If too much Mn is added, an excessive amount of fine MnS is deposited, promoting the formation of a {111} texture unfavorable for magnetism, and causing a rapid decrease in magnetic flux density. Therefore, the material should contain 0.1 to 1.5% by weight of Mn. More specifically, it should contain 0.2 to 1.3% by weight.
[0019] The non-oriented electrical steel sheet of the present invention further contains 0.006 to 0.1% by weight of one or more of Sn and Sb. One or more of Sn and Sb: 0.006-0.100% by weight Tin (Sn) and antimony (Sb) segregate at grain boundaries and on the surface, delaying the development of the {111} texture, which is detrimental to magnetism, in the early stages of recrystallization, and suppressing the formation of the internal oxide layer. If Sn and Sb are added in excessively small amounts, the aforementioned effects may not be sufficient. If Sn and Sb are added in excessively large amounts, surface defects may occur. Therefore, the content should be 0.006 to 0.100% by weight of one or more of Sn and Sb. More specifically, it should be 0.010 to 0.070% by weight. One or more of Sn and Sb refers to the content of Sn or Sb individually if they are included alone, or the total amount of Sn and Sb if they are included together.
[0020] The non-oriented electrical steel sheet of the present invention further contains one or more of C, N, S, Ti, Nb, and V in an amount of 0.005% by weight or less. C: 0.0050% by weight or less Carbon (C) undergoes magnetic aging, combining with other impurity elements to form carbides, which degrades magnetic properties, but it also improves strength by hindering potential transfer. If the C content is excessively high, the proportion of fine carbides increases, which can degrade the magnetism. Therefore, the C content should be 0.0050% by weight or less. There is no particular lower limit for C, but considering productivity, it should be 0.0010% by weight or more. That is, the C content should be between 0.0010% and 0.0050% by weight.
[0021] N: 0.0050% by weight or less Nitrogen (N) not only forms fine AlN precipitates within the matrix material, but also combines with other impurities to form fine precipitates, suppressing grain growth and worsening iron loss. Therefore, the N content should be 0.0050% by weight or less. While there is no particular lower limit for N, since N helps improve strength, the lower limit should be set at 0.0003% by weight. That is, the N content should be between 0.0003% and 0.0050% by weight. S: 0.0050% by weight or less
[0022] Sulfur (S) forms fine precipitates called MnS and CuS, which degrade the magnetic properties and worsen the hot workability. Therefore, the amount of S should be 0.0050% by weight or less. The lower limit of S is not particularly limited, but since S helps to improve the magnetic flux density, the lower limit should be set at 0.0003% by weight. That is, the amount of S should be between 0.0003% and 0.0050% by weight.
[0023] Ti, Nb, V: Less than 0.0050% by weight each Titanium (Ti), niobium (Nb), and vanadium (V) have a very strong tendency to form precipitates within steel, and they degrade iron loss by forming fine carbides, nitrides, or sulfides inside the base material, thereby suppressing grain growth and magnetic field wall movement. Therefore, the Ti, Nb, and V content may each be 0.0050% by weight or less. The lower limit is not particularly limited, but it is set at 0.0003% by weight depending on the steelmaking cost. That is, the steel will contain 0.0003 to 0.0050% by weight of Ti, Nb, and V, respectively.
[0024] The non-oriented electrical steel sheet of the present invention further contains one or more of the following: P: 0.05% by weight or less, B: 0.002% by weight or less, Mo: 0.01% by weight or less, Mg: 0.005% by weight or less, and Zr: 0.005% by weight or less. P: 0.050% by weight or less Phosphorus (P) degrades hot working properties, reducing productivity compared to the improvement in magnetism. Therefore, the amount of P should be 0.050% by weight or less. There is no particular lower limit, but since it can also play a role in improving the texture by segregating on the surface and grain boundaries of the steel sheet, suppressing surface oxidation during annealing, hindering elemental diffusion through grain boundaries, and inhibiting recrystallization in the {111} / / ND orientation, the limit should be 0.005%. In other words, the amount of P should be 0.005 to 0.050% by weight. B: 0.002% by weight or less
[0025] Adding excessive amounts of boron (B) can cause deterioration of magnetism through the formation of inclusions within the steel. Therefore, the amount of B should be 0.002% by weight or less. There is no particular lower limit, but it should be set at 0.0001% by weight depending on the steelmaking costs. That is, the amount of B should be between 0.0001% and 0.0020% by weight.
[0026] Mo: 0.01% by weight or less When molybdenum (Mo) is added in excess, it can suppress the segregation of Sn and P, reducing the texture-improving effect. Therefore, the amount of Mo should be 0.01% by weight or less. There is no particular lower limit, but since it plays a role in improving the texture by segregating at the surface and grain boundaries, it should be 0.001% by weight or more. That is, the amount of Mo should be between 0.001% and 0.010% by weight.
[0027] Mg: 0.005% by weight or less Magnesium (Mg) is an element that primarily combines with sulfur to form sulfides, and thus affects the oxide layer on the surface of the base iron. Therefore, the Mg content should be 0.005% by weight or less. While there is no particular lower limit, it should be set at 0.0001% by weight depending on the steelmaking costs. That is, the Mg content should be between 0.0001% and 0.0050% by weight.
[0028] Zr: 0.005% by weight or less Adding excessive amounts of zirconium (Zr) can cause deterioration of magnetism through the formation of inclusions within the steel. Therefore, the amount of Zr should be 0.005% by weight or less. While there is no particular lower limit, it should be set at 0.0001% by weight depending on the steelmaking costs. That is, the amount of Zr should be between 0.0001% and 0.0050% by weight.
[0029] The remainder consists of Fe and unavoidable impurities. These unavoidable impurities are introduced during the steelmaking process and the manufacturing process of grain-oriented electrical steel sheets, and since this is widely known in the field, a detailed explanation will be omitted. Rather than excluding the addition of elements other than the alloy components mentioned above in the present invention, a variety of elements may be included as long as they do not impair the technical concept of the present invention. If additional elements are included, they will be included in place of the remainder, Fe.
[0030] The non-oriented electrical steel sheet of the present invention has an average grain size of 50 to 100 μm, and the area ratio of grains with a grain size of 20 μm or less is 0.5% or more. In this invention, the average grain size can be maintained at 50 to 100 μm, thereby improving magnetism. In particular, high-frequency iron loss can be improved. In this invention, the grain size refers to the original diameter of a hypothetical circle having the same area as the grain area. The average grain size is calculated as (measured area ÷ number of grains). 0.5 It can be calculated using the following formula. The grain size can be measured using a plane parallel to the rolling perpendicular cross-section (TD plane) as a reference. More specifically, the average grain size may be 60 to 95 μm. In this invention, the area ratio of crystal grains with a particle size of 20 μm or less is 0.5% or more. By securing a large quantity of fine crystal grains with small particle sizes, the strength can be improved, and in particular, the yield strength at high temperatures can be improved. In this invention, by simultaneously ensuring the average grain size and the fine grain area ratio, it is possible to ensure both magnetism and strength at the same time.
[0031] The non-oriented electrical steel sheet of the present invention can satisfy the condition YS(210°C) / YS(-40°C) ≥ 0.710 when the yield strengths YS(-40°C) and YS(210°C) obtained when tensile tests are performed at -40°C and 210°C. More specifically, the above value may be between 0.710 and 0.730. The yield strength YS (-40°C) may be 450 to 550 MPa. The yield strength YS (210°C) may be 325 to 400 MPa. In this way, by ensuring yield strength under specific temperature conditions, when manufacturing environmentally friendly automotive drive motors using the non-oriented electrical steel sheet of the present invention, stable high-speed rotation over a wide temperature range becomes possible, dramatically improving the efficiency of the motor. Specifically, iron loss (W) of non-oriented electrical steel sheets 10 / 400 ) is 12.5 W / kg or less, magnetic flux density (B 50 ) may be 1.650T or more. Iron loss (W 10 / 400 ) is the iron loss when a magnetic flux density of 1.0T is induced at a frequency of 400Hz. Magnetic flux density (B 50 ) is the magnetic flux density induced by a magnetic field of 5000 A / m. More specifically, the iron loss (W) of non-oriented electrical steel sheet. 10 / 400 ) is 10.0~12.0 W / kg, magnetic flux density (B 50 ) may be 1.660~1.680T.
[0032] The present invention relates to a method for manufacturing non-oriented electrical steel sheets, which includes the steps of: hot rolling a slab to produce a hot-rolled sheet; annealing the hot-rolled sheet to a first hot-rolled sheet; annealing the hot-rolled sheet to a second hot-rolled sheet; cold rolling the hot-rolled sheet to produce a cold-rolled sheet; annealing the cold-rolled sheet to a first cold-rolled sheet; and annealing the cold-rolled sheet to a second cold-rolled sheet. First, the slab is hot-rolled. The alloy composition of the slab was explained in the section on the alloy composition of the non-oriented electrical steel sheet mentioned above, so we will omit any redundant explanations. Since the alloy composition does not substantially change during the manufacturing process of the non-oriented electrical steel sheet, the alloy composition of the non-oriented electrical steel sheet and the slab are substantially the same. Specifically, the slab contains, by weight %, Si: 2.5-4.0%, Al: 0.1-1.5%, Mn: 0.1-1.5%, with the remainder being Fe and unavoidable impurities. Other additional elements were explained in the section on the alloy composition of non-oriented electrical steel sheets, so redundant explanations will be omitted.
[0033] The slab can be heated before hot rolling. There is no restriction on the heating temperature of the slab, but it should be heated to 1200°C or lower. If the slab heating temperature is excessively high, precipitates such as AlN and MnS present in the slab may be redissolved and then finely precipitated during hot rolling and annealing, suppressing grain growth and reducing magnetism. Next, the slab is hot-rolled to produce a hot-rolled sheet. The thickness of the hot-rolled sheet may be 2 to 2.3 mm. During the production of the hot-rolled sheet, the finishing rolling temperature may be 800°C or higher. Specifically, it may be 800 to 1000°C. The hot-rolled sheet is wound up at a temperature of 700°C or lower.
[0034] After the stage of manufacturing the hot-rolled sheet, the first hot-rolled sheet is annealed. At this time, the hot-rolled sheet is annealed for 70 seconds or less in a temperature range of 950 to 1150°C. Within the aforementioned temperature range, the optimal grain size is formed through recrystallization and grain growth of the hot-rolled sheet. Therefore, by shortening the residence time in this temperature range, the grain size of the steel sheet can be appropriately controlled, ensuring excellent strength and magnetism simultaneously. More specifically, the hot-rolled sheet is annealed for 35 to 65 seconds in a temperature range of 950 to 1150°C. In this invention, the temperature at which the steel sheet is annealed refers to the temperature of the steel sheet surface. Next, the hot-rolled sheet is annealed for a second time. During this time, the hot-rolled sheet is annealed for 15 seconds or more in a temperature range of 900°C or higher and below 950°C. In the first hot-rolled sheet annealing stage, a microstructure with a suitable particle size is formed, and in the second hot-rolled sheet annealing stage, fine precipitates are grown. In the aforementioned temperature range, nitrides, sulfides, etc., that are present in the hot-rolled sheet at a fine size are not redissolved, and instead grow. Therefore, by increasing the residence time in this temperature range, the fraction of fine precipitates of several tens of nanometers can be reduced. More specifically, the hot-rolled sheet is annealed for 20 to 60 seconds in a temperature range of 900°C or higher and below 950°C.
[0035] Next, the hot-rolled sheet is cold-rolled to produce a cold-rolled sheet. The final cold rolling is performed to a thickness of 0.1 mm to 0.35 mm. During the cold-rolling stage, the reduction ratio can be adjusted to 85% or higher. More specifically, the reduction ratio may be 85 to 95%. If the reduction ratio is excessively low, a thickness difference may occur in the width direction of the steel sheet. Next, the cold-rolled sheet is subjected to first cold-rolled sheet annealing. During this process, the cold-rolled sheet is annealed in a temperature range of 900 to 1100°C for 50 seconds or less. Within this temperature range, the cold-rolled sheet undergoes recrystallization and grain growth to form a microstructure with optimal grain size. Therefore, by shortening the residence time within this temperature range, a microstructure possessing both excellent strength and magnetism can be formed. More specifically, the cold-rolled sheet is annealed in a temperature range of 900 to 1100°C for 30 to 50 seconds.
[0036] Next, the cold-rolled sheet is subjected to a second cold-rolled sheet annealing. During this process, the cold-rolled sheet is annealed at a temperature range of 700-850°C for at least 15 seconds. In the second cold-rolled sheet annealing stage, while maintaining a microstructure with appropriately sized crystal grains, the fine precipitates that degrade magnetism are coarsened, thereby reducing the internal stress generated during the cooling process of the steel sheet. Therefore, by increasing the residence time in this temperature range, iron loss can be improved while maintaining the same microstructure. More specifically, the cold-rolled sheet is annealed at a temperature range of 700-850°C for 20-50 seconds.
[0037] The method for manufacturing non-oriented electrical steel sheets of the present invention satisfies the following formula 1. [Formula 1] |(T HA1 -T HA2 )×(T CA1 -T CA2 )|≦1000 (In formula 1, T HA1 This indicates the residence time (seconds) during the first hot-rolled sheet annealing stage, and T HA2 This indicates the residence time (seconds) during the second hot-rolled sheet annealing stage, T CA1 This indicates the residence time (seconds) during the first cold-rolled sheet annealing stage, and T CA2 This indicates the residence time (seconds) during the second cold-rolled sheet annealing stage. By adjusting the residence time of each annealing stage to satisfy Equation 1, appropriate average grain size and fine grain fraction can be ensured, which leads to improved strength and magnetism of non-oriented electrical steel sheets. The first and second cold-rolled sheet annealing stages involve annealing the cold-rolled sheet in an atmosphere containing 40% or less by volume of hydrogen (H2) and 60% or more by volume of nitrogen, with a dew point of 0 to -40°C. Specifically, annealing is performed in an atmosphere containing 5 to 40% by volume of hydrogen and 60 to 95% by volume of nitrogen. In the second cold-rolled sheet annealing process, all (i.e., 99% or more) of the work structure formed in the cold-rolling stage is recrystallized. After the final annealing, an insulating coating can be formed. The insulating coating can be an organic, inorganic, or organic-inorganic composite coating, or it can be treated with other insulating coating agents.
[0038] The present invention will be described in more detail below through examples. However, these examples are merely illustrative and the present invention is not limited thereto. [Examples] Example 1 Slabs were prepared using the components shown in Table 1, with the remainder being Fe and unavoidable impurities. These were heated to 1150°C and hot-rolled at a finishing temperature of 880°C to produce hot-rolled sheets with a thickness of 2.0 m. The hot-rolled sheets were annealed at 1000°C and 930°C, respectively, under the conditions shown in Table 2, and then cold-rolled to a thickness of 0.25 mm. These were then annealed at 1000°C and 800°C, respectively, under the conditions shown in Table 2, to form the first and second cold-rolled sheets. For each specimen, the primary and secondary soaking times for hot-rolled sheet annealing, the primary and secondary soaking times for final annealing, the average grain diameter, the area ratio of grains with a diameter of 20 μm or less, YS(-40℃), YS(210℃), YS(210℃) / YS(-40℃), and W 10 / 400 Iron loss, B 50 The magnetic flux densities are summarized in Table 3.
[0039] The content of each component was measured using the ICP wet analysis method. The average grain size and area ratio of the crystal grains were measured by polishing the TD cross-section of the specimen to 100 mm. 2After measuring the area using EBSD to achieve the above area, the data was merged using the Merge function of the OIM software, and the Average Number and Area fraction values obtained when calculating with the Grain Size (diameter) function were used. Tensile tests at -40°C and 210°C were conducted according to ISO 6892-2 standard. Magnetic properties such as magnetic flux density and iron loss were measured using a single sheet tester by cutting five 60mm wide x 60mm long specimens for each sample, measuring in the rolling direction and perpendicular to the rolling direction, and the average value was shown. At this time, W 10 / 400 This is the iron loss when a magnetic flux density of 1.0T is induced at a frequency of 400Hz, and B 50 This refers to the magnetic flux density induced by a magnetic field of 5000 A / m.
[0040] [Table 1]
[0041] [Table 2]
[0042] [Table 3]
[0043] As shown in Tables 1 to 3, A3, A4, B3, B4, C3, C4, D3, and D4, in which the residence times for the first and second hot-rolled sheet annealing and the first and second cold-rolled sheet annealing were appropriately adjusted, exhibit excellent W 10 / 400 High YS(210℃) / YS(-40℃) values were observed along with iron loss. On the other hand, for A1, A2, C2, and D2, the primary soaking times for hot-rolled and cold-rolled sheet annealing deviated from the range, resulting in an average grain diameter exceeding 100 μm or a grain area ratio of less than 0.5% for grains with a diameter of 20 μm or less, thus showing a low YS(210℃) / YS(-40℃) value. Furthermore, in B1, B2, C1, and D1, the secondary soaking time for hot-rolled and cold-rolled sheet annealing deviated from the range, resulting in an average grain diameter exceeding 50 μm or a grain area ratio of 20 μm or less being lower than 0.5%, and residual stress and fine precipitates were not properly controlled, W 10 / 400 This demonstrated a characteristic of being inferior. The present invention is not limited to the embodiments described herein, and can be manufactured in a variety of different forms. Those with ordinary skill in the art to which the present invention pertains should understand that it can be implemented in other specific forms without altering the technical idea or essential features of the present invention. Therefore, the embodiments described above should be understood to be illustrative and not limiting in all respects.
Claims
1. It contains, by weight percent, Si: 2.5-4.0%, Al: 0.1-1.5%, Mn: 0.1-1.5%, Sn: 0.006-0.1%, and Sb: 0.006-0.1%, with the remainder being Fe and unavoidable impurities. The average grain size is 50 to 100 μm, and the area ratio of grains with a grain size of 20 μm or less is 0.5 to 1.43%. The non-oriented electrical steel sheet is characterized in that the average grain size and area ratio are measured with reference to a plane parallel to the cross-section perpendicular to the rolling direction (TD plane).
2. The non-oriented electrical steel sheet according to claim 1, further comprising one or more of C, N, S, Ti, Nb, and V in an amount of 0.005% by weight or less.
3. The non-oriented electrical steel sheet according to claim 1, further comprising one or more of the following: P: 0.05% by weight or less, B: 0.002% by weight or less, Mo: 0.01% by weight or less, Mg: 0.005% by weight or less, and Zr: 0.005% by weight or less.
4. The non-oriented electrical steel sheet according to claim 1, characterized in that the yield strengths YS(-40°C) and YS(210°C) obtained when tensile tests are performed at -40°C and 210°C satisfy the condition YS(210°C) / YS(-40°C) ≥ 0.
71.
5. A method for manufacturing a non-oriented electrical steel sheet according to any one of claims 1 to 4, A step of producing a hot-rolled sheet by hot-rolling a slab containing, by weight percent, Si: 2.5-4.0%, Al: 0.1-1.5%, Mn: 0.1-1.5%, Sn: 0.006-0.1%, and Sb: 0.006-0.1%, with the remainder being Fe and unavoidable impurities. A first hot-rolled sheet annealing step in which the hot-rolled sheet is annealed at a temperature range of 950 to 1150°C for 70 seconds or less. A second hot-rolled sheet annealing step in which the hot-rolled sheet is annealed for 15 seconds or more at a temperature range of 900°C or higher and less than 950°C. The step of cold-rolling the hot-rolled sheet to produce a cold-rolled sheet, A first cold-rolled sheet annealing step in which the cold-rolled sheet is annealed at a temperature range of 900 to 1100°C for 50 seconds or less, and A method for manufacturing non-oriented electrical steel sheets, characterized by including a second cold-rolled sheet annealing step of annealing the cold-rolled sheet at a temperature range of 700 to 850°C for 15 seconds or more.
6. A method for manufacturing a non-oriented electrical steel sheet according to claim 5, characterized in that it satisfies the following formula 1. [Formula 1] |(T HA1 -T HA2 )×(T CA1 -T CA2 )|≦1000 (In formula 1, T HA1 This indicates the residence time (seconds) during the first hot-rolled sheet annealing stage, T HA2 This indicates the residence time (seconds) during the second hot-rolled sheet annealing stage, T CA1 This indicates the residence time (seconds) at the first cold-rolled sheet annealing stage, T CA2 This indicates the residence time (seconds) during the second cold-rolled sheet annealing stage.
7. The method for manufacturing a non-oriented electrical steel sheet according to claim 5, further comprising the step of heating a slab to 1200°C or less prior to the step of manufacturing the hot-rolled sheet.
8. The method for manufacturing a non-oriented electrical steel sheet according to claim 5, characterized in that the step of manufacturing the hot-rolled sheet includes a step of finish rolling at 800°C or higher.
9. The first cold-rolled sheet annealing step and the second cold-rolled sheet annealing step are annealed in an atmosphere containing 40% by volume or less of hydrogen (H 2 ), and 60% by volume or more of nitrogen, and having a dew point of 0 to -40°C. The method for manufacturing a non-oriented electrical steel sheet according to claim 5, characterized in that.
Citation Information
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