Method for manufacturing hot-rolled sheets for grain-oriented electrical steel sheets, method for manufacturing grain-oriented electrical steel sheets, equipment array for manufacturing hot-rolled sheets for grain-oriented electrical steel sheets, and hot-rolled sheets for grain-oriented electrical steel sheets
Patent Information
- Application Number
- JP2025572990
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2024-09-27
- Filing Date
- 2025-07-24
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2045-07-24
AI Technical Summary
【0033】 本発明により、インヒビターレス法で生じやすいスラブ再加熱時の組織の不均一に起因する問題と、鋳造熱延連続工程において超高温で熱間圧延をせざるを得ないという問題の両方を解決することができる。
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for manufacturing hot-rolled sheets for grain-oriented electrical steel sheets, a method for manufacturing grain-oriented electrical steel sheets, a set of equipment for manufacturing hot-rolled sheets for grain-oriented electrical steel sheets, and hot-rolled sheets for grain-oriented electrical steel sheets. In particular, the present invention relates to a method for manufacturing hot-rolled sheets suitable for manufacturing grain-oriented electrical steel sheets having stable magnetic properties by a continuous process in which the process from casting molten steel to manufacturing the hot-rolled sheets is carried out using a series of equipment. [Background technology]
[0002] Grain-oriented electrical steel sheets are primarily used as core materials for transformers and other electrical equipment. In recent years, there has been a growing demand for energy efficiency in these cores. Consequently, grain-oriented electrical steel sheets, which are the core material, are required to have superior magnetic properties, namely low iron loss and high magnetic flux density.
[0003] Grain-oriented electrical steel sheets are iron with an easy magnetization axis. <001> The grain structure has a highly aligned crystalline structure in the direction of rolling of the steel sheet. Such a texture is called the Goss orientation during the manufacturing process of grain-oriented electrical steel sheets, especially during finish annealing. <001> It is formed through secondary recrystallization, which preferentially promotes the growth of grains with a specific orientation. Therefore, the crystal orientation of the secondary recrystallized grains has a significant impact on the magnetic properties of the grain-oriented electrical steel sheet.
[0004] Conventionally, grain-oriented electrical steel sheets are manufactured by the following process: A steel slab containing 4.5% by mass or less of Si and further containing inhibitor-forming elements such as MnS, MnSe, AlN, and BN is heated to 1300°C or higher and then hot-rolled to obtain a hot-rolled sheet. Next, the hot-rolled sheet is annealed as needed, and then cold-rolled once or twice or more with an intermediate annealing in between to obtain a cold-rolled sheet. Next, the cold-rolled sheet is decarburized annealed in a humid hydrogen atmosphere to perform primary recrystallization and decarburization to obtain a decarburized annealed sheet. After applying an annealing separating agent mainly composed of MgO to the decarburized annealed sheet, a finish annealing is performed at 1200°C for about 5 hours to perform secondary recrystallization and purify the inhibitor-forming elements (see, for example, Patent Documents 1 to 3).
[0005] Generally, the manufacturing process of grain-oriented electrical steel sheets requires high-temperature slab heating to solidify inhibitor-forming elements, resulting in extremely high manufacturing costs. To address this problem, a method has been developed that can induce secondary recrystallization without containing inhibitor-forming elements, the so-called inhibitor-less method (see, for example, Patent Document 4). This method is based on a completely different technical concept from conventional methods for manufacturing grain-oriented electrical steel sheets. In other words, conventional methods utilize precipitates (inhibitors) such as MnS, MnSe, and AlN to induce secondary recrystallization. On the other hand, the inhibitor-less method does not use these inhibitors, but rather increases the purity to reduce resistance to grain boundary movement, thereby making the inherent difference in grain boundary movement speed, which depends on the grain boundary characteristics, apparent and successfully inducing secondary recrystallization. Therefore, compared to the case where conventional inhibitors are used, high-temperature slab heating to solidify inhibitor-forming elements can be avoided.
[0006] When applying the inhibitor-free method described above, a standard slab heating furnace (gas furnace) is used for heating the slab at low temperatures. Because the composition does not contain strong inhibitors, if trace elements with grain growth inhibiting properties are mixed into the steel, it has been observed that the quality within the slab becomes uneven due to temperature inconsistencies in the heating furnace.
[0007] Furthermore, as a means of avoiding high-temperature slab heating, a process for continuously obtaining hot-rolled coils from cast slabs is also being investigated. For example, in the technology described in Patent Document 5, after casting a slab with a maximum thickness of 70 mm, hot rolling is started while the temperature exceeds 1200°C to produce hot-rolled coils, thereby successfully obtaining hot-rolled coils suitable for the manufacturing process of grain-oriented electrical steel sheets using conventional inhibitors.
[0008] However, in order to obtain hot-rolled coils continuously from cast slabs, methods such as starting hot rolling while the slab is still at a temperature exceeding 1200°C after casting, as shown in Patent Document 5, have been considered in order to reproduce the "complete solid solution state of the inhibitor after slab reheating" that occurs in normal hot rolling, which has resulted in a process that is fraught with manufacturing difficulties. [Prior art documents] [Patent Documents]
[0009] [Patent Document 1] U.S. Patent No. 1965559 [Patent Document 2] Special Publication No. 40-15644 [Patent Document 3] Special Publication No. 51-13469 [Patent Document 4] Japanese Patent Publication No. 2000-129356 [Patent Document 5] Japanese Patent Publication No. 2008-69391 [Overview of the project] [Problems that the invention aims to solve]
[0010] As mentioned above, the inhibitor-less method, because it does not contain strong inhibitor components, had problems such as uneven heating due to skids, for example, during slab heating in hot rolling, which could lead to differences in grain growth and a non-uniform structure, or the inclusion of trace components which would be amplified.
[0011] On the other hand, applying the process of continuously obtaining hot-rolled coils from slabs cast thinner than usual to the manufacturing process of grain-oriented electrical steel sheets required maintaining extremely high temperatures during hot rolling to achieve a complete solid solution state of precipitates before the start of hot rolling, which presented challenges for stable production.
[0012] In view of the above problems, an object of the present invention is to provide a method for manufacturing a hot-rolled sheet for grain-oriented electrical steel sheet and a production equipment line, which can manufacture a hot-rolled sheet suitable for manufacturing grain-oriented electrical steel sheet having stable magnetic properties by a continuous process in which the processes from casting of molten steel to production of a hot-rolled sheet are performed by a series of equipment lines while using a component composition according to an inhibitor-less method. [Means for Solving the Problems]
[0013] A continuous process in which the processes from casting of molten steel to production of a hot-rolled sheet are performed by a series of equipment lines (hereinafter also referred to as a continuous casting and hot rolling process) can omit the step of slab reheating, and therefore can potentially suppress the factor of quality variation caused by grain growth during slab reheating, which is peculiar to the inhibitor-less method. On the other hand, since the component composition according to the inhibitor-less method contains almost no inhibitor-forming elements, it is expected that a complete solid solution state can be maintained even when the slab temperature is lowered to a relatively low temperature after casting. Accordingly, the present inventors have arrived at the idea that combining the continuous casting and hot rolling process with the inhibitor-less method makes it possible to more stably produce grain-oriented electrical steel sheet with good magnetic properties.
[0014] However, simply subjecting molten steel having a component composition according to the inhibitor-less method to the continuous casting and hot rolling process not only failed to obtain good magnetic properties, but also failed to even induce secondary recrystallization. Accordingly, as a result of intensive studies conducted by the inventors, they have obtained the findings shown in (1) and (2) below.
[0015] (1) In order to produce a hot-rolled sheet from molten steel having a component composition according to the inhibitor-less method by the continuous casting and hot rolling process, and then induce secondary recrystallization, it was necessary to optimize the conditions of the continuous casting and hot rolling process. Specifically, it has been found that the following conditions (A) to (E) are important. (A) The slab thickness in the casting step is set to 80 mm or more and 150 mm or less. (B) After casting, before the temperature of the surface of the slab drops below 850°C, heating is performed under predetermined conditions (heating time: 5 minutes or more and 25 minutes or less, maximum achieved temperature: 1100°C or more and 1290°C or less). (C) Obtaining a sheet bar having a thickness of 8 mm or more and 60 mm or less by hot rough rolling of 2 passes or more and 5 passes or less. (D) Setting a hot finish rolling start temperature to 900°C or more and 1100°C or less, and obtaining a hot-rolled sheet having a thickness of 1.3 mm or more and 3.5 mm or less by hot finish rolling of 3 passes or more and 7 passes or less. (E) Cooling the hot-rolled sheet within 200 seconds after the completion of hot finish rolling such that the temperature of the surface of the hot-rolled sheet becomes 650°C or lower.
[0016] (2) By satisfying all the conditions of (A) to (E) above, a hot-rolled sheet was produced from molten steel having a component composition according to the inhibitor-less method by a continuous casting and hot rolling process, and thereafter secondary recrystallization could be caused to occur. However, the magnetic properties obtained after secondary recrystallization were not necessarily sufficient as compared with the case where a process of reheating a general slab is employed.
[0017] When investigating the cause of these problems, the inventors found that the texture during primary recrystallization is degraded as compared with the case where a general process of reheating a slab cooled to 500°C or lower after casting is employed. A difference in texture was mainly observed in the orientation group belonging to <100> / / ND. This was considered to be caused by the fact that, when performing thin slab casting as compared with casting a slab having a normal thickness of 200 mm or more, the proportion of columnar crystals in the slab increases, and as a result, the crystal grain size of the hot-rolled sheet affected by the texture of the columnar crystals becomes coarse.
[0018] Accordingly, when the inventors investigated conditions for recrystallizing the structure after casting during hot rolling and controlling the crystal grain size to an appropriate value, they found that in hot rough rolling, the strain rate is set to 0.30 s in all passes in which the reduction ratio per pass exceeds 20.0% -1We found that the above is important. This makes it possible to introduce appropriate dislocations during hot rough rolling, and to increase the number of recrystallization nuclei. As a result, it became possible to suppress the average grain size of recrystallized grains to 500 μm or less in the surface layer from the surface to 1 / 5 of the thickness of the hot-rolled sheet. Furthermore, in the final pass of hot finish rolling, the reduction ratio was set to 5.0% to 50.0%, and the strain rate was set to 50.0 s. -1 It was also found that the above is preferable. This makes it possible to introduce appropriate dislocations even during hot finish rolling, and to increase the number of recrystallization nuclei. As a result, it became possible to control the average grain size of recrystallized grains to 30 μm or more and 300 μm or less in the surface layer from the surface to 1 / 5 of the thickness of the hot-rolled sheet. By performing hot-rolled sheet annealing (optional process), cold rolling, decarburization annealing, and finish annealing (secondary recrystallization annealing) on the hot-rolled sheet obtained in this way, it becomes possible to manufacture grain-oriented electrical steel sheets with good magnetic properties.
[0019] Based on the above findings, the gist of the present invention is as follows. [1] A process of continuously casting molten steel having a composition in mass% or mass ppm of C: 0.08% or less, Si: 2.0% to 4.5%, Mn: 0.50% or less, acid-soluble Al: 20 ppm to 120 ppm, S: less than 50 ppm, and N: 80 ppm or less, with the content of Se, Te, and O each suppressed to less than 50 ppm, and the remainder consisting of Fe and unavoidable impurities, to produce a slab with a thickness of 80 mm to 150 mm, Subsequently, before the surface temperature of the slab falls below 850°C, a heating step is performed in which the slab is heated using a heating device for a heating time of 5 minutes or more and 25 minutes or less, and the maximum temperature reached on the surface of the slab is 1100°C or more and 1290°C or less. Subsequently, in all passes where the reduction schedule is between 2 and 5 passes, and the reduction ratio per pass exceeds 20.0%, the strain rate is 0.30 s. -1 Under the above conditions, a hot rough rolling process is performed on the slab to obtain a sheet bar with a thickness of 8 mm or more and 60 mm or less. Subsequently, a hot finish rolling process is performed on the sheet bar under the conditions that the surface temperature of the sheet bar at the start of hot finish rolling is 900°C or higher and 1100°C or lower, and the reduction schedule is 3 passes or higher and 7 passes or lower, in order to obtain a hot-rolled sheet with a thickness of 1.3 mm or higher and 3.5 mm or lower. Within 200 seconds after the completion of the hot finish rolling, the hot-rolled sheet is cooled under conditions that the surface temperature of the hot-rolled sheet is 650°C or lower. A method for manufacturing hot-rolled sheets for grain-oriented electrical steel sheets.
[0020] [2] The final pass of the hot finish rolling has a reduction ratio of 5.0% or more and 50.0% or less, and a strain rate of 50.0 s. -1 A method for manufacturing a hot-rolled sheet for grain-oriented electrical steel sheets as described in [1] above, carried out under the above conditions.
[0021] [3] The method for manufacturing a hot-rolled sheet for grain-oriented electrical steel sheets according to [1] or [2] above, wherein the heating step is carried out in a non-oxidizing atmosphere with an oxygen concentration of 3.0 volume% or less.
[0022] [4] The heating step is A first heating step is performed using a first heating device to raise the surface temperature of the slab to 950°C or higher and 1150°C or lower. Subsequently, a second heating step is performed in which a second heating device, different from the first heating device, is used as the heating device to raise the surface temperature of the slab to the maximum temperature achieved, A method for manufacturing a hot-rolled sheet for grain-oriented electrical steel sheets according to any one of the above [1] to [3], comprising:
[0023] [5] The method for manufacturing a hot-rolled sheet for grain-oriented electrical steel sheets according to [4] above, wherein the first heating device is a tunnel furnace and the second heating device is an induction heating device.
[0024] [6] The above component composition is further expressed in mass% as follows: Ni: 1.500% or less, Sn: 0.500% or less, Sb: 0.500% or less, Cu: 0.500% or less, P: 0.500% or less, Cr: 1.500% or less, Mo: 0.500% or less, B: 0.0200% or less, Nb: 0.0100% or less, Co: 0.0100% or less, Ti: 0.0200% or less, Zn: 0 A method for producing a hot-rolled sheet for grain-oriented electrical steel sheets according to any one of the above [1] to [5], comprising one or more selected from the group consisting of 0.0500% or less, Bi: 0.0200% or less, W: 0.0030% or less, Pb: 0.0300% or less, Ga: 0.0100% or less, Ge: 0.0300% or less, As: 0.0300% or less, and Ag: 0.0300% or less.
[0025] [7] A method for manufacturing a hot-rolled sheet for grain-oriented electrical steel sheets as described in any one of the above items [1] to [6], An optional step of annealing the hot-rolled sheet, Subsequently, the hot-rolled sheet is subjected to cold rolling once or two or more times with an intermediate annealing in between to obtain a cold-rolled sheet. The process of decarburizing and annealing the cold-rolled sheet to obtain a decarburized annealed sheet, An optional step of performing a nitriding treatment on the cold-rolled sheet during the decarburization annealing process, or on the decarburized annealed sheet after the decarburization annealing process, Subsequently, the decarburized annealed plate is treated with an annealing separating agent and then subjected to finish annealing. A method for manufacturing grain-oriented electrical steel sheets.
[0026] [8] A continuous casting machine that continuously casts molten steel having the component composition described in [1] or [6] above to produce slabs with a thickness of 80 mm or more and 150 mm or less, A heating device for heating the slab is provided, which is controlled such that the heating time is 5 minutes or more and 25 minutes or less, and the maximum temperature reached on the surface of the slab is 1100°C or more and 1290°C or less, before the surface temperature of the slab falls below 850°C. For a reduction schedule of 2 to 5 passes, and where the reduction ratio per pass exceeds 20.0%, the strain rate is 0.30 s in all passes. -1A hot rough rolling mill that performs hot rough rolling on the slab under the above conditions to obtain a sheet bar with a thickness of 8 mm or more and 60 mm or less, A hot finishing rolling mill that performs hot finishing rolling on the sheet bar to obtain a hot-rolled sheet with a thickness of 1.3 mm to 3.5 mm, under the conditions that the surface temperature of the sheet bar at the start of hot finishing rolling is 900°C or more and 1100°C or less, and the reduction schedule is 3 passes or more and 7 passes or less. Within 200 seconds after the completion of the hot finish rolling, a cooling device is provided to cool the hot-rolled sheet under the condition that the surface temperature of the hot-rolled sheet becomes 650°C or lower. A row of manufacturing equipment for hot-rolled sheets of grain-oriented electrical steel, arranged in order.
[0027] [9] The final pass of the hot finishing rolling mill has a reduction ratio of 5.0% or more and 50.0% or less, and a strain rate of 50.0 s. -1 A set of manufacturing equipment for hot-rolled sheets for grain-oriented electrical steel sheets as described in [8] above, having the rolling capacity described above.
[0028]
[10] The heating device is a production equipment array for hot-rolled sheets for grain-oriented electrical steel sheets as described in [8] or [9] above, which heats the slab in a non-oxidizing atmosphere with an oxygen concentration of 3.0 volume% or less.
[0029]
[11] The heating device is A first heating device that performs a first heating step to raise the surface temperature of the slab to 950°C or higher and 1150°C or lower, Subsequently, a second heating device, different from the first heating device, is used to perform a second heating step in which the surface temperature of the slab is brought to the maximum temperature reached. A series of manufacturing equipment for hot-rolled sheets for grain-oriented electrical steel sheets, as described in any one of the above [8] to
[10] , having the following:
[0030]
[12] A production equipment array for hot-rolled sheets for grain-oriented electrical steel sheets as described in
[11] above, wherein the first heating device is a tunnel furnace and the second heating device is an induction heating device.
[0031]
[13] A production line of hot-rolled sheets for grain-oriented electrical steel sheets according to any one of the above [8] to
[12] , comprising a third heating device for heating the sheet bar between the hot roughing mill and the hot finish rolling mill.
[0032]
[14] A hot-rolled sheet for grain-oriented electrical steel manufactured by the method for manufacturing a hot-rolled sheet for grain-oriented electrical steel described in any one of the above items [1] to [6], wherein the average particle size of the recrystallized grains in the surface layer up to 1 / 5 of the thickness from the surface is 500 μm or less. [Effects of the Invention]
[0033] The present invention can solve both the problem caused by the non-uniformity of the microstructure during slab reheating, which is likely to occur in the inhibitorless method, and the problem of having to perform hot rolling at extremely high temperatures in the continuous casting and hot rolling process.
[0034] In other words, according to the method for manufacturing hot-rolled sheets for grain-oriented electrical steel sheets and the manufacturing equipment array of the present invention, it is possible to manufacture hot-rolled sheets suitable for the production of grain-oriented electrical steel sheets with stable magnetic properties by using a component composition that conforms to the inhibitorless method and carrying out the process from casting molten steel to manufacturing hot-rolled sheets using a series of equipment arrays in a continuous process. [Brief explanation of the drawing]
[0035] [Figure 1] This is a schematic diagram showing a production equipment array 100 for hot-rolled sheets for grain-oriented electrical steel sheets according to one embodiment of the present invention. [Modes for carrying out the invention]
[0036] [Manufacturing method for hot-rolled sheets for grain-oriented electrical steel sheets] A method for manufacturing a hot-rolled sheet for grain-oriented electrical steel according to one embodiment of the present invention comprises the steps of: continuously casting molten steel having a predetermined component composition to produce a slab; then heating the slab under predetermined conditions before the surface temperature of the slab falls below a predetermined value; then hot rough rolling step of hot rough rolling the slab under predetermined conditions to obtain a sheet bar; then hot finish rolling step of hot finish rolling the sheet bar under predetermined conditions to obtain a hot-rolled sheet; and then cooling the hot-rolled sheet under predetermined conditions.
[0037] (Composition of molten steel and slabs) First, we will explain the component composition of molten steel and slabs. Unless otherwise specified, "%" in the component notation means mass percent. Similarly, unless otherwise specified, "ppm" notation means mass ppm.
[0038] C: 0.08% or less If carbon (C) remains in the final product sheet, it causes magnetic aging and leads to magnetic degradation. If the carbon content in the molten steel and slab is excessive, the load in the decarburization process becomes high, and the carbon content in the final product sheet cannot be sufficiently reduced. Therefore, the carbon content in the molten steel and slab should be 0.08% or less. On the other hand, carbon has the function of suppressing grain coarsening during hot rolling and improving the microstructure before cold rolling. Furthermore, in cold rolling, carbon improves the texture after primary recrystallization through interaction with dislocations. From this viewpoint, a carbon content of 0.01% or more is preferable.
[0039] Si: 2.0% or more and 4.5% or less Si is an element that reduces iron loss by increasing electrical resistance. From the perspective of obtaining this effect, the Si content should be 2.0% or more. On the other hand, if the Si content is too high, cold rolling becomes extremely difficult, so the Si content should be 4.5% or less.
[0040] Mn: 0.50% or less If the Mn content is excessive, the primary recrystallization texture deteriorates, making it difficult to obtain secondary recrystallized grains that are highly concentrated in the Goss orientation. From this viewpoint, the Mn content should be 0.50% or less. On the other hand, Mn is an element that improves hot workability. From the viewpoint of obtaining this effect, it is preferable that the Mn content be 0.01% or more.
[0041] Acid-soluble Al: 20ppm or more and 120ppm or less Since this embodiment relates to an inhibitor-less method, the content of Al, which is an inhibitor-forming component, needs to be reduced as much as possible. From this viewpoint, the Al content is set to 120 ppm or less. When applying the inhibitor-less method, if only secondary recrystallization is considered, Al is not necessarily required. However, Al has the effect of reducing O, which is an impurity, during the refining stage of molten steel, and during secondary recrystallization annealing, it can form a dense Al2O3 film on the surface, reducing the effects of nitriding from the atmosphere. For this reason, the Al content is set to 20 ppm or more.
[0042] S: less than 50 ppm, N: 80 ppm or less Since this embodiment relates to an inhibitor-free method, the content of inhibitor-forming components, S and N, must be reduced as much as possible. If the S and N content is excessive, precipitation is more likely to occur in the continuous casting and hot rolling process, resulting in a non-uniform microstructure. Therefore, the S content should be less than 50 ppm and the N content should be 80 ppm or less. The lower limit for the S and N content is preferably 0 ppm. However, it is difficult to completely remove S and N, and extreme reductions in S and N lead to a significant increase in manufacturing costs. From the viewpoint of manufacturing costs, the S content is preferably 10 ppm or more and the N content is preferably 20 ppm or more.
[0043] Se, Te, and O: less than 50 ppm each If the content of Se and Te is excessive, sediments and tetraids are formed, making secondary recrystallization difficult. These elements are known to segregate at the center during casting. In this invention, where hot rolling is performed immediately after casting without reheating the slab, Se and Te may remain as coarse precipitates in the center of the cast slab, reducing ductility during subsequent cold rolling and causing the steel sheet to become brittle. Therefore, the content of Se and Te should be less than 50 ppm each, preferably 30 ppm or less. In addition, since O forms oxides and remains as inclusions in the final product, degrading magnetic properties, the O content needs to be kept below 50 ppm. The content of Se, Te, and O may be 0 ppm.
[0044] The remainder of the components other than those listed above consists of Fe and unavoidable impurities. Unavoidable impurities are impurities that are inevitably mixed in from raw materials, manufacturing processes, or manufacturing equipment, and are permissible to be included in a range that does not hinder the purpose of the present invention. Examples of raw materials include iron ore, reduced iron, or scrap. Examples of unavoidable impurities include elements that are mixed in unintentionally. These elements may be inevitably present in amounts of approximately 0.010% or less. Furthermore, for the purpose of further improving performance, the component composition of the molten steel and slab may optionally contain the following elements.
[0045] Ni: 1.500% or less Ni has the effect of improving magnetic properties by increasing the uniformity of the hot-rolled sheet structure. On the other hand, if the Ni content is too high, secondary recrystallization becomes unstable, and the magnetic properties deteriorate. Therefore, when Ni is included, the Ni content should be 1.500% or less. From the viewpoint of obtaining the above effect from Ni addition, it is preferable that the Ni content be 0.005% or more.
[0046] Sn: 0.500% or less Sb: 0.500% or less Cu:0.500% or less Sn, Sb, and Cu are elements that can sometimes be considered auxiliary inhibitors through grain boundary segregation, and may be useful in inhibitor-less methods that do not actively utilize inhibitors from precipitates. On the other hand, if the content of these elements is excessive, the possibility of secondary recrystallization failure increases. Therefore, when these elements are included, their content should be 0.500% or less each. From the viewpoint of obtaining the effects of adding these elements, it is preferable that the Sn content be 0.001% or more, the Sb content be 0.005% or more, and the Cu content be 0.010% or more. It is more preferable that the Sn content be 0.010% or more.
[0047] P:0.500% or less Cr:1.500% or less P and Cr have the effect of improving the forsterite film formation reaction. On the other hand, if the content of these elements is too high, the forsterite film formation may be accelerated too much, potentially causing the film to peel off. Therefore, when including these elements, the P content should be 0.500% or less and the Cr content should be 1.500% or less. From the viewpoint of obtaining the above effects from the addition of these elements, it is preferable that the P content be 0.005% or more and the Cr content be 0.010% or more.
[0048] Mo: 0.500% or less B: 0.0200% or less Nb: 0.0100% or less Mo, B, and Nb all contribute to inhibiting grain growth, improving texture, and stabilizing secondary recrystallization. On the other hand, if the content of these elements is excessive, they precipitate and function as strong inhibitors, which is undesirable in the inhibitor-less method. Therefore, when these elements are included, the Mo content should be 0.500% or less, the B content 0.0200% or less, and the Nb content 0.0100% or less. A B content of 0.0050% or less is more preferable. From the viewpoint of obtaining the above effects from the addition of these elements, it is preferable that the Mo content be 0.005% or more, the B content 0.0001% or more, and the Nb content 0.0005% or more. A Mo content of 0.010% or more is more preferable.
[0049] Co:0.0100% or less Ti:0.0200% or less Zn: 0.0500% or less Bi:0.0200% or less W: 0.0030% or less Pb:0.0300% or less Ga: 0.0100% or less Ge: 0.0300% or less As: 0.0300% or less Ag: 0.0300% or less Co, Ti, Zn, Bi, W, Pb, Ga, Ge, As, and Ag are grain boundary segregation elements that suppress grain growth and grain boundary movement, thereby enhancing magnetic properties. On the other hand, if the content of these elements is excessive, they may precipitate as carbides, nitrides, or oxides in the steel, or they may precipitate as elemental metals without being able to maintain a solid solution state with the steel, potentially leading to a deterioration of the final magnetic properties. Therefore, when these elements are included, their content should be below the above upper limit. A Ti content of 0.0050% or less is more preferable. From the viewpoint of obtaining the above effects from the addition of these elements, it is preferable that the content of these elements be above the above lower limit. A Ti content of 0.0010% or more, a Bi content of 0.0050% or more, and Pb, Ge, As, and Ag content of 0.0010% or more each are more preferable.
[0050] (Casting process) In this embodiment, molten steel having the above-described component composition is first continuously cast to produce slabs with a thickness of 80 mm to 150 mm. With a component composition that does not contain inhibitors, excessive grain growth may occur during hot rolling following casting, during transport, and during waiting periods after processing. By optimizing the slab thickness, it becomes possible to achieve sufficient microstructure control during subsequent hot rolling. The effect is easier to obtain with thicker slabs, but in terms of manufacturing, it is extremely difficult to directly roll slabs cast to a thickness exceeding 150 mm. Therefore, the slab thickness is set to 150 mm or less. Furthermore, if the slab thickness is less than 80 mm, it is not possible to set a sufficient reduction ratio during hot rough rolling, and the effect of suppressing microstructure deterioration cannot be obtained. Therefore, the slab thickness is set to 80 mm or more.
[0051] (Heating process) Next, the slab obtained in the casting process is subjected to the heating process directly, i.e., in a continuous process. In the heating process, the slab is heated using a heating device under the conditions that the heating time is between 5 and 25 minutes, and the maximum temperature reached on the slab surface is between 1100°C and 1290°C, before the temperature of the slab surface falls below 850°C. Note that "temperature of the slab surface" in the heating process refers to the temperature of the entire portion of the slab's upper and lower surfaces, excluding the area within 100 mm from both ends in the width direction of the slab towards the center in the width direction. This is because the ends in the width direction of the slab are cooled and heated not only from the upper and lower surfaces but also from the sides, and therefore often do not represent the typical temperature of the slab surface.
[0052] If this type of heating is not performed, the slab temperature will gradually decrease after casting until the start of hot rough rolling. In this case, the driving force for precipitation will gradually increase, and trace amounts of precipitate-forming elements may form precipitates. To avoid this gradual increase in the driving force for precipitation, the slab is heated from the surrounding area to suppress unwanted precipitation.
[0053] Surface temperature of the slab at the start of the heating process: 850°C or higher In this embodiment, since a component composition following the inhibitorless method is adopted, if the surface temperature of the slab is low, specifically 850°C or higher, it is possible to maintain a state of complete solid solution or a state in which precipitation does not progress for a certain period of time. In a continuous casting and hot rolling process, the ability to cool the slab to a low temperature is a major advantage. If the surface temperature of the slab at the start of the heating process exceeds 1200°C, cooling from the slab surface is insufficient, and breakout may occur, where the unsolidified molten steel in the center of the slab breaks through the surface (solidified layer) and flows out. Therefore, it is preferable to keep the surface temperature of the slab at the start of the heating process below 1200°C. On the other hand, if the surface temperature of the slab at the start of the heating process is below 850°C, it becomes extremely difficult to maintain a state of complete solid solution of trace amounts of precipitated elements. As a result, this can affect the grain growth suppression force and become a cause of poor secondary recrystallization. Furthermore, excessive energy is required to carry out the subsequent hot rolling at the appropriate temperature, and the advantages of a continuous process cannot be enjoyed. Therefore, the surface temperature of the slab at the start of the heating process shall be 850°C or higher.
[0054] Heating time: 5 minutes to 25 minutes, and the maximum temperature reached on the slab surface: 1100°C to 1290°C. Generally, it is difficult to perform casting at high speeds, so in processes that involve continuous casting followed by hot rough rolling, a certain amount of time is often required before hot rough rolling can begin. When it takes more than 10 minutes from the start of casting to hot rough rolling, precipitate-forming elements that inevitably get mixed in sometimes precipitate in the form of nitrides, sulfides, etc. While this problem does not necessarily occur in all slabs, it tended to occur more often when scrap was used as the iron source. To avoid the precipitation of unavoidable impurity elements, it was effective to heat the slab for 5 to 25 minutes before hot rough rolling, until the surface temperature of the slab reached between 1100°C and 1290°C.
[0055] If the heating time is less than 5 minutes, phenomena such as precipitation and solid solution require a certain amount of time to occur, resulting in an inability to obtain a stable effect and ultimately leading to a deterioration of the magnetic properties. Therefore, the heating time should be 5 minutes or more, preferably 8 minutes or more. On the other hand, if the heating time exceeds 25 minutes, it leads to coarsening of the crystal grain size and ultimately leads to a deterioration of the magnetic properties. Therefore, the heating time should be 25 minutes or less, preferably 20 minutes or less. Note that "heating time" refers to the time during which heat is applied to the slab by the heating device. If the heating device is a tunnel furnace, it refers to the time the slab is inside the tunnel furnace. If the heating device is an induction heating device, it refers to the time the slab is under the influence of the magnetic field of the induction heating device.
[0056] If the maximum temperature reached on the slab surface during the heating process is less than 1100°C, the uneven temperature distribution during casting will be reflected, resulting in the partial precipitation of unavoidable impurity elements. This will cause uneven grain size during primary recrystallization, making secondary recrystallization impossible. Therefore, the maximum temperature reached should be 1100°C or higher. On the other hand, if the maximum temperature reached exceeds 1290°C, breakout may occur during hot rough rolling. Furthermore, the homogenization of the precipitation state is excessive, resulting in excessively low deformation resistance and making it difficult to control the shape after rolling. Therefore, the maximum temperature reached should be 1290°C or lower, preferably 1250°C or lower.
[0057] The heating process is preferably carried out in a non-oxidizing atmosphere with an oxygen concentration of 3.0 volume% or less. This is because if the oxygen concentration in the atmosphere is high, carbon in the steel will be decarburized as CO by the oxygen in the atmosphere at the slab surface, promoting the coarsening of the columnar crystal structure near the surface and causing Hege defects. The oxygen concentration may be 0.0 volume%. The non-oxidizing atmosphere is not particularly limited and may consist of one or more selected from the group consisting of carbon-based combustion gases, ammonia-based combustion gases, and inert gases such as N2 and Ar, which are by-products of steel mills. In particular, when using carbon-based combustion gases or ammonia-based combustion gases, which are by-products of steel mills, oxygen or air is introduced to generate the combustion gas, but it is preferable that the amount of unreacted oxygen in the total gas volume, including CO, CO2, NO, NO2, etc. after the combustion reaction, be 3.0 volume% or less.
[0058] In this process, since the slabs are continuously supplied to the next process, it is preferable to use an open furnace such as a tunnel furnace. When an open furnace is used, the atmosphere inside the furnace is greatly affected by the atmosphere, but by using methods such as sealing gas, the oxygen concentration inside the furnace can be reduced to 3.0 volume% or less, creating a non-oxidizing atmosphere and suppressing decarburization from the slab surface. If a more airtight structure can be applied, atmosphere control will be easier.
[0059] Two-stage heating Preferably, the heating process includes a first heating step in which a first heating device is used to raise the surface temperature of the slab to 950°C or higher and 1150°C or lower, and a second heating step in which a second heating device different from the first heating device is used to raise the surface temperature of the slab to a maximum temperature of 1100°C or higher and 1290°C or lower. This allows the heating rate of the first heating step and the second heating step to be controlled individually. In the case of two-stage heating, a heating time of 5 minutes or more and 25 minutes or less refers to the total heating time of the first heating step and the second heating step.
[0060] During the heating process, when the surface temperature of the slab exceeds 1100°C, the oxides on the surface begin to liquefy, and when the temperature exceeds 1150°C, almost the entire surface of the slab becomes covered with liquid-phase scale. This liquid-phase scale can be a cause of velvet defects. Therefore, in the second heating process, which aims for a maximum temperature of 1100°C to 1290°C, it is preferable to use an induction heating device capable of rapid heating. For example, it is preferable to use a tunnel furnace for the first heating process and an induction heating device for the second heating process. By making the second heating process rapid, grain growth, which tends to progress especially in the high-temperature range, can be suppressed, and texture degradation caused by coarse grains can be more effectively suppressed, and as a result, velvet defects can also be suppressed.
[0061] (Hot rough rolling process) Next, the slab is subjected to hot rough rolling under predetermined conditions to obtain a sheet bar.
[0062] Pressure reduction schedule: 2 to 5 passes Hot rough rolling should be performed in two or more passes. When the slab is relatively thick, there may be residual unsolidified molten steel in the center of the slab. For this reason, it is preferable to force the solidified parts into contact in the first pass of hot rough rolling. After that, the hot-rolled structure can be developed in the second and subsequent passes. On the other hand, if the number of hot rough rolling passes is excessive, the reduction ratio per pass will decrease, which will reduce the recrystallization rate and deteriorate the texture. Therefore, hot rough rolling should be performed in five passes or less.
[0063] In all passes where the reduction ratio per pass exceeds 20.0%, the strain rate is 0.30 s. -1 That's all. In hot rough rolling, dislocations are introduced by severely working the microstructure (under high pressure and high strain rate), thereby introducing new recrystallization nuclei, suppressing crystal coarsening, and maintaining uniform grain size. For this reason, in this embodiment, at least one pass with a reduction ratio of more than 20.0% per pass (hereinafter referred to as the "specific pass") is provided, and in all specific passes, the strain rate is set to 0.30 s. -1It is important that the above condition is satisfied. This enables production of a grain-oriented electrical steel sheet having favorable magnetic properties.
[0064] The specified pass only needs to be at least one pass among 2 to 5 passes of rough hot rolling, and all passes may be specified passes. The reduction ratio of the specified pass exceeds 20.0%, and the upper limit thereof is not particularly limited. However, rolling at an excessively high reduction ratio imposes a great burden on equipment. Therefore, from the viewpoint of equipment protection and stable production, the reduction ratio of the specified pass is preferably 60.0% or less.
[0065] The strain rate of the specified pass is 0.30 s -1 or higher, and the upper limit thereof is not particularly limited. However, from the viewpoint of equipment specifications, the strain rate of the specified pass is generally approximately 100 s -1 or lower.
[0066] The strain rate ε is calculated using the following Ekelund's formula.
Mathematical formula
[0067] Sheet bar thickness: 8 mm or more and 60 mm or less If rough hot rolling is attempted until the sheet bar thickness is less than 8 mm, it is difficult to secure a sufficient reduction ratio during finish hot rolling, which becomes a factor causing texture degradation. Therefore, the sheet bar thickness is set to 8 mm or more. On the other hand, when the sheet bar thickness exceeds 60 mm, it is difficult to secure a sufficient reduction ratio in rough hot rolling, which similarly becomes a factor causing texture degradation. Therefore, the sheet bar thickness is set to 60 mm or less.
[0068] (Optional heating step) Hot rough rolling is performed under high pressure and high strain rate to introduce dislocations. These dislocations function as nuclei for recrystallization and also as nuclei for precipitate formation. Therefore, precipitate-forming elements, even in trace amounts, are not completely absent and are prone to precipitation after hot rough rolling. If the starting temperature for the subsequent finish rolling is below 900°C, unwanted precipitation progresses, and its dispersion becomes uneven, affecting even secondary recrystallization. In a continuous casting and hot rolling process, the sheet feeding speed is slow, and it may be difficult to control the temperature appropriately. In particular, as the thickness decreases due to hot rough rolling, the temperature drop becomes significant, making it difficult to maintain the target temperature. Therefore, in order to achieve the desired starting temperature for finish rolling, a heating step to heat the sheet bar may be added between the hot rough rolling process and the hot finish rolling process as needed.
[0069] (Hot finishing rolling process) Next, the sheet bar is subjected to hot finish rolling under predetermined conditions to obtain a hot-rolled sheet. In the hot finish rolling process, the temperature is relatively low, and dislocations are introduced into the steel sheet. Since dislocations function as nuclei for precipitation, the precipitation of precipitate-forming elements may progress. By setting a specific temperature and reduction schedule, unwanted precipitation can be suppressed and a uniform state can be maintained.
[0070] Surface temperature of the sheet bar at the start of hot finish rolling (hot finish rolling start temperature): 900°C to 1100°C If the starting temperature for hot finish rolling is below 900°C, the introduction of strain during hot finish rolling makes precipitation more likely. Unwanted precipitation acts as a local grain growth inhibitory force, leading to non-uniform grain size during primary recrystallization, and causing deterioration of the texture and poor secondary recrystallization. Therefore, the starting temperature for hot finish rolling should be 900°C or higher, preferably 950°C or higher. On the other hand, if the starting temperature for hot finish rolling exceeds 1100°C, dislocations are introduced and then recover, resulting in insufficient strain introduction, which leads to deterioration of the texture and failure to obtain good magnetic properties. Therefore, the starting temperature for hot finish rolling should be 1100°C or lower, preferably 1080°C or lower.
[0071] Depression schedule: 3 to 7 passes If the number of hot finish rolling passes is less than 3, the reduction per pass becomes too large, increasing the risk of edge cracking at the edges of the hot-rolled sheet. Therefore, the number of hot finish rolling passes should be 3 or more. On the other hand, if the number of hot finish rolling passes exceeds 7, the reduction ratio per pass becomes too low, resulting in insufficient strain being introduced by the hot finish rolling, leading to a decrease in the recrystallization rate, which causes deterioration of the texture. Therefore, the number of hot finish rolling passes should be 7 or less, preferably 6 or less.
[0072] Thickness of hot-rolled sheet: 1.3 mm to 3.5 mm In controlling the microstructure of grain-oriented electrical steel sheets, the reduction ratio during cold rolling is an extremely important factor. If hot-rolled sheets are hot-finished to a thickness of less than 1.3 mm, the reduction ratio during cold rolling cannot be properly maintained, leading to deterioration of the texture. Therefore, the thickness of hot-rolled sheets should be 1.3 mm or more. On the other hand, if the thickness of hot-rolled sheets exceeds 3.5 mm, the reduction ratio during cold rolling cannot be properly maintained, also leading to deterioration of the texture. Therefore, the thickness of hot-rolled sheets should be 3.5 mm or less.
[0073] Final pass: Reduction ratio between 5.0% and 50.0%, and strain rate of 50.0 s. -1 The above (preferred conditions) By ensuring a sufficient reduction ratio in the final pass of hot finish rolling, dislocations are retained in the steel, increasing the recrystallization rate during subsequent annealing processes. This improves the texture during primary recrystallization. Therefore, a reduction ratio of 5.0% or more in the final pass is preferable, and more preferably 20.0% or more. By preventing excessive reduction in the final pass, defects such as cracking of the edges during hot finish rolling can be suppressed. Therefore, a reduction ratio of 50.0% or less in the final pass is preferable, and more preferably 45.0% or less. Furthermore, increasing the strain rate in the final pass reduces the time required for the introduced dislocations to recover, further enhancing the effect of retaining dislocations in subsequent processes. Therefore, a strain rate of 50.0s in the final pass is preferable. -1The above is preferable. There is no particular upper limit to the strain rate of the final pass. However, from the viewpoint of equipment specifications, the strain rate of the final pass is generally 500 s. -1 The following is generally true.
[0074] (cooling process) Next, within 200 seconds after the completion of hot finish rolling, the hot-rolled sheet is cooled under conditions that the surface temperature of the hot-rolled sheet is 650°C or lower. After hot finish rolling, the dislocation density becomes even higher than after hot rough rolling, making it easier for precipitates to form. If the cooling time from the end of hot finish rolling until the surface temperature of the hot-rolled sheet reaches 650°C is 200 seconds or less, the non-uniform precipitation of precipitate-forming elements caused by unavoidable impurities can be suppressed. The lower limit of this cooling time is not particularly limited, and cooling may be started immediately after the completion of hot finish rolling if there are no constraints on the equipment configuration.
[0075] (Winding process) Next, the hot-rolled sheet can be wound up to obtain a hot-rolled coil.
[0076] [Hot-rolled sheet for grain-oriented electrical steel sheet] A hot-rolled sheet for grain-oriented electrical steel according to one embodiment of the present invention is a hot-rolled sheet manufactured by the above-described manufacturing method. The component composition of the hot-rolled sheet of this embodiment is the same as the component composition of the slab described above, and therefore that description shall be applied accordingly.
[0077] In this embodiment, the hot-rolled sheet has an average particle size of recrystallized grains of 500 μm or less in the surface layer up to 1 / 5 of its thickness, preferably between 30 μm and 300 μm. By performing hot-rolled sheet annealing (optional process), cold rolling, decarburization annealing, and finish annealing (secondary recrystallization annealing) on such a hot-rolled sheet, it is possible to manufacture grain-oriented electrical steel sheets with good magnetic properties.
[0078] The "average grain size of recrystallized grains" in a hot-rolled sheet shall be determined by the following method. First, the surface layer from the surface to 1 / 5 of the thickness is observed using an optical microscope in a cross-section perpendicular to the rolling direction of the hot-rolled sheet. The observation field of view shall be 1 mm for each of the two surface layers on the front and back.2 Then, the average equivalent diameter of the recrystallized grains is determined from the total area and total number of recrystallized grains present within the observation field, and this is defined as the "average grain size of the recrystallized grains".
[0079] Furthermore, the hot-rolled sheet of this embodiment avoids the uneven precipitation of trace components that cause secondary recrystallization defects during the continuous process from casting to hot rolling, thus possessing sufficient properties as a base material for inhibitor-free grain-oriented electrical steel sheets. In other words, by employing the manufacturing method of this embodiment, the value obtained by dividing the precipitated Al content by the acid-soluble Al content can be set to 0.25 or less. A lower value is preferable, and it may be 0.00 or higher.
[0080] The content of precipitated aluminum will be quantified by removing the surface layer from the hot-rolled sheet up to 1 / 4 of its thickness, using the remaining central part of the sheet as a test specimen, electrolyzing the specimen with a 10% AA-based electrolyte (acetylacetone), filtering, and extracting the residue, and then analyzing the aluminum content of the resulting residue. The content of acid-soluble aluminum will be the value obtained by conventional wet analysis.
[0081] Furthermore, while the content of other inhibitor-forming elements such as S, Se, and Te is preferably 0 ppm, even if they are not completely removed and remain, a uniform precipitation state can be achieved in which the average precipitate particle size of these elements (MnS, MnSe, MnTe) is 80 nm or less.
[0082] [Manufacturing method for grain-oriented electrical steel sheets] In a method for manufacturing grain-oriented electrical steel sheets according to one embodiment of the present invention, a hot-rolled sheet for grain-oriented electrical steel sheets obtained by the above method is used, hot-rolled sheet annealing is performed as needed, followed by one or two or more cold-rolling processes with an intermediate annealing in between, and then decarburization annealing and finish annealing to produce a finished steel sheet.
[0083] First, the hot-rolled sheet is annealed as needed. From the viewpoint of improving magnetic properties, it is desirable to perform hot-rolled sheet annealing. In this case, it is preferable that the soaking temperature during hot-rolled sheet annealing be 850°C or higher so that recrystallization occurs. There is no particular upper limit to the soaking temperature. However, in order to suppress deterioration of surface quality due to pickup, it is preferable that the soaking temperature be 1200°C or lower. There is no particular limit to the holding time at the soaking temperature (soaking time), but from the viewpoint of improving magnetic properties, it is preferable to be 10 seconds or more, and in order to suppress deterioration of surface quality due to pickup, it is preferable to be 240 seconds or less.
[0084] Subsequently, the hot-rolled sheet is subjected to cold rolling once or two or more times with an intermediate annealing in between to obtain a cold-rolled sheet. This cold rolling includes not only general cold rolling performed at room temperature, but also warm rolling in which the temperature of the hot-rolled sheet is raised to a temperature higher than room temperature, for example, between 100°C and 300°C.
[0085] From the viewpoint of improving the microstructure, the soaking temperature in intermediate annealing is preferably 900°C or higher, and more preferably 1000°C or higher. Furthermore, to suppress deterioration of surface quality due to picking, the soaking temperature is preferably 1200°C or lower. From the viewpoint of improving the microstructure, the holding time at the soaking temperature in intermediate annealing is preferably 30 seconds or higher, and more preferably 60 seconds or higher. Furthermore, to suppress deterioration of surface quality due to picking, the holding time at the soaking temperature is preferably 240 seconds or lower.
[0086] Subsequently, the cold-rolled sheet is subjected to decarburization annealing to obtain a decarburized annealed sheet. This decarburization annealing is also called primary recrystallization annealing. That is, the primary purpose of this annealing is to primary recrystallize the cold-rolled sheet having a rolled structure and adjust it to the primary recrystallized grain size that is optimal for secondary recrystallization. The second purpose of this annealing is to decarburize the carbon contained in the steel by using a wet hydrogen nitrogen or wet hydrogen argon atmosphere with a dew point of 40°C to 70°C, and at the same time form an oxide film on the surface by the above annealing atmosphere. For this reason, it is desirable that the annealing temperature (holding temperature) for decarburization annealing be in the temperature range of approximately 800°C to less than 950°C. The holding time at the annealing temperature is preferably 30 seconds to 300 seconds. Furthermore, to further improve the texture, it is effective to increase the heating rate during the heating process of decarburization annealing. Specifically, improvement can be expected by setting the heating rate between 500°C and 700°C to 80°C / s or more.
[0087] Nitriding treatment may be applied to the cold-rolled sheet during decarburization annealing, or to the decarburized annealed sheet after decarburization annealing. Nitriding treatment can increase the amount of nitride precipitates, particularly near the surface layer of the steel sheet where nitrogen is supplied from an external source, and can further improve the non-uniformity of the precipitates. The nitriding treatment can be performed using the conventional method used for grain-oriented electrical steel sheets. Methods for performing nitriding treatment during decarburization annealing include, for example, performing the decarburization annealing hold in a humid hydrogen-nitrogen atmosphere (e.g., 75% H2 + 25% N2), and after hold, blowing ammonia gas onto the steel sheet while maintaining that atmosphere, or introducing the sheet into a mixed gas atmosphere of hydrogen, nitrogen, and ammonia after hold. Methods for performing nitriding treatment after decarburization annealing include cooling the sheet to room temperature, then raising the temperature again to 400°C to 900°C and annealing it with a mixed gas of hydrogen, nitrogen, and ammonia.
[0088] Next, an annealing separator is applied to the surface of the decarburized annealed sheet. Magnesia (MgO) can be used as the main component of the annealing separator to form a forsterite film on the surface of the steel sheet after finish annealing. At this time, adding an appropriate amount of Ti oxide or Sr compound to the separator can further facilitate the formation of the forsterite film. In particular, the addition of an auxiliary agent that promotes uniform forsterite film formation is also advantageous for improving the peeling characteristics of the film. The method of applying the annealing separator is not particularly limited, and methods such as applying a solution in which the annealing separator is dissolved in a solvent, or attaching a sheet of the annealing separator that has been prepared in advance, can be used as appropriate.
[0089] Next, finish annealing is performed for secondary recrystallization and forsterite film formation. The annealing atmosphere can be N2, Ar, H2, or a mixture of these gases. Since the precipitation of trace components in the final product can lead to a deterioration of magnetic properties, it is preferable to set the maximum annealing temperature to 1100°C or higher and 1280°C or lower, and the soaking time to 3 hours or higher and 50 hours or lower in order to purify the components. Since the grain-oriented electrical steel sheet obtained by this invention exhibits little variation in magnetic properties within the coil, it is desirable to perform finish annealing with coils weighing 5 tons or more, more preferably 10 tons or more, considering economic efficiency.
[0090] After the above-mentioned finish annealing, an insulating coating can be further formed on the surface of the steel sheet. The type of insulating coating is not particularly limited, and any known insulating coating is suitable. For example, a preferred method involves applying a coating solution containing phosphate-chromate-colloidal silica, as described in Japanese Patent Publication No. 50-79442 and Japanese Patent Publication No. 48-39338, to the steel sheet and baking it at around 800°C.
[0091] Regarding the grain-oriented electrical steel sheet obtained as the final product, the composition of the steel sheet base metal after purification during finish annealing, which removes the insulating coating and forsterite coating, is as follows: The composition contains Si: 2.0% to 4.5%, Mn: 0.01% to 0.5%, acid-soluble Al: 10 ppm to less than 60 ppm, and S: 5 ppm to less than 50 ppm, with the content of Se, Te, and O suppressed to less than 50 ppm each. Furthermore, the content of other elements in the steel may decrease depending on the finish annealing conditions, such as being incorporated into the forsterite coating or released into the gas phase, so the concentration will be lower than that of the slab.
[0092] [Manufacturing equipment for hot-rolled sheets for grain-oriented electrical steel sheets] Referring to Figure 1, a production equipment array 100 for hot-rolled sheets for grain-oriented electrical steel according to one embodiment of the present invention comprises a continuous casting machine 10, a heating device 20, a hot roughing mill 30, a hot finishing mill 50, a cooling device 60, and a coiler 70 arranged in order, enabling a continuous casting and hot-rolling process. In the example of Figure 1, the heating device 20 consists of a first heating device 20A, which is a tunnel furnace, and a second heating device 20B, which is an induction heating device located downstream thereof, but the present invention is not limited thereto. Also, in the example of Figure 1, a third heating device 40 for heating sheet bars is arranged between the hot roughing mill 30 and the hot finishing mill 50, but this is an optional piece of equipment.
[0093] The continuous casting machine 10 continuously casts molten steel having the aforementioned component composition to produce slabs with a thickness of 80 mm to 150 mm.
[0094] The heating device 20 heats the slab, and during this process, the heating time is controlled to be between 5 and 25 minutes, and the maximum temperature reached on the slab surface is between 1100 and 1290°C, before the temperature of the slab surface falls below 850°C. The type of heating device 20 is not particularly limited and includes, for example, a tunnel furnace through which the slab can pass, or an induction heating device capable of induction heating the slab.
[0095] The heating device 20 preferably heats the slab in a non-oxidizing atmosphere with an oxygen concentration of 3.0 volume% or less.
[0096] The heating device 20 preferably includes a first heating device 20A that performs a first heating step to raise the surface temperature of the slab to 950°C or higher and 1150°C or lower, and a second heating device 20B that then performs a second heating step to raise the surface temperature of the slab to a maximum temperature of 1100°C or higher and 1290°C or lower. The second heating device 20B is a different piece of equipment from the first heating device 20A. As shown in Figure 1, the first heating device 20A is preferably a tunnel furnace. Since the second heating step is preferably performed by rapid heating, as shown in Figure 1, the second heating device 20B is preferably an induction heating device.
[0097] The hot roughing mill 30 performs a hot roughing process on a slab to obtain a sheet bar with a thickness of 8 mm to 60 mm. The reduction schedule is 2 to 5 passes. In all passes where the reduction ratio per pass exceeds 20.0%, the strain rate of the hot roughing mill 30 is 0.30 s. -1 It is important that the rolling capacity is as described above.
[0098] Preferably, a third heating device 40 for heating the sheet bar is placed between the hot roughing mill 30 and the hot finish rolling mill 50. The type of third heating device 40 is not particularly limited, and examples include a tunnel furnace through which the sheet bar can pass, and an induction heating device that can induction heat the sheet bar. The third heating device 40 makes it easier to adjust the surface temperature of the sheet bar to a desired range at the start of hot finish rolling.
[0099] The hot finishing rolling mill 50 performs a hot finishing rolling process on a sheet bar to obtain a hot-rolled sheet with a thickness of 1.3 mm to 3.5 mm. In this process, the hot finishing rolling mill 50 is positioned so that the surface temperature of the sheet bar at the start of the hot finishing rolling is between 900°C and 1100°C. If it is difficult to set this temperature by positioning the hot finishing rolling mill 50 alone, it is effective to use the third heating device 40.
[0100] The reduction schedule for the hot finishing rolling mill 50 is 3 to 7 passes. Furthermore, the final pass of the hot finishing rolling mill 50 has a reduction ratio of 5.0% to 50.0% and a strain rate of 50.0 s. -1 It is preferable that the rolling capacity is as described above.
[0101] The cooling device 60 cools the hot-rolled sheet under the condition that the surface temperature of the hot-rolled sheet becomes 650°C or lower within 200 seconds after the completion of hot finish rolling. To achieve such rapid cooling, it is preferable that the cooling device 60 has a water cooling mechanism.
[0102] The coiler 70 winds up the hot-rolled sheet discharged from the cooling device 60 to form a hot-rolled coil. [Examples]
[0103] [Example 1] Molten steel having a composition of C:0.06%, Si:3.2%, Mn:0.05%, acid-soluble Al:80ppm, S:20ppm, N:30ppm, Cr:0.030%, and P:0.010%, with the remainder being Fe and unavoidable impurities, was refined. In the laboratory, the casting process, heating process, hot rough rolling process, hot finish rolling process, and cooling process were carried out in succession under the conditions shown in Table 1 to obtain hot-rolled sheets.
[0104] The heating process was carried out in an atmosphere of blast furnace combustion gas (oxygen concentration: 1.8 vol%) and was a single-stage heating process using only the heating furnace. In addition, in the hot rough rolling process, at least one pass (specific pass) with a reduction ratio exceeding 20.0% per pass was provided, and in all specific passes, the strain rate was set to 0.50 s. -1 The above was concluded. In the final pass of the hot finish rolling, the reduction ratio was 30.0% and the strain rate was 105.0 s. -1 The cooling time until the surface temperature of the hot-rolled sheet reached 650°C after the completion of hot finishing rolling was adjusted by controlling the amount of water used.
[0105] A hot-rolled sheet was annealed at a soaking temperature of 1020°C for 40 seconds, scale was removed by pickling, and then cold-rolled to a final thickness of 0.27 mm. This cold-rolled sheet was annealed at 840°C for 150 seconds in a humid atmosphere of 55% H2-45% N2 with a dew point of 60°C for decarburization and primary recrystallization to obtain a decarburized annealed sheet. Subsequently, an annealing separating agent mainly composed of MgO was applied to the surface of the decarburized annealed sheet, and a finish annealing process including a secondary recrystallization process and a purification process was performed at a maximum temperature of 1200°C for 10 hours to obtain a finish annealed sheet. An insulating coating consisting of colloidal silica and aluminum phosphate was applied to the surface of the finish annealed sheet and baked at 800°C to obtain the final grain-oriented electrical steel sheet.
[0106] The magnetic flux density (B8) of the obtained grain-oriented electrical steel sheets was measured in accordance with JIS C2550-1:2011 at an excitation magnetic field of 800 A / m and an excitation frequency of 50 Hz. The obtained magnetic flux density (B8) is shown in Table 1. As is clear from Table 1, good magnetic properties were obtained in the grain-oriented electrical steel sheets manufactured from hot-rolled sheets manufactured under the conditions of the present invention.
[0107] [Table 1]
[0108] [Example 2] Molten steel having a composition of C:0.04%, Si:3.4%, Mn:0.07%, P:0.060%, acid-soluble Al:100ppm, S:10ppm, N:60ppm, Sb:0.008%, and Mo:0.010%, with the remainder being Fe and unavoidable impurities, was refined. In the laboratory, the casting process, heating process, hot rough rolling process, hot finish rolling process, and cooling process were carried out in succession using the conditions shown in No. 15 of Example 1 (see Table 1) to obtain a hot-rolled sheet. However, the reduction ratio and strain rate for each pass in the hot rough rolling process, and the reduction ratio and strain rate in the final pass of the hot finish rolling process, were as shown in Table 2.
[0109] A test specimen was taken from a portion of the obtained hot-rolled sheet, and the average grain size of the recrystallized grains was determined using the method described above, which is shown in Table 2.
[0110] A hot-rolled sheet was annealed at a soaking temperature of 900°C for 40 seconds, scale was removed by pickling, and then cold-rolled twice, with an intermediate annealing in between, to obtain a cold-rolled sheet with a final thickness of 0.23 mm. The intermediate annealing was performed under conditions where the maximum temperature reached was 1050°C. This cold-rolled sheet was then annealed at 840°C for 150 seconds in a humid atmosphere of 55% H2-45% N2 with a dew point of 60°C for decarburization and primary recrystallization to obtain a decarburized annealed sheet. Subsequently, an annealing separating agent mainly composed of MgO was applied to the surface of the decarburized annealed sheet, and a finish annealing process including a secondary recrystallization process and a purification process was performed under conditions where the maximum temperature reached was 1150°C and the soaking time was 10 hours to obtain a finish annealed sheet. An insulating coating consisting of colloidal silica and aluminum phosphate was applied to the surface of the finish annealed sheet and baked at 850°C to obtain the final grain-oriented electrical steel sheet.
[0111] The magnetic flux density (B8) of the obtained grain-oriented electrical steel sheets was measured in accordance with JIS C2550-1:2011 at an excitation magnetic field of 800 A / m and an excitation frequency of 50 Hz. The obtained magnetic flux densities (B8) are shown in Table 2. As is clear from Table 2, in the inventive example in which the strain rate in hot rough rolling was optimized, the average grain size of the recrystallized grains became 500 μm or less, and good magnetic properties were obtained. Furthermore, in the inventive example in which the reduction ratio and strain rate in the final pass of hot finish rolling were optimized, the average grain size of the recrystallized grains became 30 μm to 300 μm, and even better magnetic properties were obtained.
[0112] [Table 2]
[0113] [Example 3] Molten steel having a composition consisting of the elements shown in Table 3, with the remainder being Fe and unavoidable impurities, was refined. In Table 3, the analytical value for Al represents the content of acid-soluble Al. Hot-rolled sheets were obtained by continuously performing the casting process, heating process, hot rough rolling process, hot finish rolling process, and cooling process in the laboratory.
[0114] In the casting process, a slab with a thickness of 100 mm was used. In the heating process, when the surface temperature of the slab reached 1000°C, it was placed in the heating furnace and heated to 1180°C in 15 minutes. The atmosphere inside the heating furnace was that of combustion gas from a blast furnace (oxygen concentration as shown in Table 3). Subsequently, in the hot roughing process, a sheet bar with a thickness of 15 mm was obtained in 3 passes. In this process, all 3 passes were designated as specific passes with a reduction ratio per pass exceeding 20.0%, and in all specific passes, the strain rate was set to 1.20 s. -1 The hot finishing rolling process started at a temperature of 1050°C and involved four passes to produce a hot-rolled sheet with a thickness of 2.2 mm. In the final pass, the reduction ratio was 30.0% and the strain rate was 120.0 s. -1 The cooling time for the surface temperature of the hot-rolled sheet to reach 650°C after the completion of hot finishing rolling was set at 130 seconds.
[0115] Test specimens were taken from a portion of the obtained hot-rolled sheet using the method described above, and the content of precipitated Al was determined. Table 3 shows the content of precipitated Al and the value obtained by dividing the content of precipitated Al by the content of acid-soluble Al (precipitated Al / Sol. Al). Also, the 1 mm cross-section parallel to the rolling direction of this test specimen is shown. 2 SEM observations were performed on the field of view, and the average particle size was determined by arithmetic mean calculation of the individual particle sizes of precipitated MnS, which are shown in Table 3.
[0116] A hot-rolled sheet was annealed at a soaking temperature of 1000°C for 60 seconds, scale was removed by pickling, and then cold-rolled to a final thickness of 0.25 mm. This cold-rolled sheet was annealed at 840°C for 150 seconds in a humid atmosphere of 55% H2-45% N2 with a dew point of 60°C for decarburization and primary recrystallization to obtain a decarburized annealed sheet. Subsequently, an annealing separating agent mainly composed of MgO was applied to the surface of the decarburized annealed sheet, and a finish annealing process including a secondary recrystallization process and a purification process was performed at a maximum temperature of 1150°C for 10 hours to obtain a finish annealed sheet. An insulating coating consisting of colloidal silica and aluminum phosphate was applied to the surface of the finish annealed sheet and baked at 850°C to obtain the final grain-oriented electrical steel sheet.
[0117] The magnetic flux density (B8) of the obtained grain-oriented electrical steel sheets was measured in accordance with JIS C2550-1:2011 at an excitation magnetic field of 800 A / m and an excitation frequency of 50 Hz. The obtained magnetic flux density (B8) is shown in Table 3. In addition, the surface of the obtained grain-oriented electrical steel sheets was observed, and the presence or absence of velvet defects was visually determined, and the results are shown in Table 3. As is clear from Table 3, good magnetic properties were obtained in the grain-oriented electrical steel sheets manufactured from hot-rolled sheets manufactured under the conditions of the present invention. Furthermore, velvet defects could be suppressed by reducing the oxygen concentration in the atmosphere inside the heating furnace.
[0118] [Table 3]
[0119] [Example 4] Molten steel having a composition consisting of the elements shown in Table 4, with the remainder being Fe and unavoidable impurities, was refined. In Table 4, the analytical value for Al represents the content of acid-soluble Al. Hot-rolled sheets were obtained by continuously performing the casting process, heating process, hot rough rolling process, hot finish rolling process, and cooling process in the laboratory.
[0120] In the casting process, a 100 mm thick slab was used. In the heating process, the slab was placed in the heating furnace when its surface temperature reached 1000°C. Under some conditions (Table 4, No. 2, 6, 8), the slab was heated to 1250°C in 15 minutes in the heating furnace. Under the remaining conditions (Table 4, No. 1, 3-5, 7, 9), the slab was heated to 1100°C in 10 minutes in the heating furnace, then rapidly heated to 1250°C using an induction heating device, and held for 5 minutes. The atmosphere inside the heating furnace was that of blast furnace combustion gas (oxygen concentration 3.0 vol%). The atmosphere in the induction heating device was that of N2 gas with an oxygen concentration of 5.0 vol%.
[0121] Subsequently, in the hot roughing process, a sheet bar with a thickness of 20 mm was obtained in 4 passes. Three passes (specific passes) were included in this process, with a reduction ratio exceeding 20.0% per pass. In all specific passes, the strain rate was set to 0.60 s. -1The hot finishing rolling process started at a temperature of 1030°C and involved four passes to produce a hot-rolled sheet with a thickness of 2.8 mm. In the final pass, the reduction ratio was 25.0% and the strain rate was 83.0 s. -1 The cooling time after the completion of hot finishing rolling until the surface temperature of the hot-rolled sheet reached 650°C was set to 150 seconds.
[0122] A hot-rolled sheet was annealed at a soaking temperature of 1000°C for 20 seconds, scale was removed by pickling, and then cold-rolled to a final thickness of 0.23 mm. This cold-rolled sheet was annealed at 840°C for 150 seconds in a humid atmosphere of 55% H2-45% N2 with a dew point of 60°C for decarburization and primary recrystallization to obtain a decarburized annealed sheet. Subsequently, an annealing separating agent mainly composed of MgO was applied to the surface of the decarburized annealed sheet, and a finish annealing process including a secondary recrystallization process and a purification process was performed at a maximum temperature of 1150°C for 8 hours to obtain a finish annealed sheet. An insulating coating consisting of colloidal silica and magnesium phosphate was applied to the surface of the finish annealed sheet and baked at 800°C to obtain the final grain-oriented electrical steel sheet.
[0123] The magnetic flux density (B8) of the obtained grain-oriented electrical steel sheets was measured in accordance with JIS C2550-1:2011 at an excitation magnetic field of 800 A / m and an excitation frequency of 50 Hz. The obtained magnetic flux density (B8) is shown in Table 4. In addition, the surface of the obtained grain-oriented electrical steel sheets was observed, and the presence or absence of velvet defects was visually determined, and the results are shown in Table 4. As is clear from Table 4, good magnetic properties were obtained in the grain-oriented electrical steel sheets manufactured from hot-rolled sheets manufactured under the conditions of the present invention. Furthermore, velvet defects were suppressed by performing the heating process in two stages.
[0124] [Table 4]
[0125] [Example 5] An experiment was conducted to investigate the effect of nitriding treatment using hot-rolled sheets prepared under the conditions of No. 1 in Table 4. No. 1 in Table 5 is the same as No. 1 in Table 4. For Nos. 2 and 3 in Table 5, decarburization annealing was performed under the same conditions as No. 1 in Table 4, followed by the nitriding treatment described in Table 5. In No. 2 in Table 5, immediately after holding at 840°C for 150 seconds during decarburization annealing, the temperature was reduced to 800°C, and the sheet was then placed in a 60%H2+20%N2+20%NH3 mixed gas atmosphere for 30 seconds. In No. 3 in Table 5, after decarburization annealing was completed and the temperature was reduced to room temperature, the sheet was again placed in a 60%H2+20%N2+20%NH3 mixed gas atmosphere for 120 seconds at 650°C. The increase in nitrogen content at this time was 0.015% for No. 2 and 0.013% for No. 3. Subsequently, similar to Example 4, an annealing separation agent mainly composed of MgO was applied to the surface of the decarburized annealed sheet, and finish annealing, including a secondary recrystallization process and a purification process, was carried out under conditions of a maximum temperature of 1150°C and a soaking time of 8 hours to obtain a finish annealed sheet. An insulating coating consisting of colloidal silica and magnesium phosphate was applied to the surface of the finish annealed sheet and baked at 800°C to obtain the final grain-oriented electrical steel sheet.
[0126] The magnetic flux density (B8) of the obtained grain-oriented electrical steel sheets was measured in accordance with JIS C2550-1:2011 at an excitation magnetic field of 800 A / m and an excitation frequency of 50 Hz. The obtained magnetic flux density (B8) is shown in Table 5. As is clear from Table 5, grain-oriented electrical steel sheets manufactured from hot-rolled sheets produced under the conditions of the present invention exhibited good magnetic properties, and even better magnetism was obtained by nitriding treatment.
[0127] [Table 5] [Industrial applicability]
[0128] This invention can be applied to the manufacture of hot-rolled sheets and grain-oriented electrical steel sheets. [Explanation of Symbols]
[0129] 100 Production equipment row for hot-rolled sheets for grain-oriented electrical steel sheets 10 Continuous casting machines 20 Heating device 20A First heating device (tunnel furnace) 20B 2nd heating device (induction heating device) 30 Hot rough rolling mill 40 Third heating device 50 Hot finishing rolling mill 60 Cooling device 70 Coiler
Claims
1. A process of continuously casting molten steel having a composition in mass percent or mass ppm, containing C: 0.08% or less, Si: 2.0% to 4.5%, Mn: 0.50% or less, acid-soluble Al: 20 ppm to 120 ppm, S: less than 50 ppm, and N: 80 ppm or less, with the content of Se, Te, and O each suppressed to less than 50 ppm, and the remainder consisting of Fe and unavoidable impurities, to produce a slab with a thickness of 80 mm to 150 mm, and Subsequently, before the surface temperature of the slab falls below 850°C, a heating step is performed in which the slab is heated using a heating device for a heating time of 5 minutes or more and 25 minutes or less, and the maximum temperature reached on the surface of the slab is 1100°C or more and 1290°C or less. Subsequently, the reduction schedule consists of two to five passes, and includes at least one specific pass with a reduction ratio exceeding 20.0% per pass, with a strain rate of 0.30 s in all of the specified passes. -1 Under the above conditions, a hot rough rolling process is performed on the slab to obtain a sheet bar with a thickness of 8 mm or more and 60 mm or less. Subsequently, a hot finish rolling process is performed on the sheet bar under the conditions that the surface temperature of the sheet bar at the start of hot finish rolling is 900°C or higher and 1100°C or lower, and the reduction schedule is 3 passes or higher and 7 passes or lower, in order to obtain a hot-rolled sheet with a thickness of 1.3 mm or higher and 3.5 mm or lower. Within 200 seconds after the completion of the hot finish rolling, the hot-rolled sheet is cooled under conditions that the surface temperature of the hot-rolled sheet is 650°C or lower. A method for producing a hot-rolled sheet for grain-oriented electrical steel, wherein the hot-rolled sheet for grain-oriented electrical steel has the following characteristics, and the average particle size of the recrystallized grains in the surface layer up to 1 / 5 of the thickness from the surface is 500 μm or less.
2. The final pass of the aforementioned hot finish rolling has a reduction ratio of 5.0% to 50.0% and a strain rate of 50.0 s. -1 A method for manufacturing a hot-rolled sheet for grain-oriented electrical steel according to claim 1, carried out under the above conditions.
3. The method for manufacturing a hot-rolled sheet for grain-oriented electrical steel according to claim 1, wherein the heating step is carried out in a non-oxidizing atmosphere with an oxygen concentration of 3.0 volume% or less.
4. The aforementioned heating step is A first heating step is performed using a first heating device as the heating device to raise the surface temperature of the slab to 950°C or higher and 1150°C or lower. Subsequently, a second heating step is performed in which a second heating device, different from the first heating device, is used as the heating device to raise the surface temperature of the slab to the maximum temperature to be reached. A method for manufacturing a hot-rolled sheet for grain-oriented electrical steel according to claim 1, comprising:
5. The method for manufacturing a hot-rolled sheet for grain-oriented electrical steel according to claim 4, wherein the first heating device is a tunnel furnace and the second heating device is an induction heating device.
6. The above component composition is further expressed in mass percent as follows: Ni: 1.500% or less, Sn: 0.500% or less, Sb: 0.500% or less, Cu: 0.500% or less, P: 0.500% or less, Cr: 1.500% or less, Mo: 0.500% or less, B: 0.0200% or less, Nb: 0.0100% or less, Co: 0.0100% or less, Ti: 0.0200% or less. A method for producing a hot-rolled sheet for grain-oriented electrical steel according to claim 1, comprising one or more selected from the group consisting of Zn: 0.0500% or less, Bi: 0.0200% or less, W: 0.0030% or less, Pb: 0.0300% or less, Ga: 0.0100% or less, Ge: 0.0300% or less, As: 0.0300% or less, and Ag: 0.0300% or less.
7. A method for manufacturing a hot-rolled sheet for grain-oriented electrical steel according to any one of claims 1 to 6, An optional step of annealing the hot-rolled sheet, Subsequently, the hot-rolled sheet is subjected to cold rolling once or two or more times with an intermediate annealing in between to obtain a cold-rolled sheet. The process of decarburizing and annealing the cold-rolled sheet to obtain a decarburized annealed sheet, An optional step of performing a nitriding treatment on the cold-rolled sheet during the decarburization annealing process, or on the decarburized annealed sheet after the decarburization annealing process, Subsequently, the decarburized annealed plate is treated with an annealing separating agent and then subjected to finish annealing. A method for manufacturing grain-oriented electrical steel sheets.
8. A continuous casting machine for continuously casting molten steel having the component composition described in claim 1 or 6 to produce a slab with a thickness of 80 mm or more and 150 mm or less, A heating device for heating the slab is provided, which is controlled such that the heating time is 5 minutes or more and 25 minutes or less, and the maximum temperature reached on the surface of the slab is 1100°C or more and 1290°C or less, before the surface temperature of the slab falls below 850°C. The reduction schedule consists of two to five passes, and includes at least one specific pass with a reduction ratio exceeding 20.0% per pass, with a strain rate of 0.30 s in all of the specified passes. -1 A hot rough rolling mill that performs hot rough rolling on the slab under the above conditions to obtain a sheet bar with a thickness of 8 mm or more and 60 mm or less, A hot finishing rolling mill that performs hot finishing rolling on the sheet bar to obtain a hot-rolled sheet with a thickness of 1.3 mm to 3.5 mm, under the conditions that the surface temperature of the sheet bar at the start of hot finishing rolling is 900°C or more and 1100°C or less, and the reduction schedule is 3 passes or more and 7 passes or less. Within 200 seconds after the completion of the hot finish rolling, a cooling device is provided to cool the hot-rolled sheet under the condition that the surface temperature of the hot-rolled sheet becomes 650°C or lower. A row of manufacturing equipment for grain-oriented electrical steel sheets, in which the following are arranged in order, and in the surface layer up to 1 / 5 of the thickness from the surface, the average particle size of the recrystallized grains is 500 μm or less, for manufacturing grain-oriented electrical steel sheets.
9. The final pass of the hot finishing rolling mill has a reduction ratio of 5.0% to 50.0% and a strain rate of 50.0 s. -1 A production equipment array for hot-rolled sheets for grain-oriented electrical steel sheets according to claim 8, having the rolling capacity described above.
10. The heating device heats the slab in a non-oxidizing atmosphere with an oxygen concentration of 3.0 volume% or less, in the production equipment array for hot-rolled sheets for grain-oriented electrical steel sheets according to claim 8.
11. The heating device is A first heating device that performs a first heating step to raise the surface temperature of the slab to 950°C or higher and 1150°C or lower, Subsequently, a second heating device, different from the first heating device, is used to perform a second heating step in which the surface temperature of the slab is brought to the maximum temperature. A production equipment array for hot-rolled sheets for grain-oriented electrical steel sheets according to claim 8, comprising:
12. The production equipment array for hot-rolled sheets for grain-oriented electrical steel sheets according to claim 11, wherein the first heating device is a tunnel furnace and the second heating device is an induction heating device.
13. The production equipment array for hot-rolled sheets for grain-oriented electrical steel sheets according to claim 8, further comprising a third heating device for heating the sheet bar between the hot roughing mill and the hot finish rolling mill.
Citation Information
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