Claims
- 1. A grain-oriented silicon steel sheet having a low iron loss free from deterioration due to stress-relief annealing carried out at a temperature range of 600.degree. to 900.degree. C., said steel sheet containing about 2.0-4.0% by weight of Si, and having no plastically strained regions in a matrix surface layer and having a forsterite film, said forsterite film locally having regions where the film has been removed which have been periodically or regularly formed on the steel sheet surface and do not coat the steel sheet surface, and said steel sheet further having a tension-giving type insulating coating film having a linear thermal expansion coefficient of not higher than 9.8.times.10.sup.-6 1/.degree.C. formed on the top of the forsterite film.
- 2. In a method of producing a grain-oriented silicon steel sheet having a low iron loss free from deterioration due to stress-relief annealing, wherein a hot rolled sheet produced from a steel slab, containing about 2.0-4.0% by weight of Si, through a hot rolling is subjected to one cold rolling or two or more cold rollings with an intermediate annealing between them to produce a cold rolled sheet having a final gauge, the cold rolled sheet is subjected to a decarburization primary recrystallization annealing, an annealing separator consisting mainly of MgO is applied to the surface of the decarburized and primarily recrystallized steel sheet, and the thus treated steel sheet is subjected to a final annealing to form a forsterite film on the steel sheet surface, the improvement comprising forming a forsterite film locally having regions, which have a thickness different from that of the remaining regions in the film and have been periodically or regularly formed in the film, by a process wherein an inhibitor selected from the group consisting of SiO.sub.2, ZrO.sub.2, Zn, Al, Sn, Ni or Fe for the forsterite forming reaction is locally adhered to the surface of the decarburized and primarily recrystallized steel sheet in an amount of not more than 1 g/m.sup.2 before the application of the annealing separator.
- 3. In a method of producing a grain-oriented silicon steel sheet having a low iron loss free from deterioration due to stress-relief annealing carried out a temperature range of 600.degree. to 900.degree. C., wherein a hot rolled sheet produced from a silicon-containing steel slab, containing about 2.0-4.0% by weight of Si, through a hot rolling is subjected to one cold rolling or two or more cold rollings with an intermediate annealing between them to produce a cold rolled sheet having a final gauge, the cold rolled sheet is subjected to a decarburization primary recrystallization annealing, an annealing separator consisting mainly of MgO is applied to the surface of the decarburized and primarily recrystallized steel sheet, and the thus treated steel sheet is subjected to a final annealing to form a forsterite film on the steel sheet surface, the improvement comprising forming a forsterite film locally having regions, which have a thickness different from that of the remaining regions in the film, and have been periodically or regularly formed in the film by a process wherein a part of the forsterite film formed during the final annealing is locally removed by the reaction of forsterite with alkali or acid without causing a plastic strain in the interior of the steel sheet.
- 4. In a method of producing a grain-oriented silicon steel sheet having a low iron loss free from deterioration due to stress-relief annealing carried out at a temperature range of 600.degree. to 900.degree. C., wherein a hot rolled sheet produced from a steel slab, containing about 2.0-4.0% by weight of Si, through a hot rolling is subjected to one cold rolling or two or more cold rollings with an intermediate annealing between them to produce a cold rolled sheet having a final gauge, the cold rolled sheet is subjected to a decarburization primary recrystallization annealing, an annealing separator consisting mainly of MgO is applied to the surface of the decarburized and primarily recrystallized steel sheet, and the thus treated steel sheet is subjected to a final annealing to form a forsterite film on the steel sheet surface and then to a top coating treatment, the improvement comprising forming a forsterite film locally having different thickness regions obtained by localized removal of forsterite film periodically or regularly defined and formed therein, applying onto the forsterite film a top coating liquid which forms a tension-giving type insulating top coating film having a linear thermal expansion coefficient of not higher than 9.8.times.10.sup.-6 1/.degree.C., and baking the coating liquid to the forsterite film at a temperature range of 600.degree.-900.degree. C.
- 5. In a method of producing a grain-oriented silicon steel sheet having a low iron loss free from deterioration due to stress-relief annealing, wherein a hot rolled sheet produced from a steel slab, containing about 2.0-4.0% by weight of Si, through a hot rolling is subjected to one cold rolling or two or more cold rollings with an intermediate annealing between them to produce a cold rolled sheet having a final gauge, the cold rolled sheet is subjected to a decarburization primary recrystallization annealing, an annealing separator consisting mainly of MgO is applied to the surface of the decarburized and primarily recrystallized steel sheet, and the thus treated steel sheet is subjected to a final annealing to form a forsterite film on the steel sheet surface, the improvement comprising forming a forsterite film, which has locally filmless regions periodically or regularly formed in the film, by a process, wherein an inhibitor selected from the group consisting of SiO.sub.2, ZrO.sub.2, Zn, Al, Sn, Ni or Fe for the forsterite forming reaction is locally adhered to the surface of the decarburized and primarily recrystallized steel sheet in an amount of not more than 1 g/m.sup.2 before the application of the annealing separator.
- 6. In a method of producing a grain-oriented silicon steel sheet having a low iron loss free from deterioration due to stress-relief annealing carried out at a temperature range of 600.degree. to 900.degree. C., wherein a hot rolled sheet produced from a steel slab, containing about 2.0-4.0% by weight of Si, through a hot rolling is subjected to one cold rolling or two or more cold rollings with an intermediate annealing between them to produce a cold rolled sheet having a final gauge, the cold rolled sheet is subjected to a decarburization primary recrystallization annealing, an annealing separator consisting mainly of MgO is applied to the surface of the decarburized and primarily recrystallized steel sheet, and the thus treated steel sheet is subjected to a final annealing to form a forsterite film on the steel sheet surface and then to a top coating treatment, the improvement comprising forming a forsterite film locally having filmless regions, where the film has been removed, periodically or regularly defined and formed therein, applying onto the forsterite film a top coating liquid which forms a tension-giving type insulating top coating film having a linear thermal expansion coefficient of not higher than 9.8.times.10.sup.-6 1/.degree.C., and baking the coating liquid to the forsterite film at a temperature range of 600.degree.-900.degree. C.
Priority Claims (2)
Number |
Date |
Country |
Kind |
58-201279 |
Oct 1983 |
JPX |
|
58-201280 |
Oct 1983 |
JPX |
|
Parent Case Info
This is a continuation of co-pending application Ser. No. 120,203 filed on Nov. 5, 1987, now U.S. Pat. No. 4,952,253 which is a continuation of application Ser. No. 918,604 filed on Oct. 10, 1986, now abandoned, which is a continuation of application Ser. No. 663,385 filed on Oct. 22, 1984, now U.S. Pat. No. 4,655,854.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
3990923 |
Takashima et al. |
Nov 1976 |
|
Foreign Referenced Citations (1)
Number |
Date |
Country |
57-192223 |
Nov 1982 |
JPX |
Continuations (3)
|
Number |
Date |
Country |
Parent |
120203 |
Nov 1987 |
|
Parent |
918604 |
Oct 1986 |
|
Parent |
663385 |
Oct 1984 |
|