IP Library › Granted Patent US 12,626,844
Granted Patent B2
US 12,626,844 · App. 18/547,693 · Granted May 12, 2026

Method of manufacturing grain-oriented electrical steel sheet

Inventors: Shigehiro Takajo (Tokyo, JP); Hiroi Yamaguchi (Tokyo, JP)
Assignee: JFE STEEL CORPORATION
H01F1/14783C21D1/18C21D6/002C21D6/004C21D6/005C21D6/008C21D8/1211C21D8/1222C21D8/1233C21D8/125C21D8/1261C21D8/1272C21D8/1283C21D8/1288C21D9/46C22C38/001C22C38/002C22C38/008C22C38/02C22C38/04C22C38/06C22C38/12C22C38/14C22C38/16C22C38/22C22C38/34C22C38/42C22C38/48C22C38/60C22C2202/02
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Quick Facts
Patent No.
US 12,626,844
App. No.
18/547,693
Granted
May 12, 2026
Kind
B2
Abstract

The method includes slab-heating a steel slab to a temperature of higher than a γ-phase precipitation temperature and 1380° C. or lower, subjecting the steel slab to rough rolling including at least two passes of rolling at a predetermined temperature with an introduced sheet thickness true strain ε t of 0.50 or more and to finish rolling with a rolling finish temperature of 900° C. or higher to obtain a hot-rolled sheet, cooling the hot-rolled sheet for 1 second or longer at a cooling rate of 70° C./s or higher within 2 seconds after finish rolling, coiling the sheet at a coiling temperature of 600° C. or lower, performing hot-rolled sheet annealing for soaking at a predetermined soaking temperature, and then performing cold rolling, primary recrystallization annealing, and secondary recrystallization annealing.

Claims (66)

1 . A method of manufacturing a grain-oriented electrical steel sheet, comprising:

preparing a steel slab having a chemical composition containing

C: 0.005 mass % to 0.085 mass %,

Si: 2.00 mass % to 4.50 mass %,

Mn: 0.03 mass % to 1.00 mass %,

sol.Al: 0.008 mass % or more and less than 0.030 mass %, and

N: 0.004 mass % to 0.009 mass % or less, and

further containing either or both of S: 0.0005 mass % to 0.02 mass % and Se: 0.0005 mass % to 0.02 mass %, with the balance being Fe and inevitable impurities,

subjecting the steel slab to slab heating to a temperature of higher than a γ-phase precipitation temperature and 1380° C. or lower, the γ-phase precipitation temperature being determined by equilibrium calculation,

next, subjecting the steel slab to rough rolling including at least two passes of rolling at a temperature of (temperature at which γ-phase fraction reaches its maximum −20° C.) or higher with an introduced sheet thickness true strain ε t of 0.50 or more for each pass to obtain a rough-rolled sheet, the temperature at which γ-phase fraction reaches its maximum being determined by equilibrium calculation,

next, subjecting the rough-rolled sheet to finish rolling where a rolling finish temperature is 900° C. or higher to obtain a hot-rolled sheet, the hot-rolled sheet having a recrystallization ratio Y of 10% or higher and 60% or less,

next, cooling the hot-rolled sheet for 1 second or longer at a cooling rate of 70° C./s or higher within 2 seconds after an end of the finish rolling,

coiling the hot-rolled sheet obtained after cooling at a coiling temperature of 600° C. or lower,

next, subjecting the hot-rolled sheet obtained after coiling to hot-rolled sheet annealing for soaking at a soaking temperature of 1000° C. or higher and (1150-2.5Y)° C. or lower for 60 seconds or longer to obtain a hot-rolled and annealed sheet, where Y (%) is a recrystallization ratio of a sheet thickness central layer of the hot-rolled sheet obtained after coiling,

next, subjecting the hot-rolled and annealed sheet to cold rolling at a rolling ratio of 88% or more and 91% or less to obtain a cold-rolled sheet with a final sheet thickness,

next, subjecting the cold-rolled sheet to primary recrystallization annealing to obtain a primary recrystallization annealed sheet, and

next, subjecting the primary recrystallization annealed sheet to secondary recrystallization annealing to obtain a grain-oriented electrical steel sheet, wherein

the sheet thickness true strain Et is calculated by the following equation (1)

ε t =−ln(sheet thickness after rolling/sheet thickness before rolling)  (1).

2 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 1 , wherein the chemical composition further contains at least one selected from the group consisting of

Sb: 0.005 mass % to 0.500 mass %, and

Sn: 0.005 mass % to 0.500 mass %.

3 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 1 , wherein the chemical composition further contains at least one selected from the group consisting of

Ni: 0.01 mass % to 1.50 mass %,

Cr: 0.005 mass % to 0.50 mass %,

Cu: 0.03 mass % to 0.50 mass %,

P: 0.005 mass % to 0.500 mass %,

As: 0.0005 mass % to 0.050 mass %,

Bi: 0.005 mass % to 0.500 mass %,

Mo: 0.005 mass % to 0.100 mass %,

B: 0.0002 mass % to 0.0025 mass %,

Te: 0.0005 mass % to 0.0100 mass %,

Zr: 0.001 mass % to 0.010 mass %,

Nb: 0.001 mass % to 0.010 mass %,

V: 0.001 mass % to 0.010 mass %, and

Ta: 0.001 mass % to 0.010 mass %.

4 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 1 , wherein the rough rolling includes at least one pass of rolling at a temperature of (the temperature at which γ-phase fraction reaches its maximum−20° C.) or higher and (the temperature at which γ-phase fraction reaches its maximum+50° C.) or lower.

5 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 1 , wherein the rough rolling has four or more passes in total.

6 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 1 , wherein the hot-rolled sheet obtained after the soaking is subjected to cooling where a first average cooling rate v 1 from the soaking temperature to 800° C. is lower than 40° C./s and a second average cooling rate v 2 from 800° C. to 650° C. is equal to or higher than v 1 .

7 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 1 , wherein the recrystallization ratio Y is 18% or higher and 60% or less.

8 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 1 , wherein the recrystallization ratio Y is 20% or higher and 60% or less, and skin pass rolling with an elongation rate of 0.05% or more is performed after an end of the finish rolling and before hot-rolled sheet annealing.

9 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 1 , wherein a magnetic flux density B 8 in a rolling direction of the grain-oriented electrical steel sheet is 1.940 T or higher.

10 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 2 , wherein the chemical composition further contains at least one selected from the group consisting of

Ni: 0.01 mass % to 1.50 mass %,

Cr: 0.005 mass % to 0.50 mass %,

Cu: 0.03 mass % to 0.50 mass %,

P: 0.005 mass % to 0.500 mass %,

As: 0.0005 mass % to 0.050 mass %,

Bi: 0.005 mass % to 0.500 mass %,

Mo: 0.005 mass % to 0.100 mass %,

B: 0.0002 mass % to 0.0025 mass %,

Te: 0.0005 mass % to 0.0100 mass %,

Zr: 0.001 mass % to 0.010 mass %,

Nb: 0.001 mass % to 0.010 mass %,

V: 0.001 mass % to 0.010 mass %, and

Ta: 0.001 mass % to 0.010 mass %.

11 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 2 , wherein the rough rolling includes at least one pass of rolling at a temperature of (the temperature at which γ-phase fraction reaches its maximum−20° C.) or higher and (the temperature at which γ-phase fraction reaches its maximum+50° C.) or lower.

12 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 2 , wherein the rough rolling has four or more passes in total.

13 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 2 , wherein the hot-rolled sheet obtained after the soaking is subjected to cooling where a first average cooling rate v 1 from the soaking temperature to 800° C. is lower than 40° C./s and a second average cooling rate v 2 from 800° C. to 650° C. is equal to or higher than v 1 .

14 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 2 , wherein the recrystallization ratio Y is 18% or higher and 60% or less.

15 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 2 , wherein the recrystallization ratio Y is 20% or higher and 60% or less, and skin pass rolling with an elongation rate of 0.05% or more is performed after an end of the finish rolling and before hot-rolled sheet annealing.

16 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 2 , wherein a magnetic flux density B 8 in a rolling direction of the grain-oriented electrical steel sheet is 1.940 T or higher.

17 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 3 , wherein the rough rolling includes at least one pass of rolling at a temperature of (the temperature at which γ-phase fraction reaches its maximum−20° C.) or higher and (the temperature at which γ-phase fraction reaches its maximum+50° C.) or lower.

18 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 3 , wherein the rough rolling has four or more passes in total.

19 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 3 , wherein the hot-rolled sheet obtained after the soaking is subjected to cooling where a first average cooling rate v 1 from the soaking temperature to 800° C. is lower than 40° C./s and a second average cooling rate v 2 from 800° C. to 650° C. is equal to or higher than v 1 .

20 . The method of manufacturing a grain-oriented electrical steel sheet according to claim 3 , wherein the recrystallization ratio Y is 18% or higher and 60% or less.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 24, 2023
From: TAKAJO, SHIGEHIRO; YAMAGUCHI, HIROI
To: JFE STEEL CORPORATION
Reel/Frame 064687/0711 →
Priority Claims (1)
JP 2021-034819 · Mar 4, 2021 · national
Continuity (2)
Related Publication 20240136095A1 · Apr 25, 2024
Related Publication 20240233992A9 · Jul 11, 2024
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