Method for manufacturing flat steel products from silicon alloyed multi-phase steel
Abstract
A method, which allows high-tensile flat steel products to be manufactured with less effort includes a steel that forms a multi-phase microstructure and contains (in wt. %) 0.10-0.15% C, 0.80-1.20 % Mn, up to 0.030% P, up to 0.004 % S, 1.10-1.30 % Si, 0.0-0.05% Al, up to 0.0060% N, 0.30-0.60% Cr, 0.080-0.120% Ti, 0.040-0.060% Nb, 0.150-0.250% Mo remainder iron and unavoidable impurities, being cast into a cast strip having a thickness of 1-4 mm. The cast strip is hot-rolled in-line into a hot-rolled strip having a thickness of 0.5-3.2 mm in a continuous process at a final hot-rolling temperature ranging from 850 to 1000° C., the deformation degree being greater than 20%. The hot-rolled strip is coiled at a coiling temperature ranging from 450 to 700° C., so as to obtain a hot-rolled strip, which has a minimum tensile strength R m of 880 MPa at a minimum breaking elongation A 80 of 5%.
Claims
exact text as granted — not AI-modified1 . Method for manufacturing flat steel products,
wherein a steel that forms a multi-phase microstructure with the following composition (in wt. %) C: 0.10-0.15% Mn: 0.80-1.20% P: ≦0.030% S: ≦0.004% Si: 1.10-1.30% Al: 0.0-0.05% N: ≦0.0060% Cr: 0.30-0.60% Ti: 0.080-0.120% Nb: 0.040-0.060% Mo: 0.150-0.250% remainder iron and unavoidable impurities is cast into a cast strip having a thickness of 1±4 mm, wherein the cast strip is hot-rolled in-line into a hot-rolled strip having a thickness ranging from 0.5 to 3.2 mm in a continuous process at a final hot-rolling temperature ranging from 850 to 1000° C., the deformation degree being greater than 20%, and wherein the hot-rolled strip is coiled at a coiling temperature ranging from 450 to 700° C., so as to obtain a hot-rolled strip, which has a minimum tensile strength R m of 880 MPa at a minimum breaking elongation A 80 of 5%.
2 . Method according to claim 1 , wherein the width of the hot-rolled strip is greater than 1,200 mm.
3 . Method according to claim 1 , wherein the thickness of the hot-rolled strip is 1.5 mm at most.
4 . Method according to claim 1 , wherein the hot-rolled strip is cold-rolled into cold-rolled strip having a thickness of 0.5-1.4 mm.
5 . Method according to claim 4 , wherein the cold-rolled strip is annealed at an annealing temperature of 750-805° C.
6 . Method according to claim 4 , wherein a minimum tensile strength of the cold-rolled strip is 1000 MPa.
7 . Method according to claim 4 , wherein the cold-rolled strip has a minimum breaking elongation A 50 of 5%.
8 . Method according to claim 4 , wherein the cold-rolled strip is annealed at an annealing temperature of 810-850° C.
9 . Method according to claim 4 , wherein or 8, characterized in that the tensile strength of the cold-rolled strip is more than 800 MPa.
10 . Method according to claim 9 , wherein the cold-rolled strip has a minimum breaking elongation A 50 of 5%.
11 . Method according to claim 1 , wherein the hot-rolled strip is provided with a metallic coating.
12 . Method according to claim 11 , wherein the metallic coating is a zinc coating.
13 . Method according to claim 1 , wherein with a minimum breaking elongation A 80 of the obtained hot-rolled strip of 10%, the coiling temperature is 550-700° C.
14 . Method according to claim 1 , wherein with a minimum tensile strength R m of the obtained hot-rolled strip of 1000 MPa, the final hot-rolling temperature is 900-1000° C. and the coiling temperature is 450-550° C.
15 . Method according to claim 4 , wherein the cold-rolled strip is provided with a metallic coating.
16 . Method according to claim 15 , wherein the metallic coating is a zinc coating.Join the waitlist — get patent alerts
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