Bainitic steel of high strength and high elongation and method to manufacture said bainitic steel
The invention relates to a bainite steel consisting of the following elements in weight %: C: 0.25-0.55 Si: 0.5-1.8 Mn: 0.8-3.8 Cr: 0.2-2.0 Ti: 0.0-0.1 Cu: 0.0-1.2 V: 0.0-0.5 Nb: 0.0-0.06 Al: 0.0-2.75 N: <0.004 P: <0.025 S: <0.025 and a method for manufacturing a bainite steel strip that comprises the step of cooling the coiled strip of such composition to ambient temperature, during which the bainite transformation takes place.
1. A bainite steel comprising the following elements in weight %:
C: 0.30-0.50
Si: 1.0-1.8
Mn: 1.0-2.5
Cr: 0.7-1.5
Ti: 0.0-0.08
Cu: 0.0-1.2
V: 0.0-0.5
Nb: 0.0-0.06
Al: 0.0-1.50
N: <0.004
P: <0.025
S: <0.025
the balance being iron and unavoidable impurities, wherein the bainite steel comprises no added alloying Ni or Mo, wherein the bainite has a microstructure with bainite plates with a thickness of less than 100 nm, and wherein the steel has an ultimate tensile strength of at least 1350 MPa,
wherein the bainite steel is formed by:
casting a slab from a liquid steel of the composition;
cooling the slab;
reheating the cooled slab to 1250° C.;
hot rolling a cast slab into a strip at a temperature of 850° C.; and
coiling the strip of steel at a temperature above the bainite start temperature in the range of 350° C.-500° C., and continuously cooling the coiled strip by natural cooling, and
wherein no further heat is applied during the step of continuously cooling the coiled strip such that the slab transforms to bainite steel during the cooling the coiled strip.
2. The bainite steel according to claim 1 , wherein one or more of the following elements are present in weight %:
C: 0.30-0.40
Si: 1.2-1.7
Mn: 1.6-2.1
Cr: 0.9-1.2
Ti: 0.0-0.07
Al: 0.0-0.2.
3. The bainite steel according to claim 1 , wherein the steel has a hardness of at least 415 VHN.
4. The bainite steel according to claim 1 , wherein the steel has at least a total elongation of 20%.
5. The bainite steel according to claim 1 , wherein the steel has a microstructure with 15-30% of retained austenite.
6. The bainite steel according to claim 1 , wherein the bainite steel is 70-85% carbide-free bainite.
7. The bainite steel according to claim 1 , wherein the bainite steel comprises 70-80% nano-structured bainite.
8. The bainite steel according to claim 1 , wherein the Ti and N react to form TiN which in turn forms fine TiCN precipitates.
9. The bainite steel according to claim 1 , wherein the steel has a dislocation density in the range of 4-6×10 6 .
10. The bainite steel according to claim 1 , wherein N is present in a weight % of 0.001-0.004.
11. The bainite steel according to claim 1 , further comprising, prior to coiling the strip, cooling the strip formed from the slab to a temperature above the bainite start temperature in the range of 400-550° C.
12. The bainite steel according to claim 1 , wherein Cu is present in a weight % of 0.1-1.2.
13. The bainite steel according to claim 1 , wherein V is present in a weight % of 0.1-0.5.