Manufacture of low carbon steel

US11047015B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11047015-B2
Application numberUS-201816110208-A
CountryUS
Kind codeB2
Filing dateAug 23, 2018
Priority dateAug 24, 2017
Publication dateJun 29, 2021
Grant dateJun 29, 2021

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

Embodiments include a method of making steel with low carbon content which includes preparing a heat of molten steel composition in a steelmaking furnace to a tapping temperature ranging from 2912 to 3060 degrees F. and tapping into a ladle the molten steel composition having an oxygen level is about 700 to 1000 ppm. The molten steel composition is then transported to a ladle metallurgy furnace, where the molten steel composition is further heated and one or more elements are added to the molten steel composition. The molten steel composition is then transported from the ladle metallurgy furnace to a vacuum tank degasser. The molten steel composition is then decarburized and one or more elements are added to the molten steel composition at the vacuum tank degasser for deoxidization and desulphurization. The molten steel composition is then transported to a ladle metallurgy furnace to further adjust chemistry and temperature.

First claim

Opening claim text (preview).

The invention claimed is: 1. A method of making steel with low carbon, less than 0.035% by weight, comprising the steps of: preparing a heat of molten steel composition in a steelmaking furnace to a tapping temperature ranging from 2912 to 3060 degrees F.; tapping into a ladle the molten steel composition having an oxygen level of about 700 to 1000 ppm; transporting the molten steel composition in the ladle, after tapping, to a ladle metallurgy furnace where the molten steel composition is further heated and one or more flux elements and/or one or more alloy elements are added to the molten steel composition; transporting the molten steel composition in the ladle from the ladle metallurgy furnace to a vacuum tank degasser after the ladle metallurgy furnace; decarburizing the molten steel composition at the vacuum tank degasser; adding one or more alloying elements and/or one or more flux elements to the molten steel composition at the vacuum tank degasser for deoxidization and desulphurization; transporting the molten steel composition in the ladle from the vacuum tank degasser and to a ladle metallurgy furnace to further adjust chemistry and temperature; and, casting the molten steel composition to form a steel with low carbon content that is less than 0.035% by weight. 2. The method of claim 1 , where while tapping, one or more flux elements and/or one or more alloying elements are added to the molten steel composition. 3. The method of claim 2 , where the one or more flux elements and/or one or more alloying elements includes lime and calcium silica. 4. The method of claim 1 , where at the ladle metallurgy furnace, the one or more flux elements added include manganese and lime. 5. The method of claim 4 , where the manganese is medium carbon manganese (MCMn). 6. The method of claim 1 further comprising: measuring the oxygen content in molten steel composition before decarburizing processing begins at the vacuum tank degasser. 7. The method of claim 1 , where the decarburization of the molten steel composition at the vacuum tank degasser is performed by drawing a vacuum of less than 650 millibars. 8. The method of claim 1 , where the decarburization of the molten steel composition is performed with an oxygen level in the molten steel composition correlated with an amount of carbon desired in the steel composition without adding external oxygen to the molten steel composition to determine one or more of the following: (i) a decarburization time based on the oxygen level and the amount of carbon; (ii) an amount of deoxidizing addition to the steel composition based on the oxygen level and the amount of carbon; or (iii) a selection of the one or more flux elements and an amount of the one or more flux elements based on the oxygen level and the amount of carbon. 9. The method of claim 1 , where adding one or more alloying elements and/or one or more flux elements to the molten steel composition in the vacuum tank degasser includes adding one or more deoxidizers. 10. The method of claim 9 , where the one or more deoxidizers includes at least one of aluminum, ferrosilicon (FeSi), lime, calcium silicate (Ca 2 SiO 4 ), and ferrosilicomanganese (FeSiMn). 11. The method of claim 1 , where adding one or more alloying elements and/or one or more flux elements to the molten steel composition at the vacuum tank degasser includes adding one or more fluxes selected form a group consisting of lime, dolomitic lime, aluminum, calcium aluminum, wollostonite, fluorspar, silica sand, ferrosilicon, ferrosilicomanganese (FeSiMn), and a perfused synthetic flux. 12. The method of claim 1 , where the molten steel composition leaves the ladle metallurgy furnace at substantially 3050 degrees F. 13. The method of claim 1 , where the step of casting includes casting a thin cast strip through a thin strip caster. 14. The method of claim 11 , where the thin strip caster includes: a pair of counter-rotatable casting rolls having casting surfaces laterally positioned to form a gap at a nip between the casting rolls through which the thin cast strip having a thickness of less than 5 mm can be cast, a metal delivery system adapted to deliver the molten steel composition above the nip to form a casting pool, the casting pool being supported on the casting surfaces of the pair of counter-rotatable casting rolls and confined at the ends of the casting rolls, the method of casting includes: delivering the molten steel composition to the metal delivery system; delivering the molten steel composition from metal delivery system above the nip to form the casting pool; and, counter rotating the pair of counter-rotatable casting rolls to form metal shells on the casting surfaces of the casting rolls that are brought together at the nip to deliver the thin cast strip downwardly, the thin metal strip having a thickness less than 5 mm. 15. The method of claim 1 , where the amount of carbon in the molten steel composition during the tapping step is 0.02% to 0.05% by weight. 16. The method of claim 1 , where the steel making furnace is in an electric arc furnace. 17. The method of claim 1 , where adding one or more alloying elements and/or one or more flux elements to the molten steel composition at the vacuum tank degasser includes adding a desired amount of aluminum at a vacuum level is 530 to 1000 millibars. 18. The method of claim 1 , where at the vacuum tank degasser, a vacuum is drawn between about 1 to 2.5 millibar for nitrogen removal. 19. The method of claim 1 , where the one or more alloying elements and/or one or more flux elements added at the ladle metallurgy furnace after tapping and before transfer to the vacuum tank degasser are selected from a group consisting of lime, magnesium oxide, calcium aluminate, dolomitic lime, fluorspar, wollastonite, silica sand, ferrosilicon, ferrosilicomanganese, and prefused synthetic flux. 20. The method of claim 1 , where the amount of sulfur in the molten steel composition during the tapping step is between about 0.02% and 0.06% by weight. 21. The method of claim 8 , where correlating the oxygen level in the molten steel composition with an amount of carbon desired in the steel composition comprises steps of: (i) stirring the molten steel composition in the ladle at the vacuum tank degasser, (ii) measuring and recording the amount of carbon in the steel composition, amount of oxygen in the steel composition, and the temperature of the steel composition, (iii) providing a process model correlating amounts of oxygen and carbon in steel composition with the decarburization time needed to reach a desired amount of carbon in the steel composition; and (iv) determining by the process model the decarburization time based on the measured amounts of oxygen and carbon in the steel composition. 22. The method of claim 8 , where correlating the oxygen level in the molten steel composition with an amount of carbon desired in the steel composition comprises steps of: (i) stirring the steel composition in the ladle at the vacuum tank degasser, (ii) measuring and recording the amount of carbon in the steel composition, amount of oxygen in the steel composition, and the temperature of the steel composition, (iii) providing a process model correlating amounts of oxygen and carbon in steel composition with the amount of deoxidizing addition needed to deoxidize the steel composition and (iv) determining by the process model the amount of deoxidizing addition to the steel compositi

Assignees

Inventors

Classifications

  • Use of slags or fluxes as treating agents (C21C7/06, C21C7/064, C21C7/068 take precedence) · CPC title

  • Recycling · CPC title

  • Handling in a vacuum · CPC title

  • Particular sequence of the process steps · CPC title

  • Treating in a ladle furnace, e.g. up-/reheating of molten steel within the ladle · CPC title

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What does patent US11047015B2 cover?
Embodiments include a method of making steel with low carbon content which includes preparing a heat of molten steel composition in a steelmaking furnace to a tapping temperature ranging from 2912 to 3060 degrees F. and tapping into a ladle the molten steel composition having an oxygen level is about 700 to 1000 ppm. The molten steel composition is then transported to a ladle metallurgy furnace…
Who is the assignee on this patent?
Nucor Corp
What technology area does this patent fall under?
Primary CPC classification B22D11/001. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue Jun 29 2021 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 2 related publications on this page (citations in our corpus or others sharing the same primary CPC).