Lance for blowing oxygen in steelmaking
20230366052 · 2023-11-16
Inventors
Cpc classification
F27D2003/169
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2003/164
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P10/20
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F27D3/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2003/168
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A lance (1) for blowing oxygen onto a bath of molten steel including a tip (15) provided with first oxygen ejector (16) and a distributor (17) provided with second ejector (18).
Claims
1-14. (canceled)
15: A lance for blowing oxygen to a bath of molten steel contained in a converter, the lance defining an upper part and a lower part, the lower part being closer to the bath of molten steel, the lance comprising: a main tube for supply of a primary flux of oxygen; a second tube surrounding the main tube to form a first annular gap for the circulation of cooling water within the lance; a third tube surrounding the second tube to form a second annular gap for supply of a secondary flux of oxygen, the third tube extending only along the upper part of the lance; a fourth tube having a first part surrounding the third tube along the upper part of the lance and having a second part surrounding the second tube along the lower part of the lance, to form a third annular gap for circulation of cooling water within the lance; a tip, located at an end of the lower part of the lance, provided with at least one primary oxygen ejector for blowing the primary flux of oxygen to the bath of molten steel and being designed to be in fluid connection with both the first and third annular gaps to ensure circulation of water within the lance; a distributor forming a junction between the upper and the lower part of the lance, the distributor having at least one secondary oxygen ejector in fluid connection with the third annular gap for blowing the secondary flux of oxygen, the at least one secondary oxygen ejector of the distributor being located at distance d above the at least one primary oxygen ejector of the tip so that a ratio between the distance d and an internal diameter D of the converter is from 0.04 to 0.15.
16: The lance as recited in claim 15 wherein the ratio is from 0.08 to 0.15.
17: The lance as recited in claim 15 wherein the at least one secondary oxygen ejector is located from 150 to 750 mm above the at least one primary ejector.
18: The lance as recited in claim 15 wherein the distributor has a seal preventing leakage of water.
19: The lance as recited in claim 15 wherein the distributor is mounted slidably around the fourth tube.
20: The lance as recited in claim 15 wherein the at least one primary ejector includes at least four primary oxygen ejectors.
21: The lance as recited in claim 15 wherein the at least one primary ejector has an exit diameter from 40 to 50 mm.
22: The lance as recited in claim 21 wherein the at least one primary oxygen ejector has an exit diameter from 40 to 45 mm.
23: The lance as recited in claim 15 wherein the at least one primary oxygen ejector is designed so as to eject the primary flux of oxygen with an ejection angle with respect to a central axis of the lance from 10 to 20°.
24: The lance as recited in claim 15 wherein the at least one primary oxygen ejector is designed so as to eject the primary flux of oxygen with an ejection angle with respect to a central axis of the lance from 14 to 18°.
25: The lance as recited in claim 15 wherein the at least one secondary oxygen ejector has an exit with an oblong shape.
26: The lance as recited in claim 15 wherein a biggest dimension of an exit of the at least one secondary oxygen ejector is from 10 to 25 mm.
27: The lance as recited in claim 15 wherein the first annular gap allows entry of water into the lance and the third annular gap allows exit of water from the lance.
28: A steelmaking method comprising employing the lance as recited in claim 15.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Other characteristics and advantages of the invention will emerge clearly from the description of it that is given below by way of an indication and which is in no way restrictive, with reference to the appended figures in which:
[0024]
[0025]
DETAILED DESCRIPTION
[0026] Elements in the figures are illustration and may not have been drawn to scale.
[0027]
[0028] This double oxygen ejection is performed with a post combustion lance, as the one illustrated in
[0029] The lance 1 then comprises a third tube 13, surrounding the second tube 12 to form a second annular gap 32 for the supply of the secondary flux of oxygen 22 necessary for the post-combustion. This third tube does not extend all along the length of the lance 1 but only along the upper part 1A. This third tube is preferentially designed so that there is a ratio of ⅕ between the section of the gap for the circulation of the primary of oxygen and the section of the gap for the circulation of the secondary flux of oxygen. The lance comprises then a fourth tube 14, comprising a first part 14A, which surrounds the third tube 13 along the upper part 1A of the lance, and a second part 14B surrounding the second tube 12 along the lower part 1B of the lance. This fourth tube 14 thus forms a third annular gap 33 allowing the drawing off of the cooling water. In another embodiment, the first annular gap 31 may be designed to drawn off the cooling water from the lance 1 while the third annular gap 33 allows the entry of the water within the lance 1.
[0030] The lance 1 further comprises a tip 15, closing the lower part of the lance 1B. This tip is in fluid connection with both first and third annular gaps so as to close the water circuit and provide circulation of water within the lance. This furthermore allows the cooling down of the tip 15 itself which is the closest part to the molten steel and thus subjected to the highest temperatures. The tip is provided with at least one primary oxygen ejection means 16 for blowing primary flow of oxygen 21 onto the bath of molten steel and allowing decarburization. In a preferred embodiment the tip is provided with at least four primary oxygen ejection means 16, the optimal number depending notably of the size of the ladle and thus of the circumference of the molten bath. The diameter of the primary oxygen ejection means depends on the same parameters. In a preferred embodiment, those primary oxygen ejection means 16 have a diameter comprised between 40 and 50 mm, preferentially between 40 and 45 mm. In a preferred embodiment these ejection means are designed so as to eject the primary flux of oxygen with an ejection angle α with the central axis Z of the lance 1 comprised between 10 and 20°, preferentially between 14 and 18°. This allows to find a good compromise between maximization of the surface of the molten bath receiving oxygen ang keeping sufficient distance from the refractories walls to avoid damaging them.
[0031] The lance is designed to receive a distributor 17 making the junction between the upper 1A and the lower part 1B of the lance and ensuring the circulation of water between the upper 14A and the lower 14B parts of the fourth tube. This distributor 17 is provided with at least one secondary oxygen ejection means 18 in fluid connection with the third tube 13 for blowing the secondary flux of oxygen 22 onto the bath of molten steel. This secondary flux of oxygen will provide necessary fuel for the further combustion of CO and the release of additional energy for scrap melting. In a preferred embodiment the distributor 17 is provided with the same number of secondary ejection means 18 as the number of primary ejection means 16 provided on the tip 15. These ejection means 18 may have exits with a diameter comprised between 10 and 25 mm. Said exits may have an oblong or circular shape. Secondary oxygen ejection means 18 are located at a distance d above the primary oxygen ejection means 16 of the tip 15 such as the ratio (d/D) between the distance d and the internal diameter D of the converter 2 is from 0.04 to 0.15, preferentially from 0.08 to 0.15. They may be located between 500 and 750 mm above the first oxygen ejection means 16 of the tip 15. This distance d between both ejection means allows to enhancement of the efficiency of the secondary flux of oxygen by promoting the mixing of CO and O2 into the bath.
[0032] In a most preferred embodiment the distributor is mounted on the lance 1 so as to be able to slide of few centimetres, less than 5 cm, along the pipe 12 in order to follow the thermal expansion of the external tube 14 due to thermal constraints it is subjected to. This is done by appropriate means, such as O-rings 19. The distributor is furthermore provided with sealing means preventing water leakage in the annular gaps supplying the oxygen flows. These sealing means are for example O-rings.
[0033] With the lance according to the invention it is possible to insert the third tube 13 within the others and thus the external diameter of the lance is not increased compared to existing lance and there is thus no need to replace the overall supporting structure of the lance which reduce investment costs for the post-combustion process. Moreover, the secondary flux of oxygen crosses only once the water circulation channels, which allows limiting of the water pressure losses compared to prior art combustion lances. Finally, with the lance according to the invention, risks of tightness issues are limited.