SMELTING ASSEMBLY FOR THE PRODUCTION OF STEEL
20210040573 · 2021-02-11
Inventors
- Peter Starke (Duisburg, DE)
- Andreas Schüring (Mülheim, DE)
- Thomas Henkel (Duisburg, DE)
- Hans-Jürgen Odenthal (Mettmann, DE)
Cpc classification
C21C5/04
CHEMISTRY; METALLURGY
F27B3/225
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C21B2100/00
CHEMISTRY; METALLURGY
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
C21C5/5217
CHEMISTRY; METALLURGY
F27D17/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B3/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
C21C5/04
CHEMISTRY; METALLURGY
F27B3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B3/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An improved apparatus for producing steel, including a lower furnace, an annular, water-cooled, fireproof lined cylindrical upper furnace, on which an upwardly closing conically tapering hat having openings can be placed. The smelting assembly is configured for the operational mode without melt flow and the operational mode with melt flow. To this end, at least one opening is provided in the conical furnace cover, through which opening at least one top lance can be introduced into the upper furnace. A plurality of sidewall injectors radially rotate around the cylindrical upper furnace in such a way that in a working position, the top lance and the sidewall injectors are directed onto a smelt level of a molten mass located in the lower furnace for refining.
Claims
1-7. (canceled)
8. A smelting assembly for production of steel, comprising: having a fireproof-cladded lower furnace/hearth part with bottom tapping; a substantially cylindrical, water-cooled, upper furnace; a conical furnace cover placeable onto the upper furnace, wherein the conical cover has an exhaust gas port, wherein the smelting assembly is configured for a running mode without a smelting current as well as for a running mode with a smelting current, wherein the running mode of the smelting assembly is variable by changing the furnace cover, wherein the conical furnace cover for the running mode without a smelting current has at least one opening through which at least one top lance for injecting a process gas is introducible into the upper furnace, and the conical furnace cover for the running mode with a smelting current has at least one opening through which at least one graphite electrode is introducible into the upper furnace; and a plurality of lateral wall injectors are arranged spaced in the cylindrical upper furnace so as to be radially encircling so that the top lance and the lateral wall injectors in an operating position are aligned toward a melt level of a melt which for oxidizing is situated in the lower furnace/hearth part.
9. The smelting assembly for production of steel according to claim 8, wherein the top lance and the lateral wall injectors are configured to operate simultaneously and with mutually adapted volumetric flows in a coordinated manner so as to suppress intense melt slag splashes and avoid a formation of skull on the smelting assembly.
10. The smelting assembly for production of steel according to claim 8, wherein for the running mode with a smelting current, in which various mixtures of metallurgical ingredients are present in the smelting assembly, the furnace cover is convertible so that the at least one graphite electrode is introducible into the lower furnace/hearth part.
11. The smelting assembly for production of steel according to claim 10, wherein for the running mode with a smelting current, the furnace cover is configured so that a maximum of three graphite electrodes are able to be introduced through the openings of the furnace cover.
12. The smelting assembly for production of steel according to claim 8, wherein the lateral wall injectors and the top lance are configured so that between 10% and 50% of a gas required for oxidizing is injectable through the lateral wall injectors and 90% to 50% of the gas is injectable through the top lance into the melt situated in the smelting assembly, said injections taking place simultaneously and in a mutually adapted manner.
13. The smelting assembly for production of steel according to claim 12, wherein the top lance and the lateral wall injectors are configured to provide an optimal mixing ratio between the top lance and the lateral wall injectors so that melt and slag splashes are reduced and a formation of skull in the upper furnace is minimized.
14. The smelting assembly for production of steel according to claim 8, further comprising a specially shaped furnace manifold assigned to the furnace cover, the furnace manifold being configured so as to be inclined and have a cross section adapted to process conditions so that a maximum flow rate of exhaust gas created during oxidizing does not exceed 50 m/s.
Description
[0059] The present invention will be explained in more detail hereunder by means of an exemplary embodiment. In the figures:
[0060]
[0061]
[0062] As is illustrated in
[0063] The graphite electrodes 10 and the top lance 1 herein are controlled by way of electrode carrier columns 7 and electrode arms 6 connected thereto, so as to be able to move said graphite electrodes 10 into the smelting assembly 11 and out of the latter as required.
[0064] The upper furnace 3 has a substantially round/cylindrical lateral wall 3a. The lateral wall 3a is assigned openings which are radially encircling on the outside. Lateral wall injectors 4 can be introduced through the openings in the lateral wall 3a, said lateral wall injectors 4 then being able to be aligned toward a melt 14 to be treated in the lower furnace 5. The top lance 1 and the lateral wall injectors 4 in the operating position herein are aligned toward a melt level 13 of the melt 14 which for oxidizing are situated in the lower vessel/hearth part 5.
[0065] As is illustrated in
[0066] For the smelting operation in the manner of an EAF, the graphite electrodes 10 are supplied with corresponding electric energy by means of a transformer 9, as is illustrated in
[0067] It is provided that the lateral wall injectors 4 (lateral lances) and the top lances 1 (more than one top lance may be provided) are run conjointly, or a gas (typically oxygen) can be injected simultaneously. In this configuration, lateral wall injectors 4 in the upper vessel 3 (or in the cylindrical lateral wall 3a, respectively) and one or a plurality of top lances 1 should always be run conjointly. This running mode should take place at an optimized mixing ratio between 10% and 50% by way of the lateral injectors and 90% to 50% by way of the top lance 1 (or top lances, respectively). On account of this running mode, substantially more gas (oxygen) per unit of time can be injected into the melt 14 in a small smelting assembly 11 without significantly more splashes arising.
List of Reference Signs
[0068] 1 Top lance [0069] 2 Water-cooled furnace cover/hat (hood) [0070] 3 Water-cooled upper vessel/upper furnace [0071] 3a Lateral wall upper vessel [0072] 4 Lateral wall injectors [0073] 5 Lower furnace having a fireproof cladding (hearth part) [0074] 6 Electrode arm [0075] 7 Electrode carrier columns [0076] 8 Valve station (oxygen valve station) [0077] 9 Transformer [0078] 10 Smelting electrodes/graphite electrodes [0079] 11 Smelting assembly [0080] 12 Cover opening(s) [0081] 13 Melt level [0082] 14 Melt