Slide closure on the spout of a metallurgical vessel
20180345364 ยท 2018-12-06
Assignee
Inventors
Cpc classification
B22D11/186
PERFORMING OPERATIONS; TRANSPORTING
B22D41/54
PERFORMING OPERATIONS; TRANSPORTING
B22D41/22
PERFORMING OPERATIONS; TRANSPORTING
B22D41/24
PERFORMING OPERATIONS; TRANSPORTING
B22D41/36
PERFORMING OPERATIONS; TRANSPORTING
Y02P10/25
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
International classification
B22D41/36
PERFORMING OPERATIONS; TRANSPORTING
B22D41/24
PERFORMING OPERATIONS; TRANSPORTING
B22D2/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Slide closure unit on the spout of a metallurgical vessel, preferably a copper-anode furnace, includes a housing in which refractory closure plates, as well as at least one connecting refractory inner casing, are arranged. A removable induction heater is provided, having at least one induction coil surrounding the refractory inner casing outside of the housing. In this way, it is possible to constantly keep the melt located in the outlet channel of the spout sufficiently warm so that it does not freeze before and/or during the pouring of the melt, or that any frozen metal and/or slag can be melted in the spout.
Claims
1. A slide closure unit on the spout of a metallurgical vessel, preferably a copper-anode furnace (1), comprising a housing (9) in which refractory closure plates (6, 8) as well as at least one connecting refractory inner casing (13) are arranged, characterized in that a removable induction heater (14) is provided, having at least one induction coil (15) at least partially surrounding the at least one refractory inner casing (13) outside of and/or within the housing (9).
2. The slide closure unit according to claim 1, characterized in that the induction heater (14) is provided with an induction coil (15) that has these encasing cooling chambers (18, 19) and that surrounds the spout (5).
3. The slide closure unit according to claim 2, characterized in that the induction coil (15) is embedded in a supporting body (17) made of ferritic material and is provided with a cooling chamber (18) that encloses the supporting body (17) peripherally and with a cooling chamber adjacent to the side wall of the supporting body directed towards the furnace.
4. The slide closure unit according to claim 3, characterized in that the supporting body (17), along with the cooling chambers (18, 19) surrounding it, is fitted removably in a support plate (23) fastened to the spout (5), a spacer ring (24) supported against the supporting body (17) being inserted between said support plate and the slide closure (6).
5. The slide closure unit according to claim 2, wherein the induction coil (15) and the cooling chambers (18, 19) of the induction heater (14) are fed with a coolant by means of a cooling system (16) that has a cooling unit (29) in the vicinity of the furnace.
6. The slide closure unit according to claim 5, characterized in that solidification of the melt and/or slag in the spout of a furnace can be achieved with the cooling system (16) of the induction coil.
7. The slide closure unit according to claim 5, wherein the cooling system (16) with the cooling unit (29) also supplies a generator (27) and a transformer (28) to supply the power supply of the induction coil (15) with a coolant.
8. An induction heater for a spout on a metallurgical vessel, preferably on a copper-anode furnace (1), characterized in that at least one induction coil (15) at least partially surrounding the at least one refractory inner casing (13) of the spout is provided.
9. A spout on a metallurgical vessel having a slide closure unit according to claim 1, having a perforated brick disposed in the refractory furnace lining, characterized in that wherein the perforated brick (11) is connected to a refractory inner casing (13) forming the outlet channel (12) of the spout, which inner casing is provided in the region of the induction coil (15) with an annular refractory insert (30) made of a material increasing the heating effect and that has the appropriate electrical and thermal properties.
10. The spout according to claim 9, characterized in that the insert (30) is produced from graphite or material containing graphite or at least partially from SiC or from a coated graphite.
11. The spout according to claim 9, wherein the inner casing (13) is provided in the region of the annular insert (30) with a hard layer (31) protecting the inner surface of the insert, preferably made of clay or SiC.
12. The spout according to claim 11, characterized in that the hard layer (31) is extended beyond the annular insert (30).
13. The spout according to claim 9, wherein the at least one inner casing (13) with the insert (30) can be inserted into the perforated brick (11) from the outside.
Description
[0011] In the following, the invention is explained in more detail by means of an exemplary embodiment with reference to the drawings. These show as follows:
[0012]
[0013]
[0014]
[0015]
[0016] Instead of a copper-anode furnace, other vessels with the slide closure or a similar closing device could also be provided, such as for example, a converter with a run-off which is formed from a number of aligned casings without a perforated brick, a flash smelting furnace, an electric melting furnace or similar metallurgical vessels.
[0017] The slide closure 10, of which not all details are displayed, is designed in a conventional manner. In particular, the latter is provided with a housing 9 fastened to the outside of the furnace, into which housing at least one refractory closure plate 6 is inserted and an inner casing 13 adjoining above the latter is fastened detachably. This slide closure 10 additionally has a moveable refractory slider plate 8, as indicated, which is held in a unit (not detailed) and is pressed against the upper closure plate 6 and can be moved relative to the latter into an open or closed position of the slide closure.
[0018] According to the invention, a removable induction heater 14, which has an induction coil 15 surrounding the inner casing 13 above the housing 9, is placed on the spout 5. Advantageously, there is assigned to the housing 9 a support ring 23 which is fixed in a holding plate 2 fastened in the steel cladding 2 of the furnace 1.
[0019] In order to optimize the heating effect of the induction coil 15 in the outlet channel 12 of the spout, an annular insert 30, preferably made of graphite or a material containing graphite, is provided in the inner casing 13 in the region of the induction coil 15. Advantageously, the insert 30 is provided with an insulating layer on the rear side and/or on both front sides.
[0020] Depending on the molten metal and/or the slag that is to be poured, it is advantageous if the inner casing 13 is provided with a hard layer 31, preferably made of zo clay Al.sub.2O.sub.3 or SiC, in the region of the insert 30, by means of which layer the inner surface of the insert is protected against the outflowing melt and/or the slag and/or oxidizing gas, such as for example air. The hard layer 31 may optionally be extended beyond the annular insert 30. In order to facilitate fitting, the inner casing 13 is centered in the housing 9 and in the spacer ring 24 and is inserted into the perforated brick 11 from the outside.
[0021] Alternatively, the annular insert 30 could be produced at least partially from SiC, on which no hard layer is to be provided on the inside, or it could be produced from a coated graphite.
[0022] As is evident from
[0023] The housing 9 is fastened to the support plate 23 or the holding plate 2 and can be separately fitted and removed together and with the inner casing 13 from the induction heater 14 with the supporting body 17, the induction coil 15 and the cooling chambers 18, 19.
[0024]
[0025] In the copper-anode furnace 1, an external generator 27 and a transformer 28 connected to the latter via lines 25, are preferably provided in the spout for the operation of the induction heater 14, said transformer being attached, for example, to zo the furnace 1. In addition, this power supply line 26 leading from the transformer 28 to the induction coil 15 as well as the cooling line are provided. The generator and the transformer could also be formed as one unit and be attached to the furnace or be positioned separately from the latter.
[0026] By means of a cooling system 16 having a cooling unit 29 and feed and return lines 20, 21 on the one hand, coolant is conveyed into the induction coil 15 and the cooling chambers 18, 19 of the induction heater 14, and on the other hand to the generator 27 and the transformer 28 with sufficient cooling capacity.
[0027] The invention can basically also be used in all metallurgical furnaces the spout of which is provided with a slide closure disposed on the end of the spout.
[0028] The induction heater 14 according to the invention is activated either manually or automatically in cooperation with the actuation device of the slide closure. Depending on the type or structure of the furnace, a number of induction coils distributed over the length of the spout can be included.