The present application claims priority to European patent application serial number 21 206 173.3 filed on 3 Nov. 2021, the contents of which are incorporated fully herein by reference.
The present invention generally relates to a slag door arrangement (assembly) for a metallurgical furnace and/or to a method for cleaning the slag opening of a metallurgical furnace.
Metallurgical furnaces such as electric arc furnaces are known, for example, from EP 0 385 434 A2 (family member U.S. Pat. No. 5,153,894) or U.S. Pat. No. 4,679,773.
Electric arc furnaces (EAF) are available in various designs with regard to the tapping design. Tapping or tap refers, in relation to an action, to the process of draining or pouring liquid steel from the melting vessel during steelmaking, and refers, in relation to a device, to the corresponding design of the metallurgical melting vessel.
EAFs can have a tapping or tap in the form of a tapping spout or a tapping hole/tap hole, or a combination thereof, such as a submerged tap hole. There are different types of EAFs with tapping holes, such as EAFs with centric bottom tapping (CBT), with offset bottom tapping (OBT), or with eccentric bottom tapping (EBT). In an EAF with OBT, the furnace lower vessel is circular and the tapping hole is offset from the center. In the case of an EAF with EBT, the furnace lower vessel has a bay in which the taphole is arranged.
The various designs differ, for example, in the way they can be operated. Depending on the design, operation with or without sump (sump=liquid melt remaining in the vessel after a tapping) is possible. There are differences in the tilt angles required for tapping and the resulting design, differences in the required cable lengths for the power supply and therefore in the reactance, differences in the possibility of reducing the running-in of slag, etc.
During a melting process, the metal bath in a metallurgical furnace is covered by a layer of slag. Slag consists of molten, usually non-metallic, substances that are lighter than the molten metal of the metal bath and therefore float on the metal bath. In this application, the term slag also covers solids that are lighter than the molten metal of the metal bath and therefore float on the metal bath, although strictly speaking in metallurgy these solids are called dross. One of the functions of a slag layer is thermal shielding (insulation) of the metal bath.
On the one hand, mixing of the slag and the molten metal must be avoided during tapping. On the other hand, the slag itself is a valuable raw material. The slag is therefore largely removed from the top of the metal bath before tapping. This process is called deslagging. This deslagging is usually performed through a slag opening or slag tunnel in a side wall of the furnace vessel. The slag opening in an EAF is usually on a different side of the furnace vessel than the tapping, usually on the opposite side. For slag removal, the EAF is tilted toward the slag opening. Loss of metal from the metal bath must be avoided as much as possible. Typically, 80% to 95% of the slag in an EAF is removed/deslagged before tapping.
The slag opening or tunnel in the side wall of the furnace vessel is closed by a slag door during most of the melting process. The closure has several effects, including saving energy, preventing loss of metal and/or slag, and protecting operators. Slag door arrangements for closing the slag tunnel of a metallurgical furnace are known in the prior art.
A slag door arrangement with three door parts is known from WO 2007/147248 A1 (family members U.S. Pat. No. 8,124,004 and EP 2 044 377 B1). A first upper part of the slag door assembly is pivotable about a horizontal axis, located outside the furnace vessel and above the slag tunnel, between a closed position in the slag tunnel and an open position outside and above the slag tunnel. A second and a third lower portion of the slag door assembly are pivotable about respective vertical axes, located outside the furnace vessel and laterally to the right and left of the slag tunnel, respectively, between a closed position in the slag tunnel and an open position outside and laterally to the right and left of the slag tunnel, respectively. During the pivoting movement of the second and third parts of the slag door assembly from their opening position to their closing position, they are moved from outside the slag tunnel to inside the slag tunnel along the bottom of the slag tunnel and of the slag opening. Any objects on the bottom of the slag tunnel, such as slag residues, are thereby pushed into the slag tunnel. Cleaning the bottom of the slag tunnel to remove slag residues is effected by means of a pivoting movement from outside the furnace into the slag tunnel.
A slag door arrangement with two door parts is known from WO 2010/094584 A1 (family members U.S. Pat. No. 8,758,674 and EP 2 489 971 B1). A first upper part and a second lower part of the slag door arrangement are linearly displaceable outside the furnace vessel between a closed position and an open position outside and above the slag opening. The second lower portion of the slag door assembly is linearly movable along the bottom of the slag opening and of the slag tunnel into the furnace when in the closed position. Objects located on the bottom of the slag opening and of the slag tunnel, such as slag residues, are thereby pushed through the slag tunnel into the furnace. Cleaning the bottom of the slag tunnel to remove slag residues is effected by means of a linear movement from outside the furnace through the slag tunnel into the furnace.
A slag door arrangement is known from WO 2011/115919 A1 (family members U.S. Pat. No. 8,206,642 and EP 2 547 797 B1), in which a slag door unit can be pivoted about a horizontal axis, which is located outside the furnace vessel and above the slag tunnel, between a closed position in the slag tunnel and an open position outside and above the slag tunnel. Objects such as slag residues located on the bottom of the slag opening and the slag tunnel are thereby pushed into the slag tunnel and possibly into the furnace. Cleaning the bottom of the slag tunnel to remove slag residues is effected by means of a pivoting movement from outside the furnace into the slag tunnel.
EP 2 834 581 A1 (family member US 2015/0055673 A1) discloses a slag door assembly comprising a slag door, the width of which is wider than the width of a rectangular opening cross-section of the slag tunnel to close the same on the outside of the furnace vessel, a slag door pivoting device which can pivot the slag door about a horizontal pivot axis, and a slag door lifter adapted to move the slag door between a lower minimum lifting position and an upper maximum position, wherein the slag door lifter is mounted at (on) the furnace vessel and the slag door pivoting device is mounted at (on) the slag door lifter. ES 2 568 519 A1 and US 2001/0048187 A1 also disclose slag door assemblies.
It is one non-limiting object of the present techniques to disclose techniques for improving a slag door arrangement (assembly) for a metallurgical furnace and for improving a method for cleaning the slag opening of a metallurgical furnace.
In one non-limiting aspect of the present teachings, a slag door assembly (arrangement) for a metallurgical furnace has a furnace vessel with a slag tunnel having a rectangular opening cross-section provided laterally in (extended laterally through) the furnace vessel, the slag door assembly comprising a slag door, the width of which corresponds to the width of the rectangular opening cross-section of the slag tunnel with a clearance which allows movement of the slag door in the slag tunnel, a slag door pivoting device which can be pivoted about a horizontal pivot axis, and a slag door lifter on which the slag door is mounted and which is configured (adapted) to move the slag door between a (first) lower minimum lifting position and a (second) upper maximum lifting position perpendicular to the horizontal pivot axis, wherein the slag door pivoting device is pivotable for pivoting about the horizontal pivot axis through a range of pivot angles between a first pivot angle that spans from a vertical plane through (including) the horizontal pivot axis toward the furnace vessel and a second pivot angle which is in the vertical plane or spans from the vertical plane through the horizontal pivot axis in a direction away from the furnace vessel, and the slag door lifter is mounted on the slag door pivoting device in a manner that a pivoting movement of the slag door about the horizontal pivot axis and a lifting movement of the slag door in the direction perpendicular to the horizontal pivot axis are independent of each other.
The slag door assembly provides reliable sealing of the slag opening or slag tunnel of a metallurgical furnace during the melting process combined with improved cleaning of the slag opening or slag tunnel by performing a cleaning movement of the slag door from a position in the slag tunnel near (closest to) the interior of the furnace toward a position outside of the furnace and out of the slag tunnel.
The same is true for a metallurgical furnace equipped with the slag door assembly.
Another non-limiting aspect of the present teachings concerns a method for cleaning a slag opening of a metallurgical furnace, in particular an electric arc furnace, comprising a furnace vessel having a side wall, a slag tunnel provided laterally in (extended laterally through) the side wall of the furnace vessel with a rectangular opening cross-section and side walls, an upper outer edge and a bottom, a slag door assembly comprising a slag door, the width of which corresponds to the width of the rectangular opening cross-section of the slag tunnel with a clearance which allows movement of the slag door in the slag tunnel, a slag door pivoting device which can be pivoted about a horizontal pivot axis, and a slag door lifter on which the slag door is mounted and which is adapted to move the slag door between a (first) lower minimum lifting position and a (second) upper maximum lifting position perpendicular to the horizontal pivot axis.
In the method, the slag door pivoting device is pivotable for pivoting about the horizontal pivot axis through a range of pivot angles between a first pivot angle that spans from a vertical plane through the horizontal pivot axis toward the furnace vessel and a second pivot angle which is in the vertical plane or spans from the vertical plane through the horizontal pivot axis in a direction away from the furnace vessel, and the slag door lifter is mounted on the slag door pivoting device in a manner that a pivoting movement of the slag door about the horizontal pivot axis and a lifting movement of the slag door in the direction perpendicular to the horizontal pivot axis are independent of each other, and the horizontal pivot axis lies outside the furnace vessel. The method comprises:
a) moving the slag door pivoting device, after a deslagging operation in which the slag door is moved using the slag door lifter to or close to the (second) upper maximum lifting position, to a position pivoted about the horizontal pivot axis by a third pivot angle corresponding (equal) to the first pivot angle minus 0 to 5°;
b) moving the slag door using the slag door lifter in the direction of the (first) lower minimum lifting position to a predetermined distance (clearance) from the bottom of the slag tunnel so that the slag door projects obliquely into the slag tunnel from the outside at the top and faces its side walls with a clearance;
c) moving the slag door lifter about the horizontal pivot axis in the direction of the second pivot angle to a fourth pivot angle corresponding (equal) to the second pivot angle minus 0 to 5°, either while simultaneously moving the slag door using the slag door lifter to maintain at least the predetermined distance (clearance) from the bottom of the slag tunnel so that the slag door is moved parallel to and along the bottom at least at the predetermined distance (clearance), or in a movement on a circular section (arc) with a minimum distance (clearance) at the greatest (closest) approach to the bottom of the slag tunnel;
d) moving the slag door pivoting device about the horizontal pivot axis in the direction of the first pivot angle to a position pivoted by a third pivot angle corresponding (equal) to the first pivot angle minus 0 to 5° with the slag door moved toward the (second) upper maximum lift position such that the slag door is thereby moved a distance (clearance) from the floor greater than the predetermined distance (clearance) or the minimum distance (clearance); and
e) moving the slag door using the slag door lifter in the direction of the (first) lower minimum lifting position until the slag door contacts (e.g., scraps) the bottom of the slag tunnel, so that the slag door projects obliquely into the slag tunnel from the outside at the top and faces its side walls with a clearance.
The above-described method enables improved cleaning of the slag opening or slag tunnel of a metallurgical furnace by performing a cleaning movement of the slag door from a position in the slag tunnel (in which the bottom of the slag door is) near (closest to) the interior of the furnace toward a position (in which the bottom of the slag door is) outside of the furnace and out of the slag tunnel. Depending on the amount of contamination remaining in the slag opening or the slag tunnel of the metallurgical furnace, this cleaning movement can be performed several times at different distances (clearances) from the bottom of the slag opening or slag tunnel. For example, in one or more of the subsequent cleaning movements, the distance (clearance) between the bottom of the slag door (or another lowermost structure of the slag door, such as a slag pusher) and the bottom (floor) of the slag opening can be decreased as compared to a preceding cleaning movement, e.g., to a smaller positive clearance or even to zero.
The pivotal movement of the slag door about a horizontal pivot axis and the linear movement of the slag door in a direction perpendicular to the horizontal pivot axis, which are independent of each other, allow (enable) control of the cleaning movement of the slag door from a position (in which the bottom of the slag door is) in the slag tunnel near (closest to) the interior of the furnace toward a position (in which the bottom of the slag door is) outside of the furnace and out of the slag tunnel at controllably different distances (clearances) from the bottom of the slag opening or tunnel.
Further features and usefulness will be apparent from the description of examples of embodiments based on the figures.
The EAF 1 of
The furnace lower vessel 2a has an outer shell lined with refractory material (lining). The EBT has a taphole, not shown, which extends through the furnace lower vessel 2a, i.e. through the outer shell and the lining. The taphole is closed during meltdown and prior to tapping by a slide (not shown) on the underside of the furnace lower vessel 2a and is filled with a refractory filler material.
In a plan view, the bay 2e of the EAF 1 protrudes in the x-direction beyond (over) the circumference of the furnace upper vessel 2b.
The EAF 1 shown is an AC-powered EAF and has three electrodes 1e that extend through the furnace lid 2c into the furnace vessel during operation. The electrodes 1e are attached to electrode support arms 61, which are connected to the gantry (lifting and pivoting device) 60. In
A slag door arrangement 10 according to the present teachings can be retrofitted in conventional metallurgical furnaces or can be provided in new metallurgical furnaces. For example, a slag door arrangement 10 according to the present teachings can be installed in such a conventional EAF 1 of
A first embodiment of a slag door arrangement 10 according to the present teachings is described with reference to
The EAF 1 of
The furnace vessel 2 is shown in
The furnace vessel 2 comprises a slag tunnel 8 having a rectangular opening cross-section provided (extending) laterally in (through) the furnace vessel 2. The slag tunnel 8 comprises side walls 8s, an upper outer edge 8or and a bottom 8b. The upper outer edge 8or extends horizontally in the horizontal position of the furnace vessel and limits (defines) a top side of the rectangular opening cross-section. The side walls 8s each extend at a right angle to the upper outer edge (top outer rim) 8or and to the bottom 8b.
The slag door arrangement 10 includes: a plate-shaped slag door 11, the width of which corresponds to the width of the rectangular opening cross-section of the slag tunnel 8 with a clearance s that permits movement of the slag door 11 within the slag tunnel 8 and is shown schematically in
The slag door pivoting device 20 has a rocker arm 21, which is mounted laterally on both sides of the slag tunnel 8 on the furnace vessel 2 in such a way that it can be pivoted about the horizontal pivot axis H, and a hydraulic cylinder (linear actuator) 22, which is connected to the rocker arm 21 at one end and is mounted on the furnace vessel 2 at its other end. In the embodiments shown, the hydraulic cylinder 22 is arranged on the left side of the rocker arm 21 as viewed from the slag door side S. In
The slag door lifter 30 is mounted (attached) to (on) the slag door pivoting device 20. The slag door lifter 30 includes: a hydraulic cylinder 31, which is connected at one end to the slag door 11 and at its other end to the slag door pivoting device 20; and a linear guide 32, in which the slag door 11 is displaceably mounted and which is mounted on the slag door pivoting device 20.
The described arrangement allows (enables) a pivoting movement of the swing arm 21 to be independent of a linear movement of the slag door 11 in the linear guide 32.
The slag door pivoting device 20 is pivotable to pivot the rocker 21 and thus the slag door 11 mounted thereon about the horizontal pivot axis H, which in this embodiment is defined by the coaxial horizontal axes (shafts) 23, through a pivot angle range a between a first pivot angle a, in which one side or ray is a vertical plane E (see
The slag door arrangement 10 is attached to the furnace vessel 2 in such a manner that, in a horizontal tilt position of the furnace vessel 2, the plane E through the horizontal pivot axis H is perpendicular to the horizontal. The design of the slag door arrangement 10 causes the slag door 11, in a position of the slag door pivoting device 20 pivoted about the horizontal pivot axis H by a third pivot angle α′ corresponding (equal) to the first pivot angle a minus 0 to 5°, and in a position of the slag door lifter 30, in which the slag door 11 is moved in the direction of the (first) lower minimum lifting position U until it contacts the bottom 8b of the slag tunnel 8, projects obliquely into the slag tunnel 8 from the outside at the top and faces its side walls 8s with clearance s. This position is shown in
In the slag door arrangement 10, the slag tunnel 8 is fully open to the outside of the furnace vessel 2 when the slag door 11 is moved to a position that results when the slag door pivoting device 20 has been pivoted about the horizontal pivot axis H by a fourth pivot angle β′ corresponding (equal) to the second pivot angle β minus 0 to 5° and when the slag door lifter 30 had moved the slag door 11 to the (second) upper maximum lifting position O. This position is shown in
In the slag door arrangement 10, the lower edge of the slag door 11 contacts the floor 8b of the slag tunnel 8 when the slag door 11 is moved into a position defined by a pivoted position of the slag door pivoting device 20 about the horizontal pivot axis H by the fourth pivot angle β′, which corresponds to the second pivot angle β minus 0 to 5°, and into a position of the slag door lifter 30 in which the slag door 11 is moved in the direction of the (first) lower minimum lifting position U until it contacts the bottom 8b of the slag tunnel 8. This position is shown in
A slag pusher 14 is attached to the slag door 11 on its underside facing away from the horizontal pivot axis H. The slag pusher 14, which can be clearly seen in
A protective cover 40 is provided in a vertical direction above the slag door 11, the slag door pivoting device 20 and the slag door lifter 30. The outer dimensions of the protective cover 40 cover the slag door 11, the slag door pivoting device 20 and the slag door lifter 30 in each pivot and lifting position thereof in a vertical plan view. This can be seen clearly in
In the first embodiment, the plate-shaped protective cover 40 is pivotally mounted at a lateral edge about a horizontal axis to the upper edge of the furnace vessel or close to the edge. The plate-shaped protective cover 40 is also hinged to the rocker 21 via connecting bars 41. In the first embodiment, parts of the slag door arrangement 10 such as the upper end of the hydraulic cylinder 31 protrude in the height direction z up to the height of the upper furnace vessel 2b or beyond when the slag door pivoting device 20 is in the position pivoted by the fourth pivot angle β′ corresponding (equal) to the second pivot angle β minus 0 to 5° (see
In a plan view, the bottom 8b of the slag tunnel 8 is extended laterally beyond side wall 2s of the furnace vessel 2 to a bottom edge 8r. This edge 8r is located at the top of an end piece of the bottom of the slag tunnel 8, which has a round cross-section perpendicular to the y-direction so that the slag can run off over its round surface during deslagging.
In the slag door arrangement 10 of the first embodiment, the length of the bottom 8b in the x-direction and thus the position of the edge 8r of the bottom 8b of the slag tunnel 8 is selected such that the lower edge of the slag door 11 contacts the bottom 8b of the slag tunnel 8 with the slag pusher 14 at the bottom edge 8r when the slag door 11 is moved to a position which is produced by a position of the slag door pivoting device 20 being pivoted about the horizontal pivot axis H by the fourth pivot angle β′ corresponding to the second pivot angle β minus 0 to 5°, and to a position of the slag door lifter 30 in which the slag door 11 is moved in the direction of the (first) lower minimum lifting position U until it contacts the bottom 8b of the slag tunnel 8. This position is shown in
In the slag door arrangement 10 of the first embodiment, water-cooled plate-shaped panels 12 are provided on each of the side walls 8s of the slag tunnel 8. These panels 12 are each not provided starting directly from the bottom 8b, but starting from a certain height away (spaced apart) from the bottom 8b. From the bottom 8b up to this height, the side walls 8s are formed by parts of the furnace vessel 2 which are formed either of refractory material such as the lining or of slabs. Water-cooled plate-shaped panels would be too susceptible to mechanical damage from any scrap or fragments of the lining or the like which may have been carried along with the deslagged slag.
In
A water-cooled, preferably plate-shaped panel 12 is attached to the slag door 11 on the side facing an interior space of the furnace vessel 2, as can be seen clearly in
The control device 50 is configured (adapted) to control the pivot positions of the slag door pivoting device 20 and the lift positions of the slag door lift 30, and thus to control movements of the slag door arrangement 10 such that the slag door 11 performs a cleaning movement from a position in which a bottom portion of the slag door 11 is located within the slag tunnel 8 towards a position in which the bottom portion of the slag door 11 is located outside of the furnace vessel 2 and out of the slag tunnel 8. During the cleaning movement, the bottom portion of the slag door 11 is located at a selectable distance (clearance) from or in contact with the bottom 8b of the slag tunnel 8 for cleaning (e.g., scraping) the slag tunnel 8 after a slagging operation. This will be explained in more detail below.
However,
The pivot position of the slag door pivoting device 20 and the lifting position of the slag door lifter 30 and thus the position of the slag door 11 relative to the furnace vessel 2 and to the slag tunnel 8 and its floor 8b are identical in
During the movement of the slag door 11, the applied force is measured directly using transducers and/or indirectly by evaluating parameters of the actuators. When a predetermined first limit value (threshold) of the measured force is reached, the movement of the slag door 11 towards the (first) lower minimum lifting position U is stopped. If the remaining slag and other residues in the slag channel 8 are too thick, further movement of the slag door 11 towards the bottom 8b would possibly damage the equipment and/or pushing out the remaining slag and other residues would not be possible at once. Therefore, the movement of the slag door 11 from the inside to the outside is then performed at an appropriate distance (clearance) from the bottom 8b. Thereafter, the movement sequences are repeated. It is to be expected that when the slag door 11 is moved again from the position shown in
In the first embodiment, the amount of the pivot angle range a is therefore equal to that of the first pivot angle α. The design can be modified so that the second pivot angle β spans from the vertical plane E through the horizontal pivot axis H in the direction away from the furnace vessel 2 (e.g., such that the first side or ray of the second pivot angle β is the vertical plane E and the second side or ray of the second pivot angle β extends from a vertex in the vertical plane E that is on a (the) crossing line of the vertical plane E and a plane that is parallel to the horizontal axis H and parallel to the movement path of the slag door 11 in an most outwardly inclined pivot position of the slag door 11 (the position in which the upper end of the slag door 11 has the smallest distance from the side wall 2s of the furnace top vessel 2b) between the (first) lower minimum lifting position U and a (second) upper maximum lifting position O (in
In the first embodiment, the slag door 11 has a plate-shaped design because this makes it relatively easy to achieve a good seal of the slag tunnel 8. In principle, the slag door 11 could also have a curved or other structure whose outer contour (perimeter) is then adapted (conformed, matched) to the cross-sectional shape of the slag tunnel 8 for sealing the same in the closed position of the slag door 11.
In the second embodiment of a slag door arrangement 10, the cover 40 is also plate-shaped but is slightly curved rather than flat. The cover 40 is also not pivoted relative to the horizontal in the positions shown in
In the third embodiment of a slag door arrangement 10, the cover 40 is also plate-shaped, but is fixedly attached to the upper edge of the furnace vessel 2 rather than being movable. Its position does not change, unlike in the first embodiment. In the third embodiment, the pivoting range is different from the first and second embodiments. In the third embodiment, the second pivot angle β spans from the vertical plane E through the horizontal pivot axis H in the direction away from the furnace vessel 2, so that the amount of the pivot angle range σ is equal to the sum of the amounts of the first pivot angle α and the second pivot angle β.
Thereafter, the lifting position of the slag door lifter 30 is moved from the position shown in
Then, a pivoting movement about the pivot axis H is performed without changing the lifting position. As a result, the lower edge of the slag door 11 with the slag pusher 14 is not moved parallel to the bottom 8b at a certain distance but in a movement on a circular section (arc) with a minimum distance (clearance) from the bottom 8b at the greatest (closest) approach until the fourth pivot angle β′, which may be equal to the second pivot angle β, is reached (
Then these movements are repeated in
Then, a pivoting movement about the pivot axis H is performed without changing the lifting position. As a result, the lower edge of the slag door 11 with the slag pusher 14 is not moved parallel to the bottom 8b at a certain distance but in a movement on a circular section (arc) with a minimum distance (clearance) from the bottom 8b at the greatest (closest) approach until the fourth pivot angle β′, which can be equal to the second pivot angle β, is reached (
Afterwards, the lifting position can be changed again in the direction of the (second) upper maximum lifting position O, and, for example, a visual inspection of the slag tunnel 8 can be carried out by camera or by eye.
In the slag door arrangement 10 of any of the above-described embodiments, the angular range σ between the first pivot angle α and the second pivot angle β (i.e. the total or summation of the first pivot angle a and the second pivot angle β) is between 25° and 60°, preferably 25° or 30° or 35° or 40° or 41° or 45° or 50° or 55° or 60°. The first pivot angle α is in the range of 25° to 45°, preferably 25° to 35°, preferably 26° to 35° relative to the plane E through the horizontal pivot axis H and is preferably 25° or 26° or 35°. The second pivot angle β is in the range of 0° to 25°, preferably 0° to 20°, preferably 0° to 15° relative to the plane E through the horizontal pivot axis H and is preferably 0° or 5° or 10° or 15°.
All described cleaning movements can be implemented with all embodiments, since the pivoting and linear movements are independent of each other and can be controlled.
The variations and modifications described for the embodiments are in each case also applicable to all other embodiments.
The slag door arrangement is suitable (adapted) for use in metallurgical furnaces, especially EAFs having tapping masses from 50 to 200 tons.
It is explicitly emphasized that all features disclosed in the description and/or claims are to be considered separate and independent from each other for the purpose of the original disclosure as well as for the purpose of limiting the claimed invention regardless of the combinations of features in the embodiments and/or claims. It is explicitly stated that all range indications or indications of groups of units disclose any possible intermediate value or subgroup of units for the purpose of the original disclosure as well as for the purpose of limiting the claimed invention, in particular also as a limit of a range indication.
1 metallurgical furnace, 1e electrode, 2 furnace vessel, 2a furnace bottom vessel, 2b furnace top vessel, 2c furnace lid, 2s side wall, 3 furnace cradle, 4 hydraulic cylinder, 5 foundation, 6 floor, 7 slag door, 8 slag tunnel, 8s side walls, 8b bottom, 8r bottom rim, 8or upper outer edge, 10 slag door assembly, 11 plate-shaped slag door, 12 water-cooled panel, 14 slag pusher, 20 slag door pivoting device (slag door pivoter), 21 rocker arm, 22 hydraulic cylinder, 23 pivot axis, 30 slag door lifter, 31 hydraulic lift cylinder, 32 linear guide, 40 protective cover, 41 bar, 50 control device, 60 gantry, 61 electrode support arm, 71 exhaust manifold, S slag door side, A tapping side, K exhaust manifold side, P portal side, s clearance, H horizontal pivot axis, U (first) lower minimum lifting position, O (second) upper maximum lifting position, E vertical plane, σ pivot angle range, α first pivot angle, β second pivot angle, α′ third pivot angle, β′ fourth pivot angle, γ1 fifth pivot angle, γ2 sixth pivot angle, κ tilt angle
Number | Date | Country | Kind |
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21206173.3 | Nov 2021 | WO | international |