The invention relates to a tiltable metallurgical vessel with a support ring which at least partially surrounds the metallurgical vessel at a distance from it, supporting brackets which are fastened to the metallurgical vessel resting on the support ring and the metallurgical vessel being releasably fixed on the support ring by a number of clamping devices which can be actuated by pressure medium cylinders, each clamping device interacting with a locking bracket fastened to the metallurgical vessel and the clamping device being formed in such a way that it can move from a release position, releasing the locking bracket, into a clamping position, clamping the locking bracket together with the support ring, and vice versa.
Specifically, the invention relates to a clamping device for supporting and fastening a tiltable converter on a support ring which at least partially surrounds it at a distance.
Metallurgical vessels of this type, as are predominantly used in steel works for producing and refining steel melts, are exchangeable vessels which have to be changed at intervals over the course of time in order for it to be possible for their refractory lining to be renewed or for other repairs to be carried out on them.
Tiltable metallurgical vessels, such as converters, are exposed to high thermal loads on account of the metallic melts treated in them and release large amounts of heat to the environment through radiation. To keep the thermal loading on the supporting framework of the metallurgical vessel at a low level, the metallurgical vessel is therefore usually arranged in a support ring, which is designed either as a continuous annular welded structure or as an open horseshoe-shaped welded structure. The support ring can pivot about a horizontal axis and has support pins which are mounted in a supporting framework. The metallurgical vessel may be suspended in the support ring or rest on it or be supported on it. Possible design variants of this type are described in EP-B 0 029878 B1, in which a nonpositive connection is maintained between the support claws on the metallurgical vessel and support straps on the support ring by means of hasp screws. The tightened hasp screws reliably avoid lateral movement of the metallurgical vessel even in a tilted position of the vessel. However, manual unscrewing of the hasp screws not only takes up considerable time but is also extremely arduous work for the maintenance personnel on account of the action of heat, the release of dust, the risk of falling and the confined space available in this area, and can be carried out only with considerable expenditure on safety.
To minimize the risk of accidents for the maintenance personnel and to make the installation work easier, the fastening systems have been improved. For example, DE 102 51 964 A1 discloses a quick-acting fastening for a metallurgical treatment vessel on a support ring with which opposing vessel brackets and support ring brackets can be clamped together in a secured closed position by means of a toggle closure and can be easily released in an opposite actuating direction (release position). For clamping and releasing these toggle closures, a hydraulic handling device to be manually fitted is proposed, but the basic problem of hazardous use for the maintenance personnel is not really solved.
DE 25 11 610 A1 and EP 1 533 389 A1 already disclose embodiments of clamping devices which avoid the maintenance personnel being used directly for releasing the clamping elements on the support ring at a great height above the casting floor by the clamping and releasing operation being performed by hydraulic elements. In the embodiment according to FIG. 9 of DE 25 11 610 A1 and in the embodiment according to FIGS. 4a and 4b of EP 1 533 389 A1, the clamping device respectively comprises a pair of hooks with which a bracket on the converter can be engaged from behind in the manner of pincers, and consequently compressive forces acting in the direction of the support ring can be applied, fixing the converter in its position on the support ring. The arrangement of the linkage in the manner of a toggle lever mechanism ensures a self-locking clamping position of the clamping device. The embodiments of clamping devices that are otherwise represented in DE 25 11 610 A1 are much more sophisticated in their structural design and require successive actuation of pressure medium cylinders, a bearing bush locking element being pivoted into a clamping position in a first step and this bearing bush locking element being fixed by a tie anchor engaging over it in a second step. This last-cited embodiment is not suitable, however, for the specific location where it would be used.
The present invention aims to avoid these disadvantages and difficulties and is based on the object of proposing a tiltable metallurgical vessel in a further embodiment in which the production of a secured connection and the opening of this secured connection between a metallurgical vessel and a support ring can be carried out with a minimal number of components in an environment that is largely protected from the action of heat and the discharge of slag.
This object is achieved according to the invention by the clamping device comprising at least one housing, a clamping anchor, a pivoting lever and a pressure medium cylinder acting on the pivoting lever, by the clamping anchor being guided in a pivotably movable manner in a slotted guide in the housing and pivotably articulated on the pivoting lever and by the pivoting lever being pivotably supported in the housing.
An expedient further refinement of the device according to the invention consists in that the clamping anchor has a clamping anchor shank and a clamping head with a supporting surface, in that the locking bracket has an insertion slot for receiving the clamping anchor shank and a mating supporting surface for supporting the clamping head, in that, in the clamping position, the supporting surface of the clamping head is pressed against the mating surface of the locking bracket and, in the release position, the clamping head is positioned outside the insertion slot and allows a movement lifting the metallurgical vessel off the support ring. With this special design of the clamping anchor and the locking bracket, a central clamping force acting perpendicularly on the locking bracket and parallel to the axis of the converter is applied using only a single clamping anchor that can be pivoted in and out.
The fact that the clamping device forms or comprises a toggle lever mechanism which triggers self-locking at a self-locking point in the clamping position and the displacement path of which is delimited by a stop which is preferably formed by the end of the groove of the slotted guide means that the advantage that is in fact already achieved in the case of known clamping devices is also equally realized with the solution according to the invention of a simple construction. However, there is also the possibility of providing a stop delimiting the displacement path elsewhere in the housing of the clamping device or in some other way to achieve the same effect.
The clamping device is designed for a high clamping force, ensuring that the clamping effect is definitely maintained, with which forces and moments that occur specifically while the metallurgical vessel is being tilted during charging and emptying are taken into consideration. In order that the self-locking point of the toggle lever mechanism can be passed through, it is necessary that the clamping device is assigned an expansion element, with which tensile stresses otherwise occurring when the self-locking point is passed through are limited in their magnitude. The expansion element is expediently integrated in the clamping anchor. Preferably, the expansion element comprises a spring assembly, formed by a number of cup springs.
The clamping device is based on special kinematics. By arranging a special slotted guide in the housing of the clamping device, these kinematics are set in such a way that, during the transfer from the clamping position into the release position, in a first movement phase, the clamping head of the clamping anchor is moved such that it is lifted off the mating supporting surface on the locking bracket, consequently predominantly in a direction perpendicular to the mating supporting surface on the locking bracket, and that, in a further movement phase, the clamping head of the clamping anchor is moved with a predominantly pivoting movement out of the region of the insertion slot of the locking bracket. The special first movement phase, which comprises the lifting of the clamping head off the mating supporting surface on the locking bracket, has the effect of avoiding horizontal forces acting on the clamping device as a result of a frictional horizontal movement of the clamping head.
The slotted guide in the housing of the clamping device is formed by a slot which is arcuate in its longitudinal extent and in which a guiding bolt of the clamping anchor engages and is guided in a sliding manner.
The arrangement of all the components of the clamping device in a common housing which is not an integrated part of the support ring means that the clamping device forms a preassembled module which can be easily installed on corresponding wall elements of the support ring. This in turn gives rise to advantages for the maintenance personnel and the availability of the installation, since each clamping device can be exchanged within an extremely short time in every case that maintenance work becomes necessary.
Pneumatic cylinders are used with preference for actuating the clamping device.
Damage to the clamping device, and in particular the pressure medium cylinder, caused by slag and steel being thrown out, in particular during the blowing phase in a steel-making converter, or by slag and metal skulls falling from the mouth of the converter, can be avoided by the locking bracket being surrounded by an enclosure that is open in the direction of the support ring and this enclosure being fastened to the metallurgical vessel. In addition, the pressure medium cylinder and the moving parts of the clamping device are accommodated in a protected manner in the housing of the clamping device and possibly also shielded by components of the support ring.
Further advantages and features of the present invention emerge from the following description of an exemplary embodiment, which is not restrictive, reference being made to accompanying figures, in which:
a shows the arrangement of the clamping devices according to the invention on the support ring in the case of a converter vessel that is not represented, in the clamping position,
b shows the arrangement of the clamping devices according to the invention on the support ring in the case of a converter vessel that is not represented, in the release position,
In
The clamping device 6 according to the invention is represented in
The clamping anchor 9 is provided with an expansion element 26, which is represented in
The slotted guide 10 is assigned to the supporting plates 8c of the housing 8 of the clamping device lying opposite each other. It is substantially made up of arcuate guiding grooves 30, in which the guiding bolt 11 engages in a sliding manner. The guiding bolt 11 is connected to the clamping anchor 9 and oriented such that it is perpendicular to the longitudinal axis of the clamping anchor and parallel to the pivoting axis of the pivoting joint 17. In the clamping position, the guiding bolt 11 is in an end position in the guiding groove 30, as represented in
In
The upper image shows the clamping device 6 and the locking bracket 7 in the clamping position. The guiding bolt 11 of the clamping anchor 9 is located in the lower end position of the slotted guide 10 and the pressure medium cylinder 14 is located in the end position provided for the clamping position. These positions are set in such a way that self-locking of the kinematic system is obtained and release of the clamping between the converter and the support ring is only possible after passing through the self-locking point when the pressure medium cylinder is subjected to corresponding pressure. This must involve overcoming the force of resistance applied by the cup spring assembly of the expansion element. The lifting movement of the clamping anchor, and in particular of the clamping head, off the mating supporting surface of the locking bracket is essentially determined by the slotted guide. When the pressure medium cylinder is subjected to further pressure, a lifting of the clamping head 19 off the mating supporting surface 22 is brought about in a first movement phase of the clamping anchor by a movement that takes place predominantly in a direction perpendicularly away from the mating supporting surface. In a further movement phase, a pivoting movement is predominantly imposed on the clamping head. In this phase, a position of the clamping anchor such as that represented in the middle image of the series of images is achieved. When the pressure medium cylinder is subjected to further pressure, the guiding bolt 11 of the clamping anchor 9 moves to the upper end point of the slotted guide 10 and the pressure medium cylinder 14 reaches the end position that corresponds to the release position of the clamping anchor. In this position, the clamping head is entirely outside the insertion slot 21 of the locking bracket 7, as represented in the lower image of the series of images of
Number | Date | Country | Kind |
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A1475/05 | Sep 2005 | AT | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP06/08501 | 8/31/2006 | WO | 00 | 3/14/2008 |