Claims
- 1. Method for operating a high-speed continuous casting plant for casting a metallic strand (1.7), in particular, a slab, with casting speeds of maximally 10 m/min., comprising an oscillating casting mold (1) which comprises oppositely positioned casting mold narrow sides having an operating side and a driving side (1.2.1, 1.2.2) and faces having a fixed side and a loose side (1.3.1, 1.3.2), in particular comprised of copper plates, wherein molten mass flows via a submerged exit nozzle (1.5) or a nozzle from a distributor (6) into the casting mold (1) and the distributor (6) comprises a movable stopper (6.1) or a slide closure for regulating the inflowing molten mass quantity, the method comprises the steps of: providing with or without casting powder (1.6), determining the actual casting state by measuring the following parameters during the casting process (online):meniscus level (9) of the molten mass in the casting mold (1) in mm/min., temperature (6.2) of the molten mass in the distributor (6) over the casting time, actual casting speed in m/min over the casting time, wherein furthermore the following is measured:stopper or slide closure movement (6.1.1) as a measure for the oxidic purity over the casting time, heat flow via the casting mold faces (WF; WL), heat flow via the casting mold narrow sides (NO; ND) in MW/m2 over the casting time, and determining changes of the actual casting state based on the stopper or slide closure movement, the meniscus movement as well as the change of the heat flows via the casting mold faces over a predetermined time interval, andthat, should the changes be within a predetermined nominal interval, operation is switched to automated casting operation, which includescomparison of the heat flow ratios of each individual narrow side or face for an angular adjustment of the narrow side conicity, in particular, the narrow side copper plate conicity, relative to one another for a correction in relation to the heat flows via the faces, and adjustment of a maximum permissible possible casting speed as a function of melting temperature in the distributor and the corresponding material to be cast or that, should the changes of at least one some of or all of the parameters for determining the casting state be outside of a predetermined nominal interval, a semi-automatic control of the angular adjustment of the casting mold narrow sides as well as the casting speed is maintained.
- 2. Method according to claim 1, wherein, after switching has been carried out to an automated operation upon surpassing predetermined limits of changes of the casting parameters, an alarm (11.2) is triggered and operation is switched back to a semi-automated operation.
- 3. Method according to claim 1, wherein the dependency of the melting temperature in the distributor and the maximum possible casting speed is set for each steel group, for example, “low carbon”, “medium carbon”, and “high carbon”.
- 4. Method according to claim 1, wherein the heat flows per surface unit of the fixed side as well as the loose side of the casting mold faces (W) are measured and that the heat flows per surface unit of the operating side (NO) and drive side (ND) of the casting mold narrow sides are measured, that the changes of the respectively measured values are determined over a predetermined casting time interval, and, should the changes of at least some of the recorded values be within a predetermined limit interval, switching to an automated operation is carried out, wherein the limit interval is defined by:the change of the stopper movement is maximally ±2 mm/time unit, the change of the meniscus level is maximally ±5 mm/time unit, the change of the heat flows of the casting mold faces is maximally ±0.10 MW/m2 absolute and relative to one another, that the heat flow ratio of the narrow sides to the faces is as follows 0.9>NO/W, ND/W>0.4 after completion of switching to automated operation, regulating the angular adjustments of the narrow sides by means of controlling the adjusting cylinder so that the ratio of the heat flows of the narrow sides over the faces is within the following limit interval0.8>NO/W, ND/W>0.6, measuring the actual melting temperature in the distributor, controlling the maximum permissible casting speed as a function of the melting temperature and the alloy composition.
- 5. Method according to claim 4, wherein the correction of the angular adjustment of the narrow sides is carried out automatically in steps of 0.1 mm/adjusting action.
- 6. Method according to claim 4, wherein, in addition to the alloy composition, the casting powder is also used as a parameter in the control of the maximum permissible casting speed.
Priority Claims (1)
Number |
Date |
Country |
Kind |
199 25 713 |
Jun 1999 |
DE |
|
CROSS REFERENCE TO RELATED APPLICATION
This application is a 371 of PCT/EP00/05216, filed on Jun. 7, 2000.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/EP00/05216 |
|
WO |
00 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO00/74878 |
12/14/2000 |
WO |
A |
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