METHOD FOR OPERATING A VACUUM MELTING SYSTEM AND VACUUM MELTING SYSTEM OPERATED ACCORDING TO THE METHOD
Metallurgical treatment of a steel melt is provided in a vacuum melting system in which acoustic signals generated in a pan receiving the steel melt are recorded with at least one structure-borne sound pick-up acoustically coupled directly or indirectly to the pan. The acoustic signals are used to determine a variable characterizing the operating state of the vacuum melting system.
1 - 10 . (canceled)
11 . A method for operating a vacuum melting system for metallurgical treatment of a steel melt, comprising:
detecting acoustic signals generated in a pan accommodating the steel melt by at least one structure-borne sound pick-up acoustically coupled indirectly or directly to the pan; and
detecting leakage in the vacuum melting system based on the acoustic signals.
12 . The method as claimed in claim 11 , further comprising determining at least one of height and depth of foamed slag located in the pan above a melt bath of the steel melt based on the acoustic signals.
13 . The method as claimed in claim 12 , further comprising determining a temporal differential quotient of the at least one of height and depth of the foamed slag.
14 . The method as claimed in claim 13 , further comprising controlling feeding of a process gas into the pan based on at least one of the height, the depth and the temporal differential quotient of the at least one of height and depth of the foamed slag.
15 . The method as claimed in claim 12 , further comprising controlling feeding of a process gas into the pan based on at least one of the height, the depth and the temporal differential quotient of the at least one of height and depth of the foamed slag.
16 . A vacuum melting system for metallurgical treatment of a steel melt in a pan, comprising:
at least one structure-borne sound pick-up acoustically coupled indirectly or directly to the pan, detecting acoustic signals generated in the pan; and
at least one programmed processor controlling operation of the vacuum melting system and detecting a leakage in the vacuum melting system based on the acoustic signals picked up by the at least one structure-borne sound pick-up.
17 . The vacuum melting system as claimed in claim 16 , wherein the at least one structure-borne sound pick-up is fixed to the pan.
18 . The vacuum melting system as claimed in claim 17 , wherein the at least one structure-borne sound pick-up is disposed in an upper area of the pan.
19 . The vacuum melting system as claimed in claim 18 , further comprising a system part surrounding the pan on which the at least one structure-borne sound pick-up is permanently installed.
20 . The vacuum melting system as claimed in claim 19 , wherein the at least one programmed processor further determines at least one of height and depth of foamed slag and/or a temporal differential quotient of the at least one of height and depth of the foamed slag based on the acoustic signals.
21 . The vacuum melting system as claimed in claim 20 , wherein the at least one programmed processor further regulates the at least one of height and depth of the foamed slag by controlling feeding of a process gas into the pan as a function of at least one of the height, the depth and the temporal differential quotient of the at least one of height and depth of the foamed slag.
22 . The vacuum melting system as claimed in claim 18 , wherein the at least one programmed processor further determines at least one of height and depth of foamed slag and/or a temporal differential quotient of the at least one of height and depth of the foamed slag based on the acoustic signals.
23 . The vacuum melting system as claimed in claim 22 , wherein the at least one programmed processor further regulates the at least one of height and depth of the foamed slag by controlling feeding of a process gas into the pan as a function of at least one of the height, the depth and the temporal differential quotient of the at least one of height and depth of the foamed slag.
24 . The vacuum melting system as claimed in claim 17 , further comprising a system part surrounding the pan on which the at least one structure-borne sound pick-up is permanently installed.
25 . The vacuum melting system as claimed in claim 17 , wherein the at least one programmed processor further determines at least one of height and depth of foamed slag and/or a temporal differential quotient of the at least one of height and depth of the foamed slag based on the acoustic signals.
26 . The vacuum melting system as claimed in claim 25 , wherein the at least one programmed processor further regulates the at least one of height and depth of the foamed slag by controlling feeding of a process gas into the pan as a function of at least one of the height, the depth and the temporal differential quotient of the at least one of height and depth of the foamed slag.
27 . The vacuum melting system as claimed in claim 16 , further comprising a system part surrounding the pan on which the at least one structure-borne sound pick-up is permanently installed.
28 . The vacuum melting system as claimed in claim 27 , wherein the at least one programmed processor further determines at least one of height and depth of foamed slag and/or a temporal differential quotient of the at least one of height and depth of the foamed slag based on the acoustic signals.
29 . The vacuum melting system as claimed in claim 16 , wherein the at least one programmed processor further determines at least one of height and depth of foamed slag and/or a temporal differential quotient of the at least one of height and depth of the foamed slag based on the acoustic signals.
30 . The vacuum melting system as claimed in claim 29 , wherein the at least one programmed processor further regulates the at least one of height and depth of the foamed slag by controlling feeding of a process gas into the pan as a function of at least one of the height, the depth and the temporal differential quotient of the at least one of height and depth of the foamed slag.