IP Library Patent Application 14111419
Patent Application
App. No. 14/111,419

METHOD FOR OPERATING ALTERNATING-CURRENT ELECTRIC ARC FURNACE, DEVICE FOR PERFORMING METHOD, AND ALTERNATING-CURRENT ELECTRIC ARC FURNACE HAVING SUCH DEVICE

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Quick Facts
Patent No.
US None
App. No.
14/111,419
Abstract

During operation of an alternating-current electric arc furnace, which has at least one electrode for producing a melt, vibrations are measured at a wall of a furnace vessel, whereby a slag height of the melt is determined. A rapid reaction to the change in the slag height is made possible by adjusting the arc length of the at least one electrode in the case of deviations of a measured actual value of the slag height from a target value.

Claims (37)

1 - 17 . (canceled)

18 . A method for operating an alternating-current electric arc furnace having at least one electrode for producing a melt in a furnace vessel, comprising:

measuring vibrations at a wall of the furnace vessel;

determining a slag height of the melt based on the vibrations measured; and

issuing, when a measured actual value of the slag height deviates from a target value, at least one of control signals and regulating signals to adjust an arc length of the at least one electrode.

19 . The method as claimed in claim 18 ,

wherein said method is applied to at least two periods of development of the slag, and

wherein the arc length of the at least one electrode is regulated depending on a development period.

20 . The method as claimed in claim 19 , wherein said method is applied to three periods of development of the slag.

21 . The method as claimed in claim 20 , wherein if the target value is undershot in a start period of the slag, development the arc length of the at least one electrode is reduced if solid material having a large size and shape value is located beneath the at least one electrode.

22 . The method as claimed in claim 20 , wherein if the target value is undershot in a start period of the slag, development the arc length of the at least one electrode is increased if solid material having a large size and shape value is located in a vicinity of the wall.

23 . The method as claimed in claim 20 , wherein if the target value is undershot in a start period of the slag, development the arc length of the at least one electrode remains unchanged and the period of operation of the at least one electrode is extended.

24 . The method as claimed in claim 20 , wherein if the target value is undershot in a slag period and in an end period of the slag, development the arc length of the at least one electrode is reduced.

25 . The method as claimed in claim 20 , wherein if the target value is exceeded, the arc length of the at least one electrode is increased.

26 . The method as claimed in claim 20 , further comprising regulating a carbon supply into the alternating-current electric arc furnace, if the slag height deviates from the target value.

27 . The method as claimed in claim 20 , further comprising regulating an oxygen supply into the alternating-current electric arc furnace, if the slag height deviates from the target value.

28 . The method as claimed in claim 20 , wherein said measuring measures the vibrations of the alternating-current electric arc furnace using at least one structure-borne sound sensor, in particular an acceleration sensor.

29 . The method as claimed in claim 20 , wherein said measuring measures the vibrations of the alternating-current electric arc furnace using an acceleration sensor.

30 . The method as claimed in claim 20 , wherein the alternating-current electric arc furnace has three electrodes, and

wherein said determining detects the height of foamed slag in a zone of the furnace vessel associated with each of the three electrodes.

31 . The method as claimed in claim 20 , wherein a fuzzy controller is used for regulation of the arc length of the at least one electrode.

32 . A device for controlling operation of an alternating-current electric arc furnace having at least one electrode for producing a melt in a furnace vessel, comprising:

at least one structure-borne sound sensor configured to acquire vibrations at a wall of the furnace vessel;

a processing unit configured to calculate an actual value of a slag height in the furnace vessel; and

a control or regulating unit configured to adjust an arc length of the at least one electrode in the case of deviation of the actual value of the slag height from a target value.

33 . The device as claimed in claim 31 , wherein the structure-borne sound sensor is an acceleration sensor.

34 . The device as claimed in claim 32 , wherein the control or regulating unit includes a fuzzy controller.

35 . An alternating-current electric arc furnace, comprising:

a furnace vessel having a wall;

at least one electrode configured to produce a melt in the furnace vessel; and

a control device, including

at least one structure-borne sound sensor configured to acquire vibrations at the wall of the furnace vessel;

a processing unit configured to calculate an actual value of a slag height in the furnace vessel; and

a control or regulating unit configured to adjust an arc length of the at least one electrode in the case of deviation of the actual value of the slag height from a target value.

36 . The alternating-current electric arc furnace as claimed in claim 33 ,

wherein the at least one electrode is three electrodes, and

wherein the at least one structure-borne sound sensor includes three structure-borne sound sensors, respectively provided for the three electrodes.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 16, 2016
From: SIEMENS AKTIENGESELLSCHAFT
To: PRIMETALS TECHNOLOGIES GERMANY GMBH
Reel/Frame 039707/0288 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 20, 2013
From: MATSCHULLAT, THOMAS; RIEGER, DETLEF
To: SIEMENS AKTIENGESELLSCHAFT
Reel/Frame 031834/0346 →