Method for inductively heating steel ingots on a transport shoe and device for carrying out the method
20250164188 · 2025-05-22
Assignee
Inventors
Cpc classification
F27D3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2003/0034
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B9/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F27B9/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B21C29/00
PERFORMING OPERATIONS; TRANSPORTING
C21D9/00
CHEMISTRY; METALLURGY
F27D3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A shell (10) acts as a transporting shoe for steel ingots, which are pushed through a preferably tubular induction furnace for inductive heating for the purpose of producing seamless tubes by the extrusion process. The shell (10) is formed in such a way that it partially reaches around the contour of the steel ingot to be heated. The shell is provided at one end leading in the pushing-through direction or transporting direction, with a shoulder (12), which extends at an angle to the transporting direction, against which the steel ingot rests in such a way that the pushed-through steel ingot takes the shell (10) along with it. A method for inductively heating steel ingots uses a shell (10) as described.
Claims
1. A device, comprising: a tubular induction furnace (1); a shell magazine (17A, 17B) with a plurality of shells (10), each of the shells (10) being made of a non-magnetizable or non-inductive sheet to serve as transport shoe for a steel ingot (2), wherein the shells (10) are respectively formed such that they partially reach around a contour of the steel ingot (2) to be heated, and wherein the shells (10) are provided at one end leading in a transporting direction with a shoulder (12), which extends at an angle to the transporting direction, against which the steel ingot (2) rests in such a way that the steel ingot (2) being pushed-through takes the shell (10) along with it; a first transport means for providing shells (10) at a loading station (15); a second transport means for feeding cold steel ingots (2) to the loading station (15), at which in each case a cold steel ingot (2) is placed on a shell (10); a device for sliding in steel ingots (2) placed on the shells (10); means for extracting heated steel ingots (2) from the tubular induction furnace (1); a third transport means for outfeeding the heated steel ingots (1); and means for separating the heated steel ingots (2) from the shells (10), wherein the third transport means, as the means for separating the heated steel ingots (2) from the shells (10), comprises at least one stop (25), which acts directly against an end face of the steel ingot (2) leading in the transporting direction of the heated steel ingot (2), and which is arranged in such a way that it acts as a stripper for the shell (10) when the shell (10) is lifted from the steel ingot (2), and wherein a height of the stop (25) is selected such that a lifting the heated steel ingot (2) with an ingot lifting device (24) causes the shell (10) to be stripped from the steel ingot (2), in case that the shell (10) sticks to the steel ingot (2).
2. The device according to claim 1, further comprising: at least one feed roller table (14) for cold steel ingots (2); a slide-in roller table (16) for receiving shells (10) with steel ingots (2) arranged thereon; at least one extraction roller table (21); and at least one outfeed roller table (22).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0032]
[0033]
[0034]
[0035]
[0036]
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[0039]
[0040]
DETAILED DESCRIPTION
[0041]
[0042] The induction furnace 1 has a cylindrical cross-section and comprises an outer steel shell 4 and an inner concrete lining 5, in which the induction coils 3 are cast. The furnace chamber 6 is formed to be hollow-cylindrical, its clear cross-section being only slightly larger than the cross-section of the steel ingots 2 to be heated. The steel ingots 2 to be heated are inserted on the feed side into the tube formed by the induction furnace 1, wherein an ingot column of a plurality of steel ingots 2 arranged one behind the other is formed in the tube, which is up to 8 m long, for example. One steel ingot 2 fed at a time pushes the steel ingots 2 located in the induction furnace 1 further. At the end of the induction furnace 1, there is a compensating chamber 9 (
[0043] To prevent such damage, a shell 10 is provided, which is used as a transporting shoe for one steel ingot 2 at a time. The shell 10 is shown in perspective in
[0044] As shown in
[0045] The shell 10 is provided with a centering shoulder 13 on each of its longitudinal sides running parallel to the longitudinal axis or axis of symmetry, which, as shown in
[0046] Instead of the centering shoulders 13, the shell 10 can be provided on its underside on the outside, for example, with sliding runners, ribs or beads, which likewise counteract the rotation of the assembly of shell 10 and steel ingot 2 within the induction furnace 1, for example in cooperation with the sheet metal strip 7.
[0047] The method is explained below with reference to
[0048] With reference to
[0049] Via the outfeed roller table 22, the steel ingot 2 and the underlying shell 10 travel together to an ingot lifting device 24, which lifts the steel ingot 2 vertically for further processing. The transport movement of the assembly of the shell 10 and the heated steel ingot 2 is stopped by a stop 25 extending over the outfeed roller table 22, which is formed as a yoke or a bridge. The height of the stop 25 is selected such that lifting the heated steel ingot 2 with the ingot lifting device 24 would cause the shell 10 to be stripped from the steel ingot 2, in the event that the shell 10 sticks to the steel ingot 2. The shell 10, which either falls back onto or remains on the outfeed roller table 22, is transported separately from the steel ingot 2 on the outfeed roller table 22 to a shell extraction position 26 (see
[0050] At the shell extraction position 26, the shell 10 is returned to one of the shell magazines 17A, 17B by means of a shell manipulator 27.
[0051]
LIST OF REFERENCE SIGNS
[0052] 1 Induction furnace [0053] 2 Steel ingot [0054] 3 Induction coil [0055] 4 Steel shell [0056] 5 Concrete lining [0057] 6 Furnace chamber [0058] 7 Sheet metal strip [0059] 8 Round steel bars [0060] 9 Compensating chamber [0061] 10 Shell [0062] 11 Leading end of steel ingot 2 [0063] 12 Shoulder [0064] 13 Centering shoulders [0065] 14 Feed roller table [0066] 15 Loading station [0067] 16 Slide-in roller tables [0068] 17 A First shell magazine [0069] 17 B Second shell magazine [0070] 18 Lifting device [0071] 19 Cylinder/ram assembly [0072] 20 Extraction pliers [0073] 21 Extraction roller table [0074] 22 Outfeed roller table [0075] 23 Cylinder/ram assembly [0076] 24 Ingot lifting device [0077] 25 Stop [0078] 26 Shell extraction position [0079] 27 Shell manipulator