Title of Invention

METALLURGICAL FURNACE PROVIDED WITH A REFRACTORY LINING AND AN OUTER FURNACE STEEL JACKET WITH COPPER COOLING PLATES

Abstract A metallurgical furnace provided with a refractory lining and an outer furnace steel jacket, having copper cooling plates, wherein a flow of cooling medium flows through the cooling plates arranged between the furnace steel jacket and the refractory lining. Cooling medium pipes of the copper cooling plate provided for supplying and removing the cooling medium are guided through the furnace steel jacket to the exterior and are gas tightly welded to the furnace steel jacket. The copper cooling plate is connected free of play in all spatial directions to the furnace steel jacket, in addition to attachment by way of the cooling medium pipes welded to the furnace steel jacket, by at least one fixed-point fastening element that is welded to the furnace steel jacket. The at least one fixed-point fastening element is arranged within at least one of the upper part and the lower part of the copper cooling plate in immediate proximity of the cooling medium pipes. Figure 2.
Full Text

The invention relates to a metallurgical furnace provided with a refractory lining and an outer furnace steel jacket, such as a blast furnace, melt furnace or melt-reduction furnace with copper cooling plates.
Copper cooling plates (so-called Cu staves) made of copper or a low-alloy copper alloy with cooling medium channels arranged in their interior, manufactured by rolling, forging or casting, have normally four cooling medium pipes at the upper side and four cooling medium pipes at the lower side, wherein however also fewer or more cooling medium pipes can be provided, corresponding to the number of the cooling medium channels that are present.
It is known to fasten cooling plates of a furnace cooling system in very different ways to the inner surface of the furnace steel jacket. As a result of the changing thermal expansion of the cooling plates at different heat load, caused by the operation of the furnace, the type of fastening of the cooling plates is of utmost importance.
For example, it is known from DE-C-710 923 that cooling plates, which are secured by means of their water inlet and water outlet pipes inserted through the furnace steel jacket, are additionally suspended by securing and supporting cams on the furnace steel jacket.
Similarly, in U.S. Pat. No. 5,904,893 it is suggested to provide the cooling plates with a recess engaged by a supporting pin of the blast furnace steel jacket and to suspend them in this way from the furnace steel jacket.

In EP-A-0 837 144 the cooling plate is also suspended from the furnace steel jacket wherein the cooling plates have hooks which engage hooks welded to the furnace steel jacket. The hooks of the cooling plate can be formed as a rail for a better positioning of the cooling plate.
A fastening of a different type is suggested in DE-A-198 06 788. Here, the cooling plate is provided with a thread that extends through the furnace steel jacket so that the cooling plate can be attached to the furnace steel jacket by a screw connection.
Moreover, it is known from DE 27 43 380 Al to fasten cooling plates made of cast iron on the furnace steel jacket of a blast furnace by means of screws which are provided toward the exterior with a sealing cover. A disadvantage of this type of fastening is that, at high heat loads of the cooling plates, these fastening screws expand and the cooling plates can move in the direction toward the center of the furnace so that hot furnace gas flows through the gap between the cooling plates and the furnace steel jacket and heats the furnace steel jacket in an uncontrolled way.
In DE 31 GO 321 CI it is therefore suggested to cast protective pipes into the cooling plates which surround at a spacing the cooling medium pipes in the area of the furnace steel jacket penetrations, wherein the openings within the furnace, steel jacket are sealed against leakage of furnace gases and wherein at least one of these protective pipes serves as a stationary bearing by being welded to the furnace steel jacket and wherein further protective pipes arranged in the same

plane act as horizontally movable bearings. Moreover, at least one protective pipe, positioned opposite to the protective pipes serving as a stationary bearing, is configured as a vertically slidable bearing and the additional protective pipes arranged in this plane are provided as movable bearings. Each cooling medium pipe is connected by a disk with a metal compensator which is surrounded by a protective housing and is gas-tightly welded directly or by means of a pipe socket to the furnace steel jacket in order to seal the fastening locations of the cooling plate by means of protective pipes relative to undesirable furnace gas leakage.
From 296 08 464 Ul it is known to attach the cooling plate exclusively by means of its cooling medium pipes to the furnace steel jacket. In this connection, the cooling medium pipes are guided through bores in the furnace steel jacket and are elastically connected with the furnace steel jacket, on the one hand, by means of a compensator welded to the pipe socket and, on the other hand, by means of a wielding connection between the compensator and the cooling medium pipe.
It is an object of the invention to provide an attachment for copper cooling plates on a furnace steel jacket with which, without greater expenditure, the copper cooling plate can be mounted and removed and which makes it possible that at least some of the otherwise conventional compensators can be eliminated and which is also resistant to changing thermal loads.
This object is solved by a metallurgical furnace with copper cooling plates of the aforementioned kind.

Accordingly the present invention provides a metallurgical furnace provided with a refractory lining and an outer furnace steel jacket, such as a blast furnace, melt furnace or melt-reduction furnace, with copper cooling plates, which are arranged to be flowed through by a coolant between the furnace steel jacket and the refractory lining, wherein the coolant pipes of the copper cooling plate are, for the feed and discharge of the coolant, led to the outside through the furnace steel jacket and welded in gas-tight manner to the furnace steel jacket, characterised in that the copper cooling plate, in addition to the fastening by the coolant pipes welded to the furnace steel jacket, is connected in play-free manner in all three-dimensional directions with the furnace steel jacket by at least one fixed-point fastening element, for example by a fastening bolt, welded to the furnace steel jacket.
According to the invention, two basic fastening variants are conceivable in this connection which can be employed depending on the size of the copper cooling plate and the number of cooling medium channels or cooling medium pipes.
For example, it is possible to suspend the copper cooling plate from a fastening bolt or another fastening element which is located in immediate proximity to the upper and/or lower cooling medium pipes guided through the furnace steel jacket. In this case, the fastening element is connected with the furnace steel jacket and the copper cooling plate such that the fastening element acts as a fixed point in all spatial directions. The immediate proximity of the fastening element to the cooling medium pipes, on the one hand, as well as the very low thermal expansion of the copper, on the other hand, lead to the thermal expansions, to be expected as a result of relative temperature fluctuations

between the fastening element and the neighboring cooling medium pipes, being so minimal that the compensators on these cooling medium pipes can be eliminated. The cooling medium pipes can thus be welded directly, i.e., without compensators, to the furnace steel jacket and thus provide additional fixed points. The other cooling medium pipes are fastened, as is conventional, by means of compensators on the furnace steel jacket and provide thus movable points in all spatial directions. The copper cooling plate is moreover connected at further movable points by means of corresponding fastening elements, for example, screws with the furnace steel jacket with which movements caused by thermal expansion are possible in the vertical/horizontal direction.
A further variant for the attachment of the copper cooling plate resides in that the copper cooling plate is to be provided with at least one fixed point fastening element, for example, at the center of the copper cooling plate. The copper cooling plate, provided with additional movable point fastening elements, can then be welded entirely without compensators to the furnace steel jacket wherein all cooling medium pipes then act as additional fixed points. The thermal expansions to be expected between the fixed points, provided in this way, are so minimal that they can be neglected and no compensators are therefore required. The elimination of the compensators provides a significant advantage as a result of the reduced mounting and welding expenditure because a compensator would have to be welded in a gas-tight way, on the one hand, to the furnace steel jacket and, on the other hand, to the pipe socket of the copper cooling plate.
Those cooling medium pipes which do not require compensators according to the invention are gas-tightly welded from the exterior directly onto the furnace steel jacket and are arranged either by means of a perforated template or by

means of a simple cylindrical cup which enlarges the spacing of the fixed point of the welded cooling medium pipe relative to the body of the copper cooling plate even more.
With the attachment of the copper cooling plate according to the invention it is thus possible to mount copper cooling plates on metallurgical furnaces, in particular, blast furnaces or other melting and melt-reduction furnaces, in a simpler, faster, and less expensive way.
Further advantages, features, and details of the invention will be explained in more detail in the following with the aid of embodiments illustrated in the schematic drawing figures, wherein identical construction parts are identified with identical reference numerals. It is shown in:
FIG. 1 a plan view at the connecting side onto a copper cooling plate with one fixed-point fastening element arranged at the top,
FIG. 2 a side view of the copper cooling plate with furnace steel jacket according to FIG. 1,
FIG. 3 a plan view onto the connecting side of a copper cooling plate with two fixed-point fastening elements arranged at the center of the copper cooling plate,
FIG. 4 a side view of the copper cooling plate with furnace steel jacket according to FIG. 3.

In FIGS. 1 and 2 a plan view (FIG. 1) and a side view (FIG. 2) of the copper cooling plate 10 with four cooling medium channels (not shown) are illustrated whose cooling medium pipes 13, 14 for supplying and removing the cooling medium are arranged at the upper part and the lower part of the copper cooling plate 10. In immediate proximity of the upper cooling medium pipe 13 a fastening bolt as a fixed-point fastening element 11 is arranged which is welded with a washer 17 onto the furnace steel jacket 15.
As a result of the spatial proximity of the fixed-point fastening element 11 to the cooling medium pipes 13, these cooling medium pipes 13 can be welded directly, without the otherwise conventional compensators, onto the furnace steel jacket 15 with a washer 17.
The lower cooling medium pipes 14, which are moved spatially too far from the fixed-point fastening element 11, are connected in an unchanged way with compensators 16 to the furnace steel jacket 15.
Moreover, several movable point fastening elements 12, in the form of fastening screws in this embodiment, are arranged across the surface of the copper cooling plates 10 in a symmetrical distribution for the purpose of an additional attachment of the copper cooling plates 10 on the furnace steel jacket 15.
By means of the attachment according to the invention of the copper cooling plate 10 on the furnace steel jacket 15, the forces resulting from thermal expansion are received without problem wherein the upper cooling medium pipes 13 and the fastening bolt 11 are fixed points, the lower cooling medium pipes 14 with compensators 16 are movable points movable in all spatial

directions, and the fastening screws 12 act also as movable points in the vertical/horizontal direction.
In FIGS. 3 and 4 in a plan view (FIG. 3) and in a side view (FIG. 4) a further fastening type or embodiment according to the invention of a copper cooling plate 10' in connection with the furnace steel jacket 15 is illustrated. In this embodiment, two fixed-point fasting elements 11 (fastening bolts) are arranged at the center of the copper cooling plate 10'. In addition, as also disclosed in the embodiment of FIGS. 1 and 2, further moveable point fasting elements 12 (fasting screws) are present. In this fasting variant illustrated in FIGS. 3 and 4, all compensators can be eliminated because the relative thermal expansions between the fixed-point fasting elements and the fixed positions of the upper and also the lower cooling medium pipes 13 are so minimal that they can be neglected. The attachment of the copper cooling plate 10' in this case thus is comprised of the fixed points of the fastening bolts 11 and the welded cooling medium pipes 13, 14 as well as the movable points (in vertical/horizontal direction) of the fastening screws 12.
The invention is not limited to the illustrated embodiments; instead, in particular, with respect to the number and arrangement of the fixed-point and moveable point fasting elements as well as their configuration as bolts or screws, variants that depend on the size of the copper cooling plate are possible, as long as they enable the elimination of compensators in accordance with the invention.


WE CLAIM :
1. Metallurgical furnace provided with a refractory lining and an outer
furnace steel jacket (15) such as a blast furnace, melt furnace or melt-reduction
furnace, with copper cooling plates (10, 10'), which are arranged to be flowed
through by a coolant between the furnace steel jacket (15) and the refractory
lining, wherein the coolant pipes (13,14) of the copper cooling plate (10, 10')
are, for the feed and discharge of the coolant, led to the outside through the
furnace steel jacket (15) and welded in gas-tight manner to the furnace steel
jacket (15), characterised in that the copper cooling plate (10, 10'), in addition
to the fastening by the coolant pipes (13,14) welded to the furnace steel jacket
(15), is connected in play-free manner in all three-dimensional directions with
the furnace steel jacket (15) by at least one fixed-point fastening element, for
example by a fastening bolt, welded to the furnace steel jacket (15).
2. Metallurgical furnace as claimed in claim 1, wherein the copper cooling
plate (10,10') is fixedly connected with the furnace steel jacket (15) additionally
by at least one variable-point fastening element (12), for example a fastening
screw, which permits thermal expansion movements of the copper plate (10,
10') in horizontal and vertical direction.
3. Metallurgical furnace as claimed in claim 1 or 2, wherein one or more
fixed-point fastening elements (11) are arranged in the upper and/or lower part
of the copper cooling plate (10,10') in the immediate vicinity of the coolant
pipes (13,14).

4. Metallurgical furnace as claimed in claim 1 or 2, wherein one or more
fixed-point fastening elements (11) are arranged in the centre of the copper
cooling plate (10, 10').
5. Metallurgical furnace as claimed in claim 3 or 4, wherein at least a part of
the coolant pipes (13, 14) are welded directly to the furnace steel jacket (15)
without use of a compensator.
6. Metallurgical furnace provided with a refractory lining and an outer
furnace steel jacket with copper cooling plates, substantially as hereinabove
described and illustrated with reference to the accompanying drawings.


Documents:

in-pct-2002-0360-che abstract-duplicate.pdf

in-pct-2002-0360-che abstract.pdf

in-pct-2002-0360-che claims-duplicate.pdf

in-pct-2002-0360-che claims.pdf

in-pct-2002-0360-che correspondence-others.pdf

in-pct-2002-0360-che correspondence-po.pdf

in-pct-2002-0360-che description(complete).pdf

in-pct-2002-0360-che desription(complee)-duplicate.pdf

in-pct-2002-0360-che drawings-duplicate.pdf

in-pct-2002-0360-che drawings.pdf

in-pct-2002-0360-che form-1.pdf

in-pct-2002-0360-che form-19.pdf

in-pct-2002-0360-che form-26.pdf

in-pct-2002-0360-che form-3.pdf

in-pct-2002-0360-che form-4.pdf

in-pct-2002-0360-che form-5.pdf

in-pct-2002-0360-che pct.pdf

in-pct-2002-0360-che petition.pdf


Patent Number 202428
Indian Patent Application Number IN/PCT/2002/360/CHE
PG Journal Number 30/2009
Publication Date 24-Jul-2009
Grant Date
Date of Filing 08-Mar-2002
Name of Patentee SMS DEMAG AG
Applicant Address EDUARD-SCHLOEMANN-STRASSE 4, 40237 DUSSELDORF
Inventors:
# Inventor's Name Inventor's Address
1 REUFER, FRANZ POSSBERGWEG 38, 40629 DUSSELDORF
2 BRANDT, MARY IM TORFVEEN 13, 46147 OBERHAUSEN
3 KORBIK, ELMAR BEDINGRADER STRASSE 199, 45359 ESSEN,
4 KUBBUTAT, AXEL BERGSTRASSE 111, 46119 OBERHAUSEN
PCT International Classification Number C21B7/10
PCT International Application Number PCT/EP00/08726
PCT International Filing date 2000-09-07
PCT Conventions:
# PCT Application Number Date of Convention Priority Country
1 19943287.2 1999-09-10 Germany