Document zo4Lz5qRnBvyL64kvwE4n5kqz
United States Patent m
Hyde
tni 4,201,543
[45] May 6,1980
[54] HOT BLAST STOVE BREAST WALL
[75] Inventor: Jack Hyde, Pittsburgh, Pa.
[73] Assignee: Koppers Company,Inc., Pittsburgh, Pa.
[21] Appl. No.: 928,244
[22] Filed:
Jul. 26, 1978
[51] Int. Cl.*................................................ C21B 9/00 [52] U.S. Q........................................ 432/217; 432/218 [58] Field of Search ............... 432/214, 216, 217, 218
[56] References Cited
U.S. PATENT DOCUMENTS
3,488,041 1/1970 Powell et al............................. 432/217 3,806,313 4/1974 Van Laar et al........................ 432/217
Primary Examiner--John J. Camby Attorney, Agent, or Firm--R. Lawrence Sahr
[57] ABSTRACT
A breast wall construction of a blast furnace hot blast stove includes a free-moving vertical arch composed of reverse wedge interlocking refractory shapes which form a monolithic unit upon differential heat expansion of the breast wall when the blast stove is operating in the on-gas mode.
10 Claims, 5 Drawing Figures
39
15
U.s. Patent May 6, 1980
Sheet 1 of 3
4,201,543
FIG. 1
39
FIG. 2
FIG. 3
U.S. Patent May 6, 1980
Sheet 2 of 3
4,201,543
FIG. 4
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U.S. Patent May 6, 1980
Sheet 3 of 3
FIG. 5
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REFERENCE POINT1800 FROM COMBUSTION CHAMBER MIDPOINT
1 4,201,543
2
higher average temperature, i.e., less of an amount of
HOT BLAST STOVE BREAST WALL
cold blast being required in the mixture to produce a
BACKGROUND OF THE INVENTION
uniform temperature, then the more efficient can be the operation of the blast furnace to which the hotter blast
1. Field of the Invention
5 is being fed.
The invention is related generally to blast furnace
Practically, the increases in surface area within the
equipment as utilized in the manufacture of steel and, checker chamber are limited by the requirement that
more specifically, to the construction of side-combus the structural integrity of the checker brick must be
tion hot blast stoves used to preheat the blast before maintained. It is a well-known axiom that the greater
introduction of that blast into a blast furnace.
10 amount of surface area exposed in a checker brick, the
2. Background of the Prior Art
thinner the wall sections of the checker must be. But
The conventional construction and operation of side- this axiom must be limited in practice by the physical
combustion hot blast stoves is aptly set forth in "The limitations applicable to the checkers. Checker brick
Making, Shaping and Treating of Steel", 1971 edition, wall or section thickness cannot be reduced below cer published by U.S. Steel Corporation, at pages 439-441. 15 tain limitations because of the lateral crush forces that
Included in this treatise are general diagrams of conven are imposed on the checker brick in operation in the
tional hot blast stove design and construction.
checker chamber. Thus, in known design techniques the
The function of the breast wall in a hot blast stove is maximum heat transfer area available within a checker
to separate and insulate the side-combustion chamber chamber of a particular size is limited by the lateral from the refractory checker chamber. The breast wall 20 stresses that will be imposed by the differential expan
must be structurally sound to support the side-combus sion of the breast wall.
tion chamber so as to maintain the refractory checkers
Vertical arch forms for hot blast stove breast walls
free of lateral stress. In addition, the breast wall is re have long ago been tried as such forms appeared to
quired to be gas tight to prevent lateral leakage back provide a rather simplified structure which was rela
and forth between the combustion chamber and the 25 tively less costly to construct and maintain as well as
checker chamber.
providing space economy. However, it was found that
Older designs of checkers utilized rather rugged thick the conventional arch pattern, formed with regular
sections for the checker cross section. This thick-sec key-shaped refractory brick, increased beyond tolerable
tion type of design necessarily reduced the overall area of refractory available in the checker chamber for heat transfer. However, the thick sections were deemed
30
limits the lateral stress imposed onto the checker brick within the checker chamber. Rapid deterioration of the
necessary to counteract the lateral forces directed on the checkers from the expansion of the breast wall when
checker brick resulted with a commensurate reduction in the ability of the hot blast stove to preheat the blast.
the hot blast stove was in the on-gas mode and combus Premature rebuilds of the hot blast stoves were required
tion was taking place in the combustion chamber. The 35 which were costly. Thus, the use of breast walls formed
combustion produces heat which causes the face of the by a conventional vertical arch was rapidly abandoned
breast wall adjacent the combustion chamber to expand in favor of forms including a modified arch similar to
at a rate greater than the expansion of the opposite wall those shown in the above reference to "The Making,
and the adjoining checker chamber. This expansion Shaping and Treating of Steel".
tends to produce a lateral crushing force on the checker 40 The main object of the present invention is to provide
brick in the checker chamber.
for the simplicity and economy of a vertical arch in hot
A further problem caused by the differential expan blast stove breast wall construction, while substantially
sion of the breast wall develops from the fact that con eliminating the lateral crush stress on the checker brick
ventional breast walls are constructed of individual in the checker chamber, when the hot blast stove is in
refractory shapes or brick. When the differential expan 45 the on-gas mode, as caused by the differential expansion
sion takes place, the joints between these brick open up of the breast wall. Another object of the invention is to
producing passageway through which hot gases can substantially reduce gas passage from the combustion
seep, thus derogating from the designed gas passage chamber through the breast wall into the checker cham
upwards through the combustion chamber to the dome, ber when the hot blast stove is in the on-gas mode as
then downward through the checker chamber. Such 50 well as the elimination of short circuiting of air flowing
gas seepage provokes localized hot spots at random from the checker chamber to the combustion chamber
points in the checker chamber adjacent the breast wall. during the on-blast mode.
These hot spots create rapid deterioration of the checker brick at those points and also tend to produce
BRIEF DESCRIPTION OF THE INVENTION
uneven heating, thus unbalanced cooling stresses in the 55 In a side-combustion style hot blast stove, as is in
checker brick when the hot blast stove is switched to conventional use in conjunction with blast furnace op
the on-blast mode and the combustion heat is regener erations, the breast wall, which serves to separate the
ated. In addition, highly localized overheating can side combustion chamber from the checker chamber or
occur on the metallic support structures related to the regenerator, is constructed in the form of a vertical
checker chamber resulting in distortion and/or failure 60 arch, generally equivalent in radius to the radius of the
thereof.
hot blast stove. The material used in the construction is
The design of the checker chamber has progressed, in a refractory, equivalent in characteristics to that con
recent years, in the direction of greater efficiency of ventionally utilized in breast wall construction. The
heat transfer. Theoretically, it is well known that the vertical arch is composed of refractory shapes designed
more surface area available to preheat the cold gas 65 to interlock on all four adjoining sides, preferably along
being drawn through those checkers, the higher the the full length of each side, with adjacent similar refrac
average heat of the hot blast output from the stove. If tory shapes. Each of the refractory shapes has a charac
the hot blast from the stove can be maintained at a teristic reverse key form, that is, it includes tapered
4,201,543 34
vertical sides arranged such that the vertical sides tend refractory section 15b abut the side 25 of the breast wall
to converge toward that face of the refractory shape 19 which is formed by the smaller radius of the breast
which forms an arc segment of the larger radius arc of wall 19 at each of those ends 21, 23. The steel shell 13,
the horizontal arch, and tend to diverge toward that on the other hand, extends past the end faces 27, 29 of
face of the refractory shape which forms an arc segment 5 the breast wall 19.
of the smaller radius arc of the horizontal arch. The
The steel shell 13 is sealably separated from the end
refractory shapes are laid up in conventional manner, faces 27, 29 by expansion joints 31, 33 which can be
generally with tight mortar joints. Each of the courses formed of any suitable elevated temperature material
of refractory shapes is arranged such that the separation which remains flexible, for example, asbestos millboard.
between the individual shapes are staggered to be about 10 It will further be noted from referring to FIG. 1 that
the midpoint of the refractory shapes of the adjacent the shell wall 15 extends from both ends 21, 23 of the
courses below and above, respectively, as is common breast wall 19 and abuts the breast wall 19 on the side 35
practice in masonry construction.
which is formed by the larger radius of the breast wall
The breast wall adjoins the shell wall of the hot blast 19 adjacent the checker chamber, generally designated
stove at the points of the intersections of the regular 15 by the numeral 37, a portion of which is illustrated in
arcs of both the breast wall and the shell wall. There FIG. 1.
may be an expansion joint interposed at both of the
The checker chamber 37 is composed of checker
points at which the breast wall intersects the arc of the brick 39, preferably of the type disclosed in U.S. Pat.
shell such that the arc length of the breast wall can No. 3,488,041. Other types of checker brick may be
increase and decrease without distorting the shell. The 20 used, the major criterion in selection being a maxim-
adjunctures of the breast wall with the shell wall may be mumization of the surface area available for heat trans
arranged such that the breast wall is prevented from fer.
moving laterally, in a horizontal direction, in relation to
The breast wall 19 is composed of refractory shapes,
said shell wall.
generally designated by the numeral 41. The refractory
For a further understanding of the invention and 25 shapes 41 are laid up in a conventional manner, alternat
features thereof, reference may be made to the follow ing the separations, or joints, of each course to fall about
ing detailed description of the preferred embodiment of midpoint of the joints separating the refractory shape 41
that invention and the drawing figures which illustrate of the vertically next adjacent courses. Referring to
that preferred embodiment, as well as the appended FIG. 1, the joints 43, shown in phantom outline, depict
claims.
30 the arrangement of the refractory shapes 41 in the
BRIEF DESCRIPTION OF THE DRAWINGS
course immediately beneath the course shown in solid lines. Thejoints 45 of the course of refractory shapes 41,
FIG. 1 is a schematic plan view of a section of a hot as shown by solid lines in FIG. 1, fall about midpoint
blast stove illustrating a side combustion chamber, a between the joints 43. The refractory shapes 41 are laid
breast wall and a portion of the shell wall intersecting 35 up using conventional tight mortar joints to separate the breast wall at two points, all in accordance with the each refractory shape 41 from the next horizontally
present invention.
adjacent refractory shape 41, as well as to separate each
FIG. 2 is a plan view of a typical refractory shape in course of refractory shapes 41 from the next vertically
accordance with the invention.
adjacent course of refractory shapes 41.
FIG. 3 is a side view of the refractory shape of FIG. 40 In the breast wall 19 a typical refractory shape is
2 as viewed from III--III.
designated by the numeral 41a and is shown enlarged in
FIG. 4 is an orthographic projection of the refractory FIGS. 2, 3 and 4. The general design of all the refrac
shape of FIG. 2, enlarged in proportion thereto.
tory shapes 41 follows the pattern of shape 41a and is
FIG. 5 is a schematic plan view of a hot blast stove complementary thereto- in a manner which will be
illustrating the design of the refractory shapes of the 45 readily comprehended by one skilled in the art.
breast wall in accordance with the present invention.
As is suggested in FIG. 1, the steel shell 13 is continu
DETAILED DESCRIPTION
ous, surrounding the hot blast- stove in the form of a vertical cylinder. The shell wall 15 extending from the
Referring to FIG. 1, there is illustrated a section of a side 35 of the breast wall 19, from end 21 to end 23 of
hot blast stove, generally designated by the numeral 11. 50 the breast wall 19, is also continuous and forms the
The hot blast stove section 11 includes a portion of the checker chamber 37.
steel shell 13, which surrounds the hot blast stove, and
In designing the refractory shapes 41 for the first
a shell wall consisting of a refractory section 156 and an course, and each alternate course therefrom, for the
insulation section 15a.
breast wall 19, a reference point is first located on the
Also included in the hot blast stove section 11 are a 55 steel shell 13. Referring to FIG. 5, the reference point is
side combustion chamber 17 and a breast wall, generally 180, or one half of the circumference of the steel shell
designated by the numeral 19. The combustion chamber 13, away from a point on the steel shell 13 adjacent to
17 is constructed of a refractory material of sufficient the midpoint of the combustion chamber 17. From that
character to withstand the elevated temperatures of reference point, a first joint line is located which falls on
combustion developed in the operation thereof in the 60 a reference line which may be drawn from the reference
on-gas mode.
point to the point on the steel shell 13 adjacent to the
As shown in FIG. 1, the breast wall 19 forms a verti midpoint of the combustion chamber 17, through the
cal arch, that is, the projection of the arc of the arch center of the hot blast stove. In FIG. 1 that first joint
extends vertically. It will be noted from referring to line is equivalent to the joint 45 which forms the right
FIG. 1 that the portion of the shell wall 15 that is adja 65 edge of refractory shape 41a. From the reference line,
cent to the combustion chamber 17 extends to intersect upon which falls the first joint line, additional joint lines
the arc of the breast wall 19 at ends 21, 23 of the breast are established, the extension of each passing through
wall 19 such that both the insulation section 15a and the the reference point and each having an angle separating
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it from the next adjacent joint line, or lines, which are a fillet, tapering adjacent adjoining surfaces to abut. The
generally equal to the angle separating each of the other face surfaces of the midportion 53 are parallel to the
joint lines for the next adjacent joint line or lines. Each corresponding side surfaces of the combustion portion
of the thus established joint lines is extended to pass 51 and checker portion 55.
through the breast wall 19. Each of the joints 45 falls on 5 The offset to the left of the midportion 51 results in a
a joint line. The angle which separates succeeding joint left side projection 61 and a right side recess 63 of the
lines is set to conform to convenient sizes for manufac typical refractory shape 41a, as illustrated in FIG. 2. As
turing the refractory shapes 41, such sizes which are. illustrated in FIG. 3, the midportion 53 is also offset
well known to those skilled in the art. Because all of the downward, or to the right, in that side or elevation view
joint lines converge and pass through a single point, the 10 of the typical refractory shape 41a. This downward
reference point, and all of the joints 45 between the offset results in a bottom side projection 65 and a top
refractory shapes 41 fall on the joint lines, the side edges side recess 67.
of each refractory shape 41 are tapered, tending to
As shown in FIGS. 2 and 4, face 49 has a concave
converge toward the checker chamber and beyond it to curve which corresponds in arc characteristics to the
intersect the reference point on the steel shell 13 oppo 15 side 25 of the breast wall 19. Similarly, face 47 has a
site the breast; wall 19, developing the characteristic convex curve which corresponds in arc characteristics
reverse key form. Thus, the face 47 which forms part of to the side 35 of the breast wall 19. Both faces 47 and 49
side 35 of the breast wall 19 spans a shorter distance, form a section of walls 35 and 25, respectively, when
from edge to edge of a refractory shape 41, than does the typical refractory shape 41a is positioned in place in
the face 49 which forms part of side 25 of the breast wall 20 the breast wall 19, as shown in FIG. 1. Alternately, the
19 as measured on lines approaching the perpendicular faces 47 and 49 could be straight, forming straight sur
from edge to edge (these lines can never be perpendicu face segments which, taken together, form an arc.
lar to both edges, as those edges are not parallel). For
The peripheral left side projection 61, bottom side
the course of refractory shapes 41 vertically next adja projection 65, right side recess 63 and top side recess 67,
cent to the first course, and for each alternate course of 25 tracing the side periphery of the typical refractory
refractory shapes therefrom, instead of the first joint shape 41a, as viewed in FIG. 4, form a tongue-and-
line falling on the reference line, two first joint lines are groove type interlock means operable with the next
established, utilizing the same angle that is used to sepa adjacent refractory shapes 41, both horizontally and
rate joint lines in the first course of refractory shapes 41. vertically. Horizontally, in any given course of refrac
These two first joint lines are positioned so that the 30 tory shapes 41, the left side projection 61 of a typical
reference line bisects the angle therebetween. From refractory shape 41a fits into the right side recess 63 of
these first two joint lines, the other joint lines are estab the next adjacent refractory shape 41 to the left; like
lished in the. same manner as described for the first wise, the right side recess 63 of that typical refractory
course of refractory shapes 41. Likewise, the same com shape 41a receives the left side projection 61 of the next
mentary concerning the taper of the refractory shapes 35 adjacent refractory shape 41 to the right. The projec
41 applies equally to all courses of refractory shapes 41. tions and recesses are complementary; however, as
The next step in designing the refractory shapes 41 of mentioned before, a tight mortar joint is used therebe
the breast wall 19 is to establish a first and second arc tween such that the projections and recesses do not
line, tracking the arc of the breast wall 19 and dividing actually touch each other. This tight mortar joint en
the thickness of the breast wall 19 into three parts of 40 sures that the breast wall 19 will be gas-tight in opera
approximately equal thickness. The first part, adjacent tion.
to the combustion chamber, will be referred to as the
Vertically, between courses of refractory shapes 41,
combustion portion 51. The second part, adjacent to the the bottom side projection 65 of a typical refractory
combustion portion 51, will be referred to as the mid shape 41a fits into the top side recesses 67 of the next
portion 53. The third part, adjacent to the checker 45 adjacent refractory shapes 41 below; likewise, the top
chamber and the midportion 53, will be referred to as side recess 63 of that typical refractory shape 41a re
the checker portion 55. Those sections of the first and ceives the bottom side projections 65 of the next adja
second arc lines which are applicable to typical refrac cent refractory shapes 41 above. Here, again, the actual
tory shape 41a are approximated in FIGS. 2, 3 and 4 as joints are tight mortar joints to prevent gas leakage.
the dividing lines between the combustion portion 51, 50 Referring to FIG. 1, it will be noted that the ends 21,
the midportion 53, and the checker portion 55. The 23 of the breast wall 19 are composed of end refractory
extension of those first and second arc line sections are shapes 69, 71. These end refractory shapes 69, 71 differ
readily visualized on FIG. 1 by visually following the from the refractory shapes 41 that are used to compose
arrangement of alternating joints 45, 53 from end 21 to the breast wall 19 in only one significant way, that is, in
end 23 of the breast wall 19.
55 that the end refractory shapes 69, 71 have cropped ends
The typical refractory shape 41a, illustrated in FIGS. which are squared off to meet the expansion joints 31,
2, 3 and 4, is susceptible to the approximate general 33, forming the end faces 27, 29 of the breast wall 19.
description of a rectangular box with an offset center
In operation in the hot blast stove on-combustion
section, tapered sides and curved ends. FIG. 2 is a plan mode, combustion occurs vertically up through the
view, or a view from directly above, looking down 60 combustion chamber 17, concentrating heat on that
thereon, of the typical refractory shape 41a. As seen in portion of the side 25 of the breast wall 19 which is
FIG. 2, the midportion 53 is offset to the left from the adjacent to the combustion chamber 17. The side 25,
combustion 51 and the checker portion 55. The midpor being differentially hotter in this location than the bal
tion 53 is also depressed below the top surface plane 57 ance of the breast wall, tends to expand the refractory
of the combustion portion 51 and the checker portion 65 shapes, both in a direction along the arc of the breast
55. The midportion 53 is surface connected to the com wall 19 as well as toward the checker chamber 37. This
bustion portion 51 and the checker portion on all side expansion tends to force the whole breast wall 19 to
surfaces by a draft transition 59 which is in the form of bulge toward the checker chamber 37. However, the
4,201,543
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interlock means, as previously described, prevents any a characteristic reverse key form, said refractory shapes
single refractory shape 41 from moving out of position being arranged in said breast wall, said reverse key form
in respect to all adjacent refractory shapes 41, both tending to converge toward that side of the said breast
horizontal and vertical. Therefore, all of the refractory wall which forms the larger arc radius of said horizontal
shapes 41 of the breast wall 19 must move with each 5 arch, said breast wall adjoining the shell wall of said hot
other. The bulge effect on the breast wall 19 is such that blast stove at the points of intersection of the arc of said
it tends to increase the radius of the arc of the breast shell wall with the arc of said vertical arch.
wall 19. This tendency to increase radius produces pres
2. The invention described in claim 1 wherein said
sure on the joints 43, 45 due to their tapered design, points of intersection of the said arc of said shell wall
forcing the refractory shapes 41 to take on monolithic 10 with the said arc of said vertical arch are formed of
structure characteristics such that the breast wall 19 can elevated temperature service expansion joints, the arc
only move as a single unit. Since the breast wall 19 is length of said arc of said horizontal arch tending to
wedged between the sections 15a and 15b of the shell increase and decrease with temperature changes with
wall 15, about the ends 21, 23 of the breast wall 19, the out distorting said shell wall.
breast wall 19 is prevented from moving as a unit. In 15 3. The invention described in claim 1 wherein said
creased combustion heat, producing increased differen adjunctures of said breast wall with said shell wall are
tial temperatures and increased expansion of side 25, arranged to prevent said breast wall from moving later
merely serves to increase the compressive force on ally, in a horizontal direction, in relation to said shell
joints 43, 45.
wall.
The end result of the present invention is to produce 20 4. The invention described in claim 1 wherein said
a checker chamber 37 substantially free of lateral crush masonry refractory construction includes tight mortar
ing forces, thus allowing the design of checker brick 39 joints between each of said refractory shapes.
with significantly greater area for heat transfer and
5. The invention described in claim 1 wherein said
thinner refractory cross sections.
means for interlocking is located along the full length of
According to the provisions of the patent statutes, the 25 each adjoining side of said refractory shapes.
principle of the present invention has been explained
6. The invention described in claim 1 wherein said
and the preferred construction and mode of operation interlock means is of the tongue-and-groove type.
have been illustrated and described in what is now con
7. The invention described in claim 6 wherein said
sidered to represent its best embodiment. However, it is interlock means is of the tongue-and-groove type.
to be understood that, within the scope of the appended 30 8. The invention described in claim 6 wherein said
claims, the invention may be practiced otherwise than is tongue-and-groove type interlock means includes draft
specifically illustrated and described.
transitions in all adjoining side surfaces of said interlock
What is claimed is:
means which abut between said refractory shapes.
1. In a side combustion chamber hot blast stove, used
9. The invention described in claim 1 wherein said
in conjunction with a blast furnace in steel manufactur 35 reverse key shape forms as arranged in said breast wall
ing operation, a breast wall comprising a masonary all tend to converge on a single point, located adjacent
refractory construction of multiple vertical courses of said skin wall, at the opposite side of said hot blast stove
refractory shapes arranged in a vertical arch, said re from the location of said side combustion chamber.
fractory shapes having means for interlocking and being
10. The invention described in claim 1 wherein said
interlocked, along adjoining sides, in a complementary 40 arc of said horizontal arch is about equal in radius to the
manner such as to prevent individual movement in rela tion to each other, each of said refractory shapes having
radius of said arc of*sai*d s*he*ll w*all.
45
50
55
60
65