EP3118335A1 - Slope block and support structure - Google Patents
Slope block and support structure Download PDFInfo
- Publication number
- EP3118335A1 EP3118335A1 EP15760839.9A EP15760839A EP3118335A1 EP 3118335 A1 EP3118335 A1 EP 3118335A1 EP 15760839 A EP15760839 A EP 15760839A EP 3118335 A1 EP3118335 A1 EP 3118335A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- deflecting
- bricks
- brick
- support
- checker
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
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Classifications
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- C—CHEMISTRY; METALLURGY
- C21—METALLURGY OF IRON
- C21B—MANUFACTURE OF IRON OR STEEL
- C21B9/00—Stoves for heating the blast in blast furnaces
- C21B9/02—Brick hot-blast stoves
- C21B9/04—Brick hot-blast stoves with combustion shaft
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- C—CHEMISTRY; METALLURGY
- C21—METALLURGY OF IRON
- C21B—MANUFACTURE OF IRON OR STEEL
- C21B9/00—Stoves for heating the blast in blast furnaces
- C21B9/02—Brick hot-blast stoves
- C21B9/06—Linings
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F27—FURNACES; KILNS; OVENS; RETORTS
- F27D—DETAILS OR ACCESSORIES OF FURNACES, KILNS, OVENS OR RETORTS, IN SO FAR AS THEY ARE OF KINDS OCCURRING IN MORE THAN ONE KIND OF FURNACE
- F27D1/00—Casings; Linings; Walls; Roofs
- F27D1/0003—Linings or walls
- F27D1/0006—Linings or walls formed from bricks or layers with a particular composition or specific characteristics
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F27—FURNACES; KILNS; OVENS; RETORTS
- F27D—DETAILS OR ACCESSORIES OF FURNACES, KILNS, OVENS OR RETORTS, IN SO FAR AS THEY ARE OF KINDS OCCURRING IN MORE THAN ONE KIND OF FURNACE
- F27D1/00—Casings; Linings; Walls; Roofs
- F27D1/0003—Linings or walls
- F27D1/004—Linings or walls comprising means for securing bricks
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F27—FURNACES; KILNS; OVENS; RETORTS
- F27D—DETAILS OR ACCESSORIES OF FURNACES, KILNS, OVENS OR RETORTS, IN SO FAR AS THEY ARE OF KINDS OCCURRING IN MORE THAN ONE KIND OF FURNACE
- F27D1/00—Casings; Linings; Walls; Roofs
- F27D1/04—Casings; Linings; Walls; Roofs characterised by the form, e.g. shape of the bricks or blocks used
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F27—FURNACES; KILNS; OVENS; RETORTS
- F27D—DETAILS OR ACCESSORIES OF FURNACES, KILNS, OVENS OR RETORTS, IN SO FAR AS THEY ARE OF KINDS OCCURRING IN MORE THAN ONE KIND OF FURNACE
- F27D1/00—Casings; Linings; Walls; Roofs
- F27D1/14—Supports for linings
Definitions
- the present invention relates to a support structure supporting checker bricks in a hot-blast stove and deflecting blocks used in this support structure.
- a hot-blast stove is attached to a pig-iron making blast furnace.
- Checker bricks are stacked inside the hot-blast stove for storing heat.
- the checker bricks are laid so that the individual checker bricks in each course are placed consecutively together to create a stacking structure (flue chimney stack bond pattern; refer to Patent Literature 1).
- stacking structures are used where the checker bricks in each course are sequentially shifted from those in the adjacent courses in order to avoid aligning joints of the courses (running bond pattern or one-third bond pattern; refer to Patent Literature 2).
- a duct is connected at a lower side surface of the hot-blast stove to allow air to flow to the checker bricks.
- a receiving metal supporting the checker bricks is also installed at the bottom surface of the hot-blast stove.
- a typical receiving metal is a structure in which horizontal steel joists are supported on metal support columns standing on the bottom surface of the hot-blast stove, and a thick metal plate with apertures identical to the through-holes in the checker bricks is fixed on the upper surface of the horizontal joists.
- the checker bricks are received on an upper surface of the receiving plate.
- a ventilation space is created underneath the support column between the receiving plate and the support column. The ventilation space is connected to the aforementioned duct.
- the hot blast heating the checker bricks is injected downwards from the through-holes in the lowest course of the checker bricks to be gathered in the ventilation space, and subsequently is exhausted to the outside from the duct.
- blast furnace gas (BFG) exhausted from the blast furnace is used as a fuel gas when storing heat in the checker bricks inside the aforementioned hot-blast stove.
- BFG does not provide a sufficient quantity of heat to serve as the sole heat source in the hot-blast stove. Accordingly, the exhaust heat from the hot-blast stove is reused to increase the temperature of (i.e. preheat) the BFG.
- coke-oven gas (COG) and Linz-Donawitz converter gas (LDG) and the like are supplementarily mixed in with the BFG to augment the quantity of heat from the fuel.
- blowing oxygen into the blast furnace to supplement the quantity of heat inside the blast furnace increases operational costs in proportion to the amount of oxygen supplied.
- the hot blast provided to the blast furnace from the hot-blast stove is at a sufficiently high temperature to prevent such an increase in operational costs while augmenting the quantity of heat.
- Examples of a method for blowing oxygen into the blast furnace to supplement the quantity of heat in the blast furnace as previously described include a method in which oxygen is added partway between the hot-blast stove and the blast furnace, and a method in which a preliminarily oxygenated air is supplied in the hot-blast stove.
- a method for blowing oxygen into the blast furnace to supplement the quantity of heat in the blast furnace includes a method in which oxygen is added partway between the hot-blast stove and the blast furnace, and a method in which a preliminarily oxygenated air is supplied in the hot-blast stove.
- adding the oxygen reduces the temperature of the hot blast because the oxygen added is not at a high temperature. Accordingly, considering the temperature of the hot blast, the method where the preliminarily oxygenated air is supplied in the hot-blast stove is preferable.
- the support column and the horizontal joist in the conventional receiving metal are made of steel with a heatproof temperature of roughly 350°C, and so the receiving metal cannot be used in an environment with higher temperatures.
- typical hot-blast stoves have the following defects.
- the temperature of the heating hot blast is limited to about 350 degrees C or less at the receiving metal when storing heat in the hot-blast stove, thereby reducing the temperature of the exhaust heat from the hot-blast stove, so that the BFG cannot be sufficiently preheated.
- the typical receiving metal also presents the following problems.
- the horizontal joist in the receiving metal blocks a part of the through-holes in the checker brick, resulting in losses in a flow efficiency of the hot blast.
- the through-holes penetrate the checker bricks from the top course to the lowest course, so that the hot blast flows through the checker bricks.
- the horizontal joists disposed on the receiving plate block the through-holes in the checker bricks whose planar shapes align with the area where the horizontal joists are installed.
- the horizontal joists block only the through-holes in the checker bricks on the lowest course, the blockage makes it impossible to use the series of through-holes reaching the top course.
- the oxygen blown into the space oxidizes the typical receiving metal. Oxidation of the receiving metal causes breakdown of an inside of the hot-blast stove. In order to avoid the breakdown, it is difficult to pass a highly oxygenated air, especially with a concentration of over 40%, through the hot-blast stove.
- the horizontal joist is also subject to a large bend load in the typical receiving metals. More specifically, the horizontal joist is subject to a continuous bend load under a temperature of roughly 350 degrees C; therefore, a cross-sectional dimension of the horizontal joist must be increased to ensure a sufficiently strong horizontal joist, which further exacerbates the loss at the through-holes in the checker bricks previously described.
- the temperature condition and the oxygen concentration condition of the typical hot-blast stoves are limited due to the receiving metals, and there is a strong desire to overcome these limitations.
- An object of the invention is to provide a support structure for checker bricks in a hot-blast stove, the support structure capable of eliminating the limitations on the temperature condition and the oxygen concentration condition of the hot-blast stove and improving a use efficiency of the through-holes in the checker bricks; and to provide a deflecting block for use in the support structure.
- a deflecting block used in a support structure supporting checker bricks in a hot-blast stove includes: a brick body formed of a refractory material; and a deflecting passage connected to through-holes of the checker bricks and being opened at an opening section on a side surface of the brick body.
- the checker bricks are arranged on the upper surface of the brick body to connect the through-holes in the checker brick to the deflecting passage.
- the deflecting passage can ensure that the hot blast flows back and forth between the through-holes in the checker bricks and the side surfaces of the brick body.
- the deflecting block according to the above aspect of the invention when used in the support structure supporting the checker bricks in the hot-blast stove, it is possible to transfer the hot blast from the through-holes in the checker bricks to a duct in the side surface of a bottom in the hot-blast stove, or to transfer air from a duct to the through-holes in the checker bricks.
- the support structure that uses the deflecting block according to the above aspect of the invention may replace the typical receiving metals of the checker bricks.
- the brick body of the deflecting block according to the above aspect of the invention is formed from a heat-resistant material (e.g., a refractory brick), the heatproof temperature of the deflecting block can be improved compared to that of the typical steel receiving metal. Accordingly, since there is no need for concern when the deflecting block is used in highly oxygenated atmospheres, higher concentrations of oxygen can be blown into the stove to supplement the quantity of heat.
- the deflecting block according to the above aspect of the invention is incorporated as the support structure, the brick body of the deflecting block supports the checker bricks, and thus the deflecting blocks can receive the weight of the checker bricks as a compressive load, not a bend load.
- the support structure using the deflecting block according to the above aspect of the invention can sufficiently maintain strength even under high temperatures, and can mitigate the temperature condition better than the typical receiving metals that utilize steel joists.
- the deflecting block according to the above aspect of the invention is structured so that the deflecting passage formed in the brick body is connected to the through-holes in the checker brick, so that the deflecting block can ensure ventilation in all the through-holes in the checker bricks. Accordingly, the support structure using the deflecting blocks according to the above aspect of the invention can effectively use all the through-holes in the checker bricks, and improve the use efficiency of the through-holes without the problem of a part of the through-holes being blocked by a joist as in the typical receiving metals.
- the deflecting block according to the above aspect of the invention can eliminate the limitations on the temperature condition and the oxygen concentration condition for the hot-blast stove and improve the use efficiency of the through-holes.
- the brick body is preferably formed of a refractory brick.
- the refractory brick since a refractory brick is used as the heat-resistant material for the brick body, a high heat resistance can be reliably obtained. Particularly, in addition to a proven performance as the heat resistant material, the refractory brick can facilitate forming the brick body and reduce the production costs.
- thermoplastic material such as ceramics
- any metal material having heat resistance i.e., high softening temperature, high melting temperature
- any metal material having heat resistance i.e., high softening temperature, high melting temperature
- the deflecting passage is preferably formed in a groove on an upper surface of the brick body.
- the groove is formed on the upper surface of the brick body with one end of the groove open on a side surface of the brick body, so that the deflecting passage is formed.
- a deflecting passage secures a connection between the through-holes in the checker brick and the side surface of the brick body; at the same time, since the deflecting passage only needs to be formed in a groove in the brick body, the groove can be integrally molded into the brick body as long as the brick body is molded like the brick. Even if the deflecting passage is not integrally molded when molding the brick body, the deflecting passage in a form of a groove can be easily machined in a later stage.
- the deflecting passage may be a duct that opens on the upper surface and the side surface of the brick body and is formed inside the brick body.
- the deflecting passage may be structured in the above-described groove and partially in a duct.
- the duct may be a sloping duct extending from the upper surface of the brick body toward the side surface thereof, or an L-shaped duct opening on the upper surface and the side surface.
- the deflecting passage also secures a connection between the through-holes in the checker bricks and the side surface of the brick body.
- the deflecting passage has a bottom surface that is slanted downward from a connected portion between the deflecting passage and the through-holes of the checker bricks toward the opening section on the side surface of the brick body.
- the slanted bottom surface of the deflecting passage changes the direction of the vertical airflow from the through-holes of the checker bricks to the horizontal direction, thereby guiding the airflow to the side surfaces of the brick body.
- a reverse airflow reaching the through-holes from the side surface of the brick body can also be guided in the same manner. Accordingly, in the deflecting block, the deflecting passage can ensure the airflow therethrough and a deflecting function of the airflow.
- the flow passage area of the deflecting passage is increased towards the opening section on the side surface, so that, even with a confluence of the airflow from the plurality of through-holes, an increase in the flow rate within the deflecting passage is suppressible and a generated resistance is reducible to a minimum.
- the side surface of the brick body includes opposite first and second side surfaces, the connected portion between the deflecting passage and the through-holes is in a middle of the deflecting passage, and both ends of the deflecting passage are opened on the respective first and second side surfaces.
- the upper surface of the brick body of the deflecting passage can be connected to the through-holes of the checker brick, and the opening sections on the respective first and second side surfaces of the brick body are connected to space facing the first and second side surfaces. Accordingly, the hot blast from the through-holes in the checker bricks is received at the upper surface of the brick body, passes through the deflecting passage, and is separated and guided towards the first and second side surfaces of the brick body. Moreover, the air supplied to both the sides of the brick body can converge in the deflecting passage, pass over the upper surface of the brick body, and be guided to the through-holes in the checker bricks.
- the side surface of the brick body includes opposite first and second side surfaces
- the deflecting passage includes a plurality of deflecting passages arranged in parallel, and adjacent ones of the deflecting passages are opened on the respective first and second side surfaces of the brick body.
- the upper surface of the brick body of the deflecting passage are connected to the through-holes in the checker bricks, and adjacent ones of the deflecting passages are alternately opened on the respective first and second side surfaces of the brick body. Consequently, a part of the through-holes in the checker brick is connected to one side of the brick body while another part of the through-holes in the checker brick is connected to the opposite side of the brick body. Also in this arrangement, the hot blast from the through-holes in the checker brick can be received at the upper surface of the brick body, pass through the deflecting passage, and be separated and guided towards both the sides of the brick body.
- the air supplied to both the sides of the body can converge in the deflecting passage, pass over the upper surface of the body, and be guided to the through-holes in the checker bricks.
- the deflecting passage formed on the upper surface of the brick body is opened only at one side of the brick body. Since it is only required that the deflecting passage is formed to flow the air in one direction (i.e., angled for one-way flow), the production is easy.
- the side surface of the brick body includes opposite first and second side surfaces
- the deflecting passage includes a plurality of deflecting passages arranged in parallel, and all the the deflecting passages are opened on one of the first and second side surfaces.
- the deflecting passage are connected to the through-holes in the checker bricks at the upper surface of the brick body, and all the deflecting passages are opened on only one side of the brick body. Therefore, all the through-holes in the checker bricks facing the upper surface of the same deflecting block are connected to the space facing one of the side surfaces of the brick body of the same deflecting block.
- the brick body has a cutout formed by cutting opposite corners of a brick material shaped in a hexagonal prism, and the cutout defines a horizontal passage.
- the basic shape of the brick body is established with reference to the outline of the hexagonal prism used for the checker brick and a part of the brick body is cut out to form a brick body having a horizontal passage. Consequently, the basic shape of the deflecting block can be established identically as the checker brick, allowing the deflecting block and the checker brick to be assembled together and stacked. For instance, since the respective basic shapes of the deflecting block and the checker brick are in the same hexagonal prism, the deflecting block and checker brick may be mixed together in a running bond pattern.
- the bond pattern of the deflecting block and the checker brick is not limited to the running bond pattern, but other types of bond patterns such as a flue chimney stack bond pattern may be used.
- the cutout is formed continuously from the upper surface to a lower surface of the brick body.
- the cutout is only formed in a part of the brick body between the upper surface and the lower surface of the brick body.
- This arrangement is preferable for using the heat storage function of the deflecting block itself and also allows an uncut part of the brick body to serve as a partition between the horizontal passages arranged in an up-down direction.
- a support structure supporting checker bricks in a hot-blast stove includes: the deflecting block according to the above aspect of the invention for supporting the checker bricks; and a support member formed of a heat-resistant material and supporting the deflecting block, in which the deflecting block is arranged along an imaginary deflecting plane that partitions an inside of the hot-blast stove into an upper side and a lower side, and the deflecting block and the support member define the horizontal passage extending horizontally between the deflecting block and the support member and connected to the opening section on the side surface of the deflecting block.
- the deflecting block is supported by the support member at the bottom of the hot-blast stove, and the checker bricks are supported on the upper surface of the deflecting block.
- the opening sections in the side surfaces of the deflecting block are connected to the through-holes in the checker bricks via the deflecting passages.
- the horizontal passage is formed on the side surface of the deflecting block and passes between the deflecting block and the support member to reach the side surfaces of the bottom in the hot-blast stove.
- the support structure according to the above aspect of the invention is capable of ensuring both of the support function of the checker bricks and the ventilation function of the through-holes, thereby replacing the typical receiving member.
- Using the deflecting block according to the above aspect of the invention as above described can provide heat resistance higher than the typical steel receiving member and resolve the loss of the through-holes due to the support joists.
- the support structure according to the above aspect of the invention can eliminate the limitations on the temperature condition and the oxygen concentration condition for the hot-blast stove and improve the use efficiency of the through-holes.
- the support member is preferably a support block having the same external dimensions as the deflecting block.
- the support block which serves as the support member
- the support block and deflecting block may be assembled together and stacked. More specifically, when the basic shape of the deflecting block is in a hexagonal prism identical to that of the checker brick, the basic shape of the support block is also made in the identical hexagonal prism, so that the support member, the deflecting block, and the checker bricks may be mixed together and stacked in a running bond pattern.
- the bond pattern of the support member, the deflecting block and the checker brick is not limited to the running bond pattern, but other types of bond patterns such as a flue chimney stack bond pattern may be used.
- the bond pattern is desirably selected as appropriate, taking into account the shape of the deflecting plane on which the deflecting blocks are arranged and the arrangement of the horizontal passages.
- the deflecting block is a deflecting brick formed of a refractory brick
- the support block is a support brick formed of a refractory brick
- the deflecting block and the support block are formed of the refractory brick, a high heat resistance can be reliably obtained.
- the refractory brick can facilitate forming the brick body and reduce the production costs.
- a heat-resistant inorganic material such as ceramics may be used as the refractory material.
- any metal material e.g., cast iron
- heat resistance i.e., high softening temperature, high melting temperature
- oxidation resistance i.e., when blow-in oxygen is at a high concentration
- the support member is preferably a support column formed of a refractory brick and supporting the deflecting block.
- the support column is used as the support member, the number of the support member arranged in a height direction is reducible. Additionally, a space between adjacent support columns may be used to form the horizontal passages. Further, the spaces between adjacent support columns may be collectively connected by the deflecting passages in a plurality of deflecting blocks to create a massive confluence space, and connect the confluence space to a duct on the side surface of the hot-blast stove.
- the support column is preferably in a form of a plurality of support column components connected together lengthwise.
- the deflecting plane is preferably formed in a V-shape extending diagonally upward and away from a reference axis that traverses a bottom surface of the hot-blast stove.
- the through-holes in the checker bricks supported on the upper surface of the deflecting blocks are connected to the horizontal passages extending through the deflecting blocks and the support members.
- the slanted deflecting plane ensures that a specific region inside the hot-blast stove in a plan view corresponds to a specific region in the height direction of the side surface of the hot-blast stove through the deflecting plane. Accordingly, the flow rate distribution may be suitably adjusted by allocating the through-holes of the checker bricks in each of the regions to the horizontal passage corresponding to each height.
- the deflecting plane is provided in a V shape by two facing slanted surfaces, the deflecting blocks arranged along the deflecting plane are oriented in the same direction.
- the horizontal passages extend away from the reference axis in a direction intersecting with the reference axis. Accordingly, the horizontal passages are parallel to each other, thereby facilitating designing the arrangement of the horizontal passages in the support structure.
- the deflecting plane is formed substantially in a cone or substantially in a pyramid extending diagonally upward toward a periphery of the hot-blast stove from a bottom surface thereof.
- arranging the deflecting blocks into a substantially cone-shaped or a substantially pyramid-shaped deflecting plane connects the through-holes in the checker bricks supported on the upper surface of the deflecting blocks to the horizontal passages extending through the deflecting blocks and the support members.
- the slanted deflecting plane ensures that a specific region inside the hot-blast stove in a plan view corresponds to a specific region in the height direction of the side surface of the hot-blast stove through the deflecting plane. Accordingly, the flow rate distribution may be suitably adjusted by allocating the through-holes of the checker bricks in each of the regions to the horizontal passage corresponding to each height.
- the deflecting plane is substantially cone-shaped or substantially pyramid-shaped
- the deflecting blocks are circularly aligned around the center axis line of the substantially cone-shaped or substantially pyramid-shaped deflecting plane and the horizontal passages are radially formed around the center axis line of the substantially cone-shaped or substantially pyramid-shaped deflecting plane. Accordingly, the horizontal passages extending toward the periphery of the hot-blast stove can be assumed to be uniform along the radial direction.
- the deflecting plane can be assumed to be a hexagonal pyramid or a triangular pyramid; thus, arranging the horizontal passages in a direction intersecting with edges of the bottom surface allows the horizontal passages to be uniform in the radial direction while simplifying the structure.
- the deflecting plane extends horizontally.
- the checker bricks can be supported, the through-holes can be connected without loss, and the structure can be simplified with a simple deflecting plane.
- the limitations on the temperature condition and the oxygen concentration condition can be eliminated and the use efficiency of the through-holes can be improved.
- Figs. 1 to 8 show a first exemplary embodiment of the invention.
- a hot-blast stove 1 of the first exemplary embodiment is an external hot-blast stove including a combustion chamber 2, a checker chamber 3, and a connecting pipe 4 connecting respective top portions of the combustion chamber 2 and the checker chamber 3.
- the combustion chamber 2 includes a cylindrical furnace shell 20.
- a heating burner 21 is installed in the combustion chamber 2 at a bottom of the furnace shell 20.
- a fuel gas supply pipe 22 and an outer-air supply pipe 23 are connected to a side surface at the bottom of the furnace shell 20.
- the burner 21 mixes the fuel gas and the outer air respectively supplied from the fuel gas supply pipe 22 and the outer-air supply pipe 23 to ignite, thereby generating high-temperature combustion gas.
- the generated high-temperature combustion gas passes through the connecting pipe 4 to be supplied to the checker chamber 3.
- a hot-blast supply pipe 24 is connected to the side surface of the furnace shell 20 above the burner 21 in the combustion chamber 2.
- the hot-blast supply pipe 24 is connected to the tuyere (not shown) of a blast furnace, allowing a hot blast transmitted from the checker chamber 3 through the connecting pipe 4 and the inside of the combustion chamber 2 to be supplied to the blast furnace.
- the checker chamber 3 includes a cylindrical furnace shell 30.
- a heat storage 31 is built inside the furnace shell 30 of the checker chamber 3 formed by stacking a plurality of checker bricks 5.
- the checker bricks 5 are described in detail below; the checker bricks 5 are stacked so that the through-holes formed in each of the checker bricks 5 continue from the upper surface to the lower surface of the heat storage 31, allowing ventilation between the bottom and the top of the bottom of the checker chamber 3 via the through-holes.
- a support structure 32 is arranged at the bottom of the furnace shell 30 in the checker chamber 3 in order to support the heat storage 31.
- a cylindrical ventilation space 33 is formed surrounding the support structure 32 between the support structure 32 and the furnace shell 30, with a ventilation pipe 34 formed in the side surface of the furnace shell 30 connected to the ventilation space 33.
- the bottom surface of the checker chamber 3 is lined with foundation bricks 39, and the support structure 32 supports support bricks 6, which are support blocks, laid on top of the foundation bricks 39 and deflecting bricks 7 (shown by black rectangles in Fig. 2 ), which are deflecting blocks according to the exemplary embodiment, laid on the support bricks 6.
- Each of the deflecting bricks 7 connects the through-holes in the above-described checker brick 5 and the ventilation space 33, allowing mutual airflow therethrough.
- the support bricks 6 and the foundation bricks 39 interlock (e.g., the convex part on the upper surface of the foundation brick 39 may fit into the concave part in the lower surface of the support brick 6) to prevent displacement thereof in the horizontal direction.
- the deflecting bricks 7 are arranged along an imaginary V-shaped deflecting plane S1, S2.
- the support bricks 6 are stacked with the upper surfaces aligned along below the deflecting plane S1, S2.
- the deflecting plane S1, S2 of the exemplary embodiment are each half circular imaginary planes that are slanted upward in a manner to separate from each other relative to a reference axis A.
- the reference axis A is, for instance, any diameter of the bottom in the checker chamber 3.
- a vertically moving gas Gv traveling through the heat storage 31 i.e., passing through the through-holes in the above-described checker bricks 5
- Gv traveling through the heat storage 31 i.e., passing through the through-holes in the above-described checker bricks 5
- Gh moving in an intersectional direction with the reference axis A and in the horizontal direction to the ventilation space 33 ( Fig. 2 ) surrounding the support structure 32.
- checker bricks 5 The above-mentioned checker bricks 5, the support bricks 6, the deflecting bricks 7, as well as the support structure 32 provided thereby are described below.
- Figs. 4 and 5 show the checker bricks 5 of the exemplary embodiment.
- each of the checker bricks 5 includes a brick body 50 molded from a refractory brick material.
- the brick body 50 is given a basic shape 5P of a hexagonal prism provided with an upper surface 51 and a lower surface 52 being hexagons, and six side surfaces 53 connecting the upper and lower surfaces.
- the brick body 50 includes hexagonal cylindrical through-holes 54 opened in the upper surface 51 and the lower surface 52 thereof.
- Grooves 55 formed by bisecting the through-holes 54 are formed on the side surface 53.
- a groove 56 shaped as one third of the through-hole 54 is formed at the point where the angled corners of two side surfaces 53 come together.
- the side surfaces 53 on two brick bodies 50 are brought together facing each other, so that two of the grooves 55 define a space corresponding to a single through-hole 54.
- three grooves 56 define a space corresponding to a single through-hole 54.
- checker bricks 5 are arranged in a running bond pattern inside the checker chamber 3 to define the heat storage 31.
- each of the corners is arranged at the center of the checker bricks 5 stacked above and below.
- the space defined by the grooves 55, 56, which correspond to the through-hole 54 is connected to the through-hole 54 of the checker bricks 5 stacked above and below.
- a ventilation passage is formed across the entire horizontal surface in the heat storage 31 illustrated in Figs. 1 and 2 , passing through from the upper surface to the lower surface of the heat storage 31, thereby allowing maximum flow of the vertically moving gas Gv illustrated in Fig. 2 .
- checker bricks 5 in the heat storage 31 may be stacked in a flue chimney stack bond pattern (see the sixth exemplary embodiment, Fig. 28 ).
- Figs. 4 and 6 show the support bricks 6 of the exemplary embodiment.
- each of the support bricks 6 includes a brick body 60 molded from a refractory brick material.
- the basic shape 6P of the brick body 60 is a hexagonal prism, a pair of opposite corners is cut to form a substantially rectangular body.
- the brick body 60 includes an upper surface 61, a lower surface 62, side surfaces 63 that correspond to side surfaces of the basic shape 6P, and auxiliary side surfaces 64 formed by cutting the opposite corners.
- the basic shape 6P is identical to the basic shape 5P of the checker brick 5 (see Fig. 5 ), allowing the support brick and the checker brick to be assembled together and stacked in a running bond pattern.
- Figs. 4 and 7 illustrate the deflecting bricks 7 of the exemplary embodiment.
- each of the deflecting bricks 7 includes a brick body 70 molded from a refractory brick material.
- the basic shape 7P of the brick body 70 is a hexagonal prism, a pair of opposite corners is cut to form a substantially rectangular body in the same manner as in the support bricks 6 (see Fig. 6 ).
- the brick body 70 includes an upper surface 71, a lower surface 72, side surfaces 73 that correspond to side surfaces of the basic shape 7P, and auxiliary side surfaces 74 formed by cutting the opposite corners.
- the basic shape 7P is identical to the basic shape 5P of the checker brick 5 (see Fig. 5 ) and the basic shape 6P of the support brick 6 (see Fig. 6 ), allowing the support brick and the checker brick to be assembled together and stacked in a running bond pattern.
- Deflecting passages 75 each shaped in a groove are formed in the deflecting brick 7 extending from the upper surface 71 to the side surface 73 and the auxiliary side surface 74.
- a plurality of deflecting passages 75 are formed parallel to the side surface 73 where the auxiliary side surface 74 is not formed (i.e., the deflecting passages 75 are orthogonal to the auxiliary side surface 74) traversing the upper surface 71 with both ends thereof opened on the side surface 73 or the auxiliary side surface 74.
- a deflecting passage 77 which is a bisected version of the above-described deflecting passage 75 is formed on an edge connecting the side surfaces 73 where neither the upper surface 71 nor the auxiliary side surface 74 are formed.
- the deflecting passage 77 defines a grove identical to that of the deflecting passage 75 when two deflecting bricks 7 are connected together.
- the bottom surfaces 76 of the deflecting passages 75, 77 are shaped in a mountain and slant from the center downward toward each end.
- the deflecting passages 75, 77 are arranged so that, when stacked together with the checker bricks 5 in a running bond pattern as illustrated in Fig. 4 , all the through-holes 54 in the checker bricks 5 in the upper course are connected to any of the deflecting passages 75, 77.
- the above described support bricks 6 and deflecting bricks 7 are stacked on the bottom of the checker chamber 3 in a running bond pattern based on each of the basic shapes 6P, 7P, thereby forming the support structure 32.
- a horizontal passage 35 of the exemplary embodiment extending in an orthogonal direction to the reference axis A is formed between the support bricks 6 and the deflecting bricks 7 stacked in a running bond pattern as the support structure 32.
- the support structure 32 is built in the following manner.
- the lowest course of the support structure 32 is established on the bottom of the checker chamber 3.
- one or two deflecting bricks 7 are arranged along the reference axis A, and the support bricks 6 are arranged on both sides in order (in a direction intersecting with the reference axis A).
- the support bricks 6 are arranged consecutively orthogonal to the reference axis A with the side surfaces 63 where there are no auxiliary side surfaces 64 close together.
- the auxiliary side surfaces 64, 74 are continuous to each other in a row of the deflecting bricks 7 and the support bricks 6 arranged in this manner. With the auxiliary side surfaces 64, 74 in an adjacent row of the deflecting bricks 7 and the support bricks 6, a gap is formed. The gap defines the horizontal passage 35 extending orthogonal to the reference axis A.
- the checker bricks 5, the deflecting bricks 7, and the support bricks 6 are arranged on top of the support bricks 6 in the above-mentioned lowest course in order from the reference axis A outward along the intersecting direction.
- the second course of the checker bricks 5 forms the heat storage 31 as above described, and is arranged on the lowest course of the deflecting bricks 7.
- the second course of the deflecting bricks 7 is arranged outside the checker bricks 5 and supported on the lowest course of the support bricks 6.
- the second course of the support bricks 6 is arranged outside the deflecting bricks 7 and supported on the lowest course of the support bricks 6.
- a third course is arranged on the second course in the same manner so that the deflecting bricks 7 in the lower course are always directly beneath the checker brick 5 in the upper course.
- all the through-holes 54 in the checker bricks 5 in the upper course are connected to the deflecting passages 75, 77 in the deflecting bricks 7 in the lower course, so that the through-holes 54 are connected to the horizontal passages 35 between the deflecting bricks 7 and the support bricks 6 in the lower course via the deflecting passages 75, 77.
- the horizontal passages 35 in each of the courses are indicated by arrows; the horizontal passages 35 in the lowest course are indicated by a single line arrow, the horizontal passages 35 in the second course are indicated by a double line arrow, and the horizontal passages 35 in the third course are indicated by a triple line arrow.
- checker bricks 5, the deflecting bricks 7, and the support bricks 6 are stacked in order away from the reference axis A in a direction orthogonal thereto in each course, and each lower course is stacked in a running bond pattern, whereby the lower part of the support structure 32 and heat storage 31 are sequentially built.
- the deflecting bricks 7 are arranged separating from the reference axis A as the number of courses increases, and as a result the deflecting bricks 7 are arranged along the deflecting plane S1, S2 ( Figs. 2 and 3 ) which are in a V-shape extending away from the reference axis A.
- the horizontal passages 35 formed between the deflecting bricks 7 and the support bricks 6 are arranged in a direction intersecting the reference axis A in any course of the support structure 32 that includes the V-shaped deflecting plane S1, S2.
- the checker bricks 5 forming the lower part of the heat storage 31 are arranged in a region Rv along the reference axis A.
- the through-holes 54 in the checker bricks 5 in the region Rv allow airflow of a vertically moving gas Gv (see Figs. 2 and 3 ).
- the deflecting bricks 7 are arranged in a region Rt outside the region Rv (i.e., away from the reference axis A). In the region Rt, the gas Gv from the through-holes 54 in the checker bricks 5 in the upper course is guided via the deflecting passages 75, 77 to the horizontal passages 35 facing the auxiliary side surfaces 74 and is deflected horizontally to define the gas Gh.
- the support bricks 6 are arranged in a region Rh outside the region Rt.
- the horizontal passages 35 formed between the deflecting bricks 7 in the region Rt are connected to the horizontal passages 35 between the auxiliary side surfaces 64 in the continuous support bricks 6.
- the horizontal passages 35 between the support bricks 6 lead to the outside of the support structure 32 and is connected to the ventilation space 33 surrounding the support structure 32 through to the ventilation pipe 34.
- the deflecting passages 75, 77 in the deflecting bricks 7 in the support structure 32 allow the vertically moving gas Gv to change the direction and be extracted via the horizontal passages 35 as the horizontally moving gas Gh (or allow flow in the reverse direction).
- the checker bricks 5 are arranged on the upper surface of the brick body 70 of the deflecting bricks 7 assembled into the support structure 32, and the through-holes 54 in the checker bricks 5 are connected to the deflecting passages 75, 77, so that the through-holes 54 and the horizontal passages 35 are connected to each other via the deflecting passages 75, 77, which ensures mutual flow of the hot blast therethrough.
- the vertically moving gas Gv from the through-holes 54 in the checker bricks 5 can change direction to be discharged to the ventilation space 33 and the ventilation pipe 34 as the horizontally moving gas Gh.
- Airflow in the reverse direction is also possible. Specifically, air from the ventilation pipe 34 may be taken in from the horizontal passages 35 into the deflecting bricks 7, made to change direction by the deflecting passages 75, 77 and discharged into the through-holes 54 in the checker bricks 5.
- the support structure 32 using the deflecting bricks 7 and the support bricks 6 according to the embodiment can replace the typical receiving metals used for the checker bricks.
- the support structure 32 can be structured including the deflecting bricks 7 serving as the deflecting blocks and the support bricks 6 serving as the support members.
- the respective brick bodies 60 and 70 of the deflecting bricks 7 and the support bricks 6 are formed of a refractory brick (heat-resistant material), the heatproof temperature can be improved compared to the typical steel receiving metals.
- the refractory brick can facilitate forming the brick bodies 60 and 70 and reduce the production costs.
- the brick body 70 can support the checker bricks 5 and the brick body 60 can support the deflecting bricks 7, so that the deflecting bricks 7 and the support bricks 6 can receive a compressive load, not a bend load.
- the support structure 32 using the deflecting bricks 7 and the support bricks 6 can sufficiently maintain strength even under high temperatures, and can mitigate the temperature condition better than the typical receiving metals that utilize steel joists.
- each of the deflecting bricks 7 in the exemplary embodiment is structured so that the deflecting passages 75, 77 formed in the brick body 70 are connected to the through-holes 54 in the checker bricks 5, whereby the deflecting bricks 7 can ensure ventilation in all the through-holes 54 in the checker bricks 5.
- the support structure 32 using the deflecting bricks 7 in the exemplary embodiment can effectively use all the through-holes 54 in the checker bricks 5, and improve the use efficiency of the through-holes 54 without the problem of a part of the through-holes 54 of the checker bricks 5 being blocked by a joist as in the typical receiving metals
- a support structure 32 including the deflecting bricks 7 and the support bricks 6 according to the invention, it is possible to eliminate the limitations on the temperature condition caused by the support structure supporting the checker bricks 5 in the hot-blast stove 1 and to improve the use efficiency of the through-holes.
- the groove is formed on the upper surface 71 of the brick body 70 of the deflecting brick 7 with one end of the groove open on the side surface 73 or the auxiliary side surface 74 of the brick body 70, so that the deflecting passages 75, 77 are formed.
- the deflecting passages 75, 77 secure a connection between the through-holes 54 in the checker brick 5 and the side surface 73 or the auxiliary side surface 74 of the brick body 70; at the same time, since the deflecting passages 75, 77 only need to be formed in a groove in the brick body 70, the groove can be integrally molded into the brick body 70 as long as the brick body 70 is molded like the brick. Even if the deflecting passage is not integrally molded when molding the brick body, the deflecting passage in a form of a groove can be easily machined in a later stage.
- the vertically moving gas Gv from the through-holes 54 in the checker bricks 5 can change direction to be guided to the horizontal passage 35 facing the side surface 73 or the auxiliary side surface 74 of the brick body 70 as the horizontally moving gas Gh.
- a reverse airflow reaching the through-holes 54 from the horizontal passage 35 through the deflecting passages 75, 77 can also be guided in the same manner. Accordingly, in the deflecting block, the deflecting passage can ensure the airflow therethrough and a deflecting function of the airflow.
- the flow passage area of the deflecting passages 75, 77 is increased towards the opening on the side surface 73 or the auxiliary side surface 74, so that, even with a confluence of the airflow from the plurality of through-holes 54, an increase in the flow rate within the deflecting passage is suppressible and a generated resistance is reducible to a minimum.
- the deflecting passages 75, 77 in the exemplary embodiment are opened on the side surface 73 or the auxiliary side surface 74 on both sides of the brick body 70 and include a slanted bottom surface 76 having a projecting center like a mountain, the brick body 70 receives the vertically moving gas Gv from the through-holes 54 in the checker bricks 5 at the upper surface 71 thereof, the vertically moving gas Gv passes through the deflecting passages 75, 77 and is split between the horizontal passages 35 on both sides of the brick body 70 to be guided as the horizontally moving gas Gh.
- the air supplied to the horizontal passages 35 on both the sides of the brick body 70 can converge in the deflecting passages 75, 77, pass over the upper surface 71 of the brick body 70, and be guided to the through-holes 54 in the checker bricks 5.
- the checker bricks 5, the support bricks 6, and the deflecting bricks 7 respectively have the basic shapes 5P, 6P and 7P in a hexagonal prism in common, the checker bricks 5, the support bricks 6, and the deflecting bricks 7 can be built in combination in a running bond pattern.
- the auxiliary sides surfaces 64, 74 are formed on the support bricks 6 and the deflecting bricks 7 by cutting out opposite corners of the brick bodies 60, 70 shaped in a hexagonal prism, the auxiliary side surfaces 64, 74 can form the horizontal passages 35 while using the common basic shapes 6P, 7P.
- the opposite corners in the brick bodies 60, 70 shaped in a hexagonal prism are continuously cut out from the upper surfaces 61, 71 to the lower surfaces 62, 72, thereby forming the auxiliary side surfaces 64, 74. Since the horizontal passages 35 is formed by the above continuous cutout from the upper surfaces 61, 71 to the lower surfaces 62, 72, the shape of the bricks can be simplified, thereby facilitating the production.
- a V-shaped deflecting plane S1, S2 is formed expanding diagonally upward away from the reference axis A that traverses the bottom surface of the checker chamber 3.
- the slanted deflecting plane S1, S2 ensures that a specific region (i.e., the region Rt where the deflecting bricks 7 are placed) inside the checker chamber 3 in a plan view corresponds to a specific region in the height direction of the ventilation space 33 surrounding the bottom of the checker chamber 3 through the deflecting plane S1, S2. Accordingly, the flow rate distribution may be suitably adjusted by allocating the through-holes 54 of the checker bricks 5 facing the region Rt in each of the courses of the support structure 32 to the horizontal passage 35 corresponding to each height.
- the deflecting plane S1, S2 is provided in a V shape by two facing slanted surfaces, the deflecting bricks 7 arranged along the deflecting plane S1, S2 are oriented in the same direction.
- the horizontal passages 35 extend away from the reference axis A in a direction intersecting with the reference axis A. Accordingly, the horizontal passages 35 are parallel to each other, thereby facilitating designing the arrangement of the horizontal passages 35 in the support structure 32.
- Figs. 9 to 10 show a second exemplary embodiment of the invention.
- V-shaped deflecting plane S1, S2 is defined in the first exemplary embodiment
- a substantially cone-shaped deflecting plane S3 is used in the second exemplary embodiment.
- the deflecting plane S3 in the second exemplary embodiment is in a different shape, whereby the arrangement of the deflecting bricks 7, the support bricks 6, and the checker bricks 5 are different in the support structure 32.
- the structure of the hot-blast stove 1 the structure o of the heat storage 31 and the support structure 32, and the structure of the deflecting bricks 7, the support bricks 6, and the checker bricks 5 are identical to those in the first exemplary embodiment.
- the imaginary deflecting plane S3 in the second exemplary embodiment is an inverted cone where the apex is at the center of the bottom surface of the furnace shell 30 in the checker chamber 3.
- the deflecting bricks 7 are arranged along the substantially cone-shaped deflecting plane S3.
- the vertically moving gas Gv from the heat storage 31 changes direction at the deflecting bricks 7 and is discharged as the horizontally moving gas Gh.
- the horizontal passages 35 are arranged radiating from the center of the deflecting plane S3.
- the horizontally moving gas Gh from the deflecting bricks 7 is discharged radially from the horizontal passages 35 from the center of the deflecting plane S3.
- the substantially cone-shaped deflecting plane S3 is desirably in a hexagonal pyramid or a triangular pyramid corresponding to the hexagon depending on the basic shapes.
- the checker bricks 5 forming the lower part of the heat storage 31 are placed at the center, the deflecting bricks 7 are placed surrounding the checker bricks 5, and the support bricks 6 are placed surrounding the deflecting bricks 7.
- the deflecting plane S3 is in a hexagonal prism where the deflecting bricks 7 are arranged. It is also desirable that the horizontal passages 35 are oriented outward from each edge of the hexagon where the deflecting bricks 7 are arranged, in a direction intersecting with the edges.
- Figs. 11 to 14 show a third exemplary embodiment of the invention.
- the checker bricks 5, the support bricks 6, and the deflecting bricks 7 respectively have the basic shapes 5P, 6P and 7P in a hexagonal prism in common, which is suitable for a running bond pattern.
- support bricks 6A, 6B, and deflecting bricks 7A are used to simplify and share components for forming a support structure 32A.
- the support brick 6A includes a brick body 60A mold from a refractory brick, in which an upper surface 61A and a lower surface 62A of the brick body 60A are rectangular; a first pair of side surfaces 63A is a trapezoid narrowing downward; and a second pair of side surfaces 64A is in a slanted rectangle.
- a width of each of short sides of the upper surface 61A is equal to or more than a length of one side of the hexagon of the basic shape 5P of the checker brick 5.
- a height of the brick body 60A is equal to a height of the checker brick 5.
- the support brick 6A can be stacked in combination with the checker brick 5.
- the support brick 6B includes a brick body 60B and a side surface 64B that are the same as those of the support brick 6A.
- the brick body 60B and the side surfaces 64B are respectively in a vertically inverted shape of the brick body 60A and the side surfaces 64A of the support brick 6A. Accordingly, the inversed support brick 6A can be used as the as the support brick 6B.
- the deflecting brick 7A includes a brick body 70A and side surfaces 74A.
- the brick body 70A and the side surfaces 74A are the same as the brick body 60A and the side surfaces 64A of the support brick 6A.
- deflecting passages 75A, 77A shaped in a groove are formed on the upper surface 71A. Both ends of each of the deflecting passages 75A, 77A are opened on the side surfaces 74A.
- the deflecting passages 75A, 77A are the same as the deflecting passages 75, 77 in the above first exemplary embodiment, where the bottom surface 76A of the deflecting passages is slanted like a mountain toward ends of each of the deflecting passages 75A, 77A.
- the above support bricks 6A, 6B and the deflecting bricks 7A are stacked in order from the bottom in the checker chamber 3 (see Fig. 2 ) to form the support structure 32A.
- the deflecting bricks 7A are arranged along the imaginary V-shaped deflecting plane S1, S2 (see Fig. 3 ) in the same manner as in the first exemplary embodiment.
- the support bricks 6, the deflecting bricks 7, and the checker bricks 5 are stacked in a running bond pattern to form the support structure 32.
- the heat storage 31 above the support structure 32 is also formed by stacking the checker bricks 5 in a running bond pattern.
- the heat storage 31 which includes a course formed only of the checker bricks 5 and courses formed above the course, is formed in a running bond pattern, and the support structure 32A and the checker bricks 5 in the same courses (i.e., the lower part of the heat storage 31) are stacked in a flue chimney stack bond pattern, thereby providing a hybrid bond pattern of a running bond pattern and a flue chimney stack bond pattern.
- the checker bricks 5 may be stacked in a flue chimney stack bond pattern instead of a running bond pattern.
- the support bricks 6B are arranged at the bottom surface of the checker chamber 3 as the lowest course in the support structure 32A.
- the support bricks 6B are arranged along a direction orthogonal to the reference axis A. A predetermined distance is secured between each of the rows of support bricks 6B.
- the deflecting bricks 7A are arranged on the support bricks 6B near the reference axis A, and the support bricks 6A arranged on the support bricks 6B outside of the deflecting bricks 7A.
- the checker bricks 5 are arranged on the deflecting bricks 7A, and the support bricks 6B arranged on the support bricks 6A.
- the checker bricks 5 are arranged concentrically on the checker bricks 5 (in the flue chimney stack bond pattern).
- the deflecting bricks 7A are also arranged on the support bricks 6B in a region adjacent to the checker bricks 5.
- the support bricks 6A are arranged on the support bricks 6B outside of the deflecting bricks 7A.
- the region of checker bricks 5 in the section near the reference axis A expands outward, and at the point where an entire course includes all checker bricks 5, the bond patter of the checker bricks 5 is switched to a running bond pattern, thereby forming the heat storage 31.
- the slanted side surfaces 64A of the stacked the support bricks 6A, 6B and the stacked deflecting brick 7A on the support brick 6B define a space.
- This space provides the horizontal passage 35A extending outward and orthogonal to the reference axis A along the row of the support bricks 6A, 6B.
- the through-holes 54 of the checker bricks 5 are connected to each other in both of the section formed in the running bond pattern and the section formed in the flue chimney stack bond pattern.
- the through-holes 54 in the lowest end of checker bricks 5 are connected to the deflecting passages 75A, 77A in the deflecting bricks 7A and further connected from the opening in the side surface 74A to the horizontal passages 35A.
- the vertically moving gas Gv from the heat storage 31 changes direction at the deflecting bricks 7A, and is led to the horizontal passages 35A as the horizontally moving gas Gh (see Fig. 3 ) in the same manner as in the first exemplary embodiment.
- the support structure 32A in the third exemplary embodiment can provide the same advantages as in the first exemplary embodiment.
- the support bricks 6A, 6B and deflecting bricks 7A are used as the components for forming the support structure 32A and have a simple shape.
- the support bricks 6B can share the support of the support bricks 6A and the support of the deflecting bricks 7A, and each of the support brick 6B has a inverted shape of each of the support bricks 6A. Accordingly, only two types of the support bricks 6A and the deflecting bricks 7A need to be prepared, thereby simplifying construction and reducing the production costs.
- Figs. 15 to 19 show a fourth exemplary embodiment of the invention.
- V-shaped deflecting plane S1, S2 is used in the first and third exemplary embodiments
- a substantially cone-shaped (pyramid-shaped) deflecting plane S3 is used in the second exemplary embodiment.
- a horizontal deflecting plane S4 is used in the fourth exemplary embodiment.
- the support bricks 6, 6A, 6B are used as the support members.
- a support column 8 is used as the support member.
- a support structure 32C is arranged on the bottom of the furnace shell 30 in the checker chamber 3, and the support structure 32C supports the heat storage 31 formed of the checker bricks 5.
- the support structure 32C includes support columns 8 arranged on the bottom of the checker chamber 3 and deflecting bricks 7C supported on upper ends of the support columns 8, where the deflecting bricks 7C are arranged along the horizontal deflecting plane S4.
- a space is formed between the support columns 8.
- the space between the support columns 8 and the cylindrical space between the support structure 32C and the furnace shell 30 define a large confluence space 33C under the deflecting plane S4.
- a ventilation pipe 34 is connected to the side of the furnace shell 30 for connecting to the confluence space 33C.
- the support columns 8 are provided by connecting a plurality of cylindrical support column components 80.
- each of the support column components 80 includes a circular upper surface 81 and lower surface 82, and a cylindrical peripheral surface 83.
- the support column components 80 are formed of a highly heat-resistant ceramic material.
- each of the deflecting bricks 7C includes an inverse truncated cone-shaped brick body 70C.
- the brick body 70C includes a circular upper surface 71C and lower surface 72C and a conical side surface 74C.
- the lower surface 72C is shaped identically to the upper surface 81 of the support column components 80 and connectable to the upper surface of each of the support column 8.
- deflecting passages 75C, 77C shaped in a groove are formed on the upper surface 71C. Both ends of each of the deflecting passages 75C, 77C are opened on the side surfaces 74C.
- the deflecting passages 75C, 77C are the same as the deflecting passages 75, 77 in the above first exemplary embodiment, where the bottom surface 76A of the deflecting passages is slanted like a mountain toward ends of each of the deflecting passages 75C, 77C.
- the deflecting bricks 7C are supported on the support columns 8 to form the support structure 32C.
- the through-holes 54 therein are connected to the deflecting passages 75C, 77C and connected to the confluence space 33C from the opening of the deflecting passage on the side surface 74C.
- ventilation can be conducted from the through-holes 54 in the checker bricks 5 of the heat storage 31 through the deflecting passages 75C, 77C to the confluence space 33C and the ventilation pipe 34.
- the checker bricks 5 are identical to those in the first exemplary embodiment (see Fig. 5 ). Only the checker bricks 5 stacked at the lowest course in the heat storage 31, (i.e., the checker bricks 5 directly supported on the deflecting bricks 7C) are defined as flow rate adjustment checker bricks 5C shown in Fig. 19 .
- the flow rate adjustment checker bricks 5C each have basically the same structure as the checker bricks 5 described with reference to Fig. 5 . However, the flow adjustment checker bricks 5C each have multiple types of through-holes 54 with different cross-sectional areas.
- a through-hole 54A has the same dimensions as the through-hole in the checker brick 5 described with reference to Fig. 5 .
- a through-hole 54B is formed with a cross-sectional area smaller than that of the through-hole 54A.
- a through-hole 54C is formed with a cross-sectional area smaller than that of the through-hole 54B.
- the flow rate is larger at the through-holes 54 where the flow resistance is low (from the lower end to the upper end of the heat storage 31) whereas the flow rate is smaller at the through-holes 54 where the flow resistance is high, which results in imbalance.
- Figs. 20 to 21 show a fifth exemplary embodiment of the invention.
- the same components as those in the fourth exemplary embodiment are used except for some components. Accordingly, the components having the same structure are given the same reference numerals and the descriptions thereof are omitted. Differences are described below.
- the support columns 8 are provided by connecting the cylindrical support column components 80.
- support columns 8 are also provided by connecting the cylindrical support column components 80 in the fifth exemplary embodiment, a spacer 84 is interposed between the support column components 80 as shown in Fig. 21 .
- the spacer 84 includes: a base 85 having the same diameter as that of the support column component 80; and prismatic protrusions 86 formed around the base 85.
- the protrusions 86 are formed from the base 85 in six directions corresponding to the hexagonal prism shape of the checker bricks 5 used in the fifth exemplary embodiment.
- the base 85 is continuous to the support column components 80 and the protrusions 86 protrudes in six directions.
- the support column 8 can be supported via the protrusions 86 contacting each other. Accordingly, a strength of the support columns 8 can be increased to increase a strength of the support structure 32C.
- the opposite corners of the basic shapes 7P, 6P in a hexagonal prism are cut out from the upper end to the lower end to form the auxiliary side surfaces 74, 64.
- the cutout portions to provide the horizontal passages 35 may be provided by cutting only a height-directional part of each of the deflecting brick 7 and the support brick 6.
- the horizontal passages 35 can be formed by the cutouts facing the upper and lower auxiliary side surfaces 74.
- Fig. 23 in the pair of opposite corners of the support brick 6, the corners connecting the upper surface 61 and the lower surface 62 are cut to provide the auxiliary side surfaces 64. However, a middle part of each of the same corners may be left uncut with the two side surfaces 63 meeting each other.
- the horizontal passages 35 can be formed by the cutouts facing the upper and lower auxiliary side surfaces 64.
- a middle part of each of the same corners is cut to provide the auxiliary side surface 64.
- the portions connecting the upper surface 61 and the lower surface 62 are left uncut with the two side surfaces 63 meeting each other.
- the horizontal passages 35 can be formed by the cutouts facing the auxiliary side surface 64 in the middle.
- the bottom surfaces 76, 76C of the deflecting passages 75, 77, 75A, 77A, 75C, 77C allow two-way flow (the bottom surface is shaped in a mountain).
- the bottom surface of each of the deflecting passages is not limited to the bottom surface for the two-way flow, but may be a bottom surface allowing one-way flow.
- the deflecting brick 7 in Fig. 25 has the same structure as in the first exemplary embodiment. However, only a first end of the deflecting passages 75, 77 shaped in a groove is opened on the side surface 73 or the auxiliary side surface 74.
- each of the deflecting passages 75, 77 are slanted from a second end where the passages are not opened on the side surface 73 or the auxiliary side surface 74 toward the first end where the passages are opened on the side surface 73 or the auxiliary side surface 74.
- the through-holes 54 in the checker brick 5 stacked on the upper surface 71 are connected only to the horizontal passage 35 on one side (see Fig. 4 ).
- the through-holes 54 can be alternately connected to the horizontal passages 35 on opposite sides, resulting in a balanced airflow as a whole.
- the molding is easy.
- deflecting passages 75, 77 in the deflecting brick 7 in Fig. 25 are one-way angled and oriented in the same direction, the orientation of the one-way deflecting passages 75, 77 may be alternately changed.
- the deflecting brick 7 in Fig. 26 has the same structure as the deflecting brick 7 in Fig. 25 . However, the deflecting passages 75, 77 are opened on alternate one of the side surface 73 and the auxiliary side surface 74.
- deflecting passages 75, 77 are top-open grooves across the entire length thereof in the above exemplary embodiments, a part or a whole of the top of each of the grooves may be covered.
- the deflecting brick 7 in Fig. 27 has the same structure as in the first exemplary embodiment. However, the side edges of the upper surface 71 that meets the side surfaces 73 or the auxiliary side surfaces 74 remain, where the deflecting passages 75, 77 are formed in a pipe.
- the deflecting passages 75, 77 may be formed, for instance, by boring holes along the bottom surface 76 from both directions.
- a first hole may be bored laterally from the side surfaces 73 or the auxiliary side surfaces 74, and a second hole may be bored from the upper surfaces 71 to connect with the first hole, so that deflecting passages 75, 77 in L-shaped pipe can be formed.
- the deflecting passages 75, 77 are not limited to open groove passage channel structures, but may be shaped in a form of a tunnel, a linear pipe, or an L-shaped tunnel.
- the above-mentioned exemplary embodiments provide the deflecting passages 77 that form the deflecting passage 75 when adjacent deflecting bricks 7 are joined together.
- the deflecting brick may include just the deflecting passages 75 in accordance with the arrangement of the through-holes 54 in the checker bricks 5.
- the deflecting bricks 7, 7A and the support bricks 6 are each given a basic shape 7P, 6P identical to the hexagonal prism shape of the checker bricks 5; however, without being limited thereto, other shapes such as a may be used.
- the deflecting bricks 7C supported by the support columns 8 are arranged along the horizontal deflecting plane S4; however, the deflecting bricks 7C may be arranged along the V-shaped deflecting plane S1, S2 of the first exemplary embodiment, or arranged along the cone-shaped or pyramid-shaped deflecting plane S3 of the second exemplary embodiment.
- the support column 8 is preferably structured so that the length thereof may be increased or decreased based on the height of the checker bricks 5 or the deflecting bricks 7C.
- the support column 8 is formed by connecting the cylindrical support column components 80; however the support column components 80 may be prismatic.
- the support column 80 is provided not only by connecting the support column components 80 but also by a continuous material.
- the deflecting bricks 7, 7A, 7C serve as the deflecting blocks
- the support bricks 6, 6A, 6B serve as the support blocks
- a heat-resistant ceramic material is used for the support columns 8.
- the material is not limited to the refractory brick or heat-resistant ceramic material, but may be other heat-resistant inorganic materials.
- any metal material e.g., cast iron having heat resistance (i.e., high softening temperature, high melting temperature) and oxidation resistance (i.e., when blow-in oxygen is at a high concentration) may be used.
- heat resistance i.e., high softening temperature, high melting temperature
- oxidation resistance i.e., when blow-in oxygen is at a high concentration
- each of the checker bricks 5 includes 19 holes (i.e., 19 holes as the through-holes 54 per a single brick).
- the checker brick 5 may have other arrangements such as having nine holes or 37 holes.
- the checker brick is not limited to the hexagonal shape in a plan view, but may be a cube, a cuboid, or an octagonal prism.
- the deflecting bricks 7 and the support bricks 6 also need to be changed correspondingly in terms of the shapes, the number and position of the grooves and the ventilating passages, thereby providing the deflecting passage based on the invention.
- Figs. 28 to 21 show a sixth exemplary embodiment of the invention.
- the upper surfaces of the deflecting bricks 7, 7A and the lower surfaces of the checker bricks 5 are stacked in a running bond pattern.
- the checker bricks 5 in the upper course are stacked straddling the multiple deflecting bricks 7, 7A.
- the joints of the bricks in the upper and lower courses are mutually nonconsecutive, so that, for example, the load at the lower surface of the bricks in the upper course is not propagated vertically to a section exposed at a joint between the bricks in the lower course. Accordingly, the contact surface area used for propagating the load vertically between bricks is reduced, so that the load is received at a narrow contact surface and the compressive load at the contact surface is likely to be increased.
- the two lowest courses of the checker bricks 5 in the heat storage 31 are defined as checker bricks 5E.
- the checker bricks 5E and the deflecting bricks 7A immediately therebelow are arranged in a flue chimney stack bond pattern. Specifically, a single checker brick 5E sits on the upper surface of a single deflecting brick 7A.
- the planar shape of the checker brick 5E is not the hexagon used for the checker brick 5. Similar to the support brick 6 in Figure 6 and the deflecting brick 7 in Figure 7 , a pair of corners of the hexagon is cut out so that the planar shape of the checker brick 5E is substantially rectangular, and the cutout portion is defined as an auxiliary side surface 53E.
- the deflecting brick 7A has an upper surface 71A having a planar shape that is a rectangle as illustrated in Fig. 14 . Therefore, the entire lower surface of the checker brick 5E can exactly sit on the upper surface 71A of the deflecting brick 7A.
- checker brick 5E and the deflecting brick 7A can be arranged in a vertically overlapping flue chimney stack bond pattern as illustrated in Fig. 28 .
- the checker brick 5E and the deflecting brick 7A in a flue chimney stack bond pattern, no section is exposed at a joint between the bricks on the respective lower surface and upper surface of the checker brick 5E and the deflecting brick 7A, thereby sufficiently ensuring the contact surface area for receiving the compressive load. Therefore, the concern of insufficient compressive strength between the checker brick 5E and the deflecting brick 7A can be resolved.
- the hexagonal checker bricks 5 stacked on and above the checker bricks 5E are also arranged in a flue chimney stack bond pattern in the same manner as in the arrangement of the checker bricks 5E and the deflecting bricks 7A.
- the checker bricks 5E and the checker bricks 5 thereabove may be arranged in a running bond pattern.
- Figs. 29 to 30 show a seventh exemplary embodiment of the invention.
- an internal hot-blast stove 1F is employed in the seventh exemplary embodiment.
- the hot-blast stove 1F includes a cylindrical furnace shell 90.
- a combustion chamber 2F and a checker chamber 3F are separated by a partition 91.
- An upper portion of the furnace shell 90 is covered with a lid 92.
- An upper portion of the combustion chamber 2F and an upper portion of the checker chamber 3F are mutually connected through an inside of the lid 92.
- the partition 91 is formed as a cylindrical surface with both edges bonded to the inner surface of the furnace shell 90 without any gaps.
- a refractory brick addition 93 is formed along the inner surface of the furnace shell 90, facing the combustion chamber 2F.
- the support structure 32 (or optionally the above support structures 32A, 32C) is formed at the bottom using support bricks 6 and deflecting bricks 7, and the heat storage 31 formed by stacking the checker bricks 5 is supported on the support structure 32.
- the support structure 32 is arranged so that the reference axis A is at the center of the partition 91 in a manner to be orthogonal to the partition 91.
- the cylindrical ventilation space 33 is formed surrounding the support structure 32 between the support structure 32 and the furnace shell 90, with the ventilation pipe 34 formed in the side surface of the furnace shell 90 connected to the ventilation space 33.
- the ventilation space 33 in the sixth exemplary embodiment does not continue around the entire periphery of the support structure 32; a portion of the ventilation space 33 is blocked off at the partition 91.
- the heating burner 21 is installed at the bottom of the combustion chamber 2F.
- the fuel gas supply pipe 22 and the outer-air supply pipe 23 are connected to the side surface at the bottom of the furnace shell 90.
- the hot-blast supply pipe 24 is connected to the side surface of the furnace shell 90 above the burner 21.
- the above components from the burner 21 to the hot-blast supply pipe 24 are identical to the components in the first exemplary embodiment. With these components, a high-temperature fuel gas generated at the burner 21 passes through the inside of the lid 92 and is supplied to and stored in the checker chamber 3F. Furthermore, the hot blast heated in the checker chamber 3F can pass through the inside of the lid 92 and be fed into the combustion chamber 2F, and be supplied to the blast furnace via the hot-blast supply pipe 24.
- the same advantages as in the first exemplary embodiment can be obtained, and the modifications described for each of the embodiments may also be adopted in the seventh exemplary embodiment.
- the present invention is applicable to a support structure supporting checker bricks in a hot-blast stove and deflecting blocks used in this support structure.
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Abstract
Description
- The present invention relates to a support structure supporting checker bricks in a hot-blast stove and deflecting blocks used in this support structure.
- A hot-blast stove is attached to a pig-iron making blast furnace. Checker bricks are stacked inside the hot-blast stove for storing heat. As a structure for stacking the checker bricks, for instance, the checker bricks are laid so that the individual checker bricks in each course are placed consecutively together to create a stacking structure (flue chimney stack bond pattern; refer to Patent Literature 1). Further, stacking structures are used where the checker bricks in each course are sequentially shifted from those in the adjacent courses in order to avoid aligning joints of the courses (running bond pattern or one-third bond pattern; refer to Patent Literature 2).
- A duct is connected at a lower side surface of the hot-blast stove to allow air to flow to the checker bricks. A receiving metal supporting the checker bricks is also installed at the bottom surface of the hot-blast stove.
- A typical receiving metal is a structure in which horizontal steel joists are supported on metal support columns standing on the bottom surface of the hot-blast stove, and a thick metal plate with apertures identical to the through-holes in the checker bricks is fixed on the upper surface of the horizontal joists. The checker bricks are received on an upper surface of the receiving plate. A ventilation space is created underneath the support column between the receiving plate and the support column. The ventilation space is connected to the aforementioned duct.
- When storing heat in the hot-blast stove, the hot blast heating the checker bricks is injected downwards from the through-holes in the lowest course of the checker bricks to be gathered in the ventilation space, and subsequently is exhausted to the outside from the duct.
- When supplying a hot blast to the blast furnace, air from outside is introduced into the ventilation space via the duct. From the ventilation space, the air is distributed to the through-holes in the checker bricks. The air is heated during passing through the checker bricks and transmitted to the blast furnace as the hot blast.
- Incidentally, blast furnace gas (BFG) exhausted from the blast furnace is used as a fuel gas when storing heat in the checker bricks inside the aforementioned hot-blast stove. However, BFG does not provide a sufficient quantity of heat to serve as the sole heat source in the hot-blast stove. Accordingly, the exhaust heat from the hot-blast stove is reused to increase the temperature of (i.e. preheat) the BFG. In addition to using BFG as the fuel gas for the hot-blast stove, coke-oven gas (COG) and Linz-Donawitz converter gas (LDG) and the like are supplementarily mixed in with the BFG to augment the quantity of heat from the fuel.
- However, since the supplementarily used COG, LDG, and the like are in fact more costly than BFG, it is preferable to avoid using COG, LDG, and the like if possible. Consequently, it is desirable to improve the preheating performance of the BFG.
- On the other hand, in a blast furnace supplied with a hot blast from the aforementioned hot-blast stove, for instance, at an insufficient temperature or quantity of heat in the hot blast from the hot-blast stove, oxygen is blown into the blast furnace together with the hot blast from the hot-blast stove as needed to augment the quantity of heat from the hot blast.
- However, blowing oxygen into the blast furnace to supplement the quantity of heat inside the blast furnace increases operational costs in proportion to the amount of oxygen supplied. Preferably, the hot blast provided to the blast furnace from the hot-blast stove is at a sufficiently high temperature to prevent such an increase in operational costs while augmenting the quantity of heat.
- Examples of a method for blowing oxygen into the blast furnace to supplement the quantity of heat in the blast furnace as previously described include a method in which oxygen is added partway between the hot-blast stove and the blast furnace, and a method in which a preliminarily oxygenated air is supplied in the hot-blast stove. However, when oxygen is added partway between the hot-blast stove and the blast furnace, adding the oxygen reduces the temperature of the hot blast because the oxygen added is not at a high temperature. Accordingly, considering the temperature of the hot blast, the method where the preliminarily oxygenated air is supplied in the hot-blast stove is preferable.
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Patent Literature 1Japanese Patent Publication No. 4216777 -
Patent Literature 2Japanese Registered Utility Model No. 2563087 - As above described, in order to increase the temperature of the hot blast provided from the hot-blast stove to the blast furnace so that the hot blast provides a sufficient quantity of heat, a larger amount of heat must be stored in the checker bricks of the hot-blast stove, and the temperature of the checker bricks, particularly the temperature at the bottom surface must be increased.
- However, the support column and the horizontal joist in the conventional receiving metal are made of steel with a heatproof temperature of roughly 350°C, and so the receiving metal cannot be used in an environment with higher temperatures.
- Given the limitations of the temperature condition for the receiving metal, typical hot-blast stoves have the following defects.
- When supplying a hot blast to the blast furnace, since the temperature of the hot blast used for heating for storing heat in the blast furnace is limited at the receiving metal to 350 degrees C or less, the upper limit of the stored heat energy is limited thereby, and as a result the hot blast supplied to the blast furnace cannot reach a sufficiently high temperature.
- Thus, supplementary oxygen must be blown into the blast furnace, and as a result it is not possible to prevent an increase in the operational costs.
- The temperature of the heating hot blast is limited to about 350 degrees C or less at the receiving metal when storing heat in the hot-blast stove, thereby reducing the temperature of the exhaust heat from the hot-blast stove, so that the BFG cannot be sufficiently preheated.
- Consequently, supplementing the fuel gas of the hot-blast stove with COG or LDG or the like cannot be avoided, and thus it is not possible to reduce a cost for such supplementation.
- The typical receiving metal also presents the following problems.
- The horizontal joist in the receiving metal blocks a part of the through-holes in the checker brick, resulting in losses in a flow efficiency of the hot blast. Specifically, although multiple courses of the checker bricks with the through-holes are laid inside the hot-blast stove, the through-holes penetrate the checker bricks from the top course to the lowest course, so that the hot blast flows through the checker bricks. However, the horizontal joists disposed on the receiving plate block the through-holes in the checker bricks whose planar shapes align with the area where the horizontal joists are installed. Although the horizontal joists block only the through-holes in the checker bricks on the lowest course, the blockage makes it impossible to use the series of through-holes reaching the top course.
- When passing the preliminarily oxygenated air through the hot-blast stove to supplement the quantity of heat, the oxygen blown into the space oxidizes the typical receiving metal. Oxidation of the receiving metal causes breakdown of an inside of the hot-blast stove. In order to avoid the breakdown, it is difficult to pass a highly oxygenated air, especially with a concentration of over 40%, through the hot-blast stove.
- The horizontal joist is also subject to a large bend load in the typical receiving metals. More specifically, the horizontal joist is subject to a continuous bend load under a temperature of roughly 350 degrees C; therefore, a cross-sectional dimension of the horizontal joist must be increased to ensure a sufficiently strong horizontal joist, which further exacerbates the loss at the through-holes in the checker bricks previously described.
- As above described, the temperature condition and the oxygen concentration condition of the typical hot-blast stoves are limited due to the receiving metals, and there is a strong desire to overcome these limitations.
- An object of the invention is to provide a support structure for checker bricks in a hot-blast stove, the support structure capable of eliminating the limitations on the temperature condition and the oxygen concentration condition of the hot-blast stove and improving a use efficiency of the through-holes in the checker bricks; and to provide a deflecting block for use in the support structure.
- According to an aspect of the invention, a deflecting block used in a support structure supporting checker bricks in a hot-blast stove includes: a brick body formed of a refractory material; and a deflecting passage connected to through-holes of the checker bricks and being opened at an opening section on a side surface of the brick body.
- According to this aspect of the invention, the checker bricks are arranged on the upper surface of the brick body to connect the through-holes in the checker brick to the deflecting passage. With this arrangement, the deflecting passage can ensure that the hot blast flows back and forth between the through-holes in the checker bricks and the side surfaces of the brick body.
- Consequently, when the deflecting block according to the above aspect of the invention is used in the support structure supporting the checker bricks in the hot-blast stove, it is possible to transfer the hot blast from the through-holes in the checker bricks to a duct in the side surface of a bottom in the hot-blast stove, or to transfer air from a duct to the through-holes in the checker bricks.
- Accordingly, the support structure that uses the deflecting block according to the above aspect of the invention may replace the typical receiving metals of the checker bricks.
- Since the brick body of the deflecting block according to the above aspect of the invention is formed from a heat-resistant material (e.g., a refractory brick), the heatproof temperature of the deflecting block can be improved compared to that of the typical steel receiving metal. Accordingly, since there is no need for concern when the deflecting block is used in highly oxygenated atmospheres, higher concentrations of oxygen can be blown into the stove to supplement the quantity of heat. When the deflecting block according to the above aspect of the invention is incorporated as the support structure, the brick body of the deflecting block supports the checker bricks, and thus the deflecting blocks can receive the weight of the checker bricks as a compressive load, not a bend load. Thus, the support structure using the deflecting block according to the above aspect of the invention can sufficiently maintain strength even under high temperatures, and can mitigate the temperature condition better than the typical receiving metals that utilize steel joists.
- The deflecting block according to the above aspect of the invention is structured so that the deflecting passage formed in the brick body is connected to the through-holes in the checker brick, so that the deflecting block can ensure ventilation in all the through-holes in the checker bricks. Accordingly, the support structure using the deflecting blocks according to the above aspect of the invention can effectively use all the through-holes in the checker bricks, and improve the use efficiency of the through-holes without the problem of a part of the through-holes being blocked by a joist as in the typical receiving metals.
- Accordingly, the deflecting block according to the above aspect of the invention can eliminate the limitations on the temperature condition and the oxygen concentration condition for the hot-blast stove and improve the use efficiency of the through-holes.
- In the above arrangement, the brick body is preferably formed of a refractory brick.
- With this arrangement, since a refractory brick is used as the heat-resistant material for the brick body, a high heat resistance can be reliably obtained. Particularly, in addition to a proven performance as the heat resistant material, the refractory brick can facilitate forming the brick body and reduce the production costs.
- Note that a heat-resistant inorganic material such as ceramics may be used as the refractory material. Moreover, without being limited to non-metals, any metal material having heat resistance (i.e., high softening temperature, high melting temperature) may be used.
- In the above arrangement, the deflecting passage is preferably formed in a groove on an upper surface of the brick body.
- With this arrangement, the groove is formed on the upper surface of the brick body with one end of the groove open on a side surface of the brick body, so that the deflecting passage is formed. Such a deflecting passage secures a connection between the through-holes in the checker brick and the side surface of the brick body; at the same time, since the deflecting passage only needs to be formed in a groove in the brick body, the groove can be integrally molded into the brick body as long as the brick body is molded like the brick. Even if the deflecting passage is not integrally molded when molding the brick body, the deflecting passage in a form of a groove can be easily machined in a later stage.
- Note that the deflecting passage may be a duct that opens on the upper surface and the side surface of the brick body and is formed inside the brick body. Alternatively, the deflecting passage may be structured in the above-described groove and partially in a duct. For instance, the duct may be a sloping duct extending from the upper surface of the brick body toward the side surface thereof, or an L-shaped duct opening on the upper surface and the side surface. Also with this arrangement, the deflecting passage also secures a connection between the through-holes in the checker bricks and the side surface of the brick body.
- It is preferable that the deflecting passage has a bottom surface that is slanted downward from a connected portion between the deflecting passage and the through-holes of the checker bricks toward the opening section on the side surface of the brick body.
- With this arrangement, the slanted bottom surface of the deflecting passage changes the direction of the vertical airflow from the through-holes of the checker bricks to the horizontal direction, thereby guiding the airflow to the side surfaces of the brick body. Moreover, a reverse airflow reaching the through-holes from the side surface of the brick body can also be guided in the same manner. Accordingly, in the deflecting block, the deflecting passage can ensure the airflow therethrough and a deflecting function of the airflow.
- Moreover, since the bottom surface is slanted, the flow passage area of the deflecting passage is increased towards the opening section on the side surface, so that, even with a confluence of the airflow from the plurality of through-holes, an increase in the flow rate within the deflecting passage is suppressible and a generated resistance is reducible to a minimum.
- It is preferable that the side surface of the brick body includes opposite first and second side surfaces, the connected portion between the deflecting passage and the through-holes is in a middle of the deflecting passage, and both ends of the deflecting passage are opened on the respective first and second side surfaces.
- With this arrangement, the upper surface of the brick body of the deflecting passage can be connected to the through-holes of the checker brick, and the opening sections on the respective first and second side surfaces of the brick body are connected to space facing the first and second side surfaces. Accordingly, the hot blast from the through-holes in the checker bricks is received at the upper surface of the brick body, passes through the deflecting passage, and is separated and guided towards the first and second side surfaces of the brick body. Moreover, the air supplied to both the sides of the brick body can converge in the deflecting passage, pass over the upper surface of the brick body, and be guided to the through-holes in the checker bricks.
- In the above arrangement, it is preferable that the side surface of the brick body includes opposite first and second side surfaces, the deflecting passage includes a plurality of deflecting passages arranged in parallel, and adjacent ones of the deflecting passages are opened on the respective first and second side surfaces of the brick body.
- With this arrangement, the upper surface of the brick body of the deflecting passage are connected to the through-holes in the checker bricks, and adjacent ones of the deflecting passages are alternately opened on the respective first and second side surfaces of the brick body. Consequently, a part of the through-holes in the checker brick is connected to one side of the brick body while another part of the through-holes in the checker brick is connected to the opposite side of the brick body. Also in this arrangement, the hot blast from the through-holes in the checker brick can be received at the upper surface of the brick body, pass through the deflecting passage, and be separated and guided towards both the sides of the brick body. Moreover, the air supplied to both the sides of the body can converge in the deflecting passage, pass over the upper surface of the body, and be guided to the through-holes in the checker bricks. In this deflecting block, the deflecting passage formed on the upper surface of the brick body is opened only at one side of the brick body. Since it is only required that the deflecting passage is formed to flow the air in one direction (i.e., angled for one-way flow), the production is easy.
- In the above arrangement, it is preferable that the side surface of the brick body includes opposite first and second side surfaces, the deflecting passage includes a plurality of deflecting passages arranged in parallel, and all the the deflecting passages are opened on one of the first and second side surfaces.
- With this arrangement, the deflecting passage are connected to the through-holes in the checker bricks at the upper surface of the brick body, and all the deflecting passages are opened on only one side of the brick body. Therefore, all the through-holes in the checker bricks facing the upper surface of the same deflecting block are connected to the space facing one of the side surfaces of the brick body of the same deflecting block.
- In this deflecting block, since all the deflecting passages formed on the upper surface of the brick body have the same shape (i.e., angled for one-way flow in the same direction), the production is easy. Note that, when adjacent deflecting blocks are alternately oriented in opposite directions, the airflow from the through-holes of the checker bricks can still be alternately separated eventually to both sides of the brick body.
- In the above arrangement, it is preferable that the brick body has a cutout formed by cutting opposite corners of a brick material shaped in a hexagonal prism, and the cutout defines a horizontal passage.
- With this arrangement, the basic shape of the brick body is established with reference to the outline of the hexagonal prism used for the checker brick and a part of the brick body is cut out to form a brick body having a horizontal passage. Consequently, the basic shape of the deflecting block can be established identically as the checker brick, allowing the deflecting block and the checker brick to be assembled together and stacked. For instance, since the respective basic shapes of the deflecting block and the checker brick are in the same hexagonal prism, the deflecting block and checker brick may be mixed together in a running bond pattern.
- Note that the bond pattern of the deflecting block and the checker brick is not limited to the running bond pattern, but other types of bond patterns such as a flue chimney stack bond pattern may be used.
- In the above arrangement, it is preferable that the cutout is formed continuously from the upper surface to a lower surface of the brick body.
- With this arrangement, since the part of the basic hexagonal prism is cut out continuously from the upper surface to the lower surface of the brick body to form the cutout defining the horizontal passage, the shape of the deflecting block can be simplified, thereby facilitating the production.
- In the above arrangement, it is preferable that the cutout is only formed in a part of the brick body between the upper surface and the lower surface of the brick body.
- This arrangement is preferable for using the heat storage function of the deflecting block itself and also allows an uncut part of the brick body to serve as a partition between the horizontal passages arranged in an up-down direction.
- In another aspect of the invention, a support structure supporting checker bricks in a hot-blast stove includes: the deflecting block according to the above aspect of the invention for supporting the checker bricks; and a support member formed of a heat-resistant material and supporting the deflecting block, in which the deflecting block is arranged along an imaginary deflecting plane that partitions an inside of the hot-blast stove into an upper side and a lower side, and the deflecting block and the support member define the horizontal passage extending horizontally between the deflecting block and the support member and connected to the opening section on the side surface of the deflecting block.
- In the above aspect of the invention, the deflecting block is supported by the support member at the bottom of the hot-blast stove, and the checker bricks are supported on the upper surface of the deflecting block.
- With this arrangement, the opening sections in the side surfaces of the deflecting block are connected to the through-holes in the checker bricks via the deflecting passages. The horizontal passage is formed on the side surface of the deflecting block and passes between the deflecting block and the support member to reach the side surfaces of the bottom in the hot-blast stove. With this arrangement, the through-holes in the checker brick extend from the deflecting passage in the deflecting block through to the horizontal passage to be connected to the space along the side surfaces of the bottom in the hot-blast stove.
- Thus, the support structure according to the above aspect of the invention is capable of ensuring both of the support function of the checker bricks and the ventilation function of the through-holes, thereby replacing the typical receiving member. Using the deflecting block according to the above aspect of the invention as above described can provide heat resistance higher than the typical steel receiving member and resolve the loss of the through-holes due to the support joists.
- Accordingly, the support structure according to the above aspect of the invention can eliminate the limitations on the temperature condition and the oxygen concentration condition for the hot-blast stove and improve the use efficiency of the through-holes.
- In the support structure with the above arrangement, the support member is preferably a support block having the same external dimensions as the deflecting block.
- With this arrangement, since the support block, which serves as the support member, is given the same external dimensions as the deflecting block, the support block and deflecting block may be assembled together and stacked. More specifically, when the basic shape of the deflecting block is in a hexagonal prism identical to that of the checker brick, the basic shape of the support block is also made in the identical hexagonal prism, so that the support member, the deflecting block, and the checker bricks may be mixed together and stacked in a running bond pattern.
- Note that the bond pattern of the support member, the deflecting block and the checker brick is not limited to the running bond pattern, but other types of bond patterns such as a flue chimney stack bond pattern may be used. The bond pattern is desirably selected as appropriate, taking into account the shape of the deflecting plane on which the deflecting blocks are arranged and the arrangement of the horizontal passages.
- In the support structure with the above arrangement, it is preferable that the deflecting block is a deflecting brick formed of a refractory brick, and the support block is a support brick formed of a refractory brick.
- With this arrangement, since the deflecting block and the support block are formed of the refractory brick, a high heat resistance can be reliably obtained. Particularly, in addition to a proven performance as the heat resistant material, the refractory brick can facilitate forming the brick body and reduce the production costs.
- Note that a heat-resistant inorganic material such as ceramics may be used as the refractory material. Moreover, without being limited to non-metals, any metal material (e.g., cast iron) having heat resistance (i.e., high softening temperature, high melting temperature) and oxidation resistance (i.e., when blow-in oxygen is at a high concentration) may be used.
- In the support structure with the above arrangement, the support member is preferably a support column formed of a refractory brick and supporting the deflecting block.
- With this arrangement, since the support column is used as the support member, the number of the support member arranged in a height direction is reducible. Additionally, a space between adjacent support columns may be used to form the horizontal passages. Further, the spaces between adjacent support columns may be collectively connected by the deflecting passages in a plurality of deflecting blocks to create a massive confluence space, and connect the confluence space to a duct on the side surface of the hot-blast stove.
- In the support structure with the above arrangement, the support column is preferably in a form of a plurality of support column components connected together lengthwise.
- With this arrangement, it is possible to limit the length of each of the support column members even when the support column is used as the support member, which is preferable in terms of production and transportation.
- In the support structure with the above arrangement, the deflecting plane is preferably formed in a V-shape extending diagonally upward and away from a reference axis that traverses a bottom surface of the hot-blast stove.
- With this arrangement, by arranging the deflecting blocks along a V-shaped deflecting plane, the through-holes in the checker bricks supported on the upper surface of the deflecting blocks are connected to the horizontal passages extending through the deflecting blocks and the support members.
- In this arrangement, the slanted deflecting plane ensures that a specific region inside the hot-blast stove in a plan view corresponds to a specific region in the height direction of the side surface of the hot-blast stove through the deflecting plane. Accordingly, the flow rate distribution may be suitably adjusted by allocating the through-holes of the checker bricks in each of the regions to the horizontal passage corresponding to each height.
- Additionally, since the deflecting plane is provided in a V shape by two facing slanted surfaces, the deflecting blocks arranged along the deflecting plane are oriented in the same direction. The horizontal passages extend away from the reference axis in a direction intersecting with the reference axis. Accordingly, the horizontal passages are parallel to each other, thereby facilitating designing the arrangement of the horizontal passages in the support structure.
- In the support structure with the above arrangement, it is preferable that the deflecting plane is formed substantially in a cone or substantially in a pyramid extending diagonally upward toward a periphery of the hot-blast stove from a bottom surface thereof.
- With this arrangement, arranging the deflecting blocks into a substantially cone-shaped or a substantially pyramid-shaped deflecting plane connects the through-holes in the checker bricks supported on the upper surface of the deflecting blocks to the horizontal passages extending through the deflecting blocks and the support members.
- In this arrangement, the slanted deflecting plane ensures that a specific region inside the hot-blast stove in a plan view corresponds to a specific region in the height direction of the side surface of the hot-blast stove through the deflecting plane. Accordingly, the flow rate distribution may be suitably adjusted by allocating the through-holes of the checker bricks in each of the regions to the horizontal passage corresponding to each height.
- Since the deflecting plane is substantially cone-shaped or substantially pyramid-shaped, the deflecting blocks are circularly aligned around the center axis line of the substantially cone-shaped or substantially pyramid-shaped deflecting plane and the horizontal passages are radially formed around the center axis line of the substantially cone-shaped or substantially pyramid-shaped deflecting plane. Accordingly, the horizontal passages extending toward the periphery of the hot-blast stove can be assumed to be uniform along the radial direction. More specifically, when the deflecting block is a hexagonal prism, the deflecting plane can be assumed to be a hexagonal pyramid or a triangular pyramid; thus, arranging the horizontal passages in a direction intersecting with edges of the bottom surface allows the horizontal passages to be uniform in the radial direction while simplifying the structure.
- In the support structure with the above arrangement, it is preferable that the deflecting plane extends horizontally.
- With this arrangement, arranging the deflecting blocks along the horizontally extending deflecting plane connects the through-holes in the checker bricks supported on the upper surface of the deflecting blocks to the horizontal passages facing the side surfaces of the deflecting blocks. Moreover, since the confluence space is created underneath the horizontally extending deflecting plane and the horizontal passages facing the deflecting blocks are connected, all the through-holes of the checker bricks supported on the deflecting blocks are connected to the confluence space. This confluence space can be defined by the above-mentioned structure using the above-described support column.
- With this arrangement, the checker bricks can be supported, the through-holes can be connected without loss, and the structure can be simplified with a simple deflecting plane.
- According to the support structure for the checker bricks in the hot-blast stove and the deflecting block used for the support structure in the above aspect of the invention, the limitations on the temperature condition and the oxygen concentration condition can be eliminated and the use efficiency of the through-holes can be improved.
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Fig. 1 is a cross-sectional view showing an entirety in a first exemplary embodiment of the invention. -
Fig. 2 is an enlarged cross-sectional view of a bottom of a hot-blast stove in the first exemplary embodiment. -
Fig. 3 is a schematic view of a deflecting surface in the first exemplary embodiment. -
Fig. 4 is an exploded perspective view of a brick stack structure in the first exemplary embodiment. -
Fig. 5 is a perspective view of a checker brick in the first exemplary embodiment. -
Fig. 6 is a schematic view of a deflecting brick in the first exemplary embodiment. -
Fig. 7 is a perspective view of a support brick in the first exemplary embodiment. -
Fig. 8 is a horizontally cross-sectional view of the bottom of the hot-blast stove in the first exemplary embodiment. -
Fig. 9 is a cross-sectional view showing an entirety in a second exemplary embodiment of the invention. -
Fig. 10 is a horizontally cross-sectional view of a bottom of a hot-blast stove in the second exemplary embodiment. -
Fig. 11 is an exploded perspective view of a brick stack structure in a third exemplary embodiment of the invention. -
Fig. 12 is a perspective view of an upper support brick in the third exemplary embodiment. -
Fig. 13 is a perspective view of a lower support brick in the third exemplary embodiment. -
Fig. 14 is a perspective view of a deflecting brick in the third exemplary embodiment. -
Fig. 15 is an enlarged cross-sectional view showing a bottom of a hot-blast stove in a fourth exemplary embodiment of the invention. -
Fig. 16 is an exploded perspective view of a brick stack structure in the fourth exemplary embodiment. -
Fig. 17 is a perspective view of a support member in the fourth exemplary embodiment. -
Fig. 18 is a perspective view of a deflecting brick in the fourth exemplary embodiment. -
Fig. 19 is a perspective view of a flow rate adjustment checker brick in the fourth exemplary embodiment. -
Fig. 20 is an exploded perspective view of a brick stack structure in a fifth exemplary embodiment of the invention. -
Fig. 21 is a perspective view of an abutting member in the fifth exemplary embodiment. -
Fig. 22 is a perspective view showing a modification of the deflecting brick of the invention. -
Fig. 23 is a perspective view showing a modification of the support brick of the invention. -
Fig. 24 is a perspective view showing another modification of the support brick of the invention. -
Fig. 25 is a perspective view showing another modification of the deflecting brick of the invention. -
Fig. 26 is a perspective view showing still another modification of the deflecting brick of the invention. -
Fig. 27 is a perspective view showing a further modification of the deflecting brick of the invention. -
Fig. 28 is an exploded perspective view of a brick stack structure in a six exemplary embodiment of the invention. -
Fig. 29 is a cross-sectional view showing an entirety in a seventh exemplary embodiment of the invention. -
Fig. 30 is a horizontally cross-sectional view in the seventh exemplary embodiment. -
Figs. 1 to 8 show a first exemplary embodiment of the invention. - In
Fig. 1 , a hot-blast stove 1 of the first exemplary embodiment is an external hot-blast stove including acombustion chamber 2, achecker chamber 3, and a connectingpipe 4 connecting respective top portions of thecombustion chamber 2 and thechecker chamber 3. - The
combustion chamber 2 includes acylindrical furnace shell 20. - A
heating burner 21 is installed in thecombustion chamber 2 at a bottom of thefurnace shell 20. A fuelgas supply pipe 22 and an outer-air supply pipe 23 are connected to a side surface at the bottom of thefurnace shell 20. Theburner 21 mixes the fuel gas and the outer air respectively supplied from the fuelgas supply pipe 22 and the outer-air supply pipe 23 to ignite, thereby generating high-temperature combustion gas. The generated high-temperature combustion gas passes through the connectingpipe 4 to be supplied to thechecker chamber 3. - A hot-
blast supply pipe 24 is connected to the side surface of thefurnace shell 20 above theburner 21 in thecombustion chamber 2. The hot-blast supply pipe 24 is connected to the tuyere (not shown) of a blast furnace, allowing a hot blast transmitted from thechecker chamber 3 through the connectingpipe 4 and the inside of thecombustion chamber 2 to be supplied to the blast furnace. - The
checker chamber 3 includes acylindrical furnace shell 30. - A
heat storage 31 is built inside thefurnace shell 30 of thechecker chamber 3 formed by stacking a plurality ofchecker bricks 5. Thechecker bricks 5 are described in detail below; thechecker bricks 5 are stacked so that the through-holes formed in each of thechecker bricks 5 continue from the upper surface to the lower surface of theheat storage 31, allowing ventilation between the bottom and the top of the bottom of thechecker chamber 3 via the through-holes. - A
support structure 32 according to the exemplary embodiment is arranged at the bottom of thefurnace shell 30 in thechecker chamber 3 in order to support theheat storage 31. Acylindrical ventilation space 33 is formed surrounding thesupport structure 32 between thesupport structure 32 and thefurnace shell 30, with aventilation pipe 34 formed in the side surface of thefurnace shell 30 connected to theventilation space 33. - As illustrated in
Fig. 2 , the bottom surface of thechecker chamber 3 is lined withfoundation bricks 39, and thesupport structure 32 supports supportbricks 6, which are support blocks, laid on top of thefoundation bricks 39 and deflecting bricks 7 (shown by black rectangles inFig. 2 ), which are deflecting blocks according to the exemplary embodiment, laid on thesupport bricks 6. - The
support bricks 6 and the deflectingbricks 7 are described in detail later. Each of the deflectingbricks 7 connects the through-holes in the above-describedchecker brick 5 and theventilation space 33, allowing mutual airflow therethrough. - The
support bricks 6 and thefoundation bricks 39 interlock (e.g., the convex part on the upper surface of thefoundation brick 39 may fit into the concave part in the lower surface of the support brick 6) to prevent displacement thereof in the horizontal direction. - In the
support structure 32 according to the exemplary embodiment, the deflectingbricks 7 are arranged along an imaginary V-shaped deflecting plane S1, S2. In order to support the deflectingbricks 7 so that the deflectingbricks 7 form the above described arrangement, thesupport bricks 6 are stacked with the upper surfaces aligned along below the deflecting plane S1, S2. - As illustrated in
Fig. 3 , the deflecting plane S1, S2 of the exemplary embodiment are each half circular imaginary planes that are slanted upward in a manner to separate from each other relative to a reference axis A. The reference axis A is, for instance, any diameter of the bottom in thechecker chamber 3. - In the deflecting
bricks 7 arranged along the deflecting plane S1, S2 in this manner, for instance, a vertically moving gas Gv traveling through the heat storage 31 (i.e., passing through the through-holes in the above-described checker bricks 5) is deflected at the deflecting plane S1, S2 along which the deflectingbricks 7 are arranged, and guided as a gas Gh moving in an intersectional direction with the reference axis A and in the horizontal direction to the ventilation space 33 (Fig. 2 ) surrounding thesupport structure 32. - The above-mentioned
checker bricks 5, thesupport bricks 6, the deflectingbricks 7, as well as thesupport structure 32 provided thereby are described below. -
Figs. 4 and5 show thechecker bricks 5 of the exemplary embodiment. - As can be seen from
Fig. 5 , each of thechecker bricks 5 includes abrick body 50 molded from a refractory brick material. - The
brick body 50 is given abasic shape 5P of a hexagonal prism provided with anupper surface 51 and alower surface 52 being hexagons, and sixside surfaces 53 connecting the upper and lower surfaces. - The
brick body 50 includes hexagonal cylindrical through-holes 54 opened in theupper surface 51 and thelower surface 52 thereof. -
Grooves 55 formed by bisecting the through-holes 54 are formed on theside surface 53. Agroove 56 shaped as one third of the through-hole 54 is formed at the point where the angled corners of twoside surfaces 53 come together. - As for the
55, 56, when stacking thegrooves checker bricks 5, the side surfaces 53 on twobrick bodies 50 are brought together facing each other, so that two of thegrooves 55 define a space corresponding to a single through-hole 54. Moreover, by collecting the corners of threebrick bodies 50, threegrooves 56 define a space corresponding to a single through-hole 54. - The above-described
checker bricks 5 are arranged in a running bond pattern inside thechecker chamber 3 to define theheat storage 31. - As illustrated in
Fig. 4 , when thechecker bricks 5 are stacked in running bond pattern, each of the corners is arranged at the center of thechecker bricks 5 stacked above and below. The space defined by the 55, 56, which correspond to the through-grooves hole 54 is connected to the through-hole 54 of thechecker bricks 5 stacked above and below. - Accordingly, a ventilation passage is formed across the entire horizontal surface in the
heat storage 31 illustrated inFigs. 1 and2 , passing through from the upper surface to the lower surface of theheat storage 31, thereby allowing maximum flow of the vertically moving gas Gv illustrated inFig. 2 . - Note that other than the running bond pattern, the
checker bricks 5 in theheat storage 31 may be stacked in a flue chimney stack bond pattern (see the sixth exemplary embodiment,Fig. 28 ). -
Figs. 4 and6 show thesupport bricks 6 of the exemplary embodiment. - As can be seen from
Fig. 6 , each of thesupport bricks 6 includes abrick body 60 molded from a refractory brick material. - Although the
basic shape 6P of thebrick body 60 is a hexagonal prism, a pair of opposite corners is cut to form a substantially rectangular body. Specifically thebrick body 60 includes anupper surface 61, alower surface 62, side surfaces 63 that correspond to side surfaces of thebasic shape 6P, and auxiliary side surfaces 64 formed by cutting the opposite corners. - Note that the
basic shape 6P is identical to thebasic shape 5P of the checker brick 5 (seeFig. 5 ), allowing the support brick and the checker brick to be assembled together and stacked in a running bond pattern. -
Figs. 4 and7 illustrate the deflectingbricks 7 of the exemplary embodiment. - As can be seen from
Fig. 7 , each of the deflectingbricks 7 includes abrick body 70 molded from a refractory brick material. - Although the
basic shape 7P of thebrick body 70 is a hexagonal prism, a pair of opposite corners is cut to form a substantially rectangular body in the same manner as in the support bricks 6 (seeFig. 6 ). Specifically thebrick body 70 includes anupper surface 71, alower surface 72, side surfaces 73 that correspond to side surfaces of thebasic shape 7P, and auxiliary side surfaces 74 formed by cutting the opposite corners. - Note that the
basic shape 7P is identical to thebasic shape 5P of the checker brick 5 (seeFig. 5 ) and thebasic shape 6P of the support brick 6 (seeFig. 6 ), allowing the support brick and the checker brick to be assembled together and stacked in a running bond pattern. - Deflecting
passages 75 each shaped in a groove are formed in the deflectingbrick 7 extending from theupper surface 71 to theside surface 73 and theauxiliary side surface 74. - A plurality of deflecting
passages 75 are formed parallel to theside surface 73 where theauxiliary side surface 74 is not formed (i.e., the deflectingpassages 75 are orthogonal to the auxiliary side surface 74) traversing theupper surface 71 with both ends thereof opened on theside surface 73 or theauxiliary side surface 74. - A deflecting
passage 77 which is a bisected version of the above-describeddeflecting passage 75 is formed on an edge connecting the side surfaces 73 where neither theupper surface 71 nor theauxiliary side surface 74 are formed. - The deflecting
passage 77 defines a grove identical to that of the deflectingpassage 75 when two deflectingbricks 7 are connected together. - The bottom surfaces 76 of the deflecting
75, 77 are shaped in a mountain and slant from the center downward toward each end.passages - The deflecting
75, 77 are arranged so that, when stacked together with thepassages checker bricks 5 in a running bond pattern as illustrated inFig. 4 , all the through-holes 54 in thechecker bricks 5 in the upper course are connected to any of the deflecting 75, 77.passages - The above described
support bricks 6 and deflectingbricks 7 are stacked on the bottom of thechecker chamber 3 in a running bond pattern based on each of the 6P, 7P, thereby forming thebasic shapes support structure 32. - Furthermore, a
horizontal passage 35 of the exemplary embodiment extending in an orthogonal direction to the reference axis A is formed between thesupport bricks 6 and the deflectingbricks 7 stacked in a running bond pattern as thesupport structure 32. - The
support structure 32 is built in the following manner. - As shown in
Fig. 4 , the lowest course of thesupport structure 32 is established on the bottom of thechecker chamber 3. In the lowest course, one or two deflectingbricks 7 are arranged along the reference axis A, and thesupport bricks 6 are arranged on both sides in order (in a direction intersecting with the reference axis A). Thesupport bricks 6 are arranged consecutively orthogonal to the reference axis A with the side surfaces 63 where there are no auxiliary side surfaces 64 close together. - The auxiliary side surfaces 64, 74 are continuous to each other in a row of the deflecting
bricks 7 and thesupport bricks 6 arranged in this manner. With the auxiliary side surfaces 64, 74 in an adjacent row of the deflectingbricks 7 and thesupport bricks 6, a gap is formed. The gap defines thehorizontal passage 35 extending orthogonal to the reference axis A. - As a second course, the
checker bricks 5, the deflectingbricks 7, and thesupport bricks 6 are arranged on top of thesupport bricks 6 in the above-mentioned lowest course in order from the reference axis A outward along the intersecting direction. - The second course of the
checker bricks 5 forms theheat storage 31 as above described, and is arranged on the lowest course of the deflectingbricks 7. - The second course of the deflecting
bricks 7 is arranged outside thechecker bricks 5 and supported on the lowest course of thesupport bricks 6. - The second course of the
support bricks 6 is arranged outside the deflectingbricks 7 and supported on the lowest course of thesupport bricks 6. - Further, a third course is arranged on the second course in the same manner so that the deflecting
bricks 7 in the lower course are always directly beneath thechecker brick 5 in the upper course. Herein, all the through-holes 54 in thechecker bricks 5 in the upper course are connected to the deflecting 75, 77 in the deflectingpassages bricks 7 in the lower course, so that the through-holes 54 are connected to thehorizontal passages 35 between the deflectingbricks 7 and thesupport bricks 6 in the lower course via the deflecting 75, 77.passages - Note that, in
Fig. 4 , thehorizontal passages 35 in each of the courses are indicated by arrows; thehorizontal passages 35 in the lowest course are indicated by a single line arrow, thehorizontal passages 35 in the second course are indicated by a double line arrow, and thehorizontal passages 35 in the third course are indicated by a triple line arrow. - Thus, the
checker bricks 5, the deflectingbricks 7, and thesupport bricks 6 are stacked in order away from the reference axis A in a direction orthogonal thereto in each course, and each lower course is stacked in a running bond pattern, whereby the lower part of thesupport structure 32 andheat storage 31 are sequentially built. - In this
support structure 32, the deflectingbricks 7 are arranged separating from the reference axis A as the number of courses increases, and as a result the deflectingbricks 7 are arranged along the deflecting plane S1, S2 (Figs. 2 and3 ) which are in a V-shape extending away from the reference axis A. - As illustrated in
Fig. 8 , thehorizontal passages 35 formed between the deflectingbricks 7 and thesupport bricks 6 are arranged in a direction intersecting the reference axis A in any course of thesupport structure 32 that includes the V-shaped deflecting plane S1, S2. - The
checker bricks 5 forming the lower part of theheat storage 31 are arranged in a region Rv along the reference axis A. The through-holes 54 in thechecker bricks 5 in the region Rv allow airflow of a vertically moving gas Gv (seeFigs. 2 and3 ). - The deflecting
bricks 7 are arranged in a region Rt outside the region Rv (i.e., away from the reference axis A). In the region Rt, the gas Gv from the through-holes 54 in thechecker bricks 5 in the upper course is guided via the deflecting 75, 77 to thepassages horizontal passages 35 facing the auxiliary side surfaces 74 and is deflected horizontally to define the gas Gh. - The
support bricks 6 are arranged in a region Rh outside the region Rt. In the region Rh, thehorizontal passages 35 formed between the deflectingbricks 7 in the region Rt are connected to thehorizontal passages 35 between the auxiliary side surfaces 64 in thecontinuous support bricks 6. Thehorizontal passages 35 between thesupport bricks 6 lead to the outside of thesupport structure 32 and is connected to theventilation space 33 surrounding thesupport structure 32 through to theventilation pipe 34. - Consequently, the deflecting
75, 77 in the deflectingpassages bricks 7 in thesupport structure 32 according to the exemplary embodiment allow the vertically moving gas Gv to change the direction and be extracted via thehorizontal passages 35 as the horizontally moving gas Gh (or allow flow in the reverse direction). - According to the above exemplary embodiment, the following advantages can be obtained.
- The
checker bricks 5 are arranged on the upper surface of thebrick body 70 of the deflectingbricks 7 assembled into thesupport structure 32, and the through-holes 54 in thechecker bricks 5 are connected to the deflecting 75, 77, so that the through-passages holes 54 and thehorizontal passages 35 are connected to each other via the deflecting 75, 77, which ensures mutual flow of the hot blast therethrough.passages - Thus, the vertically moving gas Gv from the through-
holes 54 in thechecker bricks 5 can change direction to be discharged to theventilation space 33 and theventilation pipe 34 as the horizontally moving gas Gh. - Airflow in the reverse direction is also possible. Specifically, air from the
ventilation pipe 34 may be taken in from thehorizontal passages 35 into the deflectingbricks 7, made to change direction by the deflecting 75, 77 and discharged into the through-passages holes 54 in thechecker bricks 5. - Accordingly, the
support structure 32 using the deflectingbricks 7 and thesupport bricks 6 according to the embodiment can replace the typical receiving metals used for the checker bricks. - In the exemplary embodiment, the
support structure 32 can be structured including the deflectingbricks 7 serving as the deflecting blocks and thesupport bricks 6 serving as the support members. - Since the
60 and 70 of the deflectingrespective brick bodies bricks 7 and thesupport bricks 6 are formed of a refractory brick (heat-resistant material), the heatproof temperature can be improved compared to the typical steel receiving metals. - Particularly, in addition to a proven performance as the heat resistant material, the refractory brick can facilitate forming the
60 and 70 and reduce the production costs.brick bodies - When the deflecting
bricks 7 and thesupport bricks 6 are incorporated as thesupport structure 32, thebrick body 70 can support thechecker bricks 5 and thebrick body 60 can support the deflectingbricks 7, so that the deflectingbricks 7 and thesupport bricks 6 can receive a compressive load, not a bend load. - Thus, the
support structure 32 using the deflectingbricks 7 and thesupport bricks 6 can sufficiently maintain strength even under high temperatures, and can mitigate the temperature condition better than the typical receiving metals that utilize steel joists. - Further, each of the deflecting
bricks 7 in the exemplary embodiment is structured so that the deflecting 75, 77 formed in thepassages brick body 70 are connected to the through-holes 54 in thechecker bricks 5, whereby the deflectingbricks 7 can ensure ventilation in all the through-holes 54 in thechecker bricks 5. - Accordingly, the
support structure 32 using the deflectingbricks 7 in the exemplary embodiment can effectively use all the through-holes 54 in thechecker bricks 5, and improve the use efficiency of the through-holes 54 without the problem of a part of the through-holes 54 of thechecker bricks 5 being blocked by a joist as in the typical receiving metals - As above described, in the exemplary embodiment, by using a
support structure 32 including the deflectingbricks 7 and thesupport bricks 6 according to the invention, it is possible to eliminate the limitations on the temperature condition caused by the support structure supporting thechecker bricks 5 in the hot-blast stove 1 and to improve the use efficiency of the through-holes. - In the exemplary embodiment, the groove is formed on the
upper surface 71 of thebrick body 70 of the deflectingbrick 7 with one end of the groove open on theside surface 73 or theauxiliary side surface 74 of thebrick body 70, so that the deflecting 75, 77 are formed.passages - The deflecting
75, 77 secure a connection between the through-passages holes 54 in thechecker brick 5 and theside surface 73 or theauxiliary side surface 74 of thebrick body 70; at the same time, since the deflecting 75, 77 only need to be formed in a groove in thepassages brick body 70, the groove can be integrally molded into thebrick body 70 as long as thebrick body 70 is molded like the brick. Even if the deflecting passage is not integrally molded when molding the brick body, the deflecting passage in a form of a groove can be easily machined in a later stage. - In the exemplary embodiment, with the slanted
bottom surface 76 of the deflecting 75, 77, the vertically moving gas Gv from the through-passages holes 54 in thechecker bricks 5 can change direction to be guided to thehorizontal passage 35 facing theside surface 73 or theauxiliary side surface 74 of thebrick body 70 as the horizontally moving gas Gh. Moreover, a reverse airflow reaching the through-holes 54 from thehorizontal passage 35 through the deflecting 75, 77 can also be guided in the same manner. Accordingly, in the deflecting block, the deflecting passage can ensure the airflow therethrough and a deflecting function of the airflow.passages - Moreover, since the
bottom surface 76 is slanted, the flow passage area of the deflecting 75, 77 is increased towards the opening on thepassages side surface 73 or theauxiliary side surface 74, so that, even with a confluence of the airflow from the plurality of through-holes 54, an increase in the flow rate within the deflecting passage is suppressible and a generated resistance is reducible to a minimum. - Since the deflecting
75, 77 in the exemplary embodiment are opened on thepassages side surface 73 or theauxiliary side surface 74 on both sides of thebrick body 70 and include aslanted bottom surface 76 having a projecting center like a mountain, thebrick body 70 receives the vertically moving gas Gv from the through-holes 54 in thechecker bricks 5 at theupper surface 71 thereof, the vertically moving gas Gv passes through the deflecting 75, 77 and is split between thepassages horizontal passages 35 on both sides of thebrick body 70 to be guided as the horizontally moving gas Gh. Moreover, in reverse, the air supplied to thehorizontal passages 35 on both the sides of thebrick body 70 can converge in the deflecting 75, 77, pass over thepassages upper surface 71 of thebrick body 70, and be guided to the through-holes 54 in thechecker bricks 5. - In the exemplary embodiment, since the
checker bricks 5, thesupport bricks 6, and the deflectingbricks 7 respectively have the 5P, 6P and 7P in a hexagonal prism in common, thebasic shapes checker bricks 5, thesupport bricks 6, and the deflectingbricks 7 can be built in combination in a running bond pattern. - Moreover, since the auxiliary sides surfaces 64, 74 are formed on the
support bricks 6 and the deflectingbricks 7 by cutting out opposite corners of the 60, 70 shaped in a hexagonal prism, the auxiliary side surfaces 64, 74 can form thebrick bodies horizontal passages 35 while using the common 6P, 7P.basic shapes - In the exemplary embodiment, when forming the
horizontal passages 35 along the respective side surfaces of thesupport bricks 6 and the deflectingbricks 7, the opposite corners in the 60, 70 shaped in a hexagonal prism are continuously cut out from thebrick bodies 61, 71 to theupper surfaces 62, 72, thereby forming the auxiliary side surfaces 64, 74. Since thelower surfaces horizontal passages 35 is formed by the above continuous cutout from the 61, 71 to theupper surfaces 62, 72, the shape of the bricks can be simplified, thereby facilitating the production.lower surfaces - In the exemplary embodiment, in the
support structure 32, a V-shaped deflecting plane S1, S2 is formed expanding diagonally upward away from the reference axis A that traverses the bottom surface of thechecker chamber 3. By arranging the deflectingbrick 7 along the V-shaped deflecting plane S1,S2, the through-holes 54 in thechecker bricks 5 supported on the upper surface of the deflectingbrick 7 can be connected to thehorizontal passages 35 extending through the deflectingbricks 7 and thesupport bricks 6 through the deflecting 75, 77.passages - In this arrangement, the slanted deflecting plane S1, S2 ensures that a specific region (i.e., the region Rt where the deflecting
bricks 7 are placed) inside thechecker chamber 3 in a plan view corresponds to a specific region in the height direction of theventilation space 33 surrounding the bottom of thechecker chamber 3 through the deflecting plane S1, S2. Accordingly, the flow rate distribution may be suitably adjusted by allocating the through-holes 54 of thechecker bricks 5 facing the region Rt in each of the courses of thesupport structure 32 to thehorizontal passage 35 corresponding to each height. - Additionally, since the deflecting plane S1, S2 is provided in a V shape by two facing slanted surfaces, the deflecting
bricks 7 arranged along the deflecting plane S1, S2 are oriented in the same direction. Thehorizontal passages 35 extend away from the reference axis A in a direction intersecting with the reference axis A.
Accordingly, thehorizontal passages 35 are parallel to each other, thereby facilitating designing the arrangement of thehorizontal passages 35 in thesupport structure 32. -
Figs. 9 to 10 show a second exemplary embodiment of the invention. - Although the V-shaped deflecting plane S1, S2 is defined in the first exemplary embodiment, a substantially cone-shaped deflecting plane S3 is used in the second exemplary embodiment.
- Note that, compared to the previously described first exemplary embodiment, the deflecting plane S3 in the second exemplary embodiment is in a different shape, whereby the arrangement of the deflecting
bricks 7, thesupport bricks 6, and thechecker bricks 5 are different in thesupport structure 32. However, in the second exemplary embodiment the structure of the hot-blast stove 1, the structure o of theheat storage 31 and thesupport structure 32, and the structure of the deflectingbricks 7, thesupport bricks 6, and thechecker bricks 5 are identical to those in the first exemplary embodiment. - Accordingly, in the following description, only the parts that differ from the previously described first embodiment are described.
- As illustrated in
Fig. 9 , the imaginary deflecting plane S3 in the second exemplary embodiment is an inverted cone where the apex is at the center of the bottom surface of thefurnace shell 30 in thechecker chamber 3. - In the
support structure 32 in the second exemplary embodiment, the deflectingbricks 7 are arranged along the substantially cone-shaped deflecting plane S3. The vertically moving gas Gv from theheat storage 31 changes direction at the deflectingbricks 7 and is discharged as the horizontally moving gas Gh. - In the
support structure 32 in the second exemplary embodiment, thehorizontal passages 35 are arranged radiating from the center of the deflecting plane S3. The horizontally moving gas Gh from the deflectingbricks 7 is discharged radially from thehorizontal passages 35 from the center of the deflecting plane S3. - In the second exemplary embodiment, for instance, when the same hexagonal prism is used as the respective
7P, 6P, 5P of the deflectingbasic shapes bricks 7, thesupport bricks 6, and thechecker bricks 5, the substantially cone-shaped deflecting plane S3 is desirably in a hexagonal pyramid or a triangular pyramid corresponding to the hexagon depending on the basic shapes. - As illustrated in
Fig. 10 , in any course in thesupport structure 32, thechecker bricks 5 forming the lower part of theheat storage 31 are placed at the center, the deflectingbricks 7 are placed surrounding thechecker bricks 5, and thesupport bricks 6 are placed surrounding the deflectingbricks 7. - In this arrangement, it is desirable that the deflecting plane S3 is in a hexagonal prism where the deflecting
bricks 7 are arranged. It is also desirable that thehorizontal passages 35 are oriented outward from each edge of the hexagon where the deflectingbricks 7 are arranged, in a direction intersecting with the edges. - Even the second embodiment can provide the same advantages as the previously described first embodiment.
-
Figs. 11 to 14 show a third exemplary embodiment of the invention. - In the first exemplary embodiment, the
checker bricks 5, thesupport bricks 6, and the deflectingbricks 7 respectively have the 5P, 6P and 7P in a hexagonal prism in common, which is suitable for a running bond pattern.basic shapes - In contrast, in the third exemplary embodiment,
6A, 6B, and deflectingsupport bricks bricks 7A are used to simplify and share components for forming asupport structure 32A. - In
Fig. 12 , thesupport brick 6A includes abrick body 60A mold from a refractory brick, in which anupper surface 61A and alower surface 62A of thebrick body 60A are rectangular; a first pair ofside surfaces 63A is a trapezoid narrowing downward; and a second pair ofside surfaces 64A is in a slanted rectangle. - Herein, considering an overlap, a width of each of short sides of the
upper surface 61A is equal to or more than a length of one side of the hexagon of thebasic shape 5P of thechecker brick 5. A height of thebrick body 60A is equal to a height of thechecker brick 5. - Accordingly, the
support brick 6A can be stacked in combination with thechecker brick 5. - As can be seen from
Fig. 13 , thesupport brick 6B includes abrick body 60B and aside surface 64B that are the same as those of thesupport brick 6A. However, thebrick body 60B and the side surfaces 64B are respectively in a vertically inverted shape of thebrick body 60A and the side surfaces 64A of thesupport brick 6A. Accordingly, theinversed support brick 6A can be used as the as thesupport brick 6B. - In
Figure 14 , the deflectingbrick 7A includes abrick body 70A andside surfaces 74A. Thebrick body 70A and the side surfaces 74A are the same as thebrick body 60A and the side surfaces 64A of thesupport brick 6A. - Further, in the deflecting
brick 7A, deflecting 75A, 77A shaped in a groove are formed on thepassages upper surface 71A. Both ends of each of the deflecting 75A, 77A are opened on the side surfaces 74A. The deflectingpassages 75A, 77A are the same as the deflectingpassages 75, 77 in the above first exemplary embodiment, where thepassages bottom surface 76A of the deflecting passages is slanted like a mountain toward ends of each of the deflecting 75A, 77A.passages - As illustrated in
Fig. 11 , the 6A, 6B and the deflectingabove support bricks bricks 7A are stacked in order from the bottom in the checker chamber 3 (seeFig. 2 ) to form thesupport structure 32A. - Also in the third exemplary embodiment, the deflecting
bricks 7A are arranged along the imaginary V-shaped deflecting plane S1, S2 (seeFig. 3 ) in the same manner as in the first exemplary embodiment. - In the first exemplary embodiment, the
support bricks 6, the deflectingbricks 7, and thechecker bricks 5 are stacked in a running bond pattern to form thesupport structure 32. Theheat storage 31 above thesupport structure 32 is also formed by stacking thechecker bricks 5 in a running bond pattern. - In contrast, in the third exemplary embodiment, the
heat storage 31, which includes a course formed only of thechecker bricks 5 and courses formed above the course, is formed in a running bond pattern, and thesupport structure 32A and thechecker bricks 5 in the same courses (i.e., the lower part of the heat storage 31) are stacked in a flue chimney stack bond pattern, thereby providing a hybrid bond pattern of a running bond pattern and a flue chimney stack bond pattern. - Note that, in the
heat storage 31 including the course formed only of thechecker bricks 5 and the courses formed above the course, thechecker bricks 5 may be stacked in a flue chimney stack bond pattern instead of a running bond pattern. - As shown in
Fig. 11 , thesupport bricks 6B are arranged at the bottom surface of thechecker chamber 3 as the lowest course in thesupport structure 32A. Thesupport bricks 6B are arranged along a direction orthogonal to the reference axis A. A predetermined distance is secured between each of the rows ofsupport bricks 6B. - In the second course, the deflecting
bricks 7A are arranged on thesupport bricks 6B near the reference axis A, and thesupport bricks 6A arranged on thesupport bricks 6B outside of the deflectingbricks 7A. - In the third course, the
checker bricks 5 are arranged on the deflectingbricks 7A, and thesupport bricks 6B arranged on thesupport bricks 6A. - In the fourth course, the
checker bricks 5 are arranged concentrically on the checker bricks 5 (in the flue chimney stack bond pattern). The deflectingbricks 7A are also arranged on thesupport bricks 6B in a region adjacent to thechecker bricks 5. Thesupport bricks 6A are arranged on thesupport bricks 6B outside of the deflectingbricks 7A. - Thereafter, repeating these steps, the region of
checker bricks 5 in the section near the reference axis A expands outward, and at the point where an entire course includes allchecker bricks 5, the bond patter of thechecker bricks 5 is switched to a running bond pattern, thereby forming theheat storage 31. - In the
support structure 32A built in this manner, the slantedside surfaces 64A of the stacked the 6A, 6B and thesupport bricks stacked deflecting brick 7A on thesupport brick 6B define a space. This space provides thehorizontal passage 35A extending outward and orthogonal to the reference axis A along the row of the 6A, 6B.support bricks - In the
heat storage 31, the through-holes 54 of thechecker bricks 5 are connected to each other in both of the section formed in the running bond pattern and the section formed in the flue chimney stack bond pattern. The through-holes 54 in the lowest end ofchecker bricks 5 are connected to the deflecting 75A, 77A in the deflectingpassages bricks 7A and further connected from the opening in theside surface 74A to thehorizontal passages 35A. - Accordingly, in the third exemplary embodiment, the vertically moving gas Gv from the heat storage 31 (see
Fig. 3 ) changes direction at the deflectingbricks 7A, and is led to thehorizontal passages 35A as the horizontally moving gas Gh (seeFig. 3 ) in the same manner as in the first exemplary embodiment. - Thus, the
support structure 32A in the third exemplary embodiment can provide the same advantages as in the first exemplary embodiment. - Further, in the third exemplary embodiment, the
6A, 6B and deflectingsupport bricks bricks 7A are used as the components for forming thesupport structure 32A and have a simple shape. - The
support bricks 6B can share the support of thesupport bricks 6A and the support of the deflectingbricks 7A, and each of thesupport brick 6B has a inverted shape of each of thesupport bricks 6A. Accordingly, only two types of thesupport bricks 6A and the deflectingbricks 7A need to be prepared, thereby simplifying construction and reducing the production costs. -
Figs. 15 to 19 show a fourth exemplary embodiment of the invention. - Although the V-shaped deflecting plane S1, S2 is used in the first and third exemplary embodiments, a substantially cone-shaped (pyramid-shaped) deflecting plane S3 is used in the second exemplary embodiment. However, in the fourth exemplary embodiment, a horizontal deflecting plane S4 is used.
- Moreover, in the first and third exemplary embodiments, the
6, 6A, 6B are used as the support members. However, in the fourth exemplary embodiment, asupport bricks support column 8 is used as the support member. - In
Fig. 15 , asupport structure 32C is arranged on the bottom of thefurnace shell 30 in thechecker chamber 3, and thesupport structure 32C supports theheat storage 31 formed of thechecker bricks 5. - As shown in
Fig. 16 , thesupport structure 32C includessupport columns 8 arranged on the bottom of thechecker chamber 3 and deflectingbricks 7C supported on upper ends of thesupport columns 8, where the deflectingbricks 7C are arranged along the horizontal deflecting plane S4. - A space is formed between the
support columns 8. The space between thesupport columns 8 and the cylindrical space between thesupport structure 32C and thefurnace shell 30 define alarge confluence space 33C under the deflecting plane S4. - A
ventilation pipe 34 is connected to the side of thefurnace shell 30 for connecting to theconfluence space 33C. - The
support columns 8 are provided by connecting a plurality of cylindricalsupport column components 80. - As illustrated in
Fig. 17 , each of thesupport column components 80 includes a circularupper surface 81 andlower surface 82, and a cylindricalperipheral surface 83. Thesupport column components 80 are formed of a highly heat-resistant ceramic material. - As illustrated in
Fig. 18 , each of the deflectingbricks 7C includes an inverse truncated cone-shaped brick body 70C. - The brick body 70C includes a circular
upper surface 71C andlower surface 72C and aconical side surface 74C. Thelower surface 72C is shaped identically to theupper surface 81 of thesupport column components 80 and connectable to the upper surface of each of thesupport column 8. - In the deflecting
brick 7C, deflecting 75C, 77C shaped in a groove are formed on thepassages upper surface 71C. Both ends of each of the deflecting 75C, 77C are opened on the side surfaces 74C. The deflectingpassages 75C, 77C are the same as the deflectingpassages 75, 77 in the above first exemplary embodiment, where thepassages bottom surface 76A of the deflecting passages is slanted like a mountain toward ends of each of the deflecting 75C, 77C.passages - Referring back to
Fig. 16 , the deflectingbricks 7C are supported on thesupport columns 8 to form thesupport structure 32C. When thechecker bricks 5 are arranged on the upper surfaces of the deflectingbricks 7C, the through-holes 54 therein are connected to the deflecting 75C, 77C and connected to thepassages confluence space 33C from the opening of the deflecting passage on theside surface 74C. - Accordingly, also with the
support structure 32C in the fourth exemplary embodiment, ventilation can be conducted from the through-holes 54 in thechecker bricks 5 of theheat storage 31 through the deflecting 75C, 77C to thepassages confluence space 33C and theventilation pipe 34. - In the fourth exemplary embodiment, the
checker bricks 5 are identical to those in the first exemplary embodiment (seeFig. 5 ). Only thechecker bricks 5 stacked at the lowest course in theheat storage 31, (i.e., thechecker bricks 5 directly supported on the deflectingbricks 7C) are defined as flow rateadjustment checker bricks 5C shown inFig. 19 . - The flow rate
adjustment checker bricks 5C each have basically the same structure as thechecker bricks 5 described with reference toFig. 5 . However, the flowadjustment checker bricks 5C each have multiple types of through-holes 54 with different cross-sectional areas. - In
Fig. 19 , a through-hole 54A has the same dimensions as the through-hole in thechecker brick 5 described with reference toFig. 5 . A through-hole 54B is formed with a cross-sectional area smaller than that of the through-hole 54A. A through-hole 54C is formed with a cross-sectional area smaller than that of the through-hole 54B. - By using the thus structured flow rate
adjustment checker brick 5C, airflow can be restricted at the lowest course in theheat storage 31 although the through-holes 54 of thechecker bricks 5 stacked on the flow rateadjustment checker brick 5C have the same dimension. - For instance, when flow resistances are different at the deflecting
75C, 77C continuous to the through-passages holes 54, the flow rate is larger at the through-holes 54 where the flow resistance is low (from the lower end to the upper end of the heat storage 31) whereas the flow rate is smaller at the through-holes 54 where the flow resistance is high, which results in imbalance. - In contrast, when the flow rate
adjustment checker bricks 5C are used to use the through-holes 54A to 54C depending on the flow resistances at the deflectingbricks 7C and the like, the flow rates of the through-holes 54 can be balanced. -
Figs. 20 to 21 show a fifth exemplary embodiment of the invention. - In the fifth exemplary embodiment, the same components as those in the fourth exemplary embodiment are used except for some components. Accordingly, the components having the same structure are given the same reference numerals and the descriptions thereof are omitted. Differences are described below.
- In the fourth exemplary embodiment, the
support columns 8 are provided by connecting the cylindricalsupport column components 80. - Although the
support columns 8 are also provided by connecting the cylindricalsupport column components 80 in the fifth exemplary embodiment, aspacer 84 is interposed between thesupport column components 80 as shown inFig. 21 . - In
Fig. 22 , thespacer 84 includes: a base 85 having the same diameter as that of thesupport column component 80; andprismatic protrusions 86 formed around thebase 85. - The
protrusions 86 are formed from the base 85 in six directions corresponding to the hexagonal prism shape of thechecker bricks 5 used in the fifth exemplary embodiment. - As shown in
Fig. 20 , when thespacer 84 is sandwiched between thesupport column components 80, thebase 85 is continuous to thesupport column components 80 and theprotrusions 86 protrudes in six directions. - When the
support columns 8 formed by connecting thespacers 84 and thesupport column components 80 are arranged on the bottom surface of thechecker chamber 3, in adjacent ones of thesupport columns 8,adjacent protrusions 86 contact each other. - With this arrangement, even if eventually one of the
support column 8 is about to fall, thesupport column 8 can be supported via theprotrusions 86 contacting each other. Accordingly, a strength of thesupport columns 8 can be increased to increase a strength of thesupport structure 32C. - Moreover, since the
protrusions 86 protrude into theconfluence space 33C, turbulence can be generated in the gas passing through theconfluence space 33C. - It should be understood that the scope of the present invention is not limited to the above-described exemplary embodiments but includes modifications and improvements as long as the modifications and improvements are compatible with the present invention.
- For instance, in order to form the
horizontal passages 35, in the deflectingbrick 7 and thesupport brick 6 in the first exemplary embodiment, the opposite corners of the 7P, 6P in a hexagonal prism are cut out from the upper end to the lower end to form the auxiliary side surfaces 74, 64. However, the cutout portions to provide thebasic shapes horizontal passages 35 may be provided by cutting only a height-directional part of each of the deflectingbrick 7 and thesupport brick 6. - In
Fig. 22 , in the pair of opposite corners of the deflectingbrick 7, the corners connecting theupper surface 71 and thelower surface 72 are cut to provide the auxiliary side surfaces 74. However, a middle part of each of the same corners may be left uncut with the twoside surfaces 73 meeting each other. - Even with the thus structured deflecting
brick 7, the horizontal passages 35 (seeFig. 4 ) can be formed by the cutouts facing the upper and lower auxiliary side surfaces 74. - In
Fig. 23 , in the pair of opposite corners of thesupport brick 6, the corners connecting theupper surface 61 and thelower surface 62 are cut to provide the auxiliary side surfaces 64. However, a middle part of each of the same corners may be left uncut with the twoside surfaces 63 meeting each other. - Even with the thus structured
support brick 6, the horizontal passages 35 (seeFig. 4 ) can be formed by the cutouts facing the upper and lower auxiliary side surfaces 64. - In
Fig. 24 , in the pair of opposite corners of thesupport brick 6, a middle part of each of the same corners is cut to provide theauxiliary side surface 64. However, the portions connecting theupper surface 61 and thelower surface 62 are left uncut with the twoside surfaces 63 meeting each other. - Even with the thus structured
support brick 6, the horizontal passages 35 (seeFig. 4 ) can be formed by the cutouts facing theauxiliary side surface 64 in the middle. - In each of the above exemplary embodiments, the bottom surfaces 76, 76C of the deflecting
75, 77, 75A, 77A, 75C, 77C allow two-way flow (the bottom surface is shaped in a mountain). However, the bottom surface of each of the deflecting passages is not limited to the bottom surface for the two-way flow, but may be a bottom surface allowing one-way flow.passages - The deflecting
brick 7 inFig. 25 has the same structure as in the first exemplary embodiment. However, only a first end of the deflecting 75, 77 shaped in a groove is opened on thepassages side surface 73 or theauxiliary side surface 74. - The
bottom surface 76 of each of the deflecting 75, 77 are slanted from a second end where the passages are not opened on thepassages side surface 73 or theauxiliary side surface 74 toward the first end where the passages are opened on theside surface 73 or theauxiliary side surface 74. - Even with the thus structured deflecting
brick 7, the through-holes 54 in thechecker brick 5 stacked on theupper surface 71 are connected only to thehorizontal passage 35 on one side (seeFig. 4 ). However, by arranging adjacent ones of the deflectingbricks 7 in alternately reversed orientations, the through-holes 54 can be alternately connected to thehorizontal passages 35 on opposite sides, resulting in a balanced airflow as a whole. - Further, since the deflecting
75, 77 are formed for one-way flow, the molding is easy.passages - Although the deflecting
75, 77 in the deflectingpassages brick 7 inFig. 25 are one-way angled and oriented in the same direction, the orientation of the one- 75, 77 may be alternately changed.way deflecting passages - The deflecting
brick 7 inFig. 26 has the same structure as the deflectingbrick 7 inFig. 25 . However, the deflecting 75, 77 are opened on alternate one of thepassages side surface 73 and theauxiliary side surface 74. - With the thus structured deflecting
brick 7, molding of the one- 75, 77 can be facilitated and the airflow can be balanced with anway deflecting passages individual deflecting brick 7 by separating the airflow from the through-holes 54 to both the sides of the deflectingbrick 7. - Although the deflecting
75, 77 are top-open grooves across the entire length thereof in the above exemplary embodiments, a part or a whole of the top of each of the grooves may be covered.passages - The deflecting
brick 7 inFig. 27 has the same structure as in the first exemplary embodiment. However, the side edges of theupper surface 71 that meets the side surfaces 73 or the auxiliary side surfaces 74 remain, where the deflecting 75, 77 are formed in a pipe.passages - In the structure shown in
Fig. 27 , since the deflecting 75, 77 are formed in a linear pipe, the deflectingpassages 75, 77 may be formed, for instance, by boring holes along thepassages bottom surface 76 from both directions. - On the other hand, a first hole may be bored laterally from the side surfaces 73 or the auxiliary side surfaces 74, and a second hole may be bored from the
upper surfaces 71 to connect with the first hole, so that deflecting 75, 77 in L-shaped pipe can be formed.passages - Thus, the deflecting
75, 77 are not limited to open groove passage channel structures, but may be shaped in a form of a tunnel, a linear pipe, or an L-shaped tunnel.passages - Further, the above-mentioned exemplary embodiments provide the deflecting
passages 77 that form the deflectingpassage 75 when adjacent deflectingbricks 7 are joined together. However, the deflecting brick may include just the deflectingpassages 75 in accordance with the arrangement of the through-holes 54 in thechecker bricks 5. - In the first to third exemplary embodiments, the deflecting
7, 7A and thebricks support bricks 6 are each given a 7P, 6P identical to the hexagonal prism shape of thebasic shape checker bricks 5; however, without being limited thereto, other shapes such as a may be used. - In the fourth and fifth exemplary embodiments, the deflecting
bricks 7C supported by thesupport columns 8 are arranged along the horizontal deflecting plane S4; however, the deflectingbricks 7C may be arranged along the V-shaped deflecting plane S1, S2 of the first exemplary embodiment, or arranged along the cone-shaped or pyramid-shaped deflecting plane S3 of the second exemplary embodiment. In this arrangement, thesupport column 8 is preferably structured so that the length thereof may be increased or decreased based on the height of thechecker bricks 5 or the deflectingbricks 7C. - In the fourth and fifth exemplary embodiments, the
support column 8 is formed by connecting the cylindricalsupport column components 80; however thesupport column components 80 may be prismatic. Thesupport column 80 is provided not only by connecting thesupport column components 80 but also by a continuous material. - In the above exemplary embodiments, the deflecting
7, 7A, 7C serve as the deflecting blocks, thebricks 6, 6A, 6B serve as the support blocks, and a heat-resistant ceramic material is used for thesupport bricks support columns 8. However, the material is not limited to the refractory brick or heat-resistant ceramic material, but may be other heat-resistant inorganic materials. - Moreover, without being limited to non-metals, any metal material (e.g., cast iron) having heat resistance (i.e., high softening temperature, high melting temperature) and oxidation resistance (i.e., when blow-in oxygen is at a high concentration) may be used.
- In the above exemplary embodiments, each of the
checker bricks 5 includes 19 holes (i.e., 19 holes as the through-holes 54 per a single brick). However, thechecker brick 5 may have other arrangements such as having nine holes or 37 holes. Additionally, the checker brick is not limited to the hexagonal shape in a plan view, but may be a cube, a cuboid, or an octagonal prism. When using different shapes for the checker bricks in this manner, the deflectingbricks 7 and thesupport bricks 6 also need to be changed correspondingly in terms of the shapes, the number and position of the grooves and the ventilating passages, thereby providing the deflecting passage based on the invention. -
Figs. 28 to 21 show a sixth exemplary embodiment of the invention. - In the above first exemplary embodiment (see
Fig. 4 ) and third exemplary embodiment (seeFig. 11 ), the upper surfaces of the deflecting 7, 7A and the lower surfaces of thebricks checker bricks 5 are stacked in a running bond pattern. In other words, thechecker bricks 5 in the upper course are stacked straddling the multiple deflecting 7, 7A.bricks - With this arrangement, the joints of the bricks in the upper and lower courses are mutually nonconsecutive, so that, for example, the load at the lower surface of the bricks in the upper course is not propagated vertically to a section exposed at a joint between the bricks in the lower course. Accordingly, the contact surface area used for propagating the load vertically between bricks is reduced, so that the load is received at a narrow contact surface and the compressive load at the contact surface is likely to be increased.
- Since the load of all the bricks stacked above is received at the sections near the bottom in particular, the received load is enormous, leading to a concern that the deflecting
7, 7A and thebricks checker bricks 5 may have insufficient compressive strength. - In contrast, in the sixth exemplary embodiment illustrated in
Fig. 28 , the two lowest courses of thechecker bricks 5 in theheat storage 31 are defined aschecker bricks 5E. Thechecker bricks 5E and the deflectingbricks 7A immediately therebelow are arranged in a flue chimney stack bond pattern. Specifically, asingle checker brick 5E sits on the upper surface of asingle deflecting brick 7A. - The planar shape of the
checker brick 5E is not the hexagon used for thechecker brick 5. Similar to thesupport brick 6 inFigure 6 and the deflectingbrick 7 inFigure 7 , a pair of corners of the hexagon is cut out so that the planar shape of thechecker brick 5E is substantially rectangular, and the cutout portion is defined as anauxiliary side surface 53E. - The deflecting
brick 7A has anupper surface 71A having a planar shape that is a rectangle as illustrated inFig. 14 . Therefore, the entire lower surface of thechecker brick 5E can exactly sit on theupper surface 71A of the deflectingbrick 7A. - Consequently, the
checker brick 5E and the deflectingbrick 7A can be arranged in a vertically overlapping flue chimney stack bond pattern as illustrated inFig. 28 . - In the sixth exemplary embodiment, by arranging the
checker brick 5E and the deflectingbrick 7A in a flue chimney stack bond pattern, no section is exposed at a joint between the bricks on the respective lower surface and upper surface of thechecker brick 5E and the deflectingbrick 7A, thereby sufficiently ensuring the contact surface area for receiving the compressive load. Therefore, the concern of insufficient compressive strength between thechecker brick 5E and the deflectingbrick 7A can be resolved. - Note that, in the sixth exemplary embodiment, the
hexagonal checker bricks 5 stacked on and above thechecker bricks 5E are also arranged in a flue chimney stack bond pattern in the same manner as in the arrangement of thechecker bricks 5E and the deflectingbricks 7A. - However, after arranging the
checker bricks 5E and the deflectingbricks 7A in the flue chimney stack bond pattern, thechecker bricks 5E and thechecker bricks 5 thereabove may be arranged in a running bond pattern. - Seventh Exemplary Embodiment
-
Figs. 29 to 30 show a seventh exemplary embodiment of the invention. - Although the external hot-blast stove (see
Fig. 1 ) is employed in the above exemplary embodiments, an internal hot-blast stove 1F is employed in the seventh exemplary embodiment. - In
Fig. 29 , the hot-blast stove 1F includes acylindrical furnace shell 90. - Inside the
furnace shell 90, acombustion chamber 2F and achecker chamber 3F are separated by apartition 91. An upper portion of thefurnace shell 90 is covered with alid 92. An upper portion of thecombustion chamber 2F and an upper portion of thechecker chamber 3F are mutually connected through an inside of thelid 92. - As further illustrated in
Fig. 30 , thepartition 91 is formed as a cylindrical surface with both edges bonded to the inner surface of thefurnace shell 90 without any gaps. - While the inside of the
combustion chamber 2F is a cavity, arefractory brick addition 93 is formed along the inner surface of thefurnace shell 90, facing thecombustion chamber 2F. - Inside the
checker chamber 3F, the support structure 32 (or optionally the 32A, 32C) is formed at the bottom usingabove support structures support bricks 6 and deflectingbricks 7, and theheat storage 31 formed by stacking thechecker bricks 5 is supported on thesupport structure 32. Thesupport structure 32 is arranged so that the reference axis A is at the center of thepartition 91 in a manner to be orthogonal to thepartition 91. - The
cylindrical ventilation space 33 is formed surrounding thesupport structure 32 between thesupport structure 32 and thefurnace shell 90, with theventilation pipe 34 formed in the side surface of thefurnace shell 90 connected to theventilation space 33. Theventilation space 33 in the sixth exemplary embodiment does not continue around the entire periphery of thesupport structure 32; a portion of theventilation space 33 is blocked off at thepartition 91. - Referring back to
Fig. 29 , theheating burner 21 is installed at the bottom of thecombustion chamber 2F. The fuelgas supply pipe 22 and the outer-air supply pipe 23 are connected to the side surface at the bottom of thefurnace shell 90. The hot-blast supply pipe 24 is connected to the side surface of thefurnace shell 90 above theburner 21. - The above components from the
burner 21 to the hot-blast supply pipe 24 are identical to the components in the first exemplary embodiment. With these components, a high-temperature fuel gas generated at theburner 21 passes through the inside of thelid 92 and is supplied to and stored in thechecker chamber 3F. Furthermore, the hot blast heated in thechecker chamber 3F can pass through the inside of thelid 92 and be fed into thecombustion chamber 2F, and be supplied to the blast furnace via the hot-blast supply pipe 24. - Also in the seventh exemplary embodiment, with the
support structure 32 using thesupport bricks 6 and the deflectingbricks 7 as well as theheat storage 31 formed by stacking thechecker bricks 5, the same advantages as in the first exemplary embodiment can be obtained, and the modifications described for each of the embodiments may also be adopted in the seventh exemplary embodiment. - The present invention is applicable to a support structure supporting checker bricks in a hot-blast stove and deflecting blocks used in this support structure.
-
- 1...
- hot-blast stove
- 2, 2F...
- combustion chamber
- 20...
- furnace shell
- 21...
- burner
- 22...
- fuel gas supply pipe
- 23...
- outer-air supply pipe
- 24...
- hot-blast supply pipe
- 3, 3F...
- checker chamber
- 30...
- furnace shell
- 31...
- heat storage
- 32, 32A, 32C...
- support structure
- 33...
- ventilation space
- 33C...
- confluence space
- 34...
- ventilation pipe
- 35, 35A...
- horizontal passage
- 39...
- foundation brick
- 4...
- connecting pipe
- 5, 5E...
- checker brick
- 50...
- brick body
- 51...
- upper surface
- 52...
- lower surface
- 53...
- side surface
- 54, 54A, 54B, 54C...
- through-hole
- 55, 56···
- groove forming a through-hole
- 5C...
- flow rate adjustment checker brick
- 5P, 6P, 7P···
- basic shape in hexagonal prism
- 6, 6A, 6B...
- support brick
- 60, 60A, 60B...
- brick body
- 61, 61A...
- upper surface
- 62, 62A...
- lower surface
- 63, 63A...
- side surface
- 64...
- auxiliary side surface
- 64A, 64B...
- side surface
- 7, 7A, 7C...
- deflecting brick
- 70, 70A, 70C...
- brick body
- 71, 71A, 71C...
- upper surface
- 72, 72C...
- lower surface
- 73...
- side surface
- 74...
- auxiliary side surface
- 74A, 74C...
- side surface
- 75, 75A, 75C, 77...
- deflecting passage
- 76, 76A...
- bottom surface
- 8...
- support column
- 80...
- support column component
- 81...
- upper surface
- 82...
- lower surface
- 83...
- peripheral surface
- 84...
- spacer
- 85...
- base
- 86...
- protrusion
- 90...
- furnace shell
- 91...
- partition
- 92...
- lid
- 93...
- refractory brick addition
- A...
- reference axis
- Gh···
- horizontally moving gas
- Gh···
- vertically moving gas
- Rh···
- area of
checker brick 5 - Rt···
- area of deflecting brick
- Rv···
- area of support brick
- S1, S2, S3, S4...
- deflecting plane
Claims (18)
- A deflecting block used in a support structure supporting checker bricks in a hot-blast stove, the deflecting block comprising:a brick body formed of a refractory material; anda deflecting passage connected to through-holes of the checker bricks and being opened at an opening section on a side surface of the brick body.
- The deflecting block according to claim 1, wherein
the brick body is formed of a refractory brick. - The deflecting block according to claim 1 or 2, wherein
the deflecting passage is formed in a groove on an upper surface of the brick body. - The deflecting block according to claim 3, wherein
the deflecting passage comprises a bottom surface that is slanted downward from a connected portion between the deflecting passage and the through-holes of the checker bricks toward the opening section on the side surface of the brick body. - The deflecting block according to claim 3 or 4, wherein
the side surface of the brick body comprises opposite first and second side surfaces,
the connected portion between the deflecting passage and the through-holes is in a middle of the deflecting passage, and
both ends of the deflecting passage are opened on the respective first and second side surfaces. - The deflecting block according to claim 3 or 4, wherein
the side surface of the brick body comprises opposite first and second side surfaces,
the deflecting passage comprises a plurality of deflecting passages arranged in parallel, and
adjacent ones of the deflecting passages are opened on the respective first and second side surfaces. - The deflecting block according to claim 3 or 4, wherein
the side surface of the brick body comprises opposite first and second side surfaces,
the deflecting passage comprises a plurality of deflecting passages arranged in parallel, and
all the deflecting passages are opened on one of the first and second side surfaces. - The deflecting block according to any one of claims 1 to 7, wherein
the brick body comprises a cutout formed by cutting opposite corners of a brick material shaped in a hexagonal prism, and
the cutout defines a horizontal passage. - The deflecting block according to claim 8, wherein
the cutout is formed continuously from the upper surface to a lower surface of the brick body. - The deflecting block according to claim 8, wherein
the cutout is only formed in a part of the brick body between the upper surface and the lower surface of the brick body. - A support structure supporting checker bricks in a hot-blast stove, the support structure comprising:the deflecting block according to any one of claims 1 to 10 supporting the checker bricks; anda support member formed of a heat-resistant material and supporting the deflecting block, whereinthe deflecting block is arranged along an imaginary deflecting plane that partitions an inside of the hot-blast stove into an upper side and a lower side, andthe deflecting block and the support member define the horizontal passage extending horizontally between the deflecting block and the support member and connected to the opening section on the side surface of the deflecting block.
- The support structure according to claim 11, wherein
the support member is a support block having the same external dimensions as the deflecting block. - The support structure according to claim 12, wherein
the deflecting block is a deflecting brick formed of a refractory brick, and the support block is a support brick formed of a refractory brick. - The support structure according to claim 11, wherein
the support member is a support column formed of a refractory brick and supporting the deflecting block. - The support structure according to claim 14, wherein
the support column is in a form of a plurality of support column components connected together lengthwise. - The support structure according to any one of claims 11 to 15, wherein
the deflecting plane is formed in a V-shape extending diagonally upward and away from a reference axis that traverses a bottom surface of the hot-blast stove. - The support structure according to any one of claims 11 to 15, wherein
the deflecting plane is formed substantially in a cone or substantially in a pyramid extending diagonally upward toward a periphery of the hot-blast stove from a bottom surface thereof. - The support structure according to any one of claims 11, 14 and 15, wherein
the deflecting plane extends horizontally.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2014046517A JP5689996B1 (en) | 2014-03-10 | 2014-03-10 | Deflection block and support structure |
| PCT/JP2015/057003 WO2015137336A1 (en) | 2014-03-10 | 2015-03-10 | Slope block and support structure |
Publications (3)
| Publication Number | Publication Date |
|---|---|
| EP3118335A1 true EP3118335A1 (en) | 2017-01-18 |
| EP3118335A4 EP3118335A4 (en) | 2017-09-06 |
| EP3118335B1 EP3118335B1 (en) | 2019-02-13 |
Family
ID=52823328
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP15760839.9A Active EP3118335B1 (en) | 2014-03-10 | 2015-03-10 | Slope block and support structure |
Country Status (7)
| Country | Link |
|---|---|
| EP (1) | EP3118335B1 (en) |
| JP (1) | JP5689996B1 (en) |
| KR (1) | KR101832186B1 (en) |
| CN (1) | CN106103748B (en) |
| BR (1) | BR112016020842B1 (en) |
| RU (1) | RU2655876C2 (en) |
| WO (1) | WO2015137336A1 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2022079080A1 (en) * | 2020-10-13 | 2022-04-21 | Paul Wurth S.A. | Support assembly in a heat storage device |
Families Citing this family (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP6615059B2 (en) * | 2016-07-07 | 2019-12-04 | 日鉄エンジニアリング株式会社 | Additional columns for checker brick receiving hardware, checker brick receiving hardware and column expansion method |
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| US2221416A (en) * | 1939-04-03 | 1940-11-12 | Freyn Engineering Co | Checker construction |
| US2467166A (en) * | 1945-03-15 | 1949-04-12 | Gen Refractories Co | Checker-brick and checkerwork |
| US2768822A (en) * | 1951-10-08 | 1956-10-30 | Frey Kurt Paul Hermann | Regenerative air heater |
| SU258258A1 (en) * | 1968-02-12 | 1981-09-23 | Государственный всесоюзный институт по проектированию предприятий коксохимической промышленности | Device for control of air or lean gas supply to side heating channels of coke furnaces |
| JPS4916606A (en) * | 1972-06-07 | 1974-02-14 | ||
| SU808536A1 (en) * | 1979-01-22 | 1981-02-28 | Днепропетровский Ордена Трудовогокрасного Знамени Металлургическийинститут | Air-heater of blast furnace |
| SU825646A1 (en) * | 1979-03-22 | 1981-04-30 | Uk Gi Po Proektirovaniyu Metal | Packing of blast furnace air heaters |
| JPS58110608A (en) * | 1981-12-24 | 1983-07-01 | Kawasaki Steel Corp | Drift preventing device for hot stove |
| JPS61177306A (en) * | 1985-01-31 | 1986-08-09 | Nisshin Kogyo Kk | Method for disassembling and removing checker brick in hot stove |
| JPS6283413A (en) * | 1985-10-08 | 1987-04-16 | Sumitomo Metal Ind Ltd | Gitter brick of hot stove |
| RU2027952C1 (en) * | 1992-04-17 | 1995-01-27 | Липецкий политехнический институт | Regenerator checker |
| JP2563094Y2 (en) * | 1992-04-27 | 1998-02-18 | 石川島播磨重工業株式会社 | Brick support device for heat storage |
| JP2563087B2 (en) | 1994-09-14 | 1996-12-11 | 村上機械株式会社 | Residual yarn processing method and apparatus used therefor |
| JP4216777B2 (en) | 2004-07-08 | 2009-01-28 | 株式会社神戸製鋼所 | Method for operating hot stove and hot stove |
| BRPI0606980A2 (en) * | 2005-02-01 | 2009-07-28 | Danieli Corus B V | support assembly for supporting the heat regeneration retention mechanism in a hot airflow oven, hot airflow oven having said support assembly, method for producing hot air using said hot airflow oven |
| CN201040761Y (en) * | 2007-06-01 | 2008-03-26 | 济南济钢设计院 | Hot blast stove checker brick supporting device |
| EP2101134A1 (en) * | 2008-02-28 | 2009-09-16 | Paul Wurth Refractory & Engineering GmbH | Checker brick |
| JP5428828B2 (en) * | 2009-12-18 | 2014-02-26 | 新日鐵住金株式会社 | Coke oven and operating method thereof |
| CN202989194U (en) * | 2012-11-14 | 2013-06-12 | 邢志光 | Independent double-layer ventilation structure below hot blast furnace grate |
-
2014
- 2014-03-10 JP JP2014046517A patent/JP5689996B1/en active Active
-
2015
- 2015-03-10 EP EP15760839.9A patent/EP3118335B1/en active Active
- 2015-03-10 KR KR1020167027530A patent/KR101832186B1/en active Active
- 2015-03-10 RU RU2016139361A patent/RU2655876C2/en active
- 2015-03-10 WO PCT/JP2015/057003 patent/WO2015137336A1/en not_active Ceased
- 2015-03-10 CN CN201580013214.5A patent/CN106103748B/en active Active
- 2015-03-10 BR BR112016020842-0A patent/BR112016020842B1/en active IP Right Grant
Cited By (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2022079080A1 (en) * | 2020-10-13 | 2022-04-21 | Paul Wurth S.A. | Support assembly in a heat storage device |
| WO2022078582A1 (en) * | 2020-10-13 | 2022-04-21 | Paul Wurth S.A. | Support assembly in a heat storage device |
| EP4403862A3 (en) * | 2020-10-13 | 2024-10-02 | Paul Wurth S.A. | Support assembly in a heat storage device |
| TWI905294B (en) * | 2020-10-13 | 2025-11-21 | 盧森堡商保爾沃特股份公司 | Support assembly in a heat storage device and its application in heating method |
| US12578144B2 (en) * | 2020-10-13 | 2026-03-17 | Paul Wurth S.A. | Support assembly in a heat storage device |
Also Published As
| Publication number | Publication date |
|---|---|
| EP3118335A4 (en) | 2017-09-06 |
| RU2016139361A (en) | 2018-04-10 |
| KR101832186B1 (en) | 2018-02-26 |
| EP3118335B1 (en) | 2019-02-13 |
| JP5689996B1 (en) | 2015-03-25 |
| JP2015168873A (en) | 2015-09-28 |
| WO2015137336A1 (en) | 2015-09-17 |
| CN106103748A (en) | 2016-11-09 |
| RU2655876C2 (en) | 2018-05-29 |
| CN106103748B (en) | 2018-07-24 |
| BR112016020842B1 (en) | 2021-02-17 |
| KR20160131052A (en) | 2016-11-15 |
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