Kiln comprising a protective segment at the kiln outlet
12018890 ยท 2024-06-25
Assignee
Inventors
Cpc classification
F27D9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B7/224
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F27B7/33
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B7/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A kiln for firing cement clinker may include a tubular rotary drum that can be rotated about its central axis. The tubular rotary drum may have a discharge end at which the cement clinker leaves the kiln. A protective segment may be attached at the discharge end and may have an outward-facing wear surface and an inward-facing cooling surface. The kiln may include a cooling device for generating a cooling air flow that flows along the inward-facing cooling surface of the protective segment. The inward-facing cooling surface can include profile bodies that are pin-shaped. The profile bodies may be uniformly spaced apart, parallel to one another, and/or present over 20% to 60% of the inward-facing cooling surface.
Claims
1. A kiln for firing cement clinker, the kiln comprising: a tubular rotary drum that is rotatable about a central axis, wherein the tubular rotary drum includes a discharge end at which the cement clinker leaves the kiln; a protective segment that is attached at the discharge end and includes an outward-facing wear surface and an inward-facing cooling surface, wherein the inward-facing cooling surface includes profile bodies that are pin-shaped, and wherein the profile bodies are spaced apart such that a gap is formed between each two adjoining profile bodies; and a cooling device for generating a cooling air flow that flows along the inward-facing cooling surface of the protective segment.
2. The kiln of claim 1 wherein the profile bodies have a cross section that is angular, diamond-shaped, or rectangular.
3. The kiln of claim 1 wherein the profile bodies have a cross section that is diamond-shaped or rectangular.
4. The kiln of claim 1 wherein the profile bodies have a cross section that is round.
5. The kiln of claim 1 wherein the profile bodies are uniformly spaced apart.
6. The kiln of claim 1 wherein the profile bodies are parallel to one another.
7. The kiln of claim 1 wherein the profile bodies occupy 20% to 60% of the inward-facing cooling surface.
8. The kiln of claim 1 wherein a portion of the inward-facing cooling surface that includes the profile bodies is at least twice as large as a portion of an inward-facing cooling surface that does not include the profile bodies.
9. The kiln of claim 1 wherein the gaps form an undulating profile.
10. The kiln of claim 1 wherein some of the profile bodies have a first cross section that is round and some of the profile bodies have a second cross section that is angular, diamond shaped, or rectangular.
11. The kiln of claim 1 wherein the cooling device includes a cooling channel for directing the cooling air flow in a direction of the inward-facing cooling surface.
12. The kiln of claim 11 wherein the cooling device includes a guide element that divides the cooling channel into a supply channel for supplying the cooling air flow and a discharge channel for discharging heated cooling air.
13. The kiln of claim 1 wherein the profile bodies have an angular cross section, wherein an edge of each profile body points in a direction of the cooling air flow.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1)
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8) Although certain example methods and apparatus have been described herein, the scope of coverage of this patent is not limited thereto. On the contrary, this patent covers all methods, apparatus, and articles of manufacture fairly falling within the scope of the appended claims either literally or under the doctrine of equivalents. Moreover, those having ordinary skill in the art will understand that reciting a element or an element in the appended claims does not restrict those claims to articles, apparatuses, systems, methods, or the like having only one of that element, even where other elements in the same claim or different claims are preceded by at least one or similar language. Similarly, it should be understood that the steps of any method claims need not necessarily be performed in the order in which they are recited, unless so required by the context of the claims. In addition, all references to one skilled in the art shall be understood to refer to one having ordinary skill in the art.
(9) According to a first aspect, a kiln for firing cement clinker comprises a tubular rotary drum, which can be rotated about its central axis, wherein the rotary drum has a discharge end, at which the cement clinker leaves the kiln, a protective segment, which is attached at the discharge end and has an outward-facing wear surface and an inward-facing cooling surface, wherein the kiln has a cooling device for generating a cooling air flow, which flows along the cooling surface of the protective segment. The cooling surface has profile bodies which are of pin-shaped design, with the result that they preferably cause turbulence in the cooling air flow.
(10) A burner for firing the clinker is preferably mounted in the kiln, which burner is mounted at least partially inside the rotary drum. The burner is preferably mounted in the vicinity of the discharge end of the rotary drum, and therefore the material to be fired is moved toward the burner within the rotary drum and slowly heated. At the discharge end of the rotary drum, the clinker therefore has a very high temperature of approximately 1200-1400? C.
(11) The kiln preferably has a plurality of protective segments, which are arranged annularly adjacent to one another and preferably form the end face of the discharge end of the rotary drum. The cooling air flow is used to cool the protective segments. The cooling device preferably generates a cooling air flow which flows radially and/or in the circumferential direction of the rotary drum, in particular of the discharge end of the rotary drum. The cooling air flow preferably flows along the cooling surface of the protective segment, in particular parallel to the cooling surface.
(12) The wear surface of the protective segment faces outward, in particular outward in the axial direction with respect to the rotary drum, and is preferably arranged in such a way that the clinker flows along the wear surface of the protective segment as it leaves the kiln. The cooling surface faces inward, in particular in the axial direction of the rotary drum, and does not come into direct contact with the clinker. The cooling surface preferably faces in the direction of the cooling device. The cooling device has, in particular, a cooling channel for directing the cooling air, wherein the cooling surface preferably faces in the direction of the cooling channel and, in particular, forms a wall surface of the cooling channel.
(13) The cooling surface has pin-shaped profile bodies, which preferably extend orthogonally with respect to the cooling surface, in particular in the axial direction of the rotary drum. As an option, the pin-shaped profile bodies are connected to one another, for example via connecting webs, which are arranged between two adjacent profile bodies. As an example, about 20-60%, preferably 30-40%, in particular a maximum of 50%, of the cooling surface is occupied by profile bodies. The profile bodies preferably have a length which is greater than the thickness and width of the profile body.
(14) Turbulence should be interpreted to mean regions of turbulent flow. In contrast to laminar flow, turbulent flow ensures better mixing of the flow. This has the effect that the cooling air flowing past the cooling surface can better absorb and carry away the heat emitted by the cooling surface. Overall, the pin-shaped profile bodies ensure more efficient cooling of the cooling surface of the protective segment.
(15) According to a first embodiment, the profile bodies have an angular, in particular quadrangular, diamond-shaped or rectangular cross section. In the case of flows of cooling air along the cooling surface, profile elements having an angular cross section ensure deflection of the cooling air flow, with the result that turbulence is generated within the flow. According to a further embodiment, the profile bodies have a round, in particular circular, cross section.
(16) According to a first embodiment, the cooling surface with the profile bodies has a surface at least twice as large, compared with a cooling surface without profile bodies. An enlarged surface of the cooling surface ensures improved heat transfer from the cooling surface to the cooling air.
(17) According to a further embodiment, the profile bodies are uniformly spaced apart from one another. It is likewise conceivable for the profile bodies to have different spacings with respect to one another.
(18) According to a further embodiment, the profile bodies are arranged parallel to one another. This enables the cooling surface to be produced easily and leads to small pressure losses in the gap region.
(19) According to a further embodiment, the profile bodies are each spaced apart from one another, a gap thus being formed between two profile bodies. The cooling air preferably flows along the gaps formed between the profile bodies and is deflected within these gaps by the profile bodies, with the result that turbulence is generated within the cooling air flow.
(20) According to a further embodiment, the gaps between the profile bodies form an undulating profile. The profile bodies are preferably arranged in such a way that the gaps between the profile bodies have an undulating shape. This enables reliable generation of turbulence within the cooling air flow.
(21) According to a further embodiment, the cooling surface has a plurality of profile bodies, wherein some profile bodies have a round, in particular circular, cross section and some profile bodies have an angular, in particular quadrangular, diamond-shaped or rectangular cross section. The profile bodies having the angular cross section are preferably arranged offset with respect to the profile bodies having the round cross section.
(22) According to a further embodiment, the profile bodies have an angular cross section, wherein an edge of each angular profile body points in the direction of flow of the cooling air flow. At the edge of the profile bodies, the cooling air flow is deflected, thus ensuring that an at least partially turbulent flow is produced.
(23) According to a further embodiment, the cooling device has a cooling channel for directing the cooling air in the direction of the cooling surface. The cooling channel preferably extends in the circumferential direction of the rotary drum around the discharge end of the rotary drum and is arranged concentrically to the rotary drum. The preferably annular cooling channel borders on the cooling surface of the protective segment, in particular in the axial direction. The cooling device preferably has a fan which blows cooling air into the cooling channel.
(24) According to a further embodiment, the cooling device has a guide element, which divides the cooling channel into a supply channel for supplying cool cooling air and a discharge channel for discharging heated cooling air. The guide element is preferably arranged at a distance from the cooling surface of the protective segment, with the result that cooling air flows from the supply channel along the cooling surface and subsequently into the discharge channel.
(25) The protective segment preferably has a fastening region, which is fixedly connected, in particular screwed, to the discharge end of the kiln. The fastening region extends, for example, at an angle of approximately 30-90?, preferably 40-85?, in particular 50-80?, to the cooling surface.
(26) Arranged inside the rotary drum there is, in particular, an inner lining which comprises a plurality of bricks, and wherein the fastening region rests against at least one brick and is fixedly connected to the latter.
(27)
(28) The kiln furthermore has a cooling device 26 for cooling the discharge end 24 of the rotary drum 22. The cooling device 26 comprises a blower 28, preferably a fan, for generating cooling air. The cooling air is conducted through a line shown schematically in
(29)
(30) During operation of the cement plant, preheated raw meal is introduced into the kiln 10 and transported therein in the direction of the discharge end 24 and the burner by the rotation of the rotary drum 22, with the result that the raw meal is preferably uniformly heated and fired to form cement clinker. The fired clinker falls via the discharge end 24 of the rotary drum 22 onto the static grate 30 of the cooler 12 arranged underneath and slides from the latter in the direction of the conveying unit 32. By means of the conveying unit 32, the clinker is transported in the conveying direction and, at the end of the conveying unit, falls from the cooler 12 into the comminuting device 34, in which the clinker is comminuted. It is likewise conceivable for a conveyor belt onto which the clinker falls to be arranged downstream of the cooler 12. The comminuting device 34 is only optional.
(31)
(32) The discharge end 24 of the rotary drum 22 has, for example, two circumferential rows of bricks 36 which are arranged raised relative to the remaining bricks 36 of the inner lining. By way of example, a protective segment 38 is arranged between the at least one brick 36 and the rotary drum 22. The protective segment 38, in particular a plurality of protective segments, forms the discharge edge of the rotary drum 22, via which the clinker is conveyed and from which the clinker falls into the cooler 12. The kiln 10 comprises a plurality of protective segments 38, which are arranged circumferentially adjacent to one another and together form the overall discharge edge running around the circumference of the rotary drum 22. A cooling channel 40 for cooling the discharge end 24 of the rotary drum 22 is arranged around the circumference of the discharge end 24 of the rotary drum 22. The cooling channel 40 has a wall 42 which extends at a distance around the discharge end 24 of the rotary drum 22. The wall 42 extends at least partially concentrically with respect to the rotary drum 22 and has an end region 48 which extends radially outward at an angle of, for example, 20-50?, preferably 30-40?, in particular 45?, to the central axis of the rotary drum 22. The cooling channel 40 is connected to the fan 28, and therefore cooling air is conducted from the fan 28 into the cooling channel 40, for example via a line 50, preferably in the axial direction of the rotary drum 22. Each protective segment 38 has an outward-facing wear surface 44 and an inward-facing cooling surface 46. The wear surface 44 preferably faces in the direction of the burner, in particular in the direction of the outlet region 14 of the kiln 10, in which the temperatures are approximately 1200? C. to 1450? C., wherein the wear surface 44 is in direct contact with the temperatures in the outlet region 14. In particular, the clinker emerging from the rotary drum 12 flows along the wear surface 44 into the cooler 12. The wear surface 44 extends vertically, for example, in particular in the radial direction of the rotary drum 22. The protective segment preferably forms the outermost surface in the axial direction of the rotary drum 22, in particular the end face of the rotary drum 22. The cooling surface 46 faces in the direction of the cooling channel 40 and forms the end wall of the cooling channel 40, wherein the cooling air, which initially flows axially in the cooling channel 40, impinges on the cooling surface 46 of the protective segment 38 and is deflected on the latter in such a way that it flows at least partially or completely in the circumferential direction of the rotary drum 22 and preferably directly along the cooling surface 46 of the protective segment 38. In particular, the cooling air absorbs the heat of the cooling surface 46 and then flows from the cooling surface 46 out of the cooling channel 40 in the axial direction of the rotary drum 22. The protective segment 38 preferably rests with its upper end against at least one brick 36 and with its lower end against the wall 42 of the cooling channel 40, and therefore the cooling channel 40 is separated from the ambient air by the protective segment 38. The protective segment 38 is preferably fastened to the wall 42 by means of a fastening element 52. The fastening element 52 is, for example, a sleeve or a sleeve segment with a radially-inward pointing edge, wherein the fastening element 52 is screwed to the wall 42. The edge of the sleeve or sleeve segment rests against the outside of the protective segment 38 and clamps the latter between the wall 42 and the edge, thus preventing movement, in particular in the axial direction of the rotary drum 22. The protective segment 38 and the wall 42 of the cooling channel 40 are fixedly connected to the rotary drum 22, and therefore the protective segment 38 and the wall 42 of the cooling channel 40 rotate with the rotary drum 22.
(33) The kiln 10 furthermore has, by way of example, an outer wall 54, which is preferably part of the outlet region 14 of the kiln 10 and, by way of example, extends in the vertical direction in
(34)
(35)
(36) A second leg of the protective segment 38 extends orthogonally with respect to the fastening region 60 and rests against a brick 36 in the installed position of
(37)
(38)
(39)
(40)
(41)
(42) The profile bodies 58 of the above-described profiles of
LIST OF REFERENCE SIGNS
(43) 10 kiln 12 cooler 14 outlet region 16 combustion device 18 fuel line 20 combustion chamber 22 rotary drum 24 discharge end 26 cooling device 28 fan 30 static grate 32 conveying unit 34 comminuting device 36 brick 38 protective segment 40 cooling channel 41 supply channel 42 wall 43 discharge channel 44 wear surface 45 guide element 46 cooling surface 48 end region of the wall 42 50 line 52 fastening element 54 outer wall 56 seal 58 profile body