FEED MIXTURE DISTRIBUTION DEVICE
20200197885 ยท 2020-06-25
Inventors
- Peter Bjorklund (Espoo, FI)
- Kaj Eklund (Espoo, FI)
- Aki Laaninen (Espoo, FI)
- Jaana Romppanen (Helsinki, FI)
Cpc classification
B01F25/4312
PERFORMING OPERATIONS; TRANSPORTING
Y02P10/20
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C21C5/5217
CHEMISTRY; METALLURGY
B01F25/4316
PERFORMING OPERATIONS; TRANSPORTING
F27B3/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D3/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/4341
PERFORMING OPERATIONS; TRANSPORTING
F27D3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D99/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D3/0033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F2101/501
PERFORMING OPERATIONS; TRANSPORTING
International classification
F27B3/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A feed mixture distribution device configured to even out a feed of feed mixture in an annular feed mixture feed channel of a burner. The feed mixture distribution device includes a cylindrical member having a cylindrical wall, a first end, a second end, and a longitudinal central axis X. The cylindrical member is at the first end provided with rectangular flat plate means, which extend radially from the cylindrical wall of the cylindrical member and which are arranged symmetrically about the longitudinal central axis X of the cylindrical member. The cylindrical wall of the cylindrical member is between the rectangular flat plate and the second end provided with helical plate means arranged symmetrically about the longitudinal central axis X of the cylindrical member.
Claims
1.-28. (canceled)
29. A feed mixture distribution device configured to evening out a feed of feed mixture in an annular feed mixture feed channel of a burner, wherein the feed mixture distribution device comprises: a cylindrical member having a cylindrical wall, a first end, a second end, and a longitudinal central axis X, and wherein the cylindrical member is at the first end provided with rectangular flat plate means, which extend radially from the cylindrical wall of the cylindrical member and which are arranged symmetrically about the longitudinal central axis X of the cylindrical member, wherein the cylindrical wall of the cylindrical member is between the rectangular flat plate means and the second end provided with at least one helical plate means arranged symmetrically about the longitudinal central axis X of the cylindrical member, each helical plate means extend towards the second end of the cylindrical wall of the cylindrical member in a helical manner about the longitudinal central axis X of the cylindrical member, each helical plate means has a downstream end and a feed mixture bearing surface, wherein the width of the feed mixture bearing surface as measured along a line normal to the longitudinal central axis X of the cylindrical member decreases in a direction towards the downstream end of the helical plate means, each helical plate means comprises an upstream helical plate section, which comprises a part of the feed mixture bearing surface and which extend towards the second end of the cylindrical member in a helical manner about the longitudinal central axis X of the cylindrical member and a downstream helical plate section, which comprises a part of the feed mixture bearing surface and which extend towards the second end of the cylindrical member in a helical manner about the longitudinal central axis X of the cylindrical member, a slit between each upstream helical plate section of the helical plate means and each downstream helical plate section of the helical plate means, the handedness of the upstream helical plate section of the helical plate means being different than the handedness of the downstream helical plate section of the helical plate means, and the downstream end of the helical plate means being a part of the downstream helical plate section of the helical plate means.
30. The feed mixture distribution device according to claim 29, wherein each upstream helical plate section of the helical plate means form a structural extension of one rectangular flat plate means.
31. The feed mixture distribution device according to claim 29, wherein each downstream helical plate section of the helical plate means form a structural extension of the upstream helical plate section of the adjacent helical plate means.
32. The feed mixture distribution device according to claim 29, wherein the width of the feed mixture bearing surface of each upstream helical plate section of the helical plate means, as measured along a line normal to the longitudinal central axis X of the cylindrical member, being constant throughout the complete upstream helical plate section of the helical plate means.
33. The feed mixture distribution device according to claim 29, wherein the width of the feed mixture bearing surface of an upstream end section of each downstream helical plate section of the helical plate means, as measured along a line normal to the longitudinal central axis X of the cylindrical member, being constant throughout the complete upstream end section of the downstream helical plate section of the helical plate means.
34. The feed mixture distribution device according to claim 29, wherein each helical plate means comprises a downstream edge extending from a first point to the downstream end of the helical plate means, wherein the downstream end is closer to the second end of the cylindrical member than the first point, as measured along a line parallel with the longitudinal central axis X of the cylindrical member.
35. The feed mixture distribution device according to claim 29, wherein each helical plate means comprises a downstream edge extending from a first point to a second point via the downstream end of the helical plate means, wherein the downstream end of the helical plate means is closer to the second end of the cylindrical member than the first point and the second point as measured along a line in parallel with the longitudinal central axis X of the cylindrical member.
36. The feed mixture distribution device according to claim 29, wherein each helical plate means comprises two downstream edges extending from one of the two downstream ends to the other downstream end via a third point, wherein the third point is closer to the first end of the cylindrical member than the two downstream ends as measured along a line in parallel with the longitudinal central axis X of the cylindrical member.
37. The feed mixture distribution device according to claim 34, wherein the downstream edge of each helical plate means extend in a curved and/or in an angled fashion.
38. The feed mixture distribution device according to claim 29, wherein the rectangular flat plate means and the helical plate means extending radially outwardly from the cylindrical member and being fastened to the cylindrical member.
39. The feed mixture distribution device according to claim 38, wherein the cylindrical wall of the feed mixture distribution device being formed by an inner cylindrical wall, which radially inwards limits the annular feed mixture feed channel of the burner.
40. The feed mixture distribution device according to claim 29, wherein the rectangular flat plate means and the helical plate means extending radially inwardly from the cylindrical member and being fastened to the cylindrical member.
41. The feed mixture distribution device according to claim 38, wherein the cylindrical wall of the feed mixture distribution device being formed by an outer cylindrical wall, which radially outwards limits the annular feed mixture feed channel of the burner.
42. The feed mixture distribution device according to claim 38, wherein the feed mixture distribution device being releasable arranged between an inner cylindrical wall, which radially inwards limits the annular feed mixture feed channel of the burner, and an outer cylindrical wall, which radially inwards limits the annular feed mixture feed channel of the burner.
Description
LIST OF FIGURES
[0007] In the following the invention will described in more detail by referring to the figures, of which
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DETAILED DESCRIPTION OF THE INVENTION
[0024] In the following, the feed mixture distribution device 1 configured to evening out a feed of feed mixture in an annular feed mixture feed channel 2 of a burner 3 such as a concentrate or matte burner for or of a suspension smelting furnace (not illustrated in the drawings) and some variants and embodiments of the feed mixture distribution device 1 will be described in greater detail.
[0025] The feed mixture can for example comprise sulfidic copper concentrate, matte, metallurgical dust, flux, slag forming material, scrap metal, and metal containing scrap.
[0026] The feed mixture distribution device 1 comprises a cylindrical member 4 having a cylindrical wall 5, a first end 6, a second end 7, and a longitudinal central axis X.
[0027] The cylindrical member 4 of the feed mixture distribution device 1 is at the first end 6 provided with rectangular flat plate means 8, which extend radially from the cylindrical wall 5 of the cylindrical member 4 and which are arranged symmetrically about the longitudinal central axis X of the cylindrical member 4. The purpose of the rectangular flat plate means 8 is to divide the annular feed mixture feed channel 2 in a burner 3 into identical sectors 9 at the rectangular flat plate means 8, when the feed mixture distribution device 1 is arranged in the annular feed mixture feed channel 2 of a burner 3. A result of this is that a feed of feed mixture that is fed into the annular feed mixture feed channel 2 of a burner 3 will be divided into the sectors 9 at the first end 6 of the feed mixture distribution device 1.
[0028] The cylindrical wall 5 of the cylindrical member 4 is between the rectangular flat plate means 8 and the second end 7 of the feed mixture distribution device 1 provided with helical plate means 10 arranged symmetrically about the longitudinal central axis X of the cylindrical member 4.
[0029] Each helical plate means 10 can, as shown in the figures, be formed as a structural extension of one rectangular flat plate means 8.
[0030] Each helical plate means 10 extend towards the second end 7 of the cylindrical member 4 in a helical manner about the longitudinal central axis X of the cylindrical member 4. This will give the feed mixture feed a uniform radial distribution in each sector 9 ofthe annular feed mixture feed channel 2 of the burner 3, when the feed mixture feed distribution device 1 is in use in the annular feed mixture feed channel 2 of a burner 3.
[0031] Each helical plate means 10 has a downstream end 11 and a feed mixture bearing surface 12. The width of the feed mixture bearing surface 12 of the helical plate means 10 as measured along a line normal to the longitudinal central axis X of the cylindrical member 4 decreases in a direction towards the downstream end 11 of the helical plate means 10. This means that if the feed mixture bearing surface 12 of the helical plate means 10 is inclined and/or curved in relation to a line normal to the longitudinal central axis X of the cylindrical member 4, the actual width of the feed mixture bearing surface 12 of the helical plate means 10 can be constant throughout the mixture bearing surface 12 of the helical plate means 10 at the same this as the width of the feed mixture bearing surface 12 of the helical plate means 10 as measured along a line normal to the longitudinal central axis X of the cylindrical member 4 decreases in a direction towards the downstream end 11 of the helical plate means 10. This also means that if the feed mixture bearing surface 12 of the helical plate means 10 is parallel with a line normal to the longitudinal central axis X of the cylindrical member 4 throughout the helical plate means 10, the actual width of the feed mixture bearing surface 12 of the helical plate means 10 decreases in a direction towards the downstream end 11 of the helical plate means 10.
[0032] Because the width of the feed mixture bearing surface 12 of the helical plate means 10 decreases in the discharging portion in a direction towards the downstream end 11 of the helical plate means 10, feed mixture that slides on the feed mixture bearing surface 12 of the helical plate means 10 will gradually fall from the feed mixture bearing surface 12 of the helical plate means 10 as feed mixture slides on the feed mixture bearing surface 12 of the helical plate means 10 towards the downstream end 11 and feed mixture will be evenly spread out into the annular feed mixture feed channel 2 of a burner 3 downstream of the helical plate means 10, when the feed mixture distribution device 1 is in use in the annular feed mixture feed channel 2 of a burner 3.
[0033] In the embodiments of the feed mixture distribution device 1 shown in
[0034] Each helical plate means 10 comprises preferably, but not necessarily, as in the embodiments of the feed mixture distribution device 1 shown in
[0035] If the helical plate means 10 of the feed mixture distribution device 1 comprises upstream helical plate section 13 and a downstream helical plate section 14, the width of the feed mixture bearing surface 12 of each upstream helical plate section 13 of the helical plate means 10 as measured along a line normal to the longitudinal central axis X of the cylindrical member 4 is preferably, but not necessarily, constant throughout the complete upstream helical plate section 13 of the helical plate means 10. This allows for selecting the width of the feed mixture bearing surface 12 of each upstream helical plate section 13 of the helical plate means 10 so that the feed mixture distribution device 1 at the region of the upstream helical plate sections 13 essentially completely fills the annular feed mixture feed channel 2 of the burner 3 resulting in that feed mixture cannot slip past the feed mixture distribution device 1 and in that feed mixture is forced to be guided on the feed mixture bearing surface 12 of the upstream helical plate sections 13.
[0036] If the helical plate means 10 of the feed mixture distribution device 1 comprises upstream helical plate section 13 and a downstream helical plate section 14, the width of the feed mixture bearing surface 12 of an upstream end section 16 of each downstream helical plate section 14 of the helical plate means 10 as measured along a line normal to the longitudinal central axis X of the cylindrical member 4 is preferably, but not necessarily, constant throughout the complete upstream end section 16 of the downstream helical plate section 14 of the helical plate means 10. This allows for selecting the width of the feed mixture bearing surface 12 of the upstream end section 16 of each downstream helical plate section 14 of the helical plate means 10 so that the feed mixture distribution device 1 at the region of the upstream end section 15 of each downstream helical plate sections 14 essentially completely fills the annular feed mixture feed channel 2 of the burner 3 resulting in that feed mixture cannot slip past the feed mixture distribution device 1 and in that feed mixture is forced to be guided on the feed mixture bearing surface 12 of the upstream end section 15 of each downstream helical plate section 14.
[0037] The helical plate means 10 can have a downstream edge 19 that extend from a first point to the downstream end 11 of the helical plate means 10, wherein the first point is closer to the first end 6 of the cylindrical member 4 than the downstream end 11 of the helical plate means 10, as measured along a line parallel with the longitudinal central axis X of the cylindrical member 4. The downstream edge 19 of each helical plate means 10 extends preferably, but not necessarily, in the form of one single arc between the first point and the downstream end 11.
[0038] The helical plate means 10 can have a downstream edge 19 that extend from a first point to a second point via the downstream end 11 of the helical plate means 10, wherein the downstream end 11 of the helical plate means 10 is closer to the second end 7 of the cylindrical member 4 than the first point and the second point as measured along a line in parallel with the longitudinal central axis X of the cylindrical member 4. The downstream edge 19 of each helical plate means 10 extends preferably, but not necessarily, in the form of one single arc between the first point and the downstream end 11 and extends preferably, but not necessarily, in the form of one single arc between the downstream end 11 and the second point.
[0039] The helical plate means 10 can have two downstream ends 11 so that a downstream edge 19 extend from one downstream end 11 of the helical plate means 10 to another downstream end 11 of the helical plate means via a third point, wherein the downstream ends 11 of the helical plate means 10 are closer to the second end 7 of the cylindrical member 4 than the third point as measured along a line in parallel with the longitudinal central axis X of the cylindrical member 4. The downstream edge 19 of each helical plate means 10 extends preferably, but not necessarily, in the form of one single arc between one of the downstream ends 11 and the third end and extends preferably, but not necessarily, in the form of one single arc between the other of the downstream end 11 and the third point.
[0040] The rectangular flat plate means 8 and the helical plate means 10 can, as shown in
[0041] The rectangular flat plate means 8 and the helical plate means can, as shown in
[0042] It is also possible that the feed mixture distribution device 1 is releasable arranged between an inner cylindrical wall 17, which radially inwards limits the annular feed mixture feed channel 2 of the burner 3, and an outer cylindrical wall 18, which radially inwards limits the annular feed mixture feed channel 2 of the burner 3, as shown in
[0043] It is apparent to a person skilled in the art that as technology advanced, the basic idea of the invention can be implemented in various ways. The invention and its embodiments are therefore not restricted to the above examples, but they may vary within the scope of the claims.