CYCLONE SEPARATOR ARRANGEMENT
20230001432 · 2023-01-05
Inventors
- Robert MADUTA (Hemsbach, DE)
- Peter STURM (Karben, DE)
- Linus PERANDER (Sandefjord, NO)
- Theodor BEISHEIM (Frankfurt am Main, DE)
Cpc classification
B04C9/00
PERFORMING OPERATIONS; TRANSPORTING
F23J15/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B04C5/12
PERFORMING OPERATIONS; TRANSPORTING
B04C5/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A cyclone separator arrangement includes a preceding apparatus having an outlet, and a cyclone separator having an inlet. The arrangement further includes a crossover duct connected to the outlet and the inlet for supplying gas flow including particles from the preceding apparatus to the cyclone separator. The preceding apparatus has a horizontal inner diameter (D), and a flow channel having a cross-section having a height (H) and a width (d), said width (d) relating to the inner diameter (D) such that 0.15×D<d<0.6×D.
Claims
1.-23. (canceled)
24. A cyclone separator arrangement, comprising: a preceding apparatus having an outlet, and a cyclone separator having an inlet, the arrangement further comprising a crossover duct connected to the outlet and the inlet for supplying gas flow comprising particles from the preceding apparatus to the cyclone separator, wherein the crossover duct creates a flow channel from the outlet to the inlet, the horizontal cross-section of the preceding apparatus has a round shape having a horizontal inner diameter (D), and wherein the width (d) is a dimension of the flow channel in a horizontal plane crossing the centre of gravity (CF) of a flow-through area of the flow channel at the outlet of the preceding apparatus, wherein the inner diameter (D) is a width of the preceding apparatus in a horizontal plane crossing the centre of gravity (CP) of a flow-through area of the preceding apparatus and being parallel to the width (d) of the flow channel, and that the flow channel is arranged asymmetrically in a horizontal cross-section of the preceding apparatus, wherein the flow channel having a cross-section having a height (H) and a width (d), said width (d) relating to the inner diameter (D) such that 0.15×D<d<0.6×D, in that the crossover duct is arranged to the round preceding apparatus so that a distal wall of the crossover duct is tangentially directed in respect of the preceding apparatus, and in that a relation of the height (H) of the crossover duct to the width (d) thereof is H/d<3.75 at the outlet.
25. The arrangement as claimed in claim 24, wherein the cross-sectional shape of the preceding apparatus is polygon, such as rectangle.
26. The arrangement as claimed in claim 25, wherein the cross-sectional shape of the preceding apparatus is square.
27. The arrangement as claimed in claim 25, wherein the crossover duct is arranged at a vertical edge of the preceding apparatus so that a distal wall of the crossover duct is attached to said vertical edge.
28. The arrangement as claimed in claim 25, wherein a distal wall of the crossover duct has an offset (b) in respect of a vertical edge of the preceding apparatus, the offset (b) being no more than 0.1×D from said vertical edge.
29. The arrangement as claimed in claim 27, wherein the distal wall of the crossover duct is perpendicular to an outlet wall of the preceding apparatus that comprises the outlet.
30. The arrangement as claimed in claim 24, wherein the cross-sectional area of the crossover duct decreases towards the inlet.
31. The arrangement as claimed in claim 30, wherein the width (d) of the crossover duct is decreasing towards the inlet.
32. The arrangement as claimed in claim 31, wherein a proximal wall of the crossover duct is arranged at a first angle (α) in relation to a distal wall thereof, wherein the first angle α<40°.
33. The arrangement as claimed in claim 24, wherein a bump is arranged in the flow channel for limiting the cross-sectional area of the flow channel.
34. The arrangement as claimed in claim 33, wherein height (h) of the bump in relation to width (d) of the flow channel is selected as: h/d<0.3.
35. The arrangement as claimed in claim 34, wherein length (l) of the bump in relation to height (h) thereof is selected as: 1/h<4.
36. The arrangement as claimed in claim 24, wherein the preceding apparatus is one of the following: a reactor, a furnace, an oven, a venturi.
37. The arrangement as claimed in claim 36, wherein the preceding apparatus is a venturi apparatus having a round cross-section, the venturi apparatus comprising: a feeding channel arrangement for feeding material in the venturi apparatus, wherein the feeding channel arrangement comprises one or more feeding channel(s) arranged, as seen from above, at a second angle (β) in relation to the direction of the distal wall of the crossover duct, wherein said second angle (β) is selected in range of 90°±70°.
38. The arrangement as claimed in claim 37, wherein the feeding channel arrangement comprises one feeding channel only.
39. The arrangement as claimed in claim 37, wherein the feeding channel arrangement comprises at least two feeding channels.
40. The arrangement as claimed in claim 37, wherein the feeding channel arrangement is arranged on same side of a centre line (C) of the venturi apparatus as the crossover duct.
41. The arrangement as claimed in claim 37, wherein the feeding channel arrangement is arranged on opposite side of a centre line (C) of the venturi apparatus as the crossover duct.
42. The arrangement as claimed in claim 37, wherein the venturi apparatus has an expanded upper portion, and that the outlet is arranged to said expanded upper portion.
Description
BRIEF DESCRIPTION OF FIGURES
[0035] Some embodiments illustrating the present disclosure are described in more detail in the attached drawings, in which
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[0056] In the figures, some embodiments are shown simplified for the sake of clarity. Similar parts are marked with the same reference numbers in the figures.
DETAILED DESCRIPTION
[0057]
[0058] The cyclone separator arrangement 100 comprises a preceding apparatus 1 having an outlet 2, a cyclone separator 3 having an inlet 4, and a crossover duct 5 connected to the outlet 2 and the inlet 4. According to an aspect, the preceding apparatus 1 is a reactor, a furnace, an oven, or a venturi. The preceding apparatus 1 has a horizontal inner diameter D.
[0059] The crossover duct 5 creates a flow channel 6 from the outlet 2 of the preceding apparatus 1 to the inlet 4 of the cyclone separator 3 and supplies gas flow comprising particles from the preceding apparatus 1 to the cyclone separator 3.
[0060] The flow channel 6 is arranged asymmetrically in a horizontal cross-section of the preceding apparatus 1.
[0061] The flow channel 6 has a cross-section having a height H and a width d at the outlet 2 of the preceding apparatus 1. The width d of the flow channel 6 relates to the inner diameter D of the preceding apparatus 1 such that 0.15×D<d<0.6×D, preferably 0.175×D<d<0.6×D, even more preferably 0.2×D<d<0.6×D.
[0062] The wider the flow channel 6 at its inlet, i.e. at the outlet 2 of the preceding apparatus, (a higher value before the <d), the smaller the pressure losses are. However, the flow channel 6 at its inlet should not be too wide, because then the particles are not thrown towards the opposite duct wall and separation efficiency of the cyclone apparatus 1 is not enhanced.
[0063] The width d of the flow channel 6 is a dimension of the flow channel 6 in a horizontal plane crossing the centre of gravity CF of a flow-through area of the flow channel 6 at the outlet 2 of the preceding apparatus.
[0064] The inner diameter D is a dimension of the preceding apparatus 1 in a horizontal plane crossing the centre of gravity CP of a flow-through area of the preceding apparatus 1 and being parallel to the width d of the flow channel 6. In an embodiment, said horizontal plane is situated somewhere between upper and lower walls of cross over duct 5.
[0065] In an embodiment, a relation of the height H of the crossover duct 5 to the width d thereof is H/d<3.75 at the outlet 2, such as 1<H/d<3.75. Thus, the flow channel 6 has a relatively narrow shape, guiding the particles away from the gas outlet of the cyclone apparatus. However, the flow channel 6 is not too narrow, thus allowing the particles at the outlet 2 of the preceding apparatus to be directed towards the duct wall.
[0066] In an embodiment, the horizontal cross-section of the preceding apparatus 1 has a round shape. In an embodiment, such as shown in
[0067]
[0068] In an embodiment of an arrangement where the preceding apparatus 1 has a round shape, the distal wall 7 has an offset b in respect of the preceding apparatus 1. In an embodiment, the offset b is no more than 0.1×D from a tangential plane T of the preceding apparatus 1.
[0069]
[0070] In an embodiment, the cross-sectional area of the crossover duct 5 decreases towards the inlet 4.
[0071] In an embodiment, the width d is decreasing towards the inlet 4. In an embodiment, such as shown in
[0072]
[0073] In an embodiment, the arrangement 100 comprises a bump 11 arranged in the flow channel 6. The bump 11 limits the cross-sectional area of the flow channel 6. In an embodiment, the bump 11 is attached to the crossover duct 5 by e.g. welding. In another embodiment, the bump 11 is an integral part of the crossover duct 5, i.e. shaped to the material of the crossover duct 5.
[0074] In an embodiment, the bump 11 is arranged to the proximal wall 10 of the crossover duct 5.
[0075] In an embodiment, relation of height h of the bump 11 to width d of the flow channel 6 is h/d<0.3, preferably h/d<0.25.
[0076] In an embodiment, relation of length l to height h of the bump 11 is 1/h<4, preferably 1/h<3.
[0077]
[0078] In an embodiment, the cross-sectional shape of the preceding apparatus 1 is polygon, such as rectangle.
[0079] In an embodiment, such as shown in
[0080] In an embodiment, the crossover duct 5 is arranged at a vertical edge 8 of the preceding apparatus 1 so that a distal wall 7 of the crossover duct 5 is attached to said vertical edge 8.
[0081] In an embodiment, the distal wall 7 of the crossover duct 5 is perpendicular to an outlet wall 9 of the preceding apparatus that comprises the outlet 2. However, in another embodiment, there is an angle differing from 90° between said outer wall 9 and the crossover duct 5.
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[0084] In an embodiment, the preceding apparatus 1 is a venturi apparatus. The venturi apparatus 1 has a round cross-section, and it comprises a feeding channel arrangement 12 that is arranged for feeding material in the venturi apparatus. From a fluid dynamic perspective, the round crosssection of the venturi apparatus 1 may be preferable. However, in other embodiments, the cross-section of the venturi apparatus 1 may have another geometry, such as an oval or a polygon geometry.
[0085] In an embodiment, the venturi apparatus 1 has an expanded upper portion 14, and the outlet 2 is arranged to said expanded upper portion. In an embodiment, the expanded upper portion 14 is arranged symmetrically in relation to the overall structure of the venture apparatus. Some embodiments having symmetrical upper portion are shown in
[0086] In an embodiment, the feeding channel arrangement 12 of the venturi apparatus comprises one feeding channel 13 that is arranged, as seen from above, at a second angle β in relation to the direction of the distal wall 7 of the crossover duct 5. In an embodiment, the second angle β is 90°. In an embodiment, the second angle β is selected in range of 90°±70°.
[0087] In an embodiment, such as shown in
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[0089] In an embodiment, such as shown in
[0090]
[0091] In an embodiment, the venturi apparatus 1 has an expanded upper portion 14 that is arranged asymmetrically in relation to the overall structure of the venture apparatus. Some embodiments having asymmetrical upper portion are shown in
[0092] In an embodiment comprising asymmetrical venturi apparatus 1, the feeding channel arrangement 12 is arranged on opposite side of a centre line C of the venturi apparatus as the crossover duct 5, as shown in
[0093]
[0094] In an embodiment, the feeding channel arrangement 12 comprises at least two feeding channels 13. The embodiments shown in
[0095] In an embodiment, the feeding channels 13 of the feeding channel arrangement 12 of the venturi apparatus are arranged in a second angle β in relation to the direction of the distal wall 7 of the crossover duct 5, the second angle β being selected in range of 90°±70°.
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[0097] As the centre of gravity CF of the flow channel 6 has been determined, a line intersecting said centre CF and parallel to the height of the preceding apparatus 1 is defined. This line represents the height H of the flow channel 6. Then, another line intersecting said centre CF but orthogonal to the height H of the preceding apparatus 1 is defined. This another line represents the width d of the flow channel 6.
[0098] When defining value D of the preceding apparatus 1, it is determined the centre of gravity CP of the flow-through area of the preceding component 1. This determination may take place as described in Equation 1 above. Then a line that intersects said centre CP and is parallel to the d defined above is defined. This defined line represents the inner diameter D of the preceding component 1.
[0099] The invention is not limited solely to the embodiments described above, but instead many variations are possible within the scope of the inventive concept defined by the claims below. Within the scope of the inventive concept the attributes of different embodiments and applications can be used in conjunction with or replace the attributes of another embodiment or application.
[0100] The drawings and the related description are only intended to illustrate the idea of the invention. The invention may vary in detail within the scope of the inventive idea defined in the following claims.
REFERENCE SYMBOLS
[0101] 1 preceding apparatus
[0102] 2 outlet
[0103] 3 cyclone separator
[0104] 4 inlet
[0105] 5 crossover duct
[0106] 6 flow channel
[0107] 7 distal wall
[0108] 8 vertical edge
[0109] 9 outlet wall
[0110] 10 proximal wall
[0111] 11 bump
[0112] 12 feeding channel arrangement
[0113] 13 feeding channel
[0114] 14 expended upper portion
[0115] α first angle
[0116] β second angle
[0117] b offset
[0118] C centre line
[0119] CF centre of gravity of the flow channel
[0120] CP centre of gravity of the preceding apparatus
[0121] D inner diameter
[0122] d width
[0123] H height
[0124] h height of bump
[0125] T tangential plane