COUNTER-FLOW REACTANT MIXING FOR EXHAUST GAS AFTERTREATMENT
20230191342 · 2023-06-22
Assignee
Inventors
- Eero KOTIMÄKI (Oulunsalo, FI)
- Jukka KURIKKA (Oulunsalo, FI)
- Aki KÄRNÄ (Oulunsalo, FI)
- Tuomas TYNI (Oulunsalo, FI)
Cpc classification
B01F2025/931
PERFORMING OPERATIONS; TRANSPORTING
B01F2025/913
PERFORMING OPERATIONS; TRANSPORTING
F01N2510/068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2892
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
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
B01F25/3131
PERFORMING OPERATIONS; TRANSPORTING
F01N2610/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/103
PERFORMING OPERATIONS; TRANSPORTING
F01N3/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/4332
PERFORMING OPERATIONS; TRANSPORTING
B01F2025/915
PERFORMING OPERATIONS; TRANSPORTING
B01F2025/918
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01F25/313
PERFORMING OPERATIONS; TRANSPORTING
B01F23/213
PERFORMING OPERATIONS; TRANSPORTING
B01F25/10
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A mixer and a method therein, including feeding a rotating flow of exhaust gas in a mixing pipe towards a turning end of a mixing chamber; dosing reactant by a doser against the rotating flow around a centreline of the mixing pipe; maintaining a guide around the doser such that a front face of the guide faces the rotating flow, and the guide defines a central opening surrounding the doser; guiding a side flow out of the rotating flow to a carrier flow around the doser via the central opening; and inhibiting by the guide turbulence from being transferred from the side flow to the carrier flow.
Claims
1. A method in a mixer, comprising: feeding a rotating flow of exhaust gas in a mixing pipe towards a turning end of a mixing chamber; reactant by a doser against the rotating flow around a centreline of the mixing pipe; maintaining a guide around the doser such that a front face of the guide faces the rotating flow, and the guide defines a central opening surrounding the doser; guiding a side flow out of the rotating flow to a carrier flow around the doser via the central opening; and inhibiting by the guide turbulence from being transferred from the side flow to the carrier flow.
2. The method of claim 1, further comprising forming a pressure difference between a periphery of the guide and the mixing chamber around the guide by a geometry of the mixer; and using the pressure difference to perform the guiding of the side flow.
3. A mixer for exhaust gas aftertreatment, comprising: a feed configured to feed a rotating flow of exhaust gas in a mixing pipe towards a turning end of a mixing chamber; a doser configured to dose reactant against the rotating flow around a centreline of the mixing pipe; a guide around the doser such that a front face of the guide faces the rotating flow, and the guide defines a central opening surrounding the doser; the guide comprising a passage structure for guiding a side flow out of the rotating flow to a carrier flow around the doser via the central opening; and the passage structure being configured to inhibit turbulence from being transferred from the side flow to the carrier flow.
4. The mixer of claim 3, comprising a geometry configured to form a pressure difference between a periphery of the guide and the mixing chamber around the guide; and the passage structure being configured to guide the side flow using the pressure difference.
5. The mixer of claim 3, wherein the doser is an air-free doser.
6. The mixer of any one of claim 3, wherein the passage structure comprises a plurality of guide channels configured to feed the side flow by a plurality of radial outputs to the central opening.
7. The mixer of claim 3, wherein the guide comprises a disc that in part together with the turning end defines the passage structure.
8. The mixer of claim 3, comprising a plurality of wings radially extending from the central opening, which plurality of wings in part define the passage structure.
9. The mixer of claim 8, wherein the wings have back-side fairings configured to reduce turbulence.
10. The mixer of claim 8, wherein the wings have planar front-sides at an angle with relation to a radial direction such that front-side is turned at a peripheral end towards incoming gas flow.
11. The mixer of claim 3, wherein all or at least some of the wings are inset from a periphery of the guide.
12. The mixer of claim 3, wherein all or at least some of the wings are inset from the central opening.
13. The mixer of claim 3, wherein all or at least some of the wings define fixing holes.
14. The mixer of claim 3, wherein the central opening defines a cylindrical portion.
15. The mixer of claim 3, wherein the central opening defines a conical portion.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0043] Some example embodiments will be described with reference to the accompanying figures, in which:
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DETAILED DESCRIPTION
[0056] In the following description, like reference signs denote like elements or steps.
[0057]
[0058] In an example embodiment, the rotation of the main flow 150 is produced by other swirl structures instead of or in addition to the swirl producing input 130 that is used in this embodiment, such as a propeller formed swirl guide (not shown).
[0059] The rotation of the main flow 140 centrifugally packs the main flow against an inner wall of the mixing pipe 120. A lower pressure prevails around a centreline 122 of the mixing pipe. This effect is made used to enhance dosing reactant 160 by a doser 170 from a doser tip 172 against the main flow around the centreline 122, with greatly reduced counterflow against the doser. However, it is typical that some accrual of reactant begins to build up on the doser 170 possibly because of turbulences and/or imperfect dosing at start and end of the dosing of reactant. To this end, a carrier flow 190 is formed using a guide 180 positioned around the doser 170, through a central opening 182 defined by the guide around the doser 170.
[0060] Here, around refers to that the guide extends radially from the doser 170 on a portion of the length of the doser 170 in the mixing chamber 110, not that the guide 180 should enclose the entire doser 170.
[0061] The carrier flow is produced in an example embodiment by forming a pressure difference in the mixing chamber around the guide 180, as further described referring to
[0062]
[0063] The doser 170 of
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[0072] In another example embodiment the wings are formed to the turning end 112, but it is easier to form the wings to the guide 180. In an example embodiment, the doser 170 is mounted by three bolts such that the doser 170 can be mounted in only one angle. A base of the doser is formed to provide bolt holes and the guide defines corresponding guide holes 730. The guide holes 730 can be threaded so that the doser can be bolted through the turning end to the guide 180. Alternatively, the guide 180 can be fitted with protruding threaded bars or bolts such that the doser 170 is attached with nuts.
[0073] In
[0074]
[0075]
[0076] 800: feeding a rotating flow of exhaust gas in a mixing pipe towards a turning end of a mixing chamber;
[0077] 801: dosing reactant by a doser against the rotating flow around a centreline of the mixing pipe;
[0078] 802: maintaining a guide around the doser such that a front face of the guide faces the rotating flow, and the guide defines a central opening surrounding the doser;
[0079] 803: forming a pressure difference between a periphery of the guide and the mixing chamber around the guide;
[0080] 804: guiding a side flow out of the rotating flow to a carrier flow around the doser via the central opening, e.g., using the pressure difference;
[0081] 805: inhibiting by the guide turbulence from being transferred from the side flow to the carrier flow;
[0082] 806: forming the pressure difference by a geometry of the mixer;
[0083] 807: forming the pressure difference by throttling the main flow downstream of the guide;
[0084] 808: inhibiting the turbulence by guiding the side flow via guide channels that feed the side flow by a plurality of radial outputs to the central opening; and/or
[0085] 809: inhibiting the turbulence so that the carrier flow is laminar around the doser.
[0086]
[0087]
[0088] Alternatively, the guide of any other example embodiment can be used in conjunction with the external doser mount 920.
[0089]
[0090] In
[0091] As in the embodiment of
[0092] In an example embodiment, the guide is closed except the central opening. In another example embodiment, the guide comprises one or more Venturi input ports (not shown) can be configured to introduce exhaust gas from the mixing chamber, preferably from a peripheral area around the guide.
[0093]
[0094] 1100: feeding a rotating flow of the first portion of exhaust gas in the mixing pipe towards a turning end of a mixing chamber;
[0095] 1101: dosing reactant by a doser against the rotating flow around a centreline of the mixing pipe;
[0096] 1102: maintaining a guide around the doser such that a front face of the guide faces the rotating flow, and the guide defines a central opening surrounding the doser;
[0097] 1103: guiding exhaust gas to a carrier flow around the doser via the central opening.
[0098] The method may further comprise any one or more of:
[0099] 1104: upstream from the feeding of the rotating flow of the first portion in the mixing pipe, branching a first portion exhaust gas supply partly to a mixing pipe and a second branch to a carrier flow input;
[0100] 1105: guiding exhaust gas from the carrier flow input to the carrier flow;
[0101] 1106: guiding a side flow out of the rotating flow through the central opening to the carrier flow; and/or
[0102] 1107: inhibiting the turbulence by guiding the side flow via guide channels that feed the side flow by a plurality of radial outputs to the central opening.
[0103] In an example embodiment, there is provided a mixer comprising means for performing the method of any example embodiment.
[0104] Various embodiments have been presented. It should be appreciated that in this document, words comprise; include; and contain are each used as open-ended expressions with no intended exclusivity.
[0105] The foregoing description has provided by way of non-limiting examples of particular implementations and embodiments a full and informative description of the best mode presently contemplated by the inventors for carrying out the disclosed embodiments. However, the disclosed embodiments are not restricted to details presented in the foregoing, but implementable in other embodiments using equivalent means or in different combinations of embodiments.
[0106] Furthermore, some of the features of the afore-disclosed example embodiments may be used to advantage without the corresponding use of other features. The foregoing shall be considered as merely illustrative of the principles of the present disclosure, and not in limitation, so only the appended claims limit the scope of the disclosed embodiments.