Dual Mixer for Exhaust Aftertreatment Systems
20170314444 · 2017-11-02
Assignee
Inventors
Cpc classification
F01N2610/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2610/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2610/1453
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/43161
PERFORMING OPERATIONS; TRANSPORTING
F01N3/2892
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2240/20
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
B01F25/4316
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A dual mixer for mixing a reducing agent with exhaust gas in a mixing section of a selective catalytic reduction (SCR) aftertreatment system is disclosed. The dual mixer may comprise a first mixer including a grid and a plurality of trapezoidal fins projecting from the grid in a direction of flow of the exhaust gas. The dual mixer may further comprise a swirl mixer positioned downstream of the first mixer and separated therefrom by a distance. The swirl mixer may include a base and three arrays of swirl fins projecting from the base in the direction of flow of the exhaust gas. The swirl fins in each of the arrays may be oriented in a common direction that is rotated by about 60° from the common direction of the swirl fins in an adjacent array.
Claims
1. A dual mixer for mixing a reducing agent with exhaust gas in a mixing section of a selective catalytic reduction (SCR) aftertreatment system, comprising: a first mixer positioned in the mixing section including a grid permitting a flow of the reducing agent and the exhaust gas therethrough, the first mixer further including a plurality of trapezoidal fins projecting from the grid in a direction of flow of the exhaust gas; and a swirl mixer positioned downstream from the first mixer in the mixing section and separated from the first mixer by a distance, the swirl mixer including a base permitting the flow of the reducing agent and the exhaust gas therethrough, the swirl mixer further including three arrays of swirl fins projecting from the base in the direction of flow of the exhaust gas and arranged in a triangular configuration about a center of the swirl mixer to induce a swirl motion in the reducing agent and the exhaust gas flowing through the swirl mixer, the swirl fins in each of the arrays being oriented in a common direction that is rotated by about 60° from the common direction of the swirl fins in an adjacent array.
2. The dual mixer of claim 1, wherein the first mixer is configured to promote evaporation of the reducing agent flowing therethrough, and wherein the swirl mixer is configured to promote mixing of the reducing agent with the exhaust gas.
3. The dual mixer of claim 2, wherein the grid of the first mixer is planar, and wherein the trapezoidal fins are angled with respect to the grid by about 20°.
4. The dual mixer of claim 3, wherein the grid of the first mixer is formed from a plurality of first support elements arranged perpendicular to and intersecting with a plurality of second support elements, and wherein the trapezoidal fins are formed integrally with and project from the first support elements.
5. The dual mixer of claim 4, wherein the first mixer includes a plurality of parallel rows of the trapezoidal fins, and wherein the trapezoidal fins in each of the parallel rows alternate in orientation direction.
6. The dual mixer of claim 5, wherein the first mixer includes seven parallel rows of the trapezoidal fins, and wherein each of the parallel rows includes three to seven of the trapezoidal fins.
7. The dual mixer of claim 5, wherein each of the trapezoidal fins of the first mixer has a length of about 15 millimeters, and a thickness between about 1 millimeter to about 2 millimeters.
8. The dual mixer of claim 5, wherein each of the arrays of the swirl mixer includes parallel rows of swirl fins oriented in the common direction.
9. The dual mixer of claim 8, wherein the base of the swirl mixer includes three radial legs each extending radially from the center of the swirl mixer and spaced apart from each other by about 120° in a circumferential direction, wherein the base further includes three grids between the three radial legs, and wherein each of the grids are formed from intersecting support elements.
10. The dual mixer of claim 9, wherein each of the arrays of the swirl mixer consists of swirl fins projecting from the support elements of one of the grids and swirl fins projecting from one of the radial legs.
11. A dual mixer for mixing a reducing agent with exhaust gas in an exhaust pipe upstream of a selective catalytic reduction (SCR) catalyst, comprising: a first mixer including a planar grid and a plurality of parallel rows of trapezoidal fins projecting from the planar grid in a direction of flow of the exhaust gas, the trapezoidal fins in each of the parallel rows alternating in orientation direction and being angled by about 20° with respect to the planar grid; and a swirl mixer downstream of the first mixer and spaced from the first mixer by a distance, the swirl mixer including a planar base having a plurality of radial legs extending radially from a center of the base and being equally spaced from each other in a circumferential direction, the swirl mixer further including a plurality of trapezoidal swirl fins projecting from each of the radial legs in the direction of flow of the exhaust gas, the trapezoidal swirl fins projecting from each of the radial legs being oriented in a common direction that is rotated by an angle with respect to the common direction of the trapezoidal swirl fins projecting from an adjacent radial leg.
12. The dual mixer of claim 11, wherein the base of the swirl mixer includes three radial legs spaced from each other by about 120° in the circumferential direction.
13. The dual mixer of claim 12, wherein the common direction of the trapezoidal swirl fins projecting from each of the radial legs of the swirl mixer is rotated by about 60° with respect to the common direction of the trapezoidal swirl fins projecting from the adjacent radial leg.
14. The dual mixer of claim 13, wherein the base of the swirl mixer further includes three grids between the three radial legs, wherein each of the three grids are formed from a plurality of first support elements oriented perpendicular to and intersecting with a plurality of second support elements, and wherein a plurality of trapezoidal swirl fins project from each of the first support elements in the direction of flow of the exhaust gas.
15. The dual mixer of claim 14, wherein the plurality of first support elements in each of the three grids are parallel to an adjacent radial leg, and wherein the plurality of trapezoidal swirl fins projecting from the first support elements of each grid of the swirl mixer are oriented in the common direction of the trapezoidal fins projecting from the adjacent radial leg.
16. The dual mixer of claim 15, wherein each of the first support elements of the swirl mixer are formed integrally with one of the second support elements in an adjacent grid.
17. The dual mixer of claim 15, wherein the first mixer and the swirl mixer are separated from each other by about 2 to about 7 inches.
18. The dual mixer of claim 15, wherein each of the trapezoidal fins of the first mixer has a length of about 15 millimeters.
19. The dual mixer of claim 18, wherein each of the trapezoidal fins of the first mixer has a base and a top, the base of each trapezoidal fin having a width of about 10.5 millimeters and the top of each trapezoidal fin having a width of about 6 millimeters.
20. A selective catalytic reduction (SCR) aftertreatment system for exhaust gas of a diesel engine, comprising: an exhaust pipe configured to carry the exhaust gas from the diesel engine to an exhaust outlet; an injector configured to inject diesel exhaust fluid (DEF) into the exhaust pipe; an SCR catalyst downstream of the injector configured to catalyze the reduction of NO.sub.x in the exhaust gas; and a dual mixer positioned in the exhaust pipe downstream of the injector and upstream of the SCR catalyst, the dual mixer including a first mixer configured to promote evaporation of the DEF passing therethrough, the first mixer including a planar grid and a plurality of parallel rows of fins projecting from the planar grid in a downstream direction and being angled by about 20° with respect to the planar grid, the dual mixer further including a swirl mixer downstream of the first mixer configured to promote mixing of the DEF and the exhaust gas passing therethrough, the swirl mixer including arrays of swirl fins projecting from the mixer in the downstream direction, each of the arrays of the swirl mixer including a plurality of parallel rows of swirl fins that are oriented in a common direction that is rotated by about 60° from the common direction of an adjacent array.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022] Referring now to the drawings, and with specific reference to
[0023] The SCR aftertreatment system 24 may include an injector 26 for injecting a reducing agent 28 from a supply source 30 into the exhaust gas 16 flowing in the exhaust pipe 18. The reducing agent 28 may be a mixture of urea and water (also referred to as diesel exhaust fluid (DEF) if the engine 12 is a diesel engine), and the urea may be hydrolyzed to ammonia in the exhaust pipe 18. Alternatively, the reducing agent 28 may be ammonia. The reducing agent 28 may initially be injected into the exhaust pipe 18 as a liquid, and later evaporated in the exhaust pipe 18 (see further details below). Downstream of the injector 26 may be a catalyst 32 that uses the reducing agent 28 to catalyze the reduction of NO.sub.x in the exhaust gas 16 to nitrogen and water prior to release of the exhaust gas through the outlet 20.
[0024] The SCR aftertreatment system 24 may also include a mixing section 34, such as a mixing tube 35 that is part of the exhaust pipe 18 extending between the injector 26 and the SCR catalyst 32. In the mixing section 34, the reducing agent 28 may be evaporated and/or broken down into smaller droplets and mixed with the exhaust gas prior to its introduction to the catalyst 32. For this purpose, the mixing section 34 may contain a dual mixer 36 that consists of a first mixer 37 and a swirl mixer 38 downstream of the first mixer 37. Specifically, the first mixer 37 may evaporate liquid droplets of the reducing agent 28 and/or break down the reducing agent liquid into smaller droplets, while the swirl mixer 38 may further enhance evaporation of the reducing agent and induce a swirl motion to the reducing agent and the exhaust gas to promote thorough mixing.
[0025] The first mixer 37 and the swirl mixer 38 may be separated by a distance that may be optimized based on performance. In one non-limiting example, the first mixer 37 and the swirl mixer 38 may be separated from each other by about 2 inches to about 7 inches, although the separation distance may deviate from this range depending on various design considerations such as the reducing agent flow rate and the diameter of the exhaust pipe. Furthermore, due to the corrosive nature of the reducing agent 28 and vibrations in the exhaust pipe 18, both of the first mixer 37 and the swirl mixer 38 may be formed from a material that is corrosion resistant and robust enough to withstand vibrations. For example, the first mixer 37 and the swirl mixer 38 may both be formed from stainless steel.
[0026] Turning now to
[0027] Referring still to
[0028] The swirl mixer 38 is shown in isolation in
[0029] It is noted that the swirl mixer 38 is held stationary in the exhaust pipe 18 and does not rotate, and the swirl motion is induced by the circling configuration of the arrays 56. In alternative configurations of the mixer 38, the arrays 56 may not be identical to each other. In addition, although
[0030] Referring still to
[0031] Turning now to
[0032] The base 54 of the swirl mixer 38 may be planar and extend along a plane 81, and the swirl fins 58 may project from a downstream face 83 of the base at a fixed angle (a) with respect to the plane 81 of the base 54, as shown in
[0033] As shown in
INDUSTRIAL APPLICABILITY
[0034] In general, the teachings of the present disclosure may find applicability in many industries including, but not limited to, automotive, construction, agriculture, mining, power generation, and rail transport applications, among others. More specifically, the technology disclosed herein may find applicability in many types of engines and machines having SCR aftertreatment systems. It may also find applicability in other types of exhaust aftertreatment systems in which a reagent is mixed with exhaust gas.
[0035] Referring now to
[0036] Once assembled, the units 102 may be welded together at nodes 106 (or intersection points between the radial legs 66 and the first support elements 76 with the second support elements 78) to provide the fully assembled swirl mixer 38 (see
[0037] As disclosed herein, a dual mixer is used to address the problem of balancing the requirements of preventing reducing agent deposit accumulation and increasing the mixing quality of the reducing agent with the exhaust gas in an SCR aftertreatment system. By separating the function of the mixers of the dual mixer disclosed herein, improved performance with respect to both deposit reduction and mixing quality over single mixers of the prior art is realized. The dual mixer of the present disclosure includes a first mixer placed downstream of the reducing agent injector to reduce deposit formation by intercepting the reducing agent liquid from the injector and dispersing the reducing agent liquid into smaller droplets. The first mixer includes a grid structure and a plurality of trapezoidal fins projecting from the grid at a 200 angle to promote evaporation of the reducing agent and reduce deposit formation. The dual mixer further includes a swirl mixer downstream of the first mixer that enhances the evaporation of droplets left behind from the first mixer, and promotes gas phase mixing of the reducing agent with the exhaust gas to improve NO.sub.x conversion efficiencies at the downstream SCR catalyst. Namely, the swirl mixer includes a circling configuration of three arrays of trapezoidal fins that impose a moderate swirl force onto the mixture of the reducing agent and the exhaust gas that is strong enough to provide adequate mixing, but weak enough to avoid undesirable forcing of reducing agent droplets to the walls of the exhaust pipe. Moreover, the swirl mixer exhibits an interconnected framework of grids with three-fold rotational symmetry that provides a sturdier and more structurally robust structure than mixers of the prior art that are less interconnected. The technology disclosed herein may find wide industrial applicability in a wide range of areas such as, but not limited to, construction, mining, agriculture, automotive, and rail transport applications.