Lean-burn engine after-treatment system
11434799 · 2022-09-06
Assignee
Inventors
Cpc classification
F01N13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/40
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
F01N13/009
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2803
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2470/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2510/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2073
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01N3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A lean-burn engine after-treatment system includes: a multiple catalyst bed including an APC catalyst housing, an SCR catalyst housing that surrounds the APC catalyst housing, and a CUC housing that surrounds the SCR catalyst housing; a first housing surrounding the multiple catalyst bed; a double pipe including a first pipe that is connected to a front end of the APC catalyst housing and a rear end of a TWC housing, and a second pipe that surrounds the first pipe and is connected to the first housing; and an exhaust-gas treatment unit connected to a rear end of the CUC housing. At least one perforation is formed in each of inner and outer surfaces of the first pipe, the APC catalyst housing, and the SCR catalyst housing, and an inner surface of the CUC housing.
Claims
1. A lean-burn engine after-treatment system comprising: a multiple catalyst bed including an ammonia production catalyst (APC) housing and an APC therein, a selective catalytic reduction (SCR) catalyst housing that surrounds the APC housing and includes a SCR catalyst therein, and a clean-up catalyst (CUC) housing that surrounds the SCR catalyst housing and includes a CUC catalyst therein; a first housing surrounding the multiple catalyst bed; a double pipe including a first pipe that is connected to a front end of the APC housing and a rear end of a three-way catalyst (TWC) housing, and a second pipe that surrounds the first pipe and is connected to the first housing; and an exhaust-gas flow unit connected to a rear end of the CUC housing, wherein at least one perforation is formed in inner and outer surfaces of the first pipe, inner and outer surfaces of the APC housing, inner and outer surfaces of the SCR catalyst housing, and an inner surface of the CUC housing.
2. The lean-burn engine after-treatment system of claim 1, wherein the second pipe comprises a first line extending in a direction parallel to a longitudinal direction of the first pipe, and a second line extending to have an increased diameter and connected to the first housing.
3. The lean-burn engine after-treatment system of claim 2, wherein the at least one perforation of the first pipe is surrounded by the first line.
4. The lean-burn engine after-treatment system of claim 1, wherein the exhaust-gas flow unit comprises: an exhaust-gas inlet part connected to the rear end of the CUC housing; an exhaust-gas joining part; and an exhaust-gas outlet part.
5. The lean-burn engine after-treatment system of claim 4, wherein the exhaust-gas inlet part extends in a longitudinal direction of the CUC housing.
6. The lean-burn engine after-treatment system of claim 5, wherein the exhaust-gas joining part extends inwards in a direction perpendicular to a longitudinal direction of the exhaust-gas inlet part.
7. The lean-burn engine after-treatment system of claim 4, wherein the exhaust-gas outlet part extends in a direction parallel to the longitudinal direction of the exhaust-gas inlet part.
8. The lean-burn engine after-treatment system of claim 6, wherein the exhaust-gas inlet part and the exhaust-gas joining part are connected in a curved shape.
9. The lean-burn engine after-treatment system of claim 1, wherein a mat of a mesh structure is located on the at least one perforation of the inner surface of the SCR catalyst housing or on the at least one perforation of the inner surface of the CUC housing.
10. The lean-burn engine after-treatment system of claim 1, wherein the first pipe or the CUC housing is made of an aluminum material.
11. The lean-burn engine after-treatment system of claim 1, wherein a central axis of the at least one perforation of the APC housing coincides with that of the at least one perforation of the inner surface of the SCR catalyst housing.
12. The lean-burn engine after-treatment system of claim 1, wherein a size of the at least one perforation of the APC housing is equal to that of the at least one perforation of the inner surface of the SCR catalyst housing.
13. The lean-burn engine after-treatment system of claim 1, wherein a central axis of the at least one perforation of the outer surface of the SCR catalyst housing coincides with that of the at least one perforation of the inner surface of the CUC housing.
14. The lean-burn engine after-treatment system of claim 1, wherein a size of the at least one perforation of the outer surface of the SCR catalyst housing is equal to a size of the at least one perforation of the inner surface of the CUC housing.
15. The lean-burn engine after-treatment system of claim 1, wherein the at least one perforation is formed in an entire region of the APC housing, the inner and outer surfaces of the SCR catalyst housing, or the inner surface of the CUC housing.
16. The lean-burn engine after-treatment system of claim 1, wherein the at least one perforation of the inner and outer surfaces of the APC housing, the at least one perforation of the inner surface of the SCR catalyst housing, the at least one perforation of the outer surface of the SCR catalyst housing, or the at least one perforation of the inner surface of the CUC housing have inclined shapes.
17. The lean-burn engine after-treatment system of claim 1, wherein the second pipe or the first housing is surrounded by a heat insulating material.
18. The lean-burn engine after-treatment system of claim 17, wherein the heat insulating material is a silica material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
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(4)
DETAILED DESCRIPTION
(5) Hereinafter, the present disclosure is described in detail. However, the present disclosure is not limited or restricted by the disclosed embodiments, and the objects and effects of the present disclosure may be naturally understood or more apparent from the following description. The objects and effects of the present disclosure are not limited by the following description. Further, in the description of the present disclosure, when it is determined that the related art of the present disclosure unnecessarily makes the gist of the present disclosure obscure, a detailed description thereof has been omitted.
(6)
(7) The second pipe 22 may include a first line 221 extending in a direction parallel to a longitudinal direction of the first pipe 21, and a second line 222 extending to have an increased diameter and connected to the first housing 14. In one example, the perforation 211 of the first pipe 21 may be surrounded by the first line 221.
(8) The exhaust-gas treatment unit 30 may include an exhaust-gas inlet part 31, an exhaust-gas joining part 32, and an exhaust-gas outlet part 33. The exhaust-gas inlet part 31 may be connected to the rear end of the CUC housing 13 and may extend in the longitudinal direction of the CUC housing 13. The exhaust-gas joining part 32 may extend inwards in a direction perpendicular to the longitudinal direction of the exhaust-gas inlet part. The exhaust-gas outlet part 33 may extend in the longitudinal direction of the exhaust-gas inlet part 31. Since flow interference occurs while exhaust gases are joined at the exhaust-gas joining part 32, the shape of an edge portion or a joined portion may be gently shaped so as to prevent back pressure and flow noise. In one example, the exhaust-gas inlet part 31 and the exhaust-gas joining part 32 may be connected in a curved shape.
(9) A mat 15 of a mesh structure may be placed on the perforation 121 of the inner surface of the SCR catalyst housing 12 or on the perforation 131 of the inner surface of the CUC housing 13. The mat 15 may prevent the aging and the leakage of a carrier and a connection, which may occur when the exhaust gas passes through the perforation.
(10) Hereinafter, the operation of the lean-burn engine after-treatment system 1 according to the present disclosure is described with reference to
(11) The operation of the multiple catalyst bed 10 is as follows. After the flow1 (f.sub.1) is introduced into the APC housing 11 of the multiple catalyst bed 10, the flow is separated into a flow3 (f.sub.3) and a flow4 (f.sub.4) by the perforation 111 of the APC housing 11. The flow3 (f.sub.3) passes through the perforation 121 of the inner surface of the SCR catalyst housing 12, and then flows into the SCR catalyst housing 12. Subsequently, the flow3 (f.sub.3) passes through the perforation 122 of the outer surface of the SCR catalyst housing 12 and the perforation 131 of the inner surface of the CUC housing 13, and then flows into the CUC housing 13. For reference, a stream of the flow4 (f.sub.4) at the multiple catalyst bed 10 is equal to a stream of the flow3 (f.sub.3). The temperature of the flow3 (f.sub.3) is reduced while the flow passing through the catalyst housings 11, 12 and 13.
(12) The operation of the exhaust-gas treatment unit 30 is as follows. Since no perforation is formed in the outer surface of the CUC housing 13, the flow3 (f.sub.3) and the flow4 (f.sub.4) are introduced into the exhaust-gas inlet part 31. At this time, the exhaust gases of the flow3 (f.sub.3) and the flow4 (f.sub.4) are exhaust gases that have undergone a purifying reaction with the APC, the SCR catalyst, and the CUC. These two exhaust gases are joined at the exhaust-gas joining part 32 to form a flow5 (f.sub.5) and are discharged through the exhaust-gas outlet part 33 at the rear of the vehicle.
(13) Unlike the related art, wherein the APC housing, the SCR catalyst housing, and the CUC housing form a serial structure, the present disclosure forms the catalyst housing in a parallel structure or a layered structure. As a space occupied by the lean-burn engine after-treatment system is reduced, the SCR catalyst housing may be located as near to the back of the vehicle as possible. Thus, the temperature of the SCR catalyst may be in the region (250 to 400° C.) of maximum purification performance.
(14) According to the present disclosure, the high-temperature exhaust gas passing through the TWC housing may be separated into the flow1 (f.sub.1) that is directly introduced into the APC housing 11 and the flow2 (f.sub.2) that is finally introduced into the first housing 14 surrounding the CUC housing 13, thus directly transferring heat of the exhaust gas of the flow2 (f.sub.2) to the CUC. Thus, the temperature of the CUC can be kept as high as possible. This prevents a problem where the temperature of the CUC may be reduced, as the after-treatment system according to the present disclosure, and particularly the SCR catalyst housing, is installed at the rear of the vehicle.
(15) As the heat is transferred to the CUC, the temperature of the exhaust gas of the flow2 (f.sub.2) is reduced. On the other hand, heat is continuously transferred to the exhaust gas of the flow1 (f.sub.1) by the combustion of the engine. Since heat transfer and mixing between two exhaust gases occur in the perforation 211 of the first pipe 21, the temperature of the exhaust gas of the flow2 (f.sub.2) may be elevated by the heat of the exhaust gas of the flow1 (f.sub.1).
(16) In one example, a lot of heat transfer is performed in the first pipe 21 and the CUC housing 13. The reason is as follows. In the case of the first pipe 21, the higher the heat transfer in the first line 221 of the first pipe 21 and the second pipe 22, the higher the temperature of the exhaust gas of the flow2 (f.sub.2) introduced into the first housing 14 (i.e., the temperature of the exhaust gas of the flow1 (f.sub.1) is reduced). In the case of the CUC housing 13, as more heat is transferred from the exhaust gas of the flow2 (f.sub.2), the purifying performance is also increased. Therefore, according to an embodiment of the present disclosure, an aluminum material having high thermal conductivity and excellent corrosion resistance may be applied as the material of the first pipe 21 or the CUC housing 13. The aluminum material, in one example, may be SUS439.
(17)
(18) Referring to
(19) Referring to
(20) This can minimize the amount of heat that is lost when the second pipe 22 and the first housing 14 come into contact with the air. Thus, the loss of heat transferred to the CUC is minimized. Therefore, according to another embodiment of the present disclosure, the second pipe 22 or the first housing 14 may be surrounded with a heat insulating material. In one example, the heat insulating material may be a silica material.
(21) Although the present disclosure has been described with reference to specific embodiments shown in the drawings, it should be apparent to those having ordinary skill in the art that the present disclosure may be changed and modified in various ways without departing from the scope of the present disclosure. Therefore, the scope of the disclosure should not be limited to the above-described embodiments, and all changes that fall within bounds of the claims or equivalence of such bounds are intended to be embraced by the claims.