REACTOR
20210108547 ยท 2021-04-15
Assignee
Inventors
Cpc classification
F01N2610/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2610/1453
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/4315
PERFORMING OPERATIONS; TRANSPORTING
F01N2570/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D53/9431
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
International classification
Abstract
A reactor is located in a gas gathering chamber through which exhaust gas in an exhaust system flows curvedly. An addition agent is sprayed against the reactor from upstream of the chamber to facilitate gasification through heat receiving. Rectification vanes are arrayed in a direction bisecting an angle formed by inflow and outflow directions of the exhaust gas and a support for supporting opposite ends of each of the vanes. Opposite ends of the vanes are inserted into slots on slanting sides of opposite side walls in the support to provide installed state. The vanes in the installed state are adapted to provide mounted postures along the flow of the exhaust gas.
Claims
1.-3. (canceled)
4. A reactor located in a flow change portion through which exhaust gas in an exhaust system flows curvedly, an addition agent sprayed from upstream of said flow change portion being impinged against the reactor to facilitate gasification thereof through heat receiving, wherein it comprises a plurality of rectification vanes arrayed in a direction substantially bisecting an angle formed by inflow and outflow directions of the exhaust gas to and from said flow change portion and a support which supports opposite ends of each of said rectification vanes and is to be received in said flow change portion, said support being provided with a pair of opposite side walls each providing a slanting side in an arrayed direction of said rectification vanes, a plurality of slots being formed on each of said slanting sides of said opposite side walls, the opposite ends of each of said rectification vanes being inserted from upstream into said slots to provide an installed state, said rectification vanes in said installed state being adapted to provide mounted postures along the flow of the exhaust gas.
5. The reactor as claimed in claim 4 wherein each of the rectification vanes has a downstream fin which guides the flow of the exhaust gas to the outflow direction from the flow change portion.
6. The reactor as claimed in claim 4 wherein the support is provided with a downstream fixing ring to be fitted into a flow passage wall of the flow change portion.
7. The reactor as claimed in claim 5 wherein the support is provided with a downstream fixing ring to be fitted into a flow passage wall of the flow change portion.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0019]
[0020]
[0021]
[0022]
[0023]
DESCRIPTION OF EMBODIMENT
[0024] An embodiment of the invention will be described in conjunction with the drawings.
[0025]
[0026] Specifically, the communication passage 7 is an S-shaped structure comprising a gas gathering chamber 7A which encircles an exit end of the particulate filter 3 to gather the exhaust gas 1 discharged therefrom through substantially perpendicular turnabout of the gas, a communication pipe 7B which extracts the exhaust gas 1 gathered in the gas gathering chamber 7A from an exhaust outlet 9 into the entry side of the selective reduction catalyst 4 and a gas dispersion chamber 7c which encircles the entry side of the selective reduction catalyst 4 to disperse the exhaust gas 1 guided by the communication pipe 7B through substantially perpendicular turnabout of the gas into the entry side of the selective reduction catalyst 4.
[0027] As shown in
[0028] Here, as shown in
[0029] Specifically as shown in
[0030] The opposite side walls 13a are interconnected through a rear wall 13b which provides a shield face to the inflow direction of the exhaust gas 1 on a downstream side of the rectification vanes 12. Provided downstream of the opposite side walls 13a and the rear wall 13b and integrally continuous therewith is a fixing ring 13c which is cylindrical in the outflow direction of the gas gathering chamber 7A and is to be fitted into a flow passage wall at the exhaust outlet 9 of the gas gathering chamber 7A.
[0031] In the exhaust emission control device illustrated in
[0032] With the reactor 8 thus constructed, to insert the opposite ends of each of the rectification vanes 12 from upstream into the slots 14 formed on the slanting sides of the opposite side walls in the support 13 causes the rectification vane 12 to be simply installed while regulated to provide a mounted posture along the flow of the exhaust gas 1; without needing to position the rectification vanes 12 using a jig, the vanes 12 can be arrayed and supported in a direction substantially bisecting an angle formed by inflow and outflow directions of the exhaust gas 1 to and from the gas gathering chamber 7A to provide the appropriate mounted postures.
[0033] Further, specifically in the embodiment, each of the rectification vanes 12 is provided with a downstream fin 12a which guides the flow of the exhaust gas 1 to the outflow direction from the gas gathering chamber 7A, so that the flow of the exhaust gas 1 rectified by passing thereof between the rectification vanes 12 is smoothly guided by the fins 12a to the outflow direction from the gas gathering chamber 7A.
[0034] Further, the support 13 is provided with the downstream fixing ring 13c which is to be fitted into the flow passage wall of the gas gathering chamber 7A, so that the reactor 4 can be simply fixed by fitting the fixing ring 13c into the flow passage wall of the gas gathering chamber 7A when the reactor 8 preassembled from the rectification vanes 12 and the support 13 is received in the flow passage wall of the gas gathering chamber 7A for fixing.
[0035] Thus, according to the above embodiment, to insert the opposite ends of the rectification vanes 12 into the slots 14 on the slanting sides of the opposite side walls 13a in the support 13 can cause the vanes 12 to be simply installed. The installation can cause the rectification vanes to be regulated to provide the mounted postures along the flow of the exhaust gas. Thus, the reactor 8 can be easily fabricated without needing to position the rectification vanes 12 by a jig upon arraying and supporting of the vanes 12 in the direction substantially bisecting the angle formed by the inflow and outflow directions of the exhaust gas 1 to and from the gas gathering chamber 7A.
[0036] Further, each of the rectification vanes 12 has a downstream fin 12a which guides the flow of the exhaust gas 1 to the outflow direction from the gas gathering chamber 7A, so that the flow of the exhaust gas 1 rectified by passing thereof between the rectification vanes 12 can be smoothly guided by the fins 12a to the outflow direction from the gas gathering chamber 7A, whereby the rectifying effect by the rectification vanes 12 can be further enhanced to further reduce the pressure loss.
[0037] Further, the support 13 is provided with the downstream fixing ring 13c to be fitted into the flow passage wall of the gas gathering chamber 7A, so that the reactor 8 can be simply fixed by fitting the fixing ring 13c into the flow passage wall of the gas gathering chamber 7A when the reactor 8 preassembled by the rectification vanes 12 and the support 13 is received in the gas gathering chamber 7A for fixing.
[0038] It is to be understood that a reactor according to the invention is not limited to the above embodiment and that various changes and modifications may be made without departing from the scope of the invention. For example, the description has been made in the embodiment using
REFERENCE SIGNS LIST
[0039] 1 exhaust gas [0040] 7A gas gathering chamber (flow change portion) [0041] 8 reactor [0042] 10 urea water (addition agent) [0043] 12 rectification vane [0044] 12a fin [0045] 13 support [0046] 13a opposite side walls [0047] 13c fixing ring [0048] 14 slot