VEHICLE EXHAUST SYSTEM
20230203973 · 2023-06-29
Inventors
Cpc classification
F01N13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02A50/20
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
F01N1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vehicle exhaust system includes a tubular component defining a primary exhaust gas flow path with a primary exhaust gas outlet. At least one opening is defined by the tubular component and extends through an inner surface and an outer surface of the tubular component. A plate is disposed on the outer surface of tubular component and covers the at least one opening. A secondary exhaust gas flow path is defined by the at least one opening in the tubular component, through a plurality of elongated flow channels, and through the outlet opening defined by the plate. The exhaust gases flowing through the secondary exhaust gas flow path are exhausted to atmosphere in a different location than the primary outlet.
Claims
1. A vehicle exhaust system comprising: a tubular component having an inner surface and an outer surface and extending along a central axis from an inlet end to an outlet end and defining a primary exhaust gas flow path for exhaust gases in a first direction from the inlet end toward the outlet end; the outlet end defining a primary outlet for the exhaust gases from the tubular component to atmosphere; at least one opening defined by the tubular component, wherein the at least one opening extends through the inner surface and the outer surface; and a plate disposed on the outer surface of the tubular component and covering the at least one opening, the plate defining a plurality of elongated flow channels extending away from the at least one opening and adapted to receive exhaust gases from the at least one opening and further defining an outlet opening adapted to receive exhaust gases from the flow channel; wherein a secondary exhaust gas flow path is defined by the at least one opening in the tubular component, through the plurality of elongated flow channels, and through the outlet opening defined by the plate; wherein exhaust gases flowing through the secondary exhaust gas flow path are exhausted to atmosphere in a different location than the primary outlet.
2. The vehicle exhaust system of claim 1, wherein the exhaust gases entering the plurality of elongated flow channels is remotely located from the exhaust gases exiting the plurality of elongated flow channels.
3. The vehicle exhaust system of claim 1, wherein the plurality of flow channels comprise a plurality of parallel flow channels.
4. The vehicle exhaust system of claim 3, wherein the secondary exhaust gas flow path through at least one of the plurality of elongated flow channels is in a second direction, opposite the first direction, and through the outlet opening defined by the plate.
5. The vehicle exhaust system of claim 1, wherein the plate disposed on the outer surface of the tubular component and covering the at least one opening is defined by a first plate and the plurality of elongated flow channels extending away from the at least one opening is defined by a second plate.
6. The vehicle exhaust system of claim 5, wherein the first plate at least partially covers the second plate.
7. The vehicle exhaust system of claim 5, wherein the first plate comprises the outlet opening.
8. The vehicle exhaust system of claim 5, wherein the outlet opening is positioned upstream of the at least one opening in the tubular component.
9. The vehicle exhaust system of claim 1, wherein at least one of the plurality of elongated flow channels imparts at least one directional change to the exhaust gases.
10. The vehicle exhaust system of claim 9, wherein the at least one of the plurality of elongated flow channels imparts at least two directional changes to the exhaust gases.
11. The vehicle exhaust system of claim 5, wherein the plurality of elongated flow channels are defined by slots in the second plate.
12. A vehicle exhaust system comprising: a tubular component having an inner surface and an outer surface and extending along a central axis from an inlet end to an outlet end and defining a primary exhaust gas flow path for exhaust gases in a first direction from the inlet end toward the outlet end; the outlet end defining a primary outlet for the exhaust gases from the tubular component to atmosphere; at least one opening defined by the tubular component, wherein the at least one opening extends through the inner surface and the outer surface; a first plate disposed on the tubular component, the first plate comprising a plurality of flow channels adapted to receive exhaust gases from the at least one opening; a second plate separate from the first plate and covering the plurality of flow channels and comprising at least one outlet opening positioned remote from the at least one opening in the tubular component and adapted to receive exhaust gases from the plurality of flow channels; and wherein a secondary exhaust gas flow path is defined by the at least one opening in the tubular component, through the plurality of flow channels, and through the outlet opening defined by the second plate; wherein exhaust gases flowing through the secondary exhaust gas flow path are exhausted to atmosphere in a different location than the primary outlet.
13. The vehicle exhaust system of claim 12, wherein the plurality of flow channels are elongated.
14. The vehicle exhaust system of claim 13, wherein the plurality of elongated flow channels are defined by slots in the second plate.
15. The vehicle exhaust system of claim 12, wherein the exhaust gases entering the plurality of flow channels is remotely located from the exhaust gases exiting the plurality of elongated flow channels.
16. The vehicle exhaust system of claim 12, wherein the plurality of flow channels comprise a plurality of parallel flow channels.
17. The vehicle exhaust system of claim 12, wherein the secondary exhaust gas flow path through at least one of the plurality of flow channels is in a second direction, opposite the first direction, and through the outlet opening defined by the second plate.
18. The vehicle exhaust system of claim 12, wherein at least one of the plurality of flow channels imparts at least one directional change to the exhaust gases.
19. The vehicle exhaust system of claim 18, wherein the at least one of the plurality of flow channels imparts at least two directional changes to the exhaust gases.
20. The vehicle exhaust system of claim 19, wherein the exhaust gases are exhausted to atmosphere in a different location than the primary exhaust gases.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0012]
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DETAILED DESCRIPTION
[0029] The following description of the preferred embodiment(s) is merely exemplary in nature and is in no way intended to limit the invention, its application, or uses. Referring now to the drawings in which like reference numerals designate like or corresponding parts throughout the several views, there is shown in
[0030] The system 100 includes a number of downstream exhaust components 104 fluidly coupled to the engine 102. The exhaust components 104 may include a number of systems/components (not shown), such as a Diesel Oxidation Catalyst (DOC), a Diesel Exhaust Fluid (DEF) unit, a Selective Catalytic Reduction (SCR) unit, a particulate filter, an exhaust pipe, an active valve, a passive valve and the like. The exhaust components 104 may be mounted in various different configurations and combinations based on application requirements and/or available packaging space. The exhaust components 104 are adapted to receive the exhaust gas from the engine 102 and direct the exhaust gas to the external atmosphere via a tailpipe 106. The exhaust components 104 are adapted to reduce emissions and control noise.
[0031] The system 100 also includes an acoustic damping member, such as a muffler 108. The muffler 108 is provided in fluid communication with the exhaust components 104 and the tailpipe 106. In the illustrated embodiment, the muffler 108 is disposed downstream of the exhaust components 104 and upstream of the tailpipe 106. In other embodiments, the muffler 108 may be disposed in any sequence with respect to each of the exhaust components 104 and/or the tailpipe 106, based on application requirements. The muffler 108 is adapted to dampen resonance frequencies generated during operation of the engine 102 and the system 100.
[0032] Referring to
[0033] The tubular component 202 also includes an opening 212 (shown in
[0034] The system 100 also includes a patch 214 coupled to the tubular component 202. More specifically, the patch 214 is disposed adjacent to the opening 212 in order to cover the opening 212. Referring to
[0035]
[0036] The patch 214 further includes a second plate 310. The second plate 310 is disposed on the first plate 302. The second plate 310 at least partially encloses the first plate 302. The second plate 310 at least partially defines at least one outlet opening 312. In the illustrated embodiment, the second plate 310 defines a single outlet opening 312. However, the second plate 310 may include any appropriate number of outlet openings 312 as per application requirements. In an embodiment, a number of slots 308 is equal to a number of outlet openings 312. The outlet opening 312 is in fluid communication with the slot 308 towards the second end 306.
[0037] A secondary exhaust flow path is defined for the exhaust gases flowing through the tubular component 202. The secondary exhaust flow path is defined through the opening 212, the slot 308, and the outlet opening 312. The exhaust gases exit the tubular component 202 through the opening 212, then flow through the slot 308 from the first end 304 towards the second end 306, and then flow out through the outlet opening 312. The secondary exhaust gas flow path resembles a serpentine shape and may be referred to as a serpentine shaped flow path.
[0038] The first plate 302 has a first thickness T.sub.1 and the second plate 310 has a second thickness T.sub.2. In an embodiment, the second thickness T.sub.2 is greater than the first thickness T.sub.1. However, the present disclosure is not limited by the relative thicknesses of the first plate 302 and the second plate 310 in any manner. Other combinations of relative thicknesses of the first plate 302 and the second plate 310 may be envisioned and are well within the scope of the present disclosure. The first plate 302 and the second plate 310 may have similar or different thickness as per application requirements.
[0039]
[0040]
[0041] The second plate 606 includes at least one outlet opening. In the illustrated embodiment, the at least one outlet opening includes a first outlet opening 614 and a second outlet opening 615. The first outlet opening 614 is fluidly coupled with the first slot 612 and the second outlet opening 615 is coupled with the second slot 613. The first and second openings 610, 611, the first and second slots 612, 613 and the first and second outlet openings 614, 615 together define a secondary exhaust gas flow path. The exhaust gases flow through the first and second openings 610, 611 in the tubular component 608, the first and second slots 612, 613 and the first and second outlet openings 614, 615.
[0042]
[0043] The exhaust gases flow along a first arm 720 of the flow channel 718 in a first direction, then change flow direction to flow along a second arm 722. As the flow channel 718 is U-shaped, the first arm 720 is substantially orthogonal to the second arm 722. Further, the exhaust gases change flow direction once again to flow along a third arm 724. The third arm 724 is parallel to the first arm 720, and orthogonal to the second arm 722. The exhaust gases flow along the third arm 724, and then flow out of the tubular component 702 through an outlet opening 726. The outlet opening 726 is defined by the second plate 717 such that the outlet opening 726 receives exhaust gases from the flow channel 718.
[0044] It should be contemplated that although the flow channel 718 is depicted as U-shaped, various other such shapes may also be envisioned. For example, the shape of the flow channel 718 may be selected from one or more of a U-shape, an L-shape, a Z-shape, or a V-shape. In an embodiment, the flow channel 718 may be helical in shape. All these shapes may impart one or more directional changes to the exhaust gases. Changes in flow direction allows release of sound energy, but further minimizes leakage of exhaust gases. Thus, a secondary exhaust gas flow path is defined through the at least one opening 712 in the tubular component 702, the flow channel 718 defined by the first plate 716, and the outlet opening 726 defined by the second plate 717. In an embodiment, the exhaust gases flow in an upstream direction due to the at least one directional change
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[0047] The patch 1002 includes a first plate 1010 disposed on the tubular component 1004. The first plate 1010 defines at least one flow channel which receives exhaust gases from the at least one opening. In the illustrated embodiment, the at least one flow channel includes a first flow channel 1012 and a second flow channel 1014. The first flow channel 1012 is fluidly coupled with the first opening 1006 and the second flow channel 1014 is fluidly coupled with the second opening 1008. In the illustrated embodiment, the first and second flow channels 1012, 1014 are depicted as having a U-shape. The first plate 1010 may further include corresponding inserts (not shown) disposed on the first plate 1010 to define the first and second flow channels 1012, 1014. The first and second flow channels 1012, 1014 impart two directional changes to the received exhaust gases. The patch 1002 further includes a second plate 1011.
[0048]
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[0050] The tubular component 1202 defines at least one opening 1212. In the illustrated embodiment, the tubular component 1202 defines a single opening 1212. However, the at least one opening 1212 may include any number of openings 1212 as per application requirements, and the present disclosure is not limited by the number of openings 1212 in any manner.
[0051] At least one tab portion 1214 is coupled to the opening 1212. In an embodiment, the at least one tab portion 1214 is an integral part of the tubular component 1202. In the illustrated embodiment, the at least one tab portion 1214 includes a single tab portion 1214. However, the at least one tab portion 1214 may include multiple tab portions 1214 as per application requirements. The tab portion 1214 is coupled to the tubular component 1202 at an angular orientation with the central axis Y-Y′. The tab portion 1214 has a first end 1216 and a second end 1218. The tab portion 1214 is coupled to the tubular component 1202 at the first end 1216. The second end 1218 of the tab portion 1214 angularly extends outwards from the tubular component 1202. In an embodiment, the tab portion 1214 extends in an upstream direction. In an embodiment, the at least one tab portion 1214 imparts a directional change to the exhaust gases such that the exhaust gases flow in an upstream direction due to the at least one directional change. The system further includes a patch 1220 which covers the opening 1212. The patch 1220 includes a plate 1222 disposed on the tubular component 1202. The plate 1222 has a first end 1224 and a second end 1226. The first end 1224 of the plate 1222 is disposed towards the opening 1212. The plate 1222 defines at least one outlet opening 1228 towards the second end 1226. In the illustrated embodiment, the plate 1222 defines a single outlet opening 1228.
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[0054] While aspects of the present disclosure have been particularly shown and described with reference to the embodiments above, it will be understood by those skilled in the art that various additional embodiments may be contemplated by the modification of the disclosed machines, systems and methods without departing from the spirit and scope of what is disclosed. Such embodiments should be understood to fall within the scope of the present disclosure as determined based upon the claims and any equivalents thereof.