PARTICULATE FILTER FOR A MOTOR VEHICLE
20170009622 ยท 2017-01-12
Inventors
Cpc classification
B01D46/4236
PERFORMING OPERATIONS; TRANSPORTING
F01N2340/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/0335
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/0222
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2470/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/083
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01N3/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A particulate filter for a motor vehicle has a casing (2) that allows through flow. A core (4) is accommodated in the casing (2) and allows through flow. The casing (2) has a longitudinal axis (3). A through flow duct (9) is formed between the casing (2) and the core (4) to allow the through flow of exhaust gas from an internal combustion engine of the motor vehicle. A ring (7) is arranged in the through flow duct (9) and gives the through flow duct (9) a labyrinth-type configuration.
Claims
1. A particulate filter for a motor vehicle, comprising: a casing having a longitudinal axis and allowing through flow; a core accommodated in the casing and allowing through flow; a through flow duct formed in the casing between the casing and the core to allow the through flow of exhaust gas from an internal combustion engine of the motor vehicle; and a ring arranged in the through flow duct and giving the through flow duct a labyrinth configuration.
2. The particulate filter of claim 1, wherein the ring has an outer ring and an inner ring, and an axial first clearance being formed between the outer ring and the inner ring.
3. The particulate filter of claim 2, wherein a first radial clearance is formed between a core outer wall of the core and the ring.
4. The particulate filter of claim 3, wherein a second radial clearance is formed between a casing inner wall of the casing and the ring.
5. The particulate filter of claim 4, wherein a first outside diameter of the outer ring is greater than a second outside diameter of the inner ring, a first inside diameter of the outer ring is greater than a second inside diameter of the inner ring, and the first inside diameter is less than the second outside diameter.
6. The particulate filter of claim 1, wherein the ring allows at least partial through flow.
7. The particulate filter of claim 1, further comprising a further ring axially adjoining the ring, with an axial second clearance being formed between the further ring and the ring.
8. The particulate filter of claim 1, wherein the core (4) is produced from a ceramic material or a metal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
[0021]
DETAILED DESCRIPTION
[0022] A particulate filter 1 according to the invention is identified by the numeral 1 in
[0023] The particulate filter 1 is designed to reduce particulate- or soot-containing emissions from the internal combustion engine. More specifically, the particulate filter 1 has a casing 2 with a longitudinal axis 3. A core 4 is accommodated in the casing 2 and allows through flow.
[0024] The core 4 that allows through flow is a monolith produced from a ceramic material. This monolith 4 has a multiplicity of flow ducts (not shown) that extend in the direction of the longitudinal axis 3 from an inlet area 5 of the core 4 to an outlet area 6 of the core 4. The flow ducts are closed alternately at one end. This means that, if the flow duct is open in the inlet area 5, it is closed in the outlet area 6 and vice versa.
[0025] Flow of the exhaust gas from the inlet area 5 into the outlet area 6 takes place via core walls of the core 4 that are formed between the flow ducts. The core walls are porous and thus allow through flow. Hence, particulates of a certain particle size settle on the core walls and do not flow via the outlet area 6. The alternation of open and closed flow ducts produces a positive guidance of the exhaust gas in that the exhaust gas must flow from one flow duct into an adjacent flow duct via the core walls.
[0026] The particulate filter 1 has a ring 7 surrounding the core 4. The ring 7 is arranged in a free flow cross section 8 of the particulate filter 1 between the casing 2 and the core 4 and thus represents a flow resistance in the free flow cross section 8. With the aid of the ring 7, a labyrinth-type through flow duct 9 is formed in the casing 2. More specifically, the through flow duct 9 has an inlet cross section 10 formed facing the inlet area 5 and an outlet cross section 11 formed facing the outlet area 6. The entire through flow duct 9 allows through flow in the direction of the longitudinal axis 3.
[0027] The particulate filter 1 of
[0028] The outer ring 12 has a first ring inner wall 16 that is arranged opposite the core outer wall 15 to form a first radial clearance R1. The inner ring 13 has a second ring inner wall 17 that also is arranged opposite the core outer wall 15 so that no radial clearance is formed between the second ring inner wall 17 and the core outer wall 15 in this first illustrative embodiment. However, it would also be possible for a radial clearance to be formed between the two walls.
[0029] A first ring outer wall 18 of the outer ring 12 is arranged opposite the casing inner wall 14 and adjoins the casing inner wall 14. In other words, no radial clearance is formed between the casing inner wall 14 and the first ring outer wall 18 in the first illustrative embodiment. The inner ring 13 has a second ring outer wall 19 that is arranged opposite the casing inner wall 14 to form a second radial clearance R2.
[0030] The outer ring 12 and the inner ring 13 are arranged to maintain an axial first clearance A1 with respect to one another.
[0031] The through flow duct 9 thus extends in the form of a labyrinth from its inlet cross section 10 to its outlet cross section 11 via a first section axially between the core 4 and the outer ring 12, onward via a second section radially between the outer ring 12 and the inner ring 13 and, finally, via a third section, once again axially between the casing inner wall 14 and the inner ring 13.
[0032] In a second embodiment (not shown), the through flow duct 9 is formed as a labyrinth in a one-piece ring 7. Depending on requirements with respect to the exhaust gas noise, the ring 7 can be arranged in the casing 2 so as to surround the core 4 while maintaining a radial clearance between the core 4 and/or the casing inner wall 14.
[0033] In the first embodiment, the outer ring 12 and the inner ring 13 are designed to overlap partially. A first outside diameter DA1 of the outer ring 12 is greater than a second outside diameter DA2 of the inner ring 13, and a first inside diameter DI1 of the outer ring 12 is greater than a second inside diameter DI2 of the inner ring 13. Additionally, the first inside diameter DI1 is less than the second outside diameter DA2.
[0034] The outer ring 12 and the inner ring 13 are designed to allow through flow, with particulates in the exhaust gas being deposited or collected on the rings 12, 13. Like the core 4, they have flow ducts that alternately are closed at one end.
[0035] A first ring inlet area 20 faces the inlet area 5, and the exhaust gas enters the flow ducts of the outer ring 12 that are open in this first ring inlet area 20. The outer ring 12 is designed to correspond to the core 4. Thus, the exhaust gas can flow via ring walls formed in the outer ring 12 from one flow duct into a flow duct that is open in a ring outlet area 21 to face away from the first ring inlet area 20. Thus, the exhaust gas entering the outer ring 12 in the ring inlet area 20 can emerge with a reduced level of particulates via the first ring outlet area 21 thereof.
[0036] The particulate filter 1 shown in
[0037] The particulate filter 1 has an improved sound configuration and an improved absorption of particulates. Furthermore, the ring 7 also absorbs particulates and enables a reduced pressure drop across the particulate filter 1 due to the capacity for appropriate configuration of the free flow cross-sectional area of the through flow duct 9 in the particulate filter 1.
[0038] The exhaust gas flowing through the through flow duct 9 can flow through both the particulate-absorbing core 4 and the particulate-absorbing rings 12, 13 via the ring inner walls 16, 17 and the ring outer walls 18, 19 and via the ring inlet and outlet areas 20, 21, 22, 23 thereby bringing about improved absorption of particulates and thus reduced exhaust gas emissions. At the same time, the free flow cross-sectional area can be enlarged to reduce the pressure drop without diminishing the reduction in emissions. Thus, for example, the exhaust gas flowing between the core 4 and the outer ring 12 is directed onto the inner ring 13 due to an overlap R between the outer ring 12 and the inner ring 13 and can flow through the inner ring. The exhaust gas flowing between the casing inner wall 14 and the inner ring 13 is directed onto the outer ring 13 of the further ring 70 by virtue of the overlap R between the outer ring 12 and the inner ring 13. Thus, particulates in the exhaust gas can be absorbed by at least one particulate-absorbing component 4, 7, 70 in the course of through flow of the particulate filter 1.
LIST OF REFERENCE SIGNS
[0039] 1 particulate filter [0040] 2 casing [0041] 3 longitudinal axis [0042] 4 core [0043] 5 inlet area [0044] 6 outlet area [0045] 7 ring [0046] 8 free flow cross section [0047] 9 through flow duct [0048] 10 inlet cross section [0049] 11 outlet cross section [0050] 12 outer ring [0051] 13 inner ring [0052] 14 casing inner wall [0053] 15 core outer wall [0054] 16 first ring inner wall [0055] 17 second ring inner wall [0056] 18 first ring outer wall [0057] 19 second ring outer wall [0058] 20 first ring inlet area [0059] 21 first ring outlet area [0060] 22 second ring inlet area [0061] 23 second ring outlet area [0062] 70 further ring [0063] A1 axial first clearance [0064] A2 axial second clearance [0065] DA1 first outside diameter [0066] DA2 second outside diameter [0067] DI1 first inside diameter [0068] DI2 second inside diameter [0069] R1 radial first clearance [0070] R2 radial second clearance [0071] R overlap