Filter muffler for an exhaust gas turbocharger of an internal combustion engine
11549471 · 2023-01-10
Assignee
Inventors
Cpc classification
F02M35/1227
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/4226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/1288
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/664
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/02475
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/1211
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/1272
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/02483
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/1205
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/02441
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
F02M35/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A filter muffler includes a front element, a rear element, and a plurality of damping elements arranged between the front element and the rear element, where the damping elements are arranged radially around a central axis of the filter muffler such that a flow channel is formed between adjacent damping elements, where respective outflow-side ends of the damping elements have a diffuser element which has an outflow-side tapering, and where an angle α between two opposite sides of the diffuser element is selected from a range of 1°≤α≤8°.
Claims
1. A filter muffler arranged on an intake side of a compressor of an exhaust gas turbocharger for an internal combustion engine, the filter muffler comprising: a front element, a rear element, and a plurality of damping elements arranged between the front element and the rear element, wherein the damping elements are arranged radially around a central axis of the filter muffler such that a flow channel is formed between adjacent damping elements, wherein respective outflow-side ends of the damping elements have a diffuser element which has an outflow-side tapering toward the central axis, wherein the outflow-side tapering is continuous and meets to form the outflow-side ends, and wherein an angle α between two opposite sides of the diffuser element is selected from a range of 1°≤α≤8°.
2. The filter muffler of claim 1, wherein the flow channel has an increasing flow cross-section on the outflow side.
3. The filter muffler of claim 1, wherein the flow channel is delimited by respective involute contours of adjacent damping elements over at least 40% of the flow channel length.
4. The filter muffler of claim 3, wherein the respective involute contours of the damping elements are formed between a radially outer inflow-side end and a radially inner outflow-side end of the damping elements.
5. The filter muffler of claim 4, wherein the respective inflow-side ends of the damping elements, in relation to the respective involute contours, have a rear curvature in the circumferential direction.
6. The filter muffler of claim 1, wherein the tapering runs toward an outflow edge of the diffuser element and leads at the outflow edge to a reduction in thickness of the damping element of at least 50%.
7. The filter muffler of claim 1, wherein the damping elements are configured such that a cross-section of an inflow region of the respective flow channels between adjacent damping elements becomes smaller in the direction of flow.
8. The filter muffler of claim 1, wherein the damping elements are configured such that a cross-section of the respective flow channels in a region which is delimited by involute contours of adjacent damping elements is constant in the direction of flow.
9. The filter muffler of claim 1, wherein the damping elements are configured such that a cross-section of an outflow region of the respective flow channels between adjacent damping elements becomes larger in the direction of flow.
10. The filter muffler of claim 1, wherein the flow channel is delimited by respective involute contours of adjacent damping elements over at least 50% of the flow channel length.
11. The filter muffler of claim 3, wherein a distance D between the respective involute contours of adjacent damping elements is selected from a range of 2 mm≤D≤30 mm.
12. The filter muffler of claim 1, wherein the respective damping elements have a first involute contour and a second involute contour parallel to the first involute contour, and wherein a distance T between the first involute contour and the second involute contour is selected from a range of 6 mm≤T≤50 mm.
13. The filter muffler of claim 1, wherein respective inflow-side ends of the damping elements have a rear curvature in the circumferential direction.
14. The filter muffler of claim 1, wherein the tapering runs toward an outflow edge of the diffuser element and leads at the outflow edge to a reduction in thickness of the damping element of at least 20%.
15. The filter muffler of claim 14, wherein the damping elements are configured such that a cross-section of an outflow region of the respective flow channels between adjacent damping elements becomes larger in the direction of flow.
16. The filter muffler of claim 6, wherein the damping elements are configured such that a cross-section of an outflow region of the respective flow channels between adjacent damping elements becomes larger in the direction of flow.
17. The filter muffler of claim 1, wherein the flow channel is delimited by respective involute contours of adjacent damping elements over at least 65% of the flow channel length.
18. The filter muffler of claim 3, wherein a distance D between the respective involute contours of adjacent damping elements is selected from a range of 5 mm≤D≤25 mm.
19. An exhaust gas turbocharger for an internal combustion engine, the gas turbocharger comprising: a compressor having an intake side, and a filter muffler arranged on the intake side of the compressor, the filter muffler comprising a front element, a rear element, and a plurality of damping elements arranged between the front element and the rear element, wherein the damping elements are arranged radially around a central axis of the filter muffler such that a flow channel is formed between adjacent damping elements, wherein respective outflow-side ends of the damping elements have a diffuser element which has an outflow-side tapering toward the central axis, wherein the outflow-side tapering is continuous and meets to form the outflow-side ends, and wherein an angle α between two opposite sides of the diffuser element is selected from a range of 1°≤α≤8°.
20. An internal combustion engine comprising: an exhaust gas turbocharger comprising: a compressor having an intake side, and a filter muffler arranged on the intake side of the compressor, the filter muffler comprising a front element, a rear element, and a plurality of damping elements arranged between the front element and the rear element, wherein the damping elements are arranged radially around a central axis of the filter muffler such that a flow channel is formed between adjacent damping elements, wherein respective outflow-side ends of the damping elements have a diffuser element which has an outflow-side tapering toward the central axis, wherein the outflow-side tapering is continuous and meets to form the outflow-side ends, and wherein an angle α between two opposite sides of the diffuser element is selected from a range of 1°≤α≤8°.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) In the following, the invention is explained on the basis of exemplary embodiments represented in figures, from which exemplary embodiments further advantages and modifications arise. Here:
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE FIGURES
(5)
(6) As is shown by way of example in
(7) In order to improve the damping properties of the filter muffler, in particular to reduce the pressure losses, according to an embodiment which can be combined with other embodiments described herein the flow channel 30 is delimited at least over 40% of the flow channel length by respective involute contours 25 of adjacent damping elements, as is represented by way of example in
(8) Alternatively or additionally, in order to improve the damping properties of the filter muffler, in particular to reduce the pressure losses, respective outflow-side ends 22 of damping elements 20 can have a diffuser element 23 which has an outflow-side tapering, as is represented by way of example in
(9) A filter muffler can thus advantageously be provided which has curved flow channels (also referred to as splitter channels or baffle channels) which are configured such that the throughflow speed is as constant as possible and has no peak speeds. This is particularly advantageous because peak speeds have a quadratic effect on the pressure loss such that the filter muffler according to the invention has a reduced pressure loss. This has a positive effect on the damping properties and on the installation space of the filter muffler.
(10) According to an embodiment which can be combined with other embodiments described herein, the flow channel 30 between adjacent damping elements is delimited at least over 50%, in particular at least over 65%, in particular at least over 70%, of the flow channel length by respective involute contours 25. As a result thereof, the through-flow of the filter muffler with constant flow speed can be further improved such that the damping characteristics of the filter muffler can be further improved.
(11) The front element 11 can be a front plate. For example, the front plate can be formed in the form of a disk, in particular of a circular disk, as is represented by way of example in
(12) As is represented by way of example in
(13) As is represented by way of example in
(14) For example, the connecting element 13 can be screwed to the rear element 12. Alternatively, the connecting element can also be guided through a corresponding opening in the rear element 12 and screwed to a flange 41 of the compressor housing. The structure of the filter muffler is accordingly advantageously made more rigid by the axial connection, in particular axial screwing, of the front element 11 to the rear element 12 via connecting elements 13. The flange 41 can, for example, be part of an adapter ring attached to the compressor housing. The adapter ring is typically configured such that the filter muffler can be mounted thereon, for example, via connecting elements 13 described herein.
(15) As is represented by way of example in
(16) According to an embodiment which can be combined with other embodiments described herein, respective inflow-side ends 21 of the damping elements 20 have, in relation to the respective involute contours, a rear curvature 27 in the circumferential direction. The term “rear curvature” should be understood such that the rear curvature has an opposite curvature in comparison with the curvature of the damping elements, as is represented in
(17) As is represented schematically in
(18) According to an embodiment which can be combined with other embodiments described herein, the respective outflow-side ends 22 of the damping elements 20 have a diffuser element 23. The diffuser elements 23 typically have an outflow-side tapering. As is apparent from
(19) In other words, according to an embodiment which can be combined with other embodiments described herein, the damping elements 20 have at their end facing toward the central axis 16 (i.e. in the outflow region) a diffuser element 23, as is shown by way of example in
(20) As is apparent from
(21) According to an embodiment which can be combined with other embodiments described herein, an angle α between two opposite sides of diffuser element 23 is selected from a range of 1°≤α≤8°. For the purpose of illustration, angle α between two opposite sides of a diffuser element 23 is represented in
(22) According to an embodiment which can be combined with other embodiments described herein, the damping elements 20 are configured such that a cross-section Q1 of an inflow region A of the respective flow channels between adjacent damping elements 20 becomes smaller in direction of flow 31, as is represented by way of example in
(23) According to an embodiment which can be combined with other embodiments described herein, the damping elements 20 are configured such that a cross-section Q2 of the respective flow channels in a region which is delimited by involute contours 25 of adjacent damping elements is constant in direction of flow 31, as is represented by way of example in
(24) According to an embodiment which can be combined with other embodiments described herein, the damping elements 20 are configured such that a cross-section Q3 of an outflow region C of respective flow channels 30 between adjacent damping elements 20 becomes larger in direction of flow 31, as is shown by way of example in
(25) According to an embodiment which can be combined with other embodiments described herein, a distance D between respective involute contours of adjacent damping elements 20 is selected from a range of 2 mm≤D≤30 mm, in particular 5 mm≤D≤25 mm, as is represented by way of example in
(26) As is represented by way of example in
(27) According to an embodiment which can be combined with other embodiments described herein, the damping elements comprise an absorption element which is typically composed of a damping material. For example, the damping material can be a foam material, a felt or a nonwoven, in particular a polyester nonwoven. The absorption element is typically surrounded at least partially by a damping plate. In particular, the damping plate can be formed such that a gap is formed between the side walls of a damping element. The absorption element can be accommodated in this gap.
(28) According to an embodiment which can be combined with other embodiments described herein, the damping plate as described herein is a perforated plate with a thickness of 0.8 or 0.75 mm. The perforated plate can have, for example, holes with a diameter of 2 mm to 5 mm.
(29) As is apparent from the embodiments described herein, a filter muffler is advantageously provided which is improved in comparison with the filter mufflers known from the prior art. In particular, as a result of the filter muffler according to the invention, a filter muffler is provided which enables a more compact installation space size, in particular in the axial direction. Moreover, the filter muffler according to the invention, as a result of its design, in particular as a result of the design of the damping elements or splitters, is advantageously configured in such a manner that pressure losses can be reduced when flowing through the filter muffler. A filter muffler with improved damping properties can thus be provided.
LIST OF REFERENCE NUMBERS
(30) 10 Filter muffler
(31) 11 Front element
(32) 12 Rear element
(33) 13 Connecting element
(34) 15 Filter plate
(35) 16 Central axis
(36) 17 Central opening
(37) 20 Damping element
(38) 21 Inflow-side end
(39) 22 Outflow-side end
(40) 23 Diffuser element
(41) 24 Outflow edge
(42) 25 Involute contour
(43) 25A First involute contour
(44) 25B Second involute contour
(45) 30 Flow channel
(46) 31 Direction of flow
(47) 40 Compressor
(48) 41 Flange of the compressor housing
(49) A Inflow region
(50) B Intermediate region
(51) C Outflow region
(52) D Distance D between adjacent damping elements
(53) T Thickness of the damping elements
(54) Q.sub.1 Cross-section of the inflow region of the respective flow channels
(55) Q.sub.2 Cross-section of the intermediate region of the respective flow channels
(56) Q.sub.3 Cross-section of the outflow region of the respective flow channels
(57) R Radial direction
(58) φ Circumferential direction
(59) α Angle between two opposite sides of the diffuser element