The invention relates to mufflers, including for trucks having engine retarders including engine compression brake-type systems.
Mufflers are known for trucks having diesel engine retarders, sometimes called engine compression brakes, including those available under the trademark “Jake Brake”. The present invention arose during continuing development efforts directed to mufflers, including mufflers for diesel engine retarders. The present invention provides an alternate or secondary path providing additional attenuation of noise, and lowering back pressure.
Sole
The muffler has a primary flow path 54 therethrough passing through inlet tube 30 then through perforations 34 then into internal volume 24 then to inner end 46 of outlet tube 32 then through outlet tube 32 to exit as shown at right hand arrow 54. A flange 56 extends radially between inner shell 20 and one of the inlet and outlet tubes, preferably outlet tube 32, and provides a secondary flow path 58 through the muffler. Secondary flow path 58 has a first portion 58a passing through inlet tube 30 coincident with primary flow path 54 then through perforations 34 then into internal volume 24 at upstream section 24a thereof then into a flow section 22a of annular volume 22. Secondary flow path 58 continues to a second portion 58b passing from flow section 22a of annular volume 22 then into downstream section 24b of internal volume 24 then through perforations 44 to rejoin primary flow path 54 and pass through outlet tube 32 to exit at outlet 28. Downstream end 36 of inlet tube 30 and upstream end 46 of outlet tube 32 are axially spaced by an axial gap 60 therebetween along primary path 54. Section 24b of internal volume 24 is preferably downstream of axial gap 60. Flow section 22a of annular volume 22 is preferably downstream of axial gap 60 and circumscribes outlet tube 32.
Muffler 10 passes exhaust from upstream to downstream from inlet 26 to outlet 28. Downstream portion 58b of secondary flow path 58 is downstream of and in series with upstream portion 58a of secondary flow path 58. Secondary flow path 58 is in parallel with primary flow path 54 in internal volume 24. Inner shell 20 is perforated as shown at perforations 62. Inner shell 20 also has a plurality of circumferentially spaced openings 64, 66, etc., upstream of flange 56. Inner shell 20 has another set of a plurality of circumferentially spaced openings 68, 70, etc., downstream of flange 56. Secondary flow path 58 passes around flange 56, namely passing from upstream section 24a of internal volume 24 through the first set of openings 64, 66 into flow section 22a of annular volume 22 on the upstream side of flange 56, and then passing from flow section 22a of annular volume 22 through the second set of openings 66, 70 into downstream section 24b of internal volume 24 on the downstream side of flange 56. Flange 56 blocks flow axially therepast, but permits flow therearound through flow section 22a of annular volume 22.
Inlet tube 30 has the noted inner end 36 in internal volume 24. Outlet tube 32 has the noted inner end 46 in internal volume 24 axially spaced downstream from inner end 36 of inlet tube 30 by axial gap 60 therebetween. The first set of openings 64, 66 in inner shell 20, the flange 56, and the second set of openings 68, 70 in inner shell 20 are each axially downstream of inner end 46 of outlet tube 32. Flange 56 is spaced axially downstream from inner end 46 of outlet tube 32 by a second axial gap 72 having a greater axial length than first axial gap 60. Inner shell 20 has a first section 20a upstream of the first set of openings 64, 66 in the inner shell. Inner shell 20 has a second section 20b downstream of the second set of openings 68, 70 in the inner shell. Each of the first and second sections 20a and 20b of inner shell 20 is perforated, as shown at perforations 62. First and second sections 20a and 20b of inner shell 20 are axially spaced by the noted first and second sets of openings 64, 66 and 68, 70 therebetween. First and second regions of sound adsorption material 74 and 76 may be provided in first and second sections 22b and 22c, respectively, of annular volume 22 at the first and second sections 20a and 20b, respectively, of inner perforated shell 20. The first and second regions of sound adsorption material 74 and 76 are axially spaced by a void section 22a of annular volume 22 therebetween, which void section provides the noted flow section of annular volume 22. Secondary flow path 58 passes through the first set of openings 64, 66 in inner shell 20 then through void section 22a of annular volume 22 then through the second set of openings 68, 70 in inner shell 20. First region 74 of sound adsorption material may include multiple layers such as 78, 80 of sound adsorption material. Second region 76 of sound adsorption material may include multiple layers such as 82, 84 of sound adsorption material.
In a further embodiment, flange 56 may have openings therethrough, as shown in dashed line at 86, 88, providing a third flow path through the flange in parallel with flow section 22a through annular volume 22. The third flow path extends from the noted first portion of the secondary flow path 58 then through openings 86, 88 in flange 56 then to the noted second portion of the secondary flow path 58.
It is recognized that various equivalents, alternatives and modifications are possible within the scope of the appended claims.