1. Technical Field
The present disclosure generally relates to mufflers and vehicle exhaust systems for quieting combustion chamber noise.
2. Description of the Related Art
Many known combustion engines utilize expanding high-pressure combustion gasses to move a piston. Ignition of the fuel creates high-pressure pulses of combustion gasses that exit the engine manifold and travel down pipes to a muffler that helps reduce the noise from the engine. When the combustion gasses, also referred to herein as the exhaust gasses or exhaust gas, exit the tailpipe of a vehicle engine noises are heard. The rapid pressurization and subsequent depressurization of the exhaust system caused by the high-pressure pulses create a loud sound. As would be expected, the louder the noise, the more significant the annoyance factor and more potential damage to hearing.
The use of mufflers with combustion engines to reduce the amplitude of the acoustic energy of the exhausting gas is known. A typical muffler is located along an exhaust pipe and provides a large expansion volume compared to the pipe. With the muffler in place, the pressurized combustion gasses have a relatively large volume into which to expand. As the combustion gasses expand into the volume of the muffler, the pressure of those gasses falls significantly. Therefore, as the exhausting gas finally exits the muffler, the pressure of the combustion gasses being released to the atmosphere is significantly lower than the pressure of the combustion gasses when a muffler is not used. By reducing the peak amplitude of the combustion gas pressure released to the atmosphere, the sound of the vehicle exhaust system is much softer.
Many existing mufflers are typically of complex construction. For example, many mufflers have small orifices or diffusion materials that may become fouled by residue deposited as combustion gasses pass through the muffler. Fouling of these parts and variances during the life of the vehicle exhaust system may cause reduced efficiency and/or total inoperability of the muffler. Many existing mufflers also require the use of baffling materials for the reduction of the exhaust noise.
Briefly described, devices and systems involving a muffler for use with a vehicle exhaust system are disclosed. A representative embodiment of a muffler is provided for a vehicle exhaust system that has a combustion chamber and an exhaust pipe that the exhaust gas travels through before passing through the said muffler. The vehicle exhaust system is configured to emit exhausting gasses with minimal backpressure. The muffler also includes a proximal end and a distal end, the proximal end being configured for mounting the muffler to the pipe leading to the engine, the distal end being configured to allow the exhausting gasses to pass therethrough to vent into the atmosphere. The muffler includes at least one vortex chamber disposed between the proximal end and the distal end, the at least one vortex chamber including a circular peripheral wall for inducing a vortex on a portion of the combustion gasses during passage through the system.
The vehicle exhaust system includes a combustion chamber, an exhaust pipe for guiding the exhausting gasses along an exhaust gas path, and a muffler. The muffler includes a proximal end and a distal end, the proximal end being configured for mounting the muffler to the pipe, the distal end being configured to allow the exhausting gasses to pass therethrough, and at least one vortex chamber disposed between the proximal end and the distal end. The at least one vortex chamber includes a circular peripheral wall for inducing a vortex on a portion of the combustion gasses during emission.
Other systems, methods, features and/or advantages will be or may become apparent to one with skill in the art upon examination of the following drawings and detailed description. It is intended that all such additional systems, methods, features and/or advantages be included within this description and be protected by the accompanying claims.
The components in the drawings are not necessarily to scale. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Embodiments of mufflers for reducing the amplitude of engine noise transmitted to the atmosphere of a vehicle exhaust system are discussed.
Referring now to
Preferably, the muffler 210a includes a plurality of vortex diodes 220 disposed on the inner cylindrical wall 230 (
As shown in
In contrast, combustion gasses flowing in the direction of the flow arrows shown in
As shown in
To facilitate the flow of gasses into the expansion chamber 234a, a pressure bleed port or ports (not shown) can be positioned toward the distal end 216, thereby removing any “block-loaded” pressure condition and reducing the input impedance of gasses into the chamber 234a. An exemplary port could be a simple hole or could also be a vortex diode that will change resistance significantly when the chamber begins to become pressurized. Another possible location for such a pressure bleed port could be between adjacent chambers 234a, should there be more than one, with the fluid communication path eventually leading to the discharge part 218.
Once the combustion gasses 206 have passed into the expansion chamber 234a, the pressures within the vehicle exhaust system 200 and the muffler 210a represented by P1, P2, P3, and P4 are substantially equal and greater than the ambient pressure represented by P5. Note however, although greater than ambient pressure P5, those pressures represented by P1 through P4 are substantially less than the pressure exhibited by combustion gasses leaving exhaust pipe 202 of vehicle exhaust system 200 when the muffler 210a is not used.
As shown in
As shown, the first vortex diode 220a includes a vortex chamber 222a formed by the second wall 217, a first partition 240, and a circular peripheral wall 224a. The circular peripheral wall 224a is preferably the inner surface of the outer housing 232. The first vortex diode 220a also includes a nozzle 228a configured to introduce combustion gasses tangentially to the circular peripheral wall 224a, and a vent, the function of which is performed by the discharge opening 218 of the second wall 217. Similarly, the second vortex diode 220b is formed between the first partition 240 and a second partition 250, and includes a circular peripheral wall 224b and a nozzle 228b for introducing combustion gasses tangential to the circular peripheral wall 224b. Note, the dimensions of the various vortex chambers do not need to be uniform with respect to other vortex chambers within the same muffler.
A first exhausting gas aperture 242 formed in the first partition 240 functions as the vent for the second vortex diode 220b. A third vortex diode 220c is similarly formed between a third partition 260 and the second partition 250. The first exhausting gas aperture 242, the second exhausting gas aperture 252, and a third exhausting gas aperture 262 formed in the third partition 260 are all disposed along and about the exhausting gas path 219.
As shown, the proximal end 212 of the muffler 210b includes an expansion chamber 234b formed between the third partition 260, the first wall 213, and a portion of the outer housing 232. As shown, the expansion chamber 234b is a cylindrical volume, although this is not necessary for all embodiments. Preferably, a first fluid conduit 244 extends from an inlet 243 in the outer wall of the expansion chamber 234b to the nozzle 228a of the first vortex diode 220a. Note, the first fluid conduit 244 does not need to be outside the muffler 210b, as shown. Rather, the fluid conduit 244 could be fashioned to conduct flows internal to the outer housing 232 in voids created by walls 224a,b,c (not shown). Similarly, a second conduit 254 extends from an inlet 253 formed in the outer wall of the expansion chamber 234b to the nozzle 228b of the second vortex diode 220b. The first and second conduits 244, 254 allow combustion gasses, as indicated by the flow arrows, to flow from the expansion chamber 234b to their respective vortex diodes 220a, 220b.
When the vehicle engine is running, the exhausting gas (not shown) will eventually reach the vicinity of the third exhausting gas aperture 262. At this point, the combustion gasses that have been propelled out of exhaust pipe 202 pass into the expansion chamber 234b where at least a portion of the combustion gasses exit through first and second inlets 243, 253 and travel down the first and second conduits 244, 254 into the first and second vortex diodes 220a, 220b, respectively. The combustion gasses that reach the first vortex diode 120a are introduced to the vortex chamber 222a tangentially to the circular peripheral wall 224a. As such, a first vortex 248 is induced, thereby delaying the escape of the combustion gasses from the muffler 210b by way of the discharge opening 218. Similarly, the combustion gasses that reach the second vortex chamber 222b are introduced tangentially to the circular peripheral wall 224b through nozzle 228b, thereby forming a second vortex 258. Thus, the escape of the combustion gasses through the first exhausting gas aperture 242, and ultimately to the atmosphere, is delayed. Note, embodiments of the muffler 210b are envisioned wherein the conduits pass through the various partitions to their respective vortex diodes rather than being external to the outer housing 232. Additional internal helical baffles (not shown) can optionally be added to the proximal and distal ends of each vortex chamber to initiate swirl to the expanding gasses prior to any additional circulation being induced by the nozzles. These baffles could be configured similar to turbine blade shapes that redirect the expanding fluids in the same direction of the induced swirl of the vortex diode.
Another embodiment of a muffler 210c is depicted in
The muffler 210c functions under the vortex diode flow principles previously described to reduce the amplitude of the sound of engine combustion in a vehicle exhaust system. In the embodiment shown, a vortex diode 220d includes a vortex chamber 222d formed by the cylindrical volume of the muffler 210c, a circular peripheral wall 224d formed by the inner surface of the outer housing 232, and a vent as formed by the discharge opening 218. The function of a nozzle is performed by the helically-shaped baffle 270. As an exhausting gas exits the pipe 202 of the vehicle exhaust system, the combustion gasses enter the vortex chamber 222d of the vortex diode 220d, where they encounter the helically-shaped baffle 270. Preferably, the helically-shaped baffle 270 includes an outer edge 272 that is in contact with the circular peripheral wall 224d and an inner edge 274 which is adjacent the exhausting gas path 219.
Preferably, the inner edge 274 has an edge extension 274a that extends slightly in the direction toward the proximal end 212, whereby the edge extension 274a helps capture the expanding gasses and force containment and circulation outward along the helical baffle 270. As the combustion gasses encounter the helically-shaped baffle 270, an angular acceleration is imparted on the combustion gasses, causing the gasses to flow outwardly toward the circular peripheral wall 224d. As such, as the combustion gasses travel the length of the vortex chamber 222d, a vortex is induced, as shown by the flow arrows. Therefore, the helically-shaped baffle 270 has performed the function of a nozzle 228 (
Preferably, an inner cylindrical wall 230 of the first stage 210e extends from the entry opening 214 to a third exhausting gas aperture 262 formed in a third partition 260 of the second stage 210f. An outer housing 232a is disposed about the inner cylindrical wall 230, thereby forming an expansion chamber 234a.
Preferably, the first stage 210e includes a plurality of vortex diodes 220 disposed on the inner cylindrical wall 230 (
Preferably one or more vortex diodes 220 are disposed within the first stage 210e such that the vortex chamber 222 is in fluid communication with the exhausting gas path 219 by way of the vent 226 and the expansion chamber 234a by way of the nozzle 228. Therefore, during the high-pressure pulsations passing through the vehicle exhaust system, combustion gasses will be allowed to freely expand into the expansion chamber 234a by flowing through the vent 226, through the vortex chamber 222, and out the nozzle 228, as previously discussed with regard to
Preferably, the second stage 210f of the muffler 210d includes a cylindrical outer housing 232 extending from the third partition 260 to the second wall 217, a first axially-disposed vortex diode 220a, a second axially-disposed vortex diode 220b, and a third axially-disposed vortex diode 220c. Note, embodiments of the muffler 210d are envisioned that include as few as one axially-disposed vortex diode 220a-c, as well as numbers of vortex axially-disposed diodes 220a-c greater than that shown. For ease of description, only the operation of first axially-disposed vortex diode 220a and second vortex diode 220b will be discussed.
As shown, the first axially-disposed vortex diode 220a includes a vortex chamber 222a formed by the second wall 217, a first partition 240 and a circular peripheral wall 224a. Preferably, the circular peripheral wall 224a is the inner surface of the outer housing 232. The first vortex diode 220a also includes at least one nozzle 228a configured to introduce combustion gasses tangentially to the circular peripheral wall 224a, and a vent, the function of which is performed by the discharge opening 218 of the second wall 217. Similarly, the second vortex diode 220b is formed between the first partition 240 and a second partition 250, and includes a circular peripheral wall 224b and at least one nozzle 228b for introducing combustion gasses tangential to the circular peripheral wall 224b. Note, the dimensions of the various vortex chambers do not need to be uniform with respect to other vortex chambers within the same muffler.
A first exhausting gas aperture 242 formed in the first partition 240 functions as the vent for the second vortex diode 220b. A third vortex diode 220c is similarly formed between a third partition 260 and the second partition 250. The first exhausting gas aperture 242, the second exhausting gas aperture 252, and a third exhausting gas aperture 262 formed in the third partition 260 are all disposed along and about the exhausting gas path 219. The inside diameters of exhausting gas apertures 242, 252, and 262 will ensure the exhausting gas travels through the apertures without excess restriction, but with minimal dimension to improve the effectiveness of the muffler 210b. By way of an example, the inner diameters of apertures 242, 252, and 262 can be equivalent to the inner diameter of distal end 218.
Control ports 235 bleed a portion of high pressure air from the expansion chamber 234a to a volume formed between the outer housing 232a and a second housing 233. As indicated by the flow arrows, combustion gasses are allowed to flow from the expansion chamber 234a to the axially-disposed vortex diodes 220a-c by way of the volume and the nozzles 228a-c.
The pulsating high-pressure combustion gasses that reach the first vortex diode 220a are introduced to the vortex chamber 222a tangentially to the circular peripheral wall 224a. As discussed in regard to
As the combustion gasses 206 leave the muffler 210d the higher pressure combustion gasses remaining in the expansion chamber 234a will flow to the lower pressure region along the flight path by flowing through the vortex diodes 220 of the first stage 210e. Each vortex diode 220 now slows the depressurization of the expansion chamber 234a by inducing a vortex, represented by flow arrows 236, on the combustion gasses as they flow first through the nozzle 228, tangentially about the vortex chamber 222, and eventually to the atmosphere through the vent 226 and then the discharge opening 218. As such, each vortex diode 220 not only aids in reducing the peak pressure of the combustion gasses released to atmosphere, but also delays the depressurization of the expansion chamber 234a, thereby reducing the pressure variation at the distal end 216 of the muffler due to the fuel combustion cycle discharging combustion gasses into vehicle exhaust system 202.
It should be recognized a muffler 210 can incorporate a plurality of mufflers 210a arranged in both series and parallel within one housing increasing the effectiveness of the noise abatement.
Note, although the mufflers that have been disclosed are for use in reducing the noise of a vehicle exhaust system, similar devices operating on similar principles can be used to quiet exhausting of high pressure fluids (gasses, liquids, gas/liquid combinations, etc.) in industrial equipment, generators, and other manufacturing equipment to include high pressure fluids containing particulate matter in suspension or solution.
The foregoing description has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the present disclosure to the precise forms disclosed. Modifications and/or variations are possible in light of the above teachings. The embodiments discussed, however, were chosen and described to illustrate the principles of the present disclosure and its practical application to thereby enable one of ordinary skill in the art to utilize the present disclosure and various embodiments and with various modifications as are suited to the particular use contemplated. All such modifications and/or variations are within the scope of the present disclosure as determined by the appended claims when interpreted in accordance with the breadth to which they are fairly and legally entitled.
This patent application is a continuation-in-part of U.S. patent application Ser. No. 11/009,855, filed on 10 Dec. 2004, the contents of which are incorporated herein by reference.
The invention described herein may be manufactured, used, and licensed by or for the United States Government.
| Number | Date | Country | |
|---|---|---|---|
| Parent | 11009855 | Dec 2004 | US |
| Child | 11790053 | Apr 2007 | US |