Claims
- 1. An exhaust processor having a tuning frequency for abatement of acoustic waves at the tuning frequency, the exhaust processor comprising:
a housing defining an aperture, an exhaust tube extending through the aperture into the housing and defining an exhaust tube opening positioned inside the housing for communication of acoustic waves between the housing and the exhaust tube, and a cover mounted for rotation at least partially around the exhaust tube over the exhaust tube opening to adjust the tuning frequency of the exhaust processor.
- 2. The exhaust processor of claim 1, wherein the cover comprises a sleeve that surrounds the exhaust tube in coaxial relation therewith and defines a sleeve opening to uncover at least a portion of the exhaust tube opening upon rotation of the sleeve.
- 3. The exhaust processor of claim 2, wherein the exhaust tube opening comprises a plurality of perforations, and the sleeve opening uncovers a first number of the perforations to establish the tuning frequency of the exhaust processor at a first tuning frequency upon rotation of the sleeve to a first position and uncovers a second number of the perforations to establish the tuning frequency of the exhaust processor at a second tuning frequency upon rotation of the sleeve to a second position.
- 4. The exhaust processor of claim 1, further comprising a bearing positioned between the cover and the exhaust tube.
- 5. The exhaust processor of claim 1, further comprising a rotator to rotate the cover.
- 6. The exhaust processor of claim 5, wherein the rotator comprises (i) a motor comprising a drive shaft and (ii) a linkage secured to the drive shaft and the cover.
- 7. The exhaust processor of claim 1, wherein the housing defines a second aperture through which the exhaust tube extends out of the housing.
- 8. An exhaust processor having a tuning frequency for abatement of acoustic waves at the tuning frequency, the exhaust processor comprising:
an exhaust tube defining perforations for passage of acoustic waves therethrough, and a cover mounted for rotation at least partially around the exhaust tube over a number of the perforations to adjust the tuning frequency of the exhaust processor.
- 9. The exhaust processor of claim 8, wherein the cover comprises a sleeve that surrounds the exhaust tube in coaxial relation therewith and defines a sleeve opening that uncovers a first number of the perforations to establish the tuning frequency of the exhaust processor at a first tuning frequency upon rotation of the sleeve to a first position and uncovers a second number of the perforations to establish the tuning frequency of the exhaust processor at a second tuning frequency upon rotation of the sleeve to a second position.
- 10. The exhaust processor of claim 9, further comprising a rotator secured to the sleeve to rotate the sleeve between the first and second positions.
- 11. The exhaust processor of claim 10, wherein the rotator comprises (i) a motor comprising a drive shaft and (ii) a linkage secured to the drive shaft and the cover.
- 12. The exhaust processor of claim 8, further comprising a rotator to rotate the cover.
- 13. The exhaust processor of claim 8, further comprising a bearing positioned between the cover and the exhaust tube.
- 14. A method of operating an exhaust processor having a tuning frequency for abatement of acoustic waves at the tuning frequency, the method comprising the step of:
rotating a cover at least partially around an exhaust tube over a number of perforations defined by the exhaust tube to adjust the tuning frequency of the exhaust processor.
- 15. The method of claim 14, wherein the rotating step comprises rotating the cover from a first position in which the cover covers a first number of the perforations to establish the tuning frequency of the exhaust processor at a first tuning frequency to a second position in which the cover covers a second number of the perforations to establish the tuning frequency of the exhaust processor at a second tuning frequency.
- 16. The method of claim 14, wherein the cover comprises a sleeve that surrounds the exhaust tube in coaxial relation therewith and defines a sleeve opening, and the rotating step comprises rotating the sleeve at least partially around the exhaust tube to place the sleeve opening over a number of the perforations to adjust the tuning frequency of the exhaust processor.
- 17. The method of claim 16, wherein the step of rotating the sleeve comprises rotating the sleeve from a first position in which sleeve opening is placed over a first number of the perforations to establish the tuning frequency of the exhaust processor at a first tuning frequency to a second position in which the sleeve opening is placed over a second number of the perforations to establish the tuning frequency of the exhaust processor at a second tuning frequency.
- 18. The method of claim 14, wherein the rotating step comprises rotating the cover on a bearing positioned between the cover and the exhaust tube.
- 19. The method of claim 14, wherein the rotating step comprises the steps of operating a motor and moving a linkage secured to the motor and the cover to rotate the cover upon operation of the motor.
- 20. The method of claim 14, further comprising the step of advancing combustion product through the exhaust tube during the rotating step.
Parent Case Info
[0001] This disclosure is a continuation-in-part of U.S. application Ser. No. 10/068,693 which was filed Feb. 6, 2002 and is hereby incorporated by reference herein.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10068693 |
Feb 2002 |
US |
Child |
10359913 |
Feb 2003 |
US |