Claims
- 1. A fluid flow system comprising:
a fluid flow conduit; a noise source disposed in said fluid flow conduit such that ultrasonic noise generated by said noise source propagates in said fluid flow conduit; and an ultrasonic noise filter apparatus disposed in said fluid flow conduit, said noise filter apparatus including a first noise filter and a second noise filter; wherein said first noise filter includes an absorbent element constructed to attenuate ultrasonic noise propagating from said noise source in the direction of said first and second noise filters; and wherein said second noise filter is disposed in said fluid flow conduit between said first noise filter and said noise source and includes a deflector element positioned to deflect ultrasonic noise propagating from said noise source before the noise source passes to said first noise filter.
- 2. The fluid flow system of claim 1, wherein said deflector element is acoustically positioned in said fluid flow conduit so as to provide the sole direct line of sight acoustic obstruction between said noise source and said first and second noise filters.
- 3. The fluid flow system of claim 2, wherein said second noise filter includes a plurality of said deflector elements, said deflector element having a configuration defining a flow path with an entrance and an exit, and wherein said entrance and said exit are offset to eliminate direct line of sight therebetween.
- 4. The fluid flow system of claim 1, wherein said second noise filter includes a plurality of said deflector elements, said deflector elements having a configuration defining a flow path with an entrance and an exit, wherein said entrance and said exit are offset to eliminate direct line of sight therebetween and wherein said deflector elements are positioned such that, in a plurality of deflector elements, each deflector element rotated in one direction is positioned adjacent a deflector element rotated in a counter direction.
- 5. The fluid flow system of claim 1, further comprising:
an ultrasonic device operable at ultrasonic frequencies, said ultrasonic device being disposed in said fluid flow conduit such that said first and second noise filters are positioned intermediate said ultrasonic device and said noise source.
- 6. The fluid flow system of claim 5, wherein said second noise filter is acoustically positioned in said fluid flow conduit so as to provide the sole direct line of sight obstruction between said noise source and said ultrasonic device.
- 7. The fluid flow system of claim 5, wherein said noise source is a control valve and said ultrasonic device is an ultrasonic meter.
- 8. The fluid flow system of claim 7, wherein said meter, said noise filter apparatus, and said control valve define a substantially straight flow stream thereacross.
- 9. The fluid flow system of claim 1, wherein said deflector element is configured to convert directly propagating noise to indirectly propagating noise.
- 10. The fluid flow system of claim 1, wherein said absorbent element includes an absorbent material configured to convert ultrasonic acoustic motion to vibration, thereby attenuating ultrasonic noise.
- 11. The fluid flow system of claim 10, wherein said fluid flow conduit defines a fluid flow stream and wherein said absorbent material is disposed in generally parallel relation with said flow stream.
- 12. The fluid flow system of claim 11, wherein said absorbent material includes suspended, vibratable members of said absorbent material positioned into said flow stream.
- 13. The fluid flow system of claim 10, wherein said absorbent material is a fibrous material.
- 14. The fluid flow system of claim 10, wherein said absorbent element includes lateral sections formed by spirally wound layers of said absorbent material.
- 15. The fluid flow system of claim 14, wherein said fluid flow conduit defines a fluid flow stream and wherein said lateral sections overlap to form protrusions into said flow stream.
- 16. The fluid flow system of claim 14, wherein said lateral sections include pairs of said spirally wound layers of absorbent material that are adjacent one another and disposed in opposite spiral wound relation.
- 17. The fluid flow system of claim 10, wherein said absorbent material is polyester.
- 18. The fluid flow system of claim 1, wherein said first noise filter includes a plurality of channels each defining a flow path, and an absorbent wall surface positioned in generally parallel relation with said flow path and whereon absorbent material of said absorbent element is disposed.
- 19. The fluid flow system of claim 18, wherein said first noise filter includes a longitudinal centerline and a plurality of outside channels positioned radially equidistant from said longitudinal centerline.
- 20. The fluid flow system of claim 19, wherein said first noise filter includes an inside channel positioned about said longitudinal centerline, said inside channel having an inside surface whereon said absorbent material is disposed.
- 21. The fluid flow system of claim 19, wherein said outside channels include an absorbent wall surface whereon said absorbent material is disposed and an oppositely facing exposed surface free of said absorbent material, said absorbent and exposed wall surfaces defining a maximum gap therebetween.
- 22. The fluid flow system of claim 21, wherein said outside channel includes an entrance, said entrance including a lip positioned acoustically upstream of and adjacent said absorbent wall surface, such that a maximum gap between said lip and said exposed surface is less than said maximum gap between said absorbent wall surface and said exposed wall surface, and wherein said lip is adapted to generate turbulent flow immediately downstream thereof.
- 23. An ultrasonic acoustic noise filter for incorporation into a fluid flow conduit and for attenuating ultrasonic noise propagating in the fluid flow conduit, said noise filter comprising:
a flow entrance; a flow exit; a plurality of channels extending between said flow entrance and said flow exit, each said channel defining a flow path between said entrance and said exit; and an absorbent element supported within one or more of said channels, said absorbent element including an absorbent material configured to absorb indirect ultrasonic noise propagating in said flow path, said absorbent material being disposed in generally parallel relation with said flow path.
- 24. The noise filter of claim 23, wherein said flow path defines a direct acoustic line of sight therethrough.
- 25. The noise filter of claim 23, wherein said absorbent element is configured to attenuate ultrasonic noise by at least about 20 dB.
- 26. The noise filter of claim 23, wherein said absorbent material includes protrusions adapted to effect turbulence in said flow path.
- 27. The noise filter of claim 23, wherein said absorbent material is configured to absorb indirect ultrasonic noise in said flow path and convert indirect ultrasonic noise to vibration.
- 28. The noise filter of claim 23, wherein said absorbent material includes a fibrous absorbent material.
- 29. The noise filter of claim 23, wherein said absorbent element includes lateral sections formed by spirally wound layers of said absorbent material.
- 30. The noise filter of claim 23, wherein said lateral sections overlap to form protrusions into the flow stream.
- 31. The noise filter of claim 30, wherein said lateral sections include pairs of spirally wound layers of said absorbent material that are adjacent one another and disposed in opposite spiral wound relation.
- 32. The noise filter of claim 23, wherein said absorbent material is polyester.
- 33. The noise filter of claim 23, wherein said plurality of channels includes a group of outside channels positioned radially equidistant from a common longitudinal centerline.
- 34. The noise filter of claim 33, wherein said plurality of channels includes an inside channel positioned about said common longitudinal centerline, said inside channel having an inside radial surface whereon said absorbent material is disposed.
- 35. The noise filter of claim 33, wherein said outside channels include an absorbent wall surface whereon said absorbent material is disposed and an oppositely facing surface free of said absorbent material.
- 36. The noise filter of claim 35, wherein said outside channel includes a channel entrance, said channel entrance including a lip positioned upstream of and adjacent said absorbent wall surface, said lip being adapted to effect fluid flow turbulence downstream of said channel entrance.
- 37. The noise filter of claim 35, wherein one or more of said channels includes a brace for compressably supporting said absorbent material, said brace extending generally longitudinally in parallel relation with said flow path.
- 38. The noise filter of claim 23, wherein said noise filter has an upstream face characterized by a porosity of between about 40% and about 70%.
- 39. An ultrasonic noise filter for incorporation into a fluid flow conduit and for attenuating ultrasonic noise propagating in the fluid flow conduit, said noise filter comprising:
a flow entrance; a flow exit; said flow entrance and said flow exit defining a flow path extending therebetween, said flow path having a longitudinal centerline; and an absorbent element disposed in said flow path, said absorbent element including lateral sections of absorbent material configured to absorb indirect noise propagating in said flow path, said lateral sections being disposed generally parallel with said flow path and formed by spirally wound layers of said absorbent material.
- 40. The noise filter of claim 39, wherein said lateral sections overlap to form protrusions into the flow path, said protrusions being adapted to effect turbulent fluid flow in the flow path.
- 41. The noise filter of claim 39, further comprising a plurality of channels defining said flow path, each said channel including said lateral sections of said absorbent material disposed in generally parallel relation with a longitudinal centerline of said channel.
- 42. The noise filter of claim 41, wherein said plurality of channels includes a plurality of outside channels positioned radially equidistant from a longitudinal centerline of said noise filter, and an inside channel positioned about said common longitudinal centerline.
- 43. The noise filter of claim 41, wherein said absorbent element includes each of said lateral sections of absorbent material disposed in said channels, said absorbent element being configured to attenuate ultrasonic noise by at least about 20 dB.
- 44. The noise filter of claim 39, wherein said absorbent material includes protrusions adapted to effect turbulence in said flow path.
- 45. The noise filter of claim 39, wherein said absorbent material is configured to absorb indirect ultrasonic noise in said flow path by converting the indirect ultrasonic noise to vibration.
- 46. The noise filter of claim 39, wherein said absorbent material is a fibrous absorbent material.
- 47. The noise filter of claim 39, wherein said absorbent material is polyester.
- 48. An ultrasonic noise filter for incorporation into a fluid flow conduit and for attenuating ultrasonic noise propagating in the fluid flow conduit, said noise filter comprising:
a flow entrance; a flow exit, wherein said flow entrance and said flow exit define a flow path extending therebetween; and at least one channel disposed between said flow entrance and said flow exit; and an absorbent element supported within said channel, said absorbent element including an absorbent material for absorbing indirect ultrasonic noise propagating in said channel by converting the indirect noise to vibration; wherein said absorbent material is a fibrous polyester material.
- 49. The noise filter of claim 48, wherein said absorbent element includes lateral sections of said absorbent material is disposed generally parallel with said flow path, said lateral sections being formed by spirally wound layers of said absorbent material.
- 50. The noise filter of claim 48, wherein said lateral sections include pairs of layers of said absorbent material, said pairs being adjacent one another and disposed in relatively opposite spirally wound relation.
- 51. The noise filter of claim 48, wherein said absorbent material includes protrusions adapted to effect turbulence in said flow path.
- 52. The noise filter of claim 48, further comprising:
a plurality of channels, each of said channels including said lateral sections of said absorbent material disposed in generally parallel relation with said flow path, and wherein said flow path is a multi-path flow path defined by said channels, said flow entrance, and said flow exit.
- 53. A method of attenuating ultrasonic acoustic noise in a fluid flow system between a noise source and a reference point, wherein the reference point and the noise source are disposed in fluid communication such that absent any flow obstruction therebetween, the noise source and the reference point would be positioned in direct line of sight acoustic relation, and such that noise generated by the noise source propagates between the noise source and the reference point through a fluid flow path defined therethrough, said method comprising the steps of:
eliminating a direct acoustic line of sight between the noise source and the reference point; positioning an absorbent material in the flow path and in generally parallel relation therewith; and during flow conditions, utilizing the absorbent material to absorb indirect noise propagating through the flow path and converting the absorbed indirect noise to vibration.
- 54. The method of claim 53, wherein said step of eliminating the direct line of sight is performed acoustically upstream of the point where the step of absorbing is performed.
- 55. The method of claim 53, wherein said step of absorbing indirect noise includes attenuating ultrasonic noise by an amount between about 20 dB and 40 dB.
- 56. The method of claim 53, wherein said step of eliminating the direct line of sight includes positioning a deflector element in the flow path to deflect direct noise.
- 57. The method of claim 56, wherein said step of eliminating direct line of sight, includes providing a plurality of flow channels having an upstream entrance and a downstream exit, and positioning said downstream exit in offset with the upstream entrance so as to eliminate a direct acoustic line of sight therebetween.
- 58. The method of claim 57, wherein said step of deflecting direct noise, includes providing a plurality of flow through channels, and positioning the channels such that, in a group of flow channels, each of the channels rotatably positioned in one direction is adjacent a second flow through channels rotatably positioned in a counter-direction, so as to effect turbulent flow downstream of their respective exits.
- 59. The method of claim 53, wherein said step of absorbing indirect noise, includes providing an absorbent material with an absorbent surface positioned generally parallel relative to the flow path.
- 60. The method of claim 53, wherein said step of absorbing indirect noise, includes providing a flow through device having a plurality of flow channels therethrough, each flow channel defining an individual flow path and an inside surface supporting the absorbent material.
- 61. The method of claim 60, further comprising the step of providing a dam at an entrance of each of said flow channels.
- 62. The method of claim 60, wherein said step of providing the plurality of flow channels, includes providing a flow through device having the channels, the flow channels partially defining a front cross-section of the flow device characterized by a porosity of between about 44% to about 64%.
- 63. A method of attenuating ultrasonic noise in a fluid flow stream, said method comprising the steps:
providing an absorbent element formed by an absorbent, fibrous polyester material, the absorbent material including an absorbent surface positioned in generally parallel relation with the flow stream; and absorbing indirect ultrasonic noise contacting the absorbent surface by converting the indirect noise energy into vibration of the polyester material, thereby attenuating the ultrasonic noise.
- 64. The method of claim 63, further comprising the step of dividing the flow stream into multiple flow paths, each flow path being accommodated by a channel having absorbent material supported therein.
- 65. The method of claim 63, further comprising the step of deflecting the ultrasonic noise to convert direct noise to indirect noise prior to the absorbing step.
Parent Case Info
[0001] The present invention claims the benefit of the filing date of U.S. Provisional Application Serial No. 60/411,572 filed Sep. 18, 2002 (now pending). The above Provisional Application is hereby incorporated by reference for all purposes and made a part of the present disclosure.
Provisional Applications (1)
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Number |
Date |
Country |
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60411572 |
Sep 2002 |
US |