Claims
- 1. A method for treating a selected constituent in a mixture that includes the selected constituent, the method comprising:
directing a continuous flow of the mixture with the selected constituent into a treatment apparatus; and altering a phase and/or a chemical composition of the selected constituent by exposing the mixture to ultrasonic energy while the mixture flows through the apparatus.
- 2. The method of claim 1, further comprising:
directing the mixture flow into a first channel; transmitting ultrasonic energy to the mixture flow from a first ultrasonic energy generator while the mixture flow passes through the first channel; directing the mixture flow into a second channel directly from the first channel; and transmitting ultrasonic energy to the mixture flow from a second ultrasonic energy generator while the mixture flow passes through the second channel.
- 3. The method of claim 1, further comprising:
directing the mixture flow into a first channel; transmitting ultrasonic energy to the mixture flow from a first ultrasonic energy generator at a first frequency while the mixture flow passes through the first channel; directing the mixture flow into a second channel; and transmitting ultrasonic energy to the mixture flow from a second ultrasonic energy generator at a second frequency different than the first frequency while the mixture flow passes through the second channel.
- 4. The method of claim 1 wherein directing ultrasonic energy through the continuous flow includes cavitating a liquid portion of the mixture to generate heat, and wherein altering a chemical composition of the selected constituent includes oxidizing the selected constituent to produce an ash and a gas.
- 5. The method of claim 1 wherein directing ultrasonic energy through the continuous flow includes cavitating a liquid portion of the mixture to generate heat, and wherein the method further includes killing pathogens in the mixture by exposing the pathogens to the heat.
- 6. The method of claim 1 wherein directing ultrasonic energy through the continuous flow includes cavitating a liquid portion of the mixture.
- 7. The method of claim 1 wherein the mixture flow initially includes suspended solids, and wherein the method further comprises removing at least a portion of the suspended solids before exposing the mixture flow to ultrasonic energy.
- 8. The method of claim 1, further comprising:
directing the mixture flow into a first channel; transmitting ultrasonic energy to the mixture flow from a first ultrasonic energy generator while the mixture flow passes through the first channel; redirecting the mixture at least approximately 180 degrees into a second channel; and transmitting ultrasonic energy to the mixture flow from a second ultrasonic energy generator while the mixture flow passes through the second channel.
- 9. The method of claim 1, further comprising directing the mixture flow into a plurality of channels having an overall length corresponding to a level of suspended solids in the mixture.
- 10. The method of claim 1, further comprising removing at least a portion of the selected constituent from the mixture flow after exposing the selected constituent to the ultrasonic energy and while the mixture flow passes continuously through the apparatus.
- 11. The method of claim 1 wherein the ultrasonic energy includes a first ultrasonic energy having a first frequency, and wherein the method further comprises exposing the selected constituent to a second ultrasonic energy having a second frequency different than the first frequency.
- 12. The method of claim 1 wherein the ultrasonic energy includes a first ultrasonic energy having a first frequency, and wherein the method further comprises exposing the selected constituent to a second ultrasonic energy having a second frequency different than the first frequency after exposing the selected constituent to the first frequency.
- 13. The method of claim 1, further comprising dividing the continuous flow into first and second portions, conveying the first and second portions along separate flow paths and exposing the selected constituent in the first portion of the flow to ultrasonic energy while simultaneously exposing the selected constituent in the second portion of the flow to ultrasonic energy.
- 14. The method of claim 1, further comprising pressurizing the mixture and altering the phase and/or chemical composition of the selected constituent while the mixture flow is pressurized.
- 15. The method of claim 1 wherein a molecular structure of a component of the mixture flow has a resonant frequency, and wherein the method further comprises selecting a frequency of the ultrasonic energy based on the resonant frequency of the component of the mixture flow.
- 16. The method of claim 1 wherein a molecular structure of a component of the mixture flow has a resonant frequency, and wherein the method further comprises selecting a frequency of the ultrasonic energy to be at or above the resonant frequency of the component.
- 17. The method of claim 1 wherein the mixture flow includes water, and wherein the method further includes separating an OH radical from a molecule of the water and combining the OH radical with a molecule of the selected constituent.
- 18. The method of claim 1 wherein altering a phase of the selected constituent includes changing the phase of the selected constituent from a solid to a gas.
- 19. The method of claim 1, further comprising introducing an oxygen radical into the mixture flow before exposing the selected constituent to the ultrasonic energy.
- 20. The method of claim 1, further comprising introducing ozone into the mixture flow before exposing the selected constituent to ultrasonic energy.
- 21. The method of claim 1 wherein the selected constituent includes an emulsifier and further wherein altering a phase and/or chemical composition of the selected constituent includes deactivating the emulsifier.
- 22. A method for removing contaminants from water, comprising:
introducing a continuous flow of a mixture of the water and the contaminants into a treatment apparatus; introducing ultrasonic energy into the mixture as the mixture flows continuously through the treatment apparatus to alter a molecular composition of at least one of the contaminants and generate a gas; and applying a vacuum to the mixture to remove at least some of the gas from the mixture as the mixture flows through the treatment apparatus.
- 23. The method of claim 22 wherein the ultrasonic energy is a first ultrasonic energy and wherein the method further comprises introducing a second ultrasonic energy to the mixture.
- 24. The method of claim 22, further comprising filtering solid materials from the mixture after applying a vacuum to the mixture.
- 25. The method of claim 22, further comprising pressurizing the mixture and introducing ultrasonic energy into the mixture while the mixture flows under pressure.
- 26. The method of claim 22, further comprising:
directing the mixture into a first channel; transmitting ultrasonic energy to the mixture from a first ultrasonic energy generator while the mixture flows through the first channel; directing the mixture into a second channel; and transmitting ultrasonic energy to the mixture from a second ultrasonic energy generator while the mixture flows through the second channel.
- 27. The method of claim 22, further comprising directing the mixture into a channel having a length corresponding to a level of suspended solids in the mixture.
- 28. The method of claim 22, further comprising removing at least a portion of the contaminants from the mixture after exposing the contaminants to the ultrasonic energy and while the mixture flows continuously through the apparatus.
- 29. The method of claim 22 wherein the ultrasonic energy includes a first ultrasonic energy having a first frequency, and wherein the method further comprises exposing the contaminants to a second ultrasonic energy having a second frequency different than the first frequency.
- 30. The method of claim 22 wherein the ultrasonic energy includes a first ultrasonic energy having a first frequency, and wherein the method further comprises exposing the contaminants to a second ultrasonic energy having a second frequency different than the first frequency after exposing the contaminants to the first frequency.
- 31. The method of claim 22 wherein a molecular structure of a component of the mixture has a resonant frequency, and wherein the method further comprises selecting a frequency of the ultrasonic energy to be at or above the resonant frequency of the component of the mixture.
- 32. The method of claim 22, further comprising introducing ozone into the mixture before exposing the contaminants to ultrasonic energy.
- 33. A method for removing contaminants from water, comprising:
introducing a continuous flow of a mixture of the water and the contaminants into a treatment apparatus; pressurizing the mixture; disrupting a molecular structure of the contaminants through transient cavitation by introducing ultrasonic energy into the mixture as the mixture flows through the vessel under pressure; producing a gas from chemical interactions between the contaminants and constituents of the water; and applying a vacuum to the mixture to remove at least some of the gas from the mixture as the mixture flows through the treatment apparatus.
- 34. The method of claim 33 wherein introducing the ultrasonic energy includes introducing a first ultrasonic energy having a first frequency and introducing a second ultrasonic energy having a second frequency different than the first frequency.
- 35. The method of claim 33 wherein the contaminants include farm animal fecal waste, and wherein introducing ultrasonic energy includes directing ultrasonic energy having a frequency of 980 kilohertz.
- 36. A method for treating a selected constituent in a mixture that includes the selected constituent, the method comprising:
introducing the mixture into a treatment apparatus; directing first ultrasonic energy at a first frequency into the mixture to alter a phase and/or a chemical composition of the selected constituent; and directing second ultrasonic energy at a second frequency into the mixture, the second frequency being different than the first frequency.
- 37. The method of claim 36 wherein the apparatus includes a first ultrasonic emitter directing the first ultrasonic energy into the mixture and a second ultrasonic emitter directing the second ultrasonic energy into the mixture, the second ultrasonic emitter being spaced apart from the first ultrasonic emitter, and wherein the method further comprises:
directing the mixture from the first ultrasonic emitter to the second ultrasonic emitter; and exposing a portion of the mixture to the second ultrasonic energy after exposing the portion of the mixture to the first ultrasonic energy .
- 38. The method of claim 36, further comprising exposing a portion of the mixture to the first ultrasonic energy simultaneously with exposing the portion of the mixture to the second ultrasonic energy.
- 39. The method of claim 36 wherein the first and second ultrasonic energies are directed into the mixture while the mixture flows continuously through the apparatus.
- 40. The method of claim 36, further comprising removing at least a portion of the selected constituent from the mixture after exposing the selected constituent to the first and second ultrasonic energies and while the mixture flows continuously through the apparatus.
- 41. The method of claim 36 wherein the selected constituent is a first selected constituent having a first molecular structure and the mixture includes a second selected constituent having a second molecular structure different than the first molecular structure, and wherein the method further comprises altering a phase and/or a chemical composition of the second selected constituent with the second ultrasonic energy.
- 42. The method of claim 36, further comprising:
directing the mixture into a first channel; transmitting ultrasonic energy to the mixture at the first frequency while the mixture flows through the first channel; directing the mixture into a second channel; and transmitting ultrasonic energy to the mixture at the second frequency while the mixture flows through the second channel.
- 43. The method of claim 36, further comprising directing the mixture into a channel having a length corresponding to an amount of solid material suspended in the mixture.
- 44. The method of claim 36, further comprising pressurizing the mixture and altering the phase and/or a chemical composition of the selected constituent while the mixture is pressurized.
- 45. A method for treating a selected constituent in a mixture that includes the selected constituent, the method comprising:
introducing the mixture into a treatment apparatus; pressurizing the mixture within the treatment apparatus; and altering a phase and/or a chemical composition of the selected constituent by exposing the mixture to ultrasonic energy while the mixture is under pressure.
- 46. The method of claim 45 wherein the mixture includes a liquid and exposing the mixture to ultrasonic energy includes cavitating a portion of the liquid in the mixture while the mixture is under a pressure of from about 5 psi to about 40 psi.
- 47. The method of claim 45 wherein introducing the mixture includes providing a first continuous flow of the mixture through an entrance port of the apparatus, and wherein the method further includes withdrawing a second continuous flow of the mixture through an exit port of the apparatus and exposing the mixture to the ultrasonic energy while the mixture flows from the entrance port to the exit port.
- 48. The method of claim 45 wherein the ultrasonic energy is a first ultrasonic energy having a first frequency and wherein the method further includes exposing the selected constituent to a second ultrasonic energy having a second frequency different than the first frequency.
- 49. The method of claim 45 wherein the mixture includes water and wherein the method further comprises:
generating a gas by a chemical interaction between the selected constituent and constituents of water while the mixture is under pressure; and removing the gas from the mixture by reducing the pressure to which the mixture is subjected.
- 50. A method for separating oil from a mixture containing oil, water and an emulsifier, the method comprising:
introducing the mixture into a treatment apparatus; altering a phase and/or a chemical composition of the emulsifier by exposing the mixture to ultrasonic energy while the mixture is in the apparatus; separating at least one of the water, the oil and the emulsifier from the mixture, and removing the mixture from the apparatus.
- 51. The method of claim 50 wherein introducing the mixture into the treatment apparatus includes introducing a continuous flow of the mixture into the treatment apparatus.
- 52. The method of claim 50 wherein exposing the mixture to ultrasonic energy includes cavitating a liquid portion of the mixture.
- 53. The method of claim 50 wherein the ultrasonic energy is a first ultrasonic energy having a first frequency and wherein the method further comprises exposing the mixture to a second ultrasonic energy having a second frequency different than the first frequency.
- 54. A method for treating a selected constituent in a mixture that includes the selected constituent, the method comprising:
directing a continuous flow of the mixture with the selected constituent into a treatment apparatus; and altering a phase and/or a chemical composition of the selected constituent by directing ultrasonic energy through the continuous flow of the mixture within the apparatus.
- 55. An apparatus for treating a selected constituent in a mixture that includes the selected constituent, the apparatus comprising:
a vessel having an entrance port and an exit port, the entrance port being configured to receive a first continuous flow of the mixture during operation, the exit port being configured to simultaneously expel a second continuous flow of the mixture; and an ultrasonic energy source operatively coupled to the vessel to continuously transmit ultrasonic energy to the mixture at an energy level and frequency sufficient to gasify and/or alter a chemical composition of the selected constituent as the mixture flows continuously through the vessel from the entrance port to the exit port during operation.
- 56. The apparatus of claim 55 wherein the source of ultrasonic energy is a first source configured to emit ultrasonic energy at a first frequency and wherein the apparatus further comprises a second source of ultrasonic energy operatively coupled to the vessel to transmit ultrasonic energy to the mixture at a second frequency different than the first frequency.
- 57. The apparatus of claim 56 wherein the selected constituent of the mixture is a first selected constituent and the mixture includes a second selected constituent, and further wherein the second source of ultrasonic energy is selected to gasify and/or alter a chemical composition of the second selected constituent.
- 58. The apparatus of claim 55, further comprising a pressure source in fluid communication with the vessel to pressurize the mixture as the mixture moves from the entrance port to the exit port.
- 59. The apparatus of claim 55, further comprising:
a degassing chamber coupled to the exit port of the vessel; a vacuum source coupled to the degassing chamber to draw gas from the mixture; and a valve between the degassing chamber and the vessel to maintain a first pressure in the vessel higher than a second pressure in the degassing chamber.
- 60. The apparatus of claim 55 wherein the source of ultrasonic energy is a first source, and wherein the apparatus further comprises:
a degassing chamber coupled to the exit port of the vessel; and a second source of ultrasonic energy operatively coupled to the degassing chamber to remove gas from the mixture .
- 61. The apparatus of claim 55, further comprising at least one filter in fluid communication with the exit port of the vessel to separate solid material from the mixture after the mixture exits the vessel.
- 62. The apparatus of claim 55 wherein the source of ultrasonic energy is a first source and wherein the vessel includes a first channel and a second channel coupled to the first channel, the first source being positioned to direct first ultrasonic energy into the mixture as the mixture passes through the first channel, and wherein the apparatus further comprises a second source of ultrasonic energy positioned to direct second ultrasonic energy into the mixture as the mixture passes through the second channel.
- 63. The apparatus of claim 55 wherein the source of ultrasonic energy is a first source and wherein the vessel includes a first channel and a second channel coupled to the first channel, the first source being positioned to direct first ultrasonic energy at a first frequency into the mixture as the mixture passes through the first channel, and wherein the apparatus further comprises a second source of ultrasonic energy positioned to direct second ultrasonic energy at a second frequency different than the first frequency into the mixture as the mixture passes through the second channel.
- 64. The apparatus of claim 63 wherein the first channel is generally parallel to the second channel
- 65. The apparatus of claim 55 wherein the mixture includes an amount of suspended solids and wherein the vessel includes a channel having a first end and a second end, the source of ultrasonic energy being positioned toward the first end, a length of the channel between the first and second ends corresponding to the amount of suspended solids in the mixture during operation.
- 66. The apparatus of claim 55 wherein the vessel includes a first channel, a second channel, and a manifold coupled to the first and second channels and to the entrance port to direct a first portion of the mixture to the first channel and direct a second portion of the mixture to the second channel.
- 67. The apparatus of claim 55 wherein a molecular structure of a component of the mixture has a resonant frequency, and wherein the source of ultrasonic energy is configured to emit energy at and/or above the resonant frequency.
- 68. The apparatus of claim 55, further comprising an ozone source coupled to the vessel to provide ozone to the mixture during operation.
- 69. An apparatus for removing a selected constituent from a mixture that includes the selected constituent, the apparatus including:
a pressure vessel having an entrance port coupleable to a source of the mixture during operation, a channel configured to contain a continuous flow of the mixture, and an exit port downstream from the channel; a pressure source in fluid communication with the pressure vessel to pressurize the mixture as the mixture passes through the pressure vessel; an ultrasonic energy emitter coupled to the pressure vessel to transmit ultrasonic energy to the mixture as the mixture flows continuously through the pressure vessel, the source of ultrasonic energy being configured to continuously transmit ultrasonic energy to the mixture at a rate and frequency sufficient to gasify and/or alter a chemical composition of the selected constituent; a gas release chamber coupled to the exit port of the vessel to receive a continuous flow of the mixture; and a vacuum source coupled to the gas release chamber to extract gas from the mixture.
- 70. The apparatus of claim 69 wherein the source of ultrasonic energy is a first source and wherein the apparatus full her comprises a second source of ultrasonic energy operatively coupled to the gas release chamber to extract gas from the mixture as the mixture passes through the gas release chamber.
- 71. The apparatus of claim 69 wherein the vessel includes a manifold having a first opening and a second opening, the first opening being coupled to a first channel assembly, the second opening being coupled to a second channel assembly, each channel assembly including first and second channels each having a first end, a second end opposite the first end, an entrance opening toward the first end and an exit opening toward the second end, with the entrance opening of each first channel coupled to one of the openings of the manifold and the exit opening of each first channel coupled to the entrance opening of a corresponding one of the second channels.
- 72. The apparatus of claim 71 wherein the source of ultrasonic energy is a first source operatively coupled to one of the first channels to transmit ultrasonic energy at a first frequency to the mixture, and wherein the apparatus further comprises a second source of ultrasonic energy coupled to one of the second channels to transmit ultrasonic energy to the mixture at a second frequency different than the first frequency.
- 73. An apparatus for treating a selected constituent in a mixture that includes the selected constituent, the apparatus comprising:
a vessel having a port positioned to receive the mixture; a first ultrasonic energy generator operatively coupled to the vessel to transmit ultrasonic energy to the mixture at a first frequency sufficient to gasify and/or alter a chemical composition of the selected constituent; and a second ultrasonic energy generator operatively coupled to the vessel to transmit ultrasonic energy to the mixture at second frequency different than the first frequency.
- 74. The apparatus of claim 73 wherein the port is an entrance port and the vessel has an exit port spaced apart from the entrance port, the entrance port being configured to receive a first continuous flow of the mixture, the exit port being configured to simultaneously pass a second continuous flow of the mixture as the mixture moves through the vessel from the entrance port to the exit port.
- 75. The apparatus of claim 73 wherein the selected constituent is a first selected constituent and the mixture includes a second selected constituent different than the first selected constituent, further wherein the second source of ultrasonic energy is configured to gasify and/or alter a chemical composition of the second selected constituent.
- 76. The apparatus of claim 73 wherein the first and second sources are positioned to simultaneously transmit ultrasonic energy to a portion of the mixture.
- 77. The apparatus of claim 73 wherein the first and second sources are positioned to sequentially transmit ultrasonic energy to a portion of the mixture.
- 78. The apparatus of claim 73, further comprising a filter positioned to remove at least a portion of the mixture after the mixture has been exposed to the first and second ultrasonic energies.
- 79. An apparatus for treating a selected constituent in a mixture that includes the elected constituent, the apparatus comprising:
a vessel having a port positioned to receive the mixture; a pressure source coupled to the vessel to pressurize the mixture in the vessel during operation; and a source of ultrasonic energy operatively coupled to the vessel to transmit ultrasonic energy to the mixture at a rate and a frequency sufficient to gasify and/or alter a chemical composition of the selected constituent.
- 80. The apparatus of claim 79 wherein the port is an entrance port and wherein the vessel includes an exit port spaced apart from the entrance port, the entrance port being configured to receive a first continuous flow of the mixture during operation and the exit port being configured to pass a second continuous flow of the mixture during operation.
- 81. The apparatus of claim 79, further comprising:
a degassing assembly operatively coupled to the vessel to remove gas from the mixture during operation; a vacuum source coupled to the degassing chamber to reduce a pressure within the degassing chamber; and a valve positioned between the degassing chamber and the vessel to maintain a pressure in the vessel higher than a pressure in the degassing chamber.
- 82. The apparatus of claim 79 wherein the source of ultrasonic energy is a first source configured to emit ultrasonic energy at a first frequency, and wherein the apparatus further comprises a second source of ultrasonic energy configured to emit ultrasonic energy at a second frequency different than the first frequency.
RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/300,580 filed Jun. 22, 2001. This application is also related to the following application assigned to a common assignee (a) “Ozone Generator”, U.S. patent application Ser. No. 10/123,759 filed Apr. 15, 2002; and the following applications filed concurrently herewith (b) Method and Apparatus for Treating Fluid Mixtures with Ultrasonic Energy; (c) Method and Apparatus for Directing Ultrasonic Energy; (d) and Method and Apparatus for Directing Ultrasonic Energy, which are all herein incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60300580 |
Jun 2001 |
US |