Claims
- 1. A method for separating particles from a fluid, comprising flowing a fluid containing the particles through a porous medium while imposing an acoustic field on the porous medium.
- 2. A method for separating particles from a fluid, comprising flowing a fluid containing the particles through a porous medium disposed in a chamber while imposing an acoustic field on the porous medium.
- 3. The method of claim 2, wherein the acoustic field has a frequency resonant to the chamber when the chamber is filled with the fluid.
- 4. The method of claim 2, wherein the acoustic field has a frequency resonant to the chamber when the chamber is filled with the fluid but in the absence of the porous medium.
- 5. A method for separating particles from a fluid, comprising the steps of:
a. flowing a fluid containing the particles through a porous medium, said porous medium having a predetermined average pore size; and b. imposing an acoustic field on the porous medium, the acoustic field causing the porous medium to trap particles having a nominal diameter substantially less than the predetermined average pore size of the porous medium.
- 6. A method for separating particles from a fluid, comprising the steps of:
a. providing a porous medium within a chamber, the porous medium having a predetermined average pore size; b. supplying the chamber with a fluid containing the particles and causing the fluid to flow through the porous medium and out of the chamber; and c. imposing an acoustic field on the porous medium, the acoustic field causing the porous medium to trap particles having a nominal diameter substantially less than the predetermined average pore size of the porous medium.
- 7. The method of claim 6, wherein the acoustic field has a frequency resonant to the chamber when the chamber is filled with the fluid.
- 8. The method of claim 6, wherein the acoustic field has a frequency resonant to the chamber when the chamber is filled with the fluid but in the absence of the porous medium.
- 9. A method for separating particles having a size in the range of 1-100 μm from a fluid, comprising the steps of:
a. providing a porous medium within a chamber, the porous medium having an average pore size of about 450 μm or greater, b. supplying the chamber with a fluid containing the particles and causing the fluid to flow through the porous medium and out of the chamber; and c. imposing an acoustic field on the porous medium, the acoustic field causing the porous medium to trap particles having a nominal diameter of the range of 1-100 μm.
- 10. A method for separating particles from a fluid, comprising the steps of:
a. providing a chamber having an inlet and outlet; b. providing a porous medium within the chamber between the inlet and the outlet, the porous medium having a predetermined average pore size; c. supplying a fluid containing the particles to the inlet of the chamber and causing the fluid to flow through the porous medium and out of the outlet of the chamber; d. a filtering step of imposing an acoustic field on the porous medium, the acoustic field causing the porous medium to trap particles having a nominal diameter substantially less than the predetermined average pore size of the porous medium; and e. a regenerating step of removing the acoustic field from the porous medium to permit particles trapped in the porous medium during the filtering step to pass through the porous medium with the flowing fluid and be removed through the outlet of the chamber.
- 11. The method of claim 10, wherein the acoustic field has a frequency resonant to the chamber when the chamber is filled with the fluid.
- 12. The method of claim 8, wherein said filtering step is performed until the amount of particles trapped in the porous medium reaches a predetermined level and then said regenerating step is performed.
- 13. The method of claim 10, further including the step of detecting the level of particle concentration in the fluid flowing out of the chamber during the filtering step, the regenerating step being commenced when the detected particle concentration reaches a predetermined level.
- 14. The method of claim 10, further including the steps of
connecting the outlet of the chamber to a first fluid conduit during the filtering step; and connecting the outlet of the chamber to a second fluid conduit during the regenerating step.
- 15. A method for separating particles from a fluid, comprising the steps of:
flowing a fluid containing the particles through a porous medium while imposing an acoustic field on the porous medium, the acoustic field causing the porous medium to trap particles; removing the acoustic field from the porous medium, the removal of the acoustic field permitting particles trapped in the porous medium to pass through the porous medium with the flowing fluid; and collecting the particles passing through the porous medium after the acoustic field is removed.
- 16. A method for separating particles from a fluid, comprising the steps of:
flowing a fluid containing the particles through a porous medium disposed in a chamber while imposing an acoustic field on the porous medium, the acoustic field causing the porous medium to trap particles; and removing the porous medium from the chamber.
- 17. An apparatus for separating particles from a fluid, comprising:
a. a chamber; b. a porous medium disposed within said chamber; c. means for flowing a fluid containing particles through said chamber and said porous medium; and d. means for imposing on said porous medium an acoustic field causing said porous medium to trap particles.
- 18. The apparatus of claim 17, wherein said porous medium comprises a mesh filter.
- 19. The apparatus of claim 17, wherein said porous medium comprises an aluminum mesh filter.
- 20. The apparatus of claim 17, wherein said porous medium comprises a foam filter.
- 21. The apparatus of claim 17, wherein said porous medium comprises a polyester foam filter.
- 22. The apparatus of claim 17, wherein said porous medium comprises a plurality of contacting solids.
- 23. The apparatus of claim 17, wherein said porous medium comprises a plurality of contacting spheres.
- 24. The apparatus of claim 17, wherein said porous medium comprises a plurality of contacting glass spheres.
- 25. The apparatus of claim 17, wherein said imposing means generates an acoustic field having a frequency resonant to said chamber when said chamber is filled with the fluid.
- 26. The apparatus of claim 17, wherein said imposing means generates an acoustic field having a frequency resonant to said chamber when said chamber is filled with the fluid but in the absence of said porous medium.
- 27. An apparatus for separating particles from a fluid, comprising:
a. a chamber; b. a porous medium disposed within said chamber, said porous medium having a predetermined average pore size; c. means for flowing through said chamber and said porous medium a fluid containing particles; and d. means for imposing on said porous medium an acoustic field causing said porous medium to trap particles having a size substantially less than said predetermined average pore size of said porous medium while the fluid is flowed through said porous medium.
- 28. The apparatus of claim 27, wherein said porous medium comprises a metallic mesh filter.
- 29. The apparatus of claim 27, wherein said porous medium comprises a polymeric foam filter.
- 30. The apparatus of claim 27, wherein said porous medium comprises a plurality of contacting solids.
- 31. The apparatus of claim 27, wherein said imposing means generates an acoustic field having a frequency resonant to said chamber when said chamber is filled with the fluid.
- 32. An apparatus for separating particles having a size in the range of 1-100 μm from a fluid, comprising:
a. a chamber; b. a porous medium disposed within said chamber, said porous medium having an average pore size of about 450 μm or greater; c. means for flowing through said chamber and said porous medium a fluid containing particles; and d. means for imposing on said porous medium an acoustic field causing said porous medium to trap particles having a nominal diameter in the range of 1-100 μm while the fluid is flowed through said porous medium.
- 33. An apparatus for separating particles having a size in the range of 1-100 μm from a fluid, comprising:
a. a chamber; b. a porous medium disposed within said chamber, said porous medium having an average pore size of about 450 μm or greater; c. means for flowing through said chamber and said porous medium a fluid containing particles; and d. means for imposing on said porous medium an acoustic field having a frequency resonant to said chamber when said chamber is filled with the fluid, the acoustic field causing said porous medium to trap particles having a nominal diameter in the range of 1-100 μm while the fluid is flowed through said porous medium.
- 34. An apparatus for separating particles from a fluid, comprising:
a. a chamber having an inlet and an outlet; b. a porous medium disposed within said chamber between said inlet and said outlet, said porous medium having a predetermined average pore size; c. means connected to said inlet for flowing through said chamber and said porous medium a fluid containing particles; and d. means for imposing on said porous medium an acoustic field of selected duration while the fluid is flowed through said porous medium, said porous medium trapping particles having a size substantially less than its predetermined average pore size while the acoustic field is imposed, and permitting particles trapped in said porous medium to flow through said porous medium and out said outlet of said chamber when the acoustic field is removed.
- 35. The apparatus of claim 34, further comprising means for connecting said outlet of said chamber to a particle-collection conduit when said acoustic field is removed.
- 36. An apparatus for separating particles from a fluid, comprising:
a. a chamber having an inlet and an outlet; b. a porous medium disposed within said chamber between said inlet and said outlet, said porous medium having a predetermined average pore size; c. means connected to said inlet for flowing through said chamber and said porous medium a fluid containing particles; d. means for imposing on said porous medium an acoustic field while the fluid is flowed through said porous medium, said porous medium trapping particles having a size substantially less than its predetermined average pore size while the acoustic field is imposed; and e. means for detecting when a predetermined optimum trapping condition exists and, in response to the optimum trapping condition, removing the acoustic field to permit particles trapped in said porous medium to flow through said porous medium and out said outlet of said chamber.
- 37. The apparatus of claim 36, wherein said detecting means comprises a photometer that detects the particle concentration of the fluid flowing out of said outlet.
- 38. The apparatus of claim 36, further comprising means for connecting said outlet of said chamber to a particle-collection conduit in response to the optimum trapping condition.
Parent Case Info
[0001] This application claims priority from U.S. Provisional Patent Application Ser. No. 60/019,770, filed Jun. 14, 1996.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60019770 |
Jun 1996 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
08861277 |
May 1997 |
US |
Child |
09814975 |
Mar 2001 |
US |