Claims
- 1. A method for producing a high throughput aerosol or mist comprising the steps of:
a. providing a substance for generation of smaller particles or droplets thereof; b. generating smaller particles or droplets from said substance; c. directing a helical flow of a carrier medium with respect to the smaller particles or droplets; d. creating an aerosol or mist including the combination of carrier medium and the smaller particles or droplets; and e. delivering the aerosol or mist.
- 2. A method for producing a high throughput aerosol or mist as in claim 1 in which said step of delivering the aerosol or mist includes the additional step of deflecting said aerosol or mist upwards and providing a tube centrally situated with respect to said helical flow of the carrier medium such that said aerosol or mist will discharge through said tube.
- 3. A device for generating a mist comprising:
a container; a high frequency wave generating device; a reservoir for holding fluid in communication with the high frequency wave generating device for producing a fountain column within the container; a helical flow provider situated with respect to the container so as to provide a helical flow of a carrier medium; and a mist outlet situated on the container for mist emission.
- 4. A device for generating a mist as in claim 3 in which the high frequency wave generating device is a piezoelectric transducer or laser beam.
- 5. A device for generating a mist as in claim 3 in which a portion of the container on which the helical flow provider and the mist outlet are situated is cylindrical.
- 6. A device for generating a mist as in claim 3 in which the mist outlet is tangentially situated to the fountain column.
- 7. A device for generating a mist as in claim 3 in which said fountain column includes an upper portion and a lower portion and the mist outlet is tangentially situated to the upper portion of the fountain column.
- 8. A device for generating a mist as in claim 3 in which said mist outlet includes a tube centrally situated on the container such that a first extension of the tube extends into the container to a point below the helical flow provider and a second extension of the tube extends outward from the container.
- 9. A device for generating a mist as in claim 3 in which said container includes a conical portion having an upwardly oriented conically converging diameter and the mist outlet is connected to the conical portion.
- 10. A device for generating a mist as in claim 3 in which said container includes multiple mist outlets situated on the container for mist emission.
- 11. A device for generating a mist as in claim 3 in which said helical flow provider includes a carrier medium inlet tangentially situated to the fountain column.
- 12. A device for generating a mist as in claim 3 in which said helical flow provider includes multiple carrier medium inlets on the container tangentially situated to the fountain column.
- 13. A device for generating a mist as in claim 3 in which said helical flow provider includes a separate helical or swirl flow generating device attached to said container so as to communicate said helical flow of the carrier medium to the container.
- 14. A device for generating a mist as in claim 3 in which said fountain column includes an upper portion and a lower portion and the carrier medium inlet is tangentially situated to the upper portion of the fountain column and the mist outlet is tangentially situated to the lower portion of the fountain column and situated above the reservoir.
- 15. A device for generating a mist as in claim 3 in which said high frequency wave generating device is comprised of an array of piezoelectric transducers arranged in combination.
- 16. A device for generating a mist as in claim 3 in which said high frequency wave generating device is comprised of several annularly arranged transducers and said container includes an annular chamber for causing an annular flow of air within the container.
- 17. A device for generating a mist comprising:
a container; a high frequency wave generating device; a reservoir for holding fluid in communication with the high frequency wave generating device for producing a fountain column having a central portion and an exterior portion within the container; a carrier medium inlet situated with respect to the fountain column for directing a flow of carrier medium about the exterior portion of the fountain column without significantly disturbing the central portion of the fountain column; and a mist outlet situated on the container for mist emission.
- 18. A device for generating a mist as in claim 17 in which said mist outlet includes a tube centrally situated on the container such that a first extension of the tube extends into the container to a point below the carrier medium inlet and a second extension of the tube extends outward from the container.
- 19. A device for generating a mist as in claim 17 in which said high frequency wave generating device is comprised of several annularly arranged transducers and the flow of carrier medium is directed in a helical flow about the fountain column.
- 20. A method for producing a mist comprising the steps of:
a. providing a liquid for atomization; b. producing a fountain column having a central portion by atomizing the liquid; c. directing a carrier medium with respect to the fountain column so as not to significantly disrupt the central portion of the fountain column; d. mixing mist droplets from the fountain column into the carrier medium; and e. discharging the mist.
- 21. A method for producing a mist as in claim 20 in which the step of directing the carrier medium with the respect to the fountain column so as not to significantly disrupt the central portion of the fountain column includes directing the carrier medium tangentially with respect to the fountain column.
- 22. A method for producing a mist as in claim 20 in which the step of directing the carrier medium with the respect to the fountain column so as not to significantly disrupt the central portion of the fountain column includes creating a helical flow of carrier medium within a cylindrical container having an outer wall such that the velocity of carrier medium flow near the outer wall of the cylindrical container is greater than the velocity of carrier medium flow near the central portion of the fountain column.
- 23. A method for producing a mist as in claim 20 in which the step of mixing mist droplets into the carrier medium includes entraining the mist droplets into the carrier medium.
- 24. A method for producing a mist as in claim 20 in which the discharged mist is comprised of a substantial quantity of the mist droplets that are less than 10 micron in diameter.
- 25. A method of producing a mist as in claim 20 in which the discharged mist is comprised of a substantial quantity of the mist droplets that are less than one micron in diameter.
- 26. A method of producing a mist as in claim 20 in which said step of producing a fountain column having a central portion is accomplished at ambient pressure using at least one high frequency wave generating device.
- 27. A method of producing a mist as in claim 26 in which each said high frequency wave generating device is a piezoelectric transducer.
- 28. A method of producing a mist as in claim 26 including the step of scaling throughput of discharging mist by varying frequency of each said high frequency wave generating device.
- 29. A method of producing a mist as in claim 26 in which each said high frequency wave generating device includes an oscillator surface area and includes the step of scaling throughput of discharging mist by varying oscillator surface area of each said high frequency wave generating device.
- 30. A method of producing a mist as in claim 26 including the step of scaling throughput of discharging mist by using a multiple channel system of high frequency wave generating devices.
- 31. A method of producing a mist as in claim 20 in which said step of discharging the mist includes directing the mist through an outlet situated tangentially with respect to the fountain column.
- 32. A method of producing a mist as in claim 20 in which said step of discharging the mist includes directing the mist through an outlet situated above the fountain column.
- 33. A method of producing a mist as in claim 22 in which said step of discharging the mist includes directing the mist through a tube centrally situated on the cylindrical container such that a first portion of the tube extends inward into the cylindrical container and a second portion of the tube extends outward from the container.
- 34. A method of producing a mist as in claim 20 in which said step of discharging the mist includes directing the mist through a member having a conically converging diameter and an outlet connected to the member.
- 35. A method for producing a mist as in claim 21 in which the carrier medium is directed tangentially with respect to the fountain column by multiple inlets of carrier medium tangentially situated to the fountain column.
- 36. A method for producing a mist as in claim 21 in which the fountain column is produced within a container having an upper portion and a lower portion and the carrier medium is directed tangentially with respect to the fountain column by an inlet inlet tangentially situated to the fountain column, and a mist outlet situated on the container for mist emission; and
a conduit connecting said first mist generator and said at least one additional mist generator in series to provide successive chambers which receive mist flow. of carrier medium tangentially situated to the fountain column on the upper portion of the container and the step of discharging the mist includes directing the mist through an outlet tangentially situated to the fountain column on the lower portion of the container.
- 37. A method for producing a mist as in claim 20 including the step of adding a chemical additive to the liquid for atomization to decrease the surface tension of the liquid.
- 38. A method of producing a mist as in claim 20 in which said step of discharging the mist includes discharging the mist at a predetermined throughput of at least one liter per minute.
- 39. A method of producing a mist as in claim 20 in which said mist behaves as a pseudo-gas after discharging and maintains liquid droplet properties.
- 40. A device for producing a mist comprising:
a first mist generator including a container, a high frequency wave generating device, a power supply attached to the high frequency wave generating device, a reservoir for holding fluid in communication with the high frequency wave generating device for producing a fountain column within the container, a carrier medium inlet tangentially situated to the fountain column, and a mist outlet situated on the container for mist emission; at least one additional mist generator including a container, a high frequency wave generating device, a power supply attached to the high frequency wave generating device, a reservoir for holding fluid in communication with the high frequency wave generating device for producing a fountain column within the container, a carrier medium
PRIORITY CLAIM
[0001] The present application claims priority of U.S. provisional patent application No. 60/365,870 filed on Mar. 20, 2002 and U.S. provisional patent application No. 60/323,399 filed on Sep. 19, 2001.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60365870 |
Mar 2002 |
US |
|
60323399 |
Sep 2001 |
US |