Claims
- 1. An electrostatic fluid accelerator comprising:
a high voltage power source supplying a high voltage power at a particular output voltage and current, said voltage and current waveforms each including constant and alternating components; and an electrostatic fluid accelerator unit comprising a plurality of stages of electrodes, each of said stages of electrodes including at least one corona discharge electrode and at least one complementary electrode, said stages of electrodes arranged in tandem to sequentially accelerate a fluid passing therethrough, said electrodes connected to said high voltage power source to receive said high voltage power with substantially identical waveforms of said alternating component of said output voltage, said complementary electrode of one of said stages and said corona discharge electrode of an immediately subsequent one of said stages maintained at substantially equal syn-phased operating voltages.
- 2. The electrostatic fluid accelerator according to claim 1 said wherein said complementary electrode of said one stage and said corona discharge electrode of said immediately subsequent stage are maintained at syn-phased operating voltages within 100 volts rms of each other.
- 3. The electrostatic fluid accelerator according to claim 2 said wherein said complementary electrode of said one stage and said corona discharge electrode of said immediately subsequent stage are maintained at syn-phased operating voltages within 10 volts rms of each other.
- 4. The electrostatic fluid accelerator according to claim 1 said wherein said complementary electrode of said one stage and said corona discharge electrode of said immediately subsequent stage are maintained at syn-phased operating voltages such that a current flow therebetween is less than 1 mA.
- 5. The electrostatic fluid accelerator according to claim 4 said wherein complementary electrode of said one stage and said corona discharge electrode of said immediately subsequent stage are maintained at syn-phased operating voltages such that said current flow therebetween is less than 100 μA.
- 6. The electrostatic fluid accelerator according to claim 1 wherein said high voltage power is supplied to each of said plurality of stages of electrostatic discharge elements substantially in phase and with substantially equal levels of said alternating component of said output voltage.
- 7. The electrostatic fluid accelerator according to claim 1 wherein said high voltage power is supplied to each of said plurality of stages of electrodes substantially in phase and with substantially equal levels of said components of said output currents.
- 8. The electrostatic fluid accelerator according to claim 1 wherein said high voltage power source comprises a plurality of converters for transforming and a primary power to said high voltage power, each of said converters independently connected to a respective one of said stages for providing said high voltage power thereto, said high voltage power source further comprising a controller connected to said converters for synchronizing said alternating components of said high voltage power provided by said converters.
- 9. The electrostatic fluid accelerator according to claim 8 wherein said converters each comprise a transformer and a rectifier circuit.
- 10. The electrostatic fluid accelerator according to claim 1 wherein said alternating component of said output voltage has a frequency range within 50 Hz to 1000 kHz, each of said stages of electrostatic discharge elements receiving said alternating voltage component in phase and with substantially equal amplitude.
- 11. The electrostatic fluid accelerator according to claim 1 wherein said alternating component of said current has a frequency range within 50 Hz to 1000 kHz, each of said stages of electrodes receiving said alternating current component in phase with each other and with substantially equal amplitudes.
- 12. The electrostatic fluid accelerator according to claim 1 wherein each of said stages of said electrode comprises a first regular array of corona discharge electrodes and a second regular array of accelerating electrodes, said corona discharge electrodes and accelerating electrodes oriented parallel to each other and each of said arrays of corona discharge electrodes spaced from each of said arrays of said accelerating electrodes of the same stage, corresponding ones of said electrodes of different ones of said stages being parallel to each other and to the electrodes of a nearest stage.
- 13. The electrostatic fluid accelerator according to claim 12 wherein corona discharge electrodes and accelerating electrodes of respective immediately adjacent ones of said stages are spaced apart by a distance d that is 1 to 2 times greater than a closest distance between ones of said corona discharge electrodes and immediately adjacent ones of the electrodes of each of said stages.
- 14. The electrostatic fluid accelerator according to claim 1 wherein each of said stages includes a plurality of corona discharge electrodes located in a common transverse plane, each of said transverse planes being substantially orthogonal to an airflow direction and ones of said corona discharge electrodes of neighboring ones of said stages located in respective common planes orthogonal to said transverse planes.
- 15. The electrostatic fluid accelerator according to claim 1 wherein each of said stages includes a plurality of parallel corona discharge wires positioned in a first plane and a plurality of parallel accelerating electrodes having edges closest to the corona discharge electrodes aligned in respective second plane, said first and second planes parallel to each other and perpendicular to a common average airflow direction through said stages.
- 16. An electrostatic fluid accelerator comprising:
a high voltage power source supplying a high voltage power including a plurality of output circuits each independently supplying a respective electrical output power signal substantially in phase with each other; and an electrostatic fluid air accelerator unit comprising a plurality of stages each of said stages including a first array of corona discharge electrodes and a second array of attractor electrodes spaced apart from said first array along an airflow direction, each of said stages connected to a respective one of said output circuits for supplying a corresponding one of said electrical output power signals to said corona discharge and attractor electrodes of said first and second arrays, said second array of attractor electrodes of one of said stages and said first array of corona discharge electrodes of an immediately subsequent one of said stages maintained at substantially equal syn-phased operating voltages.
- 17. The electrostatic fluid accelerator according to claim 16 said wherein said attractor electrodes of said one stage and said corona discharge electrodes of said immediately subsequent stage are maintained at syn-phased operating voltages within 100 volts rms of each other.
- 18. The electrostatic fluid accelerator according to claim 17 said wherein said attractor electrodes of said one stage and said corona discharge electrodes of said immediately subsequent stage are maintained at syn-phased operating voltages within 10 volts rms of each other.
- 19. The electrostatic fluid accelerator according to claim 16 said wherein said attractor electrodes of said one stage and said corona discharge electrodes of said immediately subsequent stage are maintained at syn-phased operating voltages such that a current flow therebetween is less than 1 mA.
- 20. The electrostatic fluid accelerator according to claim 19 said wherein wherein said attractor electrodes of said one stage and said corona discharge electrodes of said immediately subsequent stage are maintained at syn-phased operating voltages such that a current flow therebetween is less than 100 μA.
- 21. The electrostatic fluid accelerator according to claim 16 wherein said high voltage power source said high voltage power further comprises a plurality of transformers, rectifier circuits and controllers connected to respective ones of said output circuits, each of said controllers connected to at least one other of said controllers for synchronizing an said electrical output power signals.
- 22. The electrostatic fluid accelerator according to claim 16 wherein each of said electrical output power signals has an a.c. component having a fundamental operating frequency within a range of 50 Hz to 1000 kHz.
- 23. A method of accelerating a fluid including the steps of:
transforming a primary power signal into a plurality of independent voltages each of said voltages including independent high frequency power signals; synchronizing said plurality of independent high frequency power signals to a common frequency and phase; powering arrays of corona discharge and accelerating electrodes with respective ones of said high voltage signals including maintaining at substantially equal syn-phased operating voltages (i) one of said arrays of said corona discharge electrodes powered by one of said high voltage signals and (ii) an immediately adjacent one of said arrays of accelerating electrodes powered by another of said high voltage signals; and accelerating a the fluid through each of said arrays in sequence.
- 24. The method according to claim 23 wherein said step of transforming includes steps of increasing a voltage of said primary power signal to provide a plurality of high voltage alternating secondary power signals and independently rectifying said plurality of high voltage alternating secondary power signals to provide a plurality of high voltage output power signals.
- 25. An electrostatic fluid accelerator comprising:
a first array of corona discharge electrodes disposed in a first plane; a second array of corona discharge electrodes disposed in a second plane, said second plane being parallel to and spaced apart from said first plane; and a third array of accelerating electrodes disposed in a third plane and maintained at a substantially equal syn-phased operating voltage with said second array of corona electrodes, said third plane being parallel to said first and second planes and disposed therebetween, wherein each accelerating electrode of said third array is disposed in a staggered configuration with respect to said corona discharge electrodes of said first array.
- 26. The electrostatic fluid accelerator of 25, wherein The electrostatic fluid accelerator according to claim 1 said second and third arrays are maintained at syn-phased operating voltages within 100 volts rms of each other.
- 27. The electrostatic fluid accelerator of 25, wherein The electrostatic fluid accelerator according to claim 1 said second and third arrays are maintained at syn-phased operating voltages within 10 volts rms of each other.
- 28. The electrostatic fluid accelerator of 25, wherein The electrostatic fluid accelerator according to claim 1 said second and third arrays are maintained at syn-phased operating voltages such that a current flow therebetween is less than 1 mA.
- 29. The electrostatic fluid accelerator of 25, wherein The electrostatic fluid accelerator according to claim 1 said second and third arrays are maintained at syn-phased operating voltages such that a current flow therebetween is less than 100 μA.
- 30. The electrostatic fluid accelerator of 25, wherein each accelerating electrode of said third array is disposed in a staggered configuration with respect to said corona discharge electrodes of said second array.
- 31. The electrostatic fluid accelerator of 25, wherein said corona discharge electrodes of said first array are disposed in an aligned orientation with respect to said corona discharge electrodes of said second array.
- 32. The electrostatic fluid accelerator of 25, wherein a spacing between each corona discharge electrode of said second array and a nearest accelerator electrode of said third array is within the range of 1.2 to 2 times a spacing between each corona discharge electrode of said first array and a nearest accelerator electrode of said third array.
- 33. The electrostatic fluid accelerator of 32, wherein said spacing between each corona discharge electrode of said second array and a nearest accelerator electrode of said third array is within the range of 1.2 to 1.65 times said spacing between each corona discharge electrode of said first array and a nearest accelerator electrode of said third array.
- 34. The electrostatic fluid accelerator of 32, wherein said spacing between each corona discharge electrode of said second array and a nearest accelerator electrode of said third array is approximately 1.4 times said spacing between each corona discharge electrode of said first array and a nearest accelerator electrode of said third array.
- 35. The electrostatic fluid accelerator of 25, further comprising:
a forth array of accelerating electrodes disposed longitudinally in a forth plane, said forth plane being parallel to said first, second, and third planes and disposed on an opposite side of said second array than is said third plane, wherein each accelerating electrode of said forth array is disposed in a staggered orientation with respect to said corona discharge electrodes of said second array.
- 36. The electrostatic fluid accelerator of 25, further comprising:
a high voltage power supply circuit coupled to said first and third arrays, wherein a high voltage waveform provided to corona discharge electrodes of said first array is synchronized with a high voltage waveform provided to corona discharge electrodes of said second array.
- 37. The electrostatic fluid accelerator of 36, wherein said high voltage power supply circuit comprises:
a first high voltage power supply coupled to said first array; a second high voltage power supply coupled to said second array; and control circuitry coupled to said first and second high voltage power supplies and operable to control each said high voltage power supply to generate synchronized and syn-phased high voltage waveforms.
- 38. An electrostatic fluid accelerator system having a plurality of closely spaced electrostatic accelerator stages, said system comprising:
a first electrostatic accelerator stage having a first array of corona discharge electrodes disposed in a first plane and a first array of accelerating electrodes disposed in a second plane; and a second electrostatic accelerator stage having a second array of corona discharge electrodes disposed in a third plane and a second array of accelerating electrodes disposed in a forth plane, wherein each corona discharge electrode of said second array of corona discharge electrodes is (i) disposed offset from each accelerating electrode of said first array of accelerating electrodes and (ii) maintained at a substantially equal syn-phased voltage as said first array of accelerating electrodes.
- 39. The system of 38, wherein each of said first, second, third, and forth planes are parallel.
- 40. The system of 38, further comprising:
a high voltage power supply circuit coupled to said first and second arrays of corona discharge electrodes, wherein a high voltage waveform provided to said first array of corona discharge electrodes is synchronized with a high voltage waveform provided to said second array of corona discharge electrodes.
- 41. The system of 40, wherein said high voltage waveform provided to said first array of corona discharge electrodes is syn-phased with said high voltage waveform provided to said second array of corona discharge electrodes.
- 42. The system of 40, wherein said high voltage power supply circuit comprises:
a first high voltage power supply coupled to said first array of corona discharge electrodes; a second high voltage power supply coupled to said second array of corona discharge electrodes; and control circuitry coupled to said first and second high voltage power supplies and operable to control each said high voltage power supply to generate synchronized high voltage waveforms.
- 43. The system of 38, wherein each accelerating electrode of said first array of accelerating electrodes is disposed offset from each corona discharge electrode of said first array of corona discharge electrodes.
- 44. The system of 43, wherein each accelerating electrode of said second array of accelerating electrodes is disposed offset from each corona discharge electrode of said second array of corona discharge electrodes.
- 45. The system of 43, wherein corona discharge electrodes of said first array of corona discharge electrodes are disposed in alignment with corona discharge electrodes of said second array of corona discharge electrodes.
- 46. The system of 43, wherein a spacing between said corona discharge electrode of said first array of corona discharge electrodes and said accelerating electrodes of said first array of accelerating electrodes is a first distance, said first distance being greater than an intra-stage electrode spacing as measured along a line normal to each first and second planes.
- 47. The system of 46, wherein a spacing between each corona discharge electrode of said second array of corona discharge electrodes and said accelerating electrodes of said first array of accelerating electrodes is a second distance, said second distance being greater than an inter-stage electrode spacing as measured along a line normal to each said second and third planes, said second distance being greater than said first distance.
- 48. The system of 47, wherein said second distance is in the range of 1.2 to 2 times said first distance.
- 49. The system of 47, wherein said first distance is selected as a function of a corona onset voltage between said corona discharge electrodes of said first array of corona discharge electrodes and said accelerating electrodes of said first array of accelerating electrodes.
- 50. The system of 47, wherein said second distance is selected to prevent a back corona between said second electrostatic accelerator stage and said first electrostatic accelerator stage.
- 51. A method for providing an electrostatic fluid accelerator, said method comprising:
determining an intra-stage spacing to facilitate a corona onset voltage between corona discharge electrodes and accelerating electrodes of an electrostatic fluid accelerator while minimizing sparking between said corona discharge electrodes and said accelerating electrodes; determining an inter-stage spacing to prevent a back corona forming between accelerating electrodes of a first electrostatic accelerator stage and corona discharge electrodes of a second electrostatic accelerator stage, said inter-stage spacing being within the range of 1.2 to 2.0 times said intra-stage spacing; disposing said accelerating electrodes of said first electrostatic accelerator stage in a first plane; disposing said corona discharge electrodes of said second electrostatic accelerator stage in a second plane, wherein said first and second planes are parallel, and wherein a spacing between said first and second planes is less than said inter-stage spacing; and exciting said accelerating electrodes of a first electrostatic accelerator stage and corona discharge electrodes of a second electrostatic accelerator stage with a substantially equi-potential synchronized high voltage waveform.
- 52. The method of 51, wherein said disposing said corona discharge electrodes of said second electrostatic accelerator stage in said second plane comprises:
disposing said corona discharge electrodes parallel to and in an offset configuration with said accelerating electrodes.
- 53. The method of 54, further comprising:
disposing corona discharge electrodes of said first electrostatic accelerator stage is a third plane, wherein said first, second, and third planes are parallel, and wherein a spacing between said first and third planes is less than said intra-stage spacing.
- 54. The method of 53, wherein said disposing said corona discharge electrodes of said first electrostatic accelerator stage in said third plane comprises:
disposing said corona discharge electrodes of said first electrostatic accelerator stage parallel to and in-line with said corona discharge electrodes of said second electrostatic accelerator stage and parallel to and in an offset configuration with said accelerating electrodes of said first electrostatic accelerator stage.
- 55. The method of 51, further comprising:
providing said first electrostatic accelerator stage having a first array of corona discharge electrodes and a first array of accelerating electrodes comprising said accelerating electrodes of said first electrostatic accelerator stage, wherein said providing said first electrostatic accelerator stage includes spacing each corona discharge electrode of said first array of corona discharge electrodes apart from said accelerating electrodes of said first array of accelerating electrodes said intra-stage spacing; providing a second electrostatic accelerator stage having a second array of accelerating electrodes and a second array of corona discharge electrodes comprising said corona discharge electrodes of said second electrostatic accelerator stage, wherein said providing said second electrostatic accelerator stage includes spacing each corona discharge electrode of said second array of corona discharge electrodes apart from said accelerating electrodes of said second array of accelerating electrodes said intra-stage spacing.
- 56. The method of 55, further comprising:
exciting said first electrostatic accelerator stage and said second electrostatic accelerator stage with a synchronized high voltage waveform.
- 57. The method of 56, further comprising:
syn-phasing said high voltage waveform such that a potential difference between said first array of corona discharge electrodes and said second array of corona discharge electrodes is maintained substantially constant.
RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 10/188,069 filed Jul. 3, 2002 and entitled Electrostatic Fluid Accelerator For And A Method Of Controlling Fluid Flow and the continuation thereof, U.S. patent application Ser. No. 10/806,473 filed Mar. 23, 2004 of the same title, and is related to and U.S. patent application Ser. No. 09/419,720 filed Oct. 14, 1999 and entitled Electrostatic Fluid Accelerator, now U.S. Pat. No. 6,504,308, U.S. patent application Ser. No. 10/175,947 filed Jun. 21, 2002 and entitled Method of and Apparatus for Electrostatic Fluid Acceleration Control of a Fluid Flow, now U.S. Pat. No. 6,664,741; U.S. patent application Ser. No. 10/187,983 filed Jul. 3, 2002 and entitled Spark Management Method And Device; U.S. patent application Ser. No. 10/295,869 filed Nov. 18, 2002 and entitled Electrostatic Fluid Accelerator which is a continuation of U.S. provisional application serial No. 60/104,573, filed on Oct. 16, 1998; U.S. patent application Ser. No. 10/724,707 filed Dec. 2, 2003 and entitled Corona Discharge Electrode and Method of Operating Same; U.S. patent application Ser. No. 10/735,302 filed Dec. 15, 2003 and entitled Method of and Apparatus for Electrostatic Fluid Acceleration Control of a Fluid; and U.S. patent application Ser. No. 10/752,530 filed Jan. 8, 2004 and entitled Electrostatic Air Cleaning Device, all of which are incorporated herein in their entireties by reference.
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
10188069 |
Jul 2002 |
US |
Child |
10847438 |
May 2004 |
US |