Claims
- 1. A filter device for collection of carbon nanomaterials produced by gas phase reaction in a reactor system comprising:
one or more gas permeable filters positioned within the reactor system to capture carbon nanomaterials produced by gas phase reaction; a filter cleaning mechanism for dislodging captured carbon nanomaterials from the one or more gas-permeable filters while one or more of the filters are in place in the reactor system; and a collector for carbon nanomaterials positioned with respect to the one or more filters for receiving carbon nanomaterials dislodged there from and from which collected carbon nanomaterials can be removed without halting synthesis of carbon nanomaterials.
- 2. The device of claim 1 wherein carbon nanomaterials are dislodged by directing gas flow to the filter.
- 3. The device of claim 2 wherein the gas flow is provided by pulsed gas jets.
- 4. The device of claim 2 wherein the gas is nitrogen, argon or air.
- 5. The device of claim 3 wherein the filter cleaning mechanism comprises a jet forming orifice in fluid communication with a source of gas and a valve located between the jet forming orifice and the gas source.
- 6. The device of claim 5 wherein the jet forming orifice is located on the downstream side of the filter.
- 7. The device of claim 5 wherein the pressure of the gas source is at least about 25 psi.
- 8. The device of claim 5 wherein the pressure of the gas source is at least about 100 psi.
- 9. The device of claim 2 wherein the filter chamber is designed and the gas permeable filter is positioned such that substantially the entire flow of the product gas stream passes through the filter.
- 10. The device of claim 2 wherein the gas permeable filter is a bag filter.
- 11. The device of claim 10 wherein the filter is made of ceramic fibers.
- 12. The device of claim 10 wherein the bag filter is made of fiberglass, polymer fibers, or Teflon™ coated polymer fibers.
- 13. The device of claim 10 wherein the pore size of the filter is less than about 10 microns.
- 14. The device of claim 1 comprising more than one filter.
- 15. The device of claim 14 comprising more than one filter cleaning mechanism.
- 16. The device of claim 1 further comprising an inlet for removal of carbon nanomaterials which communicates with the reactor system through a valve.
- 17. The filter device of claim 1 further comprising a filter chamber in which the one or more filters are positioned and which is in fluid communication with a reaction chamber through a conduit that can be heated such that gas flow from the reaction chamber containing carbon nanomaterials passes through the one or more filters.
- 18. The filter device of claim 17 wherein the filter cleaning device is a pulsed gas jet which comprises one or more jet forming orifice in the filter chamber in fluid communication with a source of pressurized gas and one or more valves between the gas source and the one or more orifices that can be operated to generate pulses of gas.
- 19. The filter device of claim 18 wherein at least one jet-forming orifice is positioned to direct gas pulses to the downstream side of the one or more filters.
- 20. A reactor system for synthesis of carbon nanomaterials which comprises a reactor chamber for generation of a product gas flow containing carbon nanomaterials and a filter device of claim 1 for collection of carbon nanomaterials and removal of carbon nanomaterials from the reactor system without halting synthesis of carbon nanomaterials.
- 21. The reactor system of claim 20 which is a combustion system.
- 22. The reactor system of claim 20 wherein the filter cleaning mechanism provides for gas delivery to the one or more filters to dislodge captured carbon nanomaterials.
- 23. The reactor system of claim 20 wherein the filter cleaning mechanism comprises a gas inlet in fluid communication with a source of gas and a valve that can be selectively operated for delivery of the gas to the one or more filters.
- 24. The reactor system of claim 22 wherein the gas inlet comprises a jet-forming orifice and the valve is selectively operated to convey pulses of gas to the filter.
- 25. The reactor system of claim 23 wherein the pulses of gas are conveyed to the downstream side of the one or more filters.
- 26. The reactor system of claim 20 further comprising a filter chamber containing the one or more filters and in fluid communication with the synthetic reaction chamber wherein the product gas flow from the synthetic reaction chamber enters the filter chamber and passes through the one or more filters.
- 27. The reaction system of claim 25 wherein the filter cleaning mechanism comprises one or more jet-forming orifices in the filter chamber and in fluid communication through a valve with a pressurized source of gas.
- 28. The reaction system of claim 27 wherein the one or more jet-forming orifices are positioned within the filter chamber to direct gas pulses to the downstream side of the one or more filters.
- 29. The reaction system of claim 28 wherein the filter is made of ceramic fibers.
- 30. The reaction system of claim 29 wherein the filter has a pore size of 10 microns or less.
- 31. A combustion system for production of carbon nanomaterials which comprises one or more burners for generating carbon nanomaterials, one or more inlets upstream of the one or more burners for delivery of a gas flow comprising hydrocarbon fuel and oxygen to the one or more burners, at least one ignition source for the one or more burners, a reduced pressure chamber in fluid communication with the one or more burners to provide reduced pressure downstream of the one or more burners for generating a gas flow containing carbon nanomaterials, one or more filters in the reduced pressure chamber downstream of the one or more burners positioned to receive the gas flow containing carbon nanomaterials and capture carbon nanomaterials in the gas flow, one or more gas inlets into the reduced pressure chamber for selective introduction of gas to dislodge carbon nanomaterials from the one or more filters, one or more outlets in the reduced pressure chamber for removal of carbon nanomaterials dislodged from the one or more filters from the reduced pressure chamber wherein dislodging the carbon nanomaterials from the one or more filters and removal of the carbon nanomaterials from the reduced pressure chamber does not require interruption of the gas flow of carbon nanomaterials from the one or more burners.
- 32. The combustion system of claim 31 wherein the gas flow is directed at the downstream side of the filter to dislodge carbon nanomaterials.
- 33. The combustion system of claim 32 wherein the one or more gas inlets are jet-forming orifices in fluid communication with a pressurized source of gas.
- 34. A method for collecting a carbon nanomaterial comprising the steps of:
providing a carbon nanomaterial synthesis chamber which produces a product gas flow which entrains at least one carbon nanomaterial; providing one or more filters positioned to intercept the product gas flow and capture the carbon nanomaterial; dislodging at least part of the carbon nanomaterial captured by the one or more filters without removing one or more of the filters from the product gas flow; and collecting the carbon nanomaterial dislodged from the filter without halting carbon nanomaterials synthesis.
- 35. The method of claim 34 wherein carbon nanomaterials are dislodged from the filter by introducing a flow of gas in contact with the one or more filters.
- 36. The method of claim 35 wherein the flow of gas is a jet-pulsed flow.
- 37. The method of claim 36 wherein the jet-pulsed flow of gas is directed to the downstream side of the one or more filters.
- 38. The method of claim 35 wherein jet-pulses of gas are introduced periodically to dislodge carbon nanomaterials.
- 39. The method of claim 38 wherein jet-pulses of gas are introduced to dislodge carbon materials responsive to an increase in pressure upstream of the one or more filters above a maximum selected pressure.
- 40. The method of claim 39 wherein jet-pulses of gas are automatically introduced at selective time intervals.
- 41. The method of claim 35 wherein dislodged carbon nanomaterials are collected into a collector which can be selectively isolated from the flow of product gas by selective operation of a valve.
- 42. The method of claim 34 wherein the carbon nanomaterials are dislodged from the one or more filters by application of a motive force to the one or more filters.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This invention takes priority from U.S. provisional Patent Application No. 60/316,423 filed Aug. 30, 2001, which is hereby incorporated by reference to the extent not inconsistent with the disclosure herein.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0002] This invention was made with government support from the National Science Foundation under contract number DMI-9314831. The United States government has certain rights in this invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60316423 |
Aug 2001 |
US |