Claims
- 1. A burner for carbon nanomaterial production in sooting flames comprising:
a plenum having at least one gas inlet for admitting a fuel gas and an oxidizing gas to the burner; and one or more porous refractory elements forming the outlet for the fuel and oxidizing gas from the burner.
- 2. The burner of claim 1, wherein at least one porous refractory element is a porous refractory plate.
- 3. The burner of claim 2 wherein the porous refractory plate has between about 20-60 pores per inch.
- 4. The burner of claim 2, wherein the porous refractory plate is made of zirconia.
- 5. The burner of claim 2, wherein the porous refractory plate is made of cordierite.
- 6. The burner of claim 2, wherein the porous refractory plate is made of carbon.
- 7. The burner of claim 2, wherein the porous refractory plate is made of reticulated zirconia having between about 20 and about 60 pores per inch.
- 8. The burner of claim 1, wherein the porous refractory plate is made of reticulated zirconia having between about 20 and about 60 pores per inch and and wherein the one or more porous refractory elements additionally comprise a porous metal frit having a pore size of about 1 micron located upstream of the porous refractory plates.
- 9. The burner of claim 1 wherein the one or more refractory elements are formed from refractory particulates.
- 10. The burner of claim 9 wherein the one or more refractory elements are formed from refractory grog particles.
- 11. The burner of claim 9 wherein the refractory particulates are zirconia.
- 12. The burner of claim 1 wherein at least one porous refractory element is formed from refractory particulates.
- 13. The burner of claim 12 wherein at least one porous refractory element is a porous refractory plate.
- 14. The burner of claim 1 wherein at least one porous refractory element comprises a cellular ceramic.
- 15. The burner of claim 1 wherein at least one porous refractory element comprises bundled refractory tubes.
- 16. The burner of claim 1 wherein the at least one porous refractory element comprise a reticulated refractory plate.
- 17. The burner of claim 1, wherein the plenum is surrounded by a fluid jacket.
- 18. The burner of claim 1, additionally comprising at least one gas mixing device contained within the plenum.
- 19. The burner of claim 1, additionally comprising an inlet for introducing secondary oxidizer to the periphery of the burner.
- 20. A combustion apparatus for carbon nanomaterial production comprising at least one burner having one or more porous refractory elements;
a reduced pressure chamber capable of providing reduced pressure downstream of the burner; and a system for collecting the carbon nanomaterials produced on combustion.
- 21. The combustion apparatus of claim 20, additionally comprising thermal insulation to create a reaction zone extending at least two inches downstream of the burner, wherein the temperature of the reaction zone is at least 1000° C.
- 22. The combustion apparatus of claim 20, additionally comprising an inlet for introducing secondary oxidizer at the periphery of the burner.
- 23. The combustion apparatus of claim 20 having multiple burners.
- 24. The combustion apparatus of claim 20 wherein the system for collecting carbon nanomaterials comprises a porous filter.
- 25. The combustion apparatus of claim 20 wherein the pressure in the reduced pressure chamber downstream of the burner is between about 30 and about 50 torr.
- 26. The combustion apparatus of claim 20 wherein the pressure in the reduced pressure chamber downstream of the burner is between about 20 and about 100 torr.
- 27. The combustion apparatus of claim 20 wherein the porous refractory element is a reticulated refractory.
- 28. The combustion apparatus of claim 20 wherein the one or more porous refractory elements comprise cellular ceramic.
- 29. The combustion apparatus of claim 20 wherein the one or more porous refractory elements comprise bundled refractory tubes.
- 30. The combustion apparatus of claim 20 wherein the one or more porous refractory elements comprise particulate refractory.
- 31. A method for preparing carbon nanomaterials comprising the steps of:
(a) providing a burner having at least one porous refractory element forming a burner outlet; (b) establishing a flame at the burner outlet in a reaction chamber under conditions such that macroscopic amounts of carbon nanomaterials are produced, the reaction chamber being held at a pressure less than atmospheric pressure and the flame being a sooting flame sustained by a hydrocarbon fuel and an oxidizing gas; (c) collecting the resulting condensables, the condensables containing carbon nanomaterials; and recovering the carbon nanomaterials from the condensables.
- 32. The method of claim 30 further comprising the step of insulating at least a portion of the reaction chamber so as to create a reaction zone extending at least two inches downstream of the burner, wherein the temperature is greater than about 1000° C.
- 33. The method of claim 30 further comprising the step of providing additional oxygen containing gas downstream of the porous refractory element.
- 34. A method for making carbon nanomaterials comprising the steps of:
(a) providing an oxidizing gas stream and an aromatic-containing hydrocarbon fuel gas stream; (b) mixing the gas streams together; (c) distributing the mixed gas streams across at least one porous refractory element; (d) igniting the mixed stream downstream of the porous refractory element in a chamber maintained at sub-ambient pressure to form a sooting flame and generate combustion products; (e) collecting the condensables; and (f) recovering the carbon nanomaterials from the condensables.
- 35. The method of claim 34 wherein the hydrocarbon fuel is comprised of one or more polyaromatic hydrocarbons.
- 36. The method of claim 34 further comprising a step of passing the combustion products generated from the sooting flame into an insulated reaction zone extending at least 2 inches downstream of the burner wherein the temperature in the reaction zone is greater than about 1000° C.
- 37. The method of claim 34 further comprising a step of providing additional oxidizing gas at the perimeter of the porous refractory burner.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application takes priority from U.S. provisional Patent Application No. 60/316,426 filed Aug. 30, 2001, which is hereby incorporated by reference herein to the extent not inconsistent with the disclosure.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0002] This invention was made with government support from the U.S. Department of Energy under SBIR grant number DE-FG03-98ER82692. The United States government has certain rights in this invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60316426 |
Aug 2001 |
US |