Claims
- 1. A process for treating a crude oil fraction to reduce levels therein of nitrogen-bearing compounds, said process comprising:
(a) exposing said crude oil fraction to sonic energy, said sonic energy possessing sufficient magnitude to oxidize a majority of said nitrogen-bearing compounds present in said crude oil fraction; and (b) separating said oxidized nitrogen-bearing compounds produced in step (a) from said crude oil fraction.
- 2. The process of claim 1 wherein prior to the application of sonic energy in step (a), a hydroperoxide is mixed with said crude oil fraction.
- 3. The process of claim 1 wherein said crude oil fraction is a fraction boiling within the diesel range.
- 4. The process of claim 3 wherein said crude oil fraction is a member selected from the group consisting of fluid catalytic cracking (FCC) cycle oil fractions, coker distillate fractions, straight run diesel fractions, and blends thereof.
- 5. The process of claim 1, wherein said crude oil fraction is a fraction boiling within the gas oil range.
- 6. The process of claim 5 wherein said crude oil fraction is a member selected from the group consisting of FCC cycle oil, FCC slurry oil, light gas oil, heavy gas oil, and coker gas oil.
- 7. The process of claim 1 wherein said crude oil fraction is a member selected from the group consisting of gasoline, jet fuel, straight-run diesel, blends of straight-run diesel and FCC light cycle oil, and petroleum residuum-based fuel oils.
- 8. The process of claim 1 wherein in step (a), said crude oil fraction is exposed to said sonic energy.
- 9. The process of claim 1 wherein in step (a) said crude oil fraction is exposed to said sonic energy from about 1 second to about 1 minute.
- 10. The process of claim 1 further comprising contacting said emulsion with a transition metal catalyst during step (a).
- 11. The process of claim 10 wherein said transition metal catalyst is a member selected from the group consisting of metals having atomic numbers of 21 through 29, 39 through 47, 57 through 79.
- 12. The process of claim 10 wherein said transition metal catalyst is a member selected from the group consisting of nickel, silver, tungsten, cobalt, molybdenum, and combinations thereof.
- 13. The process of claim 10 wherein said transition metal catalyst is a member selected from the group consisting of nickel, silver, tungsten, and combinations thereof.
- 14. The process of claim 2 wherein said hydroperoxide is hydrogen peroxide.
- 15. The process of claim 1 further comprising preheating said crude oil fraction to a temperature of from about 20° C. to about 200° C. prior to step (a).
- 16. The process of claim 1 further comprising preheating said crude oil fraction to a temperature of from about 40° C. to about 125° C. prior to step (a).
- 17. The process of claim 1 wherein step (a) is performed at a pressure of less than 400 psia.
- 18. The process of claim 1 wherein step (a) is performed at a pressure of less than 50 psia.
- 19. The process of claim 1 wherein step (a) is performed at a pressure within the range of from about atmospheric pressure to about 50 psia.
- 20. The process of claim 1 wherein in step (a), said sonic energy possesses a frequency ranging from about 2 kHz to about 19 kHz and further possesses a displacement amplitude ranging from about 10 micrometers to about 300 micrometers.
- 21. A process for treating an organic liquid to reduce levels therein of nitrogen-bearing compounds, said process comprising:
(a) combining said organic liquid with an aqueous liquid to form an emulsion; (b) subjecting said emulsion to sonic energy at a sufficient intensity and for a sufficient time to facilitate oxidation of at least a majority of said nitrogen-containing compounds in said organic liquid and to convert olefinic compounds in said organic liquid to paraffins; (c) permitting said emulsion to separate into aqueous and organic phases of which said organic phase comprises said organic liquid; and (d) isolating said organic liquid from said aqueous phase.
- 22. The process of claim 21 wherein in step (a) comprises combining said organic liquid and said aqueous fluid at an (organic liquid): (aqueous fluid) volume ratio of from about 8:1 to about 1:5.
- 23. The process of claim 21 wherein in step (a) comprises combining said organic liquid and said aqueous fluid at an (organic liquid): (aqueous fluid) volume ratio of from about 5:1 to about 1:1.
- 24. The process of claim 21 wherein in step (a) comprises combining said organic liquid and said aqueous fluid at an (organic liquid): (aqueous fluid) volume ratio of from about 4:1 to about 2:1.
- 25. The process of claim 21 further comprising contacting said emulsion with a transition metal catalyst while subjecting said emulsion to said sonic energy in step (b).
- 26. The process of claim 25 in which said transition metal catalyst is a member selected from the group consisting of nickel, silver, tungsten, and combinations thereof.
- 27. The process of claim 1 wherein step (a) is performed in batchwise manner.
- 28. The process of claim 1 wherein step (a) is performed in continuous-flow manner.
- 29. The process of claim 1 wherein in step (a), said sonic energy possesses a frequency ranging from about 2 kHz to about 19 kHz.
- 30. The process of claim 29 wherein said sonic energy possesses a frequency ranging from about 10 kHz to about 19 kHz.
- 31. The process of claim 30 wherein said sonic energy possesses a frequency ranging from about 17 kHz to about 19 kHz.
- 32. The process of claim 30 wherein said sonic energy possesses a displacement amplitude ranging from about 10 microns to about 300 microns.
- 33. The process of claim 32 wherein said sonic energy possesses a displacement amplitude ranging from about 30 microns to about 120 microns.
- 34. The process of claim 1 wherein in step (a), said sonic energy is applied at a power density ranging from about 0.01 watt/cubic cm to about 100.00 watts/cubic cm.
- 35. A process for removing organic sulfur from a crude oil fraction, said process comprising:
(a) exposing said crude oil fraction to a sonic energy having a frequency ranging from about 2 kHz to about 19 kHz, and having an amplitude displacement ranging from about 10 microns to about 300 microns; (b) separating said emulsion after said exposure to said sonic energy into aqueous and organic phases; (c) recovering said organic phase from said aqueous phase; and (d) contacting said organic phase with hydrogen gas under conditions causing conversion of said organic sulfur to sulfur dioxide by hydrodesulfurization.
- 36. The processing of claim 35 wherein said crude oil fraction is a fraction boiling within the diesel range.
- 37. The process of claim 36 wherein said crude oil fraction is a member selected from the group consisting of fluid catalytic cracking (FCC) cycle oil fractions, coker distillate fractions, straight run diesel fractions, and blends thereof.
- 38. The process of claim 35 wherein said crude oil fraction is a fraction boiling within the gas oil range.
- 39. The process of claim 38 wherein said crude oil fraction is a member selected form the group consisting of FCC cycle oil, FCC slurry oil, light gas oil, heavy gas oil, and coker gas oil.
- 40. A process for treating an organic liquid containing fused-ring aromatic compounds and olefinic compounds such that said fused rings in such fused-ring aromatic compounds become open and said olefinic compounds are converted to saturated compounds, said process comprising the step of exposing said organic liquid to a sonic energy having a frequency ranging from between about 2 kHz to about 100 kHz and possessing a displacement amplitude ranging from about 10 micrometers to about 300 micrometers for a duration ranging from between about 1 second to about 30 minutes.
- 41. The process of claim 40 wherein said sonic energy possesses a frequency ranging from about 10 kHz to about 19 kHz and is applied to said organic liquid from between about 1 second to about 1 minute.
- 42. The process of claim 41 wherein said sonic energy possesses a displacement amplitude ranging from about 30 micrometers to about 120 micrometers.
- 43. The method of claim 40 further comprising contacting organic liquid with a catalyst during said application of said sonic energy.
- 44. The process of claim 34 wherein in step (a), said sonic energy is applied at a power density ranging from about 1 watt/cubic cm to about 20 watts/cubic cm.
- 45. The process of claim 35 wherein said sonic energy is applied at a power density ranging from about 0.01 watts/cubic cm to about 100.00 watts/cubic cm.
- 46. The process of claim 45 wherein said sonic energy is applied at a power density ranging from about 1 watt/cubic cm to about 20.00 watts/cubic cm.
- 47. The process of claim 40 wherein said sonic energy is applied at a power density ranging from about 0.01 watts/cubic cm to about 100.00 watts/cubic cm.
- 48. The process of claim 47 wherein said sonic energy is applied at a power density ranging from about 1 watt/cubic cm to about 20.00 watts/cubic cm.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a continuation-in-part of pending U.S. application Ser. No. 09/853,127, filed by Gunnerman et al., entitled A TREATMENT OF CRUDE OIL FRACTIONS, FOSSIL FUELS, AND PRODUCTS THEREOF WITH ULTRASOUND, the teachings of which are expressly incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09853127 |
May 2001 |
US |
Child |
10431666 |
May 2003 |
US |