Claims
- 1. A non-engine based exhaust component rapid aging system (NEBECRAS) comprising a combustor in fluid communication with an air supplier, a fuel supplier, a lubricant supplier comprising a volatilized lubricant supplier, and a catalytic converter, said combustor being adapted to provide substantially continuous and effective stoichiometric combustion of a feedstream to produce an exhaust product.
- 2. The NEBECRAS of claim 1 wherein the lubricant supplier comprises an oil injection nozzle in fluid communication with said volatilized lubricant supplier.
- 3. The NEBECRAS of claim 2 wherein said volatilized lubricant supplier comprises a reservoir adapted to hold a volume of lubricant effective to simulate consumption of volatilized oil by an engine.
- 4. The NEBECRAS of claim 3 wherein said reservoir is in fluid communication with a source of pressurized gas.
- 5. The NEBECRAS of claim 3 wherein said reservoir is in fluid communication with said combustor, thereby providing a source of said exhaust product.
- 6. The NEBECRAS of claim 5 wherein said fluid communication comprises a probe effective to deliver a combination of said pressurized gas and said exhaust product through said volume of lubricant.
- 7. The NEBECRAS of claim 6 wherein said reservoir comprises a temperature control unit effective together with said combination of said pressurized gas and said exhaust product to volatilize an amount of said lubricant.
- 8. The NEBECRAS of claim 7 wherein said probe comprises tubing comprising openings therethrough.
- 9. The NEBECRAS of claim 8 wherein said probe comprises an inlet probe in fluid communication with a first probe arm, a second probe arm, and a third probe arm.
- 10. The NEBECRAS of claim 9 wherein said inlet probe comprises a number of openings and said first, second, and third probe arms comprise one or more independent quantit(ies) of openings.
- 11. The NEBECRAS of claim 10 wherein said number of openings is about {fraction (1/4)} as many as said one or more independent quantit(ies) of openings.
- 12. The NEBECRAS of claim 11 wherein said fluid communication between said reservoir and said oil injection nozzle comprises volatilized oil injection tubing.
- 13. The NEBECRAS of claim 7 wherein said reservoir comprises an exit port engaged with said volatilized oil injection tubing, said exit port being adapted to prevent droplets of bulk oil from entering said volatilized oil injection tubing.
- 14. The NEBECRAS of claim 13 wherein said exit port comprises an external side and a reservoir side, said reservoir side comprising a cover effective to permit gas and volatilized oil to pass to said volatilized oil injection tubing and to prevent droplets of bulk oil from passing to said volatilized oil injection tubing.
- 15. The NEBECRAS of claim 3 wherein said volume of lubricant is about 2 quarts.
- 16. The NEBECRAS of claim 5 wherein said volume of lubricant is about 2 quarts.
- 17. The NEBECRAS of claim 6 wherein said volume of lubricant is about 2 quarts.
- 18. The NEBECRAS of claim 14 wherein said volume of lubricant is about 2 quarts.
- 19. A NEBECRAS for aging a catalytic converter comprising:
catalytic converter means; combustion means in fluid communication with said catalytic converter means, said combustion means being effective to provide substantially continuous stoichiometric combustion of automotive fuel; fuel injection means in fluid communication with said combustion means; and, lubricant injection means comprising means for injecting volatilized lubricant in fluid communication with said catalytic converter means.
- 20. A NEBECRAS for aging a catalytic converter comprising:
a burner adapted to provide substantially continuous and effective stoichiometric combustion of a feedstream to produce an exhaust product; a fuel injector system in fluid communication with said burner; a lubricant injector system in fluid communication with said burner, said lubricant injector system being adapted to inject volatilized lubricant; and, a catalytic converter in fluid communication with said exhaust product.
- 21. The NEBECRAS of claim 20 wherein the lubricant injector system comprises a lubricant reservoir retaining a volume of lubricant, the lubricant reservoir being in fluid communication with a source of gas and in fluid communication with an oil injection nozzle.
- 22. The NEBECRAS of claim 21 wherein said lubricant reservoir is in fluid communication with said combustor, thereby providing a source of said exhaust product.
- 23. The NEBECRAS of claim 22 wherein said fluid communication comprises a probe effective to deliver a combination of said pressurized gas and said exhaust product through said volume of lubricant.
- 24. The NEBECRAS of claim 23 wherein said reservoir comprises a temperature control unit effective together with said combination of said pressurized gas and said exhaust product to volatilize an amount of said lubricant.
- 25. The NEBECRAS of claim 24 wherein said probe comprises tubing comprising openings therethrough.
- 26. The NEBECRAS of claim 25 wherein said probe comprises an inlet probe in fluid communication with a first probe arm, a second probe arm, and a third probe arm.
- 27. The NEBECRAS of claim 26 wherein said inlet probe comprises a number of openings and said first, second, and third probe arms comprise one or more independent quantit(ies) of openings.
- 28. The NEBECRAS of claim 27 wherein said number of openings is about {fraction (1/4)} as many as said one or more independent quantit(ies) of openings.
- 29. The NEBECRAS of claim 28 wherein said fluid communication between said reservoir and said oil injection nozzle comprises volatilized oil injection tubing.
- 30. The NEBECRAS of claim 29 wherein said reservoir comprises an exit port engaged with said volatilized oil injection tubing, said exit port being adapted to prevent droplets of bulk oil from entering said volatilized oil injection tubing.
- 31. The NEBECRAS of claim 30 wherein said exit port comprises an external side and a reservoir side, and the reservoir side comprises a cover effective to permit gas and volatilized oil to pass through the cover but to prevent droplets of bulk oil from passing through the cover.
- 32. The NEBECRAS of claim 20 wherein said volume of lubricant is about 2 quarts.
- 33. The NEBECRAS of claim 24 wherein said volume of lubricant is about 2 quarts.
- 34. The NEBECRAS of claim 30 wherein said volume of lubricant is about 2 quarts.
- 35. The NEBECRAS of claim 31 wherein said volume of lubricant is about 2 quarts.
- 36. A process for simulating the impact of volatile oil consumption on a catalytic converter, the method comprising:
providing a non-engine based exhaust component rapid aging system (NEBECRAS) comprising a combustor in fluid communication with an air supplier, a fuel supplier, an oil injection nozzle in fluid communication with a source of volatilized oil, and a catalytic converter, said combustor being adapted to provide substantially continuous and effective stoichiometric combustion of a fuel feedstream to produce an exhaust product; exposing said catalytic converter to accelerated aging conditions comprising a flow of volatilized lubricating oil from a reservoir at an initial flow rate for an initial flow time effective to simulate the flow of volatilized lubricating oil to the catalytic converter during operation of an engine, producing a volatilized lubricant aged catalytic converter.
- 37. The process of claim 36 further comprising analyzing the phosphorus content of the lubricant remaining in the reservoir.
- 38. The process of claim 37 comprising
providing a fresh charge of lubricant to said reservoir; and, exposing said catalytic converter to second accelerated aging conditions comprising a flow of volatilized lubricating oil from the reservoir at a second flow rate for a second flow time effective to simulate the flow of volatilized lubricating oil to the catalytic converter during operation of an engine, producing a volatilized lubricant aged catalytic converter; and, analyzing the phosphorus content of the lubricant remaining in the reservoir.
- 39. The process of claim 38 further comprising providing additional fresh charges of lubricant and thereafter exposing said catalytic converter to the accelerated aging conditions for a plurality of lengths of time.
- 40. The process of claim 39 wherein said plurality of lengths of time are the following number of hours: 1, 2, 3, 4, 6, 8, 10, 15, and 20.
- 41. The process of claim 38 further comprising determining the real volatile consumption (V-C) factor and phosphorus (P)-depletion curve for the process and using said real V-C factor and P-depletion curve to determine an effective volume of oil and oil change interval for said process.
- 42. The process of claim 39 further comprising determining the real V-C factor and P-depletion curve for the process and using said real V-C factor and P-depletion curve to determine an effective volume of oil and oil change interval for said process.
- 43. The process of claim 38 further comprising evaluating the efficiency of the volatilized lubricant aged catalytic converter.
- 44. The method of claim 43 further comprising preventing contamination of said flow of volatilized lubricating oil by droplets of oil from said reservoir.
- 45. A process for simulating catalytic converter aging using a non-engine based exhaust component rapid aging system (NEBECRAS), the method comprising:
supplying fuel and volatilized lubricant to a combustor via a nozzle at an air to fuel ratio (AFR) and under conditions effective to produce a feedstream flowpath comprising an air shroud effective to prevent flame from attaching to the nozzle during combustion of the fuel; substantially continuously and effectively stoichiometrically combusting the feedstream while preventing the flame from remaining in constant contact with an inner wall of the combuster tube, thereby producing an exhaust product; and exposing a catalytic converter to the exhaust product, producing a volatilized lubricant aged catalytic converter.
- 46. The process of claim 45 further comprising analyzing the phosphorus content of the lubricant remaining in the reservoir.
- 47. The process of claim 46 comprising
providing a fresh charge of lubricant to said reservoir; and, exposing said catalytic converter to second accelerated aging conditions comprising a flow of volatilized lubricating oil from the reservoir at a second flow rate for a second flow time effective to simulate the flow of volatilized lubricating oil to the catalytic converter during operation of an engine, producing a volatilized lubricant aged catalytic converter; and, analyzing the phosphorus content of the lubricant remaining in the reservoir.
- 48. The process of claim 47 further comprising providing additional fresh charges of lubricant and thereafter exposing said catalytic converter to the accelerated aging conditions for a plurality of lengths of time.
- 49. The process of claim 48 wherein said plurality of lengths of time are the following number of hours: 1, 2, 3, 4, 6, 8, 10, 15, and 20.
- 50. The process of claim 47 further comprising determining the real V-C factor and P-depletion curve for the process and using said real V-C factor and P-depletion curve to determine an effective volume of oil and oil change interval for said process.
- 51. The process of claim 48 further comprising determining the real V-C factor and P-depletion curve for the process and using said real V-C factor and P-depletion curve to determine an effective volume of oil and oil change interval for said process.
- 52. The process of claim 49 further comprising evaluating the efficiency of the volatilized lubricant aged catalytic converter.
- 53. The method of claim 52 further comprising preventing contamination of said flow of volatilized lubricating oil by droplets of oil from said reservoir.
- 54. A method for simulating catalytic converter aging using a NEBECRAS, the method comprising:
supplying fuel to a combustor tube via a nozzle at an AFR under conditions effective to produce a feedstream flowpath comprising an air shroud effective to prevent flame from attaching to the nozzle during combustion of the fuel; injecting volatilized lubricant into said feedstream flowpath; substantially continuously and effectively stoichiometrically combusting components of the feedstream selected from the group consisting of the fuel, the lubricant, and combinations thereof to produce an exhaust product; and exposing a catalytic converter to the exhaust product, producing an aged catalytic converter.
- 55. The process of claim 54 further comprising analyzing the phosphorus content of the lubricant remaining in the reservoir.
- 56. The process of claim 55 further comprising providing additional fresh charges of lubricant and thereafter exposing said catalytic converter to the accelerated aging conditions for a plurality of lengths of time.
- 57. The process of claim 56 wherein said plurality of lengths of time are the following number of hours: 1, 2, 3, 4, 6, 8, 10, 15, and 20.
- 58. The process of claim 54 further comprising determining the real V-C factor and P-depletion curve for the process and using said real V-C factor and P-depletion curve to determine an effective volume of oil and oil change interval for said process.
- 59. The process of claim 56 further comprising determining the real V-C factor and P-depletion curve for the process and using said real V-C factor and P-depletion curve to determine an effective volume of oil and oil change interval for said process.
- 60. The process of claim 58 further comprising evaluating the efficiency of the volatilized lubricant aged catalytic converter.
- 61. The method of claim 60 further comprising preventing contamination of said flow of volatilized lubricating oil by droplets of oil from said reservoir.
PRIORITY DATA
[0001] The present application is a continuation-in-part of U.S. patent application Ser. No. 10/213,890, incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10213890 |
Aug 2002 |
US |
Child |
10458023 |
Jun 2003 |
US |