Claims
- 1. A method for simulating at least one drive cycle of a vehicle using a non-engine based test system, the method comprising:
providing a non-engine based test system comprising a combustor in fluid communication with a catalytic converter from said vehicle; supplying fuel and air to said combustor at an air to fuel ratio (AFR) and under conditions effective to produce a feedstream flowpath; substantially stoichiometrically combusting at least a portion of said fuel in said feedstream flowpath under conditions effective to simulate at least one drive cycle of said vehicle and to produce a simulated drive cycle exhaust product for said vehicle, said conditions being effective to prevent substantial damage to said combustor; and collecting and analyzing said simulated drive cycle exhaust product.
- 2. The method of claim 1 wherein said supplying fuel and air occurs through a component which produces a feedstream flowpath comprising an air shroud effective to prevent flame from attaching to said component during said combusting.
- 3. The method of claim 1 wherein said supplying fuel and air produces a feedstream flowpath effective to prevent flame from remaining in constant contact with an inner wall of said combustor during said combusting.
- 4. The method of claim 2 wherein said supplying fuel and air produces a feedstream flowpath effective to prevent flame from remaining in constant contact with an inner wall of said combustor during said combusting.
- 5. The method of claim 1 wherein said drive cycle is a nonrepetitive drive cycle covering 7.5 miles in 1372 seconds with an average speed of 19.7 mph. and a maximum speed of 56.7 mph.
- 6. The method of claim 3 wherein said drive cycle is a nonrepetitive drive cycle covering 7.5 miles in 1372 seconds with an average speed of 19.7 mph. and a maximum speed of 56.7 mph.
- 7. The method of claim 4 wherein said drive cycle is a nonrepetitive drive cycle covering 7.5 miles in 1372 seconds with an average speed of 19.7 mph. and a maximum speed of 56.7 mph.
- 8. The method of claim 1 wherein said drive cycle consists essentially of:
a cold-start, 505-second, cold transient phase effective to produce a phase I product; followed by an 864-second stabilized phase effective to produce a phase II product; followed by a 10 minute soak phase; followed by a hot-start, 505-second, hot transient phase effective to produce a phase III product.
- 9. The method of claim 3 wherein said drive cycle consists essentially of:
a cold-start, 505-second, cold transient phase effective to produce a phase I product; followed by an 864-second stabilized phase effective to produce a phase II product; followed by a 10 minute soak phase; followed by a hot-start, 505-second, hot transient phase effective to produce a phase III product.
- 10. The method of claim 4 wherein said drive cycle consists essentially of:
a cold-start, 505-second, cold transient phase effective to produce a phase I product; followed by an 864-second stabilized phase effective to produce a phase II product; followed by a 10 minute soak phase; followed by a hot-start, 505-second, hot transient phase effective to produce a phase III product.
- 11. The method of claim 1 wherein said drive cycle simulates a distance of 11.04 miles at an average speed of 21.2 miles per hour.
- 12. The method of claim 10 wherein said drive cycle simulates a distance of 11.04 miles at an average speed of 21.2 miles per hour.
- 13. The method of claim 1 wherein said analyzing said simulated drive cycle exhaust product comprises:
diluting and mixing said simulated drive cycle exhaust product with filtered background air to a known constant volume flowrate to produce a dilute exhaust product; analyzing a proportional sample of said dilute exhaust product for emissions; and, mathematically weighting said emissions to represent weighted emissions for each simulated trip from cold start to hot start.
- 14. The method of claim 4 wherein said analyzing said simulated drive cycle exhaust product comprises:
diluting and mixing said simulated drive cycle exhaust product with filtered background air to a known constant volume flowrate to produce a dilute exhaust product; analyzing a proportional sample of said dilute exhaust product for emissions; and, mathematically weighting said emissions to represent weighted emissions for each simulated trip from cold start to hot start.
- 15. The method of claim 10 wherein said analyzing said simulated drive cycle exhaust product comprises:
diluting and mixing said simulated drive cycle exhaust product with filtered background air to a known constant volume flowrate to produce a dilute exhaust product; analyzing a proportional sample of said dilute exhaust product for emissions; and, mathematically weighting said emissions to represent weighted emissions for each simulated trip from cold start to hot start.
- 16. The method of claim 12 wherein said analyzing said simulated drive cycle exhaust product comprises:
diluting and mixing said simulated drive cycle exhaust product with filtered background air to a known constant volume flowrate to produce a dilute exhaust product; analyzing a proportional sample of said dilute exhaust product for emissions; and, mathematically weighting said emissions to represent weighted emissions for each simulated trip from cold start to hot start.
- 17. The method of claim 1 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in, a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 18. The method of claim 4 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 19. The method of claim 13 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 20. The method of claim 14 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 21. The method of claim 15 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 22. The method of claim 16 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 23. A method for simulating at least one drive cycle of a vehicle using a non-engine based test system, the method comprising:
providing a non-engine based test system comprising a combustor in fluid communication with a catalytic converter from said vehicle; supplying fuel and air via a component to a combustor in said non-engine based test system at an air to fuel ratio (AFR) and under conditions effective to produce an air and fuel mixing feedstream having a feedstream flowpath comprising an air shroud effective to prevent flame from attaching to said component and to prevent flame from remaining in constant contact with an inner wall of said combustor during combustion of said fuel; combusting at least a portion of said fuel in said non-engine based test system under conditions effective to simulate at least one drive cycle of said vehicle, producing a simulated drive cycle exhaust product for said vehicle; and collecting and analyzing said simulated drive cycle exhaust product.
- 24. The method of claim 23 wherein said drive cycle is a nonrepetitive drive cycle covering 7.5 miles in 1372 seconds with an average speed of 19.7 mph. and a maximum speed of 56.7 mph.
- 25. The method of claim 23 wherein said drive cycle consists essentially of:
a cold-start, 505-second, cold transient phase effective to produce a phase I product; followed by an 864-second stabilized phase effective to produce a phase II product; followed by a 10 minute soak phase; followed by a hot-start, 505-second, hot transient phase effective to produce a phase III product.
- 26. The method of claim 24 wherein said drive cycle consists essentially of:
a cold-start, 505-second, cold transient phase effective to produce a phase I product; followed by an 864-second stabilized phase effective to produce a phase II product; followed by a 10 minute soak phase; followed by a hot-start, 505-second, hot transient phase effective to produce a phase III product.
- 27. The method of claim 23 wherein said drive cycle simulates a distance of 11.04 miles at an average speed of 21.2 miles per hour.
- 28. The method of claim 26 wherein said drive cycle simulates a distance of 11.04 miles at an average speed of 21.2 miles per hour.
- 29. The method of claim 23 wherein said analyzing said simulated drive cycle exhaust product comprises:
diluting and mixing said simulated drive cycle exhaust product with filtered background air to a known constant volume flowrate to produce a dilute exhaust product; analyzing a proportional sample of said dilute exhaust product for emissions; and, mathematically weighting said emissions to represent weighted emissions for each simulated trip from cold start to hot start.
- 30. The method of claim 26 wherein said analyzing said simulated drive cycle exhaust product comprises:
diluting and mixing said simulated drive cycle exhaust product with filtered background air to a known constant volume flowrate to produce a dilute exhaust product; analyzing a proportional sample of said dilute exhaust product for emissions; and, mathematically weighting said emissions to represent weighted emissions for each simulated trip from cold start to hot start.
- 31. The method of claim 23 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 32. The method of claim 25 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 33. The method of claim 26 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 34. The method of claim 30 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 35. A method for simulating at least one drive cycle of a vehicle using a non-engine based test system, the method comprising:
providing a non-engine based test system comprising a combustor in fluid communication with a catalytic converter from said vehicle; supplying fuel and air via a component to a combustor in said non-engine based test system 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 said component and to prevent flame from remaining in constant contact with an inner wall of said combustor during said combustion of fuel; combusting at least a portion of said fuel while varying exhaust flowrate within a range of from 0 to about 200 standard cubic feet per minute (scfm), varying exhaust gas temperature within a range of from about 20 to about 900° C.; and, varying exhaust gas stoichiometry within from about 10 to about 40 AFR, thereby simulating at least one drive cycle, producing a simulated drive cycle exhaust product for said vehicle; and collecting and analyzing said simulated drive cycle exhaust product.
- 36. The method of claim 35 further comprising varying said exhaust gas stoichiometry within from about 10 to about 20 AFR.
- 37. The method of claim 35 further comprising substantially continuously and effectively stoichiometrically combusting said fuel.
- 38. The method of claim 36 further comprising substantially continuously and effectively stoichiometrically combusting said fuel.
- 39. The method of claim 35 wherein said drive cycle is a nonrepetitive drive cycle covering 7.5 miles in 1372 seconds with an average speed of 19.7 mph. and a maximum speed of 56.7 mph.
- 40. The method of claim 36 wherein said drive cycle is a nonrepetitive drive cycle covering 7.5 miles in 1372 seconds with an average speed of 19.7 mph. and a maximum speed of 56.7 mph.
- 41. The method of claim 38 wherein said drive cycle is a nonrepetitive drive cycle covering 7.5 miles in 1372 seconds with an average speed of 19.7 mph. and a maximum speed of 56.7 mph.
- 42. The method of claim 35 wherein said drive cycle consists essentially of:
a cold-start, 505-second, cold transient phase effective to produce a phase I product; followed by an 864-second stabilized phase effective to produce a phase II product; followed by a 10 minute soak phase; followed by a hot-start, 505-second, hot transient phase effective to produce a phase III product.
- 43. The method of claim 36 wherein said drive cycle consists essentially of:
a cold-start, 505-second, cold transient phase effective to produce a phase I product; followed by an 864-second stabilized phase effective to produce a phase II product; followed by a 10 minute soak phase; followed by a hot-start, 505-second, hot transient phase effective to produce a phase III product.
- 44. The method of claim 38 wherein said drive cycle consists essentially of:
a cold-start, 505-second, cold transient phase effective to produce a phase I product; followed by an 864-second stabilized phase effective to produce a phase II product; followed by a 10 minute soak phase; followed by a hot-start, 505-second, hot transient phase effective to produce a phase III product.
- 45. The method of claim 35 wherein said drive cycle simulates a distance of 11.04 miles at an average speed of 21.2 miles per hour.
- 46. The method of claim 44 wherein said drive cycle simulates a distance of 11.04 miles at an average speed of 21.2 miles per hour.
- 47. The method of claim 35 wherein said analyzing said simulated drive cycle exhaust product comprises:
diluting and mixing said simulated drive cycle exhaust product with filtered background air to a known constant volume flowrate to produce a dilute exhaust product; analyzing a proportional sample of said dilute exhaust product for emissions; and, mathematically weighting said emissions to represent weighted emissions for each simulated trip from cold start to hot start.
- 48. The method of claim 44 wherein said analyzing said simulated drive cycle exhaust product comprises:
diluting and mixing said simulated drive cycle exhaust product with filtered background air to a known constant volume flowrate to produce a dilute exhaust product; analyzing a proportional sample of said dilute exhaust product for emissions; and, mathematically weighting said emissions to represent weighted emissions for each simulated trip from cold start to hot start.
- 49. The method of claim 35 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 50. The method of claim 42 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 51. The method of claim 43 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 52. The method of claim 44 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 53. A method for simulating at least one drive cycle of a vehicle using a non-engine based test system, the method comprising:
providing a non-engine based test system comprising a combustor in fluid communication with a catalytic converter from said vehicle; supplying fuel and air to said combustor via a component at an AFR and under conditions effective to produce a feedstream flowpath comprising an air shroud effective to prevent flame from attaching to the component and to prevent flame from remaining in constant contact with an inner wall of said combustor during combustion of the fuel; combusting fuel in the feedstream flowpath while varying exhaust flowrate within a range of from 0 to about 200 standard cubic feet per minute (scfm), varying exhaust gas temperature within a range of from about 20 to about 900° C.; and, varying exhaust gas stoichiometry within a range of from about 10 to about 20 AFR, thereby simulating at least one drive cycle, producing a simulated drive cycle exhaust product for said vehicle, said drive cycle consisting essentially of: a cold-start, 505-second, cold transient phase effective to produce a phase I product; followed by an 864-second stabilized phase effective to produce a phase II product; followed by a 10 minute soak phase; followed by a hot-start, 505-second, hot transient phase effective to produce a phase III product; and diluting and mixing said simulated drive cycle exhaust product with filtered background air to a known constant volume flowrate to produce a dilute exhaust product; analyzing a proportional sample of said dilute exhaust product for emissions; and, mathematically weighting said emissions to represent weighted emissions for each simulated trip from cold start to hot start.
- 54. A method for simulating at least one drive cycle of a vehicle using a non-engine based test system, the method comprising:
providing a non-engine based test system comprising a combustor in fluid communication with a catalytic converter from said vehicle; supplying fuel and air to said combustor under conditions effective to produce an idealized simulated exhaust gas and to simulate operation of said vehicle during at least one drive cycle, producing a simulated drive cycle exhaust product for said vehicle; and, collecting and analyzing said simulated drive cycle exhaust product.
- 55. The method of claim 54 wherein said idealized simulated exhaust gas comprises NOx.
- 56. The method of claim 54 wherein said supplying fuel and air to said combustor occurs via a component which produces a feedstream flowpath comprising an air shroud effective to prevent flame from attaching to the component during combustion of the fuel and to prevent flame from remaining in constant contact with an inner wall of the combustor tube during combustion of the fuel.
- 57. The method of claim 55 wherein said supplying fuel and air to said combustor occurs via a component which produces a feedstream flowpath comprising an air shroud effective to prevent flame from attaching to the component during combustion of the fuel and to prevent flame from remaining in constant contact with an inner wall of the combustor tube during combustion of the fuel.
- 58. The method of claim 54 further comprising substantially continuously and effectively stoichiometrically combusting said fuel.
- 59. The method of claim 56 further comprising substantially continuously and effectively stoichiometrically combusting said fuel.
- 60. The method of claim 57 further comprising substantially continuously and effectively stoichiometrically combusting said fuel.
- 61. The method of claim 54 wherein said drive cycle is a nonrepetitive drive cycle covering 7.5 miles in 1372 seconds with an average speed of 19.7 mph. and a maximum speed of 56.7 mph.
- 62. The method of claim 60 wherein said drive cycle is a nonrepetitive drive cycle covering 7.5 miles in 1372 seconds with an average speed of 19.7 mph. and a maximum speed of 56.7 mph.
- 63. The method of claim 54 wherein said drive cycle consists essentially of:
a cold-start, 505-second, cold transient phase effective to produce a phase I product; followed by an 864-second stabilized phase effective to produce a phase II product; followed by a 10 minute soak phase; followed by a hot-start, 505-second, hot transient phase effective to produce a phase III product.
- 64. The method of claim 56 wherein said drive cycle consists essentially of:
a cold-start, 505-second, cold transient phase effective to produce a phase I product; followed by an 864-second stabilized phase effective to produce a phase II product; followed by a 10 minute soak phase; followed by a hot-start, 505-second, hot transient phase effective to produce a phase III product.
- 65. The method of claim 57 wherein said drive cycle consists essentially of:
a cold-start, 505-second, cold transient phase effective to produce a phase I product; followed by an 864-second stabilized phase effective to produce a phase II product; followed by a 10 minute soak phase; followed by a hot-start, 505-second, hot transient phase effective to produce a phase III product.
- 66. The method of claim 60 wherein said drive cycle consists essentially of:
a cold-start, 505-second, cold transient phase effective to produce a phase I product; followed by an 864-second stabilized phase effective to produce a phase II product; followed by a 10 minute soak phase; followed by a hot-start, 505-second, hot transient phase effective to produce a phase III product.
- 67. The method of claim 54 wherein said drive cycle simulates a distance of 11.04 miles at an average speed of 21.2 miles per hour.
- 68. The method of claim 66 wherein said drive cycle simulates a distance of 11.04 miles at an average speed of 21.2 miles per hour.
- 69. The method of claim 54 wherein said analyzing said simulated drive cycle exhaust product comprises:
diluting and mixing said simulated drive cycle exhaust product with filtered background air to a known constant volume flowrate to produce a dilute exhaust product; analyzing a proportional sample of said dilute exhaust product for emissions; and, mathematically weighting said emissions to represent weighted emissions for each simulated trip from cold start to hot start.
- 70. The method of claim 66 wherein said analyzing said simulated drive cycle exhaust product comprises:
diluting and mixing said simulated drive cycle exhaust product with filtered background air to a known constant volume flowrate to produce a dilute exhaust product; analyzing a proportional sample of said dilute exhaust product for emissions; and, mathematically weighting said emissions to represent weighted emissions for each simulated trip from cold start to hot start.
- 71. The method of claim 54 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 72. The method of claim 63 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 73. The method of claim 64 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
- 74. The method of claim 66 further comprising
cooling said non-engine based test system to ambient conditions; and substantially immediately after said cooling, combusting fuel in a subsequent air and fuel mixing feedstream under conditions effective to simulate at least one subsequent drive cycle, producing a subsequent simulated drive cycle exhaust product; and collecting and analyzing said subsequent simulated drive cycle exhaust product.
PRIORITY DATA
[0001] The present application is a continuation-in-part of U.S. patent application Ser. No. 10/213,890, filed Aug. 6, 2002 (pending), incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10213890 |
Aug 2002 |
US |
Child |
10847034 |
May 2004 |
US |