Claims
- 1. An internal combustion engine system having:
a catalytic converter; and a sulfur oxide trap useful for increasing the efficiency of a nitrogen oxide trap, said sulfur oxide trap comprising: a substrate; an aluminum oxide layer deposited on said substrate; and a mixed oxide layer comprising a mixture of calcium oxide and magnesium oxide deposited on said aluminum oxide layer; wherein the sulfur oxide trap is located downstream of said catalytic converter and the sulfur oxide trap is regenerable by operating the internal combustion engine system under stoichiometric or rich fuel conditions for a sufficient time that the sulfur oxide trap achieves a temperature of at least 450° C.
- 2. The internal combustion engine system of claim 1 wherein the sulfur oxide trap is regenerable by operating the internal combustion engine system under stoichiometric or rich fuel conditions for a sufficient time that the sulfur oxide trap achieves a temperature of at least 500° C.
- 3. The internal combustion engine system of claim 1 wherein the sulfur oxide trap is regenerable by operating the internal combustion engine system under stoichiometric or rich fuel conditions for a sufficient time that the sulfur oxide trap achieves a temperature of at least 600° C.
- 4. The internal combustion engine system of claim 1, wherein the combined weight of the aluminum oxide layer and the mixed oxide layer is about 10% to 50% of the weight of the sulfur oxide trap and the weight of the mixed oxide is about 2% to 20% of the combined weight of the aluminum oxide layer and the mixed oxide layer.
- 5. The internal combustion engine system of claim 1 wherein the mixed oxide layer comprises:
calcium oxide in an amount of about 20% to 80% of the weight of the mixed oxide layer; and magnesium oxide in an amount of about 20% to 80% of the weight of the mixed oxide layer.
- 6. The internal combustion engine system of claim 1 wherein the mixed oxide layer comprises:
calcium oxide in an amount of about 30% to 70% of the weight of the mixed oxide layer; and magnesium oxide in an amount of about 30% to 70% of the weight of the mixed oxide layer.
- 7. The internal combustion engine system of claim 1 wherein the mixed oxide layer comprises:
calcium oxide in an amount of about 50% of the weight of the mixed oxide layer; and magnesium oxide in an amount of about 50% of the weight of the mixed oxide layer.
- 8. The internal combustion engine system of claim 1 wherein the mixed oxide layer comprises:
calcium oxide in an amount of about 40% of the weight of the mixed oxide layer; and magnesium oxide in an amount of about 60% of the weight of the mixed oxide layer.
- 9. The internal combustion engine system of claim 1 wherein the mixed oxide layer comprises calcium oxide and magnesium oxide in a weight ratio of about 0.25 to about 4.
- 10. The internal combustion engine system of claim 1 wherein the mixed oxide layer comprises calcium oxide and magnesium oxide in a weight ratio of about 0.43 to about 2.3.
- 11. The internal combustion engine system of claim 1 wherein the mixed oxide layer comprises calcium oxide and magnesium oxide in a weight ratio of about 1.
- 12. The internal combustion engine system of claim 1 wherein the mixed oxide layer comprises calcium oxide and magnesium oxide in a weight ratio of about 0.67.
- 13. The internal combustion engine system of claim 1, wherein the aluminum oxide layer is deposited by:
a) coating said substrate with an aluminum oxide slurry to form an aluminum oxide coating; b) drying said aluminum oxide coating at a first elevated temperature to form a dried aluminum oxide coating; and c) calcining said dried aluminum oxide coating at a second elevated temperature to form the aluminum oxide layer deposited on said substrate.
- 14. The internal combustion engine system of claim 1, wherein the aluminum oxide layer is deposited by:
a) coating said substrate with a solution containing a water soluble aluminum compound to form a first coating; b) drying said first coating at a first elevated temperature to form a dried coating; and c) calcining said dried coating at a second elevated temperature to form the aluminum oxide layer deposited on said substrate.
- 15. The internal combustion engine system of claim 14, wherein the water soluble aluminum compound is aluminum nitrate.
- 16. The internal combustion engine system of claim 1, wherein the mixed oxide layer is prepared by:
a) coating said aluminum oxide layer with a mixed slurry comprising a calcium oxide slurry and magnesium oxide slurry to form a mixed oxide coating; b) drying said mixed oxide coating at a first elevated temperature to form a dried mixed oxide coating; and c) calcining said dried mixed oxide coating at a second elevated temperature to form the layer comprising a mixture of calcium oxide and magnesium oxide deposited on said aluminum oxide layer.
- 17. The internal combustion engine system of claim 1, wherein the mixed oxide layer is deposited by:
a) coating said aluminum oxide layer with a mixed solution containing a water soluble calcium compound and a water soluble magnesium compound to form a mixed coating; b) drying said mixed coating at a first elevated temperature to form a dried mixed coating; and c) calcining said dried mixed coating at a second elevated temperature to form the layer comprising a mixture of calcium oxide and magnesium oxide deposited on said aluminum oxide layer.
- 18. The internal combustion engine system of claim 17, wherein the water soluble calcium compound is calcium nitrate and the water soluble magnesium compound is magnesium nitrate.
- 19. A method of preparing an internal combustion engine system, the method comprising:
a) coating a substrate with a solution containing a water soluble aluminum compound to form a first coating; b) drying said first coating at a first elevated temperature to form a dried first coating; c) calcining said dried first coating at a second elevated temperature to form an aluminum oxide layer, wherein the second elevated temperature is higher than the first elevated temperature; d) coating onto said aluminum oxide layer a mixed solution containing a water soluble calcium compound and a water soluble magnesium compound to form a second coating; e) drying said second coating at a third elevated temperature to form a dried second coating; f) calcining said dried second coating at a fourth elevated temperature to form a sulfur oxide trap having a layer comprising a mixture of calcium oxide and magnesium oxide, wherein the fourth elevated temperature is higher than the third elevated temperature; and g) locating the sulfur oxide trap in a vehicle exhaust system downstream from a catalytic converter; wherein the sulfur oxide trap is regenerable by operating the internal combustion engine system under stoichiometric or rich fuel conditions for a sufficient time that the sulfur oxide trap achieves a temperature of at least 450° C.
- 20. The method of claim 19, wherein,
said first coating is dried at a temperature of 80° C. for about 6 hours; said dried first coating is calcined at a temperature of 600° C. for about 6 hours; said second coating is dried at a temperature of 80° C. for about 6 hours; and said dried second coating is calcined at a temperature of 600° C. for about 6 hours.
- 21. A method of increasing the sulfur tolerance of a nitrogen oxide trap, the method comprising:
a) preparing a mixed oxide solution containing a water soluble calcium compound and a water soluble magnesium compound; b) coating said nitrogen oxide trap with the mixed oxide solution to form a coated nitrogen oxide trap; c) drying the coated nitrogen oxide trap at a first elevated temperature; and d) heat treating the coated nitrogen oxide trap at a second elevated temperature wherein the second elevated temperature is higher than the first elevated temperature; wherein the nitrogen oxide trap when placed downstream of a catalytic converter is regenerable by operating the internal combustion engine system under stoichiometric or rich fuel conditions for a sufficient time that the sulfur oxide trap achieves a temperature of at least 450° C.
- 22. The method of claim 21, wherein the water soluble calcium compound is calcium nitrate and the water soluble magnesium compound is magnesium nitrate.
- 23. The method of claim 21, wherein the nitrogen oxide trap is coated with an amount of mixed nitrate solution that does not significantly decrease the ability of the nitrogen oxide trap to trap nitrogen oxide.
- 24. The method of claim 21, wherein the sulfur oxide trap is desulfated by exposing the trap to the exhaust of an internal combustion engine system operating at stoichiometric or fuel rich conditions.
- 25. The method of claim 24, wherein the sulfur oxide trap is heated to an elevated temperature.
- 26. A modified NOx trap comprising:
a NOx trap; and a mixed oxide layer deposited on the NOx trap; wherein the modified NOx trap when placed downstream of a catalytic converter is regenerable by operating under stoichiometric or rich fuel conditions for a sufficient time that the sulfur oxide trap achieves a temperature of at least 450° C.
- 27. The modified NOx trap of claim 26 wherein the mixed oxide layer comprises does not completely cover the NOx trap.
- 28. The modified NOx trap of claim 26 wherein the mixed oxide layer comprises calcium oxide and magnesium oxide.
- 29. The modified NOx trap of claim 26 wherein the NOx trap comprises a precious metal selected from the group consisting of platinum, palladium, or rhodium.
- 30. The modified NOx trap of claim 26 wherein the NOx trap comprises barium oxide.
- 31. The modified NOx trap of claim 26 wherein the modified NOx trap is desulfated by exposing the trap to the exhaust of an internal combustion engine system operating at fuel rich condition.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. application Ser. No. 09/675,836, filed Sep. 29, 2000, the entire disclosure of which is hereby incorporated by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
09675836 |
Sep 2000 |
US |
| Child |
10301939 |
Nov 2002 |
US |