IP Library Granted Patent US 11,623,179
Granted Patent B2
US 11,623,179 · App. 16/954,299 · Granted Apr 11, 2023

Catalytically active particulate filter

Inventors: Jan Schoenhaber (Darmstadt, DE); Naina Deibel (Pfungstadt, DE); Martin Roesch (Rodgau, DE); Stephanie Spiess (Darmstadt, DE)
Assignee: UMICORE AG & CO. KG
B01D53/945F01N3/035F01N3/101B01D2255/1021B01D2255/1023B01D2255/1025B01D2255/2061B01D2255/2063B01D2255/2065B01D2255/20715B01D2255/407B01D2255/908
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Quick Facts
Patent No.
US 11,623,179
App. No.
16/954,299
Granted
Apr 11, 2023
Kind
B2
Abstract

The present invention relates to a particulate filter which comprises a wall-flow filter of length L and two different catalytically active coatings Y and Z, wherein the wall-flow filter comprises channels E and A that extend in parallel between a first and a second end of the wall-flow filter and are separated by porous walls which form the surfaces O E and O A , respectively, and wherein the channels E are closed at the second end and the channels A are closed at the first end, and wherein the coatings Y and Z have the same oxygen storage components and the same carrier materials for noble metals. The invention is characterized in that the coating Y is located in the channels E on the surfaces O E and the coating Z is located in the channels A on the surfaces O A .

Claims (20)

1. Particulate filter for removing particles, carbon monoxide, hydrocarbons and nitrogen oxides from the exhaust gas of combustion engines fueled by stoichiometric air-fuel mixtures, which filter comprises a wall-flow filter of length L and two coatings Y and Z, wherein the wall-flow filter comprises channels E and A that extend in parallel between a first and a second end of the wall-flow filter and are separated by porous walls which form the surfaces O E and O A , respectively, and wherein the channels E are closed at the second end and the channels A are closed at the first end, and wherein the coatings Y and Z comprise the same oxygen storage components and the same carrier materials for noble metals, wherein coating Y is located in the channels E on the surfaces O E and extends from the first end of the wall-flow filter over a length of 51 to 90% of the length L, and coating Z is located in the channels A on the surfaces O A and extends from the second end of the wall-flow filter over a length of 51 to 90% of the length L, and

wherein the coatings Y and Z have a thickness between 5-250 μm.

2. Particulate filter in accordance with claim 1 , wherein the coating Y extends from the first end of the wall-flow filter over 57 to 65% of the length L of the wall-flow filter.

3. Particulate filter in accordance with claim 1 , wherein the coating Z extends from the second end of the wall-flow filter over 57 to 65% of the length L of the wall-flow filter.

4. Particulate filter in accordance with claim 1 , wherein each of the coatings Y and Z contains one or more noble metals fixed to one or more carrier materials, and one or more oxygen storage components.

5. Particulate filter in accordance with claim 4 , wherein each of the coatings Y and Z contains the noble metals platinum, palladium and/or rhodium.

6. Particulate filter in accordance with claim 4 , wherein each of the coatings Y and Z contains the noble metals palladium, rhodium or palladium and rhodium.

7. Particulate filter in accordance with claim 4 , wherein the carrier materials for the noble metals are metal oxides with a BET surface area of 30 to 250 m 2 /g (determined according to DIN 66132).

8. Particulate filter in accordance with claim 4 , wherein the carrier materials for the noble metals are selected from the group consisting of aluminum oxide, doped aluminum oxide, silicon oxide, titanium dioxide and mixed oxides of one or more thereof.

9. Particulate filter in accordance with claim 4 , wherein the coatings Y and Z contain cerium/zirconium/rare-earth metal mixed oxides as oxygen storage components.

10. Particulate filter in accordance with claim 9 , wherein the cerium/zirconium/rare-earth metal mixed oxides contain lanthanum oxide, yttrium oxide, praseodymium oxide, neodymium oxide and/or samarium oxide as rare-earth metal oxide.

11. Particulate filter in accordance with claim 9 , wherein the cerium/zirconium/rare-earth metal mixed oxides contain lanthanum oxide and yttrium oxide, yttrium oxide and praseodymium oxide or lanthanum oxide and praseodymium oxide as rare-earth metal oxide.

12. Particulate filter in accordance with claim 1 , wherein the coatings Y and Z both comprise lanthanum-stabilized aluminum oxide, rhodium, palladium or palladium and rhodium and an oxygen storage component comprising zirconium oxide, cerium oxide, yttrium oxide and lanthanum oxide.

13. Particulate filter in accordance with claim 1 , wherein the coatings Y and Z both comprise lanthanum-stabilized aluminum oxide, rhodium, palladium or palladium and rhodium and an oxygen storage component comprising zirconium oxide, cerium oxide, praseodymium oxide and lanthanum oxide.

14. Particulate filter in accordance with claim 1 which comprises a wall-flow filter of length L and two coatings Y and Z having the same composition, wherein the wall-flow filter comprises channels E and A that extend in parallel between a first and a second end of the wall-flow filter and are separated by porous walls which form the surfaces O E and O A , respectively, and wherein the channels E are closed at the second end and the channels A are closed at the first end, and wherein the coatings Y and Z comprise the same oxygen storage components and the same carrier materials for noble metals, wherein

coating Y is located in the channels E on the surfaces O E and extends from the first end of the wall-flow filter over 57 to 65% of the length L,

coating Z is located in the channels A on the surfaces O A and extends from the second end of the wall-flow filter over 57 to 65% of the length L,

and the coatings Y and Z contains aluminum oxide in a quantity from 20 to 70% by weight based on the total weight of the coating Y or Z, rhodium, palladium or palladium and rhodium and an oxygen storage component in a quantity from 30 to 80% by weight based on the total weight of the coating Y or Z, wherein

the oxygen storage component comprises zirconium oxide, cerium oxide, lanthanum oxide and yttrium oxide or zirconium oxide, cerium oxide, lanthanum oxide and praseodymium oxide or a mixture of two oxygen storage components, wherein one oxygen storage component contains zirconium oxide, cerium oxide, lanthanum oxide and yttrium oxide and the other contains zirconium oxide, cerium oxide, lanthanum oxide and praseodymium oxide.

15. Method for removing particles, carbon monoxide, hydrocarbons, and nitrogen oxides from the exhaust gas of combustion engines fueled by a stoichiometric air-fuel mixture, wherein the exhaust gas is conducted through a particulate filter in accordance with claim 1 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 23, 2020
From: SCHOENHABER, JAN; DEIBEL, NAINA; ROESCH, MARTIN; SPIESS, STEPHANIE
To: UMICORE AG & CO. KG
Reel/Frame 054740/0857 →
Priority Claims (1)
EP 17208614 · Dec 19, 2017 · regional
Continuity (1)
Related Publication 20210086134A1 · Mar 25, 2021
Cited By (1)
US 12,343,713