IP Library Granted Patent US 11,224,840
Granted Patent B2
US 11,224,840 · App. 15/560,772 · Granted Jan 18, 2022

Exhaust gas purification catalyst

Inventors: Hiromasa Suzuki (Toyota, JP); Masahide Miura (Toyota, JP); Yoshinori Saito (Kakegawa, JP); Satoru Katoh (Nagakute, JP); Toshitaka Tanabe (Nagakute, JP); Tetsuhiro Hirao (Toyota, JP); Tatsuya Ohashi (Kakegawa, JP); Hiroaki Naito (Kikugawa, JP); Hirotaka Ori (Kakegawa, JP); Michihiko Takeuchi (Kakegawa, JP); Keiichi Narita (Kakegawa, JP)
Assignees: TOYOTA JIDOSHA KABUSHIKI KAISHA; CATAIER CORPORATION
B01D53/945B01D53/94B01D53/9468B01D53/9472B01J23/56B01J23/63B01J35/0006B01J35/023B01J35/026B01J35/04B01J35/10B01J35/108B01J35/1076B01J37/0018B01J37/0219B01J37/0244B01J37/08F01N3/101F01N3/28B01D2255/10B01D2255/1021B01D2255/1023B01D2255/1025B01D2255/2063B01D2255/407B01D2255/9022B01D2255/9032B01D2255/9202B01D2255/9205B01J37/0036B01J37/0234F01N2510/0682Y02T10/12
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Quick Facts
Patent No.
US 11,224,840
App. No.
15/560,772
Granted
Jan 18, 2022
Kind
B2
Abstract

An object of the present invention is to provide an exhaust gas purification catalyst which can exhibit sufficient purification performance even under a high Ga condition. The present invention relates to an exhaust gas purification catalyst comprising a substrate and a catalyst coating layer formed on the substrate, wherein the catalyst coating layer comprises catalyst particles, the catalyst coating layer having an upstream region extending by 40 to 60% of the entire length of the substrate from an upstream end of the catalyst in the direction of an exhaust gas flow and a downstream region corresponding to the remainder portion of the catalyst coating layer, the composition of the catalyst particle of the upstream region being different from that of the downstream region. The downstream region in the direction of an exhaust gas flow has a structure where a void is included in a large number, and furthermore high-aspect-ratio pores having an aspect ratio of 5 or more account for a certain percentage or more of the whole volume of voids. Thus, the exhaust gas purification catalyst exhibits enhanced purification performance.

Claims (26)

1. An exhaust gas purification catalyst comprising a substrate and a catalyst coating layer formed on the substrate, wherein:

the catalyst coating layer comprises catalyst particles, the catalyst coating layer having an upstream region extending by 40 to 60% of the entire length of the substrate from an upstream end of the catalyst in an exhaust gas flow direction and a downstream region corresponding to the remainder portion of the catalyst coating layer, the composition of the catalyst particle of the upstream region being different from that of the downstream region;

in the downstream region of the catalyst coating layer,

an average thickness of the coating layer is in a range from 25 μm to 160 μm,

a porosity measured by a weight-in-water method is in a range from 50 to 80% by volume, and

high-aspect-ratio pores having an aspect ratio of 5 or more account for 0.5 to 50% by volume of the whole volume of voids, and

the high-aspect-ratio pores each have an equivalent circle diameter of from 2 μm to 50 μm in a cross-sectional image of a catalyst coating layer cross section perpendicular to an exhaust gas flow direction;

wherein the downstream region and the upstream region do not overlap with each other.

2. The exhaust gas purification catalyst according to claim 1 , wherein in the downstream region of the catalyst coating layer, the high-aspect-ratio pore is oriented such that an 80% cumulative angle, in a cumulative angle distribution on an angle basis, of an angle (cone angle) between a vector in a longitudinal direction of the high-aspect-ratio pore and a vector in an exhaust gas flow direction of the substrate is in a range from 0 to 45 degrees.

3. The exhaust gas purification catalyst according to claim 1 , wherein a 15% cumulative size, in a cumulative particle size distribution on a cross-sectional area basis, of the catalyst particle contained in the downstream region of the catalyst coating layer is in a range from 3 μm to 10 μm.

4. The exhaust gas purification catalyst according to claim 2 , wherein a 15% cumulative size, in a cumulative particle size distribution on a cross-sectional area basis, of the catalyst particle contained in the downstream region of the catalyst coating layer is in a range from 3 μm to 10 μm.

5. The exhaust gas purification catalyst according to claim 1 , wherein in the downstream region of the catalyst coating layer, an amount of coating is in a range from 50 to 300 g per liter of the volume of the substrate.

6. The exhaust gas purification catalyst according to claim 2 , wherein in the downstream region of the catalyst coating layer, an amount of coating is in a range from 50 to 300 g per liter of the volume of the substrate.

7. The exhaust gas purification catalyst according to claim 3 , wherein in the downstream region of the catalyst coating layer, an amount of coating is in a range from 50 to 300 g per liter of the volume of the substrate.

8. The exhaust gas purification catalyst according to claim 4 , wherein in the downstream region of the catalyst coating layer, an amount of coating is in a range from 50 to 300 g per liter of the volume of the substrate.

9. A method for producing the exhaust gas purification catalyst according to claim 1 ,

the method comprising the step of forming the downstream region of the catalyst coating layer using a catalyst slurry, wherein

the catalyst slurry comprises:

a noble metal particle having catalyst activity,

a metal oxide particle having a 50% cumulative size of 3 μm to 10 μm in a cumulative particle size distribution on a volume basis, and

a fibrous organic substance in an amount of 0.5 to 9.0 parts by mass based on 100 parts by mass of the metal oxide particle, and

the fibrous organic substance has an average fiber diameter in a range from 1.7 μm to 8.0 μm and an average aspect ratio in a range from 9 to 40.

10. The method according to claim 9 , comprising the step of forming a catalyst coating by coating a surface of the substrate with the catalyst slurry such that an amount of coating of the catalyst coating layer after firing is in a range from 50 to 300 g per liter of the volume of the substrate and that an average thickness of the catalyst coating layer after firing is in a range from 25 μm to 160 μm.

11. The method according to claim 9 , comprising the step of removing at least a part of the fibrous organic substance by firing after coating the surface of the substrate with the catalyst slurry.

12. The method according to claim 10 , comprising the step of removing at least a part of the fibrous organic substance by firing after coating the surface of the substrate with the catalyst slurry.

13. The exhaust gas purification catalyst according to claim 1 , wherein the high-aspect-ratio pores have an average aspect ratio of from 10 to 50.

Assignments (2)
CORRECTIVE ASSIGNMENT TO CORRECT THE SECOND ASSIGNEE'S ZIP CODE PREVIOUSLY RECORDED ON REEL 043667 FRAME 0516. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Oct 24, 2017
From: SUZUKI, HIROMASA; MIURA, MASAHIDE; SAITO, YOSHINORI; KATOH, SATORU; TANABE, TOSHITAKA; HIRAO, TETSUHIRO; OHASHI, TATSUYA; NAITO, HIROAKI; ORI, HIROTAKA; TAKEUCHI, MICHIHIKO; NARITA, KEIICHI
To: TOYOTA JIDOSHA KABUSHIKI KAISHA; CATALER CORPORATION
Reel/Frame 044283/0489 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 22, 2017
From: SUZUKI, HIROMASA; MIURA, MASAHIDE; SAITO, YOSHINORI; KATOH, SATORU; TANABE, TOSHITAKA; HIRAO, TETSUHIRO; OHASHI, TATSUYA; NAITO, HIROAKI; ORI, HIROTAKA; TAKEUCHI, MICHIHIKO; NARITA, KEIICHI
To: TOYOTA JIDOSHA KABUSHIKI KAISHA; CATALER CORPORATION
Reel/Frame 043667/0516 →
Priority Claims (1)
JP JP2015-065504 · Mar 27, 2015 · national
Continuity (1)
Related Publication 20180243690A1 · Aug 30, 2018
Cited By (2)
US 12,465,908 US 12,594,525