IP Library Granted Patent US 12,257,574
Granted Patent B2
US 12,257,574 · App. 17/930,147 · Granted Mar 25, 2025

Honeycomb structure, exhaust gas purification catalyst, and exhaust gas purification system

Inventors: Shuichi Ichikawa (Nagoya, JP); Takuya Ishihara (Nagoya, JP); Yukio Miyairi (Nagoya, JP); Masaaki Masuda (Nagoya, JP)
Assignee: NGK INSULATORS, LTD.
B01J35/33B01D53/944B01D53/9477B01J23/78B01J23/8472B01J35/56F01N3/022F01N3/101F01N3/2013F01N3/2066B01D2255/9155F01N2370/04
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Quick Facts
Patent No.
US 12,257,574
App. No.
17/930,147
Granted
Mar 25, 2025
Kind
B2
Abstract

A pillar shaped honeycomb structure for induction heating, the honeycomb structure being made of ceramics and including: an outer peripheral wall; and a partition wall disposed on an inner side of the outer peripheral wall, the partition wall defining a plurality of cells, each of the cells penetrating from one end face to other end face to form a flow path, wherein a composite material containing a conductor and a non-conductor is provided in the cells in a region of 50% or less of the total length of the honeycomb structure from one end face, and wherein the conductor is a conductor that generates heat in response to a change in a magnetic field.

Claims (28)

1. A pillar shaped honeycomb structure for induction heating, the honeycomb structure being made of ceramics and comprising:

an outer peripheral wall; and

a partition wall disposed on an inner side of the outer peripheral wall, the partition wall defining a plurality of cells, each of the cells penetrating from one end face to other end face to form a flow path,

wherein a composite material comprising a conductor and a non-conductor is provided in the cells in a region of 50% or less of the total length of the honeycomb structure from one end face, and

wherein the conductor is a conductor that generates heat in response to a change in a magnetic field.

2. The honeycomb structure for induction heating according to claim 1 , wherein the composite material is provided in a form of a thin film on a surface of the partition wall of the cells.

3. The honeycomb structure for induction heating according to claim 1 , wherein the composite material is filled inside the cells.

4. The honeycomb structure for induction heating according to claim 1 , wherein the composite material comprises 50 to 95% by mass of the conductor.

5. The honeycomb structure for induction heating according to claim 1 , wherein the composite material has a porosity of 30 to 70%.

6. The honeycomb structure for induction heating according to claim 1 , wherein the conductor is a porous body.

7. The honeycomb structure for induction heating according to claim 1 , wherein the conductor is a magnetic substance.

8. The honeycomb structure for induction heating according to claim 1 , wherein the partition wall and the outer peripheral wall comprise at least one ceramics selected from the group consisting of cordierite, silicon carbide, aluminum titanate, silicon nitride, mullite, and alumina.

9. The honeycomb structure for induction heating according to claim 1 , wherein the honeycomb structure has a diameter of 150 mm or more or a volume of 3 L or more.

10. An exhaust gas purification system, comprising:

the honeycomb structure A according to claim 1 , the honeycomb structure A being arranged on an upstream side in a gas flow direction; and

at least one honeycomb structure B arranged on a downstream side of the honeycomb structure A.

11. The exhaust gas purification system according to claim 10 , wherein a position of the honeycomb structure A where the conductor is arranged is a region of 50% or less of the total length from the end face on the upstream side in the gas flow direction.

12. The exhaust gas purification system according to claim 10 , wherein a position of the honeycomb structure A where the conductor is arranged is a region of 50% or less of the total length from the end face on the downstream side in the gas flow direction.

13. The exhaust gas purification system according to claim 10 , wherein the honeycomb structure A supports a diesel oxidation catalyst, and the honeycomb structure B comprises a diesel particulate filter.

14. The exhaust gas purification system according to claim 10 , wherein the honeycomb structure B further comprises at least one selected from the group consisting of a honeycomb structure supporting a selective reduction catalyst, a honeycomb structure supporting a NO x storage reduction catalyst, a honeycomb structure supporting an ammonia slip catalyst, a honeycomb structure supporting a three-way catalyst and a honeycomb structure supporting a hydrocarbon adsorption catalyst.

15. An exhaust gas purification catalyst, comprising:

the honeycomb structure according to claim 1 ; and

a catalyst supported in the cells of the honeycomb structure,

wherein the catalyst is at least one selected from the group consisting of oxidation catalysts, three-way catalysts, NO x storage reduction catalysts, NO x selective reduction catalysts, hydrocarbon adsorption catalysts, hydrocarbons, carbon monoxide oxidation catalysts, and ammonia slip catalysts.

16. A pillar shaped honeycomb structure for induction heating, the honeycomb structure comprising pillar shaped honeycomb segments joined together via joining material layers,

wherein each of the pillar shaped honeycomb segments comprises: an outer peripheral wall; and a partition wall disposed on an inner side of the outer peripheral wall, the partition wall defining a plurality of cells, each of the cells penetrating from one end face to other end face to form a flow path, and

wherein a conductor is provided in the joining material layers in a region of 50% or less of the total length of the honeycomb structure from one end face, and

wherein the conductor is a conductor that generates heat in response to a change in a magnetic field.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 7, 2022
From: ICHIKAWA, SHUICHI; ISHIHARA, TAKUYA; MIYAIRI, YUKIO; MASUDA, MASAAKI
To: NGK INSULATORS, LTD.
Reel/Frame 061012/0082 →
Priority Claims (1)
JP 2020-049800 · Mar 19, 2020 · national
Continuity (2)
Continuation PCTJP2020042650 · Nov 16, 2020
Related Publication 20220410136A1 · Dec 29, 2022
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