Electrically heated catalyst
11193410 ยท 2021-12-07
Assignee
Inventors
Cpc classification
F01N3/2006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2330/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2803
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2330/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2370/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F01N3/2026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01N3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electrically heated catalyst includes a honeycomb structure and is designed to be mounted in an exhaust pipe in which exhaust gas flows. The honeycomb structure exhibits catalytic activities and produce heat upon electrical energization. The honeycomb structure includes a grid portion defining a plurality of cells and an outer peripheral portion which covers an outer periphery of the grid portion. A surface of the grid portion and a surface of the outer peripheral portion are designed to ensure electrical insulation from the exhaust pipe.
Claims
1. An electrically heated catalyst which includes a honeycomb structure which exhibits catalytic activity and produces heat upon energization thereof and is designed to be mounted in an exhaust pipe in which exhaust gas flows, wherein the honeycomb structure includes a grid portion which defines a plurality of cells and an outer peripheral portion which covers an outer periphery of the grid portion, a surface of the grid portion and a surface of the outer peripheral portion are configured to ensure electrical insulation from the exhaust pipe, at least a portion of the surface of the grid portion and at least a portion of the surface of the outer peripheral portion have formed thereon isulating layers which ensure the electrical insulation from the exhaust pipe, and the insulating layers are formed in a region of the honeycomb structure which extends from the outer peripheral portion toward a center of the grid portion, as viewed in a cross section taken perpendicular to a direction of flow of the exhaust gas in the exhaust pipe.
2. The electrically heated catalyst as set forth in claim 1, wherein the insulating layers are formed in a region of the honeycomb structure which extends from a lowermost portion of the outer peripheral portion in a direction of gravitational force by the given height when the electrically heated catalyst is mounted in the exhaust pipe.
3. The electrically heated catalyst as forth in claim 1, wherein the insulating layers are formed at least on an upstream end portion and a downstream end portion of the honeycomb structure in the direction of flow of the exhaust gas, and wherein a height of the insulating layers on the downstream end portion from the outer peripheral portion is larger than that of the insulating layers on the upstream end portion from the outer peripheral portion.
4. The electrically heated catalyst as set forth in claim 1, wherein the insulating layers are made of oxide layers produced by oxidizing the surfaces of the grid portion and the outer peripheral portion or insulating coatings formed on the surfaces of the grid portion and the outer peripheral portion.
5. The electrically heated catalyst as set forth in claim 1, wherein the honeycomb structure includes a first material-made portion made from a first material and second material-made portions made from a second material which is lower in degree of electrical conductivity than the first material, and wherein the insulating layers are implemented by the second material-made portions.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above described object, another object, features, or beneficial advantages in this disclosure will be apparent from the appended drawings or the following detailed discussion.
(2) In the drawings:
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EMBODIMENTS FOR CARRYING OUT THE INVENTION
First Embodiment
(20) An embodiment of the above electrically heated catalyst will be described below with reference to
(21) Next, the electrically heated catalyst 1 in this embodiment will be described below in detail. The electrically heated catalyst 1 is, as clearly illustrated in
(22) In this embodiment, the electrically heated catalyst 1 is, as can be seen in
(23) The electrically heated catalyst 1 may alternatively be designed, as illustrated in
(24) The honeycomb structure 10 retains therein three-way catalyst or NOx-reduction catalyst and exhibits exhaust emission control activity. The outer peripheral portion 12 of the honeycomb structure 10 is, as illustrated in
(25) The insulating layers 20 are, as illustrated in
(26) In this embodiment, the insulating layers 20 are made of oxide layers produced by oxidizing the surfaces of the grid portion 11 and the outer peripheral portion 12. The insulating layers 20 may alternatively be implemented by insulating coatings formed on the surfaces of the grid portion 11 and the outer peripheral portion 12. This facilitates formation of the insulating layers 20.
(27) In the electrically heated catalyst 1 in this embodiment, when a large amount of condensed water occurs inside the exhaust pipe 2, it will be accumulated on the bottom of the exhaust pipe 2 in the direction Y of gravitational force. A portion L of the water may, as illustrated in
(28) This embodiment reduces a rise in cost or an increase in production difficulty as compared with a case where the insulating layer 20 is disposed on an inner wall of the exhaust pipe 2. There is also no need to alter the shape of the exhaust pipe 2 in order to avoid splashing of water on the honeycomb structure 10, thus enabling the exhaust pipe 2 in which the electrically heated catalyst 1 is mounted to have a simple configuration. This avoids a reduction in engine output arising from an increase in pressure loss in the vehicle 100 in which the electrically heated catalyst 1 is mounted.
(29) This embodiment has the insulating layers 20 disposed on at least a portion of the outer surface of the grid portion 11 and at least a portion of the outer surface of the outer peripheral portion 12 to ensure the stability in insulation thereof from the exhaust pipe 2. This facilitates achievement of insulation of the honeycomb structure 10 without having to make the electrically heated catalyst 1 have a complicated structure.
(30) As apparent from the above discussion, it is possible for this embodiment to provide the electrically heated catalyst 1 which is capable of avoiding a decrease in degree of insulation of the honeycomb structure 10 and also avoiding a drop in engine output.
Second Embodiment
(31) The first embodiment has the electrically heated catalyst 1 placed in a horizontal portion of the exhaust pipe 2 (see
(32) Further, in this embodiment, the insulating layers 20 are, as clearly illustrated in
(33) In this embodiment, the insulating layers 20 occupy regions of the honeycomb structure 10 which extend from the outer peripheral portion 12 by the given heights h1 and h2 toward the center 10c of the honeycomb structure 10, as viewed on a cross section of the honeycomb structure 10 perpendicular to the direction F of flow of exhaust gas. The honeycomb structure 10, therefore, has the insulating layers 20 not occupying a central region including the center 10c of the honeycomb structure 10, thereby facilitating passage of exhaust gas through the honeycomb structure 10 to avoid an increase in pressure loss in order to avoid a drop in engine output.
(34) In this embodiment, the same reference numbers as employed in the first embodiment are assigned to the same parts, and explanation thereof is omitted. This embodiment offers the same beneficial advantages as those in the first embodiment.
Third Embodiment
(35) This embodiment, as illustrated in
Fourth Embodiment
(36) The second embodiment has the insulating layers 20 formed in the regions extending from the outer peripheral portion 12 by the heights h1 and h2 toward the center 10c, however, this embodiment, as illustrated in
(37) The electrically heated catalyst 1 in this embodiment achieves a large decrease in size of the region in which the insulating layers 20 are formed, thereby reducing a pressure loss to avoid a drop in engine output. The electrically heated catalyst 1 is mounted in a downstream portion of the exhaust pipe 2 which is inclined downward, thus resulting in a risk that a lower portion of the downstream end portion 102 of the honeycomb structure 10 may be splashed with water L. The lower portion of the downstream end portion 102 has, however, the insulating layers formed thereon, which will improve the insulation.
(38) As the first modification, this embodiment may be, as illustrated in
(39) As the second modification, the electrically heated catalyst 1 may be, as illustrated in
(40) As the third modification, the structure in the second modification in
(41) As the fourth modification, the honeycomb structure 10 may be designed to include, as illustrated in
(42) A production method of the honeycomb structure 10 in the fourth modification includes a step of first preparing the first material and the second material which is lower in electrical conductivity than the first material, a step of forming the grid-shaped first material-made portion 17 and the second material-made portions 18 using the first and second materials, respectively, with the second material-made portions 18 being, as illustrated in
(43) This disclosure is not limited to each of the above embodiments and modifications, but may be modified without departing from the principle thereof. For instance, the honeycomb structure 10 in the fourth modification may be used in the first to fourth embodiment and the first to third modification.
(44) While this disclosure has been shown in terms of the preferred embodiments in order to facilitate better understanding thereof, it should be appreciated that the disclosure is not limited to the structures of the embodiments. Therefore, the disclosure should be understood to include all possible embodiments and modifications to the shown embodiments which can be embodied without departing from the principle thereof.