EXHAUST GAS PURIFICATION CATALYST FOR INTERNAL COMBUSTION ENGINE
20170312690 · 2017-11-02
Assignee
Inventors
Cpc classification
B01D53/944
PERFORMING OPERATIONS; TRANSPORTING
B01D2255/908
PERFORMING OPERATIONS; TRANSPORTING
F01N2510/0684
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
B01D53/945
PERFORMING OPERATIONS; TRANSPORTING
F01N3/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01J37/0244
PERFORMING OPERATIONS; TRANSPORTING
B01D53/9445
PERFORMING OPERATIONS; TRANSPORTING
B01J23/002
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01J23/46
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An object of at least one embodiment of the present invention is to suppress poisoning due to phosphorus derived from engine oil, and effectively purify NOx discharged from the time of engine start up to a high load condition. In an exhaust gas purification catalyst for an internal combustion engine, a catalyst layer includes: a first catalyst layer exposed to an exhaust gas flow; and a second catalyst layer formed between the first catalyst layer and the substrate. A second catalyst upstream layer formed on an upstream side of the second catalyst layer with respect to the exhaust gas flow and a first catalyst downstream layer formed on a downstream side of the first catalyst layer with respect to the exhaust gas flow include at least one of palladium and platinum, as well as an oxygen storage material as the catalyst component. An amount of the oxygen storage material in the first catalyst downstream layer is larger than an amount of the oxygen storage material in the second catalyst upstream layer.
Claims
1. An exhaust gas purification catalyst for an internal combustion engine, the exhaust gas purification catalyst being disposed in an exhaust gas passage of the engine and comprising: a substrate; a catalyst layer formed on a surface of the substrate; and a catalyst component supported on the catalyst layer, wherein the catalyst layer comprises: a first catalyst layer exposed to an exhaust gas flow; and a second catalyst layer formed between the first catalyst layer and the substrate, wherein a second catalyst upstream layer formed on an upstream side of the second catalyst layer with respect to the exhaust gas flow includes at least one of palladium and platinum, as well as an oxygen storage material as the catalyst component, wherein a first catalyst downstream layer formed on a downstream side of the first catalyst layer with respect to the exhaust gas flow includes at least one of palladium and platinum, as well as an oxygen storage material as the catalyst component, and wherein an amount of the oxygen storage material in the first catalyst downstream layer is larger than an amount of the oxygen storage material in the second catalyst upstream layer.
2. The exhaust gas purification catalyst for an internal combustion engine according to claim 1, wherein a density of the palladium supported on the second catalyst upstream layer is higher than a density of the palladium supported on the first catalyst downstream layer.
3. The exhaust gas purification catalyst for an internal combustion engine according to claim 1, wherein a second catalyst downstream layer formed on a downstream side of the second catalyst layer includes rhodium as the catalyst component, and a first catalyst upstream layer formed on an upstream side of the first catalyst layer includes rhodium as the catalyst component.
4. The exhaust gas purification catalyst for an internal combustion engine according to claim 2, wherein a second catalyst downstream layer formed on a downstream side of the second catalyst layer includes rhodium as the catalyst component, and a first catalyst upstream layer formed on an upstream side of the first catalyst layer includes rhodium as the catalyst component.
5. The exhaust gas purification catalyst for an internal combustion engine according to claim 3, wherein a density of the rhodium supported on the second catalyst downstream layer is same as a density of rhodium supported on the first catalyst upstream layer.
6. The exhaust gas purification catalyst for an internal-combustion engine according to claim 4, wherein a density of the rhodium supported on the second catalyst downstream layer is same as a density of the rhodium supported on the first catalyst upstream layer.
7. The exhaust gas purification catalyst for an internal combustion engine according to claim 5, further comprising a connecting portion that connects the second catalyst downstream layer and the first catalyst upstream layer.
8. The exhaust gas purification catalyst for an internal combustion engine according to claim 6, further comprising a connecting portion that connects the second catalyst downstream layer and the first catalyst upstream layer.
9. The exhaust gas purification catalyst for an internal combustion engine according to claim 1, wherein a sum of lengths of the second catalyst upstream layer and the first catalyst downstream layer does not exceed a length of the substrate.
10. The exhaust gas purification catalyst for an internal combustion engine according to claim 2, wherein a sum of lengths of the second catalyst upstream layer and the first catalyst downstream layer does not exceed a length of the substrate.
11. The exhaust gas purification catalyst for an internal combustion engine according to claim 3, wherein a sum of lengths of the second catalyst upstream layer and the first catalyst downstream layer does not exceed a length of the substrate.
12. The exhaust gas purification catalyst for an internal combustion engine according to claim 5, wherein a sum of lengths of the second catalyst upstream layer and the first catalyst downstream layer does not exceed a length of the substrate.
13. The exhaust gas purification catalyst for an internal combustion engine according to claim 7, wherein a sum of lengths of the second catalyst upstream layer and the first catalyst downstream layer does not exceed a length of the substrate.
14. The exhaust gas purification catalyst for an internal combustion engine according to claim 9, wherein a sum of lengths of the second catalyst upstream layer and the first catalyst downstream layer does not exceed a length of the substrate.
15. The exhaust gas purification catalyst for an internal combustion engine according to claim 1, wherein a length of the second catalyst upstream layer is 30% to 70% of a length of the substrate.
16. The exhaust gas purification catalyst for an internal combustion engine according to claim 2, wherein a length of the second catalyst upstream layer is 30% to 70% of a length of the substrate.
17. The exhaust gas purification catalyst for an internal combustion engine according to claim 3, wherein a length of the second catalyst upstream layer is 30% to 70% of a length of the substrate.
18. The exhaust gas purification catalyst for an internal combustion engine according to claim 5, wherein a length of the second catalyst upstream layer is 30% to 70% of a length of the substrate.
19. The exhaust gas purification catalyst for an internal combustion engine according to claim 7, wherein a length of the second catalyst upstream layer is 30% to 70% of a length of the substrate.
20. The exhaust gas purification catalyst for an internal combustion engine according to claim 9, wherein a length of the second catalyst upstream layer is 30% to 70% of a length of the substrate.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0013]
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DETAILED DESCRIPTION
[0022] The following describes some embodiments of the present invention with reference to the accompanying drawings. It should be noted that the sizes, materials, shapes, relative arrangement, and the like of the components described as embodiments or illustrated in the drawings are given by way of example and not intended to limit the scope of the present invention. As used herein, for example, expressions representing relative or absolute arrangement, including “in a direction”, “along a direction”, and “center”, not only represent exactly what they mean but also include states relatively displaced with a tolerance or by an angle or distance that is small enough to provide the same level of functionality. As used herein, for example, expressions meaning that things are in identical states, including “the same”, “identical”, and “homogeneous”, not only represent exactly identical states but also include states with a tolerance or a difference that is small enough to provide the same level of functionality. As used herein, for example, expressions representing shapes, such as quadrangles and cylinders, not only represent geometrically exact quadrangles, cylinders, or the like but also represent shapes including irregularities or champers that can exhibit the same level of effects. Furthermore, the expressions of “including”, “comprising”, and “having” one component as used herein do not exclude other components.
[0023]
[0024] In this example, the catalyst device 15 is provided as an upstream stage three way catalyst 17 provided immediately on the downstream side of the exhaust gas turbocharger 7. The exhaust gas purification system illustrates uses the upstream stage three way catalyst 17 only. A downstream stage three way catalyst 19 may be further provided on the downstream side, that is, below a vehicle floor for example. Thus, an exhaust gas purification system with a catalyst including both the upstream stage three way catalyst 17 and the downstream stage three way catalyst 19 may be employed.
[0025] As illustrated in
[0026] In an embodiment illustrated in
[0027] A second catalyst upstream layer 25a formed on the upstream side (or upstream end portion side) of the second catalyst layer 25 includes Pd and the OSC material as the catalyst active component. A first catalyst upstream layer 27a formed on the upstream side (or upstream end portion side) of the first catalyst layer 27 includes Rh as the catalyst component. Specifically, as illustrated in
[0028]
[0029] For example, the first catalyst layer 27 and the second catalyst layer 25 include Rh of 0.1 to 3.0 g per liter volume of the supporting substrate 21, and include Pd or Pt of 1 to 15 g per liter volume of the supporting substrate 21. For example, the OSC material includes composite oxide with CeO.sub.2 or CeO.sub.2—ZrO.sub.2 as a main component. The OSC material of 1 to 100 g per liter volume of the supporting substrate 21 is further included. In the first catalyst layer 27 and the second catalyst layer 25 precious metal as the catalyst component is supported on an oxide base material including at least one of alumina (Al.sub.2O.sub.3), zirconia (ZrO.sub.2), titania (TiO.sub.2), and ceria (CeO.sub.2) as a main component, and the OSC material is added.
[0030] In such an embodiment, the catalyst component supported on the second catalyst upstream layer 25a includes Pd and the OSC material. Similarly, the catalyst component supported on the first catalyst downstream layer 27b includes Pd and the OSC material. The contained density of the OSC material supported on the first catalyst downstream layer 27b is set to be higher than the contained density of the OSC material supported on the second catalyst upstream layer 25a. Thus, the phosphorous poisoning can be suppressed, and the exhaust gas purification performance can be improved.
[0031] Phosphorus gradually accumulates from the upstream side to the downstream side of the catalyst, and from an upper layer to a lower layer (
[0032] Thus, the second catalyst upstream layer 25a and the first catalyst downstream layer 27b serve as the catalyst layer, including the OSC material and Pd, susceptible to the phosphorus poisoning. The density of the OSC material supported on the first catalyst downstream layer 27b is set to be higher than the density of the OSC material supported on the second catalyst upstream layer 25a. Thus, the phosphorous poisoning can be suppressed, and the exhaust gas purification performance can be improved.
[0033] In some embodiments, the density of Pd supported on the second catalyst upstream layer 25a is set to be higher than Pd supported on the first catalyst downstream layer 27b in
[0034] In this embodiment, the exhaust gas purification performance under the low temperature condition can be improved with the Pd supported density on the second catalyst upstream layer 25a set to be higher than the Pd supported density on the first catalyst downstream layer 27b. A downstream side upper layer that is relatively not susceptible to the phosphorus poisoning includes Pd at a low supported density and the OSC material at a high contained density. Thus, the exhaust gas purification performance (NOx reduction performance in particular) under high load operation and high exhaust gas flowrate condition can be improved.
[0035] In some embodiments, in
[0036] In some embodiments, in
[0037] In some embodiments, in
[0038] With this configuration, the second catalyst downstream layer 25b and the first catalyst upstream layer 27a with the same Rh supported density can be manufactured with a single slurry coating process, whereby the simpler manufacturing process and the lower material cost can be achieved. In the configuration illustrated in
[0039] In some embodiments, in
[0040] The advantageous effects of the Pd at the high supported density and the OSC material at the low contained density supported on the second catalyst upstream layer 25a and Pd at the low supported density and the OSC material at the high contained density supported on the first catalyst downstream layer 27b are summarized as follows. 1) Pd at the high supported density on the second catalyst upstream layer 25a is disposed on the upstream side and thus contributes to improvement in the exhaust gas purification performance at the cold condition, and is disposed on the lower layer and thus contributes to the improvement of the Pd catalyst responsiveness when the phosphorus accumulation proceeds. 2) The OSC material at the low contained density on the second catalyst upstream layer 25a can make the contained density of the OSC material in the first catalyst downstream layer 27b high (when the total amount of the OSC material is fixed). 3) Pd at the low supported density on the first catalyst downstream layer 27b can make the supported density of Pd on the second catalyst upstream layer 25a high (when the total amount of Pd is fixed). 4) The OSC material at the high contained density on the first catalyst downstream layer 27b is on the upper layer and thus is more likely to make contact with the exhaust gas, and is on the downstream side involving less phosphorus accumulation, and thus contributes the improvement of the exhaust gas purification performance (the NOx purification performance in particular) when the phosphorus accumulation proceeds.
[0041] In some embodiments, Pd at the high supported density and the OSC material at the low contained density are supported on the second catalyst upstream layer 25a, the Pd at the low supported density and the OSC material at the high contained density are supported on the first catalyst downstream layer 27b, the second catalyst downstream layer 25b and the first catalyst upstream layer 27a each include Rh as the catalyst component. A more preferable setting examples of the supported amount of the second catalyst upstream layer 25a, the second catalyst downstream layer 25b, the first catalyst upstream layer 27a, and the first catalyst downstream layer 27b are as follows. The first catalyst upstream layer 27a: Rh 0.1 to 2.0 g/L. The first catalyst downstream layer 27b: Pd 1.0 to 5.0 g/L and the OSC material 20 to 60 g/L. The second catalyst upstream layer 25a: Pd 3.0 to 10 g/L and the OSC material 5 to 40 g/L. The second catalyst downstream layer 25b: Rh 0.1 to 2.0 g/L. With the values according to the setting example, the phosphorous poisoning can be suppressed, and the exhaust gas purification performance can be improved.
[0042] In some embodiments, in
[0043] In some embodiments, as illustrated in Example 2 in
[0044] In such an embodiment, the second catalyst upstream layer 35a and the first catalyst downstream layer 37b are formed on the upstream end side and the downstream end side of the supporting substrate 21. Thus, the effect of improving the exhaust gas purification performance and suppressing the phosphorus poisoning with Pd at the high density and the OSC material at the low supported density supported on the second catalyst upstream layer 35a under the cold condition can be achieved. Furthermore, the effect of improving the exhaust gas purification performance (the NOx reduction performance in particular) and suppressing the phosphorous poisoning with the Pd at the low supported density and the OSC material at the high supported density supported on the first catalyst downstream layer 37b can be obtained. The length of a catalyst layer 35 that is ½ of the length of the supporting substrate in Example 2 in
[0045] The exhaust gas purification catalyst 11 is further described with reference to an example illustrated in
[0046] In Comparative Example 1, Pd (including the OSC material) on a second catalyst layer 125 and Rh on a first catalyst layer 127 are each uniformly supported on the corresponding catalyst layer over the entire length of the supporting substrate 21. In Comparative Example 2, Pd (including the OSC material) is divided in two to be on a second catalyst upstream layer 135a and a second catalyst downstream layer 135b of a second catalyst layer 135 at the point of ½ of the length of the supporting substrate 21.
[0047] Example 1 corresponds to the embodiment illustrated in
[0048] In Example 2, the second catalyst upstream layer 35a and the first catalyst upstream layer 37a have the same length that is ½ of the length of the supporting substrate 21. The second catalyst downstream layer 35b and the first catalyst downstream layer 37b have the same length that is ½ of the length of the supporting substrate 21. The supported density of Pd and Rh on each of Comparative Example 1, Comparative Example 2, Example 1, and Example 2 is written below a corresponding one of schematic views illustrated in
[0049]
[0050] The catalyst layer supporting Pd (including the OSC material) is disposed to have an upstream portion and a downstream portion respectively disposed below and above the catalyst layer supporting Rh, that is, respectively provided as the second catalyst upstream layer 25a and the first catalyst downstream layer 27b. Thus, it has been confirmed that the degradation of the performance due to the poisoning by phosphorus derived from engine oil can be suppressed, and the harmful gas discharged from the engine cold start to the high load operation can be effectively purified.