Exhaust gas purification catalyst
The use of Si-free molecular sieves, especially aluminophosphate molecular sieves, in exhaust gas purification catalysts addresses the performance degradation issue, ensuring high purification efficiency during cold starts after hydrothermal durability treatment.
Patent Information
- Application Number
- JP2023575053
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-01-21
- Filing Date
- 2022-08-30
- Publication Date
- 2025-12-11
- Estimated Expiration
- 2042-08-30
AI Technical Summary
Conventional exhaust gas purification catalysts using zeolite suffer from reduced purification performance during cold start after exposure to high-temperature exhaust gas containing water for a long period, due to Si migration affecting the catalytic metals.
Utilizing a molecular sieve substantially free of Si, particularly aluminophosphate molecular sieves with an AFI-type framework structure, as the HC adsorbent in the catalyst layer, to maintain high purification performance during cold start after hydrothermal durability treatment.
The catalyst achieves enhanced purification performance during cold start by preventing Si migration, thereby maintaining effective catalytic activity.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a catalyst for purifying exhaust gas. This application claims priority to Japanese Patent Application No. 2022-007563, filed on January 21, 2022, the entire contents of which are incorporated herein by reference. [Background technology]
[0002] Exhaust gases emitted from internal combustion engines, such as automobile engines, contain harmful components such as hydrocarbons (HC), carbon monoxide (CO), and nitrogen oxides (NOx). Exhaust gas purification catalysts have traditionally been used to efficiently react and remove these harmful components from exhaust gases. A typical structure of an exhaust gas purification catalyst is one in which a catalyst layer containing catalytic metals such as Pt (platinum), Pd (palladium), or Rh (rhodium) is formed on a highly heat-resistant substrate, such as ceramics.
[0003] When the catalyst for purifying exhaust gas is not sufficiently heated immediately after starting the engine (so-called cold start), the temperature of the catalyst for purifying exhaust gas is low, making it difficult to obtain sufficient catalytic activity for treating hydrocarbons (HC). For this reason, a technique is known in which an HC adsorbent is contained in the catalyst layer, and the HC adsorbent is made to adsorb HC at low temperatures when catalytic activity is insufficient, and then released at temperatures when catalytic activity is sufficient, thereby purifying HC (see, for example, Patent Documents 1 to 5). As described in Patent Documents 1 to 5, various types of zeolites are generally used as the HC adsorbent. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Publication No. Hei 7-256114 [Patent Document 2] Japanese Patent Application Publication No. Hei 11-179158 [Patent Document 3] Japanese Patent Application Publication No. 2000-51707 [Patent Document 4] Japanese Patent Application Publication No. 2001-79423 [Patent Document 5] Japanese Patent Application Publication No. 2003-290661 Summary of the Invention [Problem to be solved by the invention]
[0005] In recent years, with the further tightening of exhaust gas regulations, catalysts for purifying exhaust gas are required to have higher performance in removing harmful components contained in exhaust gas. For example, higher exhaust gas purification performance is required during cold start. As a result of extensive research, the present inventors have found that the above-mentioned conventional catalysts for purifying exhaust gas using zeolite have a problem in that purification performance during cold start is significantly reduced after being exposed to high-temperature exhaust gas containing water for a long period of time (i.e., after hydrothermal durability treatment).
[0006] The present invention has been made in view of the above circumstances, and an object of the present invention is to provide an exhaust gas purification catalyst that has high exhaust gas purification performance during cold start after hydrothermal durability treatment. [Means for solving the problem]
[0007] As a result of intensive research, the inventors have found that the reason for the significant decrease in purification performance after hydrothermal durability treatment in the above-mentioned conventional exhaust gas purification catalysts using zeolite is that Si contained in the zeolite (aluminosilicate salt) migrates during the hydrothermal durability treatment and adversely affects the precious metals that are the catalytic metals.The inventors have also found that by using a predetermined proportion or more of molecular sieves that are substantially free of Si as the HC adsorbent, the purification performance of the exhaust gas purification catalyst during cold start after the thermal durability treatment is rapidly and significantly improved.
[0008] That is, the exhaust gas purification catalyst disclosed herein comprises a substrate and a catalyst layer provided on the substrate. The catalyst layer includes a catalytic metal and a hydrocarbon adsorbent. The hydrocarbon adsorbent contains 80 mass % or more of a molecular sieve that is substantially free of Si. This configuration makes it possible to provide an exhaust gas purification catalyst that has high purification performance during cold start after hydrothermal durability treatment.
[0009] In a preferred embodiment of the exhaust gas purification catalyst disclosed herein, the hydrocarbon adsorbent contains 90 mass % or more of a molecular sieve that is substantially free of Si. This configuration makes it possible to provide an exhaust gas purification catalyst that has higher purification performance during cold start after hydrothermal durability treatment.
[0010] Aluminophosphate molecular sieves are suitable as molecular sieves that are substantially free of Si. Advantageously, the aluminophosphate molecular sieves have an AFI-type framework structure.
[0011] In a preferred embodiment of the exhaust gas purification catalyst disclosed herein, the catalyst layer comprises a first partial catalyst layer formed on the surface of the substrate and containing the catalytic metal; and a second partial catalyst layer formed on the first partial catalyst layer and containing a catalytic metal of a different type from that of the first partial catalyst layer. The first partial catalyst layer contains an oxidation catalyst as the catalytic metal. The second partial catalyst layer contains a reduction catalyst as the catalytic metal. This configuration provides an exhaust gas purification catalyst with particularly excellent exhaust gas purification performance. From the viewpoint of achieving higher exhaust gas purification performance, it is advantageous that the first partial catalyst layer contains Pt as the catalytic metal and the second partial catalyst layer contains Rh as the catalytic metal. This is particularly advantageous for purifying paraffins. Alternatively, from the viewpoint of achieving higher exhaust gas purification performance, it is advantageous that the first partial catalyst layer contains Pd as the catalytic metal and the second partial catalyst layer contains Rh as the catalytic metal. This is particularly advantageous for purifying olefins. [Brief explanation of the drawings]
[0012] [Figure 1] 1 is a schematic diagram showing an exhaust gas purification system according to a first embodiment. [Figure 2] FIG. 2 is a perspective view schematically showing the exhaust gas purifying catalyst of FIG. 1. [Figure 3] 2 is a partial cross-sectional view of the exhaust gas purifying catalyst of FIG. 1 cut in the cylinder axis direction. [Figure 4] FIG. 2 is a partial cross-sectional view showing the configuration of a modified example of the exhaust gas purifying catalyst of FIG. [Figure 5] 1 is a graph plotting the 50% HC purification temperature after hydrothermal durability treatment in each example and each comparative example. DETAILED DESCRIPTION OF THE INVENTION
[0013] [First embodiment] Preferred embodiments of the present invention will be described below with reference to the drawings. Matters necessary for implementing the present invention other than those specifically mentioned in this specification can be understood as design matters for a person skilled in the art based on the prior art in the relevant field. The present invention can be implemented based on the contents disclosed in this specification and the technical common sense in the relevant field. Furthermore, in the following drawings, components and parts that perform the same function are designated by the same reference numerals, and redundant explanations may be omitted or simplified. Dimensional relationships (length, width, thickness, etc.) in each drawing do not necessarily reflect actual dimensional relationships. Furthermore, in this specification, the notation "A to B" (A and B are arbitrary numbers) indicating a range means greater than or equal to A and less than or equal to B, and also encompasses the meanings of "preferably greater than A" and "preferably smaller than B."
[0014] <Exhaust gas purification system> FIG. 1 is a schematic diagram of an exhaust gas purification system 1. The exhaust gas purification system 1 includes an internal combustion engine 2, an exhaust gas purification device 3, and an engine control unit (ECU) 7. The exhaust gas purification system 1 is configured to purify harmful components, such as HC, CO, and NOx, contained in exhaust gas emitted from the internal combustion engine 2 using the exhaust gas purification device 3. Note that arrows in FIG. 1 indicate the flow direction of exhaust gas. In the following description, the side closer to the internal combustion engine 2 along the flow of exhaust gas is referred to as the upstream side, and the side farther from the internal combustion engine 2 is referred to as the downstream side.
[0015] Here, the internal combustion engine 2 is primarily configured as a gasoline engine for a gasoline vehicle. However, the internal combustion engine 2 may also be an engine other than a gasoline engine, such as a diesel engine or an engine installed in a hybrid vehicle. The internal combustion engine 2 has a combustion chamber (not shown). The combustion chamber is connected to a fuel tank (not shown). In this example, gasoline is stored in the fuel tank. However, the fuel stored in the fuel tank may be diesel fuel (light oil) or the like. In the combustion chamber, the fuel supplied from the fuel tank is mixed with oxygen and burned. This converts the combustion energy into mechanical energy. The combustion chamber is connected to an exhaust port 2a. The exhaust port 2a is connected to an exhaust gas purification device 3. The burned fuel gas is discharged as exhaust gas to the exhaust gas purification device 3.
[0016] The exhaust gas purification device 3 includes an exhaust path 4 communicating with the internal combustion engine 2, a pressure sensor 8, a first catalyst 9, and a second catalyst 10. The exhaust path 4 is an exhaust gas flow path through which exhaust gas flows. Here, the exhaust path 4 includes an exhaust manifold 5 and an exhaust pipe 6. The upstream end of the exhaust manifold 5 is connected to an exhaust port 2a of the internal combustion engine 2. The downstream end of the exhaust manifold 5 is connected to the exhaust pipe 6. The first catalyst 9 and the second catalyst 10 are arranged in this order from upstream to downstream in the exhaust pipe 6. However, the arrangement of the first catalyst 9 and the second catalyst 10 may be varied as desired. Furthermore, there is no particular limitation on the number of first catalysts 9 and second catalysts 10, and multiple catalysts of each may be provided. Furthermore, a third catalyst may be further arranged downstream of the second catalyst 10.
[0017] The first catalyst 9 may be the same as a conventional catalyst and is not particularly limited. The first catalyst 9 may be, for example, a diesel particulate filter (DPF) that removes PM contained in exhaust gas; a diesel oxidation catalyst (DOC) that purifies HC and CO contained in exhaust gas; a three-way catalyst that simultaneously purifies HC, CO, and NOx contained in exhaust gas; or a NOx storage-reduction (NSR) catalyst that stores NOx during normal operation (lean conditions) and purifies NOx using HC and CO as reducing agents when a large amount of fuel is injected (rich conditions). The first catalyst 9 may have, for example, a function of increasing the temperature of exhaust gas flowing into the second catalyst 10. The first catalyst 9 is not an essential component and may be omitted in other embodiments.
[0018] The second catalyst 10 has the function of purifying harmful components (e.g., HC) in exhaust gas. The second catalyst 10 is a three-way catalyst in this example. The second catalyst 10 is an example of a catalyst for purifying exhaust gas disclosed herein. Note that, hereinafter, the second catalyst 10 may be referred to as the "catalyst for purifying exhaust gas." The configuration of the second catalyst (catalyst for purifying exhaust gas) 10 will be described in detail later.
[0019] The ECU 7 controls the internal combustion engine 2 and the exhaust gas purification device 3. The ECU 7 is electrically connected to the internal combustion engine 2 and sensors (e.g., pressure sensor 8, temperature sensor, oxygen sensor, etc.) installed at various locations in the exhaust gas purification device 3. The configuration of the ECU 7 may be the same as that of a conventional device and is not particularly limited. The ECU 7 is, for example, a processor or an integrated circuit. The ECU 7 has an input port (not shown) and an output port (not shown). The ECU 7 receives information, for example, regarding the operating state of the vehicle and the amount, temperature, and pressure of exhaust gas emitted from the internal combustion engine 2. The ECU 7 receives information detected by a sensor (e.g., pressure measured by the pressure sensor 8) via the input port. The ECU 7 transmits a control signal via the output port based on, for example, the received information. The ECU 7 controls the operation of the internal combustion engine 2, such as fuel injection control, ignition control, and intake air amount adjustment control. The ECU 7 controls the driving and stopping of the exhaust gas purification device 3 based on, for example, the operating state of the internal combustion engine 2, the amount of exhaust gas emitted from the internal combustion engine 2, and the like.
[0020] <Exhaust gas purification catalyst> FIG. 2 is a perspective view that schematically shows the exhaust gas purifying catalyst 10. Note that arrows in FIG. 2 indicate the flow of exhaust gas. In FIG. 2, the upstream side of the exhaust path 4 that is relatively close to the internal combustion engine 2 is shown on the left side, and the downstream side of the exhaust path that is relatively far from the internal combustion engine 2 is shown on the right side. Also, in FIG. 2, the symbol X indicates the cylinder axis direction of the exhaust gas purifying catalyst 10. The exhaust gas purifying catalyst 10 is installed in the exhaust path 4 so that the cylinder axis direction X is along the flow direction of the exhaust gas. The cylinder axis direction X is the flow direction of the exhaust gas. Hereinafter, one direction X1 of the cylinder axis direction X may be referred to as the upstream side (also referred to as the exhaust gas inflow side or front side), and the other direction X2 may be referred to as the downstream side (also referred to as the exhaust gas outflow side or rear side). However, these directions are merely for convenience of explanation and do not in any way limit the installation form of the exhaust gas purifying catalyst 10.
[0021] The exhaust gas purifying catalyst 10 includes a substrate 11 with a straight flow structure and a catalyst layer 20 (see FIG. 3). One end of the exhaust gas purifying catalyst 10 in one direction X1 is an exhaust gas inlet 10a, and the other end in the other direction X2 is an exhaust gas outlet 10b. The outer shape of the exhaust gas purifying catalyst 10 here is cylindrical. However, the outer shape of the exhaust gas purifying catalyst 10 is not particularly limited, and may be, for example, an elliptical cylindrical shape, a polygonal cylindrical shape, a pipe shape, a foam shape, a pellet shape, a fiber shape, or the like.
[0022] The substrate 11 constitutes the framework of the exhaust gas purification catalyst 10. The substrate 11 is not particularly limited, and various materials and shapes conventionally used for this type of application can be used. The substrate 11 may be, for example, a ceramic carrier made of ceramics such as cordierite, aluminum titanate, or silicon carbide, or a metal carrier made of stainless steel (SUS), an Fe-Cr-Al alloy, or an Ni-Cr-Al alloy. As shown in FIG. 2, the substrate 11 has a honeycomb structure. The substrate 11 includes a plurality of cells (cavities) 12 regularly arranged in the cylindrical axis direction X and partition walls (ribs) 14 separating the plurality of cells 12. Although not particularly limited, the volume of the substrate 11 (apparent volume including the volume of the cells 12) may be approximately 0.1 to 10 L, for example, 0.5 to 5 L. The average length (total length) L of the substrate 11 along the cylindrical axis direction X may be approximately 10 to 500 mm, for example, 50 to 300 mm.
[0023] The cells 12 serve as flow paths for exhaust gas. The cells 12 extend in the cylinder axis direction X. The cells 12 are through-holes that penetrate the substrate 11 in the cylinder axis direction X. The shape, size, number, etc. of the cells 12 may be designed, for example, taking into consideration the flow rate and components of the exhaust gas flowing through the exhaust gas purification catalyst 10. The shape of the cross section of the cells 12 perpendicular to the cylinder axis direction X is not particularly limited. The cross-sectional shape of the cells 12 may be, for example, a quadrangle such as a square, parallelogram, rectangle, or trapezoid, or any of various geometric shapes such as other polygons (e.g., triangle, hexagon, octagon), a wave shape, or a circle. The partition walls 14 face the cells 12 and separate adjacent cells 12. Although not particularly limited, the average thickness of the partition walls 14 (the dimension in the direction perpendicular to the surface; the same applies hereinafter) may be approximately 0.1 to 10 mil (1 mil is approximately 25.4 μm), for example, 0.2 to 5 mil, from the viewpoint of improving mechanical strength and reducing pressure loss. The partition walls 14 may be porous so that exhaust gas can pass through.
[0024] The catalyst layer 20 is a reaction field that purifies harmful components in exhaust gas. The catalyst layer 20 is a porous body having a large number of pores (voids). The exhaust gas that flows into the exhaust gas purification catalyst 10 comes into contact with the catalyst layer 20 while flowing through the flow paths (cells 12) of the exhaust gas purification catalyst 10. This purifies the harmful components in the exhaust gas. For example, HC and CO contained in the exhaust gas are oxidized by the catalyst layer 20 and converted (purified) into water, carbon dioxide, etc. For example, NOx contained in the exhaust gas is reduced by the catalyst layer 20 and converted (purified) into nitrogen.
[0025] 3 is a partial cross-sectional view schematically showing a part of a cross section of the exhaust gas purifying catalyst 10 taken along the cylinder axis direction X. In this example, the catalyst layer 20 is provided on the substrate 11, specifically on the surface of the partition walls 14. However, the catalyst layer 20 may partially or entirely penetrate into the interior of the partition walls 14.
[0026] The catalyst layer 20 includes at least a catalyst metal and a hydrocarbon (HC) adsorbent. The catalyst metal and the hydrocarbon (HC) adsorbent are essential components of the catalyst layer 20.
[0027] Various metal species that can function as oxidation catalysts or reduction catalysts in purifying harmful components can be used as catalytic metals. Typical examples of catalytic metals include platinum group metals, namely, rhodium (Rh), palladium (Pd), platinum (Pt), ruthenium (Ru), osmium (Os), and iridium (Ir). Other metal species may be used instead of or in addition to platinum group metals. For example, iron (Fe), cobalt (Co), nickel (Ni), copper (Cu), silver (Ag), and gold (Au) may be used. Furthermore, alloys of two or more of these metals may also be used. Suitable catalytic metals are oxidation catalysts with high oxidation activity (e.g., at least one of Pd and Pt) and reduction catalysts with high reduction activity (e.g., Rh), with a combination of two or more of these being particularly preferred. The oxidation catalyst and reduction catalyst may be present in the same (single) catalyst layer or in separate catalyst layers.
[0028] The catalytic metal is preferably used as fine particles with a sufficiently small particle size in order to increase the contact area with the exhaust gas. The average particle size of the catalytic metal (specifically, the average particle size of 50 or more catalytic metal particles determined by observation with a transmission electron microscope (TEM)) is generally 1 to 15 nm, for example, 10 nm or less, or even 5 nm or less.
[0029] The amount of catalytic metal in the exhaust gas purification catalyst 10 is not particularly limited and can be determined appropriately depending on the type of catalytic metal, etc. From the viewpoint of particularly high exhaust gas purification performance, the amount of catalytic metal per 1 L of volume of the substrate 11 may be, for example, 0.01 g / L or more, 0.03 g / L or more, 0.05 g / L or more, 0.08 g / L or more, or 0.10 g / L or more. From the viewpoint of a balance between exhaust gas purification performance and cost, the amount may be, for example, 15.00 g / L or less, 10.00 g / L or less, 5.00 g / L or less, 3.00 g / L or less, 1.50 g / L or less, 1.00 g / L or less, 0.80 g / L or less, or 0.50 g / L or less.
[0030] In this specification, "per 1 L of substrate volume" refers to 1 L of the total bulk volume, which is the net volume of the substrate and includes the volume of the cell passages. In the following description, the units expressed as (g / L) indicate the amount contained in 1 L of substrate volume.
[0031] In this embodiment, the HC adsorbent contained in the catalyst layer 20 contains 80 mass % or more of a molecular sieve that does not substantially contain Si. That is, the mass ratio of the molecular sieve that does not substantially contain Si to the total mass of the HC adsorbent contained in the catalyst layer 20 is 80 mass % or more.
[0032] In the prior art, zeolite is contained as an HC adsorbent. Zeolite is a crystalline aluminosilicate that functions as a molecular sieve and therefore contains Si and Al. The findings of the present inventors indicate that when a catalyst layer containing zeolite is subjected to hydrothermal durability treatment, the Si contained in the zeolite migrates and adversely affects the precious metals that serve as catalysts, thereby reducing exhaust gas purification performance during cold starts. This is thought to be due to the reduction of SiO2 contained in the zeolite to SiO in a high-temperature reducing atmosphere, resulting in interfacial migration and evaporation in the form of SiOx. It is also thought to be due to poisoning caused by the interaction between Si and the precious metals.
[0033] Furthermore, as shown by the results of the Examples and Comparative Examples described later, the inventors have found through their studies that when 80 mass % or more of a molecular sieve that is substantially free of Si is used as the HC adsorbent, the purification performance at the time of cold start after the hydrothermal durability treatment is rapidly improved. Therefore, in this embodiment, by having the HC adsorbent contain 80 mass % or more of a molecular sieve that is substantially free of Si, it is possible to suppress the deterioration of the purification performance at the time of cold start after the hydrothermal durability treatment due to Si.
[0034] In this specification, "the molecular sieve is substantially free of Si" means that the ratio of Si atoms to all atoms constituting the molecular sieve is 6 atomic % or less (preferably 3 atomic % or less, more preferably 1 atomic % or less, and even more preferably 0 atomic %). Therefore, it is acceptable for the molecular sieve to contain Si due to, for example, migration of Si or unavoidable impurities. The ratio of Si atoms to all atoms constituting the molecular sieve can be determined by X-ray fluorescence analysis (XRF).
[0035] The molecular sieve substantially free of Si is not particularly limited as long as it has HC adsorption ability, but is preferably an aluminophosphate (ALPO) molecular sieve. The aluminophosphate molecular sieve may be an aluminophosphate (AlPO) having the same, similar, or different framework structure as a zeolite. The ALPO molecular sieve is substantially free of Si, but the SiO2 / Al2O3 ratio (molar ratio) of the ALPO molecular sieve is preferably less than 1, more preferably 0.5 or less, even more preferably 0.1 or less, and most preferably 0. The ALPO molecular sieve used here is substantially free of Si and therefore differs from aluminophosphate-based zeolites with a high Al2O3 content relative to SiO2 (even low-silica zeolites usually have a SiO2 / Al2O3 ratio of 1 or more). The SiO2 / Al2O3 ratio can be determined by X-ray fluorescence analysis (XRF).
[0036] ALPO molecular sieves having various skeletal structures are known, and examples of such skeletal structures include AEI, AEL, AEN, AET, AFI, AFN, AFO, AFR, AFS, AFT, AFY, ANA, APC, APD, AST, ATO, ATS, ATT, ATV, AVE, AVL, AWO, AWW, CHA, DFO, ERI, LEV, SBS, SBE, SBT, SOD, VFI, and ZON, as skeletal type codes defined by the International Zeolite Association (IZA). The AFI type ALPO molecular sieve is preferred because it provides particularly high purification performance during cold start after hydrothermal durability treatment.
[0037] Since the purification performance at the time of cold start after the hydrothermal durability treatment is improved, the HC adsorbent contained in the catalyst layer 20 preferably contains 90 mass % or more of molecular sieves that are substantially free of Si, more preferably 95 mass % or more, even more preferably 97 mass % or more, and most preferably 100 mass %.
[0038] When the HC adsorbent contains 80% by mass or more but less than 100% by mass of the molecular sieve substantially free of Si, the HC adsorbent also contains an adsorbent other than the molecular sieve substantially free of Si (hereinafter also referred to as "other HC adsorbent"). The other HC adsorbent may be zeolite. This zeolite may be a conventionally known zeolite used as an HC adsorbent in a gas purification catalyst. The HC adsorbent contained in the catalyst layer 20 may contain, for example, more than 0% by mass, 1% by mass or more, or 3% by mass or more of zeolite, or 20% by mass or less, 10% by mass or less, 5% by mass or less, or 3% by mass or less.
[0039] The amount of HC adsorbent in the exhaust gas purification catalyst 10 is not particularly limited, and can be appropriately designed taking into consideration the size of the cells 12 of the substrate 11, the flow rate of exhaust gas flowing through the exhaust gas purification catalyst 10, and the like. The amount of HC adsorbent per 1 L of volume of the substrate 11 may be, for example, 1 g / L or more, 5 g / L or more, 10 g / L or more, 15 g / L or more, or 20 g / L or more, and may be, for example, 200 g / L or less, 150 g / L or less, 100 g / L or less, 80 g / L or less, 60 g / L or less, 50 g / L or less, or 40 g / L or less.
[0040] The catalytic metal may be supported on the HC adsorbent or on a carrier. Therefore, the catalyst layer 20 may further contain a carrier that supports the catalytic metal. The catalytic metal may be supported on either the HC adsorbent or the carrier, or on both.
[0041] The carrier for supporting the catalytic metal can be a known material used as a carrier for catalytic metals in exhaust gas purification catalysts. The carrier is typically an inorganic porous body. Examples of the carrier include materials without oxygen storage capacity (non-OSC materials) such as aluminum oxide (Al2O3, alumina), titanium oxide (TiO2, titania), zirconium oxide (ZrO2, zirconia), and silicon oxide (SiO2, silica); and materials with oxygen storage capacity (OSC materials) such as ceria (CeO2) and composite oxides containing ceria. The carrier may be either a non-OSC material or an OSC material, or both.
[0042] A small amount (e.g., 1% by mass to 10% by mass) of an oxide of a rare earth element such as Pr2O3, Nd2O3, La2O3, or Y2O3 may be added to the oxide used as the non-OSC material in order to improve heat resistance, etc. Because of its particularly excellent heat resistance and durability, Al2O3 is preferred as the non-OSC material, and Al2O3 composited with La2O3 (La2O3-Al2O3 composite oxide; LA composite oxide) is more preferred.
[0043] Regarding the OSC material, examples of composite oxides containing ceria include composite oxides containing ceria and zirconia (ceria-zirconia composite oxides (so-called CZ composite oxides or ZC composite oxides)). When zirconium oxide is contained in the OSC material, thermal degradation of cerium oxide can be suppressed, and therefore ceria-zirconia composite oxides are preferred as OSC materials.
[0044] The OSC material may contain oxides of rare earth elements to improve properties (especially heat resistance and oxygen absorption / release properties). Examples of rare earth elements include Sc, Y, La, Pr, Nd, Pm, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, and Lu. Preferred oxides of rare earth elements are Pr2O3, Nd2O3, La2O3, and YO3.
[0045] When the OSC material is a composite oxide containing cerium oxide, the cerium oxide content is preferably 15% by mass or more, more preferably 20% by mass or more, from the viewpoint of fully exhibiting its oxygen storage capacity. On the other hand, if the cerium oxide content is too high, the OSC material may become too basic. Therefore, the cerium oxide content is preferably 40% by mass or less, more preferably 30% by mass or less.
[0046] As an example, the catalyst layer 20 includes an HC adsorbent material, an OSC material, and a non-OSC material, and the catalytic metal is supported on all of the HC adsorbent material, the OSC material, and the non-OSC material.
[0047] The catalyst layer 20 may further contain the above-mentioned OSC material and / or the above-mentioned non-OSC material in a form that does not support a catalytic metal. The OSC material and non-OSC material used as a support, and the OSC material and non-OSC material used as a non-support, preferably do not contain Si.
[0048] The amounts of the OSC material and non-OSC material in exhaust gas purifying catalyst 10 are not particularly limited and can be appropriately designed taking into consideration the size of cells 12 of substrate 11, the flow rate of exhaust gas flowing through exhaust gas purifying catalyst 10, and the like. The total amount of the OSC material and non-OSC material per 1 L of volume of substrate 11 (the total amount of the OSC material and non-OSC material including both the carrier and the non-carrier) may be, for example, 50 g / L or more, 70 g / L or more, 80 g / L or more, 90 g / L or more, or 100 g / L or more, and may be, for example, 300 g / L or less, 250 g / L or less, 200 g / L or less, 180 g / L or less, or 160 g / L or less.
[0049] The catalyst layer 20 preferably contains an OSC material either as a catalyst metal carrier or in a form that does not support a catalyst metal. In this case, even when the air-fuel ratio of the exhaust gas fluctuates due to, for example, the running conditions of the vehicle, stable and excellent purification performance can be exhibited.
[0050] The catalyst layer 20 may contain alkaline earth elements such as calcium (Ca) and barium (Ba). The alkaline earth elements can suppress poisoning of the catalytic metal (especially the oxidation catalyst). The alkaline earth elements also improve the dispersibility of the catalytic metal, suppressing sintering that occurs with grain growth of the catalytic metal. When the catalyst layer 20 contains an alkaline earth element together with the OSC material, the amount of oxygen absorbed by the OSC material can be further improved in a lean atmosphere (an oxygen-excess atmosphere) where the fuel is leaner than the stoichiometric air-fuel ratio. The alkaline earth elements can be contained in the form of oxides, hydroxides, carbonates, nitrates, sulfates, phosphates, acetates, formates, oxalates, halides, etc.
[0051] The catalyst layer 20 may also contain a NOx adsorbent having NOx storage capacity, a stabilizer, etc. Examples of the stabilizer include rare earth elements such as yttrium (Y), lanthanum (La), and neodymium (Nd). The rare earth elements may be present in the catalyst layer 20 in the form of oxides.
[0052] Other optional components of the catalyst layer 20 include binders such as alumina sol and silica sol, various additives, etc. The binder preferably does not contain Si, and therefore alumina sol is preferred.
[0053] Although not particularly limited, the coating amount (molded amount) of the catalyst layer 20 may be approximately 30 g / L or more, typically 50 g / L or more, and preferably 70 g / L or more, for example 100 g / L or more, per 1 L of the volume of the exhaust gas purification catalyst 10 (volume of the substrate 11), and may be approximately 500 g / L or less, typically 400 g / L or less, for example 300 g / L or less. By satisfying the above range, it is possible to achieve both high levels of improvement in purification performance and low pressure loss. In this specification, the term "coating amount" refers to the mass of solids contained per unit volume of the exhaust gas purification catalyst 10.
[0054] The length and thickness of the catalyst layer 20 can be appropriately designed taking into consideration, for example, the size of the cells 12 of the substrate 11 and the flow rate of exhaust gas flowing through the exhaust gas purification catalyst 10. The catalyst layer 20 may be provided continuously or discontinuously on the partition walls 14 of the substrate 11. The catalyst layer 20 may be provided, for example, from the exhaust gas inlet 10a along the cylinder axis direction X, or from the exhaust gas outlet 10b along the cylinder axis direction X.
[0055] Although not particularly limited, the overall coating width (average length) of catalyst layer 20 in the cylinder axis direction X is approximately 20% or more, preferably 50% or more, typically 80% or more, for example 90% or more of the overall length L of substrate 11, and may be the same length as the overall length L of substrate 11. Although not particularly limited, the coating thickness (average thickness) of catalyst layer 20 is approximately 1 to 300 μm, typically 5 to 200 μm, for example 10 to 100 μm. This makes it possible to achieve both improved purification performance and reduced pressure loss at a high level.
[0056] A part of the catalyst layer 20 may have a different composition from the other part of the catalyst layer 20. For example, the upstream X1 part (front part) and the downstream X2 part (rear part) in the cylindrical axis direction X of the catalyst layer 20 may have different compositions. Specifically, for example, the upstream X1 part (front part) and the downstream X2 part (rear part) in the cylindrical axis direction X of the catalyst layer 20 may contain different catalytic metals.
[0057] The exhaust gas purifying catalyst 10 illustrated in FIG. 3 has one catalyst layer 20 as a layer. However, the exhaust gas purifying catalyst 10 may further have a layer other than the catalyst layer 20. Therefore, when the exhaust gas purifying catalyst 10 has multiple layers, at least one of the layers may satisfy the configuration of the catalyst layer 20. Examples of layers other than the catalyst layer 20 include a layer that contains a catalytic metal but does not contain an HC adsorbent, and a layer that does not contain a catalytic metal. For example, the exhaust gas purifying catalyst 10 may have the catalytic layer 20 in an upstream side X1 portion of the substrate in the cylindrical axis direction X, and a layer other than the catalytic layer 20 in a downstream side X2 portion. Alternatively, the exhaust gas purifying catalyst 10 may have a layer other than the catalytic layer 20 above or below the catalytic layer 20.
[0058] The catalyst layer 20 of the exhaust gas purification catalyst 10 illustrated in Fig. 3 has a single-layer structure. However, the catalyst layer 20 may have a multi-layer structure in which each layer contains a catalytic metal and an HC adsorbent. An example of an exhaust gas purification catalyst in which the catalyst layer 20 has a multi-layer structure will be described below.
[0059] <Modification of exhaust gas purification catalyst 10> 4 is a partial cross-sectional view schematically showing a part of a cross section of an exhaust gas purifying catalyst 10′, which is a modified example of the exhaust gas purifying catalyst 10, taken along the cylinder axis direction X. The exhaust gas purifying catalyst 10′ includes a substrate 11 and a catalyst layer 20′ of a multi-layer structure provided on the substrate 11. The catalyst layer 20′ has a multi-layer structure, which can further improve the exhaust gas purifying performance.
[0060] The substrate 11 is the same as described above. Unlike the example shown in FIG. 3, the catalyst layer 20′ has a multi-layer structure. Specifically, the catalyst layer 20′ has a laminated structure in which a first partial catalyst layer (lower layer) 21 and a second partial catalyst layer (upper layer) 22 are laminated in the thickness direction. Therefore, the lower layer 21 is provided so as to be in contact with the surface of the substrate 11, and the upper layer 22 is provided so as to be in contact with the upper surface of the lower layer 21. In the illustrated example, the catalyst layer 20′ has a two-layer structure, but the catalyst layer 20′ may have a laminated structure of three or more layers. For example, the catalyst layer 20′ may have an intermediate layer between the lower layer 21 and the upper layer 22, or the catalyst layer 20′ may have another layer on the upper layer 22.
[0061] The lower layer 21 and the upper layer 22 each contain a catalytic metal and an HC adsorbent. Here, the lower layer 21 and the upper layer 22 may contain the same catalytic metal or different catalytic metals, and preferably contain different catalytic metals.
[0062] Specifically, for example, the lower layer 21 contains an oxidation catalyst (e.g., at least one of Pd and Pt) as the catalytic metal, and the upper layer 22 contains a reduction catalyst (e.g., Rh) as the catalytic metal. In this case, the exhaust gas purification catalyst 10' is particularly excellent in exhaust gas purification performance. From the viewpoint of higher exhaust gas purification performance, it is advantageous that the catalytic metal of the lower layer 21 is Pt and the catalytic metal of the upper layer 22 is Rh. In this case, it is particularly advantageous for purifying paraffins. Alternatively, from the viewpoint of higher exhaust gas purification performance, it is advantageous that the catalytic metal of the lower layer 21 is Pd and the catalytic metal of the upper layer 22 is Rh. In this case, it is particularly advantageous for purifying olefins.
[0063] When the lower layer 21 contains Pt, preferably 80 mass % or more, more preferably 90 mass % or more, even more preferably 95 mass % or more, and most preferably 100 mass % of the catalytic metal contained in the lower layer 21 is Pt. When the lower layer 21 contains Pd, preferably 80 mass % or more, more preferably 90 mass % or more, even more preferably 95 mass % or more, and most preferably 100 mass % of the catalytic metal contained in the lower layer 21 is Pd. When the upper layer 22 contains Rh, preferably 80 mass % or more, more preferably 90 mass % or more, even more preferably 95 mass % or more, and most preferably 100 mass % of the catalytic metal contained in the upper layer 22 is Rh.
[0064] The lower layer 21 and the upper layer 22 may contain the same HC adsorbent material or different HC adsorbents. For example, the lower layer 21 and the upper layer 22 may contain, as the HC adsorbent material, ALPO molecular sieves with different framework structures.
[0065] The lower layer 21 and the upper layer 22 may contain the same optional components as those in the catalyst layer 20 described above.
[0066] <Method for manufacturing exhaust gas purification catalyst 10> The exhaust gas purification catalyst 10 can be manufactured, for example, by the following method. First, a substrate 11 and a catalyst layer-forming slurry for forming the catalyst layer 20 are prepared. The catalyst layer-forming slurry can be prepared, for example, by mixing a catalyst metal source (e.g., a solution containing the catalyst metal as ions), essential raw material components of the HC absorbent, and other optional components (e.g., a non-OSC material, an OSC material, a binder, various additives, etc.) in a dispersion medium. As the dispersion medium, for example, water or a mixture of water and a water-soluble organic solvent can be used. The properties of the slurry (e.g., viscosity, solid content, etc.) can be appropriately determined depending on the size of the substrate 11 used, the shape of the cells 12 (partition walls 14), the properties required for the catalyst layer 20, etc.
[0067] Next, the catalyst layer 20 is formed on the substrate 11 using the catalyst layer forming slurry. The catalyst layer 20 can be formed by a conventionally known method (e.g., impregnation method, washcoat method, etc.). Specifically, for example, the prepared catalyst layer forming slurry is flowed into the cells 12 from the end of the substrate 11 and supplied to a predetermined length along the cylindrical axis direction X. The slurry may be introduced from either the inlet 10a or the outlet 10b. At this time, excess slurry may be sucked from the opposite end. Alternatively, excess slurry may be discharged from the cells 12 by blowing air from the opposite end. Next, the substrate 11 to which the slurry has been supplied is fired at a predetermined temperature and time. The firing method may be the same as conventional. Alternatively, drying may be performed before firing to remove the dispersion medium. As a result, the raw material components are sintered to the substrate 11, forming a porous catalyst layer 20. In this manner, the exhaust gas purification catalyst 10 can be obtained.
[0068] <10 uses of exhaust gas purification catalysts> The exhaust gas purification catalyst 10 can be suitably used to purify exhaust gases emitted from vehicles such as automobiles and trucks, motorcycles and mopeds, marine products such as ships, tankers, jet skis, personal watercraft and outboard motors, gardening products such as lawn mowers, chainsaws and trimmers, leisure products such as golf carts and all-terrain vehicles, power generation equipment such as cogeneration systems, and internal combustion engines of waste incinerators, etc. Among these, the catalyst can be suitably used for vehicles such as automobiles, and particularly for vehicles equipped with gasoline engines.
[0069] Test examples relating to the present invention will be described below, but it is not intended that the present invention be limited to those shown in the following test examples.
[0070] Example 1 A honeycomb substrate (made of cordierite, volume: 0.0175 L, total length of substrate: 24 mm, number of cells: 400 cells, cell shape: square, partition wall thickness: 6 mil) was prepared as the substrate. The following were also prepared as raw materials for the catalyst layer. Catalytic metal source: Nitric acid-based Pt aqueous solution (for lower layer), Nitric acid Rh aqueous solution (for upper layer) Non-OSC material: La2O3 composite Al2O3, La2O3 content 1~10% by mass OSC material: CeO2-ZrO2 composite oxide, CeO2 content 15-40 mass%, with trace amounts of Pd2O3, Nd2O3, La2O3, and Y2O3 added to enhance heat resistance HC adsorbent: AFI type ALPO-5
[0071] A slurry for forming the underlayer was prepared by mixing a nitric acid-based Pt aqueous solution, La2O3 composite Al2O3, CeO2-ZrO2 composite oxide, AFI-type ALPO-5, Ba sulfate, Al2O3 binder, and aqueous solvent. This underlayer slurry was poured onto the substrate, and the unnecessary parts were blown away with a blower, coating the substrate surface with the underlayer material. The resulting mixture was then dehydrated in a forced-air dryer set at 120°C and then fired in an electric furnace at 500°C for 1 hour. In this way, a Pt catalyst-containing underlayer was formed on the substrate.
[0072] Next, an upper layer slurry was prepared by mixing an aqueous solution of Rh nitrate, La2O3 composite Al2O3, CeO2-ZrO2 composite oxide, AFI-type ALPO-5, an Al2O3 binder, and an aqueous solvent. This upper layer slurry was poured onto the substrate on which the lower layer had been formed, and unnecessary portions were blown away with a blower, thereby coating the surface of the lower layer formed on the substrate with the upper layer material. This was then dehydrated in a forced air dryer set at 120°C and then fired in an electric furnace at 500°C for 1 hour. In this way, an upper layer containing a Rh catalyst was formed on the lower layer, yielding the exhaust gas purification catalyst of Example 1. In the obtained exhaust gas purification catalyst, the Pt content per 1 L of substrate volume was 0.3 g / L, the Rh content was 0.06 g / L, the support (non-OSC material + OSC material) content was 146 g / L, and the HC adsorbent content was 30 g / L.
[0073] Example 2 An exhaust gas purification catalyst of Example 2 was prepared in the same manner as in Example 1, except that a mixture of AFI-type ALPO-5 and BEA-type zeolite (SiO2 / Al2O3 ratio = 500) in a mass ratio of 99:1 was used as the HC adsorbent.
[0074] Example 3 An exhaust gas purification catalyst of Example 3 was prepared in the same manner as in Example 1, except that a mixture of AFI-type ALPO-5 and BEA-type zeolite (SiO2 / Al2O3 ratio = 40) in a mass ratio of 97:3 was used as the HC adsorbent.
[0075] Example 4 An exhaust gas purification catalyst of Example 3 was prepared in the same manner as in Example 1, except that a mixture of AFI-type ALPO-5 and BEA-type zeolite (SiO2 / Al2O3 ratio = 40) in a mass ratio of 90:10 was used as the HC adsorbent.
[0076] Comparative Example 1 An exhaust gas purification catalyst of Comparative Example 1 was produced in the same manner as in Example 1, except that a mixture of ALPO-5 and BEA-type zeolite (SiO2 / Al2O3 ratio = 500) in a mass ratio of 50:50 was used as the HC adsorbent.
[0077] Comparative Example 2 An exhaust gas purifying catalyst of Comparative Example 2 was produced in the same manner as in Example 1, except that BEA-type zeolite (SiO2 / Al2O3 ratio = 500) was used as the HC adsorbent instead of ALPO-5.
[0078] [Hydrothermal durability treatment] Rich gas and lean gas were alternately passed through the exhaust gas purification catalysts of each Example and Comparative Example at 900°C for 10 hours, with the gas switched every 10 minutes. The rich gas had a composition of 5% CO, 10% water, and the balance N2, and the lean gas had a composition of 2.5% O2, 10% water, and the balance N2.
[0079] [Evaluation of catalytic activity against HC] The exhaust gas purification catalysts of each Example and Comparative Example that had been subjected to the hydrothermal durability treatment were heated from 100°C to 500°C at a rate of 20°C / min while passing a pretreatment gas through them, and then held at 500°C for 5 minutes. The temperature was then lowered to 100°C while passing an inert gas (N2 gas). After the temperature stabilized, the temperature was raised at a rate of 50°C / min while passing a reaction gas through them, and the temperature at which the HC purification rate of the reaction gas reached 50% (HC50% purification temperature: T50) was determined. The following pretreatment gases and reaction gases were used. A graph plotting the HC50% purification temperatures for each Example and Comparative Example is shown in Figure 5. Pretreatment gas A / F ratio: 14.6; C3H6:2400ppmC, C3H8:600ppmC, CO:0.5%, NO: 800ppm, H2O: 10%, CO2: 10%, O2: 0.3%, N2: balance Reactive Gas A / F ratio: 14.6; C3H6: 1500 ppm C, C 10 H 22 :1500ppmC, H2O:3%, CO2: 10%, O2: 0.3%, N2: balance
[0080] From the graph in Figure 5, it can be seen that as the content of ALPO-5 (i.e., a molecular sieve substantially free of Si) in the HC adsorbent increases, the 50% HC conversion temperature decreases, i.e., the HC conversion performance during cold start improves. It can also be seen that when the content of ALPO-5 in the HC adsorbent reaches 80 mass% or more, the HC conversion performance improves sharply. These results demonstrate that the exhaust gas purification catalyst disclosed herein can achieve excellent exhaust gas purification performance during cold start after hydrothermal durability treatment.
[0081] Example 5 An exhaust gas purification catalyst of Example 5 was prepared in the same manner as in Example 1, except that a nitric acid-based Pd aqueous solution was used as the catalytic metal source for the lower layer instead of the nitric acid-based Pt aqueous solution. The exhaust gas purification catalyst of Example 5 was subjected to a hydrothermal durability treatment and an evaluation of its catalytic activity against HC in the same manner as above. The 50% HC purification temperature was a very low 254.60°C.
[0082] This indicates that excellent exhaust gas purification performance during cold start after hydrothermal durability treatment can be obtained even if the catalytic metal species of the exhaust gas purification catalyst is changed. In other words, it is clear that the above-mentioned excellent exhaust gas purification performance can be obtained by the hydrocarbon adsorbent containing 80 mass % or more of a molecular sieve that is substantially free of Si.
[0083] Furthermore, the 50% HC conversion temperature was lower when the lower catalytic metal was Pd than when it was Pt. The reason for this is thought to be as follows: the concentration ratio of olefins to paraffins in the reaction gas used was 1:1, and olefins generally have a higher 50% conversion temperature than paraffins. Pd has better olefin conversion performance than Pt, so it can convert olefins more effectively, resulting in a greater decrease in the 50% HC conversion temperature.
[0084] Although several embodiments of the present invention have been described above, the above embodiments are merely examples. The present invention can be implemented in various other forms. The present invention can be implemented based on the contents disclosed in this specification and the common general technical knowledge in the relevant field. The technology described in the claims includes various modifications and alterations of the above-exemplified embodiments. For example, it is possible to replace part of the above-described embodiments with other modified embodiments, and it is also possible to add other modified embodiments to the above-described embodiments. Furthermore, if a technical feature is not described as essential, it may be deleted as appropriate.
Claims
1. A substrate and a catalyst layer provided on the substrate, the catalyst layer includes a catalytic metal and a hydrocarbon adsorbent, The hydrocarbon adsorbent is a molecular sieve and contains 80 mass% or more of an aluminophosphate molecular sieve, The catalyst layer is a first partial catalyst layer formed on the surface of the substrate and containing the catalytic metal; a second partial catalytic layer on the first partial catalytic layer, the second partial catalytic layer containing the catalytic metal of a different type from that of the first partial catalytic layer; Equipped with the first partial catalytic layer contains at least one of Pd and Pt as the catalytic metal, the second partial catalytic layer contains Rh as the catalytic metal; Catalyst for purifying exhaust gas.
2. 2. The exhaust gas purifying catalyst according to claim 1, wherein the hydrocarbon adsorbent contains 90 mass % or more of an aluminophosphate molecular sieve.
3. 2. The exhaust gas purifying catalyst according to claim 1, wherein the aluminophosphate molecular sieve has an AFI type framework structure.
4. 2. The exhaust gas purifying catalyst according to claim 1, wherein the first partial catalyst layer contains Pt as the catalytic metal.
5. 2. The exhaust gas purifying catalyst according to claim 1, wherein the first partial catalyst layer contains Pd as the catalytic metal.
Citation Information
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