Catalytic substrate containing a radially zoned coating
A catalytic article with dual oxidation zones using different PGM compositions addresses the inefficiency of diesel engine catalysts at cold starts by maintaining a consistent NO2/NOx ratio, enhancing pollutant conversion efficiency across temperature variations.
Patent Information
- Application Number
- JP2022500938
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-07-12
- Filing Date
- 2020-07-09
- Publication Date
- 2025-11-12
- Estimated Expiration
- 2040-07-09
AI Technical Summary
Existing catalyst systems for diesel engines are less effective during cold start periods due to insufficient exhaust temperature, leading to inefficiencies in converting NOx and other pollutants, particularly affecting downstream SCR catalysts which require a stable NO/NO2 ratio.
A catalytic article with two oxidation zones, each with different platinum group metal (PGM) compositions, providing varying oxidation activities to maintain a consistent NO2/NOx ratio across a wide temperature range, enhancing the efficiency of exhaust gas treatment.
The dual oxidation zone design ensures a uniform NO2/NOx ratio in exhaust gases, improving the performance of downstream SCR catalysts by maintaining effective pollutant conversion even at varying engine temperatures.
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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of priority in its entirety to U.S. Provisional Application No. 62 / 873,600, filed July 12, 2019.
[0002] The present invention relates to catalyst compositions suitable for treating the exhaust gas stream of internal combustion engines, such as diesel engines, catalytic articles and systems incorporating such compositions, and methods of making and using the same. [Background technology]
[0003] Diesel engine emissions include particulate matter (PM), nitrogen oxides (NO x ), unburned hydrocarbons (HC), and carbon monoxide (CO). x is a term used to describe various chemical species of nitrogen oxides, including nitric oxide (NO) and nitrogen dioxide (NO2), among others. The two main components of exhaust particulate matter are soluble organic fraction (SOF) and soot. SOF can exist in diesel exhaust as a vapor or aerosol (i.e., fine droplets of liquid condensate), depending on the exhaust gas temperature. Soot is primarily composed of carbon particles. The HC content of exhaust can vary depending on engine type and operating parameters, but typically includes various short-chain hydrocarbons such as methane, ethene, ethyne, and propene.
[0004] Catalysts containing platinum group metals (PGMs) are useful in treating diesel engine exhaust to convert hydrocarbons and carbon monoxide by catalyzing the oxidation of these pollutants to carbon dioxide and water. Additionally, platinum-containing oxidation catalysts promote the oxidation of NO to NO. For heavy-duty diesel systems, such catalysts are typically contained within diesel oxidation catalyst (DOC) systems, catalytic soot filter (CSF) systems, or combined DOC-CSF systems. These catalyst systems are placed in the exhaust flow path from the diesel power generation system and treat the resulting exhaust before it is released into the atmosphere. Typically, diesel oxidation catalysts are deposited on ceramic or metallic substrates. To further reduce NOx species, such systems typically include at least one selective catalytic reduction (SCR) catalyst downstream of the DOC catalyst. In light- and medium-duty applications, the system also includes a selective catalytic reduction (SCR) catalyst downstream of the DOC catalyst. x and lean NO which helps to store and reduce CO and remove carbon monoxide and unburned hydrocarbons from the exhaust stream. x It may contain a trap (LNT).
[0005] Catalysts used to treat internal combustion engine exhaust are less effective during relatively cold operating periods, such as the initial cold start period of engine operation, because the engine's exhaust is not at a high enough temperature for efficient catalytic conversion to occur. This is particularly true for downstream catalytic components, such as SCR catalysts, which may take several minutes to reach a suitable operating temperature.
[0006] An SCR catalyst located downstream of a DOC catalyst can be quite sensitive to the NO / NO ratio of the exhaust gas exiting the DOC catalyst. Accordingly, there is a continuing need in the art to provide a DOC catalyst article that can produce a relatively constant NO / NO ratio in the exhaust gas exiting the DOC catalyst over a range of inlet temperatures. Summary of the Invention
[0007] The present disclosure is directed to a catalytic article that can be used to treat exhaust gases, the catalytic article including at least two oxidation zones. The first oxidation zone is designed to provide high oxidation activity, and the second oxidation zone is designed to provide reduced oxidation activity compared to the first oxidation zone. As described in more detail below, combining at least two oxidation zones in a catalytic article has been found to provide a more uniform NO2 / NOx ratio in exhaust gases exiting the catalytic article over a wide temperature range. As described herein, the arrangement of the first catalytic composition and the second catalytic composition provides the catalytic article with a PGM radial zoning profile.
[0008] In various embodiments, a catalytic article is provided that includes a substrate including an inlet side, an outlet side, and a plurality of passages extending from the inlet side to the outlet side, such that exhaust gas can enter the substrate at the inlet side and exit the substrate at the outlet side, the catalytic article including a first oxidation zone including a first subset of the plurality of passages and a second oxidation zone including a second subset of the plurality of passages, wherein the ratio of the number of passages in the first oxidation zone to the number of passages in the second oxidation zone is in the range of about 10:90 to about 90:10.
[0009] A first catalyst composition coats at least a portion of each passage in the first oxidation zone, the first catalyst composition comprising at least one platinum group metal (PGM) component and a first support material on which the at least one PGM component is supported. For example, the first catalyst composition may be disposed in the first oxidation zone as the only PGM-containing catalyst layer or a zoned portion thereof, or as the top PGM-containing catalyst layer or a zoned portion thereof, such that exhaust gas entering the inlet side of the substrate in the first oxidation zone contacts the first catalyst composition. A second catalyst composition coats at least a portion of each passage in the second oxidation zone, the second catalyst composition comprising at least one platinum group metal (PGM) component and a support material on which the at least one PGM component is supported. For example, the second catalyst composition may be disposed as the only PGM-containing catalyst layer or a zoned portion thereof, or as the top PGM-containing catalyst layer or a zoned portion thereof, in the second oxidation zone, such that exhaust gases entering the inlet side of the substrate in the second oxidation zone contact the second catalyst composition. The first catalyst composition comprises platinum, and the weight ratio of Pt:Pd in the first catalyst composition is greater than the weight ratio of Pt:Pd in the second catalyst composition.
[0010] In some embodiments, the weight ratio of Pt:Pd in the first catalyst composition is from about 1:0 to about 1:1. The first catalyst composition may have a Pt:Pd weight ratio of, for example, from about 0.5 to about 200 g / ft 3 (approx. 17.65g / m 3 ~Approx. 7,062.93g / m 3 (1ft 3 =(0.3048) 3 m 3 =0.028316846592m 3 )) In some embodiments, the weight ratio of Pt:Pd in the second catalyst composition is from about 0:1 to about 1:1. The second catalyst composition can have a total PGM loading of, for example, from about 0.5 to about 200 g / ft 3 The total PGM loading may include:
[0011] In various embodiments, the support material of one or both of the first and second catalyst compositions comprises a refractory metal oxide, which can be selected from the group consisting of alumina, titania, zirconia, a mixture of alumina with one or more of titania, zirconia, and ceria, ceria coated on alumina, titania coated on alumina, silica-alumina, aluminosilicates, alumina-zirconia, alumina-chromia, alumina-ceria, and combinations thereof. In some embodiments, one or both of the first catalyst composition and the second catalyst composition comprises a rare earth metal oxide selected from the group consisting of cerium (Ce), dysprosium (Dy), erbium (Er), europium (Eu), gadolinium (Gd), holmium (Ho), lanthanum (La), lutetium (Lu), neodymium (Nd), praseodymium (Pr), promethium (Pm), samarium (Sm), scandium (Sc), terbium (Tb), thulium (Tm), ytterbium (Yb), yttrium (Y), and combinations thereof.
[0012] In some embodiments, one or both of the first catalyst composition and the second catalyst composition comprises a hydrocarbon storage material such as a zeolite. For example, the zeolite can be selected from the group consisting of faujasite, chabazite, clinoptilolite, mordenite, silicalite, zeolite X, zeolite Y, ultrastable zeolite Y, ZSM-5 zeolite, offretite, or beta zeolite.
[0013] The substrate can be, for example, a monolithic flow-through substrate having a plurality of parallel passages open to fluid flow. The substrate can be, for example, a wall-flow substrate, in which the plurality of passages includes porous wall portions. In some embodiments, the substrate comprises a ceramic material selected from the group consisting of cordierite, mullite, cordierite-alpha alumina, silicon carbide, silicon nitride, zircon-mullite, spodumene, alumina-silica-magnesia, zircon silicate, sillimanite, magnesium silicate, zircon, petalite, alpha alumina, aluminosilicate, or any combination thereof. In various embodiments, the substrate comprises a metallic material.
[0014] In various embodiments, when the substrate is viewed from the inlet end, one of the first oxidation region and the second oxidation region is a centrally located region and the other of the first oxidation region and the second oxidation region is an annular region. In some embodiments, when the substrate is viewed from the inlet end, one of the first oxidation region and the second oxidation region is a pie-wedge shaped region and the other of the first oxidation region and the second oxidation region is the remaining region of the substrate.
[0015] In certain embodiments, the first catalyst composition and the second catalyst composition are layered in one or both of the first oxidation zone and the second oxidation zone. For example, the first catalyst composition can be layered on the second catalyst composition in the first oxidation zone. In some embodiments, the second catalyst composition can be layered on the first catalyst composition in the second oxidation zone. In various embodiments, the second catalyst composition is coated on the substrate in both the first oxidation zone and the second oxidation zone, and the first catalyst composition is coated on the substrate only in the first oxidation zone. In various embodiments, at least one of the first catalyst composition and the second catalyst composition is laterally zone-coated with the third catalyst composition in each oxidation zone.
[0016] Also provided herein is an exhaust gas treatment system for an internal combustion engine, the exhaust gas treatment system including the catalytic article described herein, the catalytic article being downstream of and in fluid communication with the internal combustion engine. The exhaust gas treatment system may include a selective catalytic reduction (SCR) catalyst, a soot filter, an ammonia oxidation (AMO) filter ... a soot filter, a soot filter, a soot filter, a soot filter, a soot filter, a soot filter, x ) catalyst, and lean NO x The catalyst may further comprise one or more catalytic articles selected from the group consisting of: a liquid nitrogen trap (LNT).
[0017] Hydrocarbons, particulate matter, carbon monoxide, and NO x Also provided herein is a method for treating an exhaust gas stream comprising passing the exhaust gas stream through a catalytic article according to the present disclosure. In various embodiments, provided herein is a method for treating an exhaust gas stream wherein a PGM zoning strategy provides a flat distribution of NO oxidation to NO over a wide temperature range.
[0018] These and other features, aspects, and advantages of the present disclosure will become apparent from the following detailed description read in conjunction with the accompanying drawings, which are briefly described below. The present invention includes any combination of two, three, four, or more of the above-described embodiments, as well as combinations of any two, three, four, or more features or elements described in this disclosure, regardless of whether such features or elements are explicitly combined in the description of a specific embodiment herein. This disclosure is intended to be read as a whole, provided that separable features or elements of the disclosed invention are to be considered combinable in any of its various aspects and embodiments, unless the context clearly dictates otherwise. Other aspects and advantages of the present invention will become apparent hereinafter. [Brief explanation of the drawings]
[0019] To provide an understanding of embodiments of the present invention, reference is made to the accompanying drawings, which are not necessarily drawn to scale and in which reference numerals refer to components of exemplary embodiments of the present invention. The drawings are merely examples and should not be construed as limiting the present invention.
[0020] [Figure 1A] FIG. 1 is a perspective view of a honeycomb-type substrate, which may be a substrate according to the present disclosure. [Figure 1B] 1B is a partial cross-sectional view enlarged relative to FIG. 1A and taken along a plane parallel to an end face of the carrier of FIG. 1A, showing an enlarged view of a plurality of gas flow paths shown in FIG. 1A. [Figure 2] 1B is an enlarged cross-sectional cutaway view relative to FIG. 1A, in which the honeycomb-type substrate in FIG. 1A corresponds to a wall-flow filter. [Figure 3] 3A and 3B show schematic cross-sectional views of the inlet end of an exemplary substrate. [Figure 4] 1 shows a schematic front view of a single passage in a substrate of a catalytic article as described herein. [Figure 5] 5A-5H show exemplary box diagrams for catalyst placement in each channel in a first subset of channels defining a first oxidation region. [Figure 6] 6A-6H show exemplary box diagrams for catalyst placement in each channel in a second subset of channels defining a second oxidation region. [Figure 7] 1A-1D show schematic diagrams of various embodiments of emissions treatment systems including the catalytic articles disclosed herein. [Figure 8] 1 is a graph showing the NO2 / NOx ratio of exhaust gases exiting a catalyst article over a range of temperatures. [Figure 9] 1 is a graph showing the NO2 / NOx ratio of exhaust gases exiting a DOC over a range of temperatures. DETAILED DESCRIPTION OF THE INVENTION
[0021] The present invention will now be described more fully hereinafter. Although the invention herein has been described with reference to particular embodiments, it should be understood that these embodiments are merely illustrative of the principles and applications of the present invention. It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed method and apparatus without departing from the spirit and scope of the invention. Accordingly, the present invention is intended to cover modifications and variations that come within the scope of the appended claims and their equivalents. It should be understood that the invention is not limited to the details of construction or process steps set forth in the following description. The invention is capable of other embodiments and of being practiced or carried out in various ways. Like numerals refer to like elements throughout. As used in this specification and claims, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise.
[0022] The present invention provides a catalyst article comprising a substrate including at least two oxidation zones, when the substrate is viewed from the gas inlet end. For purposes of this disclosure, two oxidation zones are considered in the embodiments described below, but the present invention is not limited to catalyst articles having only two oxidation zones (e.g., three or more oxidation zones, four or more oxidation zones, etc.). Surprisingly, it has been found that the combination of at least two oxidation zones in a DOC catalyst article, each oxidation zone characterized by a different level of oxidation activity, provides a more uniform NO / NO ratio in the exhaust gas exiting the catalyst article over a wide temperature range. This can be advantageous in engine exhaust systems, particularly when an SCR catalyst, which can be quite sensitive to the NO / NO ratio of the exhaust gas, is located downstream of the DOC catalyst article.
[0023] The first oxidation zone includes a first catalyst composition that provides relatively high oxidation activity. The second oxidation zone includes a second catalyst composition that provides lower oxidation activity compared to the first catalyst composition. Each of the first oxidation catalyst composition and the second oxidation catalyst composition includes at least one platinum group metal (PGM) component. As is known in the art, platinum provides high NO oxidation activity. Thus, the first oxidation catalyst, which is a high oxidation activity catalyst, includes a higher weight percent of platinum, based on the total weight of the catalyst composition, than the second oxidation catalyst.
[0024] The first catalyst composition can be disposed in the first oxidation zone as the only PGM-containing catalyst layer in the first oxidation zone or as a zoning portion thereof, or the first oxidation catalyst composition can be disposed as the top PGM-containing layer in the first oxidation zone or as a zoning portion thereof. As used herein, a top layer refers to a layer coated on at least one additional coating layer already coated on the substrate of the catalyst article. Thus, the top layer is further from the substrate than the bottom layer on which it is coated. Different embodiments of catalyst articles according to the present disclosure are discussed in more detail below. The first catalyst composition is positioned such that exhaust gases entering the inlet side of the substrate in the first oxidation zone contact the first catalyst composition. Note that the substrate can be, for example, a conventional honeycomb flow-through substrate or a wall-flow filter. Different embodiments of substrates useful in the catalyst articles provided herein are described in more detail below.
[0025] The second catalyst composition can be disposed in the second oxidation zone as either the only PGM-containing catalyst layer in the second oxidation zone or as a zoning portion thereof, or the second catalyst composition can be disposed as either the top PGM-containing layer in the second oxidation zone or as a zoning portion thereof, with the second catalyst composition positioned such that exhaust gases entering the inlet side of the substrate in the second oxidation zone contact the second catalyst composition.
[0026] catalyst article Base material In one or more embodiments, the catalyst composition is disposed on a substrate to form a catalyst article. The catalyst article including the substrate is part of an exhaust gas treatment system (for example, but not limited to, a catalyst article including the DOC composition disclosed herein). Useful substrates are three-dimensional, having a length, diameter, and volume similar to a cylinder. The shape does not necessarily have to conform to a cylinder. The length is the axial length defined by the inlet end and the outlet end.
[0027] According to one or more embodiments, the substrate for the disclosed compositions can be composed of any material typically used to prepare automotive catalysts, and typically includes a metal or ceramic honeycomb structure. The substrate typically provides a plurality of walls onto which the washcoat composition is applied and adheres, thereby serving as a substrate for the catalyst composition.
[0028] The ceramic substrate may be made from any suitable refractory material, such as cordierite, cordierite-α-alumina, aluminum titanate, silicon titanate, silicon carbide, silicon nitride, zircon mullite, spodumene, alumina-silica-magnesia, zircon silicate, sillimanite, magnesium silicate, zircon, petalite, α-alumina, aluminosilicates, and the like.
[0029] The substrate can also be metallic and include one or more metals or metal alloys. Metal substrates can include any metal substrate having openings or "punchouts" in the channel walls. Metal substrates can be used in various shapes, such as pellets, corrugated sheets, or monolith forms. Specific examples of metal substrates include heat-resistant base metal alloys, particularly alloys in which iron is a substantial or major component. Such alloys can contain one or more of nickel, chromium, and aluminum, the total of which metals advantageously comprises at least about 15% by weight (weight percent), in each case based on the weight of the substrate, such as about 10 to about 25% by weight chromium, about 1 to about 8% by weight aluminum, and 0 to about 20% by weight nickel. Examples of metal substrates include those with straight channels, those with protruding blades along the axial channels to disrupt gas flow and open gas flow communication between channels, and those with holes to enhance gas transport between channels, allowing radial gas transport throughout the blades and monolith. In particular, metal substrates are advantageously used in certain embodiments in a closely coupled position, thereby allowing for rapid heating of the substrate and, correspondingly, of the catalyst composition coated therein.
[0030] Any suitable substrate for the catalytic articles disclosed herein may be used, such as a monolithic substrate of the type having fine, parallel gas passages extending therethrough from an inlet or outlet face of the substrate such that the passages are open to the flow of fluid therethrough ("flow-through substrate"). Another suitable substrate is one having a plurality of fine, substantially parallel gas passages extending along the longitudinal axis of the substrate, typically with each passage blocked at one end of the substrate body and every other passage blocked at the opposite end face ("wall-flow filter"). Flow-through and wall-flow substrates are also disclosed, for example, in International Application No. 2016 / 070090, which is incorporated herein by reference in its entirety. Flow-through substrates and wall-flow filters are further discussed herein below.
[0031] Flow-Through Substrate In some embodiments, the substrate is a flow-through substrate (e.g., a monolith substrate, including a flow-through honeycomb monolith substrate). Flow-through substrates have fine, parallel gas flow passages extending from the inlet end to the outlet end of the substrate such that the passages are open to fluid flow. The passages, which are essentially linear paths from the fluid inlet to the fluid outlet, are defined by walls on which a catalytic coating is disposed so that gas flowing through the passages contacts the catalytic material. The flow passages of a flow-through substrate are thin-walled channels and can be of any suitable cross-sectional shape and size, such as trapezoidal, rectangular, square, sinusoidal, hexagonal, elliptical, or circular. Flow-through substrates can be ceramic or metallic, as described above.
[0032] The flow-through substrate may be, for example, about 50 in 3 ~About 1200in 3 and a cell density (inlet opening) of about 60 cells per square inch (cpsi) to about 500 cpsi or up to 900 cpsi, e.g., about 200 to about 400 cpsi, and a wall thickness of about 50 to about 200 microns or about 400 microns.
[0033] A catalytic article can be provided by applying a catalytic coating (e.g., as disclosed herein) to a substrate as a washcoat. FIGS. 1A and 1B illustrate an exemplary substrate 2 in the form of a flow-through substrate coated with a catalytic composition as described herein. Referring to FIG. 1A, the exemplary substrate 2 has a cylindrical shape and a cylindrical outer surface 4, an upstream end face 6, and a corresponding downstream end face 8 identical to end face 6. The substrate 2 has a plurality of fine, parallel gas flow passages 10 formed therein. As can be seen in FIG. 1B, the passages 10 are formed by walls 12 and extend through the carrier 2 from the upstream end face 6 to the downstream end face 8, and the passages 10 are unobstructed to allow a fluid, e.g., a gas stream, to flow longitudinally through the carrier 2 and through the gas flow passages 10. As can be more easily seen in FIG. 1B, the walls 12 are sized and configured so that the gas flow passages 10 have a substantially regular polygonal shape. As shown, the catalytic composition can be applied in multiple separate layers, if desired. In the illustrated embodiment, the catalyst composition is comprised of both a separate bottom layer 14 attached to the carrier member wall 12 and a second separate top layer 16 coated on the bottom layer 14. The present invention can be practiced with one or more (e.g., two, three, or four or more) catalyst composition layers and is not limited to the two-layer embodiment illustrated in Figure 1B. Additional coating configurations are disclosed herein below.
[0034] Wall flow filter substrate In some embodiments, the substrate is a wall-flow filter, which generally has a plurality of fine, substantially parallel gas flow passages extending along the substrate's longitudinal axis. Typically, each passage is blocked at one end of the substrate body, with alternate passages blocked at the opposite end face. Such monolithic wall-flow filter substrates may contain up to about 900 or more passages (or "cells") per square inch of cross section, although much smaller numbers may also be used. For example, substrates may have about 7 to 600, more commonly about 100 to 400, cells per square inch ("cpsi"). The cells may have rectangular, square, circular, oval, triangular, hexagonal, or other polygonal cross sections.
[0035] Figure 2 is a perspective view of an exemplary wall-flow filter. A cross-section of a portion of a monolithic wall-flow filter substrate is shown in Figure 2, illustrating alternating blocked and open passages (cells). Blocked or blocked ends 100 alternate with open passages 101, with the opposite ends being open and blocked, respectively. The filter has an inlet end 102 and an outlet end 103. Arrows across the porous cell walls 104 represent exhaust gas flow entering the open cell ends, diffusing through the porous cell walls 104, and exiting the open outlet cell ends. The blocked ends 100 impede gas flow and promote diffusion through the cell walls. Each cell wall has an inlet side 104a and an outlet side 104b. The passages are enclosed by the cell walls.
[0036] Wall-flow filter substrates typically have wall thicknesses of about 50 microns to about 2000 microns, e.g., about 50 microns to about 450 microns, or about 150 microns to about 400 microns. Wall-flow filter walls are porous and generally have a wall porosity of at least about 50% or at least about 60% and an average pore size of at least about 5 microns before the application of a functional coating. For example, wall-flow filter article substrates in some embodiments will have a porosity of ≥50%, ≥60%, ≥65%, or ≥70%. For example, wall-flow filter article substrates have a wall porosity of about 50%, about 60%, about 65%, or about 70%, to about 75%, about 80%, or about 85%, and an average pore size of about 5 microns, about 10, about 20, about 30, about 40, or about 50 microns, to about 60 microns, about 70, about 80, about 90, or about 100 microns before the application of a catalytic coating. The terms "wall porosity" and "substrate porosity" are synonymous and interchangeable. Porosity is the ratio of void volume divided by the total volume of the substrate. Pore size may be determined according to the ISO 15901-2 (static volume) procedure for nitrogen pore size analysis. Nitrogen pore size may be determined on a Micromeritics TRISTAR 3000 series instrument. Nitrogen pore size may be determined using the BJH (Barrett-Joyner-Halenda) calculation and a desorption point of 33. Useful wall-flow filters have high porosity, allowing for high loading of catalyst composition without excessive backpressure during operation.
[0037] Substrate Coating To produce a catalytic composition, a substrate disclosed herein is coated with a catalytic composition. The coating is a "catalytic coating composition" or "catalytic coating." The terms "catalytic composition" and "catalytic coating composition" are synonymous.
[0038] The catalytic coating may comprise one or more thin, adherent coating layers disposed on and adhering to at least a portion of the substrate. In some embodiments, the catalytic article may comprise the use of one or more catalytic layers, as well as a combination of one or more catalytic layers. The catalytic material may be present only on the inlet side, only on the outlet side, on both the inlet and outlet sides of the substrate wall, or the wall itself may be entirely or partially composed of catalytic material. The catalytic coating may be on the substrate wall surface and / or within the pores of the substrate wall, i.e., "in" and / or "on" the substrate wall. Thus, the phrase "catalytic coating disposed on a substrate" refers to any surface, e.g., on the wall surface and / or pore surface. The catalytic coating layer may comprise individual functional components, e.g., a first catalyst composition and a second catalyst composition, as described in more detail below.
[0039] The catalyst composition may be applied in the form of a washcoat, typically containing a support material having catalytically active species thereon. The catalyst composition may be mixed with water (if in dry form) to form a slurry for coating the catalyst substrate. In addition to the catalyst particles, the slurry may optionally contain alumina as a binder, an associative thickener, and / or a surfactant (including anionic, cationic, nonionic, or amphoteric surfactants). In some embodiments, the pH of the slurry may be adjusted to an acidic pH, for example, from about 3 to about 5.
[0040] When present, the alumina binder is typically about 0.02 g / in 3 ~approx. 0.5g / in 3 The alumina binder can be, for example, boehmite, gamma-alumina, or delta / theta alumina.
[0041] The slurry can be milled to improve particle mixing and the formation of a homogeneous material. Milling can be accomplished in a ball mill, continuous mill, or other similar equipment, and the solids content of the slurry can be, for example, about 20-60% by weight, more specifically about 30-40% by weight. In one embodiment, the milled slurry is characterized by a D90 particle size of about 10 to about 50 microns (e.g., about 10 to about 20 microns). D90 is defined as the particle size at which about 90% of the particles have a finer particle size.
[0042] The slurry is then coated onto a catalytic substrate using washcoat techniques known in the art. As used herein, the term "washcoat" has its usual meaning in the art of a thin, adherent coating of material applied to a substrate, such as a honeycomb flow-through monolith substrate or filter substrate, that is sufficiently porous to allow the passage of the gas stream to be treated. As used herein and as described in Heck, Ronald and Farrauto, Robert, Catalytic Air Pollution Control, New York: Wiley-Interscience, 2002, pp. 18-19, a washcoat layer comprises a compositionally distinct layer of material disposed on the surface of a monolithic substrate or an underlying washcoat layer. A substrate can contain one or more washcoat layers, and each washcoat layer can have a unique chemical catalytic function.
[0043] In one embodiment, a substrate is dipped or otherwise coated with the slurry one or more times. The coated substrate is then dried at an elevated temperature (e.g., 100-150°C) for a period of time (e.g., 1-3 hours) and then calcined, for example, by heating at 400-600°C, typically for about 10 minutes to about 3 hours. After drying and calcination, the final washcoat coating layer can be considered essentially free of solvent.
[0044] After calcination, the catalyst loading can be determined by calculating the difference between the coated and uncoated weights of the substrate. As will be apparent to those skilled in the art, the catalyst loading can be modified by changing the rheology of the slurry. Furthermore, the coating / drying / calcining process can be repeated as necessary to build the coating to a desired loading level or thickness.
[0045] The catalyst composition can be applied as a single layer or in multiple layers. A catalyst layer resulting from repeated washcoating of the same catalyst material to increase loading levels is typically considered a single layer of catalyst. In another embodiment, the catalyst composition is applied in multiple layers, each layer having a different composition. Additionally, the catalyst composition can be zone coated, meaning that a single substrate can be coated with different catalyst compositions in different regions along the gas outlet flow path, as described below.
[0046] Washcoats can be applied so that the different coating layers are in direct contact with the substrate. Alternatively, one or more "undercoats" may be present so that the catalyst or adsorbent coating layer or at least a portion of the coating layer is not in direct contact with the substrate (rather, it is in contact with an undercoat). One or more "overcoats" may be present so that at least a portion of the coating layer is not directly exposed to the gas stream or atmosphere (rather, it is in contact with an overcoat).
[0047] Different coating layers may be in direct contact with each other without an "intermediate" overlapping zone. Alternatively, different coating layers may have a "gap" between the two zones and not be in direct contact. In the case of an "undercoat" or "overcoat," the gap between different layers is referred to as an "intermediate layer." An undercoat is a layer "below" a coating layer, an overcoat is a layer "on" a coating layer, and an intermediate layer is a layer "between" two coating layers. Intermediate layers, undercoats, and overcoats may contain one or more functional compositions or may be free of functional compositions.
[0048] The catalytic coating may comprise two or more thin, adherent layers, i.e., layers that adhere to each other and to the substrate. The overall coating comprises individual "coating layers." The catalytic coating may advantageously be "zoned" and comprise zoned catalyst layers. This may also be described as "laterally zoned." For example, a layer may extend from the inlet end toward the outlet end and span about 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% of the substrate length. Another layer may extend from the outlet end toward the inlet end and span about 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% of the substrate length. Different coating layers may be adjacent to each other and not overlay each other. Alternatively, different layers may overlay portions of each other to provide a third, "intermediate" zone, which may extend, for example, from about 5% to about 80% of the substrate length, such as about 5%, about 10%, about 20%, about 30%, about 40%, about 50%, about 60%, or about 70% of the substrate length.
[0049] The different layers may each extend the entire length of the substrate, or each extend a portion of the length of the substrate, and may either partially or totally overlay or underlay one another. Each of the different layers may extend from either the inlet end or the outlet end.
[0050] In describing the amount of washcoat or catalytic metal component or other component of the composition, it is convenient to use units of component weight per unit volume of catalytic substrate. Thus, the units grams per cubic inch ("g / in") are used. 3 " ), and grams per cubic foot (" g / ft 3 ") is used herein to mean the weight of a component per volume of substrate, including the volume of voids in the substrate. Other units of weight per volume, such as g / L, may also be used. The total loading of the catalyst composition (including catalytic metal and support material) on a catalytic substrate, such as a monolithic flow-through substrate, is typically from about 0.5 to about 6 g / in 3 , and more typically from about 1 to about 5 g / in 3 The total loading of the PGM or base metal components, not including the support material, is typically from about 0.5 to about 200 g / ft 3 (For example, 10 to approximately 100 g / ft 3 ) range. It is noted that these weights per unit volume are typically calculated by weighing the catalytic substrate before and after treatment with the catalytic washcoat composition, and because the treatment process involves drying and calcining the catalytic substrate at high temperatures, these weights represent an essentially solvent-free catalytic coating, since essentially all of the water in the washcoat slurry has been removed.
[0051] Radially zoned oxidation regions As used herein, the phrase "radially zoned oxidation zones" refers to the application of different catalyst compositions to at least two different regions of a substrate of a catalytic article, when the substrate is viewed from the gas inlet side, such that each of the two or more oxidation zones provides a different level of oxidation activity. As described above, the substrate can include an inlet side and an outlet side and a plurality of passages extending from the inlet side to the outlet side. A first region includes a first subset of the plurality of passages. A second region includes a second subset of the plurality of passages. Again, it should be noted that embodiments of the present disclosure are not limited to two regions. For example, a substrate according to the present disclosure can include three, four, or more regions, each including a subset of the plurality of passages of the substrate. However, for ease of discussion, only two regions will be referred to in the following figures and description.
[0052] For example, FIG. 3A illustrates a schematic cross-sectional view of the inlet end of an exemplary substrate 30. As illustrated in FIG. 3A, the substrate can include a first region 32 and a second region 34. At least a portion of each passage in the first oxidation region 32 is coated with a first oxidation catalyst. At least a portion of each passage in the second oxidation region 34 is coated with a second oxidation catalyst. The first region 32 provides a higher level of oxidation activity compared to the second region 34. In other words, the catalyst composition coated in the first oxidation region is useful in treating diesel engine exhaust to convert hydrocarbons and carbon monoxide by catalyzing the oxidation of these pollutants to carbon dioxide and water. For example, as described in more detail below, the first oxidation catalyst composition includes a relatively large amount of platinum, which is a PGM known in the art to provide high oxidation activity in PGM catalyst compositions.
[0053] Each of the oxidation regions can be any shape or size and is not limited to a circle or a first concentric central region and an outer annular second region, as shown in FIG. 3A. For example, as shown in FIG. 3B, first region 32 can be pie-wedge shaped. The shape or configuration of the subset of passages defining a region is not meant to be limiting. For example, regions can be configured as chords, semicircles, and other shapes known in the art. The level of oxidation activity of a given region and the number of passages in a first region compared to a second region are factors that affect the overall oxidation activity of the catalytic article.
[0054] In various embodiments, the first region can comprise about 10 to 70, about 30 to 60, or about 25 to 40 percent of the plurality of passages in the substrate. In some embodiments, the second region can comprise about 30 to 90, about 40 to 70, or about 60 to 75 percent of the plurality of passages in the substrate. The ratio of the number of passages in the first substrate region to the number of passages in the second region can range from about 10:90 to about 90:10, or from about 20:80 to about 80:20, or from about 30:70 to about 70:30. In various embodiments, the ratio of the surface area of the substrate coated with the catalyst composition in the first region to the surface area of the substrate coated with the catalyst composition in the second region can range from about 10:90 to about 90:10, or from about 20:80 to about 80:20. As described in Example 1 below, the ratio of substrate defined by each of the different oxidation regions can affect the NO2 / NOx ratio of the gas exiting the catalyst article.
[0055] At least a portion of each passage of a subset of passages defining each region can be coated with a catalyst composition. Different catalyst compositions can be used to coat each region of the substrate. In some embodiments, the same catalyst composition can be applied as a catalyst coating layer to two or more regions of the substrate. The entire axial length of each passage, i.e., from the inlet end to the outlet end of the substrate, can be coated with the catalyst composition. In some embodiments, only a portion of the axial length of each passage can be coated with the catalyst composition. In certain embodiments, the axial length of each passage can be zone-coated laterally with two or more catalyst compositions. In some embodiments, one or more regions can be free of a catalyst coating and / or free of a PGM-based catalyst coating.
[0056] For example, FIG. 4 shows a schematic front view of a single passage 40 having a gas inlet end 42 and a gas outlet end 44. The passage 40 has a length L. The catalyst composition can be coated along the entire length L of each passage 40 in a specific region. In an oxidation zone having a laterally zoned configuration, the catalyst composition can be coated only along a partial length of each passage, such as length L1. In such an embodiment, the other portion of the passage 40, i.e., length L2, can be free of the catalyst composition or coated with a different catalyst composition. Alternatively, the catalyst composition can be coated along the entire length L of each passage 40 in a specific region, with a different catalyst composition coated along a partial length (e.g., L1 or L2) of each passage. In a laterally zoned coating configuration, any number of zones can be used. Furthermore, each passage or each portion of each passage can be coated with one or more layers of a single catalyst composition and / or one or more layers of different catalyst compositions.
[0057] According to embodiments of the present disclosure, a first catalyst composition coats at least a portion of each passage in a first region of the substrate. The first catalyst composition is a high-oxidation catalyst composition, meaning that exhaust gas contacting the first catalyst composition undergoes a high level of oxidation of hydrocarbons and carbon monoxide present in the inlet gas stream. The first catalyst composition can be disposed as the only PGM-containing catalyst layer in each of the first subset of passages defining the first oxidation region or a zoned portion thereof. The first catalyst composition can be disposed as a top, bottom, or middle PGM-containing catalyst layer in each of the first subset of passages defining the first oxidation region or a zoned portion thereof. The first catalyst composition is disposed such that exhaust gas entering the inlet side of the substrate in the first oxidation region contacts the first catalyst composition.
[0058] 5A-5H show exemplary box diagrams of catalyst placements in each passage in a first subset defining a first oxidation region (i.e., a high oxidation region). As shown in FIG. 5A, the first oxidation catalyst composition can be the only catalyst composition coated along the entire length of the passage in the first oxidation region, or along a partial length of the passage, as shown in FIG. 5B. As shown in FIGS. 5C and 5D, for example, the first catalyst composition can be zone-coated laterally with a third catalyst composition. The third catalyst composition can be a catalyst composition that does not contain PGM components and / or a third oxidation catalyst composition that is different from the first and second catalyst compositions described herein. As shown in FIGS. 5E and 5F, for example, the first and second catalyst compositions can be in a layered configuration in the first oxidation region. In such an embodiment, the first catalyst composition is layered on the second catalyst composition in the first oxidation region. The first oxidation catalyst can be positioned as a top layer along the entire length of each passage or as a top layer in a zone of each passage. In some embodiments, the first catalyst composition can be layered below the second catalyst composition (i.e., for at least a portion of each passage, the first catalyst composition is layered between the substrate and the second (and / or third) catalyst composition). As shown in Figures 5G and 5H, for example, each of the passages in the first oxidation zone can include a first oxidation catalyst, a second oxidation catalyst, and a third catalyst composition in a layered and / or laterally zoned configuration. Alternative arrangements of various and / or additional catalyst compositions not shown in the figures are contemplated herein.
[0059] The second catalyst composition coats at least a portion of each passage in the second region of the substrate. The second catalyst composition is a lower oxidation catalyst composition in terms of oxidation activity compared to the first oxidation catalyst composition. The second catalyst composition can be disposed in the second oxidation region as the only PGM-containing catalyst layer in the second oxidation region or as a zoning portion thereof, or the second catalyst composition can be disposed as a top, bottom, or middle PGM-containing catalyst layer in the second oxidation region or as a zoning portion thereof. The second catalyst composition is disposed so that exhaust gases entering the inlet side of the substrate in the second oxidation region contact the second catalyst composition.
[0060] Figures 6A-6H show exemplary box diagrams of catalyst placement in each passage in a second subset of passages defining a second oxidation region (i.e., a lower oxidation region). As shown in Figure 6A, the second oxidation catalyst composition can be the only catalyst composition coated along the entire length of the passage in the second oxidation region, or along a partial length of the passage, as shown in Figure 6B. As shown in Figures 6C and 6D, for example, the second catalyst composition can be laterally zone coated with a third catalyst composition in the second oxidation region. As noted above, the third catalyst composition can be a catalyst composition that does not contain a PGM component and / or a third oxidation catalyst composition that is different from the first and second catalyst compositions described herein. As shown in Figures 6E and 6F, for example, the second catalyst composition and the first catalyst composition can be layered in the second oxidation region. The second catalyst composition can be layered on the first catalyst composition in the second oxidation region. In some embodiments, the second catalyst composition can be layered below the first catalyst composition (i.e., for at least a portion of each passage, the second catalyst composition is layered between the substrate and the first (and / or third) catalyst composition). As shown in Figures 6G and 6H, for example, each of the passages in the second oxidation zone can include a first oxidation catalyst, a second oxidation catalyst, and a third catalyst composition in a layered and / or laterally zoned configuration. Alternative arrangements of various and / or additional catalyst compositions not shown in the figures are contemplated herein.
[0061] In various embodiments of the present invention, the total weight ratio of Pt:Pd in the first oxidation zone (i.e., the high oxidation zone) can be from about 1:0 to about 0:1, or from about 1:0 to about 1:400. The total amount of PGM in the first oxidation zone can be from about 0.5 to about 200 g / ft 3 , about 5~150g / ft 3 , or approximately 10 to 100 g / ft 3The total weight ratio of Pt:Pd in the second oxidation zone (i.e., the lower oxidation zone) can be from about 0:1 to about 1:0, or from about 0:1 to about 4:1. The total amount of PGM in the second oxidation zone can be from about 0.5 to about 200 g / ft 3 , about 5~150g / ft 3 , or approximately 10 to 100 g / ft 3 The total weight ratios and amounts are based on the total dry weight of the PGMs in each zone, regardless of whether a single catalyst composition or multiple catalyst compositions are applied to the passages of each zone.
[0062] To produce the radially zoned catalyst articles described herein, the areas that will not be coated with the specific catalyst composition must be masked, thereby leaving only the passageways in the areas to be coated open and ready to receive the catalyst coating layer. Any material or device known in the art to be useful for blocking or blocking passageways can be used to mask the passageways in areas not intended to receive the specific catalyst coating. For example, masking materials can include, but are not limited to, duct tape, paraffin wax, hot melt adhesives, and the like. The type of masking / blocking material or device used is not intended to be limiting.
[0063] In certain preferred embodiments, the second catalyst composition is coated on the substrate in both the first oxidation region and the second oxidation region, and the first catalyst composition is coated only on the substrate in the first oxidation region (e.g., FIG. 5E for the first oxidation region and FIG. 6A for the second oxidation region). Thus, the entire catalyst substrate can be first coated with the second catalyst composition according to a conventional catalyst washcoat coating method (e.g., immersing, drying, and calcining the substrate as described above). The passages in the second oxidation region (i.e., the regions with low oxidation activity and intended to be coated only with the second oxidation catalyst) can then be masked with a masking material. The partially masked substrate can then be coated with the first catalyst composition according to a conventional catalyst washcoat coating method. Because the passages in the second oxidation region are masked, when the substrate is immersed in the first oxidation catalyst slurry, only the passages in the first oxidation region (i.e., the unmasked passages) receive a layer of the first oxidation catalyst.
[0064] In various embodiments, the passages of the first oxidation zone can be masked when the second oxidation catalyst is applied to the second oxidation zone. Thus, only one or more washcoat coatings of the first oxidation catalyst can be applied to the passages of the first oxidation zone, and only one or more coatings of the second oxidation catalyst can be applied to the passages of the second oxidation zone. As discussed above, many different configurations are contemplated, including the inclusion of one or more additional catalyst compositions and / or lateral zone coatings in one or more regions of the substrate.
[0065] Catalyst Composition The catalyst and / or sorbent compositions described herein may include one or more supports or "carriers," such as high melting point inorganic solid oxide porous powders, which further comprise functionally active species.
[0066] The catalyst and / or adsorbent compositions may be prepared using a binder, such as a ZrO binder derived from a suitable precursor, such as zirconyl acetate, or any other suitable zirconium precursor, such as zirconyl nitrate. For example, when the catalyst is exposed to high temperatures of at least about 600°C, e.g., about 800°C or higher, and a high water vapor environment of about 5% or higher, the zirconyl acetate binder provides a coating that remains uniform and intact after thermal aging. Other potentially suitable binders include, but are not limited to, alumina and silica. Alumina binders include aluminum oxide, aluminum hydroxide, and aluminum oxyhydroxide. Aluminum salts and colloidal forms of alumina may also be used. Silica binders include various forms of SiO, including silicates and colloidal silica. The binder composition may include any combination of zirconia, alumina, and silica. Other exemplary binders include boehmite, gamma-alumina, or delta / theta alumina, and silica sol. When present, binders are typically used in amounts of about 1-5 wt. % of the total washcoat loading. Alternatively, the binder can be zirconia- or silica-based, e.g., zirconium acetate, zirconia sol, or silica sol. When present, alumina binders are typically used in amounts of about 0.05 g / in. 3 ~Approx. 1g / in 3 is used in amounts of
[0067] In various embodiments, the catalyst articles described herein include a first oxidation catalyst composition and a second oxidation catalyst composition. Generally, diesel oxidation catalyst (DOC) compositions include one or more platinum group metal (PGM) components dispersed on a substrate, for example, on a refractory metal support. Various such DOC compositions are known for use in treating diesel engine exhaust to convert both hydrocarbon (HC) and carbon monoxide (CO) gaseous pollutants to carbon dioxide and water by catalyzing the oxidation of these pollutants.
[0068] The DOC compositions of the present invention (also referred to herein as "oxidation catalyst compositions") comprise a catalytically active PGM component and a metal selected from the group consisting of alkali metals and alkaline earth metals. PGM components useful in the disclosed DOC compositions include any component containing a PGM, such as platinum, palladium, ruthenium, rhodium, osmium, iridium, and / or gold (Pt, Pd, Ru, Rh, Os, Ir, and / or Au). For example, the PGM may be in a zero-valence metallic form, or the PGM may be in an oxide form. The PGM component may include PGMs in any valence state. Terms such as "platinum (Pt) component," "rhodium (Rh) component," "palladium (Pd) component," "iridium (Ir) component," and "ruthenium (Ru) component" refer to the respective platinum group metal compounds, complexes, and the like that decompose or otherwise convert to a catalytically active form, typically a metal or metal oxide, upon calcination or use of the catalyst. In some embodiments, the PGM component is a metal or an oxide thereof (for example, but not limited to, platinum or an oxide thereof).
[0069] The PGM component of the disclosed oxidation catalyst composition is typically present in an amount from about 0.1 wt. % (weight percent), about 0.5 wt. %, about 1.0 wt. %, about 1.5 wt. %, or about 2.0 wt. %, to about 3 wt. %, about 5 wt. %, about 7 wt. %, about 9 wt. %, about 10 wt. %, about 12 wt. %, about 15 wt. %, about 16 wt. %, about 17 wt. %, about 18 wt. %, about 19 wt. %, or about 20 wt. %, based on the weight of the composition.
[0070] The metal component of the disclosed oxidation catalyst composition comprises a metal component selected from the group consisting of alkali metals and alkaline earth metals. In some embodiments, the alkali metal may be selected from one or more of lithium, sodium, potassium, rubidium, or cesium. In some embodiments, the alkaline earth metal may be selected from one or more of magnesium, calcium, strontium, or barium. In some embodiments, the alkali metal comprises lithium, sodium, potassium, rubidium, cesium, or a combination thereof. In some embodiments, the alkali metal is sodium. In some embodiments, the alkali metal is lithium. In some embodiments, the alkali metal is potassium. In some embodiments, the alkali metal is rubidium. In some embodiments, the alkali metal is cesium. In some embodiments, the alkali metal is sodium in combination with at least one of lithium, potassium, rubidium, or cesium.
[0071] In some embodiments, the alkaline earth metal comprises magnesium, calcium, strontium, barium, or a combination thereof. In some embodiments, the alkaline earth metal is magnesium. In some embodiments, the alkaline earth metal is calcium. In some embodiments, the alkaline earth metal is strontium. In some embodiments, the alkaline earth metal is barium.
[0072] The alkali metal or alkaline earth metal of the disclosed oxidation catalyst composition is typically present in an amount of from about 0.1 wt %, about 0.3 wt %, about 0.5 wt %, or about 1.0 wt %, to about 1.5 wt %, about 2.0 wt %, about 2.5 wt %, about 3.0 wt %, about 3.5 wt %, or about 4.0 wt %, based on the weight of the composition.
[0073] The disclosed oxidation catalyst compositions may optionally further comprise one or more additional catalytically active metals selected from the group consisting of copper, iron, chromium, manganese, cobalt, and nickel. In some embodiments, the additional catalytically active metal is manganese.
[0074] Typically, the PGM components of the disclosed oxidation catalyst compositions are supported on a support material. The PGM components can be supported, for example, on refractory metal oxides and / or molecular sieves.
[0075] In some embodiments, the support material on which the catalytically active PGM components are deposited comprises a refractory metal oxide that exhibits chemical and physical stability at elevated temperatures, such as those associated with gasoline or diesel engine exhaust. Exemplary refractory metal oxides include alumina, silica, zirconia, titania, ceria, praseodymium, tin oxide, and the like, as well as physical mixtures or chemical combinations thereof, e.g., atomically doped combinations, and high surface area or active compounds, such as, for example, activated alumina.
[0076] High surface area refractory metal oxides that may be suitable for use in supporting the PGM components include alumina, titania, zirconia; mixtures of alumina with one or more of titania, zirconia, and ceria; ceria coated on alumina or titania coated on alumina. The refractory metal oxides may contain oxides or mixed oxides such as silica-alumina, aluminosilicates which may be amorphous or crystalline, alumina-zirconia, alumina-chromia, alumina-ceria, etc. The refractory metal oxides are particularly gamma alumina, silica-alumina, ceria coated on alumina, titania coated on alumina, or zirconia coated on alumina. Included are metal oxide combinations such as silica-alumina, ceria-zirconia, praseodymia-ceria, alumina-zirconia, alumina-ceria-zirconia, lanthana-alumina, lanthana-zirconia-alumina, baria-alumina, baria-lanthana-alumina, baria-lanthana-neodymia-alumina, and alumina-ceria. Exemplary aluminas include large pore boehmite, gamma-alumina, and delta / theta alumina. Useful commercially available aluminas used as starting materials in typical processes include activated aluminas such as high bulk density gamma-alumina, low or medium bulk density large pore gamma-alumina, and low bulk density large pore boehmite.
[0077] High surface area metal oxide supports, such as alumina support materials also known as "gamma alumina" or "activated alumina," are typically 60 m 2 / g, often up to about 200m 2 Exemplary refractory metal oxides exhibit a BET surface area of about 50 to about 300 m / g or greater. 2Activated aluminas include high surface area gamma-aluminas having a specific surface area of about 60 to about 350 m / g. Such activated aluminas are typically mixtures of gamma and delta phases of alumina, but may also contain significant amounts of eta, kappa, and theta alumina phases. "BET surface area" has its usual meaning, referring to the Brunauer-Emmett-Teller method for determining surface area by N2 adsorption measurements. Unless otherwise specified, "surface area" refers to BET surface area. Desirably, activated aluminas have a specific surface area of about 60 to about 350 m 2 / g, for example, about 90 to about 250 m 2 / g specific surface area.
[0078] In certain embodiments, metal oxide supports useful in the catalyst compositions disclosed herein are doped alumina materials such as Si-doped alumina materials (including but not limited to, 1-10% SiO-AlO), doped titania materials such as Si-doped titania materials (including but not limited to, 1-10% SiO-TiO), or doped zirconia materials such as Si-doped ZrO (including but not limited to, 5-30% SiO-ZrO).
[0079] Advantageously, the refractory metal oxide may be doped with one or more additional basic metal oxide materials, such as lanthanum, barium, praseodymium, neodymium, samarium, strontium, calcium, magnesium, niobium, hafnium, gadolinium, terbium, dysprosium, erbium, ytterbium, tin, or zinc. In some embodiments, the metal oxide dopant may be selected from lanthanum oxide, barium oxide, strontium oxide, calcium oxide, magnesium oxide, or a combination thereof. When present, the metal oxide dopant is typically present in an amount of about 1 to about 20 wt. % based on the weight of the catalyst composition. Without wishing to be bound by theory, the dopant oxide material may help improve the high-temperature stability of the refractory metal oxide support or may function as an adsorbent for acid gases such as NO, SO, or SO.
[0080] The dopant metal oxide can be introduced using incipient wetness impregnation techniques or through the use of colloidal mixed oxide particles. Preferred dopant metal oxides include colloidal barrier-alumina, barrier-zirconia, barrier-titania, zirconia-alumina, barrier-zirconia-alumina, lanthana-zirconia, etc. Therefore, the refractory metal oxide or refractory mixed metal oxide in the disclosed catalyst composition is most typically selected from the group consisting of alumina, zirconia, silica, titania, ceria (e.g., bulk ceria), manganese oxide, zirconia-alumina, ceria-zirconia, ceria-alumina, lanthana-alumina, barrier-alumina, silica, silica-alumina, and combinations thereof. These refractory metal oxides can be further doped with base metal oxides such as barrier-alumina, barrier-zirconia, barrier-titania, zirconia-alumina, barrier-zirconia-alumina, lanthana-zirconia, etc. Advantageously, the oxidation catalyst composition may comprise ceria, alumina, and zirconia, or doped compositions thereof.
[0081] The oxidation catalyst composition can include any of the above-named refractory metal oxides in any amount. For example, the refractory metal oxide in the oxidation catalyst composition can include from about 15 wt%, about 20 wt%, about 25 wt%, about 30 wt%, or about 35 wt%, to about 50 wt%, about 55 wt%, about 60 wt%, about 65 wt%, or about 70 wt%, based on the total dry weight of the catalyst composition. The oxidation catalyst composition can include, for example, about 10 to about 99 wt% alumina, about 15 to about 95 wt% alumina, or about 20 to about 85 wt% alumina.
[0082] The PGM component may be dispersed on the refractory metal oxide support, for example, by dispersing a soluble precursor (e.g., palladium nitrate) thereon. Alternatively, the PGM may be provided in the composition in particulate form, such as fine particles on the order of 1 to 15 nanometers or less in diameter, as opposed to being dispersed on a support.
[0083] Optionally, the oxidation catalyst composition may contain one or more hydrocarbon (HC) storage components for adsorbing hydrocarbons. Any known HC storage material may be used, for example, a porous or microporous material such as a zeolite or zeolite-like material. Preferably, the hydrocarbon storage material is a zeolite. The zeolite may be a natural or synthetic zeolite, such as faujasite, chabazite, clinoptilolite, mordenite, silicalite, zeolite X, zeolite Y, ultrastable zeolite Y, ZSM-5 zeolite, offretite, or beta zeolite. Preferred zeolite adsorbent materials have a high silica-to-alumina ratio. The zeolite may have a silica / alumina molar ratio of at least about 25:1, preferably at least about 50:1, with useful ranges being about 25:1 to 1000:1, 50:1 to 500:1, and about 25:1 to 300:1. Preferred zeolites include ZSM-5, Y, and beta zeolites. Particularly preferred adsorbents may include beta zeolites of the type disclosed in U.S. Patent No. 6,171,556, which is incorporated herein by reference in its entirety. When present, the zeolite or other HC storage component is typically present in an amount of about 0.05 g / in 3 ~Approx. 1g / in 3 is used in amounts of
[0084] The catalyst article described herein includes a first oxidation catalyst composition coating at least a portion of each passageway of a first oxidation zone of a substrate. The first oxidation catalyst composition is configured to provide relatively high oxidation activity. The first catalyst composition can include at least one platinum group metal (PGM) component and a first support material on which the at least one PGM component is supported. The first catalyst composition can include platinum. In some embodiments, the first catalyst composition can include platinum and palladium. The weight ratio of Pt:Pd in the first catalyst composition can be from about 1:0 to about 1:1, or from about 4:1 to about 2:1. The total amount of PGM in the first oxidation catalyst composition can be from about 0.5 to about 200 g / ft 3 , about 5~150g / ft 3, or approximately 10 to 100 g / ft 3 It can be.
[0085] The catalyst article described herein further includes a second oxidation catalyst composition coating at least a portion of each passageway in the second oxidation zone of the substrate. The second oxidation catalyst composition is configured to provide lower oxidation activity than the first catalyst composition, such that the second oxidation zone of the substrate provides lower oxidation activity than the first oxidation zone of the substrate. The second catalyst composition can include at least one platinum group metal (PGM) component and a second support material on which the at least one PGM component is supported. The second oxidation catalyst can include platinum and palladium. In certain embodiments, the second oxidation catalyst composition is substantially free of platinum. The weight ratio of Pt:Pd in the second catalyst composition can be from about 0:1 to about 4:1, or from about 0:1 to about 1:1, or from about 0:1 to about 1:4. The total amount of PGM in the second oxidation catalyst composition can be from about 0.5 to about 200 g / ft 3 , about 5~150g / ft 3 , or approximately 10 to 60 g / ft 3 In various embodiments, g / ft 3 The amount of platinum in the first catalyst composition, as measured by .times. ...
[0086] Method for preparing a catalyst composition Preparation of a porous support having a PGM or base metal component typically involves impregnating a porous support (e.g., a refractory oxide support material in particulate form, such as particulate alumina) with a PGM or base metal solution. Multiple metal components (e.g., platinum and palladium) can be impregnated simultaneously or separately, and can be impregnated into the same or separate support particles using incipient wetness techniques. The support particles are typically sufficiently dry to absorb substantially all of the solution and form a wet solid. Aqueous solutions of water-soluble compounds or complexes of the metal components, such as palladium or platinum nitrate, tetraamminepalladium or platinum nitrate, tetraamminepalladium or platinum acetate, copper(II) nitrate, manganese(II) nitrate, and cerium ammonium nitrate, are typically utilized. In certain embodiments, colloidal platinum can be used in embodiments of the catalyst compositions described herein. After treating the support particles with the metal solution, the particles are dried, for example, by heat treatment at an elevated temperature (e.g., 100-150°C) for a period of time (e.g., 1-3 hours), followed by calcination to convert the metal components to a more catalytically active form. An exemplary calcination process involves heat treatment in air at a temperature of approximately 400-550°C for 1-3 hours. The above process may be repeated as necessary to achieve the desired level of metal impregnation. The resulting material can be stored as a dry powder or in slurry form.
[0087] Waste Treatment Systems The present disclosure also provides an emissions treatment system incorporating the catalyst articles described herein. Typically, an integrated emissions treatment system includes one or more catalyst articles / components for treating exhaust gas emissions, such as exhaust gas emissions from a diesel engine. For example, the emissions treatment system may include one or more of a catalyzed soot filter (CSF), a selective catalytic reduction (SCR) catalyst, and a selective catalytic reduction / ammonia oxidation (SCR / AMOx) catalyst in addition to the diesel oxidation (DOC) catalyst article described herein. Some emissions treatment systems are suitable for producing lean NOx. xThe DOC and LNT catalysts include a trap (LNT), a CSF catalyst, an SCR catalyst, and / or an SCR / AMOx catalyst. The CSF, which is loaded with either a PGM-containing catalyst for CO / HC conversion or NO oxidation, or an SCR catalyst for the SCR reaction (SCRoF), is typically located downstream of the DOC or LNT catalyst, although the relative locations of the various components of the emissions treatment system can vary.
[0088] As described above, the radially zoned DOC catalyst article includes at least two oxidation catalyst compositions that may be useful in combusting unburned gaseous and non-volatile hydrocarbons (i.e., SOF) and carbon monoxide to form carbon dioxide and water. The SCR catalyst may also be used to convert NOx present in the engine exhaust into NOx. x The catalyst may be any catalyst conventionally used to mitigate soot, typically comprising a mixed metal oxide composition (e.g., vanadia / titania) or a metal ion-exchanged molecular sieve composition (e.g., Cu and / or Fe-promoted molecular sieve). Catalyzed soot filters (CSFs) are designed to trap and burn soot and are coated with a washcoat layer containing one or more catalysts (e.g., one or more precious metal catalysts, such as platinum, palladium, and / or rhodium) for burning the trapped soot and oxidizing the exhaust gas stream emissions. SCR / AMOx catalysts refer to ammonia oxidation catalysts used to remove slipped ammonia from exhaust gas treatment systems in combination with SCR catalysts (e.g., AMOx catalysts in which a bottom coat containing PGMs is layered with a top coat of catalyst with SCR functionality). The emissions treatment system may also include a reductant injector for ammonia precursors, a hydrocarbon injector for diesel fuel, additional particulate filtration components, and / or NOx. x It may further include components such as storage and / or capture components. The list of the foregoing components is merely exemplary and should not be construed as limiting the scope of the present disclosure.
[0089] One exemplary emissions treatment system is shown in Figure 7, which is a schematic diagram of emissions treatment system 100. As shown, an exhaust gas stream containing gaseous pollutants and particulate matter is conveyed from an engine to catalytic component A via exhaust pipe 101. Exhaust pipe 102 directs the treated exhaust gas stream exiting catalytic component A to catalytic component B. Exhaust pipe 103 then directs the treated exhaust gas exiting catalytic component B to catalytic component C, which is located upstream of catalytic component D. Without limitation, Table 1 presents various exhaust gas configurations of one or more embodiments. [Table 1]
[0090] experiment Aspects of the present disclosure are more fully illustrated by the following examples, which are set forth to illustrate certain particular aspects of the disclosure and should not be construed as limiting the aspects.
[0091] Example 1 A catalytic article according to the present disclosure was prepared having two oxidation catalyst compositions in a radially zoned configuration.
[0092] The first oxidation catalyst composition contained both platinum and palladium in a Pt:Pd weight ratio of about 5:1. The total PGM loading of the first catalyst composition, including platinum and palladium, was about 40 g / ft 3 The total platinum loading in the first catalyst composition was about 33.33 g / ft 3 The total palladium loading in the first catalyst composition was about 6.67 g / ft 3 It was.
[0093] The second catalyst composition contained both platinum and palladium in a Pt:Pd weight ratio of about 1:2. The total PGM loading of the second catalyst composition, including platinum and palladium, was about 45 g / ft 3 The total platinum loading in the second catalyst composition was about 15 g / ft 3The total palladium loading in the second catalyst composition was about 30 g / ft 3 It was.
[0094] The first oxidation catalyst had a higher Pt level compared to the second oxidation catalyst composition. Because Pt is more active than Pd in oxidizing NOx gases, the first oxidation catalyst composition was designed to provide higher oxidation activity. The second oxidation catalyst composition provided lower oxidation activity than the first catalyst composition.
[0095] Two regions of the substrate were identified. The first oxidation region included a first subset of the substrate's multiple passages arranged as a concentric core of the circular substrate used. The second oxidation region included a second subset of the substrate's multiple passages arranged as an annular outer region (i.e., the first oxidation region) surrounding the core. See, for example, the embodiment shown in FIG. 3A. The ratio of the number of passages in the first oxidation region to the number of passages in the second oxidation region was approximately 1:1.
[0096] The second catalyst composition was coated on the substrates of both the first and second oxidation zones, while the first catalyst composition was coated only on the substrate of the first oxidation zone (e.g., Figure 5E for the first oxidation zone and Figure 6A for the second oxidation zone). Thus, the entire catalyst substrate was first coated with the second catalyst composition according to a conventional catalyst washcoat coating method (i.e., the substrate was immersed in a slurry of the second catalyst composition, dried, and then calcined overnight). The entire axial length of each passage in the second oxidation zone and the first oxidation zone was coated with the second oxidation catalyst.
[0097] The passages in the second oxidation region (i.e., the region with low oxidation activity and intended to be coated only with the second oxidation catalyst) were then masked with tape.
[0098] The masked substrate was then coated with a first catalyst composition according to conventional catalytic washcoat coating methods. Because the second oxidation zone passages were masked, when the substrate was immersed in the first oxidation catalyst slurry, only the first oxidation zone passages (i.e., the unmasked passages) received a layer of the first oxidation catalyst.
[0099] The masked substrate was immersed in the first catalyst composition slurry, with the inlet end first, to within approximately ½ inch of the outlet end of the substrate. The substrate was then inverted to allow the first catalyst composition slurry to drain and return to the immersion cylinder. Excess washcoat was then removed from the substrate with pressurized air. The tape covering the annular second oxidation region was then removed, and the substrate was placed in a horizontal dryer to dry. The substrate was then calcined.
[0100] Example 2 The NO2 / NOx ratio of exhaust gases exiting the catalyst article prepared according to Example 1 was measured at different exhaust gas inlet temperatures. The NO2 / NOx ratio of exhaust gases exiting the catalyst article prepared according to Example 1 was compared to the NO2 / NOx ratio of exhaust gases exiting a conventional DOC catalyst article (i.e., without a radial coating). The conventional DOC had a Pt:Pd ratio of 1:2 and an NOx content of 30 g / ft 3 The conventional DOC consisted of an inlet zone with PGM on an alumina support with a PGM loading of 10 g / ft. The outlet zone of the conventional DOC had a Pt:Pd ratio of 5:1 and a PGM loading of 10 g / ft. 3 The PGM was coated on the alumina support at a PGM loading of 0.05.
[0101] The NO2 / NOx ratio of exhaust gases exiting the catalyst article prepared according to Example 1 was measured at three different exhaust mass flow rates: (i) 30 k / h space velocity (SV), (ii) 45 k / h SV, and (iii) 90 k / h SV. The NO2 / NOx ratio of exhaust gases exiting a conventional DOC catalyst article (without a radially zoned coating) was measured at an exhaust mass flow rate of 90 k / h SV.
[0102] The graph shown in Figure 8 of the present application shows the NO2 / NOx ratio of exhaust gas exiting the catalyst article versus DOC inlet temperature. Modeling software was used to generate the graph for the radially zoned catalyst article and a conventional DOC catalyst article. The curved line shows the results for the conventional DOC catalyst article. The three flatter lines show the results for the radially zoned catalyst article of the present disclosure at different exhaust mass flow rates.
[0103] As evidenced by the relatively more linear nature of the NO2 / NOx ratio for the radially zoned catalyst article according to Example 1, the unique arrangement of the relatively high oxidizing catalyst composition and the relatively low oxidizing catalyst composition provides a relatively stable NO2 / NOx ratio in the exhaust gas exiting the radially zoned catalyst article compared to the NO2 / NOx ratio in the exhaust gas exiting a conventional DOC catalyst article (i.e., the NO2 / NOx ratio does not vary significantly with DOC inlet temperature).
[0104] Example 3 The radially coated DOC was fabricated by coating the central portion of the part with PGM at a Pt:Pd ratio of 5:1. A Pd-only coating was applied to the annular region of the part. The reference part was fabricated by zoning along the axial axis of the part. The inlet zone had a Pt:Pd ratio of 1:2, and the outlet zone had a Pt:Pd ratio of 5:1.
[0105] Samples were tested on a 6.7 L engine operated at a gas hourly space velocity of 100 K / h. The engine was operated at various torques, resulting in DOC inlet temperatures ranging from 175°C to 400°C. Gas samples were continuously extracted from the outlet side of the DOC and analyzed for NO, NO2, and NOx concentrations using an FTIR analyzer.
[0106] The results are shown in Figure 9. The radially coated DOC shows less variation in the NO2 / NOx ratio over the entire temperature range tested.
[0107] Many modifications and other embodiments will come to mind to one skilled in the art to which this disclosure pertains having the benefit of the teachings presented in the foregoing description. It is to be understood, therefore, that the disclosure is not limited to the particular embodiments disclosed, and that modifications and other embodiments are intended to be included within the scope of the appended claims. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation.
Claims
1. 1. A catalytic article for use as a diesel oxidation catalyst, comprising: a substrate including an inlet side, an outlet side, and a plurality of passages extending from the inlet side to the outlet side, wherein exhaust gases can enter the substrate at the inlet side and exit the substrate at the outlet side, wherein the catalytic article includes a first oxidation region including a first subset of the plurality of passages and a second oxidation region including a second subset of the plurality of passages, wherein, when the substrate is viewed from the inlet end, one of the first oxidation region and the second oxidation region is a centrally located region and the other of the first oxidation region and the second oxidation region is an annular region; or a substrate, wherein, when the substrate is viewed from the inlet end, one of the first oxidation region and the second oxidation region is a pie-wedge shaped region, and the other of the first oxidation region and the second oxidation region is the remaining region of the substrate; a first catalyst composition coating at least a portion of each passage of the first oxidation zone, the first catalyst composition comprising at least one platinum group metal (PGM) component and a first support material on which the at least one PGM component is supported; a second catalyst composition coating at least a portion of each passage of the second oxidation zone, the second catalyst composition comprising at least one platinum group metal (PGM) component and a support material on which the at least one PGM component is supported; the ratio of the number of channels in the first oxidation region to the number of channels in the second oxidation region is in the range of 10:90 to 90:10; the first catalyst composition comprises platinum, and the weight ratio of Pt:Pd in the first catalyst composition is greater than the weight ratio of Pt:Pd in the second catalyst composition; the first catalyst composition is layered on the second catalyst composition in the first oxidation zone; The catalyst article, wherein the second catalyst composition is layered on the first catalyst composition in the second oxidation zone.
2. 10. The catalyst article of claim 1, wherein the weight ratio of Pt:Pd in the first catalyst composition is from 1:0 to 1:
1.
3. The first catalyst composition is 0.5 g / (0.3048) 3 m 3 ~200g / (0.3048) 3 m 3 (0.5~200g / ft 3 10. The catalyst article of claim 1, comprising a total PGM loading of:
4. 10. The catalyst article of claim 1, wherein the weight ratio of Pt:Pd in the second catalyst composition is from 0:1 to 1:
1.
5. The second catalyst composition is 0.5 g / (0.3048) 3 m 3 ~200g / (0.3048) 3 m 3 (0.5~200g / ft 3 10. The catalyst article of claim 1, comprising a total PGM loading of:
6. The catalyst article of claim 1 , wherein the support material of one or both of the first catalyst composition and the second catalyst composition comprises a refractory metal oxide.
7. 7. The catalyst article of claim 6, wherein the refractory metal oxide is selected from the group consisting of alumina, titania, zirconia, mixtures of alumina with one or more of titania, zirconia, and ceria, ceria coated on alumina, titania coated on alumina, silica-alumina, aluminosilicates, alumina-zirconia, and alumina-ceria.
8. The catalytic article of claim 1 , wherein one or both of the first catalyst composition and the second catalyst composition comprises a zeolite.
9. 9. The catalyst article of claim 8, wherein the zeolite is selected from the group consisting of faujasite, chabazite, clinoptilolite, mordenite, silicalite, zeolite X, zeolite Y, ZSM-5 zeolite, offretite, and beta zeolite.
10. 10. The catalytic article of claim 1, wherein the substrate comprises a ceramic material selected from the group consisting of cordierite, mullite, cordierite-alpha alumina, silicon carbide, silicon nitride, zircon mullite, spodumene, alumina-silica magnesia, zircon silicate, sillimanite, magnesium silicate, zircon, petalite, alpha alumina, aluminosilicate, or any combination thereof.
11. The catalytic article of claim 1 , wherein the substrate comprises a metallic material.
12. The catalyst article of claim 1 , wherein at least one of the first catalyst composition and the second catalyst composition is laterally zone coated with a third catalyst composition.
13. 13. The catalytic article of any one of claims 1 to 12, wherein the substrate is a monolithic flow-through substrate having a plurality of parallel passages open to fluid flow.
14. The catalyst article of any one of claims 1 to 13, wherein the substrate is a wall-flow substrate such that the plurality of passages comprises porous wall portions.
15. 15. An exhaust gas treatment system for an internal combustion engine comprising the catalytic article of any one of claims 1 to 14, wherein the catalytic article is downstream of and in fluid communication with the internal combustion engine. 【Request Item 16】 Selective catalytic reduction (SCR) catalysts, soot filters, ammonia oxidation (AMO) x ) catalyst, and lean NO x 16. The exhaust gas treatment system of claim 15, further comprising one or more catalytic articles selected from the group consisting of: a liquid nitrogen trap (LNT). 【Request Item 17】 Hydrocarbons, carbon monoxide, and NO x 15. A method for treating an exhaust gas stream comprising passing said exhaust gas stream through a catalytic article according to any one of claims 1 to 14.
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