Particulate filter

The particulate filter with a functional material layer on the inlet side or both sides, using inorganic materials and a packed bed, addresses the challenge of achieving high filtration efficiency and low backpressure in gasoline engines, meeting stringent emission regulations.

JP2026000958AInactive Publication Date: 2026-01-06BASF MOBILE EMISSIONS CATALYSTS LLC
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Patent Information

Application Number
JP2025146949
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2019-11-12
Filing Date
2025-09-04
Publication Date
2026-01-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing particulate filters for gasoline engines face challenges in achieving high fresh filtration efficiency while maintaining low backpressure, particularly under stringent emission regulations like China 6b, due to the fine and low particulate matter emissions, which are not effectively addressed by conventional methods.

Method used

A particulate filter with a functional material layer coated on the inlet side or both sides, comprising inorganic materials like alumina, zirconia, ceria, and platinum group metals, along with a packed bed or porous coating, to enhance filtration efficiency and reduce backpressure buildup.

Benefits of technology

The filter achieves a combination of high fresh filtration efficiency and reduced backpressure, meeting stringent emission standards by effectively capturing particulate matter and maintaining engine efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a particulate filter, particularly a particulate filter for use in an emission treatment system of an internal combustion engine.SOLUTION: To provide a particulate filter for treating exhaust gas from an internal combustion engine, comprising a particulate filter having an inlet side and an outlet side, and a functional material layer coated on the inlet side, the outlet side or both sides of the particulate filter. The particulate filter provides an advantageous combination of low backpressure and high fresh filtration efficiency.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to a particulate filter, and more particularly to a particulate filter for use in the emission treatment system of an internal combustion engine, which provides the advantageous combination of low backpressure and high fresh filtration efficiency. [Background technology]

[0002] The exhaust gases of most internal combustion engines contain mostly relatively harmless substances such as nitrogen (N2), water vapor (H2O), and carbon dioxide (CO2), but also contain smaller amounts of harmful and / or toxic substances such as carbon monoxide (CO) from incomplete combustion, hydrocarbons (HC) from unburned fuel, oxides of nitrogen (NOx) from excessive combustion temperatures, and particulate matter (PM).

[0003] Certain internal combustion engines, such as lean-burn engines, diesel engines, natural gas engines, power plants, incinerators, or gasoline engines, tend to produce exhaust gases containing significant amounts of soot and other particulate matter. Particulate matter emissions can be improved by passing the exhaust gases containing particulate matter (PM) through a particulate filter.

[0004] Diesel particulate filters have proven highly effective in removing carbon soot from diesel engine exhaust. The most widely used diesel particulate filter is the wall-flow filter, which filters diesel exhaust by trapping soot on the porous walls of the filter body. Wall-flow filters are designed to filter soot almost completely without significantly impeding the exhaust flow.

[0005] As a layer of soot accumulates on the inlet surface of the filter, the lower permeability of the soot layer causes a pressure drop across the filter, which gradually increases the filter back pressure on the engine, causing the engine to work less efficiently and impacting engine operating efficiency. Eventually, the pressure drop becomes unacceptable and the filter needs to be regenerated.

[0006] Particulate matter emissions from gasoline engines are subject to various regulations, including the Euro 6 (2014) regulations. Certain gasoline direct injection (GDI) engines have been developed, but their operating modes result in the formation of fine particulate matter. Gasoline engine aftertreatment systems are required to achieve particulate matter regulations. In contrast to the particulate matter produced by diesel lean-burn engines, the particulate matter produced by gasoline engines, such as GDI engines, tends to be finer and in smaller quantities. This is due to the different combustion conditions of diesel engines compared to gasoline engines. For example, gasoline engines operate at higher temperatures than diesel engines. Additionally, the hydrocarbon composition of gasoline engine emissions is different compared to diesel engines.

[0007] Original equipment manufacturers (OEMs), i.e., automobile manufacturers, require gasoline particulate filters (GPFs) to have high fresh filtration efficiency and low back pressure. However, gasoline engines emit very little particulate matter or high-temperature exhaust gases, so the soot cake generated during pre-conditioning of the aftertreatment system before testing is often negligible. This soot cake is at least partly responsible for the high filtration efficiency of diesel particulate filters; in the case of diesel engines, an effective soot cake can form within 10–20 km of driving. This effect is generally not achievable in gasoline engines, so the target fresh filtration efficiency is achieved by using a high washcoat loading, which increases the pressure drop across the part. To meet OEM end-of-line testing requirements, these considerations only apply to fresh parts immediately after manufacturing.

[0008] WO2012030533A1 relates to a method for forming a porous discrimination layer on a ceramic carrier having at least one porous wall, the method comprising: (a) establishing a gas flow containing particle agglomerates through the at least one porous wall from a gas inlet side of the at least one porous wall to a gas outlet side of the at least one porous wall, such that at least a portion of the agglomerates deposit to form a deposition layer of agglomerates, their constituent particles, or both, on the gas inlet side of the at least one porous wall, wherein (1) at least a portion of the particles comprising the particle agglomerates are ceramic material or precursors to ceramic material, (2) the particles comprising the particle agglomerates have a size of 0.01 to 5 microns (μm), (3) the agglomerates have a size of 10 to 200 microns, and (4) the deposition layer extends only partially through the thickness of the at least one porous wall; and (b) firing the deposition layer to form a discrimination layer.

[0009] Also, WO2018115900A1 relates to a particulate filter for use in an emission treatment system of a gasoline engine, the filter having an inlet side and an outlet side, at least the inlet side carrying synthetic ash.

[0010] On December 23, 2016, the Ministry of Environmental Protection (MEP) of the People's Republic of China (PRC) issued the final regulations for China 6b (GB18352.6-2016, hereafter referred to as China 6b) for light-duty vehicle emissions, which are significantly stricter than China 5b. Notably, China 6b incorporates particulate matter (PM) regulations and adopts on-board diagnostic (OBD) requirements. Furthermore, it requires vehicles to be tested using the World Harmonized Light-Duty Vehicle Test Cycle (WLTC). The WLTC includes many rapid accelerations and extended high-speed driving periods, which require high power output and may result in prolonged (e.g., >5 seconds) "open-loop" conditions (i.e., the need to fully depress the fuel paddle) under rich (lambda < 1) or deep rich (lambda < 0.8) engine conditions. Despite ever-tightening standards, it would be desirable to provide further improved particulate filters that can provide the advantageous combination of lower back pressure and higher fresh filtration efficiency. [Prior art documents] [Patent documents]

[0011] [Patent Document 1] WO2012030533A1 [Patent Document 2] WO2018115900A1 Summary of the Invention [Problem to be solved by the invention]

[0012] overview The present invention relates to particulate filters, and more particularly to particulate filters for use in the emission treatment systems of internal combustion engines. [Means for solving the problem]

[0013] Each embodiment includes a particulate filter for treating exhaust gases from an internal combustion engine, the particulate filter having an inlet side and an outlet side, and a functional material layer coated on the inlet side, the outlet side, or both sides of the particulate filter.

[0014] Another aspect involves a method of treating exhaust gases from an internal combustion engine, the method comprising providing a particulate filter and flowing exhaust gases from the engine through the particulate filter. [Brief explanation of the drawings]

[0015] [Figure 1a] FIG. 1 illustrates an example of a wall-flow filter. [Figure 1b] FIG. 1 illustrates an example of a wall-flow filter. [Figure 2a] FIG. 1 shows an SEM image of the morphology of high surface area gamma alumina powder form. [Figure 2b] FIG. 1 shows an SEM image of the morphology of high surface area gamma alumina powder form. [Figure 3a] FIG. 1 shows an SEM image of the morphology of low surface area boehmite alumina powder form. [Figure 3b] FIG. 1 shows an SEM image of the morphology of low surface area boehmite alumina powder form. [Figure 4] FIG. 1 is a plot of back pressure characteristics of a coated particulate filter according to an embodiment of the present invention and a comparative particulate filter. [Figure 5] FIG. 1 is a plot of the filtration efficiency of a coated gasoline particulate filter according to an embodiment of the present invention and a comparative particulate filter. [Figure 6a]FIG. 1 shows an SEM image of the morphology of low surface area magnesium oxide powder form. [Figure 6b] FIG. 1 shows an SEM image of the morphology of low surface area magnesium oxide powder form. [Figure 7] FIG. 1 is a plot of back pressure characteristics of a coated particulate filter according to an embodiment of the present invention and a comparative particulate filter. [Figure 8] FIG. 1 is a plot of the filtration efficiency of a coated gasoline particulate filter according to an embodiment of the present invention and a comparative particulate filter. DETAILED DESCRIPTION OF THE INVENTION

[0016] Detailed Description Before describing several exemplary embodiments of the invention, it is to 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.

[0017] The terms used in this disclosure are defined as follows:

[0018] Throughout this specification, including the claims, the terms "comprising one of" or "comprising a" should be understood as synonymous with the term "comprising at least one of," unless otherwise specified, and the terms "between" or "from or to" should be understood to include both ends of the range.

[0019] The articles "a", "an" and "the" are used to refer to one or to more than one (ie to at least one) of the grammatical object of the article.

[0020] The term "and / or" includes the meaning of "and", "or" and also all other possible combinations of elements associated with this term.

[0021] Unless otherwise stated, all percentages and ratios are expressed in units of mass.

[0022] Therefore, according to one aspect of the present invention, there is provided a method for manufacturing a semiconductor device comprising: (1) a particulate filter having an inlet side and an outlet side; (2) A functional material layer coated on the inlet side, outlet side, or both sides of the particulate filter. A particulate filter for treating exhaust gas from an internal combustion engine is provided.

[0023] The following sections define different aspects of the present invention in more detail. Each aspect thus defined can be used in combination with other aspects unless expressly indicated to the contrary. In particular, any feature indicated as being preferred or advantageous can be combined with any other feature or features indicated as being preferred or advantageous. Particulate filters are typically formed from a porous substrate. The porous substrate may be composed of a ceramic material such as cordierite, silicon carbide, silicon nitride, zirconia, mullite, spodumene, alumina-silica-magnesia, zirconium silicate, and / or aluminum titanate, and is typically composed of cordierite or silicon carbide. The porous substrate can also be of the type commonly used in emission treatment systems for internal combustion engines.

[0024] The internal combustion engine can be a lean burn engine, a diesel engine, a natural gas engine, a power plant, an incinerator, or a gasoline engine.

[0025] The porous substrate can have a conventional honeycomb structure. The filter can take the form of a conventional "through-flow filter," or it can take the form of a conventional "wall-flow filter" (WFF). Such filters are known in the art.

[0026] Preferably, the particulate filter is a wall-flow filter. Referring to Figures 1(a) and 1(b), a representative wall-flow filter is shown. Wall-flow filters work by forcing the exhaust gas flow (13) (containing particulate matter) through a wall made of porous material.

[0027] Wall-flow filters typically have a first surface and a second surface, which define a longitudinal axis between them. In use, one of the first and second surfaces serves as an inlet surface for exhaust gas (13), while the other serves as an outlet surface for treated exhaust gas (14). Conventional wall-flow filters have first and second longitudinally extending channels. The first plurality of channels (11) is open or apertured at the inlet surface (01) and closed at the outlet surface (02). The second plurality of channels (12) is open at the outlet surface (02) and closed at the inlet surface (01). The channels are preferably parallel to each other to maintain a constant wall thickness between channels. As a result, gas entering one of the channels through the inlet surface cannot exit the monolith without diffusing through the channel wall (15) from the inlet side (21) to the outlet side (22) to the other channels. Each channel is closed by introducing a sealant material into its open end. Preferably, the number of channels in the first plurality is equal to the number of channels in the second plurality, with each channel evenly distributed throughout the monolith. Wall-flow filters preferably have 100 to 500 channels per square inch, preferably 200 to 400 channels per square inch, in a plane perpendicular to the longitudinal direction. For example, at the inlet face (01), the density of open and closed channels is 200 to 400 channels per square inch. The cross-sections of the channels can be rectangular, square, circular, elliptical, triangular, hexagonal, or other polygonal.

[0028] In one or more embodiments, the inlet side (21) of the porous wall of the particulate filter is coated with a layer of functional material. The functional material layer may be coated on the outlet side (22) of the porous wall of the filter, or may be coated on both sides (21, 22). The loading can be characterized as "on-wall" loading or "in-wall" loading. The former is characterized by forming a layer of functional material on the surface of the porous wall (15). The latter is characterized by extending a portion of the functional material through the entire thickness of the porous wall (15).

[0029] In one or more embodiments, the functional material layer comprises: (1) a first inorganic material containing at least one of alumina, zirconia, ceria, silica, titania, and rare earth metal oxides other than ceria; and (2) a second inorganic material containing at least one of alumina, zirconia, ceria, silica, titania, magnesium oxide, zinc oxide, manganese oxide, silicate zeolite, and aluminosilicate zeolite. In a specific embodiment, the first and second inorganic materials are intimately mixed, layered, or zoned.

[0030] In one or more embodiments, the functional material layer further comprises a first platinum group metal (PGM) selected from the group consisting of platinum (Pt), palladium (Pd), and rhodium (Rh), and mixtures thereof, present in a catalytically effective amount to convert NOx, CO, and hydrocarbons in the exhaust gas to N2, CO2, and HO, and to oxidize particulate matter trapped in the particulate filter.

[0031] In one or more embodiments, the functional material layer further comprises at least one organic material, such as acetic acid, oxalic acid, citric acid, tartaric acid, fumaric acid, lactic acid, malic acid, maleic acid, hexanol, octanol, decanol, cellulose, hydroxyethyl cellulose, methylhydroxyethyl cellulose, starch, polyethylene, polypropylene, polystyrene, poly(oxyethylene), poly(ethylene terephthalate), poly(butylene terephthalate), polyvinyl chloride, polyvinyl alcohol, polyvinylpyrrolidone, polymethyl methacrylate, polyamide, polycarbonate, or polyurethane.

[0032] In one or more embodiments, the second inorganic material has a D between 50 and 400 μm, preferably between 100 and 300 μm. 90 It has.

[0033] In one or more embodiments, the second inorganic material has a D between 10 and 200 μm, preferably between 50 and 150 μm. 50 It has. In one or more embodiments, the second inorganic material has a D between 3 and 40 μm, preferably between 5 and 20 μm. 10 It has. In one or more embodiments, the first inorganic material has a D of 1 to 50 μm, preferably 3.5 to 20 μm. 90 , more preferably 4 to 10 μm D 90 It has. In one or more embodiments, the first inorganic material has a D of 1.2 to 8 μm, preferably 1.8 to 6 μm. 50 It has. In one or more embodiments, the first inorganic material has a D of 0.6 to 2.2 μm, preferably 0.8 to 1.5 μm. 10 It has.

[0034] "D 90 "," "D 50 " and "D 10 " has the usual meaning of referring to the points in the cumulative particle size distribution where the cumulative mass from the small particle size side is 90%, 50%, and 10%. 90The values ​​were determined by measuring the particle size distribution. The particle size distribution was measured using a laser diffraction particle size distribution analyzer.

[0035] In one or more embodiments, the loading of the second inorganic material is between 0.05 and 5 g / L, preferably between 0.1 and 2 g / L, and more preferably between 0.15 and 1 g / L.

[0036] In one or more embodiments, the second inorganic material is present in an amount of 0.5 to 1 g / cm 3 It has a bulk density of

[0037] In one or more embodiments, the mass proportion of the second inorganic material in the functional material layer is between 1 and 25%, preferably between 5 and 20%.

[0038] In one or more embodiments, the functional material can be coated in particulate form.

[0039] In a preferred embodiment, the functional material is coated in particulate form via a gas phase carrier, i.e., "dry coated" without any liquid carrier. In other embodiments, the functional material can be coated in the form of a liquid suspension.

[0040] The functional material, when coated, may take the form of a packed bed. For example, if the particulate filter is a wall-flow filter, the functional material may take the form of a packed bed against the walls of the inlet-opening channels. The packed bed may be formed within the inlet-opening channels against the sealant material closing the channels, i.e., toward the outlet end of the inlet channels. The packed bed is typically porous and typically gas-permeable, with pores sized to capture particulate matter, such as soot, in internal combustion exhaust. The pores of the packed bed are usually smaller than the pores of the porous substrate of the particulate filter. Alternatively, or additionally, the packed bed may be more porous than the walls of the porous substrate (i.e., providing a longer path length, thereby achieving a higher level of filtration). The packed bed may extend along the walls of the inlet-opening channels. The packed bed may take the form of a layer or a membrane, for example, a continuous layer or membrane. The packed bed may extend along the entire length of the walls of the channels, or along only a portion of the wall length. Instead of being a packed bed, the functional material can be in the form of a porous coating, such as a coating applied as (i.e., derived from) a washcoat slurry, which can be disposed on the wall-flow filter in a manner similar to the packed bed described above.

[0041] In one or more embodiments, the particulate filter further comprises a porous body having a plurality of pores and further comprises a catalytic washcoat within at least some of the plurality of pores. The use of the catalytic washcoat may be useful for treating components of internal combustion exhaust gases, such as unburned hydrocarbons, carbon monoxide, and / or nitrogen oxides. The catalytic washcoat may comprise one or more of a selective catalytic reduction (SCR) catalyst, a diesel oxidation catalyst (DOC), a three-way conversion catalyst (TWC), an AMOX catalyst, a NOx trap, a NOx absorption catalyst, and a hydrocarbon trap catalyst. The catalytic washcoat is typically distributed substantially throughout the plurality of pores. The catalytic washcoat is applied to the particulate filter before applying the functional material layer. The catalytic washcoat can be present as a separate coating on the particulate filter, or the catalytic washcoat can be integral with the particulate filter. For example, the catalytic washcoat can be impregnated into the material of the virgin particulate filter as a solution or slurry, or the catalytic washcoat can be combined with the components forming the structure of the substrate monolith. The substrate monolith is then extruded into a flow-through monolith, and after drying and calcination, alternating ends of the channels are blocked in a checkerboard arrangement at one end of the substrate monolith, and alternating unblocked channels are blocked in a similar arrangement at the opposite end. This latter arrangement requires that the porosity of the extrudate after drying and calcination be sufficient to function as a wall-flow filter, i.e., the porosity of the substrate monolith be at least 40%, such as at least 45%, such as 50% or at least 55% or even 75%.

[0042] As used herein, the terms "selective catalytic reduction" and "SCR" refer to a catalytic process that uses a nitrogen-based reductant to reduce oxides of nitrogen to dinitrogen (N). The SCR catalyst can comprise at least one material selected from MOR; USY; ZSM-5; ZSM-20; beta-zeolite; CHA; LEV; AEI; AFX; FER; SAPO; ALPO; vanadium; vanadium oxide; titanium oxide; tungsten oxide; molybdenum oxide; cerium oxide; zirconium oxide; niobium oxide; iron; iron oxide; manganese oxide; copper; molybdenum; tungsten; and mixtures thereof. The support structure for the active component of the SCR catalyst can comprise a suitable zeolitic, zeotypic, or non-zeolitic compound. Alternatively, the SCR catalyst can comprise a metal, metal oxide, or mixed oxide as the active component. Transition metal loaded zeolites (eg, copper-chabazite or Cu-CHA, and copper-levin or Cu-LEV, and Fe-Beta) and zeotypes (eg, copper-SAPO or Cu-SAPO) are suitable.

[0043] As used herein, the terms "three-way conversion" and "TWC" refer to catalytic processes capable of substantially removing HC, CO, and NOx from the exhaust gas of a gasoline engine. Typically, TWC catalysts primarily comprise a platinum group metal (PGM), an oxygen storage component (OSC), and a refractory metal oxide support.

[0044] As used herein, the terms "platinum group metal" and "PGM" refer to one or more chemical elements defined in the Periodic Table of the Elements, including platinum, palladium, rhodium, osmium, iridium, and ruthenium, and mixtures thereof.

[0045] In some embodiments, the platinum group metal component of the TWC catalyst is selected from platinum, palladium, rhodium, or mixtures thereof. In specific embodiments, the platinum group metal component of the TWC catalyst comprises palladium.

[0046] In some embodiments, the TWC catalyst does not include an additional platinum group metal (i.e., the TWC includes only one platinum group metal). In other embodiments, the TWC catalyst includes an additional platinum group metal. In one or more embodiments, the additional platinum group metal, when present, is selected from platinum, rhodium, and mixtures thereof. In specific embodiments, the additional platinum group metal component includes rhodium. In one or more specific embodiments, the TWC catalyst includes a mixture of palladium and rhodium. In other embodiments, the TWC catalyst includes a mixture of platinum, palladium, and rhodium.

[0047] As used herein, the terms "oxygen storage component" and "OSC" refer to a material having multiple valence states that can actively react with reducing agents, such as CO or hydrogen, under reducing conditions and with oxidizing agents, such as oxygen or nitrogen oxides, under oxidizing conditions. Examples of oxygen storage components include rare earth oxides, particularly ceria, lanthana, praseodymia, neodymia, niobia, europia, samaria, ytterbia, yttria, zirconia, and mixtures thereof. Rare earth oxides may be in bulk (e.g., particulate) form. The oxygen storage component can include ceria in a form that exhibits oxygen storage properties. The lattice oxygen of ceria can react with carbon monoxide, hydrogen, or hydrocarbons under rich air / fuel (A / F) conditions. In one or more embodiments, the oxygen storage component for a TWC catalyst comprises a ceria-zirconia composite or a rare earth-stabilized ceria-zirconia.

[0048] As used herein, the terms "refractory metal oxide support" and "support" refer to an underlying high surface area material upon which additional chemical compounds or elements are supported. The support particles have pores greater than 20 Å and a broad pore distribution. As defined herein, such supports, e.g., metal oxide supports, exclude molecular sieves, specifically zeolites. In certain embodiments, high surface area refractory metal oxide supports can be utilized, such as alumina support materials, also known as "gamma alumina" or "activated alumina," which typically have a surface area of ​​60 square meters per gram ("m 2 / g), often with a BET surface area of ​​approximately 200 m 2 / g or higher. Such activated aluminas are typically mixtures of gamma and delta alumina phases, but may also contain significant amounts of eta, kappa, and theta alumina phases. Refractory metal oxides other than activated alumina can be used as supports for at least some of the catalytic components in a given catalyst. For example, bulk ceria, zirconia, alpha-alumina, silica, titania, and other materials are known.

[0049] In some embodiments, the refractory metal oxide support for the TWC catalyst comprises an activating, stabilizing, or both compound independently selected from the group consisting of alumina, zirconia, alumina-zirconia, lanthana-alumina, lanthana-zirconia-alumina, alumina-chromia, ceria, alumina-ceria, and combinations thereof.

[0050] As used herein, the terms "diesel oxidation catalyst" and "DOC" refer to diesel oxidation catalysts known in the art. Diesel oxidation catalysts are designed to oxidize CO to CO and gas-phase HC and diesel particulate organics (soluble organics) to CO and HO. Typical diesel oxidation catalysts are platinum, and optionally palladium, supported on high surface area inorganic oxide supports such as alumina, silica-alumina, titania, silica-titania, and zeolites. As used herein, the terms are intended to include exothermic DECs (Diesel Exotherm Catalysts).

[0051] As used herein, the terms "ammonia oxidation catalyst" and "AMOx" refer to a catalyst comprising at least one supported precious metal component, such as one or more platinum group metals (PGMs), that is effective for removing ammonia from an exhaust gas stream. In particular embodiments, the precious metal may include platinum, palladium, rhodium, ruthenium, iridium, silver, or gold. Also, in particular embodiments, the precious metal component may be a physical mixture or a chemical or atomically doped combination of precious metals.

[0052] The precious metal components are typically deposited on a high surface area refractory metal oxide support. Examples of suitable high surface area refractory metal oxides include alumina, silica, titania, ceria, and zirconia, magnesia, barium oxide, manganese oxide, tungsten oxide, and rare earth metal oxides, base metal oxides, and physical mixtures, chemical combinations, and / or atomically doped combinations thereof.

[0053] As used herein, the terms "NOx adsorption catalyst" and "NOx trap (lean NOx trap, abbreviated as LNT)" refer to a catalyst for reducing nitrogen oxide (NO and NO2) emissions from a lean-burn internal combustion engine by adsorption. Typical NOx traps contain alkaline earth metal oxides, such as oxides of Mg, Ca, Sr, and Ba; alkali metal oxides, such as oxides of Li, Na, K, Rb, and Cs; and rare earth metal oxides, such as oxides of Ce, La, Pr, and Nd, in combination with a precious metal catalyst, such as platinum, dispersed on an alumina support, for purifying the exhaust gases of internal combustion engines. Barriers are typically preferred for storing NOx because they form nitrates during lean engine operation and release them relatively easily under rich conditions.

[0054] As used herein, the term "hydrocarbon trap" refers to a catalyst that captures and traps hydrocarbons during low-temperature operation and releases and oxidizes them during higher-temperature operation. The hydrocarbon trap may be provided by one or more hydrocarbon (HC) storage components for adsorbing various hydrocarbons (HCs). Typically, hydrocarbon storage materials that exhibit low interaction with precious metals can be used, such as microporous materials such as zeolites or zeolite-like materials. Zeolites are preferred as hydrocarbon storage materials. Beta zeolites are particularly preferred because their large pore openings allow them to effectively capture diesel-derived hydrocarbon molecules. In addition to beta zeolites, other zeolites, such as faujasite, chabazite, clinoptilolite, mordenite, silicalite, zeolite X, zeolite Y, ultrastable zeolite Y, ZSM-5 zeolite, and offretite, can be used to enhance HC storage during cold-start operation.

[0055] Other aspects include the following: (1) providing a particulate filter as described herein; and (2) directing exhaust gas from the engine through said particulate filter; The present invention encompasses a method for treating exhaust gas from an internal combustion engine, comprising:

[0056] In one or more embodiments, the particulate filter is canned. In other embodiments, the filter is not canned. By "canned," we mean that the particulate filter is enclosed within a housing and adapted for incorporation into an exhaust treatment system.

[0057] By "uncanned" it is meant that the particulate filter has not yet been incorporated into a housing for incorporation into an emissions treatment system and is still coated with the functional material layer. In a typical canning process, the particulate filter is sleeved onto a support mat, typically made of ceramic or alumina fibers, and incorporated into a metal housing. Methods for incorporating particulate filters into metal housings include, for example, "clamshell," "stuffing," and "tourniquet" methods. Such techniques are known in the art.

[0058] It has been surprisingly found that particulate filters exhibit a combination of high fresh filtration efficiency and reduced backpressure buildup when incorporated into the emissions treatment system of an internal combustion engine. [Example]

[0059] The present invention will be more fully described by the following examples. These examples are provided to illustrate the invention and should not be construed as limiting the invention. All parts and percentages are by weight unless otherwise noted, and unless otherwise specified, weight percentages are expressed on a dry basis, meaning that they do not contain moisture. In all examples, cordierite was used as the carrier. SEM images of inorganic powders were taken with a Zeiss Supra 55.

[0060] Example 1 - Comparative Example A gasoline particulate filter was obtained from Corning. The filter substrate had a size of 100 mm (D) x 120 mm (L) and a volume of 0.94 L (57 in 3 ), cell density 300 cells / square inch, wall thickness approximately 200 μm, porosity 65%, average pore diameter measured by mercury intrusion porosimetry 20 μm diameter. The filter was used as a control sample without any treatment.

[0061] Example 2 On the gasoline particulate filter according to Example 1, a functional layer was applied to the inlet side of the filter.

[0062] The applied functional material layer was a high surface area gamma alumina. The alumina was dry-ground to particle sizes of 90% 5 microns, 50% 2.5 microns, and 10% 1 micron, and then calcined in air at 1000°C for 4 hours, resulting in a specific surface area (BET model, 77K nitrogen adsorption measurement) of 70 m 2 ·g -1 The powdered high surface area gamma alumina, as shown in Figures 2(a) and 2(b), was mixed with a gas carrier and blown into the part at room temperature. The flow rate of the gas carrier was 750 kg / hr. The loading of the functional material layer was 0.123 g / in 3 It was.

[0063] After coating, the filter and the functional material layer of the inlet were dried and baked at a temperature of 450° C. for about 30 minutes.

[0064] Example 3 On the gasoline particulate filter according to Example 1, a functional layer was applied to the inlet side of the filter.

[0065] A functional material layer composed of high surface area gamma alumina and low surface area boehmite alumina was applied. The high surface area gamma alumina was the same as that described in Example 2. The low surface area boehmite alumina had particle sizes of 90% 200 microns, 50% 70 microns, and 10% 10 microns, as shown in Figures 3(a) and 3(b). After firing in air at 1000°C for 4 hours, the specific surface area (BET model, 77K nitrogen adsorption measurement) was 10 m 2 ·g -1 The functional material layer was mixed with a gas carrier and blown into the filter at room temperature. The flow rate of the gas carrier was 750 kg / hr. The total loading of the functional material layer was 0.123 g / in 3 The mass ratio of high surface area gamma alumina to low surface area boehmite alumina was 18:1.

[0066] After coating, the filter and the functional material layer of the inlet were dried and baked at a temperature of 450° C. for about 30 minutes.

[0067] Example 4 Total functional material layer loading of 0.123g / in 3 and the mass ratio of high surface area gamma alumina to low surface area boehmite alumina is 7.3:1.

[0068] Example 5 Total functional material layer loading of 0.123g / in 3 and the mass ratio of high surface area gamma alumina to low surface area boehmite alumina is 4:1.

[0069] Example 6 Total functional material layer loading of 0.123g / in 3 and the functional material layer is composed solely of low surface area boehmite alumina.

[0070] Example 7 - Testing The back pressure characteristics of the above-described coated gasoline particulate filters (Examples 1 to 6) were investigated under a cold air flow of 600 cubic meters per hour (cmh). The results are shown in Figure 4. The filters coated with the functional material layer exhibited a slight increase in back pressure compared to the conventional bare gasoline particulate filter. However, as shown in Examples 3 to 6, the introduction of large particle size, low surface area boehmite alumina significantly reduced the back pressure of the coated filters.

[0071] The filtration efficiency of the above-described coated gasoline particulate filter example in a fresh state (0 km, i.e., out-of-box state) was measured at the first proximal coupling position (SGE 1.5L turbo gasoline direct injection engine; WLTC test; PN engine out = 3.5 × 10 12The fresh filtration efficiency was measured in terms of # / km. The results are shown in Figure 5. All of the coated gasoline particulate filters with a functional material layer showed a significant increase in fresh filtration efficiency compared to the conventional filter without a functional material layer. In particular, as the proportion of large particle size, low surface area boehmite alumina in the functional material layer increased, the fresh filtration efficiency value was initially maintained (Example 3 with approximately 5.3% boehmite alumina) and then rapidly decreased (Examples 4 to 6).

[0072] Example 8 - Comparative Example Gasoline particulate filters with catalytic materials were fabricated using a single coating from the inlet side. The prior art three-way conversion (TWC) catalyst composite contained palladium and rhodium with a total precious metal loading of 7 g / ft. 3 The Pt / Pd / Rh ratio was 0 / 2 / 5. The substrate had a volume of 2.5 L (151 in 3 ), cell density of 300 cells / in 2 , wall thickness of approximately 200 μm, porosity of 63% as measured by mercury intrusion, and average pore size of 19 μm diameter. The coating was prepared as follows.

[0073] The components applied from the inlet side were high surface area gamma alumina, ceria-zirconia composite with 40 wt. % ceria as the oxygen storage component, palladium, rhodium, barium oxide, and zirconia oxide, with concentrations of approximately 24.8%, 68.7%, 0.1%, 0.2%, 5.0%, and 1.3%, respectively, based on the calcined mass of the catalyst. Barium oxide was introduced as a hydroxide solution, and zirconium oxide was introduced as a nitrate solution. The total coating loading was 1.23 g / in. 3 It was.

[0074] Rhodium in the form of a rhodium nitrate solution was impregnated into a high surface area gamma alumina and ceria-zirconia composite using a planetary mixer (P-mixer) to achieve incipient wetness and form a wet powder. Palladium in the form of a palladium nitrate solution was impregnated into a high surface area gamma alumina and ceria-zirconia composite using a planetary mixer (P-mixer) to achieve incipient wetness and form a wet powder. This formed an aqueous slurry. Barium and zirconium solutions were added. This slurry was then milled to a 90% particle size of 5 microns. This slurry was then coated onto the inlet side of a wall-flow cordierite filter using deposition methods known in the art. After coating, the filter and inlet coating were dried and then calcined at 550°C for approximately 1 hour.

[0075] Example 9 A catalyzed gasoline particulate filter as described in Example 8, with a prior art three-way conversion (TWC) catalyst composite as the primary catalyst layer and an additional functional material layer loaded on the inlet side of the filter.

[0076] The applied functional material layer consisted of high surface area gamma alumina and low surface area boehmite alumina, as described in previous examples (Examples 2 and 3). The functional material layer was mixed with a gas carrier and blown into the filter at room temperature. The gas carrier flow rate was 750 kg / hr. The total loading of the functional material layer was 0.052 g / in. 3 The mass ratio of high surface area gamma alumina to low surface area boehmite alumina was 8: 1. After coating, the filter and inlet functional material layers were dried and fired at a temperature of 450°C for about 30 minutes.

[0077] Example 10 A catalyzed gasoline particulate filter as described in Example 10, wherein the applied functional material layer is composed of high surface area gamma alumina (as in the previous Examples) and low surface area magnesium oxide, the low surface area magnesium oxide having particle sizes of 90% 20 microns, 50% 8 microns, and 10% 2 microns, as shown in Figures 6(a) and 6(b), and a specific surface area (BET model, 77K nitrogen adsorption measurement) of 18 m after calcination in air for 4 hours at 1000°C. 2 ·g -1 The functional material layer was mixed with a gas carrier and blown into the filter at room temperature. The flow rate of the gas carrier was 750 kg / hr. The total loading of the functional material layer was 0.052 g / in 3 The mass ratio of high surface area gamma alumina to low surface area boehmite alumina was 8: 1. After coating, the filter and inlet functional material layers were dried and fired at a temperature of 450°C for about 30 minutes.

[0078] Example 11 A catalyzed gasoline particulate filter as described in Example 8, with a prior art three-way conversion (TWC) catalyst composite as the primary catalyst layer and an additional functional material layer loaded on the inlet side of the filter.

[0079] The applied functional material layer was composed of a PGM containing high surface area ceria-alumina and low surface area boehmite alumina (as used in Example 9). The high surface area ceria-alumina composite consisted of 49.3% ceria, 49.3% alumina, 1.1% platinum, and 0.3% palladium based on the calcined mass of the powder. The high surface area ceria-alumina composite was impregnated with platinum in the form of an amine-complex solution in a planetary mixer (P-mixer), followed by palladium in the form of a palladium nitrate solution to achieve incipient wetness and form a wet powder. This powder was calcined at 550°C for approximately 2 hours and then dry-milled to a particle size of 90% 5.1 microns, 50% 2.1 microns, and 10% 0.8 microns. The specific surface area (BET model, 77K nitrogen adsorption measurement) was 66 m after calcining in air at 1000°C for 4 hours. 2 ·g -1The PGM containing the high surface area ceria-alumina composite and the low surface area boehmite alumina was mixed in powder form with a gas carrier and blown into a filter at room temperature. The gas carrier flow rate was 750 kg / hr. The total loading of the functional material layer was 0.052 g / in 3 The mass ratio of high surface area gamma alumina to low surface area boehmite alumina was 8: 1. After coating, the filter and inlet functional material layers were dried and fired at a temperature of 450°C for about 30 minutes.

[0080] Example 12 A catalyzed gasoline particulate filter as described in Example 11, wherein the applied functional material layer is comprised of high surface area ceria-alumina (as described in Example 11) and low surface area magnesium oxide (as described in Example 10).

[0081] Example 13 - Testing The back pressure characteristics of the above-described coated gasoline particulate filters (Examples 8 to 12) were investigated under a cold air flow of 600 cubic meters per hour (cmh). The results are shown in Figure 7. As in the previous example, the filter coated with the functional material layer exhibited a slightly increased back pressure compared to the conventional gasoline particulate filter with catalyst. Furthermore, for the same functional material layer mass ratio, the boehmite-alumina material was slightly more effective in reducing the back pressure of the final filter than the magnesium oxide material (compare Examples 9 and 11 with Examples 10 and 12).

[0082] The filtration efficiency of the above-described coated gasoline particulate filter example in a fresh state (0 km, i.e., out-of-box state) was measured at the first proximal coupling position (SGE 1.5L turbo gasoline direct injection engine; WLTC test; PN engine out = 3.5 × 10 12The fresh filtration efficiency was measured in units of # / km. The results are shown in Figure 8. In this case, too, all of the gasoline particulate filters coated with a functional material layer showed a significant improvement in fresh filtration efficiency compared to conventional filters that did not have a functional material layer. In particular, when the mass ratio of the functional material layer was the same, no difference in fresh filtration efficiency was observed between filters using boehmite alumina material and filters using magnesium oxide material.

Claims

1. (1) a particulate filter having an inlet side and an outlet side; (2) A functional material layer coated on the inlet side, outlet side, or both sides of the particulate filter. A particulate filter for treating exhaust gases from an internal combustion engine, comprising:

2. The functional material layer is (1) a first inorganic material including at least one of alumina, zirconia, ceria, silica, titania, and rare earth metal oxides other than ceria; and (2) A second inorganic material containing at least one of alumina, zirconia, ceria, silica, titania, magnesium oxide, zinc oxide, manganese oxide, silicate zeolite, and aluminosilicate zeolite.

10. The particulate filter of claim 1, comprising:

3. 3. The particulate filter of claim 2, wherein the functional material layer further comprises a first platinum group metal (PGM) selected from the group consisting of platinum (Pt), palladium (Pd), and rhodium (Rh), and mixtures thereof.

4. A particulate filter according to claim 2 or 3, wherein the second inorganic material has a D50 of 10 to 200 μm, preferably 50 to 150 μm.

5. 5. The particulate filter according to claim 2, wherein the weight proportion of the second inorganic material in the functional material layer is 1 to 25%, preferably 5 to 20%.

6. 6. A particulate filter according to any one of claims 2 to 5, wherein the loading of the second inorganic material is from 0.05 to 5 g / L, preferably from 0.1 to 2 g / L, more preferably from 0.15 to 1 g / L.

7. Particulate filter according to any one of claims 2 to 6, wherein the first inorganic material has a D50 of 1.2 to 8 μm, preferably 1.8 to 6 μm.

8. 8. The particulate filter according to claim 1, wherein the particulate filter further comprises a porous body including a plurality of pores, and a catalytic washcoat within at least some of the plurality of pores, the catalytic washcoat comprising one or more catalysts selected from the group consisting of a selective catalytic reduction (SCR) catalyst, a diesel oxidation catalyst (DOC), a three-way conversion (TWC) catalyst, an AMOx catalyst, a NOx trap, a NOx absorption catalyst, and a hydrocarbon trap catalyst, and the catalytic washcoat is applied to the particulate filter before application of the functional material layer.

9. The particulate filter according to any one of claims 1 to 8, wherein the functional material layer is coated in particulate form, preferably via a gas phase carrier.

10. (1) A particulate filter according to any one of claims 1 to 9, and (2) passing exhaust gas from the engine through the particulate filter; A method for treating exhaust gas from an internal combustion engine, comprising:

11. The method of claim 10 , wherein the exhaust gas comprises unburned hydrocarbons, carbon monoxide, nitrogen oxides, and particulate matter.

Citation Information

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