Iron-promoting zeolites and catalysts made therefrom
The iron-enhanced zeolite catalyst with a two-step iron addition process addresses the challenge of maintaining high catalytic activity across varying temperatures, achieving enhanced NOx conversion and reduced N2O formation in exhaust gas treatment systems.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- BASF MOBILE EMISSIONS CATALYSTS LLC
- Filing Date
- 2020-08-12
- Publication Date
- 2026-04-20
AI Technical Summary
Existing SCR catalysts face challenges in maintaining high catalytic activity under wide temperature ranges and hydrothermal conditions, particularly in exhaust gas treatment systems for nitrogen oxide reduction, with a need for improved low-temperature and high-temperature performance.
A catalyst composition comprising an iron-enhanced zeolite with a two-step iron addition process, where the iron content is increased in two separate steps, resulting in a second iron content that is at least 15% higher than the first, applied to a substrate such as a flow-through porous monolith or wall-flow filter, enhancing the catalyst's performance.
The catalyst composition exhibits a NOx conversion rate that is at least 15% higher than standard compositions, with improved low-temperature performance and comparable N2O formation levels, effectively treating exhaust gases from diesel engines.
Smart Images

Figure 0007848111000004 
Figure 0007848111000005 
Figure 0007848111000006
Abstract
Description
[Technical Field]
[0001] Cross-reference of related applications This application claims priority over the entirety of U.S. Provisional Application No. 62 / 893,543, filed on 29 August 2019.
[0002] The present invention relates to an iron-enhanced zeolite-containing SCR catalyst composition, a method for preparing and using such a catalyst composition for lean emission control applications, and catalyst articles and systems using such a catalyst composition. [Background technology]
[0003] Over many years, nitrogen oxides (NO x The harmful components of NO have caused air pollution. x It is found in exhaust gases from internal combustion engines (e.g., automobiles and trucks), combustion equipment (e.g., power plants that use natural gas, oil, or coal for heating), and nitric acid production plants.
[0004] NO x Various treatment methods have been used to treat gas mixtures containing nitrogen oxides and reduce air pollution. One type of treatment involves the catalytic reduction of nitrogen oxides. There are two processes: (1) non-selective reduction processes in which carbon monoxide, hydrogen, or hydrocarbons are used as reducing agents, and (2) selective reduction processes in which ammonia or ammonia precursors are used as reducing agents. In selective reduction processes, a high degree of nitrogen oxide removal can be achieved using stoichiometric amounts of reducing agent.
[0005] The selective reduction process is also known as the SCR (Selective Catalytic Reduction) process. The SCR process uses the catalytic reduction of nitrogen oxides with a reducing agent (e.g., ammonia) in the presence of atmospheric oxygen, primarily resulting in the formation of nitrogen and vapor, as follows: 4NO + 4NH3 + O2 → 4N 2+ 6H2O (standard SCR reaction) 2NO2 + 4NH3 + O2 → 3N2 + 6H2O (slow SCR reaction) NO + NO2 + 2NH3 → 2N2 + 3H2O (fast SCR reaction)
[0006] Ideally, catalysts used in SCR processes need to be able to maintain good catalytic activity under hydrothermal conditions over a wide operating temperature range, for example, 200°C to over 600°C. SCR catalysts used in exhaust gas control applications are exposed to high-temperature hydrothermal conditions during the regeneration of soot filters, which are components of exhaust gas treatment systems used for particulate removal.
[0007] Molecular sieves such as zeolites have been used in selective catalytic reduction (SCR) of nitrogen oxides in the presence of oxygen, along with reducing agents such as ammonia, urea, or hydrocarbons. Zeolites are crystalline materials with uniform pore sizes ranging from approximately 3 to 10 angstroms, depending on the type of zeolite and the type and amount of cations contained in the ion exchange site.
[0008] Metal-promoted zeolite catalysts are known for the selective catalytic reduction of nitrogen oxides by ammonia, including iron-promoted and copper-promoted zeolite catalysts in particular. For example, iron-promoted zeolite beta has been an effective commercially available catalyst for the selective reduction of nitrogen oxides by ammonia, as described, for example, in U.S. Patent No. 4,961,917.
[0009] Improving catalyst performance is always desirable, and therefore, providing SCR catalysts with improved low-temperature and / or high-temperature performance would be beneficial. [Overview of the project]
[0010] This disclosure provides a catalyst composition comprising an iron-enhanced zeolite containing at least about 6 weight percent iron, based on the total weight of the iron-enhanced zeolite, wherein the iron content of the zeolite is added to the zeolite in at least two separate steps. The catalyst composition described herein can be placed on a substrate. The porous substrate may be, for example, a flow-through porous monolith or a wall-flow filter.
[0011] A method for forming a selective catalytic reduction (SCR) catalyst is also provided herein, comprising receiving a first iron-enhanced zeolite having a first iron content and treating this iron-enhanced zeolite with additional iron in an ion exchange step to form a second iron-enhanced zeolite having a second iron content, the second iron content being higher than the first iron content. In various embodiments, based on the total weight of the iron-enhanced zeolite, the first iron content is about 2 to about 8% by weight and the second iron content is about 6 to about 10% by weight. The second iron content may be at least about 15% higher than the first iron content, and more specifically at least about 20% higher. The method herein may further include preparing an SCR catalyst article by coating a porous substrate with the second iron-enhanced zeolite.
[0012] In various embodiments, the iron-promoted zeolite is a zeolite material having a BEA framework structure, the BEA framework structure includes YO2 and X2O3, Y is a tetravalent element, and X is a trivalent element. In some embodiments, Y is selected from the group consisting of Si, Sn, Ti, Zr, Ge, and combinations of two or more thereof, and X is selected from the group consisting of Al, B, In, Ga, Fe, and combinations of two or more thereof. In certain embodiments, Y is Si and X is Al. In various embodiments, the zeolite material having a BEA framework structure is obtained from a synthetic process without using an organic template, as described in U.S. Patent No. 8,865,121, which is incorporated herein in its entirety. The iron-promoted zeolite can have a silica-to-alumina molar ratio (SAR) of about 10 or less, or about 5 or less.
[0013] As detailed below, a fresh sample of a second iron-promoted zeolite having a second iron content according to the present disclosure has a NOx conversion rate that is at least about 15% higher, more specifically at least about 20% or 25% or 30% or 3% or 40% higher than a fresh sample of a first iron-promoted zeolite at a temperature of 250°C.
[0014] An engine exhaust gas treatment system is also provided herein, the system includes a catalyst composition made according to the present disclosure and an exhaust gas conduit in fluid communication with a lean burn engine, and the catalyst composition (i.e., the second iron-promoted zeolite) is downstream of the exhaust gas conduit. In various embodiments, the engine is a diesel engine. A method for removing nitrogen oxides from the exhaust gas from a lean burn engine is also provided herein, the method includes contacting an exhaust gas stream from the lean burn engine with a catalyst composition (i.e., the second iron-promoted zeolite) prepared according to the present disclosure.
Brief Description of the Drawings
[0015] To provide an understanding of embodiments of the present invention, the accompanying drawings are referred to, which are not necessarily drawn to scale and 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.
[0016] [Figure 1A] It is a perspective view of a honeycomb-shaped substrate that may include a catalyst composition according to the present invention, [Figure 1B] It is an enlarged partial cross-sectional view taken along a plane parallel to the end face of the carrier of FIG. 1A and shows an enlarged view of a plurality of gas flow paths shown in FIG. 1A, [Figure 2] It shows a cross-sectional view of a part of a wall-flow filter substrate, [Figure 3] It shows a schematic view of an embodiment of an exhaust gas treatment system in which the catalyst of the present disclosure is used, [Figure 4] It is a graph of NOx conversion over a certain temperature range for fresh and aged SCR catalyst samples according to the present disclosure, and fresh and aged comparative SCR catalyst samples, and [Figure 5] It is a graph of NOx conversion over a certain temperature range for fresh and aged SCR catalyst samples according to the present disclosure, and fresh and aged comparative SCR catalyst samples.
Mode for Carrying Out the Invention
[0017] The following description of this disclosure will be entirely based on exemplary embodiments. These exemplary embodiments are described in order to ensure that this disclosure is thorough and complete and to fully convey the scope of this disclosure to those skilled in the art. In fact, this disclosure can be implemented in many different forms and should not be construed as being limited to the embodiments described herein, but rather these embodiments are provided so as to satisfy the applicable legal requirements of this disclosure. As used herein and in the appended claims, the singular forms “a,” “an,” and “the” include plural nouns unless otherwise clearly indicated by context.
[0018] This disclosure generally refers to NO from engines such as diesel or gasoline engines. x The present invention provides catalyst compositions suitable for at least partial conversion of emissions, such as SCR catalyst compositions. The catalyst compositions generally comprise one or more metal-promoted molecular sieves (e.g., zeolites) and can be prepared and coated onto a substrate using a wash-coat technique as fully described below. The catalyst compositions described herein generally comprise iron-promoted zeolites in which the iron content of the zeolite is added to the zeolite in at least two separate steps. The catalyst compositions disclosed herein may provide enhanced low-temperature performance. In particular, the disclosed compositions exhibit improved NO at low temperatures compared to equivalent compositions without the addition of two separate irons. x It exhibits conversion. Furthermore, the disclosed composition shows a low N2O formation level comparable to that observed with other Fe-zeolite SCR catalysts.
[0019] catalyst composition The catalyst compositions disclosed herein generally include selective catalytic reduction (SCR) catalyst compositions comprising iron-promoted molecular sieves containing at least about 6 weight percent iron, based on, for example, the total weight of the iron-promoted molecular sieves, wherein the iron content of the molecular sieves is added to the molecular sieves in at least two separate steps. As used herein, the term “molecular sieve” refers to skeletal materials such as zeolites and other skeletal materials (e.g., isomorphically substituted materials), which can be used as catalysts, for example, in particulate form, in combination with one or more accelerator metals. Molecular sieves are generally oxygen ion-based materials with a broad three-dimensional network structure, containing tetrahedral regions and having a substantially uniform pore distribution, with an average pore diameter of 20 Å or less. The pore diameter is defined by the ring diameter. As used herein, the term “zeolite” refers to specific examples of molecular sieves further containing silicon and aluminum atoms. According to one or more embodiments, defining molecular sieves by their structural type will be understood to include both molecular sieves having that structural type and any isotype skeletal materials such as SAPO, AlPO, and MeAPO materials having the same structural type.
[0020] In more specific embodiments, by referring to the aluminosilicate zeolite structural type, the material is limited to molecular sieves that do not intentionally contain phosphorus or other metals substituted into the framework. However, for clarity, as used herein, “aluminosilicate zeolite” excludes aluminosilicate materials such as SAPO, AlPO, and MeAPO materials, and the broader term “zeolite” is intended to include aluminosilicate and aluminosilicate. Zeolites are understood to be crystalline materials, aluminosilicates having an open three-dimensional framework structure consisting of corner-shared TO tetrahedra (where T is Al or Si). Zeolites generally contain a silica-to-alumina (SAR) molar ratio of 1 or more. Zeolites for use in the disclosed catalyst compositions are not particularly limited with respect to SAR values, but certain SAR values associated with a zeolite may, in some embodiments, affect the SCR performance of the catalyst composition in which it is incorporated (e.g., particularly after aging). In some embodiments, the SAR value of the zeolite is about 2 to about 100 or about 2 to about 15. In some embodiments, the SAR is about 10 or less, and in other embodiments, the SAR is about 5 or less.
[0021] The cations that balance the charge of the anionic skeleton are loosely associated with the oxygen of the skeleton, and the remaining pore volume can potentially be filled with water molecules. Non-skeletal cations are generally replaceable, and water molecules are removable. Zeolites are typically crystalline materials with fairly uniform pore sizes ranging from about 3 to 10 angstroms in diameter, depending on the type of zeolite and the type and amount of cations contained in the zeolite lattice.
[0022] Molecular sieves can be classified by their skeletal topology to identify their structure. Typically, any structural type of zeolite, e.g., ABW, ACO, AEI, AEL, AEN, AET, AFG, AFI, AFN, AFO, AFR, AFS, AFT, AFX, AFY, AHT, ANA, APC, APD, AST, ASV, ATN, ATO, ATS, ATT, ATV, AWO, AWW, BCT, BEA, BEC, BIK, BOG, BPH, BRE, CAN, CAS, SCO, CFI, SGF, CGS, CHA, CHI, CLO, CON, CZP, DAC, DDR, DFO, DFT, DOH, DON, EAB, EDI, EMT, EON, EPI, ERI, ESV, ETR, EUO, FA U, FER, FRA, GIS, GIU, GME, GON, GOO, HEU, IFR, IHW, ISV, ITE, ITH, ITW, IWR, IWW, JBW, KFI, LAU, LEV, LIO, LIT, LOS, LOV, LTA, LTL, LTN, MAR, MAZ, MEI, MEL, MEP, MER, MFI, MFS, MON, MOR, MOZ, MSO, MTF, MTN, MTT, MTW, MWW, NA B, NAT, NES, NON, NPO, NSI, OBW, OFF, OSI, OSO, OWE, PAR, PAU, PHI, PON, RHO, RON, RRO, RSN, RTE, RTH, RUT, RWR, You can use structural types such as RWY, SAO, SAS, SAT, SAV, SBE, SBS, SBT, SFE, SFF, SFG, SFH, SFN, SFO, SGT, SOD, SOS, SSY, STF, STI, STT, TER, THO, TON, TSC, UEI, UFI, UOZ, USI, UTL, VET, VFI, VNI, VSV, WIE, WEN, YUG, ZON, or combinations thereof.
[0023] In one or more specific embodiments of this disclosure, the zeolite of the catalyst composition has a BEA structure. In various embodiments, the zeolite material has a BEA framework structure, the BEA framework structure comprises YO2 and X2O3, where Y is a tetravalent element and X is a trivalent element. In some embodiments, Y is selected from the group consisting of Si, Sn, Ti, Zr, Ge, and two or more combinations thereof, and X is selected from the group consisting of Al, B, In, Ga, Fe, and two or more combinations thereof. In a particular embodiment, Y is Si and X is Al. In various embodiments, the zeolite material having a BEA structure is zeolite beta, which is a zeolite containing SiO2 and Al2O3 in its framework and having a three-dimensional 12-membered ring (12MR) pore / channel system.
[0024] In various embodiments of this disclosure, the zeolite of the catalyst composition may be a low silica-alumina ratio (SAR) beta-zeolite prepared by a template-free process. Methods for producing template-free beta-zeolites are known in the art. See, for example, the process described in U.S. Patent Publication 2018 / 0022611 to Feyen et al., which is incorporated herein by reference in whole. Zeolite materials having a BEA framework structure can be obtained from an organic template-free synthesis process, as described in U.S. Patent Publication 2018 / 0022611 to Feyen et al. Template-free zeolites having a BEA framework structure may have an SAR ratio of about 10 or less, or about 5 or less, which is lower than other zeolites having a BEA framework structure that are not template-free. Other template methods for synthesizing beta-zeolites typically result in silica-alumina ratios (SAR) greater than 30. Without being limited by theory, such higher SARs do not provide sufficient ion exchange sites for catalyst enhancement observed by this double iron exchange method disclosed herein.
[0025] As referred to above in this specification, the catalyst compositions disclosed generally comprise metal-promoted molecular sieves (e.g., beta-zeolites). As used herein, “promoted” refers to molecular sieves comprising one or more components that are intentionally added, as opposed to those containing impurities that may be inherent in molecular sieves. Thus, an promoter is a component that is intentionally added to enhance the activity of the catalyst compared to a catalyst without an intentionally added promoter. In one or more embodiments of this disclosure, a suitable metal is exchanged within the molecular sieve to promote the SCR of nitrogen oxides. Copper and iron can be particularly useful metals for exchange because they are involved in the conversion of nitrogen oxides. Thus, in certain embodiments, catalyst compositions comprising iron-promoted molecular sieves (e.g., zeolites), e.g., Fe-BEA, are provided. However, the present invention is not intended to be limited thereto, and catalyst compositions comprising other metal-promoted molecular sieves are also encompassed thereto. As detailed below, the catalyst compositions described herein include molecular sieves (e.g., zeolites) that have undergone two separate metal (e.g., iron) accelerator processes. However, in certain embodiments, iron may be replaced with other accelerator metals in the processes of the disclosure.
[0026] The accelerator metal can generally be selected from the group consisting of alkali metals, alkaline earth metals, transition metals of Group IIIB, Group IVB, Group VB, Group VIB, Group VIIB, Group VIIIB, Group IB, and Group IIB, elements of Group IIIA, elements of Group IVA, lanthanides, actinides, and combinations thereof. Specific accelerating metals that can be used to prepare metal-accelerated molecular sieves include, but are not limited to, copper (Cu), cobalt (Co), nickel (Ni), lanthanum (La), manganese (Mn), iron (Fe), vanadium (V), silver (Ag), cerium (Ce), neodymium (Nd), praseodymium (Pr), titanium (Ti), chromium (Cr), zinc (Zn), tin (Sn), niobium (Nb), molybdenum (Mo), hafnium (Hf), yttrium (Y), tungsten (W), and combinations thereof, in various embodiments. Using such combinations of metals, for example, copper and iron, a mixed Cu-Fe-accelerated molecular sieve, such as Cu-Fe-BEA, can be obtained. In certain embodiments, the accelerator metal associated with the disclosed zeolite component includes copper (e.g., as CuO), iron (e.g., as Fe2O3), or manganese (e.g., as MnO2).
[0027] The accelerator metal content of metal-accelerated molecular sieves, calculated as an oxide, is reported to be at least about 0.1% by weight, based on the total weight of the calcined molecular sieve (including the accelerator), and free of volatile substances, in one or more embodiments. In certain embodiments, the accelerator metal of the zeolite component includes Fe, and the Fe content, calculated as Fe2O3, ranges from about 0.1% to about 20% by weight, including about 0.5% to about 17% by weight, about 2% to about 15% by weight, or about 2% to about 10% by weight, respectively, based on the total weight of the calcined molecular sieve reported on a volatile-free basis. In some embodiments, the zeolite component (including the accelerator metal) can be defined by the ratio of the accelerator metal to aluminum in the accelerated zeolite. For example, in some embodiments, the molar ratio of accelerator metal to aluminum is about 0.1 to about 0.5 (e.g., the Fe / Al ratio is about 0.1 to about 0.5). In some embodiments, the molar ratio of the accelerator metal to aluminum is about 0.1 to about 0.33 (for example, the Fe / Al ratio is about 0.1 to about 0.33). In some embodiments, there may be excess Fe2O3 that is not ion-exchanged.
[0028] As described herein, zeolite materials (e.g., template-free beta-zeolite) are metal-enhanced with a first metal (e.g., Fe) content, and are referred to herein as first iron-enhanced zeolites. For ease of disclosure, the enhancing metal is referred to as Fe, but this disclosure is not intended to be limited to iron-enhanced zeolites. The first iron content of the first iron-enhanced zeolite, calculated as Fe2O3, ranges from about 2% to about 10% by weight, including about 4% to about 8% by weight, or about 6% to about 8% by weight, respectively, based on the total weight of calcined molecular sieves reported on a volatile-free basis.
[0029] A first iron-enhanced zeolite is treated with additional iron to form an iron-enhanced zeolite of the present disclosure having a second iron content. The second iron content of the iron-enhanced zeolite of the present disclosure, calculated as Fe2O3, ranges from about 4% to about 20% by weight, including about 6% to about 15% by weight, or about 8% to about 15% by weight, respectively, based on the total weight of the calcined molecular sieve, as reported on a volatile matter-free basis. The second iron content is higher than the first iron content. In some embodiments, the second iron content is at least about 15% higher or at least about 25% higher than the first iron content.
[0030] In certain embodiments, the catalyst contains ion-exchanged iron and a sufficient amount of non-exchanged iron to maintain the catalyst's NOx conversion performance in an exhaust stream containing nitrogen oxides after hydrothermal or exhaust aging.
[0031] Base material According to one or more embodiments, the substrate (on which the disclosed catalyst composition is applied to obtain a catalyst article, e.g., an SCR catalyst article) may be constructed from any material typically used to prepare automotive catalysts and typically consists of a metal or ceramic honeycomb structure. As used herein, the term “substrate” refers to a monolithic material to which the catalyst material is typically applied in the form of a wash coat. The substrate typically provides a plurality of walls to which the SCR wash coat composition (e.g., including the metal-enhanced molecular sieve disclosed herein) is applied and adhered, thereby acting as a carrier for the catalyst composition. In one or more embodiments, the substrate is selected from one or more of a flow-through honeycomb monolith or a particulate filter, and the catalyst material is applied to the substrate as a wash coat.
[0032] Figures 1A and 1B illustrate an exemplary substrate 2 in the form of a flow-through substrate coated with a catalyst composition as described herein. Referring to Figure 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 channels 10 formed inside. As seen in Figure 1B, the channels 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 not blocked so as to allow a fluid, such as a gas flow, to flow longitudinally through the carrier 2 via its gas channels 10. As is more readily seen in Figure 1B, the walls 12 are dimensioned and constructed such that the gas channels 10 have a substantially regular polygonal shape. As shown, the catalyst composition may be applied as a plurality of separate layers as needed. In the exemplary embodiments, the catalyst composition comprises both a separate bottom layer 14 bonded to the wall 12 of the carrier member, and a second separate top layer 16 coated on the bottom layer 14. The present invention may be carried out using one or more (e.g., two, three, or four) catalyst layers and is not limited to the two-layer embodiment illustrated in Figure 1B.
[0033] In one or more embodiments, the substrate is a ceramic or metal having a honeycomb structure. Any suitable substrate can be used, such as a monolithic substrate of the type having fine, parallel gas channels extending from the inlet or outlet surface of the substrate, so that the passage is open and fluid can flow through. The passage, which is an essentially straight path from the fluid inlet to the fluid outlet, is defined by walls, which are coated with a catalyst material as a wash coat, so that the gas flowing through the passage comes into contact with the catalyst material. The channels of the monolithic substrate are thin-walled channels, which can be any suitable cross-sectional shape and size, such as trapezoidal, rectangular, square, sinusoidal, hexagonal, elliptical, or circular. Such a structure is 1 square inch (6.4516cm 2 ) Each cross-section may contain approximately 60 to 900 or more gas inlet openings (i.e., cells). The wall thickness of the flow-through substrate can vary, with a typical range of 0.002 to 0.01 inches. (0.0508~0.254mm) Typical commercially available flow-through substrates have a pressure of 4-6 mil at 400 cpsi. (0.1016~0.1524mm) The wall thickness is 3-4 mils at 600 cpsi. (0.0762~0.1016mm) This is a cordierite substrate having a wall thickness. However, it will be understood that the present invention is not limited to a specific type, material, or geometric shape of substrate.
[0034] The ceramic materials used to construct the substrate may include any suitable refractory material, such as cordierite, mullite, cordierite-α-alumina, silicon carbide, aluminum titanate, silicon nitride, zircon mullite, spodumene, alumina-silica-magnesia, zircon silicate, sillimanite, magnesium silicate, zircon, petalite, α-alumina, and aluminosilicate.
[0035] The substrates useful for catalysts in embodiments of the present invention may also be essentially metallic and may consist of one or more metals or metal alloys. Metal substrates may include any metal substrate having openings or "punchouts" in the channel walls. Metal substrates may be used in various forms such as pellets, corrugated sheets, or monolithic forms. Exemplary metal substrates include heat-resistant metals and metal alloys such as titanium and stainless steel, as well as other alloys in which iron is substantial or the main component. Such alloys may contain one or more of nickel, chromium, and aluminum, and the sum of these metals may, advantageously in any case, contain at least about 15 wt% of the alloy, based on the weight of the substrate, e.g., about 10–25 wt% of chromium, about 1–8 wt% of aluminum, and about 0–20 wt% of nickel. The alloys may also contain small or trace amounts of one or more other metals, such as manganese, copper, vanadium, and titanium. The surface or metal support can be oxidized at high temperatures, for example, above 1000°C, to form an oxide layer on the surface of the substrate, which can improve the corrosion resistance of the alloy and facilitate the adhesion of the wash coat layer to the metal surface.
[0036] In one or more embodiments where the substrate is a particulate filter, the particulate filter may be selected from gasoline particulate filters or diesel soot filters. As used herein, the terms “particulate filter” or “soot filter” refer to a filter designed to remove particulate matter from an exhaust gas flow, such as soot. Particulate filters include, but are not limited to, honeycomb wall flow filters, partial filtration filters, wire mesh filters, wound fiber filters, sintered metal filters, and foam filters. In certain embodiments, the particulate filter is a catalytic soot filter (CSF). A catalytic CSF includes, for example, a substrate coated with the catalyst composition of the present invention.
[0037] A wall-flow substrate useful for supporting catalyst materials in one or more embodiments has multiple fine, substantially parallel gas channels extending along the longitudinal axis of the substrate. Typically, each channel is blocked at one end of the substrate body, and every other channel is blocked at the opposite end face. Such a monolithic substrate is 1 square inch (6.4516cm 2 ) A cross-section can contain up to approximately 900 or more channels (or "cells"), but far fewer can be used. For example, a substrate might have around 7-600, more commonly 100-300 cells per square inch. (6.4516 square centimeters) It may have ("cpsi"). A porous wall flow filter used in embodiments of the present invention may be catalytic such that the wall of the element has a platinum group metal on it or contains therein. The catalytic material may be present only on the inlet side of the substrate wall, only on the outlet side, on both the inlet and outlet sides, or the wall itself may be composed entirely or partially of the catalytic material. In another embodiment, the present invention may include the use of one or more catalytic layers and combinations of one or more catalytic layers on the inlet, on the outlet, or in the wall of the substrate.
[0038] Figure 2 shows a cross-sectional view of an embodiment of multiple porous walls extending longitudinally from the inlet end to the outlet end of a wall-flow filter substrate. A partial cross-sectional view is shown of an embodiment of multiple porous walls 53 extending longitudinally from the inlet end 54 to the outlet end 56, forming multiple parallel passages 52. The gas flow 62 (shown as an arrow) enters through the open end of the inlet passage 64, where the plug is removed, stops at the end closed by the outlet plug 60, diffuses through the porous wall 53, and forms a passage to the outlet passage 66. The gas flow 62 exits the filter by flowing through the open end of the outlet passage 66, where the plug is removed. The gas is prevented from flowing back from the outlet passage to the inlet end of the filter by the inlet plug 58, and is prevented from re-entering the inlet passage from the outlet end by the outlet plug 60. Thus, some of the passages are inlet passages that are open at the inlet end and closed at the outlet end, and some of the passages are outlet passages that are closed at the inlet end and open at the outlet end, where the outlet passages are different from the inlet passages. The porous wall flow filter used in the present invention can be catalytic in that the walls of the substrate have one or more catalytic materials in or on them.
[0039] Such monolithic substrates can contain up to approximately 700 cpsi or more, with a pressure of approximately 100–400 cpsi, more typically approximately 200–300 cpsi. The cross-sectional shape of the cells may vary as described above. The wall flow substrate is typically 0.008–0.02 inches. (0.2032~0.508mm) It has a wall thickness of 200 cpsi and 10 mil. Typical commercially available wall flow substrates are constructed from porous cordierite, examples of which are 200 cpsi and 10 mil. (0.254mm) The wall thickness is 300 cpsi and 8 mil. (0.2032mm)The wall thickness and wall porosity of 45-65% are as follows. Other ceramic materials such as aluminum titanate, silicon carbide, and silicon nitride are also used as wall flow filter substrates. However, it should be understood that this disclosure is not limited to any particular type, material, or shape of substrate. When the substrate is a wall flow substrate, it should be noted that the associated catalyst composition may penetrate into the pore structure of the porous wall (i.e., partially or completely block the pore openings) in addition to being placed on the surface of the wall.
[0040] In some embodiments, the wall flow filter article substrate may have a volume of 2.0 L, 2.5 L, 5.0 L, 10 L, 20 L, or 30 L, and it should be understood that all volumes between any two of these exemplary values are also contemplated by the present invention. The wall flow filter substrate typically has a wall thickness of about 200 microns to about 500 microns, for example, about 200 microns to about 300 microns.
[0041] The walls of a wall-flow filter are porous and generally have a wall porosity of at least about 45% to at least about 70% before the placement of the functional coating, with an average pore diameter of at least about 5 microns to at least about 30 microns. The terms "wall porosity" and "substrate porosity" are synonymous and interchangeable. Porosity is the ratio of the volume of voids within a portion of the filter wall to the volume of voids measured. Pore diameter may be determined according to the ISO 15901-2 (static volume) procedure for nitrogen pore diameter analysis. Nitrogen pore diameter may be determined using Micromeritics TRISTAR 3000 series instruments. Nitrogen pore diameter may also be determined using BJH (Barrett-Joyner-Halenda) calculations and 33 desorption points. Useful wall-flow filters have high porosity, allowing for high packing rates of catalyst composition without imposing excessive back pressure during operation.
[0042] In certain embodiments, a substrate is provided that includes a catalyst composition comprising an iron-promoted zeolite promoted with a second iron content as disclosed herein. Such coated substrates may, in some embodiments, exhibit enhanced NOx conversion with respect to coated substrates comprising a catalyst composition without the addition of iron promotion. As detailed below, a fresh sample of an iron-promoted zeolite having a second iron content according to the present disclosure has a NOx conversion rate that is at least about 15% higher, more specifically at least about 20% or 25% or 30% or 35% or 40% higher, than a fresh sample of a first iron-promoted zeolite at a temperature of 250 °C. 、 As described in detail below, a fresh sample of an iron-promoted zeolite having a second iron content according to the present disclosure has a NOx conversion rate that is at least about 15% higher, more specifically at least about 20% or 25% or 30% or 35% or 40% higher, than a fresh sample of a first iron-promoted zeolite at a temperature of 250 °C.
[0043] Method for making a metal-promoted SCR composition having a second metal content According to the present disclosure, SCR catalyst compositions are generally prepared by providing a first metal-promoted molecular sieve material. As noted above, in various embodiments of the present disclosure, the first metal-promoted molecular sieve material can be a low silica-alumina iron-promoted beta zeolite prepared by a template-free synthesis method. Methods for preparing other types of molecular sieves are known in the art and can be readily used to provide the desired zeolite framework for inclusion within the disclosed compositions. The zeolite can be prepared with a first iron content already present within the zeolite structure or can be treated as described below to establish an initial iron content.
[0044] The first iron-promoted zeolite is treated with additional iron to form an iron-promoted zeolite having a second iron content according to this disclosure, wherein the second iron content is higher than that of the first iron content. To prepare metal-promoted molecular sieves having a second metal content according to various embodiments of the present invention, a metal (e.g., iron) is ion-exchanged to the first metal-promoted molecular sieve. Such a metal is generally ion-exchanged to an alkali metal or NH4 molecular sieve (e.g., NH4 to an alkali metal molecular sieve by methods known in the art, as disclosed in Bleken, F. et al., Topics in Catalysis 2009, 52, 218-228, incorporated herein by reference). + (It can be prepared by ion exchange.)
[0045] In various embodiments, the second iron content can be added to the first iron-enhanced zeolite material using an ion exchange process. For example, in certain embodiments, an in-slurry ion exchange (ISIE) process can be used. See, for example, the ISIE process described in WO2018 / 101718, which is incorporated herein by reference in its entirety. Any suitable form of iron can be used in this process, such as iron oxide, iron sulfate, iron nitrate, or iron acetate.
[0046] Substrate coating process As mentioned above, the catalyst composition is prepared and coated onto a substrate. This method may include mixing the catalyst composition (or one or more components of the catalyst composition) generally disclosed herein with a solvent (e.g., water) to form a slurry for coating a catalyst substrate. The catalyst composition comprising the metal-promoted zeolite material with the second metal content described herein can be prepared in the form of a slurry.
[0047] In addition to the catalytic component in a given washcoat slurry (i.e., a metal-promoted molecular sieve having the second metal content according to this disclosure), the slurry may optionally contain a variety of additional components. Typical additional components include, but are not limited to, one or more binders and additives for controlling the pH and viscosity of the slurry. Specific additional components include binders (e.g., typically silica, titania, zirconia, or a combination thereof in an amount of about 0.1 to about 10 weight percent based on the weight of the zeolite), associative thickeners, and / or surfactants (including anionic, cationic, nonionic, or amphoteric surfactants) and zirconium acetate.
[0048] In some embodiments, the slurry can be pulverized to enhance particle mixing and the formation of a homogeneous wash coat. Pulverization can be achieved using a ball mill, continuous mill, or other similar equipment, and the solid content of the slurry may be, for example, about 20–60% by weight, more specifically, about 30–40% by weight. In one embodiment, the pulverized slurry has particles of about 5–50 microns (e.g., about 5–20 microns, or about 10–20 microns). 90 It is characterized by particle size.
[0049] Generally, a slurry is coated onto a catalyst substrate using wash-coat techniques known in the art. As used herein, “wash-coat” has the usual meaning in the art of a thin, adhesive coating of a material (e.g., a catalytic material) applied to a substrate, such as a honeycomb flow-through monolithic substrate or filter substrate, which is sufficiently porous to allow the passage of the gas flow being treated. As used herein and as described in Heck, Ronald and Robert Farrauto, Catalytic Air Pollution Control, New York: Wiley-Interscience, 2002, pp. 18-19, a wash-coat layer comprises compositionally different layers of material placed on or beneath the surface of a monolithic substrate. A substrate may contain one or more wash-coat layers, each wash-coat layer may have its own unique chemical catalytic function.
[0050] A washcoat is generally formed by preparing a slurry containing a specific solid content (e.g., 30-60 wt%) of a catalyst material (here, a metal-enhanced zeolite component having a second metal content) in a liquid vehicle, which is then coated onto one or more substrates and dried to provide a washcoat layer. To coat a wall-flow substrate with the catalyst material of one or more embodiments, the substrate can be immersed perpendicularly in a portion of the catalyst slurry such that the top of the substrate is positioned just above the surface of the slurry. In this way, the slurry contacts all walls of the flow-through monolith, and in the case of a filter monolith, only the inlet surface of each honeycomb wall, but is prevented from contacting the outlet surface of each filter wall. The sample is left in the slurry for about 30 seconds. The substrate is removed from the slurry, and any excess slurry is removed from the substrate by first allowing it to drain from the channel, then by blowing compressed air (relative to the direction of slurry penetration), and then by drawing a vacuum from the direction of slurry penetration. In the case of flow-through substrates, the resulting wash coat layer is uniformly dispersed across all substrate walls. In the case of filter substrates, the catalyst slurry penetrates the substrate walls, but the pores are not blocked to the extent that excessive back pressure is generated in the finished substrate. As used herein, the term “penetrates” means that the catalyst composition is dispersed throughout the substrate walls when used to describe the dispersion of catalyst slurry on and within a filter substrate.
[0051] Subsequently, the coated substrate is dried at a high temperature (e.g., 100-150°C) for a certain period (e.g., 10 minutes to 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 substantially solvent-free.
[0052] After calcination, the catalyst packing amount 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 packing amount can be modified by altering the rheology of the slurry. Furthermore, the coating / drying / calcination process can be repeated as needed to build up the coating to the desired packing level or thickness.
[0053] Aging can be carried out under a variety of conditions, and as used herein, “aging” is understood to encompass a range of conditions (e.g., temperature, time, and atmosphere). An exemplary aging protocol involves exposing a calcined and coated substrate to a temperature of 650°C in 10% vapor for about 50 hours, or to a temperature of 800°C in 10% vapor for about 16 hours. However, these protocols are not intended to be limiting, and temperatures may be lower or higher (e.g., including, but not limited to, temperatures above 400°C, e.g., 400°C to 1000°C, 600°C to 950°C, or 650°C to 800°C), times may be shorter or longer (e.g., including, but not limited to, times of about 1 hour to about 100 hours, or about 2 hours to about 50 hours), and atmospheres may be adjusted (e.g., so that different amounts of vapor and / or other components are present).
[0054] catalyst article The resulting catalyst article (comprising one or more washcoat layers on a substrate, providing a substrate coated with the catalyst composition) can have a variety of configurations. In some embodiments, as referred to herein, all components of the disclosed catalyst composition (including metal-enhanced zeolite having a second metal-containing component) are contained within a single catalyst composition washcoat layer (i.e., a mixture), which is provided as one or more layers on a substrate. In some embodiments, a catalyst article is provided in which the catalyst composition coated on a substrate comprises separate washcoat layers, at least one washcoat layer containing the metal-enhanced zeolite described herein, and at least one (separate) washcoat layer not containing the metal-enhanced zeolite component having a second metal-containing component as described herein. In this embodiment, the other washcoat layers may contain PGM, specifically Pt, which, when combined with the metal-enhanced zeolite of the Disclosure, functions as a selective ammonia oxidation catalyst (AMOx).
[0055] In one particular embodiment, a washcoat layer of a first catalyst composition containing the metal-promoted zeolite component of the present disclosure is in direct contact with the substrate. In this particular embodiment, one exemplary catalyst article is 0.2 to 2.0 g / in 3 (0.2 / 16.39~2.0 / 16.39g / cm 3 ) The substrate comprises a second metal-enhanced zeolite-containing wash coat layer directly disposed on its surface with a filling amount.
[0056] The wash coat can be applied so that different coating layers are in direct contact with the substrate. Alternatively, one or more "undercoats" may be present so that at least a portion of the catalyst composition wash coat layer(s) is not in direct contact with the substrate (rather, it is in contact with the undercoat). One or more "overcoats" may also be present so that at least a portion of the coating layer is not directly exposed to the gas flow or atmosphere (rather, it is in contact with the overcoat).
[0057] The resulting catalyst article, comprising a catalyst composition as disclosed herein on a substrate, is in some embodiments advantageously compared to catalyst compositions without accelerator metals added in two steps, producing improved NO at low temperatures. x Conversion may be exhibited. For example, a fresh sample of iron-enhanced zeolite to which iron has been added in the second step according to this disclosure has a NOx conversion rate at least about 15% higher, more specifically at least about 20%, 25%, 30%, 35%, or 40% higher, than a fresh sample of initial iron-enhanced zeolite without the addition of the second iron, at a temperature of 250°C.
[0058] Waste disposal system The selective reduction of nitrogen oxides using the catalyst compositions according to this disclosure is generally carried out in the presence of ammonia or urea. In particular, an SCR system comprising a catalyst composition prepared according to the method described herein can be integrated into a vehicle exhaust gas treatment system. An exemplary SCR system may include the following components: the SCR catalyst composition described herein, a urea storage tank, a urea pump, a urea dosing system, a urea injector / nozzle, and their respective control units.
[0059] In some embodiments, the disclosure also includes the removal of nitrogen oxides (NOx) from flows such as exhaust gases. x This can relate to a method for selectively reducing ) . In particular, the flow can be brought into contact with a catalyst composition prepared according to this disclosure. When used herein, nitrogen oxides, or NO x The term encompasses all oxides of nitrogen, including but not limited to N2O, NO, N2O3, NO2, N2O4, N2O5, and NO3.
[0060] In some embodiments, the catalyst compositions described herein contain at least 60%, at least 70%, at least 80%, at least 90%, at least 95%, or at least 99% NO xIt may be effective to provide conversion over a temperature range of approximately 150°C to approximately 650°C, approximately 200°C to approximately 600°C, approximately 300°C to approximately 600°C, approximately 300°C to approximately 550°C, approximately 300°C to approximately 500°C, or approximately 350°C to approximately 450°C. In certain embodiments, the catalyst composition contains at least approximately 25% NO at 200°C. x It can be provided to offer conversion.
[0061] The present invention also provides an exhaust treatment system incorporating an SCR composition or article described herein. The SCR compositions of the present invention are typically used in an integrated exhaust treatment system that includes one or more additional components for treating diesel exhaust gas emissions. Thus, terms such as “exhaust flow,” “engine exhaust flow,” and “exhaust gas flow” refer to engine effluent, as well as effluent upstream or downstream of one or more other catalytic system components described herein. Such additional catalytic components include diesel oxidation catalysts (DOC), catalytic soot filters (CSF), and lean NOx. x This includes, but is not limited to, traps (LNTs) and selective NH3-controlled catalysts (AMOx).
[0062] Figure 3 shows one exemplary embodiment of an engine system including an exhaust treatment system, a urea injector, and other engine components. The SCR (e.g., SCRoF) catalyst 150 disclosed herein may be placed directly downstream of the engine or downstream of another catalyst component shown herein as an optional component 147. An optional additional catalyst 143 may be placed downstream of the SCR catalyst 150 and may contain an AMOx catalyst, another SCR catalyst, and / or a catalyst for oxidizing hydrocarbons and carbon monoxide. Depending on the desired level of removal of ammonia, carbon monoxide, and hydrocarbons, additional oxidation catalysts may be included. Specifically, an additional Cu-zeolite SCR catalyst, more specifically a Cu-CHA SCR catalyst, may be added after the Fe-BEA catalyst of this disclosure. Either the forward Fe-BEA SCR catalyst or the backward Cu-CHA SCR catalyst may be applied to a soot filter to form SCRoF. Gaseous pollutants (unburned hydrocarbons, carbon monoxide, NO) x Exhaust gas containing (including) and particulate matter is carried from the engine 141 through connector 142 to various components shown in Figure 3, and the exhaust gas is discharged from the system through tailpipe 144. In addition to those shown in Figure 3, it is understood that other components, such as another optional catalytic component 152, may be included upstream or downstream of the SCR 150.
[0063] The system shown in Figure 3 further illustrates the injection of a reducing agent, such as urea, which can be injected as a spray into the exhaust flow via a nozzle (not shown). The urea solution shown in one line 148 can function as an ammonia precursor that can be mixed with air on another line 149 in a mixing station 146. A valve 145 can be used to measure the precise amount of urea solution to be converted to ammonia in the exhaust flow. The exhaust flow to which ammonia has been added is then delivered to the SCR catalyst 150 for the SCR reaction. The injector shown is an example of one type of system that may be used, and other variations are within the scope of this disclosure.
[0064] experiment Aspects of the present invention are further illustrated entirely by the following examples, which are provided to illustrate certain aspects of the invention and should not be construed as limiting the invention.
[0065] Reference Example 1: A conventional Fe-enhanced beta catalyst composition with a silica-alumina ratio of 40 and a Fe2O3 packing content of 1.4 wt% was used to prepare an SCR catalyst slurry with a solids content of approximately 40%. Zirconium acetate was added to this slurry at a level designed to provide 5 wt% ZrO2 on the calcined catalyst. This reference catalyst was then processed at 400 cells / square inch. (6.4516 square centimeters) Cell density (cpsi) and 6 mil (0.1524mm) A wash coat was applied to a cellular ceramic monolith with a wall thickness of 1 inch in diameter. (25.4mm) × Length 3 inches (76.2mm) The monolithic sample was coated, dried at 110°C, and then baked at 450°C for 1 hour. The wash-coat, drying, and baking process was repeated until 3.0 g / in was achieved. 3 (3.0 / 16.39g / cm 3 ) The required amount of wash coat filling was achieved.
[0066] Comparative Example 1: A Fe-enhanced beta catalyst composition having a second iron content according to this disclosure was prepared.
[0067] The first Fe-enhanced low-SAR beta-zeolite (used in samples A and B) was synthesized to SAR=5 using a template-free method. The first Fe-enhanced low-SAR beta-zeolite had a primary iron content of approximately 4.7% by weight, calculated as Fe2O3 and based on the total weight of the zeolite material.
[0068] A catalyst composition containing a first Fe-promoted low-SAR beta-zeolite with 4.7 wt% Fe2O3 was added to water along with zirconium acetate designed to provide 5 wt% ZrO2 on the calcined catalyst. The final washcoat slurry was adjusted to approximately 30-40% solids after grinding.
[0069] After preparing the wash coat slurry, a diameter of 1 inch (25.4mm) × Length 3 inches (76.2mm) 400 cpsi, 6 mil (0.1524mm) The catalyst was prepared by coating a monolith. After drying at 110°C, the sample was baked at 450°C for 1 hour. The coating process was performed at 2.1 g / in. 3 (2.1 / 16.39g / cm 3 ) The amount of catalyst wash coat filling was provided.
[0070] Example 1: An in-slurry ion exchange process was used to add additional iron to the first zeolite material to form a second Fe-enhanced low-SAR beta-zeolite (used for samples C and D) having a second iron content. The second Fe-enhanced low-SAR beta-zeolite according to this disclosure had a second iron content of approximately 6.6% by weight, calculated as Fe2O3, based on the total weight of the zeolite material.
[0071] The catalyst composition containing the second Fe-enhanced low-SAR beta-zeolite was prepared by mixing the first Fe-enhanced low-SAR zeolite (used in Comparative Example 1), which contained 4.7 wt% Fe2O3, with water, along with zirconium acetate and iron nitrate, designed to provide 5 wt% ZrO2 and an additional 1.9 wt% Fe2O3 based on the zeolite packing amount after calcination. The final washcoat slurry was adjusted to approximately 30-40% solids after grinding.
[0072] After preparing the wash coat slurry, a diameter of 1 inch (25.4mm) × Length 3 inches (76.2mm) 400 cpsi, 6 mil (0.1524mm)The catalyst was prepared by coating a monolith. After drying at 110°C, the sample was baked at 450°C for 1 hour. The coating process was performed at 2.1 g / in. 3 (2.1 / 16.39g / cm 3 ) The amount of catalyst wash coat filling was provided.
[0073] Comparative Example 2: A Fe-enhanced beta catalyst composition having a second iron content according to this disclosure was prepared.
[0074] The first Fe-enhanced low-SAR beta-zeolite (used in samples E and F) was synthesized to SAR=5 using a template-free method. The first Fe-enhanced low-SAR beta-zeolite had a primary iron content of approximately 7.4% by weight, calculated as Fe2O3 and based on the total weight of the zeolite material.
[0075] A catalyst composition containing a first Fe-promoted low-SAR beta-zeolite with 7.4 wt% Fe2O3 was added to water along with zirconium acetate designed to provide 5 wt% ZrO2 on the calcined catalyst. The final washcoat slurry was adjusted to approximately 30-40% solids after grinding.
[0076] After preparing the wash coat slurry, a diameter of 1 inch (25.4mm) × Length 3 inches (76.2mm) 400 cpsi, 6 mil (0.1524mm) The catalyst was prepared by coating a monolith. After drying at 110°C, the sample was baked at 450°C for 1 hour. The coating process was performed at 2.1 g / in. 3 (2.1 / 16.39g / cm 3 ) The amount of catalyst wash coat filling was provided.
[0077] Example 2: Using an in-slurry ion exchange process, additional iron was added to the zeolite material to form a second Fe-enhanced low-SAR beta-zeolite (used in samples G and H) having the second iron content according to this disclosure. The second Fe-enhanced low-SAR beta-zeolite had a second iron content of approximately 8.5% by weight, calculated as Fe2O3, based on the total weight of the zeolite material.
[0078] The catalyst composition containing the second Fe-enhanced low-SAR beta-zeolite was prepared by mixing the first Fe-enhanced low-SAR zeolite (used in Comparative Example 2), which contained 7.4 wt% Fe2O3, with water, along with zirconium acetate and iron nitrate, designed to provide 5 wt% ZrO2 and an additional 1.1 wt% Fe2O3 based on the zeolite packing amount after calcination. The final washcoat slurry was adjusted to approximately 30-40% solid after grinding.
[0079] After preparing the wash coat slurry, a diameter of 1 inch (25.4mm) × Length 3 inches (76.2mm) 400 cpsi, 6 mil (0.1524mm) The catalyst was prepared by coating a monolith. After drying at 110°C, the sample was baked at 450°C for 1 hour. The coating process was performed at 2.1 g / in. 3 (2.1 / 16.39g / cm 3 ) The amount of catalyst wash coat filling was provided.
[0080] Table 1 below summarizes the SAR values, weight percentages of the first, added, and second irons, as well as the wash coat filler amounts for the reference example, two comparative examples, and two examples prepared according to the methods disclosed herein. [Table 1] Note that in Table 1, the filling amount of wash coat (g / in) 3 ) can be obtained by dividing each value by 16.39 to obtain the SI units (g / cm³). 3 It can be converted to a numerical value of ).
[0081] Example 3: Samples C and D of SCR catalyst articles containing the second Fe-enhanced low-SAR beta-zeolite catalyst composition, prepared according to Example 1 above, were evaluated for their deNOx performance. For comparative purposes, samples A and B of SCR catalyst articles containing the first Fe-enhanced low-SAR beta-zeolite catalyst composition were prepared according to Comparative Example 1 above, and these were also evaluated for their deNOx performance. SCR samples were prepared by wash-coating the catalyst slurry onto a substrate as described.
[0082] Hydrothermal treatment of the catalyzed monolithic sample was performed by passing a gas containing approximately 10% O2 and 10% H2O in N2 through the sample at a space velocity of 9,000 / hour for 50 hours at 650°C using steam in a tubular furnace.
[0083] The sample consisted of 500 ppm NOx (standard SCR conditions where NO2 / NOx=0) and 500 ppm NH4. 3、 Using simulated exhaust gas containing 10% O2 and 5% H2O, at a space velocity of 80,000 / hour 、 The evaluation was performed in a laboratory reactor using a temperature gradient of 0.5°C / min from 200° to 600°C. For comparison, NOx conversion at 250°, 350°, and 450°C was also performed. 、 Along with the formation of a ppm-level peak of N2O (usually around 350°C), the results are shown in Table 2 below. [Table 2]
[0084] Figure 4 provides graphs showing the NOx conversion rates over a wide temperature range for fresh and aged samples (Samples C and D, respectively) of an SCR catalyst article containing the second Fe-enhanced low-SAR beta-zeolite catalyst composition according to this disclosure, as well as fresh and aged samples (Samples A and B, respectively) of an SCR catalyst article containing the first Fe-enhanced low-SAR beta-zeolite catalyst composition.
[0085] As shown in Figure 4, at a temperature of approximately 250°C, a fresh SCR catalyst article (Sample C) containing the second Fe-promoted low-SAR beta-zeolite catalyst composition according to the present disclosure provides approximately 68% NOx conversion. At a temperature of approximately 250°C, a fresh SCR catalyst article (Comparative Sample A) containing the first Fe-promoted low-SAR beta-zeolite catalyst composition according to the present disclosure provides approximately 43% NOx conversion. Therefore, for fresh samples, the SCR catalyst compositions of the present disclosure provide at least approximately 25% increase in NOx conversion compared to SCR catalysts having only a single iron promoter.
[0086] As shown in Figure 4, at a temperature of approximately 250°C, an aged SCR catalyst article (Sample D) containing the second Fe-promoted low-SAR beta-zeolite catalyst composition according to the present disclosure provides approximately 32% NOx conversion. At a temperature of approximately 250°C, an aged SCR catalyst article (Comparative Sample B) containing the first Fe-promoted low-SAR beta-zeolite catalyst composition according to the present disclosure provides approximately 28% NOx conversion. Therefore, in the case of aged samples, the SCR catalyst compositions of the present disclosure provide increased NOx conversion compared to SCR catalysts having only single iron promotion. The peak N2O value is within the range of experimental error, which means that the improvement in NOx conversion by adding additional iron according to the method of the present invention did not negatively affect the selectivity for N2O.
[0087] Example 4: Samples G and H of SCR catalyst articles containing the second Fe-enhanced low-SAR beta-zeolite catalyst composition, prepared according to Example 2 above, were evaluated for their deNOx performance. For comparative purposes, samples E and F of SCR catalyst articles containing the first Fe-enhanced low-SAR beta-zeolite catalyst composition were prepared according to Comparative Example 2 above, and these were also evaluated for their deNOx performance. SCR samples were prepared by wash-coating the catalyst slurry onto a substrate as described.
[0088] Samples from Comparative Example 2 and Example 2 were aged and evaluated using the same method as described for Example 3. For comparison, NOx conversion at 250°, 350°, and 450°C was performed. 、 Along with the formation of a ppm-level peak of N2O (usually around 350°C), this is shown in Table 3 below. [Table 3]
[0089] Figure 5 provides graphs showing the NOx conversion rates over a wide temperature range for fresh and aged samples (Samples G and H, respectively) of an SCR catalyst article containing a second Fe-enhanced low-SAR beta-zeolite catalyst composition having a second iron content according to the present disclosure, as well as fresh and aged samples (Samples E and F, respectively) of an SCR catalyst article containing a first Fe-enhanced low-SAR beta-zeolite catalyst composition.
[0090] As shown in Figure 5, at a temperature of approximately 250°C, a fresh SCR catalyst article (Sample G) containing the second Fe-promoted low-SAR beta-zeolite catalyst composition according to the present disclosure provides approximately 81% NOx conversion. At a temperature of approximately 250°C, a fresh SCR catalyst article (Comparative Sample E) containing the first Fe-promoted low-SAR beta-zeolite catalyst composition according to the present disclosure provides approximately 63% NOx conversion. Therefore, for fresh samples, the SCR catalyst compositions of the present disclosure provide at least approximately 18% increase in NOx conversion compared to SCR catalysts having only a single iron promoter.
[0091] As shown in Figure 5, at a temperature of approximately 250°C, an aged SCR catalyst article (Sample H) containing the second Fe-promoted low-SAR beta-zeolite catalyst composition according to the present disclosure provides approximately 39% NOx conversion. At a temperature of approximately 250°C, an aged SCR catalyst article (Comparative Sample F) containing the first Fe-promoted low-SAR beta-zeolite catalyst composition according to the present disclosure provides approximately 13% NOx conversion. Therefore, in the case of the aged samples, the SCR catalyst compositions of the present disclosure provide at least approximately 26% increase in NOx conversion compared to SCR catalysts having only a single iron promoter. The peak N2O value is within the experimental error range, which means that the improvement in NOx conversion by adding additional iron according to the method of the present invention did not negatively affect the selectivity for N2O.
[0092] Example 5: The data from Example 1 (double Fe exchange with a total Fe2O3 filling amount of 6.6 wt%) was compared with the data from Comparative Example 2 (single Fe exchange with a Fe2O3 filling amount of 7.4 wt%).
[0093] At a temperature of approximately 250°C, a fresh SCR catalyst article of Example 1 (Sample C) containing the second Fe-promoted low-SAR beta-zeolite catalyst composition according to the present disclosure provides approximately 68% NOx conversion. A fresh SCR catalyst article of Comparative Sample E containing the first Fe-promoted low-SAR beta-zeolite catalyst composition according to the present disclosure provides approximately 63% NOx conversion. Therefore, in the case of fresh samples, the SCR catalyst composition of the present disclosure provides at least approximately 5% increase in NOx conversion compared to an SCR catalyst having only a single iron promoter, despite having 0.8 wt% less Fe2O3.
[0094] In a comparison of aged catalysts, at a temperature of approximately 250°C, an aged SCR catalyst article (Sample D) containing the second Fe-promoted low-SAR beta-zeolite catalyst composition according to the present disclosure provides approximately 32% NOx conversion. An aged SCR catalyst article (Comparative Sample F) containing the first Fe-promoted low-SAR beta-zeolite catalyst composition according to the present disclosure provides approximately 13% NOx conversion. Therefore, in the case of aged samples, the SCR catalyst compositions of the present disclosure provide at least approximately 19% increase in NOx conversion compared to SCR catalysts having only a single iron promoter, despite having 0.8 wt% less Fe2O3.
[0095] While the inventions disclosed herein are described by specific embodiments and their uses, many modifications and changes can be made by those skilled in the art without departing from the scope of the inventions as defined in the claims. Furthermore, various aspects of this disclosure can be used in uses other than those specifically described herein.
Claims
1. A method for forming a selective catalytic reduction (SCR) catalyst, Receiving a first iron-enhancing zeolite having a first iron content, The process includes treating the iron-enhanced zeolite with additional iron in an ion exchange step to form a second iron-enhanced zeolite having a second iron content, wherein the second iron content is higher than the first iron content. The iron-promoting zeolite is a zeolite material having a BEA skeleton structure. The zeolite material having the aforementioned BEA skeleton structure is obtained from a synthesis process that does not use organic templates. Based on the total weight of the iron-promoting zeolite, the first iron content is 2 to 8% by weight, and the second iron content is 6 to 10% by weight. A method wherein the iron-promoting zeolite has a silica-to-alumina molar ratio (SAR) of 10 or less.
2. The method according to claim 1, wherein the second iron content is at least 15% higher than the first iron content.
3. The method according to claim 1, wherein the iron-promoting zeolite has a silica-to-alumina molar ratio (SAR) of 5 or less.
4. The method according to claim 1, wherein the catalyst contains ion-exchanged iron and an amount of non-exchanged iron sufficient to maintain the NOx conversion performance of the catalyst in an exhaust stream containing nitrogen oxides after hydrothermal aging of the catalyst.
5. The method according to claim 1, wherein a fresh sample of the second iron-enhanced zeolite having the second iron content has a NOx conversion rate at a temperature of 250°C that is at least 15% higher than that of a fresh sample of the first iron-enhanced zeolite.
6. The method according to any one of claims 1 to 5, further comprising preparing an SCR catalyst article by coating a flow-through ceramic or metal substrate with the second iron-promoting zeolite.
7. The method according to claim 6, further comprising a porous wall flow filter substrate.
8. An iron-promoting zeolite prepared according to the method described in any one of Claims 1 to 7.
9. A selective catalytic reduction (SCR) catalyst composition comprising an iron-promoted low-SAR beta-zeolite having a SAR of less than 10, comprising at least 6% by weight of iron based on the total weight of the iron-promoted zeolite, wherein the iron content of the beta-zeolite is added to the zeolite in at least two separate steps, with a first iron content added in the first step being 2 to 8% by weight based on the total weight of the iron-promoted zeolite, and a second iron content added in the next step being 6 to 10% by weight based on the total weight of the iron-promoted zeolite.
10. The SCR catalyst composition according to claim 9, wherein the SCR catalyst composition is disposed on a flow-through or wall-flow filter substrate.
11. An engine exhaust gas treatment system comprising an SCR catalyst composition according to claim 9 or 10 and an exhaust gas conduit that is in fluid communication with a lean-burn engine, wherein the SCR catalyst composition is located downstream of the exhaust gas conduit.
12. The engine exhaust gas treatment system according to claim 11, wherein the engine is a diesel engine.
13. The engine exhaust gas treatment system according to claim 11, wherein a DOC and / or CSF catalyst is placed before a low SCR Fe-promoted beta-zeolite SCR catalyst, and may be followed by an additional Cu-zeolite SCR catalyst and / or a selective ammonia oxidation catalyst (AMOx), wherein the Cu-zeolite SCR catalyst and the AMOx catalyst contain Cu-CHA.
14. A method for removing nitrogen oxides from exhaust gases from a lean-burn engine, comprising contacting the exhaust gas flow from the lean-burn engine with the SCR catalyst composition described in claim 9 or 10.
Citation Information
Patent Citations
Process for reducing nitrogen oxide with ammonia by means of accelerated zeolite catalyst
JP1990293021A
Metal-promoted hydrothermally stable zeolite beta for nox reduction
JP2004536756A
Novel iron-containing aluminosilicate zeolite, and method for producing and using the same.
JP2010536692A
A zeolite catalyst supported with iron ions, a method for producing the same, and a method for reducing nitrous oxide alone or both nitrous oxide and nitric oxide simultaneously using an ammonia reducing agent with the catalyst.
JP2012521288A
Novel iron-containing aluminosilicate zeolites and methods of making and using same
US20090048095A1