Method for producing a mixed oxide-based carrier and method for further processing the carrier into a catalyst for producing alkyl methacrylate.

The novel method for producing a mixed oxide-based catalyst addresses catalyst instability and by-product issues by employing controlled manufacturing processes, resulting in a stable, high-purity catalyst with reduced noble metal loss and improved selectivity for direct oxidative esterification.

JP7848790B2Active Publication Date: 2026-04-21ROHM GMBH
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
ROHM GMBH
Filing Date
2021-07-01
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing catalysts for direct oxidative esterification of aldehydes to carboxylic acid esters, such as methyl methacrylate, suffer from issues like the formation of difficult-to-separate by-products, catalyst instability, and the need for continuous lead supply, leading to high separation costs and environmental contamination.

Method used

A novel method for producing a mixed oxide-based carrier and catalyst involves controlled processes including spray-drying, calcination, and classification to achieve a stable, high-purity catalyst with reduced fine powder content and minimized noble metal loss, using elements like silicon, aluminum, and magnesium oxides, and incorporating a protective metal salt layer to maintain catalyst integrity.

Benefits of technology

The method results in a catalyst with enhanced mechanical and chemical stability, reduced by-product formation, and improved selectivity, maintaining high activity over long-term operation with minimal noble metal loss and reduced environmental impact.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a novel method for producing an improved support material suitable as a substrate for a catalyst for carrying out direct oxidative esterification. Generally, the catalyst is used for the direct reaction of an aldehyde with an alcohol in the presence of an oxygen-containing gas to produce the corresponding ester, thereby making it possible, for example, to convert (meth)acrolein into methyl (meth)acrylate. The catalyst used for this purpose according to the invention is particularly characterized by high mechanical and chemical stability, as well as good catalytic performance over very long periods of time. This applies in particular to improved catalyst life, activity, and selectivity compared to prior art catalysts.
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Description

Technical Field

[0001] The present invention relates to a novel method for producing an improved support material suitable as a substrate for a catalyst for carrying out direct oxidative esterification. Generally, the catalyst is used for the production of the corresponding ester by the direct reaction of an aldehyde and an alcohol in the presence of an oxygen-containing gas, whereby, for example, (meth)acrolein can be converted to methyl (meth)acrylate.

[0002] The catalyst used according to the present invention is characterized in that, in addition to having high mechanical and chemical stability, it also has good catalyst performance over a very long period. This particularly corresponds to an improvement in the catalyst life, activity and selectivity with respect to prior art catalysts.

[0003] A special feature of this novel catalyst according to the present invention is that its catalyst performance can be significantly improved by the drying time and the storage time between process steps up to calcination. When the catalyst according to the present invention is used, the activity of the reaction becomes clearly more stable over long-term operation.

[0004] The starting silicon dioxide, aluminum oxide and magnesium oxide-based mixed oxide-based support material and the catalyst obtained from this material further have a particle size distribution with a significantly reduced amount of fine powder by classification. As a result, as an important aspect, it is possible to suppress and significantly reduce the formation of azeotropic mixtures that are difficult to separate and contain by-products, products or starting materials whose boiling points are close to the target ester, especially methyl methacrylate.

[0005] Therefore, with this novel type of catalyst, it is possible to obtain a much higher purity and quality of MMA than when using the catalysts described hitherto according to the prior art.

[0006] Prior Art The production of carboxylic acid esters by the catalytic oxidative esterification of aldehydes is widely described in the prior art.

[0007] For example, this method makes it possible to produce methyl methacrylate very efficiently from methacrolein (MAL) and methanol. In particular, U.S. Patents 5,969,178 and 7,012,039 describe a method for continuously producing MMA from isobutene or tert-butanol. This method has the following steps: 1) oxidizing isobutene or tert-butanol to methacrolein, and 2) directly oxidizing and esterifying MAL with methanol using a Pd-Pb catalyst on an oxide-based support to produce MMA. Basically, the conversion rate and selectivity are high, but because there is a continuous slight loss of lead ions in the catalyst, a constant supply of lead components is necessary for continuous operation. Post-treatment and removal of lead-containing wastewater requires high technical costs, which ultimately contributes to critical heavy metal-containing waste and wastewater that must be treated individually at ongoing high costs.

[0008] European Patent Application Publication No. 2210664 discloses a catalyst having nickel oxide and gold nanoparticles in the form of a so-called eggshell structure in the outer region, on a support composed of silicon dioxide, aluminum oxide, and basic elements, particularly alkali metals or alkaline earth metals. In this case, nickel oxide is enriched on the surface but is also present in low concentrations in the deeper layers of the catalyst particles. Such catalysts exhibit excellent activity and selectivity. However, catalysts produced according to the manufacturing method of the invention in said application are relatively abrasive and unstable. When these catalysts are used experimentally, a relatively large amount of methyl isobutyrate, a formal hydrogenation product of MMA, is also present, which increases the separation cost and energy consumption when isolating the product.

[0009] The specific manufacturing methods for generating these eggshell structures, as well as the use of critical nickel salts in catalyst production, impose special requirements not only on industrial equipment but also on the handling of fine nickel-containing dust that inevitably occurs during process steps such as drying and calcination in catalyst production. Here again, it is explained that achieving high activity and selectivity over the long term requires not only gold nanoparticles but also nickel as a doping component, as well as a specific anisotropic heterogeneous distribution of gold and dopants.

[0010] European Patent Application Publication No. 3244996 discloses a similar catalyst system, in which cobalt oxide is used as a doping element alongside gold, instead of nickel oxide. A mixed oxide support is also used here, and overall better results are achieved than in European Patent Application Publication No. 2210664, although trace amounts of methyl isobutyrate, a byproduct of hydrogenated MMA, are still formed. The influence of various catalyst particle sizes on byproduct formation and the problem of removing fine catalyst particles during continuous reaction operations are not discussed at all. Neither this publication nor any other publications describe any important manufacturing steps or conditions that significantly affect catalyst performance under reaction conditions.

[0011] U.S. Patent No. 7,326,806, U.S. Patent Publication No. 2013 / 0172599, and U.S. Patent No. 9,480,973 investigate and optimize the composition of mixed oxide supports and their effects on hydrolysis stability and wear, but only laboratory-scale experiments are reported. Parameters related to spray drying, calcination, and classification, which are important on an industrial scale, and consequently the resulting particle size distribution, are not discussed. As is known to those skilled in the art, particle size distribution, particularly the fineness of the catalyst, has a significant impact on the selection of reactors and filtration systems in order to prevent the loss of catalysts and, consequently, metal active components during operation. Contamination of treated wastewater with metals necessitates technical measures to protect humans and the environment, and these measures, along with the potential loss of precious metals, can be costly.

[0012] The U.S. Reissue Patent No. 38,283 describes and discusses the original composition of the mixed oxide support system discussed and adapted in the aforementioned document, resulting in good hydrolysis stability and stability against organic acids. However, the same points as in the aforementioned document are missing here as well.

[0013] Furthermore, none of the systems, methods, and catalysts described in the prior art describe, or do not describe, the formation of critical, and especially hydrogenated, by-products that significantly affect the isolation of market-standard quality alkyl methacrylate, particularly MMA, or they describe them inadequately. Such critical by-products, which require considerable equipment costs and energy to separate from MMA, are methyl isobutyrate, also known as methyl isobutyrate ester. This by-product is the corresponding saturated hydrocarbon of unsaturated compounds produced in the process, such as the hydrogenation products of alkyl methacrylate, and has very similar boiling points, making its removal by distillation extremely costly and often impossible without yield reduction. This component is produced in many standard industrial methyl methacrylate processes and is ultimately present in commercially available MMA products, such as those used in the production of PMMA, but at concentrations much lower than 500 ppm, and usually less than 100 ppm.

[0014] A common feature of all catalysts and mixed oxide support systems described in the prior art is that they undergo one or more drying steps and at least one calcination during the manufacturing process, while removing the water and optionally salts, such as nitrates or acetates, used in the reaction. Because the literature is limited to laboratory examples, parameters such as drying time and the resulting residual moisture have not been studied or reported under differentiated conditions. However, Ma et al.'s "Heterogeneous gold catalysts and catalysis" reports that catalysts using gold as the noble metal component frequently experience sintering problems, especially in wet conditions, and that the increase in nanoparticle size significantly reduces catalytic activity. Therefore, the drying and calcination process steps, in particular, are extremely important for active catalysts that have long-term stability, in terms of their duration and the time intervals between the application of the active (noble) metal component to the support material.

[0015] In the reproducibility of methods or catalysts described in the prior art, it has been found that the moisture content in the intermediate stages, the residence times of various individual process steps, and especially the storage time between individual process steps, are essential for the reproducible production of catalysts or base support materials manufactured in batches using multiple sub-steps. These relationships are fundamentally not described in the prior art.

[0016] In summary, prior art describes various catalysts for direct oxidative esterification (DOE), such as those used to react unsaturated aldehydes like acrolein and methacrolein with alcohols to obtain their respective carboxylic acid esters. However, the generation of by-products, the influence of industrially manufactured support materials on these by-products, and the overall handling of the catalyst during operation have not been adequately discussed.

[0017] assignment The object of the present invention was fundamentally to develop a novel method for industrially producing mixed oxide carriers and catalysts based on said carriers and coated with active metal-containing components, wherein the resulting catalysts are suitable for the direct oxidative esterification of aldehydes to carboxylic acid esters. Here, it is desirable that the mixed oxide carrier itself and the catalyst produced based on said carrier exhibit high mechanical and chemical stability, produce fewer by-products overall than those of the prior art, and at the same time be easier to handle during filtration under reaction conditions.

[0018] In particular, there was a need for this method to be suitable for the oxidative esterification of methacrolein to alkyl methacrylate, especially MMA.

[0019] A particularly important partial aspect of the problem setting that underlies the present invention is to efficiently use (noble) metal components and achieve a reduction in their use, and according to the present invention, (noble) metal components are preferably precipitated in a high proportion with respect to catalyst fine particles. These catalyst fine particles lead to an increase in the formation of secondary components. Furthermore, when the catalyst is used in long-term operation, the majority of the fine particles as catalyst emissions are lost by filtration in the simplest case.

[0020] In this context, A further objective of the present invention was to provide a catalyst material in which the tendency for sintering or elution of noble metal components is significantly reduced. This is not limited to, for example, the consumption and use of catalysts in the direct oxidative esterification of (meth)acrolein.

[0021] In particular, suppressing the sintering and elution of metal compounds is a clear challenge in the production of silicon oxide-based carrier materials and impregnated catalysts based on these carrier materials. If this is not adequately controlled and not carried out by appropriate means according to the present invention, it can lead to partial loss of the desired distribution structure of active components in the catalyst material or the formation of a low-activity catalyst.

[0022] In particular, adhering to the storage and manufacturing times for each stage of production according to a(i)-(iii) and b(i)-b(vi), as well as the standing time of intermediate products between each stage, is important for obtaining an improved catalyst and therefore constitutes a further objective of the present invention. This defines the objective of obtaining stable catalytic activity throughout the entire lifecycle of the catalyst in use.

[0023] A particularly important aspect of the problem setting was to provide a novel method that reduces the formation of by-products, particularly in the conversion from aldehydes to carboxylic acid esters, and thereby enables high selectivity. For example, in the case of MMA synthesis, such a by-product is methyl isobutyrate, which is the saturated or hydrogenated form of MMA.

[0024] Further problems, which are not explicitly mentioned, may become apparent from the detailed description of the invention, the examples, the claims or the overall context of the present invention.

[0025] Solution These problems are solved by providing a novel method for producing a carrier material and an oxidation esterification catalyst based on the carrier material. Here, this novel method has two partial methods: a) the production of the carrier and b) the production of the catalyst. In particular, this novel method is characterized by the following aspects of these two partial methods a) and b): In partial method a), an oxide-based carrier is produced. In this case, the resulting carrier has one or more oxides of at least one or a plurality of elements selected from silicon, aluminum, one or more alkaline earth metals, titanium, zirconium, hafnium, vanadium, niobium, tantalum, yttrium and / or lanthanum.

[0026] Furthermore, partial method a) includes the following process steps: (i) A process step of reacting one or more compounds selected from silicon compounds, aluminum compounds, alkaline earth metal compounds, titanium compounds, zirconium compounds, hafnium compounds, vanadium compounds, niobium compounds, tantalum compounds, yttrium compounds and / or lanthanum compounds at a temperature T1 < 100 °C. In this reaction, a suspension is obtained.

[0027] (ii) A process step of spray-drying the suspension obtained in process step (i) at a temperature T2 above 110 °C to obtain a solid material. This solid material contains 0.1 - 20% by weight of water and 0.1 - 35% by weight of anions of one or more Bronsted acids.

[0028] (iii) A process step of calcining the solid material obtained in (ii) at a temperature T3 of 300 - 800 °C. Thereby, a second solid material containing 0.01 - 5% by weight of water and 0.01 - 0.5% by weight of anions of Bronsted acids is obtained.

[0029] (iv) A process step in which the carrier powder obtained in any of the carrier steps (i) to (iii), preferably in carrier step (iii), is subjected to a classification step.

[0030] Partial method b) for producing a catalyst from the oxide-based support material obtained in partial method a) includes, in particular, the following process steps: (i)a) A process step of reacting the carrier material obtained in (i)a) with a water-soluble precious metal salt.

[0031] (ii) A process step of adding a further soluble metal salt simultaneously with or after process step b(i).

[0032] (iii) A process step in which the impregnated carrier is separated from the mother liquor or supernatant obtained in process step b(ii), and then washed. This yields a washed impregnated carrier containing 1.0 to 50% by weight of water.

[0033] (iv) A process step of drying the impregnated carrier at a temperature T4 of 30 to 250°C for 0.1 to 40 hours. This yields a dried impregnated carrier containing only 0.1 to 10% by weight of water. Drying can be carried out, for example, using a paddle dryer or tray dryer. Drying can be carried out in batches or continuously.

[0034] A process step in which the dried impregnated support obtained in (v) and (iv) is calcined at a temperature T5 of 250 to 700°C for a residence time of 0.1 to 5 hours. Pore volume 0.2 to 2.0 mL / g, pore diameter 3 to 12 nm, and BET surface area 100 to 300 m². 2 A catalyst containing / g is obtained.

[0035] Preferred embodiments are defined below with respect to individual process steps. Here, unless otherwise specified, these individual preferred features can be carried out separately, together, or synchronously, i.e., simultaneously. It should be noted that not only the process steps listed here as essential produce synergistic effects in the production of catalysts or carrier materials, and preferred or optional embodiments can also produce further such effects.

[0036] With regard to the process steps of partial method a), the following optional or preferred embodiments are particularly mentioned: (i) The reaction to obtain the suspension is preferably carried out in batch form. More preferably, the oxide-based support to be produced comprises silicon oxide, aluminum oxide, and at least one alkaline earth metal oxide, particularly preferably magnesium oxide. Alternatively or additionally, the support to be produced comprises at least 2% by weight of titanium dioxide, where the support may consist entirely of titanium dioxide. In process step a(i), a corresponding non-oxide compound is preferably used to obtain these oxides. The usable compounds are those that are particularly partially soluble or completely soluble under operating conditions and form a precipitate together after the reaction. Those skilled in the art know of these soluble compounds, and preferably salts that are decomposable in calcination step (iii), thereby allowing the desired oxide to be formed with little to no residue. Nitrates and acetates satisfy this condition, and many other anions of the corresponding Brønsted acids also satisfy this criterion.

[0037] (ii) The suspension obtained in process step (i) is preferably spray-dried in a continuous or semi-batch manner. In spray drying, the temperature and volumetric flow rate of the drying gas are preferably adjusted so that the load drying gas at the outlet of the spray tower is 10 to 40°C, particularly preferably 20 to 30°C, higher than the condensation temperature of water. The spraying of the suspension obtained in a)(i) can be carried out using nozzles or atomizers known to those skilled in the art, with single-phase nozzles and rotary atomizers being particularly preferred.

[0038] The calcination of the solid material obtained in (iii)(ii) is preferably carried out in a continuous or semi-batch manner, and particularly preferably in a rotating tube. Alternatively, the calcination may be carried out in a batch manner, in which case a tray dryer or shaft furnace can be used. Particularly preferably, the time between step a(ii) and the spray drying and calcination in a(iii) is 5 days or less. Particularly preferably, the calcination is carried out in the presence of an oxygen-containing gas. This allows for more efficient removal of the generated NO2.

[0039] (iv) It is clearly preferable to carry out any classification step. Here, it is particularly preferable that the solid material obtained in process step a(iii) is treated such that the proportion of particles having a diameter of 20 μm or less is reduced.

[0040] Partial method b) for producing a catalyst from the oxide-based support material obtained in partial method a) includes, in particular, the following process steps: (i)a) A process step in which the reaction between the carrier material obtained in a) and the water-soluble precious metal salt is preferably carried out in a batch manner. In process step b(i), it is particularly preferable to first prepare an aqueous suspension of the oxide-based carrier obtained in a. and mix this with the water-soluble precious metal salt.Optionally, the addition of the water-soluble precious metal salt can be done while the suspension is being prepared, but it is preferable to do so after the suspension has been prepared.

[0041] (ii) A process step of further adding a basic aqueous solution to the mixture, preferably after adding a further or additional water-soluble metal salt.

[0042] (iii) Preferably, a process step of post-treating the mother liquor separated in process step b(iii) so that any remaining precious metal salts and other metal salts are recovered.

[0043] (iv) A process step of drying the impregnated carrier, preferably at an absolute pressure of 0.01 to 5 bar and / or in the presence of an inert drying gas. Particularly preferably, the time between step b(iv) and the washing or burning in b(v) is 4 days or less.

[0044] A process step in which the dried impregnated carrier obtained in (v)(iv) is optionally calcined in a batch manner. However, preferably this is carried out in a continuous or semi-batch manner in a rotating tube. Particularly preferably, the calcination is carried out in the presence of an oxygen-containing gas. This allows for more efficient removal of the generated NO2. Preferably, the pore volume is 0.2 to 0.7 mL / g, the pore diameter is 3 to 9 nm, and the BET surface area is 180 to 250 m². 2 A catalyst containing / g is obtained.

[0045] Preferably, the support and the catalyst obtained from the support have a diameter of 10 to 200 μm. Such catalysts can be used well in slurry reactors.

[0046] The particle size of the silicon dioxide-based mixed oxide carrier according to features a(i) to a(iii) can be freely selected and obtained in various orders depending on the selected manufacturing method and the equipment used in the method. By varying the parameters in the spray drying and calcination steps, it is possible to adjust the order, and even other physical properties, such as BET surface area, pore volume, and pore diameter.

[0047] In principle, there is a correlation between particle size, spherical and geometric shape, and the subsequent use of the catalyst under reaction conditions.

[0048] The present invention makes it possible to produce powdered carriers and catalysts, which then exist as suspensions in a stirred reactor system and are used as slurries in a reaction medium. In this case, the carriers and catalysts produced from the carriers achieve dimensions on the order of 1 to 300 μm, and preferably, according to the present invention, the fine powder content is reduced and largely removed in the classification step a(iv) after the production step a(iii).

[0049] Therefore, depending on the type of classification selected, the fine and even coarse content of the powdered carrier is also affected, and this coarse content is used in catalyst production b(i) to b(vi) after classification. Preferred methods for influencing particle size are air classification and sieving, as well as combinations thereof, where further methods for achieving the aforementioned task of defining various particle sizes are known to those skilled in the art. Classification adjusts the particle sizes of the material obtained after spray drying to 10 to 200 μm, and these values ​​relate to the result that more than 95% by weight of the obtained powdered material is within this particle size range. Particularly preferred is the classification in step a(iv), where, as a result, more than 95% by weight of the obtained powdered material has various particle sizes of 20 to 150 μm. The silicon dioxide-based material obtained by a(i) to (iv) is spherical or elliptical after spray drying and classification. Here, the sphericity has an average value of 0.85 or higher, preferably 0.90 or higher, and particularly preferably 0.93 or higher.

[0050] Here, sphericity (or spherical shape) refers to the ratio of the actual circumference to the circumference of circles with the same area. The result is a value between 0 and 1. The smaller the value, the more irregular the particle shape. This is a consequence of the fact that irregular particle shapes manifest as an increase in circumference. Since circles with the same area have the smallest circumference relative to their projected area, the comparison is, in principle, made with circles of the same area.

[0051] However, in an alternative embodiment, the method of the present invention produces a catalyst for a so-called fixed-bed reactor. Such a catalyst or the carrier material on which the catalyst is based has a much larger diameter, particularly preferably 0.1 to 100 mm. Therefore, optionally, for the production of such a catalyst, in process step a(v), the solid material obtained in any of process steps a(ii), a(iii), or a(iv), preferably in process step a(iv), is subjected to a molding step to obtain a molded body with a diameter of 0.1 to 100 mm. If process step a(v) is performed after either process step a(ii) or a(iii), then only further process steps a(iii) and a(iv) or a(iv) are performed thereafter.

[0052] In a further embodiment, the mixed oxide material obtained by a(iii), or optionally the calcined and classified material obtained by a(iv), is subjected to a molding step.

[0053] Specific examples of the shapes of the resulting materials include spherical, elliptical, tablet-shaped, cylindrical, annular, needle-shaped, hollow cylindrical, and honeycomb-shaped compressed bodies with dimensions ranging from 300 μm to several centimeters. How such molding processes are carried out industrially is known to those skilled in the art. In the simplest case, powdered material is loaded into an extruder as a paste with or without processing aids and extruded under pressure through a die that determines the shape.

[0054] When used as a catalyst or catalyst support, the shape of the silicon dioxide-based material in this embodiment can be appropriately changed depending on the reaction system used. When the silicon dioxide-based material is used, for example, in a fixed-bed reaction, it preferably has a hollow cylindrical or honeycomb shape that provides low pressure loss.

[0055] Furthermore, a water-soluble Brønsted or Lewis acid may be added before, during, or after the reaction of the oxide-based support in process steps b)(i) and (ii). This is preferably an aqueous solution of a metal salt having an oxidation state of +II or +III, such as aluminum nitrate or iron(III) nitrate. This allows for the formation of a thin (coating) protective layer around the shell containing the active ingredients, thereby further minimizing the loss of noble metals and, consequently, the loss of catalytic activity. When a suitable metal salt is added, the present magnesium oxide elutes from the outer layer of the oxide-based support through an acid-base reaction. The resulting defects can be filled by the added metal salt, and the catalyst material can similarly transition to the oxidized form during calcination, thereby maintaining the chemical and physical stability of the support or catalyst. Preferably, the choice of metal salt further improves the chemical and physical stability, for example, against wear. During the production of the catalyst, noble metals cannot be deposited in these magnesium oxide-free areas, resulting in a noble metal-free outer layer, which functions as a (coating) protective layer for the catalyst. As described above, this minimizes the loss of precious metals and, consequently, the loss of catalytic activity. To avoid ambiguity, it should be stated that this further metal salt in the form of a Lewis acid is clearly not the metal salt obtained in process step b)(ii).

[0056] In a further preferred embodiment, the above-described shell structure, characterized by a very low proportion of noble metals, can also be obtained by adding a metal-free acidic reactive compound. In the simplest case, this may be an aqueous solution of a Brønsted acid, such as nitric acid. In this case, a basic alkali metal or alkaline earth metal oxide, such as magnesium oxide, is eluted from the shell in a (partially) measurable state, but is not exchanged for metal ions as in the above case.

[0057] To prevent a decrease in catalytic activity due to limitations in mass transfer or the diffusion of reactants and products, the resulting protective coating, which occurs in both the case of metal salts and Brønsted acids, preferably has a thickness of 0.01 to 10 μm, and particularly preferably 0.1 to 5 μm.

[0058] The drying time for the impregnated carrier is 4 days or less, preferably 2 days or less, and particularly preferably 1 day or less, as described in b)(iv), and the residual moisture content of the dried carrier material is 5% by weight or less, preferably 3% by weight or less, and particularly preferably 2.5% by weight or less. The necessary conditions to be achieved are that, during calcination, the amount of water remaining in the dried impregnated carrier material does not have the potential to damage the calcination unit, such as the rotating tube, or that water condensation does not occur in the calcination unit or its off-gas system. The reduction in drying time has the advantage of shortening the sintering process time for gold that is initially only weakly fixed, where this sintering process is accelerated at high temperatures, particularly common during drying, in the presence of water and salts, such as chlorides and nitrates. This sintering process step increases the average particle size, which leads to a decrease in catalytic performance.

[0059] In addition to the method for producing the catalyst described according to the present invention, the use of the catalyst for the continuous production of carboxylic acid esters from aldehydes and alcohols in the liquid phase in the presence of an oxygen-containing gas is also part of the present invention. Here, the catalyst is heterogeneously suspended in the reaction matrix.

[0060] This reaction is preferably carried out at a temperature of 20–120°C, a pH of 5.5–9, and a pressure of 1–20 bar. Particularly preferably, the reaction is carried out so that the reaction solution contains 2–10% by weight of water.

[0061] In an alternative embodiment of the present invention, the use of the catalyst produced by the present invention for the continuous production of carboxylic acid esters from aldehydes and alcohols in the presence of an oxygen-containing gas is carried out using the catalyst in a fixed bed.

[0062] Furthermore, it should be noted that the catalyst according to the present invention can be used not only for direct oxidative esterification but also for other oxidation reactions, such as the production of carboxylic acids from aldehydes in the presence of water and optionally a solvent.

[0063] In addition to the method for producing the catalyst according to the present invention and the use of the catalyst, the catalyst itself, which can be produced by the present invention, is also part of the present invention.

[0064] Examples: Example 1a - Production of carrier and spray drying 434 kg of silica sol (Koestrosol 1530, primary particles 15 nm, 30% by weight of SiO2 in H2O) was charged into an enamel-lined reactor and cooled to 10°C under vigorous stirring. The stabilization with base (sodium oxide) was stopped by adjusting the pH of this silica sol dispersion to 2 with 60% nitric acid.

[0065] A mixture of 81.2 kg of anhydrous aluminum nitrate, 55.6 kg of magnesium nitrate hexahydrate, and 108.9 kg of demineralized water was added to a second enamel-coated container. This mixture, upon dissolution under stirring, decreased in temperature and had a pH of slightly less than 2. After complete dissolution, 3.2 kg of 60% nitric acid was added.

[0066] Subsequently, this metal solution was added to the silica sol dispersion under controlled conditions over 30 minutes. After the addition was complete, the mixture was heated to 50°C, and the resulting dispersion was gelled over 4 hours, with a pH of 1 at the end of the process. The resulting viscosity was 10 mPa·s or less.

[0067] This suspension (approximately 30% by weight solids) was pumped to a pilot spray tower with a diameter of approximately 1.8 m at a temperature of 50°C and a supply rate of 20 kg / h, where it was sprayed at 10,000 rpm by an atomizer disc to obtain spherical material. The supplied dry gas was adjusted to 180°C so that the outflowing low-temperature dry gas had a temperature of 120°C. The obtained white spherical material had a residual moisture content of 10% by weight. The residual moisture content was determined by drying at 105°C until a constant weight was achieved.

[0068] The amount of nitrate used per kilogram of material was slightly less than 0.5 kg, which corresponds to approximately 30% by weight of the spray-dried material.

[0069] Example 1b - Baking The spray-dried material from Example 1a was calcined at 650°C under air in a rotating tubular continuous unit. The residence time was adjusted by optimizing the internal components and tilt angle so that the material obtained after calcination had a nitrate content of 1000 ppm or less. The residual nitrate amount was measured by ion chromatography equipped with a conductivity detector, which relates to the amount of soluble nitrate in the desalinated water.

[0070] The nitrate content was quantified by dual measurement using ion chromatography with a residence time of 45 minutes at a tilt angle of 0.5 degrees, and was found to be 936 ppm. The moisture content of the material immediately after calcination was measured in the same manner as in Example 1a and was found to be 1.3% by weight.

[0071] When the released nitrogen oxides were calculated as NO2, the amount was 0.3 kg / kg of material, and this was converted to DeNO x It was captured by the scrubber.

[0072] Example 1c - Classification First, agglomerates larger than 150 μm were separated from the material obtained in Example 1b by coarse sieving. These agglomerates are formed by deposits inside the rotating pipe or spray tower. Next, fine particles were removed by air classification to establish the desired particle size range.

[0073] In the final obtained white spherical carrier material, D10 was 36 μm, D50 was 70 μm, D90 was 113 μm, the fine particle content of 25 μm or less was 2.5 volume% or less, the coarse particle content of 150 μm or more was 0.1 volume% or less, the average sphericity was 0.8 or higher, and the average symmetry was 0.85 or higher. Sphericity and symmetry were determined by dynamic image evaluation (Retsch HORIBA Camsizer X2) as deviations from the ideal circle of the two-dimensional projected particle surface, with a value of 1 corresponding to a perfect sphere or a circle in the two-dimensional projection. BET was 140 m 2 The pore volume was 0.34 mL / g and the pore diameter was 8.1 nm. The support material was amorphous, and each component was randomly distributed, with SiO2 at 86.8 wt%, MgO at 5.8 wt%, and Al2O3 at 7.4 wt%.

[0074] The yield in steps 1a to 1c was over 80%.

[0075] Comparative Example 1a - Carrier manufacturing and catalyst synthesis with reduced residence time, and batch testing The carrier was prepared on a 10 kg scale in the same manner as in Examples 1a to 1c, except that the residence time during calcination was shortened to 15 minutes and the nitrate content in the carrier was set to 10,000 ppm.

[0076] 200 mg of the obtained carrier material was suspended in 20 g of demineralized water in a pressure vessel and heated at 180°C for 1 hour. After cooling, the amount of magnesium and silicon lost as an indicator of hydrolysis stability was measured. Compared to the carrier materials of Examples 1a to 1c, this carrier showed four times the amount of magnesium and silicon lost, indicating that the mechanical stability of this carrier material was lower.

[0077] The catalyst was prepared on a 1 kg scale in the same manner as in Example 2a. As the nitrate content in the carrier increased, the amount of washing water increased, resulting in a slightly smaller amount of gold impregnated into the final catalyst. The final gold content was 0.78% by weight.

[0078] 384 mg of catalyst was placed in a steel autoclave equipped with a magnetic stirrer and suspended in a mixture of methacrolein (1.20 g) and methanol (9.48 g). This methanol solution contained 50 ppm of Tempol as a stabilizer. The steel autoclave was then closed, A mixture of air and nitrogen containing 7% by volume of oxygen. The mixture was injected to 30 bar and stirred at 60°C for 2 hours. The mixture was cooled to -10°C, the autoclave was carefully degassed, the suspension was filtered and analyzed by GC. The conversion rate of methacrolein was approximately 61%, and the MMA selectivity was 89%.

[0079] This example revealed that shortening the residence time during carrier calcination and the resulting increase in nitrate content cause problems in catalyst production and the synthesis of MMA from methacrolein and methanol. Furthermore, it was found that, in addition to very pronounced hydrolytic instability critical for long-term use, catalyst performance deteriorates even in short-term production.

[0080] Example 2a - Catalyst production 167 kg of demineralized water was loaded into an enamel kettle equipped with a propeller-type agitator, and 50 kg of the carrier material obtained in Example 1c was added. The subsequent process steps were carried out under isothermal conditions by steam heating of the reactor. Immediately thereafter, a solution of 611 g of anhydrous aluminum nitrate in 10 kg of demineralized water was added. This suspension was heated to 90°C and then aged for 15 minutes. 2845 g of cobalt nitrate hexahydrate was dissolved in 20 kg of demineralized water, weighed and supplied over 10 minutes after the aging was complete, and reacted with the carrier material over 30 minutes.

[0081] In parallel, 12.4 L of NaOH solution was prepared so that the ratio of hydroxide ions to golden acid was 4.75. This NaOH solution was added over 10 minutes, during which the suspension became dark in color.

[0082] After adding the NaOH solution, 1250 g of gold acid solution (gold content 41%) was diluted with 20 kg of desalted water and added to the reaction suspension over 10 minutes, followed by a further stirring for 30 minutes.

[0083] This suspension was cooled to 40°C after the reaction and pumped to a centrifuge equipped with a filter cloth, during which the filtrate was returned until a sufficient filter cake was formed. This filter cake was washed with demineralized water until the conductivity of the filtrate was 100 μS / cm or less, and then dehydrated for 30 minutes. After that, the filter cake had a residual moisture content of slightly less than 30% by weight. First, the filtrate was pumped to a selective ion exchanger to remove residual cobalt, and then the residual gold was adsorbed onto activated carbon. The recovery rate of the two metals after the reaction was 99.5% or higher, as measured by ICP analysis.

[0084] Immediately after dehydration, the filter cake was dried in a paddle dryer at 105°C until the residual moisture content was 2%. This drying process in the paddle dryer was carried out in batches over a period of no more than 8 hours, with the addition of a drying gas, in this case nitrogen.

[0085] Immediately after drying, the dried material was continuously supplied to the rotating pipe described in Example 1b, which was operated at 450°C under air conditions. The residence time was set to 30 minutes.

[0086] The final catalyst consists of a loading of 0.91 wt% gold, 1.10 wt% cobalt, and 2.7 wt% magnesium, with a BET of 236 m³. 2 It had a density of 0.38 mL / g, a pore volume of 0.38 mL / g, and a pore diameter of 4.1 nm.

[0087] Example 2b - Testing of catalysts in continuous direct oxidative esterification In a stainless steel pressure vessel equipped with an EKATO Phasejet and EKATO Combijet agitator, 1 kg of the catalyst obtained in Example 1c was dispersed in methanol / water (95 / 5) to a solid content of 9% in the suspension. This suspension was pressurized to 5 bar absolute pressure under nitrogen at a temperature of 80°C. Methacrolein and methanol were continuously metered and supplied to the feed in a molar ratio of 1:4 to achieve a TEMPOL stabilizer content of 100 ppm. Simultaneously, oxygen was injected into the reactor, resulting in an oxygen concentration of 4 vol% in the off-gas (explosive limit at 7.8 vol% oxygen). The feed rate and, consequently, the residence time were adjusted so that the catalyst loading rate was 10 mol / kg catalyst·h. A solution consisting of 4% NaOH, 5.5% H2O, and 90.5% methanol was added to maintain a constant pH of 7 in the reaction. The reaction was run continuously for 2000 hours in this setup. The average conversion rate of methacrolein was approximately 80%, and the MMA selectivity was 94.5%. Conversion and selectivity were measured using GC-FID. While the MMA selectivity remained unchanged within the measurement accuracy range (±0.5%) during the 2000-hour operating period, the conversion rate changed from an initial value of 82% to 79% in the first 500 hours and remained stable at this level for the remainder of the operating time.

[0088] Example 2c - Modification and testing of catalyst drying time Using the support obtained in Example 1c, a catalyst was prepared on a 1 kg scale in the same manner as in Example 2a, except that the drying time was extended from 8 hours to 20 hours. The residual moisture content after drying was 1%.

[0089] The catalyst test was performed in the same manner as in Example 2b using a small test apparatus suitable for the use of 100 g of catalyst. After 1000 hours of operation, the average conversion rate of methacrolein was 75%, and the MMA selectivity was 94.5%.

[0090] Example 2c shows that extending the drying time compared to Example 2b significantly affects the conversion rate and, consequently, the activity during continuous operation. Therefore, Comparative Example 2a showed a greater loss of initial activity, and in that case, no further deactivation was observed after the initial decrease in the conversion rate.

[0091] Example 2d - Modification and testing of catalyst drying time Using the support obtained in Example 1c, a catalyst was prepared on a 1 kg scale in the same manner as in Example 2a, except that the drying time was extended from 8 hours to 40 hours. The residual moisture content after drying was 0.8%.

[0092] The catalyst test was performed in the same manner as in Example 2b using a small test apparatus suitable for the use of 100 g of catalyst. After 1000 hours of operation, the average conversion rate of methacrolein was 70%, and the MMA selectivity was 94.5%.

[0093] Example 2d shows that extending the drying time compared to Example 2b significantly affects the conversion rate and, consequently, the activity during continuous operation. Therefore, Comparative Example 2a showed a greater loss of initial activity, with minimal deactivation observed after an initial decrease in the conversion rate.

[0094] Comparative Example 2a - Modification of Catalyst Drying Time and Testing Using the support obtained in Example 1c, a catalyst was prepared on a 1 kg scale in the same manner as in Example 2a, except that the drying time was extended from 8 hours to 70 hours. The residual moisture content after drying was 0.8%.

[0095] Catalyst testing was carried out in the same manner as in Example 2b using a small test apparatus suitable for the use of 100 g of catalyst. After 1000 hours of operation, the average conversion rate of methacrolein was 64%, and the MMA selectivity was 92.5%. The conversion rate was unstable, with a decrease in conversion rate exceeding 5% during the period.

[0096] Comparative Example 2a shows that extending the drying time compared to Example 2b significantly affects the conversion rate and, consequently, the activity during continuous operation. The catalyst dried for 70 hours showed a decrease in activity initially, as well as a continuous decrease in activity and conversion rate during further operation.

[0097] Comparative Example 2b - Synthesis and testing of support and catalyst without classification A carrier was prepared on a 10 kg scale according to Examples 1a and 1b, except that the classification step was omitted. This time, there was a higher proportion of fine particles smaller than 25 μm, at 10% by volume. Using this unclassified carrier material, a catalyst was prepared on a 1 kg scale according to Example 2a. The test was carried out according to Example 2c, but the fine particles clogged the sintered metal filter of the reactor, and only 60% of the original discharge amount was achieved, so it had to be stopped in less than 24 hours after start. At this point, the MMA selectivity was 94.5%, and an average methacrolein conversion rate of 85% was obtained.

[0098] This blockage was not adequately resolved by purging with the reaction mixture and nitrogen.

[0099] Comparative Example 2b shows that, when the fine particles are not removed, the reaction proceeds without chemically impairing the conversion rate and selectivity, but continuous operation is impossible due to the impact of the fine particles on the reaction equipment.

[0100] Comparative Example 2c - Synthesis of a catalyst without the formation of an outer protective layer Using the support obtained in Example 1c, a catalyst was prepared on a 1 kg scale in the same manner as in Example 2a, except that the addition of aluminum nitrate was omitted this time.

[0101] Catalyst testing was carried out in the same manner as in Example 2b using a small test apparatus suitable for the use of 100 g of catalyst. After 1000 hours of operation, the average conversion rate of methacrolein was 75%, and the MMA selectivity was 94.3%. The conversion rate was initially unstable, decreasing by slightly less than 5%, but remained stable thereafter. The MMA selectivity was unaffected.

[0102] Comparative Example 2c shows that, compared to Example 2b, while a functional catalyst is obtained when the aluminum salt is added and, consequently, the protective shell is omitted, a decrease in catalytic activity is observed due to the wear of the outer gold and cobalt. Even after the outer active components have worn away, the activity remains constant, but at a lower level. The amount of gold loss was quantified to be 0.10% absolute, and the amount of cobalt loss over the same period was 0.15% absolute.

[0103] Example 3a - Catalyst sieving and batch testing One kilogram of the catalyst prepared in Comparative Example 2b was sieved using various sieves and a stirring tower. To avoid sieve clogging, each sieve was periodically cleaned with compressed air. Sieving was performed in six fractions: [Table 1]

[0104] Each fraction was analyzed for its particle size distribution and gold and cobalt content using laser diffraction and ICP. [Table 2]

[0105] In this invention, the particle size distribution was determined by ISO 13320:2020 particle size analysis - laser diffraction method.

[0106] It is easily understood that the gold and cobalt content increases as the particle size decreases, and in the case of gold, the increase is even greater at a high rate. Therefore, firstly, catalysts based on fine particles adversely affect filtration equipment and, consequently, reaction equipment, and secondly, since these undesirable catalyst particles incorporate large amounts of gold and cobalt at a high rate, it is especially important to remove the fine particles early at the carrier stage. This can reduce the cost of precious metals. Furthermore, removal of the fine particles is necessary to prevent cobalt contained in the fine particles from flowing into wastewater, where these particles could harm human health and the environment through cobalt.

[0107] 384 mg of catalyst from each fraction was placed in a steel autoclave equipped with a magnetic stirrer and suspended in a mixture of methacrolein (1.20 g) and methanol (9.48 g). This methanol solution contained 50 ppm Tempol as a stabilizer. The steel autoclave was then closed, A mixture of air and nitrogen containing 7% by volume of oxygen. The mixture was injected to 30 bar and stirred at 60°C for 2 hours. The mixture was cooled to -10°C, the autoclave was carefully degassed, the suspension was filtered and analyzed by GC. To determine the selectivity of methyl isobutyrate, 1% by weight of sodium formate as a reducing equivalent was further added to the mixture.

[0108] [Table 3]

[0109] Similar to the ICP results, it was found that smaller particles were associated with higher activity and higher selectivity for methyl isobutyrate. To make MMA suitable for optical applications, the amount of methyl isobutyrate in the final product must be kept as low as possible to meet the specifications. Ideally, the methyl isobutyrate content should be well below 1000 ppm. Reducing it through processes such as rectification, distillation, extraction, or hydrolysis is extremely difficult and requires high capital and running costs, making the process uneconomical and / or industrially unprofitable. This also demonstrates that supports that are not properly classified are unsuitable for catalyst production and reaction operations.

[0110] Example 4a - Preparation of an alternative catalyst using PVP and sodium citrate (precolloid formation) 16.7 kg of demineralized water was loaded into an enamel kettle equipped with a propeller-type stirrer, and 5 kg of the carrier material obtained in Example 1c was added. The following steps were carried out under isothermal conditions by steam heating of the reactor. Immediately thereafter, a solution of 61.1 g of anhydrous aluminum nitrate in 1 kg of demineralized water was added. This suspension was heated to 90°C and then aged for 15 minutes. In parallel, 284.5 g of cobalt nitrate hexahydrate was dissolved in 2 kg of demineralized water, weighed and supplied over 10 minutes after the aging was complete, and reacted with the carrier material over 30 minutes.

[0111] In parallel, 1.24 L of NaOH solution was prepared so that the ratio of hydroxide ions to golden acid was 4.75. This NaOH solution was added over 10 minutes, during which the suspension became dark in color.

[0112] In a second enamel vessel equipped with a propeller-type stirrer, 62.5 g of gold acid was diluted with 2 kg of demineralized water, and 65 g of polyvinylpyrrolidone (average molecular weight 8000-10000 g / mol) was added. After stirring for a short time, 62.5 g of sodium citrate was added, and the mixture was heated to 70°C, resulting in the formation of a purple or black colloidal solution within 0.5 hours.

[0113] This colloidal solution was pumped into a carrier suspension, the resulting mixture was passively cooled to room temperature, and then stirred for a further 10 hours.

[0114] Next, this suspension was washed, centrifuged, dried, and calcined in the same manner as in Example 2a. During this calcination, polyvinylpyrrolidone was further removed from the gold nanoparticles by oxidation.

[0115] As a result of stabilization with polyvinylpyrrolidone, it took approximately 24 hours for the gold nanoparticles in the catalytic synthesis filtrate and washing solution to be completely adsorbed onto activated carbon in order to recover the precious metals, which is much longer than in synthesis methods that do not use polyvinylpyrrolidone.

[0116] The final catalyst loads were 0.48% by weight of gold and 1.09% by weight of cobalt.

[0117] Example 4b - Preparation of an alternative catalyst using PVP and sodium citrate (precolloid formation) The synthesis was carried out in the same manner as in Example 4a, except that 195 g of copper nitrate and 156 g of lanthanum nitrate were used instead of cobalt nitrate, and the addition of NaOH solution was omitted. Furthermore, after calcination, the catalyst was converted to the reduced form by adding hydrogen at 100°C for 1 hour.

[0118] The final catalyst loads were 0.48 wt% gold, 1.01 wt% copper, and 0.96 wt% lanthanum. Therefore, while lanthanum deposition was complete, reaching 99% of the theoretical value, copper deposition was only 58% of the theoretical value. Since copper nitrate is highly toxic to aquatic organisms, in this case, costly copper recovery is necessary, similar to the removal of cobalt.

[0119] Example 4c - Testing of catalysts in continuous direct oxidative esterification The catalyst obtained in Example 4a was tested in the same manner as in Example 2b using a small test apparatus suitable for using 100 g of catalyst. After 1000 hours of operation, the average conversion rate of methacrolein was 45.8%, and the MMA selectivity was 91.0%.

[0120] Example 4d - Testing of catalysts in continuous direct oxidative esterification The catalyst obtained in Example 4a was tested in the same manner as in Example 2b using a small test apparatus suitable for the use of 100 g of catalyst. After 1000 hours of operation, the average conversion rate of methacrolein was 47.3%, and the MMA selectivity was 91.5%.

Claims

1. A method for producing a catalyst for oxidation esterification, comprising two parts: a) production of a carrier and b) production of a catalyst, In partial method a), an oxide-based support is produced, the support having at least one oxide of silicon, aluminum, one or more alkaline earth metals, titanium, zirconium, hafnium, vanadium, niobium, tantalum, yttrium and / or lanthanum, and partial method a) is, (i) One or more compounds selected from silicon compounds, aluminum compounds, alkaline earth metal compounds, titanium compounds, zirconium compounds, hafnium compounds, vanadium compounds, niobium compounds, tantalum compounds, yttrium compounds and / or lanthanum compounds at a temperature T 1 <A process step of reacting at 100°C to obtain a suspension, (ii) The suspension obtained in (i) above is heated to a temperature T > 110°C. 2 A process step of spray-drying to obtain a solid material containing 0.1 to 20% by weight of water and 0.1 to 35% by weight of anions of one or more Brønsted acids, (iii) The solid material obtained in (ii) above is heated to a temperature T of 300 to 800°C 3 A process step of baking to obtain a second solid material containing 0.01 to 5% by weight of water and 0.01 to 0.5% by weight of anion of Brønsted acid, (iv) A process step in which the second solid material obtained in (iii) above is subjected to a classification step to reduce the proportion of particles having a diameter of 20 μm or less. Includes, In partial method b), the oxide-based support obtained in partial method a is converted into a catalyst, and in partial method b), (i) A process step of reacting the carrier material obtained in a) above with a water-soluble precious metal salt, (ii) A process step of adding a further soluble metal salt simultaneously or thereafter, (iii) A process step of separating the impregnated carrier from the mother liquor obtained in (iii), then washing it, wherein the washed impregnated carrier contains 1.0 to 50% by weight of water, (iv) The impregnated carrier is heated to a temperature of 30 to 250°C T 4 A process step of drying for 0.1 to 40 hours to obtain a dried impregnated carrier containing 0.1 to 10% by weight of water, (v) The dried impregnated carrier obtained in (iv) above is subjected to a temperature T of 250 to 700°C. 5 Then, after calcination with a residence time of 0.1 to 5 hours, the pore volume is 0.2 to 2.0 mL / g, the pore diameter is 3 to 12 nm, and the BET surface area is 100 to 300 m². 2 A process step to obtain a catalyst having / g A method comprising the above process step a(iii) being carried out in a rotating tube in a continuous or semi-batch manner.

2. The method according to claim 1, wherein the process steps a(i), b(i), and b(ii) are performed in a batch manner, and the process steps a(ii) and a(iii) are performed in a continuous or semi-batch manner.

3. The method according to claim 1 or 2, wherein a basic aqueous solution is further added to the mixture in or after process step b(ii).

4. The method according to any one of claims 1 to 3, wherein the mother liquor separated in process step b(iii) is post-treated so as to recover any remaining precious metal salts and other metal salts.

5. The method according to any one of claims 1 to 4, wherein the drying in process step b(iv) is carried out at an absolute pressure of 0.01 to 5 bar and / or in the presence of an inert drying gas.

6. The method according to claim 1, wherein the calcination in process step b(v) is performed in a batch manner.

7. The method according to claim 1, wherein the calcination of process step b(v) is carried out in a rotating tube in a continuous or semi-batch manner.

8. The method according to any one of claims 1 to 7, wherein in process step b(i), an aqueous suspension of the oxide-based support obtained in a. is prepared, and the aqueous suspension is mixed with the water-soluble precious metal salt.

9. The method according to any one of claims 1 to 8, wherein the oxide-based carrier comprises silicon oxide, aluminum oxide, and at least one alkaline earth metal oxide.

10. The method according to any one of claims 1 to 9, wherein in process step a(v), the solid material obtained in any of process steps a(ii), a(iii), or a(iv) is subjected to a molding step so as to obtain a molded body having a diameter of 0.1 to 100 mm.

11. The method according to any one of claims 1 to 10, wherein the time between step a(ii) and the spray drying or baking in a(iii) is 5 days or less.

12. The method according to any one of claims 1 to 11, wherein the time between the washing or burning in step b(iv) and b(v) is four days or less.

13. The method according to any one of claims 1 to 11, wherein a water-soluble Brønsted acid or Lewis acid is added before, during, or after the reaction of the oxide-based support in process step b) (i) and (ii).

14. Use of a catalyst produced by any one of claims 1 to 13 for the continuous production of carboxylic acid esters from aldehydes and alcohols in the liquid phase in the presence of an oxygen-containing gas, wherein the catalyst is heterogeneously suspended in a reaction matrix.

15. The use according to claim 14, wherein the reaction is carried out at a temperature of 20 to 120°C, a pH of 5.5 to 9, and a pressure of 1 to 20 bar, and the reaction is carried out such that the reaction solution contains 2 to 10% by weight of water.

16. Use of a catalyst produced by the method of claim 10 for the continuous production of carboxylic acid esters from aldehydes and alcohols in the liquid phase in the presence of an oxygen-containing gas, wherein the catalyst is used as a fixed bed.

17. A catalyst, characterized in that it can be manufactured by the method described in any one of claims 1 to 13.

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