Treatment of purified 2,5-furandicarboxylic acid with organic acids and heat
A method combining hydrogenation, oxidation, recrystallization, and hydrolysis with a heat treatment step improves FDCA purity and mechanical properties, addressing impurity issues and enhancing polymerization efficiency.
Patent Information
- Application Number
- JP2022537720
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-12-20
- Filing Date
- 2020-12-18
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2040-12-18
AI Technical Summary
Existing methods for producing 2,5-furandicarboxylic acid (FDCA) suffer from insufficient purity, particularly with respect to FCA and FDCA-Me impurities, and result in undesirable mechanical and physical properties such as plate-like particles with high fines content, agglomeration, and poor handling characteristics, which affect polymerization reactions.
A process involving hydrogenation, oxidation, recrystallization, and hydrolysis of dialkyl esters, followed by a heat treatment step with a specific solvent composition at elevated temperatures to achieve a controlled dissolution of FDCA, resulting in spherical particles with improved mechanical and physical properties.
The process enhances purity and mechanical properties of FDCA, enabling easier handling and more efficient polymerization, reduces waste, and operates safely with minimal energy and non-corrosive materials, suitable for continuous or batch processes.
Smart Images

Figure 0007797390000013 
Figure 0007797390000014 
Figure 0007797390000015
Abstract
Description
[Technical Field]
[0001] The present invention relates to a process for the preparation of carboxylic compositions, the respective carboxylic compositions and starting materials for the preparation of polyalkylene furanoates. [Background technology]
[0002] 2,5-Furandicarboxylic acid (FDCA) is known in the art to be a highly promising building block for replacing petroleum-based monomers in the production of high-performance polymers. In recent years, much attention has been focused on FDCA and the novel plant-based polyester polyethylene furanoate (PEF), a fully recyclable plastic with superior performance characteristics compared to currently widely used petroleum-based plastics. These materials can significantly contribute to reducing dependence on petroleum-based polymers and plastics, while enabling more sustainable management of global resources. Therefore, comprehensive research has been conducted in the field to arrive at technologies for producing FDCA and PEF in a commercially viable manner to enable the successful marketing of these promising materials.
[0003] FDCA is typically obtained as a crude carboxylic acid composition by oxidation of molecules containing a furan moiety, such as 5-hydroxymethylfurfural (5-HMF) and the corresponding 5-HMF esters or 5-HMF ethers, and similar starting materials, typically obtained from plant-based sugars, for example, by sugar dehydration. A wide variety of oxidation processes are known from the prior art, including, for example, enzymatic or metal-catalyzed processes.
[0004] One of the most established techniques in the field uses a catalytic system containing cobalt, manganese, and bromine to oxidize compounds containing a furan moiety to FDCA using oxygen or air as an oxidant. Respective methods applicable to a wide variety of starting materials are disclosed, for example, in WO2014 / 014981A1 or WO2011 / 043660A1.
[0005] In most cases, the purity of the crude carboxylic acid composition obtained in the above-mentioned methods is not sufficient to achieve the required purity required for the polymerization of FDCA into PEF or other high-performance polymers. Therefore, purification methods have been developed to further purify the crude carboxylic acid composition to produce a purified carboxylic acid composition. These methods include, for example, hydrogenation, post-oxidation, distillation, recrystallization, or similar methods, and are often combined with a comprehensive purification scheme that includes multiple steps of washing and isolating the resulting carboxylic acid composition. Exemplary purification methods are disclosed, for example, in WO2014 / 014981A1 or WO2016 / 195499A1.
[0006] Despite extensive efforts to improve existing processes for obtaining sufficiently pure FDCA (sometimes designated polymer-grade FDCA), the results obtained by known purification methods are often not entirely satisfactory. Prior art methods for purifying crude FDCA include: 5 While these methods often provide good results with respect to 2-formyl-2-furancarboxylic acid (FFCA), a major impurity that in most cases results from incomplete oxidation of the starting material, these methods often do not achieve significant reduction of other common impurities, some of which may be present in significant amounts depending on the process used for oxidation. In particular, some prior art methods do not result in significant reduction of 2-furancarboxylic acid (FCA), the monoacid corresponding to FDCA, which is often produced during oxidation, for example, by decarboxylation of FDCA.
[0007] Furthermore, it has been recognized in the art that solid FDCA particles obtained by prior art purification methods often have less desirable physical and mechanical properties. These properties include, for example, a higher amount of undesirable fines in the solid product, i.e., very small particles often shaped like shards of broken glass, and generally lower strength of the resulting particles. Other less desirable properties include, for example, agglomerates that may form during the isolation and drying procedures, resulting in abnormally large particles. These properties make handling the particles significantly more difficult and costly than for most common petroleum-based diacids. For example, pouring the solid FDCA product or feeding it through tubes and pipes is more difficult. Furthermore, the storage properties of solid FDCA are also less desirable, as the particles often tend to stick together.
[0008] Perhaps one of the most notable drawbacks of less desirable mechanical and physical properties is that it may not be very easy to mix solid FDCA with other starting materials and the catalyst required to produce the polymer, which can result in a less homogeneous starting mixture with concentration gradients, which can adversely affect both the required reaction time and the quality of the resulting polymer.
[0009] The inventors of the present invention believe that these less desirable mechanical and physical properties are due to the particle shape and reduced strength, as well as the particle size distribution in the resulting purified FDCA composition, which in most cases exhibit plate-like particles with a large amount of fines. To date, no convenient method for efficiently improving the mechanical and physical properties of purified FDCA is known in the art.
[0010] The above-mentioned problems with less than desirable purity and mechanical properties of solid FDCA tend to be independent of the starting material used to produce the FDCA.
[0011] However, in recent years, it has been discovered that one of the most promising approaches to accessing FDCA utilizes significant amounts of 5-HMF ether as the starting material for oxidation. As a result, the crude carboxylic acid compositions obtained in such processes contain not only the free diacid, i.e., FDCA, but also significant amounts of the FDCA monoalkyl ester. Currently, these processes appear to be the most established methods for producing significant amounts of FDCA monomethyl ester (FDCA-Me). While each method has several advantages over comparable methods that do not produce the FDCA monoalkyl ester, the aforementioned drawbacks regarding the purity and mechanical properties of the solid FDCA obtained by these methods are particularly undesirable. In extensive experiments, the inventors have discovered that the FDCA monoalkyl ester is one of the impurities insufficiently removed by many prior art purification methods. As a result, purified FDCA compositions produced using the above-mentioned techniques contain significant amounts of FCA and FDCA-Me, where, in the subsequent polymerization reaction, FCA is a potential end-capping agent and FDCA-Me can generate methanol, which can cause dangerous side reactions. Furthermore, the present inventors have discovered that the presence of even trace amounts of FDCA-Me results in solid FDCA mechanical and physical properties that are less desirable than those found for purified FDCA compositions that do not contain FDCA-Me. In summary, the above-mentioned deficiencies of prior art processes speak particularly to processes that include FDCA-Me in the crude and / or purified carboxylic acid composition. [Prior art documents] [Patent documents]
[0012] [Patent Document 1] International Publication No. 2014 / 014981A1 [Patent Document 2] International Publication No. 2011 / 043660A1 [Patent Document 3] International Publication No. 2016 / 195499A1 [Patent Document 4] International Publication No. 2017 / 003293A1 [Patent Document 5] International Publication No. 2016195499 [Patent Document 6] International Publication No. 2016195500 [Patent Document 7] International Publication No. 2016 / 195500A1 Summary of the Invention [Problem to be solved by the invention]
[0013] In view of the above-mentioned problems, there is a long-felt need to overcome the respective shortcomings of the prior art methods. Accordingly, it was an object of the present invention to provide a method for obtaining a carboxylic acid composition with a higher purity, particularly with respect to FCA and / or FDCA-Me impurities. Another object of the present invention was to provide a method for producing a carboxylic acid composition with improved mechanical and physical properties, thus enabling efficient handling of the solid product and favorable behavior of the solid FDCA in subsequent polymerization reactions. A further object of the present invention was to provide a method that can be easily combined with existing oxidation and purification methods and that can be carried out continuously, semi-continuously, or batchwise.
[0014] It is desirable that the further process steps can be carried out in a resource-efficient manner and themselves generate only minor amounts of waste. Likewise, it is desirable to provide a process that primarily uses compounds and starting materials that are used during other steps in the remaining manufacturing process, such as oxidation or purification, in order to reduce storage costs and minimize the amount of different materials that need to be handled in the manufacturing plant.
[0015] Similarly, it is preferred that each method require minimal amounts of energy, utilize primarily non-corrosive materials, and be capable of operating in a particularly safe manner, minimizing health risks and exposure of hazardous materials to the environment. Aside from the desire for specific, efficient purification of FCA and / or FDCA-Me, it is further desirable that the method be capable of removing a wide variety of possible impurities in order to efficiently complement prior art purification methods.
[0016] Furthermore, it was an object of the present invention to provide a carboxylic acid composition that not only has high purity but also exhibits favorable physical and mechanical properties that allow its efficient use as a starting material in subsequent polymerization reactions. Correspondingly, it was another object of the present invention to provide a starting material for the preparation of polyalkylene furanoates that allows for a reduction in reaction times during polymerization and / or leads to certain favorable products. [Means for solving the problem]
[0017] DISCLOSURE OF THE INVENTION The present inventors have now surprisingly discovered that the above-mentioned objectives can be achieved by providing an additional process step in the preparation of the carboxylic acid composition comprising FDCA, which process step is carried out after both the oxidation and purification steps.
[0018] The method is a method for producing a carboxylic acid composition comprising 2,5-furandicarboxylic acid, comprising: a) 2,5-furandicarboxylic acid and 5 - providing or producing a crude carboxylic acid composition comprising formyl-2-furancarboxylic acid; b) purifying the crude carboxylic acid composition to produce a purified carboxylic acid composition comprising 2,5-furandicarboxylic acid, which is preferably at least partially solid, more preferably at least 5% solids, and most preferably at least 80% solids, said purifying comprising: - 5 - hydrogenating at least a portion of the formyl-2-furancarboxylic acid, - 5 - oxidizing at least a portion of the formyl-2-furancarboxylic acid, - recrystallizing at least a portion of the 2,5-furandicarboxylic acid; and - hydrolyzing the dialkyl ester of 2,5-furandicarboxylic acid and a step comprising at least one step selected from the group consisting of: c) providing or manufacturing a processing solvent composition comprising a saturated organic acid solvent having 2 to 6 carbon atoms in an amount greater than 5% by weight, preferably greater than 30%, more preferably greater than 45% by weight, based on the weight of the processing solvent composition; d) providing or manufacturing a thermal treatment composition comprising the purified carboxylic acid composition and a treatment solvent composition; e) subjecting the heat-treated composition to an elevated temperature in the range of 140-200°C for a time in the range of 5-240 minutes to obtain a treated composition, wherein the percentage of dissolved 2,5-furandicarboxylic acid relative to the total amount of 2,5-furandicarboxylic acid is in the range of 10-80%; f) cooling the treated composition to a temperature in the range of 20 to 80°C and separating at least a portion of the 2,5-furandicarboxylic acid from the treated composition to obtain a treated mother liquor containing a carboxylic acid composition and a saturated organic acid solvent having 2 to 6 carbon atoms; The method includes: The carboxylic acid composition obtainable or obtainable by this method is an altered carboxylic acid composition compared to the crude carboxylic acid composition of step a) and the purified carboxylic acid composition of step b), which will be referred to hereinafter as the carboxylic acid composition.
[0019] An additional process step developed is a specific heat treatment that helps overcome the deficiencies of prior art methods. To this end, a purified carboxylic acid composition is mixed with a processing solvent composition and subjected to heat treatment at an elevated temperature for a specified time. By adjusting the process parameters and the amounts of starting materials, the heat treatment is carried out so that a specific percentage of FDCA is dissolved in the processing solvent composition during the heat treatment, while the remaining FDCA remains as a solid precipitate. Without wishing to be bound by theory, it is believed that the chemical equilibrium and exchange between the dissolved and precipitated FDCA, combined with the extended heat treatment, results in the specific preferred particle shape, increased particle strength, and / or beneficial particle size distribution of the solid FDCA obtained after the heat treatment.
[0020] Surprisingly, it has been discovered that the purity of the material obtained in a process using a specific percentage of FDCA dissolved during heat treatment is superior to the purity of material processed in a process in which the FDCA is fully dissolved. [Brief explanation of the drawings]
[0021] [Figure 1] 1 is an exemplary particle of FDCA obtained by a method according to the present invention without heat treatment, the scale corresponds to 100 μm. [Figure 2] 1 is an exemplary particle of FDCA obtained by a method according to the present invention without heat treatment, the scale corresponds to 100 μm. [Figure 3] 1 is an exemplary particle of FDCA obtained by a method involving heat treatment in water, the scale corresponds to 100 μm. DETAILED DESCRIPTION OF THE INVENTION
[0022] In the following, the subject matter of the present invention will be discussed in more detail and preferred embodiments of the present invention will be disclosed.Therefore, it is particularly preferred to combine two or more preferred embodiments to obtain a particularly preferred embodiment.Correspondingly, a method according to the present invention that defines two or more features of a preferred embodiment of the present invention is particularly preferred.
[0023] The carboxylic acid composition is a carboxylic acid composition that contains a reduced amount of at least one furan-based impurity, i.e., any material having a furan moiety that is not 2,5-furandicarboxylic acid, and / or exhibits improved mechanical and / or physical properties when compared to a purified carboxylic acid composition.
[0024] Step a) of the process according to the present invention is the preparation or production of a crude carboxylic acid composition containing FDCA and FFCA, i.e., the most important impurities produced by incomplete oxidation during the oxidation of the starting material. According to the present invention, the crude carboxylic acid composition may be prepared, for example, by obtaining it from another process or separate facility, or may be produced using one of several known prior art methods for obtaining crude carboxylic acid compositions containing FDCA and FFCA. The process of the present invention is not limited with respect to the oxidation method used to obtain the crude carboxylic acid composition. However, the crude carboxylic acid composition is preferably produced by oxidation of a compound having a furan moiety, preferably 5-hydroxymethylfurfural and / or an alkyl ether of 5-hydroxymethylfurfural, using a catalyst system comprising cobalt, manganese, and bromine in the presence of a solvent composition comprising oxygen as an oxidizing gas, a saturated organic acid solvent having 2 to 6 carbon atoms, and water.
[0025] Step b) of the process of the present invention corresponds to the purification of the crude carboxylic acid composition prepared or produced in step a), resulting in a purified carboxylic acid composition comprising 2,5-furandicarboxylic acid, which is at least partially solid. The process of the present invention comprises at least one purification step selected from the group defined above, which steps correspond to the most important steps of the most well-established purification methods for crude carboxylic acid compositions known in the prior art. Apart from FFCA, other color bodies and impurities, such as so-called heavy furanics, i.e., molecules containing more than one furan moiety, are often also removed during the purification step.
[0026] 5 The at least partial hydrogenation of FDCA-formyl-2-furancarboxylic acid corresponds to a purification by hydrogenation based on well-known principles, in which some impurities in the crude carboxylic acid composition can be selectively hydrogenated and then separated from the FDCA.
[0027] Within the framework of the present invention, purification by hydrogenation is particularly preferred. Hydrogenation is preferably carried out by contacting the crude carboxylic acid composition with hydrogen in the presence of a hydrogenation solvent and a hydrogenation catalyst for hydrogenating the FDCA to a hydrogenation product, and separating the FDCA from the hydrogenation product, wherein the hydrogenation solvent is preferably water and the hydrogenation catalyst is preferably palladium on carbon. As a general rule, the hydrogenation catalyst can be selected from a wide variety of available catalysts. Typically, the hydrogenation catalyst comprises one or more metals or metal compounds selected from metals in Groups 8 to 10 of the Periodic Table on a support. Suitable such metals include Pt, Pd, Ru, Rh, Ir, Os, Ni, Co, and mixtures thereof. As is known in the art, such hydrogenation processes are typically carried out under well-dissolved conditions.
[0028] 5The step of at least partially oxidizing 2-formyl-furancarboxylic acid corresponds to a purification by post-oxidation and is based on the concept that the product of incomplete oxidation, i.e., FFCA, can be oxidized to FDCA in a subsequent oxidation reaction.
[0029] Purification by at least partial recrystallization of the FDCA corresponds to the well-known technique of dissolving the carboxylic acid product in a second solvent and / or changing the temperature to alter the solubility of the FDCA in the original solvent in order to dissolve and then precipitate the desired product.
[0030] Finally, the step of hydrolyzing the dialkyl ester of 2,5-furandicarboxylic acid corresponds to a purification method in which FDCA and / or a monoalkyl ester of FDCA in the crude carboxylic acid composition is esterified with an alcohol to produce a dialkyl ester of 2,5-furandicarboxylic acid (e.g., FDCA-DMe), and purification is achieved by distillation, recrystallization, or melt crystallization of the resulting composition, and subsequently hydrolyzing the purified dialkyl ester of FDCA to obtain purified FDCA. In other words, the step of hydrolyzing the dialkyl ester of 2,5-furandicarboxylic acid corresponds to forming a dialkyl ester of FDCA from the crude carboxylic acid composition, purifying the dialkyl ester of FDCA, and then hydrolyzing the dialkyl ester of FDCA to obtain FDCA.
[0031] In step c), a processing solvent composition is prepared or produced that contains at least 5% by weight of a saturated organic acid solvent having 2 to 6 carbon atoms, based on the weight of the processing solvent composition. The processing solvent composition is a solvent composition that acts as a solvent during the heat treatment step and as a carrier liquid in the dispersion for the remaining solids. A preferred organic acid is acetic acid. A preferred processing solvent composition contains both an organic acid and water.
[0032] However, despite prejudice against it based on the results of crystallization tests carried out in water, which showed unfavorable decarboxylation behavior of FDCA in water, the inventors have surprisingly discovered that good results can be obtained when the processing solvent composition contains water in an amount of up to 50% by weight. The use of up to 50% by weight, preferably up to 40% by weight, and more preferably up to 35% by weight of water in the processing solvent composition is preferred for some applications, as the use of water is relatively inexpensive and allows for a very sustainable process.
[0033] The processing solvent composition may be obtained, for example, by mixing solvents in a separate reactor and feeding it to the process of the present invention. However, the processing solvent composition may also be produced within the framework of the process of the present invention. Here, it is particularly preferred to use the solvent composition used in purification step b) to produce the processing solvent composition. The production of the processing solvent composition from the solvent used in purification step b) may include all suitable steps to arrive at the processing solvent composition defined above, including filtration, addition of an organic acid solvent having 2 to 6 carbon atoms, addition of water, removal of the organic acid compound, or removal of water.
[0034] In a preferred embodiment, the purified carboxylic acid composition obtained in step b) and at least a portion of the solvent used for purification in step b) are both sent to a heat-treatment reactor, where a saturated organic acid solvent having 2 to 6 carbon atoms and / or water is preferably added as additional solvent or removed to produce the heat-treated composition. The portion of solvent may, for example, consist of solvent remaining on the solids after a filtration or centrifugation step.
[0035] Step d) involves providing or manufacturing a thermal treatment composition comprising a purified carboxylic acid composition and a processing solvent composition. The thermal treatment composition actually comprises a liquid phase and a solid phase. The purified carboxylic acid composition is obtained from step b). The processing solvent composition is from step c). The thermal treatment composition may be obtained by combining the purified carboxylic acid composition and the processing solvent composition in any manner known to be suitable to those skilled in the art.
[0036] In the context of the present invention, step e) is often called heat treatment or heat treatment step.
[0037] According to this method, the heat-treated composition is subjected to an elevated temperature in the range of 140-200°C for a time period in the range of 5-240 minutes. It is essential to the present invention that the percentage of dissolved FDCA relative to the total amount of FDCA be in the range of 10-80%. This degree of dissolution is preferably maintained for at least 5 minutes during the entire heat treatment, and the respective amount of dissolved FDCA preferably falls within a predetermined range throughout the entire 5-240 minute heat treatment. The percentage of dissolved 2,5-furandicarboxylic acid preferably falls within a predetermined range when averaged over the duration of the heat treatment, provided that the actual value falls within the specified range for at least 5 minutes.
[0038] Those skilled in the art can adjust the heat treatment conditions to the required degree of dissolution by using the following table, which lists the solubility values of FDCA at a given temperature depending on the solvent composition used. These data are generated from experimental values and fitted to an appropriate solubility model. Intermediate values can be obtained by interpolation.
[0039] [Table 1]
[0040] After subjecting the heat-treated composition to an elevated temperature in heat-treatment step e), the treated composition is cooled to a temperature in the range of 20-80°C, thereby reducing the solubility of the FDCA in the solvent and resulting in precipitation of the carboxylic acid composition. At least a portion of the solid FDCA is separated from the treated composition to obtain the carboxylic acid composition, leaving a mother liquor comprising a saturated organic acid solvent having 2-6 carbon atoms.
[0041] The carboxylic acid composition not only exhibits increased purity compared to purified carboxylic acid compositions, but also features solid particles that, unlike purified carboxylic acid compositions, are found to be more spherical rather than exhibiting the undesirable plate-like shape. Similarly, its particle size distribution is more favorable, allowing for easier handling of the solid product. The resulting carboxylic acid composition has been found to exhibit very good mixing behavior with alkylene glycols, preferably ethylene glycol, and therefore constitutes a highly promising starting material for the production of polyalkylene furanoates.
[0042] The heat treatment step described above may be advantageously incorporated into existing processes for producing carboxylic compositions containing FDCA, since the process of the present invention is not limited with respect to the technology used to obtain crude FDCA and can be combined with the most important purification methods known in the prior art.
[0043] It is beneficial for the process solvent composition to include a saturated organic acid solvent having 2 to 6 carbon atoms, since these solvents are the most common solvents used in most prior art processes for oxidation reactions. This allows for efficient plant management and reduces the need to store additional chemicals, thus reducing storage costs.
[0044] Surprisingly, the method of the present invention allows the aforementioned beneficial effects to be achieved without the need for expensive catalysts or highly corrosive and / or harmful substances, with the surprisingly high suitability of water as a minor component of the treatment solvent composition being particularly beneficial. Furthermore, the treatment mother liquor containing the organic acid can be reused, preferably in the oxidation step and / or purification step and / or thermal treatment step, for use in other steps of the method of the present invention. This makes it possible to arrive at a uniquely sustainable method that generates little waste.
[0045] In step b), the method preferably comprises at least two steps selected from the group defined in step b). 5 In accordance with the present invention, a process is preferred which comprises the steps of hydrogenating at least a portion of the 2,5-formyl-2-furancarboxylic acid and crystallizing at least a portion of the solid 2,5-furandicarboxylic acid from the hydrogenation reaction mixture.
[0046] Within the framework of the present invention, the expression "at least a part of" preferably means at least 20%, preferably at least 30%, more preferably at least 40%, even more preferably at least 50% and most preferably at least 60%, with respect to concentrations, unless otherwise indicated, these values being expressed in percent by weight.
[0047] Preferred is a process according to the invention, wherein the crude carboxylic acid composition and / or the purified carboxylic acid composition comprises a monoalkyl ester of 2,5-furandicarboxylic acid, preferably the monomethyl ester of 2,5-furandicarboxylic acid (FDCA-Me).
[0048] As discussed above, the above-described preferred method is particularly advantageous due to the fact that the problem underlying the present invention has been discovered to be particularly pronounced with respect to a method for including a monoalkyl ester of FDCA in a crude carboxylic acid composition and / or a purified carboxylic acid composition. The respective crude carboxylic acid compositions containing a monoalkyl ester of FDCA can be produced, for example, by oxidizing a starting material feed containing an alkyl ether of 5-HMF. Due to the fact that most prior art purification methods are not well suited to completely removing the monoalkyl ester of FDCA from the crude carboxylic acid composition, it has often been observed that both the crude carboxylic acid composition and the purified carboxylic acid composition contain a monoalkyl ester of 2,5-furandicarboxylic acid.
[0049] In one of the most mature technologies in the field, the monomethyl ester of FDCA and the monoethyl ester of FDCA are the most relevant monoalkyl esters of FDCA, with the monomethyl ester of FDCA being particularly prevalent, and the presence of the monomethyl ester of FDCA (FDCA-Me) in crude and purified carboxylic acid compositions being particularly preferred due to its high industrial importance. As detailed above, when the purified FDCA also contains a monoalkyl ester of FDCA, particularly the monomethyl ester of FDCA, it is often found that the mechanical and physical properties of the solid purified FDCA are less desirable. Without wishing to be bound by theory, this is believed to be due to the formation of a so-called solid solution of FDCA and FDCA-Me. Surprisingly, it has been discovered that the solid solution of FDCA and FDCA-Me can be very efficiently compensated for and / or prevented by the method of the present invention, which has proven particularly effective both in removing FDCA-Me and in enhancing the physical and mechanical properties of the solid product. Preferred are processes according to the invention, wherein step e) is carried out in a reactor pressurized with an inert gas, preferably nitrogen or argon, and / or wherein in step e) the heat-treated composition is agitated, preferably by stirring, for at least part of the time, to expose the solid 2,5-furandicarboxylic acid to shear forces.
[0050] It is particularly advantageous to carry out step e) in a reactor pressurized with an inert gas, because this reduces the presence of oxygen or other reactive gaseous compounds in the reactor that may otherwise be present from previous process steps. In these embodiments, the atmosphere in the reactor during operation is primarily composed of inert gas and vaporized organic acid solvent and / or water. As a result, undesirable side reactions of FDCA with reactive gaseous compounds are inhibited. Therefore, the use of an inert gas allows for a particularly safe process, because the possibility of potentially dangerous side reactions and / or exothermic reactions and / or fires is reduced.
[0051] While the results of the method according to the present invention have often been found to be satisfactory simply by heat-treating the heat-treated composition, the inventors have discovered that the beneficial effect of the resulting carboxylic acid composition on the mechanical and physical properties of the particles can be further enhanced if the heat-treated composition is further agitated in step e) to expose the solid FDCA particles to shear forces. Without wishing to be bound by theory, it is believed that agitation of the heat-treated composition during heat treatment increases the homogeneity of the liquid phase and reduces the concentration gradient of impurities, thereby facilitating both the purification and improvement of the mechanical properties of the resulting particles. Agitation can be achieved by any suitable means known to those skilled in the art, such as by stirring the heat-treated composition or by utilizing an external pumping loop.
[0052] A preferred method is one in which the heat treatment composition contains 2,5-furandicarboxylic acid in an amount of 15 to 45% by weight, preferably 20 to 40% by weight, based on the weight of the heat treatment solvent composition. Such a preferred method is advantageous because the respective amounts of dissolved and solid FDCA can be used without requiring high temperatures and with high flexibility in terms of the composition of the solvent used, allowing the desired ratio between dissolved and solid FDCA in step e) to be easily obtained.
[0053] Preferred is a process in which the processing solvent composition comprises acetic acid, preferably in an amount ranging from 55 to 99% by weight, preferably from 60 to 98% by weight, relative to the amount of the processing solvent composition, and / or the processing solvent composition comprises acetic acid and water in a ratio between 60:40 and 99.9:0.1 by weight, preferably between 65:35 and 95:5.
[0054] When the primary objective is to obtain the highest possible degree of purity and the most advantageous mechanical properties, the respective treatment solvent compositions having a specified ratio of acetic acid to water are particularly preferred, for example, because a small amount of water results in less decarboxylation of FDCA. Furthermore, while a larger amount of acetic acid results in the best impurity removal, the addition of a specified amount of water allows for the dissolution of a larger amount of FDCA, thereby allowing the method to be carried out at a lower temperature. As previously discussed, the use of up to 50% by weight of water, which also surprisingly results in good results, may be particularly preferred for certain embodiments focusing on the sustainability of the method (e.g., within the framework of green chemistry).
[0055] It has been discovered that heat treatment in a processing solvent composition containing up to 50% by weight of water results in particle shapes similar to those of heat treatment in organic acids. Similarly, heat treatment in such water-rich solvent compositions results in similar product quality in terms of FDCA-Me and FCA content when process parameters are adjusted (e.g., longer residence time). Without wishing to be bound by theory, it is believed that at least part of this may be due to the conversion of FDCA-Me to FDCA by hydrolysis.
[0056] Preferred is the process according to the invention, wherein the purified carboxylic acid composition produced in step b) comprises less than 25% by weight, preferably less than 15% by weight, most preferably less than 10% by weight of solvent, based on the weight of the purified carboxylic acid composition.
[0057] Each of the above methods is preferred because it is preferable to remove a significant amount of the solvent used in purification step b) from the purified carboxylic acid composition before combining the purified carboxylic acid composition with the treatment solvent composition to obtain the thermally treated composition (e.g., to prevent water from the purification step from entering the solvent loop for thermal treatment, which should be carried out at low water content). Each of the above methods is particularly beneficial for methods that utilize purification processes that use various solvents, such as aromatics, that may be inconvenient for the thermal treatment step, or that produce large amounts of soluble by-products and / or impurities that can be removed prior to thermal treatment by intermediate isolation of the purified carboxylic acid.
[0058] Preferred is a process according to the invention, wherein the process parameters in steps e) and f) are selected to produce particles of 2,5-furandicarboxylic acid of - particles of 2,5-furandicarboxylic acid which show a decrease in average particle size of less than 35%, preferably less than 25%, between particle size measurements at a dispersion pressure of 0.2 bar and 2 bar, and / or - Particles of 2,5-furandicarboxylic acid having a volume average median diameter (d50) in the range of 50 to 300 μm, preferably in the range of 60 to 200 μm.
[0059] A beneficial aspect of the present method is that it can provide both additional purification and enhanced mechanical and physical properties of the resulting product. This synergistic relationship surprisingly allows for reliable estimation or prediction of either the purity or mechanical properties by measuring and analyzing the respective other parameters. Because the mechanical properties and / or particle size distribution of the product obtained by the method according to the present invention can be easily determined in most cases, the preferred method described above is particularly advantageous because those skilled in the art can monitor the above parameters and predict with great certainty when the desired degree of purity will be reached without the need for extensive chemical analysis of the product. The respective advantages have been found to be particularly clear for methods involving monoalkyl esters of FDCA. Without wishing to be bound by theory, it is believed that this is caused by the undesirable effect that the monoalkyl esters of FDCA, in some cases, have on the mechanical properties and particle size distribution of the resulting product. In other words, it has been found that in many cases, the desired particle shape defined in the preferred method described above can be reached when the desired degree of purity with respect to FDCA-Me is also obtained.
[0060] Both the average particle size and the volume average median diameter (d50) are parameters that are well known and can be reliably determined by those skilled in the art. In fact, it is expected that typical measurements used in the art for determining each parameter will yield at least similar values. Therefore, in the vast majority of cases, the device used to determine the average particle size and the volume average median diameter (d50) is not important. However, in case of doubt, the average particle size and the volume average median diameter (d50) are measured using one of the most common devices for particle size measurement, namely, a laser diffraction particle size analyzer model Mastersizer 3000 manufactured by Malvern Panalytical, with laser obscuration of 1.5%, a refractive index of 1.538, and a dispersion pressure of 0.2 bar, using the PSD dry method.
[0061] The decrease in mean particle size between particle size measurements at 0.2 bar and 2 bar dispersion pressures is measured on the same material, but on different portions (i.e., not subsequent measurements on the same particles). For this reason, samples are tested using two different levels of air pressure to create particle dispersion. Results using 0.2 bar dispersion pressure are considered the "gentlest," while results using 2 bar dispersion pressure are more aggressive dispersions. This may be used, for example, as a test of particle strength and stability under conditions that may represent stresses experienced during pneumatic conveying operations.
[0062] The process according to the present invention is preferred, wherein the crude carboxylic acid composition contains 2-furan carboxylic acid in an amount preferably in the range of 1 to 2000 ppm by mass, more preferably in the range of 1 to 1000 ppm by mass, relative to the mass of the composition, and wherein the carboxylic acid composition contains 2-furan carboxylic acid in an amount of 700 ppm by mass or less, more preferably 500 ppm by mass or less.
[0063] As discussed above, FCA is one of the impurities in crude carboxylic acid compositions containing FDCA, and they are often insufficiently removed by prior art purification methods. In particular, FCA is an aromatic carboxylic acid, which is quite stable under oxidizing conditions and is difficult to remove by oxidation. Furthermore, as an aromatic carboxylic acid, FCA also resists hydrogenation under conditions that hydrogenate FDCA but not FDCA, making its removal by hydrogenation difficult. While FDCA can be esterified to form a diester and subsequently removed by distillation, recrystallization, or melt crystallization, new FCA is formed when the purified dialkyl ester is hydrolyzed to produce a diacid, making this method also inappropriate for FCA removal. Surprisingly, it has been discovered that the method of the present invention, i.e., a method involving heat treatment, can significantly reduce the amount of FCA in a carboxylic acid composition. The preferred method is particularly advantageous due to its surprisingly high suitability for removing FCA from carboxylic acid compositions containing FDCA. As discussed above with respect to mechanical and physical properties, it has been surprisingly discovered that when heat treatment is used on carboxylic compositions containing FCA, the likelihood of the product's mechanical and physical properties being satisfactory can also be estimated or predicted with great certainty from the concentration of FCA in the carboxylic composition. The inventors have now discovered that carboxylic compositions containing FCA in an amount of 700 ppm by weight or less, preferably 500 ppm by weight or less, relative to the weight of the carboxylic composition after heat treatment exhibit acceptable or good physical and mechanical properties. This is advantageous because, depending on the availability of equipment in a facility, it may be preferable to analyze the chemical composition of the resulting product instead of directly analyzing its mechanical properties.
[0064] The crude carboxylic acid composition contains 2,5-furandicarboxylic acid in an amount ranging from 90 to 99.5% by mass, preferably from 94 to 99% by mass, based on the mass of the crude carboxylic acid composition, and / or the crude carboxylic acid composition contains 2,5-furandicarboxylic acid in an amount ranging from 90 to 99.5% by mass, preferably from 94 to 99% by mass, based on the total mass of all furanix in the crude carboxylic acid composition, and / or the crude carboxylic acid composition contains 2,5-furandicarboxylic acid in an amount ranging from 100 to 3800 ppm by mass, preferably from 150 to 3000 ppm by mass, more preferably 1500 ppm by mass or less, based on the mass of the crude carboxylic acid composition. 5 In another preferred embodiment, the crude carboxylic acid composition comprises 2,5-furandicarboxylic acid in an amount ranging from 0.2 to 5.0% by weight, preferably from 0.3 to 3% by weight, based on the weight of the crude carboxylic acid composition. Such a method is preferred because it has been found that the heat treatment carried out in the method of the present invention is particularly effective when used in a method starting with the respective crude carboxylic acid composition described above.
[0065] The term furanics is known in the art and describes all compounds containing at least one furan moiety, i.e., a substituted or unsubstituted furan ring. In practice, the most important furanics are typically furan, 5-HMF and its ethers and esters, FCA and its esters, FDCA and its esters, FFCA and its esters, 2,5-diformylfuran, 5-methylfuran-2-carboxylic acid, and dimers of these compounds. The purification step b) is 5The process according to the present invention is preferred, which comprises a step of hydrogenating at least a portion of the 2-formyl-furancarboxylic acid, and / or the purification in step b) also comprises a step of isolating the purified carboxylic acid composition, the isolation comprising filtration and / or washing and / or drying. This process is preferred because it has been found that thermal treatment shows particularly good results when combined with hydrogenation as a purification method. Purification by hydrogenation is not only particularly cost-effective and suitable for large volumes of product handled in a continuous or semi-continuous process, but is also very effective in removing FFCAs from the crude carboxylic acid composition.
[0066] Hydrogenation as a purification method is particularly preferred because it uses a hydrogenation solvent that typically includes a saturated organic acid having 2 to 6 carbon atoms and water or substantially pure water. Therefore, the hydrogenation solvent composition can often be used as a precursor for the treatment solvent composition utilized during thermal treatment. While in most cases, an organic acid must be added to adjust the desired composition of the treatment solvent composition, in some cases, at least a portion of the hydrogenation solvent can be used directly as the treatment solvent composition without modification. However, in these cases, it is often preferable to remove at least a portion of the hydrogenation solvent to establish the desired percentage of dissolved FDCA during thermal treatment. For example, hydrogenation processes utilizing fully dissolved conditions can be followed by crystallization using an evaporative crystallizer to remove a portion of the hydrogenation solvent and increase the concentration of FDCA in the process. Other options for partial solvent removal include methods such as decantation, hydroclone, or clarifier.
[0067] While the methods of the present invention tend to produce good results in terms of purity and mechanical properties of the carboxylic acid composition, it has been discovered that it can be particularly beneficial to include an isolation step in which the purified carboxylic acid composition is isolated from other components, such as the solvent used for purification. Such isolation steps typically include filtering and / or washing and / or drying steps. While each method is usually not optimized for cost and / or time efficiency, the intermediate isolation of the solid product facilitates purification during heat treatment and allows for tight control of the composition of the heat-treated composition without having to consider changes in liquid components. Correspondingly, and as noted above, each method is expected to result in among the highest purity carboxylic acid compositions.
[0068] The purified carboxylic acid composition contains 2,5-furandicarboxylic acid in an amount ranging from 95 to 99.9% by mass, preferably in an amount ranging from 98 to 99.9% by mass, based on the mass of the purified carboxylic acid composition, and / or the purified carboxylic acid composition contains 2,5-furandicarboxylic acid in an amount ranging from 1 to 200 ppm by mass, preferably in an amount ranging from 1 to 100 ppm by mass, based on the mass of the purified carboxylic acid composition. 5 In a preferred embodiment of the present invention, the purified carboxylic acid composition contains 2,5-furandicarboxylic acid in an amount of 100 to 13,000 ppm by weight, preferably 200 to 11,000 ppm by weight, based on the weight of the purified carboxylic acid composition, and / or the purified carboxylic acid composition contains 2-furandicarboxylic acid in an amount of 1 to 2,500 ppm by weight, preferably 1 to 1,700 ppm by weight, based on the weight of the purified carboxylic acid composition. This is because it has been found that the heat treatment of the present invention works particularly well with purified carboxylic acid compositions of a certain specification.
[0069] While the method of the present invention can result in increased degrees of product purity and improved mechanical and physical properties for a wide variety of purified carboxylic acid compositions studied, it has sometimes been observed that efficiency decreases when the overall amount of impurities, particularly the amount of alkyl esters of FDCA and FCA, exceeds a certain threshold. Similar effects have been observed in other purification methods, due to the fact that the amount of solvent that can be used to dissolve impurities is limited by an essential feature of the heat treatment, namely, the need for a certain amount of FDCA to remain in the solid phase during the heat treatment.
[0070] Similarly, the above method is preferred because it has been discovered that the heat treatment of the present invention is not very suitable for removing FFCA, which is also an undesirable end-stopper in polymer-grade FDCA. Therefore, a method in which the purification step b) is carried out in such a way that most of the FFCA is removed before the heat treatment is preferred. Understanding the relatively low ability of the heat treatment to remove FFCA, a person skilled in the art can easily adapt the prior art method to produce a purified carboxylic acid composition having the desired amount of FFCA.
[0071] The temperature in step e) is in the range of 150 to 190°C, preferably in the range of 160 to 190°C, and / or the heat-treated composition in step e) is heated for a time in the range of 15 to 120 minutes, preferably in the range of 30 to 90 minutes, most preferably 0.7 * (220-T / ℃)~3.0 *A preferred method is to subject the 2,5-furandicarboxylic acid to an elevated temperature for a time in the range of (220-T / °C) minutes (where T is the temperature in step e)), and / or in step e), the percentage of dissolved 2,5-furandicarboxylic acid relative to the total amount of 2,5-furandicarboxylic acid is in the range of 20 to 60%, preferably 30 to 60%. This method is preferred because it defines process parameters for the heat treatment that have been found to be suitable for obtaining good results for the carboxylic acid composition in terms of both purity and mechanical properties. Here, the temperature range during the heat treatment and the percentage of dissolved FDCA are related by factors that are primarily determined by the composition and amount of the treatment solvent composition. Advantageously, based on screening experiments, it is possible to determine a suitable residence time depending on the heat treatment temperature, as disclosed above.
[0072] Preferred is a process according to the invention, wherein the treated composition in step f) is cooled to a temperature in the range of 30 to 80°C, preferably in the range of 40 to 80°C, and / or wherein step f) comprises treating the treatment mother liquor to remove at least a portion of the water from the remaining treated composition, and / or wherein step f) comprises recycling at least a portion of the treatment mother liquor to provide the treatment solvent composition in step c).
[0073] It can be understood that a decrease in temperature reduces the solubility of FDCA in the processing solvent composition, resulting in precipitation of the dissolved FDCA, and that the cooling in step f) is expected to have a significant impact on the mechanical properties of the resulting product. Correspondingly, those skilled in the art who intend to modify the mechanical properties of carboxylic acid compositions should consider changing the temperature gradient between the heat treatment in step e) and the cooling in step f). It has been discovered that it can be beneficial if the temperature gradient in step f) is reproducibly controlled and not too steep. Consistent with this finding, it is preferable to cool the processed composition to a temperature still well above typical room temperature, between 20 and 25°C. Cooling rates of up to 600 K / hour are quite acceptable, although levels of 30 to 120 K / hour are preferred. Without wishing to be bound by theory, the inventors believe that the presence of a large solid fraction at the processing temperature reduces the risk of fines formation or spontaneous nucleation that would otherwise be experienced at these relatively high cooling rates. A high cooling rate is advantageous because it reduces the thermal stress on the system to that required to produce the desired processing effect. Excessive thermal stress can result in undesirable reactions, including, for example, color formation. A high cooling rate is advantageously effected by evaporating at least a portion of the solvent, for example, by boiling the solvent.
[0074] To increase the sustainability of the thermal treatment process and reduce the amount of waste generated by the method according to the present invention, it is preferable to recycle at least a portion of the treatment mother liquor back into the thermal treatment process. This means that at least a portion of the treatment mother liquor can be used as a treatment solvent composition in the thermal treatment of the purified carboxylic acid composition. In this recycle process, it may be important to adjust the solvent composition to accommodate changes that occur. For example, if the purified carboxylic acid composition is wet with water, for example, because it has been filtered and washed with water but not dried, the water will be incorporated into the mother liquor after the thermal treatment, and at least a portion of the water should be removed from the mother liquor before recycle. In this way, the overall thermal treatment composition can be maintained at a desired concentration level.
[0075] The present invention further relates to a carboxylic composition comprising greater than 98% by weight of 2,5-furandicarboxylic acid, based on the weight of the carboxylic composition, wherein the carboxylic composition particles exhibit less than a 35% decrease in average particle size between particle size measurements at dispersion pressures of 0.2 bar and 2 bar, the carboxylic composition preferably contains less than 1% by weight, preferably less than 0.5% by weight, more preferably less than 0.1% by weight of water, and the carboxylic composition is preferably produced using the method of the present invention.
[0076] Faced with the goal of providing a carboxylic acid composition with good physical and mechanical properties and therefore capable of being efficiently processed, for example, during product storage or transportation, the present inventors have surprisingly discovered that the technical problem can be solved by providing the above-mentioned carboxylic acid composition. Each parameter characterizes particles that are suitable for efficient handling and long-term storage, and are therefore beneficial. The carboxylic acid composition of the present invention can be conveniently produced using the method of the present invention, particularly by a step of heat treatment of a purified carboxylic acid composition. Therefore, the carboxylic acid composition produced using the method of the present invention or a preferred embodiment of the method of the present invention is preferred.
[0077] Preferred are carboxylic acid compositions according to the invention, wherein the carboxylic acid composition has a volume average median diameter (d50) in the range of 50 to 300 μm, preferably in the range of 60 to 200 μm, and / or wherein the carboxylic acid composition has a d10 equal to or greater than 20 μm, where d10 is defined as the diameter below which 10% of the particles by volume have a smaller diameter, and / or wherein the carboxylic acid composition has a d90 equal to or less than 400 μm, where d90 is defined as the diameter below which 90% of the particles by volume have a smaller diameter, and / or wherein the ratio of d50 to d10 is in the range of 1 to 3, preferably in the range of 1.5 to 2.5.
[0078] Upon analysis of those carboxylic compositions that exhibited the most beneficial mechanical properties, it was discovered that each carboxylic composition exhibited a particular particle size distribution that is believed to be at least partially responsible for the fact that the carboxylic compositions according to the present invention can be easily injected and pumped through piping while maintaining their properties even after extended storage. Furthermore, it was discovered that these carboxylic compositions have favorable properties for making slurries with good stability and good pumping and mixing properties.
[0079] The carboxylic acid composition comprises a monoalkyl ester of 2,5-furandicarboxylic acid, preferably a monomethyl ester of 2,5-furandicarboxylic acid, in an amount ranging from 200 to 5000 ppm by mass relative to the mass of the carboxylic acid composition, and / or the carboxylic acid composition comprises 2-furancarboxylic acid in an amount ranging from 10 to 500 ppm by mass, preferably from 20 to 200 ppm by mass, relative to the mass of the carboxylic acid composition, and / or the carboxylic acid composition comprises 2-furancarboxylic acid in an amount ranging from 1 to 100 ppm by mass, preferably from 2 to 50 ppm by mass, most preferably less than 30 ppm by mass, relative to the mass of the carboxylic acid composition. 5 Preferred is a carboxylic acid composition according to the invention which contains only 2-formyl-2-furancarboxylic acid.
[0080] Each of the above carboxylic compositions is preferred because not only do they have particularly favorable mechanical parameters, but they also contain small amounts of impurities known to have the most detrimental effect on the polymerization behavior of carboxylic compositions.
[0081] The present invention also relates to a starting material for the production of polyalkylene furanoate, also known as poly(alkylene-2,5-furandicarboxylate), which comprises a carboxylic acid composition according to the present invention and an alkylene glycol, preferably ethylene glycol, and a polymerization catalyst, wherein the polyalkylene furanoate is preferably poly(ethylene-2,5-furandicarboxylate).
[0082] The respective starting materials for the production of polyalkylene furanoates are mixtures of the carboxylic acid composition of the present invention, alkylene glycol, and a conventional polymerization catalyst known in the art. Each composition is particularly suitable for use in polymerization reactions to produce polyalkylene furanoates. As discussed above, this is due to the advantageous mechanical and physical properties of the carboxylic acid composition of the present invention, i.e., the carboxylic acid composition obtained by the method of the present invention. The shape and specific particle size distribution of the FDCA particles allow for highly efficient mixing with alkylene glycol, even at low molar ratios. In stark contrast, it has been discovered that solid FDCA obtained by prior art purification methods does not form the desired mixture with ethylene glycol at low molar ratios. This creates a significant problem for polymerization processes that are intended to produce high-performance polymers of a given composition; therefore, it is not easy to simply increase the molar ratio to allow for enhanced mixing of the starting materials or to provide the additional energy required to remove the unwanted excess glycol. As a result, the carboxylic acid compositions of the present invention and their use as starting materials in the polymerization of polyalkylene furanoates are highly beneficial and fulfill a long-felt need, especially in comparison to purified carboxylic acid compositions that contain monoalkyl esters of FDCA due to their manufacturing history.
[0083] The invention will now be explained in more detail using tests. [Example]
[0084] Example A - Purification by Heat Treatment A1 - Preparation of purified FDCA 2,5-Furandicarboxylic acid and 5 A crude carboxylic acid composition (cFDCA) containing -formyl-2-furancarboxylic acid was prepared as previously described in accordance with the teachings of WO 2017 / 003293A1. This cFDCA was then subjected to purification by hydrogenation in accordance with the teachings of WO 2016195499 and WO 2016195500 to produce purified FDCA, designated hFDCA (for hydrogenated FDCA). To understand the results, it is convenient to analyze the actual composition of the hFDCA.
[0085] Analysis of hFDCA revealed that it contained greater than 98% by weight of 2,5-furandicarboxylic acid (FDCA), with the major impurities being the monomethyl ester of 2,5-furandicarboxylic acid (FDCA-Me), present at 10,300 ppm by weight, and 2-furancarboxylic acid (FCA), present at 1,680 ppm by weight. These levels of impurities are generally considered unsuitable for use in polymer production. In particular, the monoester of FDCA generates methanol during polymer production, leading to potential explosion hazards in overhead equipment. Monocarboxylic acids, FCA, are end-stoppers that have only one polymerization site and limit molecular weight growth. Furthermore, FCA is also responsible for color formation.
[0086] A2 - Testing equipment for heat treatment Heat treatment tests were carried out in a laboratory autoclave, with heating and cooling via the autoclave wall and a mechanical stirrer.
[0087] A3 - Comparative Examples 1 and 2 - Complete Dissolution of FDCA Comparative Examples 1 and 2 used 10% by weight of hFDCA in water and were heated to 160°C during heat treatment to fully dissolve the FDCA (a small amount of hFDCA is required to allow complete dissolution). This complete dissolution is not consistent with the present invention. The heat-treated composition was then held at the specified temperature for 30 minutes. In Comparative Example 1, the sample was then rapidly cooled to 40°C. In Comparative Example 2, the sample was first cooled to 109°C in 15 minutes by evaporating the water using reduced pressure, and then rapidly cooled to 40°C.
[0088] In each case, the sample was then filtered under vacuum at 40° C., washed with water (1:1 by mass relative to the dry solids) and then dried.
[0089] As shown in the table below, this treatment resulted in a reasonable reduction in the monoester content of the dried FDCA, but the FCA content actually increased compared to the initial feedstock (indicating further decarboxylation of FDCA / FDCA-Me when treated in water).
[0090] Micrographs revealed that the resulting particles after heat treatment had somewhat flattened plates with a "broken glass" appearance with sharp edges and a significant level of fines. This particle shape is considered undesirable. Exemplary photographs of the particles obtained in Comparative Example 1 and Comparative Example 2 are shown in Figures 1 and 2, respectively. These photographs were obtained using a Euromex iScope IS.1053-PLPOLRi microscope at 20x magnification.
[0091] [Table 2]
[0092] A4 - Comparative Examples 3 and 4 - Low Temperature Comparative Examples 3 and 4 were prepared similarly as described above for Comparative Examples 1 and 2, and the process parameters are summarized in the table below. In both cases, the heating rate was 1.5 K / min until the process temperature (i.e., lower than that defined in the present invention) was reached, which was held for 1 hour, and then cooled to 40° C. at 1 K / min.
[0093] For better understanding, the estimated solubility of FDCA in the given solvent at the process temperature is also shown.
[0094] As shown in the table below, heat treatment with incomplete dissolution at lower temperatures resulted in a reasonable reduction in both the monoester and FCA content of the dried FDCA. However, when comparing Comparative Example 4 with Comparative Examples 1 and 2, the removal efficiency for FCA increases, but the removal efficiency for FDCA-Me decreases.
[0095] Micrographs revealed that the particles obtained after heat treatment had sharp edges and a plate-like appearance, which particle shape is considered undesirable.
[0096] [Table 3]
[0097] A5 - Examples 1, 2, and 3 Examples 1, 2, and 3 were prepared in a similar manner as described above for Comparative Examples 1 and 2, and the process parameters are summarized in the table below. In all cases, the heating rate was 1.5 K / min to reach the process temperature, which was held for 1 hour, before cooling to 40° C. For Examples 1 and 3, cooling was carried out at a rate of 1 K / min. For Example 2, the sample was first cooled to 107° C. in 7 minutes by evaporating water using reduced pressure, and then cooled to 40° C. at a rate of 1 K / min.
[0098] For better understanding, the estimated solubility of FDCA in the given solvent at the process temperature is also shown. Test 3 is not believed to be in accordance with the present invention and is included for comparative purposes only.
[0099] As shown in the table below, heat treatment according to the present invention resulted in a significant reduction in both the FDCA-Me content and the FCA content of the dried FDCA, which was significantly more significant than that in Comparative Examples 1-4, indicating that both the temperature and the solubility of FDCA should be correct.
[0100] Furthermore, the micrographs revealed that the particles obtained after heat treatment were characterized by a somewhat smooth and rounded shape and a low level of fines. This particle shape is considered very desirable. An exemplary photograph of the particles obtained in Example 3 is shown in Figure 3. This photograph was obtained using a Euromex iScope IS.1053-PLPOLRi microscope at 20x magnification.
[0101] [Table 4]
[0102] Example B - Particles B1—Preparation of various FDCA feeds for use in thermal treatment Mixed furanix containing primarily 5-methoxymethylfurfural (5-HMF ether) and 5-hydroxymethylfurfural (5-HMF) was prepared by acid-catalyzed dehydration of fructose in methanol, followed by partial neutralization of the acid, and recovery of 5-methoxymethylfurfural and 5-hydroxymethylfurfural, according to the teachings of WO 2017 / 003293 A1.
[0103] After recovery, the mixed furanics were fed to an oxidation reactor together with acetic acid (HAc) and a catalyst containing cobalt, manganese, and an ionic bromine source, in accordance with the teachings of WO 2011 / 043660 A1. The oxidation products were primarily 2,5-furandicarboxylic acid and the monomethyl ester of 2,5-furandicarboxylic acid, along with smaller amounts of 2-carboxy-5(formyl)furan and trace amounts of other by-products. This corresponds to the crude carboxylic acid composition hereinafter designated cFDCA. It should be noted that the use of crude cFDCA allows for particularly good analysis of the impact of the heat treatment of the present invention, since cFDCA has the largest amount of impurities, making the observed effects particularly pronounced. Therefore, although cFDCA was not subjected to the purification step defined in the method of the present invention, the results obtained below using cFDCA are highly relevant for evaluating the effectiveness of the method of the present invention.
[0104] The crude carboxylic acid composition was further purified by a variety of methods.
[0105] In one purification method, the diacid was esterified with methanol to form the dimethyl ester of 2,5-furandicarboxylic acid, which was purified, then hydrolyzed in the presence of base, and re-acidified to form a purified carboxylic acid composition, the corresponding sample of which is designated eFDCA.
[0106] In another purification method, the crude carboxylic acid composition was purified according to the teachings of WO 2016 / 195499 A1 and WO 2016 / 195500 A1 by mixing the crude carboxylic acid composition with water and hydrogen, heating to dissolve solids, and then hydrogenating in a flow system in the presence of a catalyst to form a purified carboxylic acid composition, the corresponding sample being designated hFDCA.
[0107] Finally, another feedstock of FDCA was obtained from hydrogenated FDCA (hFDCA), which was thoroughly dissolved and then recrystallized from water. The corresponding sample is designated as rFDCA.
[0108] These feedstocks were analyzed and found to contain the levels of FDCA-Me and FCA shown in the table below (ranges indicate the results of multiple measurements on the same sample type).
[0109] [Table 5]
[0110] B2-Particle size analysis Samples of FDCA prepared by the various methods described above were subjected to particle size analysis to determine the particle size distribution (PSD) of the samples. Particle size analysis was performed using a Malvern Panalytical Laser Diffraction Particle Size Analyzer, Model Mastersizer 3000. This instrument was used to generate a complete distribution of particle sizes, which are then captured in a summary table along with the well-established d10, d50, and d90 parameters, which represent the volume-average particle size (diameter) cutoffs for 10%, 50%, and 90% of the sample's volume. Additionally, statistics are provided to represent the breadth of the particle size distribution, reported as the d50 / d10 ratio. Large values of this ratio indicate a distribution with particles much smaller than the median, or a significant population of fines, which is considered undesirable.
[0111] B3-Stress test In addition to standard particle size analysis, samples were tested using multiple levels of air pressure to create particle dispersion. Results using 0.2 bar dispersion pressure are considered the "gentlest," while results using 2 bar dispersion pressure are more aggressive dispersion. This can be used as a test of particle strength and stability under conditions that may represent stresses experienced during pneumatic conveying operations, for example. This test is quantitatively shown in the table below as a decrease in d50 when tested at 2.0 bar compared to 0.2 bar.
[0112] B4 - Laboratory equipment for heat treatment A 5 liter autoclave made from 316L stainless steel was used for the heat treatment and the corresponding crystallization. The system was pressure-rated for the selected temperature and solvent. The vessel was made from 316L stainless steel. Temperature, pressure and shaft speed were recorded. The impeller was a "Viscoprop" from Ekato, suitable for this purpose.
[0113] B5-Comparative Examples 5~12-Particle size distribution For Comparative Examples 5-12, the respective materials were fully dissolved during heat treatment, then cooled and crystallized according to the details in the table below. In each case, the material was held at the heat treatment temperature for 30 minutes, then cooled to 40°C. Comparative Example 7 used a more sophisticated cooling scheme, with a cooling rate of 20 K / hr from 180°C to 140°C, then 40 K / hr from 140°C to 100°C, and then 60 K / hr from 100°C to 40°C.
[0114] The resulting particles were analyzed to determine the particle size distribution. The ratio d50 / d10 was used as a measure of the width of the distribution, with large numbers indicating a significant fraction of particles with diameters much smaller than the median.
[0115] [Table 6]
[0116] B6 - Examples 4 to 9 - Particle size distribution The heat treatment for Examples 4-9 was carried out in a manner similar to that described above for Comparative Examples 5-12, with the process parameters summarized in the table below. For Examples 8 and 9, the heat treatment time was extended to 240 minutes.
[0117] [Table 7]
[0118] From the data it is clear that heat treatment according to the invention gives a favourable particle size distribution with a significant reduction in fines as indicated by a reduction in the d50 / d10 ratio.
[0119] B7 - Comparative Tests 13 and 14 - Particle Strength Comparative Tests 13 and 14 involved subjecting samples of hydrogenation-purified FDCA (hFDCA) to heat treatment and subjecting the samples to full dissolution and controlled crystallization according to the conditions in the table below. In each case, the sample was 20 wt % FDCA in water and was heated to 180°C to fully dissolve the hFDCA, then cooled to 40°C.
[0120] These samples were tested to generate particle size distributions at a dispersion pressure of 0.2 bar to test particle strength, and also at a dispersion pressure of 2.0 bar, and the results are shown in the table below.
[0121] [Table 8]
[0122] B8 - Examples 10-12 - Particle Strength: Examples 10-12 were subjected to heat treatment by taking a sample of hydrogenation-purified FDCA (hFDCA) and subjecting it to partial dissolution and controlled crystallization according to the conditions in the table below. In each case, the sample was held at the desired temperature for the specified time and then cooled to 40°C.
[0123] To test particle strength, these samples were tested to generate particle size distributions at a dispersion pressure of 0.2 bar and also at a dispersion pressure of 2.0 bar. The results are shown in the table below.
[0124] [Table 9]
[0125] In each of the examples according to the invention, the resulting samples contain stable particles after heat treatment, as indicated by the reduced percentage reduction in d50 when testing at 2.0 bar compared to 0.2 bar dispersion pressure. These solids have been found to have improved solid handling properties.
[0126] Example C - Heat Treatment Temperature and Degree of Dissolution Purified FDCA was prepared by hydrogenation of crude FDCA in water, followed by crystallization, cooling, filtration, and washing with water. The solvent composition was made from acetic acid and water in a 65:35 ratio by mass. For each test, 30 grams of FDCA was mixed with 70 grams of solvent. The mixture was heated to the desired temperature in an autoclave and held at the desired temperature for 60 minutes with stirring. The mixture was then rapidly cooled to 40°C and subsequently filtered. The filter cake was washed with solvent, then dried, and analyzed for the impurities listed in the table. The results are shown in the table below. The estimated percentage of total FDCA dissolved at the heat treatment temperature is also shown. The test at 40°C is for comparison and is not in accordance with the present invention.
[0127] [Table 10]
[0128] The results show that the temperature and degree of dissolution should be precise for the heat treatment, which is measured as the relative removal of FDCA-Me and FCA, respectively.
[0129] Example D - Solvent Composition FDCA was prepared by hydrogenation in water, followed by crystallization, cooling, filtration, and washing with water. Solvent compositions were made from acetic acid and water in different weight ratios as shown in the table. For each test, a composition containing 27-30 weight percent FDCA was made in the desired solvent. The mixture was heated to 180°C in an autoclave and held isothermal for 60 minutes with stirring. The mixture was then rapidly cooled to 40°C and subsequently filtered. The filter cake was washed with solvent, then dried and analyzed for the impurities reported. The results are shown in the table below. The estimated % of total FDCA dissolved at the heat treatment temperature (180°C) is also reported.
[0130] [Table 11]
[0131] It can be seen that excellent removal rates of FDCA-Me and FCA can be obtained using the method of the present invention for a wide variety of solvent compositions.
[0132] Example E - Crystallization from Water After Complete Dissolution Further comparative testing was performed on complete dissolution. FDCA mixtures were prepared by blending different purified FDCA compositions to create samples with varying FCA and FDCA-Me relative to FDCA. Samples were prepared with a total FDCA concentration of 4% by weight to achieve complete dissolution at 140°C. After treatment in water, the samples were cooled to crystallize the FDCA, and the cake was analyzed for purity. Table 11 below shows the results upon recrystallization from water.
[0133] [Table 12]
[0134] The data indicate that the removal efficiency of FCA appears to be reduced when FDCA-Me is present in the system. FDCA-Me does not appear to be removed by recrystallization from water under these conditions, i.e., fully dissolved conditions, with substantial reincorporation into the cake. Comparative Test 20 mimics actual operation and demonstrates removal efficiencies that are often insufficient.
Claims
1. A method for producing a carboxylic acid composition comprising 2,5-furandicarboxylic acid, the method comprising the steps of: a) providing or producing a crude carboxylic acid composition comprising 2,5-furandicarboxylic acid and 5-formyl-2-furancarboxylic acid; b) purifying the crude carboxylic acid composition to produce a purified carboxylic acid composition comprising 2,5-furandicarboxylic acid, the purifying comprising: - hydrogenating at least a portion of the 5-formyl-2-furancarboxylic acid; - oxidizing at least a portion of the 5-formyl-2-furancarboxylic acid; - recrystallizing at least a portion of the 2,5-furandicarboxylic acid; and - hydrolyzing the dialkyl ester of 2,5-furandicarboxylic acid comprising at least one step selected from the group consisting of: c) providing or manufacturing a processing solvent composition comprising greater than 45% by weight of acetic acid, based on the weight of the processing solvent composition; d) providing or manufacturing a thermal treatment composition comprising said purified carboxylic acid composition and said treatment solvent composition; e) subjecting the heat-treated composition to an elevated temperature ranging from 140 to 200°C for a time ranging from 5 to 240 minutes to obtain a treated composition, wherein the percentage of dissolved 2,5-furandicarboxylic acid relative to the total amount of 2,5-furandicarboxylic acid ranges from 10 to 80%; and f) cooling the treated composition to a temperature in the range of 20 to 80°C and separating at least a portion of the 2,5-furandicarboxylic acid from the treated composition to obtain a treated mother liquor comprising a carboxylic acid composition and acetic acid; A method comprising:
2. 2. The method of claim 1, wherein the crude carboxylic acid composition and / or the purified carboxylic acid composition comprises the monomethyl ester of 2,5-furandicarboxylic acid.
3. 3. The method of claim 1 or 2, wherein in step e) the heat-treated composition is agitated for at least a portion of the time to expose the solid 2,5-furandicarboxylic acid to shear forces.
4. the heat treatment composition comprises 2,5-furandicarboxylic acid in an amount of 15 to 45% by weight, based on the weight of the heat treatment composition; and / or the treatment solvent composition comprising acetic acid and water in a ratio of between 60:40 and 99.9:0.1; 4. The method according to any one of claims 1 to 3.
5. The process parameters in steps e) and f) are - exhibiting a reduction in mean particle size of less than 35% between particle size measurements at a dispersion pressure of 0.2 bar and 2 bar; and / or - having a volume average median diameter (d50) in the range of 60 to 200 μm; 5. The method of any one of claims 1 to 4, selected to produce particles of 2,5-furandicarboxylic acid.
6. 6. The process of claim 1, wherein the crude carboxylic acid composition comprises 2-furan carboxylic acid in an amount ranging from 1 to 2000 ppm by weight, based on the weight of the composition, and wherein the carboxylic acid composition comprises 2-furan carboxylic acid in an amount of no more than 700 ppm by weight.
7. 7. The process of any one of claims 1 to 6, wherein the crude carboxylic acid composition comprises the monoalkyl ester of 2,5-furandicarboxylic acid in an amount ranging from 0.2 to 5.0 wt.%, based on the weight of the crude carboxylic acid composition.
8. 8. The process according to any one of claims 1 to 7, wherein the purification in step b) comprises hydrogenating at least a portion of the 5-formyl-2-furancarboxylic acid.
9. 9. The method according to claim 1, wherein in step e), the percentage of dissolved 2,5-furandicarboxylic acid relative to the total amount of 2,5-furandicarboxylic acid is in the range of 20 to 60%.
10. the temperature of step e) is in the range of 150 to 190°C, and / or 10. The method of any one of claims 1 to 9, wherein in step e) the heat treatment composition is subjected to an elevated temperature for a period in the range of 15 to 120 minutes.
11. 11. The method of any one of claims 1 to 10, wherein the treated composition in step f) is cooled to a temperature in the range of 30 to 80°C.
Citation Information
Patent Citations
Method for purifying acid compositions containing 2-formyl-furan-5-carboxylic acid and 2,5-furandicarboxylic acid
JP2016529290A
Method for producing purified acid composition
JP2018521978A
Method for the preparation of 2,5-furandicarboxylic acid and esters thereof
WO2011043660A2
An oxidation process to produce a purified carboxylic acid product via solvent displacement and post oxidation
WO2014014981A1
Process for the preparation of a purified acid composition
WO2016195499A1