Method for preparing shaped zeolite catalyst articles
A novel method for preparing shaped articles with zeolitic materials and oxide binders addresses the challenge of mechanical stability and catalytic activity in converting oxygenates to olefins, achieving improved mechanical strength and catalytic performance with reduced carbon emissions.
Patent Information
- Application Number
- JP2022535851
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-12-11
- Filing Date
- 2020-12-10
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2040-12-10
AI Technical Summary
Existing catalytic materials for converting oxygenates to olefins, particularly methanol to propylene, face challenges in achieving improved mechanical stability and catalytic activity while maintaining a low carbon footprint.
A method for preparing shaped articles using a zeolitic material and oxide binders, involving a specific mixture process with plasticizers and controlled ratios, which results in improved mechanical strength, flexibility, and diffusion coefficients, while maintaining excellent catalytic activity.
The method produces molded articles with enhanced mechanical properties and catalytic performance, including improved crush strength and diffusion coefficients, suitable for converting methanol to propylene with reduced carbon emissions.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a particular method for preparing molded articles that includes the use of a plasticizer, molded articles prepared according to said method, and uses thereof, which molded articles exhibit exceptional physical and chemical properties while containing relatively small amounts of binder. [Background technology]
[0002] In the field of olefin synthesis, the conversion of methanol to propylene plays a key role and has been of increasing interest due to the increasing availability of C1 starting materials. It is known that the synthesis of short-chain olefins in particular requires highly specific catalysts for the conversion of each starting material.
[0003] A particular challenge with such processes is that they not only depend on the optimal choice of reaction parameters, but more importantly on the use of specific catalysts that allow a highly efficient and selective conversion, e.g., to the desired olefin fraction. As mentioned above, processes in which methanol is employed as a starting material are of particular interest, the catalytic conversion of which usually leads to a mixture of hydrocarbons and their derivatives, in particular olefins, paraffins, and aromatics.
[0004] Therefore, a particular challenge in such catalytic conversions lies in the optimization and fine-tuning of the catalysts employed, as well as the process configuration and parameters. The processes developed in the past decades for the conversion of oxygenates to olefins, especially methanol to olefins, have become increasingly important in view of the dwindling oil reserves and are therefore designated as methanol-to-olefins processes (MTO processes). The optimization of such processes is now also crucial for reducing carbon dioxide emissions. Among the catalytic materials found for use in such conversions, zeolitic materials have proven to be highly efficient;
[0005] WO2012 / 085154A1 relates to a method for preparing unsaturated carbohydrates in the presence of a catalyst comprising titanium-silicon-aluminum-phosphate (also referred to herein as TAPSO) or titanium-aluminum-phosphate, and it is disclosed therein that the titanium-silicon-aluminum-phosphate used preferably has a CHA framework structure type.
[0006] US2014 / 0058180A1 relates to a method for producing a phosphorus-containing catalyst, the catalyst preferably comprising a zeolite having a TON, MTT, MFI, MEL, MTW, or EUO framework structure type. It is disclosed that the method comprises treating a calcined zeolite with an aqueous solution or water, whereby the aqueous solution can be selected from the group consisting of water, aqueous ammonium chloride, dilute hydrochloric acid, dilute acetic acid, and dilute nitric acid. In particular, US2014 / 058180A1 discloses in Example 2 a method for preparing a molded article comprising a zeolite and a binder, wherein the weight ratio of the binder to the total of the binder and the zeolite is about 0.176.
[0007] US 10,112,188 B2 and US 2014 / 0058181 A1 relate to a method for preparing a phosphorus-containing zeolite-type catalyst based on a crystalline aluminosilicate, the catalyst of the method, and the use of the catalyst for converting methanol to olefins. The method comprises mixing aluminum oxide and an acid with a pentasil zeolite powder, and the acid can be sulfuric acid, nitric acid, acetic acid, formic acid, oxalic acid, or citric acid.
[0008] US Pat. No. 1,005,073 B2 also relates to the preparation of phosphorus-containing zeolites, preferably those having an MFI or MEL framework structure type.
[0009] US9,511,361B2 relates to a catalyst comprising a pentasil-type aluminosilicate and a binder, wherein the catalyst is in the form of spheres having a specific average diameter and a specific BET surface area. The catalyst can be used for the conversion of methanol to olefins. Furthermore, it is disclosed that the prepared catalyst can contain 10 to 40% by weight of the binder, based on the total weight of the aluminosilicate and the binder.
[0010] US2017 / 0121259A1 relates to a method for producing a catalyst containing copper, zinc, and aluminum, in particular a method for producing a catalyst molding having improved mechanical strength, in particular lateral compressive strength.
[0011] WO2018 / 109083A1 relates to a tableted catalyst for methanol synthesis with improved mechanical stability. The catalyst comprises a metal-containing mixture including copper, zinc, and aluminum, and calcium aluminate as a binder material.
[0012] CN100503041C relates to a catalyst for dimethyl ether synthesis and a method for its preparation, the catalyst comprising a hydrophobic zeolite having protons, cations selected from alkali metals, alkaline earth metals and ammonium, and an inorganic binder selected from alumina, silica and silica-alumina. The preparation of the catalyst may include providing a paste prepared from a mixture of an acid and a binder, mixing the paste with a zeolite, and extruding the resulting mixture.
[0013] CN104511298B relates to a catalyst system for converting methanol to propylene, characterized in that the catalyst comprises, based on the total mass of the catalyst system, a) 30-85 mass% of a modified zeolite molecular sieve having an SAR of 100-3000, b) 0.001-5 mass% of a modifier, c) 0.1-20 mass% of a promoter component, d) 10-50 mass% of a hydrophobic silicon powder, and e) 3-55 mass% of a binder.
[0014] Despite the considerable efforts associated with the prior art on the one hand with the synthesis of new catalytic materials by using new and improved synthesis procedures, and on the other hand with their various applications, particularly in the field of catalysis, there remains a continuous need to provide new catalytic materials, and in particular shaped articles, which exhibit further improved properties, in particular achieving an improved lifetime with regard to their mechanical stability. [Prior art documents] [Patent documents]
[0015] [Patent Document 1] WO2012 / 085154A1 [Patent Document 2] US2014 / 0058180A1 [Patent Document 3] US10,112,188B2 [Patent Document 4] US2014 / 0058181A1 [Patent Document 5] US10,005,073B2 [Patent Document 6] US9,511,361B2 [Patent Document 7] US2017 / 0121259A1 [Patent Document 8] WO2018 / 109083A1 [Patent Document 9] CN100503041C [Patent Document 10] CN104511298B Summary of the Invention [Problem to be solved by the invention]
[0016] Therefore, there remains a need to provide a method for preparing molded articles that exhibit improved mechanical properties while maintaining excellent catalytic activity in the conversion of oxygenates to olefins, particularly methanol to propylene. It would be particularly interesting to provide such molded articles that exhibit improved mechanical stability, particularly improved crush strength, while maintaining excellent catalytic activity.
[0017] It was therefore an object of the present invention to provide novel molded articles having relatively improved physical properties, in particular improved mechanical strength, suitable for the conversion of oxygenates to olefins, in particular for the selective conversion of methanol to propylene, for example, in stationary applications. Similarly, molded articles can be prepared by novel methods having improved tortuosity and improved diffusion coefficients with respect to water. It was therefore a further object of the present invention to provide methods for preparing such molded articles, in particular methods with a relatively low carbon dioxide footprint. [Brief explanation of the drawings]
[0018] DESCRIPTION OF THE DRAWINGS
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[0019] Surprisingly, it has now been found that a novel method for preparing shaped articles can be provided, which results in shaped articles with improved mechanical properties. Furthermore, it has been surprisingly found that, according to the present invention, shaped articles can be prepared that exhibit improved physical and chemical properties, in particular improved mechanical strength and also improved flexibility with respect to water, and that exhibit improved diffusion coefficients. The shaped articles of the present invention have also been shown to achieve excellent catalytic activity in the conversion of methanol to olefins.
[0020] The present invention therefore provides a method for preparing a shaped article comprising a zeolitic material and one or more oxide binders, said zeolitic material comprising in its framework structure YO2 and optionally X2O3, wherein Y is a tetravalent element and X is a trivalent element, (i) preparing a mixture comprising a zeolite material, a source of oxide binder, a first plasticizer, and an acid; (ii) preferably, mixing water with the mixture obtained in (i); (iii) preferably mixing a second plasticizer with the mixture obtained in (i) or (ii); (iv) preferably, mixing water with the mixture obtained in (iii); (v) molding the mixture obtained in (i), (ii), (iii) or (iv) to obtain a precursor of a molded article; Including, wherein in the mixture obtained in (i), the mass ratio of the source of oxide binder, calculated as oxide, to the sum of the zeolite material and the oxide binder, calculated as oxide, is in the range of 0.05:1 to 0.15:1.
[0021] According to the present invention, a molded article is understood as a three-dimensional entity resulting from a molding process, and therefore the term "molded article" is used synonymously with the term "molded body".
[0022] Typically, the zeolite material contained in the molded article of the present invention is in the form of a powder which can be prepared, with respect to its particle size distribution, for example, by a specific synthesis method which results in the desired particle size distribution, or by milling a given zeolite material, or by spray drying a suspension comprising the zeolite material, or by spray granulation of a suspension comprising the zeolite material, or by flash drying a suspension comprising the zeolite material, or by microwave drying of a suspension comprising the zeolite material.
[0023] Preferably, method (i) comprises the first alternative (i.1.a) providing a mixture comprising a zeolite material, a source of oxide, and a first plasticizer; (i.1.b) mixing an acid with the mixture obtained in (i.1.a) Including those caused by.
[0024] Preferably, process (i) is the second alternative (i.2.a) providing a zeolite material; (i.2.b) providing a mixture comprising a source of oxide binder, an acid, and optionally water; (i.2.c) mixing the mixture obtained in (i.2.b) with the zeolite material provided in (i.2.a); (i.2.d) mixing a first plasticizer into the mixture obtained in (i.2.c); Including those caused by.
[0025] If the method includes (i.2.c), the mixing according to (i.2.c) may be carried out by mixing the mixture provided in (i.2.b) with the zeolitic material provided in (i.2.a), or by mixing the zeolitic material provided in (i.2.a) with the mixture provided in (i.2.b).
[0026] When the method is according to the second alternative comprising (i.2.a), (i.2.b), (i.2.c) and (i.2.d), it is preferred that water is included in the mixture obtained in (i.2.b), the mixture obtained in (i.2.b) more preferably exhibiting a mass ratio of water to source of oxide binder, calculated as source of oxide binder, in the range of from 1:1 to 10:1, more preferably in the range of from 4.0:1 to 5.0:1, more preferably in the range of from 4.50:1 to 4.70:1.
[0027] More preferably, the present invention relates to a method for preparing a shaped article comprising a zeolitic material and one or more oxide binders, the zeolitic material comprising in its framework structure YO2 and optionally X2O3, wherein Y is a tetravalent element and X is a trivalent element, said method comprising (i') preparing a mixture of a zeolite material, a source of oxide binder, and a first plasticizer; (ii') mixing an acid with the mixture obtained from (i'); (iii') preferably mixing water with the mixture obtained from (ii'); (iv') preferably mixing a second plasticizer with the mixture obtained from (ii') or (iii'); (v') preferably mixing water with the mixture obtained from (iv'); (vi') A step of molding the mixture obtained from (ii'), (iii'), (iv') or (v') to obtain a precursor of a molded article. Including, In the mixture prepared in (i'), the mass ratio of the oxide binder, calculated as oxide, to the sum of the zeolite material and the source of the oxide binder, calculated as oxide, is in the range of 0.05:1 to 0.15:1.
[0028] The mixture prepared in (i) or (i') is preferably mixed in a kneader, a Lodige mixer (German: Loedige Mischer) or a mix-muller.
[0029] No particular limitation applies to the content of the first plasticizer in the mixture prepared in (i) or (i'). Preferably, in the mixture prepared in (i) or (i'), the mass ratio of the first plasticizer to the sum of the source of oxide binder, calculated as the source of zeolite material and the source of oxide binder, is in the range of 0.01:1 to 0.1:1, preferably in the range of 0.02:1 to 0.08:1, more preferably in the range of 0.03:1 to 0.07:1, more preferably in the range of 0.04:1 to 0.06:1, more preferably in the range of 0.045:1 to 0.055:1.
[0030] Generally, any suitable compound can be selected as the first plasticizer as long as it performs its function.Preferably, the first plasticizer is an organic compound.The first plasticizer is particularly preferably selected from the group consisting of organic polymers, carbohydrates, graphite, plant additives, and mixtures of two or more thereof, more preferably from polymeric vinyl compounds, polyalkylene oxides, polyacrylates, polymethacrylates, polyolefins, polyamides, polyesters, polystyrenes, polysaccharides, and mixtures of two or more thereof, and the first plasticizer is more preferably polysaccharides.
[0031] When the first plasticizer is a polysaccharide, the polysaccharide is preferably selected from the group consisting of cellulose, cellulose derivatives, and starch, and the polysaccharide is more preferably one or more of methylcellulose and carboxymethylcellulose.
[0032] Furthermore, when the first plasticizer is a polysaccharide, preferably the polysaccharide has a bulk density in the range of 500 to 800 g / l, more preferably in the range of 550 to 750 g / l, more preferably in the range of 600 to 700 g / l, more preferably in the range of 630 to 670 g / l.
[0033] Furthermore, when the first plasticizer is a polysaccharide, preferably the polysaccharide has a viscosity in the range of 3000 to 4000 mPas, more preferably in the range of 3400 to 3600 mPas, more preferably in the range of 3450 to 3550 mPas.
[0034] No particular limitation is imposed on the content of the source of oxide binder. Preferably, in the mixture obtained in (i) or (i'), the mass ratio of the source of oxide binder, calculated as oxide, to the sum of the zeolitic material and the source of oxide binder, calculated as oxide, is in the range of 0.06:1 to 0.14:1, more preferably in the range of 0.07:1 to 0.13:1, more preferably in the range of 0.08:1 to 0.12:1, and more preferably in the range of 0.09:1 to 0.11:1.
[0035] Generally, any suitable compound can be used as the source of the oxide binder. Preferably, the source of the oxide binder is a source of one or more of silica, alumina, and silica-alumina, more preferably a source of alumina.
[0036] Particularly preferably, the source of oxide binder comprises one or more of AlOOH (boehmite), Al2O3, Al(OH)3, hydrotalcite, silica sol, colloidal silica, wet process silica, and dry process silica, preferably one or more of AlOOH (boehmite) and Al2O3, more preferably AlOOH (boehmite), and the source of oxide binder is more preferably AlOOH (boehmite).
[0037] Regarding the alternative where the oxide binder may be silica, both colloidal silica, so-called "wet process" silica, and so-called "dry process" silica can be used.
[0038] There are no particular limitations regarding the tetravalent element Y of the zeolite material, and any tetravalent element in the periodic system of elements can be used for Y. Preferably, Y is selected from the group consisting of Si, Sn, Ti, Zr, Ge, and mixtures of two or more thereof, more preferably Si, Ti, and mixtures thereof, and more preferably Y is Si.
[0039] There are no particular limitations regarding the trivalent element X of the zeolitic material, and any trivalent element in the periodic system of elements can be used for X. Preferably, X is selected from the group consisting of B, Al, Ga, In, and mixtures of two or more thereof, more preferably B, Al, and mixtures thereof, and more preferably X is Al.
[0040] No particular restrictions apply with respect to the molar ratio of YO to XO in the zeolitic material. Particularly preferably, the zeolitic material has a molar ratio of YO to XO in the range of from 50 to 150, more preferably in the range of from 75 to 125, more preferably in the range of from 90 to 120, more preferably in the range of from 95 to 115. Particularly preferably, the molar ratio of YO to XO in the zeolitic material is the molar ratio of silica to alumina.
[0041] There are no restrictions regarding the framework structure type of the zeolite material. Preferably, the zeolite material is ABW, ACO, AEI, AEL, AEN, AET, AFG, AFI, AFN, AFO, AFR, AFS, AFT, AFV, AFX, AFY, AHT, ANA, APC, APD, AST, ASV, ATN, ATO, ATS, ATT, ATV, AVL, AWO, AWW, BCT, BEA, BEC, BIK, BOF, BOG, BOZ, BPH, BRE, BSV, CAN, CAS, CDO, CFI, CGF, CGS, CHA, -CHI, -CLO, CON, CSV, CZP, DAC, DDR, DFO, DFT, DOH, DON, EAB, EDI, EEI, EMT, EON, EPI, ERI, ESV, ETR, EUO, *-EWT, EZT, FAR, FAU, FER, FRA, GIS, GIU, GME, GON, GOO, HEU, IFO, IFR, -IFU, IFW, IFY, IHW, IMF, IRN, IRR, -IRY, ISV, ITE, ITG, ITH, *-ITN, ITR, ITT, -ITV, ITW, IWR, IWS, IWV, IWW, JBW, JNT, JOZ, JRY, JSN, JSR, JST, JSW, KFI, LAU, LEV, LIO, -LIT, LOS, LOV, LTA, LTF, LTJ, LTL, LTN, MAR, MAZ, MEI, MEL, MEP, MER, MFI, MFS, MON, MOR, MOZ, *MRE, MSE, MSO, MTF, MTN, MTT, MTW, MVY, MWF, MWW, NAB, NAT, NES, NON, NPO, NPT, NSI, OBW, OFF, OKO, OSI, OSO, OWE, -PAR, PAU, PCR, PHI, PON, POS, PSI, PUN, RHO, -RON, RRO, RSN, RTE, RTH, RUT, RWR, RWY, SAF, SAO, SAS, SAT, SAV, SBE, SBN, SBS, SBT, SEW, SFE, SFF, SFG, SFH, SFN, SFO, SFS, *SFV, SFW, SGT, SIV, SOD, SOF, SOS, SSF, *-SSO, SSY, STF, STI, *STO, STT, STW, -SVR, SVV, SZR, TER, THO, TOL, TON, TSC, TUN, UEI, UFI, UOS, UOV, UOZ, USI, UTL, UWY, VET, VFI, VNI, VSV, WEI, -WEN, YUG, ZON,and mixtures of two or more thereof, more preferably MFI, MEL, ITH, IWR, CON, and mixtures of two or more thereof, and more preferably MFI, ITH, IWR, CON, and mixtures of two or more thereof. It is particularly preferred that the zeolitic material has an MFI framework structure type.
[0042] When the zeolitic material has an MFI framework structure type, preferably the zeolitic material is selected from the group consisting of silicalite, ZSM-5, [Fe-Si-O]-MFI, [Ga-Si-O]-MFI, [As-Si-O]-MFI, AMS-1B, AZ-1, Bor-C, Encilite, Boralite C, and the like. C), FZ-1, LZ-105, Mutinite, NU-4, NU-5, TS-1, TSZ, TSZ-III, TZ-01, USC-4, USI-108, ZBH, ZKQ-1B, ZMQ-TB, MnS-1, and FeS-1, and mixtures of two or more thereof, more preferably silicalite, ZSM-5, AMS-1B, AZ-1, Ensilite, FZ-1, LZ-105, Mutinite, NU-4, NU-5, TS-1, TSZ, T More preferably, the zeolitic material having an MFI type framework structure is selected from the group consisting of zeolites SZ-III, TZ-01, USC-4, USI-108, ZBH, ZKQ-1B, and ZMQ-TB, including mixtures of two or more thereof; more preferably, the zeolitic material having an MFI type framework structure comprises silicalite and / or ZSM-5, preferably ZSM-5; more preferably, the zeolitic material having an MFI type framework structure is zeolite silicalite and / or ZSM-5, preferably ZSM-5.
[0043] Preferably, the zeolitic material comprises one or more alkaline earth metals M, which are preferably selected from the group consisting of Be, Mg, Ca, Sr, Ba, and mixtures of two or more thereof, preferably from the group consisting of Mg, Ca, and mixtures thereof, more preferably the alkaline earth metal M comprises, more preferably is Mg.
[0044] If the zeolitic material comprises one or more alkaline earth metals M, preferably the zeolitic material comprises alkaline earth metal(s) M in an amount in the range of 0.5 to 4.0% by weight, more preferably in the range of 1.0 to 3.0% by weight, more preferably in the range of 1.5 to 2.7% by weight, more preferably in the range of 1.7 to 2.5% by weight, calculated as the element, based on the weight of the shaped article.
[0045] Furthermore, if the zeolitic material comprises one or more alkaline earth metals M, preferably the zeolitic material comprises alkaline earth metal(s) M in an amount in the range of 0.5 to 4.0% by weight, more preferably in the range of 1.8 to 2.6% by weight, more preferably in the range of 2.0 to 2.4% by weight, more preferably in the range of 2.1 to 2.3% by weight, calculated as the element, based on the weight of the zeolitic material.
[0046] Preferably, the zeolitic material is impregnated with one or more alkaline earth metals M.
[0047] No particular restrictions apply to the method by which the zeolitic material is impregnated with one or more alkaline earth metals M. When the zeolitic material is impregnated with one or more alkaline earth metals M, preferably the zeolitic material is impregnated with one or more alkaline earth metals M by spray impregnation, deposition impregnation, incipient impregnation, or wet impregnation adhesion techniques.
[0048] No particular limitation applies to the mass ratio of the source of oxide binder to the zeolitic material in the mixture prepared in (i) or (i'). In the mixture prepared in (i) or (i'), preferably the mass ratio of the source of oxide binder, calculated as the source of oxide binder, to the zeolitic material is in the range of 0.05:1 to 0.25:1, more preferably in the range of 0.07:1 to 0.22:1, more preferably in the range of 0.10:1 to 0.19:1, more preferably in the range of 0.11:1 to 0.18:1, more preferably in the range of 0.12:1 to 0.17:1, more preferably in the range of 0.13:1 to 0.16:1, more preferably in the range of 0.14:1 to 0.15:1.
[0049] No particular limitation is imposed on the chemical or physical properties of the acid mixed in (ii') or the acid contained in the mixture prepared in (i). Preferably, the acid is one or more of an inorganic acid and an organic acid. When the acid includes an organic acid, preferably, the organic acid is one or more of formic acid, acetic acid, propionic acid, oxalic acid, and tartaric acid, more preferably, formic acid. When the acid includes an inorganic acid, preferably, the inorganic acid is one or more of hydrochloric acid, nitric acid, and phosphoric acid, more preferably, nitric acid. Particularly preferably, the acid includes one or more of formic acid and nitric acid, preferably, the acid is one or more of formic acid and nitric acid.
[0050] According to a first alternative, preferably the acid is mixed in (i.1.b) or provided in the mixture of (i.2.b) as an aqueous solution, more preferably comprising an amount of acid in the range of 5 to 50% by weight, more preferably in the range of 10 to 40% by weight, more preferably in the range of 12.5 to 37.5% by weight, more preferably in the range of 15 to 35% by weight, more preferably in the range of 17.5 to 32.5% by weight, more preferably in the range of 20 to 30% by weight, more preferably in the range of 22.5 to 27.5% by weight, more preferably in the range of 24 to 26% by weight, based on the total weight of the aqueous solution, and preferably the acid is formic acid.
[0051] According to a second alternative, preferably the acid is mixed in (i.1.b) or provided in the mixture of (i.2.b) as an aqueous solution, more preferably comprising the acid in an amount in the range of 1 to 20% by weight, more preferably in the range of 3 to 15% by weight, more preferably in the range of 5 to 13% by weight, more preferably in the range of 6 to 12% by weight, more preferably in the range of 7 to 11% by weight, more preferably in the range of 8 to 10% by weight, based on the total weight of the aqueous solution, and preferably the acid is nitric acid.
[0052] When the first or second alternatives apply with respect to mixing an acid in (i.1.b) or providing an acid to provide a mixture in (i.2.b), preferably the mass ratio of acid mixed in (i.1.b) or provided to provide a mixture in (i.2.b) to the sum of the source of zeolitic material and oxide binder in the mixture prepared in (i) or (i') is in the range of 0.05:1 to 0.15:1, more preferably in the range of 0.06:1 to 0.14:1, preferably in the range of 0.07:1 to 0.13:1, more preferably in the range of 0.08:1 to 0.12:1, more preferably in the range of 0.09:1 to 0.11:1.
[0053] According to a third alternative, preferably the acid is mixed with (i.1.b) or the mixture of (i.2.b) is provided as an aqueous solution, preferably comprising an amount of acid in the range of 50 to 80% by weight, more preferably in the range of 55 to 75% by weight, more preferably in the range of 60 to 70% by weight, more preferably in the range of 63 to 67% by weight, based on the total weight of the aqueous solution, the acid being preferably nitric acid.
[0054] When the third alternative is applied, the mass ratio of the acid mixed in (i.1.b) or provided to provide the mixture in (i.2.b) to the sum of the sources of zeolitic material and oxide binder in the mixture prepared in (i) or (i') is in the range of 0.005:1 to 0.05:1, more preferably in the range of 0.010:1 to 0.030:1, more preferably in the range of 0.015:1 to 0.025:1.
[0055] Preferably, in (ii) or (iii'), water, preferably deionized water, is mixed with the mixture, preferably the mixture obtained in (i) or (ii').
[0056] In (ii) or (iii'), when water is mixed into the mixture, preferably the mixture obtained from (i) or (ii'), preferably the mass ratio of water to the sum of the source of oxide binder and zeolitic material in the mixture in (ii) or (iii') is in the range of 0.1:1 to 1.5:1, more preferably in the range of 0.2:1 to 0.8:1, more preferably in the range of 0.3:1 to 0.7:1, more preferably in the range of 0.3:1 to 0.6:1, more preferably in the range of 0.4:1 to 0.5:1, more preferably in the range of 0.45:1 to 0.46:1.
[0057] In (iii) or (iv'), preferably a second plasticizer is mixed into the mixture, preferably into the mixture obtained from (i), (ii), (ii') or (iii'), the second plasticizer preferably being different from the first plasticizer.
[0058] When a second plasticizer is mixed into the mixture, preferably into the mixture obtained from (i), (ii), (ii') or (iii'), preferably in the mixture of (iii) or (iv'), the mass ratio of the second plasticizer to the sum of the source of oxide binder and the zeolite material is in the range of 0.001:1 to 0.030:1, more preferably in the range of 0.005:1 to 0.015:1, more preferably in the range of 0.007:1 to 0.013:1, more preferably in the range of 0.008:1 to 0.012:1, more preferably in the range of 0.009:1 to 0.011:1.
[0059] No particular restrictions apply to the chemical or physical properties of the second plasticizer. When a second plasticizer is mixed into the mixture, preferably into the mixture obtained from (i), (ii), (ii'), or (iii'), the second plasticizer is preferably an organic compound. Particularly preferably, the second plasticizer is selected from the group consisting of organic polymers, carbohydrates, graphite, plant additives, and mixtures of two or more thereof, more preferably from the group consisting of polymeric vinyl compounds, polyalkylene oxides, polyacrylates, polymethacrylates, polyolefins, polyamides, polyesters, polystyrenes, polysaccharides, and mixtures of two or more thereof. Particularly preferably, the second plasticizer is polyethylene oxide or a polysaccharide.
[0060] When the second plasticizer is a polysaccharide, preferably the polysaccharide is selected from the group consisting of cellulose, cellulose derivatives, and starch, and more preferably the polysaccharide is one or more of methylcellulose and carboxymethylcellulose.
[0061] Preferably, in (iv) or (v'), water, preferably deionized water, is mixed with the mixture, preferably the mixture obtained from (i), (ii), (iii), (ii'), (iii'), or (iv').
[0062] In (iv) or (v'), when water is mixed into the mixture, preferably the mixture obtained from (i), (ii), (iii), (ii'), (iii'), or (iv'), preferably the mass ratio of water to the sum of the source of oxide binder and the zeolitic material in the mixture of (iv) or (v') is in the range of 0.1:1 to 1:1, more preferably in the range of 0.30:1 to 0.90:1, more preferably in the range of 0.50:1 to 0.7:1, more preferably in the range of 0.55:1 to 0.65:1, more preferably in the range of 0.60:1 to 0.61:1.
[0063] Preferably, in (v) or (vi'), the mixture is formed into strings, more preferably strings having a hexagonal, rectangular, quadratic, triangular, elliptical, or circular cross section, more preferably strings having a circular cross section.
[0064] If the strands have a circular cross section, preferably the strands having a circular cross section have a diameter in the range of 0.5 to 7 mm, more preferably in the range of 1.5 to 3.5 mm, more preferably in the range of 2.1 to 2.9 mm, more preferably in the range of 2.3 to 2.7 mm, more preferably in the range of 2.4 to 2.6 mm.
[0065] Preferably, in (v) or (vi'), the shaping comprises extruding the mixture.
[0066] Suitable extrusion equipment is described, for example, in Ullmann's Enzyklopädie der Technischen Chemie, 4th edition, Vol. 2, pp. 295 ff., 1972. In addition to the use of extruders, extrusion presses can also be used to prepare shaped articles. If necessary, the extruder can be appropriately cooled during the extrusion process. The strands exiting the extruder through the extruder die head can be mechanically cut, for example, by a suitable wire or discontinuous gas stream.
[0067] Preferably, the shaping according to (v) or (vi') further comprises drying the precursor of the shaped article in a gas atmosphere.
[0068] Preferably, drying is carried out at a temperature of the gas atmosphere in the range of from 80 to 160° C., more preferably in the range of from 100 to 140° C., more preferably in the range of from 110 to 130° C. Preferably, the gas atmosphere comprises nitrogen, oxygen or a mixture thereof, more preferably the gas atmosphere is oxygen, air or lean air.
[0069] Preferably, the shaping according to (v) or (vi') further comprises calcining the shaped article precursor, preferably the dried shaped article precursor, in a gas atmosphere. Preferably, the calcination is carried out at a gas atmosphere temperature in the range of from 500 to 650°C, more preferably in the range of from 530 to 570°C, more preferably in the range of from 540 to 560°C. Preferably, the gas atmosphere comprises nitrogen, oxygen, or a mixture thereof; more preferably, the gas atmosphere is oxygen, air, or lean air.
[0070] Furthermore, the present invention relates to a molded article obtainable or obtained by the method of any one of the embodiments disclosed herein.
[0071] The present invention further relates to a shaped article, preferably prepared by the method of any one of the embodiments disclosed herein, comprising one or more oxide binders and a zeolitic material, wherein the zeolitic material comprises YO and optionally XO in its framework structure; Y is a tetravalent element and X is a trivalent element; The molded article comprises one or more oxide binders in an amount ranging from 5 to 15% by weight, calculated as oxide, and the molded article exhibits a crush strength of at least 9 N. Preferably, the crush strength is determined according to Example 5.
[0072] Preferably, the molded article exhibits a crushing strength of at least 10 N, more preferably at least 15 N, more preferably at least 18 N, more preferably at least 19 N, more preferably at least 20 N. Preferably, the crushing strength is determined according to Reference Example 5. In particular, preferably, the molded article exhibits a crushing strength in the range of 15 to 50 N, more preferably in the range of 17 to 30 N.
[0073] Preferably, the molded product has a particle size of 0.40 to 1.30 × 10 -9 m 2 / s, more preferably 0.60 to 1.10 × 10 -9 m 2 / s, more preferably 0.72 to 0.98 × 10 -9 m 2 / s. Preferably, the diffusion coefficient is determined according to Example 4.
[0074] Preferably, the molded article exhibits a tortuosity parameter for water in the range of 1.00 to 3.75, more preferably in the range of 1.2 to 3.0, more preferably in the range of 1.4 to 2.8. Preferably, the tortuosity parameter for water is determined as described in Reference Example 2.
[0075] No particular restrictions apply to the chemical or physical properties of the one or more oxide binders contained in the molded article. Preferably, the one or more oxide binders are selected from the group consisting of silica, alumina, silica-alumina, and mixtures of two or more thereof, and the one or more oxide binders are preferably alumina.
[0076] Preferably, the shaped article comprises one or more oxide binders in an amount, calculated as oxide, in the range of from 6 to 14% by weight, more preferably in the range of from 7 to 13% by weight, more preferably in the range of from 8 to 12% by weight, more preferably in the range of from 9 to 11% by weight.
[0077] There are no particular limitations on the tetravalent element Y of the zeolite material contained in the molded article, and any tetravalent element in the periodic system of elements can be used for Y. Preferably, Y is selected from the group consisting of Si, Sn, Ti, Zr, Ge, and mixtures of two or more thereof, more preferably from the group consisting of Si, Ti, and mixtures thereof, and more preferably Y is Si.
[0078] There are no particular limitations on the trivalent element X of the zeolite material contained in the molded article, and any trivalent element in the periodic system of elements can be used for X. Preferably, X is selected from the group consisting of B, Al, Ga, In, and mixtures of two or more thereof, more preferably from the group consisting of B, Al, and mixtures thereof, and more preferably, X is Al.
[0079] I'm not sure if I'm going to be able to do that. The lightning bolt, the lightning bolt, the lightning bolt, the lightning bolt. ABW, ACO, AEI, AEL, AEN, AET, AFG, AFI, AFN, AFO, AFR, AFS, AFT, AFV, AFX, A FY、AHT、ANA、APC、APD、AST、ASV、ATN、ATO、ATS、ATT、ATV、AVL、AWO、AWW、BCT 、BEA、BEC、BIK、BOF、BOG、BOZ、BPH、BRE、BSV、CAN、CAS、CDO、CFI、CGF、CGS、CH A、-CHI、-CLO、CON、CSV、CZP、DAC、DDR、DFO、DFT、DOH、DON、EAB、EDI、EEI、EM T、EON、EPI、ERI、ESV、ETR、EUO、*-EWT、EZT、FAR、FAU、FER、FRA、GIS、GIU、GME 、GON、GOO、HEU、IFO、IFR、-IFU、IFW、IFY、IHW、IMF、IRN、IRR、-IRY、ISV、ITE 、ITG、ITH、*-ITN、ITR、ITT、-ITV、ITW、IWR、IWS、IWV、IWW、JBW、JNT、JOZ、JRY 、JSN、JSR、JST、JSW、KFI、LAU、LEV、LIO、-LIT、LOS、LOV、LTA、LTF、LTJ、LTL、 LTN、MAR、MAZ、MEI、MEL、MEP、MER、MFI、MFS、MON、MOR、MOZ、*MRE、MSE、MSO、M TF、MTN、MTT、MTW、MVY、MWF、MWW、NAB、NAT、NES、NON、NPO、NPT、NSI、OBW、OFF 、OKO、OSI、OSO、OWE、-PAR、PAU、PCR、PHI、PON、POS、PSI、PUN、RHO、-RON、RRO、 RSN, RTE, RTH, RUT, RWR, RWY, SAF, SAO, SAS, SAT, SAV, SBE, SBN, SBS, SBT, SE W、SFE、SFF、SFG、SFH、SFN、SFO、SFS、*SFV、SFW、SGT、SIV、SOD、SOF、SOS、SSF、 *-SSO、SSY、STF、STI、*STO、STT、STW、-SVR、SVV、SZR、TER、THO、TOL、TON、TS C、TUN、UEI、UFI、UOS、UOV、UOZ、USI、UTL、UWY、VET、VFI、VNI、VSV、WEI、-WEN、The zeolitic material has a framework structure type selected from the group consisting of YUG, ZON, and mixtures of two or more thereof, more preferably MFI, MEL, ITH, IWR, CON, and mixtures of two or more thereof, more preferably MFI, ITH, IWR, CON, and mixtures of two or more thereof. It is particularly preferred that the zeolitic material has an MFI framework structure type.
[0080] Preferably, the zeolitic material comprised in the molded article comprises X2O3. When the zeolitic material comprised in the molded article comprises X2O3, preferably the zeolitic material has a molar ratio of YO2 to X2O3 in the range of from 50 to 150, more preferably in the range of from 75 to 125, more preferably in the range of from 90 to 120, more preferably in the range of from 95 to 115.
[0081] When the zeolitic material contained in the molded article has the framework structure type MFI, preferably the zeolitic material having the MFI framework structure type comprises one or more of ZSM-5, ZBM-10, [As-Si-O]-MFI, [Fe-Si-O]-MFI, [Ga-Si-O]-MFI, AMS-1B, AZ-1, boron-C, boralite C, ensilite, FZ-1, LZ-105, monoclinic H-ZSM-5, mutinite, NU-4, NU-5, silicalite, TS-1, TSZ, TSZ-III, TZ-01, USC-4, USI-108, ZBH, ZKQ-1B, and ZMQ-TB, more preferably one or more of ZSM-5 and ZBM-10, more preferably ZSM-5.
[0082] Preferably, 99 to 100% by weight of the zeolitic material contained in the shaped article consists of Y, optionally X, O, and H, more preferably 99.5 to 100% by weight, more preferably 99.9 to 100% by weight.
[0083] Preferably, the zeolitic material contained in the shaped article comprises one or more alkaline earth metals M.
[0084] When the zeolitic material contained in the molded article comprises one or more alkaline earth metals M, the one or more alkaline earth metals M are selected from the group consisting of Be, Mg, Ca, Sr, Ba, and mixtures of two or more thereof, more preferably from the group consisting of Mg, Ca, and mixtures thereof, and more preferably the one or more alkaline earth metals M comprise Mg, more preferably consist of Mg.
[0085] Furthermore, if the zeolitic material contained in the shaped article comprises one or more alkaline earth metals M, preferably the zeolitic material comprises one or more alkaline earth metals M in an amount in the range of 0.1 to 5% by weight, more preferably in the range of 1.5 to 2.5% by weight, more preferably in the range of 1.7 to 2.3% by weight, calculated as the element, based on the weight of the shaped article.
[0086] Furthermore, if the zeolitic material contained in the shaped article comprises one or more alkaline earth metals M, preferably the zeolitic material comprises one or more alkaline earth metals M in an amount in the range of 0.5 to 4.0% by weight, more preferably in the range of 1.0 to 3.0% by weight, more preferably in the range of 1.5 to 2.7% by weight, even more preferably in the range of 1.7 to 2.5% by weight, more preferably in the range of 1.7 to 2.3% by weight, calculated as the element, based on the weight of the zeolitic material.
[0087] Furthermore, if the zeolitic material contained in the shaped article contains one or more alkaline earth metals M, it is preferred that the zeolitic material is impregnated with the one or more alkaline earth metals M, preferably by spray impregnation.
[0088] Furthermore, when the zeolitic material contained in the shaped article comprises one or more alkaline earth metals M, preferably from 99 to 100% by weight, more preferably from 99.5 to 100% by weight, more preferably from 99.9 to 100% by weight of the zeolitic material consists of Y, optionally X, O, H, and one or more alkaline earth metals M.
[0089] Preferably, the shaped article contains less than 1% by weight sodium, more preferably less than 0.1% by weight sodium, more preferably less than 0.01% by weight sodium.
[0090] Preferably, the molded article is 300 to 400 mm 2 / g, more preferably in the range of 325 to 375 m 2 / g, more preferably in the range of 350 to 360 m 2 / g。 Preferably, the BET specific surface area is determined as described in Example 1.
[0091] Preferably, the molded article has a viscosity of 0.2 to 0.75 ml / g more preferably in the range of 0.45 to 0.53 ml / g range, more preferably 0.47 to 0.51 ml / g in the range of 0.48 to 0.50 ml / g Preferably, the total pore volume is determined according to Reference Example 3.
[0092] Preferably, the molded article exhibits an acid site density in the range of 0.20 to 0.75 mmol / g, more preferably in the range of 0.25 to 0.65 mmol / g, more preferably in the range of 0.44 to 0.52 mmol / g, more preferably in the range of 0.46 to 0.50 mmol / g, more preferably in the range of 0.47 to 0.49 mmol / g at a temperature of less than 250° C. Preferably, the acid site density is determined according to Example 6.
[0093] Preferably, the molded article exhibits an acid site density of 0.5 mmol / g or less, more preferably 0.30 mmol / g or less, more preferably 0.25 mmol / g or less, more preferably 0.1 mmol / g or less, more preferably 0.01 mmol / g or less at a temperature above 250° C., preferably in the range of from above 250° C. to 650° C. Preferably, the acid site density is determined according to Reference Example 6.
[0094] Preferably, 99 to 100% by weight of the shaped article consists of zeolitic material and oxide binder, more preferably 99.5 to 100% by weight, more preferably 99.9 to 100% by weight.
[0095] Preferably, the shaped article is a strand, preferably having a hexagonal, rectangular, quadratic, triangular, elliptical or circular cross section, more preferably a circular cross section, the cross section preferably having a diameter in the range of 1.5 to 3.5 mm, more preferably in the range of 2.0 to 3.0 mm, more preferably in the range of 2.2 to 2.8 mm, more preferably in the range of 2.4 to 2.6 mm.
[0096] Preferably, the molded article exhibits a selectivity to olefins in the range of from 50 to 90%, more preferably in the range of from 55 to 80%, more preferably in the range of from 60 to 75%. Preferably, the selectivity to olefins is determined according to Example 13.
[0097] Preferably, the molded article exhibits a selectivity to butylene, preferably to one or more of but-1-ene, (2Z)-but-2-ene, (2E)-but-2-ene, 2-methylprop-1-ene, in the range of 10 to 30%, more preferably in the range of 15 to 25%, more preferably in the range of 18 to 22%. Preferably, the selectivity to olefins is determined according to Example 13.
[0098] Preferably, the molded article exhibits a selectivity to propylene in the range of from 20 to 100%, preferably in the range of from 25 to 90%, more preferably in the range of from 30 to 70%, preferably in the range of from 35 to 65%, more preferably in the range of from 37 to 50%, more preferably in the range of from 38 to 47%. Preferably, the selectivity to olefins is determined according to Example 13.
[0099] Preferably, the molded article exhibits an ethylene selectivity in the range of from 1 to 15%, more preferably in the range of from 4 to 12%, more preferably in the range of from 5 to 10%. Preferably, the olefin selectivity is determined according to Example 13.
[0100] Furthermore, the present invention provides (a) providing a molded article according to any one of the embodiments disclosed herein; (b) providing a gas stream comprising one or more oxygenates and optionally one or more olefins and / or optionally one or more hydrocarbons; (c) contacting the shaped article provided in (a) with the gas stream provided in (b) to convert the one or more oxygenates to one or more olefins and, optionally, one or more hydrocarbons; (d) optionally recycling one or more of the one or more olefins and / or one or more hydrocarbons contained in the gas stream obtained from (c) to (b). The present invention relates to a method for converting oxygenates into olefins, comprising:
[0101] Preferably, the shaped article is provided in a fixed bed or a fluidized bed.
[0102] The method may comprise further method steps, particularly with regard to activating or regenerating the molded article. Preferably, the method comprises, after (a) and before (b), (a') The method comprises the step of treating the molded article provided in (a) with a gas stream containing water.
[0103] Preferably, the gas stream in (a') has a temperature in the range of from 450 to 510°C, more preferably in the range of from 460 to 500°C, more preferably in the range of from 470 to 490°C.
[0104] Preferably, the gas stream provided in (b) is selected from the group consisting of aliphatic alcohols, ethers, carbonyl compounds, and mixtures of two or more thereof, more preferably from the group consisting of (C1-C6) alcohols, di(C1-C3) alkyl ethers, (C1-C6) aldehydes, (C2-C6) ketones, and mixtures of two or more thereof, more preferably from the group consisting of (C1-C4) alcohols, di(C1-C2) alkyl ethers, (C1-C4) aldehydes, (C2-C4) ketones, and mixtures of two or more thereof, more preferably from the group consisting of methanol, ethanol, n The gas stream preferably comprises one or more oxygenates selected from the group consisting of n-propanol, isopropanol, butanol, dimethyl ether, diethyl ether, ethyl methyl ether, diisopropyl ether, di-n-propyl ether, formaldehyde, dimethyl ketone and mixtures of two or more thereof, more preferably from the group consisting of methanol, ethanol, dimethyl ether, diethyl ether, ethyl methyl ether and mixtures of two or more thereof, and the gas stream more preferably comprises methanol and / or dimethyl ether, more preferably methanol.
[0105] Preferably, the oxygenate content in the gas stream provided in (b) is in the range of 2 to 100% by volume, more preferably 3 to 99% by volume, more preferably 4 to 95% by volume, more preferably 5 to 80% by volume, more preferably 6 to 50% by volume, more preferably 10 to 40% by volume, more preferably 15 to 25% by volume, more preferably 18 to 22% by volume, based on its total volume.
[0106] Preferably, the gas stream provided in (b) comprises water, and the amount of water in the gas stream provided in (b) is more preferably in the range of 1 to 90% by volume, more preferably in the range of 2 to 80% by volume, more preferably in the range of 5 to 75% by volume, more preferably in the range of 10 to 70% by volume.
[0107] Preferably, the gas stream provided in (b) comprises one or more diluent gases, more preferably comprises one or more diluent gases in an amount in the range of 0.1 to 90% by volume, more preferably in the range of 1 to 85% by volume, more preferably in the range of 5 to 80% by volume, more preferably in the range of 10 to 75% by volume.
[0108] Preferably, the one or more diluent gases are selected from the group consisting of HO, helium, neon, argon, krypton, nitrogen, carbon monoxide, carbon dioxide, and mixtures of two or more thereof, more preferably from the group consisting of HO, argon, nitrogen, carbon dioxide, and mixtures of two or more thereof, more preferably the one or more diluent gases comprise HO or nitrogen, more preferably the one or more diluent gases are HO or nitrogen.
[0109] Preferably, the contacting in (c) is carried out at a temperature in the range of from 225 to 700°C, preferably from 275 to 650°C, more preferably from 325 to 600°C, more preferably from 375 to 550°C, more preferably from 425 to 525°C, more preferably from 450 to 500°C, more preferably from 475 to 495°C, more preferably from 480 to 490°C.
[0110] According to one alternative, preferably the contacting in (c) is carried out at a pressure in the range of from 0.01 to 25 bar, more preferably from 0.1 to 20 bar, more preferably from 0.25 to 15 bar, more preferably from 0.5 to 10 bar, more preferably from 0.75 to 5 bar, more preferably from 0.8 to 2 bar, more preferably from 0.85 to 1.5 bar, more preferably from 0.9 to 1.1 bar.
[0111] According to another alternative, preferably the contacting in (c) is carried out at a pressure in the range of from 0.1 to 25 bar gauge, preferably from 0.25 to 20 bar gauge, more preferably from 0.5 to 15 bar gauge, more preferably from 1.0 to 10 bar gauge, more preferably from 2.0 to 7.0 bar gauge, more preferably from 3.0 to 5.0 bar gauge, more preferably from 3.9 to 4.1 bar gauge.
[0112] When the process is a continuous process, preferably the gas hourly space velocity (GHSV) of the contacting in (c) is from 1 to 30,000 h -1 , more preferably 1,000 to 25,000 h -1 , preferably 10,000 to 23,000h -1 , preferably 15,000 to 21,500 h -1 , preferably 20,000 to 20,500 hours -1 The range is.
[0113] Further, when the process is a continuous process, preferably, the weight hourly space velocity (WHSV) of the contact in (c) is from 0.5 to 50 h -1 , more preferably 1 to 30 hours -1 , more preferably 2 to 20 hours -1 , preferably 5 to 15 hours -1 , more preferably 8 to 12 hours -1 , preferably between 9am and 11pm -1 The range is.
[0114] Preferably, the one or more olefins and / or one or more hydrocarbons optionally provided in (b) and / or optionally recycled to (b) comprise one or more selected from the group consisting of ethylene, (C4-C7) olefins, (C4-C7) hydrocarbons, and mixtures of two or more thereof, and preferably from the group consisting of ethylene, (C4-C5) olefins, (C4-C5) hydrocarbons, and mixtures of two or more thereof.
[0115] As mentioned above, the method may comprise further method steps. Preferably, the method comprises: (e) Regenerating the molded article in a gas stream containing one or more of oxygen and nitrogen, preferably air or diluted air. Further includes:
[0116] Preferably, the regeneration of (e) is carried out in situ.
[0117] Preferably, the temperature of the gas stream of (e), which comprises a mixture of air and nitrogen, has a temperature in the range of 450 to 550°C, more preferably in the range of 470 to 510°C, more preferably in the range of 480 to 500°C.
[0118] Furthermore, the present invention relates to a method for the preparation of a sieve, preferably a catalyst for the removal of nitrogen oxides NO, as a molecular sieve, as an adsorbent, for ion exchange or as a catalyst and / or catalyst support. X for the oxidation of NH, in particular for the oxidation of NH slip in diesel systems; for the decomposition of NO; as an additive in fluid catalytic cracking (FCC) processes; and / or as a catalyst in organic conversion reactions, preferably as a hydrocracking catalyst, as an alkylation catalyst, as an isomerization catalyst, or as a catalyst in the conversion of alcohols to olefins, and more preferably as a catalyst in the conversion of oxygenates to olefins.
[0119] Preferably, the shaped articles are used in a methanol to olefins process (MTO process), a dimethyl ether to olefins process (DTO process), a methanol to gasoline process (MTG process), a methanol to hydrocarbons process, a methanol to aromatics process, a biomass to olefins and / or biomass to aromatics process, a methane to benzene process, for the alkylation of aromatics or in a fluid catalytic cracking (FCC) process, preferably in a methanol to olefins process (MTO process) and / or a dimethyl ether to olefins process (DTO process), and more preferably in a methanol to propylene process (MTP process), a methanol to propylene / butylene process (MT3 / 4 process), a dimethyl ether to propylene process (DTP process), a dimethyl ether to propylene / butylene process (DT3 / 4 process), and / or a dimethyl ether to ethylene / propylene (DT2 / 3 process).
[0120] In the context of the present invention, the mass of one or more alkaline earth metals is calculated as the mass of each alkaline earth metal as an element or as the sum of the masses of each alkaline earth metal as an element. For example, if one or more alkaline earth metals is Mg, the mass of the alkaline earth metal is calculated as the element Mg. As a further example, if one or more alkaline earth metals consists of Mg and Ba, the mass of the alkaline earth metal is calculated as the element Mg and Ba.
[0121] In the context of the present invention, unless otherwise specified, the mass of the oxide binder is calculated as the mass of each oxide binder as an oxide or as the sum of the masses of each oxide binder as an oxide. For example, if the oxide binder is silica, the mass of the oxide binder is calculated as SiO2. As a further example, if the oxide binder consists of a mixed oxide containing Ti and Al, the mass of the oxide binder is calculated as the sum of TiO2 and Al2O3.
[0122] In the context of the present invention, the term "based on the mass of the zeolitic material" refers to the mass of the zeolitic material including the ion-exchanged metal ions, e.g., Mg, unless otherwise specified.
[0123] The unit bar (abs) is 10 5 The absolute pressure in Pa.
[0124] The present invention is further described by the following set of embodiments and combinations of embodiments resulting from the indicated dependencies and reverse references. In particular, in each case where a range of embodiments is mentioned, for example, in the context of a term such as "the molded article of any one of embodiments 1 to 4," it is noted that all embodiments within this range are expressly disclosed to those skilled in the art, that is, the wording of this term is understood by those skilled in the art to be synonymous with "the molded article of any one of embodiments 1, 2, 3, and 4." Furthermore, it is expressly noted that the following set of embodiments is not a set of claims determining the scope of protection, but represents a well-structured portion of the description directed to the general and preferred aspects of the present invention.
[0125] 1. A method for preparing a shaped article comprising a zeolitic material and one or more oxide binders, the zeolitic material comprising YO2 and optionally X2O3 in its framework structure; Y is a tetravalent element and X is a trivalent element, and the method comprises: (i) preparing a mixture comprising a zeolite material, a source of oxide binder, a first plasticizer, and an acid; (ii) preferably, mixing water with the mixture obtained from (i); (iii) preferably mixing a second plasticizer into the mixture obtained from (i) or (ii), preferably (i) or (ii); (iv) preferably from (iii), preferably mixing water with the mixture obtained in (iii); (v) shaping the mixture obtained from (i), (ii), (iii), or (iv) to obtain a precursor to a shaped article; Including, (i) wherein the mass ratio of the source of oxide binder, calculated as oxide, to the sum of the zeolite material and the source of oxide binder, calculated as oxide, in the mixture prepared in (i) is in the range of 0.05:1 to 0.15:1.
[0126] 2.(i) is (i.1.a) preparing a mixture comprising a zeolite material, a source of oxide binder, and a first plasticizer; (i.1.b) mixing an acid with the mixture obtained in (i.1.a) 2. The method of embodiment 1, comprising:
[0127] 3.(i) is (i.2.a) providing a zeolite material; (i.2.b) providing a mixture comprising a source of oxide binder, optionally water, and an acid; (i.2.c) mixing the mixture obtained in (i.2.b) with the zeolite material provided in (i.2.a); (i.2.d) mixing a first plasticizer into the mixture obtained in (i.2.c); Including, 2. The method of embodiment 1, wherein the mixing according to (i.2.c) preferably comprises mixing the mixture provided in (i.2.b) with the zeolitic material provided in (i.2.a), or mixing the zeolitic material provided in (i.2.a) with the mixture provided in (i.2.b).
[0128] 4. The method of embodiment 3, wherein water is included in the mixture obtained in (i.2.b), and wherein the mixture obtained in (i.2.b) preferably exhibits a mass ratio of water to source of oxide binder, calculated as source of oxide binder, in the range of from 1:1 to 10:1, more preferably in the range of from 4.0:1 to 5.0:1, more preferably in the range of from 4.50:1 to 4.70:1.
[0129] 5. The process of any one of embodiments 1 to 4, wherein the mixture prepared in (i) is mixed in a kneader, a Lodige mixer (German: Loedige Mischer) or a mix-muller.
[0130] 6. The method of any one of embodiments 1 to 5, wherein in the mixture prepared in (i), the mass ratio of the first plasticizer to the sum of the zeolite material and the source of oxide binder, calculated as the source of oxide binder, is in the range of 0.01:1 to 0.1:1, preferably in the range of 0.02:1 to 0.08:1, more preferably in the range of 0.03:1 to 0.07:1, more preferably in the range of 0.04:1 to 0.06:1, more preferably in the range of 0.045:1 to 0.055:1.
[0131] 7. The method of any one of embodiments 1 to 6, wherein the first plasticizer is selected from the group consisting of organic polymers, carbohydrates, graphite, botanical additives, and mixtures of two or more thereof, preferably from the group consisting of polymeric vinyl compounds, polyalkylene oxides, polyacrylates, polymethacrylates, polyolefins, polyamides, polyesters, polystyrenes, polysaccharides, and mixtures of two or more thereof, and the first plasticizer is more preferably a polysaccharide.
[0132] 8. The method of embodiment 7, wherein the polysaccharide is selected from the group consisting of cellulose, cellulose derivatives, and starch, and the polysaccharide is preferably one or more of methylcellulose and carboxymethylcellulose.
[0133] 9. The method of embodiment 7 or 8, wherein the polysaccharide has a bulk density in the range of 500 to 800 g / l, preferably in the range of 550 to 750 g / l, more preferably in the range of 600 to 700 g / l, more preferably in the range of 630 to 670 g / l.
[0134] 10. The method of any one of embodiments 7 to 9, wherein the polysaccharide has a viscosity in the range of 3000 to 4000 mPas, preferably in the range of 3400 to 3600 mPas, more preferably in the range of 3450 to 3550 mPas.
[0135] 11. The process of any one of the preceding embodiments, wherein in the mixture obtained in (i), the mass ratio of the source of oxide binder, calculated as oxide, to the sum of the zeolitic material and the source of oxide binder, calculated as oxide, is in the range of 0.06:1 to 0.14:1, preferably in the range of 0.07:1 to 0.13:1, more preferably in the range of 0.08:1 to 0.12:1, more preferably in the range of 0.09:1 to 0.11:1.
[0136] 12. The method of any one of embodiments 1 to 11, wherein the source of oxide binder is a source of one or more of silica, alumina, and silica-alumina, preferably a source of alumina.
[0137] 13. The method of any one of embodiments 1 to 12, wherein the source of oxide binder comprises one or more of AlOOH (boehmite), Al2O3, Al(OH)3, hydrotalcite, silica sol, colloidal silica, wet process silica, and dry process silica, preferably one or more of AlOOH (boehmite) and Al2O3, more preferably AlOOH (boehmite), and the source of oxide binder is more preferably AlOOH (boehmite).
[0138] 14. The method of any one of embodiments 1 to 13, wherein Y is selected from the group consisting of Si, Sn, Ti, Zr, Ge, and mixtures of two or more thereof, preferably from the group consisting of Si, Ti, and mixtures thereof, and more preferably Y is Si.
[0139] 15. The method of any one of embodiments 1 to 14, wherein X is selected from the group consisting of B, Al, Ga, In, and mixtures of two or more thereof, preferably from the group consisting of B, Al, and mixtures thereof, more preferably X is Al.
[0140] 16. The method of any one of embodiments 1 to 15, wherein the zeolitic material has a molar ratio of YO2 to X2O3 in the range of 50 to 150, preferably in the range of 75 to 125, more preferably in the range of 90 to 120, more preferably in the range of 95 to 115.
[0141] 17. The zeolite material is selected from the group consisting of ABW, ACO, AEI, AEL, AEN, AET, AFG, AFI, AFN, AFO, AFR, AFS, AFT, AFV, AFX, AFY, AHT, ANA, APC, APD, AST, ASV, ATN, ATO, ATS, ATT, ATV, AVL, AWO, AWW, BCT, BEA, BEC, BIK, BOF, BOG, BOZ, BPH, BRE, BSV, CAN, CAS, CDO, CFI, CGF, CGS, CHA, -CHI, -CLO, CON, CSV, CZP, DAC, DDR, DFO, DFT, DOH, DON, EAB, EDI, EEI, EMT, EON, EPI, ERI, ESV, ETR, EUO, *-EWT, EZT, FAR, FAU, FER, FRA, GIS, GIU, GME, GON, GOO, HEU, IFO, IFR, -IFU, IFW, IFY, IHW, IMF, IRN, IRR, -IRY, ISV, ITE, ITG, ITH, *-ITN, ITR, ITT, -ITV, ITW, IWR, IWS, IWV, IWW, JBW, JNT, JOZ, JRY, JSN, JSR, JST, JSW, KFI, LAU, LEV, LIO, -LIT, LOS, LOV, LTA, LTF, LTJ, LTL, LTN, MAR, MAZ, MEI, MEL, MEP, MER, MFI, MFS, MON, MOR, MOZ, *MRE, MSE, MSO, MTF, MTN, MTT, MTW, MVY, MWF, MWW, NAB, NAT, NES, NON, NPO, NPT, NSI, OBW, OFF, OKO, OSI, OSO, OWE, -PAR, PAU, PCR, PHI, PON, POS, PSI, PUN, RHO, -RON, RRO, RSN, RTE, RTH, RUT, RWR, RWY, SAF, SAO, SAS, SAT, SAV, SBE, SBN, SBS, SBT, SEW, SFE, SFF, SFG, SFH, SFN, SFO, SFS, *SFV, SFW, SGT, SIV, SOD, SOF, SOS, SSF, *-SSO, SSY, STF, STI, *STO, STT, STW, -SVR, SVV, SZR, TER, THO, TOL, TON, TSC, TUN, UEI, UFI, UOS, UOV, UOZ, USI, UTL, UWY, VET, VFI, VNI, VSV, WEI, -WEN, YUG, ZON, and mixtures of two or more thereof, preferably MFI, MEL, ITH,17. The method of any one of embodiments 1 to 16, wherein the zeolitic material is selected from IWR, CON, and mixtures of two or more thereof, more preferably selected from MFI, ITH, IWR, CON, and mixtures of two or more thereof, and the zeolitic material more preferably has an MFI framework structure type.
[0142] 18. The zeolite material has an MFI type framework structure, and the zeolite material is selected from the group consisting of silicalite, ZSM-5, [Fe-Si-O]-MFI, [Ga-Si-O]-MFI, [As-Si-O]-MFI, AMS-1B, AZ-1, Bor-C, Encilite, and Boralite C. C), FZ-1, LZ-105, Mutinite, NU-4, NU-5, TS-1, TSZ, TSZ-III, TZ-01, USC-4, USI-108, ZBH, ZKQ-1B, ZMQ-TB, MnS-1, and FeS-1, and mixtures of two or more thereof, preferably silicalite, ZSM-5, AMS-1B, AZ-1, Encilite, FZ-1, LZ-105, Mutinite, NU-4, NU-5, TS-1, TSZ, T 18. The process of any one of embodiments 1 to 17, wherein the zeolitic material having an MFI type framework structure is selected from the group consisting of SZ-III, TZ-01, USC-4, USI-108, ZBH, ZKQ-1B, and ZMQ-TB, including mixtures of two or more thereof, more preferably the zeolitic material having an MFI type framework structure comprises silicalite and / or ZSM-5, preferably ZSM-5, more preferably the zeolitic material having an MFI type framework structure is the zeolite silicalite and / or ZSM-5, preferably ZSM-5.
[0143] 19. The method of any one of embodiments 1 to 18, wherein the zeolitic material comprises one or more alkaline earth metals M, and the one or more alkaline earth metals M are preferably selected from the group consisting of Be, Mg, Ca, Sr, Ba, and mixtures of two or more thereof, preferably from the group consisting of Mg, Ca, and mixtures of two or more thereof, more preferably the alkaline earth metal M comprises Mg, more preferably is Mg.
[0144] 20. The method of embodiment 19, wherein the zeolitic material comprises alkaline earth metal M in an amount in the range of 0.5 to 4.0% by weight, preferably in the range of 1.0 to 3.0% by weight, more preferably in the range of 1.5 to 2.7% by weight, more preferably in the range of 1.7 to 2.5% by weight, calculated as the element, based on the weight of the shaped article.
[0145] 21. The process of embodiment 19 or 20, wherein the zeolitic material comprises alkaline earth metal M in an amount in the range of 0.5 to 4.0% by weight, preferably in the range of 1.8 to 2.6% by weight, more preferably in the range of 2.0 to 2.4% by weight, more preferably in the range of 2.1 to 2.3% by weight, calculated as the element, based on the weight of the zeolitic material calculated as the zeolitic material without alkaline earth metal M.
[0146] 22. The method of any one of embodiments 19 to 21, wherein the zeolitic material is impregnated with one or more alkaline earth metals M.
[0147] 23. The method of embodiment 22, wherein the zeolite material is impregnated by spray impregnation, deposition impregnation, incipient impregnation, or wet impregnation adhesion techniques.
[0148] 24. The method of any one of embodiments 1 to 23, wherein in the mixture prepared in (i), the mass ratio of the source of oxide binder, calculated as the source of oxide binder, to the zeolite material is in the range of 0.05:1 to 0.25:1, preferably in the range of 0.07:1 to 0.22:1, more preferably in the range of 0.10:1 to 0.19:1, more preferably in the range of 0.11:1 to 0.18:1, more preferably in the range of 0.12:1 to 0.17:1, more preferably in the range of 0.13:1 to 0.16:1, more preferably in the range of 0.14:1 to 0.15:1.
[0149] 25. The method of any one of embodiments 1 to 24, wherein the acid is one or more of an inorganic acid and an organic acid, wherein the organic acid is preferably one or more of formic acid, acetic acid, propionic acid, oxalic acid, and tartaric acid, more preferably formic acid, and the inorganic acid is preferably one or more of hydrochloric acid, nitric acid, and phosphoric acid, more preferably nitric acid, and the acid more preferably comprises one or more of formic acid and nitric acid, preferably one or more of formic acid and nitric acid.
[0150] 26. The process of any one of embodiments 2 to 25, wherein the acid is mixed in (i.1.b) or provided to provide the mixture in (i.2.b) as an aqueous solution, preferably comprising the acid in an amount in the range of 5 to 50% by weight, more preferably in the range of 10 to 40% by weight, more preferably in the range of 12.5 to 37.5% by weight, more preferably in the range of 15 to 35% by weight, more preferably in the range of 17.5 to 32.5% by weight, more preferably in the range of 20 to 30% by weight, more preferably in the range of 22.5 to 27.5% by weight, more preferably in the range of 24 to 26% by weight, based on the total weight of the aqueous solution, and the acid is preferably formic acid.
[0151] 27. The process of any one of embodiments 2 to 26, wherein the acid is mixed in (i.1.b) or provided to provide the mixture in (i.2.b) as an aqueous solution, preferably comprising an amount of acid in the range of 1 to 20% by weight, preferably in the range of 3 to 15% by weight, more preferably in the range of 5 to 13% by weight, more preferably in the range of 6 to 12% by weight, more preferably in the range of 7 to 11% by weight, more preferably in the range of 8 to 10% by weight, based on the total weight of the aqueous solution, and the acid is preferably nitric acid.
[0152] 28. The method of embodiment 26 or 27, wherein the mass ratio of the acid mixed in (i.1.b) or provided to provide the mixture in (i.2.b) to the sum of the zeolitic material and source of oxide binder in the mixture prepared in (i) is in the range of 0.05:1 to 0.15:1, preferably in the range of 0.06:1 to 0.14:1, preferably in the range of 0.07:1 to 0.13:1, more preferably in the range of 0.08:1 to 0.12:1, more preferably in the range of 0.09:1 to 0.11:1.
[0153] 29. The process of any one of embodiments 2 to 28, wherein the acid is mixed in (i.1.b) or provided in (i.2.b) as an aqueous solution to provide the mixture, preferably as an aqueous solution comprising an amount of acid in the range of 50 to 80% by weight, more preferably in the range of 55 to 75% by weight, more preferably in the range of 60 to 70% by weight, more preferably in the range of 63 to 67% by weight, based on the total weight of the aqueous solution, and wherein the acid is preferably nitric acid.
[0154] 30. The method of embodiment 29, wherein the mass ratio of the acid mixed in (i.1.b) or provided to provide the mixture in (i.2.b) to the sum of the zeolitic material and source of oxide binder in the mixture prepared in (i) is in the range of 0.005:1 to 0.05:1, more preferably in the range of 0.010:1 to 0.030:1, more preferably in the range of 0.015:1 to 0.025:1.
[0155] 31. The process of any one of the preceding embodiments, wherein in (ii), water, preferably deionized water, is mixed with the mixture from (i), preferably obtained in (i).
[0156] 32. The method of embodiment 31, wherein in the mixture of (ii), the mass ratio of water to the sum of the source of oxidized binder and the zeolite material is in the range of 0.1:1 to 1.5:1, preferably in the range of 0.2:1 to 0.8:1, more preferably in the range of 0.3:1 to 0.7:1, preferably in the range of 0.3:1 to 0.6:1, more preferably in the range of 0.4:1 to 0.5:1, more preferably in the range of 0.45:1 to 0.46:1.
[0157] 33. The method of any one of embodiments 1 to 32, wherein in the mixture of (iii), a second plasticizer is mixed into the mixture obtained from (i) or (ii), preferably in (i) or (ii), and the second plasticizer is preferably different from the first plasticizer.
[0158] 34. The method of embodiment 33, wherein in the mixture of (iii), the mass ratio of the second plasticizer to the sum of the source of oxide binder and the zeolite material is in the range of 0.001:1 to 0.030:1, preferably in the range of 0.005:1 to 0.015:1, preferably in the range of 0.007:1 to 0.013:1, more preferably in the range of 0.008:1 to 0.012:1, more preferably in the range of 0.009:1 to 0.011:1.
[0159] 35. The method of embodiment 33 or 34, wherein the second plasticizer is selected from the group consisting of organic polymers, carbohydrates, graphite, botanical additives, and mixtures of two or more thereof, preferably from the group consisting of polymeric vinyl compounds, polyalkylene oxides, polyacrylates, polymethacrylates, polyolefins, polyamides, polyesters, polystyrenes, polysaccharides, and mixtures of two or more thereof, and the second plasticizer is more preferably polyethylene oxide or a polysaccharide.
[0160] 36. The method of embodiment 35, wherein the polysaccharide is selected from the group consisting of cellulose, cellulose derivatives, and starch, and the polysaccharide is preferably one or more of methylcellulose and carboxymethylcellulose.
[0161] 37. The process of any one of the preceding embodiments, wherein in (iv), water, preferably deionized water, is mixed with the mixture obtained from (i), (ii), or (iii), preferably with the mixture obtained in (i), (ii), or (iii).
[0162] 38. The method of embodiment 37, wherein in the mixture of (iv), the mass ratio of water to the sum of the source of oxide binder and the zeolite material is in the range of 0.1:1 to 1:1, preferably in the range of 0.30:1 to 0.90:1, more preferably in the range of 0.50:1 to 0.7:1, more preferably in the range of 0.55:1 to 0.65:1, more preferably in the range of 0.60:1 to 0.61:1.
[0163] 39. The method of any one of embodiments 1 to 38, wherein in (v), the mixture is formed into strings, preferably strings having a hexagonal, rectangular, quadratic, triangular, elliptical, or circular cross-section, more preferably strings having a circular cross-section.
[0164] 40. The method of embodiment 39, wherein the strands (cords) having a circular cross section have a diameter in the range of 0.5 to 7 mm, preferably in the range of 1.5 to 3.5 mm, more preferably in the range of 2.1 to 2.9 mm, more preferably in the range of 2.3 to 2.7 mm, more preferably in the range of 2.4 to 2.6 mm.
[0165] 41. The method of any one of embodiments 1 to 40, wherein in (v), shaping comprises extruding the mixture.
[0166] 42. The method of any one of embodiments 1 to 41, wherein the shaping according to (v) further comprises drying the precursor of the shaped article in a gas atmosphere.
[0167] 43. The method of embodiment 42, wherein drying is carried out at a temperature of the gas atmosphere in the range of from 80 to 160°C, preferably in the range of from 100 to 140°C, more preferably in the range of from 110 to 130°C.
[0168] 44. The method of embodiment 42 or 43, wherein the gas atmosphere comprises nitrogen, oxygen, or a mixture thereof, and the gas atmosphere is preferably oxygen, air, or lean air.
[0169] 45. The method of any one of embodiments 1 to 44, preferably any one of embodiments 42 to 44, wherein the shaping according to (v) further comprises calcining the shaped article precursor, preferably the dried shaped article precursor, in a gas atmosphere.
[0170] 46. The method of embodiment 45, wherein the calcination is carried out at a temperature in the gas atmosphere in the range of 500 to 650°C, preferably in the range of 530 to 570°C, more preferably in the range of 540 to 560°C.
[0171] 47. The method of embodiment 45 or 46, wherein the gas atmosphere comprises nitrogen, oxygen, or a mixture thereof, and the gas atmosphere is preferably oxygen, air, or lean air.
[0172] 48. A shaped article obtained or obtained by the method of any one of embodiments 1 to 47.
[0173] 49. A shaped article, preferably prepared by the method of any one of embodiments 1 to 48, comprising one or more oxide binders and a zeolite material, wherein the zeolite material comprises YO2 and optionally X2O3 in its framework structure; Y is a tetravalent element and X is a trivalent element; The molded article comprises one or more oxide binders in an amount ranging from 5 to 15% by mass, calculated as oxide, and the molded article exhibits a crush strength of 9 N or greater, determined according to Reference Example 5.
[0174] 50. The molded article of embodiment 49, exhibiting a crushing strength, determined according to Reference Example 5, of 10 N or more, preferably 15 N or more, preferably 18 N or more, more preferably 19 N or more, more preferably 20 N or more; more preferably, a molded article exhibiting a crushing strength, determined according to Reference Example 5, in the range of 15 to 50 N, more preferably in the range of 17 to 30 N.
[0175] 51.0.40~1.30×10 -9 m 2 / s, preferably 0.60 to 1.10 × 10 -9 m 2 / s, more preferably 0.72 to 0.98 × 10 -9 m 2 51. The molded article of embodiment 49 or 50, exhibiting a diffusion coefficient, preferably determined according to Reference Example 4, in the range of 0.15 to 0.15 / s.
[0176] 52. The molded article of any one of embodiments 49 to 51, exhibiting a tortuosity parameter, determined as described in Reference Example 2, with respect to water in the range of 1.00 to 3.75, preferably in the range of 1.2 to 3.0, more preferably in the range of 1.4 to 2.8.
[0177] 53. The shaped article of embodiment 52, wherein the one or more oxide binders are selected from the group consisting of silica, alumina, silica-alumina, and mixtures of two or more thereof, and the one or more oxide binders are preferably alumina.
[0178] 54. The molded article of any one of embodiments 49 to 53, wherein the molded article comprises one or more oxide binders in an amount, calculated as oxide, in the range of 6 to 14% by weight, more preferably in the range of 7 to 13% by weight, more preferably in the range of 8 to 12% by weight, more preferably in the range of 9 to 11% by weight.
[0179] 55. The shaped article of any one of embodiments 49 to 54, wherein Y is selected from the group consisting of Si, Sn, Ti, Zr, Ge, and mixtures of two or more thereof, preferably from the group consisting of Si, Ti, and mixtures thereof, more preferably Y is Si.
[0180] 56. The shaped article of any one of embodiments 49 to 55, wherein X is selected from the group consisting of B, Al, Ga, In, and mixtures of two or more thereof, preferably from the group consisting of B, Al, and mixtures thereof, more preferably X is Al.
[0181] 57. The zeolite material is selected from the group consisting of ABW, ACO, AEI, AEL, AEN, AET, AFG, AFI, AFN, AFO, AFR, AFS, AFT, AFV, AFX, AFY, AHT, ANA, APC, APD, AST, ASV, ATN, ATO, ATS, ATT, ATV, AVL, AWO, AWW, BCT, BEA, BEC, BIK, BOF, BOG, BOZ, BPH, BRE, BSV, CAN, CAS, CDO, CFI, CGF, CGS, CHA, -CHI, -CLO, CON, CSV, CZP, DAC, DDR, DFO, DFT, DOH, DON, EAB, EDI, EEI, EMT, EON, EPI, ERI, ESV, ETR, EUO, *-EWT, EZT, FAR, FAU, FER, FRA, GIS, GIU, GME, GON, GOO, HEU, IFO, IFR, -IFU, IFW, IFY, IHW, IMF, IRN, IRR, -IRY, ISV, ITE, ITG, ITH, *-ITN, ITR, ITT, -ITV, ITW, IWR, IWS, IWV, IWW, JBW, JNT, JOZ, JRY, JSN, JSR, JST, JSW, KFI, LAU, LEV, LIO, -LIT, LOS, LOV, LTA, LTF, LTJ, LTL, LTN, MAR, MAZ, MEI, MEL, MEP, MER, MFI, MFS, MON, MOR, MOZ, *MRE, MSE, MSO, MTF, MTN, MTT, MTW, MVY, MWF, MWW, NAB, NAT, NES, NON, NPO, NPT, NSI, OBW, OFF, OKO, OSI, OSO, OWE, -PAR, PAU, PCR, PHI, PON, POS, PSI, PUN, RHO, -RON, RRO, RSN, RTE, RTH, RUT, RWR, RWY, SAF, SAO, SAS, SAT, SAV, SBE, SBN, SBS, SBT, SEW, SFE, SFF, SFG, SFH, SFN, SFO, SFS, *SFV, SFW, SGT, SIV, SOD, SOF, SOS, SSF, *-SSO, SSY, STF, STI, *STO, STT, STW, -SVR, SVV, SZR, TER, THO, TOL, TON, TSC, TUN, UEI, UFI, UOS, UOV, UOZ, USI, UTL, UWY, VET, VFI, VNI, VSV, WEI, -WEN, YUG, ZON, and mixtures of two or more thereof, preferably MFI, MEL, ITH, IWR,57. The molded article of any one of embodiments 49 to 56, wherein the zeolitic material has a framework structure type selected from the group consisting of MFI, ITH, IWR, CON, and mixtures of two or more thereof, more preferably from the group consisting of MFI, ITH, IWR, CON, and mixtures of two or more thereof, and the zeolitic material more preferably has framework structure type MFI.
[0182] 58. The shaped article of any one of embodiments 49 to 57, wherein the zeolitic material comprises X2O3, and the zeolitic material has a molar ratio of YO2 to X2O3 in the range from 50 to 150, preferably in the range from 75 to 125, more preferably in the range from 90 to 120, more preferably in the range from 95 to 115.
[0183] 59. The shaped article of any one of embodiments 49 to 58, wherein the zeolitic material has framework structure type MFI, and the zeolitic material having an MFI framework structure type preferably comprises one or more of ZSM-5, ZBM-10, [As-Si-O]-MFI, [Fe-Si-O]-MFI, [Ga-Si-O]-MFI, AMS-1B, AZ-1, Boron-C, Boralite C, Ensilite, FZ-1, LZ-105, monoclinic H-ZSM-5, mutinite, NU-4, NU-5, silicalite, TS-1, TSZ, TSZ-III, TZ-01, USC-4, USI-108, ZBH, ZKQ-1B, and ZMQ-TB, preferably one or more of ZSM-5 and ZBM-10, more preferably ZSM-5.
[0184] 60. The shaped article of any one of embodiments 49 to 59, wherein 99 to 100% by weight, more preferably 99.5 to 100% by weight, more preferably 99.9 to 100% by weight, of the zeolitic material consists of Y, and optionally X, O, and H.
[0185] 61. The shaped article of any one of embodiments 49 to 60, wherein the zeolitic material comprises one or more alkaline earth metals M.
[0186] 62. The shaped article of embodiment 61, wherein the one or more alkaline earth metals M are selected from the group consisting of Be, Mg, Ca, Sr, Ba, and mixtures of two or more thereof, preferably from the group consisting of Mg, Ca, and mixtures thereof, more preferably the one or more alkaline earth metals M comprise, more preferably consist of Mg.
[0187] 63. The shaped article of embodiment 61 or 62, wherein the zeolitic material comprises one or more alkaline earth metals M in an amount in the range of 0.1 to 5% by weight, preferably in the range of 1.5 to 2.5% by weight, more preferably in the range of 1.7 to 2.3% by weight, calculated as the element, based on the weight of the shaped article.
[0188] 64. The shaped article of embodiment 61 or 62, wherein the zeolitic material comprises one or more alkaline earth metals M in an amount, calculated as the element, based on the weight of the zeolitic material, in the range of 0.5 to 4.0% by weight, preferably in the range of 1.0 to 3.0% by weight, more preferably in the range of 1.5 to 2.7% by weight, more preferably in the range of 1.7 to 2.5% by weight, more preferably in the range of 1.7 to 2.3% by weight.
[0189] 65. The shaped article of any one of embodiments 61 to 64, wherein the zeolitic material is impregnated, preferably spray-impregnated, with one or more alkaline earth metals M.
[0190] 66. The shaped article of any one of embodiments 61 to 65, wherein 99 to 100% by weight, more preferably 99.5 to 100% by weight, more preferably 99.9 to 100% by weight of the zeolitic material consists of Y, optionally X, O, H, and one or more alkaline earth metals M.
[0191] 67. The article of any one of embodiments 49 to 66, comprising less than 67.1% by weight sodium, preferably less than 0.1% by weight sodium, more preferably less than 0.01% by weight sodium.
[0192] 68. From 300 to 400 m 2 / g, preferably in the range of 325 to 375 m2 / g, more preferably in the range of 350 to 360 m 2 68. The shaped article of any one of embodiments 49 to 67, having a BET specific surface area, preferably determined as described in Reference Example 1, in the range of 0.15 to 0.15 / g.
[0193] 69.0.2 to 0.75 ml / g range, preferably 0.45 to 0.53 ml / g range, more preferably 0.47 to 0.51 ml / g in the range of 0.48 to 0.50 ml / g 69. The article of any one of embodiments 49 to 68, having a total pore volume, determined according to Reference Example 3, in the range of:
[0194] 70. The molded article of any one of embodiments 49 to 69, exhibiting an acid site density, determined according to Reference Example 6, at a temperature below 250°C in the range of from 0.20 to 0.75 mmol / g, preferably in the range of from 0.25 to 0.65 mmol / g, more preferably in the range of from 0.44 to 0.52 mmol / g, more preferably in the range of from 0.46 to 0.50 mmol / g, more preferably in the range of from 0.47 to 0.49 mmol / g.
[0195] 71. The molded article of any one of embodiments 49 to 70, having an acid site density, determined according to Reference Example 6, at temperatures above 250°C, preferably in the range of from above 250°C to 650°C of 0.5 mmol / g or less, preferably 0.30 mmol / g or less, more preferably 0.25 mmol / g or less, more preferably 0.1 mmol / g or less, more preferably 0.01 mmol / g or less.
[0196] 72. The molded article of any one of embodiments 49 to 71, wherein 99 to 100% by weight of the article consists of the zeolitic material and the oxide binder, more preferably 99.5 to 100% by weight, more preferably 99.9 to 100% by weight.
[0197] 73. The shaped article of any one of embodiments 49 to 72, which is a strand, preferably having a hexagonal, rectangular, quadratic, triangular, elliptical, or circular cross-section, more preferably a circular cross-section, the cross-section preferably having a diameter in the range of 1.5 to 3.5 mm, more preferably in the range of 2.0 to 3.0 mm, more preferably in the range of 2.2 to 2.8 mm, more preferably in the range of 2.4 to 2.6 mm.
[0198] 74. The article of any one of embodiments 49 to 73, exhibiting a selectivity to olefins, preferably determined according to Example 13, in the range of from 50 to 90%, preferably in the range of from 55 to 80%, more preferably in the range of from 60 to 75%.
[0199] 75. The shaped article of any one of embodiments 49 to 74, exhibiting a selectivity, relative to butylene, preferably to one or more of but-1-ene, (2Z)-but-2-ene, (2E)-but-2-ene, 2-methylprop-1-ene, in the range of 10 to 30%, preferably in the range of 15 to 25%, more preferably in the range of 18 to 22%, preferably determined according to Example 13.
[0200] 76. The molded article of any one of embodiments 49 to 75, exhibiting a selectivity for propylene, preferably determined according to Example 13, in the range of 20 to 100%, preferably in the range of 25 to 90%, more preferably in the range of 30 to 70%, preferably in the range of 35 to 65%, more preferably in the range of 37 to 50%, more preferably in the range of 38 to 47%.
[0201] 77. The article of any one of embodiments 49 to 76, exhibiting a selectivity for ethylene, preferably determined according to Example 13, in the range of 1 to 15%, preferably in the range of 4 to 12%, more preferably in the range of 5 to 10%.
[0202] 78. A method for converting oxygenates to olefins, comprising: (a) providing a molded article according to any one of embodiments 48 to 77; (b) providing a gas stream comprising one or more oxygenates and optionally one or more olefins and / or optionally one or more hydrocarbons; (c) contacting the shaped article provided in (a) with the gas stream provided in (b) to convert the one or more oxygenates to one or more olefins and, optionally, one or more hydrocarbons; (d) optionally recycling one or more of the one or more olefins and / or one or more hydrocarbons contained in the gas stream obtained from (c) to (b). A method comprising:
[0203] 79. The method of embodiment 78, wherein the molded article is provided in a fixed bed or a fluidized bed.
[0204] 80.Furthermore, after (a) and before (b), The process of embodiment 78 or 79, comprising the step of: (a') treating the shaped article provided in (a) with a gas stream comprising water.
[0205] 81. The method of embodiment 80, wherein the gas stream has a temperature in the range of 450 to 510°C, preferably in the range of 460 to 500°C, more preferably in the range of 470 to 490°C.
[0206] 82. The gas stream provided in (b) is selected from the group consisting of aliphatic alcohols, ethers, carbonyl compounds, and mixtures of two or more thereof, preferably from the group consisting of (C1-C6) alcohols, di(C1-C3) alkyl ethers, (C1-C6) aldehydes, (C2-C6) ketones, and mixtures of two or more thereof, more preferably from the group consisting of (C1-C4) alcohols, di(C1-C2) alkyl ethers, (C1-C4) aldehydes, (C2-C4) ketones, and mixtures of two or more thereof, more preferably methanol, ethanol, n-propanol, isopropanol, 82. The method of any one of embodiments 78 to 81, wherein the gas stream comprises one or more oxygenates selected from the group consisting of alcohol, butanol, dimethyl ether, diethyl ether, ethyl methyl ether, diisopropyl ether, di-n-propyl ether, formaldehyde, dimethyl ketone and mixtures of two or more thereof, more preferably from the group consisting of methanol, ethanol, dimethyl ether, diethyl ether, ethyl methyl ether and mixtures of two or more thereof, and the gas stream more preferably comprises methanol and / or dimethyl ether, more preferably methanol.
[0207] 83. The method of any one of embodiments 78 to 82, wherein the oxygenate content in the gas stream provided in (b) ranges from 2 to 100% by volume, preferably from 3 to 99% by volume, more preferably from 4 to 95% by volume, more preferably from 5 to 80% by volume, more preferably from 6 to 50% by volume, more preferably from 10 to 40% by volume, more preferably from 15 to 25% by volume, more preferably from 18 to 22% by volume, based on its total volume.
[0208] 84. The method of any one of embodiments 78 to 83, wherein the gas stream provided in (b) comprises water, and the amount of water in the gas stream provided in (b) is preferably in the range of 1 to 90% by volume, more preferably in the range of 2 to 80% by volume, more preferably in the range of 5 to 75% by volume, more preferably in the range of 10 to 70% by volume.
[0209] 85. The method of any one of embodiments 78 to 84, wherein the gas stream provided in (b) further comprises one or more diluent gases, preferably in an amount in the range of 0.1 to 90% by volume, more preferably in the range of 1 to 85% by volume, more preferably in the range of 5 to 80% by volume, more preferably in the range of 10 to 75% by volume.
[0210] 86. The method of embodiment 85, wherein the one or more diluent gases are selected from the group consisting of HO, helium, neon, argon, krypton, nitrogen, carbon monoxide, carbon dioxide, and mixtures of two or more thereof, preferably from the group consisting of HO, argon, nitrogen, carbon dioxide, and mixtures of two or more thereof, more preferably the one or more diluent gases comprise HO or nitrogen, more preferably the one or more diluent gases are HO or nitrogen.
[0211] 87. The method of any one of embodiments 78 to 86, wherein the contacting in (c) is carried out at a temperature in the range of 225 to 700°C, preferably 275 to 650°C, more preferably 325 to 600°C, more preferably 375 to 550°C, more preferably 425 to 525°C, more preferably 450 to 500°C, more preferably 475 to 495°C, more preferably 480 to 490°C.
[0212] 88. The method of any one of embodiments 78 to 87, wherein the contacting in (c) is carried out at a pressure ranging from 0.01 to 25 bar, preferably from 0.1 to 20 bar, more preferably from 0.25 to 15 bar, more preferably from 0.5 to 10 bar, more preferably from 0.75 to 5 bar, more preferably from 0.8 to 2 bar, more preferably from 0.85 to 1.5 bar, more preferably from 0.9 to 1.1 bar.
[0213] 89. The method of any one of embodiments 78 to 87, wherein the contacting in (c) is carried out at a pressure ranging from 0.1 to 25 bar (gauge), preferably from 0.25 to 20 bar (gauge), more preferably from 0.5 to 15 bar (gauge), more preferably from 1.0 to 10 bar (gauge), more preferably from 2.0 to 7.0 bar (gauge), more preferably from 3.0 to 5.0 bar (gauge), more preferably from 3.9 to 4.1 bar (gauge).
[0214] 90. The process is a continuous process, and the gas hourly space velocity (GHSV) of the contact in (c) is preferably from 1 to 30,000 h -1 , preferably 1,000 to 25,000 h -1 , preferably 10,000 to 23,000h -1 , preferably 15,000 to 21,500 h -1 , preferably 20,000 to 20,500 hours -1 90. The method of any one of embodiments 78 to 89, wherein the
[0215] 91. The process is a continuous process, and preferably the weight hourly space velocity (WHSV) of the contact in (c) is preferably from 0.5 to 50 h -1 , preferably 1 to 30 hours -1 , more preferably 2 to 20 hours -1 , preferably 5 to 15 hours -1 , more preferably 8 to 12 hours -1 , preferably between 9am and 11pm -1 91. The method of any one of embodiments 78 to 90, wherein the
[0216] 92. The process of any one of embodiments 78 to 91, wherein the one or more olefins and / or one or more hydrocarbons optionally provided in (b) and / or optionally recycled to (b) comprise one or more selected from the group consisting of ethylene, (C4-C7) olefins, (C4-C7) hydrocarbons, and mixtures of two or more thereof, and preferably from the group consisting of ethylene, (C4-C5) olefins, (C4-C5) hydrocarbons, and mixtures of two or more thereof.
[0217] 93. The method of any one of embodiments 78 to 92, further comprising: (e) Regenerating the molded article in a gas stream containing one or more of oxygen and nitrogen, preferably air or diluted air. A method comprising:
[0218] 94. The method of embodiment 93, wherein the regeneration of (e) is performed in situ.
[0219] 95. The method of embodiment 93 or 94, wherein the temperature of the gas stream comprising a mixture of air and nitrogen has a temperature in the range of 450 to 550°C, preferably in the range of 470 to 510°C, more preferably in the range of 480 to 500°C.
[0220] 96. As a molecular sieve, as an adsorbent, for ion exchange, or as a catalyst and / or catalyst support, preferably for the removal of nitrogen oxides NO X for the oxidation of NH, in particular for the oxidation of NH slip in diesel systems; for the decomposition of NO; as an additive in fluid catalytic cracking (FCC) processes; and / or as a catalyst in organic conversion reactions, preferably as a hydrocracking catalyst, as an alkylation catalyst, as an isomerization catalyst, or as a catalyst in the conversion of alcohols to olefins, and more preferably as a catalyst in the conversion of oxygenates to olefins.
[0221] 97. The use of embodiment 96, wherein the shaped article is used in a methanol to olefins process (MTO process), a dimethyl ether to olefins process (DTO process), a methanol to gasoline process (MTG process), a methanol to hydrocarbons process, a methanol to aromatics process, a biomass to olefins and / or biomass to aromatics process, a methane to benzene process, for aromatics alkylation, or in a fluid catalytic cracking (FCC) process, preferably in a methanol to olefins process (MTO process) and / or a dimethyl ether to olefins process (DTO process), and more preferably in a methanol to propylene process (MTP process), a methanol to propylene / butylene process (MT3 / 4 process), a dimethyl ether to propylene process (DTP process), a dimethyl ether to propylene / butylene process (DT3 / 4 process), and / or a dimethyl ether to ethylene / propylene (DT2 / 3 process).
[0222] The present invention will be further illustrated by the following examples and reference examples. [Example]
[0223] Experimental Section Reference Example 1: Determination of BET specific surface area and Langmuir specific surface area The BET and Langmuir specific surface areas were determined by physical adsorption of nitrogen at 77 K according to the method disclosed in DIN 66131. To determine the BET specific surface area, N2 adsorption isotherms at liquid nitrogen temperature were measured using a Micrometrics ASAP 2020M and a Tristar system.
[0224] Reference Example 2: Determination of tortuosity parameters for water PFG NMR allows for the destruction-free examination of the thermal molecular motion of molecules adsorbed in free gases and liquids, macro- and supramolecular solutions, and porous systems. Its principles and applications are described in US20070099299A1. The tortuosity factor was calculated from the diffusion coefficients obtained by NMR according to Reference Example 4. The tortuosity factor of a porous material is calculated as the self-diffusion coefficient (D) of the probe molecule in the porous system according to Equation I: eff ) and the self-diffusion coefficient of the free liquid (D0) (see S. Kolitcheff, E. Jolimaitre, A. Hugon, J. Verstraete, M. Rivallan, P. L. Carrette, F. Couenne and M. Tayakout-Fayolle, Catal. Sci. Technol., 2018, 8, 4537; and F. Elwinger, P. Pourmand, and I. Furo, J. Phys. Chem. C. 2017, 121, 13757-13764).
[0225]
number
[0226] The free diffusion coefficient of water is 2.02 x 10 at 20°C. -9 m 2 s -1 (See M. Holz, SR Heil and A. Sacco. Phys. Chem. Chem. Phys., 2000, 2, 4740-4742).
[0227] Reference Example 3: Determination of total pore volume The total pore volume was determined by mercury intrusion porosimetry according to DIN 66133.
[0228] Reference Example 4: Determination of diffusion coefficients by NMR Samples for NMR analysis were prepared by drying a small amount (0.05–0.2 g) of catalyst overnight under vacuum at T > 350 °C in an NMR measurement tube. The sample was then filled with nanopure water (Millipore Advantage A10) via a vacuum line to 90% of the catalyst support's pore volume (determined by Hg-porosimetry). The filled sample was then flame-sealed into the measurement tube and allowed to sit overnight before measurement.
[0229] D for water in catalyst material eff NMR analysis to determine ρ was performed using a Bruker Avance III NMR spectrometer at 20 °C and 1 bar, with a 400 MHz 1H resonance frequency. A Bruker Diff50 probehead was used with a Bruker Great 60A gradient amplifier. A temperature of 20 °C was maintained with a water-cooled gradient coil. The pulse program used for PFG NMR self-diffusion analysis was a pulsed spin echo with a pulsed field gradient, according to Figure 1b of US20070099299A1. For each sample, spin echo decay curves were measured at different diffusion times (between 20 and 100 ms) by stepwise increasing the field gradient strength (up to a maximum gmax = 3 T / m). The gradient pulse length was 1 ms. The spin echo decay curves were fitted to Equation 6 of US2007 / 0099299A. As an example, a log-log plot of data from a catalyst support used at various diffusion times is shown in Figure X. The slope of each line corresponds to the diffusion coefficient. The tortuosity of each catalyst support was calculated using the average diffusion coefficient over all diffusion times according to Equation I (see Reference Example 2).
[0230] Reference Example 5: Determination of crushing strength The crushing strengths referred to in the context of this invention should be understood to have been determined using a crushing strength testing machine Z2.5 / TS1S, supplier Zwick GmbH & Co., D-89079 Ulm, Germany. For the basics of this machine and its operation, reference is made to the respective instruction manual "Register 1: Betriebsanleitung / Sicherheit-shandbuch fuerdie Material-Pruefmaschine Z2.5 / TS1S", Edition 1.5, December 2001, Zwick GmbH & Co., Technische Dokumentation, August-Nagel-Strasse 11, D-89079 Ulm, Germany. The machine had a fixed horizontal table on which the strand was placed. A freely movable vertical plunger with a diameter of 3 mm actuated the strand against the fixed table. The device was operated with a preload of 0.5 N, a shear rate under preload of 10 mm / min, and a subsequent test speed of 1.6 mm / min. A vertically movable plunger, connected to a load cell to measure the force, moved toward a fixed turntable on which the molded article (strand) under investigation was placed, thus moving the strand relative to the table. The plunger was applied to the strand perpendicular to its longitudinal axis. Using the machine, a given strand, as described below, was subjected to increasing force via the plunger until the strand was crushed. The force at which the strand fractured was referred to as the strand's fracture strength. Experimental control was performed using a computer, which registered and evaluated the measurement results. The obtained value was the average of the measurements of 20 or 30 strands in each case. In particular, 20 strands were used for Comparative Example 9 and Example 10, and 30 strands were used for Examples 11 and 12 to determine the fracture strength.
[0231] Reference Example 6: Temperature-programmed ammonia desorption (NH3-TPD) Temperature-programmed desorption of ammonia (NH3-TPD) was performed using an automated chemisorption analysis unit (Micromeritics AutoChem II 2920) equipped with a thermal conductivity detector. Continuous analysis of the desorbed species was performed using an online mass spectrometer (OmniStar QMG200 from Pfeiffer Vacuum). Samples (0.1 g) were placed in quartz tubes and analyzed using the program described below. The temperature was measured using a Ni / Cr / Ni thermocouple located directly above the sample in the quartz tube. He with a purity of 5.0 was used for the analysis. A blank sample was analyzed for calibration before the measurements. 1. Preparation: Start recording; one measurement per second. 25°C and 30cm 3 Wait for 10 min at room temperature (approximately 25 °C and 1 atm) with a He flow rate of 30 cm / min; heat to 600 °C at a heating rate of 20 K / min and hold for 10 min. 3 / min) to 100 °C at a cooling rate of 20 K / min (furnace ramp temperature); 3 / min) to 100 °C at a cooling rate of 3 K / min (sample ramp temperature). 2. Saturation with NH3: Start of recording; one measurement per second. Gas flow was changed to a mixture of 10% NH3 in He (75 cm3) at 100 °C. 3 / min; change to 100°C and 1 atm); hold for 30 min. 3. Remove excess: Start recording; one measurement per second. Gas flow: 75 cm at 100°C. 3 Change to He flow at 100°C and 1 atm / min; hold for 60 min. 4. NH3-TPD: Start recording; one measurement per second. He flow (flow rate: 30 cm 3 / min) to 600 °C at a heating rate of 10 K / min; hold for 30 min. 5. End of measurement.
[0232] Desorbed ammonia was measured using an online mass spectrometer, which indicated that the signal from the thermal conductivity detector was caused by ammonia desorption. This involved utilizing the m / z = 16 signal from ammonia to monitor ammonia desorption. The amount of adsorbed ammonia (mmol / g sample) was determined by integrating the TPD signal with a horizontal baseline using Micromeritics software.
[0233] Reference Example 7: Synthesis of ZSM-5 zeolite with a SiO2:Al2O3 molar ratio of 100 757.0 kg of tetraethyl orthosilicate (TEOS) was stirred in a vessel. 350 kg of deionized water and 366.0 kg of a mixture of an aqueous solution of tetrapropylammonium hydroxide (TPAOH; Sachem; 40 wt.% TPAOH in water) in water were mixed. The resulting mixture was stirred for 60 minutes. Next, 120 kg of deionized water was mixed. The resulting mixture was stirred for 1 hour to allow TEOS hydrolysis. The mixture was heated to an internal temperature of 90°C, whereby the external temperature was 120°C. Ethanol was removed as an azeotrope of water and ethanol by distillation until a sump temperature of 95°C was reached. 856 kg of water / ethanol was thereby removed from the mixture. The mixture was then cooled to 30°C. 856 kg of water was then mixed to replenish the lost liquid. A solution of 24.2 kg of aluminum sulfate octadecahydrate (Al2(SO4)3·18H2O; Sigma-Aldrich) and 40 kg of deionized water was mixed to form a mixture. The vessel was closed and heated to 170 °C within 4 hours. The mixture was heated in an autoclave at 170 °C for 48 hours. The mixture was then cooled to 50 °C. The mixture was treated with 177.5 kg of aqueous nitric acid (BASF; 10% by weight in water) until a pH value of 7.6 was reached. After stirring for 30 minutes, the resulting suspension was filtered. The filter cake was washed with deionized water, pre-dried under a nitrogen stream for 6 hours, and then dried in an oven at 120 °C for 36 hours. 217 kg of dry material was obtained. The dried powder was crushed and subsequently calcined (5 hours, 500 °C).
[0234] The resulting material had a silica to alumina ratio of 100 and a crystallinity of over 90%. 2 / g and a BET specific surface area of 589 m 2 The resulting material exhibited a Langmuir specific surface area of 0.1 g / 100 g, a TOC of 44 g / 100 g, an Al content of 0.87 g / 100 g, and an alkali metal content of less than 0.01 g / 100 g.
[0235] Reference Example 8: Preparation of Mg-containing zeolite material (Mg-ZSM-5) Magnesium nitrate solution was spray-impregnated onto the ZSM-5 powder obtained from Reference Example 7. The amount of Mg weighed was such that the powder after calcination contained 2-3% by mass of Mg.
[0236] For the impregnation of ZSM-5 zeolite prepared according to Reference Example 7, 5 kg of zeolite powder was introduced into a tumble mixer. 1.2 kg of magnesium nitrate hexahydrate (Merck) was dissolved in 1.16 kg of deionized water. The resulting magnesium nitrate solution was then sprayed onto the ZSM-5 powder through a glass spray nozzle while rotating over a period of 95 minutes. The mixture was then rotated for another 15 minutes. The impregnated powder was then dried in a circulating oven at 120°C for 4 hours and then calcined in a static oven at 500°C for 5 hours under air (the heating rate of the static oven was 2°C / min).
[0237] The resulting material contained 2.2 g Mg / 100 g.
[0238] Comparative Example 9: Preparation of extrudates containing Mg-ZSM-5 Mg-ZSM-5 powder prepared by spray impregnation according to Reference Example 8 was further treated with boehmite (Pural SB; Sasol) as a binder to obtain extrudates. The amount of starting material was selected such that the extrudates contained 10 wt. % Al2O3 as a binder.
[0239] 4970 g of zeolite powder and 790 g of boehmite (Pural SB; Sasol) were weighed in a koller and mixed for 5 minutes. 124 g of aqueous formic acid solution (24 g of formic acid in 100 g of deionized water) was mixed therein. Subsequently, four portions of 455 g of water each were mixed at approximately 5-minute intervals over the first 35 minutes. Next, 110 g of polyethylene oxide (PEO E160) was mixed, followed by four portions of 455 g of water each at approximately 5-minute intervals until a total kneading time of 50 minutes was achieved. The kneaded material was extruded through a 2.5 mm die at 120 to 200 bar with the aid of an extrudate press. The resulting extrudate was then dried in a circulating oven at 120 °C for 4 hours and then calcined in a static oven at 550 °C for 5 hours. The extrudate could be cut to the desired length by hand.
[0240] The crushing strength of the obtained extrudate was 5.5 N. The Mg content of the obtained extrudate was 2.0 g Mg / 100 g, and the BET specific surface area was 345 m 2 Further, the extrudate obtained had a viscosity of 0.52 ml / g In addition, the acid site density was determined to be 0.70 mmol / g at temperatures below 250° C. and 0.05 mmol / g at temperatures above 250° C. according to NH3-TPD, as disclosed herein.
[0241] Example 10: Preparation of extrudates containing Mg-ZSM-5 (SiO:AlO molar ratio 100) Mg-ZSM-5 powder prepared by spray impregnation according to Reference Example 8 was further treated with boehmite (Pural SB; Sasol) as a binder to obtain extrudates. The amount of starting material was selected such that the extrudates contained 10 wt. % Al2O3 as a binder.
[0242] 4900 g of zeolite powder, 726 g of boehmite (Pural SB; Sasol), and 281 g of polysaccharide (Zusoplast PS1) were weighed in a koller and mixed for 5 minutes. 2252 g of aqueous formic acid (25% by weight formic acid in deionized water) was mixed therein. Subsequently, four portions of 455 g of water each were mixed at approximately 5-minute intervals over the first 35 minutes. Next, 110 g of polyethylene oxide (PEO E160) was mixed, followed by four portions of 455 g of water each at approximately 5-minute intervals until a total kneading time of 50 minutes was achieved. The kneaded material was extruded through a 2.5 mm die at 120 to 200 bar with the aid of an extrusion press. The resulting extrudates were then dried in a circulating oven at 120 °C for 4 hours and then calcined in a static oven at 550 °C for 5 hours. The extrudate can be cut by hand to the desired length.
[0243] The crushing strength of the obtained extrudate was 21 N. The Mg content of the obtained extrudate was 1.9 g Mg / 100 g, and the BET specific surface area was 356 m 2 Further, the extrudate obtained had a viscosity of 0.49 ml / g In addition, the acid site density was determined according to NH3-TPD as disclosed herein to be 0.48 mmol / g at temperatures below 250°C and less than 0.01 mmol / g at temperatures above 250°C.
[0244] From the results of mechanical strength determination, it can be gathered that the novel molded article prepared according to the present invention has a relatively higher crushing strength than the molded article prepared according to the prior art, despite having the same composition. In particular, it is shown that the molded article prepared according to Example 10 of the present invention has a crushing strength of 21 N, while the molded article according to the prior art has a crushing strength of 5.5 N.
[0245] Example 11: Preparation of extrudates containing Mg-ZSM-5 (SiO:AlO molar ratio 100) Mg-ZSM-5 powder prepared by spray impregnation according to Reference Example 8 was further treated with boehmite (Pural SB; Sasol) as a binder to obtain extrudates. The amount of starting material was selected such that the extrudates contained 10 wt. % Al2O3 as a binder.
[0246] 120 g of zeolite powder was weighed into a kneader and kneaded for 5 minutes. Separately, a suspension of 17.78 g of boehmite (Pural SB; Sasol) in 80 g of deionized water was prepared. 4.24 g of aqueous nitric acid solution (65% by weight nitric acid in deionized water) was mixed with this suspension, and the resulting suspension was stirred for 1 minute to form a gel. The formed gel was then added to the zeolite material in the kneader, and the resulting mixture was kneaded for 30 minutes. 2.76 g of polysaccharide (Zusoplast PS1) and 0.69 g of polyethylene oxide (PEO E160) were added, and the resulting mixture was kneaded for 5 minutes. Subsequently, 10 g portions of water were mixed, and the resulting mixture was kneaded for 5 minutes. The kneaded material was pressed through a 2.5 mm die with the aid of an extrusion press at a pressure of 93 to 148 bar. The resulting extrudates were subsequently dried in a circulating oven at a temperature of 120° C. for 4 hours (whereby the heat ramp was set at 2° C. / min) and then calcined in a static oven at 550° C. for 5 hours (whereby the heat ramp was set at 2° C. / min). The extrudates can be cut to the desired length by hand.
[0247] The crushing strength of the extrudates obtained was 17.7 N. The Mg content of the extrudates obtained was 1.8 g Mg / 100 g, the Al content was 5.8 g / 100 g, the Si content was 38 g / 100 g, the C content was less than 0.1 g / 100 g, and the BET specific surface area was 350 m 2 Further, the extrudate obtained had a viscosity of 0.50 ml / g In addition, the acid site density was determined according to the NH3-TPD disclosed herein to be 0.325 mmol / g at temperatures below 250°C and 0.218 mmol / g at temperatures ranging from above 250°C to 650°C.
[0248] From the results of mechanical strength determination, it can be gathered that the novel molded article prepared according to the present invention has a relatively higher crushing strength than the molded article prepared according to the prior art, despite having the same composition. In particular, the molded article prepared according to Example 11 of the present invention has a crushing strength of 17.7N, while the molded article according to the prior art has a crushing strength of 5.5N.
[0249] Example 12: Preparation of extrudates containing Mg-ZSM-5 (SiO:AlO molar ratio 100) Mg-ZSM-5 powder prepared by spray impregnation according to Reference Example 8 was further treated with boehmite (Pural SB; Sasol) as a binder to obtain extrudates. The amount of starting material was selected such that the extrudates contained 10 wt. % Al2O3 as a binder.
[0250] 120 g of zeolite powder was weighed into a kneader and kneaded for 5 minutes. Separately, a suspension of 17.78 g of boehmite (Pural SB; Sasol) in 80 g of deionized water was prepared. 3.18 g of aqueous nitric acid solution (65% by weight nitric acid in deionized water) was mixed with this suspension, and the resulting suspension was stirred for 1 minute to form a gel. The formed gel was then added to the zeolite material in the kneader, and the resulting mixture was kneaded for 30 minutes. 2.76 g of polysaccharide (Zusoplast PS1) and 0.69 g of polyethylene oxide (PEO E160) were added, and the resulting mixture was kneaded for 5 minutes. Subsequently, a 10 g portion of water was mixed, and the resulting mixture was kneaded for 2 minutes. Next, a 1 g portion of water was mixed, and the resulting mixture was kneaded for 2 minutes. The kneaded material was extruded through a 2.5 mm die with the aid of an extrudate press at a pressure of 93 to 148 bar. The resulting extrudate was subsequently dried in a circulating oven at a temperature of 120°C for 4 hours (whereby the heat ramp was set at 2°C / min) and then calcined in a static oven at 550°C for 5 hours (whereby the heat ramp was set at 2°C / min). The extrudate could be cut to the desired length by hand.
[0251] The crushing strength of the obtained extrudates was 17.1 N. The Mg content of the obtained extrudates was 1.9 g Mg / 100 g, the Al content was 5.9 g / 100 g, the Si content was 38 g / 100 g, the C content was less than 0.1 g / 100 g, and the BET specific surface area was 354 m 2 Further, the extrudate obtained had a viscosity of 0.49 ml / g In addition, the acid site density was determined according to NH3-TPD as disclosed herein to be 0.286 mmol / g at temperatures below 250°C and 0.261 mmol / g at temperatures ranging from above 250°C to 650°C.
[0252] From the results of mechanical strength determination, it can be gathered that the novel molded article prepared according to the present invention has a relatively higher crushing strength than the molded article prepared according to the prior art, despite having the same composition. In particular, the molded article prepared according to Example 12 of the present invention shows a crushing strength of 17.1 N, while the molded article according to the prior art shows a crushing strength of 5.5 N.
[0253] Example 13: Catalytic Testing - Methanol to Olefins Reaction The methanol to olefins (MTO) reaction was carried out at a temperature of 490 °C and a pressure of 4 bar (gauge) in a fixed-bed reactor. A sample (2.7 g, 1.6-2.0 mm sieve fraction) was heated at 490 °C for 3 h in a nitrogen flow (10 Nl / h). A feed stream containing 20 vol. % methanol, 70 vol. % water, and 10 vol. % nitrogen was added for 10 h. -1 Weight hourly space velocity (WHSV) and gas hourly space velocity (20224 h -1 The catalyst bed was continuously fed with a GHSV of 1000 kJ / min. The on-stream time was approximately 70 hours. The products were analyzed by online gas chromatography (Agilent 7890A) equipped with a TCD detector, two FID detectors, and using Select Permanent CO2HR, Restek Stabilwax, and Al2O3 MAPD columns.
[0254] The methanol conversion X was calculated according to Equation II: X = 1-(MeOH out / MeOH in ) (II) In formula II, MeOH out is the methanol at the reactor outlet, and MeOH in is the methanol at the reactor inlet.
[0255] The selectivity of different products is given according to Equation III as follows:
[0256]
number
[0257] In Formula III, NC i is the number of carbon atoms in component i, n i is the number of moles of component i, (out) refers to the outlet flow of the reactor, and (in) refers to the inlet flow of the reactor.
[0258] The molded articles prepared according to Comparative Example 9 and the molded articles prepared according to Example 10 were tested for the conversion of methanol to olefins.
[0259] The results of the catalyst testing are shown in Figures 1 and 3 below. As can be gathered from Figure 2, the molded part according to Comparative Example 9, which reflects the prior art, exhibited a methanol conversion ranging from 90 to 100% in the first 20 hours, which decreased to about 80% over the next 40 hours and continued to decrease to about 70%. Methanol conversion fluctuated significantly after 40 hours on stream. Selectivity to olefins was slightly above 70% for the first 40 hours and then decreased to values ranging from 50 to 68%. Selectivity to butylene was about 20% throughout the test period, selectivity to propylene was about 39 to 42% for the first 60 hours and then decreased to values ranging from 30 to 40%, and selectivity to ethylene was about 6 to 10% throughout the test period.
[0260] In contrast, the molded article prepared according to Example 10 of the present invention exhibited a methanol conversion ranging from 90 to 100% for the first 40 hours, remaining at about 90% for the next 20 hours, and then decreasing slightly to values ranging from 80 to 90%. Selectivity to olefins was slightly above 70% for the first 40 hours, and then decreased slightly to values ranging from 60 to 70%. Selectivity to butylene was about 20% over the test period, selectivity to propylene was about 39 to 45% over the test period, and selectivity to ethylene was about 6 to 10% over the test period.
[0261] Additionally, molded articles prepared according to Examples 11 and 12 of the present invention, respectively, exhibited methanol conversions ranging from 90 to 100% over the first 50 hours and remained at about 90% over the next 30 hours. Selectivity to olefins was about 70% over the entire test period. Selectivity to butylene was about 20% over the entire test period, selectivity to propylene was about 39 to 45% over the entire test period, and selectivity to ethylene was about 7 to 10% over the entire test period.
[0262] Therefore, from the results of the catalytic tests, it can be gathered that the molded articles of the present invention achieve overall superior performance not only in terms of methanol conversion and specific selectivity to the desired olefins, but also in terms of long-term performance. Thus, as can be gathered from these results, the molded articles of the present invention exhibit a relatively high level of prolonged catalytic activity.
[0263] DESCRIPTION OF THE DRAWINGS Figure 1: Log-log plot of data from catalyst supports for various diffusion times used. The vertical axis shows the signal in arbitrary units, and the horizontal axis shows the value b. The slope of each line corresponds to the diffusion coefficient.
[0264] Figure 2: Catalytic performance of the molded articles prepared according to Comparative Example 9. The horizontal axis shows the time on stream (TOS) in hours, and the vertical axis shows the catalytic performance of the molded articles prepared according to Example 9. 13The conversion with respect to methanol and the selectivity to olefins, butylene, propylene, ethylene, alkanes and carbon oxides (CO and CO2) are shown as percentages, determined according to
[0265] Figure 3: Catalytic performance of the molded articles prepared according to Example 10. The horizontal axis shows the time on stream (TOS) in hours, and the vertical axis shows the catalytic performance of the molded articles prepared according to Example 10. 13 The conversion with respect to methanol and the selectivity to olefins, butylene, propylene, ethylene, alkanes, and carbon oxides (CO and CO2) are shown as percentages, as determined according to
[0266] Figure 4: Catalytic performance of the molded articles prepared according to Example 11. The horizontal axis shows the time on stream (TOS) in hours, and the vertical axis shows the catalytic performance of the molded articles prepared according to Example 11. 13 The conversion with respect to methanol and the selectivity to olefins, butylene, propylene, ethylene, alkanes, and carbon oxides (CO and CO2) are shown as percentages, as determined according to
[0267] Figure 5: Catalytic performance of the molded articles prepared according to Example 12. The horizontal axis shows the time on stream (TOS) in hours, and the vertical axis shows the conversion with respect to methanol and the selectivity to olefins, butylenes, propylene, ethylene, alkanes, and carbon oxides (CO and CO) in percentage, as determined according to Example 13.
[0268] References -WO 2012 / 085154 A1 -US 2014 / 0058180 A1 -US 10,112,188 B2 -US 2014 / 0058181 A1 -US 10,005,073 B2 -US 9,511,361 B2 -US 2017 / 0121259 A1 -WO 2018 / 109083 A1 -CN 100503041 C -CN 104511298 B
Claims
1. 1. A method for preparing a shaped article comprising a zeolite material and one or more oxide binders, wherein the zeolite material has YO in its framework structure. 2 and X 2 O 3 wherein Y is Si and X is a trivalent element; (i) preparing a mixture comprising a zeolite material, a source of oxide binder, a first plasticizer, and an acid; (iii) mixing a second plasticizer different from the first plasticizer with the mixture obtained in (i); (v) forming the mixture obtained in (iii) to obtain a precursor of a formed article; and (vi) calcining the precursor of the shaped article; Including, wherein in the mixture prepared in (i), the mass ratio of the source of oxide binder, calculated as oxide, to the sum of the zeolite material and the source of oxide binder, calculated as oxide, is in the range of 0.05:1 to 0.15:1; The source of the oxide binder is AlOOH (boehmite) and Al 2 O 3 and X is selected from the group consisting of B, Al, Ga, In, and mixtures of two or more thereof.
2. (i) is (i.1.a) preparing a mixture comprising a zeolite material, a source of oxide binder, and a first plasticizer; (i.1.b) mixing an acid with the mixture obtained in (i.1.a) Including, 2. The method of claim 1, wherein an acid is mixed in (i.1.b) comprising the acid in an amount ranging from 5 to 50 wt. %; and the mass ratio of the acid mixed in (i.1.b) to the sum of the zeolitic material and source of oxide binder of the mixture prepared in (i) ranges from 0.05:1 to 0.15:
1.
3. (i) is (i.2.a) providing a zeolite material; (i.2.b) providing a mixture comprising a source of oxide binder, optionally water, and an acid; (i.2.c) mixing the mixture obtained in (i.2.b) with the zeolitic material provided in (i.2.a); (i.2.d) mixing a first plasticizer into the mixture obtained in (i.2.c); Including, the acid is provided to the mixture of (i.2.b) as an aqueous solution containing the acid in an amount ranging from 50 to 80% by weight, 2. The method of claim 1, wherein the mass ratio of acid provided in the mixture of (i.2.b) to the sum of the zeolitic material and source of oxide binder of the mixture prepared in (i) ranges from 0.005:1 to 0.05:
1.
4. 4. The method of claim 1, wherein the first plasticizer is selected from the group consisting of organic polymers, carbohydrates, graphite, botanical additives, and mixtures of two or more thereof.
5. 5. The method of claim 1, wherein the source of oxide binder comprises AlOOH (boehmite).
6. The zeolite material has a framework structure selected from the group consisting of ABW, ACO, AEI, AEL, AEN, AET, AFG, AFI, AFN, AFO, AFR, AFS, AFT, AFV, AFX, AFY, AHT, ANA, APC, APD, AST, ASV, ATN, ATO, ATS, ATT, ATV, AVL, AWO, AWW, BCT, BEA, BEC, BIK, BOF, BOG, BOZ, BPH, BRE, BSV, CAN, CAS, CDO, CFI, CGF, CGS, CHA, -CHI, -CLO, CON, CSV, CZP, DAC, DDR, DFO, DFT, DOH, DON, EAB, EDI, EEI, EMT, EON, EPI, ERI, ESV, ETR, EUO, *-EWT, EZT, FAR, FAU, FER, FRA, GIS, GIU, GME, GON, GOO, HEU, IFO, IFR, -IFU, IFW, IFY, IHW, IMF, IRN, IRR, -IRY, ISV, ITE, ITG, ITH, *-ITN, ITR, ITT, -ITV, ITW, IWR, IWS, IWV, IWW, JBW, JNT, JOZ, JRY, JSN, JSR, JST, JSW, KFI, LAU, LEV, LIO, -LIT, LOS, LOV, LTA, LTF, LTJ, LTL, LTN, MAR, MAZ, MEI, MEL, MEP, MER, MFI, MFS, MON, MOR, MOZ, *MRE, MSE, MSO, MTF, MTN, MTT, MTW, MVY, MWF, MWW, NAB, NAT, NES, NON, NPO, NPT, NSI, OBW, OFF, OKO, OSI, OSO, OWE, -PAR, PAU, PCR, PHI, PON, POS, PSI, PUN, RHO, -RON, RRO, RSN, RTE, RTH, RUT, RWR, RWY, SAF, SAO, SAS, SAT, SAV, SBE, SBN, SBS, SBT, SEW, SFE, SFF, SFG, SFH, SFN, SFO, SFS, *SFV, SFW, SGT, SIV, SOD, SOF, SOS, SSF, *-SSO, SSY, STF, STI, *STO, STT, STW, -SVR, SVV, SZR, TER, THO, TOL, TON, TSC, TUN, UEI, UFI, UOS, UOV, UOZ, USI, UTL, UWY, VET, VFI, VNI, VSV, WEI, -WEN, YUG, ZON, and a mixed type of two or more thereof.The method according to any one of claims 1 to 5.
7. 7. The method of any one of claims 1 to 6, wherein the zeolitic material comprises one or more alkaline earth metals M.
8. 8. The method of claim 1, wherein the acid is one or more of an inorganic acid and an organic acid.
9. 9. The method of claim 1, wherein in (v), the mixture is formed into a string.
10. A molded article comprising one or more oxide binders and a zeolite material, the zeolite material having YO in its framework structure. 2 and X 2 O 3 wherein Y is Si and X is a trivalent element; containing one or more oxide binders in an amount in the range of 5 to 15% by mass, calculated as oxides, and exhibiting a crush strength of 9N or greater; A molded article wherein the one or more oxide binders are alumina and X is selected from the group consisting of B, Al, Ga, In, and mixtures of two or more thereof.
11. 0.40 to 1.30 x 10 -9 m 2 11. The molded article of claim 10, exhibiting a diffusion coefficient in the range of .mu.m / s.
12. A molded article as described in claim 10 or 11, exhibiting a tortuosity parameter for water in the range of 1.00 to 3.
75.
13. 1. A process for converting oxygenates to olefins, comprising: (a) providing a molded article according to any one of claims 10 to 12; (b) providing a gas stream comprising one or more oxygenates and optionally one or more olefins and / or optionally one or more hydrocarbons; (c) contacting the shaped article provided in (a) with the gas stream provided in (b) to convert the one or more oxygenates to one or more olefins and optionally one or more hydrocarbons; (d) optionally recycling one or more of the one or more olefins and / or one or more hydrocarbons contained in the gas stream obtained in (c) to (b). A method comprising:
14. 13. Use of a shaped article according to any one of claims 10 to 12 as a molecular sieve, as an adsorbent, for ion exchange or as a catalyst and / or as a catalyst support.
Citation Information
Patent Citations
Catalyst for dimethyl ether synthesis and its preparation methods
CN100503041C
Catalyst system for converting methanol or dimethyl ether to propylene and its preparation method and application
CN104511298B
Preparation of Branched Aliphatic Alcohols Using Combined Process Streams from Hydrogenation and Dehydrogenation-Isomerization Units
JP2007509053A
Use of zeolitic materials in processes for producing zeolitic materials and converting oxygenates to olefins
JP2016502487A
Catalysts and methods for converting oxygenates to olefins
JP2017507773A