WO2014159101A1 - Methyl-substituted biphenyl compounds, their production and their use in the manufacture of plasticizers - Google Patents
Methyl-substituted biphenyl compounds, their production and their use in the manufacture of plasticizers Download PDFInfo
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- WO2014159101A1 WO2014159101A1 PCT/US2014/021952 US2014021952W WO2014159101A1 WO 2014159101 A1 WO2014159101 A1 WO 2014159101A1 US 2014021952 W US2014021952 W US 2014021952W WO 2014159101 A1 WO2014159101 A1 WO 2014159101A1
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- C07—ORGANIC CHEMISTRY
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- C07C67/00—Preparation of carboxylic acid esters
- C07C67/08—Preparation of carboxylic acid esters by reacting carboxylic acids or symmetrical anhydrides with the hydroxy or O-metal group of organic compounds
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- C07C2/76—Preparation of hydrocarbons from hydrocarbons containing a smaller number of carbon atoms by condensation of hydrocarbons with partial elimination of hydrogen
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- C07C—ACYCLIC OR CARBOCYCLIC COMPOUNDS
- C07C5/00—Preparation of hydrocarbons from hydrocarbons containing the same number of carbon atoms
- C07C5/32—Preparation of hydrocarbons from hydrocarbons containing the same number of carbon atoms by dehydrogenation with formation of free hydrogen
- C07C5/367—Formation of an aromatic six-membered ring from an existing six-membered ring, e.g. dehydrogenation of ethylcyclohexane to ethylbenzene
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- C07C2521/02—Boron or aluminium; Oxides or hydroxides thereof
- C07C2521/04—Alumina
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- C07C2521/00—Catalysts comprising the elements, oxides or hydroxides of magnesium, boron, aluminium, carbon, silicon, titanium, zirconium or hafnium
- C07C2521/06—Silicon, titanium, zirconium or hafnium; Oxides or hydroxides thereof
- C07C2521/08—Silica
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- C07C2523/38—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group C07C2521/00 of noble metals
- C07C2523/40—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group C07C2521/00 of noble metals of the platinum group metals
- C07C2523/42—Platinum
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- C—CHEMISTRY; METALLURGY
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- C07C—ACYCLIC OR CARBOCYCLIC COMPOUNDS
- C07C2523/00—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group C07C2521/00
- C07C2523/38—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group C07C2521/00 of noble metals
- C07C2523/54—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group C07C2521/00 of noble metals combined with metals, oxides or hydroxides provided for in groups C07C2523/02 - C07C2523/36
- C07C2523/56—Platinum group metals
- C07C2523/62—Platinum group metals with gallium, indium, thallium, germanium, tin or lead
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- C07C—ACYCLIC OR CARBOCYCLIC COMPOUNDS
- C07C2529/00—Catalysts comprising molecular sieves
- C07C2529/04—Catalysts comprising molecular sieves having base-exchange properties, e.g. crystalline zeolites, pillared clays
- C07C2529/06—Crystalline aluminosilicate zeolites; Isomorphous compounds thereof
- C07C2529/70—Crystalline aluminosilicate zeolites; Isomorphous compounds thereof of types characterised by their specific structure not provided for in groups C07C2529/08 - C07C2529/65
- C07C2529/72—Crystalline aluminosilicate zeolites; Isomorphous compounds thereof of types characterised by their specific structure not provided for in groups C07C2529/08 - C07C2529/65 containing iron group metals, noble metals or copper
- C07C2529/74—Noble metals
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- C07C2529/00—Catalysts comprising molecular sieves
- C07C2529/04—Catalysts comprising molecular sieves having base-exchange properties, e.g. crystalline zeolites, pillared clays
- C07C2529/06—Crystalline aluminosilicate zeolites; Isomorphous compounds thereof
- C07C2529/70—Crystalline aluminosilicate zeolites; Isomorphous compounds thereof of types characterised by their specific structure not provided for in groups C07C2529/08 - C07C2529/65
- C07C2529/72—Crystalline aluminosilicate zeolites; Isomorphous compounds thereof of types characterised by their specific structure not provided for in groups C07C2529/08 - C07C2529/65 containing iron group metals, noble metals or copper
- C07C2529/76—Iron group metals or copper
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- C07C2601/00—Systems containing only non-condensed rings
- C07C2601/12—Systems containing only non-condensed rings with a six-membered ring
- C07C2601/14—The ring being saturated
Definitions
- the disclosure relates to methyl-substituted biphenyl compounds, their production and their use in the manufacture of plasticizers.
- Plasticizers are incorporated into a resin (usually a plastic or elastomer) to increase the flexibility, workability, or distensibility of the resin.
- the largest use of plasticizers is in the production of "plasticized” or flexible polyvinyl chloride (PVC) products.
- Typical uses of plasticized PVC include films, sheets, tubing, coated fabrics, wire and cable insulation and jacketing, toys, flooring materials such as vinyl sheet flooring or vinyl floor tiles, adhesives, sealants, inks, and medical products such as blood bags and tubing, and the like.
- plasticizers include polyvinyl butyral, acrylic polymers, nylon, polyolefins, polyurethanes, and certain fluoroplastics. Plasticizers can also be used with rubber (although often these materials fall under the definition of extenders for rubber rather than plasticizers).
- Plasticizers A listing of the major plasticizers and their compatibilities with different polymer systems is provided in "Plasticizers," A. D. Godwin, in Applied Polymer Science 21st Century, edited by C. D. Craver and C. E. Carraher, Elsevier (2000); pp. 157-175.
- plasticizers The most important chemical class of plasticizers is phthalic acid esters, which accounted for about 84% worldwide of PVC plasticizer usage in 2009.
- phthalate esters As a result, there is a need for non-phthalate, mono- or diester plasticizers, particularly oxo-ester plasticizers, that can be made from low cost feeds and employ few manufacturing steps in order to have comparable economics with their phthalate counterparts.
- a successful substitute for phthalate esters has not yet been found.
- esters based on cyclohexanoic acid are esters based on cyclohexanoic acid.
- various compositions based on cyclohexanoate, cyclohexanedioates, and cyclohexanepolyoate esters were said to be useful for a range of goods from semi-rigid to highly flexible materials. See, for instance, WO 99/32427, WO 2004/046078, WO 2003/029339, U.S. Patent Publication No. 2006-0247461, and U.S. Patent No. 7,297,738.
- esters based on benzoic acid see, for instance, U.S. Patent No. 6,740,254 and polyketones, such as described in U.S. Patent No. 6,777,514; and U.S. Patent Publication No. 2008-0242895.
- Epoxidized soybean oil which has much longer alkyl groups (C ⁇ to Qg), has been tried as a plasticizer, but is generally used as a PVC stabilizer. Stabilizers are used in much lower concentrations than plasticizers.
- 2010-0159177 discloses triglycerides with a total carbon number of the triester groups between 20 and 25, produced by esterification of glycerol with a combination of acids derived from the hydroformylation and subsequent oxidation of C3 to C9 olefins, having excellent compatibility with a wide variety of resins and that can be made with a high throughput.
- dialkyl diphenates of Ci to Cg alcohols said to be useful as plasticizers for poly(vinyl chloride)
- dialkyl diphenates of Ci to Cg alcohols can be formed by converting diphenic acid to diphenic anhydride and esterifying the diphenic anhydride.
- these processes involve esterification of diphenic acid or anhydride, they necessarily result in 2,2 '-substituted diesters of diphenic acid.
- diesters having substitution on the 2-carbons have proven to be too volatile for use as plasticizers.
- the resultant mixture can then be used as a precursor in the production of biphenylester-based plasticizers by, for example, oxidixing the methyl-substituted biphenyl compounds to convert at least one of the methyl groups to a carboxylic acid group and then esterifying the carboxylic acid group(s) with an alcohol, such as an oxo alcohol.
- an alcohol such as an oxo alcohol.
- the present disclosure relates to a process for producing a methyl-substituted biphenyl compound, the process comprising:
- a dehydrogenation catalyst under conditions effective to produce a dehydrogenation reaction product comprising at least one methyl-substituted biphenyl compound wherein each of m and n is independently an integer from 1 to 3 and wherein the dehydrogenation catalyst comprises (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof.
- each of m and n is 1 and the dehydrogenation reaction product comprises less than 10 wt% of monomethyl-substituted biphenyl compounds.
- the present disclosure relates to a process for producing methyl-substituted biphenyl compounds, the process comprising:
- dehydrogenation catalyst comprises (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof.
- the aromatic hydrocarbon is toluene and the dehydrogenation reaction product comprises less than 5 wt% of fluorene and methylfluorenes combined.
- the present disclosure relates to a process for producing biphenyl esters, the process comprising:
- dehydrogenation catalyst comprises (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof;
- Figure 1 is a graph of toluene conversion against time on stream (TOS) in the hydroalkylation of toluene over the Pd-MCM-49 catalyst of Example 1.
- Figure 2 is a graph of toluene conversion against time on stream (TOS) in the hydroalkylation of toluene over the Pd-beta catalyst of Example 2.
- Figure 3 is a bar graph comparing the composition of the products obtained using the various catalysts tested in Example 6 to dehydrogenate the product of the hydroalkylation of toluene over the Pd/MCM-49 catalyst of Example 1.
- Figure 4 is a bar graph comparing the composition of the products obtained using the various catalysts tested in Example 6 to dehydrogenate the product of the hydroalkylation of toluene over the Pd/zeolite beta catalyst of Example 2.
- Described herein is a process for producing methyl substituted biphenyl compounds useful as precursors in the manufacture of biphenyl ester plasticizers.
- the process involves the catalytic hydroalkylation of toluene and/or xylene to produce methyl-substituted cyclohexylbenzene compounds followed by the catalytic dehydrogenation of at least part of the hydroalkylation reaction product.
- the present process employs a dehydrogenation catalyst comprising (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof.
- Hydroalkylation is a two-stage catalytic reaction in which an aromatic compound is partially hydrogenated to produce a cyclic olefin, which then reacts, in situ, with the aromatic compound to produce a cycloalkylaromatic product.
- the aromatic feed comprises toluene and/or xylene and the cycloalkylaromatic product comprises a mixture of (methylcyclohexyl)toluene and/or (dimethylcyclohexyl)xylene isomers.
- the desired reaction may be summarized as follows:
- Another competing reaction is dialkylation in which the (methylcyclohexyl)toluene product reacts with further methylcyclohexene to produce di(methylcyclohexyl)toluene. Again this by-product can be converted back to (methylcyclohexyl)toluene, in this case by transalkylation.
- this process requires the use of an acid catalyst at temperatures above 160°C and can lead to the production of additional by-products, such as di(methylcyclopentyl)toluenes, cyclohexylxylenes and cyclohexylbenzene. It is therefore desirable to employ a hydroalkylation catalyst that exhibits low selectivity towards di(methylcyclohexyl)toluene and other heavy by-products.
- the catalyst employed in the hydroalkylation reaction is a bifunctional catalyst comprising a hydrogenation component and a solid acid alkylation component, typically a molecular sieve.
- the catalyst may also include a binder such as clay, silica and/or metal oxides.
- the latter may be either naturally occurring or in the form of gelatinous precipitates or gels including mixtures of silica and metal oxides.
- Naturally occurring clays which can be used as a binder include those of the montmorillonite and kaolin families, which families include the subbentonites and the kaolins commonly known as Dixie, McNamee, Georgia and Florida clays or others in which the main mineral constituent is halloysite, kaolinite, dickite, nacrite or anauxite.
- Suitable metal oxide binders include silica, alumina, zirconia, titania, silica-alumina, silica-magnesia, silica-zirconia, silica-thoria, silica-beryllia, silica-titania as well as ternary compositions such as silica-alumina- thoria, silica-alumina-zirconia, silica-alumina-magnesia and silica-magnesia-zirconia.
- any known hydrogenation metal or compound thereof can be employed as the hydrogenation component of the catalyst, although suitable metals include palladium, ruthenium, nickel, zinc, tin, and cobalt, with palladium being particularly advantageous.
- the amount of hydrogenation metal present in the catalyst is between about 0.05 and about 10 wt %, such as between about 0.1 and about 5 wt %, of the catalyst.
- the solid acid alkylation component comprises a large pore molecular sieve having a Constraint Index (as defined in U.S. Patent No. 4,016,218) less than 2.
- Suitable large pore molecular sieves include zeolite beta, zeolite Y, Ultrastable Y (USY), Dealuminized Y (Deal Y), mordenite, ZSM-3, ZSM-4, ZSM-18, and ZSM-20.
- Zeolite ZSM-14 is described in U.S. Patent No. 3,923,636.
- Zeolite ZSM-20 is described in U.S. Patent No. 3,972,983.
- Zeolite Beta is described in U.S. Patent Nos. 3,308,069, and Re. No. 28,341.
- Low sodium Ultrastable Y molecular sieve (USY) is described in U.S. Patent Nos. 3,293,192 and 3,449,070.
- Dealuminized Y zeolite (Deal Y) may be prepared by the method found in U.S. Patent No. 3,442,795.
- Zeolite UHP-Y is described in U.S. Patent No. 4,401,556.
- Mordenite is a naturally occurring material but is also available in synthetic forms, such as TEA-mordenite (i.e., synthetic mordenite prepared from a reaction mixture comprising a tetraethylammonium directing agent).
- TEA-mordenite is disclosed in U.S. Patent Nos. 3,766,093 and 3,894, 104.
- the solid acid alkylation component comprises a molecular sieve of the MCM-22 family.
- MCM-22 family material includes one or more of:
- molecular sieves made from a common second degree building block, being a 2-dimensional tiling of such MWW framework topology unit cells, forming a monolayer of one unit cell thickness, preferably one c-unit cell thickness;
- molecular sieves made from common second degree building blocks, being layers of one or more than one unit cell thickness, wherein the layer of more than one unit cell thickness is made from stacking, packing, or binding at least two monolayers of one unit cell thickness.
- the stacking of such second degree building blocks can be in a regular fashion, an irregular fashion, a random fashion, or any combination thereof;
- molecular sieves made by any regular or random 2-dimensional or 3- dimensional combination of unit cells having the MWW framework topology.
- Molecular sieves of MCM-22 family generally have an X-ray diffraction pattern including d-spacing maxima at 12.4 ⁇ 0.25, 6.9 ⁇ 0.15, 3.57 ⁇ 0.07 and 3.42 ⁇ 0.07 Angstrom.
- the X-ray diffraction data used to characterize the material are obtained by standard techniques using the K-alpha doublet of copper as the incident radiation and a diffractometer equipped with a scintillation counter and associated computer as the collection system.
- Molecular sieves of MCM-22 family include MCM-22 (described in U.S. Patent No. 4,954,325), PSH-3 (described in U.S. Patent No. 4,439,409), SSZ-25 (described in U.S. Patent No.
- ERB-1 (described in European Patent No. 0293032)
- ITQ-1 (described in U.S. Patent No 6,077,498)
- ITQ-2 (described in International Patent Publication No. WO 97/17290)
- MCM-36 (described in U.S. Patent No. 5,250,277)
- MCM-49 (described in U.S. Patent No. 5,236,575)
- MCM-56 (described in U.S. Patent No. 5,362,697) and mixtures thereof.
- a diluent which is substantially inert under hydroalkylation conditions, may be supplied to the hydroalkylation reaction.
- the diluent is a hydrocarbon, in which the desired cycloalkylaromatic product is soluble, such as a straight chain paraffinic hydrocarbon, a branched chain paraffinic hydrocarbon, and/or a cyclic paraffinic hydrocarbon. Examples of suitable diluents are decane and cyclohexane.
- the amount of diluent is not narrowly defined, desirably the diluent is added in an amount such that the weight ratio of the diluent to the aromatic compound is at least 1 : 100; for example at least 1 : 10, but no more than 10: 1, desirably no more than 4: 1.
- the aromatic feed to the hydroalkylation reaction also includes benzene and/or one or more alkylbenzenes different from toluene and xylene.
- Suitable alkylbenzenes may have one or more alkyl groups with up to 4 carbon atoms and include, by way of example, ethylbenzene, cumene, and unseparated C ⁇ -Cg or C 7 - Cg or C-7-C9 streams.
- the hydroalkylation reaction can be conducted in a wide range of reactor configurations including fixed bed, slurry reactors, and/or catalytic distillation towers.
- the hydroalkylation reaction can be conducted in a single reaction zone or in a plurality of reaction zones, in which at least the hydrogen is introduced to the reaction in stages.
- Suitable reaction temperatures are between about 100°C and about 400°C, such as between about 125°C and about 250°C, while suitable reaction pressures are between about 100 and about 7,000 kPa, such as between about 500 and about 5,000 kPa.
- the molar ratio of hydrogen to aromatic feed is typically from about 0.15: 1 to about 15: 1.
- MCM-22 family molecular sieves are particularly active and stable catalysts for the hydroalkylation of toluene or xylene.
- catalysts containing MCM-22 family molecular sieves exhibit improved selectivity to the 3,3 '-dimethyl, the 3, 4' -dimethyl, the 4,3'-dimethyl and the 4,4'- dimethyl isomers in the hydroalkylation product, while at the same time reducing the formation of fully saturated and heavy by-products.
- the hydroalkylation reaction product may comprise:
- the hydroalkylation reaction product may comprise less than 1 wt% of compounds containing in excess of 16 carbon atoms.
- the presence of a methyl group in the 2 position on either the cyclohexyl or phenyl ring is a precursor for the formation of fluorene and methyl fluorene.
- Fluorene is difficult to separate from the dimethylbiphenyl product and causes problems in the oxidation step and also in the plasticizers performance. It is therefore advantageous to minimize the formation of isomers which have a methyl group in the ortho, 2 and benzylic positions.
- the major components of the hydroalkylation reaction effluent are (methylcyclohexyl)toluenes and/or (dimethylcyclohexyl)xylenes, unreacted aromatic feed (toluene and/or xylene) and fully saturated single ring by-products (methylcyclohexane and dimethylcyclohexane).
- the unreacted feed and light byproducts can readily be removed from the reaction effluent by, for example, distillation.
- the unreacted feed can then be recycled to the hydroalkylation reactor, while the saturated by-products can be dehydrogenated to produce additional recycleable feed.
- the remainder of the hydroalkylation reaction effluent composed mainly of (methylcyclohexyl)toluenes and/or (dimethylcyclohexyl)xylenes, is then catalytically dehydrogenated to produce the corresponding methyl-substituted biphenyl compounds.
- the catalyst employed in the dehydrogenation process comprises (i) an element or compound from Group 10 of the Periodic Table of Elements, for example platinum, and (ii) tin or a compound of tin, both mounted on a refractory support, such as silica, alumina or carbon nanotubes.
- the Group 10 element is present in amount from 0.1 to 5 wt% of the catalyst and the tin is present in amount from 0.05 to 2.5 wt% of the catalyst.
- the dehydrogenation is conveniently conducted at a temperature from about 200°C to about 600°C and a pressure from about 100 kPa to about 3550 kPa (atmospheric to about 500 psig) in the presence of dehydrogenation catalyst.
- the product of the dehydrogenation step comprises methyl- substituted biphenyl compounds in which the concentration of the 3,3-, 3,4- and 4,4- dimethyl isomers is at least 50 wt%, such as at least 60 wt%, for example at least 70 wt% based on the total weight of methyl-substituted biphenyl isomers.
- the product may contain less than 10 wt%, such as less than 5 wt%, for example less than 3 wt% of methyl biphenyl compounds and less than 5 wt%, such as less than 3 wt%, for example less than 1 wt% of fluorene and methyl fluorenes combined.
- methyl-substituted biphenyl compounds produced by the dehydrogenation reaction can readily be converted ester plasticizers by a process comprising oxidation to produce the corresponding carboxylic acids followed by esterification with an alcohol.
- the oxidation can be performed by any process known in the art, such as by reacting the methyl-substituted biphenyl compounds with an oxidant, such as oxygen, ozone or air, or any other oxygen source, such as hydrogen peroxide, in the presence of a catalyst at temperatures from 30°C to 300°C, such as from 60°C to 200°C.
- oxidant such as oxygen, ozone or air
- oxygen source such as hydrogen peroxide
- the resulting carboxylic acids can then be esterified to produce biphenyl ester plasticizers by reaction with one or more C 4 to C 14 alcohols.
- Suitable esterification conditions are well-known in the art and include, but are not limited to, temperatures of 0-300°C and the presence or absence of homogeneous or heterogeneous esterification catalysts, such as Lewis or Bronsted acid catalysts.
- Suitable alcohols are "oxo-alcohols", by which is meant an organic alcohol, or mixture of organic alcohols, which is prepared by hydroformylating an olefin, followed by hydrogenation to form the alcohols.
- the olefin is formed by light olefin oligomerization over heterogeneous acid catalysts, which olefins are readily available from refinery processing operations.
- the reaction results in mixtures of longer-chain, branched olefins, which subsequently form longer chain, branched alcohols, as described in U.S. Patent No. 6,274,756, incorporated herein by reference in its entirety.
- Another source of olefins used in the OXO process are through the oligomerization of ethylene, producing mixtures of predominately straight chain alcohols with lesser amounts of lightly branched alcohols.
- the biphenyl ester plasticizers of the present application find use in a number of different polymers, such as vinyl chloride resins, polyesters, polyurethanes, ethylene-vinyl acetate copolymers, rubbers, poly(meth)acrylics and mixtures thereof.
- MCM-49 zeolite crystals 80 parts are combined with 20 parts pseudoboehmite alumina, on a calcined dry weight basis.
- the MCM-49 and pseudoboehmite alumina dry powder is placed in a muller and mixed for about 10 to 30 minutes.
- Sufficient water and 0.05% polyvinyl alcohol is added to the MCM-49 and alumina during the mixing process to produce an extrudable paste.
- the extrudable paste is formed into a 1/20 inch (0.13 cm) quadrulobe extrudate using an extruder and the resulting extrudate is dried at a temperature ranging from 250°F to 325°F (120°C to 163°C). After drying, the dried extrudate is heated to 1000°F (538°C) under flowing nitrogen. The extrudate is then cooled to ambient temperature and humidified with saturated air or steam.
- the extrudate is ion exchanged with 0.5 to 1 N ammonium nitrate solution.
- the ammonium nitrate solution ion exchange is repeated.
- the ammonium nitrate exchanged extrudate is then washed with deionized water to remove residual nitrate prior to calcination in air. After washing the wet extrudate, it is dried.
- the exchanged and dried extrudate is then calcined in a nitrogen/air mixture to a temperature 1000°F (538°C). Afterwards, the calcined extrudate is cooled to room temperature.
- the 80% MCM-49, 20% AI2O3 extrudate was incipient wetness impregnated with a palladium (II) chloride solution (target: 0.30% Pd) and then dried overnight at 121°C.
- the dried catalyst was calcined in air at the following conditions: 5 volumes air per volume catalyst per minute, ramp from ambient to 538°C at l°C/min and hold for 3 hours.
- beta zeolite crystals are combined with 20 parts pseudoboehmite alumina, on a calcined dry weight basis.
- the beta and pseudoboehmite are mixed in a muller for about 15 to 60 minutes.
- Sufficient water and 1.0% nitric acid is added during the mixing process to produce an extrudable paste.
- the extrudable paste is formed into a 1/20 inch quadrulobe extrudate using an extruder. After extrusion, the l/20th inch quadrulobe extrudate is dried at a temperature ranging from 250°F to 325°F (120°C to 163°C).
- the dried extrudate is heated to 1000°F (538°C) under flowing nitrogen and then calcined in air at a temperature of 1000°F (538°C). Afterwards, the calcined extrudate is cooled to room temperature.
- the 80% Beta, 20% AI2O3 extrudate was incipient wetness impregnated with a tetraammine palladium (II) nitrate solution (target: 0.30% Pd) and then dried overnight at 121°C.
- the dried catalyst was calcined in air at the following conditions: 5 volumes air per volume catalyst per minute, ramp from ambient to 538°C at l°C/min and hold for 3 hours.
- Example 3 Hydroalkylation Catalyst Testing
- the reactor comprised a stainless steel tube having an outside diameter of: 3/8 inch (0.95 cm), a length of 20.5 inch (52 cm) and a wall thickness of 0.35 inch (0.9 cm).
- a piece of stainless steel tubing having a length of 83 ⁇ 4 inch (22 cm) and an outside diameter of: 3/8 inch (0.95 cm) and a similar length of 1 ⁇ 4 inch (0.6 cm) tubing of were used in the bottom of the reactor (one inside of the other) as a spacer to position and support the catalyst in the isothermal zone of the furnace.
- a 1 ⁇ 4 inch (0.6 cm) plug of glass wool was placed on top of the spacer to keep the catalyst in place.
- a 1/8 inch (0.3 cm) stainless steel thermo-well was placed in the catalyst bed to monitor temperature throughout the catalyst bed using a movable thermocouple.
- the catalyst was sized to 20/40 sieve mesh or cut to 1 : 1 length to diameter ratio, dispersed with quartz chips (20/40 mesh) then loaded into the reactor from the top to a volume of 5.5 cc.
- the catalyst bed typically was 15 cm in length.
- the remaining void space at the top of the reactor was filled with quartz chips, with a 1 ⁇ 4 plug of glass wool placed on top of the catalyst bed being used to separate quartz chips from the catalyst.
- the reactor was installed in a furnace with the catalyst bed in the middle of the furnace at a pre-marked isothermal zone. The reactor was then pressure and leak tested typically at 300 psig (2170 kPa).
- the catalyst was pre-conditioned in situ by heating to 25°C to 240°C with H 2 flow at 100 cc/min and holding for 12 hours.
- a 500 cc ISCO syringe pump was used to introduce a chemical grade toluene feed to the reactor.
- the feed was pumped through a vaporizer before flowing through heated lines to the reactor.
- a Brooks mass flow controller was used to set the hydrogen flow rate.
- a Grove "Mity Mite" back pressure controller was used to control the reactor pressure typically at 150 psig (1135 kPa). GC analyses were taken to verify feed composition.
- the feed was then pumped through the catalyst bed held at the reaction temperature of 120°C to 180°C at a WHSV of 2 and a pressure of 15-200 psig (204-1480 kPa).
- the liquid products exiting the reactor flowed through heated lines routed to two collection pots in series, the first pot being heated to 60°C and the second pot cooled with chilled coolant to about 10°C. Material balances were taken at 12 to 24 hrs intervals. Samples were taken and diluted with 50% ethanol for analysis. An Agilent 7890 gas chromatograph with FID detector was used for the analysis. The non-condensable gas products were routed to an on line HP 5890 GC.
- the analysis is done on an Agilent 7890 GC with 150 vial sample tray.
- the Pd/MCM-49 catalyst has much lower selectivity than the Pd/beta catalyst towards the production of the fully saturated byproducts, methylcyclohexane and dimethylbi(cyclohexane) and to the production of dialkylate products.
- the Pd/MCM-49 catalyst was found to exhibit improved stability and catalyst life as compared with the Pd/beta catalyst.
- a l%Pt/0.15%Sn/SiO2 catalyst was prepared by incipient wetness impregnation, in which a 1/20" (1.2 mm) quadrulobe silica extrudate was initially impregnated with an aqueous solution of tin chloride and then dried in air at 121°C. The resultant tin-containing extrudates were then impregnated with an aqueous solution of tetraammine Pt nitrate and again dried in air at 121°C. The resultant product was calcined in air at 350°C for 3 hours before being used in subsequent catalyst testing.
- Example 5 Preparation of 1% ⁇ / ⁇ - ⁇ 2 ⁇ 3 Dehydrogenation Catalyst
- the support had a surface area of 126 m 2 /g, a pore volume of 0.58 cmVg, and a pore size of 143 A, measured by BET 2 adsorption.
- Pt was added to ⁇ - ⁇ 2 ⁇ 3 support by impregnating with aqueous solution of ( H ⁇ PtfTSfC ⁇ . The Pt metal loading on the supports is adjusted at 1 wt%. After impregnating, the sample was placed in a glass dish at room temperature for 60 minutes to reach equilibrium. Then it was dried in air at 250°F (120°C) for 4 hrs and then calcined in a box furnace at 680°F (360°C) in air for 3 hrs. The furnace was ramped at 3°F/minute to the calcinations temperature and the air flow rate for the calcination was adjusted to 5 volume/volume catalyst/minute.
- Example 6 Dehydrogenation Catalyst Testing
- the catalysts of Examples 4 and 5 were used to perform dehydrogenation tests on the conversion products obtained in Example 3 from the Pd/MCM-49 and Pd/beta catalysts of Examples 1 and 2. In addition, the same tests were performed using a commercial 0.3wt%Pt/Al 2 O3 dehydrogenation catalyst supplied by Akzo. The same reactor, catalyst and analytical configuration as described in Example 3 was used to perform dehydrogenation tests, except each dehydrogenation catalyst was preconditioned in situ by heating to 375°C to 460°C with 3 ⁇ 4 flow at 100 cc/min and holding for 2 hours. In addition, in the dehydrogenation tests the catalyst bed was held at the reaction temperature of 375°C to 460°C at a WHSV of 2 and a pressure of 100 psig (790 kPa).
- Figures 3 and 4 show that the tin-containing catalyst of Example 4 was much more selective to the desired 3', 3, 3',4 and 4',4 dimethyl biphenyl products and made less monomethyl biphenyl, fluorene and methylfluorene as compared with the catalysts which had no tin.
- a process for producing a methyl-substituted biphenyl compound comprising:
- a process for producing methyl-substituted biphenyl compounds comprising:
- dehydrogenation catalyst comprises (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof.
- a process for producing biphenyl esters comprising:
- compositions, an element or a group of elements are preceded with the transitional phrase “comprising”, it is understood that we also contemplate the same composition or group of elements with transitional phrases “consisting essentially of,” “consisting of, “selected from the group of consisting of,” or “is” preceding the recitation of the composition, element, or elements and vice versa.
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Abstract
In a process for producing a methyl-substituted biphenyl compound, at least one methyl-substituted cyclohexylbenzene compound of the formula (I) is contacted with a dehydrogenation catalyst under conditions effective to produce a dehydrogenation reaction product comprising at least one methyl-substituted biphenyl compound, wherein each of m and n is independently an integer from 1 to 3 and wherein the dehydrogenation catalyst comprises (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof.
Description
METHYL-SUBSTITUTED BIPHENYL COMPOUNDS, THEIR PRODUCTION AND THEIR USE IN THE MANUFACTURE OF PLASTICIZERS
INVENTOR(S); Chuansheng BAI, Jihad M. DAKKA, Lorenzo C. DECAUL PRIORITY
[0001] This application claims the benefit of and priority to Provisional Application
No. 61/781, 1 16, filed March 14, 2013.
FIELD
[0002] The disclosure relates to methyl-substituted biphenyl compounds, their production and their use in the manufacture of plasticizers.
BACKGROUND
[0003] Plasticizers are incorporated into a resin (usually a plastic or elastomer) to increase the flexibility, workability, or distensibility of the resin. The largest use of plasticizers is in the production of "plasticized" or flexible polyvinyl chloride (PVC) products. Typical uses of plasticized PVC include films, sheets, tubing, coated fabrics, wire and cable insulation and jacketing, toys, flooring materials such as vinyl sheet flooring or vinyl floor tiles, adhesives, sealants, inks, and medical products such as blood bags and tubing, and the like.
[0004] Other polymer systems that use small amounts of plasticizers include polyvinyl butyral, acrylic polymers, nylon, polyolefins, polyurethanes, and certain fluoroplastics. Plasticizers can also be used with rubber (although often these materials fall under the definition of extenders for rubber rather than plasticizers). A listing of the major plasticizers and their compatibilities with different polymer systems is provided in "Plasticizers," A. D. Godwin, in Applied Polymer Science 21st Century, edited by C. D. Craver and C. E. Carraher, Elsevier (2000); pp. 157-175.
[0005] The most important chemical class of plasticizers is phthalic acid esters, which accounted for about 84% worldwide of PVC plasticizer usage in 2009. However, there is an effort to decrease the use of phthalate esters as plasticizers in PVC, particularly in end uses where the product contacts food, such as bottle cap liners and sealants, medical and food films, or for medical examination gloves, blood bags, and IV delivery systems, flexible tubing, or for toys, and the like. As a result, there is a need for non-phthalate, mono- or diester plasticizers, particularly oxo-ester plasticizers,
that can be made from low cost feeds and employ few manufacturing steps in order to have comparable economics with their phthalate counterparts. For these and most other uses of plasticized polymer systems, however, a successful substitute for phthalate esters has not yet been found.
[0006] One such suggested substitute for phthalates are esters based on cyclohexanoic acid. In the late 1990's and early 2000's, various compositions based on cyclohexanoate, cyclohexanedioates, and cyclohexanepolyoate esters were said to be useful for a range of goods from semi-rigid to highly flexible materials. See, for instance, WO 99/32427, WO 2004/046078, WO 2003/029339, U.S. Patent Publication No. 2006-0247461, and U.S. Patent No. 7,297,738.
[0007] Other suggested substitutes include esters based on benzoic acid (see, for instance, U.S. Patent No. 6,740,254) and polyketones, such as described in U.S. Patent No. 6,777,514; and U.S. Patent Publication No. 2008-0242895. Epoxidized soybean oil, which has much longer alkyl groups (C^ to Qg), has been tried as a plasticizer, but is generally used as a PVC stabilizer. Stabilizers are used in much lower concentrations than plasticizers. U.S. Patent Publication No. 2010-0159177 discloses triglycerides with a total carbon number of the triester groups between 20 and 25, produced by esterification of glycerol with a combination of acids derived from the hydroformylation and subsequent oxidation of C3 to C9 olefins, having excellent compatibility with a wide variety of resins and that can be made with a high throughput.
[0008] Typically, the best that has been achieved with substitution of the phthalate ester with an alternative material is a flexible PVC article having either reduced performance or poorer processability. Thus, existing efforts to make phthalate-free plasticizer systems for PVC have not proven to be entirely satisfactory, and so this is still an area of intense research.
[0009] For example, in an article entitled "Esters of diphenic acid and their plasticizing properties", Kulev et al, Izvestiya Tomskogo PoUtekhnicheskogo Instituta (1961) 1 11, disclose that diisoamyl diphenate, bis(2-ethylhexyl) diphenate and mixed heptyl, octyl and nonyl diphenates can be prepared by esterification of diphenic acid, and allege that the resultant esters are useful as plasticizers for vinyl chloride. Similarly, in an article entitled "Synthesis of dialkyl diphenates and their properties",
Shioda et al, Yuki Gosei Kagaku Kyokaishi (1959), 17, disclose that dialkyl diphenates of Ci to Cg alcohols, said to be useful as plasticizers for poly(vinyl chloride), can be formed by converting diphenic acid to diphenic anhydride and esterifying the diphenic anhydride. However, since these processes involve esterification of diphenic acid or anhydride, they necessarily result in 2,2 '-substituted diesters of diphenic acid. Generally, such diesters having substitution on the 2-carbons have proven to be too volatile for use as plasticizers.
[0010] An alternative method of producing dialkyl diphenate esters having an increased proportion of the less volatile 3,3', 3,4' and 4,4' diesters has now been developed. In particular, it has been found that dimethyl biphenyl compounds containing significant amounts of the 3,3 '-dimethyl, the 3, 4' -dimethyl and the 4,4'- dimethyl isomers can be economically produced by hydroalkylation of toluene and/or xylene followed by dehydrogenation of the resulting (methylcyclohexyl)toluene and/or (dimethylcyclohexyl)xylene product. The resultant mixture can then be used as a precursor in the production of biphenylester-based plasticizers by, for example, oxidixing the methyl-substituted biphenyl compounds to convert at least one of the methyl groups to a carboxylic acid group and then esterifying the carboxylic acid group(s) with an alcohol, such as an oxo alcohol. One important step in this overall process is the dehydrogenation reaction and, in particular, it has now been found that the addition of tin to the dehydrogenation catalyst significantly improves the selectivity to the desired dimethyl biphenyl isomer mixture.
SUMMARY
[0011] Accordingly, in one aspect, the present disclosure relates to a process for producing a methyl-substituted biphenyl compound, the process comprising:
with a dehydrogenation catalyst under conditions effective to produce a dehydrogenation reaction product comprising at least one methyl-substituted biphenyl
compound wherein each of m and n is independently an integer from 1 to 3 and wherein the dehydrogenation catalyst comprises (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof.
[0012] In one embodiment, each of m and n is 1 and the dehydrogenation reaction product comprises less than 10 wt% of monomethyl-substituted biphenyl compounds.
[0013] In a further aspect, the present disclosure relates to a process for producing methyl-substituted biphenyl compounds, the process comprising:
(a) contacting a feed comprising at least one aromatic hydrocarbon selected from the group consisting of toluene, xylene and mixtures thereof with hydrogen in the presence of a hydroalkylation catalyst under conditions effective to produce a hydroalkylation reaction product comprising (methylcyclohexyl)toluenes and/or (dimethylcyclohexyl)xylenes; and
(b) dehydrogenating at least part of the hydroalkylation reaction product in the presence of a dehydrogenation catalyst under conditions effective to produce a dehydrogenation reaction product comprising a mixture of methyl-substituted biphenyl compounds, wherein the dehydrogenation catalyst comprises (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof.
[0014] In one embodiment, the aromatic hydrocarbon is toluene and the dehydrogenation reaction product comprises less than 5 wt% of fluorene and methylfluorenes combined.
[0015] In yet a further aspect, the present disclosure relates to a process for producing biphenyl esters, the process comprising:
(a) contacting a feed comprising at least one aromatic hydrocarbon selected from the group consisting of toluene, xylene and mixtures thereof with hydrogen in the presence of a hydroalkylation catalyst under conditions effective to produce a hydroalkylation reaction product comprising (methylcyclohexyl)toluenes and/or (dimethylcyclohexyl)xylenes; and
(b) dehydrogenating at least part of the hydroalkylation reaction product in the presence of a dehydrogenation catalyst under conditions effective to produce a dehydrogenation reaction product comprising a mixture of methyl-substituted biphenyl compounds, wherein the dehydrogenation catalyst comprises (i) an element or
compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof;
(c) contacting at least part of the dehydrogenation reaction product with an oxygen source under conditions effective to convert at least part of the methyl- substituted biphenyl compounds to biphenyl carboxylic acids; and
(d) reacting the biphenyl carboxylic acids with one or more C4 to C14 alcohols under conditions effective to produce biphenyl esters.
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a graph of toluene conversion against time on stream (TOS) in the hydroalkylation of toluene over the Pd-MCM-49 catalyst of Example 1.
[0017] Figure 2 is a graph of toluene conversion against time on stream (TOS) in the hydroalkylation of toluene over the Pd-beta catalyst of Example 2.
[0018] Figure 3 is a bar graph comparing the composition of the products obtained using the various catalysts tested in Example 6 to dehydrogenate the product of the hydroalkylation of toluene over the Pd/MCM-49 catalyst of Example 1.
[0019] Figure 4 is a bar graph comparing the composition of the products obtained using the various catalysts tested in Example 6 to dehydrogenate the product of the hydroalkylation of toluene over the Pd/zeolite beta catalyst of Example 2.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0020] Described herein is a process for producing methyl substituted biphenyl compounds useful as precursors in the manufacture of biphenyl ester plasticizers. As discussed below, the process involves the catalytic hydroalkylation of toluene and/or xylene to produce methyl-substituted cyclohexylbenzene compounds followed by the catalytic dehydrogenation of at least part of the hydroalkylation reaction product. In particular, the present process employs a dehydrogenation catalyst comprising (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof. Thus it has been found that the addition of the addition of tin to the dehydrogenation catalyst significantly improves the selectivity to the desired methyl substituted biphenyl compounds.
[0021] As used herein, the numbering scheme for the Periodic Table Groups is the new notation as disclosed in Chemical and Engineering News, 63(5), 27 (1985).
Hydroalkylation of toluene and/or xylene
[0022] Hydroalkylation is a two-stage catalytic reaction in which an aromatic compound is partially hydrogenated to produce a cyclic olefin, which then reacts, in situ, with the aromatic compound to produce a cycloalkylaromatic product. In the present process, the aromatic feed comprises toluene and/or xylene and the cycloalkylaromatic product comprises a mixture of (methylcyclohexyl)toluene and/or (dimethylcyclohexyl)xylene isomers. In the case of toluene, the desired reaction may be summarized as follows:
[0023] Among the competing reactions is further hydrogenation of the cyclic olefin intermediate and/or the cycloalkylaromatic product to produce fully saturated rings. In the case of toluene as the hydroalkylation feed, further hydrogenation can produce methylcyclohexane and dimethylbicyclohexane compounds. Although these byproducts can be converted back to feed (toluene) and to the product ((methylcyclohexyl)toluene and dimethylbiphenyl) via dehydrogenation, this involves an endothermic reaction requiring high temperatures (>375°C) to obtain high conversion. This not only makes the reaction costly but can also lead to further byproduct formation and hence yield loss. It is therefore desirable to employ a hydroalkylation catalyst that exhibits low selectivity towards the production of fully saturated rings.
[0024] Another competing reaction is dialkylation in which the (methylcyclohexyl)toluene product reacts with further methylcyclohexene to produce di(methylcyclohexyl)toluene. Again this by-product can be converted back to (methylcyclohexyl)toluene, in this case by transalkylation. However, this process requires the use of an acid catalyst at temperatures above 160°C and can lead to the production of additional by-products, such as di(methylcyclopentyl)toluenes, cyclohexylxylenes and cyclohexylbenzene. It is therefore desirable to employ a hydroalkylation catalyst that exhibits low selectivity towards
di(methylcyclohexyl)toluene and other heavy by-products.
[0025] The catalyst employed in the hydroalkylation reaction is a bifunctional catalyst comprising a hydrogenation component and a solid acid alkylation component, typically a molecular sieve. The catalyst may also include a binder such as clay, silica and/or metal oxides. The latter may be either naturally occurring or in the form of gelatinous precipitates or gels including mixtures of silica and metal oxides. Naturally occurring clays which can be used as a binder include those of the montmorillonite and kaolin families, which families include the subbentonites and the kaolins commonly known as Dixie, McNamee, Georgia and Florida clays or others in which the main mineral constituent is halloysite, kaolinite, dickite, nacrite or anauxite. Such clays can be used in the raw state as originally mined or initially subjected to calcination, acid treatment or chemical modification. Suitable metal oxide binders include silica, alumina, zirconia, titania, silica-alumina, silica-magnesia, silica-zirconia, silica-thoria, silica-beryllia, silica-titania as well as ternary compositions such as silica-alumina- thoria, silica-alumina-zirconia, silica-alumina-magnesia and silica-magnesia-zirconia.
[0026] Any known hydrogenation metal or compound thereof can be employed as the hydrogenation component of the catalyst, although suitable metals include palladium, ruthenium, nickel, zinc, tin, and cobalt, with palladium being particularly advantageous. In certain embodiments, the amount of hydrogenation metal present in the catalyst is between about 0.05 and about 10 wt %, such as between about 0.1 and about 5 wt %, of the catalyst.
[0027] In one embodiment, the solid acid alkylation component comprises a large pore molecular sieve having a Constraint Index (as defined in U.S. Patent No. 4,016,218) less than 2. Suitable large pore molecular sieves include zeolite beta, zeolite Y, Ultrastable Y (USY), Dealuminized Y (Deal Y), mordenite, ZSM-3, ZSM-4, ZSM-18, and ZSM-20. Zeolite ZSM-14 is described in U.S. Patent No. 3,923,636. Zeolite ZSM-20 is described in U.S. Patent No. 3,972,983. Zeolite Beta is described in U.S. Patent Nos. 3,308,069, and Re. No. 28,341. Low sodium Ultrastable Y molecular sieve (USY) is described in U.S. Patent Nos. 3,293,192 and 3,449,070. Dealuminized Y zeolite (Deal Y) may be prepared by the method found in U.S. Patent No. 3,442,795. Zeolite UHP-Y is described in U.S. Patent No. 4,401,556. Mordenite is a naturally occurring material but is also available in synthetic forms, such as TEA-mordenite (i.e.,
synthetic mordenite prepared from a reaction mixture comprising a tetraethylammonium directing agent). TEA-mordenite is disclosed in U.S. Patent Nos. 3,766,093 and 3,894, 104.
[0028] In another, more preferred embodiment, the solid acid alkylation component comprises a molecular sieve of the MCM-22 family. The term "MCM-22 family material" (or "material of the MCM-22 family" or "molecular sieve of the MCM-22 family"), as used herein, includes one or more of:
• molecular sieves made from a common first degree crystalline building block unit cell, which unit cell has the MWW framework topology. (A unit cell is a spatial arrangement of atoms which if tiled in three-dimensional space describes the crystal structure. Such crystal structures are discussed in the "Atlas of Zeolite Framework Types", Fifth edition, 2001, the entire content of which is incorporated as reference);
• molecular sieves made from a common second degree building block, being a 2-dimensional tiling of such MWW framework topology unit cells, forming a monolayer of one unit cell thickness, preferably one c-unit cell thickness;
• molecular sieves made from common second degree building blocks, being layers of one or more than one unit cell thickness, wherein the layer of more than one unit cell thickness is made from stacking, packing, or binding at least two monolayers of one unit cell thickness. The stacking of such second degree building blocks can be in a regular fashion, an irregular fashion, a random fashion, or any combination thereof; and
• molecular sieves made by any regular or random 2-dimensional or 3- dimensional combination of unit cells having the MWW framework topology.
[0029] Molecular sieves of MCM-22 family generally have an X-ray diffraction pattern including d-spacing maxima at 12.4±0.25, 6.9±0.15, 3.57±0.07 and 3.42±0.07 Angstrom. The X-ray diffraction data used to characterize the material are obtained by standard techniques using the K-alpha doublet of copper as the incident radiation and a diffractometer equipped with a scintillation counter and associated computer as the collection system. Molecular sieves of MCM-22 family include MCM-22 (described in U.S. Patent No. 4,954,325), PSH-3 (described in U.S. Patent No. 4,439,409), SSZ-25 (described in U.S. Patent No. 4,826,667), ERB-1 (described in European Patent No.
0293032), ITQ-1 (described in U.S. Patent No 6,077,498), ITQ-2 (described in International Patent Publication No. WO 97/17290), MCM-36 (described in U.S. Patent No. 5,250,277), MCM-49 (described in U.S. Patent No. 5,236,575), MCM-56 (described in U.S. Patent No. 5,362,697) and mixtures thereof.
[0030] In addition to the toluene and/or xylene and hydrogen, a diluent, which is substantially inert under hydroalkylation conditions, may be supplied to the hydroalkylation reaction. In certain embodiments, the diluent is a hydrocarbon, in which the desired cycloalkylaromatic product is soluble, such as a straight chain paraffinic hydrocarbon, a branched chain paraffinic hydrocarbon, and/or a cyclic paraffinic hydrocarbon. Examples of suitable diluents are decane and cyclohexane. Although the amount of diluent is not narrowly defined, desirably the diluent is added in an amount such that the weight ratio of the diluent to the aromatic compound is at least 1 : 100; for example at least 1 : 10, but no more than 10: 1, desirably no more than 4: 1.
[0031] In one embodiment, the aromatic feed to the hydroalkylation reaction also includes benzene and/or one or more alkylbenzenes different from toluene and xylene. Suitable alkylbenzenes may have one or more alkyl groups with up to 4 carbon atoms and include, by way of example, ethylbenzene, cumene, and unseparated C^-Cg or C7- Cg or C-7-C9 streams.
[0032] The hydroalkylation reaction can be conducted in a wide range of reactor configurations including fixed bed, slurry reactors, and/or catalytic distillation towers. In addition, the hydroalkylation reaction can be conducted in a single reaction zone or in a plurality of reaction zones, in which at least the hydrogen is introduced to the reaction in stages. Suitable reaction temperatures are between about 100°C and about 400°C, such as between about 125°C and about 250°C, while suitable reaction pressures are between about 100 and about 7,000 kPa, such as between about 500 and about 5,000 kPa. The molar ratio of hydrogen to aromatic feed is typically from about 0.15: 1 to about 15: 1.
[0033] In the present process, it is found that MCM-22 family molecular sieves are particularly active and stable catalysts for the hydroalkylation of toluene or xylene. In addition, catalysts containing MCM-22 family molecular sieves exhibit improved selectivity to the 3,3 '-dimethyl, the 3, 4' -dimethyl, the 4,3'-dimethyl and the 4,4'-
dimethyl isomers in the hydroalkylation product, while at the same time reducing the formation of fully saturated and heavy by-products. For example, using an MCM-22 family molecular sieve with a toluene feed, it is found that the hydroalkylation reaction product may comprise:
• at least 60 wt%, such as at least 70 wt%, for example at least 80 wt% of the 3,3, 3,4, 4,3 and 4,4-isomers of (methylcyclohexyl)toluene based on the total weight of all the (methylcyclohexyl)toluene isomers;
• less than 30 wt% of methylcyclohexane and less than 2% of dimethylbicyclohexane compounds;
• and less than 1 wt% of compounds containing in excess of 14 carbon atoms.
[0034] Similarly, with a xylene feed, the hydroalkylation reaction product may comprise less than 1 wt% of compounds containing in excess of 16 carbon atoms.
[0035] By way of illustration, the 3,3, 3,4 4,3 and 4,4-isomers of (methylcyclohexyl)toluene are illustrated in formulas Fl to F4, respectively:
[0036] In contrast, when the methyl group is located in the 1 -position (quaternary
carbon) on the cyclohexyl ring, ring isomerization can occur forming (dimethylcyclopentyl)toluene and (ethylcyclopentyl)toluene which, on dehydrogenation, will generate diene by-products which are difficult to separate from the desired product and will also inhibit the subsequent oxidation reaction. In the oxidation and esterification steps, different isomers have different reactivity. Thus, para-isomers are more reactive than meta-isomers which are more reactive than ortho- isomers. Also in the dehydrogenation step, the presence of a methyl group in the 2 position on either the cyclohexyl or phenyl ring is a precursor for the formation of fluorene and methyl fluorene. Fluorene is difficult to separate from the dimethylbiphenyl product and causes problems in the oxidation step and also in the plasticizers performance. It is therefore advantageous to minimize the formation of isomers which have a methyl group in the ortho, 2 and benzylic positions.
Dehydrogenation of Hydroalkylation Product
[0037] The major components of the hydroalkylation reaction effluent are (methylcyclohexyl)toluenes and/or (dimethylcyclohexyl)xylenes, unreacted aromatic feed (toluene and/or xylene) and fully saturated single ring by-products (methylcyclohexane and dimethylcyclohexane). The unreacted feed and light byproducts can readily be removed from the reaction effluent by, for example, distillation. The unreacted feed can then be recycled to the hydroalkylation reactor, while the saturated by-products can be dehydrogenated to produce additional recycleable feed.
[0038] The remainder of the hydroalkylation reaction effluent, composed mainly of (methylcyclohexyl)toluenes and/or (dimethylcyclohexyl)xylenes, is then catalytically dehydrogenated to produce the corresponding methyl-substituted biphenyl compounds. The catalyst employed in the dehydrogenation process comprises (i) an element or compound from Group 10 of the Periodic Table of Elements, for example platinum, and (ii) tin or a compound of tin, both mounted on a refractory support, such as silica, alumina or carbon nanotubes. In one embodiment, the Group 10 element is present in amount from 0.1 to 5 wt% of the catalyst and the tin is present in amount from 0.05 to 2.5 wt% of the catalyst.
[0039] The dehydrogenation is conveniently conducted at a temperature from about 200°C to about 600°C and a pressure from about 100 kPa to about 3550 kPa (atmospheric to about 500 psig) in the presence of dehydrogenation catalyst.
[0040] Particularly using an MCM-22 family-based catalyst for the upstream hydroalkylation reaction, the product of the dehydrogenation step comprises methyl- substituted biphenyl compounds in which the concentration of the 3,3-, 3,4- and 4,4- dimethyl isomers is at least 50 wt%, such as at least 60 wt%, for example at least 70 wt% based on the total weight of methyl-substituted biphenyl isomers. In addition, the product may contain less than 10 wt%, such as less than 5 wt%, for example less than 3 wt% of methyl biphenyl compounds and less than 5 wt%, such as less than 3 wt%, for example less than 1 wt% of fluorene and methyl fluorenes combined.
Production of Biphenyl Esters
[0041] The methyl-substituted biphenyl compounds produced by the dehydrogenation reaction can readily be converted ester plasticizers by a process comprising oxidation to produce the corresponding carboxylic acids followed by esterification with an alcohol.
[0042] The oxidation can be performed by any process known in the art, such as by reacting the methyl-substituted biphenyl compounds with an oxidant, such as oxygen, ozone or air, or any other oxygen source, such as hydrogen peroxide, in the presence of a catalyst at temperatures from 30°C to 300°C, such as from 60°C to 200°C. Suitable catalysts comprise Co or Mn or a combination of both metals.
[0043] The resulting carboxylic acids can then be esterified to produce biphenyl ester plasticizers by reaction with one or more C4 to C14 alcohols. Suitable esterification conditions are well-known in the art and include, but are not limited to, temperatures of 0-300°C and the presence or absence of homogeneous or heterogeneous esterification catalysts, such as Lewis or Bronsted acid catalysts. Suitable alcohols are "oxo-alcohols", by which is meant an organic alcohol, or mixture of organic alcohols, which is prepared by hydroformylating an olefin, followed by hydrogenation to form the alcohols. Typically, the olefin is formed by light olefin oligomerization over heterogeneous acid catalysts, which olefins are readily available from refinery processing operations. The reaction results in mixtures of longer-chain, branched olefins, which subsequently form longer chain, branched alcohols, as described in U.S. Patent No. 6,274,756, incorporated herein by reference in its entirety. Another source of olefins used in the OXO process are through the oligomerization of ethylene, producing mixtures of predominately straight chain alcohols with lesser amounts of
lightly branched alcohols.
[0044] The biphenyl ester plasticizers of the present application find use in a number of different polymers, such as vinyl chloride resins, polyesters, polyurethanes, ethylene-vinyl acetate copolymers, rubbers, poly(meth)acrylics and mixtures thereof.
[0045] The invention will now be more particularly described with reference to the accompanying drawings and the following non-limiting Examples.
Example 1: Synthesis of 0.3%Pd/MCM-49 Hydroalkylation Catalyst
[0046] 80 parts MCM-49 zeolite crystals are combined with 20 parts pseudoboehmite alumina, on a calcined dry weight basis. The MCM-49 and pseudoboehmite alumina dry powder is placed in a muller and mixed for about 10 to 30 minutes. Sufficient water and 0.05% polyvinyl alcohol is added to the MCM-49 and alumina during the mixing process to produce an extrudable paste. The extrudable paste is formed into a 1/20 inch (0.13 cm) quadrulobe extrudate using an extruder and the resulting extrudate is dried at a temperature ranging from 250°F to 325°F (120°C to 163°C). After drying, the dried extrudate is heated to 1000°F (538°C) under flowing nitrogen. The extrudate is then cooled to ambient temperature and humidified with saturated air or steam.
[0047] After the humidification, the extrudate is ion exchanged with 0.5 to 1 N ammonium nitrate solution. The ammonium nitrate solution ion exchange is repeated. The ammonium nitrate exchanged extrudate is then washed with deionized water to remove residual nitrate prior to calcination in air. After washing the wet extrudate, it is dried. The exchanged and dried extrudate is then calcined in a nitrogen/air mixture to a temperature 1000°F (538°C). Afterwards, the calcined extrudate is cooled to room temperature. The 80% MCM-49, 20% AI2O3 extrudate was incipient wetness impregnated with a palladium (II) chloride solution (target: 0.30% Pd) and then dried overnight at 121°C. The dried catalyst was calcined in air at the following conditions: 5 volumes air per volume catalyst per minute, ramp from ambient to 538°C at l°C/min and hold for 3 hours.
Example 2: Synthesis of 0.3%Pd/Beta Hydroalkylation Catalyst
[0048] 80 parts beta zeolite crystals are combined with 20 parts pseudoboehmite alumina, on a calcined dry weight basis. The beta and pseudoboehmite are mixed in a muller for about 15 to 60 minutes. Sufficient water and 1.0% nitric acid is added
during the mixing process to produce an extrudable paste. The extrudable paste is formed into a 1/20 inch quadrulobe extrudate using an extruder. After extrusion, the l/20th inch quadrulobe extrudate is dried at a temperature ranging from 250°F to 325°F (120°C to 163°C). After drying, the dried extrudate is heated to 1000°F (538°C) under flowing nitrogen and then calcined in air at a temperature of 1000°F (538°C). Afterwards, the calcined extrudate is cooled to room temperature. The 80% Beta, 20% AI2O3 extrudate was incipient wetness impregnated with a tetraammine palladium (II) nitrate solution (target: 0.30% Pd) and then dried overnight at 121°C. The dried catalyst was calcined in air at the following conditions: 5 volumes air per volume catalyst per minute, ramp from ambient to 538°C at l°C/min and hold for 3 hours. Example 3: Hydroalkylation Catalyst Testing
[0049] Each of the catalyst of Examples 1 to 4 was then tested in the hydroalkylation of a toluene feed using the reactor and process described below.
[0050] The reactor comprised a stainless steel tube having an outside diameter of: 3/8 inch (0.95 cm), a length of 20.5 inch (52 cm) and a wall thickness of 0.35 inch (0.9 cm). A piece of stainless steel tubing having a length of 8¾ inch (22 cm) and an outside diameter of: 3/8 inch (0.95 cm) and a similar length of ¼ inch (0.6 cm) tubing of were used in the bottom of the reactor (one inside of the other) as a spacer to position and support the catalyst in the isothermal zone of the furnace. A ¼ inch (0.6 cm) plug of glass wool was placed on top of the spacer to keep the catalyst in place. A 1/8 inch (0.3 cm) stainless steel thermo-well was placed in the catalyst bed to monitor temperature throughout the catalyst bed using a movable thermocouple.
[0051] The catalyst was sized to 20/40 sieve mesh or cut to 1 : 1 length to diameter ratio, dispersed with quartz chips (20/40 mesh) then loaded into the reactor from the top to a volume of 5.5 cc. The catalyst bed typically was 15 cm in length. The remaining void space at the top of the reactor was filled with quartz chips, with a ¼ plug of glass wool placed on top of the catalyst bed being used to separate quartz chips from the catalyst. The reactor was installed in a furnace with the catalyst bed in the middle of the furnace at a pre-marked isothermal zone. The reactor was then pressure and leak tested typically at 300 psig (2170 kPa).
[0052] The catalyst was pre-conditioned in situ by heating to 25°C to 240°C with H2 flow at 100 cc/min and holding for 12 hours. A 500 cc ISCO syringe pump was
used to introduce a chemical grade toluene feed to the reactor. The feed was pumped through a vaporizer before flowing through heated lines to the reactor. A Brooks mass flow controller was used to set the hydrogen flow rate. A Grove "Mity Mite" back pressure controller was used to control the reactor pressure typically at 150 psig (1135 kPa). GC analyses were taken to verify feed composition. The feed was then pumped through the catalyst bed held at the reaction temperature of 120°C to 180°C at a WHSV of 2 and a pressure of 15-200 psig (204-1480 kPa). The liquid products exiting the reactor flowed through heated lines routed to two collection pots in series, the first pot being heated to 60°C and the second pot cooled with chilled coolant to about 10°C. Material balances were taken at 12 to 24 hrs intervals. Samples were taken and diluted with 50% ethanol for analysis. An Agilent 7890 gas chromatograph with FID detector was used for the analysis. The non-condensable gas products were routed to an on line HP 5890 GC.
The analysis is done on an Agilent 7890 GC with 150 vial sample tray.
Inlet Temp: 220°C
Detector Temp: 240°C (Col + make up = constant)
Temp Program: Initial temp 120°C hold for 15 min., ramp at 2°C/min to 180°C, hold
15 min; ramp at 3°C/min. to 220°C and hold till end.
Column Flow: 2.25 ml/min. (27 cm/sec); Split mode, Split ratio 100: 1
Injector: Auto sampler (0.2 μΐ).
Column Parameters:
Two columns joined to make 120 Meters (coupled with Agilent ultimate union, deactivated.
[0053] Column # Front end: Supelco β-Dex 120 ; 60m x 0.25 mm x 0.25 μιη film joined to Column # 2 back end:y- Dex 325: 60 m x0.25 mm x 0.25 μιη film.
[0054] The results of the hydroalkylation testing are summarized in Figures 1 and 2 and in Table 1, in which MCM designates methylcyclohexane, DMCH designates dimethylbi(cyclohexane) and DMCHT designates di(methylcyclohexyl)toluene.
Table 1
[0055] As can be seen from Table 1, the Pd/MCM-49 catalyst has much lower selectivity than the Pd/beta catalyst towards the production of the fully saturated byproducts, methylcyclohexane and dimethylbi(cyclohexane) and to the production of dialkylate products. In addition, as shown in Figures 1 and 2, the Pd/MCM-49 catalyst was found to exhibit improved stability and catalyst life as compared with the Pd/beta catalyst.
Example 4: Production of l%Pt/0.15%Sn/SiO2 Dehydrogenation Catalyst
[0056] A l%Pt/0.15%Sn/SiO2 catalyst was prepared by incipient wetness impregnation, in which a 1/20" (1.2 mm) quadrulobe silica extrudate was initially impregnated with an aqueous solution of tin chloride and then dried in air at 121°C. The resultant tin-containing extrudates were then impregnated with an aqueous solution of tetraammine Pt nitrate and again dried in air at 121°C. The resultant product was calcined in air at 350°C for 3 hours before being used in subsequent catalyst testing. Example 5: Preparation of 1%Ρί/θ-Αΐ2θ3 Dehydrogenation Catalyst
[0057] Θ-ΑΙ2Ο3 2.5 mm trilobe extrudates were used as a support for Pt deposition.
The support had a surface area of 126 m2/g, a pore volume of 0.58 cmVg, and a pore size of 143 A, measured by BET 2 adsorption. Pt was added to Θ-ΑΙ2Ο3 support by impregnating with aqueous solution of ( H^^PtfTSfC^^. The Pt metal loading on the supports is adjusted at 1 wt%. After impregnating, the sample was placed in a glass dish at room temperature for 60 minutes to reach equilibrium. Then it was dried in air at 250°F (120°C) for 4 hrs and then calcined in a box furnace at 680°F (360°C) in air for 3 hrs. The furnace was ramped at 3°F/minute to the calcinations temperature and the air flow rate for the calcination was adjusted to 5 volume/volume catalyst/minute. Example 6: Dehydrogenation Catalyst Testing
[0058] The catalysts of Examples 4 and 5 were used to perform dehydrogenation
tests on the conversion products obtained in Example 3 from the Pd/MCM-49 and Pd/beta catalysts of Examples 1 and 2. In addition, the same tests were performed using a commercial 0.3wt%Pt/Al2O3 dehydrogenation catalyst supplied by Akzo. The same reactor, catalyst and analytical configuration as described in Example 3 was used to perform dehydrogenation tests, except each dehydrogenation catalyst was preconditioned in situ by heating to 375°C to 460°C with ¾ flow at 100 cc/min and holding for 2 hours. In addition, in the dehydrogenation tests the catalyst bed was held at the reaction temperature of 375°C to 460°C at a WHSV of 2 and a pressure of 100 psig (790 kPa).
[0059] The results of the dehydrogenation testing are summarized in Figure 3 for the hydroalkylation product of the Pd/MCM-49 catalyst and in Figure 4 for the hydroalkylation product of the Pd/beta catalyst. The data clearly shows that dehydrogenation of the MCM-49 hydroalkylation products provides less mono methyl biphenyl, less of the 2', 3 and 2',4 dimethyl biphenyl isomers which are the precursor for the formation of fluorene and methyl fluorene and much less the fluorene and methyl fluorene as compared with dehydrogenation of the zeolite beta hydroalkylation products. In addition, Figures 3 and 4 show that the tin-containing catalyst of Example 4 was much more selective to the desired 3', 3, 3',4 and 4',4 dimethyl biphenyl products and made less monomethyl biphenyl, fluorene and methylfluorene as compared with the catalysts which had no tin.
[0060] While various embodiments have been described, it is to be understood that further embodiments will be apparent to those skilled in the art and that such embodiments are to be considered within the purview and scope of the appended claims. Such further embodiments include those defined in the following paragraphs:
[0061] A process for producing a methyl-substituted biphenyl compound, the process comprising:
(a) contacting at least one methyl-substituted cyclohexylbenzene compound of the formula:
with a dehydrogenation catalyst under conditions effective to produce a dehydrogenation reaction product comprising at least one methyl-substituted biphenyl compound wherein each of m and n is independently an integer from 1 to 3, and preferably is 1, and wherein the dehydrogenation catalyst comprises (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof.
[0062] A process for producing methyl-substituted biphenyl compounds, the process comprising:
(a) contacting a feed comprising at least one aromatic hydrocarbon selected from the group consisting of toluene, xylene and mixtures thereof with hydrogen in the presence of a hydroalkylation catalyst under conditions effective to produce a hydroalkylation reaction product comprising (methylcyclohexyl)toluenes and/or (dimethylcyclohexyl)xylenes; and
(b) dehydrogenating at least part of the hydroalkylation reaction product in the presence of a dehydrogenation catalyst under conditions effective to produce a dehydrogenation reaction product comprising a mixture of methyl-substituted biphenyl compounds, wherein the dehydrogenation catalyst comprises (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof.
[0063] The process of paragraph [0061], wherein the hydroalkylation catalyst comprises an acidic component and a hydrogenation component.
[0064] The process of paragraph [0062], wherein the acidic component of the hydroalkylation catalyst comprises a molecular sieve.
[0065] The process of paragraph [0063], wherein the molecular sieve is selected from the group consisting of BEA, FAU and MTW structure type molecular sieves, molecular sieves of the MCM-22 family and mixtures thereof.
[0066] The process of paragraph [0063] or [0064], wherein the molecular sieve comprises a molecular sieve of the MCM-22 family.
[0067] The process of any one of paragraphs [0062] to [0065], wherein the hydrogenation component of the hydroalkylation catalyst selected from the group consisting of palladium, ruthenium, nickel, zinc, tin, cobalt and compounds and mixtures thereof.
[0068] The process of any one of paragraphs [0061] to [0066], wherein the hydroalkylation conditions in the contacting (a) include a temperature from 100°C to 400°C and a pressure from 100 to 7,000 kPa.
[0069] The process of any one of paragraphs [0061] to [0067], wherein the molar ratio of hydrogen to aromatic feed supplied to the contacting (a) is from about 0.15: 1 to about 15: 1.
[0070] The process of any one of paragraphs [0061] to [0068], wherein the aromatic hydrocarbon is toluene and the hydroalkylation reaction product comprises less than 30 wt% of methylcyclohexane and less than 2% of dimethylbicyclohexane compounds.
[0071] The process of any one of paragraphs [0061] to [0069], wherein the aromatic hydrocarbon is toluene and the hydroalkylation reaction product comprises less than 1 wt% of compounds containing in excess of 14 carbon atoms.
[0072] The process of any one of paragraphs [0061] to [0071], wherein the feed further comprises benzene and/or at least one alkylbenzene different from toluene and xylene.
[0073] The process of any one of paragraphs [0060] to [0071], wherein the aromatic hydrocarbon is toluene and the dehydrogenation reaction product comprises less than 10 wt% of monomethyl-substituted biphenyl compounds.
[0074] The process of any one of paragraphs [0060] to [0072], wherein the aromatic hydrocarbon is toluene and the dehydrogenation reaction product comprises less than 5 wt% of fluorene and methylfluorenes combined.
[0075] The process of any one of paragraphs [0060] to [0073], wherein the dehydrogenation conditions in (b) include a temperature from 200°C to 600°C and a pressure from 100 kPa to 3550 kPa (atmospheric to 500 psig).
[0076] A process for producing biphenyl esters, the process comprising:
(i) contacting at least part of the methyl-substituted biphenyl compounds produced by the process of any one of paragraphs [0060] to [0074] with an oxygen source under conditions effective to convert at least part of the methyl-substituted biphenyl compounds to biphenyl carboxylic acids; and
(ii) reacting the biphenyl carboxylic acids with one or more C4 to C14 alcohols under conditions effective to produce biphenyl esters.
[0077] All documents described herein are incorporated by reference herein, including any priority documents and/or testing procedures to the extent they are not inconsistent with this text, provided however that any priority document not named in the initially filed application or filing documents is NOT incorporated by reference herein. As is apparent from the foregoing general description and the specific embodiments, while forms of the invention have been illustrated and described, various modifications can be made without departing from the spirit and scope of the invention. Accordingly, it is not intended that the invention be limited thereby. Likewise, the term "comprising" is considered synonymous with the term "including" for purposes of Australian law. Likewise whenever a composition, an element or a group of elements is preceded with the transitional phrase "comprising", it is understood that we also contemplate the same composition or group of elements with transitional phrases "consisting essentially of," "consisting of, "selected from the group of consisting of," or "is" preceding the recitation of the composition, element, or elements and vice versa.
Claims
1. A process for producing a methyl-substituted biphenyl compound, the process comprising:
with a dehydrogenation catalyst under conditions effective to produce a dehydrogenation reaction product comprising at least one methyl-substituted biphenyl compound wherein each of m and n is independently an integer from 1 to 3 and wherein the dehydrogenation catalyst comprises (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof.
2. The process of claim 1, wherein each of m and n is 1.
3. The process of claim 2, wherein the dehydrogenation reaction product comprises less than 10 wt% of monomethyl-substituted biphenyl compounds.
4. A process for producing methyl-substituted biphenyl compounds, the process comprising:
(a) contacting a feed comprising at least one aromatic hydrocarbon selected from the group consisting of toluene, xylene and mixtures thereof with hydrogen in the presence of a hydroalkylation catalyst under conditions effective to produce a hydroalkylation reaction product comprising (methylcyclohexyl)toluenes and/or (dimethylcyclohexyl)xylenes; and
(b) dehydrogenating at least part of the hydroalkylation reaction product in the presence of a dehydrogenation catalyst under conditions effective to produce a dehydrogenation reaction product comprising a mixture of methyl-substituted biphenyl compounds, wherein the dehydrogenation catalyst comprises (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof.
5. The process of claim 4, wherein the hydroalkylation catalyst comprises an acidic component and a hydrogenation component.
6. The process of claim 5, wherein the acidic component of the hydroalkylation catalyst comprises a molecular sieve.
7. The process of claim 6, wherein the molecular sieve is selected from the group consisting of BEA, FAU and MTW structure type molecular sieves, molecular sieves of the MCM-22 family and mixtures thereof.
8. The process of claim 6, wherein the molecular sieve comprises a molecular sieve of the MCM-22 family.
9. The process of claim 5, wherein the hydrogenation component of the hydroalkylation catalyst selected from the group consisting of palladium, ruthenium, nickel, zinc, tin, cobalt and compounds and mixtures thereof.
10. The process of claim 4, wherein the hydroalkylation conditions in the contacting (a) include a temperature from about 100°C to about 400°C and a pressure from about 100 to about 7,000 kPa.
11. The process of claim 4, wherein the molar ratio of hydrogen to aromatic feed supplied to the contacting (a) is from about 0.15: 1 to about 15: 1.
12. The process of claim 4, wherein the aromatic hydrocarbon is toluene and the hydroalkylation reaction product comprises less than 30 wt% of methylcyclohexane and less than 2% of dimethylbicyclohexane compounds.
13. The process of claim 4, wherein the aromatic hydrocarbon is toluene and the hydroalkylation reaction product comprises less than 1 wt% of compounds containing in excess of 14 carbon atoms.
14. The process of claim 4, wherein the feed to step (a) further comprises benzene and/or at least one alkylbenzene different from toluene and xylene.
15. The process of claim 4, wherein the aromatic hydrocarbon is toluene and the dehydrogenation reaction product comprises less than 10 wt% of monomethyl- substituted biphenyl compounds.
16. The process of claim 4, wherein the aromatic hydrocarbon is toluene and the dehydrogenation reaction product comprises less than 5 wt% of fluorene and methylfluorenes combined.
17. The process of claim 4, wherein the dehydrogenation conditions in (b) include a temperature from about 200°C to about 600°C and a pressure from about 100 kPa to about 3550 kPa (atmospheric to about 500 psig).
18. A process for producing biphenyl esters, the process comprising:
(a) contacting a feed comprising at least one aromatic hydrocarbon selected from the group consisting of toluene, xylene and mixtures thereof with hydrogen in the presence of a hydroalkylation catalyst under conditions effective to produce a hydroalkylation reaction product comprising (methylcyclohexyl)toluenes and/or (dimethy lcyclohexy l)xy lenes ;
(b) dehydrogenating at least part of the hydroalkylation reaction product in the presence of a dehydrogenation catalyst under conditions effective to produce a dehydrogenation reaction product comprising a mixture of methyl-substituted biphenyl compounds, wherein the dehydrogenation catalyst comprises (i) an element or compound thereof from Group 10 of the Periodic Table of Elements and (ii) tin or a compound thereof;
(c) contacting at least part of the dehydrogenation reaction product with an oxygen source under conditions effective to convert at least part of the methyl- substituted biphenyl compounds to biphenyl carboxylic acids; and
(d) reacting the biphenyl carboxylic acids with one or more C4 to C14 alcohols under conditions effective to produce biphenyl esters.
19. The process of claim 18, wherein the hydroalkylation catalyst comprises an acidic component and a hydrogenation component.
20. The process of claim 19, wherein the acidic component of the hydroalkylation catalyst comprises a molecular sieve.
21. The process of claim 20, wherein the molecular sieve is selected from the group consisting of BEA, FAU and MTW structure type molecular sieves, molecular sieves of the MCM-22 family and mixtures thereof.
22. The process of claim 20, wherein the molecular sieve comprises a molecular sieve of the MCM-22 family.
23. The process of claim 18, wherein the hydroalkylation conditions in (a) include a temperature from about 100°C to about 400°C and a pressure from about 100 to about 7,000 kPa.
24. The process of claim 18, wherein the feed to step (a) further comprises benzene and/or at least one alkylbenzene different from toluene and xylene.
25. The process of claim 18, wherein the dehydrogenation conditions in (b) include
a temperature from about 200°C to about 600°C and a pressure from about 100 kPa to about 3550 kPa (atmospheric to about 500 psig).
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Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2017180240A1 (en) * | 2016-04-13 | 2017-10-19 | Exxonmobil Chemilcal Patents Inc. | Production of methyl-substituted biphenyl compounds |
| JP2019513788A (en) * | 2016-04-13 | 2019-05-30 | エクソンモービル ケミカル パテンツ インコーポレイテッド | Production of methyl substituted biphenyl compounds |
Families Citing this family (27)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2012157749A1 (en) * | 2011-05-18 | 2012-11-22 | 宇部興産株式会社 | 3,3',4,4'-tetraalkyl cyclohexylbenzene and method for producing same |
| US9085669B2 (en) | 2013-01-28 | 2015-07-21 | Exxonmobil Chemical Patents Inc. | Alkyl aromatic hydroalkylation for the production of plasticizers |
| US9534104B2 (en) | 2013-01-28 | 2017-01-03 | Exxonmobil Chemical Patents Inc. | Plasticizer blends and use thereof |
| EP2970045A4 (en) | 2013-03-14 | 2016-03-09 | Exxonmobil Chem Patents Inc | Methyl-substituted biphenyl compounds, their production and their use in the manufacture of plasticizers |
| CN105050985A (en) | 2013-03-14 | 2015-11-11 | 埃克森美孚化学专利公司 | Methyl-substituted biphenyl compounds, their production and their use in the manufacture of plasticizers |
| US9328053B2 (en) | 2013-03-14 | 2016-05-03 | Exxonmobil Chemical Patents Inc. | Methyl-substituted biphenyl compounds, their production and their use in the manufacture of plasticizers |
| EP2970049B1 (en) | 2013-03-14 | 2019-10-16 | ExxonMobil Chemical Patents Inc. | Methyl-substituted biphenyl compounds, their production and their use in the manufacture of plasticizers |
| US9725377B2 (en) | 2013-03-14 | 2017-08-08 | Exxonmobil Chemical Patents Inc. | Hydroalkylation catalyst and process for use thereof |
| RU2015143691A (en) | 2013-03-14 | 2017-04-17 | Эксонмобил Кемикэл Пейтентс Инк. | Mixtures of isomers (methylcyclohexyl) toluol, their production and their use for the preparation of plasticizers |
| US9896393B2 (en) | 2014-06-13 | 2018-02-20 | Exxonmobil Chemical Patents Inc. | Process for preparing dialkylbiphenyl isomer mixtures |
| US9556103B2 (en) | 2014-06-13 | 2017-01-31 | Exxonmobil Chemical Patents Inc. | Biphenyl esters, their production and their use in the manufacture of plasticizers |
| US9758447B2 (en) | 2014-10-24 | 2017-09-12 | Exxonmobil Chemical Patents Inc. | Activation of dehydrogenation catalysts |
| US9856186B2 (en) | 2014-12-19 | 2018-01-02 | Exxonmobil Chemical Patents Inc. | Production and use of dialkylbiphenyl isomer mixtures |
| WO2016099893A1 (en) | 2014-12-19 | 2016-06-23 | Exxonmobil Chemical Patents Inc. | Production and use of dialkylbiphenyl isomer mixtures |
| US9708230B2 (en) | 2015-03-25 | 2017-07-18 | Exxonmobil Chemical Patents Inc. | Production of biphenyl compounds |
| EP3274318B1 (en) | 2015-03-25 | 2020-02-26 | ExxonMobil Chemical Patents Inc. | Production of biphenyl compounds |
| US10017433B2 (en) | 2015-03-31 | 2018-07-10 | Exxonmobil Chemical Patents Inc. | Transalkylated cyclohexylbenzyl and biphenyl compounds |
| US10294338B2 (en) | 2015-04-02 | 2019-05-21 | Exxonmobil Chemical Patents Inc. | Method of making thermoplastic vulcanizates and thermoplastic vulcanizates made therefrom |
| WO2017052790A1 (en) * | 2015-09-25 | 2017-03-30 | Exxonmobil Chemical Patents Inc. | Aromatic compositions and methods for obtaining them |
| US10787399B2 (en) | 2015-11-20 | 2020-09-29 | Exxonmobil Chemical Patents Inc. | Preparation and use of phenylstyrene |
| US10322991B2 (en) | 2016-12-22 | 2019-06-18 | Exxonmobil Research And Engineering Company | Selective aerobic oxidation of dimethylbiphenyls |
| US10138176B2 (en) | 2017-02-01 | 2018-11-27 | Exxonmobil Research And Engineering Company | Production and separation of 3,3′-, 3,4′- and 4,4′-dimethyl biphenyl isomers |
| US10093597B1 (en) | 2018-02-01 | 2018-10-09 | Exxonmobil Research And Engineering Company | Processes for separating dimethyl biphenyl isomers using zeolite adsorbents |
| US10676413B2 (en) | 2018-03-30 | 2020-06-09 | Exxonmobil Research & Engineering Company | Production and separation of dimethyl biphenyl isomers |
| US10676412B2 (en) | 2018-03-30 | 2020-06-09 | Exxonmobil Research & Engineering Company | Production and separation of dimethyl biphenyl isomers |
| US10858298B2 (en) | 2018-04-12 | 2020-12-08 | Exxonmobil Research And Engineering Company | Preparation of diphenyl compounds |
| CN109382135B (en) * | 2018-11-05 | 2020-12-11 | 大连理工大学 | A kind of method for preparing high-density polycyclic hydrocarbon jet fuel from fluorene |
Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4263457A (en) * | 1978-08-18 | 1981-04-21 | Mitsubishi Petrochemical Company, Ltd. | Process for producing biphenyl derivatives |
| JPH0820548A (en) * | 1994-07-07 | 1996-01-23 | Mitsubishi Gas Chem Co Inc | Method for producing biphenyl compound |
| WO2011096989A1 (en) * | 2010-02-05 | 2011-08-11 | Exxonmobil Chemical Patents Inc. | Dehydrogenation of cyclohexanone to produce phenol |
| WO2012082407A1 (en) * | 2010-12-17 | 2012-06-21 | Exxonmobil Chemical Patents Inc. | Dehydrogenation catalyst and process |
Family Cites Families (50)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US2520084A (en) | 1948-05-27 | 1950-08-22 | Monsanto Chemicals | Plasticized vinyl chloride polymers |
| US3296065A (en) | 1963-10-07 | 1967-01-03 | Monsanto Co | Paper products containing carboxylic acid esters and process for preparing such products |
| SU412182A1 (en) | 1971-08-02 | 1974-01-25 | ||
| US3842041A (en) | 1972-07-21 | 1974-10-15 | Ici Ltd | Solid state manufacture of polyesters |
| GB1387335A (en) | 1972-07-21 | 1975-03-12 | Ici Ltd | Manufacture of polyesters |
| US3928484A (en) | 1974-07-05 | 1975-12-23 | Texaco Inc | Production of aromatic compounds by oxidative dehydrogenation |
| US3928481A (en) | 1974-07-05 | 1975-12-23 | Texaco Inc | Preparation of polyphenyls |
| US3962362A (en) * | 1975-03-31 | 1976-06-08 | Texaco Development Corporation | Method for preparing polyphenyls |
| US4123470A (en) | 1977-06-06 | 1978-10-31 | Phillips Petroleum Company | Biaryl production |
| JPS5535026A (en) | 1978-09-05 | 1980-03-11 | Ube Ind Ltd | Production of biphenyl compound |
| US4218572A (en) | 1978-09-28 | 1980-08-19 | Standard Oil Company | Process for the production of polyphenyls |
| US4463207A (en) | 1983-09-23 | 1984-07-31 | Shell Oil Company | Arene alkylation with metal oxide-tantalum halide/oxide catalysts |
| US5001296A (en) | 1990-03-07 | 1991-03-19 | Mobil Oil Corp. | Catalytic hydrodealkylation of aromatics |
| US5138022A (en) | 1991-08-01 | 1992-08-11 | The Dow Chemical Company | Thermoplastic polyesters containing biphenylene linkages |
| DE4243524A1 (en) | 1992-12-22 | 1994-06-23 | Hoechst Ag | Mixtures of isomeric nonanols and decanols, their preparation, phthalic acid esters obtainable from them and their use as plasticizers |
| JP3603908B2 (en) | 1994-09-29 | 2004-12-22 | 三菱瓦斯化学株式会社 | Process for producing 4-methylbiphenyl and 4,4'-dimethylbiphenyl |
| GB9615089D0 (en) | 1996-07-18 | 1996-09-04 | Exxon Chemical Patents Inc | Esters and compositions comprising them |
| AU759882B2 (en) | 1997-12-19 | 2003-05-01 | Basf Aktiengesellschaft | Method for hydrogenating benzene polycarboxylic acids or derivatives thereof by using a catalyst containing macropores |
| US6355711B1 (en) | 1998-04-23 | 2002-03-12 | Exxonmobil Chemical Patents Inc. | High performance plasticizers from branched oxo alcohols |
| US6103919A (en) | 1998-07-07 | 2000-08-15 | Arteva North America S.A.R.L. | Catalytic system and method for coupling of aromatic compounds |
| US6037513A (en) | 1998-07-09 | 2000-03-14 | Mobil Oil Corporation | Hydroalkylation of aromatic hydrocarbons |
| US6433236B1 (en) | 2000-03-21 | 2002-08-13 | Arteva North America S.A.R.L. | Acid catalyzed isomerization of substituted diaryls |
| CN1558927A (en) | 2001-09-25 | 2004-12-29 | ����ɭ���ڻ�ѧר����˾ | Plasticized PVC |
| US6652774B2 (en) | 2001-12-20 | 2003-11-25 | Ferro Corporation | Glycerin triester plasticizer |
| US6777514B2 (en) | 2002-08-27 | 2004-08-17 | Exxonmobil Research And Engineering Company | Geminally disubstituted olefin-carbon monoxide-ethylene polymer useful as a polyvinyl chloride plasticizer and a method of making same |
| GB0227087D0 (en) | 2002-11-20 | 2002-12-24 | Exxonmobil Chem Patents Inc | Hydrogenation of benzene polycarboxylic acids or derivatives thereof |
| US20050215433A1 (en) | 2004-03-26 | 2005-09-29 | Benitez Francisco M | Aromatic fluid as agricultural solvent |
| EP1908743A4 (en) * | 2005-07-26 | 2010-09-29 | Mitsubishi Gas Chemical Co | (alkylphenyl)alkylcyclohexane and method for producing (alkylphenyl)alkylcyclohexane or alkylbiphenyl |
| WO2008121847A1 (en) | 2007-03-30 | 2008-10-09 | Exxonmobil Chemical Patents Inc. | Polyketone plasticizers |
| US8476350B2 (en) | 2008-12-24 | 2013-07-02 | Exxonmobil Research And Engineering Company | Triglyceride plasticizer and process of making |
| WO2010138248A2 (en) | 2009-05-26 | 2010-12-02 | Exxonmobil Chemical Patents Inc. | Transalkylation of polycyclohexylbenzenes |
| US20110184105A1 (en) | 2009-09-29 | 2011-07-28 | Exxonmobil Research And Engineering Company | Phenylene Oxo-Diester Plasticizers and Methods of Making |
| US8771815B2 (en) | 2009-12-17 | 2014-07-08 | Exxonmobil Research And Engineering Company | Process for making triglyceride plasticizer |
| CN102695693A (en) | 2010-02-05 | 2012-09-26 | 埃克森美孚化学专利公司 | Dehydrogenation process |
| WO2011096991A1 (en) * | 2010-02-05 | 2011-08-11 | Exxonmobil Chemical Patents Inc. | Dehydrogenation process |
| JP2011187565A (en) | 2010-03-05 | 2011-09-22 | Toshiba Corp | Method of manufacturing solid state imaging device, and the solid state imaging device |
| US8653313B2 (en) | 2010-11-02 | 2014-02-18 | Basf Se | Process for preparing a phenylcyclohexane |
| CN103443060B (en) | 2011-03-28 | 2016-01-20 | 埃克森美孚化学专利公司 | Dehydrogenation method |
| US20150080546A1 (en) | 2013-01-28 | 2015-03-19 | Exxonmobil Chemical Patents Inc. | Production and Use of 3,4' and 4,4'-Dimethylbiphenyl Isomers |
| US9085669B2 (en) | 2013-01-28 | 2015-07-21 | Exxonmobil Chemical Patents Inc. | Alkyl aromatic hydroalkylation for the production of plasticizers |
| US9464166B2 (en) | 2013-01-28 | 2016-10-11 | Exxonmobil Chemical Patents Inc. | Production and use of 3,4' and 4,4'-dimethylbiphenyl isomers |
| US9534104B2 (en) | 2013-01-28 | 2017-01-03 | Exxonmobil Chemical Patents Inc. | Plasticizer blends and use thereof |
| US8829093B2 (en) | 2013-01-28 | 2014-09-09 | Exxonmobil Chemical Patents Inc. | Alkyl aromatic hydroalkylation for the production of plastisizers |
| US9725377B2 (en) | 2013-03-14 | 2017-08-08 | Exxonmobil Chemical Patents Inc. | Hydroalkylation catalyst and process for use thereof |
| CN105050985A (en) | 2013-03-14 | 2015-11-11 | 埃克森美孚化学专利公司 | Methyl-substituted biphenyl compounds, their production and their use in the manufacture of plasticizers |
| EP2970045A4 (en) | 2013-03-14 | 2016-03-09 | Exxonmobil Chem Patents Inc | Methyl-substituted biphenyl compounds, their production and their use in the manufacture of plasticizers |
| EP2970049B1 (en) | 2013-03-14 | 2019-10-16 | ExxonMobil Chemical Patents Inc. | Methyl-substituted biphenyl compounds, their production and their use in the manufacture of plasticizers |
| US9328053B2 (en) | 2013-03-14 | 2016-05-03 | Exxonmobil Chemical Patents Inc. | Methyl-substituted biphenyl compounds, their production and their use in the manufacture of plasticizers |
| RU2015143691A (en) | 2013-03-14 | 2017-04-17 | Эксонмобил Кемикэл Пейтентс Инк. | Mixtures of isomers (methylcyclohexyl) toluol, their production and their use for the preparation of plasticizers |
| US9263755B2 (en) | 2013-03-15 | 2016-02-16 | Exxonmobil Research And Engineering Company | Integration of molten carbonate fuel cells in iron and steel processing |
-
2014
- 2014-03-07 US US14/201,226 patent/US9328053B2/en not_active Expired - Fee Related
- 2014-03-07 WO PCT/US2014/021952 patent/WO2014159101A1/en not_active Ceased
Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4263457A (en) * | 1978-08-18 | 1981-04-21 | Mitsubishi Petrochemical Company, Ltd. | Process for producing biphenyl derivatives |
| JPH0820548A (en) * | 1994-07-07 | 1996-01-23 | Mitsubishi Gas Chem Co Inc | Method for producing biphenyl compound |
| WO2011096989A1 (en) * | 2010-02-05 | 2011-08-11 | Exxonmobil Chemical Patents Inc. | Dehydrogenation of cyclohexanone to produce phenol |
| WO2012082407A1 (en) * | 2010-12-17 | 2012-06-21 | Exxonmobil Chemical Patents Inc. | Dehydrogenation catalyst and process |
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2017180240A1 (en) * | 2016-04-13 | 2017-10-19 | Exxonmobil Chemilcal Patents Inc. | Production of methyl-substituted biphenyl compounds |
| JP2019513788A (en) * | 2016-04-13 | 2019-05-30 | エクソンモービル ケミカル パテンツ インコーポレイテッド | Production of methyl substituted biphenyl compounds |
Also Published As
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|---|---|
| US20140275606A1 (en) | 2014-09-18 |
| US9328053B2 (en) | 2016-05-03 |
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