WO2007149658A1 - Poly (arylene ether) and process for preparing them - Google Patents
Poly (arylene ether) and process for preparing them Download PDFInfo
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- WO2007149658A1 WO2007149658A1 PCT/US2007/069003 US2007069003W WO2007149658A1 WO 2007149658 A1 WO2007149658 A1 WO 2007149658A1 US 2007069003 W US2007069003 W US 2007069003W WO 2007149658 A1 WO2007149658 A1 WO 2007149658A1
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- arylene ether
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G65/00—Macromolecular compounds obtained by reactions forming an ether link in the main chain of the macromolecule
- C08G65/34—Macromolecular compounds obtained by reactions forming an ether link in the main chain of the macromolecule from hydroxy compounds or their metallic derivatives
- C08G65/38—Macromolecular compounds obtained by reactions forming an ether link in the main chain of the macromolecule from hydroxy compounds or their metallic derivatives derived from phenols
- C08G65/44—Macromolecular compounds obtained by reactions forming an ether link in the main chain of the macromolecule from hydroxy compounds or their metallic derivatives derived from phenols by oxidation of phenols
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G65/00—Macromolecular compounds obtained by reactions forming an ether link in the main chain of the macromolecule
- C08G65/34—Macromolecular compounds obtained by reactions forming an ether link in the main chain of the macromolecule from hydroxy compounds or their metallic derivatives
- C08G65/46—Post-polymerisation treatment, e.g. recovery, purification, drying
Definitions
- Poly(arylene ether)s and their blends with styrenic resins are highly valued for their properties, including high impact strength, stiffness, heat resistance, and electrical resistance.
- Poly(arylene ether)s are typically prepared by oxidative polymerization of monohydric phenols in solution, a reaction that is catalyzed by metal amine complexes. The catalyst metal is then separated from the poly(arylene ether) by chelation with an aqueous chelant solution. See, for example, U.S. Patent Nos. 3,733,301 to Modan, 3,783,147 to Calicchia et al, and 3,838,102 to Bennett et al.
- the catalyst metal content of the precipitated poly(arylene ether) may be further reduced, albeit slightly, by water washing of the precipitate. Even though existing processes are effective to remove the vast majority of catalyst metal from isolated poly(arylene ether), there remains a need for improved processes to further reduce the catalyst metal concentration in isolated poly(arylene ether). Furthermore, it is beneficial, for example for flexibility of plant operation, to reduce the residence time in the various pieces of equipment used.
- One embodiment is a method of purifying a poly(arylene ether), comprising: combining a chelant with a poly(arylene ether) reaction mixture comprising a poly(arylene ether), an aromatic hydrocarbon solvent, water, and a catalyst metal; separating the combined chelant and poly(arylene ether) reaction mixture in a separation apparatus with an average residence time of less than or equal to 60 seconds to yield a first less dense phase comprising poly(arylene ether) and solvent and a first more dense phase comprising water and chelant; combining the first less dense phase with an aqueous solution; and separating the combined first less dense phase and aqueous solution in a separation apparatus with an average residence time of less than or equal to 60 seconds to yield a second less dense phase comprising poly(arylene ether) and solvent and a second more dense phase comprising water.
- One embodiment is a method of purifying a poly(arylene ether), comprising: combining a chelant with a poly(arylene ether) reaction mixture comprising toluene, copper catalyst metal, and a poly(arylene ether) comprising 2,6-dimethyl-l,4- phenylene ether units; wherein the chelant is provided as a chelant solution comprising an alkali metal salt of nitrilotriacetic acid; separating the combined chelant and poly(arylene ether) reaction mixture in a liquid-liquid centrifuge with an average residence time of about 4 to about 40 seconds to yield a first less dense phase comprising poly(arylene ether) and solvent and a first more dense phase comprising water and chelant; combining the first less dense phase with an aqueous solution consisting of water in about 2 to about 60 seconds; and separating the combined first less dense phase and aqueous solution in about 4 to about 40 seconds with a liquid- liquid centrifuge to yield a second less dense
- One embodiment is a method of purifying a poly(arylene ether), comprising: combining a chelant with a poly(arylene ether) reaction mixture comprising toluene, copper catalyst metal, and a poly(arylene ether) comprising 2,6-dimethyl-l,4- phenylene ether units; wherein the chelant is provided as a chelant solution comprising an alkali metal salt of nitrilotriacetic acid; separating the combined chelant and poly(arylene ether) reaction mixture in a liquid-liquid centrifuge with an average residence time of about 4 to about 15 seconds to yield a first less dense phase comprising poly(arylene ether) and solvent and a first more dense phase comprising water and chelant; wherein the liquid-liquid centrifuge is operated at a light phase back pressure of about 50 to about 300 kilopascals; combining the first less dense phase with an aqueous solution consisting of water in about 2 to about 60 seconds; wherein the aqueous
- FIG. 1 is a schematic depiction of an apparatus 10 for the preparation of a poly(arylene ether), wherein the apparatus 10 comprises a reactor 20, a separator 50, a mixer 60, a second separator 70, and an isolation module 80.
- FIG. 2 is a schematic depiction of an apparatus for the preparation of a poly(arylene ether), wherein the apparatus 100 comprises a reactor 20, a holding tank 30, a separator 50, a mixer 60, a second separator 70, and an isolation module 80.
- FIG. 3 is a schematic depiction of an apparatus for the preparation of a poly(arylene ether), wherein the apparatus 200 comprises a reactor 20, a separator feed tank 40, a separator 50, a mixer 60, a second separator 70, and an isolation module 80.
- FIG. 4 is a schematic depiction of an apparatus for the preparation of a poly(arylene ether), wherein the apparatus 300 comprises a reactor 20, a holding tank 30, a separator feed tank 40, a separator 50, a mixer 60, a second separator 70, and an isolation module 80.
- FIG. 5 is a schematic depiction of an apparatus for the preparation of a poly(arylene ether), wherein the apparatus 400 comprises a reactor 20, a holding tank 30, a separator feed tank 40, a separator 50, and an isolation module 80.
- One embodiment is a method of purifying a poly(arylene ether), comprising: combining a chelant with a poly(arylene ether) reaction mixture comprising a poly(arylene ether), an aromatic hydrocarbon solvent, water, and a catalyst metal; separating the combined chelant and poly(arylene ether) reaction mixture in a separation apparatus with an average residence time of less than or equal to 60 seconds to yield a first less dense phase comprising poly(arylene ether) and solvent and a first more dense phase comprising water and chelant; combining the first less dense phase with an aqueous solution; and separating the combined first less dense phase and aqueous solution in a separation apparatus with an average residence time of less than or equal to 60 seconds to yield a second less dense phase comprising poly(arylene ether) and solvent and a second more dense phase comprising water.
- a first apparatus 10 includes a reactor 20, a separator 50, a mixer 60, a second separator 70, and an isolation module 80 that may include apparatus for isolating the poly(arylene ether) as a solid.
- the poly(arylene ether) is formed via an oxidative polymerization reaction in reactor 20.
- the product of this reaction is a poly(arylene ether) reaction mixture that comprises dissolved poly(arylene ether), a solvent, water (a by-product of the oxidative polymerization reaction), and a catalyst metal.
- Chelant is combined with the poly(arylene ether) reaction mixture, for example when that mixture is in the reactor 20, or during its transfer to separator 50.
- the combined chelant and poly(arylene ether) are transferred through the separator 50.
- the separator 50 effects separation of a first light phase containing the poly(arylene ether) and solvent, and a first heavy phase containing water and chelated catalyst metal.
- the first light phase is blended with an aqueous solution and transferred to mixer 60, where the two phases are mixed.
- the combined phases are then transferred to second separator 70, where they are separated into a second light phase containing the poly(arylene ether) and solvent and a second heavy phase containing water and additional chelated catalyst metal.
- the second light phase is then transferred to the isolation module 80, where the poly(arylene ether) is isolated in solid form.
- Suitable isolation methods include, for example, solution concentration, devolatilizing extrusion, spray drying, precipitation, filtration, washing, and drying.
- FIG. 2 Another apparatus suitable for carrying out the method is schematically depicted in Figure 2, where a second apparatus 100 includes the same components as the first apparatus 10 in Figure 1 and further includes a holding tank 30, which is an alternate position for combining and mixing the chelant and the poly(arylene ether) reaction mixture.
- a second apparatus 100 includes the same components as the first apparatus 10 in Figure 1 and further includes a holding tank 30, which is an alternate position for combining and mixing the chelant and the poly(arylene ether) reaction mixture.
- the poly(arylene ether) reaction mixture (with or without combined chelant) is transferred to holding tank 30.
- the combined chelant and reaction mixture are transferred from holding tank 30 to separator 50.
- a third apparatus 200 includes the same components as the first apparatus 10 in Figure 1 and further includes a separator feed tank 40, which facilitates transfer of the combined chelant and reaction mixture to the separator 50.
- the separator 50 is a liquid- liquid centrifuge or other separation apparatus capable of operating continuously, transfer of the combined chelant and reaction mixture from the separator feed tank 40 to the separator 50 may be continuous.
- a fourth apparatus 300 includes the same components as the first apparatus 10 in Figure 1 and further includes both a holding tank 30 and a separator feed tank 40.
- chelant may be combined with the poly(arylene ether) reaction mixture when that mixture is in the reactor 20, or during its transfer to holding tank 30, or after it has been transferred to the holding tank 30.
- the combined chelant and poly(arylene ether) are mixed in reactor 20 and/or in holding tank 30, then transferred to separator feed tank 40, from which the combined mixture is continuously transferred through the separator 50.
- the separator 50 effects separation of a first light phase containing the poly(arylene ether) and solvent, and a first heavy phase containing water and chelated catalyst metal.
- the first light phase is blended with an aqueous solution and transferred to mixer 60, where the two phases are mixed.
- the combined phases are then transferred to second separator 70, where they are separated into a second light phase containing the poly(arylene ether) and solvent and a second heavy phase containing water and additional chelated catalyst metal.
- the second light phase is then transferred to the isolation module 80, where the poly(arylene ether) is isolated in solid form.
- a fifth apparatus depicted in Figure 5, is described below in Examples 1-5.
- the method is applicable to poly(arylene ether) reaction mixtures having a wide range of concentrations.
- the method is applicable to poly(arylene ether) reaction mixtures that are the direct product of oxidative polymerization of at least one monohydric phenol, optionally in combination with at least one dihydric and/or polyhydric phenol.
- Such reaction mixtures typically have a poly(arylene ether) concentration of about 10 to about 40 weight percent, based on the total weight of the poly(arylene ether) reaction mixture.
- the method includes combining a chelant with the poly(arylene ether) reaction mixture.
- the chelant may be provided in pure form (for example, as a pure solid).
- the chelant may be provided as a "chelant solution” that comprises the chelant and a suitable solvent for the chelant, such as, for example, water.
- a suitable solvent for the chelant such as, for example, water.
- the "chelant solution” may have a wide range of chelant concentrations.
- the chelant solution may comprise about 5 to about 50 weight percent chelant, based on the total weight of the chelant solution. Within this range, the chelant solution may comprise at least about 10 weight percent chelant.
- the chelant solution may be used in an amount of about 0.05 to about 5 weight percent, based on the weight of the poly(arylene ether) reaction mixture. Within this range, the amount may be at least about 0.1 weight percent. Also within this range, the amount may be up to about 3 weight percent, or up to about 2 weight percent, or up to about 1 weight percent, or up to about 0.5 weight percent.
- the molar amount of chelant is generally at least about one mole per mole of catalyst metal to be chelated.
- a chelant amount of about 0.95 to about 4 moles chelant per mole of catalyst metal may be used.
- efficient chelation may be achieved with little or no molar excess of chelant, that is, by using close to 1 mole of chelant per mole of catalyst metal added to the polymerization reaction mixture.
- chelation of the catalyst metal depends significantly on the efficiency of mixing the chelant and the poly(arylene ether) reaction mixture.
- the poly(arylene ether) reaction mixture and the chelant solution are combined in a stirred tank having a stirrer Reynolds number of about 10,000 to about 60,000.
- a Reynolds number for a stirred tank may be calculated based on the tank diameter or the stirrer tip-to-tip diameter.
- the Reynolds number is calculated based on the stirrer tip-to-tip diameter.
- the extent of mixing may also be expressed as a mixing power or mixing energy.
- the chelant and the poly(arylene ether) reaction mixture are combined with a mixing power input of about 0.1 to about 10 Watt per kilogram total of poly(arylene ether) reaction mixture and chelant (including any solvent used to dilute the chelant).
- the chelant and the poly(arylene ether) reaction mixture are combined with a mixing energy of about 1 to about 10 kilojoules per kilogram total of poly(arylene ether) reaction mixture and chelant (including any solvent used to dilute the chelant).
- a mixing energy of about 1 to about 10 kilojoules per kilogram total of poly(arylene ether) reaction mixture and chelant (including any solvent used to dilute the chelant).
- the present inventors have also found that the catalyst metal concentration in the final poly(arylene ether) may be reduced by combining the chelant and the poly(arylene ether) reaction mixture in the polymerization reactor 20, rather than the holding tank 30 or the separator feed tank 40.
- addition of the chelant to the polymerization reactor 20 has no adverse effect on subsequent polymerizations conducted in reactor 20.
- the benefit of early addition of chelant to the poly(arylene ether) reaction mixture may be small, and it may be preferred to combine the chelant and the poly(arylene ether) reaction mixture in the holding tank 30, rather than the polymerization reactor 20.
- the chelant and poly(arylene ether) reaction mixture may be combined between the polymerization reactor 20 and the holding tank 30.
- water is combined with the poly(arylene ether) reaction mixture separately from combining the reaction mixture with chelant. This combination with water may occur before, during, or after combination with chelant.
- the temperature of the poly(arylene ether) reaction mixture and/or the chelant solution may be desirable to adjust the temperature of the poly(arylene ether) reaction mixture and/or the chelant solution prior to combining them.
- the temperature of the poly(arylene ether) reaction mixture is about 40 to about 6O 0 C when it is combined (that is, immediately before it is combined) with the chelant solution. It may also be desirable to adjust the temperature of the combined poly(arylene ether) reaction mixture and the chelant solution during the first separation step.
- the temperature of the combined poly(arylene ether) reaction mixture and chelant solution is about 50 to about 7O 0 C during the first separation step.
- the method comprises separating the combined chelant and poly(arylene ether) reaction mixture in a separation apparatus with an average residence time of less than or equal to 60 seconds to yield a first less dense phase comprising poly(arylene ether) and solvent and a first more dense phase comprising water and chelant.
- the term "separating" means that a first less dense phase and a first more dense phase are produced. It does not require complete separation of chelant from poly(arylene ether).
- the separation is effective to produce a first less dense phase comprising less than 15 weight percent water, or less than 10 weight percent water, or less than 5 weight percent water, based on the weight of the first less dense phase.
- the average residence time is significantly lower than 60 seconds.
- the average residence time may be less than about 40 seconds, or less than about 30 seconds, or less than about 20 seconds, or less than about 10 seconds.
- the average residence time may be as low as about 4 seconds are effective.
- One skilled in the art knows how to calculate the average residence time of a separator based on the steady state process flow rate and the separator work capacity.
- the first less dense phase is combined with an aqueous solution.
- Combining the first less dense phase and the aqueous solution may occur, for example, in mixer 60 of Figure 1.
- amount of aqueous solution used.
- the aqueous solution is used in an amount of about 1 to about 8 weight percent, based on the weight of the first less dense phase. Within this range, the amount of aqueous solution may be at least about 2 weight percent, at least about 3 weight percent. Also within this range, the amount of aqueous solution may be up to about 6 weight percent.
- the aqueous solution is substantially free of chelant.
- substantially free means that the solution comprises less than 0.1 weight percent of chelant.
- the aqueous solution is free of any intentionally added chelant.
- the aqueous solution consists of water.
- the aqueous solution has a temperature of about 50 to about 7O 0 C when it is combined (that is, immediately before it is combined) with the first less dense phase.
- the temperature of the aqueous solution may be within about 2O 0 C, or within about 1O 0 C, of the temperature of the first less dense phase when the two are combined in mixer 60 (that is, immediately before the two phases are combined).
- the first less dense phase and the aqueous solution may be combined rapidly in mixer 60.
- combining the first less dense phase with the aqueous solution is conducted in about 2 to about 60 seconds.
- the time may be up to about 30 seconds, or up to about 10 seconds, or up to about 7 seconds.
- mixer 60 used to combine the first less dense phase and the aqueous solution may be a static mixer.
- mixer 60 may be a dynamic mixer.
- mixer 60 may be a stirred tank, with or without external circulation.
- the first less dense phase and the aqueous solution may be combined without intentional mixing, relying instead on mixing that occurs within the subsequent separation step.
- the combined first less dense phase and aqueous solution may be rapidly and efficiently separated.
- separating the combined first less dense phase and aqueous solution is conducted in about 4 to about 60 seconds.
- the separation time is significantly lower.
- the separation time may be less than or equal to about 40 seconds, or less than or equal to about 30 seconds, or less than or equal to about 20 seconds, or less than or equal to about 10 seconds.
- separation times at least as low as about 4 seconds are effective.
- separation steps may be effected using liquid-liquid separation apparatus known in the art.
- separating the combined chelant and poly(arylene ether) reaction mixture and/or separating the combined first less dense phase and aqueous solution comprises using a liquid-liquid centrifuge. Suitable liquid-liquid centrifuges are described, for example, in U.S. Patent Nos. 2,622,797 of Hemfort, 4,614,598 of Zettier et al, and 4,755,165 of Gunnewig, and in Great Britain Patent Specification No. 884,768.
- Suitable liquid-liquid centrifuges are also commercially available, for example from GEA-Westfalia Separator AG. Liquid-liquid centrifuges are particularly useful for continuous separation processes.
- Other suitable separation apparatus includes coalescers, decanters, and the like. Suitable coalescers are described, for example, in U.S. Patent No. 6,332,987 Bl to Whitney et al., and U.S. Patent Application Publication No. US 2005/0178718 Al of Geibel et al.
- At least one of separating the combined chelant and poly(arylene ether) reaction mixture and separating the combined first less dense phase and aqueous solution comprises operating a liquid- liquid centrifuge at a light phase back pressure of about 50 to about 300 kilopascals. Within this range, the light phase back pressure may be at least about 100 kilopascals. Also within this range, the light phase back pressure may be up to about 200 kilopascals.
- the method provides efficient removal of catalyst metal from poly(arylene ether) while producing very little aqueous waste.
- the aqueous waste must be treated to remove catalyst metal (for example, by precipitation).
- the amount of aqueous waste generated may be further reduced by recycling at least a portion of the second more dense phase generated in the second separation step.
- some embodiments comprise recycling at least 30, at least 40, or at least 50 weight percent of the second more dense phase for use as at least a portion of the chelant solution.
- some embodiments comprise recycling at least 30, at least 40, or at least 50 weight percent of the second more dense phase for use as at least a portion of the water combined with the poly(arylene ether) reaction mixture.
- the method is beneficially practiced on poly(arylene ether) reaction mixtures that contain little or no solid poly(arylene ether).
- at least 90, at least 95, or at least 98 weight percent of the poly(arylene ether) is dissolved in the aromatic hydrocarbon solvent when the chelant is combined with the poly(arylene ether) reaction mixture.
- substantially all of the poly(arylene ether) is in solution when the reaction mixture and chelant are combined. This contrasts with so-called reactive precipitation processes, in which a substantial fraction of the poly(arylene ether) formed by oxidative polymerization precipitates from the reaction solution.
- the chelant solution and the aqueous solution are substantially free of reducing agents such as sulfite, dithionite, and hydrazine.
- the chelant solution and/or the aqueous solution comprises a reducing agent such as sulfite, dithionite, hydrazine, or a combination thereof.
- the second less dense phase comprises the catalyst metal in a concentration of about 0.1 to about 2 parts per million by weight, based on the total weight of the second less dense phase.
- the catalyst metal concentration may be up to about 1 part per million by weight (ppm), or up to about 0.5 ppm.
- the catalyst metal concentration of the second less dense phase may also be expressed relative to the catalyst metal concentration of the poly(arylene ether) reaction mixture.
- the ratio of the catalyst metal concentration in the second less dense phase to the catalyst metal concentration in the poly(arylene ether) reaction mixture is about 1 :500 to about 1 :50.
- the second less dense phase produced by the method is suitable for use as a feedstock for precipitation methods that produce low levels of very small particles.
- the method further comprises isolating the poly(arylene ether) in a powder form comprising less than 10 weight percent of particles smaller than 38 micrometers and less than 2 parts per million by weight of the catalyst metal.
- Poly(arylene ether) precipitation methods capable of producing low levels of very small particles are described, for example, in U.S. Patent Application Publication No. 2005/0171331 Al of Ingelbrecht.
- one embodiment is a poly(arylene ether) powder having these particle size characteristics and further having the low catalyst metal concentration enabled by the present methods.
- the method is applicable to poly(arylene ether)s having a wide variety of structures.
- the poly(arylene ether) comprises repeating structural units having the formula
- each Q 1 is independently halogen, unsubstituted or substituted C 1 -C 12 hydrocarbyl with the proviso that the hydrocarbyl group is not tertiary hydrocarbyl, Ci-Ci 2 hydrocarbylthio, Ci-Ci 2 hydrocarbyloxy, or C 2 -Ci 2 halohydrocarbyloxy wherein at least two carbon atoms separate the halogen and oxygen atoms; and each Q 2 is independently hydrogen, halogen, unsubstituted or substituted Ci-Ci 2 hydrocarbyl with the proviso that the hydrocarbyl group is not tertiary hydrocarbyl, Ci-Ci 2 hydrocarbylthio, Ci-Ci 2 hydrocarbyloxy, or C 2 -Ci 2 halohydrocarbyloxy wherein at least two carbon atoms separate the halogen and oxygen atoms.
- hydrocarbyl refers to a residue that contains only carbon and hydrogen.
- the residue may be aliphatic or aromatic, straight-chain, cyclic, bicyclic, branched, saturated, or unsaturated. It may also contain combinations of aliphatic, aromatic, straight chain, cyclic, bicyclic, branched, saturated, and unsaturated hydrocarbon moieties.
- the hydrocarbyl residue when so stated however, may contain heteroatoms over and above the carbon and hydrogen members of the substituent residue.
- the hydrocarbyl or hydrocarbylene residue may also contain carbonyl groups, amino groups, hydroxyl groups, or the like, or it may contain heteroatoms within the backbone of the hydrocarbyl residue.
- the poly(arylene ether) comprises 2,6-dimethyl-l,4-phenylene ether units, 2,3,6-trimethyl-l,4-phenylene ether units, or a combination thereof.
- the poly(arylene ether) may be a so-called bifunctional poly(arylene ether).
- Such poly(arylene ether)s comprise, on average, close to two terminal hydroxyl groups per molecule.
- the poly(arylene ether) comprises a bifunctional poly(arylene ether) having the structure
- each occurrence of Q 1 is independently halogen, unsubstituted or substituted C 1 -C 12 hydrocarbyl with the proviso that the hydrocarbyl group is not tertiary hydrocarbyl, C 1 -C 12 hydrocarbylthio, C 1 -C 12 hydrocarbyloxy, or C 2 -Ci 2 halohydrocarbyloxy wherein at least two carbon atoms separate the halogen and oxygen atoms;
- each occurrence of R 5 and R 6 is independently hydrogen, halogen, unsubstituted or substituted C 1 -C 12 hydrocarbyl with the proviso that the hydrocarbyl group is not tertiary hydrocarbyl, C 1 -C 12 hydrocarbylthio, C 1 -C 12 hydrocarbyloxy, or C 2 -Ci 2 halohydrocarbyloxy wherein at least two carbon atoms separate the halogen and oxygen atoms; z is 0 or 1; and Y has the structure
- R 7 , R 8 , and R 9 are each independently hydrogen, C 1 -C 12 hydrocarbyl, or the like. In the last substructure above, R 8 and R 9 may be disposed either cis or trans about the double bond. In one embodiment, the sum of each occurrence of x is at least 4.
- the poly(arylene ether) is the product of a process comprising oxidative copolymerization of monomers comprising 2,6-dimethylphenol and 2,2-bis(4-hydroxy-2,6-dimethylphenyl)propane ("tetramethyl bisphenol A").
- the aromatic hydrocarbon solvent present in the poly(arylene ether) reaction mixture may be chosen from, for example, benzene, toluene, xylenes, chlorobenzene, dichlorobenzenes, trichlorobenzenes, tetrachlorobenzenes, pentachlorobenzene, hexachlorobenzene, and combinations thereof.
- the aromatic hydrocarbon solvent is toluene.
- the catalyst metal may be any metal that is effective to catalyze the oxidative polymerization of phenols.
- Such metals include, for example, copper, manganese, cobalt, and mixtures thereof.
- the catalyst metal is copper.
- the chelant is selected from polyalkylenepolyamine polycarboxylic acids, aminopolycarboxylic acids, aminocarboxylic acids, polycarboxylic acids, alkali metal salts of the foregoing acids, alkaline earth metal salts of the foregoing acids, mixed alkali metal-alkaline earth metal salts of the foregoing acids, and combinations thereof.
- chelants include, for example, hydroxyethylethylenediaminetriacetic acid, diethylenetriaminepentaacetic acid, nitrilotriacetic acid, ethylenediaminetetraacetic acid, alkali metal salts of the foregoing acids, alkaline earth metal salts of the foregoing acids, and combinations thereof.
- the chelant comprises an alkali metal salt of nitrilotriacetic acid.
- One embodiment is a method of purifying a poly(arylene ether), comprising: combining a chelant with a poly(arylene ether) reaction mixture comprising toluene, copper catalyst metal, and a poly(arylene ether) comprising 2,6-dimethyl-l,4- phenylene ether units; wherein the chelant is provided as a chelant solution comprising an alkali metal salt of nitrilotriacetic acid; separating the combined chelant and poly(arylene ether) reaction mixture in a liquid-liquid centrifuge with an average residence time of about 4 to about 40 seconds to yield a first less dense phase comprising poly(arylene ether) and solvent and a first more dense phase comprising water and chelant; combining the first less dense phase with an aqueous solution consisting of water in about 2 to about 60 seconds; and separating the combined first less dense phase and aqueous solution in about 4 to about 40 seconds with a liquid- liquid centrifuge to yield a second less dense
- this method further comprises isolating the poly(arylene ether) from solution (for example, from the second less dense phase), wherein the poly(arylene ether) comprises less than 10 weight percent of particles smaller than 38 micrometers and less than or equal to 2 parts per million by weight of copper.
- the invention extends to the poly(arylene ether) prepared by this method.
- One embodiment is a method of purifying a poly(arylene ether), comprising: combining a chelant with a poly(arylene ether) reaction mixture comprising toluene, copper catalyst metal, and a poly(arylene ether) comprising 2,6-dimethyl-l,4- phenylene ether units; wherein the chelant is provided as a chelant solution comprising an alkali metal salt of nitrilotriacetic acid; separating the combined chelant and poly(arylene ether) reaction mixture in a liquid-liquid centrifuge with an average residence time of about 4 to about 15 seconds to yield a first less dense phase comprising poly(arylene ether) and solvent and a first more dense phase comprising water and chelant; wherein the liquid-liquid centrifuge is operated at a light phase back pressure of about 50 to about 300 kilopascals; combining the first less dense phase with an aqueous solution consisting of water in about 2 to about 60 seconds; wherein the aqueous
- this method further comprises isolating the poly(arylene ether) from solution (for example, from the second less dense phase), wherein the poly(arylene ether) comprises less than 10 weight percent of particles smaller than 38 micrometers and less than or equal to 2 parts per million by weight of copper.
- the invention extends to the poly(arylene ether) prepared by this method.
- the fifth apparatus 400 includes a reactor 20, a holding tank 30, a separator feed tank 40, a separator 50, and an isolation module 80.
- the poly(arylene ether) is formed via an oxidative polymerization reaction in reactor 20.
- the product of this reaction is a poly(arylene ether) reaction mixture that comprises dissolved poly(arylene ether), a solvent, water produced as a by-product of the polymerization reaction, and a catalyst metal.
- a chelant may be combined with the poly(arylene ether) reaction mixture, for example when that mixture is in the reactor 20, or while it is being transferred to holding tank 30, or after it has been transferred to holding tank 30.
- the combined chelant and poly(arylene ether) reaction mixture are mixed in the holding tank 30, then transferred to the separator feed tank 40, from which the combined mixture is continuously transferred to the separator 50.
- the separator 50 effects separation of a first light phase containing the poly(arylene ether) and solvent, and a first heavy phase containing water and chelated catalyst metal.
- the first light phase is then transferred to the isolation module 80, where the poly(arylene ether) is isolated in solid form.
- the poly(arylene ether) was poly(2,6-dimethyl- 1 ,4-phenylene ether), the solvent was toluene, the concentration of the poly(arylene ether) in the polymerization reaction mixture was 25 weight percent based on the total weight of the reaction mixture, the catalyst metal was copper, and the concentration of copper in the polymerization reaction mixtures was 130 parts per million by weight based on the total weight of the polymerization reaction mixture.
- the chelant was the sodium salt of nitrilotriacetic acid.
- the aqueous chelant solution consisted of water and 40 weight percent chelant, based on the total weight of the chelant solution.
- the chelant solution was added in an amount of 0.2 weight percent based on the weight of the poly(arylene ether) reaction mixture.
- the centrifuge was a liquid- liquid centrifuge commercially available from GEA Westfalia Separator AG. The residence time in the centrifuge was about 10 to 40 seconds.
- the poly(arylene ether) isolation process consisted of solution concentration, high-shear precipitation, washing, filtration, and drying, as described in Example 1 of U.S. Patent Application Publication No. US 2005/0171331 Al of Ingelbrecht.
- the first process variable (“Chelant added to reactor?” in Table 1), relates to the point of addition of the chelant solution.
- the chelant solution was added either to the reactor ("yes") or to the holding tank ("no").
- the second process variable (“Water added to holding tank?” in Table 1) relates to whether water (in addition to the water present in the chelant solution) was added to the holding tank ("yes") or to the separator feed tank (“no”). When water was added, it was added in an amount of 0.9- 1.2 weight percent based on the weight of the poly(arylene ether) reaction mixture.
- the third process variable relates to the type of mixing used in holding tank 30. The first light phase and the water were either combined using a high efficiency mixer ("yes") or a turbine stirrer ("no").
- the fourth process variable (“Increased light phase back pressure in both centrifuges?” in Table 1) relates to the light phase back pressure at which the first and second centrifuges were operated. This back pressure was either 200 kilopascals ("yes") or 50 kilopascals ("no").
- the resulting isolated poly(arylene ether) was analyzed by atomic absorption spectroscopy to determine its copper content. That atomic absorption analysis used a Perkin-Elmer Model 100 Atomic Absorption Spectrophotometer, standard samples containing 10, 20, and 50 ppm Cu (as cupric chloride) in chlorobenzene, and experimental samples containing 0.6 grams of isolated poly(arylene ether) dissolved in 20 milliliters of chlorobenzene.
- Each copper content value is expressed as a mean value plus or minus a standard deviation, reflecting analysis on approximately forty poly(arylene ether) samples per process run.
- Statistical analysis of the copper content results shows that the relative influence of the four process factors on reducing copper content was, in decreasing order of importance, increased light phase back pressure, water addition to the holding tank, improved mixing in the holding tank, and addition of chelant to the reactor rather than the holding tank.
- the poly(arylene ether) preparation apparatus 10 includes a reactor 20, an holding tank 30, a separator feed tank 40, a separator 50, a mixer 60, a second separator 70, and an isolation module 80 that may include apparatus for concentration of the poly(arylene ether) solution, and precipitation, washing, filtration, and drying of the poly(arylene ether) resin.
- the poly(arylene ether) is formed via an oxidative polymerization reaction in reactor 20.
- the product of this reaction is a poly(arylene ether) reaction mixture that comprises dissolved poly(arylene ether), a solvent, and a catalyst metal.
- Chelant is added to the poly(arylene ether) reaction mixture, either when that reaction mixture is in the reactor 20 or after it has been transferred to the holding tank 30.
- the combined chelant and poly(arylene ether) reaction mixture are mixed in the holding tank 30, then transferred to the separator feed tank 40, from which the combined mixture is continuously transferred to the separator 50.
- the separator 50 effects separation of a first light phase containing the poly(arylene ether) and solvent, and a first heavy phase containing water and chelated catalyst metal.
- the first light phase is blended with water and transferred to mixer 60 (which in these experiments consisted of a parallel array of three six-element static mixers), where the two phases are mixed.
- second separator 70 which in these experiments consisted of a liquid-liquid centrifuge obtained from GEA Westfalia Separator AG, where they are separated into a second light phase containing the poly(arylene ether) and solvent and a second heavy phase containing water and additional chelated catalyst metal.
- the second light phase is then transferred to the isolation module 80, where the poly(arylene ether) is isolated in solid form via solution concentration, precipitation, filtration, washing, and drying.
- “Scaled process flow rate (L/h)” refers to the continuous flow rate for the process forward of the separator feed tank, scaled to the lowest process flow rate studied.
- “Cu in light phase (ppm)” refers to the copper concentration of the light phase produced by the last centrifuge in the process, expressed in parts per million by weight relative to the total weight of the light phase. For the process with one centrifuge, the copper concentration of the fluid fed to the centrifuge was 44 parts per million by weight. For the process with two centrifuges, the copper concentration of the light phase generated by the first centrifuge was 2.6 parts per million.
- the process is the same as the two-centrifuge process described above for Examples 10-23, except that no water was added prior to mixer 60.
- the copper concentration of the light phase entering the second centrifuge was 2.2 ppm.
- the process variables were scaled process flow rate and light phase back pressure at the second centrifuge.
- Table 4 show that operating a second centrifuge in clarif ⁇ er mode (that is, without aqueous phase addition between the first and second centrifuges, and with the second more dense phase discharged from the centrifuge) is effective to reduce the copper concentration of the poly(arylene ether) phase, that the efficiency of copper removal is generally increased at lower process rates, and that the efficiency of copper removal is generally increased at increased light phase back pressure at the second centrifuge.
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Abstract
Description
Claims
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN2007800298678A CN101501102B (en) | 2006-06-22 | 2007-05-16 | Poly(arylene ether) and preparation process |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US11/425,741 | 2006-06-22 | ||
| US11/425,741 US20070299243A1 (en) | 2006-06-22 | 2006-06-22 | Poly(arylene ether) process and composition |
Publications (1)
| Publication Number | Publication Date |
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| WO2007149658A1 true WO2007149658A1 (en) | 2007-12-27 |
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ID=38565887
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2007/069003 Ceased WO2007149658A1 (en) | 2006-06-22 | 2007-05-16 | Poly (arylene ether) and process for preparing them |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US20070299243A1 (en) |
| CN (1) | CN101501102B (en) |
| WO (1) | WO2007149658A1 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US8859646B2 (en) * | 2012-02-28 | 2014-10-14 | Sabic Global Technologies B.V. | Poly(phenylene ether) process |
| US8466253B1 (en) | 2012-06-29 | 2013-06-18 | Sabic Innovative Plastics Ip B.V. | Poly(phenylene ether) process |
| CN111269411B (en) * | 2020-04-08 | 2024-03-26 | 李同军 | Reaction device for producing polyphenyl ether and polyphenyl ether production system |
Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3733301A (en) * | 1971-05-04 | 1973-05-15 | M Modan | Separation and recovery of catalyst residue |
| US3783147A (en) * | 1971-09-24 | 1974-01-01 | Gen Electric | Removal of catalyst residue from polyphenylene ethers |
| US3838102A (en) * | 1972-12-29 | 1974-09-24 | Gen Electric | Removal of metallic catalyst residue from polyphenylene ethers |
| WO2002006376A2 (en) * | 2000-07-14 | 2002-01-24 | General Electric Company | Poly(arylene ether) and process for making the same |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3984374A (en) * | 1975-04-01 | 1976-10-05 | General Electric Company | Catalyst removal from polyphenylene ether reaction solutions by aqueous extraction with ammonium salts |
| US4237265A (en) * | 1975-09-08 | 1980-12-02 | General Electric Company | Process for catalyst removal from polyphenylene ether reaction solutions |
| US4039510A (en) * | 1975-12-08 | 1977-08-02 | General Electric Company | Removal of catalyst from polyphenylene oxide reaction mixtures with nitrogenous salts of nitrilotriacetic acid |
| US4088634A (en) * | 1976-12-09 | 1978-05-09 | General Electric Company | Process for isolation and purification of polyphenylene ethers |
| US4071500A (en) * | 1976-12-13 | 1978-01-31 | General Electric Company | Process for recovery of catalyst from polymerization of polyphenylene ethers |
| US4110311A (en) * | 1976-12-13 | 1978-08-29 | General Electric Company | Molecular weight control of polyphenylene ethers |
| US4116939A (en) * | 1976-12-20 | 1978-09-26 | General Electric Company | Intrinsic viscosity control of polyphenylene ether reaction mixtures |
| US4263426A (en) * | 1978-11-06 | 1981-04-21 | General Electric Company | Process for isolation of polyphenylene ether resin by crumbing in hot water |
| DE3227745A1 (en) * | 1982-07-24 | 1984-01-26 | Basf Ag, 6700 Ludwigshafen | METHOD FOR REMOVING THE CATALYST FROM POLYPHENYLENE ETHER |
| DE3228662A1 (en) * | 1982-07-31 | 1984-02-02 | Basf Ag, 6700 Ludwigshafen | METHOD FOR REMOVING THE CATALYST FROM POLYPHENYLENE ETHER |
| US4463164A (en) * | 1983-02-15 | 1984-07-31 | Borg-Warner Chemicals, Inc. | Process for preparing polyphenylene ethers |
| DE3324338A1 (en) * | 1983-07-06 | 1985-01-17 | Basf Ag, 6700 Ludwigshafen | CONTINUOUS METHOD FOR REMOVING THE CATALYST FROM POLYPHENYLENE ETHER |
| DE3325894A1 (en) * | 1983-07-19 | 1985-01-31 | Basf Ag, 6700 Ludwigshafen | METHOD FOR REMOVING THE CATALYST FROM POLYPHENYLENE ETHER |
| JPS636024A (en) * | 1986-06-25 | 1988-01-12 | Mitsubishi Petrochem Co Ltd | Preparation of polyphenylene ether |
| US4812225A (en) * | 1987-02-10 | 1989-03-14 | Gulf Canada Resources Limited | Method and apparatus for treatment of oil contaminated sludge |
| JPH0747631B2 (en) * | 1990-05-21 | 1995-05-24 | 旭化成工業株式会社 | Method for producing polyphenylene ether |
| JP4422799B2 (en) * | 1996-09-30 | 2010-02-24 | ポール・コーポレーション | Coalescer element |
| US6407292B1 (en) * | 1998-12-30 | 2002-06-18 | Exxonmobil Chemical Patents Inc. | Preparation of alkylated diphenyl oxides |
| US20050178718A1 (en) * | 2002-02-06 | 2005-08-18 | Pall Corporation | Coalescing and separation arrangements systems and methods for liquid mixtures |
| US7151158B2 (en) * | 2004-01-30 | 2006-12-19 | General Electric Company | Method of preparing a poly(arylene ether), apparatus therefor, and poly(arylene ether) prepared thereby |
-
2006
- 2006-06-22 US US11/425,741 patent/US20070299243A1/en not_active Abandoned
-
2007
- 2007-05-16 WO PCT/US2007/069003 patent/WO2007149658A1/en not_active Ceased
- 2007-05-16 CN CN2007800298678A patent/CN101501102B/en not_active Expired - Fee Related
Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3733301A (en) * | 1971-05-04 | 1973-05-15 | M Modan | Separation and recovery of catalyst residue |
| US3783147A (en) * | 1971-09-24 | 1974-01-01 | Gen Electric | Removal of catalyst residue from polyphenylene ethers |
| US3838102A (en) * | 1972-12-29 | 1974-09-24 | Gen Electric | Removal of metallic catalyst residue from polyphenylene ethers |
| WO2002006376A2 (en) * | 2000-07-14 | 2002-01-24 | General Electric Company | Poly(arylene ether) and process for making the same |
Also Published As
| Publication number | Publication date |
|---|---|
| CN101501102A (en) | 2009-08-05 |
| CN101501102B (en) | 2012-09-05 |
| US20070299243A1 (en) | 2007-12-27 |
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