Method for decomposing polycarbonate resin, method for producing bisphenol, method for producing dialkyl carbonate, method for producing alkylaryl carbonate, method for producing diaryl carbonate, method for producing recycled polycarbonate resin, method for producing epoxy resin, and method for producing cured epoxy resin
The decomposition of polycarbonate resin in a slurry-like reaction liquid with aromatic and aliphatic alcohols and catalysts under mild conditions addresses the inefficiencies of existing methods, achieving high reactivity and environmental sustainability in recycling polycarbonate resin.
Patent Information
- Application Number
- JP2022565265
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-07-16
- Filing Date
- 2021-11-17
- Publication Date
- 2025-11-12
- Estimated Expiration
- 2041-11-17
AI Technical Summary
Existing methods for decomposing polycarbonate resin require high-temperature or high-pressure conditions, involve the use of environmentally harmful solvents, or have low reactivity, posing challenges for efficient and environmentally friendly recycling.
A method involving the decomposition of polycarbonate resin in a slurry-like reaction liquid containing an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst, such as alkali metal hydroxides or alkylamines, under mild conditions at atmospheric pressure, facilitating high reactivity and solvent recovery.
The method enables efficient decomposition of polycarbonate resin with high reactivity under mild conditions, reducing environmental impact and improving reaction control, allowing for the production of valuable compounds like bisphenol and dialkyl carbonate.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for decomposing polycarbonate resin. It also relates to a method for producing bisphenol, a method for producing dialkyl carbonate, and a method for producing alkylaryl carbonate, all of which utilize the decomposition of polycarbonate resin. It also relates to a method for producing diaryl carbonate using the dialkyl carbonate obtained by the method for producing dialkyl carbonate or the alkylaryl carbonate obtained by the method for producing alkylaryl carbonate. It also relates to a method for producing recycled polycarbonate resin using the bisphenol obtained by the method for producing bisphenol or the diaryl carbonate obtained by the method for producing diaryl carbonate. The present invention also relates to a method for producing an epoxy resin and a method for producing a cured epoxy resin. [Background technology]
[0002] Plastic is easily accessible, durable, and inexpensive, and is therefore produced in large quantities not only in Japan but all over the world. Because much of this plastic is used as a "disposable" item, it is not properly disposed of and some ends up in the environment. Specifically, plastic waste flows from rivers into the ocean, where it is degraded by waves and ultraviolet light, becoming smaller than 5mm. These tiny pieces of plastic waste are called microplastics. Animals and fish can accidentally ingest these microplastics. Plastic waste thus has a significant impact on ecosystems, and in recent years, the marine plastic problem has become a global concern. Polycarbonate resins are used in a wide range of fields due to their transparency, mechanical properties, flame retardancy, dimensional stability, and electrical properties, and this polycarbonate resin is no exception.
[0003] One method of recycling polycarbonate resin is chemical recycling, in which polycarbonate resin is chemically decomposed and returned to bisphenol, which can then be reused.Alcoholysis is also known as a method of decomposing polycarbonate resin.
[0004] For example, Patent Document 1 discloses a method for continuously ring-opening an aromatic polycarbonate to a dihydroxy compound and dimethyl carbonate by catalytically transesterifying the aromatic polycarbonate dissolved in a monohydroxy compound other than methanol with methanol in a distillation column.
[0005] Furthermore, Patent Document 2 discloses a method for recovering useful substances from waste plastics, which comprises the steps of adding a specific tertiary amine as a catalyst to a solution containing waste plastics and monohydric alcohols or monohydric phenols to chemically decompose the polycarbonate resin in the waste plastics, and recovering the decomposition products as useful substances.
[0006] Patent Document 3 discloses a method for obtaining an aromatic dihydroxy compound from waste aromatic polycarbonate, in which waste aromatic polycarbonate is decomposed by transesterification in the presence of an alcohol having 1 to 4 carbon atoms, a chlorinated compound, an organic solvent, and a metal hydroxide. [Prior art documents] [Patent documents]
[0007] [Patent Document 1] Japanese Patent Application Publication No. 6-340591 [Patent Document 2] Japanese Patent Application Laid-Open No. 2004-51620 [Patent Document 3] Japanese Patent Application Laid-Open No. 2006-22029 Summary of the Invention [Problem to be solved by the invention]
[0008] In the decomposition method of polycarbonate resin using alcoholysis, aliphatic monoalcohols are usually used. However, since aliphatic monoalcohols with a small number of carbon atoms have a low boiling point, high-pressure conditions are required when reacting at high decomposition temperatures. Therefore, a pressure-resistant vessel is required.
[0009] Furthermore, according to Example 1 of Patent Document 1, polycarbonate resin is dissolved in phenol at 150°C and decomposed by countercurrent contact with vapors consisting of methanol and dimethyl carbonate. However, carrying out this process at normal pressure poses problems such as complicated device control and difficulty in controlling the decomposition of the polycarbonate resin.
[0010] Furthermore, in the method of Patent Document 2, since polycarbonate resin is poorly soluble in methanol, an amine is used as a solvent and a catalyst. However, when the amount of amine is small, there is a problem that the reactivity is low and the reaction time is long.
[0011] In the decomposition method of polycarbonate resin with methanol at around room temperature, a chlorinated hydrocarbon solvent is used to dissolve the polycarbonate. For example, according to Example 1 of Patent Document 3, methylene chloride is used as the solvent. Chlorinated hydrocarbon solvents such as methylene chloride are chemically stable and therefore flame-retardant compounds. Therefore, if the waste is not disposed of properly at high temperatures, there is a problem of dioxin generation.
[0012] All of the above-mentioned methods of decomposing polycarbonate resins using aliphatic monoalcohols require high-temperature or high-pressure decomposition conditions, are insufficient in reactivity, or require solvents that are damaging to the environment, and further improvements have been required.
[0013] The present invention has been made in view of the above circumstances, and an object of the present invention is to provide a method for decomposing polycarbonate resins, which can decompose polycarbonate resins with high reactivity even under mild conditions that impose little environmental load.
[0014] Another object of the present invention is to provide a method for producing bisphenol by utilizing the method for decomposing polycarbonate resin.
[0015] Another object of the present invention is to provide a method for producing recycled polycarbonate resin using bisphenol obtained by the above-mentioned method for producing bisphenol.
[0016] Another object of the present invention is to provide a method for producing an epoxy resin using the bisphenol obtained by the method for producing a bisphenol, and a method for producing a cured epoxy resin product using the obtained epoxy resin.
[0017] Another object of the present invention is to provide a method for producing a dialkyl carbonate by utilizing the method for decomposing a polycarbonate resin, and a method for producing a diaryl carbonate using the dialkyl carbonate obtained by the method for producing a dialkyl carbonate.A further object of the present invention is to provide a method for producing a recycled polycarbonate resin using the diaryl carbonate obtained by the method for producing a diaryl carbonate.
[0018] On the other hand, a known method for producing dialkyl carbonates using dialkyl carbonates involves reacting a dialkyl carbonate with an aromatic monoalcohol to obtain an alkyl aryl carbonate, and then disproportionating the alkyl aryl carbonate to obtain a diaryl carbonate. However, the reaction of reacting a dialkyl carbonate with an aromatic monoalcohol to obtain an alkyl aryl carbonate is an equilibrium reaction. This reaction has a slow reaction rate, and furthermore, the equilibrium is extremely biased toward the raw material system, so a method for efficiently obtaining alkyl aryl carbonates has been sought.
[0019] Therefore, an object of the present invention is to provide a method for producing an alkyl aryl carbonate, which can decompose a polycarbonate resin even under mild conditions with little environmental impact and efficiently produce an alkyl aryl carbonate. Another object of the present invention is to provide a method for producing a diaryl carbonate using the alkyl aryl carbonate obtained by the method for producing an alkyl aryl carbonate. A further object of the present invention is to provide a method for producing a recycled polycarbonate resin using the diaryl carbonate obtained by the method for producing a diaryl carbonate. [Means for solving the problem]
[0020] As a result of intensive research aimed at solving the above problems, the present inventors have discovered a method for decomposing polycarbonate resins using a combination of an aromatic monoalcohol and an aliphatic monoalcohol, and have also found that this decomposition method can be used in a method for producing bisphenols and dialkyl carbonates and / or alkylaryl carbonates. That is, the present invention relates to the following inventions.
[0021] <1> A method for decomposing a polycarbonate resin, comprising decomposing the polycarbonate resin in a slurry-like reaction liquid containing the polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst. <2> A method for decomposing a polycarbonate resin, comprising: a preparation step of preparing a slurry reaction liquid containing a polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst; and a decomposition reaction step of decomposing the polycarbonate resin in the slurry reaction liquid prepared in the preparation step. <3> The catalyst is any one selected from the group consisting of alkali metal hydroxides, alkali metal carbonates, alkylamines, and acids. <1> or <2> 1. A method for decomposing a polycarbonate resin according to claim 1. <4> The alkylamine is represented by the following formula (I): <3> 1. A method for decomposing a polycarbonate resin according to claim 1. [ka] In the formula, R A represents an alkyl group having 1 to 3 carbon atoms, and R B ~R C each independently represents a hydrogen atom or an alkyl group having 1 to 3 carbon atoms. <5> The alkylamine is a tertiary amine. <3> 1. A method for decomposing a polycarbonate resin according to claim 1. <6> In the slurry-like reaction liquid, the molar ratio of the alkylamine to 1 mole of the repeating unit of the polycarbonate resin is 4.5 or less. <3> from <5> 10. The method for decomposing a polycarbonate resin according to claim 9, wherein the polycarbonate resin is a polycarbonate resin. <7> The alkali metal hydroxide is sodium hydroxide or potassium hydroxide. <3> 1. A method for decomposing a polycarbonate resin according to claim 1. <8> The acid is any one selected from the group consisting of sulfuric acid, phosphoric acid, and sulfonic acid. <3> 1. A method for decomposing a polycarbonate resin according to claim 1. <9> The aromatic monoalcohol is any one selected from the group consisting of phenol, cresol, and xylenol. <1> from <8> 10. The method for decomposing a polycarbonate resin according to claim 9, wherein the polycarbonate resin is a polycarbonate resin. <10> The aliphatic monoalcohol is any one selected from the group consisting of methanol, ethanol, and n-butanol. <1> from <9> 10. The method for decomposing a polycarbonate resin according to claim 9, wherein the polycarbonate resin is a polycarbonate resin. <11> the molar ratio of the aliphatic monoalcohol to the aromatic monoalcohol is 0.7 or less; <1> from <10> 10. The method for decomposing a polycarbonate resin according to claim 9, wherein the polycarbonate resin is a polycarbonate resin. <12> The reaction temperature for decomposing the polycarbonate resin is 120°C or less. <1> from <11> 10. The method for decomposing a polycarbonate resin according to claim 9, wherein the polycarbonate resin is a polycarbonate resin.
[0022] <13> The aforementioned <1> from <12> and a bisphenol recovery step of recovering bisphenol produced by the decomposition of the polycarbonate resin. <14> The bisphenol is 2,2-bis(4-hydroxyphenyl)propane. <13> 1. A method for producing bisphenol according to claim 1.
[0023] <15> The aforementioned <1> from <12> and a dialkyl carbonate recovery step of recovering the dialkyl carbonate produced by the decomposition of the polycarbonate resin. <16> In the slurry-like reaction liquid, the molar ratio of the aliphatic monoalcohol to 1 mole of the repeating unit of the polycarbonate resin is 2.0 or more and 6.0 or less. <15> 2. A method for producing a dialkyl carbonate according to claim 1.
[0024] <17> A method for producing an alkylaryl carbonate, comprising: a polycarbonate resin decomposition step of decomposing a polycarbonate resin in the presence of an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst; and an alkylaryl carbonate recovery step of recovering the alkylaryl carbonate produced by the decomposition of the polycarbonate. <18> The aforementioned <1> from <12> and recovering the alkylaryl carbonate produced by the decomposition of the polycarbonate resin. <19> The aromatic monoalcohol is phenol, and the alkyl aryl carbonate is alkyl phenyl carbonate. <17> or <18> 2. A method for producing an alkyl aryl carbonate according to claim 1. <20> the molar ratio of the aliphatic monoalcohol to 1 mole of the repeating unit of the polycarbonate resin is 0.1 or more and less than 2.0; <17> from <19> 3. The method for producing an alkyl aryl carbonate according to claim 1,
[0025] <21> The aforementioned <15> or <16> 2. A method for producing a diaryl carbonate, comprising producing a diaryl carbonate using the dialkyl carbonate obtained by the method for producing a dialkyl carbonate described in 1. <22> The aforementioned <17> from <19> 1. A method for producing a diaryl carbonate, comprising producing a diaryl carbonate using the alkylaryl carbonate obtained by the method for producing an alkylaryl carbonate according to any one of the above items 1 to 5.
[0026] <23> The aforementioned <13> or <14> A method for producing a recycled polycarbonate resin, comprising producing a recycled polycarbonate resin using a bisphenol raw material containing bisphenol obtained by the method for producing bisphenol described in 1. <24> The aforementioned <21> or <22> 2. A method for producing a recycled polycarbonate resin, comprising producing a recycled polycarbonate resin using a diaryl carbonate raw material containing the diaryl carbonate obtained by the method for producing a diaryl carbonate described in 1.
[0027] <25> The aforementioned <13> or <14> 1. A method for producing a recycled epoxy resin, comprising producing a recycled epoxy resin using bisphenol obtained by the method for producing bisphenol according to claim 1. <26> The recycled epoxy resin is further reacted with a polyhydric hydroxy compound raw material. <25> A method for producing a recycled epoxy resin according to claim 1. <27> The aforementioned <25> or <26> A method for producing a cured recycled epoxy resin product, comprising curing a recycled epoxy resin composition containing the recycled epoxy resin obtained by the method for producing a cured recycled epoxy resin described in claim 1 and a curing agent, to obtain a cured recycled epoxy resin product. [Effects of the Invention]
[0028] According to the present invention, there is provided a method for decomposing polycarbonate resin, which is capable of decomposing polycarbonate resin with high reactivity even under mild conditions with little environmental load.
[0029] The present invention also provides a method for producing bisphenol, which utilizes the method for decomposing polycarbonate resin.
[0030] The present invention also provides a method for producing recycled polycarbonate resin using bisphenol obtained by the method for producing bisphenol.
[0031] The present invention also provides a method for producing an epoxy resin using the bisphenol obtained by the method for producing a bisphenol, and a method for producing a cured epoxy resin product using the obtained epoxy resin.
[0032] The present invention also provides a method for producing a dialkyl carbonate by utilizing the method for decomposing a polycarbonate resin, a method for producing a diaryl carbonate using the dialkyl carbonate obtained by the method for producing a dialkyl carbonate, and a method for producing a recycled polycarbonate resin using the diaryl carbonate obtained by the method for producing a diaryl carbonate.
[0033] The present invention also provides a method for producing an alkyl aryl carbonate, which can decompose a polycarbonate resin even under mild conditions with little environmental impact and efficiently produce an alkyl aryl carbonate. It also provides a method for producing a diaryl carbonate using the alkyl aryl carbonate obtained by the method for producing an alkyl aryl carbonate. It also provides a method for producing a recycled polycarbonate resin using the diaryl carbonate obtained by the method for producing a diaryl carbonate. [Brief explanation of the drawings]
[0034] [Figure 1] FIG. 1 is a flow diagram of the decomposition method of the present invention. [Figure 2] 1 is a flow diagram showing an example of a method for producing bisphenol according to the present invention. [Figure 3] 1 is a flow diagram showing an example of a method for producing bisphenol according to the present invention. [Figure 4] 1 is a flow diagram showing an example of a method for producing bisphenol according to the present invention. [Figure 5] FIG. 3 is a flow diagram for explaining step (A3) in FIG. 2. [Figure 6] FIG. 3 is a flow diagram for explaining step (A3) in FIG. 2. [Figure 7] FIG. 4 is a flow diagram for explaining step (B2) of FIG. 3. [Figure 8] FIG. 4 is a flow diagram for explaining step (B2) of FIG. 3. [Figure 9] FIG. 1 is a flow chart showing an example of the method for producing a dialkyl carbonate of the present invention. [Figure 10]FIG. 1 is a flow chart showing an example of the method for producing a dialkyl carbonate of the present invention. [Figure 11] FIG. 1 is a flow chart showing an example of the method for producing an alkyl aryl carbonate of the present invention. [Figure 12] FIG. 1 is a flow chart showing an example of the method for producing an alkyl aryl carbonate of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0035] The following describes in detail an embodiment of the present invention, but the description of the constituent elements described below is one example of an embodiment of the present invention, and the present invention is not limited to the following description as long as it does not deviate from the gist of the present invention. Note that when the expression "to" is used in this specification, it is used as an expression that includes the numerical values or physical property values before and after it.
[0036] <How to decompose polycarbonate resin> The present invention relates to a method for decomposing a polycarbonate resin (hereinafter, sometimes referred to as the "decomposition method of the present invention"), which includes a decomposition step of decomposing the polycarbonate resin in a slurry-like reaction liquid containing the polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst.
[0037] Furthermore, as shown in FIG. 1, the decomposition method of the present invention can be a method for decomposing a polycarbonate resin, comprising: a preparation step (S1) of preparing a slurry reaction liquid containing a polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst; and a decomposition reaction step (S2) of decomposing the polycarbonate resin in the slurry reaction liquid prepared in the preparation step (S1).
[0038] The decomposition method of the present invention involves decomposing a polycarbonate resin in the presence of an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst. Both aromatic monoalcohols and aliphatic monoalcohols are poor solvents for polycarbonate resins, and using a mixture of these solvents is thought to complicate solvent recovery and separation. For this reason, it has traditionally been thought that there is no advantage to using a mixture of these solvents. However, surprisingly, the present inventors have discovered that polycarbonate resins can be decomposed even under mild conditions at atmospheric pressure by reacting them in a mixed solvent containing an aromatic monoalcohol and an aliphatic monoalcohol in the presence of a catalyst. Furthermore, it has been found that the decomposition reaction of polycarbonate resins occurs at a high reaction rate by using both an aromatic monoalcohol and an aliphatic monoalcohol in combination, even without completely dissolving the polycarbonate resin using a solvent that has a high solubility for polycarbonate resins, such as a halogenated solvent.
[0039] By using an aromatic monoalcohol and an aliphatic monoalcohol in combination, both solvolysis reactions by the aromatic monoalcohol (e.g., phenolysis) and solvolysis reactions by the aliphatic monoalcohol (e.g., methanolysis) occur in the system, which is thought to make the polycarbonate resin more susceptible to decomposition even under mild conditions.
[0040] Furthermore, since polycarbonate resins are poorly soluble in aromatic monoalcohols and aliphatic monoalcohols, by carrying out the reaction in a slurry-like reaction liquid in which polycarbonate resins are dispersed in a mixed solvent of these, only the polycarbonate resin dissolved to the solubility extent participates in the decomposition reaction, making it easier to control the reaction and enabling the polycarbonate resin to be decomposed stably.
[0041] (Polycarbonate resin) The polycarbonate resin used in the decomposition method of the present invention comprises a polymer composition containing a carbonate bond (-OC(=O)-O-). Specifically, the polycarbonate resin used in the decomposition method of the present invention comprises a polymer containing a repeating unit derived from bisphenol, represented by general formula (1).
[0042] [ka]
[0043] R 1 ~R 4 The substituents of each independently include a hydrogen atom, a halogen atom, an alkyl group, an alkoxy group, an aryl group, etc. Examples thereof include a hydrogen atom, a fluoro group, a chloro group, a bromo group, an iodo group, a methyl group, an ethyl group, an n-propyl group, an i-propyl group, an n-butyl group, an i-butyl group, a t-butyl group, an n-pentyl group, an i-pentyl group, an n-hexyl group, an n-heptyl group, an n-octyl group, an n-nonyl group, an n-decyl group, an n-undecyl group, an n-dodecyl group, a methoxy group, an ethoxy group, an n-propoxy group, an i-propoxy group, an n-butoxy group, an i-butoxy group, and a t-butoxy group. Examples of such groups include an n-pentyloxy group, an i-pentyloxy group, an n-hexyloxy group, an n-heptyloxy group, an n-octyloxy group, an n-nonyloxy group, an n-decyloxy group, an n-undecyloxy group, an n-dodecyloxy group, a cyclopropyl group, a cyclobutyl group, a cyclopentyl group, a cyclohexyl group, a cycloheptyl group, a cyclooctyl group, a cyclododecyl group, a benzyl group, a phenyl group, a tolyl group, and a 2,6-dimethylphenyl group.
[0044] R 5 and R 6The substituents of each independently include a hydrogen atom, an alkyl group, an alkoxy group, an aryl group, etc. Examples thereof include a hydrogen atom, a methyl group, an ethyl group, an n-propyl group, an i-propyl group, an n-butyl group, an i-butyl group, a t-butyl group, an n-pentyl group, an i-pentyl group, an n-hexyl group, an n-heptyl group, an n-octyl group, a 2-ethylhexyl group, an n-nonyl group, an n-decyl group, an n-undecyl group, an n-dodecyl group, a methoxy group, an ethoxy group, an n-propoxy group, an i-propoxy group, an n-butoxy group, an i-butoxy group, a t-butoxy ... i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, an i-pentyl group, Examples of such an alkyl group include an n-butyloxy group, an i-pentyloxy group, an n-hexyloxy group, an n-heptyloxy group, an n-octyloxy group, an n-nonyloxy group, an n-decyloxy group, an n-undecyloxy group, an n-dodecyloxy group, a cyclopropyl group, a cyclobutyl group, a cyclopentyl group, a cyclohexyl group, a cycloheptyl group, a cyclooctyl group, a cyclododecyl group, a benzyl group, a phenyl group, a tolyl group, and a 2,6-dimethylphenyl group.
[0045] R 5 and R 6 may be bonded or bridged to each other to form a cycloalkylidene group, such as cyclopropylidene, cyclobutylidene, cyclopentylidene, cyclohexylidene, 3,3,5-trimethylcyclohexylidene, cycloheptylidene, cyclooctylidene, cyclononylidene, cyclodecylidene, cycloundecylidene, cyclododecylidene, fluorenylidene, xanthonylidene, and thioxanthonylidene.
[0046] The decomposition method of the present invention is, among others, 1 ~R 4 is a hydrogen atom, and R 5 , R 6 It is preferable to use a polycarbonate resin in which the alkyl group is a methyl group (bisphenol A polycarbonate resin) as a raw material.
[0047] In the general formula (1), n is not particularly limited, but is, for example, 2 to 1,000.
[0048] The polycarbonate resin used as the raw material in the present invention may be not only a polycarbonate resin alone, but also a composition containing a resin other than polycarbonate resin, such as a copolymer or polymer alloy. Examples of compositions containing a resin other than polycarbonate resin include polycarbonate / polyester copolymers, polycarbonate / polyester alloys, polycarbonate / polyarylate copolymers, and polycarbonate / polyarylate alloys. When using a composition containing a resin other than polycarbonate resin, it is preferable to use one in which polycarbonate resin is the main component (the composition contains 50% by mass or more of polycarbonate resin).
[0049] Furthermore, the polycarbonate resin may be a mixture of two or more different polycarbonate resins, and a single polycarbonate resin may simply be called polycarbonate.
[0050] From the viewpoint of chemical recycling, the polycarbonate resin is preferably a polycarbonate resin contained in waste plastics. Polycarbonate resins are molded and used into various molded products such as optical components such as headlamps and optical recording media such as optical disks. As waste plastics containing polycarbonate resins, offcuts, defective products, used molded products, etc., generated when molding polycarbonate resins into these molded products can be used.
[0051] Waste plastics can be used after being washed, crushed, or pulverized as appropriate. Crushing methods for waste plastics include coarse crushing using a jaw crusher or rotary crusher to crush to 20 cm or less, medium crushing using a rotary crusher, cone crusher, or mill to crush to 1 cm or less, and milling to crush to 1 mm or less. Any method can be used to reduce the size of the plastics to a size that can be fed into the decomposition tank. Thin plastics, such as CDs and DVDs, can be shredded using a shredder or other device and fed into the decomposition tank. Furthermore, parts made of components other than polycarbonate resin, such as other resins in copolymers or polymer alloys, or the front and back layers of optical disks, can be removed in advance before use.
[0052] (aromatic monoalcohol) One of the features of the decomposition method of the present invention is the use of an aromatic monoalcohol, which is a compound in which one hydroxyl group is bonded to a carbon atom forming an aromatic ring, and is preferably any one selected from the group consisting of phenol, cresol, and xylenol.
[0053] Examples of cresol include ortho-cresol, meta-cresol, para-cresol, and isomer mixtures containing one or more of these. Since cresols are easily supplied to the decomposition tank if they are liquid at around 30°C, ortho-cresol, meta-cresol, an isomer mixture of meta-cresol and para-cresol, or an isomer mixture of ortho-cresol, meta-cresol and para-cresol is preferred.
[0054] Examples of xylenol include 2,3-xylenol, 2,4-xylenol, 2,5-xylenol, 2,6-xylenol, 3,5-xylenol, 3,4-xylenol, and isomer mixtures containing one or more of these. 2,5-xylenol is preferred because it is available industrially at low cost.
[0055] If the amount of aromatic monoalcohol used is small relative to the amount of polycarbonate resin used, the amount of solid (polycarbonate resin) relative to the liquid will be large, resulting in a high slurry concentration and poor mixing. Therefore, the molar ratio of aromatic monoalcohol to 1 mole of repeating unit of polycarbonate resin (i.e., repeating unit represented by the above general formula (1)) ((mass [g] of aromatic monoalcohol used / molecular weight [g / mol] of aromatic monoalcohol) / (mass [g] of polycarbonate resin used / molecular weight [g / mol] of repeating unit)) is preferably 0.01 or more, more preferably 0.03 or more. Furthermore, if the amount of aromatic monoalcohol used is large relative to the amount of polycarbonate resin used, production efficiency tends to deteriorate. Therefore, the molar ratio of aromatic monoalcohol to 1 mole of repeating unit of polycarbonate resin is preferably 100 or less, more preferably 70 or less, and even more preferably 50 or less.
[0056] (Aliphatic monoalcohol) One of the features of the decomposition method of the present invention is the use of an aliphatic monoalcohol. An aliphatic monoalcohol is a compound in which one hydroxyl group is bonded to an alkyl group, and R 7 OH(R 7 represents an alkyl group.) Examples of the aliphatic monoalcohol include methanol, ethanol, n-propanol, i-propanol, n-butanol, i-butanol, t-butanol, n-pentanol, i-pentanol, n-hexanol, n-heptanol, n-octanol, n-nonanol, n-decanol, n-undecanol, and n-dodecanol. Among these, the aliphatic monoalcohol is preferably a linear alcohol having 1 to 5 carbon atoms, and more preferably any one selected from the group consisting of methanol, ethanol, and n-butanol.
[0057] If the amount of aliphatic monoalcohol used relative to the polycarbonate resin used is small, the polycarbonate resin becomes difficult to decompose or the decomposition rate decreases, resulting in a longer decomposition time and a decrease in efficiency. Therefore, the molar ratio of aliphatic monoalcohol to 1 mole of repeating unit of polycarbonate resin ((mass [g] of aliphatic monoalcohol used / molecular weight [g / mol] of aliphatic monoalcohol) / (mass [g] of polycarbonate resin used / molecular weight of repeating unit [g / mol])) is preferably 0.1 or more, more preferably 0.5 or more, and even more preferably 1.0 or more. Furthermore, if the amount of aliphatic monoalcohol used relative to the polycarbonate resin used is large, production efficiency tends to decrease. Therefore, the molar ratio of aliphatic monoalcohol to 1 mole of repeating unit of polycarbonate resin is preferably 6.0 or less, more preferably 5.5 or less, and even more preferably 5.0 or less.
[0058] As will be described later, the structure of the carbonyl compound, which is the decomposition product, can be controlled by adjusting the amount of the aliphatic monoalcohol. Therefore, it is preferable to control the amount of the aliphatic monoalcohol depending on the structure of the carbonyl compound to be obtained.
[0059] For efficient production of dialkyl carbonate, the molar ratio of aliphatic monoalcohol to 1 mole of repeating units of polycarbonate resin is preferably 2.0 or more, more preferably 2.1 or more, and even more preferably 2.2 or more.
[0060] Furthermore, in order to suppress the production of dialkyl carbonate and efficiently produce alkyl aryl carbonate, the molar ratio of aliphatic monoalcohol to 1 mole of repeating units of the polycarbonate resin is preferably less than 2.0, and may be 1.95 or less, 1.9 or less, 1.85 or less, 1.8 or less, or the like.
[0061] Furthermore, the molar ratio of the aliphatic monoalcohol used to the aromatic monoalcohol used (moles of the aliphatic monoalcohol used / moles of the aromatic monoalcohol used) is preferably 0.01 or more, more preferably 0.05 or more. Furthermore, this molar ratio is preferably 0.7 or less, more preferably 0.6 or less, more preferably 0.5 or less, and even more preferably 0.3 or less. If the molar ratio of the aliphatic monoalcohol used to the aromatic monoalcohol used is low, the polycarbonate resin becomes difficult to decompose, or the decomposition rate decreases, resulting in a long decomposition time. Furthermore, if the molar ratio is high, separation of the aliphatic monoalcohol and the dialkyl carbonate becomes complicated when recovering the dialkyl carbonate.
[0062] (catalyst) One of the features of the decomposition method of the present invention is the further use of a catalyst. The catalyst may be any catalyst capable of promoting the decomposition of polycarbonate resin, and is preferably any catalyst selected from the group consisting of alkali metal hydroxides, alkali metal carbonates, alkylamines, and acids.
[0063] [Alkali metal hydroxides] Alkali metal hydroxides are compounds containing alkali metal ions (M + ) and hydroxide ions (OH - ) and is a compound represented by MOH (M represents an alkali metal atom). As the alkali metal hydroxide, sodium hydroxide or potassium hydroxide is preferred.
[0064] If the amount of alkali metal hydroxide used relative to the polycarbonate resin used is small, the decomposition rate will be slow, the decomposition time will be long, and efficiency will tend to deteriorate. Therefore, the molar ratio of alkali metal hydroxide to 1 mole of repeating unit of polycarbonate resin ((mass [g] of alkali metal hydroxide used / molecular weight [g / mol] of alkali metal hydroxide) / (mass [g] of polycarbonate resin used / molecular weight of repeating unit [g / mol])) is preferably 0.0001 or more, more preferably 0.0005 or more, and even more preferably 0.0007 or more. For example, it can be 0.001 or more, 0.01 or more, or 0.1 or more. If the amount of alkali metal hydroxide used relative to the polycarbonate resin used is large, the amount of acid required for neutralization after decomposition will increase, and production efficiency will tend to decrease. Therefore, the molar ratio of alkali metal hydroxide to 1 mole of repeating unit of polycarbonate resin is preferably 1 or less, more preferably 0.9 or less, and even more preferably 0.8 or less.
[0065] [Alkali metal carbonates] Alkali metal carbonates are formed by the addition of alkali metal ions (M + ) and carbonate ions (CO3 2- ) and is a compound represented by M2CO3 (M represents an alkali metal atom). As the alkali metal carbonate, sodium carbonate or potassium carbonate is preferred.
[0066] If the amount of alkali metal carbonate used relative to the polycarbonate resin used is small, the decomposition rate will be slow, the decomposition time will be long, and efficiency will tend to deteriorate. Therefore, the molar ratio of alkali metal carbonate to 1 mole of repeating unit of polycarbonate resin ((mass [g] of alkali metal carbonate used / molecular weight [g / mol] of alkali metal carbonate) / (mass [g] of polycarbonate resin used / molecular weight of repeating unit [g / mol])) is preferably 0.0001 moles or more, more preferably 0.0005 moles or more, and even more preferably 0.001 moles or more. For example, it can be 0.001 moles or more, 0.01 moles or more, or 0.1 moles or more. If the amount of alkali metal carbonate used relative to the polycarbonate resin used is large, the amount of acid required for neutralization after decomposition will increase, and production efficiency will tend to decrease. Therefore, the molar ratio of alkali metal carbonate to 1 mole of repeating unit of polycarbonate resin is preferably 1 moles or less, more preferably 0.9 moles or less, and even more preferably 0.8 moles or less.
[0067] [Alkylamine] Alkylamines are compounds in which at least one hydrogen atom of ammonia is substituted with an alkyl group. Among alkylamines, monoalkylamines, which are primary amines, react with the carbonate bond of polycarbonate resin to produce isocyanates, so dialkylamines, which are secondary amines, and trialkylamines, which are tertiary amines, are more preferred.
[0068] Since dialkylamines, which are secondary amines, react with the carbonate bond portions of polycarbonate resins to produce tetraalkylureas, trialkylamines, which are tertiary amines, are more preferred.
[0069] The alkylamine preferably has a boiling point of 200°C or less, more preferably 160°C or less. If the boiling point is within this range, it can be removed together with an aromatic monoalcohol such as phenol by reducing pressure and / or heating. If the boiling point is too low, the alkylamine may volatilize during the decomposition reaction, resulting in a decrease in the decomposition rate. Therefore, the boiling point of the alkylamine is preferably 10°C or higher, more preferably 30°C or higher.
[0070] The alkylamine is preferably one represented by general formula (I).
[0071] [ka]
[0072] In general formula (I), R A represents an alkyl group having 1 to 3 carbon atoms, and R B ~R C each independently represents a hydrogen atom or an alkyl group having 1 to 3 carbon atoms. R A is preferably a methyl group, an ethyl group, an n-propyl group, or an i-propyl group, and R B ~R C are each independently preferably a hydrogen atom, a methyl group, an ethyl group, an n-propyl group, or an i-propyl group.
[0073] Specific examples of the alkylamine represented by the general formula (I) include methylamine, ethylamine, propylamine, dimethylamine, diethylamine, trimethylamine, triethylamine, and the like.
[0074] If the amount of alkylamine used is small relative to the polycarbonate resin used, the decomposition rate will be slow, the decomposition time will be long, and efficiency will tend to deteriorate. Therefore, the molar ratio of alkylamine to 1 mole of repeating unit of polycarbonate resin ((mass [g] of alkylamine used / molecular weight [g / mol] of alkylamine) / (mass [g] of polycarbonate resin used / molecular weight of repeating unit [g / mol])) is preferably 0.0005 or more, more preferably 0.0007 or more, and even more preferably 0.001 or more. For example, it can be 0.01 or more, 0.1 or more, etc. If the amount of alkylamine used is large relative to the polycarbonate resin used, an amine odor will be more likely to be generated and dialkyl carbonate and / or alkylaryl carbonate will be less likely to be produced. Therefore, the molar ratio of alkylamine to 1 mole of repeating units of polycarbonate resin is preferably 4.5 or less, and the smaller the ratio, the more preferred it is in the order of 4.0 or less, 3.0 or less, 2.0 or less, 1.0 or less, 0.9 or less, and 0.8 or less.
[0075] [acid] Examples of the acid include inorganic acids such as hydrochloric acid, sulfuric acid, and phosphoric acid, and organic acids such as carboxylic acids and sulfonic acids. Preferably, the acid is any one selected from the group consisting of sulfuric acid, phosphoric acid, and sulfonic acid. Examples of the sulfonic acid include alkylsulfonic acids such as methanesulfonic acid, and aromatic sulfonic acids such as toluenesulfonic acid.
[0076] If the amount of acid used is small relative to the amount of polycarbonate resin used, the decomposition rate will be slow, the decomposition time will be long, and efficiency will tend to deteriorate. Therefore, the molar ratio of acid to 1 mole of repeating unit of polycarbonate resin ((mass [g] of acid used / molecular weight [g / mol]) / (mass [g] of polycarbonate resin used / molecular weight of repeating unit [g / mol])) is preferably 0.0001 moles or more, more preferably 0.0005 or more, and even more preferably 0.0007 or more. If the amount of acid used is large relative to the amount of polycarbonate resin used, the amount of base required for neutralization after decomposition will increase, and production efficiency will tend to decrease. Therefore, the molar ratio of acid to 1 mole of repeating unit of polycarbonate resin is preferably 1 or less, more preferably 0.9 or less, and even more preferably 0.8 or less.
[0077] (Reaction solution) The reaction liquid prepared is a slurry solution in which a polycarbonate resin is dispersed in a liquid component containing an aromatic monoalcohol and an aliphatic monoalcohol. The slurry concentration in the reaction liquid (mass of solids in the reaction liquid / mass of the reaction liquid) is preferably 0.01 or more, more preferably 0.05 or more. It is also preferably 0.5 or less, more preferably 0.3 or less. If the slurry concentration (solids concentration) is too low, the decomposition efficiency decreases, and if the slurry concentration is too high, mixing is insufficient.
[0078] The liquid components in the prepared reaction liquid are mainly composed of aromatic monoalcohols and aliphatic monoalcohols, and the total mass of the aromatic monoalcohols and aliphatic monoalcohols relative to the mass of all liquid components is 0.8 or more, 0.9 or more, 0.95 or more, etc.
[0079] The total mass of the polycarbonate resin, aromatic monoalcohol, aliphatic monoalcohol, and catalyst relative to the mass of the reaction liquid can be 0.9 or more, 0.95 or more, 0.98 or more, 0.99 or more, etc. Furthermore, the reaction liquid may consist of the polycarbonate resin, aromatic monoalcohol, aliphatic monoalcohol, and catalyst.
[0080] When attempting to obtain a dialkyl carbonate and / or alkylaryl carbonate together with bisphenol, the presence of water in the reaction solution makes the produced dialkyl carbonate and / or alkylaryl carbonate more susceptible to decomposition. Therefore, the water content in the reaction solution (mass of water / mass of reaction solution) is usually 0.005 or less. The water content in the reaction solution is preferably 0.001 or less, more preferably 0.0005 or less.
[0081] (Preparation of reaction solution) The preparation of the reaction solution is preferably carried out at 10°C or higher, more preferably 20°C or higher. The preparation of the reaction solution is preferably carried out at 40°C or lower, more preferably 35°C or lower. If the temperature during the preparation of the reaction solution is too low, some types of aromatic monoalcohols may be prone to solidification, leading to poor mixing or making it difficult to achieve uniform mixing. Furthermore, if the temperature during the preparation of the reaction solution is too high, some types of catalysts may be prone to volatilization, making it difficult to prepare the desired concentration or to control the decomposition reaction.
[0082] The order of mixing the polycarbonate resin, aromatic monoalcohol, aliphatic monoalcohol, and catalyst is not particularly limited, and for example, the aromatic monoalcohol, aliphatic monoalcohol, and catalyst may be sequentially supplied to the polycarbonate resin, or the polycarbonate resin, aliphatic monoalcohol, and catalyst may be sequentially supplied to the aromatic monoalcohol. To achieve more uniform mixing, it is preferable to supply the polycarbonate resin to the reaction vessel after the aromatic monoalcohol and / or the aliphatic monoalcohol.
[0083] (Decomposition reaction) In the presence of aromatic monoalcohol, aliphatic monoalcohol, and catalyst, the carbonate bonds of polycarbonate resin are cleaved, causing decomposition. This results in the production of polycarbonate resin decomposition products containing bisphenols and carbonyl compounds. The carbonyl compounds produced include dialkyl carbonate and / or alkylaryl carbonate. Depending on the amounts of aromatic monoalcohol and aliphatic monoalcohol in the slurry reaction liquid, the carbonyl compounds produced may be primarily dialkyl carbonate or a mixture of dialkyl carbonate and alkylaryl carbonate.
[0084] For example, as described above, by setting the molar ratio of aliphatic monoalcohol to 1 mole of repeating unit of polycarbonate resin to 2.0 or more, the reaction shown in the following reaction formula (2) occurs preferentially. This allows the polycarbonate resin to be efficiently decomposed into bisphenol and dialkyl carbonate. In reaction formula (2), R 1 ~R 6 , n is the same as in the general formula (1), and R 7 is an alkyl group.
[0085] [ka]
[0086] Furthermore, by adjusting the molar ratio of the aliphatic monoalcohol to 1 mole of the repeating unit of the polycarbonate resin in the reaction liquid to less than 2.0, a decomposition product containing bisphenol and a dialkyl carbonate and / or alkylaryl carbonate may be obtained.
[0087] The decomposition step may include a preparation step of preparing a slurry-like reaction liquid containing a polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst, and a decomposition reaction step of decomposing the polycarbonate resin in the reaction liquid. In this case, the concentration of the polycarbonate resin and the temperature during preparation of the reaction liquid may be controlled to prevent the decomposition reaction from proceeding during the preparation of the reaction liquid (during the mixing of the polycarbonate resin, the aromatic monoalcohol, the aliphatic monoalcohol, and the catalyst), thereby clearly separating the preparation step and the decomposition reaction step. However, the adjustment step and the decomposition step do not necessarily have to be clearly separated. During the preparation step of the reaction liquid, a portion of the polycarbonate resin may dissolve, the decomposition reaction may proceed, and a portion of the polycarbonate resin may be decomposed. By partially decomposing the polycarbonate resin during the preparation step of the reaction liquid, the decomposition reaction can proceed more efficiently.
[0088] The decomposition reaction may be carried out under normal pressure or under increased pressure, but is preferably carried out under normal pressure since the reaction proceeds sufficiently even under normal pressure.
[0089] (Reaction temperature) The reaction temperature from preparation of the reaction solution to termination of the decomposition reaction may be the same as that during preparation of the reaction solution, but it is preferable to raise the temperature to a predetermined reaction temperature after preparation of the reaction solution (after mixing the polycarbonate resin, aromatic monoalcohol, aliphatic monoalcohol, and catalyst). If the temperature during preparation of the reaction solution is too high, it may be difficult to control the decomposition reaction. Raising the temperature after preparation of the reaction solution is preferable because it allows the decomposition reaction to proceed stably.
[0090] The reaction temperature is appropriately selected depending on the type of aromatic monoalcohol, reaction time, etc., but at high temperatures, the aliphatic monoalcohol in the reaction solution evaporates, and alcoholysis stops. At low temperatures, the aromatic monoalcohol solidifies, the solvolysis does not proceed easily, and the reaction rate decreases, resulting in a longer time required for decomposition. For these reasons, the reaction temperature is preferably 60°C or higher, with higher temperatures being more preferred in the order of 70°C or higher, 75°C or higher, and 80°C or higher. Also, 120°C or lower is preferred, with lower temperatures being more preferred in the order of 110°C or lower, 100°C or lower, and 95°C or lower.
[0091] In particular, the decomposition of polycarbonate resin is preferably carried out at a reaction temperature of 60 to 120°C under normal pressure, more preferably at a reaction temperature of 70 to 110°C under normal pressure, and even more preferably at a reaction temperature of 80 to 100°C under normal pressure.
[0092] When the reaction is carried out at the same temperature as that used for preparing the reaction solution, the reaction temperature is the average temperature from the time when mixing of the polycarbonate resin, aromatic monoalcohol, aliphatic monoalcohol, and catalyst is completed to the time when neutralization or distillation to terminate the decomposition reaction is started. When the reaction is carried out by raising the temperature after preparing the reaction solution, the reaction temperature is the average temperature from the time when a predetermined temperature is reached to the time when neutralization or distillation to terminate the decomposition reaction is started.
[0093] (Reaction time) The reaction time is appropriately selected depending on the slurry concentration, reaction temperature, etc., but since a long reaction time tends to decompose the produced bisphenol, it is preferably 30 hours or less, and the shorter the reaction time, the more preferable it is in the order of 25 hours or less, 20 hours or less, 15 hours or less, 10 hours or less, and 5 hours or less. Furthermore, since a short reaction time may not allow the decomposition reaction to proceed sufficiently, the reaction time is preferably 0.1 hours or more, more preferably 0.5 hours or more, and even more preferably 1 hour or more.
[0094] The reaction time is the time from the completion of mixing the polycarbonate resin, aromatic monoalcohol, aliphatic monoalcohol, and catalyst to the start of neutralization or distillation to terminate the decomposition reaction. The end point of the reaction time may be determined by monitoring the decomposition reaction using liquid chromatography or the like.
[0095] (Method for stopping the decomposition reaction of polycarbonate resin) The method for terminating the decomposition reaction of polycarbonate resin is appropriately selected depending on the type of catalyst used. When an alkylamine is used as the catalyst, the decomposition reaction can be terminated by distilling off or neutralizing the alkylamine. In the method of removing the alkylamine by supplying an acid and neutralizing it, an ammonium salt is generated, which also needs to be removed. Therefore, the alkylamine is preferably removed by distillation. Furthermore, when an alkali metal hydroxide, alkali metal carbonate, or acid is used as the catalyst, the decomposition reaction can be terminated by neutralization or the like.
[0096] <Bisphenol manufacturing method> The present invention relates to a method for producing bisphenol (hereinafter sometimes referred to as the "method for producing bisphenol of the present invention"), which includes a decomposition step of decomposing a polycarbonate resin using the decomposition method of the present invention, and a bisphenol recovery step of recovering the bisphenol produced by the decomposition of the polycarbonate resin. Specifically, the method for producing bisphenol of the present invention includes a decomposition step of decomposing the polycarbonate resin in a slurry-like reaction liquid containing a polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst, and a bisphenol recovery step of recovering the bisphenol produced in the decomposition step. The method for producing bisphenol of the present invention can also include a preparation step of preparing a slurry-like reaction liquid containing a polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst, a decomposition reaction step of decomposing the polycarbonate resin in the slurry-like reaction liquid prepared in the preparation step, and a bisphenol recovery step of recovering the bisphenol produced in the decomposition reaction step.
[0097] As described above, the decomposition method of the present invention produces bisphenol as a decomposition product, and therefore the decomposition method of the present invention can be used for a method for producing bisphenol. The decomposition step is as described in the decomposition method of the present invention.
[0098] In particular, the method for producing bisphenol of the present invention is suitable as a method for producing 2,2-bis(4-hydroxyphenyl)propane (hereinafter sometimes referred to as "bisphenol A").
[0099] <Bisphenol recovery process> The method for producing bisphenol of the present invention includes a bisphenol recovery step of recovering the bisphenol obtained in the decomposition step. The recovery of bisphenol from the reaction solution after the decomposition reaction can be carried out by means of crystallization, column chromatography, or the like after the decomposition reaction of the polycarbonate resin is terminated.
[0100] The bisphenol recovery step in the bisphenol production method of the present invention preferably includes a crystallization step of recovering bisphenol by crystallization. Specifically, after the decomposition reaction of polycarbonate resin, the catalyst, solvent, and carbonyl compound are removed from the reaction solution, and an organic solvent is added and mixed to obtain an organic phase, which is washed with water or saline, and further neutralized and washed with ammonium chloride water, if necessary. The washed organic phase is then cooled and crystallized.
[0101] Examples of organic solvents that can be used during neutralization and crystallization include aromatic hydrocarbons such as toluene, xylene, ethylbenzene, diethylbenzene, isopropylbenzene, and mesitylene; aliphatic hydrocarbons such as hexane, heptane, octane, nonane, decane, undecane, and dodecane; and aliphatic monoalcohols such as methanol, ethanol, n-propanol, i-propanol, n-butanol, i-butanol, t-butanol, n-pentanol, i-pentanol, n-hexanol, n-heptanol, n-octanol, n-nonanol, n-decanol, n-undecanol, n-dodecanol, ethylene glycol, diethylene glycol, and triethylene glycol.
[0102] Before the crystallization, excess aromatic monoalcohol and organic solvent may be removed by distillation before the crystallization. When bisphenol A is crystallized in the presence of phenol, it forms a co-crystal with phenol. The repeating unit derived from bisphenol A (R in the above general formula (1)) is obtained by using phenol. 1 ~R 4 is a hydrogen atom, and R 5 , R 6 When decomposing a polycarbonate resin containing a repeating unit in which methyl groups are used, it is necessary to distill off the phenol before crystallization to prevent the formation of co-crystals.
[0103] As described above, the decomposition method of the present invention produces dialkyl carbonates and / or alkylaryl carbonates in addition to bisphenol as decomposition products. The method for producing bisphenol of the present invention using the decomposition method of the present invention may include a step of recovering these decomposition products.
[0104] That is, the method for producing bisphenol of the present invention may include a dialkyl carbonate recovery step of recovering the dialkyl carbonate obtained in the decomposition step. The recovery of the dialkyl carbonate can be carried out in the same manner as the recovery of dialkyl carbonate in the method for producing dialkyl carbonate described below.
[0105] The method for producing bisphenol of the present invention may further include a step of recovering the alkylaryl carbonate obtained in the decomposition step. The recovery of the alkylaryl carbonate can be carried out in the same manner as in the recovery of alkylaryl carbonate in the method for producing alkylaryl carbonate described below.
[0106] The bisphenol production method of the present invention will be described in more detail below using as examples the bisphenol production methods (A) to (C) shown in Figures 2 to 4. In the bisphenol production methods (A) to (C), as a representative example, phenol is used as the aromatic monoalcohol, methanol is used as the aliphatic monoalcohol, and a polycarbonate resin containing repeating units derived from bisphenol A (bisphenol A-type polycarbonate resin) is used as the polycarbonate resin.
[0107] <Bisphenol manufacturing method (A)> The bisphenol production method (A) shown in FIG. 2 comprises a step (A1) of decomposing a polycarbonate resin in a slurry-like reaction liquid containing a bisphenol A-type polycarbonate resin, phenol, methanol, and an alkali metal hydroxide as a catalyst, a step (A2) of neutralizing the reaction liquid after the step (A1) to obtain an organic phase in which bisphenol A is dissolved, and a step (A3) of reducing the pressure and / or heating the organic phase obtained in the step (A2) and then recovering bisphenol A by crystallization.
[0108] In the method (A) for producing bisphenol of the present invention, step (A1) is a decomposition step, and steps (A2) and (A3) are bisphenol recovery steps.
[0109] In step (A2), the reaction mixture is mixed with acid and water and neutralized, followed by oil-water separation and removal of the separated aqueous phase. Since alkali metal hydroxides and the like (alkali metal hydroxides, acid added for neutralization, and salts produced by neutralization) are contained in the aqueous phase, removing the aqueous phase removes the alkali metal hydroxides and the like. This yields an organic phase in which the produced bisphenol A is dissolved.
[0110] Examples of acids used for neutralization include hydrochloric acid, sulfuric acid, and phosphoric acid. Neutralization by adding an acid may be performed so that the pH of the reaction solution is less than 7 or greater than 7, but if the pH is less than 7, the quality of the isolated bisphenol A may be reduced. Therefore, it is preferable to add an acid so that the reaction solution reaches a pH greater than 7 (for example, a pH of 7.5 or greater or a pH of 8.0 or greater). On the other hand, if the pH of the reaction solution is too high, dimethyl carbonate and / or methyl phenol carbonate are easily hydrolyzed, resulting in a reduced yield when recovering dimethyl carbonate and / or methyl phenol carbonate. Therefore, the acid is added so that the pH is 10 or less, and preferably 9.5 or less.
[0111] An organic solvent such as an aromatic hydrocarbon may be added before or after the acid is added. After the reaction solution is mixed with the acid, water, and organic solvent and neutralized, the reaction solution is separated into oil and water, and the aqueous phase is removed, yielding an organic phase in which bisphenol A is dissolved. Adding an organic solvent facilitates oil-water separation, making it easier to remove the aqueous phase in which the alkali metal hydroxide or the like is dissolved.
[0112] In step (A3), the organic phase obtained in step (A2) is reduced in pressure and / or heated, and bisphenol A is recovered by crystallization. If phenol is present during crystallization, bisphenol A will form co-crystals with phenol and precipitate. Therefore, in step (A3), phenol is removed prior to crystallization to obtain bisphenol A. Specifically, the organic phase obtained in step (A2) is reduced in pressure and / or heated to distill off liquid components such as phenol, methanol, and dimethyl carbonate, thereby obtaining a crude bisphenol A product. Next, an organic solvent such as an aromatic hydrocarbon is added to the crude bisphenol A product to prepare a crystallization solution in which bisphenol A is dissolved, and this is then cooled to precipitate bisphenol A. The precipitated bisphenol A is recovered by solid-liquid separation.
[0113] When methanol is used so that the molar ratio of methanol to 1 mole of polycarbonate resin repeating units is 2.0 or more, the reaction of decomposing the bisphenol A-type polycarbonate resin into 2,2-bis(4-hydroxyphenyl)propane (bisphenol A) and dimethyl carbonate occurs preferentially. In this case, as shown in FIG. 5, in step (A3), first, an azeotropic mixture of dimethyl carbonate and methanol is distilled off from the organic phase obtained in step (A2). Next, phenol is distilled off. For example, the organic phase obtained in step (A2) is transferred to a distillation apparatus under normal pressure (101 kPa), and then the temperature is increased to 65 to 250°C (preferably 90 to 200°C) and / or the pressure is reduced to 0.1 to 100 kPa (preferably 10 to 100 kPa), whereby the azeotropic mixture of methanol and dimethyl carbonate is distilled off, and then the phenol is distilled off. Phenol is distilled off, and an organic solvent is added to the resulting crude bisphenol A product to cause crystallization, thereby obtaining bisphenol A.
[0114] When methanol is used so that the molar ratio of methanol to 1 mole of polycarbonate resin repeating units is less than 2.0, a large amount of methylphenyl carbonate is produced as a decomposition product. In this case, as shown in FIG. 6, in step (A3), an azeotropic mixture of dimethyl carbonate and methanol is first distilled off from the organic phase obtained in step (A2). Next, phenol is distilled off, and then methylphenyl carbonate is distilled off. For example, the organic phase obtained in step (A2) is transferred to a distillation apparatus under normal pressure (101 kPa), and the temperature is raised to 65 to 200°C and / or the pressure is reduced to 0.1 to 50 kPa, whereby the azeotropic mixture of methanol and dimethyl carbonate is first distilled off, then phenol is distilled off, and then methylphenyl carbonate is distilled off. Bisphenol A is obtained by adding an organic solvent to the obtained crude bisphenol A product and performing crystallization.
[0115] When an alkali metal carbonate is used as the catalyst, the process can be carried out in the same manner as in the process (A) for producing bisphenol.
[0116] <Bisphenol manufacturing method (B)> The bisphenol production method (B) shown in FIG. 3 includes a step (B1) of decomposing a polycarbonate resin in a slurry-like reaction liquid containing a bisphenol A-type polycarbonate resin, phenol, methanol, and an alkylamine as a catalyst, and a step (B2) of reducing the pressure and / or heating the reaction liquid after step (B1) and then recovering bisphenol A by crystallization.
[0117] In the method (B) for producing bisphenol of the present invention, step (B1) is a decomposition step, and step (B2) is a bisphenol recovery step.
[0118] Specifically, in step (B2), the reaction solution after step (B1) is reduced in pressure and / or heated to distill off liquid components such as alkylamines, phenol, methanol, and dimethyl carbonate, thereby obtaining a crude product of bisphenol A. Next, an organic solvent such as an aromatic hydrocarbon is added to the crude product of bisphenol A to prepare a crystallization solution in which bisphenol A is dissolved, and this is then cooled to precipitate bisphenol A. The precipitated bisphenol A is recovered by solid-liquid separation.
[0119] In step (B2), the pressure and temperature for distilling off the liquid component are controlled according to the amount of methanol relative to the polycarbonate resin, similarly to step (A3) of the bisphenol production method (A).
[0120] When methanol is used so that the molar ratio of methanol to 1 mole of polycarbonate resin repeating units is 2.0 or more, the azeotropic mixture of dimethyl carbonate and methanol, alkylamine, and phenol are distilled off from the reaction solution after step (B1) to obtain a crude bisphenol A product. The azeotropic mixture of dimethyl carbonate and methanol, alkylamine, and phenol are distilled off in order of decreasing boiling point. For example, when the boiling point of the azeotropic mixture of dimethyl carbonate and methanol is lower than the boiling point of the alkylamine and lower than the boiling point of the phenol, as shown in Figure 7, the azeotropic mixture of dimethyl carbonate and methanol is distilled off first, then the alkylamine is distilled off, and finally the phenol is distilled off.
[0121] When methanol is used so that the molar ratio of methanol to 1 mole of polycarbonate resin repeating units is less than 2.0, the azeotropic mixture of dimethyl carbonate and methanol, alkylamine, phenol, and methylphenyl carbonate are distilled off from the reaction solution after step (B1) to obtain a crude bisphenol A product. The azeotropic mixture of dimethyl carbonate and methanol, alkylamine, phenol, and methylphenyl carbonate are distilled off in order of decreasing boiling point. For example, when the boiling point of the azeotropic mixture of dimethyl carbonate and methanol is lower than the boiling point of the alkylamine, lower than the boiling point of the phenol, as shown in Figure 8, the azeotropic mixture of dimethyl carbonate and methanol is distilled off first, followed by the alkylamine, then the phenol, and finally the methylphenyl carbonate.
[0122] When an alkylamine is used as the catalyst, the alkylamine may be removed by a method of neutralizing the reaction mixture by supplying an acid. In this case, as in step (A2) of the bisphenol production method (A), the reaction mixture after the decomposition reaction is mixed with acid and water to neutralize it, followed by oil-water separation and removal of the aqueous phase to obtain an organic phase in which bisphenol A is dissolved. Next, as in step (A3) of the bisphenol production method (A), the resulting organic phase is reduced in pressure and / or heated, and bisphenol A can be recovered by crystallization.
[0123] As described above, methods for removing alkylamine from the decomposition reaction solution of polycarbonate resin include a distillation method and a method of neutralizing by supplying an acid, but the method of neutralizing by supplying an acid generates an ammonium salt, which also needs to be removed, so the distillation method is preferred.By using an alkylamine as a catalyst, the alkylamine can be removed together with phenol by reducing pressure and / or heating, and neutralization is not essential, which simplifies purification.
[0124] <Bisphenol manufacturing method (C)> The bisphenol production method (C) shown in FIG. 4 comprises a step (C1) of decomposing a polycarbonate resin in a slurry-like reaction liquid containing a bisphenol A-type polycarbonate resin, phenol, methanol, and an acid as a catalyst, a step (C2) of neutralizing the reaction liquid after the step (C1) to obtain an organic phase in which bisphenol A is dissolved, and a step (C3) of reducing the pressure and / or heating the organic phase obtained in the step (C2) and then recovering bisphenol A by crystallization.
[0125] In the method (C) for producing bisphenol of the present invention, step (C1) is a decomposition step, and steps (C2) and (C3) are bisphenol recovery steps.
[0126] In step (C2), the reaction liquid, a base, and water are mixed and neutralized, followed by oil-water separation and removal of the separated aqueous phase to obtain an organic phase having bisphenol A dissolved therein. Alternatively, a mixture of the reaction liquid, a base, water, and an organic solvent may be subjected to oil-water separation and removal of the aqueous phase to obtain an organic phase having bisphenol A dissolved therein.
[0127] Examples of the base used for neutralization include sodium carbonate and sodium hydroxide. As in step (A2) of the bisphenol production method (A), neutralization is preferably carried out so that the pH of the reaction solution reaches a value greater than 7 as the end point. For example, it is preferable to add a base so that the pH is 7.5 or higher or 8.0 or higher. It is also preferable to add a base so that the pH is 10 or lower or 9.5 or lower.
[0128] In step (C3), bisphenol A is recovered from the organic phase obtained in step (C2) in which bisphenol A has been dissolved. As in step (A3) of the bisphenol production method (A), the organic phase obtained in step (C2) is reduced in pressure and / or heated, and then bisphenol A can be recovered by crystallization.
[0129] Similarly to the organic phase obtained in step (A2), the organic phase obtained in step (C2) contains bisphenol A, methanol, phenol, and dimethyl carbonate and / or methylphenyl carbonate depending on the amount of methanol used in step (C1). Methanol, phenol, and dimethyl carbonate and / or methylphenyl carbonate can be removed from this organic phase by distillation in the same manner as in step (A3).
[0130] In the bisphenol production methods (A) to (C), phenol is used as the aromatic monoalcohol. However, when an aromatic monoalcohol other than phenol, such as cresol or xylenol, is used as the aromatic monoalcohol, bisphenol A does not form a cocrystal, and therefore removal of the aromatic monoalcohol by reducing pressure and / or heating in steps (A3), (B2), and (C3) is not essential. In this case, bisphenol A can be recovered by precipitating bisphenol A by cooling the reaction solution after step (B1) or the organic phase obtained in steps (A2) and (C2). The use of cresol or xylenol can simplify the purification of bisphenol A.
[0131] Alternatively, bisphenol A may be recovered as a co-crystal of bisphenol A and phenol. In this case, without distilling off phenol, the reaction solution after step (B1) or the organic phase obtained in step (A2) or step (C2) is cooled to precipitate and recover a co-crystal of bisphenol A and phenol.
[0132] As described above, the polycarbonate resin used in the method for producing bisphenol of the present invention is not limited to a bisphenol A-type polycarbonate resin. The method for producing bisphenol of the present invention using a polycarbonate resin containing a repeating unit derived from a bisphenol other than bisphenol A can also be carried out appropriately in the same manner as the methods for producing bisphenol (A) to (C) described above.
[0133] <Uses of bisphenol> The bisphenol obtained by the bisphenol production method of the present invention (hereinafter, sometimes referred to as "recycled bisphenol") can be used as a constituent, curing agent, additive, or precursor thereof for various thermoplastic resins such as polyether resins, polyester resins, polyarylate resins, polycarbonate resins, polyurethane resins, and acrylic resins, and various thermosetting resins such as epoxy resins, unsaturated polyester resins, phenolic resins, polybenzoxazine resins, and cyanate resins, which are used in a variety of applications including optical materials, recording materials, insulating materials, transparent materials, electronic materials, adhesive materials, and heat-resistant materials. It is also useful as a color developer or additive for thermal recording materials, etc., such as a color-fading inhibitor, a disinfectant, and an antibacterial and antifungal agent.
[0134] Among these, it is preferably used as a raw material (monomer) for thermoplastic resins and thermosetting resins because it can impart good mechanical properties, and more preferably as a raw material for polycarbonate resins and epoxy resins. It is also preferably used as a color developer, and more preferably in combination with a leuco dye or a discoloration temperature regulator.
[0135] <Method of producing dialkyl carbonate> The present invention relates to a method for producing dialkyl carbonate (hereinafter sometimes referred to as the "method for producing dialkyl carbonate of the present invention"), which includes a decomposition step of decomposing a polycarbonate resin using the decomposition method of the present invention, and a dialkyl carbonate recovery step of recovering the dialkyl carbonate produced by the decomposition of the polycarbonate resin. Specifically, the method for producing dialkyl carbonate of the present invention includes a decomposition step of decomposing the polycarbonate resin in a slurry-like reaction liquid containing a polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst, and a dialkyl carbonate recovery step of recovering the dialkyl carbonate produced in the decomposition step. Furthermore, the method for producing dialkyl carbonate of the present invention can include a preparation step of preparing a slurry-like reaction liquid containing a polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst, a decomposition reaction step of decomposing the polycarbonate resin in the slurry-like reaction liquid prepared in the preparation step, and a dialkyl carbonate recovery step of recovering the dialkyl carbonate produced in the decomposition reaction step.
[0136] As described above, the decomposition method of the present invention can produce dialkyl carbonate as a decomposition product, and therefore the decomposition method of the present invention can be used for producing dialkyl carbonate. The decomposition step is as described in the decomposition method of the present invention.
[0137] Among these, the method for producing a dialkyl carbonate of the present invention is suitable as a method for producing dimethyl carbonate, diethyl carbonate, or dibutyl carbonate.
[0138] In order to produce a dialkyl carbonate more efficiently, the molar ratio of the aliphatic monoalcohol to 1 mole of the repeating unit of the polycarbonate resin is preferably 2.0 or more, more preferably 2.1 or more, and even more preferably 2.2 or more, and from the viewpoint of production efficiency, the upper limit is preferably 6.0 or less, more preferably 5.5 or less, and even more preferably 5.0 or less.
[0139] <Dialkyl carbonate recovery process> The recovery (isolation and purification) of the dialkyl carbonate can be carried out by a conventional method. For example, the reaction solution or the reaction solution is neutralized. Then, the organic phase after neutralization is heated and / or reduced pressure and distilled. The distillation can be carried out under the conditions of, for example, reducing the pressure to 50 to 100 kPa and / or increasing the temperature to 65 to 120°C.
[0140] Since dimethyl carbonate and methanol form an azeotrope, a preferred method for recovering dimethyl carbonate is, for example, to distill the reaction solution or the organic phase after neutralizing the reaction solution to obtain a mixture of dimethyl carbonate and methanol, and then add water to this mixture of dimethyl carbonate and methanol to extract the methanol into the aqueous phase and remove it.
[0141] 9 and 10 are flow diagrams showing examples of the method for producing dialkyl carbonate of the present invention. In the methods for producing dialkyl carbonate (D) and (E) shown in Figures 9 and 10, phenol is used as the aromatic monoalcohol, methanol is used as the aliphatic monoalcohol, and a bisphenol A polycarbonate resin is used as the polycarbonate resin, as representative examples.
[0142] The method (D) for producing dialkyl carbonate shown in FIG. 9 includes a step (D1) of decomposing polycarbonate resin in a slurry-like reaction solution containing bisphenol A polycarbonate resin, phenol, methanol, and an alkali metal hydroxide as a catalyst; a step (D2) of neutralizing the reaction solution after step (D1) to obtain an organic phase containing bisphenol A, dimethyl carbonate, methanol, and phenol; a step (D3) of distilling the organic phase obtained in step (D2) to obtain an azeotropic mixture of dimethyl carbonate and methanol; and a step (D4) of adding water to the azeotropic mixture to extract the methanol into the aqueous phase and recovering the dimethyl carbonate.
[0143] In the method (D) for producing dialkyl carbonate shown in FIG. 9, step (D4) is performed on the azeotropic mixture of dimethyl carbonate and methanol distilled in step (A3) of the bisphenol production method (A) shown in FIGS. 5 and 6. The azeotropic mixture of dimethyl carbonate and methanol obtained in step (D3) of FIG. 9 is the same as the azeotropic mixture of dimethyl carbonate and methanol distilled in step (A3) of the bisphenol production method (A) shown in FIGS. 5 and 6. Furthermore, phenol and the like are further distilled from the bottoms that remain unevaporated in step (D3), followed by crystallization, to obtain bisphenol A. Steps (D1) and (D2) of FIG. 9 can be performed in the same manner as steps (A1) and (A2) of the bisphenol production method (A) shown in FIG. 2.
[0144] The dialkyl carbonate production method (D) may also use an acid as a catalyst and a base for neutralization. In this case, the azeotropic mixture of dimethyl carbonate and methanol obtained in step (D3) is the same as the azeotropic mixture of dimethyl carbonate and methanol distilled in step (C3) of the bisphenol production method (C).
[0145] The method (E) for producing dialkyl carbonate shown in FIG. 10 includes a step (E1) of decomposing polycarbonate resin in a slurry-like reaction liquid containing bisphenol A polycarbonate resin, phenol, methanol, and an alkylamine as a catalyst, a step (E2) of distilling the reaction liquid after step (E1) to obtain an azeotropic mixture of dimethyl carbonate and methanol, and a step (E3) of adding water to the azeotropic mixture to extract the methanol into the aqueous phase and recovering the dimethyl carbonate.
[0146] In the method (E) for producing dialkyl carbonate shown in Figure 10, step (E3) is performed on the azeotropic mixture of dimethyl carbonate and methanol distilled in step (B2) of the bisphenol production method (B) shown in Figures 7 and 8. The azeotropic mixture of dimethyl carbonate and methanol obtained in step (E2) of Figure 10 is the same as the azeotropic mixture of dimethyl carbonate and methanol distilled in step (B2) of the bisphenol production method (B) shown in Figures 7 and 8. Furthermore, phenol and the like are further distilled from the bottoms that remain unevaporated in step (E2), followed by crystallization, to obtain bisphenol A. Step (E1) of Figure 10 can be performed in the same manner as step (B1) of the bisphenol production method (B) shown in Figure 3.
[0147] <Method of producing alkyl aryl carbonate> The present invention relates to a method for producing an alkylaryl carbonate (hereinafter, sometimes referred to as the "method for producing an alkylaryl carbonate of the present invention"), which comprises a decomposition step of decomposing a polycarbonate resin in the presence of an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst, and an alkylaryl carbonate recovery step of recovering the alkylaryl carbonate produced by the decomposition of the polycarbonate resin.
[0148] The method for producing an alkylaryl carbonate of the present invention is similar to the decomposition method of the present invention, except that in the decomposition step, the polycarbonate resin is decomposed in a reaction liquid containing the polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst, and the reaction liquid does not necessarily have to be in the form of a slurry.
[0149] The reaction liquid may be in the form of a slurry, and the decomposition step may be a step of decomposing a polycarbonate resin using the decomposition method of the present invention. That is, the method for producing an alkylaryl carbonate of the present invention may include a decomposition step of decomposing the polycarbonate resin in a slurry reaction liquid containing a polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst, and an alkylaryl carbonate recovery step of recovering the alkylaryl carbonate produced in the decomposition step. Furthermore, the method for producing an alkylaryl carbonate of the present invention may include a preparation step of preparing a slurry reaction liquid containing a polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst, a decomposition reaction step of decomposing the polycarbonate resin in the slurry reaction liquid prepared in the preparation step, and an alkylaryl carbonate recovery step of recovering the alkylaryl carbonate produced in the decomposition reaction step.
[0150] By controlling the amount of aliphatic monoalcohol relative to the polycarbonate resin, it is possible to produce alkyl aryl carbonate as a decomposition product. The decomposition step is as described in the decomposition method of the present invention.
[0151] Among these, the method for producing alkyl aryl carbonate of the present invention is suitable as a method for producing alkyl phenyl carbonate. That is, it is preferable to use phenol as the aromatic monoalcohol used in decomposing the polycarbonate resin.
[0152] In order to produce alkyl aryl carbonate more efficiently, the molar ratio of the aliphatic monoalcohol to 1 mole of the repeating unit of the polycarbonate resin is preferably less than 2.0, and may be 1.95 or less, 1.9 or less, 1.85 or less, 1.8 or less, etc. From the viewpoint of production efficiency, the lower limit is preferably 0.1 or more, more preferably 0.5 or more, and even more preferably 1.0 or more.
[0153] <Alkyl aryl carbonate recovery process> The recovery (isolation and purification) of the alkyl aryl carbonate can be carried out by a conventional method. For example, the reaction mixture or the reaction mixture is neutralized. Then, the organic phase after neutralization is heated and / or reduced pressure and distilled. The distillation can be carried out under conditions of, for example, reducing the pressure to 0.1 to 50 kPa and / or increasing the temperature to 100 to 200°C.
[0154] 11 and 12 are flow diagrams showing examples of the method for producing an alkyl aryl carbonate of the present invention. In the methods for producing an alkyl aryl carbonate (F) and (G) shown in Fig. 11 and 12, as representative examples, phenol is used as the aromatic monoalcohol, methanol is used as the aliphatic monoalcohol, and a bisphenol A polycarbonate resin is used as the polycarbonate resin.
[0155] The method (F) for producing an alkylaryl carbonate shown in FIG. 11 includes a step (F1) of decomposing a polycarbonate resin in a slurry-like reaction liquid containing a bisphenol A-type polycarbonate resin, phenol, methanol, and an alkali metal hydroxide as a catalyst, a step (F2) of neutralizing the reaction liquid after step (F1) to obtain an organic phase containing bisphenol A, dimethyl carbonate, methylphenyl carbonate, methanol, and phenol, and a step (F3) of distilling the organic phase obtained in step (F2) to obtain methylphenyl carbonate.
[0156] The methyl phenyl carbonate obtained in step (F3) of Fig. 11 is the same as the methyl phenyl carbonate distilled in step (A3) of the bisphenol production method (A) of Fig. 6. Bisphenol A is obtained by further crystallizing the bottoms that remain unevaporated in step (F3). Steps (F1) to (F2) of Fig. 11 can be carried out in the same manner as steps (A1) to (A2) of the bisphenol production method (A) of Fig. 2.
[0157] The method (F) for producing alkyl aryl carbonate may use an acid as a catalyst and a base for neutralization. In this case, the methyl phenyl carbonate obtained in step (F3) is the same as the methyl phenyl carbonate distilled in step (C3) of the method (C) for producing bisphenol.
[0158] The method (G) for producing alkylaryl carbonate shown in FIG. 12 includes a step (G1) of decomposing polycarbonate resin in a slurry-like reaction liquid containing bisphenol A polycarbonate resin, phenol, methanol, and an alkylamine as a catalyst, and a step (G2) of distilling the reaction liquid after step (G1) to obtain methylphenyl carbonate.
[0159] The methylphenyl carbonate obtained in step (G2) of the dialkyl carbonate production method (G) shown in Figure 12 is the same as the methylphenyl carbonate distilled in step (B2) of the bisphenol production method (B) shown in Figure 8. Bisphenol A can be obtained by further crystallization of the bottoms that remain unevaporated in step (G2). Step (G1) in Figure 12 can be carried out in the same manner as step (B1) of the bisphenol production method (B) in Figure 3.
[0160] The processes (F) and (G) for producing alkyl aryl carbonate involve decomposing a polycarbonate resin in a slurry reaction solution, but the process for producing alkyl aryl carbonate of the present invention is not necessarily required to be a slurry reaction solution as long as it can decompose a polycarbonate resin in the presence of an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst.
[0161] <Method of producing diaryl carbonate of the present invention> The method for producing diaryl carbonate of the present invention is a method for producing diaryl carbonate using, as at least a part of a raw material, a dialkyl carbonate obtained by the method for producing dialkyl carbonate of the present invention (hereinafter, sometimes referred to as "regenerated dialkyl carbonate") or an alkyl aryl carbonate obtained by the method for producing alkyl aryl carbonate of the present invention (hereinafter, sometimes referred to as "regenerated alkyl aryl carbonate"). For example, the method for producing diaryl carbonate of the present invention can be a method for producing diphenyl carbonate.
[0162] Hereinafter, the method for producing a diaryl carbonate using a recycled dialkyl carbonate will be described as the "first method for producing a diaryl carbonate," and the method for producing a diaryl carbonate using a recycled alkyl aryl carbonate will be described as the "second method for producing a diaryl carbonate." Furthermore, the "first method for producing a diaryl carbonate" and the "second method for producing a diaryl carbonate" will be collectively referred to as the "method for producing a diaryl carbonate of the present invention."
[0163] (First method for producing diaryl carbonate) The first method for producing a diaryl carbonate is a method for producing a diaryl carbonate, in which a dialkyl carbonate (regenerated dialkyl carbonate) obtained by the method for producing a dialkyl carbonate of the present invention is used to produce a diaryl carbonate.
[0164] The first method for producing diaryl carbonate may be any method that uses a dialkyl carbonate, including a regenerated dialkyl carbonate, as a raw material. The diaryl carbonate may be produced by a known method for producing diaryl carbonate from a dialkyl carbonate (for example, JP-A-3-291257).
[0165] For example, diaryl carbonate can be produced by a method in which a dialkyl carbonate and an aromatic monoalcohol are used as raw materials, and an alkylaryl carbonate is obtained by a transesterification reaction (reaction formula (3a) below), and then the alkylaryl carbonate is subjected to a disproportionation reaction to obtain a diaryl carbonate (reaction formula (3b) below).
[0166] [ka]
[0167] [ka]
[0168] In formula (3a) and formula (3b), R 7 represents an alkyl group, and Ar represents an aryl group.
[0169] The aromatic monoalcohol (ArOH) that can be used in the reaction of reaction formula (3a) is the same as the aromatic monoalcohol used in the decomposition reaction of the present invention. The aromatic monoalcohol used in the above reaction formula (3a) is preferably phenol.
[0170] The catalyst used in the reactions of Reaction Scheme (3a) and Reaction Scheme (3b) can be any known catalyst used in the production of diaryl carbonates, such as an organic titanium catalyst such as tetraphenoxytitanium.
[0171] The raw material dialkyl carbonate may be at least partially recycled dialkyl carbonate. Only recycled dialkyl carbonate may be used, or a mixture of recycled dialkyl carbonate and a general dialkyl carbonate other than recycled dialkyl carbonate may be used. The amount of recycled dialkyl carbonate is not particularly limited. From the viewpoint of environmental consideration, the amount of recycled dialkyl carbonate in the raw material dialkyl carbonate is preferably 50% by mass or more, and more preferably 70% by mass or more, 80% by mass or more, and 90% by mass or more in that order.
[0172] (Second Method for Producing Diaryl Carbonate) The second method for producing a diaryl carbonate is a method for producing a diaryl carbonate, in which an alkylaryl carbonate (regenerated alkylaryl carbonate) obtained by the method for producing an alkylaryl carbonate of the present invention is used to produce a diaryl carbonate.
[0173] The second method for producing diaryl carbonate may be any method as long as it uses an alkylaryl carbonate, including a regenerated alkylaryl carbonate, as a raw material. The diaryl carbonate may be produced by a known method for producing a diaryl carbonate from an alkylaryl carbonate.
[0174] For example, diaryl carbonate can be obtained by the reaction of reaction formula (3b) in the first method for producing diaryl carbonate.
[0175] It is sufficient that at least a portion of the raw material alkyl aryl carbonate is a regenerated alkyl aryl carbonate. Only the regenerated alkyl aryl carbonate may be used, or a mixture of the regenerated alkyl aryl carbonate and a general alkyl aryl carbonate other than the regenerated alkyl aryl carbonate may be used. The amount of the regenerated alkyl aryl carbonate is not particularly limited. From the viewpoint of environmental consideration, the amount of the regenerated alkyl aryl carbonate in the raw material alkyl aryl carbonate is preferably 50% by mass or more, and the greater the amount, the more preferable it is in the order of 70% by mass or more, 80% by mass or more, and 90% by mass or more.
[0176] The reaction of a dialkyl carbonate and an aromatic monoalcohol to give an alkyl aryl carbonate and an aliphatic monoalcohol is an equilibrium reaction, and the equilibrium is extremely biased toward the raw material system. Furthermore, the reaction rate is slow. Therefore, it is preferable to produce a diaryl carbonate using a second diaryl carbonate production method that uses the alkyl aryl carbonate obtained by the alkyl aryl carbonate production method of the present invention.
[0177] <Method for producing recycled polycarbonate resin of the present invention> The method for producing recycled polycarbonate resin of the present invention is a method for producing recycled polycarbonate resin using a bisphenol raw material containing bisphenol (recycled bisphenol) obtained by the bisphenol production method of the present invention, or a diaryl carbonate raw material containing diaryl carbonate (recycled diaryl carbonate) obtained by the diaryl carbonate production method of the present invention.
[0178] Hereinafter, the method for producing recycled polycarbonate resin using a bisphenol raw material containing recycled bisphenol will be described as the "first method for producing recycled polycarbonate resin," and the method for producing recycled polycarbonate resin using a diaryl carbonate raw material containing recycled diaryl carbonate will be described as the "second method for producing recycled polycarbonate resin." Furthermore, the "first method for producing recycled polycarbonate resin" and the "second method for producing recycled polycarbonate resin" will be collectively referred to as the "method for producing recycled polycarbonate resin of the present invention."
[0179] (First method for producing recycled polycarbonate resin) The first method for producing recycled polycarbonate resin is a method for producing recycled polycarbonate resin using a bisphenol raw material containing bisphenol (recycled bisphenol) obtained by the bisphenol production method of the present invention. The first method for producing recycled polycarbonate resin utilizes a chemical recycling method in which polycarbonate resin is produced using recycled bisphenol obtained by decomposing polycarbonate resin contained in waste plastics, etc., down to the bisphenol monomer.
[0180] The first method for producing a polycarbonate resin can be carried out by appropriately selecting a known method for polymerizing a polycarbonate resin, except that a bisphenol raw material containing recycled bisphenol is used as the bisphenol. Polycarbonate resins are generally produced by polymerizing a bisphenol and a carbonate diester in the presence of a catalyst.
[0181] In the first method for producing recycled polycarbonate resin, the recycled polycarbonate resin can be obtained, for example, by polymerizing a bisphenol raw material containing recycled bisphenol (bisphenol obtained by the bisphenol production method of the present invention) and a carbonate diester raw material.
[0182] For example, recycled polycarbonate resin can be produced by a method in which a bisphenol raw material containing recycled bisphenol is subjected to an ester exchange reaction with a carbonate diester raw material such as diphenyl carbonate in the presence of an alkali metal compound and / or an alkaline earth metal compound.
[0183] The recycled bisphenol may be used as the entire bisphenol raw material, or may be mixed with a non-recycled ordinary bisphenol and used as part of the bisphenol raw material. The amount of recycled bisphenol is not particularly limited, and may be any amount, such as 0.1% by mass or more, 1% by mass or more, 10% by mass or more, 20% by mass or more, 30% by mass or more, 40% by mass or more, 50% by mass or more, 70% by mass or more, 80% by mass or more, or 90% by mass or more. Since a higher proportion of recycled bisphenol is more environmentally friendly, from the viewpoint of environmental consideration, a higher amount of recycled bisphenol relative to the bisphenol raw material is preferable.
[0184] Diaryl carbonate can be used as the carbonic acid diester raw material. This diaryl carbonate may contain recycled diaryl carbonate, or may be a general diaryl carbonate without recycled diaryl carbonate.
[0185] The above transesterification reaction can be carried out by appropriately selecting a known method, but an example of a method using diphenyl carbonate as the carbonate diester raw material will be described below.
[0186] In the first method for producing recycled polycarbonate resin, diphenyl carbonate is preferably used in excess relative to the bisphenol raw material. The amount of diphenyl carbonate used relative to the bisphenol raw material is preferably large, since the recycled polycarbonate resin produced has fewer terminal hydroxyl groups and the polymer has excellent thermal stability. Furthermore, a small amount is preferred, since it facilitates the rapid transesterification reaction and the production of recycled polycarbonate resin with the desired molecular weight. For these reasons, the amount of diphenyl carbonate used relative to 1 mole of bisphenol raw material is typically 1.001 moles or more, preferably 1.002 moles or more, and typically 1.3 moles or less, preferably 1.2 moles or less.
[0187] As a method for supplying the raw materials, the bisphenol raw material and diphenyl carbonate can be supplied in solid form, but it is preferable to melt one or both of them and supply them in a liquid state.
[0188] When producing recycled polycarbonate resin by the transesterification reaction of diphenyl carbonate with a bisphenol raw material, a transesterification catalyst is usually used. It is preferable to use an alkali metal compound and / or an alkaline earth metal compound as the transesterification catalyst. These may be used alone or in any combination and ratio of two or more. For practical purposes, it is desirable to use an alkali metal compound.
[0189] The amount of catalyst used per mole of bisphenol raw material or diphenyl carbonate is usually 0.05 μmol or more, preferably 0.08 μmol or more, more preferably 0.10 μmol or more, and is usually 100 μmol or less, preferably 50 μmol or less, more preferably 20 μmol or less.
[0190] When the amount of catalyst used is within the above range, it is easy to obtain the polymerization activity required to produce a recycled polycarbonate resin of the desired molecular weight, and it is also easy to obtain a polycarbonate resin that has excellent polymer color, does not undergo excessive polymer branching, and has excellent fluidity during molding. To produce recycled polycarbonate resin by the above method, it is preferable to continuously feed both of the above raw materials into a raw material mixing tank, and then continuously feed the resulting mixture and the transesterification catalyst into a polymerization tank.
[0191] In the production of recycled polycarbonate resin by the transesterification method, the two raw materials are usually supplied to a raw material mixing tank, stirred uniformly, and then supplied to a polymerization tank where a catalyst is added to produce a polymer.
[0192] (Second method for producing recycled polycarbonate resin) The second method for producing a recycled polycarbonate resin is a method for producing a recycled polycarbonate resin, in which a diaryl carbonate raw material containing diaryl carbonate (recycled diaryl carbonate) obtained by the diaryl carbonate production method of the present invention is used to produce a recycled polycarbonate resin.
[0193] The second method for producing recycled polycarbonate resin uses a diaryl carbonate raw material containing a diaryl carbonate (recycled diaryl carbonate) produced using dialkyl carbonate and / or alkylaryl carbonate produced by decomposition of polycarbonate resin contained in waste plastics, etc. As described above, polycarbonate resins are generally produced by polymerizing a bisphenol raw material and a carbonate diester raw material in the presence of a catalyst. The second method for producing polycarbonate resin can be carried out by appropriately selecting a known polycarbonate resin polymerization method, except that a carbonate diester raw material containing a recycled diaryl carbonate is used as the carbonate diester raw material.
[0194] The recycled diaryl carbonate may be used as the entire diaryl carbonate raw material, or may be mixed with a general diaryl carbonate that is not diaryl carbonate and used as part of the diaryl carbonate raw material. The amount of recycled diaryl carbonate is not particularly limited, and may be any amount, such as 0.1 mass% or more, 1 mass% or more, 10 mass% or more, 20 mass% or more, 30 mass% or more, 40 mass% or more, 50 mass% or more, 70 mass% or more, 80 mass% or more, or 90 mass% or more. Since a higher proportion of recycled diaryl carbonate is more environmentally friendly, from the perspective of environmental consideration, a higher amount of recycled diaryl carbonate relative to the diaryl carbonate raw material is preferable.
[0195] Specifically, the recycled polycarbonate resin can be obtained by polymerizing a diaryl carbonate raw material containing recycled diaryl carbonate (recycled diaryl carbonate obtained by the diaryl carbonate manufacturing method of the present invention) with a bisphenol raw material. The bisphenol raw material may contain recycled bisphenol, or may contain only ordinary bisphenol and not contain recycled bisphenol.
[0196] The polymerization method, raw material mixing ratio, catalyst amount, supply method, etc. are the same as those in the first method for producing recycled polycarbonate resin. Note that, while the first method for producing recycled polycarbonate resin uses a bisphenol raw material containing recycled bisphenol, the bisphenol raw material used in the second method for producing recycled polycarbonate resin may contain recycled bisphenol raw material, or a general bisphenol raw material that does not contain recycled bisphenol raw material may be used.
[0197] (Recycled polycarbonate resin and its composition) The recycled polycarbonate resin obtained by the method for producing recycled polycarbonate resin of the present invention may be used as is, or may be used as a recycled polycarbonate resin composition containing virgin polycarbonate resin and recycled polycarbonate resin. The recycled polycarbonate resin composition can be obtained by appropriately selecting a known kneading method or the like to mix virgin polycarbonate resin and recycled polycarbonate resin. When preparing a recycled polycarbonate resin composition containing virgin polycarbonate resin and recycled polycarbonate resin, there is no particular limitation on the amount of recycled polycarbonate resin, but the higher the proportion of recycled polycarbonate resin, the more environmentally friendly it is. Therefore, from the standpoint of environmental consideration, the amount of recycled polycarbonate resin relative to the recycled polycarbonate resin composition is preferably 50% by mass or more, and more preferably 70% by mass or more, 80% by mass or more, and 90% by mass or more in that order.
[0198] The resulting recycled polycarbonate resin or composition can be molded into various molded articles such as optical members and optical recording media, in the same manner as virgin polycarbonate resin.
[0199] <Epoxy resin manufacturing method> The present invention relates to a method for producing an epoxy resin using the bisphenol obtained by the method for producing a bisphenol of the present invention. The obtained epoxy resin may be further reacted with a polyhydric hydroxy compound raw material to produce an epoxy resin. Thus, the epoxy resin production method of the present invention is a method for producing an epoxy resin using recycled bisphenol and / or an epoxy resin produced using recycled bisphenol as at least a portion of the raw materials. The epoxy resin production method of the present invention is not particularly limited, and known epoxy resin production methods can be used, except that recycled bisphenol (bisphenol obtained by the bisphenol production method of the present invention) and / or an epoxy resin produced using recycled bisphenol are used as raw materials. For example, recycled bisphenol can be used as at least a portion of the polyvalent hydroxy compound raw material when producing the epoxy resin using a one-stage method, oxidation method, or two-stage method, as described below. The obtained epoxy resin can also be used as at least a portion of the epoxy resin raw material when producing the epoxy resin using a two-stage method.
[0200] The term "epoxy resin raw material" refers to an epoxy resin used as a raw material for the epoxy resin obtained by the epoxy resin production method of the present invention (hereinafter, sometimes referred to as "recycled epoxy resin"). "Polyhydric hydroxy compound" is a general term for divalent or higher phenolic compounds and divalent or higher alcohol compounds, and "polyhydric hydroxy compound raw material" refers to a polyhydric hydroxy compound used as a raw material for recycled epoxy resin.
[0201] The epoxy resin of the present invention can be produced by a one-stage method, an oxidation method, a two-stage method, or the like. The one-step method for producing an epoxy resin is a method in which recycled bisphenol (bisphenol obtained by the method for producing bisphenol of the present invention) is reacted with epihalohydrin to obtain an epoxy resin. The oxidation method for producing epoxy resin involves allylation of recycled bisphenol with an allyl halide (allyl chloride, allyl bromide, etc.), followed by oxidation to obtain epoxy resin. The two-stage method for producing an epoxy resin is a method in which an epoxy resin raw material is reacted with a polyhydroxy compound raw material, and recycled bisphenol and / or an epoxy resin produced using recycled bisphenol are used as the raw material.
[0202] Hereinafter, methods for producing epoxy resins using the one-stage method, the oxidation method, and the two-stage method will be described.
[0203] (One-stage method for producing epoxy resin) The one-stage method for producing an epoxy resin is not particularly limited as long as it is a known production method, but will be described in detail below.
[0204] The one-stage method for producing an epoxy resin may involve using recycled bisphenol in combination with a polyhydric hydroxy compound other than recycled bisphenol (hereinafter, sometimes referred to as "another polyhydric hydroxy compound"). That is, the one-stage method for producing an epoxy resin involves reacting a polyhydric hydroxy compound raw material with epihalohydrin to obtain an epoxy resin, and at least a portion of the polyhydric hydroxy compound raw material can be recycled bisphenol.
[0205] The content of recycled bisphenol in the polyhydroxy compound raw material is not particularly limited, but since a high content of recycled bisphenol is environmentally friendly, it is preferably 1 to 100 mass %, more preferably 10 to 100 mass %.
[0206] Here, "other polyhydric hydroxy compounds" is a general term for divalent or higher phenol compounds and divalent or higher alcohol compounds, excluding recycled bisphenols. In the one-stage method for producing epoxy resins, the "raw polyhydric hydroxy compound" refers to all polyhydric hydroxy compounds, including recycled bisphenols and other polyhydric hydroxy compounds used as needed.
[0207] Other polyhydric hydroxy compounds include various polyhydric phenols such as bisphenol A, tetramethylbisphenol A, bisphenol F, tetramethylbisphenol F, bisphenol S, bisphenol C, bisphenol AD, bisphenol AF, hydroquinone, resorcinol, methylresorcinol, biphenol, tetramethylbiphenol, dihydroxynaphthalene, dihydroxydiphenyl ether, thiodiphenols, phenol novolac resin, cresol novolac resin, phenol aralkyl resin, biphenyl aralkyl resin, naphthol aralkyl resin, terpene phenol resin, dicyclopentadiene phenol resin, bisphenol A novolac resin, naphthol novolac resin, brominated bisphenol A, brominated phenol novolac resin, and various phenols and benzaldehyde, hydroxybenzaldehyde, and the like. Examples of the polyhydric phenol resin include polyhydric phenol resins obtained by a condensation reaction between various aldehydes such as benzoxaldehyde, crotonaldehyde, and glyoxal; polyhydric phenol resins obtained by a condensation reaction between xylene resin and phenols; various phenol resins such as co-condensation resins of heavy oils or pitches with phenols and formaldehydes; chain aliphatic diols such as ethylene glycol, trimethylene glycol, propylene glycol, 1,3-butanediol, 1,4-butanediol, 1,3-pentanediol, 1,4-pentanediol, 1,5-pentanediol, and 1,6-hexanediol; cyclic aliphatic diols such as cyclohexanediol and cyclodecanediol; and polyalkylene ether glycols such as polyethylene ether glycol, polyoxytrimethylene ether glycol, and polypropylene ether glycol.
[0208] In the reaction, the polyhydric hydroxy compound raw material is dissolved in epihalohydrin to form a homogeneous solution. As the epihalohydrin, epichlorohydrin or epibromohydrin is usually used, but epichlorohydrin is preferred in the present invention.
[0209] The amount of epihalohydrin used is preferably an amount corresponding to typically 1.0 to 14.0 equivalents, particularly 2.0 to 10.0 equivalents, per equivalent of hydroxyl groups in the polyhydric hydroxy compound raw material (total polyhydric hydroxy compounds). When the amount of epihalohydrin is equal to or greater than the lower limit, it is easy to control the polymerization reaction, and the resulting epoxy resin can have an appropriate epoxy equivalent, which is preferred. On the other hand, when the amount of epihalohydrin is equal to or less than the upper limit, production efficiency tends to be improved, which is preferred.
[0210] Next, while stirring the solution, an alkali metal hydroxide is added as a solid or in aqueous solution in an amount corresponding to typically 0.1 to 3.0 equivalents, preferably 0.8 to 2.0 equivalents, per equivalent of hydroxyl groups in the polyhydric hydroxy compound raw material, and the reaction is allowed to proceed. Adding an alkali metal hydroxide in an amount equal to or greater than the lower limit described above is preferred because it makes it difficult for unreacted hydroxyl groups to react with the resulting epoxy resin, making it easier to control the polymerization reaction. Adding an alkali metal hydroxide in an amount equal to or less than the upper limit described above is also preferred because it makes it difficult for impurities to be generated by side reactions. The alkali metal hydroxide used here typically includes sodium hydroxide or potassium hydroxide.
[0211] This reaction can be carried out under normal pressure or reduced pressure, and the reaction temperature is preferably 20 to 200°C, more preferably 40 to 150°C. A reaction temperature equal to or higher than the lower limit is preferred because the reaction is easily progressed and easily controlled. On the other hand, a reaction temperature equal to or lower than the upper limit is preferred because side reactions are less likely to proceed, and it is particularly easy to reduce the amount of polymer.
[0212] This reaction is also carried out while dehydrating, if necessary, by azeotroping the reaction solution while maintaining a predetermined temperature, cooling the volatilized vapor, separating the resulting condensate into oil and water, and returning the dehydrated oil to the reaction system. To prevent a rapid reaction, the alkali metal hydroxide is added intermittently or continuously in small amounts over a period of preferably 0.1 to 24 hours, more preferably 0.5 to 10 hours. Adding the alkali metal hydroxide for a period of time equal to or greater than the above-mentioned lower limit is preferred because it prevents the reaction from proceeding too quickly and makes it easier to control the reaction temperature. Adding the alkali metal hydroxide for a period of time equal to or less than the above-mentioned upper limit is preferred because it makes it easier to reduce the amount of polymer.
[0213] After the reaction is completed, the insoluble by-product salts are removed by filtration or by washing with water, and then the unreacted epihalohydrin can be removed by heating and / or distillation under reduced pressure.
[0214] In addition, in this reaction, a catalyst such as a quaternary ammonium salt such as tetramethylammonium chloride or tetraethylammonium bromide, a tertiary amine such as benzyldimethylamine or 2,4,6-tris(dimethylaminomethyl)phenol, an imidazole such as 2-ethyl-4-methylimidazole or 2-phenylimidazole, a phosphonium salt such as ethyltriphenylphosphonium iodide, or a phosphine such as triphenylphosphine may be used.
[0215] Furthermore, in this reaction, an inert organic solvent may be used, such as alcohols such as ethanol and isopropanol; ketones such as acetone, methyl ethyl ketone and methyl isobutyl ketone; ethers such as dioxane and ethylene glycol dimethyl ether; glycol ethers such as methoxypropanol; and aprotic polar solvents such as dimethyl sulfoxide and dimethylformamide.
[0216] [Production of epoxy resin with reduced total chlorine content] When it is necessary to reduce the total chlorine content of the epoxy resin obtained as described above, an epoxy resin having a reduced total chlorine content can be produced by reacting it with an alkali.
[0217] The reaction with the alkali may be carried out using an organic solvent for dissolving the epoxy resin. The organic solvent used in the reaction is not particularly limited, but it is preferable to use a ketone-based organic solvent in terms of production efficiency, handling, workability, etc. Furthermore, an aprotic polar solvent may be used in order to further reduce the amount of hydrolyzable chlorine.
[0218] Examples of ketone-based organic solvents include ketone-based solvents such as methyl ethyl ketone, methyl isobutyl ketone, and cyclohexanone. Methyl isobutyl ketone is particularly preferred because of its effectiveness and ease of post-treatment. These solvents may be used alone or in combination of two or more.
[0219] Examples of aprotic polar solvents include dimethyl sulfoxide, diethyl sulfoxide, dimethyl sulfone, sulfolane, dimethylformamide, dimethylacetamide, and hexamethylphosphoramide. These may be used alone or in combination of two or more. Among these aprotic polar solvents, dimethyl sulfoxide is preferred because it is easily available and has excellent effects.
[0220] The amount of the solvent used is usually an amount that gives an epoxy resin concentration in the liquid to be subjected to alkali treatment of 1 to 95% by mass, preferably an amount that gives an epoxy resin concentration of 5 to 80% by mass.
[0221] As the alkali, a solid or solution of an alkali metal hydroxide can be used. Examples of the alkali metal hydroxide include potassium hydroxide and sodium hydroxide, and sodium hydroxide is preferred. The alkali metal hydroxide may also be dissolved in an organic solvent or water. Preferably, the alkali metal hydroxide is used as a solution in which it is dissolved in a water solvent or an organic solvent.
[0222] The amount of alkali metal hydroxide used is preferably 0.01 to 20.0 parts by mass or less, and more preferably 0.10 to 10.0 parts by mass, relative to 100 parts by mass of the epoxy resin, calculated as the solid content of the alkali metal hydroxide. If the amount of alkali metal hydroxide used is less than the lower limit, the effect of reducing the total chlorine content is low, and if it is more than the upper limit, a large amount of polymer is produced, resulting in a low yield.
[0223] The reaction temperature is preferably 20 to 200°C, more preferably 40 to 150°C, and the reaction time is preferably 0.1 to 24 hours, more preferably 0.5 to 10 hours. After the reaction, excess alkali metal hydroxide and secondary salts can be removed by washing with water or the like, and the organic solvent can be further removed by heating and / or distillation under reduced pressure and / or steam distillation.
[0224] (Oxidation method for producing epoxy resin) The method for producing an epoxy resin by oxidation is not particularly limited as long as it is a known production method, and can be carried out according to, for example, the methods described in JP-A-2011-225711, JP-A-2012-092247, JP-A-2012-111858, etc.
[0225] In the oxidation method for producing an epoxy resin, similar to the one-stage method, a polyhydric hydroxy compound other than the recycled bisphenol may be used in combination with the recycled bisphenol. That is, the oxidation method for producing an epoxy resin is a method in which a raw polyhydric hydroxy compound is allylated with an allyl halide, followed by an oxidation reaction to obtain an epoxy resin, and at least a portion of the raw polyhydric hydroxy compound is recycled bisphenol.
[0226] In the oxidation method for producing an epoxy resin, the "raw polyhydroxy compound" refers to all polyhydroxy compounds, including recycled bisphenols and other polyhydroxy compounds used as needed. Examples of the other polyhydroxy compounds include those similar to those used in the one-stage method. The content of recycled bisphenols in the raw polyhydroxy compound is not particularly limited, but a high content of recycled bisphenols is environmentally friendly, so a content of 1 to 100% by mass is preferred, and 10 to 100% by mass is more preferred.
[0227] (Two-stage method for producing epoxy resin) The method for producing an epoxy resin by the two-stage method is not particularly limited as long as it is a known production method, but will be described in detail below.
[0228] The two-stage method for producing an epoxy resin includes a step of reacting an epoxy resin raw material with a polyhydric hydroxy compound raw material, and at least a portion of the epoxy resin raw material is an epoxy resin produced using recycled bisphenol, and / or at least a portion of the polyhydric hydroxy compound raw material is recycled bisphenol.
[0229] That is, the two-stage method for producing an epoxy resin is any one of the following methods (i) to (iii).
[0230] Method (i): A method of reacting an epoxy resin other than an epoxy resin produced using recycled bisphenol with a polyhydroxy compound raw material containing recycled bisphenol.
[0231] In method (i), the epoxy resin raw material is an epoxy resin other than the epoxy resin produced using recycled bisphenol, and the polyhydroxy compound raw material is all polyhydroxy compounds including recycled bisphenol and other polyhydroxy compounds used as needed.
[0232] Method (ii): A method of reacting an epoxy resin raw material containing an epoxy resin produced using recycled bisphenol with a polyhydroxy compound raw material containing recycled bisphenol.
[0233] In method (ii), the epoxy resin raw material is the total epoxy resin, which is a combination of the epoxy resin produced using recycled bisphenol and other epoxy resins used as needed, and the polyhydroxy compound raw material is the total polyhydroxy compound, which is a combination of the recycled bisphenol and other polyhydroxy compounds used as needed.
[0234] Method (iii): A method of reacting an epoxy resin raw material containing an epoxy resin produced using recycled bisphenol with a polyhydroxy compound other than recycled bisphenol.
[0235] In method (iii), the epoxy resin raw material is a total epoxy resin that combines the epoxy resin produced using recycled bisphenol with other epoxy resins that are used as needed, and the polyhydroxy compound raw material is a polyhydroxy compound other than recycled bisphenol.
[0236] The epoxy resins produced using recycled bisphenols used in methods (ii) and (iii) can be obtained by a one-step method for producing epoxy resins or an oxidation method for producing epoxy resins. Alternatively, the epoxy resins obtained by method (i) may be used. The epoxy resins other than the epoxy resins produced using recycled bisphenols are the same as the other epoxy resins described later in the method for producing a cured epoxy resin, and the other polyhydroxy compounds are the same as those used in the one-step method.
[0237] In the methods (i) and (ii), the content of recycled bisphenol in the polyhydroxy compound containing recycled bisphenol is not particularly limited, but a high content of recycled bisphenol is environmentally friendly, so it is preferably 1 to 100 mass%, more preferably 10 to 100 mass%. In the methods (ii) and (iii), the content of the epoxy resin produced using recycled bisphenol in the epoxy resin raw material containing the epoxy resin produced using recycled bisphenol is not particularly limited, but since a high content of the epoxy resin produced using recycled bisphenol is environmentally friendly, it is preferably 1 to 100 mass%, more preferably 10 to 100 mass%.
[0238] In the two-stage reaction, the amounts of the epoxy resin raw material and the polyvalent hydroxy compound raw material used are preferably such that the equivalent ratio (epoxy group equivalent):(hydroxyl group equivalent) is 1:0.1-2.0, more preferably 1:0.2-1.2. When this equivalent ratio is within the above range, it is easy to promote high molecular weight and more epoxy group terminals can be left, which is preferable.
[0239] A catalyst may be used in the two-stage reaction. Any compound with catalytic activity that promotes the reaction between an epoxy group and a phenolic hydroxyl group or an alcoholic hydroxyl group may be used. Examples of the catalyst include alkali metal compounds, organic phosphorus compounds, tertiary amines, quaternary ammonium salts, cyclic amines, and imidazoles. Among these, quaternary ammonium salts are preferred. The catalyst may be used alone or in combination of two or more. The amount of catalyst used is typically 0.001 to 10% by mass based on the epoxy resin raw material.
[0240] A solvent may be used in the two-stage reaction, and any solvent capable of dissolving the epoxy resin raw material may be used. Examples include aromatic solvents, ketone solvents, amide solvents, and glycol ether solvents. A single solvent may be used, or two or more solvents may be used in combination. The resin concentration in the solvent is preferably 10 to 95% by mass, more preferably 20 to 80% by mass. If a highly viscous product is produced during the reaction, the reaction can be continued by adding additional solvent. After completion of the reaction, the solvent can be removed or further added as necessary.
[0241] In the two-stage reaction, the reaction temperature is preferably 20 to 250°C, more preferably 50 to 200°C. If the reaction temperature is above the upper limit, the resulting epoxy resin may deteriorate. If the reaction temperature is below the lower limit, the reaction may not proceed sufficiently. The reaction time is usually 0.1 to 24 hours, preferably 0.5 to 12 hours.
[0242] <Method of manufacturing a cured epoxy resin product> The present invention relates to a method for producing a cured epoxy resin product, which comprises curing an epoxy resin composition containing an epoxy resin obtained by the method for producing an epoxy resin of the present invention and a curing agent to obtain a cured epoxy resin product. In the method for producing a cured epoxy resin product of the present invention, the epoxy resin obtained by the method for producing an epoxy resin of the present invention described above and a curing agent are mixed to obtain a composition containing the epoxy resin and the curing agent (hereinafter, sometimes referred to as an "epoxy resin composition"), and then the epoxy resin composition is cured to obtain a cured epoxy resin product.
[0243] Furthermore, if necessary, the epoxy resin composition may appropriately contain other epoxy resins (hereinafter simply referred to as "other epoxy resins") other than the epoxy resin obtained by the epoxy resin production method of the present invention, curing agents, curing accelerators, inorganic fillers, coupling agents, etc.
[0244] The content of recycled epoxy resin in the epoxy resin composition is not particularly limited. Because a high content of recycled epoxy resin is environmentally friendly, the recycled epoxy resin is preferably 40 parts by mass or more, more preferably 60 parts by mass or more, per 100 parts by mass of all epoxy resin components in the recycled epoxy resin composition. When other epoxy resins are included, the recycled epoxy resin can be 40 to 99 parts by mass or 60 to 99 parts by mass, per 100 parts by mass of all epoxy resin components in the epoxy resin composition. The term "total epoxy resin components" refers to the total amount of all epoxy resins contained in the epoxy resin composition, including the recycled epoxy resin and other epoxy resins used as needed.
[0245] (hardening agent) In the present invention, a curing agent refers to a substance that contributes to the crosslinking reaction and / or chain extension reaction between epoxy groups of an epoxy resin. In the present invention, even substances that are usually called "curing accelerators" are considered to be curing agents as long as they contribute to the crosslinking reaction and / or chain extension reaction between epoxy groups of an epoxy resin.
[0246] In the epoxy resin composition, the content of the curing agent is preferably 0.1 to 1000 parts by mass, more preferably 500 parts by mass or less, based on 100 parts by mass of the total epoxy resin components.
[0247] The curing agent is not particularly limited, and any commonly known epoxy resin curing agent can be used. Examples include phenolic curing agents, amine curing agents such as aliphatic amines, polyetheramines, alicyclic amines, and aromatic amines, acid anhydride curing agents, amide curing agents, tertiary amines, and imidazoles. One curing agent may be used alone, or two or more may be used in combination. When two or more curing agents are used in combination, they may be mixed in advance to prepare a mixed curing agent before use, or when mixing the components of the epoxy resin obtained by the epoxy resin production method of the present invention and other epoxy resins, each component of the curing agent may be added separately and mixed simultaneously.
[0248] [Phenol-based hardener] Specific examples of phenolic curing agents include recycled bisphenol, bisphenol A, tetramethyl bisphenol A, bisphenol F, tetramethyl bisphenol F, bisphenol C, bisphenol S, bisphenol AD, bisphenol AF, hydroquinone, resorcinol, methyl resorcinol, biphenol, tetramethyl biphenol, dihydroxynaphthalene, dihydroxydiphenyl ether, thiodiphenols, phenol novolac resin, cresol novolac resin, phenol aralkyl resin, biphenyl aralkyl resin, naphthol aralkyl resin, terpene phenol resin, dicyclopentadiene phenol resin, bisphenol A novolac resin, trisphenolmethane type resin, naphthol novolac resin, brominated bisphenol These include various polyhydric phenols such as phenol A and brominated phenol novolac resins; polyhydric phenol resins obtained by the condensation reaction of various phenols with various aldehydes such as benzaldehyde, hydroxybenzaldehyde, crotonaldehyde, and glyoxal; polyhydric phenol resins obtained by the condensation reaction of xylene resin and phenols; co-condensation resins of heavy oil or pitch with phenols and formaldehydes; and various phenolic resins such as phenol-benzaldehyde-xylylene dimethoxide polycondensates, phenol-benzaldehyde-xylylene dihalide polycondensates, phenol-benzaldehyde-4,4'-dimethoxide biphenyl polycondensates, and phenol-benzaldehyde-4,4'-dihalide biphenyl polycondensates.
[0249] These phenolic curing agents may be used alone or in any combination of two or more in any blending ratio.
[0250] The amount of the phenolic curing agent to be added is preferably 0.1 to 1000 parts by mass, and more preferably 500 parts by mass or less, per 100 parts by mass of all epoxy resin components in the epoxy resin composition.
[0251] [Amine-based curing agent] Examples of amine-based curing agents (excluding tertiary amines) include aliphatic amines, polyether amines, alicyclic amines, and aromatic amines.
[0252] Examples of aliphatic amines include ethylenediamine, 1,3-diaminopropane, 1,4-diaminopropane, hexamethylenediamine, 2,5-dimethylhexamethylenediamine, trimethylhexamethylenediamine, diethylenetriamine, iminobispropylamine, bis(hexamethylene)triamine, triethylenetetramine, tetraethylenepentamine, pentaethylenehexamine, N-hydroxyethylethylenediamine, and tetra(hydroxyethyl)ethylenediamine.
[0253] Examples of polyetheramines include triethylene glycol diamine, tetraethylene glycol diamine, diethylene glycol bis(propylamine), polyoxypropylene diamine, polyoxypropylene triamines, and the like.
[0254] Examples of alicyclic amines include isophoronediamine, methacenediamine, N-aminoethylpiperazine, bis(4-amino-3-methyldicyclohexyl)methane, bis(aminomethyl)cyclohexane, 3,9-bis(3-aminopropyl)-2,4,8,10-tetraoxaspiro(5,5)undecane, and norbornenediamine.
[0255] Examples of aromatic amines include tetrachloro-p-xylylenediamine, m-xylylenediamine, p-xylylenediamine, m-phenylenediamine, o-phenylenediamine, p-phenylenediamine, 2,4-diaminoanisole, 2,4-toluenediamine, 2,4-diaminodiphenylmethane, 4,4'-diaminodiphenylmethane, 4,4'-diamino-1,2-diphenylethane, 2,4-diaminodiphenylsulfone, 4,4'-diaminodiphenylsulfone, m-aminophenol, m-aminobenzylamine, benzyldimethylamine, 2-(dimethylaminomethyl)phenol, triethanolamine, methylbenzylamine, α-(m-aminophenyl)ethylamine, α-(p-aminophenyl)ethylamine, diaminodiethyldimethyldiphenylmethane, and α,α'-bis(4-aminophenyl)-p-diisopropylbenzene.
[0256] The amine-based curing agents listed above may be used alone or in any combination of two or more in any blending ratio.
[0257] The amine-based curing agent is preferably used so that the equivalent ratio of functional groups in the curing agent to epoxy groups in all epoxy resin components contained in the epoxy resin composition is in the range of 0.1 to 2.0. More preferably, the equivalent ratio is in the range of 0.8 to 1.2. This range is preferable because unreacted epoxy groups and functional groups of the curing agent are less likely to remain.
[0258] [Tertiary amine] Examples of tertiary amines include 1,8-diazabicyclo(5,4,0)undecene-7, triethylenediamine, benzyldimethylamine, triethanolamine, dimethylaminoethanol, and tris(dimethylaminomethyl)phenol. The above-mentioned tertiary amines may be used alone or in any combination of two or more in any blending ratio.
[0259] The above tertiary amine is preferably used so that the equivalent ratio of the functional groups in the curing agent to the epoxy groups in all epoxy resin components contained in the epoxy resin composition is in the range of 0.1 to 2.0. More preferably, the equivalent ratio is in the range of 0.8 to 1.2. This range is preferable because it makes it difficult for unreacted epoxy groups or functional groups of the curing agent to remain.
[0260] [Acid anhydride curing agent] Examples of the acid anhydride curing agent include acid anhydrides and modified acid anhydrides.
[0261] Examples of acid anhydrides include phthalic anhydride, trimellitic anhydride, pyromellitic anhydride, benzophenonetetracarboxylic anhydride, dodecenylsuccinic anhydride, polyadipic anhydride, polyazelaic anhydride, polysebacic anhydride, poly(ethyloctadecanedioic) anhydride, poly(phenylhexadecanedioic) anhydride, tetrahydrophthalic anhydride, methyltetrahydrophthalic anhydride, methylhexahydrophthalic anhydride, hexahydrophthalic anhydride, methylhimic anhydride, trialkyltetrahydrophthalic anhydride, Examples of the dicarboxylic acid anhydride include methylcyclohexene dicarboxylic acid anhydride, methylcyclohexene tetracarboxylic acid anhydride, ethylene glycol bistrimellitate dianhydride, HET anhydride, Nadic anhydride, methylnadic anhydride, 5-(2,5-dioxotetrahydro-3-furanyl)-3-methyl-3-cyclohexane-1,2-dicarboxylic acid anhydride, 3,4-dicarboxy-1,2,3,4-tetrahydro-1-naphthalene succinic dianhydride, and 1-methyl-dicarboxy-1,2,3,4-tetrahydro-1-naphthalene succinic dianhydride.
[0262] Examples of modified acid anhydrides include those obtained by modifying the above-mentioned acid anhydrides with glycols. Examples of glycols that can be used for modification include alkylene glycols such as ethylene glycol, propylene glycol, and neopentyl glycol, and polyether glycols such as polyethylene glycol, polypropylene glycol, and polytetramethylene ether glycol. Furthermore, copolymer polyether glycols of two or more of these glycols and / or polyether glycols can also be used.
[0263] The acid anhydride curing agents listed above may be used alone or in any combination of two or more in any amount.
[0264] When an acid anhydride curing agent is used, it is preferably used so that the equivalent ratio of functional groups in the curing agent to epoxy groups in all epoxy resin components in the epoxy resin composition is in the range of 0.1 to 2.0. More preferably, the equivalent ratio is in the range of 0.8 to 1.2. This range is preferable because it makes it difficult for unreacted epoxy groups or functional groups of the curing agent to remain.
[0265] [Amide-based curing agent] Examples of the amide-based curing agent include dicyandiamide and its derivatives, polyamide resins, and the like. The amide curing agent may be used alone or as a mixture of two or more kinds in any combination and ratio. When an amide curing agent is used, it is preferable to use the amide curing agent in an amount of 0.1 to 20 mass % based on the total amount of all epoxy resin components and the amide curing agent in the epoxy resin composition.
[0266] [Imidazoles] Examples of imidazoles include 2-phenylimidazole, 2-ethyl-4(5)-methylimidazole, 2-phenyl-4-methylimidazole, 1-benzyl-2-methylimidazole, 1-benzyl-2-phenylimidazole, 1-cyanoethyl-2-undecylimidazole, 1-cyano-2-phenylimidazole, 1-cyanoethyl-2-undecylimidazole trimellitate, 1-cyanoethyl-2-phenylimidazolium trimellitate, 2,4-diamino-6-[2'-methylimidazolyl- Examples of such imidazoles include 2,4-diamino-6-[2'-ethyl-4'-methylimidazolyl-(1')]-ethyl-s-triazine, 2,4-diamino-6-[2'-ethyl-4'-methylimidazolyl-(1')]-ethyl-s-triazine, 2,4-diamino-6-[2'-methylimidazolyl-(1')]-ethyl-s-triazine isocyanuric acid adduct, 2-phenylimidazole isocyanuric acid adduct, 2-phenyl-4,5-dihydroxymethylimidazole, 2-phenyl-4-methyl-5-hydroxymethylimidazole, and adducts of epoxy resins with the above imidazoles. Note that, since imidazoles have catalytic activity, they can generally be classified as curing accelerators, but in the present invention they are classified as curing agents. The imidazoles listed above may be used alone or in any combination and ratio of two or more.
[0267] When imidazoles are used, the amount of imidazoles is preferably 0.1 to 20% by mass based on the total amount of all epoxy resin components and imidazoles in the epoxy resin composition.
[0268] [Other hardeners] In addition to the above-mentioned curing agents, other curing agents can be used in the epoxy resin composition. There are no particular restrictions on the other curing agents that can be used in the epoxy resin composition, and any curing agent generally known as a curing agent for epoxy resins can be used. These other curing agents may be used alone or in combination of two or more.
[0269] [Other epoxy resins] The epoxy resin composition may contain an epoxy resin other than the epoxy resin obtained by the epoxy resin production method of the present invention. By containing the other epoxy resin, various physical properties can be improved.
[0270] Other epoxy resins that can be used in the epoxy resin composition include all epoxy resins other than those obtained by the epoxy resin production method of the present invention. Specific examples include bisphenol A type epoxy resins, bisphenol C type epoxy resins, trisphenolmethane type epoxy resins, anthracene type epoxy resins, phenol-modified xylene resin type epoxy resins, bisphenol cyclododecyl type epoxy resins, bisphenol diisopropylidene resorcinol type epoxy resins, bisphenol F type epoxy resins, bisphenol AD type epoxy resins, bisphenol AF type epoxy resins, hydroquinone type epoxy resins, methylhydroquinone type epoxy resins, dibutylhydroquinone type epoxy resins, resorcinol type epoxy resins, methylresorcinol type epoxy resins, biphenol type epoxy resins, tetramethylbiphenol type epoxy resins, tetramethylbisphenol F type epoxy resins, dihydroxydiphenyl ether type epoxy resins, epoxy resins derived from thiodiphenols, dihydroxynaphthalene type epoxy resins, dihydroxyanthracene type epoxy resins, dihydroxydihydroanthracene type epoxy resins, dicyclopentadiene type epoxy resins, dihydrogen Examples of epoxy resins include epoxy resins derived from roxystilbenes, phenol novolac epoxy resins, cresol novolac epoxy resins, bisphenol A novolac epoxy resins, naphthol novolac epoxy resins, phenol aralkyl epoxy resins, naphthol aralkyl epoxy resins, biphenyl aralkyl epoxy resins, terpene phenol epoxy resins, dicyclopentadiene phenol epoxy resins, epoxy resins derived from phenol-hydroxybenzaldehyde condensates, epoxy resins derived from phenol-crotonaldehyde condensates, epoxy resins derived from phenol-glyoxal condensates, epoxy resins derived from co-condensation resins of heavy oils or pitches with phenols and formaldehydes, epoxy resins derived from diaminodiphenylmethane, epoxy resins derived from aminophenols, epoxy resins derived from xylenediamine, epoxy resins derived from methylhexahydrophthalic acid, and epoxy resins derived from dimer acids.These may be used alone or in any combination of two or more in any blending ratio.
[0271] When the epoxy resin composition contains the other epoxy resins described above, the content thereof is preferably 1 to 60 parts by mass, more preferably 40 parts by mass or less, per 100 parts by mass of all epoxy resin components in the composition.
[0272] (curing accelerator) The epoxy resin composition preferably contains a curing accelerator, which enables shortening of the curing time and lowering of the curing temperature, making it easier to obtain a desired cured product.
[0273] The curing accelerator is not particularly limited, but specific examples include organic phosphines, phosphorus compounds such as phosphonium salts, tetraphenylboron salts, organic acid dihydrazides, boron halide amine complexes, and the like.
[0274] Phosphorus compounds that can be used as curing accelerators include triphenylphosphine, diphenyl(p-tolyl)phosphine, tris(alkylphenyl)phosphine, tris(alkoxyphenyl)phosphine, tris(alkylalkoxyphenyl)phosphine, tris(dialkylphenyl)phosphine, tris(trialkylphenyl)phosphine, tris(tetraalkylphenyl)phosphine, tris(dialkoxyphenyl)phosphine, tris(trialkoxyphenyl)phosphine, tris(tetraalkoxyphenyl)phosphine, trialkylphosphine, Examples of such phosphines include organic phosphines such as phosphine, dialkylarylphosphine, and alkyldiarylphosphine; complexes of these organic phosphines with organic borons; and compounds obtained by adding these organic phosphines to quinone compounds such as maleic anhydride, 1,4-benzoquinone, 2,5-toluquinone, 1,4-naphthoquinone, 2,3-dimethylbenzoquinone, 2,6-dimethylbenzoquinone, 2,3-dimethoxy-5-methyl-1,4-benzoquinone, 2,3-dimethoxy-1,4-benzoquinone, and phenyl-1,4-benzoquinone; and compounds such as diazophenylmethane.
[0275] Among the curing accelerators listed above, organic phosphines and phosphonium salts are preferred, and organic phosphines are most preferred. The curing accelerators listed above may be used alone or in any combination and ratio of two or more.
[0276] The curing accelerator is preferably used in an amount of 0.1 to 20 parts by mass relative to 100 parts by mass of all epoxy resin components in the epoxy resin composition. When the content of the curing accelerator is equal to or greater than the lower limit, a good curing acceleration effect can be obtained, while when the content is equal to or less than the upper limit, the desired cured physical properties can be easily obtained, which is preferred.
[0277] (Inorganic filler) An inorganic filler can be blended into the epoxy resin composition. Examples of inorganic fillers include fused silica, crystalline silica, glass powder, alumina, calcium carbonate, calcium sulfate, talc, boron nitride, etc. These may be used alone or in any combination of two or more in any blending ratio. The blending amount of the inorganic filler is preferably 10 to 95 mass% of the total epoxy resin composition.
[0278] (mold release agent) A mold release agent can be blended into the epoxy resin composition. Examples of the mold release agent include natural waxes such as carnauba wax, synthetic waxes such as polyethylene wax, higher fatty acids such as stearic acid and zinc stearate and their metal salts, and hydrocarbon mold release agents such as paraffin. These may be used alone or in any combination of two or more in any blending ratio.
[0279] The amount of the release agent is preferably 0.001 to 10.0 parts by mass relative to 100 parts by mass of all epoxy resin components in the epoxy resin composition. When the amount of the release agent is within the above range, good release properties can be exhibited while maintaining curing properties, which is preferable.
[0280] (coupling agent) A coupling agent can be blended into the epoxy resin composition. The coupling agent is preferably used in combination with an inorganic filler, and blending of the coupling agent can improve the adhesion between the epoxy resin matrix and the inorganic filler. Examples of the coupling agent include a silane coupling agent and a titanate coupling agent.
[0281] Examples of the silane coupling agent include epoxy silanes such as γ-glycidoxypropyltrimethoxysilane, γ-glycidoxypropyltriethoxysilane, and β-(3,4-epoxycyclohexyl)ethyltrimethoxysilane; amino silanes such as γ-aminopropyltriethoxysilane, N-β(aminoethyl)γ-aminopropyltrimethoxysilane, N-β(aminoethyl)γ-aminopropylmethyldimethoxysilane, γ-aminopropyltrimethoxysilane, and γ-ureidopropyltriethoxysilane; mercapto silanes such as 3-mercaptopropyltrimethoxysilane; vinyl silanes such as p-styryltrimethoxysilane, vinyltrichlorosilane, vinyltris(β-methoxyethoxy)silane, vinyltrimethoxysilane, vinyltriethoxysilane, and γ-methacryloxypropyltrimethoxysilane; and polymeric epoxy, amino, and vinyl silanes.
[0282] Examples of titanate coupling agents include isopropyl triisostearoyl titanate, isopropyl tri(N-aminoethyl aminoethyl) titanate, diisopropyl bis(dioctyl phosphate) titanate, tetraisopropyl bis(dioctyl phosphite) titanate, tetraoctyl bis(ditridecyl phosphite) titanate, tetra(2,2-diallyloxymethyl-1-butyl)bis(ditridecyl)phosphite titanate, bis(dioctyl pyrophosphate)oxyacetate titanate, and bis(dioctyl pyrophosphate)ethylene titanate.
[0283] These coupling agents may be used either alone or as a mixture of two or more in any combination and ratio.
[0284] When a coupling agent is used in the epoxy resin composition, the amount thereof is preferably 0.001 to 10.0 parts by mass per 100 parts by mass of the total epoxy resin components. When the amount of the coupling agent is equal to or greater than the lower limit, the effect of improving the adhesion between the epoxy resin matrix and the inorganic filler due to the addition of the coupling agent tends to be enhanced. On the other hand, when the amount of the coupling agent is equal to or less than the upper limit, the coupling agent is less likely to bleed out from the resulting cured product, which is preferable.
[0285] (Other ingredients) The epoxy resin composition may contain components other than those described above. Examples of other components include flame retardants, plasticizers, reactive diluents, pigments, etc., and these can be appropriately added as needed. However, this does not in any way preclude the addition of components other than those listed above.
[0286] Examples of the flame retardant include halogen-based flame retardants such as brominated epoxy resins and brominated phenol resins, antimony compounds such as antimony trioxide, phosphorus-based flame retardants such as red phosphorus, phosphate esters and phosphines, nitrogen-based flame retardants such as melamine derivatives, and inorganic flame retardants such as aluminum hydroxide and magnesium hydroxide.
[0287] (Curing method) A cured epoxy resin product can be obtained by curing an epoxy resin composition. The curing method is not particularly limited, but a cured product can usually be obtained by a thermosetting reaction caused by heating. During the thermosetting reaction, it is preferable to appropriately select the curing temperature depending on the type of curing agent used. For example, when a phenolic curing agent is used, the curing temperature is usually 80 to 250°C. It is also possible to lower the curing temperature by adding a curing accelerator to these curing agents. The reaction time is preferably 0.01 to 20 hours. A reaction time of at least the lower limit is preferred because the curing reaction tends to proceed more efficiently. On the other hand, a reaction time of not more than the upper limit is preferred because it is easy to reduce deterioration due to heating and energy loss during heating.
[0288] (Application) The epoxy resin cured product obtained by curing the epoxy resin composition has a low linear expansion coefficient and excellent heat crack resistance. Therefore, the cured epoxy resins can be effectively used in any application requiring these physical properties, such as in the coatings field (electrodeposition coatings for automobiles, heavy-duty anticorrosion coatings for ships and bridges, and coatings for the interior surfaces of beverage cans), in the electrical and electronics field (laminated plates, semiconductor encapsulants, insulating powder coatings, coil impregnation, etc.), and in the civil engineering, construction, and adhesives field (earthquake-resistant reinforcement of bridges, concrete reinforcement, building flooring, water facility linings, drainage and permeable pavements, and adhesives for vehicles and aircraft).
[0289] The epoxy resin composition may be used for the above-mentioned applications after curing, or may be cured during the manufacturing process for the above-mentioned applications. [Example]
[0290] The present invention will be explained in more detail below with reference to examples and comparative examples, but the present invention is not limited to the following examples as long as it does not depart from the gist of the invention.
[0291] [Raw materials and reagents] The polycarbonate resin used was "NOVAREX (registered trademark) M7027BF" manufactured by Mitsubishi Chemical Engineering Plastics Corporation. Phenol, toluene, sodium hydroxide, paratoluenesulfonic acid, methanol, ethanol, n-butanol, triethylamine, acetonitrile, and cesium carbonate were used as reagents from Fujifilm Wako Pure Chemical Industries, Ltd. Diphenyl carbonate used was a product of Mitsubishi Chemical Corporation.
[0292] Tetraphenoxytitanium was synthesized and used according to the following procedure. A 500 mL three-neck flask equipped with a receiver and a distillation tube was charged with 200 g (2.1 mol) of phenol and 100 mL of toluene, and the flask was purged with nitrogen. The flask was immersed in a 100°C oil bath to obtain a homogeneous solution. 57 g (0.2 mol) of tetraisopropyl titanium was added to the solution. The internal temperature of the flask bottom was maintained at 100°C, and the distillation of the resulting i-propyl alcohol began. The internal temperature was then gradually increased to 116°C, and 80 mL of a distillate, a mixture of i-propyl alcohol and toluene, was distilled off. 50 mL of hexane was added to the resulting bottoms, and the mixture was cooled to room temperature to allow crystallization. The precipitated red crystals were collected by filtration and dried in a rotary evaporator equipped with an oil bath at an oil bath temperature of 140°C and a pressure of 50 Torr to obtain 60 g (0.1 mol) of tetraphenoxy titanium.
[0293] [analysis] The confirmation of the production and purity of bisphenol was carried out by high performance liquid chromatography under the following procedures and conditions. Equipment: Shimadzu LC-2010A, Waters 5μm 150mm x 4.6mm ID Method: Low-pressure gradient method ·Analysis temperature: 40℃ ·Eluent composition: Solution A: Acetonitrile Solution B: 85% phosphoric acid:water = 1 mL:999 mL solution At 0 min of analysis time, the eluent composition was A:B = 35:65 (volume ratio, same below), and from 0 to 5 min of analysis time, the eluent composition was A:B = 35:65, and then gradually changed to A:B = 90:10 from 5 to 40 min of analysis time. ·Flow rate: 0.85mL / min Detection wavelength: 280nm
[0294] Dimethyl carbonate, diethyl carbonate, and dibutyl carbonate were analyzed by gas chromatography under the following procedures and conditions. Equipment: Shimadzu GC-2014 Agilent DB-1 0.530mm×30m 1.5μm Detection method: FID Vaporization chamber temperature: 230℃ Detector temperature: 300℃ The column temperature was maintained at 50°C for analysis times of 0 to 5 minutes, gradually increased to 280°C for analysis times of 5 to 30 minutes, and maintained at 280°C for analysis times of 30 to 40 minutes. Quantitative method: Internal standard method using biphenyl as an internal standard
[0295] [Viscosity average molecular weight (Mv)] The viscosity average molecular weight (Mv) was determined by dissolving the polycarbonate resin in methylene chloride (concentration: 6.0 g / L), measuring the specific viscosity (ηsp) at 20°C using an Ubbelohde viscometer, and calculating the viscosity average molecular weight (Mv) using the following formula. ηsp / C=[η](1+0.28ηsp) [η]=1.23×10 -4 Mv 0.83
[0296] [Melted color of bisphenol] The melt color of bisphenol was measured by placing 20 g of bisphenol in a test tube "P-24" (2 mm diameter x 200 mm) manufactured by Nippon Denshoku Glass Co., Ltd., melting it at 174°C for 30 minutes, and measuring the Hazen color number using "OME7700" manufactured by Nippon Denshoku Industries Co., Ltd.
[0297] [pH measurement] The pH was measured using a pH meter "pH METER ES-73" manufactured by Horiba Ltd., with respect to the aqueous phase at 25°C taken out of the flask.
[0298] [Example 1] (decomposition process) A jacketed separable flask equipped with a Dimroth condenser, a stirring blade, and a thermometer was charged with 80 g of polycarbonate resin (since the molecular weight of the repeating unit of the polycarbonate resin was 254 g / mol, the number of moles of the repeating unit = 80 g ÷ 254 g / mol = 0.31 mol), 240 g of phenol, 23 g of methanol (23 g ÷ 32 g / mol = 0.72 mol; the molar ratio of methanol to 1 mole of the repeating unit of the polycarbonate resin = 0.72 mol ÷ 0.31 mol = 2.32), and 15 g of triethylamine (15 g ÷ 101 g / mol = 0.15 mol; the molar ratio of triethylamine to 1 mole of the repeating unit of the polycarbonate resin = 0.15 mol ÷ 0.31 mol = 0.48) at room temperature under a nitrogen atmosphere (the liquid volume was 80 g + 240 g + 23 g + 15 g = 358 g).
[0299] The internal temperature was then raised to 85° C. When the reaction temperature reached 85° C., undissolved polycarbonate resin was observed in the reaction solution (it was in a slurry state). The reaction was continued for 4 hours while maintaining the temperature at 85° C., and a homogeneous reaction solution was obtained.
[0300] The composition of a portion of the resulting reaction solution was confirmed by high performance liquid chromatography, and it was confirmed that 19.5% by mass of bisphenol A was produced (production rate: 19.5 ÷ 100 × 358 g ÷ 228 g / mol ÷ 0.31 mol = 99 mol%). Furthermore, the composition of a portion of the resulting reaction liquid was confirmed by gas chromatography, and it was confirmed that 6.5% by mass of dimethyl carbonate was produced (production rate: 6.5 ÷ 100 × 358 g ÷ 90 g / mol ÷ 0.31 mol = 83 mol%). Since only 15 g of triethylamine was used relative to 80 g of polycarbonate resin, no amine odor was detected when a portion of the resulting reaction liquid was extracted.
[0301] [Example 2] The same procedure as in Example 1 was carried out, except that 32 g of triethylamine (32 g ÷ 101 g / mol = 0.32 mol, molar ratio of triethylamine to 1 mol of repeating unit of polycarbonate resin = 0.32 mol ÷ 0.31 mol = 1.03) was used instead of 15 g of triethylamine.
[0302] The composition of a portion of the resulting reaction solution was confirmed by high performance liquid chromatography, and it was confirmed that 18.9 mass% of bisphenol A was produced (production rate: 18.9 ÷ 100 × 375 g ÷ 228 g / mol ÷ 0.31 mol = 100 mol%). Furthermore, the composition of a portion of the resulting reaction liquid was confirmed by gas chromatography, and it was confirmed that 7.2 mass% of dimethyl carbonate was produced (production rate: 7.2 ÷ 100 × 375 g ÷ 90 g / mol ÷ 0.31 mol = 97 mol%). Although an excess of 32 g of triethylamine was used relative to 80 g of polycarbonate resin, the amine odor was not noticeable when a portion of the reaction liquid obtained was extracted, possibly due to a strong interaction with phenol, an acidic substance.
[0303] [Example 3] The same procedure as in Example 1 was carried out, except that 63 g of triethylamine (63 g ÷ 101 g / mol = 0.62 mol, molar ratio of triethylamine to 1 mol of repeating unit of polycarbonate resin = 0.62 mol ÷ 0.31 mol = 2.00) was used instead of 15 g of triethylamine.
[0304] The composition of a portion of the resulting reaction solution was confirmed by high performance liquid chromatography, and it was confirmed that 17.4 mass% of bisphenol A was produced (production rate: 17.4 ÷ 100 × 406 g ÷ 228 g / mol ÷ 0.31 mol = 100 mol%). Furthermore, the composition of a portion of the resulting reaction liquid was confirmed by gas chromatography, and it was confirmed that 6.6 mass% of dimethyl carbonate was produced (production rate: 6.6 ÷ 100 × 406 g ÷ 90 g / mol ÷ 0.31 mol = 96 mol%). Although an excess of 63 g of triethylamine was used relative to 80 g of polycarbonate resin, the amine odor was not noticeable when a portion of the reaction liquid obtained was extracted, possibly due to a strong interaction with phenol, which is an acidic substance.
[0305] [Example 4] The same procedure as in Example 1 was carried out, except that 110 g of triethylamine (110 g ÷ 101 g / mol = 1.01 mol, molar ratio of triethylamine to 1 mol of repeating unit of polycarbonate resin = 1.01 mol ÷ 0.31 mol = 3.26) was used instead of 15 g of triethylamine.
[0306] The composition of a portion of the resulting reaction solution was confirmed by high performance liquid chromatography, and it was confirmed that 15.5% by mass of bisphenol A was produced (production rate: 15.5 ÷ 100 × 453 g ÷ 228 g / mol ÷ 0.31 mol = 99 mol%). Furthermore, the composition of a portion of the resulting reaction liquid was confirmed by gas chromatography, and it was confirmed that 5.9% by mass of dimethyl carbonate was produced (production rate: 5.9 ÷ 100 × 453 g ÷ 90 g / mol ÷ 0.31 mol = 96 mol%).
[0307] Although an excess of 110 g of triethylamine was used relative to 80 g of polycarbonate resin, the amine odor observed when a portion of the resulting reaction liquid was extracted was not as pronounced as that observed in Comparative Example 2 described below, possibly due to a strong interaction with phenol, an acidic substance.
[0308] [Example 5] The same procedure as in Example 1 was carried out, except that 128 g of triethylamine (128 g ÷ 101 g / mol = 1.27 mol, molar ratio of triethylamine to 1 mol of repeating unit of polycarbonate resin = 1.27 mol ÷ 0.31 mol = 4.10) was used instead of 15 g of triethylamine.
[0309] The composition of a portion of the resulting reaction solution was confirmed by high performance liquid chromatography, and it was confirmed that 14.9% by mass of bisphenol A was produced (production rate: 14.9 ÷ 100 × 471 g ÷ 228 g / mol ÷ 0.31 mol = 99 mol%). Furthermore, the composition of a portion of the resulting reaction liquid was confirmed by gas chromatography, and it was confirmed that 5.8 mass% of dimethyl carbonate was produced (production rate: 5.8 ÷ 100 × 471 g ÷ 90 g / mol ÷ 0.31 mol = 98 mol%).
[0310] Although an excess of 128 g of triethylamine was used relative to 80 g of polycarbonate resin, the amine odor observed when a portion of the reaction solution obtained was extracted was not as pronounced as that observed in Comparative Example 2 described below, possibly due to a strong interaction with phenol, an acidic substance.
[0311] [Example 6] The same procedure as in Example 1 was carried out, except that 33 g (0.72 mol) of ethanol was used instead of 23 g of methanol.
[0312] The composition of a portion of the resulting reaction solution was confirmed by high performance liquid chromatography, and it was confirmed that 17.5% by mass of bisphenol A was produced (production rate: 17.5 ÷ 100 × 368 g ÷ 228 g / mol ÷ 0.31 mol = 91 mol%). Furthermore, the composition of a portion of the resulting reaction liquid was confirmed by gas chromatography, and it was confirmed that diethyl carbonate was produced in an amount of 8.7 mass% (production rate: 8.7 ÷ 100 × 368 g ÷ 118 g / mol ÷ 0.31 mol = 88 mol%).
[0313] [Example 7] The same procedure as in Example 1 was carried out, except that 53 g (0.72 mol) of n-butanol was used instead of 23 g of methanol.
[0314] The composition of a portion of the resulting reaction solution was confirmed by high performance liquid chromatography, and it was confirmed that 14.5% by mass of bisphenol A was produced (production rate: 14.5 ÷ 100 × 388 g ÷ 228 g / mol ÷ 0.31 mol = 80 mol%). Furthermore, the composition of a portion of the obtained reaction liquid was confirmed by gas chromatography, and it was confirmed that dibutyl carbonate was produced in an amount of 10.7 mass% (production rate: 10.7 ÷ 100 × 388 g ÷ 174 g / mol ÷ 0.31 mol = 77 mol%).
[0315] [Example 8] The same procedure as in Example 1 was carried out, except that 2 g of sodium hydroxide (2 g ÷ 40 g / mol = 0.05 mol, molar ratio of sodium hydroxide to 1 mol of repeating units of polycarbonate resin = 0.05 mol ÷ 0.31 mol = 0.16) was used instead of 15 g of triethylamine.
[0316] The composition of a portion of the resulting reaction solution was confirmed by high performance liquid chromatography, and it was confirmed that 20.4% by mass of bisphenol A was produced (production rate: 20.4 ÷ 100 × 345 g ÷ 228 g / mol ÷ 0.31 mol = 100 mol%). The production of dimethyl carbonate was also confirmed.
[0317] [Example 9] The same procedure as in Example 1 was repeated, except that 16 g of paratoluenesulfonic acid (16 g ÷ 172 g / mol = 0.09 mol, molar ratio of sodium hydroxide to 1 mol of repeating units of polycarbonate resin = 0.09 mol ÷ 0.31 mol = 0.29) was added instead of 15 g of triethylamine.
[0318] The composition of a portion of the resulting reaction solution was confirmed by high performance liquid chromatography, and it was confirmed that 10.7% by mass of bisphenol A was produced (production rate: 10.7 ÷ 100 × 359 g ÷ 228 g / mol ÷ 0.31 mol = 54 mol%). The production of dimethyl carbonate was also confirmed.
[0319] [Comparative Example 1] In a jacketed separable flask equipped with a Dimroth condenser, a stirring blade, and a thermometer, 80 g of polycarbonate resin, 201 g of methanol (201 g ÷ 32 g / mol = 6.28 mol, molar ratio of methanol to 1 mol of polycarbonate resin repeating unit = 6.28 mol ÷ 0.31 mol = 20.25), and 15 g of triethylamine were placed at room temperature under a nitrogen atmosphere. No phenol was added. Next, an attempt was made to raise the internal temperature to 85°C, but reflux of methanol occurred at around 64°C, so the reaction was continued while maintaining reflux. The reaction was continued for 4 hours, but the polycarbonate resin was observed as a solid in the reaction liquid, confirming that decomposition had not progressed.
[0320] Comparative Example 2 In a jacketed separable flask equipped with a Dimroth condenser, a stirring blade, and a thermometer, 80 g of polycarbonate resin, 201 g of methanol, and 127 g of triethylamine (127 g ÷ 101 g / mol = 1.26 mol, molar ratio of triethylamine to 1 mole of repeating unit of polycarbonate resin = 1.26 mol ÷ 0.31 mol = 4.06) were placed at room temperature under a nitrogen atmosphere. No phenol was added. Thereafter, the internal temperature was raised to 64° C. The reaction was continued for 4 hours while maintaining the temperature at 64° C., to obtain a homogeneous reaction solution.
[0321] The composition of a portion of the resulting reaction solution was confirmed by high-performance liquid chromatography, and it was confirmed that 17.3% by mass of bisphenol A was produced (production rate: 17.3 ÷ 100 × 408 g ÷ 228 g / mol ÷ 0.31 mol = 100 mol%). Because a large amount of triethylamine (127 g) was used relative to 80 g of polycarbonate resin, a strong amine odor was detected when a portion of the resulting reaction solution was withdrawn.
[0322] Comparative Example 3 The same procedures as in Example 1 were carried out, except that no methanol was fed at all instead of 23 g of methanol.
[0323] The composition of a portion of the resulting reaction solution was confirmed by high performance liquid chromatography, and it was confirmed that 8.5% by mass of bisphenol A was produced (production rate: 8.5 ÷ 100 × 335 g ÷ 228 g / mol ÷ 0.31 mol = 40 mol%). When a portion of the reaction liquid obtained was withdrawn, no amine odor was detected.
[0324] Table 1 summarizes the types of aromatic monoalcohols, aliphatic monoalcohols, and catalysts used in Examples 1 to 5 and Comparative Examples 1 to 3. Table 2 also summarizes the bisphenol A (BPA) production rate (%) and the amine odor after the reaction for Examples 1 to 5 and Comparative Examples 1 to 3. Table 2 confirms that even when the amount of amine used is small, the combined use of phenol and methanol results in a homogeneous solution after the reaction, making it possible to decompose the polycarbonate resin and suppressing the amine odor. It was also confirmed that even when the amount of amine used is large, the combined use of phenol and methanol suppresses the odor compared to a system using methanol alone.
[0325] [Table 1]
[0326] [Table 2]
[0327] Table 3 summarizes the types of aromatic monoalcohols, types of aliphatic monoalcohols, types of catalysts, and production rates of bisphenol A (BPA) for Examples 1, 6 to 9. Table 3 shows that polycarbonate resins can be decomposed using any of the catalysts: alkali metal hydroxides, alkali metal carbonates, alkylamines, and acids. It also shows that polycarbonate resins can be decomposed even when the type of aliphatic monoalcohol is changed. In particular, it shows that bisphenol can be obtained at a high production rate by using a combination of phenol and methanol.
[0328] [Table 3]
[0329] [Example 10] (Bisphenol recovery process) The reaction liquid obtained in Example 1 was transferred to a distillation apparatus equipped with a thermometer, a stirring blade, a distillation tube, and a pressure regulator. While monitoring the amount of distillate, the internal temperature was gradually increased to 180°C, and the internal pressure was gradually decreased from normal pressure to 20 kPa, thereby distilling off the azeotropic mixture of methanol and dimethyl carbonate, triethylamine, and phenol.
[0330] Thereafter, the pressure inside the flask was restored with nitrogen, the internal temperature was lowered to 80°C, and 200 g of toluene was added to obtain organic phase 1. The obtained organic phase 1 was washed five times with 50 g of demineralized water to obtain organic phase 2. The obtained organic phase 2 was cooled to 20°C to obtain a slurry. The obtained slurry was filtered to obtain a cake. The obtained cake was dried in a rotary evaporator to obtain 30 g of bisphenol A. The purity of the obtained bisphenol A was 99.8% by mass, and the melt color was APHA192.
[0331] (Dimethyl carbonate recovery process) The azeotropic mixture of methanol and dimethyl carbonate distilled off in the bisphenol recovery step was fed to a separatory funnel, and water was added to separate the oil and water. The oil phase was recovered to obtain 17 g of dimethyl carbonate.
[0332] [Example 11] A 45 mL glass reactor equipped with a stirrer and a distillation tube was charged with 10.00 g (0.04 mol) of bisphenol A obtained in Example 10, 9.95 g (0.05 mol) of diphenyl carbonate, and 18 μL of a 400 ppm by mass aqueous cesium carbonate solution. The glass reactor was depressurized to approximately 100 Pa, and then the pressure was returned to atmospheric pressure with nitrogen. This operation was repeated three times to replace the inside of the reactor with nitrogen. The reactor was then immersed in an oil bath at 220°C to dissolve the contents.
[0333] The stirrer rotation speed was set to 100 revolutions per minute, and the pressure inside the reaction vessel was reduced from 101.3 kPa to 13.3 kPa absolute pressure over 40 minutes while distilling off phenol, which was a by-product of the oligomerization reaction of bisphenol A and diphenyl carbonate inside the reaction vessel.
[0334] Subsequently, the pressure inside the reaction vessel was maintained at 13.3 kPa, and the transesterification reaction was carried out for 80 minutes while further distilling off phenol.
[0335] Thereafter, the temperature outside the reactor was raised to 290°C, and the pressure inside the reactor was reduced from 13.3 kPa to 399 Pa absolute over 40 minutes, and the distilled phenol was removed from the system.
[0336] Thereafter, the absolute pressure in the reaction vessel was reduced to 30 Pa, and the polycondensation reaction was carried out. The polycondensation reaction was terminated when the agitator in the reaction vessel reached a predetermined agitation power. The time from raising the temperature to 290°C to completing the polymerization was 120 minutes.
[0337] The reactor was then pressurized with nitrogen to an absolute pressure of 101.3 kPa, and then the pressure was increased to a gauge pressure of 0.2 MPa. The polycarbonate resin was extracted from the reactor to obtain a polycarbonate resin having a viscosity average molecular weight (Mv) of 27,100.
[0338] [Example 12] (decomposition process) A jacketed separable flask equipped with a Dimroth condenser, a stirring blade, and a thermometer was charged with 80 g of polycarbonate resin (since the molecular weight of the repeating unit of the polycarbonate resin was 254 g / mol, the number of moles of the repeating unit = 80 g ÷ 254 g / mol = 0.31 mol), 240 g of phenol, 1 g of methanol (1 g ÷ 32 g / mol = 0.031 mol; the molar ratio of methanol to 1 mole of the repeating unit of the polycarbonate resin = 0.031 mol ÷ 0.31 mol = 0.1), and 0.3 g of sodium hydroxide (0.3 g ÷ 40 g / mol = 7.5 mmol; the molar ratio of sodium hydroxide to 1 mole of the repeating unit of the polycarbonate resin = 7.5 mmol ÷ 0.31 mol = 0.02) at room temperature under a nitrogen atmosphere (the liquid volume was 80 g + 240 g + 1 g + 0.3 g = 321 g).
[0339] The internal temperature was then raised to 85° C. When the reaction temperature reached 85° C., undissolved polycarbonate resin was observed in the reaction solution (it was in a slurry state). The reaction was continued for 3 hours while maintaining the temperature at 85° C., and a homogeneous reaction solution was obtained.
[0340] The composition of a portion of the resulting reaction liquid was confirmed by gas chromatography, and it was confirmed that 0.7% by mass of methyl phenyl carbonate was produced (production rate: 0.7 ÷ 100 × 321 g ÷ 152 g / mol ÷ 0.31 mol = 5 mol%). No production of dimethyl carbonate was observed. In addition, production of bisphenol A was confirmed.
[0341] [Example 13] The same procedure as in Example 12 was repeated except that 17 g of methanol was used instead of 1 g of methanol (17 g ÷ 32 g / mol = 0.53 mol, molar ratio of methanol to 1 mole of repeating unit of polycarbonate resin = 0.53 mol ÷ 0.31 mol = 1.7) (liquid volume: 80 g + 240 g + 17 g + 0.3 g = 337 g).
[0342] The composition of a portion of the resulting reaction solution was confirmed by high performance liquid chromatography, confirming that methyl phenyl carbonate was produced at 3.7 mass% (production rate: 3.7 ÷ 100 × 337 g ÷ 152 g / mol ÷ 0.31 mol = 26 mol%) and dimethyl carbonate at 1.9 mass% (production rate: 1.9 ÷ 100 × 337 g ÷ 90 g / mol ÷ 0.31 mol = 23 mol%). In addition, the production of bisphenol A was confirmed.
[0343] [Example 14] The same procedure as in Example 12 was repeated, except that 17 g of methanol was used instead of 1 g of methanol (17 g ÷ 32 g / mol = 0.53 mol, molar ratio of methanol to 1 mole of repeating units of polycarbonate resin = 0.53 mol ÷ 0.31 mol = 1.7), and 4.8 g of triethylamine was used instead of 0.3 g of sodium hydroxide (4.8 g ÷ 101 g / mol = 0.05 mol, molar ratio of triethylamine to 1 mole of repeating units of polycarbonate resin = 0.05 mol ÷ 0.31 mol = 0.16) (liquid volume: 80 g + 240 g + 17 g + 4.8 g = 342 g).
[0344] The composition of a portion of the resulting reaction solution was confirmed by high performance liquid chromatography, confirming that 10.2% by mass of methyl phenyl carbonate (production rate: 10.2 ÷ 100 × 342 g ÷ 152 g / mol ÷ 0.31 mol = 74 mol%) and 1.6% by mass of dimethyl carbonate (production rate: 1.6 ÷ 100 × 342 g ÷ 90 g / mol ÷ 0.31 mol = 20 mol%) were produced. In addition, production of bisphenol A was confirmed.
[0345] [Example 15] The same procedure as in Example 12 was repeated except that 40 g of methanol was used instead of 1 g of methanol (40 g ÷ 32 g / mol = 1.25 mol, molar ratio of methanol to 1 mol of repeating unit of polycarbonate resin = 1.25 mol ÷ 0.31 mol = 4.0) (liquid volume: 80 g + 240 g + 40 g + 0.3 g = 360 g).
[0346] The composition of a portion of the resulting reaction solution was confirmed by high-performance liquid chromatography. No methyl phenyl carbonate was found to be produced. Dimethyl carbonate was found to be produced at 3.7% by mass (production rate: 3.7 ÷ 100 × 360 g ÷ 90 g / mol ÷ 0.31 mol = 48 mol%). Bisphenol A was also confirmed to be produced.
[0347] The molar ratio of methanol to 1 mole of repeating units of PC (polycarbonate resin), the type of catalyst used, and the amount of methyl phenyl carbonate produced in Examples 12 to 15 are summarized in Table 4. Table 4 shows that when the molar ratio of methanol to 1 mole of repeating units of polycarbonate resin is less than 2, a large amount of methyl phenyl carbonate is produced.
[0348] [Table 4]
[0349] [Example 16] The same procedure as in Example 12 was repeated except that 43 g of butanol was used instead of 1 g of methanol (43 g ÷ 74 g / mol = 0.58 mol, molar ratio of butanol to 1 mole of repeating unit of polycarbonate resin = 0.58 mol ÷ 0.31 mol = 1.9) (liquid volume: 80 g + 240 g + 43 g + 0.3 g = 363 g).
[0350] The composition of a portion of the resulting reaction solution was confirmed by high performance liquid chromatography, confirming that butylphenyl carbonate was 8.4% by mass (production rate: 8.4 ÷ 100 × 363 g ÷ 194 g / mol ÷ 0.31 mol = 51 mol%) and dibutyl carbonate was 0.7% by mass (production rate: 0.7 ÷ 100 × 363 g ÷ 174 g / mol ÷ 0.31 = 5 mol%). In addition, production of bisphenol A was confirmed.
[0351] [Example 17] A jacketed separable flask equipped with a Dimroth condenser, a stirring blade, and a thermometer was charged with 200 g of polycarbonate resin (since the molecular weight of the repeating unit of the polycarbonate resin was 254 g / mol, the number of moles of the repeating unit = 200 g ÷ 254 g / mol = 0.79 mol), 600 g of phenol, 45 g of methanol (45 g ÷ 32 g / mol = 1.41 mol; the molar ratio of methanol to 1 mole of repeating unit of the polycarbonate resin = 1.41 mol ÷ 0.79 mol = 1.8), and 2.4 g of sodium hydroxide (2.4 g ÷ 40 g / mol = 0.06 mol; the molar ratio of sodium hydroxide to 1 mole of repeating unit of the polycarbonate resin = 0.06 mol ÷ 0.79 mol = 0.08) at room temperature under a nitrogen atmosphere (the liquid volume was 200 g + 600 g + 45 g + 2.4 g = 847 g).
[0352] The internal temperature was then raised to 85° C. When the reaction temperature reached 85° C., undissolved polycarbonate resin was observed in the reaction solution (it was in a slurry state). The reaction was continued for 3 hours while maintaining the temperature at 85° C., and a homogeneous reaction solution was obtained.
[0353] The composition of a portion of the resulting reaction solution was confirmed by gas chromatography, and it was confirmed that methyl phenyl carbonate was produced in an amount of 4.2 mass% (production rate: 4.2 ÷ 100 × 847 g ÷ 152 g / mol ÷ 0.79 mol = 30 mol%). In addition, the production of dimethyl carbonate and bisphenol A was confirmed.
[0354] 10 g of 10% by mass hydrochloric acid was added to the resulting reaction liquid to neutralize the sodium hydroxide and terminate the reaction, thereby obtaining a mixed liquid.
[0355] The resulting mixture was filtered and then placed in a flask equipped with a pressure reducer, a thermometer, and a distillation tube, and the flask was immersed in an oil bath set to 120°C under normal pressure to distill off unreacted methanol, dimethyl carbonate, and water.
[0356] Thereafter, the pressure was adjusted to 1 kPa, and the oil bath was heated to 160°C to distill off phenol.
[0357] The temperature of the oil bath was further increased to 175°C, yielding 28 g of methyl phenyl carbonate.
[0358] [Example 18] A flask equipped with a pressure reducing device, a thermometer, and a distillation tube was charged with 28 g of the methyl phenyl carbonate obtained in Example 17 and 1 g of tetraphenoxytitanium, and the flask was immersed in an oil bath at 40°C. The pressure was adjusted to 1 kPa, and the temperature was gradually increased to 185°C, allowing the reaction to proceed while distilling off dimethyl carbonate. The oil bath was then set to 210°C, yielding 11 g of diphenyl carbonate.
[0359] [Example 19] A 45 mL glass reactor equipped with a stirrer and a distillation tube was charged with 10.00 g (0.04 mol) of bisphenol A, 9.95 g (0.05 mol) of the diphenyl carbonate obtained in Example 18, and 18 μL of a 400 ppm by mass aqueous cesium carbonate solution. The glass reactor was depressurized to approximately 100 Pa, and then the pressure was returned to atmospheric pressure with nitrogen. This operation was repeated three times to replace the inside of the reactor with nitrogen. The reactor was then immersed in an oil bath at 220°C to dissolve the contents.
[0360] The stirrer rotation speed was set to 100 revolutions per minute, and the pressure inside the reaction vessel was reduced from 101.3 kPa to 13.3 kPa absolute pressure over 40 minutes while distilling off phenol, which was a by-product of the oligomerization reaction of bisphenol A and diphenyl carbonate inside the reaction vessel.
[0361] Subsequently, the pressure inside the reaction vessel was maintained at 13.3 kPa, and the transesterification reaction was carried out for 80 minutes while further distilling off phenol.
[0362] Thereafter, the temperature outside the reactor was raised to 290°C, and the pressure inside the reactor was reduced from 13.3 kPa to 399 Pa absolute over 40 minutes, and the distilled phenol was removed from the system.
[0363] Thereafter, the absolute pressure in the reaction vessel was reduced to 30 Pa, and the polycondensation reaction was carried out. The polycondensation reaction was terminated when the agitator in the reaction vessel reached a predetermined agitation power. The time from raising the temperature to 290°C to completing the polymerization was 120 minutes.
[0364] The reactor was then pressurized with nitrogen to an absolute pressure of 101.3 kPa, and then the pressure was increased to a gauge pressure of 0.2 MPa. The polycarbonate resin was extracted from the reactor to obtain a polycarbonate resin having a viscosity average molecular weight (Mv) of 25,800. [Industrial Applicability]
[0365] According to the decomposition method of the present invention, useful compounds such as bisphenols can be obtained from waste plastics and the like by utilizing chemical recycling. Furthermore, these compounds can be used to re-produce polycarbonate resin, which is industrially useful.
Claims
1. A method for decomposing a polycarbonate resin, comprising decomposing the polycarbonate resin in a slurry-like reaction liquid containing the polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst, the method comprising: a molar ratio of the aliphatic monoalcohol to 1 mole of the repeating unit of the polycarbonate resin is 0.1 or more and 6.0 or less; a molar ratio of the aliphatic monoalcohol to the aromatic monoalcohol of 0.05 or more and 0.7 or less.
2. a preparation step of preparing a slurry-like reaction liquid containing a polycarbonate resin, an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst; a decomposition reaction step in which the polycarbonate resin is decomposed in the slurry-like reaction liquid prepared in the preparation step; A method for decomposing a polycarbonate resin comprising: a molar ratio of the aliphatic monoalcohol to 1 mole of the repeating unit of the polycarbonate resin is 0.1 or more and 6.0 or less; a molar ratio of the aliphatic monoalcohol to the aromatic monoalcohol of 0.05 or more and 0.7 or less.
3. 3. The method for decomposing a polycarbonate resin according to claim 1, wherein the catalyst is any one selected from the group consisting of alkali metal hydroxides, alkali metal carbonates, alkylamines, and acids.
4. 4. The method for decomposing a polycarbonate resin according to claim 3, wherein the alkylamine is represented by the following formula (I): 【Chemistry 1】 In the formula, R A represents an alkyl group having 1 to 3 carbon atoms, and R B ~R C each independently represents a hydrogen atom or an alkyl group having 1 to 3 carbon atoms.
5. 4. The method for decomposing a polycarbonate resin according to claim 3, wherein the alkylamine is a tertiary amine.
6. 6. The method for decomposing a polycarbonate resin according to claim 3, wherein in the slurry reaction liquid, a molar ratio of the alkylamine to 1 mole of the repeating unit of the polycarbonate resin is 4.5 or less.
7. 4. The method for decomposing a polycarbonate resin according to claim 3, wherein the alkali metal hydroxide is sodium hydroxide or potassium hydroxide.
8. 4. The method for decomposing a polycarbonate resin according to claim 3, wherein the acid is any one selected from the group consisting of sulfuric acid, phosphoric acid, and sulfonic acid.
9. 9. The method for decomposing a polycarbonate resin according to claim 1, wherein the aromatic monoalcohol is any one selected from the group consisting of phenol, cresol, and xylenol.
10. 10. The method for decomposing a polycarbonate resin according to claim 1, wherein the aliphatic monoalcohol is any one selected from the group consisting of methanol, ethanol, and n-butanol.
11. 11. The method for decomposing a polycarbonate resin according to claim 1, wherein the reaction temperature for decomposing the polycarbonate resin is 60°C or higher and 120°C or lower.
12. a decomposition step of decomposing a polycarbonate resin using the method for decomposing a polycarbonate resin according to any one of claims 1 to 11; The method for producing bisphenol further comprises a bisphenol recovery step of recovering bisphenol produced by decomposition of the polycarbonate resin.
13. The method for producing bisphenol according to claim 12, wherein the bisphenol is 2,2-bis(4-hydroxyphenyl)propane.
14. a decomposition step of decomposing a polycarbonate resin using the method for decomposing a polycarbonate resin according to any one of claims 1 to 11; a dialkyl carbonate recovery step of recovering a dialkyl carbonate produced by decomposition of the polycarbonate resin, In the slurry reaction liquid, the molar ratio of the aliphatic monoalcohol to 1 mole of the repeating unit of the polycarbonate resin is 2.0 or more and 6.0 or less.
15. a polycarbonate resin decomposition step in which a polycarbonate resin is decomposed in the presence of an aromatic monoalcohol, an aliphatic monoalcohol, and a catalyst; an alkylaryl carbonate recovery step of recovering an alkylaryl carbonate produced by decomposition of the polycarbonate, a molar ratio of the aliphatic monoalcohol to 1 mole of the repeating unit of the polycarbonate resin is 0.1 or more and less than 2.0; a molar ratio of the aliphatic monoalcohol to the aromatic monoalcohol of 0.05 or more and 0.7 or less.
16. a decomposition step of decomposing a polycarbonate resin using the method for decomposing a polycarbonate resin according to any one of claims 1 to 11; an alkylaryl carbonate recovery step of recovering an alkylaryl carbonate produced by decomposition of the polycarbonate resin; a molar ratio of the aliphatic monoalcohol to 1 mole of the repeating unit of the polycarbonate resin of 0.1 or more and less than 2.0;
17. the aromatic monoalcohol is phenol, The method for producing an alkylaryl carbonate according to claim 15 or 16, wherein the alkylaryl carbonate is an alkylphenyl carbonate.
18. A method for producing a diaryl carbonate, comprising: obtaining a dialkyl carbonate by the method for producing a dialkyl carbonate according to claim 14; and producing a diaryl carbonate using the obtained dialkyl carbonate.
19. A method for producing a diaryl carbonate, comprising: obtaining an alkyl aryl carbonate by the method for producing an alkyl aryl carbonate according to any one of claims 15 to 17; and producing a diaryl carbonate using the obtained alkyl aryl carbonate.
20. A method for producing a recycled polycarbonate resin, comprising: a step of obtaining bisphenol by the method for producing bisphenol according to claim 12 or 13; and a step of producing a recycled polycarbonate resin using a bisphenol raw material containing the obtained bisphenol.
21. A method for producing a recycled polycarbonate resin, comprising: a step of obtaining a diaryl carbonate by the method for producing a diaryl carbonate according to claim 18 or 19; and a step of producing a recycled polycarbonate resin using a diaryl carbonate raw material containing the obtained diaryl carbonate.
22. A method for producing an epoxy resin, comprising the steps of: obtaining bisphenol by the method for producing bisphenol according to claim 12 or 13; and producing an epoxy resin using the obtained bisphenol.
23. The method for producing an epoxy resin according to claim 22, further comprising reacting the epoxy resin with a polyhydric hydroxy compound raw material.
24. A method for producing a cured epoxy resin product, comprising: obtaining an epoxy resin by the method for producing an epoxy resin according to claim 22 or 23; and curing an epoxy resin composition containing the obtained epoxy resin and a curing agent to obtain a cured epoxy resin product.
Citation Information
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