Method for manufacturing a urethane composition

By reacting thiourethane resin with alcohol under high temperature and pressure, the method addresses the issue of catalytic by-product generation, improving the yield of polythiol compositions and enabling effective recycling of thiourethane resin for optical materials.

JP2026067699APending Publication Date: 2026-04-21NAGASAKI UNIVERSITY +1
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
NAGASAKI UNIVERSITY
Filing Date
2024-10-09
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

The generation of by-products with catalytic activity during the decomposition of thiourethane resin in an aqueous system reduces the yield of the polythiol composition, which has not been effectively addressed in previous methods.

Method used

A method involving the reaction of thiourethane resin with an alcohol under high temperature and high pressure conditions, suppressing the formation of catalytically active by-products and producing a urethane composition that does not exhibit catalytic activity towards the polythiol composition.

Benefits of technology

This approach allows for the production of a urethane composition that effectively suppresses the generation of catalytically active by-products, enhancing the yield and enabling the reuse of thiourethane resin in the production of polythiol compositions for optical materials.

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Abstract

The present invention provides a method for producing a urethane composition that suppresses the generation of by-products that exhibit catalytic activity towards the polythiol composition during the decomposition of thiourethane resin, thereby enabling the production of a urethane composition that does not exhibit catalytic activity towards the polythiol composition. [Solution] A method for producing a urethane composition, comprising a reaction step of reacting a thiourethane resin with an alcohol under high temperature and high pressure reaction conditions to produce a urethane composition.
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Description

[Technical Field]

[0001] This disclosure relates to a method for producing a urethane composition. [Background technology]

[0002] Plastic lenses, which contain resin, are lighter, less prone to breakage, and can be dyed compared to inorganic lenses, and have therefore become rapidly popular in recent years for applications such as eyeglass lenses and camera lenses. For example, various studies have been conducted on lenses containing thiourethane resin.

[0003] For the production of thiourethane resin, raw materials (hereinafter also referred to as "thiourethane resin raw materials") include, for example, polythiol compositions such as 4,8-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane and polyisocyanate compounds such as m-xylylene diisocyanate (XDI). Polyisocyanate compounds are produced, for example, from polyamine compounds. Polyamine compounds, which are raw materials for polyisocyanate compounds, also fall under the category of thiourethane resin raw materials (i.e., raw materials for producing thiourethane resin).

[0004] Lenses containing thiourethane resin (e.g., eyeglass lenses) are manufactured by machining molded bodies containing thiourethane resin. As a result, the lens manufacturing process can generate large amounts of waste, such as machining dust containing thiourethane resin. Furthermore, the manufacturing process of molded bodies containing thiourethane resin can result in defective molded or machined products. Such waste has typically been incinerated or landfilled without being effectively utilized (i.e., recycled). Therefore, from the viewpoint of effective utilization of materials, a technology has been developed to produce polythiol compositions by reacting cutting powder containing thiourethane resin, molded or processed defective products, which are considered waste materials, with other materials (see, for example, Patent Document 1). [Prior art documents] [Patent Documents]

[0005] [Patent Document 1] International Publication No. 2021 / 157701 [Overview of the Initiative] [Problems that the invention aims to solve]

[0006] There have been no previous reports of obtaining a polythiol composition by decomposing thiourethane resin in an aqueous system. Therefore, the problem that "when decomposing thiourethane resin in an aqueous system, by-products that exhibit catalytic activity towards the polythiol composition are generated, reducing the yield of the polythiol composition" is a novel problem that has not existed before. As a result of diligent research, the present inventors have discovered the above problem and arrived at the present invention, which involves decomposing a thiourethane resin with an alcohol-based solution to obtain a urethane composition that does not exhibit catalytic activity toward the polythiol composition.

[0007] Under these circumstances, one aspect of the present disclosure aims to provide a method for producing a urethane composition that suppresses the generation of by-products that exhibit catalytic activity with respect to the polythiol composition when a thiourethane resin is decomposed, and that allows for the production of a urethane composition that does not exhibit catalytic activity with respect to the polythiol composition. [Means for solving the problem]

[0008] Embodiments of this disclosure relate to the following [1] to [9]. [1] A method for producing a urethane composition, comprising a reaction step of reacting a thiourethane resin with an alcohol under high temperature and high pressure reaction conditions to produce a urethane composition. [2] A method for producing the urethane composition according to [1] above, wherein the reaction temperature under the reaction conditions is greater than 130°C and 270°C or less. [3] A method for producing a urethane composition according to [1] or [2] above, wherein the reaction pressure under the reaction conditions is 2.0 MPa or more and less than 22.0 MPa. [4] A method for producing a urethane composition according to any one of [1] to [3] above, wherein the reaction time under the reaction conditions is 0.3 to 20 hours. [5] The alcohol having 1 to 20 carbon atoms, a method for producing the urethane composition according to any one of [1] to [4] above. [6] The method for producing a urethane composition according to any one of [1] to [5] above, wherein the alcohol is at least one selected from the group consisting of methanol, ethanol, n-propanol, isopropanol, n-butanol, t-butanol, 1-octanol, 2-octanol, benzyl alcohol, and 2-hexyl-1-decanol. [7] A method for producing a urethane composition according to any one of [1] to [6] above, wherein the reaction step is carried out under a carbon dioxide atmosphere. [8] A method for producing a urethane composition according to any one of [1] to [7] above, wherein the polythiol composition comprises at least one selected from the group consisting of 4-mercaptomethyl-1,8-dimercapto-3,6-dithiaoctane, 4,8-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, and 5,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane. [9] A method for producing the urethane composition according to any one of [1] to [8] above, wherein the urethane composition comprises xylylene dicarbamate. [Effects of the Invention]

[0009] According to one aspect of this disclosure, it is possible to provide a method for producing a urethane composition that suppresses the generation of by-products that exhibit catalytic activity with respect to the polythiol composition when a thiourethane resin is decomposed, and that allows for the production of a urethane composition that does not exhibit catalytic activity with respect to the polythiol composition. [Modes for carrying out the invention]

[0010] The following description is based on an example of an embodiment of the present disclosure. However, the embodiment shown below is illustrative for embodying the technical concept of the present disclosure, and the present disclosure is not limited to the following description. This disclosure also includes any selected or combined forms of the information described herein. In this specification, any provision deemed preferable can be selected at will, and any combination of preferred provisions is considered more preferable. In this specification, the notation "XX~YY" means "XX or greater and YY or less". In this specification, the lower and upper limits described in steps for a preferred numerical range (e.g., range of content, etc.) can be combined independently. For example, from the description "preferably 10 to 90, more preferably 30 to 60", the "preferred lower limit (10)" and the "more preferred upper limit (60)" can be combined to arrive at "10 to 60". In this specification, the amount of each component contained in a composition means the total amount of any multiple substances present in the composition, unless otherwise specified. In this specification, the term "process" includes not only independent processes but also processes that cannot be clearly distinguished from other processes, provided that their intended purpose is achieved. In this specification, the term "reaction system" means "the reaction system of the reaction step in the method for producing a urethane composition." In this specification, "room temperature" refers to the ambient temperature without temperature control such as heating or cooling, and is generally 20°C. In this specification, the term "high temperature" means "temperature above 130°C." In this specification, the term "high pressure" means "a pressure of 2 MPa or higher." In addition, the reaction system in the reaction process may contain optional components such as carbon dioxide and nitrogen in addition to the essential components consisting of the thiourethane resin and alcohol. Therefore, the content (% by mass) in the reaction system means the content (% by mass) when the total content of the essential components and optional components in the reaction system is 100% by mass. In this specification, when it is said that a reaction system (composition) "contains a certain component (hereinafter referred to as 'component X') as a main component", it means that the content of component X (when component X consists of two or more compounds, the total content of the two or more compounds) is 50% by mass or more with respect to the total amount of the reaction system (composition). The content of component X which is the main component is preferably 60% by mass or more, more preferably 70% by mass or more, and particularly preferably 80% by mass or more with respect to the total amount of the reaction system (composition).

[0011] [Method for producing urethane composition] The method for producing a urethane composition according to an embodiment of the present disclosure includes a reaction step of reacting a thiourethane resin and an alcohol under high-temperature and high-pressure reaction conditions to produce a urethane composition. Since the method for producing a urethane composition according to an embodiment of the present disclosure reacts a thiourethane resin and an alcohol under high-temperature and high-pressure reaction conditions, when decomposing the thiourethane resin, generation of by-products showing a catalytic action on the polythiol composition is suppressed, and a urethane composition showing no catalytic action on the polythiol composition can be obtained (for example, refer to the following reaction formula (1) and the following reaction formula (1-1)).

[0012] [Chemical formula] ···(1) [Chemical formula] ···(1-1)

[0013] Also, R in the reaction formula (1) 1This is given by equations (a-1), (a-2), (a-3), (a-4), (a-5), (a-6), (a-7), or (a-8): [ka] (In the formula, * represents the bonding site with the nitrogen atom of the thiourethane bond in reaction formula (1), R 4 is a substituent, which will be described later. n is an integer from 0 to 4. If n is any integer from 2 to 4, R 4 The elements may be the same or they may be different. It is preferable to include a structure represented by ( ).

[0014] R in reaction equation (1) 2 This is given by equations (b-1), (b-2), (b-3), (b-4), (b-5), or (b-6): [ka] It is preferable that the structure includes the structure represented by (wherein * is the bonding site with the sulfur atom of the thiourethane bond in reaction formula (1).)

[0015] The reaction equation (1-1) is R 1 Equation (a-1) is given by R 2 This shows an example of reaction equation (1) when equation (b-1) is given.

[0016] R in reaction equation (1) and reaction equation (1-1) 3 There are no particular restrictions on the number of carbon atoms, but it is preferably 1 to 20, more preferably 1 to 10, and most preferably 1 to 4. R in reaction equation (1) and reaction equation (1-1) 3 There are no particular restrictions on the OH group, and examples include methanol, ethanol, n-propanol, isopropanol, n-butanol, t-butanol, 1-octanol, 2-octanol, benzyl alcohol, and 2-hexyl-1-decanol. These may be used individually or in combination of two or more. Among these, methanol, ethanol, n-propanol, n-butanol, and t-butanol are preferred.

[0017] R 4 The substituents represented by have no particular limitation. For example, each independently, a hydroxy group; a linear or branched alkyl group having 1 to 18 carbon atoms such as a methyl group, an ethyl group, a propyl group, a butyl group, a pentyl group, a hexyl group; a monocyclic or bicyclic ring such as a cyclopentyl group or a cyclohexyl group, etc. A cyclic aliphatic alkyl group having 5 to 18 carbon atoms; a linear or branched alkoxy group having 1 to 24 constituent atoms such as a methoxy group, an ethoxy group, a butoxy group; a non-aromatic cyclic substituent having 1 to 24 constituent atoms; a trifluoromethyl group, etc. A linear or branched perfluoroalkyl group having 1 to 18 carbon atoms; a linear or branched perfluoroalkoxy group such as a trifluoromethoxy group; a linear or branched alkylsulfide group having 1 to 24 constituent atoms such as a methylsulfide group, an ethylsulfide group, a butylsulfide group; a phenyl group, a naphthyl group, an anthracenyl group, a fluoranthenyl group, a phenanthryl group, a pyranyl group, a perylenyl group, a styryl group, a fluorenyl group, etc. An aryl group; an aryloxy group such as a phenyloxy group; an arylsulfide group such as a phenylsulfide group; a heterocyclic group such as a pyridyl group, a furanyl group, a thienyl group, a pyrrolyl group, a benzofuranyl group, a benzothiophenyl group, an indolyl group, a dibenzofuranyl group, a dibenzothiophenyl group, a carbazolyl group, a diazolyl group, a triazolyl group, a quinolinyl group, a phenothiazinyl group, a phenoxazinyl group, a phenazinyl group, a thianthrenyl group, an acridinyl group, etc. An amino group (-NH2); a monoalkylamino group such as a monomethylamino group; a dialkylamino group such as a dimethylamino group; a monoarylamino group such as a monophenylamino group; a diarylamino group such as a diphenylamino group; a cyclic amino group such as a piperidino group, a morpholino group, a thiomorpholino group, a tetrahydroquinolino group, a tetrahydroisoquinolino group; an ethynyl group; a mercapto group; a silyl group; a sulfonic acid group; an alkylsulfonyl group; a formyl group; a carboxy group; a cyano group; a halogen atom such as a fluorine atom, a chlorine atom, a bromine atom, an iodine atom; and the like.

[0018] A method for producing a urethane composition according to the embodiments of this disclosure includes at least a reaction step, and optionally includes other steps such as a separation step, a classification step, a sieving step, a washing step, and a crushing (grinding) step. The following describes each step that may be included in the manufacturing method of the urethane composition.

[0019] [[Reaction Process]] The reaction step involves reacting a thiourethane resin with an alcohol under high temperature and high pressure conditions to produce a urethane composition. It is preferable to also produce a polythiol composition during this reaction step. Furthermore, it is preferable to introduce carbon dioxide into the reaction system to improve the yield of the polythiol composition. The reason why alcohol is essential in the reaction process is that, as can be seen from Comparative Example 1 described later, if water is used instead of alcohol, a urethane composition cannot be obtained, and if alcohol is not used, a urethane composition cannot be obtained. Since the urethane compound does not act as a catalyst for the polythiol composition, a decrease in the yield of the polythiol composition can be suppressed. The reason for carrying out the reaction under high-temperature conditions in the reaction process is that, as can be seen from the fact that a polythiol composition cannot be obtained in Comparative Example 2 (130°C), which will be described later, a temperature higher than 130°C is required to obtain the polythiol composition. The reason for carrying out the reaction under high pressure conditions during the reaction process is that the decomposition reaction will not occur unless the initial pressurized pressure is 2.0 MPa or higher.

[0020] <Thiourethane resin> Thiourethane resin is the starting material in this process and in the method for producing urethane compositions. There are no particular restrictions on the thiourethane resin, and examples include thiourethane resins described in publicly available documents such as Japanese Patent Publication No. 63-46213, Japanese Patent Publication No. 2-270859, Japanese Patent Publication No. 7-252207, and International Publication No. 2008 / 047626.

[0021] Thiourethane resins are typically produced as reaction products using polyisocyanate compounds and polythiol compositions as raw materials.

[0022] Preferably, the thiourethane resin is recovered during at least one of the following processes: the manufacturing process of eyeglass lenses, the manufacturing process of eyeglasses, and the disposal process of eyeglasses. According to this embodiment, recycling of the thiourethane resin, which is a material for eyeglass lenses, is achieved. Here, the manufacturing process of eyeglass lenses refers to the process of producing resin by mixing monomers, which are the raw materials for resin, and casting polymerization, and / or the process of obtaining eyeglass lenses by cutting and shaping the resin molded body; the manufacturing process of eyeglasses refers to the process of producing eyeglasses by combining eyeglass lenses with other components such as eyeglass frames; and the disposal process of eyeglasses refers to the process of disposing of eyeglasses that have been manufactured but are no longer needed, used eyeglasses, etc. In either process, thiourethane resin, the material used for eyeglass lenses, may be generated as waste. It is preferable to use the thiourethane resin produced in at least one of these processes as a starting material, and to react this thiourethane resin with an alcohol and, if necessary, an optional component such as carbon dioxide or nitrogen, under high temperature and high pressure reaction conditions to obtain a urethane composition which is a decomposition product of the thiourethane resin.

[0023] As described above, the method for producing the urethane composition of this disclosure makes it possible to reduce the amount of thiourethane resin that is incinerated by using used thiourethane resin for the production of the urethane composition, and as a result it is possible to reduce the generation of greenhouse gases such as carbon dioxide, sulfur oxides, nitrogen oxides, and other air pollutants. The method for producing the urethane composition of this disclosure makes it possible to reduce the generation of carbon dioxide, nitric oxide, and sulfur dioxide.

[0024] The above starting materials preferably include cutting powder containing thiourethane resin. In the reaction step for producing the urethane composition in this embodiment, the thiourethane resin, the alcohol, and the optional component are brought into contact under high temperature and high pressure conditions, thereby causing the thiourethane resin, the alcohol, and the optional component to react under high temperature and high pressure conditions. In this embodiment, the reactivity between the thiourethane resin in the starting material, the alcohol, and the above-mentioned optional component is superior, making it possible to produce the urethane composition more effectively.

[0025] (Powder containing thiourethane resin) In the reaction process, it is preferable to contact a powder containing thiourethane resin (hereinafter also referred to as "thiourethane resin powder") with alcohol and an optional component such as carbon dioxide or nitrogen under high temperature and high pressure conditions, thereby reacting the thiourethane resin in the powder with the alcohol and the optional component under high temperature and high pressure conditions. This makes it possible to further improve the reaction efficiency between the thiourethane resin, the alcohol and the optional component. There are no particular restrictions on the method of bringing the thiourethane resin, the alcohol, and the optional component into contact. For example, one method is to introduce the thiourethane resin powder, the alcohol, and the optional component into a reaction vessel and stir them. In this example, there are no particular restrictions on the order in which the thiourethane resin powder, the alcohol, and the optional component are introduced into the reaction vessel.

[0026] The thiourethane resin powder is not particularly limited, but is preferably cutting powder (including the concept of abrasive powder; the same applies hereinafter) from a molded article containing thiourethane resin and / or the cutting powder that has been sieved (i.e., cutting powder that has passed through the sieve). Cutting powder from molded bodies containing thiourethane resin is generated, for example, when manufacturing optical materials (e.g., lenses) by cutting molded bodies containing thiourethane resin. Furthermore, the thiourethane resin powder may also be a lump powder obtained by crushing and / or grinding a molded body containing thiourethane resin.

[0027] There are no particular restrictions on the content of thiourethane resin in the reaction system of the reaction step, but from the viewpoint of further improving the reactivity of the thiourethane resin, it is preferably 1.0 to 50.0% by mass, more preferably 1.5 to 40.0% by mass, and particularly preferably 2.0 to 30.0% by mass.

[0028] (Polyisocyanate composition as a raw material for thiourethane resin) The polyisocyanate composition used as a raw material for the thiourethane resin may consist of only one type or two or more types. The polyisocyanate composition used as a raw material for thiourethane resin preferably contains a polyisocyanate compound that has two or more isocyanate groups. There are no particular limitations on specific examples of polyisocyanate compounds, and examples include pentamethylene diisocyanate, hexamethylene diisocyanate, m-xylylene diisocyanate, p-xylylene diisocyanate, isophorone diisocyanate, bis(isocyanatomethyl)cyclohexane, bis(isocyanatocyclohexyl)methane, 2,5-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane, 2,6-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane, tolylene diisocyanate, 4,4'-diphenylmethane diisocyanate, phenylene diisocyanate, etc. These may be used individually or in combination of two or more.

[0029] (Polythiol composition as a raw material for thiourethane resin) The polythiol composition used as a raw material for thiourethane resin may consist of only one polythiol compound or two or more polythiol compounds. The polythiol composition used as a raw material for thiourethane resin only needs to contain a polythiol compound containing two or more thiol groups (i.e., mercapto groups), and is not particularly limited in any other respect. There are no particular restrictions on specific examples of polythiol compounds, such as 4-mercaptomethyl-1,8-dimercapto-3,6-dithiaoctane, 4,8-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 5,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, pentaerythritol tetrakis(2-mercaptoacetate), pentaerythritol tetrakis(3-mercaptopropionate), 2,5-dimercaptomethyl-1,4-dithiane, bis(2-mercaptoethyl) sulfide, and diethylene glycol. Examples include bis(3-mercaptopropionate), methanedithiol, 1,2-ethanedithiol, 1,2,3-propanetrithiol, tetrakis(mercaptomethylthiomethyl)methane, tetrakis(2-mercaptoethylthiomethyl)methane, tetrakis(3-mercaptopropylthiomethyl)methane, bis(2,3-dimercaptopropyl)sulfide, 2,5-dimercapto-1,4-dithiane, 2,5-dimercaptomethyl-2,5-dimethyl-1,4-dithiane, 1,1,3,3-tetrakis(mercaptomethylthio)propane, 1,1,2,2-tetrakis(mercaptomethylthio)ethane, and 4,6-bis(mercaptomethylthio)-1,3-dithiane. These may be used individually or in combination of two or more.

[0030] (Other components that may be contained in thiourethane resin) The thiourethane resin may contain other components besides a polymer of at least one polyisocyanate compound and a polythiol composition. Other components that may be contained in the thiourethane resin are not particularly limited and include, for example, polymerization catalysts, internal release agents, resin modifiers, chain extenders, crosslinking agents, radical scavengers, light stabilizers, UV absorbers, antioxidants, oil-soluble dyes, fillers, adhesion improvers, antibacterial agents, antistatic agents, dyes, fluorescent whitening agents, fluorescent pigments, inorganic pigments, and the like.

[0031] ((polymerization catalyst)) There are no particular restrictions on the polymerization catalyst, and examples include tertiary amines, inorganic or organic acid salts of tertiary amines, metal compounds such as dimethyltin dichloride, quaternary ammonium salts, and organic sulfonic acids. These may be used individually or in combination of two or more.

[0032] ((Internal release agent)) There are no particular restrictions on the internal release agent; for example, acidic phosphate esters such as phosphate monoesters and phosphate diesters can be used. These may be used individually or in combination of two or more types.

[0033] ((Resin modifier)) There are no particular restrictions on the resin modifiers, and examples include episulfides, epoxy, organic acids, anhydrides of organic acids, (meth)acrylates, olefins, etc. These may be used individually or in combination of two or more types. Note that (meth)acrylate means at least one of acrylate and methacrylate.

[0034] <Alcohol> There are no particular restrictions on the number of carbon atoms in the alcohol in the reaction system of the reaction step, but it is preferably 1 to 20, more preferably 1 to 10, and most preferably 1 to 4. There are no particular restrictions on the alcohol used in the reaction system of the reaction step. Examples include methanol, ethanol, n-propanol, isopropanol, n-butanol, t-butanol, 1-octanol, 2-octanol, benzyl alcohol, and 2-hexyl-1-decanol. These may be used individually or in combination of two or more. Among these, methanol, ethanol, n-propanol, n-butanol, and t-butanol are preferred.

[0035] There are no particular restrictions on the alcohol content in the reaction system of the reaction step, but from the viewpoint of further improving the reactivity with the thiourethane resin, it is preferably 50.0 to 99.0% by mass, more preferably 60.0 to 98.5% by mass, and particularly preferably 70.0 to 98.0% by mass.

[0036] (Amount of alcohol used in the preparation) In the reaction process, the mass ratio of alcohol to thiourethane resin (i.e., mass ratio [alcohol / thiourethane resin]) can be adjusted as appropriate, but is preferably 1 to 70, more preferably 2 to 60, and particularly preferably 3 to 50. When the mass ratio of the preparation [alcohol / thiourethane resin] is 1 or greater, the formation of the urethane composition is further promoted. When the mass ratio of the initial mixture [alcohol / thiourethane resin] is 70 or less, the residual alcohol in the reaction mixture can be further suppressed.

[0037] In the reaction process, the number of millimoles of alcohol added per 1 g of thiourethane resin is preferably 10 to 1000 mmol / g, more preferably 30 to 700 mmol / g, and particularly preferably 50 to 400 mmol / g.

[0038] In the reaction step, the amount of alcohol added to the thiourethane resin (additional amount [alcohol / thiourethane resin]) is preferably 1 to 100, more preferably 2 to 70, and particularly preferably 4 to 40.

[0039] <Carbon dioxide> In the reaction process, carbon dioxide is preferably introduced into the reaction system until the reaction vessel reaches a predetermined initial pressure (2 MPa in this embodiment). There are no particular restrictions on the initial pressure, but it is preferably 0.5 to 5 MPa, more preferably 1 to 4 MPa, and most preferably 1.5 to 3 MPa.

[0040] <Reaction solvent> In the reaction step, the thiourethane resin may be reacted with an alcohol and an optional component such as carbon dioxide or nitrogen in the presence of a reaction solvent. The reaction solvent refers to a reaction solvent other than the alcohol as an optional component, and examples include hydrocarbons having 5 to 12 carbon atoms (preferably 6 to 10, more preferably 7 to 9). These may be used individually or in combination of two or more types.

[0041] The hydrocarbons mentioned above are preferably hexane, heptane, octane, nonane, decane, xylene, mesitylene, or toluene, more preferably heptane, octane, nonane, xylene, mesitylene, or toluene, and particularly preferably xylene or toluene.

[0042] <Reaction temperature> The reaction temperature between the thiourethane resin, alcohol, and optional component in the reaction step is not particularly limited as long as it is high (above 130°C), but is preferably above 130°C and below 270°C, more preferably 135 to 230°C, even more preferably 140 to 230°C, and most preferably 150 to 190°C. If the reaction temperature exceeds 130°C, the decomposition reaction of the thiourethane resin can proceed. The upper limit of the preferred reaction temperature range, 270°C, is the boiling point of methanol at 6.2 MPa. When the reaction temperature is within a preferred range, the yield of the urethane compound as the main component in the target urethane composition (i.e., the content of the main component relative to the total amount of the urethane composition) can be further improved.

[0043] <Reaction pressure> The reaction pressure between the thiourethane resin, alcohol, and optional component in the reaction step is preferably 2.0 MPa or more and less than 22.0 MPa, more preferably 2.0 MPa or more and less than 10.0 MPa, and particularly preferably 2.0 to 7.0 MPa. The lower limit of the preferred reaction pressure range (2.0 MPa) is the initial pressurized pressure. The decomposition reaction will not occur unless the pressure is 2.0 MPa or higher. Keeping the reaction pressure below 22.0 MPa prevents the reaction from reaching a supercritical state, which would make handling the reaction process difficult. When the reaction pressure is less than 10.0 MPa, the conversion rate from thiourethane resin to urethane compound can be improved.

[0044] <Reaction time> The reaction time between the thiourethane resin, alcohol, and optional components in the reaction step can be adjusted as appropriate, but is preferably 0.3 to 20 hours, more preferably 0.5 to 18 hours, and particularly preferably 1 to 8 hours. If the reaction time is above the lower limit, the yield at the optimal temperature (190°C) can be improved. On the other hand, if the reaction time is below the upper limit, it is possible to prevent the yield of the polythiol compound from decreasing due to an excessively long reaction time.

[0045] <Urethane composition> In this disclosure, "urethane composition" means a composition containing at least one urethane compound, and may also contain other components such as polythiol compounds, polyisocyanate compounds, and polyamine compounds. Details of these compounds will be described together in the description of <Polythiol Composition> below. In this disclosure, the urethane compound contained in the urethane composition is also referred to as the "urethane component." The urethane composition preferably contains at least one urethane compound as a main component. Here, "the urethane composition contains at least one urethane compound as a main component" means that the total content of at least one urethane compound relative to the total amount of the urethane composition is 50% by mass or more. The total content of at least one urethane compound relative to the total amount of the urethane composition is preferably 60% by mass or more, more preferably 70% by mass or more, and particularly preferably 80% by mass or more.

[0046] Examples of urethane compositions as target products include urethane compositions containing known urethane compounds.

[0047] The urethane composition used as the target product may have a reduced content of components other than the main component in the urethane composition.

[0048] There are no particular restrictions on the use of the urethane composition as the target material. The urethane composition, as the target product, can be used, for example, in the production of isocyanate compounds. Specific applications of urethane compositions as target products include urethane compositions for the production of isocyanate compounds. In other words, a specific example of the method for producing a urethane composition according to this disclosure is a method for producing a urethane composition for the production of isocyanate compounds. In this specific example, if cutting powder containing thiourethane resin, which is generated when optical materials are manufactured, is used as the starting material, the effective utilization (i.e., recycling) of the material (thiourethane resin) can be effectively realized. Furthermore, in the reaction process described herein, by reacting a thiourethane resin, an alcohol, and an optional component under high temperature and high pressure conditions, the generation of by-products that exhibit catalytic activity toward the polythiol composition during the decomposition of the thiourethane resin is suppressed, and a urethane composition that does not exhibit catalytic activity toward the polythiol composition can be obtained. Therefore, the urethane composition as the target product can be used in the production of isocyanate compounds.

[0049] <Polythiol composition> In this disclosure, "polythiol composition" means a composition containing at least one polythiol compound, and may also contain other components such as urethane compounds, polyamine compounds, and polyisocyanate compounds. In this disclosure, the polythiol compound contained in the polythiol composition is also referred to as the "polythiol component." The polythiol composition preferably contains at least one polythiol compound as a main component. Here, "the polythiol composition contains at least one polythiol compound as a main component" means that the total content of at least one polythiol compound relative to the total amount of the polythiol composition is 50% by mass or more. There are no particular restrictions on the total content of at least one polythiol compound relative to the total amount of the polythiol composition, but it is preferably 60% by mass or more, more preferably 70% by mass or more, and particularly preferably 80% by mass or more.

[0050] Examples of polythiol compositions as target products include polythiol compositions containing known polythiol compounds. The polythiol composition as the target product and the polythiol composition as a raw material for the thiourethane resin as a starting material do not need to be completely identical. However, from the viewpoint of the performance of the thiourethane resin produced by the polythiol composition as the target product, it is preferable that the type of polythiol component as the main component in the polythiol composition as the target product and the type of polythiol component as the main component in the polythiol composition as a raw material are the same.

[0051] The target polythiol composition may have a reduced content of components other than the main component in the polythiol composition.

[0052] There are no particular restrictions on the use of the polythiol composition as the target product. The polythiol composition as the target product can be used, for example, in the production of thiourethane resins. Specific applications of the target polythiol composition include polythiol compositions for the manufacture of optical materials (e.g., eyeglass lenses). When cutting powder containing thiourethane resin, a by-product of manufacturing optical materials, is used as the starting material, the effective utilization (i.e., recycling) of the material (thiourethane resin and its raw material, the polythiol composition) can be effectively achieved. Therefore, even when the target polythiol composition is used in the manufacture of optical materials (e.g., lenses), optical materials with good performance can be obtained. The properties of optical materials include optical properties (e.g., refractive index and / or Abbe number), heat resistance, and specific gravity.

[0053] (Urethane compound) A urethane compound is any compound that contains one or more urethane bonds. There are no particular restrictions on the urethane compound, and examples include xylylene carbamate (the urethane compound represented on the left side of the above reaction formula (1-2)), 1,3-bis(methoxycarbonylaminomethyl)benzene, 1,3-bis(ethoxycarbonylaminomethyl)benzene, 1,3-bis(propoxycarbonylaminomethyl)benzene, and 1,3-bis(butoxycarbonylaminomethyl)benzene. These may be included individually or in combination of two or more types. Among these, urethane compounds represented by xylylenecarbamate (the urethane compound represented on the left side of the above reaction formula (1-2)) are preferred.

[0054] (Polythiol compounds) There are no particular restrictions on polythiol compounds, as long as they contain two or more thiol groups (also known as mercapto groups).

[0055] There are no particular restrictions on the polythiol compound, but suitable examples include 4-mercaptomethyl-1,8-dimercapto-3,6-dithiaoctane, 4,8-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 5,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, pentaerythritol tetrakis(2-mercaptoacetate), pentaerythritol tetrakis(3-mercaptopropionate), 2,5-dimercaptomethyl-1,4-dithiane, bis(2-mercaptoethyl) sulfide, and diethylene glycol bis(3-mercaptopropionate). These may be used individually or in combination of two or more. The polythiol composition may also contain at least one other component (for example, other polythiol compounds, components other than polythiol compounds, etc.) in addition to the polythiol compound contained as the main component.

[0056] Other polythiol compounds are not particularly limited and include, for example, methanedithiol, 1,2-ethanedithiol, 1,2,3-propanetrithiol, tetrakis(mercaptomethylthiomethyl)methane, tetrakis(2-mercaptoethylthiomethyl)methane, tetrakis(3-mercaptopropylthiomethyl)methane, bis(2,3-dimercaptopropyl)sulfide, 2,5-dimercapto-1,4-dithiane, 2,5-dimercaptomethyl-2,5-dimethyl-1,4-dithiane, 1,1,3,3-tetrakis(mercaptomethylthio)propane, 1,1,2,2-tetrakis(mercaptomethylthio)ethane, 4,6-bis(mercaptomethylthio)-1,3-dithiane, and the like. These may be included individually or in combination of two or more.

[0057] (Polyamine compounds) A polyamine compound can be any compound containing two or more amino groups. There are no particular restrictions on the polyamine compounds used, and examples include pentamethylenediamine, hexamethylenediamine, m-xylylenediamine, p-xylylenediamine, isophoronediamine, bis(aminomethyl)cyclohexane, bis(aminocyclohexyl)methane, 2,5-bis(aminomethyl)bicyclo-[2.2.1]-heptane, 2,6-bis(aminomethyl)bicyclo-[2.2.1]-heptane, tolylenediamine, 4,4'-diphenylmethanediamine, phenylenediamine, norbornanediamine, and the like. These may be used individually or in combination of two or more. Among these, m-xylylenediamine, 2,5-bis(aminomethyl)bicyclo-[2.2.1]-heptane, 2,6-bis(aminomethyl)bicyclo-[2.2.1]-heptane, and norbornanediamine are preferred, with m-xylylenediamine and norbornanediamine being more preferred.

[0058] (Polyisocyanate compounds) A polyisocyanate compound is any compound that contains two or more isocyanate groups. There are no particular restrictions on the polyisocyanate compound, and examples include pentamethylene diisocyanate, hexamethylene diisocyanate, m-xylylene diisocyanate, p-xylylene diisocyanate, isophorone diisocyanate, bis(isocyanatomethyl)cyclohexane, bis(isocyanatocyclohexyl)methane, 2,5-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane, 2,6-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane, tolylene diisocyanate, 4,4'-diphenylmethane diisocyanate, phenylene diisocyanate, and the like. These may be used individually or in combination of two or more. Among these, m-xylylene diisocyanate, 2,5-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane, and 2,6-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane are preferred.

[0059] (Preferred embodiment of the process for producing a urethane composition) The process for producing the urethane composition preferably involves reacting a thiourethane resin, an alcohol, and an optional component under high temperature and high pressure conditions to produce a urethane compound and an optional polythiol compound as the urethane composition.

[0060] (Resin mixture containing thiourethane resin) The process for producing a urethane composition may involve contacting a resin mixture containing a thiourethane resin with an alcohol and an optional component under high temperature and high pressure conditions, thereby reacting the thiourethane resin in the resin mixture with the alcohol and the optional component under high temperature and high pressure conditions to produce a urethane composition.

[0061] The resin mixture containing thiourethane resin further contains components other than thiourethane resin. Other components besides thiourethane resin include resins other than thiourethane resin, and inorganic materials for lens fabrication (e.g., glass).

[0062] Other than thiourethane resin, there are no particular restrictions, and examples include: a hybrid material of thiourethane resin and urethane resin produced by adding polyol to the raw materials when manufacturing thiourethane resin; a hybrid material of thiourethane resin and urea resin produced by adding a polyamine compound to the raw materials when manufacturing thiourethane resin; a polyolefin film to protect the surface of a resin molded body for eyeglass lens manufacturing; a hard coat or primer coat to protect the surface of a resin molded body for eyeglass lens manufacturing; an abrasive used when polishing a resin molded body for eyeglass lens manufacturing; a resin material for fixing a resin molded body when cutting a resin molded body for eyeglass lens manufacturing; and tape or tape adhesive used to fix a glass mold used when creating a resin molded body for eyeglass lens manufacturing. There are no particular limitations on specific examples of resins other than thiourethane resin, but for example, urethane resin is a preferred example.

[0063] It is preferable that the resin mixture containing thiourethane resin is recovered during at least one of the following processes: the manufacturing process of eyeglass lenses, the manufacturing process of eyeglasses, and the disposal process of eyeglasses. The manufacturing process for eyeglass lenses, the manufacturing process for eyeglasses, and the disposal process for eyeglasses are as described above. The resin mixture containing thiourethane resin preferably contains cutting powder containing thiourethane resin.

[0064] (Reaction mixture containing urethane composition) The step of producing a urethane composition may be a step of reacting a thiourethane resin, an alcohol, and optionally an optional component under high temperature and high pressure reaction conditions to produce a urethane composition and obtain a reaction mixture containing the target urethane composition. The reaction mixture may contain a urethane composition as the main product and other components other than the urethane composition. Other components in the reaction mixture besides the urethane composition include by-products, the aforementioned reaction solvent, residues of the raw materials (thiourethane resin, alcohol, optional components), and impurities contained in the raw materials.

[0065] [[Separation process]] The method for producing the urethane composition may include a separation step of separating the urethane composition as the target product from the reaction mixture containing the above-mentioned urethane composition. There are no particular restrictions on the separation method in the separation process, and known methods include filtration, decantation, extraction, distillation, drying (including vacuum drying), and purification (e.g., column chromatography). These may be used individually or in combination of two or more methods.

[0066] The separation step preferably includes filtering the reaction mixture containing the urethane composition obtained in the reaction step to obtain a filtrate containing the urethane composition. According to this embodiment, it is easier to remove solids contained in the reaction mixture.

[0067] One method for separating urethane compounds in a urethane composition is extraction using an organic solvent or inorganic solvent capable of dissolving the urethane compounds. Common purification methods for urethane compounds include column purification, distillation purification, recrystallization purification, and salt extraction.

[0068] Methods for separating polythiol compounds in urethane compositions include extraction with an organic solvent or inorganic solvent capable of dissolving the polythiol compounds. Common purification methods for polythiol compounds include column purification, distillation purification, recrystallization purification, and salt extraction.

[0069] If the step for producing the urethane composition is the step for producing the urethane compound and the polythiol compound as described above, the separation step preferably includes at least one of the following: filtering the reaction mixture containing the urethane compound and the polythiol compound to obtain a filtrate containing the urethane compound as the filtrate, and obtaining a mixture containing the polythiol compound as the filtrate.

[0070] If the separation step includes obtaining a filtrate containing a urethane compound, the urethane compound as a urethane composition can be obtained by separating the urethane compound from the filtrate.

[0071] [[Other processes]] The method for producing the urethane composition may include other steps besides those described above, if necessary. Other processes include, for example, classification, sieving, washing, and crushing (grinding) processes.

[0072] <Classification process> A method for producing a urethane composition may further include a classification step, prior to the reaction step for producing the urethane composition, in which cutting powder containing thiourethane resin is classified to obtain a powder containing thiourethane resin with a smaller average particle size (for example, the average number of circle equivalent diameters) than the aforementioned cutting powder (i.e., cutting powder with a reduced average particle size).

[0073] In the reaction step for producing the urethane composition, which includes this classification step, the powder, the alcohol, and the optional component are brought into contact under high temperature and high pressure conditions, thereby causing the thiourethane resin in the powder, the alcohol, and the optional component to react under high temperature and high pressure conditions. When the method for producing the urethane composition includes a classification step, the reaction step involves contacting a powder consisting of particles with a small particle size (i.e., average particle diameter), the alcohol, and the optional component under high temperature and high pressure conditions. This makes it possible to further improve the reaction efficiency between the thiourethane resin in the powder, the alcohol, and the optional component.

[0074] Examples of average particle diameters include the number-average particle diameter. Examples of particle size include the equivalent diameter of a circle. Classification methods include sieving and centrifugation. For details on the sieving process used for classification, please refer to the sieving process described below.

[0075] <Sieving process> The method for producing the urethane composition may include a sieving step before the reaction step for producing the urethane composition, in which cutting powder containing thiourethane resin is sieved to obtain powder containing thiourethane resin that has passed through the sieve (i.e., cutting powder that has passed through the sieve). In the reaction step for producing the urethane composition, which includes this sieving step, the powder, the alcohol, and the optional component are brought into contact under high temperature and high pressure conditions, thereby causing the thiourethane resin in the powder, the alcohol, and the optional component to react under high temperature and high pressure conditions. If the method for producing the urethane composition includes a sieving step, the reaction step involves contacting a powder consisting of small particles with the alcohol and the optional component under high temperature and high pressure conditions, thereby improving the reaction efficiency between the thiourethane resin, the alcohol, and the optional component.

[0076] There are no particular restrictions on the above sieve. The nominal mesh opening of the sieve as defined in JIS Z-8801-1:2019 is, for example, 0.1 to 20 mm, preferably 0.1 to 10 mm, more preferably 0.1 to 5 mm, even more preferably 0.1 to 2 mm, even more preferably 0.3 to 2 mm, and particularly preferably 0.5 to 1.5 mm.

[0077] <Washing Process> The method for producing the urethane composition may include a washing step in which the thiourethane resin powder (i.e., powder containing thiourethane resin) is washed with a hydrocarbon having 5 to 12 carbon atoms as a washing solvent, prior to the reaction step for producing the urethane composition. In the reaction step for producing the urethane composition, which includes this cleaning step, the powder cleaned in the cleaning step, the alcohol, and the optional component are brought into contact under high temperature and high pressure conditions, thereby reacting the thiourethane resin in the powder with the alcohol and the optional component under high temperature and high pressure conditions. This results in a urethane composition with a higher purity of the urethane component as the main component. In particular, when using cutting powder containing thiourethane resin as a starting material in a method for producing a urethane composition, the above-mentioned cleaning step can effectively remove oil originating from the cutting machine adhering to the cutting powder, thereby obtaining a urethane composition with a higher purity of the urethane component as the main component.

[0078] The hydrocarbon used as the washing solvent may be used alone or in combination of two or more types. The preferred embodiment of the hydrocarbon as a washing solvent is the same as the preferred embodiment of the hydrocarbon as a reaction solvent described above. However, the reaction solvent and the washing solvent may be the same or different.

[0079] There are no particular restrictions on the cleaning method in the cleaning process; known methods such as adding the above-mentioned cleaning solvent to the thiourethane resin powder and mixing it can be applied.

[0080] When the method for producing a urethane composition includes the aforementioned sieving step and washing step, it is preferable to perform the sieving step and washing step in that order. In this case, there is no need to wash the cutting powder that did not pass through the sieve, so the amount of washing solvent used can be further reduced.

[0081] <Crushing (Mashing) Process> The method for producing the urethane composition may include a crushing (grinding) step of crushing and / or pulverizing the thiourethane resin before the reaction step that produces the urethane composition. There are no particular restrictions on the crushing (grinding) method in the crushing (grinding) process, and known methods can be applied. [Examples]

[0082] The present disclosure will be further described below with reference to examples. However, the present disclosure is not limited to the embodiments shown in the examples.

[0083] [Manufacturing Example 1] <Manufacturing of molded articles containing thiourethane resin> In a flask equipped with a stirring device, dimethyltin dichloride (0.0075 parts by mass per 100 parts by mass of the total amount of the polyisocyanate compound and the polythiol composition below), JP-506H (manufactured by Johoku Kagaku Kogyo Co., Ltd.; acidic phosphate ester) (0.15 parts by mass per 100 parts by mass of the total amount of the polyisocyanate compound and the polythiol composition below), and m-xylylene diisocyanate (XDI) (49.6 parts by mass), a polyisocyanate compound, were added. After stirring until all additives were sufficiently dissolved, a polythiol composition (50.4 parts by mass) mainly composed of 4,8-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, and 5,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane was added and mixed to obtain a polymerizable composition, which is a transparent, homogeneous solution. This polymerizable composition was degassed at 300 Pa for 30 minutes or more, and then filtered through a polytetrafluoroethylene (PTFE) filter with a pore size of 5 μm. Subsequently, it was injected into a mold consisting of a glass mold and gasket having the desired lens shape. The mold into which the polymerizable composition was injected was polymerized in an oven for 24 hours at a temperature range of 10°C to 120°C, depending on the shape of the lens. The mold was removed from the oven and demolded to obtain a spectacle lens molded from an optical component resin. The obtained molded body was annealed at 120°C for 2 hours.

[0084] <Manufacturing of thiourethane resin powder> Lenses were manufactured by machining the molded body obtained above. The resulting machining dust was collected and passed through a sieve with a nominal mesh size of 1 mm as specified in JIS Z-8801-1:2019 to obtain thiourethane resin powder (i.e., powder containing thiourethane resin) that passed through the sieve.

[0085] [Example 1] 5.0 g of thiourethane resin powder obtained in Production Example 1 was placed in a pressure-resistant reactor, 20 g of anhydrous methanol was added, and the reactor was sealed. A TVS-N2-200 portable reactor (stainless steel, internal volume 200 mL) manufactured by Pressure Glass Industry Co., Ltd. was used as the pressure-resistant reactor. After replacing the inside of the container with CO2 gas, CO2 gas was further introduced until the internal pressure reached the predetermined initial pressure of 2.0 MPa. The pressure-resistant reactor was heated to 190°C (reaction temperature in Table 1) using a band heater, and the heating and pressurizing were maintained for 4.0 hours (reaction time in Table 1). The pressure after heating to 190°C was 5.9 MPa (reaction pressure in Table 1). Subsequently, the reaction vessel was rapidly cooled to room temperature using ice water (3 minutes to 100°C, with ice water replaced as needed for a total of about 30 minutes). After the temperature had fallen below room temperature, the CO2 gas was released from the reaction vessel to return to atmospheric pressure. The extracted reaction product separated into two layers: an upper layer of alcohol and a lower layer of oil. The upper layer of alcohol was transferred to a separate beaker, and the oil layer was washed three times with anhydrous methanol. Next, 2.3 g of the alcohol-insoluble component from the oil layer was dried under reduced pressure and weighed to obtain a reaction mixture containing the polythiol composition. The reaction mixture obtained in the above reaction step was subjected to column chromatography using chloroform as the developing solvent (TLC; developing solvent: chloroform, detection reagent: phosphomolybdate ethanol solution), and spots with an Rf value of around 0.7 were isolated to obtain a chloroform solution of the polythiol composition. From the obtained chloroform solution, chloroform was removed by distillation using a rotary evaporator, and low-boiling point components were removed using a vacuum pump to obtain 1.31 g (yield: 52.0% by mass) of a polythiol composition mainly composed of 4,8-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, and 5,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane (i.e., polythiol components). Furthermore, the alcohol was removed from the upper alcohol layer transferred to a beaker using a rotary evaporator, dried under reduced pressure, and weighed to obtain 3.3 g of an alcohol-soluble component containing a urethane composition mainly composed of xylylene dicarbamate (yield of urethane composition in the alcohol-soluble component: 99.3% by mass). The yield values ​​for "Polythiol Composition" in Table 1 were calculated by dividing the mass of the polythiol composition, which is the main component of the thiourethane resin, by the theoretical yield, and then dividing the "mass of polythiol composition" obtained in the above reaction step in Table 1 by the theoretical yield, and finally expressing the resulting value as a percentage. The yield values ​​for "urethane composition" in Table 1 were calculated by taking the theoretical yield as the amount of substance of the polyisocyanate compound, which is the main component of the thiourethane resin, multiplied by the molecular weight of the urethane compound obtained in the above reaction step, dividing the "mass of urethane compound" obtained in the above reaction step in Table 1 by the theoretical yield, and then expressing the resulting value as a percentage.

[0086] [Examples 2-9 and 12, and Comparative Example 2] In Example 1, instead of using 5.0 g of thiourethane resin, 20 g of anhydrous alcohol as solvent, methanol as the type of anhydrous alcohol, a reaction temperature of 190°C, a reaction pressure of 5.9 MPa, and a reaction time of 4.0 hours, the same procedure as in Example 1 was followed, except that the mass of thiourethane resin, the mass of anhydrous alcohol as solvent, the type of anhydrous alcohol as solvent, the reaction temperature, the reaction pressure, and the reaction time were changed as shown in Table 1. The mass of the alcohol-soluble component, the yield of the urethane composition in the alcohol-soluble component, and the yield of the obtained polythiol composition are shown in Table 1.

[0087] [Example 10] In Example 1, the procedure was the same as in Example 1, except that air was used and the reaction pressure was 2.9 MPa instead of CO2 gas and a reaction pressure of 5.9 MPa. The mass of the alcohol-soluble component, the yield of the urethane composition in the alcohol-soluble component, and the yield of the obtained polythiol composition are shown in Table 1.

[0088] [Example 11] In Example 2, the same procedure was followed except that air was used and the reaction pressure was 2.9 MPa instead of CO2 gas and 6.1 MPa. The mass of the alcohol-soluble component, the yield of the urethane composition in the alcohol-soluble component, and the yield of the obtained polythiol composition are shown in Table 1.

[0089] [Comparative Example 1] In Example 1, the reaction was carried out using 0.5 g of thiourethane resin, water as the solvent, a reaction pressure of 6.0 MPa, and a reaction time of 6.0 hours, instead of using 5.0 g of thiourethane resin, anhydrous methanol as the solvent, a reaction pressure of 5.9 MPa, and a reaction time of 4.0 hours. The same procedure as in Example 1 was followed. The mass of the alcohol-soluble component, the yield of the urethane composition in the alcohol-soluble component, and the yield of the obtained polythiol composition are shown in Table 1.

[0090] [Table 1]

[0091] As can be seen from Table 1 above, the methods for producing urethane compositions in Examples 1 to 12, which include a reaction step of reacting a thiourethane resin with an alcohol under high temperature and high pressure conditions to produce a urethane composition, suppress the generation of by-products that exhibit catalytic activity towards the polythiol composition when the thiourethane resin is decomposed, and make it possible to obtain a urethane composition that does not exhibit catalytic activity towards the polythiol composition. As can be seen from Table 1, in Example 1, the yield of the urethane composition in the alcohol-soluble component was 99.3% by mass. Therefore, among Examples 1 to 12, Example 1 (reaction temperature 190°C, reaction pressure 5.9 MPa, reaction time 4.0 hours) is the most preferred example.

[0092] The embodiments disclosed herein should be considered in all respects to be illustrative and not restrictive. The scope of this disclosure is indicated by the claims rather than the foregoing description, and all modifications within the meaning and scope equivalent to the claims are intended. This disclosure may arbitrarily combine the examples, contents, and various physical properties of each of the above components described in the detailed description of the invention as examples or preferred ranges. Furthermore, by adjusting the compositions described in the examples to match those described in the detailed description of the invention, the disclosed embodiments can be implemented in the same manner as the examples across the entire claimed composition range.

Claims

1. A method for producing a urethane composition, comprising a reaction step of reacting a thiourethane resin with an alcohol under high temperature and high pressure conditions to produce a urethane composition.

2. A method for producing a urethane composition according to claim 1, wherein the reaction temperature under the above reaction conditions is greater than 130°C and 270°C or less.

3. A method for producing a urethane composition according to claim 1 or 2, wherein the reaction pressure under the aforementioned reaction conditions is 2.0 MPa or more and less than 22.0 MPa.

4. A method for producing a urethane composition according to claim 1 or 2, wherein the reaction time under the above reaction conditions is 0.3 to 20 hours.

5. The method for producing a urethane composition according to claim 1 or 2, wherein the alcohol has 1 to 20 carbon atoms.

6. The method for producing a urethane composition according to claim 1 or 2, wherein the alcohol is at least one selected from the group consisting of methanol, ethanol, n-propanol, isopropanol, n-butanol, t-butanol, 1-octanol, 2-octanol, benzyl alcohol, and 2-hexyl-1-decanol.

7. A method for producing a urethane composition according to claim 1 or 2, wherein the reaction step is carried out under a carbon dioxide atmosphere.

8. A method for producing a urethane composition according to claim 1 or 2, wherein the polythiol composition comprises at least one selected from the group consisting of 4-mercaptomethyl-1,8-dimercapto-3,6-dithiaoctane, 4,8-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, 4,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane, and 5,7-dimercaptomethyl-1,11-dimercapto-3,6,9-trithiaundecane.

9. The method for producing the urethane composition according to claim 1 or 2, wherein the urethane composition comprises xylylene dicarbamate.

Citation Information

Patent Citations

  • Thiourethane resin starting material production method and use therefor, polythiol composition production method and use therefor, and polythiol composition

    WO2021157701A1