Phenalkamine-containing compositions and methods for their preparation

A phenalkamine-based curing agent, synthesized from cardanol and polyamines, addresses the need for fast curing and flexibility in epoxy resins, enhancing their performance in applications such as road overlays and flexible adhesives.

JP7778802B2Active Publication Date: 2025-12-02EVONIK OPERATIONS GMBH
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Patent Information

Application Number
JP2023547535
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-02-07
Publication Date
2025-12-02
Estimated Expiration
2041-02-07

AI Technical Summary

Technical Problem

The market seeks hardeners for epoxy resins that can achieve fast cure rates while producing flexible and ductile products.

Method used

A composition comprising phenalkamines synthesized from cardanol, polyamines, and aldehydes, with specific molecular structures and reaction conditions, is used to create a curing agent that achieves fast curing and high flexibility.

Benefits of technology

The composition results in epoxy resins with fast cure rates and high elongation, suitable for applications like road overlays and flexible adhesives.

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Patent Text Reader

Abstract

A composition is provided that includes a phenalkamine represented by formula (I), where X is H or OH, R1 is an aliphatic chain having more than 8 carbon atoms, R2 is H, C1-C10 alkyl, phenyl, or a C5-C6 cycloaliphatic group, R3 and R4 are independently CH2CH2, CH2CH2CH2, or CH2CH2CH2CH2, and P and Q are each independently an integer. Also provided is a method of making the composition.
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Description

[Technical Field]

[0001] Field The present disclosure relates to compositions containing phenalkamines and methods for making the compositions.

[0002] background The Mannich base reaction is well known. Mannich base compounds are products based on the reaction of an aldehyde, typically formaldehyde, a phenolic compound, and an organic amine. Various forms of the phenolic compound, aldehyde, and amine have been proposed. Mannich base products are known to be used in the curing of epoxy resins.

[0003] Phenalkamines are a class of Mannich bases obtained by reacting phenolic compounds, aldehydes, and polyamines. Recently, cardanol-based phenalkamines have been synthesized and industrially produced. These chemicals are synthesized from a cardanol-containing extract derived from cashew nutshell liquid (sometimes abbreviated as "CNSL"), aldehyde compounds such as formaldehyde, and polyamines. Cashew nutshell liquid, a source of cardanol and cardol, is an abundant, sustainable, and low-cost product obtained as a by-product of the cashew processing industry.

[0004] Traditionally, ethylenediamine (EDA) and diethylenetriamine (DETA) are used as polyamines in the synthesis of phenalkamines. Phenalkamines are good epoxy resin hardeners for room-temperature or low-temperature cure applications.

[0005] US Pat. No. 6,262,148 teaches a curing agent based on a Mannich base reaction product obtained by reacting cardanol with an aromatic or alicyclic polyamine and an aldehyde compound.

[0006] WO 2019207079 discloses a substituted cardanol having a benzene ring with at least two different groups. Each group has at least one hydrogen atom connected to an amine group. One group further has an ether moiety. When used as a curing agent, the substituted cardanol can produce bright cured compositions that can be easily colored with dyes. The substituted cardanol has inherent accelerator properties, allowing the addition of accelerators to be reduced or avoided.

[0007] Nevertheless, the market is looking for hardeners that can achieve fast cure rates and result in flexible and ductile epoxy products.

[0008] overview One of the objectives of the present disclosure is to provide a composition that can be used as a component of a curing agent and that, when combined with an epoxy resin, can achieve fast curing and result in an epoxy resin with high flexibility and high elongation.

[0009] This object of the present disclosure is to provide a compound of formula (I): [ka] wherein X is H or OH; R1 is an aliphatic chain having more than 8 carbon atoms; R2 is H, C1-C10 alkyl, phenyl, or a C5-C6 cycloaliphatic group; R3 and R4 are independently CH2CH2, CH2CH2CH2, or CH2CH2CH2CH2; and P and Q are, independently of each other, integers.

[0010] Preferably, Q is 1, 2 or 3.

[0011] Preferably, P is an integer of 1 or more and 50 or less.

[0012] Preferably, R1 has at least one unsaturated bond.

[0013] Preferably, R1 is C 15 H 31-m or C 17 H 35-m where m is 0, 2, 4, or 6.

[0014] Preferably, R2 is H or CH3.

[0015] Preferably, the composition comprises a compound of formula (II): [ka] wherein X is H or OH, R1 is an aliphatic chain having more than 8 carbon atoms, R2 is H, C1-C10 alkyl, phenyl, or C5-C6 cycloaliphatic group, R3 and R4 are independently CH2CH2, CH2CH2CH2, or CH2CH2CH2CH2, P is an integer, and M is an integer greater than or equal to 1.

[0016] Preferably, the composition comprises a compound of formula (III): [ka] wherein X is H or OH, R1 is an aliphatic chain having more than 8 carbon atoms, R2 is H, C1-C10 alkyl, phenyl, or C5-C6 cycloaliphatic group, R3 and R4 are independently CH2CH2, CH2CH2CH2, or CH2CH2CH2CH2, P is an integer, and J is an integer greater than or equal to 2.

[0017] Preferably, the composition further comprises one or more additives selected from fillers, reinforcing agents, coupling agents, toughening agents, antifoaming agents, dispersants, lubricants, colorants, marking materials, dyes, pigments, IR absorbers, antistatic agents, antiblocking agents, nucleating agents, crystallization promoters, crystallization retarders, conductive additives, carbon black, graphite, carbon nanotubes, graphene, drying agents, mold release agents, leveling aids, flame retardants, separating agents, optical brighteners, rheology additives, photochromic additives, softeners, adhesion promoters, anti-drip agents, metallic pigments, stabilizers, metal glitter, metal coated particles, porosity inducers, glass fibers, nanoparticles, flow aids, or combinations thereof.

[0018] Another object of the present disclosure is to provide a compound of formula (I): [ka] wherein X is H or OH; R1 is an aliphatic chain having more than 8 carbon atoms; R2 is H, C1-C10 alkyl, phenyl, or C5-C6 cycloaliphatic group; R3 and R4 are independently CH2CH2, CH2CH2CH2, or CH2CH2CH2CH2; and P and Q are each independently an integer, comprising: The method includes heating a polyamine having at least two primary amino groups and at least one oxyethylene moiety, an alkylphenol, and at least one aldehyde to a temperature between 0°C and 150°C.

[0019] Preferably, Q is 1, 2 or 3.

[0020] Preferably, P is an integer of 1 or more and 50 or less.

[0021] Preferably, the temperature is from 0°C to 150°C, more preferably from 60°C to 150°C, and even more preferably from 70°C to 130°C.

[0022] Preferably, the polyamine is NH2R3(OCH2CH2) P and represented by formula (IV) as OR4NH2, where R3 and R4 are independently CH2CH2, CH2CH2CH2 or CH2CH2CH2CH2, and P is an integer between 1 and 50, inclusive.

[0023] Preferably, the aldehyde is formaldehyde or acetaldehyde.

[0024] Preferably, the molar ratio of polyamine to alkylphenol is in the range of 0.1:1 to 10:1, preferably 0.2:1 to 5:1, more preferably 0.7:1 to 2:1.

[0025] Preferably, the molar ratio of aldehyde to alkylphenol is in the range of 0.1:1 to 10:1, preferably 0.2:1 to 5:1, more preferably 0.7:1 to 2:1.

[0026] The compositions of the present disclosure provide two-part epoxy systems with excellent properties of fast cure, high flexibility, and high elongation, which are suitable for many applications such as road overlays, modified asphalt pavements, flexible adhesives, coatings, mortars, composites, etc.

[0027] Detailed Description The following description is used for illustrative purposes only, but is not intended to limit the scope of the present disclosure.

[0028] The compositions provided herein comprise a compound of formula (I): [ka] wherein X is H or OH, R1 is an aliphatic chain having more than 8 carbon atoms, R2 is H, C1-C10 alkyl, phenyl, or C5-C6 cycloaliphatic group, R3 and R4 are independently CH2CH2, CH2CH2CH2, or CH2CH2CH2CH2, and P and Q are, independently of each other, integers.

[0029] Preferably, Q is 1, 2 or 3.

[0030] Preferably, P is an integer of 1 to 50. More preferably, P is 1, 2, or 3.

[0031] Preferably, R1 has at least one unsaturated bond.

[0032] Preferably, R1 is C 15 H 31-m or C 17 H 35-m where m is 0, 2, 4, or 6.

[0033] Preferably, R2 is H or CH3.

[0034] Preferably, the composition comprises a compound of formula (II): [ka] wherein X is H or OH, R1 is an aliphatic chain having more than 8 carbon atoms, R2 is H, C1-C10 alkyl, phenyl, or C5-C6 cycloaliphatic group, R3 and R4 are independently CH2CH2, CH2CH2CH2, or CH2CH2CH2CH2, P is an integer, and M is an integer greater than or equal to 1.

[0035] The first polymer has one amino group at one end and one partially reacted benzene ring at the other end. Preferably, the number M may be less than or equal to 20. Of course, M will depend on the conditions of the condensation, including the molar ratio of the reactants, the temperature at which the condensation is carried out, the concentration of the reactants, etc.

[0036] The first polymer is produced during the condensation of an alkylphenol, an aldehyde, and a polyamine. The polyamine may have two or more aromatic rings bridged via CHR2 moieties. The presence of the first polymer can be indicated by a peak in gel permeation chromatography analysis.

[0037] Preferably, the composition comprises a compound of formula (III): [ka] wherein X is H or OH, R1 is an aliphatic chain having more than 8 carbon atoms, R2 is H, C1-C10 alkyl, phenyl, or C5-C6 cycloaliphatic group, R3 and R4 are independently CH2CH2, CH2CH2CH2, or CH2CH2CH2CH2, P is an integer, and J is an integer greater than or equal to 2.

[0038] The second polymer has amino groups at both ends. Preferably, the number J may be less than or equal to 20. Of course, J will depend on the conditions of the condensation, including the molar ratio of the reactants, the temperature at which the condensation is carried out, the concentration of the reactants, etc.

[0039] The second polymer is produced during the condensation of an alkylphenol, an aldehyde, and a polyamine. The polyamine may have two or more aromatic rings crosslinked via CHR2 moieties. The presence of the second polymer can be indicated by a peak in gel permeation chromatography analysis.

[0040] The composition further comprises one or more additives selected from fillers, reinforcing agents, coupling agents, toughening agents, antifoaming agents, dispersants, lubricants, colorants, marking materials, dyes, pigments, IR absorbers, antistatic agents, antiblocking agents, nucleating agents, crystallization promoters, crystallization retarders, conductive additives, carbon black, graphite, carbon nanotubes, graphene, drying agents, mold release agents, leveling aids, flame retardants, separating agents, optical brighteners, rheology additives, photochromic additives, softeners, adhesion promoters, anti-drip agents, metallic pigments, stabilizers, metal glitter, metal coated particles, porosity inducers, glass fibers, nanoparticles, flow aids, or combinations thereof.

[0041] The composition may be prepared as a reaction product of a polyamine, an alkylphenol, and an aldehyde.

[0042] Polyamines According to the present disclosure, the polyamine has at least two primary amino groups and at least one oxyethylene moiety. The oxyethylene moiety is attached to the primary amino group via a divalent alkyl group. Preferably, the polyamine has a structure of HNR(OCHCH). P Represented by formula (IV) as OR4NH2, where P is an integer greater than or equal to 1, and R3 and R4 are independently C2H4, C3H6, or C4H8. More preferably, the integer P is 50 or less. Most preferably, P is 1, 2, or 3. More preferably, R3 and R4 are independently CH2CH2 or CH2CH2CH2. Even more preferably, the polyamine comprises H2NCH2CH2CH2O(CH2CH2O)2CH2CH2CH2NH2, commercially available as Ancamine® 1922A from Evonik Specialty Chemicals (Shanghai) Co., Ltd.

[0043] Alkylphenol As used in this disclosure, alkylphenol refers to a phenol having one or more alkyl groups on the benzene ring. Preferably, the alkylphenol comprises at least one q-substituted monoalkylphenol. More preferably, the alkylphenol comprises a phenol having an aliphatic chain with more than 8 carbon atoms. Even more preferably, the alkylphenol comprises a phenol having an aliphatic chain with more than 12 carbon atoms.

[0044] Preferably, the alkylphenol may include a phenol having an aliphatic chain with at least one unsaturated bond.

[0045] By limitation, alkylphenols according to the present disclosure include nonylphenol, cardanol, cardol, or any mixture thereof.

[0046] As used herein, cardanol refers to a mixture of phenols having one hydroxyl group and varying numbers of unsaturated bonds in the meta-positioned aliphatic side chain. The structure of cardanol is shown below: [ka] [Wherein R is -C 15 H 31 , -C 15 H 29 , -C 15 H 27 and -C 15 H 25 a linear alkyl having 15 carbon atoms and having 0 to 3 unsaturated bonds selected from the group consisting of: 17 H 33 , -C 17 H 31 and -C 17 H 29 and a linear alkyl having 17 carbon atoms and having 1 to 3 unsaturated bonds selected from the group consisting of:

[0047] Cardol has the following structure: [ka] [Wherein R is -C 15 H 31 , -C 15 H 29 , -C 15 H 27 and -C 15 H 25 a linear alkyl having 15 carbon atoms and having 0 to 3 unsaturated bonds selected from the group consisting of: 17 H 33 , -C 17 H 31 and -C 17 H 29 and a linear alkyl having 17 carbon atoms and having 1 to 3 unsaturated bonds selected from the group consisting of:

[0048] Cardanol or cardol can also be obtained as a naturally occurring substance from cashew nut shell liquid in various purity and chemical compositions. It is commercially available from a variety of manufacturers.

[0049] aldehyde The aldehyde used to prepare the phenalkamine-containing composition provided in the present invention can be formaldehyde (in aqueous solution or as paraformaldehyde), acetaldehyde, propionaldehyde, butyraldehyde, heptaldehyde, hexaldehyde, 2-ethylhexanal, benzaldehyde, salicylaldehyde, any other aldehyde, or their mixture.In a preferred embodiment, the aldehyde used in the present invention can be formaldehyde.These compounds are known in the art and can be easily obtained from commercial sources or can be easily prepared using known methods.

[0050] The compositions of the present disclosure can be produced according to Mannich reaction conditions known in the art. The compositions can be produced by providing the above-described aldehyde, polyamine, and alkylphenol and reacting them via the Mannich reaction. A solvent such as benzene, toluene, or xylene can be used to remove the water produced during the reaction at the azeotropic distillation point. Nitrogen is also recommended to facilitate water removal. The reaction can be carried out at temperatures between 0 and 150°C, preferably between 70 and 150°C, or more preferably between 70 and 130°C. In some embodiments, the alkylphenol and polyamine are first mixed, and then the aldehyde is added to the resulting mixture. The time for adding the aldehyde can vary from 0.1 to 24 hours, preferably between 0.5 and 12 hours, or more preferably between 0.6 and 4 hours.

[0051] The molar ratio of polyamine to alkylphenol is preferably 0.1:1 to 10:1, preferably 0.2:1 to 5:1, more preferably 0.7:1 to 2:1. The molar ratio of aldehyde to alkylphenol is preferably 0.1:1 to 10:1, preferably 0.2:1 to 5:1, more preferably 0.7:1 to 2:1. The molar ratios of polyamine to alkylphenol and aldehyde to alkylphenol affect the distribution of phenalkamine, first polymer, and second polymer in the condensate of the Mannich reaction.

[0052] hardener The compositions provided herein can be used as curing agents for epoxy resins. The curing agent can include one or more components in addition to the phenalkamine and polymer. Details regarding these components are provided below.

[0053] The curing agent may further comprise at least one multifunctional amine. As used herein, multifunctional amine refers to a compound having an amine functionality and containing two or more amine hydrogen atoms.

[0054] Non-limiting examples of polyfunctional amines within the scope of the present disclosure include, but are not limited to, aliphatic amines, cycloaliphatic amines, aromatic amines; Mannich base derivatives of aliphatic amines, cycloaliphatic amines, or aromatic amines; polyamide derivatives of aliphatic amines, cycloaliphatic amines, or aromatic amines; amidoamine derivatives of aliphatic amines, cycloaliphatic amines, or aromatic amines; amine adduct derivatives of aliphatic amines, cycloaliphatic amines, or aromatic amines, and the like, or any combination thereof.

[0055] Preferably, the composition of the present disclosure uses two or more polyfunctional amines. For example, at least one polyfunctional amine includes a Mannich base derivative of an aliphatic amine and an alicyclic amine. Alternatively, at least one polyfunctional amine includes one aliphatic amine and another aliphatic amine.

[0056] Exemplary aliphatic amines include polyethyleneamines (ethylenediamine or EDA, diethylenetriamine or DETA, triethylenetetraamine or TETA, tetraethylenepentamine or TEPA, pentaethylenehexamine or PEHA, and the like), polypropyleneamines, aminopropylated ethylenediamines, aminopropylated propylenediamines, 1,6-hexanediamine, 3,3,5-trimethyl-1,6-hexanediamine, 3,5,5-trimethyl-1,6-hexanediamine, 2-methyl-1,5-pentanediamine (commercially available as Dytek-A), and the like, or combinations thereof. Additionally, poly(alkylene oxide) diamines and triamines commercially available under the Jeffamine name from Huntsman Corporation are useful in the present disclosure. Illustrative examples include, but are not limited to, Jeffamine® D-230, Jeffamine® D-400, Jeffamine® D-2000, Jeffamine® D-4000, Jeffamine® T-403, Jeffamine® EDR-148, Jeffamine® EDR-192, Jeffamine® C-346, Jeffamine® ED-600, Jeffamine® ED-900, Jeffamine® ED-2001, and the like, or combinations thereof.

[0057] Alicyclic and aromatic amines include, but are not limited to, 1,2-diaminocyclohexane, 1,3-diaminocyclohexane, 1,4-diaminocyclohexane, hydrogenated ortho-toluenediamine, hydrogenated meta-toluenediamine, meta-xylylenediamine, hydrogenated meta-xylylenediamine (commercially known as 1,3-BAC), isophoronediamine (IPDA), various isomeric or norbornanediamines, 3,3'-dimethyl-4,4'-diaminodicyclohexylmethane, 4,4'-diaminodicyclohexylmethane, 2,4'-diaminodicyclohexylmethane, benzylated ethylenediamine, mixtures of methylene-bridged poly(cyclohexyl-aromatic)amines, and the like, or combinations thereof. The mixtures of methylene-bridged poly(cyclohexyl-aromatic)amines, abbreviated as MBPCAA or MPCA, are described in U.S. Pat. No. 5,280,091, the entire contents of which are incorporated herein by reference. According to some embodiments of the present disclosure, the at least one multifunctional amine is epoxidized 1,3-benzenedimethaneamine (commercially available as Gaskamine 328 from Mitsubishi Gas Chemical Company).

[0058] Mannich base derivatives can be prepared by the reaction of the above-mentioned aliphatic amines, alicyclic amines, or aromatic amines with phenol or substituted phenols and formaldehyde. An exemplary substituted phenol used to prepare Mannich bases useful in the present disclosure is cardanol obtained from cashew nut shell liquid. Alternatively, Mannich bases can be prepared by the exchange reaction of polyfunctional amines with tertiary amines, including Mannich bases, such as tris-dimethylaminomethylphenol (commercially available as Ancamine® K54 from Evonik Operations GmbH) or bis-dimethylaminomethylphenol.

[0059] Polyamide derivatives can be prepared by reacting an aliphatic, cycloaliphatic, or aromatic amine with a dimer fatty acid or a mixture of a dimer fatty acid and a fatty acid. Amidoamine derivatives can be prepared by reacting an aliphatic, cycloaliphatic, or aromatic amine with a fatty acid.

[0060] Amine adducts can be prepared by the reaction of aliphatic, cycloaliphatic, or aromatic amines with epoxy resins such as the diglycidyl ether of bisphenol A, the diglycidyl ether of bisphenol F, or epoxy novolac resins. Aliphatic, cycloaliphatic, and aromatic amines can also be adducted with monofunctional epoxy resins such as phenyl glycidyl ether, cresyl glycidyl ether, butyl glycidyl ether, other alkyl glycidyl ethers, and the like.

[0061] In another aspect of the present disclosure, the curing agent includes a co-curing agent, which can be an amidoamine curing agent, an aliphatic curing agent, a polyamide curing agent, a cycloaliphatic curing agent, or a Mannich base curing agent.

[0062] In some aspects of the present disclosure, a plasticizer is added to the curing agent.

[0063] In order to provide more functionality or features to meet industrial requirements, the hardener composition preferably contains additives. Additives are understood to mean substances added to change the properties of the hardener composition in a desired direction, for example, viscosity, wetting properties, stability, reaction rate, blister formation, storage properties, or adhesion, and to adapt the use properties to the end use. Some additives are described, for example, in WO 99 / 55772, pages 15-25.

[0064] Preferred additives are selected from the group consisting of fillers, reinforcing agents, coupling agents, toughening agents, antifoaming agents, dispersants, lubricants, colorants, marking materials, dyes, pigments, IR absorbers, antistatic agents, antiblocking agents, nucleating agents, crystallization promoters, crystallization retarders, conductive additives, carbon black, graphite, carbon nanotubes, graphene, drying agents, mold release agents, leveling aids, flame retardants, separating agents, optical brighteners, rheology additives, photochromic additives, softeners, adhesion promoters, anti-drip agents, metallic pigments, stabilizers, metal glitter, metal coated particles, porosity inducers, glass fibers, nanoparticles, flow aids, or combinations thereof.

[0065] The additives preferably constitute a proportion of not more than 90% by weight, preferably not more than 70% by weight, more preferably not more than 50% by weight, even more preferably not more than 30% by weight, relative to the total weight of the curing agent.

[0066] For example, it may be advantageous to add light stabilizers, such as sterically hindered amines or other auxiliaries, for example in a total amount of 0.05% to 5% by weight.

[0067] To prepare the curing agent composition of the present disclosure, it is further possible to add additives such as leveling agents, for example polysilicones, or adhesion promoters, for example acrylate-based ones. Furthermore, additional components may be optionally present. Further used auxiliaries and additives may be chain transfer agents, plasticizers, stabilizers and / or inhibitors.

[0068] Optionally, the curing agent composition preferably contains an antioxidant additive. The antioxidant may contain one or more structural units selected from sterically hindered phenols, sulfides, or benzoates. In the sterically hindered phenols, two ortho-hydrogen atoms are replaced with compounds that are not hydrogen, preferably having at least 1 to 20 carbon atoms, particularly preferably 3 to 15 carbon atoms, and are preferably branched. The benzoates also preferably have a substituent, in the ortho position relative to the OH group, that is not hydrogen, particularly preferably having 1 to 20 carbon atoms, more preferably 3 to 15 carbon atoms, and the substituent is preferably branched.

[0069] In yet another embodiment, one or more catalysts are optionally incorporated into the curing agent composition, preferably as part of the curing agent composition, to promote the reaction between the epoxy groups of the epoxy resin and the amine groups of the curing agent composition. Useful catalysts that can be incorporated into the curing agent composition include Ancamide® products available from Evonik Operations GmbH and products sold as "accelerators" available from Huntsman Corporation. One exemplary catalyst is the piperazine-based Accelerator 399 available from Huntsman Corporation. When used, such catalysts preferably comprise 0 to about 10 weight percent of the total adhesive composition.

[0070] Preferably, when the curing agent is mixed with the epoxy resin, a curing accelerator may be added to the curing agent composition to accelerate the curing process, such as one or more selected from tris-(dimethylaminomethyl)phenol, benzyldimethylamine, various isomers of nonylphenol, triethanolamine, or N-(3-aminopropyl)iminodiethanol.

[0071] Other additives or components may be present in the system depending on the end use or environment in which the system is to be used.

[0072] Preferably, the curing agent composition according to the present disclosure comprises the components identified above.

[0073] Epoxy resins in two-component epoxy systems The phenalkamine-containing compositions of the present disclosure may be used with epoxy compounds already known in the art to form two-component epoxy compositions.

[0074] Useful epoxy compounds are numerous and known for this purpose, containing two or more epoxy groups per molecule, preferably two. These epoxide compounds are preferably either saturated or unsaturated. They are preferably aliphatic, cycloaliphatic, aromatic, or heterocyclic, and contain hydroxyl groups. They preferably contain substituents, such as alkyl or aryl substituents, ether moieties, and the like, that do not cause side reactions under the mixing or reaction conditions. They are preferably glycidyl ethers, derived from polyhydric phenols, especially bisphenols and novolaks, and have a molar mass ME ("epoxy equivalent weight," "EV value") based on the number of epoxy groups of 100 to 1500 g / eq, especially 150 to 250 g / eq.

[0075] Examples of polyhydric phenols include, inter alia, resorcinol, hydroquinone, 2,2-bis(4-hydroxyphenyl)propane (bisphenol A), bis(4-glycidyloxyphenyl)methane (bisphenol E), isomeric mixtures of dihydroxydiphenylmethane (bisphenol F), 4,4'-dihydroxydiphenylcyclohexane, 4,4'-dihydroxy-3,3'-dimethyldiphenylpropane, 4,4'-dihydroxydiphenyl, 4,4'-dihydroxybenzophenone, Examples include bis(4-hydroxyphenyl)-1,1-ethane, bis(4-hydroxyphenyl)-1,1-isobutane, 2,2-bis(4-hydroxy-tert-butylphenyl)propane, bis(2-hydroxynaphthyl)methane, 1,5-dihydroxynaphthalene, tris(4-hydroxyphenyl)methane, bis(4-hydroxyphenyl)ether, bis(4-hydroxyphenyl)sulfone, and chlorinated and brominated products of the aforementioned compounds, such as tetrabromobisphenol A. Very particular preference is given to using liquid diglycidyl ethers based on bisphenol A and bisphenol F with an epoxy equivalent weight of 150 to 200 g / eq.Also included are polyglycidyl ethers of polyols, such as ethane-1,2-diol diglycidyl ether, propane-1,2-diol diglycidyl ether, propane-1,3-diol diglycidyl ether, butanediol diglycidyl ether, pentanediol diglycidyl ether (including neopentyl glycol diglycidyl ether), hexanediol diglycidyl ether, diethylene glycol diglycidyl ether, dipropylene glycol diglycidyl ether, higher polyoxyalkylene glycol diglycidyl ethers, such as higher polyoxyethylene glycol diglycidyl ether and polyoxypropylene glycol diglycidyl ether, and co-polyoxyethylene-propylene glycol diglycidyl ethers. It is also possible to use polyglycidyl ethers of glycerol, hexane-1,2,6-triol, trimethylolpropane, trimethylolethane, pentaerythritol, or sorbitol, polyglycidyl ethers of oxyalkylated polyols (e.g., inter alia, those of glycerol, trimethylolpropane, and pentaerythritol), diglycidyl ethers of cyclohexanedimethanol, bis(4-hydroxycyclohexyl)methane, and 2,2-bis(4-hydroxycyclohexyl)propane, polyglycidyl ethers of castor oil, and triglycidyl tris(2-hydroxyethyl)isocyanurate.

[0076] Further useful components A) include poly(N-glycidyl) compounds obtained by dehydrohalogenation of reaction products of epichlorohydrin with amines, such as aniline, n-butylamine, bis(4-aminophenyl)methane, m-xylylenediamine, or bis(4-methylaminophenyl)methane. Poly(N-glycidyl) compounds also include triglycidyl isocyanurate, triglycidyl urazole and its oligomers, N,N'-diglycidyl derivatives of cycloalkylene ureas, and, in particular, diglycidyl derivatives of hydantoin.

[0077] It is also possible to use polyglycidyl esters of polycarboxylic acids, which are obtained by reacting epichlorohydrin or similar epoxide compounds with aliphatic, cycloaliphatic, or aromatic polycarboxylic acids, such as oxalic acid, succinic acid, adipic acid, glutaric acid, phthalic acid, terephthalic acid, tetrahydrophthalic acid, hexahydrophthalic acid, naphthalene-2,6-dicarboxylic acid, and higher diglycidyl dicarboxylates, such as dimerized or trimerized linoleic acid. Examples are diglycidyl adipate, diglycidyl phthalate, and diglycidyl hexahydrophthalate.

[0078] Further examples include glycidyl esters of unsaturated carboxylic acids, and epoxidized esters of unsaturated alcohols or unsaturated carboxylic acids. In addition to polyglycidyl ethers, small amounts of monoepoxides, such as methyl glycidyl ether, butyl glycidyl ether, allyl glycidyl ether, ethylhexyl glycidyl ether, long-chain aliphatic glycidyl ethers, such as cetyl glycidyl ether and stearyl glycidyl ether, monoglycidyl ethers of higher isomeric alcohol mixtures, glycidyl ethers of C12-C13 alcohol mixtures, phenyl glycidyl ether, cresyl glycidyl ether, p-tert-butylphenyl glycidyl ether, p-octylphenyl glycidyl ether, p-phenylphenyl glycidyl ether, glycidyl ethers of alkoxylated lauryl alcohol, and monoepoxides such as epoxidized monounsaturated hydrocarbons (butylene oxide, cyclohexene oxide, styrene oxide), can be used in a mass proportion of up to 30% by weight, preferably 10% to 20% by weight, based on the mass of the polyglycidyl ether.

[0079] Useful epoxide compounds preferably include glycidyl ethers and glycidyl esters, aliphatic epoxides, diglycidyl ethers based on bisphenol A, bisphenol E, and / or bisphenol F, and glycidyl methacrylate. Other examples of such epoxides are triglycidyl isocyanurate, a mixture of diglycidyl terephthalate and triglycidyl trimellitate (trade names: ARALDIT PT 910 and 912, Huntsman), glycidyl esters of Versatic acid, 3,4-epoxycyclohexylmethyl 3,4'-epoxycyclohexanecarboxylate (ECC), ethylhexyl glycidyl ether, butyl glycidyl ether, pentaerythrityl tetraglycidyl ether, and other Polypox products with free epoxy groups. It is also possible to use mixtures of the mentioned epoxide compounds.

[0080] Particularly preferred epoxide components are polyepoxides based on bisphenol A diglycidyl ether, bisphenol E diglycidyl ether, bisphenol F diglycidyl ether, 4,4'-methylenebis[N,N-bis(2,3-epoxypropyl)aniline], hexanediol diglycidyl ether, butanediol diglycidyl ether, trimethylolpropane triglycidyl ether, propane-1,2,3-triol triglycidyl ether, pentaerythritol tetraglycidyl ether and diglycidyl hexahydrophthalate.

[0081] According to the present disclosure, it is also possible to preferably use mixtures of these epoxide compounds in the epoxy resin.

[0082] The epoxy resin can be in various forms such as crystalline, powder, semi-solid, liquid, etc. In the liquid form, the epoxy resin can be dissolved in a solvent, such as water. Preferably, the epoxy resin is in liquid form to facilitate the mixing process.

[0083] The phenalkamine-containing composition of the present disclosure can be used in a variety of applications, such as construction waterproofing materials, coatings such as corrosion-resistant coatings, and road paving and maintenance applications. In particular, the composition is suitable for road paving and maintenance applications, such as tack coats, fog seals, slurry seals, and microsurfacing. The phenalkamine-containing composition can be supplied using conventional equipment commonly used for two-component epoxy systems. During on-site application, one part (the phenalkamine-containing asphalt composition) and the other part (the epoxy resin) can be stored in two different tanks, mixed, and optionally mixed with other optional components in a curable asphalt composition such as an aggregate, and then applied to a substrate such as a road paving. The phenalkamine-containing composition provided by the present disclosure can shorten the curing process, provide good compatibility with asphalt, and increase flexibility and mechanical strength in road paving applications.

[0084] The present disclosure is illustrated by the synthesis examples and the following comparative examples.

[0085] Example In the following examples, the materials or definitions used are listed below.

[0086] Ancamine® 1922 was 3,3′-(oxybis(2,1-ethane-diyloxy))bis-1-propanamine, a diamine with an oxyethylene moiety manufactured by Evonik (Shanghai) Specialty Chemicals Co., Ltd.

[0087] Jeffamine® D230 and Jeffamine® D400 from Huntsman Corporation were diamines with an oxypropylene moiety. Jeffamine® T403 from Huntsman Corporation was a triamine with an oxypropylene moiety.

[0088] The purified cashew nut shell liquid HD-F170 manufactured by Huada Saigao (Beijing) Technology Co., Ltd. was cardanol with a purity of 85% by weight.

[0089] A 37 wt% aqueous formaldehyde solution manufactured by Sinopharm Chemical Reagent Co., Ltd. was used as the formaldehyde source.

[0090] The molar ratio was calculated using the number of moles of cardanol as the unit (1).

[0091] DER™ 331 was a diglycidyl ether of bisphenol A manufactured by Olin Corporation and was the liquid reaction product of epichlorohydrin and bisphenol A. DER™ 331 has an EEW of 182-192 g / mol.

[0092] To compare the phenalkamine-containing compositions provided in this disclosure with commercially available hardeners, three Ancamine® hardeners were tested.

[0093] Ancamine® 2758 is a phenalkamine manufactured by Evonik Specialty Chemicals (Shanghai) Co., Ltd. The curing agent use level was 35 phr for DER331.

[0094] Ancamine® 2770 is a phenalkamine manufactured by Evonik Specialty Chemicals (Shanghai) Co., Ltd. The curing agent use level was 65 phr for DER331.

[0095] Ancamine® 1637 is a Mannich base hardener manufactured by Evonik Specialty Chemicals (Shanghai) Co., Ltd. The hardener use level was 26 phr for DER331.

[0096] Calculate the amine hydrogen equivalent weight (g / mol) or AHEW as the molecular weight of the amine divided by the number of amine hydrogen atoms per molecule.

[0097] The epoxy group content, denoted as epoxy equivalent weight or EEW, is the ratio between the molecular weight of the epoxide and the number of epoxy groups.

[0098] When describing the chemical composition of two-component epoxy systems, reference is often made to the hardener dosage level, which is the amount of hardener used per 100 parts resin (phr). In the examples, this is calculated as the amount of phenalkamine per 100 parts epoxy resin (DER331) with an EEW of 187 g / mol.

[0099] To test the physical performance or properties of the samples, the following protocol was used:

[0100] Viscosity was measured according to ASTM D445-83 with a Brookfield DV-II+Pro viscometer at 25° C. Thin film set time (TFST) was measured according to ASTM D5895 using a Beck-Koller dry recorder.

[0101] The amine number was determined in a Mettler titrator according to ASTM D 2074 (perchloric acid titration).

[0102] Gas permeation chromatography (GPC) analysis was performed to evaluate the molecular weight distribution of the synthesized curing agent. A PLgel MIXED GPC column manufactured by Agilent Technologies, Inc. was used. The flow rate was set at 0.3 mL / min. The analyte concentration in the tetrahydrofuran (THF) eluent was 5 mg / mL. The injection volume was 20 μL. The column and pump temperatures were 40°C. Polystyrene was used as a calibration standard. A refractive index (RI) detector was used.

[0103] Gardner color was measured according to ASTM D 1544-80.

[0104] Gloss was measured with a BYK gloss meter according to ASTM D 523-85.

[0105] Drying time was tested on a BY drying recorder according to ASTM D5895. Stage 1 is the dry to touch time. Stage 2 is the tack-free time. Stage 3 is the hardened dry time. Stage 4 is the completely dry time. Hardness was tested on a Shore D tester according to GB / T2411.

[0106] Water spot resistance, also known as carbamate resistance or whitening resistance, is measured according to an internal test method and is described as follows: After a period of curing, e.g., one or two days, a cotton ball saturated with water is placed on the coating surface and then covered with water glass. The next day, the cotton ball is removed and the appearance of the coating surface is rated on a scale of 1 to 5. 1 - Very poor White surface 2 - Poor Mild bleaching 3 - Moderately cloudy surface 4 - Good, visible contour 5 - Very good glossy surface

[0107] Tensile properties including tensile strength, elongation at break, and tensile modulus were measured according to GB / T 2567-2008.

[0108] Flexibility was measured according to ASTM D522.

[0109] Impact resistance was measured according to ASTM D2794.

[0110] The cross-cut test for adhesion between the coating and the coated surface of the substrate was determined according to DIN EN ISO 2409.

[0111] The glass transition temperature, also known as Tg, was the value measured by DSC in the second scan from 0 to 200°C at a heating rate of 10°C / min according to ASTM D 3418-82.

[0112] Gel times were measured using 150 grams of the mixture with a Techne® Gelation Timer from Cole-Parmer Instrument Company, LLC.

[0113] The pot life was determined by measuring the time required for the viscosity value of the mixture to double its initial value.

[0114] After 24 hours at room temperature, the appearance was visually evaluated.

[0115] The compositions prepared in the Synthesis Examples, Comparative Examples, and commercially available curing agents were cured with EEW187 standard liquid epoxy resin according to their respective stoichiometries. DER™ 331 was used as the liquid epoxy resin. It is a diglycidyl ether of bisphenol A manufactured by Olin Corporation. The use levels in the Synthesis Examples and Comparative Examples are listed in Table 1. All samples were conditioned at room temperature (21-25°C) for a minimum of 24 hours before testing. The phenalkamine-containing compositions were mixed with DER™ 331 using a speed mixer at 1,500 rpm for 2 minutes and then applied to the test substrate or poured into a test mold. After curing at the specified temperature for a set time, the specimens were tested according to standard methods.

[0116] Synthesis procedure Cardanol and amine were charged to a 1 L flask. The temperature was raised to 70-80°C with stirring. While stirring the cardanol-amine mixture, a 37 wt% aqueous formaldehyde solution was added dropwise to the flask. After the addition of the formaldehyde solution was complete, the contents of the flask were heated to 100°C. The temperature was maintained for 100 minutes. It was then increased to 120°C over 30-50 minutes. Water was removed under reduced pressure. The organic mixture was drained and cooled for testing.

[0117] In Synthesis Examples SE1 to SE5, Ancamine® 1922 manufactured by Evonik Specialty Chemicals (Shanghai) Co., Ltd. was used as the polyamine. In Comparative Examples CE1 to CE3, poly(propylene glycol)-based polyetheramines, such as Jeffamine® D230, Jeffamine® D400, and Jeffamine® T403 manufactured by Huntsman Corporation, were used as the polyamine. Details of the Synthesis Examples and Comparative Examples are shown in Table 1.

[0118] GPC analysis revealed that the synthesized amines with different molar ratios of cardanol:polyamine:aldehyde contained various components, mainly in the form of condensates with one, two, or more cardanol moieties, directly bonded to one or two -CHNH- bonds, respectively. Their presence and content were indicated by individual peaks. The average peak molecular weights (M) of the synthesized amines with molar ratios of 1:1:1 and 1:1:1.5 (cardanol / polyamine / aldehyde) were 0.01 and 0.02, respectively. p ) were 584 (the repeating number of the cardanol moiety) and 1234, respectively. These results indicated that excess aldehyde could lead to a high level of condensation and increase the amount of more highly condensed products.

[0119] Test results are shown in Tables 2 and 3. Comparative sample CE3 had little test data due to incomplete curing with the epoxy resin under some test conditions. Tensile property data was obtained under cure condition 2. The tensile strength was 47.4 MPa. The elongation was 8.7%. The modulus was 1357 MPa. Commercially available curing agents Ancamine® 2758, Ancamine® 2770, and Ancamine® 1637 were used to further evaluate the performance of the phenalkamine-containing compositions provided in this disclosure. In Table 3, they are abbreviated as A2758, A2770, and A1637, respectively.

[0120] As shown in Tables 2 and 3, the phenalkamine-containing compositions of the Synthesis Examples had faster cure characteristics, with much faster dry times, in terms of gel time and pot life, than the compositions prepared from the poly(propylene glycol)-based diamines of Comparative Examples CE1 and CE2, and also exhibited faster hardness development at lower temperatures.

[0121] With regard to mechanical performance, the amines of the synthetic examples exhibited high elongation, excellent impact resistance, and good flexibility as measured by bending flexibility at -20°C compared to conventional ethylenediamine-modified phenalkamines (e.g., Ancamine® 2758, Ancamine® 2770) and polyethylenepolyamine-modified Mannich bases (e.g., Ancamine® 1637). The compositions of the synthetic examples also exhibited excellent adhesion, excellent carbamate resistance, and a glossy finish at low temperatures, making them well suited for use in protective coatings. The tensile modulus, tensile strength, and Shore hardness could be improved by varying some of the formaldehyde in the synthesis without sacrificing fast cure or excellent flexibility.

[0122] Phenalkamine-containing compositions also exhibit good resistance to carbamate formation, which can lead to glossy surfaces, highly desirable in many applications such as road overlays, modified asphalt pavements, flexible adhesives, coatings, mortars, and composites.

[0123] In coating, road overlay, and pavement applications, fast cure characteristics and excellent flexibility are desirable, allowing for rapid traffic opening and significantly improving crack resistance. The phenalkamine-containing compositions produced by the synthetic examples typically require elongations greater than 30% according to ASTM C881 / C881M-14, making them suitable for road overlay applications.

[0124] [Table 1]

[0125] [Table 2]

[0126] [Table 3]

[0127] Various aspects and embodiments are possible. Some of these aspects and embodiments are described herein. After reading this specification, those skilled in the art will recognize that these aspects and embodiments are merely exemplary and do not limit the scope of the present disclosure. The embodiment may be in accordance with any one or more of the following embodiments:

[0128] The above description is presented to enable one of ordinary skill in the art to make and use the disclosure, and is provided in the context of an application and its requirements. Various modifications to the preferred embodiments will be apparent to those skilled in the art, and the general principles defined herein may be applied to other embodiments and applications without departing from the spirit and scope of the disclosure. Thus, the disclosure is not intended to be limited to the embodiments shown, but is to be accorded the widest scope consistent with the principles and features disclosed herein. In this regard, specific embodiments within the disclosure may not exhibit all of the advantages of the disclosure broadly contemplated.

Claims

1. Formula (I): 【Chemistry 1】 wherein X is H or OH, and R 1 is an aliphatic chain having more than 8 carbon atoms, and R 2 is H and R 3 and R 4 are independently CH 2 CH 2 , C.H. 2 CH 2 CH 2 , or C.H. 2 CH 2 CH 2 CH 2 and P and Q are, independently of each other, integers, P is an integer of 2 or greater, and Q is 1, 2, or 3.

2. The composition of claim 1 , wherein P is an integer of 2 or greater and 50 or less.

3. R 1 The composition of claim 1 , wherein has at least one unsaturated bond.

4. R 1 But C 15 H 31-m or C 17 H 35-m and m is 0, 2, 4, or 6.

5. Formula (II): 【Chemistry 2】 The composition of claim 1, further comprising a first polymer represented by the formula: [wherein X, R 1 , R 2 , R 3 and R 4 are the same as X, R 1 , R 2 , R 3 and R 4 in formula (I), P is the same as P in formula (I), and M is an integer of 1 or greater].

6. Formula (III): 【Transformation 3】 The composition of claim 1, further comprising a second polymer represented by the formula: [wherein X, R 1 , R 2 , R 3 and R 4 are the same as X, R 1 , R 2 , R 3 and R 4 in formula (I), P is the same as P in formula (I), and J is an integer of 2 or greater].

7. 10. The composition of claim 1, further comprising one or more additives selected from fillers, reinforcing agents, coupling agents, toughening agents, defoamers, dispersants, lubricants, colorants, marking materials, dyes, pigments, IR absorbers, antistatic agents, antiblocking agents, nucleating agents, crystallization promoters, crystallization retarders, conductive additives, carbon black, graphite, carbon nanotubes, graphene, drying agents, mold release agents, leveling aids, flame retardants, separating agents, optical brighteners, rheology additives, photochromic additives, softeners, adhesion promoters, anti-drip agents, metallic pigments, stabilizers, metal glitter, metal coated particles, porosity inducers, glass fibers, nanoparticles, flow aids, or combinations thereof.

8. Formula (I): 【Chemistry 4】 wherein X is H or OH, and R 1 is an aliphatic chain having more than 8 carbon atoms, and R 2 is H and R 3 and R 4 are independently CH 2 CH 2 , C.H. 2 CH 2 CH 2 , or C.H. 2 CH 2 CH 2 CH 2 wherein P and Q are each independently an integer, P is an integer of 2 or greater, and Q is 1, 2, or 3; A method comprising heating a polyamine having at least two primary amino groups and at least one oxyethylene moiety, an alkylphenol, and at least one aldehyde to a temperature of from 0°C to 150°C.

9. 9. The method of claim 8, wherein the temperature is from 0°C to 150°C.

10. The polyamine is NH 2 R 3 (OCH 2 CH 2 ) P OR 4 NH 2 and represented by formula (IV) as: 3 and R 4 are independently CH 2 CH 2 , C.H. 2 CH 2 CH 2 or CH 2 CH 2 CH 2 CH 2 and P is an integer between 2 and 50, inclusive.

11. 9. The method of claim 8, wherein the aldehyde is formaldehyde.

12. 9. The method of claim 8, wherein the molar ratio of polyamine to alkylphenol is in the range of 0.1:1 to 10:

1.

13. 9. The method of claim 8, wherein the molar ratio of aldehyde to alkylphenol is in the range of 0.1:1 to 10:1.

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