Method for manufacturing toner for electrostatic image development

The controlled temperature melt-kneading process using an open-roll twin-screw kneader improves the dispersibility of crystalline polyester resin in amorphous resin, enhancing the low-temperature fixing and pressure storage properties of electrostatic image developing toner.

JP7846575B2Active Publication Date: 2026-04-15KAO CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-06-27
Publication Date
2026-04-15

AI Technical Summary

Technical Problem

Insufficient dispersion of crystalline polyester resin in amorphous resin during toner production leads to inadequate low-temperature fixing properties and reduced smearability and pressure storage properties of printed materials.

Method used

A method involving the use of an open-roll twin-screw kneader with controlled temperature settings between -20°C and +15°C during melt-kneading of a mixture containing crystalline and amorphous resins, ensuring improved dispersibility of the crystalline polyester resin in the amorphous resin.

Benefits of technology

The method enhances the low-temperature fixing properties, smearability, and pressure storage properties of electrostatic image developing toner by improving the compatibility and dispersibility of crystalline polyester resin in amorphous resin.

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Abstract

To provide a method for manufacturing a toner for electrostatic charge image development which is excellent in low temperature fixability, smear property of a printed matter and pressurization storage property.SOLUTION: A method for manufacturing a toner for electrostatic charge image development contains a crystalline polyester resin C and an amorphous resin A, in which the crystalline polyester resin C is a polycondensation product of an alcohol component containing ethylene glycol and a carboxylic acid component, and includes a step of melting and kneading a mixture containing the amorphous resin A and the crystalline polyester resin C using an open roll type biaxial kneader having two rolls having different circumferential speeds, wherein a temperature on the kneaded material discharge side of the high rotating roll of the open roll type biaxial kneader is -20°C or higher and +15°C or lower of the melting point of the crystalline polyester resin C.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to a method for manufacturing electrostatic image developing toner used for developing latent images formed in electrophotography, electrostatic recording, electrostatic printing, and the like. [Background technology]

[0002] Crystalline polyester resins are known to be effective in improving the low-temperature fixation properties of toner as binder resins, and their use in combination with amorphous resins is being investigated.

[0003] Patent Document 1 discloses a toner for developing electrostatic images, comprising an amorphous polyester resin A and a crystalline polyester resin C, wherein the amorphous polyester resin A has constituent parts derived from polyester resin and constituent parts derived from a modified polyolefin polymer A having reactive functional groups, the constituent parts derived from polyester resin and the constituent parts derived from the modified polyolefin polymer A are linked via covalent bonds, and the amount of constituent parts derived from the modified polyolefin polymer A is 5% by mass or more and 30% by mass or less of the total amount of resin components in the toner. [Prior art documents] [Patent Documents]

[0004] [Patent Document 1] Japanese Patent Publication No. 2020-86459 [Overview of the Initiative] [Problems that the invention aims to solve]

[0005] However, when manufacturing pulverized toner using crystalline polyester resin, if the crystalline polyester resin is not sufficiently dispersed in the amorphous resin through melt kneading, the dispersion will remain insufficient even after cooling and tonerification. As a result, the low-temperature fixing properties characteristic of crystalline polyester resin will not be fully exhibited, and the smearability of the printed material and its storage properties under pressure will also decrease.

[0006] The present invention relates to a method for manufacturing a toner for electrostatic image development that exhibits excellent low-temperature fixing properties, smearability of printed materials, and pressure storage properties. [Means for solving the problem]

[0007] The present invention relates to a method for producing a toner for electrostatic image development, comprising the steps of: the crystalline polyester resin C being a polycondensate of an alcohol component containing ethylene glycol and a carboxylic acid component; melt-kneading a mixture containing the amorphous resin A and the crystalline polyester resin C using an open-roll twin-screw kneader equipped with two rolls of different peripheral speeds; and the temperature on the kneading discharge side of the high-speed roll of the open-roll twin-screw kneader being between -20°C and +15°C, the melting point of the crystalline polyester resin C. [Effects of the Invention]

[0008] The electrostatic image developing toner obtained by the method of the present invention exhibits excellent effects in terms of low-temperature fixing properties, smearability of printed materials, and pressure storage properties. [Modes for carrying out the invention]

[0009] The present invention is characterized by the fact that, in the production of electrostatic image developing toner containing a crystalline polyester resin and an amorphous resin, the crystalline polyester resin is a polycondensate of raw material monomers containing ethylene glycol, and in the melt kneading process, an open-roll twin-screw kneader with high-speed rolls adjusted to a predetermined temperature is used. The reason why the electrostatic image developing toner obtained by the method of the present invention has excellent low-temperature fixing properties, smearability of printed materials, and pressure storage properties is not clear, but it is presumed to be as follows.

[0010] In this invention, by using an open-roll twin-screw kneader with high kneading strength and easy temperature control, the dispersibility of the crystalline polyester resin in the amorphous resin is improved. Furthermore, because the crystalline polyester resin (crystalline polyester resin C) contains ethylene glycol as an alcohol component, hydrophilic moieties are introduced into the crystalline polyester resin, improving compatibility with the amorphous resin (amorphous resin A) and improving low-temperature fixation. In addition, it is thought that the smearability of printed materials is also excellent, possibly due to improved affinity with paper. Furthermore, when using an open-roll twin-screw mixer for melt-mixing the raw material mixture, if the temperature on the high-speed roll discharge side is too low, the dispersibility in the amorphous resin decreases, possibly because some of the crystalline polyester resin crystallizes during mixing. On the other hand, if the temperature on the high-speed roll discharge side is too high, the dispersibility in the amorphous resin decreases, possibly because the viscosity of the crystalline polyester resin decreases, and in either case, the ability to store under pressure decreases. In contrast, the present invention controls the temperature on the discharge side of the open-roll twin-screw mixer to be near the melting point of the crystalline polyester resin, thereby improving the dispersibility of the crystalline polyester resin in the amorphous resin and improving the ability to store under pressure.

[0011] In the present invention, the crystalline polyester resin C is preferably a polycondensate of an alcohol component containing ethylene glycol and a carboxylic acid component.

[0012] The crystallinity of a resin is expressed by a crystallinity index defined by the ratio of the softening point to the maximum endothermic peak temperature measured by a differential scanning calorimeter, i.e., the value of [softening point / maximum endothermic peak temperature]. A crystalline resin is a resin with a crystallinity index of 0.6 or higher, preferably 0.7 or higher, more preferably 0.9 or higher, and 1.4 or lower, preferably 1.2 or lower, more preferably 1.1 or lower. On the other hand, amorphous resins are those in which no endothermic peak is observed, or, if observed, those with a crystallinity index greater than 1.4, preferably greater than 1.5, more preferably 1.6 or higher, or less than 0.6, preferably 0.5 or lower. The crystallinity of the resin can be adjusted by the types and ratios of the raw material monomers, and the manufacturing conditions (e.g., reaction temperature, reaction time, cooling rate), etc. The maximum peak temperature of the endotherm refers to the temperature of the peak with the largest peak area among the observed endothermic peaks. In the case of a crystalline resin, the maximum peak temperature of the endotherm is taken as the melting point.

[0013] The content of ethylene glycol is preferably 70 mol% or more, more preferably 80 mol% or more, still more preferably 90 mol% or more, still more preferably 95 mol% or more, and still more preferably 100 mol% from the viewpoints of low-temperature fixing property and smear property in the alcohol component.

[0014] Examples of the alcohol component other than ethylene glycol include aliphatic diols other than ethylene glycol such as 1,2-propanediol, 1,3-propanediol, 1,4-butanediol, 1,5-pentanediol, 1,6-hexanediol, 1,7-heptanediol, 1,8-octanediol, neopentyl glycol, 1,9-nonanediol, 1,10-decanediol, 1,11-undecanediol, 1,|12-dodecanediol, aromatic diols such as alkylene oxide adducts of bisphenol A, and polyhydric alcohols with three or more hydroxyl groups such as bisphenol A, hydrogenated bisphenol A, sorbitol, pentaerythritol, glycerin, and trimethylolpropane.

[0015] The carboxylic acid component preferably contains an aliphatic dicarboxylic acid-based compound.

[0016] Examples of aliphatic dicarboxylic acid compounds include succinic acid (4 carbon atoms), fumaric acid (4 carbon atoms), adipic acid (6 carbon atoms), suberic acid (8 carbon atoms), azelaic acid (9 carbon atoms), sebacic acid (10 carbon atoms), dodecanediic acid (12 carbon atoms), tetradecanediic acid (14 carbon atoms), succinic acid having an alkyl or alkenyl group in its side chain, anhydrides of these acids, and alkyl esters of these acids with 1 to 3 carbon atoms. Here, the number of carbon atoms in the alkyl group when the aliphatic dicarboxylic acid compound is an alkyl ester is not included in the above carbon number.

[0017] From the viewpoint of hydrophobicity, the number of carbon atoms in the aliphatic dicarboxylic acid compound is preferably 4 or more, more preferably 10 or more, and even more preferably 12 or more. From the viewpoint of low-temperature fixability, it is preferably 16 or less, and more preferably 14 or less.

[0018] The content of aliphatic dicarboxylic acid compounds in the carboxylic acid component is preferably 50 mol% or more, more preferably 60 mol% or more, even more preferably 70 mol% or more, even more preferably 80 mol% or more, and 100 mol% or less, preferably 98 mol% or less, and more preferably 95 mol% or less, from the viewpoint of hydrophobicity.

[0019] Other carboxylic acid components include aromatic dicarboxylic acid compounds and trivalent or higher carboxylic acid compounds.

[0020] Furthermore, the alcohol component and / or carboxylic acid component of the crystalline polyester resin C preferably contain a monofunctional monomer. From the viewpoint of improving hydrophobicity, the monofunctional monomer is preferably an aliphatic monofunctional monomer having 10 or more carbon atoms. Furthermore, from the viewpoint of reactivity, it is preferably a monofunctional alcohol or monocarboxylic acid.

[0021] Examples of monofunctional monomers contained in alcohol components include aliphatic monoalcohols such as caprin alcohol, lauryl alcohol, myristyl alcohol, palmityl alcohol, stearyl alcohol, and behenyl alcohol.

[0022] From the viewpoint of hydrophobicity, the carbon number of the aliphatic monoalcohol is preferably 10 or more, more preferably 12 or more, and even more preferably 14 or more, and from the viewpoint of low-temperature fixability, it is preferably 22 or less, more preferably 20 or less, and even more preferably 18 or less.

[0023] Examples of monofunctional monomers included in carboxylic acid components include aliphatic monocarboxylic acids such as capric acid, lauric acid, myristic acid, palmitic acid, stearic acid, and behenic acid, as well as aliphatic monocarboxylic acid compounds such as alkyl esters in which the alkyl group of these acids has 1 to 3 carbon atoms.

[0024] From the viewpoint of hydrophobicity, the carbon number of the aliphatic monocarboxylic acid compound is preferably 10 or more, more preferably 12 or more, and even more preferably 14 or more. From the viewpoint of low-temperature fixability, it is preferably 22 or less, more preferably 20 or less, and even more preferably 18 or less. Here, the carbon number of the alkyl group when the aliphatic monocarboxylic acid compound is an alkyl ester is not included in the above carbon number.

[0025] The content of monofunctional monomers is preferably 1 mol% or more, more preferably 3 mol% or more, and even more preferably 5 mol% or more, in the raw material monomer (in the total amount of alcohol and carboxylic acid components), and from the viewpoint of low-temperature fixability, it is preferably 30 mol% or less, more preferably 20 mol% or less, and even more preferably 15 mol% or less.

[0026] In this specification, macromonomers and hydroxycarboxylic acids are not included in the alcohol and carboxylic acid components.

[0027] The equivalent ratio (COOH group / OH group) of the carboxylic acid component to the alcohol component is preferably 0.8 or higher, more preferably 0.9 or higher, from the viewpoint of pressurized storage properties, and preferably 1.2 or lower, more preferably 1.1 or lower, from the viewpoint of low-temperature fixation properties.

[0028] Crystalline polyester resin C can be produced, for example, by polycondensing an alcohol component and a carboxylic acid component in an inert gas atmosphere, preferably in the presence of an esterification catalyst, and optionally in the presence of an esterification co-catalyst, polymerization inhibitor, etc., preferably at a temperature of 120°C to 230°C.

[0029] Examples of esterification catalysts include tin compounds such as dibutyltin oxide and tin(II) 2-ethylhexanoate, and titanium compounds such as titanium diisopropylate bistriethanolamine. The amount of esterification catalyst used is preferably 0.01 parts by mass or more, more preferably 0.1 parts by mass or more, and preferably 1.5 parts by mass or less, and more preferably 1 part by mass or less, per 100 parts by mass of the total amount of alcohol and carboxylic acid components. Examples of esterification co-catalysts include gallic acid. The amount of esterification co-catalyst used is preferably 0.001 parts by mass or more, more preferably 0.01 parts by mass or more, and preferably 0.5 parts by mass or less, and more preferably 0.1 parts by mass or less, per 100 parts by mass of the total amount of alcohol and carboxylic acid components. Examples of polymerization inhibitors include t-butylcatechol. The amount of polymerization inhibitor used is preferably 0.001 parts by mass or more, more preferably 0.01 parts by mass or more, and preferably 0.5 parts by mass or less, and more preferably 0.1 parts by mass or less, based on 100 parts by mass of the total amount of alcohol and carboxylic acid components.

[0030] In this invention, the polyester resin may be a polyester resin that has been modified to such an extent that its properties are not substantially impaired. Examples of modified polyester resins include polyester resins that have been grafted or blocked with phenol, urethane, epoxy, etc., by methods described in Japanese Patent Publication No. 11-133668, Japanese Patent Publication No. 10-239903, Japanese Patent Publication No. 8-20636, etc. Among modified polyester resins, urethane-modified polyester resins obtained by urethane elongation of polyester resin with a polyisocyanate compound are preferred.

[0031] The softening point of the crystalline polyester resin C is preferably 50°C or higher, more preferably 65°C or higher, and even more preferably 70°C or higher, from the viewpoint of pressurized storage properties, and preferably 120°C or lower, more preferably 110°C or lower, from the viewpoint of low-temperature fixing properties.

[0032] The melting point of the crystalline polyester resin C is preferably 60°C or higher, more preferably 70°C or higher, from the viewpoint of pressurized storage properties, and preferably 130°C or lower, more preferably 120°C or lower, from the viewpoint of low-temperature fixation properties.

[0033] The acid value of the crystalline polyester resin C is preferably 1 mg KOH / g or more, more preferably 3 mg KOH / g or more, from the viewpoint of low-temperature fixability, and preferably 20 mg KOH / g or less, more preferably 15 mg KOH / g or less, from the viewpoint of pressurized storage.

[0034] The content of crystalline polyester resin C is preferably 1% by mass or more, more preferably 3% by mass or more, and even more preferably 4% by mass or more, of the total amount of crystalline polyester resin C and amorphous resin A, from the viewpoint of low-temperature fixability, and preferably 45% by mass or less, more preferably 40% by mass or less, even more preferably 30% by mass or less, and even more preferably 20% by mass or less, from the viewpoint of pressurized storage.

[0035] Examples of amorphous resin A include amorphous polyester resin, composite resins in which polyester resin and styrene-based resin are bonded, polyamide resin, vinyl-based resin, epoxy resin, polycarbonate resin, polyurethane resin, etc. However, in the present invention, from the viewpoint of improving pressure storage properties, amorphous polyester resin or composite resin is preferred, and amorphous polyester resin is more preferred.

[0036] As the amorphous polyester resin, a polycondensate of an alcohol component containing an alkylene oxide adduct of bisphenol A and a carboxylic acid component is preferred.

[0037] The alkylene oxide adduct of bisphenol A is given by formula (I):

[0038] [ka]

[0039] (In the formula, OR and RO are oxyalkylene groups, R is an ethylene group and / or a propylene group, x and y represent the average number of moles of alkylene oxide added, each being a positive number, and the sum of x and y is 1 or greater, preferably 1.5 or greater, and 16 or less, preferably 8 or less, more preferably 6 or less, and even more preferably 4 or less.) Compounds represented by are preferred.

[0040] From the viewpoint of low-temperature fixability, the content of the bisphenol A alkylene oxide adduct is preferably 70 mol% or more, more preferably 80 mol% or more, even more preferably 90 mol% or more, even more preferably 95 mol% or more, and even more preferably 100 mol% in the alcohol component.

[0041] Other alcohol components include trihydric or higher alcohols such as aliphatic diols, bisphenol A, hydrogenated bisphenol A, sorbitol, pentaerythritol, glycerin, and trimethylolpropane.

[0042] Examples of carboxylic acid components include aliphatic dicarboxylic acid compounds, aromatic dicarboxylic acid compounds, and carboxylic acid compounds with a valency of three or higher.

[0043] Examples of aliphatic dicarboxylic acid compounds include fumaric acid, maleic acid, succinic acid, succinic acid derivatives substituted with hydrocarbon groups, glutaric acid, adipic acid, sebacic acid, anhydrides of these acids, and alkyl esters of these acids with 1 to 3 carbon atoms.

[0044] Examples of aromatic dicarboxylic acid compounds include phthalic acid, isophthalic acid, terephthalic acid, anhydrides of these acids, and alkyl esters of these acids with 1 to 3 carbon atoms.

[0045] Examples of carboxylic acid compounds with a valency of 3 or higher include trimellitic acid, pyromellitic acid, anhydrides of these acids, and alkyl esters of these acids with 1 to 3 carbon atoms.

[0046] In the present invention, the carboxylic acid component of the amorphous polyester resin preferably includes a succinic acid derivative substituted with a hydrocarbon group, from the viewpoint of low-temperature fixability.

[0047] In succinic acid derivatives substituted with hydrocarbon groups, alkyl groups or alkenyl groups are preferred. Therefore, specific examples of succinic acid derivatives substituted with hydrocarbon groups include dodecyl succinic acid, dodecenyl succinic acid, tetrapropenyl succinic acid, decenyl succinic acid, their acid anhydrides, and alkyl esters having 1 to 3 carbon atoms. Among these, dodecenyl succinic acid, tetrapropenyl succinic acid, or their acid anhydrides are preferred from the viewpoint of low-temperature fixability, with dodecenyl succinic anhydride being more preferred.

[0048] From the viewpoint of hydrophobicity, the number of carbon atoms in the hydrocarbon group of succinic acid derivatives is preferably 8 or more, more preferably 10 or more, even more preferably 12 or more, and preferably 20 or less, more preferably 18 or less, and even more preferably 16 or less.

[0049] As succinic acid derivatives, from the viewpoint of hydrophobicity, it is preferable to include at least one or more selected from the group consisting of succinic acid substituted with an alkyl group having 10 to 18 carbon atoms and succinic acid substituted with an alkenyl group having 10 to 18 carbon atoms, and it is more preferable to include at least one or more selected from the group consisting of succinic acid substituted with an alkyl group having 12 to 16 carbon atoms and succinic acid substituted with an alkenyl group having 12 to 16 carbon atoms.

[0050] The succinic acid derivative content is preferably 1 mol% or more, more preferably 5 mol% or more, and even more preferably 7 mol% or more, from the viewpoint of hydrophobicity, and from the viewpoint of pressurized storage, it is preferably 40 mol% or less, more preferably 35 mol% or less, even more preferably 20 mol% or less, and even more preferably 15 mol% or less.

[0051] Furthermore, the alcohol component may contain a monohydric alcohol, and the carboxylic acid component may contain a monohydric carboxylic acid compound, as appropriate.

[0052] The equivalent ratio (COOH group / OH group) of the carboxylic acid component to the alcohol component is preferably 0.6 or higher, more preferably 0.7 or higher, even more preferably 0.75 or higher, and preferably 1.2 or lower, more preferably 1.15 or lower, from the viewpoint of adjusting the softening point of the polyester resin.

[0053] The polycondensation reaction conditions between the alcohol component and the carboxylic acid component of the amorphous polyester resin are the same as those for the crystalline polyester resin, except that the preferred reaction temperature is preferably 130°C or higher, more preferably 170°C or higher, and preferably 250°C or lower, and more preferably 240°C or lower.

[0054] In the composite resin containing the polyester resin and the styrene-based resin, the polyester resin is the same as the amorphous polyester resin, and the styrene-based resin is an addition polymer of raw material monomers containing at least styrene, or a styrene derivative such as α-methylstyrene or vinyltoluene (hereinafter, styrene and styrene derivatives are collectively referred to as "styrene compounds").

[0055] The styrene compound, preferably styrene, content in the raw material monomer of the styrene resin is preferably 50% by mass or more, more preferably 70% by mass or more, and even more preferably 80% by mass or more, from the viewpoint of pressurized storage properties, and preferably 95% by mass or less, more preferably 93% by mass or less, and even more preferably 90% by mass or less, from the viewpoint of low-temperature fixation properties.

[0056] Furthermore, the styrene-based resin may contain an alkyl (meth)acrylate ester with an alkyl group having 7 or more carbon atoms as a raw material monomer. Examples of alkyl (meth)acrylate esters include 2-ethylhexyl (meth)acrylate, (iso)octyl (meth)acrylate, (iso)decyl (meth)acrylate, and (iso)stearyl (meth)acrylate. It is preferable to use one or more of these. In this specification, "(iso)" means that this group may or may not be present, and when these groups are not present, it indicates that it is normal. Also, "(meth)acrylic acid" refers to acrylic acid, methacrylic acid, or both.

[0057] In alkyl (meth)acrylate esters used as raw material monomers for styrene-based resins, the number of carbon atoms in the alkyl group is preferably 7 or more, more preferably 8 or more, and preferably 12 or less, and more preferably 10 or less, from the viewpoint of improving the low-temperature fixability of the toner. Note that the number of carbon atoms in the alkyl ester refers to the number of carbon atoms derived from the alcohol component constituting the ester.

[0058] The raw material monomers for styrene-based resins may also include raw material monomers other than styrene compounds and alkyl (meth)acrylates, such as ethylenically unsaturated monoolefins such as ethylene and propylene; diolefins such as butadiene; halovinyls such as vinyl chloride; vinyl esters such as vinyl acetate and vinyl propionate; ethylenically monocarboxylic acid esters such as dimethylaminoethyl (meth)acrylate; vinyl ethers such as methyl vinyl ether; vinylidene halides such as vinylidene chloride; and N-vinyl compounds such as N-vinylpyrrolidone.

[0059] The addition polymerization reaction of the raw material monomers for styrene-based resins can be carried out by conventional methods in the presence of polymerization initiators such as dibutyl peroxide and dicumyl peroxide, polymerization inhibitors, crosslinking agents, organic solvents, or without solvents. The temperature conditions are preferably 110°C or higher, more preferably 140°C or higher, and preferably 200°C or lower, more preferably 170°C or lower.

[0060] When using an organic solvent during the addition polymerization reaction, xylene, toluene, methyl ethyl ketone, acetone, etc., can be used. The amount of organic solvent used is preferably 10 to 50 parts by mass per 100 parts by mass of the raw material monomer of the styrene resin.

[0061] The composite resin is preferably a resin formed by bonding a polyester resin and a styrene-based resin, and more preferably a resin chemically bonded via reactive monomers that can react with both the raw material monomers of the polyester resin and the raw material monomers of the styrene-based resin.

[0062] The two reactive monomers are preferably compounds having at least one functional group selected from the group consisting of hydroxyl groups, carboxyl groups, epoxy groups, primary amino groups, and secondary amino groups, preferably a hydroxyl group and / or a carboxyl group, more preferably a carboxyl group, and an ethylenically unsaturated bond within the molecule. More preferably, at least one selected from the group consisting of acrylic acid, methacrylic acid, fumaric acid, maleic acid, and maleic anhydride is preferred, and even more preferably, at least one selected from the group consisting of acrylic acid, methacrylic acid, and fumaric acid is preferred from the viewpoint of reactivity in polycondensation and addition polymerization reactions. However, when used together with a polymerization inhibitor, polycarboxylic acid compounds having an ethylenically unsaturated bond, such as fumaric acid, function as raw material monomers for polyester resins. In this case, fumaric acid, etc., are not two reactive monomers, but raw material monomers for polyester resins.

[0063] From the viewpoint of low-temperature fixability, the amount of both reactive monomers used is preferably 1 mole or more, more preferably 2 moles or more, per 100 moles of the total alcohol components of the polyester resin. Furthermore, from the viewpoint of improving the dispersibility between the styrene-based resin and the polyester resin and improving the pressurized storage properties of the toner, the amount is preferably 30 moles or less, more preferably 20 moles or less, and even more preferably 10 moles or less. Furthermore, from the viewpoint of low-temperature fixability, the amount of each reactive monomer used is preferably 1 part by mass or more, more preferably 2 parts by mass or more, per 100 parts by mass of the total raw material monomers of the styrene resin. From the viewpoint of improving the dispersibility between the styrene resin and the polyester resin and improving the pressurized storage properties of the toner, the amount is preferably 30 parts by mass or less, more preferably 20 parts by mass or less, and even more preferably 10 parts by mass or less. Here, the polymerization initiator is included in the total amount of raw material monomers of the styrene resin.

[0064] The composite resin is preferably manufactured by the following method. When both reactive monomers are used, both reactive monomers are preferably used in the addition polymerization reaction together with the raw material monomers of the styrene-based resin, from the viewpoint of improving the pressurized storage properties and low-temperature fixing properties of the toner.

[0065] (i) A method in which a polycondensation reaction of polyester resin using raw material monomers (A) is followed by an addition polymerization reaction of styrene resin using raw material monomers and both reactive monomers (B). In this method, step (A) is carried out under reaction temperature conditions suitable for polycondensation, the reaction temperature is lowered, and step (B) is carried out under temperature conditions suitable for addition polymerization. It is preferable to add the styrene resin raw material monomer and both reactive monomers into the reaction system at a temperature suitable for addition polymerization. Both reactive monomers undergo addition polymerization and also react with the polyester resin. After step (B), the reaction temperature can be raised again, and if necessary, trivalent or higher polyester resin raw material monomers that act as crosslinking agents can be added to the polymerization system to further advance the polycondensation reaction in step (A) and the reaction with both reactive monomers.

[0066] (ii) A method in which, after step (B) an addition polymerization reaction using raw material monomers for styrene resin and both reactive monomers, a polycondensation reaction using raw material monomers for polyester resin is carried out (A). In this method, step (B) is carried out under reaction temperature conditions suitable for addition polymerization, and then the reaction temperature is increased to carry out the polycondensation reaction in step (A) under temperature conditions suitable for polycondensation. Both reactive monomers participate in both the addition polymerization and polycondensation reactions. The raw material monomers for the polyester resin may be present in the reaction system during the addition polymerization reaction, or they may be added to the reaction system under temperature conditions suitable for the polycondensation reaction. In the former case, the progress of the polycondensation reaction can be controlled by adding an esterification catalyst at a temperature suitable for the polycondensation reaction.

[0067] (iii) A method in which the polycondensation reaction of polyester resin using raw material monomers (A) and the addition polymerization reaction of styrene resin using raw material monomers and both reactive monomers (B) proceed in parallel under conditions. In this method, it is preferable to carry out steps (A) and (B) in parallel under reaction temperature conditions suitable for addition polymerization, increasing the reaction temperature, and then, under temperature conditions suitable for polycondensation, adding trivalent or higher polyester resin raw material monomers to the polymerization system as needed to further carry out the polycondensation reaction in step (A). At that time, under temperature conditions suitable for polycondensation, a polymerization inhibitor can be added to allow only the polycondensation reaction to proceed. Both reactive monomers are involved in both the addition polymerization reaction and the polycondensation reaction.

[0068] In method (i) above, a pre-polymerized polycondensation resin may be used instead of step (A) in which the polycondensation reaction is carried out. In method (iii) above, when the reaction is carried out under conditions in which steps (A) and (B) proceed in parallel, a mixture containing the raw material monomer of a styrene-based resin can be added dropwise to a mixture containing the raw material monomer of a polyester resin and the reaction can be carried out.

[0069] Methods (i) to (iii) described above are preferably carried out in the same container.

[0070] The mass ratio of polyester resin to styrene resin in the composite resin (polyester resin / styrene resin) is preferably 98 / 2 or less, more preferably 95 / 5 or less, and even more preferably 90 / 10 or less, from the viewpoint of smearability, and preferably 60 / 40 or more, more preferably 70 / 30 or more, and even more preferably 75 / 25 or more, from the viewpoint of low-temperature fixability. In the above calculations, the mass of polyester resin is the amount obtained by subtracting the amount of reaction water (calculated value) dehydrated by the polycondensation reaction from the mass of the raw material monomers of the polyester resin used, and the amounts of both reactive monomers are included in the amount of raw material monomers of the polyester resin. The amount of styrene resin is the total amount of raw material monomers of the styrene resin and polymerization initiator.

[0071] The softening point of amorphous resin A is preferably 90°C or higher, more preferably 100°C or higher, from the viewpoint of pressurized storage properties, and preferably 150°C or lower, more preferably 140°C or lower, from the viewpoint of low-temperature fixation properties and pressurized storage properties.

[0072] Furthermore, the amorphous resin A may be composed of resins with different softening points, from the viewpoint of low-temperature fixability and fixation width. The difference in softening points between the two resins is preferably 10°C or more, more preferably 12°C or more, and preferably 60°C or less, more preferably 30°C or less, and even more preferably 20°C or less.

[0073] The softening point of the amorphous resin (resin AH) with a higher softening point is preferably 100°C or higher, more preferably 110°C or higher, and even more preferably 120°C or higher, from the viewpoint of fixing width, and preferably 180°C or lower, more preferably 160°C or lower, and even more preferably 140°C or lower, from the viewpoint of low-temperature fixing properties.

[0074] Furthermore, the softening point of the amorphous resin (resin AL) with a lower softening point is preferably 70°C or higher, more preferably 90°C or higher, and even more preferably 100°C or higher, from the viewpoint of pressurized storage properties, and preferably 130°C or lower, more preferably 125°C or lower, and even more preferably 120°C or lower, from the viewpoint of low-temperature fixing properties.

[0075] The mass ratio of resin AH to resin AL (resin AH / resin AL) is preferably 10 / 90 or more, more preferably 20 / 80 or more, even more preferably 30 / 70 or more, and preferably 90 / 10 or less, more preferably 80 / 20 or less, and even more preferably 70 / 30 or less.

[0076] The glass transition temperature of amorphous resin A is preferably 40°C or higher, more preferably 50°C or higher, from the viewpoint of pressurized storage properties, and preferably 80°C or lower, more preferably 70°C or lower, and even more preferably 65°C or lower, from the viewpoint of low-temperature fixing properties.

[0077] The acid value of amorphous resin A is preferably 1 mg KOH / g or more, more preferably 3 mg KOH / g or more, from the viewpoint of low-temperature fixation, and preferably 20 mg KOH / g or less, more preferably 15 mg KOH / g or less, from the viewpoint of pressurized storage.

[0078] The number-average molecular weight of amorphous resin A is preferably 1,000 or more, more preferably 1,500 or more, and even more preferably 2,000 or more, from the viewpoint of pressurized storage properties, and preferably 6,000 or less, more preferably 5,000 or less, and even more preferably 4,000 or less, from the viewpoint of low-temperature fixation properties.

[0079] The weight-average molecular weight of amorphous resin A is preferably 5,000 or more, more preferably 6,000 or more, and even more preferably 8,000 or more, from the viewpoint of pressurized storage properties, and preferably 500,000 or less, more preferably 200,000 or less, and even more preferably 150,000 or less, from the viewpoint of low-temperature fixation properties.

[0080] The mass ratio of crystalline polyester resin C to amorphous resin A (crystalline polyester resin C / amorphous resin A) is preferably 1 / 99 or more, more preferably 3 / 97 or more, and even more preferably 5 / 95 or more, from the viewpoint of low-temperature fixability, and preferably 40 / 60 or less, more preferably 35 / 65 or less, and even more preferably 30 / 70 or less, from the viewpoint of pressurized storage.

[0081] In toner, crystalline polyester resin C and amorphous resin A are included as binder resins.

[0082] Other binder resins include vinyl resins such as styrene-acrylic resin, epoxy resins, polycarbonate, polyurethane, and composite resins containing two or more of these resins.

[0083] The total content of crystalline polyester resin C and amorphous resin A in the binder resin is preferably 70% by mass or more, more preferably 80% by mass or more, even more preferably 90% by mass or more, even more preferably 95% by mass or more, and even more preferably 100% by mass.

[0084] Furthermore, the binder resin content in the toner is preferably 60% by mass or more, more preferably 70% by mass or more, even more preferably 80% by mass or more, and preferably less than 100% by mass, more preferably 98% by mass or less, and even more preferably 95% by mass or less.

[0085] In addition to the binder resin, the toner may contain additives such as colorants, release agents, charge control agents, magnetic powders, flow improvers, conductivity modifiers, reinforcing fillers such as fibrous materials, antioxidants, and cleaning properties improvers.

[0086] As colorants, dyes, pigments, magnetic materials, etc., used as colorants for toners can be used. Examples include carbon black, phthalocyanine blue, permanent brown FG, brilliant first scarlet, pigment red 122, pigment green B, rhodamine-B base, solvent red 49, solvent red 146, solvent blue 35, quinacridone, carmine 6B, isoindoline, disazoel, etc. In this invention, the toner may be either black toner or color toner.

[0087] From the viewpoint of improving the toner's image density and low-temperature fixability, the colorant content is preferably 1 part by mass or more, more preferably 2 parts by mass or more, and preferably 40 parts by mass or less, more preferably 20 parts by mass or less, and even more preferably 10 parts by mass or less, per 100 parts by mass of the binder resin.

[0088] Examples of mold release agents include hydrocarbon waxes and their oxides, such as polypropylene wax, polyethylene wax, polypropylene-polyethylene copolymer wax, microcrystalline wax, paraffin wax, and Fischer-Tropsch wax; ester waxes such as carnauba wax, montane wax and their deoxidizing waxes, and fatty acid ester waxes; and fatty acid amides, fatty acids, higher alcohols, fatty acid metal salts, etc., which can be used individually or in combination of two or more.

[0089] The melting point of the release agent is preferably 60°C or higher, more preferably 70°C or higher, from the viewpoint of pressurized storage properties, and preferably 160°C or lower, more preferably 140°C or lower, even more preferably 120°C or lower, and even more preferably 110°C or lower, from the viewpoint of low-temperature fixing properties.

[0090] The release agent content is preferably 0.5 parts by mass or more, more preferably 1 part by mass or more, even more preferably 1.5 parts by mass or more, and preferably 10 parts by mass or less, more preferably 8 parts by mass or less, and even more preferably 7 parts by mass or less, per 100 parts by mass of binder resin, from the viewpoint of low-temperature fixation and pressure storage properties of the toner and dispersibility in the binder resin.

[0091] The charge control agent is not particularly limited and may contain either a positively charged charge control agent or a negatively charged charge control agent.

[0092] Positively charged charge control agents include nigrosine dyes, such as "Nigrosine Base EX," "Oil Black BS," "Oil Black SO," "Bontron N-01," "Bontron N-04," "Bontron N-07," "Bontron N-09," and "Bontron N-11" (all manufactured by Orient Chemical Industries, Ltd.); triphenylmethane-based dyes containing tertiary amines as side chains; quaternary ammonium salt compounds, such as "Bontron P-51" (manufactured by Orient Chemical Industries, Ltd.), cetyltrimethylammonium bromide, and "COPY CHARGE PX." Examples include VP435 (manufactured by Clariant), polyamine resins such as AFP-B (manufactured by Orient Chemical Industries, Ltd.), imidazole derivatives such as PLZ-2001 and PLZ-8001 (both manufactured by Shikoku Chemicals, Ltd.), and styrene-acrylic resins such as FCA-701PT and FCA-201-PS (manufactured by Fujikura Chemicals, Ltd.).

[0093] Furthermore, as negative charge control agents, metal-containing azo dyes, such as "Barifast Black 3804," "Bontron S-31," "Bontron S-32," "Bontron S-34," and "Bontron S-36" (all manufactured by Orient Chemical Industries, Ltd.), "Eisenspiron Black TRH," and "T-77" (manufactured by Hodogaya Chemical Co., Ltd.); metal compounds of benzyl acid compounds, such as "LR-147" and "LR-297" (both manufactured by Nippon Carlit Co., Ltd.); metal compounds of salicylic acid compounds, such as "Bontron E-81," "Bontron E-84," "Bontron E-88," and "Bontron E-304" (all manufactured by Orient Chemical Industries, Ltd.), and "TN-105" (manufactured by Hodogaya Chemical Co., Ltd.); copper phthalocyanine dyes; and quaternary ammonium salts, such as "COPY CHARGE NX" Examples include VP434 (manufactured by Clariant), nitroimidazole derivatives, organometallic compounds, etc.

[0094] From the viewpoint of the charge stability of the toner, the content of the charge control agent is preferably 0.01 parts by mass or more, more preferably 0.2 parts by mass or more, and preferably 10 parts by mass or less, and more preferably 5 parts by mass or less, per 100 parts by mass of the binder resin.

[0095] In the present invention, a mixture containing a crystalline polyester resin C and an amorphous resin A, and optionally additives such as a colorant, mold release agent, and charge control agent, is subjected to a melt-kneading process using an open-roll twin-screw kneader.

[0096] The mixture to be mixed can be mixed all at once or in portions, but it is preferable to mix it beforehand in a mixer such as a Henschel mixer or ball mill before supplying it to an open-roll twin-screw mixer.

[0097] An open-roll twin-screw mixer is a type of mixer equipped with two rolls, in which the melting and mixing section is not sealed but open, allowing for easy dissipation of the heat generated during melting and mixing. The open-roll twin-screw mixer used in this invention is equipped with multiple raw material supply ports and mixed material discharge ports located along the axial direction of the rolls, and from the viewpoint of production efficiency, a continuous open-roll twin-screw mixer is preferable.

[0098] The open-roll twin-screw kneader used in the present invention is a kneader equipped with two rolls with different peripheral speeds, namely a high-speed roll with a high peripheral speed and a low-speed roll with a low peripheral speed. In the present invention, from the viewpoint of improving the dispersibility of crystalline polyester resin, it is preferable that the high-speed roll is a heated roll and the low-speed roll is a cooled roll.

[0099] The temperature of the roll can be adjusted, for example, by the temperature of the heat transfer medium passed through the roll. Each roll may also have its interior divided into two or more sections through which heat transfer mediums with different temperatures are passed.

[0100] From the viewpoint of improving the dispersibility of the crystalline polyester resin, the temperature on the mixed material discharge side of the high-speed roll is -20°C or higher above the melting point of the crystalline polyester resin C, preferably -15°C or higher, more preferably -10°C or higher, even more preferably -5°C or higher, and even more preferably above the melting point, and is +15°C or lower above the melting point of the crystalline polyester resin C, preferably +13°C or lower, and more preferably +12°C or lower.

[0101] On the other hand, the temperature on the raw material input side of the high-speed roll is preferably +5°C or higher, more preferably +15°C or higher, and even more preferably +25°C or higher, of the melting point of the crystalline polyester resin C, and preferably +65°C or lower, more preferably +60°C or lower, even more preferably +55°C or lower, and even more preferably +45°C or lower, of the melting point of the crystalline polyester resin C.

[0102] From the viewpoint of improving the dispersibility of the crystalline polyester resin, the temperature on the mixed material discharge side of the low-speed roll is preferably 25°C or higher, more preferably 30°C or higher, and preferably 80°C or lower, more preferably 50°C or lower.

[0103] The temperature on the raw material input side of the low-speed roll is preferably 25°C or higher, more preferably 40°C or higher, and preferably 80°C or lower, more preferably 70°C or lower, from the viewpoint of reducing mechanical force during melting and kneading and suppressing heat generation.

[0104] For both high-speed and low-speed rolls, it is preferable that the temperature on the raw material input side is higher than the temperature on the mixed material discharge side. For high-speed rolls, the temperature difference between the raw material input side and the mixed material discharge side is preferably 5°C or higher, more preferably 20°C or higher, even more preferably 25°C or higher, and preferably 60°C or lower, more preferably 50°C or lower, and even more preferably 35°C or lower, from the viewpoint of preventing the mixed material from detaching from the roll and reducing mechanical force during melt kneading to suppress heat generation. For low-speed rolls, the temperature difference between the raw material input side and the mixed material discharge side is preferably 5°C or higher, and preferably 50°C or lower, from the viewpoint of improving the dispersibility of the crystalline polyester resin and reducing mechanical force during melt kneading to suppress heat generation.

[0105] The temperature on the raw material input side of the high-speed and low-speed rolls refers to the set temperature at the raw material input end, while the temperature on the kneaded material discharge side refers to the set temperature at the kneaded material discharge end.

[0106] The peripheral speed of the high-speed roll is preferably 2 m / min or more, more preferably 10 m / min or more, even more preferably 25 m / min or more, and preferably 100 m / min or less, more preferably 75 m / min or less, and even more preferably 50 m / min or less, from the viewpoint of improving the dispersibility of the crystalline polyester resin and reducing the mechanical force during melt kneading and suppressing heat generation. The peripheral speed of the low-speed roll is preferably 1 m / min or more, more preferably 5 m / min or more, even more preferably 15 m / min or more, and preferably 90 m / min or less, more preferably 60 m / min or less, and even more preferably 30 m / min or less, from the viewpoint of improving the dispersibility of the crystalline polyester resin and reducing the mechanical force during melt kneading and suppressing heat generation.

[0107] Furthermore, there are no particular limitations on the structure, size, or material of each roll. The surface of the roll has grooves used for mixing, and these grooves can be straight, spiral, wavy, or uneven.

[0108] After melt-kneading, it is preferable to cool the mixture appropriately until it reaches a hardness that allows for pulverization, and to perform pulverization and classification steps as needed to obtain toner particles. Here, cooling refers to cooling the mixture to a temperature between 0°C and 50°C, or to a temperature below the glass transition temperature of the binder resin in the mixture.

[0109] In grinding a compound, the compound may be ground to the desired particle size all at once or in stages. However, from the viewpoint of efficient and more uniform grinding, it is preferable to perform the grinding in two stages: coarse grinding and fine grinding.

[0110] Examples of grinders used for coarse grinding include hammer mills, cutter mills, atomizers, and Rotoplexes.

[0111] For coarse grinding, it is preferable to grind until the maximum diameter is 3 mm or less. For example, a pulverized material with a maximum diameter of 3 mm or less can be obtained by coarsely grinding the kneaded material to a particle size of approximately 0.05 mm to 3 mm, then passing it through a sieve with a mesh size of 3 mm, and obtaining the pulverized material that passes through the sieve.

[0112] Examples of grinders used for fine grinding include fluidized bed jet mills, impact plate jet mills, and other types of jet mills, as well as mechanical mills.

[0113] The degree of fine grinding is preferably adjusted as appropriate according to the desired particle size of the toner particles.

[0114] Classifiers used for classification include air-flow classifiers, inertia classifiers, and sieve classifiers. During the classification process, any pulverized material that is removed due to insufficient pulverization may be subjected to the pulverization process again, and the pulverization and classification processes may be repeated as needed.

[0115] In the present invention, it is preferable to further include an external additive step in which the obtained toner particles are mixed with an external additive.

[0116] Examples of external additives include inorganic fine particles such as silica, alumina, titania, zirconia, tin oxide, and zinc oxide, and organic fine particles such as melamine resin fine particles and polytetrafluoroethylene resin fine particles. Two or more types may be used in combination. Among these, silica is preferred, and hydrophobic silica that has been treated to be more preferred from the viewpoint of pressurized storage of the toner.

[0117] Examples of hydrophobic agents used to hydrophobize the surface of silica particles include hexamethyldisilazane (HMDS), dimethyldichlorosilane (DMDS), cyclic silazane, silicone oil, aminosilane, octyltriethoxysilane (OTES), and methyltriethoxysilane.

[0118] The average particle size of the external additive is preferably 5 nm or larger, more preferably 10 nm or larger, even more preferably 15 nm or larger, and preferably 250 nm or smaller, more preferably 200 nm or smaller, and even more preferably 90 nm or smaller, from the viewpoint of the toner's chargeability, fluidity, and pressurized storage properties.

[0119] From the viewpoint of the toner's electrostatic properties, fluidity, and pressurized storage properties, the content of the external additive is preferably 0.05 parts by mass or more, more preferably 0.1 parts by mass or more, even more preferably 0.3 parts by mass or more, and preferably 5 parts by mass or less, and more preferably 3 parts by mass or less, per 100 parts by mass of toner particles before treatment with the external additive.

[0120] The volume median particle size (D) of the toner obtained by the method of the present invention 50 The volume median particle size (D) is preferably 3 μm or more, more preferably 4 μm or more, and preferably 15 μm or less, more preferably 10 μm or less. 50 ) refers to the particle size at which the cumulative volume frequency calculated using volume fractions accounts for 50% when calculated from the smallest particle size. Furthermore, if the toner is treated with an external additive, the volume median particle size of the toner particles before treatment with the external additive is taken as the volume median particle size of the toner.

[0121] The toner obtained by the method of the present invention can be used as is as a one-component developing toner, or as a two-component developing toner mixed with a carrier, in image forming apparatuses using either a one-component developing method or a two-component developing method, respectively. [Examples]

[0122] The present invention will be specifically described below with reference to examples, but the present invention is not limited in any way by these examples. The physical properties of resins, etc., can be measured by the following methods.

[0123] [Softening point of resin] Using a flow tester "CFT-500D" (manufactured by Shimadzu Corporation), 1 g of sample is heated at a heating rate of 6°C / min while a load of 1.96 MPa is applied by a plunger, and the sample is extruded from a nozzle with a diameter of 1 mm and a length of 1 mm. The amount of plunger descent of the flow tester is plotted against temperature, and the temperature at which half of the sample has flowed out is defined as the softening point.

[0124] [Maximum peak temperature of endothermic resin] Using a differential scanning calorimeter "Q-100" (manufactured by T.A. Instruments Japan Co., Ltd.), 0.01 to 0.02 g of the sample is weighed into an aluminum pan and cooled from room temperature (25°C) to 0°C at a rate of 10°C / min, and maintained at 0°C for 1 minute. Then, measurements are taken at a rate of 10°C / min. Among the observed endothermic peaks, the temperature of the peak with the largest peak area is defined as the maximum endothermic peak temperature. For crystalline resins, the maximum endothermic peak temperature is defined as the melting point.

[0125] [Glass transition temperature of amorphous resins] Using a differential scanning calorimeter "Q-100" (manufactured by T.A. Instruments Japan), 0.01 to 0.02 g of the sample is weighed into an aluminum pan, heated to 200°C, and then cooled to 0°C at a rate of 10°C / min. Next, the sample is heated at a rate of 10°C / min and the endothermic peak is measured. The temperature at the intersection of the baseline extension below the maximum endothermic peak temperature and the tangent line showing the maximum slope from the rise of the peak to the peak apex is defined as the glass transition temperature.

[0126] [Acid value of resins] Measurements will be performed according to the method of JIS K 0070:1992. However, the measurement solvent will be changed from the ethanol and ether mixed solvent specified in JIS K 0070 to a mixed solvent of acetone and toluene (acetone:toluene = 1:1 (volume ratio)) for amorphous resins, and to a mixed solvent of chloroform and dimethylformamide (chloroform:dimethylformamide = 7:3 (volume ratio)) for crystalline resins.

[0127] [Number-average molecular weight and weight-average molecular weight of resins] The number average molecular weight and the weight average molecular weight are determined by gel permeation chromatography (GPC) according to the following method. (1) Preparation of sample solution The resin was dissolved in tetrahydrofuran so that the concentration became 0.5 g / 100 mL. Then, this solution was filtered using a fluororesin filter with a pore size of 2 μm (manufactured by Sumitomo Electric Industries, Ltd., trade name: FP-200) to remove insoluble components, and used as a sample solution. (2) Molecular weight measurement Using the following measuring device and analytical column, tetrahydrofuran was used as an eluent and flowed at a flow rate of 1 mL per minute to stabilize the column in a thermostat at 40°C. 100 μL of the sample solution was injected therein for measurement. The molecular weight of the sample is calculated based on a calibration curve prepared in advance. For the calibration curve at this time, several types of monodisperse polystyrenes with known molecular weights (manufactured by Tosoh Corporation; 2.63×10 3 , 2.06×10 4 , 1.02×10 5 , manufactured by GL Sciences Inc.; 2.10×10 3 , 7.00×10 3 , 5.04×10 4 ) are used as standard samples. Measuring device: CO-8010 (trade name, manufactured by Tosoh Corporation) Analytical column: GMH XL +G3000H XL (Both are trade names, manufactured by Tosoh Corporation)

[0128] [Melting point of mold release agent] Using a differential scanning calorimeter "Q100" (manufactured by TA Instruments Japan Co., Ltd.), 0.02 g of the sample was weighed into an aluminum pan, heated up to 200°C, then cooled from 200°C to 0°C at a cooling rate of 10°C / min. Next, the sample was heated up at a heating rate of 10°C / min, the heat quantity was measured, and the maximum peak temperature of heat absorption was taken as the melting point.

[0129] [Average particle diameter of external additive] The average particle diameter refers to the number-average particle diameter, which is calculated by measuring the particle size (average of the major and minor axes) of 500 particles from scanning electron microscope (SEM) images and using the number-average value of these measurements.

[0130] [Toner volume medium particle size (D 50 )〕 • Measuring instrument: "Coulter Multisizer (Registered Trademark) III" (manufactured by Beckman Coulter, Inc.) • Aperture diameter: 50 μm • Analysis software: "Multisizer (registered trademark) III version 3.51" (manufactured by Beckman Coulter, Inc.) • Electrolyte: "Isoton (registered trademark) II" (manufactured by Beckman Coulter, Inc.) • Dispersion: Prepared by dissolving polyoxyethylene lauryl ether "Emulgen (registered trademark) 109P" [manufactured by Kao Corporation, HLB (Griffin) = 13.6] in the electrolyte to adjust the concentration to 5% by mass. • Dispersion conditions: Add 10 mg of the sample to 5 mL of the dispersion and disperse for 1 minute using an ultrasonic disperser (machine name: US-1 manufactured by SND Corporation, output: 80W). Then, add 25 mL of electrolyte and disperse for another minute using the ultrasonic disperser to prepare the sample dispersion. • Measurement conditions: The sample dispersion is added to 100 mL of the electrolyte to adjust the concentration so that the particle size of 30,000 particles can be measured in 20 seconds. Then, the 30,000 particles are measured, and the volume median particle size (D) is determined from the particle size distribution. 50 )

[0131] Production Example 1 of Alkenyl Succinic Anhydride (1) Using propylene tetramer (manufactured by Nippon Oil Corporation, trade name: "Light Tetramer"), alkylene compound (a) was obtained by fractional distillation under heating conditions of 183 to 208°C. The obtained alkylene compound (a) had 40 peaks in gas chromatography-mass spectrometry, as described later. The distribution of the alkylene compound was measured according to the analysis of alkylene compound A by mass spectrometry gas chromatography described in Japanese Patent Publication No. 2014-013384, and C9H 18 :0.5% by mass, C 10 H20 :4% by mass, C 11 H 22 :20% by mass, C 12 H 24 :66% by mass, C 13 H 26 :9% by mass, C 14 H 28 The concentration was 0.5% by mass (6 peaks corresponding to alkylene compounds with 9 to 14 carbon atoms).

[0132] (2) 542.4 g of alkylene compound (a), 157.2 g of maleic anhydride, 0.4 g of the antioxidant "Cherex-O" (manufactured by SC Organic Chemicals Co., Ltd., triisooctyl phosphite), and 0.1 g of butyl hydroquinone as a polymerization inhibitor were charged into a 1 L autoclave manufactured by Nitto High Pressure Co., Ltd., and pressurized nitrogen purging (0.2 MPaG) was repeated three times. After stirring was started at 60°C, the temperature was raised to 230°C over 1 hour and the reaction was carried out for 6 hours. The pressure at the reaction temperature was 0.3 MPaG. After the reaction was complete, the mixture was cooled to 80°C and returned to atmospheric pressure (101.3 kPa) and transferred to a 1 L four-necked flask. The temperature was raised to 180°C while stirring, and the remaining alkylene compound was removed by distillation at 1.3 kPa over 1 hour. Subsequently, the mixture was cooled to room temperature (25°C) and then returned to atmospheric pressure (101.3 kPa) to obtain 406.1 g of the target product, alkenyl succinic anhydride A. The average molecular weight of alkenyl succinic anhydride A, calculated from its acid value, was 268.

[0133] Resin manufacturing example 1 The alcohol and carboxylic acid components shown in Table 1 were placed in a 5-liter four-necked flask equipped with a thermometer, stainless steel stirring rod, a drop-through condenser, and a nitrogen inlet tube. The mixture was heated to 200°C over 8 hours in a mantle heater under a nitrogen atmosphere. Subsequently, an esterification catalyst was added, and the reaction was carried out at 8.0 kPa until the softening point shown in Table 1 was reached, yielding crystalline polyester resins (resins C1-C9). The physical properties are shown in Table 1.

[0134] [Table 1]

[0135] Resin manufacturing example 2 As shown in Table 2, the raw material monomers for polyester resins other than trimellitic anhydride, the esterification catalyst, and the esterification co-catalyst were placed in a 5-liter four-necked flask equipped with a nitrogen inlet tube, a stirrer, and a thermocouple. Under a nitrogen atmosphere, the temperature was raised to 235°C, and polycondensation was carried out at 235°C for 6 hours. After that, the temperature was lowered to 210°C, trimellitic anhydride was added, and the reaction was carried out at 210°C for 1 hour. Then, the reaction was further carried out at 210°C under reduced pressure of 10 kPa until the softening point shown in Table 2 was reached to obtain amorphous polyester resin (resin AH1). The physical properties are shown in Table 2.

[0136] Resin manufacturing example 3 The raw material monomers for polyester resins other than trimellitic anhydride and fumaric acid, esterification catalysts, and esterification co-catalysts shown in Table 2 were placed in a 5-liter four-necked flask equipped with a dehydration tube with a nitrogen inlet tube, a stirrer, and a thermocouple. Under a nitrogen atmosphere, the temperature was raised to 235°C, and polycondensation was carried out at 235°C for 6 hours. After that, the temperature was lowered to 160°C, and a mixture of both reactive monomers, raw material monomers for styrene-based resins, and polymerization initiators was added dropwise over 1 hour using a dropping funnel. After addition, the addition polymerization reaction was allowed to mature at 160°C for 1 hour, then the temperature was raised to 200°C and the pressure was reduced to 10 kPa for 1 hour. After opening the pressure, the temperature was lowered to 180°C, and the trimellitic anhydride, fumaric acid, and polymerization inhibitors shown in Table 2 were added. The temperature was maintained at 180°C for 1 hour, then the temperature was raised from 180°C to 210°C at 10°C / h, and the reaction was carried out at 210°C for 1 hour. Furthermore, the reaction was carried out at 210°C under reduced pressure of 10 kPa until the softening point shown in Table 2 was reached, yielding an amorphous composite resin (resin AH2). The physical properties are shown in Table 2.

[0137] Resin manufacturing example 4 As shown in Table 2, the raw material monomers for polyester resins other than trimellitic anhydride and fumaric acid, along with the esterification catalyst and esterification co-catalyst, were placed in a 5-liter four-necked flask equipped with a nitrogen inlet tube, stirrer, and thermocouple. Under a nitrogen atmosphere, the mixture was heated to 235°C and then polycondensed at 235°C for 6 hours. After that, the temperature was lowered to 180°C, trimellitic anhydride, fumaric acid, and polymerization inhibitor were added, and the mixture was incubated at 180°C for 1 hour. The temperature was then raised from 180°C to 210°C at a rate of 10°C / h, and the reaction was carried out at 210°C for 1 hour. Furthermore, the reaction was carried out at 210°C under reduced pressure of 10 kPa until the softening point shown in Table 2 was reached, yielding amorphous polyester resin (resin AH3). The physical properties are shown in Table 2.

[0138] Resin manufacturing example 5 The raw material monomers, esterification catalyst, and esterification co-catalyst for the polyester resin shown in Table 2 were placed in a 5-liter four-necked flask equipped with a nitrogen inlet tube, stirrer, and thermocouple. Under a nitrogen atmosphere, the temperature was raised to 235°C, and polycondensation was carried out at 235°C for 6 hours. After that, the temperature was lowered to 210°C and the reaction was carried out under reduced pressure of 10 kPa until the softening point shown in Table 2 was reached to obtain amorphous polyester resins (resins AL1 and AL3). The physical properties are shown in the table.

[0139] Resin manufacturing example 6 The raw material monomers for polyester resins other than fumaric acid, esterification catalysts, and esterification co-catalysts shown in Table 2 were placed in a 5-liter four-necked flask equipped with a dehydration tube with a nitrogen inlet tube, a stirrer, and a thermocouple. Under a nitrogen atmosphere, the temperature was raised to 235°C, and polycondensation was carried out at 235°C for 6 hours. After that, the temperature was lowered to 160°C, and a mixture of both reactive monomers, raw material monomers for styrene-based resins, and polymerization initiators was added dropwise over 1 hour using a dropping funnel. After addition, the addition polymerization reaction was allowed to mature at 160°C for 1 hour, then the temperature was raised to 200°C, and the pressure was reduced to 10 kPa for 1 hour. After opening the pressure, the temperature was lowered to 180°C, and the fumaric acid and polymerization inhibitor shown in Table 2 were added. The temperature was maintained at 180°C for 1 hour, then the temperature was raised from 180°C to 210°C at 10°C / h, and the reaction was carried out at 210°C for 1 hour. Furthermore, the reaction was carried out at 210°C under reduced pressure of 10 kPa until the softening point shown in Table 2 was reached, yielding an amorphous composite resin (resin AL2). The physical properties are shown in Table 2.

[0140] Resin manufacturing example 7 The raw material monomers for polyester resins other than trimellitic anhydride, esterification catalysts, and esterification co-catalysts shown in Table 2 were placed in a 5-liter four-necked flask equipped with a dehydration tube with a nitrogen inlet tube, a stirrer, and a thermocouple. Under a nitrogen atmosphere, the mixture was heated to 235°C and then polycondensed at 235°C for 6 hours. After that, the temperature was lowered to 160°C, and a mixture of both reactive monomers, raw material monomers for styrene-based resins, and polymerization initiators was added dropwise over 1 hour using a dropping funnel. After addition, the addition polymerization reaction was allowed to mature at 160°C for 1 hour, then the temperature was raised to 200°C and the pressure was reduced to 10 kPa for 1 hour. After opening the pressure, the temperature was lowered to 180°C, trimellitic anhydride shown in Table 2 was added, and the mixture was kept warm at 180°C for 1 hour. Then the temperature was raised from 180°C to 210°C at a rate of 10°C / h, and the reaction was carried out at 210°C for 1 hour. Furthermore, the reaction was carried out at 210°C under reduced pressure of 10 kPa until the softening point shown in Table 2 was reached, yielding an amorphous composite resin (resin AL4). The physical properties are shown in Table 2.

[0141] [Table 2]

[0142] Examples 1-19 and Comparative Examples 1-4 (Examples 5, 7, 11, and 14 are for reference only.) 100 parts by mass of the binder resin shown in Table 3, 5 parts by mass of the coloring agent "ECB-301" (manufactured by Dainichi Seika Co., Ltd., phthalocyanine blue (PB15:3)), 3 parts by mass of the release agent "Carnauba Wax C1" (manufactured by Kato Yoko Co., Ltd., melting point: 83°C), 3 parts by mass of the release agent "HNP-9" (manufactured by Nippon Seiro Co., Ltd., paraffin wax, melting point: 75°C), and 0.5 parts by mass of the negative charge control agent "Bontron E-304" (manufactured by Orient Chemical Industry Co., Ltd.) were mixed in a Henschel mixer.

[0143] The obtained raw material mixture was fed via a table feeder to a continuous open-roll twin-shaft mixer "Nidex" (manufactured by Mitsui Mining Co., Ltd.) for mixing to obtain a compound. The continuous open-roll twin-shaft mixer used had a roll outer diameter of 0.14 m and an effective roll length of 0.8 m. The operating conditions were: high-speed roll (front roll) rotation speed of 75 r / min (peripheral speed 33 m / min), low-speed roll (rear roll) rotation speed of 50 r / min (peripheral speed 22 m / min), and roll gap of 0.1 mm. The heating and cooling media temperatures inside the rolls were set to the temperatures shown in Table 3 for the raw material input side and compound discharge side of the high-speed roll, and to 65°C for the raw material input side and 30°C for the compound discharge side of the low-speed roll. The raw material mixture supply rate was 10 kg / h, and the average residence time was approximately 5 minutes.

[0144] The resulting mixture was cooled to 25°C and coarsely ground using a Rotoplex pulverizer (manufactured by Toa Machinery Co., Ltd.). Coarsely ground material with a particle size of 2 mm or less was obtained using a sieve with a mesh size of 2 mm. Fine grinding and upper limit classification (removal of coarse powder) were performed using a 400AFG counterjet mill (manufactured by Hosokawa Alpine Co., Ltd.). Further lower limit classification (removal of fine powder) was performed using a TTSP classifier (manufactured by Hosokawa Alpine Co., Ltd.) to obtain toner particles with a median volume particle size of 6.5 μm.

[0145] Toner was obtained by mixing 100 parts by mass of the obtained toner particles with 1.0 part by mass of hydrophobic silica "R972" (manufactured by Nippon Aerosil Co., Ltd., hydrophobic treatment agent: DMDS, average particle size: 16 nm) and 1.0 part by mass of hydrophobic silica "RY-50" (manufactured by Nippon Aerosil Co., Ltd., hydrophobic treatment agent: silicone oil, average particle size: 40 nm) as external additives in a Henschel mixer (manufactured by Mitsui Mining Co., Ltd.) at a rotation speed of 3000 r / min (peripheral speed 32 m / sec) for 3 minutes.

[0146] Example 20 Toner particles with a median volume particle size of 6.5 μm were obtained in the same manner as in Example 1, except that 5 parts by mass of the polymer-type positive charge control agent "FCA-201-PS" (manufactured by Fujikura Chemical Co., Ltd.) were used instead of 0.5 parts by mass of the negative charge control agent "Bontron E-304" (manufactured by Orient Chemical Industry Co., Ltd.).

[0147] Toner was obtained by mixing 100 parts by mass of the obtained toner particles with 0.5 parts by mass of hydrophobic silica "TG820F" (manufactured by Cabot, hydrophobic treatment agent: HMDS and cyclic silazane, average particle size 8 nm) and 1.0 part by mass of hydrophobic silica "NA50Y" (manufactured by Nippon Aerosil, hydrophobic treatment agent: silicone oil and aminosilane, average particle size 40 nm) in a Henschel mixer (manufactured by Mitsui Mining Co., Ltd.) at a rotation speed of 3000 r / min (peripheral speed 32 m / sec) for 3 minutes using external additives.

[0148] Test Example 1 [Toner's Low-Temperature Fixing Performance] A modified fuser unit of the "AR-505" copier (manufactured by Sharp Corporation) was modified to allow for external fixing, and toner was installed in this modified unit. A printed document was obtained in an unfixed state (print area: 2cm x 12cm, adhesion amount: 0.5mg / cm²). 2 ). In Example 20, the toner was mounted in a modified fuser unit of the "HL-L2360DN" printer (manufactured by Brother Industries, Ltd.) that allowed for external fixing, and a printout was obtained in an unfixed state (print area: 2cm x 12cm, adhesion amount: 0.5mg / cm²). 2 ). Subsequently, using the fuser (fixing speed 300 mm / sec) of a Sharp AR-505 copier, adjusted to a total fixing pressure of 40 kgf, fixing tests were conducted on unfixed printed materials at each temperature while sequentially increasing the temperature of the fuser roll from 100°C to 200°C in 5°C increments. Cellophane adhesive tape "UNICEF Cellophane" (Mitsubishi Pencil Co., Ltd., width: 18 mm, JIS Z1522:2009) was attached to the image portion of the obtained printed material. After passing it through a separate fuser roller set to 30°C, the tape was removed. The optical reflectance density before and after tape application was measured using a Gretag Macbeth densitometer "RD-915," and the temperature at which the ratio of the two (after peeling / before application × 100) first exceeded 90% was defined as the minimum fixing temperature. The results are shown in Table 3. A lower minimum fixing temperature indicates better low-temperature fixing performance. The fuser paper used is "CopyBond SF-70NA" (manufactured by Sharp Corporation, 75g / m²). 2 ) was used.

[0149] Test Example 2 [Smearability of Printed Materials] Toner was installed in a Sharp AR-505 copier (product name, manufactured by Sharp Corporation), and a solid image was removed before passing through the fuser to obtain a printed copy in an unfixed state (print area: 2cm x 12cm, toner adhesion: 0.5mg / cm²). 2 Furthermore, the unfixed image was printed twice on the same paper, and the adhesion amount was 1.5 mg / cm². 2 That's what I decided. In Example 20, only the toner was installed in the "HL-L2360DN" printer (manufactured by Brother Industries, Ltd.), and the solid image was removed before passing through the fuser to obtain a printout in an unfixed state (print area: 2cm x 12cm, adhesion amount: 0.5mg / cm²). 2 Furthermore, the unfixed image was printed twice on the same paper, and the adhesion amount was 1.5 mg / cm². 2 That's what I decided. The unfixed images obtained in this way were fixed using a copier "AR-505" (product name, manufactured by Sharp Corporation) at 150°C and 300 mm / s to obtain printed materials. A stainless steel weight measuring 3 cm (length) x 3 cm (width) x 6.5 cm (height) and weighing 500 g was placed on the resulting printout and moved back and forth over the printed area at a speed of 0.5 m / s. One back and forth was counted as one cycle, with a maximum of 50 cycles. The number of times a black band of toner residue appeared on the non-printed area was visually confirmed to evaluate the smearability. The results are shown in Table 3. A higher number of cycles indicates better smearability. In the table, ">50" indicates that no toner residue was observed even after 50 cycles.

[0150] Test Example 3 [Pressure Storage Properties of Toner] 10g of toner was placed in a cylindrical container with a radius of 12mm, a 100g weight was placed on top, and it was stored under pressure for 24 hours in an environment of 50°C and 60% relative humidity. Three sieves, sieve A (mesh size 250μm), sieve B (mesh size 150μm), and sieve C (mesh size 75μm), were stacked on a powder tester (manufactured by Hosokawa Micron Corporation) from top to bottom. The 10g of toner stored under pressure was placed on sieve A and vibrated for 60 seconds. The weight of toner remaining on sieve A (WA(g)), sieve B (WB(g)), and sieve C (WC(g)) was measured, and the pressure storage performance was evaluated according to the following evaluation criteria based on the value (α) calculated according to the formula below. The results are shown in Table 3. The closer the value (α) is to 100, the better the pressure storage performance. α = 100 - (WA + WB × 0.6 + WC × 0.2) / 10 × 100

[0151] [Table 3]

[0152] Based on the above results, it can be seen that, compared to Comparative Examples 1, 2, and 4, in which the temperature on the mixed material discharge side of the high-speed rolls of the open-roll twin-screw kneader was outside the specified range, and Comparative Example 3, which used a crystalline polyester resin without ethylene glycol, Examples 1 to 20 yield toners with good low-temperature fixation properties, as well as excellent smearability and pressure storage properties. In particular, a comparison of Examples 1, 9, and 10 with Example 11 shows that using a crystalline polyester resin obtained with a monofunctional monomer significantly improves its ability to withstand pressure. [Industrial applicability]

[0153] The electrostatic image developing toner obtained by the method of the present invention is suitably used for developing latent images formed in electrophotography, electrostatic recording, electrostatic printing, and the like.

Claims

1. A method for producing electrostatic image developing toner containing a crystalline polyester resin C and an amorphous resin A, wherein the crystalline polyester resin C is a polycondensate of an alcohol component containing ethylene glycol and a carboxylic acid component, the amorphous resin A is an amorphous polyester resin or a composite resin in which a polyester resin and a styrene-based resin are bonded, and the method includes a step of melt-kneading a mixture containing the amorphous resin A and the crystalline polyester resin C using an open-roll twin-screw kneader equipped with two rolls of different peripheral speeds, wherein the temperature on the raw material input side of the high-speed roll of the open-roll twin-screw kneader is at or above the melting point of the crystalline polyester resin C + 5°C. A method for manufacturing toner for electrostatic image developing, wherein the temperature is above +40°C or lower, the temperature of the kneading discharge side of the high-speed roll of the open-roll twin-screw kneader is between -20°C and +15°C (the melting point of the crystalline polyester resin C), the temperature of the raw material input side and the kneading discharge side of the low-speed roll are between 25°C and 80°C, the temperature of the raw material input side is higher than the temperature of the kneading discharge side of the high-speed and low-speed rolls, the alcohol component and / or carboxylic acid component of the crystalline polyester resin C contains a monofunctional monomer, and the content of the crystalline polyester resin C is between 3% by mass and 30% by mass of the total amount of the crystalline polyester resin C and the amorphous resin A.

2. The method for producing a crystalline polyester resin C, wherein the carboxylic acid component contains an aliphatic dicarboxylic acid compound having 10 to 16 carbon atoms.

Citation Information

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