Coatings containing branched polyester polyols as plasticizers - Patent Application 20070122997

Branched polyester polyols are used as plasticizers in coating compositions to address the health and volatility issues of phthalates, ensuring effective plasticization and compliance with VOC regulations while enhancing coating durability and elasticity.

JP7796021B2Active Publication Date: 2026-01-08BASF COATINGS GMBH
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Patent Information

Application Number
JP2022540679
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-12-30
Filing Date
2020-12-30
Publication Date
2026-01-08
Estimated Expiration
2040-12-30

AI Technical Summary

Technical Problem

Existing coating compositions rely on harmful phthalates as plasticizers, which pose health risks and volatility issues, and there is a need for non-phthalate alternatives that maintain plasticizing effectiveness and comply with VOC regulations.

Method used

A coating composition using branched polyester polyols as plasticizers, prepared by reacting a polyol with aliphatic dicarboxylic acid, cyclic carboxylic acid anhydride, and an epoxide-functional compound, in specific ratios and conditions, to achieve non-volatility, safety, and effective plasticization without sticky surfaces.

Benefits of technology

The branched polyester polyols provide excellent durability, low volatile organic content, and improved elasticity in coatings, meeting regulatory requirements and avoiding health hazards.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a coating composition comprising: (A) a physically curable, reactive self-curable, and / or externally curable component, the component comprising 0.1% to about 2.5% by weight of a branched polyester polyol, based on the total solids content of (A), wherein the branched polyester polyol can be prepared by the following steps: (a) reacting a polyol containing at least three hydroxyl groups with an aliphatic dicarboxylic acid having 6 to 36 carbon atoms, or an esterifiable derivative of the aliphatic dicarboxylic acid selected from an anhydride and an esterifiable ester of the aliphatic dicarboxylic acid, to form a hydroxyl-functional first intermediate product; (b) reacting the first intermediate product with a cyclic carboxylic acid anhydride to form a carboxylic acid-functional second intermediate product; and (c) reacting the second intermediate product with an epoxide-functional compound having one epoxide group to form the branched polyester polyol; and (B) a crosslinking component, if component (A) includes one or more externally curable components; and optionally (C) a diluent component. The present invention further relates to a method for coating a substrate using the coating composition and to the use of the branched polyester polyol defined above as a plasticizer.
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Description

[Technical Field]

[0001] The present invention relates to coating compositions containing branched polyester polyols, methods of coating substrates with such coating compositions, and methods of using branched polyester polyols as plasticizers in coating compositions. [Background technology]

[0002] While film-forming resins provide the coating's protective effect, their processing is only possible in organic or inorganic solvents, and pigments create optical appeal through color saturation or effects, plasticizers and additives as coating aids play a diverse and important role in optimizing the coating composition for its application and other desired film properties. Plasticizers typically lower the film-forming temperature and help to elasticize the coating. Plasticizers generally act at a physical level. Because many film-forming agents do not provide a high level of hardness to the coating while at the same time providing good elasticity, plasticizers are used to overcome this dilemma.

[0003] When the chain mobility of a film-forming resin is limited by intermolecular interactions, such as strong van der Waals forces, the role of the plasticizer is to reduce or completely prevent the formation of such bridging forces. This can be achieved by incorporating elasticizing segments or monomers that sterically hinder such interactions, allowing plasticization to occur during the production of the film-forming resin. This system of influencing elasticity in advance, i.e., during the production of the resin, is called internal plasticization.

[0004] In many cases, internal plasticization of the resin cannot be used due to poor processability or suboptimal film properties. In such cases, so-called secondary or external elasticization of the resin must be achieved with external plasticizers. External plasticizers are typically not used during the production of film-forming resins and are therefore not chemically incorporated into the film-forming resin. External plasticization can be achieved in two different ways: either by "diluting" the hard film-forming resin with a separate high-modulus resin, such as certain aliphatic polyesters, or by adding classic plasticizers in the form of low-molecular-weight auxiliary materials, such as phthalic acid esters (i.e., phthalates), to terminate intermolecular interactions.

[0005] Unlike phthalates, aliphatic polyesters are typically non-volatile polymer or oligomer solvents. They do not migrate and produce long-term effects. However, at the higher concentrations involved, they often tend to produce undesirably sticky coating surfaces.

[0006] On the other hand, the use of phthalates is also harmful for several reasons. First, it has been discovered that phthalates can be harmful to the liver, lungs, kidneys, and reproductive systems of animals, and are most likely harmful to humans as well. Therefore, there is growing interest in finding ways to reduce or eliminate phthalates from products as much as possible. Second, phthalates have very low molecular weights and tend to migrate through coatings to their surfaces, and they also evaporate slowly from coatings, gradually reducing the concentration of plasticizers in films and thereby reducing their plasticizing effect.

[0007] The present invention aims to provide a solution to the problem of coating plasticization by providing a non-phthalate plasticizer. The plasticizer is intended to be non-volatile, i.e., remain within the coating material, be non-hazardous in terms of health issues, and work at very low additive concentrations rather than diluting the hard film-forming resin. At such concentrations, the plasticizer should not tend to create a sticky surface or degrade other surface properties, such as adhesion to adjacent layers and / or substrates. The plasticizer should also have increased or at least equivalent plasticizing effectiveness compared to conventional plasticized phthalates at the same or similar concentrations. Furthermore, coating compositions containing such plasticizers must comply with volatile organic compound (VOC) regulations. Specific VOC regulatory limits vary and are subject to change by product type, country, state, and even sometimes by region within a state. For example, according to US EPA CFR-2016-Title 40-Vol. 6-Part 59-Subpart B-Table 1, the national regulatory limit for specified VOCs in primers and primer surfacers for automotive refinishing is 580 g / L. The national regulatory limit for specified VOCs in one-step and two-step topcoats for automotive refinishing is 600 g / L. Similarly, according to US EPA CFR-2016-Title 40-Vol. 6-Part 59-Subpart D-Table 1, the national regulatory limit for specified VOCs in interior coatings for building flats is 250 g / L. And the national regulatory limit for specified VOCs in non-ferrous decorative metal lacquers and surface protectants for building flats is 870 g / L. The examples provided are U.S. national regulations. Specific state or local regulations may be even lower.

[0008] The plasticizers found in this application are branched polyester polyols and may be external or internal plasticizers. Furthermore, the term "polyester" encompasses so-called "oligoesters".

[0009] Such compounds are known, for example, from US 2016 / 0017175. However, in US 2016 / 0017175, the coating composition contains about 5% to about 60% by weight of a branched polyol, based on the total amount of film-forming material (also called the binder or medium of the coating composition). The use of polyester polyols as plasticizers, especially in small amounts, is not disclosed in US 2016 / 0017175. [Prior art documents] [Patent documents]

[0010] [Patent Document 1] US2016 / 0017175 Summary of the Invention [Means for solving the problem]

[0011] The problem addressed by the present invention is a composition comprising the following components: (A) a physically curable, reactive self-curable, and / or externally curable component; 0.1% to 2.5% by weight of a branched polyester polyol based on the total solids content of the coating formulation, wherein the branched polyester polyol is prepared by the following steps: (a) reacting a polyol containing at least three hydroxyl groups with an aliphatic dicarboxylic acid having from 6 to 36 carbon atoms, or an esterifiable derivative of said aliphatic dicarboxylic acid selected from anhydrides and esterifiable esters of said aliphatic dicarboxylic acids, to form a hydroxyl-functional first intermediate product; (b) reacting the first intermediate product with a cyclic carboxylic acid anhydride to form a carboxylic acid functional second intermediate product; and (c) reacting the second intermediate product with an epoxide-functional compound having one epoxide group to form a branched polyester polyol; Component (A), which is possible when (A) is an externally curable component, (B) a crosslinking component, and optionally, when component (A) includes one or more externally curable components, (C) Dilution component The problem is solved by providing a coating composition comprising: DETAILED DESCRIPTION OF THE INVENTION

[0012] The "total solids content" of component (A) was determined according to ASTM D-2369 (dated July 2010) by drying 0.3 g of component (A) at 110°C for 1 hour.

[0013] Of course, it is possible that one or more of the three curing mechanisms may occur during curing of a coating composition according to the present invention.

[0014] For purposes of this invention, the definition of component (A) of the coating composition includes everything except the crosslinking component (B), if present for crosslinking, and the diluent component (C), optionally used to adjust the viscosity of the coating composition prior to application.

[0015] Component (A) thus includes, but is not limited to, pigments (if present), resins (including the branched polyester polyols of the present invention), and various additives and solvents other than those that may be required in crosslinking component (B) and / or diluent component (C).

[0016] The term "physically curable" means that there is no reactive cure, but rather that component (A) dries, thereby resulting in a cured coating.

[0017] The term "reactive self-curing" means that the reaction of one or more material components of component (A) results in a cured coating.

[0018] The term "externally curable" means that the additional component, i.e., component (B), contains one or more material components that react with one or more material component(s) of component (A), thereby forming a cured coating.

[0019] A further object of the present invention is the use of the branched polyester polyols obtained by the above process steps as plasticizers in coating compositions, which do not impart undesirable physical properties to the final coating film, as plasticizers sometimes do.

[0020] In preparing the branched polyester polyol, preferably in step (a), the ratio of moles of polyol to moles of dicarboxylic acid or esterifiable derivative of aliphatic dicarboxylic acid is about 2.0 to about 2.5 moles of polyol per mole of dicarboxylic acid or esterifiable derivative of aliphatic dicarboxylic acid.

[0021] More preferably, in step (a), an average of about one hydroxyl group on each polyol molecule is reacted with a dicarboxylic acid.

[0022] Preferably, the equivalent ratio of hydroxyl groups of the first intermediate product to anhydride groups of the cyclic carboxylic acid anhydride in step (b) is from about 1.0 to about 1.25 equivalents of hydroxyl groups per carboxylic acid anhydride group.

[0023] Even more preferably, in step (b), substantially all of the hydroxyl groups are reacted with anhydride groups.

[0024] Preferably, the equivalent ratio of carboxylic acid groups of the second intermediate product to epoxide groups of the epoxide-functional compound in step (c) is from about 1.0 to about 2.5 equivalents of carboxylic acid groups per equivalent of epoxide groups.

[0025] The coating composition may be organic solvent-based (ie, solvent-borne) or water-based (ie, water-borne), preferably solvent-borne.

[0026] The equivalent ratio of carboxylic acid groups of the second intermediate product to epoxide groups of the epoxide-functional compound in step (c) is preferably about 1.0 to about 1.1 equivalents of carboxylic acid groups per equivalent of epoxide groups when preparing an organic solvent-based coating composition.

[0027] When the coating composition is water-based, the equivalent ratio of carboxylic acid groups of the second intermediate product in step (c) to epoxide groups of the epoxide-functional compound is typically from about 1 to about 2.5 equivalents of carboxylic acid groups per equivalent of epoxide groups, and any unreacted carboxylic acid groups are preferably at least partially neutralized with a base.

[0028] Coatings made from coating compositions containing branched polyols have excellent durability, low volatile organic content, and improved elasticity, especially at low temperatures.

[0029] For convenience, in this specification of the present invention, "polymer" and "resin" are used interchangeably to encompass resins, oligomers, and polymers.

[0030] Detailed Description Preparation of polyester polyols Process (a) The branched polyester polyols used in making the coating compositions of the present invention can be prepared by a synthesis beginning with step (a) of reacting a polyol containing at least three hydroxyl groups with an aliphatic dicarboxylic acid having 6 to 36 carbon atoms, or an esterifiable derivative of the aliphatic dicarboxylic acid, to form a hydroxyl-functional first intermediate product.

[0031] The aliphatic dicarboxylic acids having 6 to 36 carbon atoms, or esterifiable derivatives of the aliphatic dicarboxylic acids, may be linear, branched, or cyclic, with the cyclic dicarboxylic acids most preferably containing an acyclic segment of at least about 6 carbon atoms.

[0032] Non-limiting examples of suitable dicarboxylic acids include adipic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid (brassylic acid), dodecanedioic acid, traumatic acid, hexadecanedioic acid (thapsic acid), octadecanedioic acid, tetradecanedioic acid, and dimer fatty acids having 36 carbon atoms. In various embodiments, α,ω-dicarboxylic acids and dimer fatty acids having 36 carbon atoms are preferred.

[0033] It is known that dimer fatty acids having 36 carbon atoms can have multiple isomers. Dimer fatty acids are commercially available, for example, from BASF under the trade name EMPOL®, from Arizona Chemical Company under the trade name UNIDYME®, from Croda International Plc under the trade name Pripol®, and from Emery Oleochemicals under the trade name EMERY® Dimer Acids. In the production of dimer fatty acids, it is generally inevitable to obtain products that still contain small amounts of monomer fatty acids, and trimer fatty acids and higher fatty acids. Preferred dimer fatty acids are those that contain only a minimum amount of monomer fatty acids and trimer or higher fatty acids.

[0034] Esterifiable derivatives of dicarboxylic acids having 6 to 36 carbon atoms include monoesters or diesters, preferably methyl esters and ethyl esters, of dicarboxylic acids with aliphatic alcohols having 1 to 4 carbon atoms, and anhydrides. The term "anhydride" includes intramolecular anhydrides and intermolecular anhydrides thereof. Intermolecular anhydrides include, for example, anhydrides formed by condensation reaction of two carboxyl groups of the dicarboxylic acid molecules, and anhydrides of the dicarboxylic acids with inorganic acids such as hydrochloric acid.

[0035] An aliphatic dicarboxylic acid having 6 to 36 carbon atoms is reacted with a polyol containing at least three hydroxyl groups, which may be primary, secondary, and / or tertiary hydroxyl groups.

[0036] The polyol can be selected from the group consisting of triols, triol dimers, tetrols, tetrol dimers, tetrol trimers, and sugar alcohols. Non-limiting examples of suitable polyols having three or more hydroxyl groups include, for example, glycerol, trimethylolmethane, trimethylolethane, trimethylolpropane, 2,2,3-trimethylolbutane-1,4-diol, 1,2,4-butanetriol, 1,2,6-hexanetriol, tris(hydroxymethyl)aminomethane, tris(hydroxyethyl)amine, tris(hydroxypropyl)amine, erythritol, pentaerythritol, diglycerol, triglycerol, or higher condensates of glycerol, di(trimethylolpropane), di(pentaerythritol), tri(pentaerythritol), pentaerythritol ethoxylate, pentaerythritol, pentaerythritol ethoxylate ... Included are polyetherols with a functionality of 3 or greater based on trihydroxymethyl isocyanurate, tris(hydroxyethyl) isocyanurate (THEIC), tris(hydroxypropyl) isocyanurate, inositol, or alcohols with a functionality of 3 reacted with sugars such as glucose, fructose, or sucrose, sugar alcohols such as xylitol, sorbitol, mannitol, threitol, erythritol, adonitol (ribitol), arabitol (lyxitol), xylitol, dulcitol (galactitol) isomalt, ethylene oxide, propylene oxide, and / or butylene oxide.

[0037] Preferably, for synthesizing a branched polyester polyol as defined above, the first polyol in step (a) is at least one of the group consisting of erythritol, pentaerythritol, dipentaerythritol, tripentaerythritol, trimethylolethane, trimethylolpropane, trimethylolbutane, glycerol, ditrimethylolethane, ditrimethylolpropane, pentaerythritol ethoxylate, and pentaerythritol propoxylate.

[0038] Preferably, to synthesize the branched polyester polyol defined above, in step (a), the ratio of moles of polyol to moles of dicarboxylic acid or esterifiable derivative of aliphatic dicarboxylic acid is about 2.0 to about 2.5, preferably about 2.0 to about 2.2, and more preferably about 2.0 to about 2.07 moles of polyol per mole of dicarboxylic acid or esterifiable derivative of aliphatic dicarboxylic acid. Particularly preferably, in step (a), an average of about one hydroxyl group of each polyol molecule is reacted with dicarboxylic acid.

[0039] The esterification step (a) can be carried out by known standard methods. For example, this reaction is conventionally carried out at temperatures between about 60°C and about 280°C, if desired, in the presence of a suitable esterification catalyst. Typical catalysts for the esterification polymerization are protonic acids and Lewis acids, such as sulfuric acid, para-toluenesulfonic acid, sulfates and hydrogen sulfates, such as sodium hydrogen sulfate, phosphoric acid, phosphonic acid, hypophosphorous acid, titanium alkoxides, and dialkyltin oxides, such as dibutyltin oxide, dibutyltin dilaurate, and lithium octanoate, under reflux with a small amount of a suitable solvent as an entraining agent, such as an aromatic hydrocarbon, e.g., xylene, or a (cyclo)aliphatic hydrocarbon, e.g., cyclohexane. As non-limiting examples, the polyester may contain stannous octoate or dibutyltin oxide. Acidic inorganic, organometallic, or organic catalysts can be used in an amount of 0.1% to 10% by weight, preferably 0.2% to 2% by weight, based on the total weight of the reactants. It may be desirable to carry out reaction step (a) without a catalyst to avoid or minimize side reactions in subsequent steps.

[0040] The esterification in step (a) can be carried out in bulk or in the presence of a solvent that is unreactive with the reactants. Such a solvent is preferably an aprotic solvent. Non-limiting examples of suitable solvents include hydrocarbons, such as paraffins or aromatic compounds. In some embodiments, it is preferred to use n-heptane, cyclohexane, toluene, ortho-xylene, meta-xylene, para-xylene, a mixture of xylene isomers, ethylbenzene, chlorobenzene, ortho- and meta-dichlorobenzene. Other solvents that can be used in the absence of an acidic catalyst include ethers, such as dioxane and tetrahydrofuran, and ketones, such as methyl ethyl ketone and methyl isobutyl ketone. A solvent can be used to aid in the removal of by-products of the esterification reaction by azeotroping.

[0041] The amount of solvent that can be used may be at least 0.1% by weight, or at least 1% by weight, or at least 5% by weight, based on the weight of the starting reactants. Larger amounts of solvent may be used, but it is preferable to keep the concentration of the reactants high enough so that the reaction can be carried out for a commercially viable length of time. Examples of ranges of solvent that may be used are 0.1% to about 20% by weight, or about 1% to about 15% by weight, or about 5% to about 10% by weight, in each case based on the weight of the starting reactants.

[0042] The reaction may be carried out in the presence of a water scavenger, such as molecular sieves, especially molecular sieve 4 Å, MgSO 4 and Na 2 SO 4 .

[0043] The reaction in step (a) is preferably carried out at a temperature of 60°C to 250°C, more preferably 100°C to 240°C. Even more preferably, the reaction in step (a) is carried out at a temperature of 150°C to 235°C. The reaction time depends on known factors, including temperature, concentration of reactants, and the presence and identity of a catalyst, if any. Typical reaction times are from about 1 to about 20 hours.

[0044] To minimize the final volatile organic content, as much of the solvent used to azeotrope the by-products from step (a) as practically possible may be removed after the completion of the reaction in step (a). A small amount of solvent, selected for its performance in the final resin, can be used throughout the remainder of the synthesis, e.g., flushed after the addition of reagents. Solvents that may react with anhydrides or epoxides, such as active hydrogen-containing compounds like hydroxy-functional solvents (e.g., monoethers of alcohols and glycols), are preferably avoided in both step (a) and subsequent reaction steps. After step (a), the reaction temperature is preferably kept below temperatures at which condensation-type esterification reactions could occur, e.g., below 150°C, to minimize the possibility of condensation-type esterification reactions in the remainder of the synthesis, which can have undesirable effects on molecular weight and structure after this stage of the synthesis. For example, further esterification may result in undesirable branching or unnecessarily increased molecular weight. The temperature after step (a) and before carrying out step (b) may be kept below 145°C, preferably below 140°C, or even below 135°C or 130°C, depending on whether a catalyst is used during step (a) and the nature of any catalyst used.

[0045] Process (b) The hydroxyl-functional first intermediate produced in step (a) is then reacted with a cyclic carboxylic acid anhydride to form a carboxylic acid-functional second intermediate. The cyclic carboxylic acid anhydride reacts with at least one of the hydroxyl groups of the hydroxyl-functional first intermediate to form a second intermediate having at least one carboxyl group. Preferably, the cyclic carboxylic acid anhydride reacts with all or substantially all of the hydroxyl groups of the first intermediate to form the second intermediate. The cyclic carboxylic acid anhydride reacted in step (b) may be either an aromatic cyclic anhydride or an aliphatic cyclic anhydride.

[0046] Preferably, the cyclic carboxylic acid anhydride is maleic anhydride, hexahydrophthalic anhydride, methylhexahydrophthalic anhydride, tetrahydrophthalic anhydride, phthalic anhydride, succinic anhydride, trimellitic anhydride, methyltetrahydrophthalic anhydride, adipic anhydride, glutaric anhydride, malonic anhydride, itaconic anhydride, 5-methyl-5-norbornene dicarboxylic anhydride, 1,2-cyclohexanedicarboxylic anhydride, isatoic anhydride, diphenic anhydride, substituted anhydrides, especially including lower alkyl substituted anhydrides, For example, at least one of butylsuccinic anhydride, hexylsuccinic anhydride, octylsuccinic anhydride, butylmaleic anhydride, pentylmaleic anhydride, hexylmaleic anhydride, octylmaleic anhydride, butylglutaric anhydride, hexylglutaric anhydride, heptylglutaric anhydride, octylglutaric anhydride, alkylcyclohexanedicarboxylic anhydride, and alkylphthalic anhydride, such as 4-n-butylphthalic anhydride, hexylphthalic anhydride, and octylphthalic anhydride.

[0047] Even more preferably, the carboxylic acid anhydride comprises or is hexahydrophthalic anhydride.

[0048] The reaction in step (b) reacts the carboxylic acid group of each molecule of the cyclic carboxylic acid anhydride with the hydroxyl-functional first intermediate of step (a) to provide a second intermediate. Preferably, the equivalent ratio of the cyclic carboxylic acid anhydride to the first intermediate is about 0.8 to about 1.0, more preferably about 0.85 to about 1.0, and most preferably about 0.9 to about 1.0 equivalents of anhydride groups per equivalent of hydroxyl groups. Particularly preferably, one molecule or substantially one molecule of hexahydrophthalic anhydride reacts with each hydroxyl group of the first intermediate to form the second intermediate. Most preferably, substantially all of the hydroxyl groups of the hydroxyl-functional first intermediate react with the carboxylic acid anhydride to provide an ester of the hydroxyl group and the carboxylic acid group from the ring-opening of the cyclic anhydride.

[0049] The anhydride ring-opening reaction in step (b) is exothermic. The reaction temperature can be controlled by dividing the addition of the carboxylic acid anhydride reactant into two or more portions, e.g., so that the reaction temperature does not exceed about 150°C. For example, the first portion can be about one-third to about one-half of the carboxylic acid anhydride, and the second portion can be the remainder of the carboxylic acid anhydride to be reacted in step (b). The temperature of the reaction mixture can be cooled to about 90°C to 95°C before each portion is added. After the first portion is added, the reaction mixture can be heated to about 110°C to about 115°C or higher, resulting in an exotherm that raises the temperature of the reaction mixture, but does not exceed a target maximum, e.g., 150°C. After the exotherm, the reaction mixture can be cooled to about 90°C to 95°C for the addition of the second anhydride. Similarly, after the addition of the second anhydride is complete, the reaction mixture can be heated to about 110°C to 115°C or higher. The exotherm of the reaction (and additional heat, if needed) is then used to raise the temperature of the reaction mixture, for example, to about 135°C to about 145°C, or about 140°C to about 145°C, and the reaction mixture is held at this temperature to complete the reaction. Again, the batch should preferably not exceed 150°C.

[0050] Process (c) In the third step (c), the second intermediate product, preferably having at least about two carboxylic acid groups and up to all of the carboxylic acid groups, is reacted with an epoxide-functional compound having one epoxide group (i.e., a mono-epoxide compound) to form a branched polyester polyol.

[0051] Mono-epoxide compounds are well known in the art and have the general formula: [ka] wherein R1, R2, R3, and R4 are each independently hydrogen or an organic radical, provided that at least one of R1 to R4 is other than hydrogen and may be unsaturated or contain a heteroatom, or two of R1 to R4 may form a cyclic ring that may be unsaturated or contain a heteroatom. It is characterized by:

[0052] Particularly preferred mono-epoxides of the above formula are those in which R=CH—O—(C=O) n -R a where n is 0 or 1 and R a is a branched or linear, saturated or unsaturated hydrocarbon residue having 1 to 30, preferably 1 to 20, more preferably 1 to 16, most preferably 4 to 14, or even more preferably 6 to 12 or 8 to 10 carbon atoms, and R2 = R3 = R4 = H. When n=1, the formula represents a glycidyl ester, and when n=0, the formula represents a glycidyl ether.

[0053] For example, the epoxide-functional compound may be an epoxy ester, particularly a glycidyl ester. Glycidyl esters can be prepared by reacting a monofunctional carboxylic acid with an epihalohydrin (e.g., epichlorohydrin) under conditions well known in the art. Examples of glycidyl esters are glycidyl acetate, glycidyl propionate, glycidyl methyl maleate, glycidyl stearate, glycidyl benzoate, and glycidyl oleate. Useful glycidyl esters include those having alkyl groups containing 7 to 17 carbon atoms. Particularly preferred glycidyl esters are glycidyl esters of saturated tertiary monocarboxylic acids containing 9 to 11 carbon atoms. Preferably, the monofunctional carboxylic acid used to prepare the glycidyl ester is a neoalkanoic acid, such as, but not limited to, neodecanoic acid or neononanoic acid. Glycidyl esters of neoacids are commercially available, for example, under the trademark Cardura® from Momentive Specialty Chemicals, Inc., Columbus, Ohio.

[0054] Another useful class of monoepoxides are the glycidyl ethers, which can be prepared by the reaction of monofunctional alcohols (e.g., n-butanol, propanol, 2-ethylhexanol, dodecanol, phenol, cresol, cyclohexanol, benzyl alcohol) with epihalohydrins (e.g., epichlorohydrin). Useful glycidyl ethers include methyl glycidyl ether, ethyl glycidyl ether, propyl glycidyl ether, butyl glycidyl ether, pentyl glycidyl ether, hexyl glycidyl ether, heptyl glycidyl ether, octyl glycidyl ether, nonyl glycidyl ether, decyl glycidyl ether, undecyl glycidyl ether, dodecyl glycidyl ether, tridecyl glycidyl ether, tetradecyl glycidyl ether, pentadecyl glycidyl ether, hexadecyl glycidyl ether, heptadecyl glycidyl ether, octadecyl glycidyl ether, nonadecyl glycidyl ether, eicosyl glycidyl ether, glycidyl ether, beneicosyl glycidyl ether, docosyl glycidyl ether, tricosyl glycidyl ether, tetracosyl glycidyl ether, pentacosyl glycidyl ether, decenyl glycidyl ether, undecenyl glycidyl ether, tetradecenyl glycidyl ether, hexadecenyl glycidyl ether, heptadecenyl glycidyl ether, octadecenyl glycidyl ether, nonadecenyl glycidyl ether, eicosenyl glycidyl ether, beneicosenyl glycidyl ether, docosenyl glycidyl ether, tricosenyl glycidyl ether, tetracosenyl glycidyl ether, and pentacosenyl glycidyl ether.

[0055] The equivalent ratio of carboxylic acid groups of the second intermediate to epoxide groups of the epoxide-functional compound in step (c) is from about 1.0 to about 2.5, or from about 1.0 to about 2.0, or from about 1.0 to about 1.5, or from about 1.0 to about 1.3, or from about 1.0 to about 1.1 equivalents of carboxylic acid groups per equivalent of epoxide groups. However, the preferred range of equivalents of carboxylic acid groups to epoxide groups will vary depending on whether the embodiment is for a solvent-based or water-based coating composition.

[0056] In one embodiment, the branched polyol is used in a solvent-based coating composition and all, or substantially all, of the carboxyl groups of the second intermediate product are reacted with a monoepoxide compound.

[0057] In another embodiment, the branched polyol is used in a water-based coating composition and, on average, some of the carboxyl groups remain unreacted and may be neutralized, for example, with ammonia, an amine, or another base.

[0058] Coating Composition According to the present invention, the branched polyester polyol is included in component (A) of the coating composition according to the present invention in an amount of 0.1% to 2.5% by weight, based on the total solids content of the components of the coating composition. Preferably, component (A) of the coating composition according to the present invention comprises 0.2% to 2.0% by weight, and even more preferably 0.25% to 1.8% or up to 1.5% by weight, of the branched polyester polyol, based on the total solids weight of the components of the coating composition.

[0059] Polymers and resins contained in component (A) The coating composition includes a physically curable, reactive self-curable, or externally curable resin or polymer as the primary film-forming material component, which is different from the essential branched polyester polyol(s).

[0060] Examples of such useful resins or polymers include (meth)acrylate polymers (also known as acrylic polymers or acrylic resins), epoxy resins, polyesters, polyethers, polyurethanes, natural oil-based polyols such as those available under the trademark Polycins from Vertellus Specialties Inc., Indianapolis, Ind., castor oil-based polyols, polysiloxanes, and those described in U.S. Patent No. 5,578,675 to Mormile et al., U.S. Patent Application Publication No. 2011 / 0135,832 to Lane et al., and U.S. Patent Application Publication No. 2013 / 0136865 to Groenewolt et al. Such additional resins or polymers may have functionality reactive with so-called crosslinkers, or may be self-crosslinking, or may simply be physically curable or dry without chemical reaction.

[0061] Preferably, the coating composition includes an additional resin or polymer having hydroxyl groups, carbamate groups, or a combination of such groups.

[0062] Most preferably, the coating composition contains at least one of a hydroxy-functional acrylic polymer, a hydroxy-functional polyester, or a hydroxy-functional polyurethane in addition to the branched polyester polyol.

[0063] Polyvinyl polyols, such as acrylic (polyacrylate) polyol polymers, may be used as the hydroxy-functional material. The acrylic or polyacrylate polymers may be copolymers of both acrylic and methacrylic monomers and other copolymerizable vinyl monomers. The term "(meth)acrylate" is used for convenience to refer to either or both of the acrylate and methacrylate, and the term "(meth)acrylic" is used for convenience to refer to either or both of the acrylic and methacrylic.

[0064] Hydroxyl-containing monomers include hydroxyalkyl esters of acrylic or methacrylic acid. Non-limiting examples of hydroxyl-functional monomers include hydroxyethyl (meth)acrylate, hydroxypropyl (meth)acrylate, hydroxybutyl (meth)acrylate, hydroxyhexyl (meth)acrylate, propylene glycol mono(meth)acrylate, 2,3-dihydroxypropyl (meth)acrylate, pentaerythritol mono(meth)acrylate, polypropylene glycol mono(meth)acrylate, polyethylene glycol mono(meth)acrylate, their reaction products with epsilon-caprolactone, and other hydroxyalkyl (meth)acrylates having branched or linear alkyl groups up to about 10 carbons, and mixtures thereof, where the term "(meth)acrylate" refers to either or both the methacrylate and acrylate ester. Typically, at least about 5% by weight of the hydroxyl-functional monomer is included in the polymer. Hydroxyl groups of vinyl polymers, such as acrylic polymers, can also be generated by other means, for example, by ring opening of the glycidyl groups of copolymerized glycidyl methacrylate with, for example, organic acids or amines.

[0065] Hydroxyl functionality can also be introduced by thio-alcohol compounds, including, but not limited to, 3-mercapto-1-propanol, 3-mercapto-2-butanol, 11-mercapto-1-undecanol, 1-mercapto-2-propanol, 2-mercaptoethanol, 6-mercapto-1-hexanol, 2-mercaptobenzyl alcohol, 3-mercapto-1,2-propanediol, 4-mercapto-1-butanol, and combinations thereof. Any of these methods may be used to prepare useful hydroxyl-functional acrylic polymers.

[0066] Examples of suitable comonomers that can be used include, but are not limited to, α,β-ethylenically unsaturated monocarboxylic acids containing 3 to 5 carbon atoms, such as acrylic acid, methacrylic acid, and crotonic acid, and alkyl and cycloalkyl esters, nitriles, and amides of acrylic acid, methacrylic acid, and crotonic acid; α,β-ethylenically unsaturated dicarboxylic acids containing 4 to 6 carbon atoms and anhydrides, monoesters, and diesters of these acids; vinyl esters, vinyl ethers, vinyl ketones, and aromatic or aliphatic heterocyclic vinyl compounds. Representative examples of suitable esters of acrylic acid, methacrylic acid, and crotonic acid include those esters obtained by reaction with saturated aliphatic alcohols containing 1 to 20 carbon atoms, such as methyl, ethyl, propyl, isopropyl, n-butyl, isobutyl, tert-butyl, hexyl, 2-ethylhexyl, dodecyl, 3,3,5-trimethylhexyl, stearyl, lauryl, cyclohexyl, alkyl-substituted cyclohexyl, alkanol-substituted cyclohexyl, such as 2-tert-butyl and 4-tert-butylcyclohexyl, 4-cyclohexyl-1-butyl, 2-tert-butylcyclohexyl, 4-tert-butylcyclohexyl, 3,3,5,5-tetramethylcyclohexyl, ... These include, but are not limited to, dihydrofurfuryl and isobornyl acrylate, methacrylate, and crotonate; unsaturated dialkanoic acids and anhydrides, such as fumaric acid, maleic acid, itaconic acid and anhydride, and their mono- and diesters with alcohols (e.g., methanol, ethanol, propanol, isopropanol, butanol, isobutanol, and tert-butanol), such as maleic anhydride, maleic acid dimethyl ester, and maleic acid monohexyl ester; vinyl acetate, vinyl propionate, vinyl ethyl ether, and vinyl ethyl ketone; styrene, α-methylstyrene, vinyltoluene, 2-vinylpyrrolidone, and p-tert-butylstyrene.

[0067] Acrylic polymers can be prepared using conventional techniques, for example, by heating monomers in the presence of a polymerization initiator and, optionally, a chain transfer agent. Polymerization can be carried out, for example, in solution. Typical initiators include organic peroxides, such as dialkyl peroxides (e.g., di-t-butyl peroxide), peroxyesters (e.g., t-butylperoxy 2-ethylhexanoate and t-butyl peracetate), peroxydicarbonates, diacyl peroxides, hydroperoxides (e.g., t-butyl hydroperoxide), and peroxyketals; azo compounds (e.g., 2,2'-azobis(2-methylbutanenitrile) and 1,1'-azobis(cyclohexanecarbonitrile); and combinations thereof. Typical chain transfer agents include mercaptans, such as octyl mercaptan, n- or tert-dodecyl mercaptan; halogenated compounds, thiosalicylic acid, mercaptoacetic acid, mercaptoethanol, and other thiol alcohols already mentioned, and dimeric alpha-methylstyrene.

[0068] The polymerization reaction is typically carried out at a temperature of about 20°C to about 200°C. The reaction can be conveniently carried out at the temperature at which the solvent or solvent mixture refluxes, but with proper control, can be maintained below the reflux temperature. The initiator should be selected to suit the temperature at which the reaction will be carried out, so that the half-life of the initiator at that temperature is preferably about 30 minutes or less. Further details on addition polymerization in general and on the polymerization of mixtures containing (meth)acrylate monomers are readily available in the polymer art. Generally, the solvent or solvent mixture is heated to the reaction temperature, and the monomer and initiator(s) are added at a controlled rate over a period of time, usually 2 to 6 hours. A chain transfer agent or additional solvent may also be fed at a controlled rate during this time. The temperature of the mixture is then maintained for a period of time to drive the reaction to completion. Optionally, additional initiator may be added to ensure complete conversion.

[0069] Oligomeric and polymeric ethers, including diethylene glycol, triethylene glycol, tetraethylene glycol, pentaethylene glycol, dipropylene glycol, tripropylene glycol, linear and branched polyethylene glycol, polypropylene glycol, and block copolymers of poly(ethylene oxide-co-propylene oxide), may be used. Other polymer polyols are obtained by reacting a polyol initiator, e.g., a diol such as 1,3-propanediol or ethylene glycol or propylene glycol, or a polyol such as trimethylolpropane or pentaerythritol, with a lactone or alkylene oxide chain extender. Lactones that can be ring-opened with active hydrogens are well known in the art. Examples of suitable lactones include, but are not limited to, ε-caprolactone, γ-caprolactone, β-butyrolactone, β-propiolactone, γ-butyrolactone, α-methyl-γ-butyrolactone, β-methyl-γ-butyrolactone, γ-valerolactone, δ-valerolactone, γ-decanolactone, δ-decanolactone, γ-nonanelactone, γ-octanolactone, and combinations thereof. A particularly preferred lactone is ε-caprolactone. Useful catalysts include those listed above for polyester synthesis. Alternatively, the reaction can be initiated by forming a sodium salt of the hydroxyl group of the molecule that reacts with the lactone ring. Similar polyester polyols can be obtained by reacting a polyol initiator molecule with a hydroxy acid such as 12-hydroxystearic acid.

[0070] In another embodiment, a polyol initiator compound is reacted with an oxirane-containing compound to produce a polyether diol for use in polyurethane elastomer polymerization. The alkylene oxide polymer segment includes, but is not limited to, the polymerization products of ethylene oxide, propylene oxide, 1,2-cyclohexene oxide, 1-butene oxide, 2-butene oxide, 1-hexene oxide, tert-butylethylene oxide, phenyl glycidyl ether, 1-decene oxide, isobutylene oxide, cyclopentene oxide, 1-pentene oxide, and combinations thereof. The oxirane-containing compound is preferably selected from ethylene oxide, propylene oxide, butylene oxide, tetrahydrofuran, and combinations thereof. The polymerization of alkylene oxides is typically catalyzed by base. Polymerization may be carried out, for example, by charging a hydroxyl-functional initiator compound and a catalytic amount of caustic, such as potassium hydroxide, sodium methoxide, or potassium tert-butoxide, and adding the alkylene oxide at a rate sufficient to keep the monomers available for reaction. Two or more different alkylene oxide monomers may be randomly copolymerized by simultaneous addition, or block-polymerized by sequential addition. Homopolymers or copolymers of ethylene oxide or propylene oxide are preferred. Tetrahydrofuran is preferred for polymerization, as is SbF6. - , AsF6 - , PF6 - , SbCl6 - , BF4 - , CF3SO3 - , FSO3 - , and ClO4 - The polymer may be polymerized by a cationic ring-opening reaction using a counterion such as . Initiation is by formation of a tertiary oxonium ion. Polytetrahydrofuran segments can be prepared as "living polymers" and terminated by reaction with the hydroxyl groups of diols such as any of those listed above. Polytetrahydrofuran is also known as polytetramethylene ether glycol (PTMEG). Any of the polyols listed above may be extended in this manner using the polyol initiator.

[0071] Non-limiting examples of suitable polycarbonate polyols that may be used include those prepared by the reaction of a polyol with a dialkyl carbonate (e.g., diethyl carbonate), diphenyl carbonate, or dioxolanone (e.g., cyclic carbonates having 5- and 6-membered rings) in the presence of a catalytic alkali metal, tin catalyst, or titanium compound. Useful polyols include, but are not limited to, any of those already mentioned. Aromatic polycarbonates are typically prepared by the reaction of a bisphenol, such as bisphenol A, with phosgene or diphenyl carbonate. Aliphatic polycarbonates are preferred because they are more resistant to yellowing, especially when carbamate-functional materials are used in automotive OEM or refinish topcoats.

[0072] Polyester polyols can be prepared by reacting (a) a polycarboxylic acid or an esterifiable derivative thereof (with a monocarboxylic acid, if desired), (b) a polyol (with a monofunctional alcohol, if desired), and (c) other modifying components, if desired. Non-limiting examples of polycarboxylic acids and their esterifiable derivatives include phthalic acid, isophthalic acid, terephthalic acid, halophthalic acids, such as tetrachlorophthalic or tetrabromophthalic acid, adipic acid, glutaric acid, azelaic acid, sebacic acid, fumaric acid, maleic acid, trimellitic acid, pyromellitic acid, tetrahydrophthalic acid, hexahydrophthalic acid, 1,2-cyclohexanedicarboxylic acid, 1,3-cyclohexanedicarboxylic acid, 1,4-cyclohexanedicarboxylic acid, 4-methylhexahydrophthalic acid, endomethylenetetrahydrophthalic acid, tricyclodecanedicarboxylic acid, endethylenehexahydrophthalic acid, camphoric acid, cyclohexanetetracarboxylic acid, and cyclobutanetetracarboxylic acid. Alicyclic polycarboxylic acids may be used in either their cis or trans form, or as a mixture of the two forms. Esterifiable derivatives of these polycarboxylic acids include their single or multiple esters with aliphatic alcohols having 1 to 4 carbon atoms or hydroxy alcohols having 4 or fewer carbon atoms, preferably methyl and ethyl esters, and, where present, anhydrides of these polycarboxylic acids. Non-limiting examples of suitable monocarboxylic acids that can be used together with the polycarboxylic acids include benzoic acid, tert-butylbenzoic acid, lauric acid, isononanoic acid, and fatty acids of naturally occurring oils.Non-limiting examples of suitable polyols include any of those already mentioned above, such as ethylene glycol, butylene glycol, neopentyl glycol, propanediol, butanediol, hexanediol, diethylene glycol, cyclohexanediol, cyclohexanedimethanol, trimethylpentanediol, ethylbutylpropanediol, ditrimethylolpropane, trimethylolethane, trimethylolpropane, glycerol, pentaerythritol, dipentaerythritol, tris-hydroxyethyl isocyanate, polyethylene glycol, polypropylene glycol, and polyols derived from natural oils. Non-limiting examples of monoalcohols that may be used with the polyols include butanol, octanol, lauryl alcohol, and ethoxylated and propoxylated phenols. Non-limiting examples of suitable modifying components include compounds containing groups reactive with the functional groups of the polyester, including polyisocyanates and / or diepoxide compounds, and, if desired, monoisocyanates and / or monoepoxide compounds. The polymerization of polyesters may be carried out by known standard methods. The reaction is conventionally carried out at temperatures between 180°C and 280°C, if desired, in the presence of a suitable esterification catalyst. Typical catalysts for esterification polymerization are protonic acids, Lewis acids, titanium alkoxides, and dialkyltin oxides such as lithium octanoate, dibutyltin oxide, dibutyltin dilaurate, and para-toluenesulfonic acid under reflux using a small amount of a suitable solvent as an entraining agent, such as an aromatic hydrocarbon, e.g., xylene, or a (cyclo)aliphatic hydrocarbon, e.g., cyclohexane.

[0073] Hydroxyl-functional polyurethanes may also be used in coating compositions with branched polyester polyols. Examples of suitable polyurethane polyols include polyester-polyurethanes, polyether-polyurethanes, and polycarbonate-polyurethanes, including, but not limited to, polyurethanes polymerized using polyether and polyester or polycarbonate diols, including polycaprolactone polyesters, as polymeric diol reactants. These polymeric diol-based polyurethanes are prepared by reacting a polymeric diol (polyester diol, polyether diol, polycaprolactone diol, polytetrahydrofuran diol, or polycarbonate diol), one or more polyisocyanates, and, optionally, one or more chain-extending compounds. The term chain-extending compound refers to a compound having two or more functional groups reactive with isocyanate groups, preferably two functional groups, such as diols, amino alcohols, and diamines. Preferably, the polymeric diol-based polyurethanes are substantially linear (i.e., substantially all reactants are difunctional).

[0074] The diisocyanates used in the preparation of polyurethane polyols can be aromatic, aliphatic, or cycloaliphatic. Useful diisocyanate compounds include isophorone diisocyanate (IPDI), methylenebis-4-cyclohexyl isocyanate (H12MDI), cyclohexyl diisocyanate (CHDI), m-tetramethylxylene diisocyanate (m-TMXDI), p-tetramethylxylene diisocyanate (p-TMXDI), 4,4'-methylenediphenyl diisocyanate (MDI, also known as 4,4'-diphenylmethane diisocyanate), 2,4- or 2,6-toluene diisocyanate (TDI), ethylene diisocyanate, , 1,2-diisocyanatopropane, 1,3-diisocyanatopropane, 1,6-diisocyanatohexane (hexamethylene diisocyanate or HDI), 1,4-butylene diisocyanate, lysine diisocyanate, meta- and para-xylylene diisocyanate, 4-chloro-1,3-phenylene diisocyanate, 1,5-tetrahydro-naphthalene diisocyanate, 4,4'-dibenzyl diisocyanate, and xylylene diisocyanate (XDI), and combinations thereof. Non-limiting examples of higher functional polyisocyanates that can be used in limited amounts (optionally with monofunctional alcohols or monofunctional isocyanates) to make branched thermoplastic polyurethanes include 1,2,4-benzenetriisocyanate, 1,3,6-hexamethylene triisocyanate, 1,6,11-undecane triisocyanate, bicycloheptane triisocyanate, triphenylmethane-4,4',4"-triisocyanate, isocyanurates of diisocyanates, biurets of diisocyanates, allophanates of diisocyanates, and the like.

[0075] In various embodiments, the polymeric diol preferably has a weight average molecular weight of at least about 500, more preferably at least about 1000, and even more preferably at least about 1800, and a weight average molecular weight of about 10,000 or less, although polymeric diols having a weight average molecular weight of about 5000 or less, particularly about 4000 or less, are also preferred. The polymeric diol advantageously has a weight average molecular weight in the range of about 500 to about 10,000, preferably about 1000 to about 5000, and more preferably about 1500 to about 4000. The weight average molecular weight is determined according to ASTM D-4274.

[0076] The reaction of polyisocyanate, polymeric diol, and diol or other chain extender is typically carried out at elevated temperatures in the presence of a suitable catalyst, such as a tertiary amine, zinc salt, or manganese salt. The ratio of polymeric diol, such as polyester diol, to extender can vary within a relatively wide range, depending largely on the desired hardness or flexibility of the final polyurethane elastomer. For example, the equivalent ratio of polyester diol to extender can range from 1:0 to 1:12, and more preferably from 1:1 to 1:8. Preferably, the diisocyanate(s) used are balanced so that the overall ratio of equivalents of isocyanate to equivalents of active hydrogen-containing material is within the range of 1:1 to 1:1.05, and more preferably from 1:1 to 1:1.02. The polymeric diol segment typically comprises from about 35% to about 65% by weight of the polyurethane polymer, and preferably from about 35% to about 50% by weight of the polyurethane polymer.

[0077] Polysiloxane polyols can be prepared by hydrosilylation of silicon hydride-containing polysiloxanes with alkenyl polyoxyalkylene alcohols containing two or three terminal primary hydroxyl groups, for example, allyl polyoxyalkylene alcohols such as trimethylolpropane monoallyl ether and pentaerythritol monoallyl ether.

[0078] Any of the above polyol resins and polymers may be derivatized to contain carbamate groups according to known methods, for example, by reaction of a hydroxyl-functional material with an alkyl carbamate, such as methyl carbamate or butyl carbamate, a reaction referred to as "transcarbamation" or "transcarbamoylation." In another method of forming carbamate-functional resins and polymers for use in coating compositions, the resins and polymers may be polymerized using carbamate-functional monomers.

[0079] Crosslinkable component (B) The coating composition containing the branched polyester polyol in component (A), when component (A) contains one or more externally curable components, also contains in crosslinkable component (B) at least one crosslinker or curing agent, such as an aminoplast crosslinker having active methylol, methylalkoxy, or butylalkoxy groups; a polyisocyanate crosslinker which may have blocked or unblocked isocyanate groups; a polyanhydride; and a polyepoxide-functional crosslinker or curing agent which may be reactive with the hydroxyl and carboxylic acid groups of the branched polyol; or a polyamine which may be reactive with the epoxy resin which may be contained in component (A).

[0080] Aminoplasts or amino resins are described in Encyclopedia of Polymer Science and Technology, Vol. 1, pp. 752-789 (1985), the disclosure of which is incorporated herein by reference. Aminoplasts are obtained by reacting activated nitrogen with a lower molecular weight aldehyde, optionally followed by reaction with an alcohol (preferably a monoalcohol having 1 to 4 carbon atoms, such as methanol, isopropanol, n-butanol, or isobutanol), to form an ether group. Preferred examples of activated nitrogen include activated amines such as melamine, benzoguanamine, cyclohexylcarboguanamine, and acetoguanamine; ureas, including urea itself, thiourea, ethyleneurea, dihydroxyethyleneurea, and guanylurea; glycoluril; amides such as dicyandiamide; and carbamate-functional compounds having at least one primary carbamate group or at least two secondary carbamate groups. The activated nitrogen is reacted with a lower molecular weight aldehyde. The aldehyde may be selected from formaldehyde, acetaldehyde, crotonaldehyde, benzaldehyde, or other aldehydes used in the production of aminoplast resins, with formaldehyde and acetaldehyde being preferred, especially formaldehyde. The activated nitrogen groups are at least partially alkylolated with the aldehyde, and may be fully alkylolated. Preferably, the activated nitrogen groups are fully alkylolated. The reaction may be acid-catalyzed, as taught, for example, in U.S. Pat. No. 3,082,180, incorporated herein by reference.

[0081] Any alkylol groups formed by the reaction of the activated nitrogen with the aldehyde are partially or fully etherified with one or more monofunctional alcohols. Suitable examples of monofunctional alcohols include, but are not limited to, methanol, ethanol, n-propanol, isopropanol, n-butanol, isobutanol, tert-butyl alcohol, benzyl alcohol, and the like. Monofunctional alcohols having 1 to 4 carbon atoms and mixtures thereof are preferred. Etherification may be carried out, for example, by the methods disclosed in U.S. Pat. Nos. 4,105,708 and 4,293,692, the disclosures of which are incorporated herein by reference. The aminoplast may be at least partially etherified, and in various embodiments, the aminoplast is fully etherified. For example, the aminoplast compound may have multiple methylol and / or etherified methylol, butyrol, or alkylol groups, which may be present in any combination and together with unsubstituted nitrogen hydrogens. Examples of suitable curing agent compounds include, but are not limited to, monomeric or polymeric melamine resins and melamine-formaldehyde resins, including partially or fully alkylated melamine resins, and urea resins (e.g., methylol ureas, such as urea-formaldehyde resins, and alkoxy ureas, such as butylated urea-formaldehyde resins). A non-limiting example of a fully etherified melamine-formaldehyde resin is hexamethoxymethyl melamine.

[0082] The alkylol groups are capable of self-reaction to form oligomeric and polymeric aminoplast crosslinkers. Useful materials are characterized by their degree of polymerization. For melamine formaldehyde resins, it is preferred to use resins with a number average molecular weight of less than about 2000, more preferably less than 1500, and even more preferably less than 1000.

[0083] Coating compositions containing aminoplast crosslinkers may further include a strong acid catalyst to enhance the curing reaction. Such catalysts are well known in the art and include, for example, para-toluenesulfonic acid, dinonylnaphthalenedisulfonic acid, dodecylbenzenesulfonic acid, phenyl acid phosphate, monobutyl maleate, butyl phosphate, and hydroxyphosphate esters. Strong acid catalysts are often blocked, for example, with amines.

[0084] Particularly for refinish coatings, polyisocyanate crosslinkers are commonly used. Examples of suitable polyisocyanate crosslinking agents include, but are not limited to, alkylene polyisocyanates such as hexamethylene diisocyanate, 4- and / or 2,4,4-trimethylhexamethylene diisocyanate, dodecamethylene diisocyanate, 1,4-diisocyanatocyclohexane, 1-isocyanato-3,3,5-trimethyl-5-isocyanatomethylcyclohexane (isophorone diisocyanate), 2,4'- and / or 4,4'-diisocyanatodicyclohexylmethane, 3-isocyanato-methyl-3,5,5-trimethylcyclohexylisocyanate, aromatic polyisocyanates such as 2,4'- and / or 4,4'-diisocyanatodiphenylmethane, 2,4- and / or 2,6-diisocyanatotoluene, naphthylene diisocyanate, and mixtures of these polyisocyanates. Generally, polyisocyanates having three or more isocyanate groups are used, and these may be derivatives or adducts of diisocyanates. Useful polyisocyanates are obtained by reacting an excess of an isocyanate with water, a polyol (e.g., ethylene glycol, propylene glycol, 1,3-butylene glycol, neopentyl glycol, 2,2,4-trimethyl-1,3-pentanediol, hexamethylene glycol, cyclohexanedimethanol, hydrogenated bisphenol A, trimethylolpropane, trimethylolethane, 1,2,6-hexanetriol, glycerin, sorbitol, or pentaerythritol), or by reacting an isocyanate with itself to form an isocyanurate.Examples include biuret group-containing polyisocyanates, such as those described in U.S. Pat. Nos. 3,124,605 ​​and 3,201,372 or DE-OS 1,101,394; isocyanurate group-containing polyisocyanates, such as those described in U.S. Pat. Nos. 3,001,973, DE-PS 1,022,789, 1,222,067 and 1,027,394, and DE-OS 1,929,034 and 2,004,048; urethane group-containing polyisocyanates, such as those described in DE-OS 953,012, BE-PS 752,261 or U.S. Pat. Nos. 3,394,164 and 3,644. ,457; carbodiimide group-containing polyisocyanates, such as those described in DE-PS 1,092,007, U.S. Pat. No. 3,152,162, and DE-OS 2,504,400, 2,537,685, and 2,552,350; allophanate group-containing polyisocyanates, such as those described in GB-PS 994,890, BE-PS 761,626, and NL-057,102,524; and uretdione group-containing polyisocyanates, such as those described in EP-A 0,377,177, each of which is incorporated herein by reference.

[0085] Such isocyanate crosslinkers for refinish coating compositions are generally stored separately from the hydroxyl-functional film-forming component and combined therewith immediately prior to application. For example, a two-part, or two-component, refinish coating composition may include, in a crosslinking part, package, or component, an aliphatic biuret and one of the isocyanurates, such as hexamethylene diisocyanate and isocyanurates of isophorone diisocyanate.

[0086] Curing catalysts for the urethane reaction, such as tin catalysts, can be used in the coating composition. Typical examples are tin and bismuth compounds, including, but not limited to, dibutyltin dilaurate, dibutyltin oxide, and bismuth octoate. When used, the catalyst is typically present in an amount of about 0.05 to 2 weight percent tin, based on the weight of the total nonvolatile medium.

[0087] Dianhydrides may also be used to crosslink the branched polyester polyols. Non-limiting examples of bicyclic carboxylic acid anhydrides include pyranyl dianhydride, ethylenediaminetetraacetic acid dianhydride, cyclobutane-1,2,3,4-tetracarboxylic acid dianhydride, 3,3',4,4'-biphenyltetracarboxylic acid dianhydride, tetrahydrofuran-2,3,4,5-tetracarboxylic acid dianhydride, and cyclohexane-1,2,4,5-tetracarboxylic acid dianhydride.

[0088] Polyepoxide crosslinkers include acrylic polymers with epoxide groups, such as copolymers of allyl glycidyl ether, glycidyl acrylate, or glycidyl methacrylate, and polyglycidyl esters and ethers of polyols and polycarboxylic acids.

[0089] Solvents, pigments, fillers and additives The coating composition comprising the branched polyester polyol may further comprise a solvent, a pigment, a filler, or a customary additive.

[0090] solvent One or more solvents are preferably utilized in the coating composition. The solvent is typically used to dissolve or disperse the branched polyester polyol and other film-forming materials, crosslinkers, and additives. Generally, depending on the solubility characteristics of the components, the solvent may be any organic solvent and / or water. The solvent may be contained in component (A) and / or component (B) and component (C). Preferably, component (C) consists of one or more solvents.

[0091] The solvent(s) may be polar organic solvent(s). For example, the solvent may be a polar aliphatic solvent or a polar aromatic solvent. Among useful solvents are ketones, esters, acetates, aprotic amides, aprotic sulfoxides, and aprotic amine solvents. Examples of specific useful solvents include ketones such as acetone, methyl ethyl ketone, methyl amyl ketone, methyl isobutyl ketone, esters such as ethyl acetate, butyl acetate, pentyl acetate, ethyl ethoxypropionate, ethylene glycol butyl ether acetate, propylene glycol monomethyl ether acetate, aliphatic and / or aromatic hydrocarbons such as toluene, xylene, solvent naphtha, and mineral spirits, ethers such as glycol ethers, such as propylene glycol monomethyl ether, alcohols such as ethanol, propanol, isopropanol, n-butanol, isobutanol, and tert-butanol, nitrogen-containing compounds such as N-methylpyrrolidone and N-ethylpyrrolidone, and combinations thereof.

[0092] However, the liquid solvent may also be water or a mixture of water with a small amount of an organic water-soluble or water-miscible co-solvent.

[0093] The solvent in the coating composition may be present in an amount of from 0.01 weight percent to 99 weight percent, preferably from 10 weight percent to 60 weight percent, or from 30 weight percent to 50 weight percent.

[0094] Pigments and Fillers When the coating compositions are formulated as basecoat topcoats, monocoat topcoats, or primers, they preferably contain pigments and fillers, including special effect pigments. Non-limiting examples of special effect pigments that may be utilized in basecoat and monocoat topcoat coating compositions include metallic, pearlescent, and color-variable effect flake pigments. Metallic (including pearlescent and color-variable) topcoat colors are produced using one or more special flake pigments. Metallic colors are generally defined as colors with a gonioapparent effect. For example, American Society of Testing Methods (ASTM) document F284 defines metallic as "pertaining to the appearance of gonioapparent materials containing metallic flakes." Metallic basecoat colors can be produced using metallic flake pigments, such as aluminum flake pigments, coated aluminum flake pigments, copper flake pigments, zinc flake pigments, stainless steel flake pigments, and bronze flake pigments, and / or pearlescent flake pigments, including treated mica, such as titanium dioxide-coated mica pigments and iron oxide-coated mica pigments, to give the coating different appearances (reflectance or color) when viewed from different angles. The metal flakes can be cornflake-type, lenticular, or cycle-resistant, and the mica can be natural, synthetic, or aluminum oxide-type. Flake pigments do not agglomerate and do not break down under high shear, as high shear can break or distort the flakes or their crystalline morphology, reducing or destroying the gonioapparent effect. The flake pigments are well dispersed in the binder components by agitation under low shear. The one or more flake pigments may be included in the coating composition in an amount of from about 0.01% to about 50% by weight, or from about 15% to about 25% by weight, in each case based on the total binder weight. Non-limiting examples of commercially available flake pigments include PALIOROME® pigments available from BASF Corporation.

[0095] Non-limiting examples of other suitable pigments and fillers that can be utilized in the basecoat and monocoat topcoat coating compositions include inorganic pigments such as titanium dioxide, barium sulfate, carbon black, ochre, sienna earth, amber, hematite, limonite, red iron oxide, transparent red iron oxide, black iron oxide, brown iron oxide, chromium oxide green, strontium chromate, zinc phosphate, silica such as fumed silica, calcium carbonate, talc, barytes, ferric ammonium ferrocyanide (Prussian blue), and ultramarine, and organic pigments such as metallated and non-metallated azo reds, quinacridone reds and violets, perylene red, copper phthalocyanine blues and greens, carbazole violet, monoarylide and diarylide yellows, benzimidazolone yellow, tolyl orange, naphthol orange, silicon dioxide, aluminum oxide, or zirconium oxide based nanoparticles, and the like. The pigment(s) are preferably dispersed by known methods in a resin or polymer, or with a pigment dispersant, such as a binder resin of the type previously described. Typically, the pigment and dispersing resin, polymer, or dispersant are contacted under shear high enough to break down pigment agglomerates into primary pigment particles and wet the surfaces of the pigment particles with the dispersing resin, polymer, or dispersant. Breaking down the agglomerates and wetting the primary pigment particles are important for pigment stability and color development. Pigments and fillers are typically utilized in amounts up to about 60% by weight, based on the total weight of the coating composition. The amount of pigment used depends on the nature of the pigment and the depth of color and / or intensity of the effect the pigment is intended to create, as well as on the dispersibility of the pigment in the pigmented coating composition. In each case, the pigment content, based on the total weight of the pigmented coating composition, is preferably 0.5% to 50% by weight, more preferably 1% to 30% by weight, very preferably 2% to 20% by weight, and even more particularly 2.5% to 10% by weight.

[0096] Clearcoat coating compositions are typically free of pigments, but may contain small amounts of colorants or fillers that do not adversely affect the transparency or desired clarity of the clearcoat coating layer made from the composition.

[0097] additives Further optional customary coating additives include, for example, surfactants, stabilizers, wetting agents, dispersants, adhesion promoters, UV absorbers, sterically hindered amine light stabilizers, such as HALS compounds, benzotriazoles or oxanilides; free radical scavengers; slip additives; antifoaming agents; reactive diluents of the type known from the prior art; wetting agents, such as siloxanes, fluorine compounds, carboxylic acid monoesters, phosphate esters, polyacrylic acids and their copolymers, such as polybutyl acrylate, or polyurethanes; adhesion promoters, such as tricyclodecane dimethanol; flow control agents; film-forming aids, such as cellulose derivatives; rheology control additives, such as those disclosed in patents WO 94 / 22968, EP-A-0276501, EP-A-0249201 or WO 9 7 / 12945; crosslinked polymeric microparticles, such as those disclosed in EP-A-0008127; inorganic phyllosilicates, such as aluminum-magnesium silicate, sodium-magnesium montmorillonite-type and sodium-magnesium-fluorine-lithium phyllosilicates; silicas, such as Aerosils®; or synthetic polymers containing ionic and / or associative groups, such as polyvinyl alcohol, poly(meth)acrylamide, poly(meth)acrylic acid, polyvinylpyrrolidone, styrene-maleic anhydride copolymers or ethylene-maleic anhydride copolymers and derivatives thereof, or hydrophobically modified ethoxylated urethanes or polyacrylates; flame retardants, etc. Typical coating compositions include one or a combination of such additives.

[0098] Application of the coating composition The coating compositions of the present invention can be coated by any of several techniques well known in the art. These techniques include, for example, spray coating, dip coating, roll coating, curtain coating, knife coating, painting, pouring, dipping, impregnation, dripping, or rolling. Spray coating is typically used for automobile body panels. Spray application methods, such as compressed air spray, airless spray, high-speed rotary, and electrostatic spray application, are preferably used, alone or in combination with thermal spray applications, such as hot air spray.

[0099] The coating compositions and coating systems of the present invention are particularly useful in the technically and aesthetically demanding fields of automotive OEM finishing and automotive refinishing. The coating compositions can be used in both single-stage and multi-stage coating processes, particularly in those in which a pigmented basecoat or monocoat coating layer is first applied to an uncoated or pre-coated substrate, after which another coating layer can optionally be applied (when the pigmented film is a basecoat coating). The present invention also provides multi-coat coating systems comprising at least one pigmented basecoat layer and, optionally, at least one clearcoat layer disposed thereon, wherein either the clearcoat or the basecoat, or both, are produced from a coating composition containing the branched polyester polyol disclosed herein. Both the basecoat and clearcoat coating compositions, as well as the primer composition, can contain the branched polyester polyol disclosed herein.

[0100] The applied coating composition can be cured after a certain rest time or "flash" period. The rest time, for example, helps to level and devolatilize the coating film or to evaporate volatile components such as solvents. The rest time can be assisted or shortened by applying elevated temperatures or by reducing humidity, provided that this does not leave any damage or alteration to the coating film, such as premature crosslinking. The thermal curing of the coating composition is not method-specific, but instead is carried out by typical known methods such as heating in a forced air oven or irradiation with IR lamps. Thermal curing can also be carried out in multiple stages. Another preferred curing method is curing by near-infrared (NIR) radiation. Although various methods of curing can be used, thermal curing is preferred. Generally, thermal curing is carried out by exposing the coated article to elevated temperatures provided primarily by a heat source of radiation. After application, the applied coating layer is cured with heat at temperatures of, for example, 30 to 200°C, or 40 to 190°C, or 50 to 180°C, for 1 minute to 10 hours, more preferably 2 minutes to 5 hours, and especially 3 minutes to 3 hours; however, longer curing times may be used at temperatures used for automotive refinishing, preferably between 30 and 90°C. Branched polyols can be used for both refinish coatings and original finish coatings that are cured at higher temperatures. A typical method for applying a refinish coating composition involves application and drying, followed by curing at room temperature or an elevated temperature between 30 and 90°C. OEM coatings are typically cured at higher temperatures, for example, about 110 to about 135°C. While curing times will vary depending on the specific components used and physical parameters such as layer thickness, typical curing times range from about 15 to about 60 minutes, and preferably from about 15 to 25 minutes for blocked acid-catalyzed systems and about 10 to 20 minutes for unblocked acid-catalyzed systems.

[0101] The cured primer layer typically has a thickness of about 50 μm to about 75 μm. The resulting cured basecoat layer typically has a thickness of about 5 to about 75 μm, depending primarily on the desired color and the thickness required to form a continuous layer that provides that color. The resulting cured clearcoat layer typically has a thickness of about 30 μm to about 65 μm.

[0102] The coating compositions can be applied to many different types of substrates, including metallic substrates such as bare steel, phosphated steel, galvanized steel, or aluminum, and non-metallic substrates such as plastics and composites. The substrate may be any of these materials that already has a layer of another coating thereon, such as a layer of cured or uncured electrodeposited primer, primer surfacer, and / or basecoat.

[0103] The substrate may first be primed with an electrodeposition (electrocoat) primer. The electrodeposition composition may be any electrodeposition composition used in automotive vehicle coating operations. Non-limiting examples of electrocoat compositions include electrocoat compositions sold by BASF. Electrodeposition coating baths typically contain an aqueous dispersion or emulsion of a primary film-forming epoxy resin with ionic stabilization (e.g., salt-forming amine groups) in water or a mixture of water and an organic cosolvent. A crosslinker capable of reacting with the functional groups of the primary resin under appropriate conditions, such as the application of heat, is emulsified with the primary film-forming resin, thereby curing the coating. Suitable examples of crosslinkers include, but are not limited to, blocked polyisocyanates. Electrodeposition coating compositions typically contain one or more pigments, catalysts, plasticizers, coalescing aids, defoamers, flow control agents, wetting agents, surfactants, UV absorbers, HALS compounds, antioxidants, and other additives.

[0104] The electrodeposition coating composition is preferably applied to a dry film thickness of 10 to 35 μm. After application, the coated vehicle body is removed from the bath and rinsed with deionized water. The coating can be cured under appropriate conditions, such as by baking at about 135° C. to about 190° C. for about 15 to about 60 minutes.

[0105] The coatings of the present invention prepared from the coating compositions of the present invention adhere strongly to electrocoats, surfacer coats, basecoat systems, or even already cured typical known clearcoat systems, making them exceptionally suitable for use in automotive OEM finishing, as well as for automotive refinishing or for scuff protection of already painted automotive body assembly units.

[0106] Use of polyester polyols as plasticizers A further subject of the present invention is the use of the branched polyester polyols defined above as plasticizers, in particular as plasticizers in coating compositions, such as primers, fillers, base coats and clear coats.

[0107] Plasticizers are typically used in amounts ranging from 0.1% to 2.5% by weight, based on the total solids content of component (A) of the coating formulation.

[0108] The following examples illustrate, but in no way limit, the scope of the described and claimed methods and compositions. All parts are by weight unless otherwise specified. [Example]

[0109] Synthesis of branched polyester polyol PP Process (a) A reactor was charged with 12.010 parts by weight of trimethylolpropane, 6.300 parts by weight of adipic acid, and 1.130 parts by weight of mixed xylenes. The contents of the reactor were mixed and heated to 230°C. By-product water was removed as it was formed, the temperature was maintained above 200°C for about 5 hours, then most of the xylenes were removed as much as possible, and the reaction product (first intermediate product) was cooled to 90°C.

[0110] Process (b) Next, 8.390 parts by weight of molten hexahydrophthalic anhydride (60°C) and 4.520 parts by weight of ethyl 3-ethoxypropionate were added to the reactor. The contents of the reactor were stirred and heated to 115°C. After the exotherm peaked (while maintaining the temperature below 150°C), the contents of the reactor were heated to 136°C, then cooled again to 90°C, and 16.780 parts by weight of additional molten hexahydrophthalic anhydride (60°C) was added, followed by the flow of 1.420 parts by weight of ethyl 3-ethoxypropionate. The contents of the reactor were stirred and heated to 115°C. After the exotherm peaked (while maintaining the temperature below 150°C), the contents of the reactor were heated to 145°C. The temperature was maintained at 145°C for 90 minutes, and then cooled to 140°C. In this manner, a second intermediate was formed.

[0111] Process (c) While maintaining the temperature between 140 and 148°C, 37,400 parts by weight of Cardura™ E10-P was added over approximately 90 minutes, followed by 1.420 parts by weight of ethyl 3-ethoxypropionate. The reaction mixture was held at 145°C for 3 hours, then cooled and reduced with 5.320 parts by weight of Aromatic 100 and 5.310 parts by weight of n-butyl acetate. In this way, a branched polyester polyol PP solution (80% by weight solids) was obtained.

[0112] Clearcoat Composition A (CCC A) according to the invention Component (A) Component (A) was obtained by mixing the material components according to the following Table 1. All parts are by weight.

[0113] [Table 1]

[0114] Based solely on the total weight of the solids content of component (A), the branched polyester polyol PP was included in an amount of approximately 1.9 wt. %.

[0115] Comparative Clearcoat Composition A' (CCC A') Comparative clear coat composition A' was obtained by mixing the material components according to Table 1, except that 1.015 parts by weight of butyl benzyl phthalate was used in place of the polyester polyol PP.

[0116] Crosslinking component (B) As crosslinking component (B), Limco Medium Hardener, a polyisocyanate crosslinker available from BASF Corporation, USA, was used.

[0117] Diluent Composition (C) As diluent component (C), Limco Reducer 12 available from BASF Corporation, USA was used.

[0118] Mixing ratio To obtain the coating composition, components (A), (B) and (C) were mixed in an 8:2:1 volume ratio.

[0119] Based on the total mass of the solids content of the coating composition thus obtained, the branched polyester polyol PP was contained in the "ready to use" formulation in an amount of approximately 1.3% by mass.

[0120] Preparation of coatings The panels used for the clearcoat tests were electrocoated steel, which was sanded and cleaned with P400 before applying the basecoat layer, and then the test clearcoat layer was applied. Three different colors of commercial basecoats were used: BASF Supreme Plus Black, BASF Supreme Plus White, and BASF Supreme Plus Red. The basecoat layer was sprayed onto the sanded and cleaned electrocoated panels to achieve a concealment thickness of approximately 2.5 to 7.6 μm. The basecoat layer was allowed to flash dry at ambient temperature for 10 to 20 minutes, and then a clearcoat layer was sprayed onto the panels to a thickness of approximately 50 to 60 μm and allowed to air dry at ambient temperature for one week before testing.

[0121] Performance Test "X" Initial Adhesion Test "X" Initial adhesion testing was performed in accordance with ASTM D3359, 2017 02, Method A.

[0122] "X" adhesion after 96 hours of humidity Panels were conditioned per ASTM D1735, 2014 06 at 100°F (37.8°C) in 100% humidity for 96 hours, then wiped dry and allowed to recover at ambient conditions for 10 minutes before adhesion testing per ASTM D3359, 2017 02, Method A.

[0123] Perimeter Gravelometer Test The perimeter gravelometer test was performed in accordance with ASTM D3170, 2014 06.

[0124] Low temperature gravelometer test The panels were conditioned below 25°C for at least 24 hours and then taken directly to the gravelometer instrument without recovery for testing per ASTM D3170, 2014 06. The test panels were blotted dry and treated with masking tape to remove "hanging chads" before evaluation.

[0125] Conical Mandrel Test Conical mandrel testing was performed in accordance with ASTM D522, Method A, 2013.

[0126] Cup Test The cup test was carried out in accordance with DIN EN ISO 1520, 2007 11.

[0127] Table 2 shows the results obtained.

[0128] [Table 2]

[0129] When highly pigmented primer compositions were formulated, similar plasticizing results were obtained using amounts of branched polyester polyol as low as 0.25 wt. %, based on the total solids content of the composition.

Claims

1. The following ingredients: (A) a physically curable, reactive self-curable, and / or externally curable component, 0.1% to 2.5% by weight of a branched polyester polyol, based on the total solids content of the coating formulation, wherein the preparation of the branched polyester polyol comprises the steps of: (a) reacting a polyol containing at least three hydroxyl groups with an aliphatic dicarboxylic acid having from 6 to 36 carbon atoms, or an esterifiable derivative of said aliphatic dicarboxylic acid selected from anhydrides and esterifiable esters of said aliphatic dicarboxylic acids, to form a hydroxyl-functional first intermediate product; (b) reacting the first intermediate product with a cyclic carboxylic acid anhydride to form a carboxylic acid functional second intermediate product; and (c) reacting the second intermediate product with an epoxide-functional compound having one epoxide group to form the branched polyester polyol; Component (A), (B) a crosslinking component, and optionally, if component (A) is an externally curable component by virtue of including one or more externally curable components, (C) Diluent component 1. A coating composition comprising:

2. 2. The coating composition of claim 1, wherein in step (a), the ratio of moles of the polyol to moles of the dicarboxylic acid or esterifiable derivative of the aliphatic dicarboxylic acid is from about 2.0 to about 2.2 moles of the polyol per mole of the dicarboxylic acid or esterifiable derivative of the aliphatic dicarboxylic acid.

3. 3. The coating composition of claim 1, wherein in step (b), the equivalent ratio of hydroxyl groups of the first intermediate product to anhydride groups of the cyclic carboxylic acid anhydride is from about 1.0 to about 1.25 equivalents of hydroxyl groups per carboxylic acid anhydride group.

4. 4. The coating composition of claim 1, wherein in step (c), the equivalent ratio of carboxylic acid groups of the second intermediate product to epoxide groups of the epoxide-functional compound is from about 1.0 to about 2.5 equivalents of carboxylic acid groups per equivalent of epoxide groups.

5. 4. The coating composition of claim 1, wherein the coating composition is aqueous, and in step (c), the equivalent ratio of carboxylic acid groups of the second intermediate product to epoxide groups of the epoxide-functional compound is from about 1.1 to about 2.5 equivalents of carboxylic acid groups per equivalent of epoxide groups, and any unreacted carboxylic acid groups are at least partially neutralized with a base.

6. 6. The coating composition according to claim 1, comprising in component (A) one or more resins or polymers selected from the group consisting of (meth)acrylate polymers, epoxy resins, polyesters, polyethers, polyurethanes, polyols based on natural oils, and polysiloxanes.

7. 7. The coating composition of claim 1, wherein component (A) is externally curable and comprises at least one polyol different from the branched polyester polyol or at least one epoxy resin, and component (B) is present when component (A) contains the at least one polyol different from the branched polyester polyol and comprises at least one polyisocyanate, or when component (A) contains an epoxy resin, component (B) contains at least one polyamine.

8. 8. The coating composition of any one of claims 1 to 7, wherein component (A) comprises 0.2 to 2.0 wt. % of said branched polyester polyol, based on the total solids content of the coating formulation.

9. 8. The coating composition of any one of claims 1 to 7, wherein component (A) comprises 0.25% to 1.8% by weight of said branched polyester polyol, based on the total solids content of the coating formulation.

10. 10. A method of coating a substrate, comprising applying the coating composition of any one of claims 1 to 9 to a substrate to form a coating layer, and curing the coating layer.

11. 11. The method of claim 10, wherein the substrate is a metallic substrate, the metallic substrate is coated with an electrodeposition coating, the electrodeposition coating is coated with at least one of a filler, a base coat, and a clear coat, and the at least one of the filler, base coat, and clear coat is a coating layer formed from the coating composition of any one of claims 1 to 9.

12. 6. Use of a polyester polyol, which is a branched polyester polyol as defined in any one of claims 1 to 5, as a plasticizer.

13. 13. The use according to claim 12, wherein the polyester polyol, which is a branched polyester polyol as defined in any one of claims 1 to 5, is used as a plasticizer in an amount ranging from 0.1% to 2.5% by weight, based on the total solids content of component (A) of the coating formulation.

14. 13. The use according to claim 12, wherein the polyester polyol, which is a branched polyester polyol as defined in any one of claims 1 to 5, is used as a plasticizer in an amount ranging from 0.2% to 2.0% by weight, based on the total solids content of component (A) of the coating formulation.

15. 13. Use according to claim 12, wherein the polyester polyol, which is a branched polyester polyol as defined in any one of claims 1 to 5, is used as a plasticizer in an amount ranging from 0.25% to 1.8% by weight, based on the total solids content of component (A) of the coating formulation.

16. 16. Use according to any one of claims 12 to 15, wherein the branched polyester polyol is used as a plasticizer in a coating composition.

17. 17. Use according to any one of claims 12 to 16, wherein the branched polyester polyol is used as an external and / or internal plasticizer.

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