Two wet coating methods for producing multilayer coating systems

A method using an amino resin and crosslinking catalyst in separate coating layers enables low-temperature curing of multilayer coatings, addressing energy and time inefficiencies in automotive coatings and accommodating lightweight plastics.

JP7739416B2Active Publication Date: 2025-09-16BASF COATINGS GMBH
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Patent Information

Application Number
JP2023512300
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-08-18
Filing Date
2021-08-18
Publication Date
2025-09-16
Estimated Expiration
2041-08-18

AI Technical Summary

Technical Problem

Existing automotive coating processes require high energy, materials, and time, and high cure temperatures, which are not suitable for lightweight plastic substrates, and there is a need for a one-component system that is stable over long periods without premature curing.

Method used

A method involving a first coating material composition with an amino resin as a crosslinking agent and a second composition with a crosslinking catalyst, allowing for migration and crosslinking at low temperatures without additional crosslinking agents, enabling a one-component system for multilayer coatings.

Benefits of technology

The method allows for effective curing at temperatures below 110°C in a short time, reducing materials and curing times while maintaining good mechanical and optical properties, and eliminating the need for a clearcoat layer in certain applications.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a method for producing a multi-layer coating system on a substrate, the method comprising at least the steps of applying a first coating material composition to the substrate (step (1)), applying a second coating material composition to the first coating film to form a second coating film before curing the first coating film formed in step (1) (step (2)), and curing the first and second coating films together (step (3)), wherein one of the first and second coating material compositions contains at least one amino resin (AR) as a crosslinking agent before its use in step (1) or (2), and the remaining coating material composition of these two compositions does not contain any crosslinking agent but contains at least one crosslinking catalyst (CLC1) before its use in step (1) or (2). The present invention also relates to a multi-layer coating system on a substrate obtainable by the method of the present invention, and a method for using the amino resin (AR) as a migratory crosslinking agent.
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Description

[Technical Field]

[0001] The present invention relates to a method for producing a multi-layer coating system on a substrate, the method comprising at least the steps of applying a first coating material composition to the substrate (step (1)), applying a second coating material composition to the first coating film to form a second coating film before curing the first coating film formed in step (1) (step (2)), and curing the first and second coating films together (step (3)), wherein one of the first and second coating material compositions contains at least one amino resin (AR) as a crosslinking agent before its use in step (1) or (2), and the remaining coating material composition of these two compositions does not contain any crosslinking agent but contains at least one crosslinking catalyst (CLC1) before its use in step (1) or (2). The present invention also relates to a multi-layer coating system on a substrate obtainable by the method of the present invention, and a method for using the amino resin (AR) as a migratory crosslinking agent. [Background technology]

[0002] In a typical automotive coating process, at least four layers are applied to the metal surface of a suitable substrate: an electrodeposition coating (e-coat), a primer, a basecoat, and a clearcoat. The e-coat and primer layers are generally applied to the substrate surface and cured. A basecoat formulation is then applied along with a solvent, and the solvent is flashed off in a high-temperature process. After the basecoat is properly conditioned, a clearcoat is then applied. The coated substrate surface is then passed through an oven at temperatures exceeding 140°C to cure the basecoat and clearcoat.

[0003] While this conventional process is adequate and commercially utilized worldwide in the automotive industry, there is significant room for improvement. For one, reducing the energy, materials, or time required to produce these coatings would result in significant economic benefits due to their large-scale use. Vehicle manufacturers, in particular, would benefit from a reduction in the number and processing time of high-temperature steps. Additionally, lowering the temperatures at which these steps are performed would also be beneficial. Furthermore, the development of "lightweight" vehicles is desirable. One means of significantly reducing the weight of automotive bodies is to replace heavier metal components with lighter plastic components. However, using lightweight plastics in conventional processes presents challenges, as many lightweight plastic substrates physically deform at cure temperatures above 130°C. Therefore, lowering the cure temperatures of basecoats and clearcoats would allow the use of plastics and other heat-sensitive substrates, which are necessary for vehicle weight reduction. Additionally, it would be beneficial to employ a one-component (1K) system that is stable over long periods of time without decomposing or prematurely curing, as is typical of two-component (2K) systems (one component contains the curable resin / polymer and the other component contains the crosslinker for the curable resin), in which the reactive species, i.e., the crosslinker, must be sequestered until just prior to application.

[0004] WO 2018 / 019685 A1 discloses a low-temperature-cure composite coating comprising a substrate and two coating layers applied thereon from solvent-based coating material compositions. Each composition comprises an OH-functional resin, a crosslinker, and a catalyst. The catalyst present in the first solvent-based basecoat composition catalyzes the crosslinking reaction of the components present in the second solvent-based clearcoat composition, and the catalyst present in the second composition catalyzes the crosslinking reaction of the components present in the first composition. Crosslinking occurs only after each catalyst migrates to its adjacent layer. WO 2018 / 019686 A1 relates to a similar low-temperature-cure composite coating comprising a substrate and two coating layers applied thereon. However, only one coating layer, i.e., the clearcoat layer, is applied from a solvent-based coating material composition as the second composition, and the other coating layer, i.e., the basecoat layer, is applied from a water-based coating material composition as the first composition. Similarly, US2019 / 031910A1 also relates to a low-temperature curing composite coating including a substrate and two coating layers applied thereon. Each of the first and second coating material compositions disclosed in WO2018 / 019685A1, WO2018 / 019686A1, and US2019 / 031910A1 requires the presence of both a crosslinker and a catalyst.

[0005] WO2019 / 020324A1 discloses a duplex coating on a substrate, comprising a first layer prepared from a polar composition containing a non-polar catalyst and a second layer prepared from a non-polar composition containing a polar catalyst. The polar and non-polar compositions disclosed in WO2019 / 020324A1 require the presence of both a crosslinker and a catalyst. WO 2019 / 015953 A1 provides a storage-stable one-component water-based basecoat composition containing a melamine-formaldehyde crosslinker and a resin having groups reactive to the melamine-formaldehyde crosslinker under acid catalysis, the basecoat composition being curable at temperatures of 110°C or less when wet-on-wet cured with a solvent-based clearcoat composition containing a polyisocyanate crosslinker. WO 2019 / 015953 A1 also provides a wet-on-wet two-layer coating containing a one-component water-based basecoat and a solvent-based clearcoat, a wet-on-wet three-layer coating containing a water-based primer, a one-component water-based basecoat, and a solvent-based clearcoat, and a cured topcoat coating obtained by curing the wet-on-wet two-layer coating. US 5,981,074 discloses a non-yellowing one-component polyurethane coating composition containing an oxime-blocked polyisocyanate, an isocyanate-reactive material, and an imino-functional amino resin. This coating composition is applied over an acid-cured base coat and cured. The clear coat thus produced has good yellowing resistance and intercoat adhesion. Using the coating method of this invention, articles such as multilayer coated substrates are produced. The coated substrate typically contains an acid-cured first layer and an adjacent layer derived from a curable composition containing an oxime-blocked polyisocyanate, an isocyanate-reactive material, and an imino-functional amino resin. US2008 / 050527A1 provides a curable coating composition that has improved scratch and mar resistance and has improved comparability with other coating compositions. The composition includes a film-forming component (A), a catalyst for a film-forming reaction (B) containing one or more strong acids with a pKa of 2.5 or less, and a volatile catalyst support (C) containing one or more tertiary amines with a boiling point of 100°C. The film-forming component (A) includes one or more crosslinkers (b), at least one of which is an aminoplast curing agent (bi) having 0.5 to 3.5 moles of NH per mole of the aminoplast curing agent (bi). US2008 / 050527A1 also provides methods for producing a thermoset film with improved scratch and mar resistance, and a method for producing a multilayer cured film.

[0006] Thus, there is a need for further improved methods for providing multilayer coatings on substrates used for the automotive industry that allow for a reduction in energy, materials, and curing times, but that nevertheless exhibit good mechanical and optical properties. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] WO2018 / 019685A1 [Patent Document 2] WO2018 / 019686A1 [Patent Document 3] US2019 / 031910A1 [Patent Document 4] WO2019 / 020324A1 [Patent Document 5] WO2019 / 015953A1 [Patent Document 6] US5,981,074 [Patent Document 7] US2008 / 050527A1 Summary of the Invention [Problem to be solved by the invention]

[0008] The object underlying the present invention is therefore to provide a further improved method for providing multilayer coatings on substrates used for the automotive industry, which allows in particular to reduce materials, curing times and temperatures, while nevertheless the resulting multilayer coated substrates exhibit good mechanical and optical properties. [Means for solving the problem]

[0009] This object has been solved by the subject matter of the claims of the present application and the preferred embodiments thereof disclosed herein, ie the subject matter described herein.

[0010] A first subject of the present invention is a method for producing a multilayer coating system on a substrate, comprising at least steps (1), (2) and (3), namely: (1) applying a first coating material composition to an optionally pre-coated substrate and forming a first coating film on the optionally pre-coated substrate; (2) applying a second coating material composition to the first coating film present on the substrate obtained after step (1) before curing the first coating film, and forming a second coating film adjacent to the first coating film; (3) curing the first and second coating films together, the cured second coating film being the outermost layer of the resulting multi-layer coating system; a method comprising: wherein the first and second coating material compositions are different from each other, and the first coating material composition has a crosslinkable functional group. (functional group) and the second coating material composition comprises at least one polymer (P2) having a crosslinkable functional group, wherein one of the first and second coating material compositions (on the other hand) In step (1) or (2), messenger Before use, the coating material composition further comprises at least one amino resin (AR) as a crosslinking agent having a crosslinkable functional group capable of crosslinking with the crosslinkable functional groups of both the polymer (P1) and the polymer (P2), and the remaining two coating material compositions (On the other hand) In step (1) or (2), messenger It does not contain any cross-linking agent before use, but in step (1) or (2), messenger Before use, the composition contains at least one crosslinking catalyst (CLC1), which catalyzes the crosslinking reaction between the functional groups of the amino resin (AR) and the functional groups of both the polymer (P1) and the polymer (P2). do.

[0011] A further subject of the present invention is a multilayer coating system on a substrate, obtainable by the method of the present invention.

[0012] A further subject of the present invention is the use of an amino resin (AR) having crosslinkable functional groups, which amino resin comprises: The first coating material composition or the second coating material composition is different from each other, and the first coating material composition comprises at least one polymer (P1) having a crosslinkable functional group capable of crosslinking with the crosslinkable functional group of the amino resin (AR), and the second coating material composition comprises at least one polymer (P2) having a crosslinkable functional group also capable of crosslinking with the crosslinkable functional group of the amino resin (AR), wherein the coating material composition selected from the first and second coating material compositions in which the amino resin (AR) is not present does not comprise any crosslinking agent but comprises at least one crosslinking catalyst (CLC1), which catalyzes a crosslinking reaction between the functional group of the amino resin (AR) and the functional groups of both the polymer (P1) and the polymer (P2). Mediator , this usage is a Mino Resin (AR) wherein on the other hand and at least partially transferring from a coating film obtained from the first coating material composition to a coating film obtained from the remaining one of the two coating material compositions, the transfer being performed by applying a second coating material composition to the coating film obtained from the first coating material composition, and then curing the first coating film to form a second coating film adjacent to the first coating film. Before and further this method of use is for subsequent crosslinking with crosslinkable functional groups of both polymer (P1) and polymer (P2) preferably catalyzed by at least a crosslinking catalyst (CLC1).

[0013] Surprisingly, it has been found that the method of the present invention obviates the need to incorporate a crosslinking agent into each of the coating material compositions used and applied in the method of the present invention. Rather, it is merely necessary to incorporate at least one amino resin (AR) into one of the two coating material compositions used. Surprisingly, it has been found that the amino resin (AR) can be partially migrated from the first coating film to the second coating film, or vice versa, after both coating films have been applied via the wet-on-wet method of the present invention. Similarly, because at least the coating material composition that does not contain any amino resin (AR) contains at least one crosslinking catalyst (CLC1), the crosslinking catalyst (CLC1) can also be migrated from the coating film obtained from the coating material composition that contained that catalyst to the other coating film after both coating films have been applied via the wet-on-wet method of the present invention. Thus, applying both coating films wet-on-wet according to the method of the present invention allows for the migration of both the amino resin (AR) and the crosslinking catalyst (CLC1), which were originally contained in the separate coating films.

[0014] Surprisingly, it has been found that the curing step of the method of the present invention, which cures all applied coatings together, can be carried out at temperatures below 110°C, particularly below 100°C, in a relatively short time, such as less than 30 minutes, or even less than 25 minutes. Surprisingly, effective curing of all applied coatings can be carried out at such low temperatures, even though at least one of the coatings is applied using a coating material composition that does not contain any crosslinking agent. Particularly surprising is that sufficient migration, particularly of the amino resin (AR), occurs to allow such effective curing at these temperatures.

[0015] It has also been surprisingly found that, in the method of the present invention, when the first coating material composition is a primer coating material composition and the second coating material composition is a topcoat coating material composition, particularly when the topcoat composition actually corresponds to a basecoat material composition, it is sufficient to perform the curing step (3) without the need for an additional application of a clearcoat coating material composition. This is particularly useful when the substrate is, for example, part of a vehicle's engine compartment, where, in an OEM process, it is preferable not to apply any clearcoat layer to this part. However, the method of the present invention can be used, for example, with a primer coating material composition containing at least one crosslinking catalyst (CLC1) (this crosslinking catalyst can migrate from the coating film formed after wet-on-wet application to a basecoat layer obtained by using a base coating material composition as the second coating material composition containing at least one amino resin (AR)), eliminating the need for an additional application of a clearcoat composition, since the base coating material composition functions as the topcoat material composition. DETAILED DESCRIPTION OF THE INVENTION

[0016] Detailed Description of the Invention The term "comprises" in the sense of the present invention preferably has the meaning of "consisting of", for example in relation to each of the coating material compositions used according to the present invention. In relation to each of the coating material compositions used according to the present invention, in addition to the essential components present therein, one or more of the further components specified below and optionally included in each of the coating material compositions used according to the present invention can be included therein. Any of these components can in each case be present in their preferred embodiments, as specified below.

[0017] The term "before its or their use" in a particular step of the method of the present invention, in relation to the amino resin (AR) and crosslinking catalyst (CLC1) present in any of the coating material compositions used in the sense of the present invention, preferably means that the particular component, i.e., (AR) or (CLC1), was present as a component in the respective coating material composition before the respective coating material composition was used in a particular step of the method of the present invention, and was (still) present there or is still present when any of these respective coating material compositions is applied in any of the particular steps. However, any of these components may migrate from the coating film obtained by applying the respective coating material composition to further coating films applied thereon and / or to coating films already present underneath.

[0018] Methods of the Invention The method of the present invention is a method for producing and providing a multi-layer coating system on a substrate, comprising at least steps (1), (2), and (3). However, the method may further comprise additional optional steps, such as steps (1a) and (2a).

[0019] Method step (1) In step (1) of the method of the present invention, a first coating material composition is applied to an optionally pre-coated substrate, and a first coating film is formed on the optionally pre-coated substrate. This first coating film formed on the optionally pre-coated substrate is an uncured coating film at this stage.

[0020] The method of the present invention is particularly suitable for coating automotive body or parts thereof, and respective metal substrates, but also plastic substrates, such as polymeric substrates. A preferred substrate is therefore an automotive body or part thereof.

[0021] Suitable metal substrates for use in accordance with the present invention include any substrates commonly used and known to those skilled in the art. The substrates used in accordance with the present invention are preferably metal substrates, more preferably steel, preferably selected from the group consisting of bare steel, cold-rolled steel (CRS), hot-rolled steel, galvanized steel (e.g., hot-dip galvanized steel (HDG)), alloy-galvanized steel (e.g., Galvalume, Galvannealed, or Galfan), and aluminized steel, aluminum and magnesium, and Zn / Mg alloys and Zn / Ni alloys. A particularly suitable substrate is a partial or complete vehicle body of a production automobile.

[0022] Preferably, thermoplastic polymers are used as the plastic substrate.Suitable polymers include poly(meth)acrylates, including polyesters including polymethyl(meth)acrylate, polybutyl(meth)acrylate, polyethylene terephthalate, polybutylene terephthalate, polyvinylidene fluoride, polyvinyl chloride, polycarbonate and polyvinyl acetate, polyamides, polyolefins such as polyethylene, polypropylene, polystyrene, and polybutadiene, polyacrylonitrile, polyacetal, polyacrylonitrile-ethylene-propylene-diene-styrene copolymer (A-EPDM), ASA (acrylonitrile-styrene-acrylic acid ester copolymer) and ABS (acrylonitrile-butadiene-styrene copolymer), polyetherimide, phenolic resins, urea resins, melamine resins, alkyd resins, epoxy resins, polyurethanes including TPU, polyetherketones, polyphenylene sulfide, polyethers, polyvinyl alcohol, and mixtures thereof.Particularly preferred are polycarbonates and poly(meth)acrylates.

[0023] The substrate used according to the present invention is preferably a substrate pretreated with at least one metal phosphate, for example zinc phosphate. This type of phosphating pretreatment is usually carried out after the substrate has been cleaned and before the substrate is coated with an electrocoat, and is a pretreatment step commonly used in the automotive industry, among others.

[0024] As outlined above, the substrate used may be a pre-coated substrate, i.e., a substrate having at least one cured coating film. The substrate used in step (1) may be pre-coated with a cured electrocoat coating layer.

[0025] The substrate may also be provided with at least one cured primer coating film, for example, as at least one additional prior coating. The term "primer" is known to those skilled in the art. A primer is typically applied after the cured electrodeposition coating layer is provided on the substrate. If a cured primer coating film is also present, the cured electrodeposition coating film is present below, and preferably adjacent to, the cured primer coating film.

[0026] Optional step (1a) of the method Preferably, the method of the present invention further comprises step (1a) carried out after step (1) and before step (2). In step (1a), the first coating film obtained after step (1) is flashed off, preferably for a period of 1 to 20 minutes, more preferably for a period of 1.5 to 15 minutes, particularly for a period of 2 to 10 minutes, and most preferably for a period of 3 to 6 minutes, and then in step (2), a second coating material composition is applied. Preferably, step (1a) is carried out at a temperature not exceeding 40°C, more preferably at a temperature in the range of 18 to 30°C.

[0027] The term "flash-off" in the sense of the present invention means drying, in which at least a portion of the solvent and / or water is evaporated from the coating film (i.e., from the formed coating layer) before the next coating material composition is applied and / or cured. Curing by flash-off is not performed.

[0028] Method step (2) In step (2) of the method of the present invention, a second coating material composition is applied to the first coating film present on the substrate obtained after step (1) before curing the first coating film, thereby forming a second coating film adjacent to the first coating film. In this manner, both the first and second coating material compositions are applied wet-on-wet.

[0029] Optional step (2a) of the method Preferably, the method of the present invention further comprises step (2a) carried out after step (2) and before step (3). In step (2a), the second coating film obtained after step (2) is flashed off, preferably for a period of 1 to 20 minutes, more preferably for a period of 2 to 15 minutes, and particularly preferably for a period of 3 to 12 minutes, followed by curing step (3). Preferably, step (2a) is carried out at a temperature not exceeding 40°C, more preferably at a temperature in the range of 18 to 30°C.

[0030] Preferably, both steps (1a) and (2a) are carried out. Preferably, the flash-off time used in step (2a) exceeds the flash-off time used in step (1a).

[0031] Method step (3) In step (3) of the method of the present invention, the first and second coating films are cured together, i.e., simultaneously, with the cured second coating film representing the outermost layer of the resulting multi-layer coating system obtained after step (3).

[0032] Each resulting cured coating film represents a coating layer. Thus, after step (3) is performed, first and second coating layers are formed on the optionally pre-coated substrate, with the second layer being the outermost layer of the formed multi-layer coating system.

[0033] Preferably, step (3) is carried out for a period of 5 to 45 minutes, preferably 10 to 35 minutes, at a substrate temperature below 110° C., preferably below 105° C., in particular in the range of 80 to 105° C. or 80 to 100° C. The substrate temperature is measured with a thermocouple.

[0034] First and second coating material compositions and first and second coating films obtained therefrom The first and second coating material compositions used in steps (1) and (2) are different from each other: the first coating material composition comprises at least one polymer (P1) having crosslinkable functional groups, and the second coating material composition comprises at least one polymer (P2) having crosslinkable functional groups.

[0035] One of the first and second coating material compositions, i.e., exactly one, contains at least one amino resin (AR) as a crosslinking agent before its use in step (1) or (2), and the remaining two coating material compositions do not contain any crosslinking agent before their use in step (1) or (2), but contain at least one crosslinking catalyst (CLC1) before their use in step (1) or (2). The at least one amino resin (AR) has crosslinkable functional groups that can crosslink with the crosslinkable functional groups of both the polymer (P1) and the polymer (P2). Thus, it is clear that the amino resin (AR) is different from each of the polymers (P1) and (P2). The at least one crosslinking catalyst (CLC1) is suitable for catalyzing the crosslinking reaction between the functional groups of the amino resin (AR) and the functional groups of both the polymer (P1) and the polymer (P2).

[0036] In the sense of the present invention, the term "free of any crosslinking agent" preferably means that no crosslinking agent is present in the respective coating material composition prior to use in the method of the present invention. This means that such a crosslinking agent is not intentionally added to any of the coating material compositions used according to the present invention. However, this does not exclude that any remnants of such a crosslinking agent, for example used to prepare some of the components present in the composition, may still be present there. Thus, preferably, the amount of any crosslinking agent present in a coating material composition "free of any crosslinking agent" is in each case less than 1.0% by weight or less than 0.5% by weight, most preferably less than 0.1% by weight or less than 0.05% by weight, or less than 0.01% by weight, based on the total weight of the coating material composition.

[0037] Preferably, the coating material composition selected from the first and second coating material compositions comprising at least one amino resin (AR) as a crosslinking agent prior to its use in step (1) or (2) does not contain any crosslinking catalyst at all prior to its use in step (1) or (2), or comprises at least one crosslinking catalyst (CLC2) identical to or different from the at least one crosslinking catalyst (CLC1) prior to its use in step (1) or (2), in an amount less than the amount of the at least one crosslinking catalyst (CLC1) based on the total weight of the coating material composition, and this crosslinking catalyst (CLC1) is present in the remainder of the two coating material compositions, which does not contain any crosslinking agent based on the total weight of the coating material composition prior to its use in step (1) or (2).

[0038] If at least one crosslinking catalyst (CLC2) is present in a coating material composition comprising at least one amino resin (AR), the relative mass ratio of the at least one crosslinking catalyst (CLC1) present in a coating material composition selected from the first and second coating material compositions that do not comprise any crosslinking agent prior to their use in step (1) or (2) to said at least one crosslinking catalyst (CLC2) is in each case at least 5:1, more preferably at least 4:1, even more preferably at least 3:1, based on the respective total mass of the coating material composition.

[0039] Preferably, the first coating material composition comprises at least one amino resin (AR) as a crosslinking agent and at least one optional crosslinking catalyst (CLC2) that is the same as or different from the at least one crosslinking catalyst (CLC1) before its use in step (1), and the second coating material composition comprises at least one crosslinking catalyst (CLC1) before its use in step (2), or the second coating material composition comprises at least one amino resin (AR) as a crosslinking agent and at least one optional crosslinking catalyst (CLC2) that is the same as or different from the at least one crosslinking catalyst (CLC1) before its use in step (2), and the first coating material composition comprises at least one crosslinking catalyst (CLC1) before its use in step (1).

[0040] Preferably, the first coating material composition is a 1K (one-component) coating material composition. Preferably, the second coating material composition is a 1K (one-component) coating material composition.

[0041] Preferably, the first coating material composition is a solvent-based, i.e., organic solvent(s)-based, or water-based, i.e., aqueous, coating material composition, and the second coating material composition is a solvent-based or water-based, preferably solvent-based, coating material composition.

[0042] The term "aqueous" or "waterborne" in connection with any of the coating material compositions used according to the present invention is understood for the purposes of the present invention to preferably mean that water as solvent and / or diluent is present as the major constituent of any solvent and / or diluent present in each of the coating material compositions used according to the present invention, preferably in an amount of at least 35% by weight, based on the total weight of the electrodeposition coating composition of the present invention. Organic solvents may additionally be present in smaller proportions, preferably in amounts of <20% by weight.

[0043] Each of the coating material compositions used according to the invention preferably comprises, when the composition is aqueous, a water fraction of at least 40% by weight, more preferably at least 45% by weight, very preferably at least 50% by weight, and more particularly at least 55% by weight, in each case based on the total weight of the coating material composition.

[0044] Each of the coating material compositions used according to the invention preferably contains, when the composition is aqueous, a fraction of organic solvent of less than 20% by weight, more preferably in the range of 0 to <20% by weight, and very preferably in the range of 0.5 to 20% by weight, or 17.5% by weight, or 15% by weight, or 10% by weight, in each case based on the total weight of the coating material composition. Examples of such organic solvents include heterocyclic, aliphatic, or aromatic hydrocarbons, mono- or polyhydric alcohols, in particular methanol and / or ethanol, ethers, esters, ketones, and amides, such as N-methylpyrrolidone, N-ethylpyrrolidone, dimethylformamide, toluene, xylene, butanol, ethyl glycol and butyl glycol and their acetates, butyl diglycol, diethylene glycol dimethyl ether, cyclohexanone, methyl ethyl ketone, methyl isobutyl ketone, acetone, isophorone, or mixtures thereof.

[0045] The term "solvent system" in connection with any of the coating material compositions used according to the present invention is understood for the purposes of the present invention to preferably mean that organic solvent(s) as solvent and / or diluent are present as the major constituent of any solvent and / or diluent present in each of the coating material compositions used according to the present invention, preferably in an amount of at least 35% by weight, based on the total weight of the electrodeposition coating composition of the present invention. Water may additionally be present in a smaller proportion, preferably in an amount of <20% by weight.

[0046] Each of the coating material compositions used according to the present invention preferably contains, when the composition is solvent-based, at least 40% by weight, more preferably at least 45% by weight, very preferably at least 50% by weight, and more particularly at least 55% by weight of organic solvent(s), in each case based on the total weight of the coating material composition. Any conventional organic solvent known to those skilled in the art can be used as the organic solvent. The term "organic solvent" is known to those skilled in the art, particularly from Council Directive 1999 / 13 / EC of March 11, 1999. Examples of such organic solvents include heterocyclic, aliphatic, or aromatic hydrocarbons, monohydric or polyhydric alcohols, especially methanol and / or ethanol, ethers, esters, ketones, and amides, such as N-methylpyrrolidone, N-ethylpyrrolidone, dimethylformamide, toluene, xylene, butanol, ethyl glycol and butyl glycol and their acetates, butyl diglycol, diethylene glycol dimethyl ether, cyclohexanone, methyl ethyl ketone, methyl isobutyl ketone, acetone, isophorone, or mixtures thereof.

[0047] Each of the coating material compositions used according to the invention preferably comprises, if the composition is solvent-based, a water fraction of <20% by weight, more preferably in the range of 0 to <20% by weight, very preferably in the range of 0.5 to 20% by weight or 17.5% by weight or 15% by weight or 10% by weight, in each case based on the total weight of the coating material composition.

[0048] The solids content of each of the coating material compositions used according to the invention is, independently of one another, preferably in the range of 5 to 45% by weight, more preferably 5 to 40% by weight, very preferably 7.5 to 40% by weight, more particularly 7.5 to 35% by weight, and most preferably 10 to 35% by weight or 15 to 30% by weight, in each case based on the total weight of the coating material composition. The solids content, in other words the non-volatile fraction, is determined by the method described below.

[0049] Preferably, the first coating material composition is a base coat material coating composition and the second coating material composition is a clear coat coating material composition, or the first coating material composition is a primer material coating composition and the second coating material composition is a top coat coating material composition. In the first case, the base coat material coating composition is preferably water-based or solvent-based, and the clear coat coating composition is preferably solvent-based. In the second case, the primer material coating composition is preferably water-based or solvent-based, particularly solvent-based, and the top coat coating composition is preferably solvent-based or water-based, particularly solvent-based.

[0050] Each of the coating material compositions used in accordance with the present invention can be used as an OEM coating composition or in refinish applications, preferably in OEM applications.

[0051] The terms "base coat," "base coat," or "base coating" are known to those skilled in the art and are defined, for example, in Römpp Lexikon, Paints and Printing Inks, Georg Thieme Verlag, 1998, 10th Edition, p. 57. Base coats are therefore used, particularly in automotive and general industrial coloring, to impart color and / or optical effects by using the base coat as an intermediate coating composition. They are generally applied to metal or plastic substrates, either to a primer layer applied over an electrocoated coating layer applied to the metal substrate in the case of metal substrates, or to an existing coating film that also serves as a substrate in the case of repainting. At least one clear coat film is additionally applied, particularly to protect the base coat film from environmental influences. The terms "clear coat," "clear coat," or "clear coating" are also known to those skilled in the art and refer to the transparent outermost layer of a multilayer coating structure applied to a substrate.

[0052] The proportions and amounts in wt% (mass%) of all components present in each of the coating material compositions used according to the invention add up to 100% by mass, in each case based on the total mass of the respective coating composition.

[0053] Polymers (P1) and (P2) The first coating material composition comprises at least one polymer (P1) having crosslinkable functional groups, and the second coating material composition comprises at least one polymer (P2) having crosslinkable functional groups.

[0054] The polymers (P1) and (P2) can be the same or different from each other, each of these polymers being different from the amino resin (AR).

[0055] The polymers (P1) and (P2) function as film-forming binders. For the purposes of the present invention, the term "binder" is understood to mean a non-volatile component of the coating material composition that is involved in film formation, in accordance with DIN EN ISO 4618 (German edition, date: March 2007). Therefore, the pigments and / or fillers contained therein are not included in the term "binder". Preferably, at least one polymer is the main binder of the respective coating material composition. The main binder in the sense of the present invention preferably refers to the binder component that is present in a higher proportion based on the total weight of the coating material composition when no other binder components are present in the coating material composition.

[0056] The term "polymer" is known to those skilled in the art and, for the purposes of the present invention, encompasses polyadducts, polymerizations and polycondensations. The term "polymer" includes both homopolymers and copolymers.

[0057] Each of the polymers (P1) and (P2) has a crosslinkable functional group that can crosslink with the crosslinkable functional group of the amino resin (AR), i.e., that allows a crosslinking reaction with the crosslinkable functional group of the amino resin (AR). The crosslinkable groups of the polymers (P1) and (P2) may be the same or different from each other. Any common crosslinkable functional group known to those skilled in the art may be present. The crosslinkable functional groups of each of the polymers (P1) and (P2) are independently selected from the group consisting of primary amino groups, secondary amino groups, hydroxyl groups, thiol groups, carboxyl groups, and carbamate groups. Preferably, each of the polymers (P1) and (P2) has functional hydroxyl groups (OH-groups) and / or carbamate groups, especially hydroxyl groups.

[0058] Each of the polymers (P1) and (P2) is preferably selected, independently of one another, from the group consisting of polyurethanes, polyureas, polyesters, polyamides, polyethers, poly(meth)acrylates and / or copolymers of structural units of said polymers, in particular polyurethane-poly(meth)acrylates and / or polyurethane-polyureas, and hybrid polymers thereof. In particular, each of the polymers (P1) and (P2) is preferably selected, independently of one another, from the group consisting of polyurethanes, polyesters, poly(meth)acrylates and / or copolymers of structural units of said polymers. The terms "(meth)acrylic" or "(meth)acrylate" in the context of the present invention include in each case the meanings "methacrylic" and / or "acrylic" or "methacrylate" and / or "acrylate".

[0059] Suitable polyurethanes are described, for example, in German Patent Application DE 19948 004 A1, page 4, line 19 to page 11, line 29 (polyurethane prepolymer B1), European Patent Application EP 0 228 003 A1, page 3, line 24 to page 5, line 40, European Patent Application EP 0 634 431 A1, page 3, line 38 to page 8, line 9, and International Patent Application WO 92 / 15405, page 2, line 35 to page 10, line 32.

[0060] Preferred polyesters are described, for example, in DE 4009858 A1, column 6, line 53 to column 7, line 61, and column 10, line 24 to column 13, line 3, or in WO 2014 / 033135 A2, page 2, line 24 to page 7, line 10, and page 28, line 13 to page 29, line 13. Similarly preferred polyesters are polyesters with dendritic structures, such as those described in WO 2008 / 148555 A1. These can be used not only in clear coats, but also in aqueous base coats, in particular.

[0061] Preferred polyurethane-poly(meth)acrylate copolymers (e.g., (meth)acrylated polyurethanes) and their preparation are described, for example, in WO 91 / 15528 A1, page 3, line 21 to page 20, line 33, and DE 4437535 A1, page 2, line 27 to page 6, line 22.

[0062] Preferred poly(meth)acrylates are those that can be prepared by multistage free-radical emulsion polymerization of olefinically unsaturated monomers in water and / or organic solvents. For example, seed-core-shell polymers (SCS polymers) are particularly preferred. Such polymers or aqueous dispersions containing such polymers are known, for example, from WO 2016 / 116299 A1. Particularly preferred seed-core-shell polymers are those preferably having an average particle size of 100 to 500 nm, which can be prepared by sequential free-radical emulsion polymerization of three preferably different monomer mixtures (A1), (B1) and (C1) of olefinically unsaturated monomers in water, wherein mixture (A1) contains at least 50% by weight of a monomer having a solubility in water of less than 0.5 g / l at 25°C, the polymer prepared from mixture (A1) having a glass transition temperature of 10 to 65°C, and mixture (B1) containing at least one polyunsaturated monomer, the polymer prepared from mixture (B1) having a glass transition temperature of -35 to 15°C, and the polymer prepared from mixture (C1) having a glass transition temperature of -50 to 15°C, wherein i. first mixture (A1) is polymerized, ii. then mixture (B1) is polymerized in the presence of the polymer formed in i., and iii. then mixture (C1) is polymerized in the presence of the polymer formed in ii. All three mixtures are preferably different from each other.

[0063] Preferred polyurethane-polyurea copolymers are polyurethane-polyurea particles, preferably having an average particle size of 40 to 2000 nm. Each reacted polyurethane-polyurea particle contains at least one isocyanate-containing polyurethane prepolymer containing anionic groups and / or groups that can be converted to anionic groups, and at least one polyamine containing two primary amino groups and one or two secondary amino groups. Preferably, such copolymers are used in the form of an aqueous dispersion. In principle, such polymers can be prepared, for example, by conventional polyaddition of polyisocyanates with polyols and polyamines.

[0064] In particular, each of the polymers (P1) and (P2) is hydroxyl-functional and more preferably has an OH number in the range of 15 to 200 mg KOH / g, more preferably 20 to 150 mg KOH / g. Most preferred are the corresponding hydroxyl-functional polyurethane-poly(meth)acrylate copolymers, hydroxyl-functional polyesters, hydroxyl-poly(meth)acrylate copolymers and / or hydroxyl-functional polyurethane-polyurea copolymers.

[0065] Preferably, the at least one polymer (P1) is present in the first coating material composition in an amount ranging from 10 to 50% by weight, more preferably from 12 to 45% by weight, based on the total weight of the coating material composition.

[0066] Preferably, the at least one polymer (P2) is present in the second coating material composition in an amount ranging from 10 to 50% by weight, more preferably from 12 to 45% by weight, based on the total weight of the coating material composition.

[0067] Amino Resin (AR) Preferably, the at least one amino resin (AR) used as a crosslinker present in either the first or second coating material composition is an aminoplast resin, more preferably a melamine resin, even more preferably a melamine formaldehyde resin, especially a hexamethoxymethyl melamine formaldehyde resin. Aminoplast resins are generally based on the condensation product of formaldehyde with amino- and / or amide-group-bearing substances such as melamine, urea, and / or benzoguanamine.

[0068] At least one amino resin (AR) contains crosslinkable functional groups, such as OH-groups, which react with the crosslinkable functional groups of both polymers (P1) and (P2), preferably at least when catalyzed by at least one crosslinking catalyst (CLC1).

[0069] Examples of suitable aldehydes for preparing suitable melamine formaldehyde resins include those that provide a C1-C8 group attached to a nitrogen atom pendant from the triazine ring of melamine, with the C1-C8 alcohol group replacing a nitrogen-bonded hydrogen atom. Specific examples of suitable aldehydes include, but are not limited to, formaldehyde, acetaldehyde, propaldehyde, butyraldehyde, and combinations thereof. Formaldehyde is particularly preferred. Preferably, the at least one melamine resin used as amino resin (AR) is a formaldehyde resin, more preferably a monomeric melamine formaldehyde resin, even more preferably a hexamethoxyalkyl melamine formaldehyde resin, in particular a hexamethoxyalkyl melamine formaldehyde resin selected from the group consisting of hexamethoxymethyl melamine formaldehyde resin, hexamethoxybutyl melamine formaldehyde resin, hexamethoxy(methyl and butyl) melamine formaldehyde resin, and mixtures thereof.

[0070] The aldehyde and melamine are typically reacted in a stoichiometric ratio of aldehyde to melamine of 5.4:1 to 6:1, preferably 5.7:1 to 6:1, and more preferably 5.9:1 to 6:1. In other words, the reactive sites, i.e., imino groups, in the melamine can be partially or fully reacted as a result of the reaction between the aldehyde and melamine. Theoretically, with an aldehyde to melamine ratio of 5.4:1, after the reaction of the aldehyde with the melamine and before any further reaction, such as subsequent reaction with an alcohol in etherification, the alkylol content of the resulting product will be approximately 90% based on the total number of reactive sites present in the melamine prior to the reaction. Similarly, if the ratio of aldehyde to melamine is 5.7:1, the alkylol content will be about 95%, if the ratio of aldehyde to melamine is 5.9:1, the alkylol content will be about 99%, and if the ratio of aldehyde to melamine is 6:1, the alkylol content will be about 100%, all before any further reaction, such as reaction with alcohol, and all based on the total number of reactive sites present in the melamine before reaction. Any reactive sites from the melamine that are unreacted after the reaction of the aldehyde with melamine remain as imino groups in the resulting product.

[0071] Preferably, the melamine resin used as amino resin (AR) has a content of imino groups of less than or equal to 10% (corresponding to an aldehyde to melamine ratio of about 5.4:1), more preferably less than or equal to about 5% (corresponding to an aldehyde to melamine ratio of about 5.7:1), even more preferably less than or equal to about 3%, and even more preferably less than or equal to about 1% (corresponding to an aldehyde to melamine ratio of about 5.9:1), in each case based on the total number of reactive sites present in the melamine before the reaction. The remainder of the groups in the melamine resin, if any, are preferably alkoxyalkyl groups.

[0072] The melamine resin used as the amino resin (AR) preferably contains alkylol groups, more preferably methylol groups and / or other alkylol groups, such as butyrol groups. The preferred butyrol groups are n-butyrol groups. Methylol groups or mixtures of methylol and butyrol groups are also possible. The most preferred are methylol groups.

[0073] At least a portion of the alkylol groups present in the melamine resin used as the amino resin (AR) are alkylated by further reaction with at least one alcohol to form nitrogen-bonded alkoxyalkyl groups. In particular, the hydroxyl groups of the nitrogen-bonded alkylol groups may be etherified with an alcohol to form nitrogen-bonded alkoxyalkyl groups. The alkoxyalkyl groups are available for crosslinking with crosslinkable functional groups, such as OH- and / or carbamate groups, of both polymers (P1) and (P2). The remaining imino groups present in the melamine resin used as the amino resin (AR) after the aldehyde / melamine reaction do not react with the alcohol used for alkylation. Some of the remaining imino groups react with the hydroxyl groups of nitrogen-bonded alkylol groups from another melamine to form crosslinking units. However, the majority of the remaining imino groups remain unreacted.

[0074] As outlined above, the alkylol groups of the melamine resin used as the amino resin (AR) are partially alkylated. By "partially alkylated" is meant that a sufficiently small amount of alcohol is reacted with the melamine resin under reaction conditions that result in incomplete alkylation of the alkylol groups, leaving a portion of the alkylol groups in the melamine resin. When the melamine resin is partially alkylated, it is typically alkylated with a sufficient amount of alcohol to leave at least about 7%, more preferably about 10% to about 50%, and even more preferably about 15% to about 40%, of the alkylol groups in the aminoplast, in each case based on the total number of reactive sites present in the melamine prior to reaction. Typically, the melamine resin is partially alkylated to obtain about 40% to about 93%, more preferably about 50% to about 90%, and even more preferably about 60% to about 75% of the alkoxyalkyl groups, in each case based on the total number of reactive sites present in the melamine prior to reaction. Thus, when partially alkylated, the melamine resin is typically alkylated with at least one alcohol in a stoichiometric ratio of hydroxyl groups in the alcohol to alkylol groups in the melamine resin of about 0.5:1.0 to about 0.93:1.0, more preferably about 0.60:1.0 to about 0.9:1.0, and even more preferably about 0.6:1 to about 0.85:1.0.

[0075] Preferably, at least a portion, more preferably only a portion, of the alkylol groups, such as methylol groups, of the melamine resin are etherified by reaction with at least one alcohol. For this purpose, any monohydric alcohol can be used, including methanol, ethanol, n-propanol, isopropanol, n-butanol, sec-butanol, t-butanol, pentanol, hexanol, heptanol, as well as benzyl alcohol and other aromatic alcohols, cyclic alcohols such as cyclohexanol, glycol monoethers, and halogen-substituted or other substituted alcohols, such as 3-chloropropanol and butoxyethanol. In particular, methanol and / or butanol are used in part for the melamine resin used as the amino resin (AR), most preferably methanol and / or n-butanol.

[0076] Preferably, the melamine resin used as amino resin (AR) is a melamine aldehyde resin, in particular a melamine formaldehyde resin, which has alkylol groups, preferably methylol groups and / or butyrol groups, as crosslinkable functional groups, preferably in an amount of at least 90%, based on the total number of reactive sites present in the melamine before the reaction with the aldehyde, and preferably has a content of imino groups of less than or equal to 10%, more preferably less than or equal to 5%, even more preferably less than or equal to 3% and in particular less than or equal to 1%, in each case based on the total number of reactive sites present in the melamine before the reaction with the aldehyde.

[0077] The melamine formaldehyde resin as the melamine resin contains at least one methylol group (-CHOH) and / or at least one group of the general formula -CHOR 1 (In the formula, R 1is an alkyl chain having 1 to 20 carbon atoms, preferably 1 to 6 carbon atoms, more preferably 1 to 4 carbon atoms), alkoxymethyl groups, and combinations thereof, and these resins are particularly preferred. Most preferred are hexamethoxymethyl melamine (HMMM) and / or hexamethoxybutyl melamine (HMBM), with (HMMM) being particularly preferred. Melamine resins containing a combination of methoxybutyl groups and methoxymethyl groups are also suitable as melamine resins.

[0078] The alkylol and alkoxyalkyl groups of the melamine resin (e.g., the CHOCH ether groups of HMMM) are particularly reactive with, for example, the OH- and / or carbamate groups of the polymers (P1) and (P2) (e.g., OH- and / or carbamate-functional polymers), especially when catalyzed by at least one crosslinking catalyst (CLC1), for example, a strong acid catalyst, for example, an unblocked sulfonic acid, used as crosslinking catalyst (CLC1).

[0079] Preferably, the at least one amino resin (AR) used as a crosslinker has a number average molecular weight of up to 1500 g / mol. Preferably, the at least one amino resin (AR) used as a crosslinker has a number average molecular weight in the range of 200 to 1500 g / mol, more preferably 250 to 1000 g / mol, especially 300 to 700 g / mol. The number average molecular weight is determined by the method disclosed in the "Method" section.

[0080] Preferably, the at least one amino resin (AR) is present in one of the first and second coating material compositions in an amount in the range of 10 to 40% by weight, more preferably 12 to 35% by weight, based on the total weight of the coating material composition.

[0081] Crosslinking catalysts (CLC1) and (CLC2) Preferably, the at least one crosslinking catalyst (CLC1) is present in one of the first and second coating material compositions in an amount in the range of 5 to 40% by weight, more preferably 7.5 to 35% by weight, based on the total solids content of the coating material composition.

[0082] The cross-linking catalysts (CLC1) and (CLC2) can be the same or different from each other.

[0083] Preferably, at least one cross-linking catalyst (CLC1) is a sulfonic acid, e.g., an unblocked sulfonic acid. Preferably, at least one cross-linking catalyst (CLC2), if present, is also a sulfonic acid, e.g., an unblocked sulfonic acid.

[0084] The crosslinking catalyst (CLC1), and preferably also the crosslinking catalyst (CLC2), are suitable for catalyzing the crosslinking reaction between the functional groups of the amino resin (AR), such as alkylol groups and alkoxymethyl groups, and the functional groups of both the polymer (P1) and the polymer (P2), such as OH-groups of these polymers.

[0085] Examples of unblocked sulfonic acids are para-toluenesulfonic acid (pTSA), methanesulfonic acid (MSA), dodecylbenzenesulfonic acid (DDBSA), dinonylnaphthalenedisulfonic acid (DNNDSA), and mixtures thereof. In particular, DDBSA is preferred as both the crosslinking catalyst (CLC1) and the crosslinking catalyst (CLC2).

[0086] If at least one crosslinking catalyst (CLC2) is present in one of the first and second coating material compositions which additionally contain at least one amino resin (AR), it is present in an amount in the range of 1 to 10% by weight, more preferably 1.5 to 5% by weight, in each case based on the total solids content of the respective coating material composition.

[0087] Further Optional Components of the Coating Material Composition At least the first coating material composition preferably comprises at least one pigment and / or filler. Preferably, only the first coating material composition preferably comprises at least one pigment and / or filler. Preferably, the second coating material composition does not comprise any pigment.

[0088] The term "pigment" is known to those skilled in the art, for example, from DIN 55943 (dated October 2001). A "pigment" in the sense of the present invention preferably refers to a component, for example, in the form of a powder or flake, that is substantially, preferably completely insoluble in the medium that surrounds it, such as one of the coating material compositions used according to the present invention. Pigments are preferably substances that can be used as pigments due to their colorant and / or magnetic, electric, and / or electromagnetic properties. Pigments preferably differ from "fillers" in their refractive index, which is ≧1.7. The term "filler" is known to those skilled in the art, for example, from DIN 55943 (dated October 2001). A "filler" for the purposes of the present invention is preferably a component that is substantially, preferably completely insoluble in the application medium, such as one of the coating material compositions used according to the present invention, and is used in particular to increase the volume. A "filler" in the sense of the present invention preferably differs from a "pigment" in its refractive index, which is <1.7.

[0089] Any conventional filler known to those skilled in the art can be used.Examples of suitable fillers are kaolin, dolomite, calcite, chalk, calcium sulfate, barium sulfate, graphite, silicates, such as magnesium silicate, especially those corresponding to phyllosilicates, such as hectorite, bentonite, montmorillonite, talc and / or mica, silica, especially fumed silica, hydroxides, such as aluminum hydroxide or magnesium hydroxide, or organic fillers, such as textile fibers, cellulose fibers, polyethylene fibers or polymer powders.For further details, please refer to "Fillers" in Römpp Lexikon Lacke und Druckfarben, Georg Thieme Verlag, 1998, p. 250ff.

[0090] Any conventional pigment known to those skilled in the art can be used.Suitable examples of pigments include inorganic and organic color pigments.Suitable examples of inorganic color pigments include white pigments such as zinc white, zinc sulfide or lithopone, black pigments such as carbon black, iron manganese black or spinel black, chromatic pigments such as chromium oxide, chromium oxide hydrate green, cobalt green or ultramarine green, cobalt blue, ultramarine blue or manganese blue, ultramarine violet or cobalt violet and manganese violet, red iron oxide, cadmium sulfoselenide, molybdate red or ultramarine red, iron oxide brown, mixed brown, spinel phase and corundum phase or chrome orange, or iron oxide yellow, nickel titanium yellow, chrome titanium yellow, cadmium sulfide, cadmium zinc sulfide, chrome yellow or bismuth vanadate.Other inorganic color pigments are silicon dioxide, aluminum oxide, aluminum oxide hydrate, especially boehmite, titanium dioxide, zirconium oxide, cerium oxide, and mixtures thereof. Examples of suitable organic colored pigments include monoazo pigments, disazo pigments, anthraquinone pigments, benzimidazole pigments, quinoacridone pigments, quinophthalone pigments, diketopyrrolopyrrole pigments, dioxazine pigments, indanthrone pigments, isoindoline pigments, isoindolinone pigments, azomethine pigments, thioindigo pigments, metal complex pigments, perinone pigments, perylene pigments, phthalocyanine pigments or aniline black.

[0091] If one or more pigments and / or fillers are present in any of the coating material compositions, their proportion in the coating material composition is preferably in the range from 1.0 to 40.0% by weight, preferably from 2.0 to 35.0% by weight, particularly preferably from 5.0 to 30.0% by weight, in each case based on the total weight of the coating material composition.

[0092] Each coating material composition used according to the present invention may contain one or more commonly used additives depending on the desired application. For example, each coating material composition may contain at least one additive selected from the group consisting of reactive diluents, light stabilizers, antioxidants, degassing agents, emulsifiers, slip agents, polymerization inhibitors, plasticizers, free-radical polymerization initiators, adhesion promoters, flow control agents, film-forming aids, sag control agents (SCAs), flame retardants, corrosion inhibitors, drying agents, biocides, and / or matting agents. These additives can be used in known and conventional proportions. Preferably, their content, based on the total weight of the coating material composition, is 0.01 to 20.0% by weight, more preferably 0.05 to 15.0% by weight, particularly preferably 0.1 to 10.0% by weight, most preferably 0.1 to 7.5% by weight, particularly preferably 0.1 to 5.0% by weight, and most preferably 0.1 to 2.5% by weight.

[0093] Each of the coating material compositions used according to the present invention may optionally contain at least one thickener. Examples of such thickeners include inorganic thickeners, such as metal silicates, e.g., sheet silicates, and organic thickeners, such as poly(meth)acrylic acid thickeners and / or (meth)acrylic acid (meth)acrylate copolymer thickeners, polyurethane thickeners, and polymer waxes. Such organic thickeners are included in the polymers (P1) and (P2) used as binders. The metal silicates are preferably selected from the group of smectites. The smectites are particularly preferably selected from the group of montmorillonite and hectorite. In particular, the montmorillonite and hectorite are selected from the group consisting of aluminum-magnesium silicate and sodium-magnesium and sodium-magnesium fluoride-lithium phyllosilicates. These inorganic phyllosilicates are, for example, sold under the trademark Laponite®. Thickeners based on poly(meth)acrylic acid and (meth)acrylic acid (meth)acrylate copolymer thickeners are optionally crosslinked and / or neutralized with a suitable base. Examples of such thickeners include "alkali swellable emulsions" (ASEs) and their hydrophobically modified variants, "hydrophilically modified alkali swellable emulsions" (HASEs). Preferably, these thickeners are anionic. Corresponding products, for example, Rheovis® AS1130, are commercially available. Polyurethane-based thickeners (e.g., polyurethane associative thickeners) are optionally crosslinked and / or neutralized with a suitable base. Corresponding products, for example, Rheovis® PU1250, are commercially available. An example of a suitable polymer wax is an optionally modified polymer wax based on ethylene-vinyl acetate copolymer. Corresponding products are commercially available, for example, under the name Aquatix® 8421.

[0094] If at least one thickener is present in any of the coating material compositions, it is preferably present in an amount of at most 10% by weight, more preferably at most 7.5% by weight, most preferably at most 5% by weight, in particular at most 3% by weight, and most preferably at most 2% by weight, based on the total weight of the coating material composition. The minimum amount of thickener is preferably 0.1% by weight in each case, based on the total weight of the coating material composition.

[0095] The preparation of each coating material composition can be carried out using conventional and known preparation and mixing methods and mixing units, or using conventional dissolvers and / or stirrers.

[0096] The multi-layer coating system of the present invention A further subject of the present invention is a multilayer coating system on a substrate, obtainable by the method of the present invention.

[0097] All preferred embodiments described herein with respect to the inventive method are also preferred embodiments with respect to the inventive multi-layer coating system described above on a substrate.

[0098] Methods of using the present invention A further subject of the present invention is the use of an amino resin (AR) having crosslinkable functional groups, which amino resin comprises: The first coating material composition or the second coating material composition is different from each other, and the first coating material composition comprises at least one polymer (P1) having a crosslinkable functional group capable of crosslinking with the crosslinkable functional group of the amino resin (AR), and the second coating material composition comprises at least one polymer (P2) having a crosslinkable functional group also capable of crosslinking with the crosslinkable functional group of the amino resin (AR), wherein the coating material composition selected from the first and second coating material compositions in which the amino resin (AR) is not present does not comprise any crosslinking agent but comprises at least one crosslinking catalyst (CLC1), which catalyzes a crosslinking reaction between the functional group of the amino resin (AR) and the functional groups of both the polymer (P1) and the polymer (P2). Mediator , this usage is a Mino Resin (AR) wherein on the other hand and at least partially transferring from a coating film obtained from the first coating material composition to a coating film obtained from the remaining one of the two coating material compositions, the transfer being performed by applying a second coating material composition to the coating film obtained from the first coating material composition, and then curing the first coating film to form a second coating film adjacent to the first coating film. Before and further this method of use is for subsequent crosslinking with crosslinkable functional groups of both polymer (P1) and polymer (P2) preferably catalyzed by at least a crosslinking catalyst (CLC1).

[0099] All preferred embodiments described herein in relation to the inventive method and the inventive multi-layer coating system on a substrate are also preferred embodiments in relation to the inventive method of use described above.

[0100] method 1. Non-volatile fraction The non-volatile fraction (solids or solids content) is determined in accordance with DIN EN ISO 3251 (date: June 2008). This involves weighing 1 g of sample into a pre-dried aluminum dish, drying the dish with the sample in a drying cabinet for 60 minutes at 130°C, cooling in a desiccator and then weighing again. The residue relative to the total amount of sample used corresponds to the non-volatile fraction.

[0101] 2. Number average molecular weight (M n ) Average polymer molecular weight (M w , M n and M p To measure the molecular weight distribution (Mn) of the polymer sample by gel permeation chromatography (GPC), a fully dissolved polymer sample is fractionated on a porous column stationary phase. Tetrahydrofuran (THF) is used as the eluent. The stationary phase is a combination of Waters Styragel HR5, HR4, HR3, and HR2 columns. Five milligrams of sample is added to 1.5 mL of elution solvent and filtered through a 0.5 μm filter. After filtration, 100 μl of the polymer sample solution is injected onto the column at a flow rate of 1.0 mL / min. Separation occurs according to the size of the polymer coil formed in the eluent. The molecular weight distribution, number average molecular weight Mn of the polymer sample, is determined. n , mass average molecular weight M w , and the molecular weight M of the highest peak p is calculated using chromatography software utilizing a calibration curve generated with a polymer standard verification kit containing a series of unbranched polystyrene standards of varying molecular weights (available from Polymer Standards Service, Inc.). The polydispersity index (PDI) is calculated using the formula M w / M n It is determined by:

[0102] 3. MEK friction test The MEK rub test is performed in accordance with ASTM D5402.

[0103] 4.Tukon hardness A Wolpert Wilson Tukon 2100 instrument is used to evaluate the Tukon microhardness of coated substrates. The coated substrate is placed on the stage of the instrument beneath the Tukon indenter. The indenter uses a pyramidal diamond tip to apply a 25 g load to the surface of the coated substrate for 18 ± 0.5 seconds. The instrument is also equipped with a microscope with a filament micrometer eyepiece. After the indentation is complete, the microscope is used to measure the length of the indentation. The instrument calculates the Knoop hardness value (KHN) using the following formula:

[0104]

number

[0105] During the ceremony: 0.025 = load applied to the indenter, kg L = the long diagonal length of the indentation, mm, and C p = indenter constant = 7.028 x 10 (-2)

[0106] 5. Adhesion (initial and after 10 days of water immersion) Adhesion is measured in accordance with ASTM D3359. Water immersion conditions are performed in accordance with ASTM D870 (Standard Practice for Testing Water Resistance of Coatings Using Water Immersion).

[0107] 6. Appearance After 10 days of water immersion exposure, the cured panels are visually evaluated to assess coating defects. Panels are compared to unexposed controls, and any visual differences between the two conditions are noted (e.g., whitening or other color change, blistering, gloss, DOI, or surface smoothness / roughness).

[0108] 7. MVSS (initial and after 10 days of water immersion) MVSS is measured in accordance with SAE J1720-Quick Knife Adhesion (QKA) Test for Glass Bonding Systems. Water immersion conditions are performed in accordance with ASTM D870 (Standard Practice for Testing Water Resistance of Coatings Using Water Immersion).

[0109] 8. Freezer Gravel Test The Freezer Gravel test is performed in accordance with SAE J400-Test for Chip Resistance of Surface Coatings.

[0110] 9. Layer Thickness Dry layer thickness is measured in accordance with ASTM D4138 - Standard Practices for Measurement of Dry Film Thickness of Protective Coating Systems by Destructive, Cross-Sectioning Means. [Example]

[0111] The following examples further illustrate the present invention but are not to be construed as limiting its scope.

[0112] 1. A base coat used as the first coating material composition 1.1 Solvent-Borne Basecoat Composition BC1 Basecoat composition BC1 was prepared by mixing the components listed in Table 1.1 in the order listed. BC1 did not contain any crosslinking agent, specifically no amino resin, but did contain a crosslinking catalyst (Naxcat® 1270). BC1 had a total solids content of 54.3 wt. %, based on its total weight.

[0113] [Table 1]

[0114] Naxcat® 1270 was a commercially available sulfonic acid crosslinking catalyst (dodecylbenzenesulfonic acid (DDBSA) in isopropyl alcohol). Naxcat® 1270 was present in BC1 in an amount of 25.46 wt. % based on the total solids content of BC1.

[0115] Acrylic resin 1 was an ε-caprolactone modified acrylic resin available from BASF Corp. and had an OH number of 73 mg KOH / g and a weight average molecular weight of 11,100 g / mol. The resin was used in the form of a dispersion with a solids content of 75% by weight.

[0116] The polyester resin (star type) was a branched aliphatic star type polyester resin available from BASF Corp., and had an OH number of 115 mg KOH / g and a weight average molecular weight of 2000 g / mol. The resin was used in the form of a dispersion with a solids content of 80% by weight.

[0117] The emulsion microgel was a branched acrylic microgel emulsion available from BASF Corp. and had an acid number of 10 mg KOH / g. The emulsion had a solids content of 31% by weight.

[0118] 1.2 Solvent-borne basecoat composition BC2 Basecoat composition BC2 was prepared by mixing the components listed in Table 1.2 in the order listed. BC2 contained an amino resin (Resimene® 747) as a crosslinker but did not contain any crosslinking catalyst. BC2 had a total solids content of 59.3 wt. %, based on its total weight.

[0119] [Table 2]

[0120] Resimene® 747 was a hexamethoxymethylmelamine-formaldehyde resin (98% by weight). The emulsion microgel was as previously described herein for BC1.

[0121] 1.3 Waterborne base coat composition BC3 Basecoat composition BC3 was prepared by mixing the components listed in Table 1.23 in the order listed. BC3 contained an amino resin (Resimene® 747) as a crosslinker but did not contain any crosslinking catalyst. BC3 had a total solids content of 52.0 wt. %, based on its total weight.

[0122] [Table 3]

[0123] Black Pigment Paste 1 consisted of 8.7 wt.% black pigment, 9.7 wt.% ground resin, 2.7 wt.% organic solvent, and 78.9 wt.% water. The ground resin was an MPEG-stabilized polyurethane-acrylic resin with urea and aromatic anchor groups available from BASF.

[0124] 1.4 Solvent-borne basecoat composition BC4 (used in comparative examples) Basecoat composition BC4 was prepared by mixing the components listed in Table 1.4 in the order listed. BC4 contained two amino resins (Resimene® 755 and Resimene® 764) as crosslinkers. Additionally, BC4 contained a crosslinking catalyst, a blocked sulfonic acid catalyst (amine-blocked dodecylbenzenesulfonic acid (DDBSA)).

[0125] [Table 4]

[0126] The emulsion microgel, acrylic resin 1, and polyester resin (star type) were as previously described for BC1.

[0127] 2. A clear coat used as the second coating material composition 2.1 Solvent-based clear coat composition CC1 Clearcoat composition CC1 was prepared by mixing the components listed in Table 2.1 in the order listed. CC1 contained an amino resin (Resimene® 747) as a crosslinker. CC1 had a total solids content of 57.9 wt. %, based on its total weight.

[0128] [Table 5]

[0129] The carbamate acrylic resin was available from BASF Corp. and had an OH number of 0 mg KOH / g and a weight average molecular weight of 4000 g / mol. The carbamate equivalent weight was 438 g / mol. The resin was used in the form of a dispersion with a solids content of 70% by weight.

[0130] C present in the resin blend 36 The dicarbamate is 2 mmol of methyl carbamate and 1 mmol of C 36The resin blend was prepared from a diol and used in the form of a dispersion with a solids content of 60% by weight. The carbamate equivalent was 344 g / mol. The IPDI / HPC reactive intermediate present in the resin blend was prepared from 1 mole of IPDI trimer and 3 moles of hydroxypropyl carbamate and used in the form of a dispersion with a solids content of 38.5% by weight. The carbamate equivalent was 374 g / mol. The resin blend used had a total solids content of 55% by weight.

[0131] Thus, the IPDI / HPC reactive intermediates present in CC1 have been described previously with respect to the resin blends.

[0132] Acrylic resin 2 was available from BASF Corp. and was a GMA-acrylic resin, i.e., an epoxy resin having a weight average molecular weight of 27,400 g / mol. The epoxy equivalent weight was 430 g / mol. This resin was used in the form of a dispersion with a solids content of 60% by weight.

[0133] The thermosetting acrylic resin was an OH-functional acrylic resin available from BASF Corp., having an OH number of 182 mg KOH / g and a weight average molecular weight of 4600 g / mol. The resin was used in the form of a dispersion with a solids content of 67.5 wt. %.

[0134] BYK® LP R23429 is a rheological additive commercially available from BYK Chemie GmbH.

[0135] 2.2 Solvent-based clear coat composition CC2 Clearcoat composition CC2 was prepared by mixing the components listed in Table 2.2 in the order listed. CC2 did not contain any crosslinking agent, and specifically did not contain any amino resin. CC2 had a total solids content of 55.0 wt. %, based on its total weight.

[0136] [Table 6]

[0137] Setalux® 10-9701 is commercially available.

[0138] Polycin® M-365 is a castor oil-based polyol with an OH number of 365 mg KOH / g (100 mass solids).

[0139] Carbamate acrylic resin, resin blend (C 36 The 50 wt% dicarbamate / 50 wt% IPDI / HPC reactive intermediate, IPDI / HPC reactive intermediate, and thermosetting acrylic resin were as previously described for CC1.

[0140] 2.3 Solvent-based clear coat composition CC3 (used in comparative examples) Clearcoat composition CC3 was prepared by mixing the components listed in Table 2.3 in the order listed. CC3 contained an amino resin (Resimene® 747) as a crosslinker. In addition, CC3 contained two crosslinking catalysts: a blocked sulfonic acid catalyst (amine-blocked decylbenzene sulfonic acid (DDBSA)) and Naxcat® 1270.

[0141] [Table 7]

[0142] Carbamate acrylic resin, resin blend (C 36 The 50 wt% dicarbamate / 50 wt% IPDI / HPC reactive intermediate, IPDI / HPC reactive intermediate, acrylic resin 2 and thermosetting acrylic resin are as previously described for CC1.

[0143] 3. Preparation of multilayer coating system 3.1 Multilayer coating system IE1 obtained using base coat composition BC1 and clear coat composition CC1 Cold-rolled steel test panels measuring 4 inches by 12 inches were used as substrates. The panels were pretreated with Bondrite® 958 zinc phosphate pretreatment and rinsed with Parcolene® 90 post-rinse (both available from Henkel). The panels were electrodeposited with a 0.7-0.8 mil layer of BASF's Cathoguard® 800 electrodeposition coating and baked for 20 minutes at a substrate temperature of 350°F (176.7°C). The panels were sprayed with a 0.9-1.1 mil layer of BASF U28AW110 gray solvent-based primer and baked for 25 minutes at 265°F (129.4°C). The primed panels were sprayed with BC1 and flashed for 4 minutes at ambient conditions. CC1 was then applied and flashed for 10 minutes at ambient conditions. After the CC flash, the panels were baked at 210°F (98.9°C) for 20 minutes.

[0144] BC1 was diluted to 40 cP with n-butyl acetate to a solids content of 50.49 wt % before application to the substrate, and CC1 was diluted to 105 cP with n-butyl acetate before application to the substrate.

[0145] The cured dry film thickness of basecoat BC1 was 0.6 mils (15.24 μm), and the cured dry film thickness of clearcoat CC1 was 1.8 mils (45.72 μm).

[0146] 3.2 Multilayer coating system IE2 obtained using base coat composition BC2 and clear coat composition CC2 Cold-rolled steel test panels measuring 4 inches by 12 inches were used as substrates. The panels were pretreated with Bondrite® 958 zinc phosphate pretreatment and rinsed with Parcolene® 90 post-rinse (both available from Henkel). The panels were electrodeposited with a 0.7-0.8 mil layer of BASF's Cathoguard® 800 electrodeposition coating and baked for 20 minutes at a substrate temperature of 350°F (176.7°C). The panels were sprayed with a 0.9-1.1 mil layer of BASF U28AW110 gray solvent-based primer and baked for 25 minutes at 265°F (129.4°C). The primed panels were sprayed with BC2 and flashed for 4 minutes at ambient conditions. CC2 was then applied and flashed for 10 minutes at ambient conditions. After the CC flash, the panels were baked for 20 minutes at 210°F (98.9°C).

[0147] BC2 was diluted to 40 cP with n-butyl acetate before application to the substrate. CC2 was diluted to 85 cP with n-butyl acetate before application to the substrate.

[0148] The cured dry film thickness of basecoat BC2 was 0.6 mils (15.24 μm), and the cured dry film thickness of clearcoat CC2 was 1.8 mils (45.72 μm).

[0149] 3.3 Multilayer coating system IE3 obtained using base coat composition BC3 and clear coat composition CC2 Cold-rolled steel test panels measuring 4 inches by 12 inches were used as substrates. The panels were pretreated with Bondrite® 958 zinc phosphate pretreatment and rinsed with Parcolene® 90 post-rinse (both available from Henkel). The panels were electrodeposited with a 0.7-0.8 mil layer of BASF's Cathoguard® 800 electrodeposition coating and baked for 20 minutes at a substrate temperature of 350°F (176.7°C). The panels were sprayed with a 0.9-1.1 mil layer of BASF U28AW110 gray solvent-based primer and baked for 25 minutes at 265°F (129.4°C). The primed panels were sprayed with BC3 and flashed for 5 minutes at 140°F (60.0°C). CC2 was then applied and flashed for 10 minutes under ambient conditions. After the CC flash, the panels were baked at 210°F (98.9°C) for 20 minutes.

[0150] BC3 was diluted to 80 cP before application to the substrate. CC2 was diluted to 85 cP with n-butyl acetate before application to the substrate.

[0151] The cured dry film thickness of basecoat BC3 was 0.6 mils (15.24 μm), and the cured dry film thickness of clearcoat CC2 was 1.8 mils (45.72 μm).

[0152] 3.4 Multilayer coating system IE4 (comparative example) obtained using base coat composition BC4 and clear coat composition CC3 Cold-rolled steel test panels measuring 4 inches by 12 inches were used as substrates. The panels were pretreated with Bondrite® 958 zinc phosphate pretreatment and rinsed with Parcolene® 90 post-rinse (both available from Henkel). The panels were electrodeposited with a 0.7-0.8 mil layer of BASF's Cathoguard® 800 electrodeposition coating and baked for 20 minutes at a substrate temperature of 350°F (176.7°C). The panels were sprayed with a 0.9-1.1 mil layer of BASF U28AW110 gray solvent-based primer and baked for 25 minutes at 265°F (129.4°C). The primed panels were sprayed with BC4 and flashed for 5 minutes at 140°F (60.0°C). CC3 was then applied and flashed for 10 minutes under ambient conditions. After the CC flash, the panels were baked at 210°F (98.9°C) for 20 minutes.

[0153] 4. Properties of substrates coated with multilayer coating systems 4.1 Multilayer coating system IE1 Table 4.1 summarizes some of the properties measured and / or determined by the methods defined in the Methods section.

[0154] [Table 8]

[0155] 4.2 Multilayer coating system IE2 Table 4.2 summarizes some of the properties measured and / or determined by the methods defined in the Methods section.

[0156] [Table 9]

[0157] 4.3 Multilayer coating system IE3 Table 4.3 summarizes some of the properties measured and / or determined by the methods defined in the Methods section.

[0158] [Table 10]

[0159] 4.4 Multilayer coating system IE4 After preparation, and as described in Section 3.4, after baking for 20 minutes at 210°F (98.9°C), as was the case for IE1, IE2, and IE3, the multilayer coating system IE4 present in the resulting panels was found to be tacky (uncured) and unsuitable for testing according to the same successful protocol for IE1, IE2, and IE3. In contrast to IE4, IE1, IE2, and IE3 each exhibited excellent cure (not tacky) after baking for 20 minutes at 210°F (98.9°C). In the case of IE4, sufficient cure was only achieved after 20 minutes at 285°F (140°C), a significantly higher baking temperature.

Claims

1. A method for producing a multi-layer coating system on a substrate, comprising at least steps (1), (2), and (3), (1) applying a first coating material composition to an optionally pre-coated substrate and forming a first coating film on the optionally pre-coated substrate; (2) applying a second coating material composition to the first coating film present on the substrate obtained after step (1) before curing the first coating film, and forming a second coating film adjacent to the first coating film; (3) curing the first and second coating films together, the cured second coating film being the outermost layer of the resulting multi-layer coating system; Including, wherein the first and second coating material compositions are different from each other, the first coating material composition comprises at least one polymer (P1) having a crosslinkable functional group, and the second coating material composition comprises at least one polymer (P2) having a crosslinkable functional group; wherein one of the first and second coating material compositions further comprises at least one amino resin (AR) as a crosslinking agent having crosslinkable functional groups capable of crosslinking with crosslinkable functional groups of both the polymer (P1) and the polymer (P2) before use in step (1) or (2), and the other of these two coating material compositions does not comprise any crosslinking agent before use in step (1) or (2), but comprises at least one crosslinking catalyst (CLC1) before use in step (1) or (2), which catalyst catalyzes a crosslinking reaction between the functional groups of the amino resin (AR) and the functional groups of both the polymer (P1) and the polymer (P2).

2. The method is characterized by comprising a further step (1a) and / or a further step (2a), wherein step (1a) is carried out after step (1) and before step (2), and step (2a) is carried out after step (2) and before step (3), i.e. (1a) flashing off the first coating film obtained after step (1) for 1 to 20 minutes, and then applying the second coating material composition in step (2); (2a) flashing off the second coating film obtained after step (2) for 1 to 20 minutes, followed by curing step (3); 2. The method of claim 1, comprising:

3. 3. The method according to claim 1 or 2, wherein the coating material composition selected from the first and second coating material compositions comprising at least one amino resin (AR) as a crosslinking agent before use in step (1) or (2) does not contain any crosslinking catalyst before use in step (1) or (2), or comprises at least one crosslinking catalyst (CLC2) that is the same as or different from the at least one crosslinking catalyst (CLC1) before use in step (1) or (2), the amount of the crosslinking catalyst being less than the amount of the at least one crosslinking catalyst (CLC1) based on the total weight of the coating material composition, and the crosslinking catalyst (CLC1) is present in the other of the two coating material compositions, which does not contain any crosslinking agent based on the total weight of the coating material composition before use in step (1) or (2).

4. 4. The method according to claim 1, wherein the first coating material composition comprises at least one amino resin (AR) as a crosslinking agent and at least one optional crosslinking catalyst (CLC2) that is the same as or different from the at least one crosslinking catalyst (CLC1) before use in step (1), and the second coating material composition comprises at least one crosslinking catalyst (CLC1) before use in step (2). Alternatively, the second coating material composition comprises at least one amino resin (AR) as a crosslinking agent and at least one optional crosslinking catalyst (CLC2) that is the same as or different from the at least one crosslinking catalyst (CLC1) before use in step (2), and the first coating material composition comprises at least one crosslinking catalyst (CLC1) before use in step (1).

5. 5. The method of claim 1, wherein the first coating material composition is a solvent-based or water-based coating material composition, and the second coating material composition is a solvent-based coating material composition.

6. 6. The method according to claim 1, wherein the first coating material composition is a base coat material coating composition and the second coating material composition is a clear coat coating material composition, or the first coating material composition is a primer material coating composition and the second coating material composition is a top coat coating material composition.

7. 7. The method according to any one of claims 1 to 6, wherein step (3) is carried out at a temperature of less than 110°C for 5 to 45 minutes.

8. 8. The method according to claim 1, wherein at least one amino resin (AR) used as crosslinking agent is an aminoplast resin.

9. 9. The method according to claim 1, wherein the at least one amino resin (AR) used as crosslinker has a number-average molecular weight of up to 1500 g / mol.

10. 10. The method according to any one of claims 1 to 9, characterized in that at least one amino resin (AR) is present in one of the first and second coating material compositions in an amount ranging from 10 to 40 wt. %, based on the total weight of the coating material composition.

11. 11. The method according to any one of claims 1 to 10, characterized in that at least one cross-linking catalyst (CLC1) is an unblocked sulfonic acid.

12. 12. The method according to any one of claims 1 to 11, characterized in that at least one crosslinking catalyst (CLC1) is present in one of the first and second coating material compositions in an amount in the range of 5 to 40 wt.-%, based on the total solids content of the coating material composition.

13. 13. The method according to claim 1, wherein each of the polymers (P1) and (P2) has a hydroxyl group as a crosslinkable functional group.

14. A method for using an amino resin (AR) having a crosslinkable functional group, the method comprising the steps of: The present invention relates to a coating material composition comprising a first coating material composition or a second coating material composition, both of which are different from each other, wherein the first coating material composition comprises at least one polymer (P1) having a crosslinkable functional group capable of crosslinking with the crosslinkable functional group of the amino resin (AR), and the second coating material composition comprises at least one polymer (P2) having a crosslinkable functional group also capable of crosslinking with the crosslinkable functional group of the amino resin (AR), wherein the coating material composition selected from the first and second coating material compositions in which the amino resin (AR) is not present does not comprise any crosslinking agent but comprises at least one crosslinking catalyst (CLC1), which catalyzes the crosslinking reaction between the crosslinkable functional group of the amino resin (AR) and the crosslinkable functional groups of both the polymer (P1) and the polymer (P2), and the method of use comprises: the amino resin (AR) is intended to at least partially migrate from a coating film obtained from one coating material composition selected from the first and second coating material compositions present to a coating film obtained from the other of these two coating material compositions, the migration occurring before applying the second coating material composition to the coating film obtained from the first coating material composition and then curing the first coating film to form a second coating film adjacent to the first coating film; Further, the method of use is for subsequent crosslinking with crosslinkable functional groups of both polymer (P1) and polymer (P2) catalyzed by at least a crosslinking catalyst (CLC1).

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