JP4959114B2 - Electrodeposition coating composition, electrodeposition bath management method and electrodeposition coating system - Google Patents
Electrodeposition coating composition, electrodeposition bath management method and electrodeposition coating system Download PDFInfo
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- JP4959114B2 JP4959114B2 JP2004056221A JP2004056221A JP4959114B2 JP 4959114 B2 JP4959114 B2 JP 4959114B2 JP 2004056221 A JP2004056221 A JP 2004056221A JP 2004056221 A JP2004056221 A JP 2004056221A JP 4959114 B2 JP4959114 B2 JP 4959114B2
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- Prior art keywords
- pigment
- coating composition
- electrodeposition coating
- acid
- fatty acid
- Prior art date
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- Expired - Lifetime
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- 238000004070 electrodeposition Methods 0.000 title claims description 192
- 239000008199 coating composition Substances 0.000 title claims description 122
- 238000000576 coating method Methods 0.000 title description 58
- 239000011248 coating agent Substances 0.000 title description 57
- 238000007726 management method Methods 0.000 title description 4
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- 125000002091 cationic group Chemical group 0.000 claims description 101
- 235000014113 dietary fatty acids Nutrition 0.000 claims description 81
- 239000000194 fatty acid Substances 0.000 claims description 81
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- -1 fatty acid ester Chemical class 0.000 claims description 76
- 125000000129 anionic group Chemical group 0.000 claims description 69
- 229920005989 resin Polymers 0.000 claims description 69
- 239000011347 resin Substances 0.000 claims description 69
- 150000004665 fatty acids Chemical class 0.000 claims description 60
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- 238000004519 manufacturing process Methods 0.000 claims description 58
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- 239000000203 mixture Substances 0.000 claims description 27
- 238000004062 sedimentation Methods 0.000 claims description 26
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- SMZOUWXMTYCWNB-UHFFFAOYSA-N 2-(2-methoxy-5-methylphenyl)ethanamine Chemical compound COC1=CC=C(C)C=C1CCN SMZOUWXMTYCWNB-UHFFFAOYSA-N 0.000 description 4
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- SKDZEPBJPGSFHS-UHFFFAOYSA-N n,n-bis(2-hydroxyethyl)tetradecanamide Chemical compound CCCCCCCCCCCCCC(=O)N(CCO)CCO SKDZEPBJPGSFHS-UHFFFAOYSA-N 0.000 description 1
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- 229910052698 phosphorus Inorganic materials 0.000 description 1
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- IEQIEDJGQAUEQZ-UHFFFAOYSA-N phthalocyanine Chemical compound N1C(N=C2C3=CC=CC=C3C(N=C3C4=CC=CC=C4C(=N4)N3)=N2)=C(C=CC=C2)C2=C1N=C1C2=CC=CC=C2C4=N1 IEQIEDJGQAUEQZ-UHFFFAOYSA-N 0.000 description 1
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- QORWJWZARLRLPR-UHFFFAOYSA-H tricalcium bis(phosphate) Chemical compound [Ca+2].[Ca+2].[Ca+2].[O-]P([O-])([O-])=O.[O-]P([O-])([O-])=O QORWJWZARLRLPR-UHFFFAOYSA-H 0.000 description 1
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- QXJQHYBHAIHNGG-UHFFFAOYSA-N trimethylolethane Chemical compound OCC(C)(CO)CO QXJQHYBHAIHNGG-UHFFFAOYSA-N 0.000 description 1
- UNXRWKVEANCORM-UHFFFAOYSA-I triphosphate(5-) Chemical compound [O-]P([O-])(=O)OP([O-])(=O)OP([O-])([O-])=O UNXRWKVEANCORM-UHFFFAOYSA-I 0.000 description 1
- YLOVWOJCPZDTTF-UHFFFAOYSA-N tritriacontanediamide Chemical compound NC(=O)CCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCC(N)=O YLOVWOJCPZDTTF-UHFFFAOYSA-N 0.000 description 1
- AUTOISGCBLBLBA-UHFFFAOYSA-N trizinc;diphosphite Chemical compound [Zn+2].[Zn+2].[Zn+2].[O-]P([O-])[O-].[O-]P([O-])[O-] AUTOISGCBLBLBA-UHFFFAOYSA-N 0.000 description 1
- 150000003673 urethanes Chemical class 0.000 description 1
- 229940005605 valeric acid Drugs 0.000 description 1
- 235000015112 vegetable and seed oil Nutrition 0.000 description 1
- 235000019871 vegetable fat Nutrition 0.000 description 1
- 239000008158 vegetable oil Substances 0.000 description 1
- WGPCZPLRVAWXPW-UHFFFAOYSA-N xi-Dihydro-5-octyl-2(3H)-furanone Chemical compound CCCCCCCCC1CCC(=O)O1 WGPCZPLRVAWXPW-UHFFFAOYSA-N 0.000 description 1
- GTLDTDOJJJZVBW-UHFFFAOYSA-N zinc cyanide Chemical compound [Zn+2].N#[C-].N#[C-] GTLDTDOJJJZVBW-UHFFFAOYSA-N 0.000 description 1
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- XAEWLETZEZXLHR-UHFFFAOYSA-N zinc;dioxido(dioxo)molybdenum Chemical compound [Zn+2].[O-][Mo]([O-])(=O)=O XAEWLETZEZXLHR-UHFFFAOYSA-N 0.000 description 1
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Description
本発明は、沈降安定性に優れる、顔料を含む電着塗料組成物、ならびにそれを用いた電着浴の管理方法および電着塗装システムに関する。 The present invention relates to an electrodeposition coating composition containing a pigment having excellent sedimentation stability, an electrodeposition bath management method and an electrodeposition coating system using the same.
電着塗装は、電着塗料組成物中に被塗物を電極として浸漬させ、電圧を印加することにより行なわれる塗装方法である、この方法は、複雑な形状を有する被塗物であっても細部にまで塗装を施すことができ、自動的かつ連続的に塗装することができるので、特に自動車車体等の大型で複雑な形状を有する被塗物の下塗り塗装方法として広く実用化されている。 Electrodeposition coating is a coating method performed by immersing a coating object as an electrode in an electrodeposition coating composition and applying a voltage. This method can be applied even to a coating object having a complicated shape. Since it can be applied to the details and can be applied automatically and continuously, it is widely put into practical use as an undercoating method for an object having a large and complicated shape such as an automobile body.
一般に電着塗料組成物には、多量の防錆顔料および体質顔料が、防錆効果および塗膜物性の向上を目的として加えられており、チタンホワイト(酸化チタン)などの着色顔料、隠蔽力の高いカーボンブラックなどが、必要に応じて加えられている。これらの顔料は、塗料組成物中において溶媒中に分散した状態にある。これらの顔料は一般に比重が高いものが多く、そのため電着塗料組成物中において沈降が生じやすい。例えば無機顔料を含む従来の電着塗料組成物は、ほんの数時間の静置によって無機顔料が沈降する。そして沈降した顔料は強固に凝集するため、再び撹拌を行なっても元の分散状態に戻すことは非常に困難である。このような凝集を防ぐため、電着塗料組成物を含む電着槽および補給タンクは常時撹拌が必要となり、これが塗装業者の設備およびエネルギー費用における負担となっている。 In general, a large amount of anti-rust pigments and extender pigments are added to electrodeposition paint compositions for the purpose of improving the anti-rust effect and physical properties of the coating film. Color pigments such as titanium white (titanium oxide), and hiding power High carbon black etc. are added as needed. These pigments are in a state of being dispersed in a solvent in the coating composition. Many of these pigments generally have a high specific gravity, so that precipitation tends to occur in the electrodeposition coating composition. For example, in a conventional electrodeposition coating composition containing an inorganic pigment, the inorganic pigment settles upon standing for only a few hours. And since the settled pigment aggregates strongly, it is very difficult to return to the original dispersed state even if stirring is performed again. In order to prevent such agglomeration, the electrodeposition tank and replenishment tank containing the electrodeposition coating composition need to be constantly stirred, which is a burden on the equipment and energy costs of the painter.
顔料などの沈降を防止する方法として、この顔料などの成分を省くことが考えられる。しかし、顔料などの成分を省くことによって、防食性低下などといった塗膜物性の低下が生じるおそれがある。特開平9−328641号公報(特許文献1)には、沈降量が5.0mg/時間以下であるカチオン電着塗料組成物が開示されている。このカチオン電着塗料組成物は、前述のように沈降する成分を省くことにより達成している。 As a method for preventing precipitation of pigments and the like, it can be considered to omit components such as pigments. However, by omitting components such as pigments, there is a concern that the physical properties of the coating film may be lowered, such as the corrosion resistance. JP-A-9-328641 (Patent Document 1) discloses a cationic electrodeposition coating composition having a sedimentation amount of 5.0 mg / hour or less. This cationic electrodeposition coating composition is achieved by omitting the sedimenting component as described above.
一方、電着塗料組成物の沈降安定性を高める他の方法として、例えば特定の顔料を使用する方法が挙げられる。例えば、特開平6−340832号公報(特許文献2)には、電着塗料の樹脂固形分100重量部に対して、球状の高純度アモルファスシリカ粉を0.1〜40重量部含有することを特徴とする電着塗料組成物が記載されている。この球状の高純度アモルファスシリカ粉を用いることによって、電着塗料浴中におけるチタンホワイトや防錆性顔料などの沈降を防止できると記載されている。しかしながら、この方法では5時間静置後の沈降度合を沈降性の評価方法としており、沈降防止効果としては充分と言うことはできない。 On the other hand, as another method for improving the sedimentation stability of the electrodeposition coating composition, for example, a method using a specific pigment can be mentioned. For example, JP-A-6-340832 (Patent Document 2) contains 0.1 to 40 parts by weight of spherical high-purity amorphous silica powder with respect to 100 parts by weight of resin solid content of an electrodeposition paint. A characteristic electrodeposition coating composition is described. It is described that by using this spherical high-purity amorphous silica powder, sedimentation of titanium white, rust preventive pigment, etc. in the electrodeposition paint bath can be prevented. However, in this method, the sedimentation degree after standing for 5 hours is used as a sedimentation evaluation method, and it cannot be said that the sedimentation prevention effect is sufficient.
国際公開第00/44840号パンフレット(特許文献3)には、植物油脂を酵素分解して得られた脂肪酸で変性されてなる塗料用樹脂、顔料及び水を含有することを特徴とする電着塗料組成物が記載されている。ここでは、脂肪酸は、塗料用樹脂を変性するために用いられており、顔料の分散を安定させるという本発明とは異なるものである。 International Publication No. 00/44840 pamphlet (Patent Document 3) includes an electrodeposition coating comprising a coating resin, a pigment, and water modified with a fatty acid obtained by enzymatic decomposition of vegetable oils and fats. A composition is described. Here, the fatty acid is used for modifying the resin for coating, and is different from the present invention in which the dispersion of the pigment is stabilized.
本発明は上記従来技術の問題点解決することを課題とする。より特定すれば、本発明は、顔料、特に無機顔料、を含む、沈降安定性に優れる電着塗料組成物を提供することを課題とする。 It is an object of the present invention to solve the problems of the prior art. More specifically, an object of the present invention is to provide an electrodeposition coating composition having excellent sedimentation stability, including a pigment, particularly an inorganic pigment.
本発明は、(a)脂肪酸、脂肪酸の誘導体、アミン化合物およびそれらの1種または2種以上の混合物からなる群から選択される顔料沈降防止剤、および(b)顔料を含有する電着塗料組成物を提供するものであり、これにより上記目的が達成される。 The present invention relates to (a) a fatty acid, a derivative of fatty acid, an amine compound and a pigment settling inhibitor selected from the group consisting of one or a mixture of two or more thereof, and (b) an electrodeposition coating composition containing a pigment. The object is achieved by this.
上記電着塗料組成物において、(a)脂肪酸、脂肪酸の誘導体、アミン化合物およびそれらの1種または2種以上の混合物からなる群から選択される顔料沈降防止剤、および(b)顔料は、顔料ペースト中に含まれるのが好ましい。 In the above electrodeposition coating composition, (a) a pigment settling inhibitor selected from the group consisting of fatty acids, fatty acid derivatives, amine compounds and mixtures of one or more of them, and (b) pigments are pigments It is preferably contained in the paste.
上記電着塗料組成物はカチオン性あるいはアニオン性のいずれであっても良く、カチオン性の場合には、上記成分(a)および(b)に加えて、カチオン性樹脂、ブロックポリイソシアネート硬化剤および硬化触媒を含む。アニオン性の場合は上記成分(a)および(b)に加えて、アニオン性樹脂、硬化剤および硬化触媒を含む。 The electrodeposition coating composition may be either cationic or anionic, and in the case of cationic, in addition to the components (a) and (b), a cationic resin, a block polyisocyanate curing agent, and Contains a curing catalyst. In the case of anionic, in addition to the components (a) and (b), an anionic resin, a curing agent and a curing catalyst are included.
上記脂肪酸の誘導体は、脂肪酸エステル、脂肪酸アミド化合物、あるいは脂肪酸エステルまたは脂肪酸アミド化合物のエチレンオキサイド開環付加物であってもよい。 The fatty acid derivative may be a fatty acid ester, a fatty acid amide compound, or an ethylene oxide ring-opening adduct of a fatty acid ester or a fatty acid amide compound.
上記脂肪酸は炭素数4〜22を有するのが好ましい。 The fatty acid preferably has 4 to 22 carbon atoms.
上記アミン化合物は窒素原子に炭素数4〜22のアルキル基が結合しているのが好ましい。 In the amine compound, an alkyl group having 4 to 22 carbon atoms is preferably bonded to a nitrogen atom.
前記顔料沈降防止剤(a)は、顔料100重量部に対して0.1〜20重量部の量で含むのが好適である。 The pigment settling inhibitor (a) is preferably contained in an amount of 0.1 to 20 parts by weight with respect to 100 parts by weight of the pigment.
本発明はまた、(a)脂肪酸、脂肪酸の誘導体、アミン化合物およびそれらの1種または2種以上の混合物からなる群から選択される顔料沈降防止剤、および(b)顔料を含む顔料分散ペーストを調製する調製工程、および
カチオン性樹脂、ブロックポリイソシアネート硬化剤、および該顔料分散ペーストを、水性媒体に分散させる、分散工程、
を包含する、カチオン性の電着塗料組成物の製造方法を提供する。
The present invention also provides (a) a pigment dispersion preventing paste selected from the group consisting of fatty acids, fatty acid derivatives, amine compounds and mixtures of one or more of them, and (b) a pigment dispersion paste containing a pigment. A preparation step to prepare, and a dispersion step of dispersing the cationic resin, the blocked polyisocyanate curing agent, and the pigment dispersion paste in an aqueous medium,
A method for producing a cationic electrodeposition coating composition is provided.
さらに、本発明は(a)脂肪酸、脂肪酸の誘導体、アミン化合物およびそれらの1種または2種以上の混合物からなる群から選択される顔料沈降防止剤、および(b)顔料を含む顔料分散ペーストを調製する調製工程、および
アニオン性樹脂、硬化剤、および該顔料分散ペーストを、水性媒体に分散させる、分散工程、
を包含する、アニオン性の電着塗料組成物の製造方法も提供する。
Furthermore, the present invention provides (a) a pigment dispersion preventing paste selected from the group consisting of fatty acids, fatty acid derivatives, amine compounds and mixtures of one or more of them, and (b) a pigment dispersion paste containing a pigment. A preparation step to prepare, and a dispersion step of dispersing the anionic resin, the curing agent, and the pigment dispersion paste in an aqueous medium,
A method for producing an anionic electrodeposition coating composition is also provided.
本発明では、電着塗装時には、電着浴の一部を取りだしてポンプで電着浴中に戻すことにより電着浴を循環攪拌し、電着塗装を行っていないときは該循環用ポンプを停止する電着浴管理方法であって、電着浴中の電着塗料組成物が上記のものである、電着浴の管理方法も提供する。 In the present invention, at the time of electrodeposition coating, a part of the electrodeposition bath is taken out and returned to the electrodeposition bath by a pump to circulate and stir the electrodeposition bath. When electrodeposition coating is not performed, the circulation pump is turned on. There is also provided an electrodeposition bath management method that stops, wherein the electrodeposition coating composition in the electrodeposition bath is as described above.
本発明は、さらにまた、被塗物を電着塗装するための上記電着塗料組成物を含む電着浴、電着塗装された被塗物を水洗する第一水洗浴、および該被塗物をさらに水洗する第二水洗浴、を有する電着塗装システムであって、該電着浴における電着浴の一部を取り出してポンプで元の浴中に戻す液体流による循環攪拌を、攪拌羽を用いる攪拌に切り替えることによりエネルギーが節約される、電着塗装システムも提供する。 The present invention further provides an electrodeposition bath containing the above-mentioned electrodeposition coating composition for electrodeposition-coating an object to be coated, a first water-washing bath for rinsing the electrodeposition-coated object, and the object to be coated A second water-washing bath for further washing with water, wherein a part of the electrodeposition bath in the electrodeposition bath is taken out and returned to the original bath by a pump, and the circulation stirring is performed by a stirring blade. An electrodeposition coating system is also provided in which energy is saved by switching to agitation using.
また、本発明は被塗物を電着塗装するための上記電着塗料組成物を含む電着浴、電着塗装された被塗物を水洗する第一水洗浴、および該被塗物をさらに水洗する第二水洗浴、を有する電着塗装システムであって、該第一水洗浴の液体の撹拌が攪拌羽によって行われる、電着塗装システムを提供する。 The present invention also provides an electrodeposition bath containing the above-mentioned electrodeposition coating composition for electrodeposition-coating an object to be coated, a first water-washing bath for rinsing the electrodeposition-coated object, and the object to be coated An electrodeposition coating system having a second water-washing bath for washing with water, wherein the liquid in the first water-washing bath is stirred by a stirring blade.
本発明では、被塗物を電着塗装するための上記電着塗料組成物を含む電着浴、電着塗装された被塗物を水洗する第一水洗浴、および該被塗物をさらに水洗する第二水洗浴、を有する電着塗装システムであって、該第二水洗浴の液体の撹拌が攪拌羽によって行われる、電着塗装システムも提供できる。 In the present invention, an electrodeposition bath containing the above-mentioned electrodeposition coating composition for electrodeposition-coating an article to be coated, a first water-washing bath for washing the electrodeposition-coated article with water, and further washing the article with water It is also possible to provide an electrodeposition coating system having a second water-washing bath, in which the liquid in the second water-washing bath is stirred by stirring blades.
本発明の電着塗料組成物は、長時間静置させた場合であっても沈殿物が少ない。そのため、電着塗料組成物の貯蔵における常時撹拌、および電着塗装における電着槽の常時撹拌を必要とせず、撹拌を省略したり断続的に撹拌させたりすることができる。これにより、電着塗装における塗装コストを削減することができる。また、本発明によって、無機顔料を含み、かつ顔料沈降物が少ない塗料を提供することもできる。無機顔料として例えばチタンホワイトなどの屈折率および隠蔽力の高い顔料を含む場合は、白色性が高く隠蔽力の高い電着塗膜を得ることができる電着塗料組成物を提供することができる。 The electrodeposition coating composition of the present invention has few precipitates even when left standing for a long time. Therefore, constant stirring in storage of the electrodeposition coating composition and constant stirring of the electrodeposition tank in electrodeposition coating are not required, and stirring can be omitted or intermittently stirred. Thereby, the coating cost in electrodeposition coating can be reduced. In addition, according to the present invention, it is also possible to provide a paint containing an inorganic pigment and having little pigment sediment. When a pigment having a high refractive index and a high hiding power, such as titanium white, is included as the inorganic pigment, an electrodeposition coating composition capable of obtaining an electrodeposition coating film having high whiteness and high hiding power can be provided.
本発明の電着塗料組成物は、カチオン樹脂を主樹脂として用いるカチオン電着塗料と、アニオン樹脂を主樹脂として用いるアニオン電着塗料の2種類に分類することができる。本発明の電着塗料組成物はいずれも包含する概念で用いている。まずは、カチオン電着塗料組成物に関して説明する。アニオン電着塗料組成物については、後述する。 The electrodeposition paint composition of the present invention can be classified into two types: a cationic electrodeposition paint using a cationic resin as a main resin, and an anion electrodeposition paint using an anion resin as a main resin. The electrodeposition coating composition of the present invention is used in a concept including all. First, the cationic electrodeposition coating composition will be described. The anion electrodeposition coating composition will be described later.
カチオン電着塗料組成物
本発明のカチオン電着塗料組成物は、カチオン性樹脂とブロックポリイソシアネート硬化剤とを含むバインダー樹脂、触媒を含有し、さらに(a)脂肪酸、脂肪酸の誘導体、アミン化合物およびそれらの1種または2種以上の混合物からなる群から選択される顔料沈降防止剤、および(b)顔料を含むことを特徴とする。本明細書中、「脂肪酸」と「脂肪酸の誘導体」をまとめて「脂肪酸類」と記載することもある。
Cationic electrodeposition coating composition The cationic electrodeposition coating composition of the present invention contains a binder resin containing a cationic resin and a block polyisocyanate curing agent, a catalyst, and (a) a fatty acid, a fatty acid derivative, an amine compound, and It includes a pigment anti-settling agent selected from the group consisting of one or a mixture of two or more thereof, and (b) a pigment. In the present specification, “fatty acid” and “derivative of fatty acid” are sometimes collectively referred to as “fatty acids”.
カチオン性樹脂
本発明で用いるカチオン性樹脂には、アミンで変性されたエポキシ樹脂が含まれる。このカチオン性樹脂は、特開昭54−4978号、同昭56−34186号などに記載されている公知の樹脂でよい。
Cationic Resin The cationic resin used in the present invention includes an epoxy resin modified with an amine. The cationic resin may be a known resin described in JP-A Nos. 54-4978 and 56-34186.
カチオン性樹脂は、典型的には、ビスフェノール型エポキシ樹脂のエポキシ環の全部をカチオン性基を導入し得る活性水素化合物で開環するか、または一部のエポキシ環を他の活性水素化合物で開環し、残りのエポキシ環をカチオン性基を導入し得る活性水素化合物で開環して製造される。 Cationic resins typically open all of the epoxy rings of bisphenol-type epoxy resins with active hydrogen compounds that can introduce cationic groups, or some epoxy rings with other active hydrogen compounds. And the remaining epoxy ring is opened with an active hydrogen compound capable of introducing a cationic group.
ビスフェノール型エポキシ樹脂の典型例はビスフェノールA型またはビスフェノールF型エポキシ樹脂である。前者の市販品としてはエピコート828(油化シェルエポキシ社製、エポキシ当量180〜190)、エピコート1001(同、エポキシ当量450〜500)、エピコート1010(同、エポキシ当量3000〜4000)などがあり、後者の市販品としてはエピコート807、(同、エポキシ当量170)などがある。 A typical example of the bisphenol type epoxy resin is a bisphenol A type or bisphenol F type epoxy resin. As the former commercial product, there are Epicoat 828 (manufactured by Yuka Shell Epoxy Co., Epoxy Equivalent 180-190), Epicoat 1001 (Same, Epoxy Equivalent 450-500), Epicoat 1010 (Same, Epoxy Equivalent 3000-4000) Examples of the latter commercially available product include Epicoat 807 (same as above, epoxy equivalent 170).
カチオン性基を導入し得る活性水素化合物としては1級アミン、2級アミン、3級アミンの酸塩、スルフィド及び酸混合物がある。本発明の1級、2級又は/及び3級アミノ基含有エポキシ樹脂を調製するためには1級アミン、2級アミン、3級アミンの酸塩をカチオン性基を導入し得る活性水素化合物として用いる。 Active hydrogen compounds that can introduce a cationic group include primary amines, secondary amines, tertiary amine acid salts, sulfides and acid mixtures. In order to prepare the primary, secondary or / and tertiary amino group-containing epoxy resin of the present invention, an acid salt of a primary amine, secondary amine, or tertiary amine is used as an active hydrogen compound capable of introducing a cationic group. Use.
具体例としては、ブチルアミン、オクチルアミン、ジエチルアミン、ジブチルアミン、メチルブチルアミン、モノエタノールアミン、ジエタノールアミン、N−メチルエタノールアミン、トリエチルアミン塩酸塩、N,N−ジメチルエタノールアミン酢酸塩、ジエチルジスルフィド・酢酸混合物などのほか、アミノエチルエタノールアミンのケチミン、ジエチレントリアミンのジケチミンなどの1級アミンをブロックした2級アミンがある。アミン類は複数のものを併用して用いてもよい。 Specific examples include butylamine, octylamine, diethylamine, dibutylamine, methylbutylamine, monoethanolamine, diethanolamine, N-methylethanolamine, triethylamine hydrochloride, N, N-dimethylethanolamine acetate, diethyl disulfide / acetic acid mixture, etc. In addition, there are secondary amines in which primary amines such as aminoethylethanolamine ketimine and diethylenetriamine diketimine are blocked. A plurality of amines may be used in combination.
ブロックポリイソシアネート硬化剤
カチオン電着塗料組成物には、ポリイソシアネートをブロック剤でブロックして得られたブロックポリイソシアネート硬化剤が含まれる。ここでポリイソシアネートとは、1分子中にイソシアネート基を2個以上有する化合物をいう。ポリイソシアネートとしては、例えば、脂肪族系、脂環式系、芳香族系および芳香族−脂肪族系等のうちのいずれのものであってもよい。
The blocked polyisocyanate curing agent cationic electrodeposition coating composition contains a blocked polyisocyanate curing agent obtained by blocking polyisocyanate with a blocking agent. Here, the polyisocyanate means a compound having two or more isocyanate groups in one molecule. The polyisocyanate may be, for example, any of aliphatic, alicyclic, aromatic and aromatic-aliphatic.
ポリイソシアネートの具体例には、トリレンジイソシアネート(TDI)、ジフェニルメタンジイソシアネート(MDI)、p−フェニレンジイソシアネート、及びナフタレンジイソシアネート等のような芳香族ジイソシアネート;ヘキサメチレンジイソシアネート(HDI)、2,2,4−トリメチルヘキサンジイソシアネート、及びリジンジイソシアネート等のような炭素数3〜12の脂肪族ジイソシアネート;1,4−シクロヘキサンジイソシアネート(CDI)、イソホロンジイソシアネート(IPDI)、4,4´−ジシクロヘキシルメタンジイソシアネート(水添MDI)、メチルシクロヘキサンジイソシアネート、イソプロピリデンジシクロヘキシル−4,4´−ジイソシアネート、及び1,3−ジイソシアナトメチルシクロヘキサン(水添XDI)、水添TDI、2,5−もしくは2,6−ビス(イソシアナートメチル)−ビシクロ[2.2.1]ヘプタン(ノルボルナンジイソシアネートとも称される。)等のような炭素数5〜18の脂環式ジイソシアネート;キシリレンジイソシアネート(XDI)、及びテトラメチルキシリレンジイソシアネート(TMXDI)等のような芳香環を有する脂肪族ジイソシアネート;これらのジイソシアネートの変性物(ウレタン化物、カーボジイミド、ウレトジオン、ウレトイミン、ビューレット及び/又はイソシアヌレート変性物);等があげられる。これらは、単独で、または2種以上併用することができる。 Specific examples of polyisocyanates include aromatic diisocyanates such as tolylene diisocyanate (TDI), diphenylmethane diisocyanate (MDI), p-phenylene diisocyanate, and naphthalene diisocyanate; hexamethylene diisocyanate (HDI), 2,2,4- C3-C12 aliphatic diisocyanates such as trimethylhexane diisocyanate and lysine diisocyanate; 1,4-cyclohexane diisocyanate (CDI), isophorone diisocyanate (IPDI), 4,4'-dicyclohexylmethane diisocyanate (hydrogenated MDI) Methylcyclohexane diisocyanate, isopropylidene dicyclohexyl-4,4'-diisocyanate, and 1,3-diisocyanatomethyl cyclohexyl Carbon such as xane (hydrogenated XDI), hydrogenated TDI, 2,5- or 2,6-bis (isocyanatomethyl) -bicyclo [2.2.1] heptane (also referred to as norbornane diisocyanate). Aliphatic diisocyanates having a number of 5 to 18; aliphatic diisocyanates having aromatic rings such as xylylene diisocyanate (XDI) and tetramethylxylylene diisocyanate (TMXDI); modified products of these diisocyanates (urethanes, carbodiimides, Uretdione, uretoimine, burette and / or isocyanurate modified product); and the like. These may be used alone or in combination of two or more.
ポリイソシアネートをエチレングリコール、プロピレングリコール、トリメチロールプロパン、ヘキサントリオールなどの多価アルコールとNCO/OH比2以上で反応させて得られる付加体ないしプレポリマーもブロックポリイソシアネート硬化剤として使用してよい。 Adducts or prepolymers obtained by reacting polyisocyanates with polyhydric alcohols such as ethylene glycol, propylene glycol, trimethylolpropane and hexanetriol at an NCO / OH ratio of 2 or more may also be used as the block polyisocyanate curing agent.
脂肪族ポリイソシアネート又は脂環式ポリイソシアネートの好ましい具体例には、ヘキサメチレンジイソシアネート、水添TDI、水添MDI、水添XDI、IPDI、ノルボルナンジイソシアネート、それらの二量体(ビウレット)、三量体(イソシアヌレート)等が挙げられる。 Preferred specific examples of the aliphatic polyisocyanate or alicyclic polyisocyanate include hexamethylene diisocyanate, hydrogenated TDI, hydrogenated MDI, hydrogenated XDI, IPDI, norbornane diisocyanate, their dimer (biuret), and trimer. (Isocyanurate) etc. are mentioned.
ブロック剤は、ポリイソシアネート基に付加し、常温では安定であるが解離温度以上に加熱すると遊離のイソシアネート基を再生し得るものである。 The blocking agent is added to a polyisocyanate group and is stable at ordinary temperature, but can regenerate a free isocyanate group when heated to a temperature higher than the dissociation temperature.
ブロック剤としては、低温硬化(160℃以下)を望む場合には、ε−カプロラクタム、δ−バレロラクタム、γ−ブチロラクタムおよびβ−プロピオラクタムなどのラクタム系ブロック剤、及びホルムアルドキシム、アセトアルドキシム、アセトキシム、メチルエチルケトオキシム、ジアセチルモノオキシム、シクロヘキサンオキシムなどのオキシム系ブロック剤を使用するのが良い。 As the blocking agent, when low temperature curing (160 ° C. or lower) is desired, lactam blocking agents such as ε-caprolactam, δ-valerolactam, γ-butyrolactam and β-propiolactam, and formaldoxime, acetoald It is preferable to use an oxime blocking agent such as oxime, acetoxime, methyl ethyl ketoxime, diacetyl monooxime, and cyclohexane oxime.
顔料(b)
本発明のカチオン電着塗料組成物は、一般的に用いられる顔料を含有する。顔料として、無機顔料、有機顔料、カーボンブラックまたはそれらの組合せを含有させる。無機顔料として、例えば、チタンホワイト、カーボンブラック及びベンガラのような着色顔料、カオリン、タルク、ケイ酸アルミニウム、炭酸カルシウム、マイカ、クレー及びシリカのような体質顔料、リン酸亜鉛、リン酸鉄、リン酸アルミニウム、リン酸カルシウム、亜リン酸亜鉛、シアン化亜鉛、酸化亜鉛、トリポリリン酸アルミニウム、モリブデン酸亜鉛、モリブデン酸アルミニウム、モリブデン酸カルシウム及びリンモリブデン酸アルミニウム、リンモリブデン酸アルミニウム亜鉛のような防錆顔料等が挙げられる。本明細書中で「有機顔料」とは、無機顔料と対比する概念で用いる。有機顔料の例としては、フタロシアニンブルー、フタロシアニングリーン、モノアゾイエロー、ジスアゾイエロー、ベンズイミダゾロンエロー、キナクリドンレッド、モノアゾレッド、ボリアゾレッド、またはベリレンレッド等が挙げられる。
Pigment (b)
The cationic electrodeposition coating composition of the present invention contains a commonly used pigment. As the pigment, an inorganic pigment, an organic pigment, carbon black or a combination thereof is contained. As inorganic pigments, for example, colored pigments such as titanium white, carbon black and bengara, extender pigments such as kaolin, talc, aluminum silicate, calcium carbonate, mica, clay and silica, zinc phosphate, iron phosphate, phosphorus Anti-corrosive pigments such as aluminum phosphate, calcium phosphate, zinc phosphite, zinc cyanide, zinc oxide, aluminum tripolyphosphate, zinc molybdate, aluminum molybdate, calcium molybdate and aluminum phosphomolybdate, aluminum phosphomolybdate Is mentioned. In the present specification, the “organic pigment” is used in the concept of contrasting with an inorganic pigment. Examples of organic pigments include phthalocyanine blue, phthalocyanine green, monoazo yellow, disazo yellow, benzimidazolone yellow, quinacridone red, monoazo red, boriazo red, and berylene red.
本発明において、上記いずれの顔料も用いることができる。これらは単独で用いてもよく、また、2種以上を併用して用いてもよい。例えば着色顔料である酸化チタンを用いることによって、白色性が高く隠蔽力の高い電着塗膜を得ることができ、かつ沈降安定性に優れる電着塗料組成物を製造することができる。また、例えば、体質顔料であるシリカまたはカオリンを用いることによって、ハジキ防止、耐チッピング性、塗膜硬度、耐候性、付着性等を向上させることができる他、防錆性も向上させた塗膜物性・性能に優れる電着塗膜を得ることができ、かつ、沈降安定性に優れる電着塗料組成物を製造することができる。さらに、例えば、防錆顔料であるリン酸アルミニウムまたはモリブデン酸カルシウムを用いることによって、塗膜の防錆性を向上させた塗膜物性に優れる電着塗膜を得ることができ、かつ、沈降安定性に優れるカチオン電着塗料組成物を製造することができる。 In the present invention, any of the above pigments can be used. These may be used alone or in combination of two or more. For example, by using titanium oxide which is a color pigment, an electrodeposition coating composition having high whiteness and high hiding power can be obtained, and an electrodeposition coating composition having excellent sedimentation stability can be produced. In addition, for example, by using silica or kaolin as an extender pigment, it is possible to improve repellency prevention, chipping resistance, coating film hardness, weather resistance, adhesion, etc., and coating film with improved rust prevention properties. An electrodeposition coating film having excellent physical properties and performance can be obtained, and an electrodeposition coating composition having excellent sedimentation stability can be produced. Furthermore, for example, by using aluminum phosphate or calcium molybdate that is a rust preventive pigment, it is possible to obtain an electrodeposited coating film that has improved coating film rust prevention properties and excellent coating physical properties, and is stable in sedimentation. A cationic electrodeposition coating composition having excellent properties can be produced.
顔料は、一般に、カチオン電着塗料組成物の全固形分に対して下限1重量%、上限60重量%を占める量でカチオン電着塗料組成物に含有される。上記上限は30重量%であるのが好ましい。 The pigment is generally contained in the cationic electrodeposition coating composition in an amount that occupies a lower limit of 1% by weight and an upper limit of 60% by weight with respect to the total solid content of the cationic electrodeposition coating composition. The upper limit is preferably 30% by weight.
硬化触媒
本発明のカチオン電着塗料組成物では、硬化触媒を加えて、ブロックポリイソシアネート硬化剤のブロック剤の解離を促進させることができる。本発明で使用する硬化触媒としては、硬化剤のブロック剤の解離を促進させるものであれば特に限定されないが、代表的な触媒としては、錫触媒が挙げられる。錫触媒としては、ジブチル錫オキサイド、ジオクチル錫オキサイド、モノブチル錫オキサイドおよびそれらの混合物等の固体触媒、ジブチル錫ジラウレート等の液状錫触媒、およびそれらの混合物などが挙げられる。
Curing Catalyst In the cationic electrodeposition coating composition of the present invention, a curing catalyst can be added to promote dissociation of the blocking agent of the blocked polyisocyanate curing agent. The curing catalyst used in the present invention is not particularly limited as long as it promotes dissociation of the blocking agent of the curing agent, and a typical catalyst includes a tin catalyst. Examples of the tin catalyst include solid catalysts such as dibutyltin oxide, dioctyltin oxide, monobutyltin oxide and mixtures thereof, liquid tin catalysts such as dibutyltin dilaurate, and mixtures thereof.
上記硬化触媒は、電着塗料中の樹脂固形分に対し0.5〜10質量%、好ましくは1〜5質量%の量で配合する。 The said curing catalyst is mix | blended in the quantity of 0.5-10 mass% with respect to the resin solid content in an electrodeposition coating material, Preferably it is 1-5 mass%.
カチオン性アクリル樹脂
本発明のカチオン電着塗料組成物では、カチオン性アクリル樹脂を含むのが好ましい。これを含めることによって、無機顔料の含有量が少ない場合に生じうる油ハジキ性の低下を防止することができるからである。カチオン性アクリル樹脂は、分子内に複数のオキシラン環を含んでいるアクリル共重合体とアミンとの開環付加反応によってつくることができる。このようなアクリル重合体は、(i)グリシジル(メタ)アクリレートと、(ii)ヒドロキシル基含有アクリルモノマー、例えば2−ヒドロキシエチル(メタ)アクリレート、2−ヒドロキシプロピル(メタ)アクリレート、プラクセルFAおよびFMシリーズとして知られる2−ヒドロキシエチル(メタ)アクリレートとカプロラクトンとの付加反応生成物と、(iii)その他のアクリル系および/または非アクリル系モノマーを共重合することによって得られる。その他のアクリル系および非アクリル系モノマーの例は、メチル(メタ)アクリレート、エチル(メタ)アクリレート、n−プロピル(メタ)アクリレート、イソプロピル(メタ)アクリレート、n−ブチル(メタ)アクリレート、イソブチル(メタ)アクリレート、t−ブチル(メタ)アクリレート、シクロヘキシル(メタ)アクリレート、2−エチルヘキシル(メタ)アクリレート、ラウリル(メタ)アクリレート、スチレン、ビニルケトン、α−メチルスチレン、(メタ)アクリロニトリル、(メタ)アクリルアミド、酢酸ビニルなどである。
Cationic Acrylic Resin The cationic electrodeposition coating composition of the present invention preferably contains a cationic acrylic resin. By including this, it is possible to prevent a decrease in oil repellency that may occur when the content of the inorganic pigment is low. The cationic acrylic resin can be produced by a ring-opening addition reaction between an acrylic copolymer containing a plurality of oxirane rings in the molecule and an amine. Such acrylic polymers include (i) glycidyl (meth) acrylate and (ii) hydroxyl group-containing acrylic monomers such as 2-hydroxyethyl (meth) acrylate, 2-hydroxypropyl (meth) acrylate, Plaxel FA and FM It is obtained by copolymerizing an addition reaction product of 2-hydroxyethyl (meth) acrylate and caprolactone known as a series with (iii) other acrylic and / or non-acrylic monomers. Examples of other acrylic and non-acrylic monomers are methyl (meth) acrylate, ethyl (meth) acrylate, n-propyl (meth) acrylate, isopropyl (meth) acrylate, n-butyl (meth) acrylate, isobutyl (meth) ) Acrylate, t-butyl (meth) acrylate, cyclohexyl (meth) acrylate, 2-ethylhexyl (meth) acrylate, lauryl (meth) acrylate, styrene, vinyl ketone, α-methylstyrene, (meth) acrylonitrile, (meth) acrylamide, Such as vinyl acetate.
このオキシ環含有アクリル樹脂は、エポキシ樹脂のオキシラン環をアミンで開環してカチオン性基を導入するのと全く同様に、そのオキシラン環の全部を1級アミン、2級アミンまたは3級アミン酸塩との反応によって開環し、カチオン性アクリル樹脂とすることができる。 This oxy ring-containing acrylic resin is composed of a primary amine, a secondary amine or a tertiary amine acid in the same manner as when the oxirane ring of an epoxy resin is opened with an amine to introduce a cationic group. The ring can be opened by reaction with a salt to form a cationic acrylic resin.
他の方法として、アミノ基を有するアクリルモノマーを他のモノマーと共重合することによって直接カチオン性アクリル樹脂をつくることができる。この場合は、先にオキシラン環含有アクリル樹脂の製造に用いたグリシジル(メタ)アクリレートの代りにN,N−ジメチルアミノエチル(メタ)アクリレート、N,N−ジ−t−ブチルアミノエチル(メタ)アクリレートなどのアミノ基含有アクリルモノマーを使用し、これをヒドロキシル基含有アクリルモノマーおよび他のアクリル系および/または非アクリル系モノマーと共重合することによってカチオン性アクリル樹脂が直接得られる。 As another method, a cationic acrylic resin can be directly produced by copolymerizing an acrylic monomer having an amino group with another monomer. In this case, N, N-dimethylaminoethyl (meth) acrylate, N, N-di-t-butylaminoethyl (meth) instead of glycidyl (meth) acrylate previously used for the production of the oxirane ring-containing acrylic resin. Cationic acrylic resins are obtained directly by using acrylic monomers containing amino groups such as acrylates and copolymerizing them with acrylic monomers containing hydroxyl groups and other acrylic and / or non-acrylic monomers.
カチオン性アクリル樹脂は、重合体の数平均分子量が1,000〜20,000、好ましくは2,000〜10,000、より好ましくは5,000〜10,000の範囲内になるように常法によって前記モノマーを共重合することによって得られる。 The cationic acrylic resin is a conventional method so that the number average molecular weight of the polymer is in the range of 1,000 to 20,000, preferably 2,000 to 10,000, more preferably 5,000 to 10,000. Can be obtained by copolymerizing the monomers.
カチオン性アクリル樹脂の配合量は、電着塗料中の樹脂固形分100重量部に対し10〜100重量部である。 The compounding quantity of a cationic acrylic resin is 10-100 weight part with respect to 100 weight part of resin solid content in an electrodeposition coating material.
顔料沈降防止剤(a)
本発明のカチオン電着塗料組成物は、脂肪酸、脂肪酸の誘導体(両方あわせて脂肪酸類と呼ぶ。)、アミン化合物およびそれらの1種または2種以上の混合物からなる群から選択される顔料沈降防止剤を含有する。本発明においては、顔料沈降防止剤(a)を電着塗料組成物に加えることによって、塗料組成物中に含まれる顔料の分散安定性が向上する。そして、無機顔料を含む電着塗料組成物であっても、電着塗料を静置しておいても顔料沈降物が少ない塗料組成物を製造することができる。
Pigment settling inhibitor (a)
The cationic electrodeposition coating composition of the present invention is an anti-settling pigment pigment selected from the group consisting of fatty acids, fatty acid derivatives (both are referred to as fatty acids), amine compounds and mixtures of one or more of them. Contains agents. In the present invention, the dispersion stability of the pigment contained in the coating composition is improved by adding the pigment anti-settling agent (a) to the electrodeposition coating composition. And even if it is an electrodeposition coating composition containing an inorganic pigment, a coating composition with few pigment deposits can be manufactured even if an electrodeposition coating is left still.
脂肪酸類とは、上記の通り、脂肪酸またはその誘導体である。脂肪酸として、例えば、直鎖飽和脂肪酸、分岐飽和脂肪酸、不飽和脂肪酸が含まれる。また脂肪酸の誘導体として、例えば、上記脂肪酸を、アルコール、多価アルコール(グリセリン、エチレングリコール、ポリエチレングリコール等)で変性した脂肪酸エステル、エチレンオキサイドまたはプロピレンオキサイドで変性した脂肪酸エチレンオキサイド付加物または脂肪酸プロピレンオキサイド付加物、アミン化合物で変性した脂肪酸アミド化合物、および多官能脂肪酸が含まれる。これらの脂肪酸エステルまたは脂肪酸アミド化合物には、エチレンオキサイドが開環付加したもの(エチレンオキサイド開環付加物)も含まれる。これらの脂肪酸類は、分子の骨格中に不飽和結合、エーテル結合、エステル結合等の化学結合、水酸基、アミノ基、カルボニル基等の官能基、酸素、窒素、イオウ、ハロゲンなどのヘテロ原子を含んでいてもよい。また多官能カルボン酸なども、脂肪酸誘導体に含まれる。脂肪酸の誘導体として、脂肪酸エステル、脂肪酸アミド化合物およびこれらのエチレンオキサイド開環付加物を用いるのがより好ましい。 The fatty acids are fatty acids or derivatives thereof as described above. Examples of fatty acids include linear saturated fatty acids, branched saturated fatty acids, and unsaturated fatty acids. Examples of fatty acid derivatives include fatty acid esters obtained by modifying the above fatty acids with alcohols, polyhydric alcohols (glycerin, ethylene glycol, polyethylene glycol, etc.), fatty acid ethylene oxide adducts or fatty acid propylene oxides modified with ethylene oxide or propylene oxide. Adducts, fatty acid amide compounds modified with amine compounds, and polyfunctional fatty acids are included. These fatty acid esters or fatty acid amide compounds also include those obtained by ring-opening addition of ethylene oxide (ethylene oxide ring-opening adduct). These fatty acids contain chemical bonds such as unsaturated bonds, ether bonds and ester bonds, functional groups such as hydroxyl groups, amino groups and carbonyl groups, and heteroatoms such as oxygen, nitrogen, sulfur and halogen in the molecular skeleton. You may go out. Polyfunctional carboxylic acids and the like are also included in the fatty acid derivatives. As fatty acid derivatives, it is more preferable to use fatty acid esters, fatty acid amide compounds, and these ethylene oxide ring-opening adducts.
本発明で使用される脂肪酸類において、好ましくは炭素数4〜22の脂肪酸およびその誘導体であり、より好ましくは炭素数7〜20の脂肪酸およびその誘導体である。 The fatty acids used in the present invention are preferably fatty acids having 4 to 22 carbon atoms and derivatives thereof, more preferably fatty acids having 7 to 20 carbon atoms and derivatives thereof.
具体的な脂肪酸類として、例えば以下の化合物が挙げられる:
(1)直鎖飽和脂肪酸
アラキジン酸、トリコサン酸、ベヘニン酸、ヘンエイコサン酸、エイコサン酸、ノナデカン酸、ステアリン酸、ヘプタデカン酸、パルミチン酸、ペンタデカン酸、ミリスチン酸、トリデカン酸、ラウリン酸、カプリン酸、カプリル酸、オクタン酸、ヘプタン酸、ヘキサン酸、吉草酸、酪酸等、花王社製精製ステアリン酸(450V、550V、700V)等;
(2)分岐飽和脂肪酸
イソステアリン酸、メチルテトラデカン酸、メチルヘプタデカン酸、メチルオクタデカン酸、イソ吉草酸等;
(3)不飽和脂肪酸
オレイン酸、リシノール酸、リノール酸、リノレン酸、エレオステアリン酸、エライジン酸、パルミトレイン酸、アラキドン酸、ウンデセン酸、ソルビン酸、クロトン酸等;
(4)多官能カルボン酸
スベリン酸、アゼライン酸、セバシン酸、ブラシル酸、フタル酸、ドデカン二酸、テトラヒドロフタル酸、ヘキサヒドロフタル酸、テトラブロムフタル酸、テトラクロルフタル酸、3−tert−ブチルアジピン酸、トリメリット酸、ピロメリット酸等;
(5)ヘテロ原子含有脂肪酸
ヘキシロキシ酢酸、ジメチロールプロピオン酸、ジメチロールブタン酸、サリチル酸、安息香酸、p−ブトキシ安息香酸、N−アセチルグリシン、N−アセチル−β−アラニン、チオクト酸等;
(6)脂肪酸エステル(アルコールエステル系)
ライオン社製カデナックス(GS-90,SO-80C)、花王社製レオドール(SP-L10、SP-P10,SP-S10V,SP-S30V、AS-10、AO-10、AO-15V)、花王社製レオドールスーパーSP-L10、花王社製エマゾール(L-10(F)、P-10(F)、S-10V、O-10V)等;
(7)脂肪酸エステル(エチレングリコール、ポリエチレングリコールエステル系)
ライオン社製リオノン(DT-600S,DEH-40)、旭電化工業社製アデカエストール(OEG-102,OEG-106)等;
(8)脂肪酸メチルエステル(エチレンオキサイド、プロピレンオキサイド付加系)
ライオン社製レオファット(LA-110M-95,OC-0503M)、花王社製エマノーン(1112,3199,3299,4110,CH-25, CH-40, CH-60(K), CH-80)等
(9)脂肪酸エチレンオキサイド付加物
ライオン社製エソファット(O/15,O/20,60/15)、旭電化工業社製アデカエストール(TL-144,TL-161,TL-162,S-60,S-80,T-81,T-82)、花王社製レオドール(TW-L120, TW-L106, TW-P120, TW-S120V, TW-S106, TW-S320V, TW-O120V, TW-O106V, TW-O320V, TW-IS399C, 430,440,460)、花王社製レオドールスーパー TW-L120等;
(10)脂肪酸エステル(グリセリンエステル系)
花王社製エキセルT-95,VS-95,O-95R,200,300,122V,P-40S)、花王社製レオドール(MS-50,MS-60,MO-60,MS165V)等
(11)脂肪酸アミド化合物である飽和脂肪酸モノアミド化合物
ラウリン酸アミド、ステアリン酸アミド、パルミチン酸アミド、カプロン酸アミド、カプリル酸アミド、カプリン酸アミド、ミリスチン酸アミド、ステアリン酸アミド、ベヘン酸アミド、ヒドロキシステアリン酸アミド等;
(12)脂肪酸アミド化合物である不飽和脂肪酸モノアミド
オレイン酸アミド、エルカ酸アミド、リシノール酸アミド、パルミチン酸アミド、ベヘン酸アミド、ブラシジン酸アミド、エシル酸アミド、リノール酸アミド、リノレン酸アミド、米糖脂肪酸アミド、ヤシ脂肪酸アミド等、これらの工業製品として、例えば、花王社製カオーワックス(EB-G、EB-P、EB-FF、85-P、220、230-2)、花王社製脂肪酸アマイドS, T, O-N, E)、旭電化工業社製アデカソールYAなどが含まれる;
(13)脂肪酸アミド化合物である飽和脂肪酸ビスアミド類
メチレンビスステアリン酸アミド、エチレンビスカプリン酸アミド、エチレンビスラウリン酸アミド、エチレンビスステアリン酸アミド、エチレンビスイソステアリン酸アミド、エチレンビスヒドロキシステアリン酸アミド、エチレンビスベヘン酸アミド、ヘキサメチレンビスステアリン酸アミド、ヘキサメチレンビスベヘン酸アミド、ヘキサメチレンビスヒドロキシステアリン酸アミド、N,N'−ジステアリルアジピン酸アミド、N,N'−ジステアリルセバシン酸アミド、メチレンビスパルミチン酸アミド、エチレンビスパルミチン酸アミド、メチレンビスベヘン酸アミド、エチレンビスベヘン酸アミド、ヘキサエチレンビスパルミチン酸アミド等;
(14)脂肪酸アミド化合物である不飽和脂肪酸ビスアミド類
エチレンビスオレイン酸アミド、ヘキサメチレンビスオレイン酸アミド、N,N'−ジオレイルアジピン酸アミド、N,N'−ジオレイルセバシン酸アミド等;
(15)脂肪酸アミド化合物である置換アミド類
N−ステアリルステアリン酸アミド、N−オレイルオレイン酸アミド、N−ステアリルオレイン酸アミド、N−オレイルステアリン酸アミド、N−ステアリルエルカ酸アミド、N−オレイルパルミチン酸アミド等;
(16)脂肪酸アミド化合物である芳香族ビスアミド類
メチロールステアリン酸アミド類;メチロールベヘン酸アミド等のメチロールアミド類、N,N−ジステアリルイソフタール酸アミド、メタキシリレンビスステアリン酸アミド等;
(18)脂肪酸アミド化合物である分岐型アミド類
N.N´−2−ヒドロキシエチルステアリン酸アミド、N.N´−エチレンビスオレイン酸アミド、N.N´−キシレンビスステアリン酸アミド、N.N´−ジオレイルアジピン酸アミド、N.N´−ジオレイルセバシン酸アミド、N.N´−ジステアリルイソフタル酸アミド等;
(19)脂肪酸アミド化合物であるアルカノールアミド類
ヤシ油脂肪酸モノエタノールアミド、ラウリン酸モノエタノールアミド、ミリスチン酸モノエタノ−ルアミド、オレイン酸モノエタノールアミド、ヤシ油脂肪酸ジエタノールアミド、ラウリン酸ジエタノールアミド、ミリスチン酸ジエタノールアミド、オレイン酸ジエタノールアミド、ヤシ油脂肪酸モノプロパノールアミド、ラウリン酸モノプロパノールアミド、ミリスチン酸モノプロパノールアミド、オレイン酸モノプロパノールアミド、ポリオキシアルキレンアルカノールアミドなど、工業製品としてライオン社製アーマイド(O,HT)、ライオン社製アーモスリップ(CP,E,E-Y)など;
等が挙げられるが、これらに限るものではない。
Specific fatty acids include, for example, the following compounds:
(1) linear saturated fatty acid arachidic acid, tricosanoic acid, behenic acid, heneicosanoic acid, eicosanoic acid, nonadecanoic acid, stearic acid, heptadecanoic acid, palmitic acid, pentadecanoic acid, myristic acid, tridecanoic acid, lauric acid, capric acid, capryl Acid, octanoic acid, heptanoic acid, hexanoic acid, valeric acid, butyric acid, etc., refined stearic acid (450V, 550V, 700V), etc. manufactured by Kao Corporation;
(2) Branched saturated fatty acid isostearic acid, methyltetradecanoic acid, methylheptadecanoic acid, methyloctadecanoic acid, isovaleric acid and the like;
(3) unsaturated fatty acid oleic acid, ricinoleic acid, linoleic acid, linolenic acid, eleostearic acid, elaidic acid, palmitoleic acid, arachidonic acid, undecenoic acid, sorbic acid, crotonic acid and the like;
(4) Multifunctional carboxylic acid suberic acid, azelaic acid, sebacic acid, brassylic acid, phthalic acid, dodecanedioic acid, tetrahydrophthalic acid, hexahydrophthalic acid, tetrabromophthalic acid, tetrachlorophthalic acid, 3-tert-butyl Adipic acid, trimellitic acid, pyromellitic acid, etc .;
(5) Hetero atom-containing fatty acid hexyloxyacetic acid, dimethylolpropionic acid, dimethylolbutanoic acid, salicylic acid, benzoic acid, p-butoxybenzoic acid, N-acetylglycine, N-acetyl-β-alanine, thioctic acid and the like;
(6) Fatty acid ester (alcohol ester type)
Lion's Kadenax (GS-90, SO-80C), Kao's Rheodor (SP-L10, SP-P10, SP-S10V, SP-S30V, AS-10, AO-10, AO-15V), Kao Rheodor Super SP-L10 manufactured by Kao, Emazol manufactured by Kao Corporation (L-10 (F), P-10 (F), S-10V, O-10V), etc .;
(7) Fatty acid ester (ethylene glycol, polyethylene glycol ester type)
Lion Rionon (DT-600S, DEH-40), Asahi Denka Kogyo Adekaestor (OEG-102, OEG-106), etc .;
(8) Fatty acid methyl ester (ethylene oxide, propylene oxide addition system)
Lion Leo Fat (LA-110M-95, OC-0503M), Kao Emanon (1112,3199,3299,4110, CH-25, CH-40, CH-60 (K), CH-80), etc. (9) Fatty acid ethylene oxide adducts Lion's Esophat (O / 15, O / 20,60 / 15), Asahi Denka Kogyo's Adekaestor (TL-144, TL-161, TL-162, S-60, S-80, T-81, T-82), Kao Rheodor (TW-L120, TW-L106, TW-P120, TW-S120V, TW-S106, TW-S320V, TW-O120V, TW-O106V, TW-O320V, TW-IS399C, 430,440,460), Kao's Leodoll Super TW-L120, etc .;
(10) Fatty acid ester (glycerin ester type)
(11) Fatty acid amide compounds such as Kao's Exel T-95, VS-95, O-95R, 200, 300, 122V, P-40S) and Kao's Rheodor (MS-50, MS-60, MO-60, MS165V) A saturated fatty acid monoamide compound that is lauric acid amide, stearic acid amide, palmitic acid amide, caproic acid amide, caprylic acid amide, capric acid amide, myristic acid amide, stearic acid amide, behenic acid amide, hydroxystearic acid amide and the like;
(12) Unsaturated fatty acid monoamide oleic acid amide, erucic acid amide, ricinoleic acid amide, palmitic acid amide, behenic acid amide, brassinic acid amide, esylic acid amide, linoleic acid amide, linolenic acid amide, rice sugar Examples of these industrial products such as fatty acid amide and palm fatty acid amide include Kao wax (EB-G, EB-P, EB-FF, 85-P, 220, 230-2) manufactured by Kao Corporation, and fatty acid amide manufactured by Kao Corporation. S, T, ON, E), Adekasol YA manufactured by Asahi Denka Kogyo Co., Ltd. and the like;
(13) Saturated fatty acid bisamides that are fatty acid amide compounds, methylene bis-stearic acid amide, ethylene bis-capric acid amide, ethylene bis-lauric acid amide, ethylene bis-stearic acid amide, ethylene bis-isostearic acid amide, ethylene bis-hydroxystearic acid amide, ethylene Bisbehenic acid amide, hexamethylene bisstearic acid amide, hexamethylene bisbehenic acid amide, hexamethylene bishydroxystearic acid amide, N, N′-distearyl adipic acid amide, N, N′-distearyl sebacic acid amide, methylene Bispalmitic acid amide, ethylene bispalmitic acid amide, methylene bisbehenic acid amide, ethylene bisbehenic acid amide, hexaethylene bispalmitic acid amide, etc .;
(14) Unsaturated fatty acid bisamides that are fatty acid amide compounds, ethylene bisoleic acid amide, hexamethylene bisoleic acid amide, N, N′-dioleyl adipic acid amide, N, N′-dioleyl sebacic acid amide, and the like;
(15) Substituted amides which are fatty acid amide compounds N-stearyl stearic acid amide, N-oleyl oleic acid amide, N-stearyl oleic acid amide, N-oleyl stearic acid amide, N-stearyl erucic acid amide, N-oleyl palmitic acid Acid amides;
(16) Aromatic bisamides methylol stearic acid amides which are fatty acid amide compounds; methylol amides such as methylol behenic acid amide, N, N-distearylisophthalic acid amide, metaxylylene bis stearic acid amide;
(18) Branched amides which are fatty acid amide compounds N′-2-hydroxyethyl stearamide, N.I. N'-ethylenebisoleic acid amide, N.I. N'-xylenebisstearic acid amide, N.I. N′-dioleoyl adipate amide, N.I. N′-dioleoyl sebacic acid amide, N.I. N′-distearyl isophthalic acid amide, etc.
(19) Alkanolamides which are fatty acid amide compounds: coconut oil fatty acid monoethanolamide, lauric acid monoethanolamide, myristic acid monoethanolamide, oleic acid monoethanolamide, coconut oil fatty acid diethanolamide, lauric acid diethanolamide, myristic acid diethanolamide Industrial products such as lime, dioleamide, oleic acid diethanolamide, palm oil fatty acid monopropanolamide, lauric acid monopropanolamide, myristic acid monopropanolamide, oleic acid monopropanolamide, polyoxyalkylene alkanolamide ), Lion's armor slip (CP, E, EY), etc .;
However, it is not limited to these.
アミン化合物とは、窒素原子に炭素数4以上のアルキル鎖が結合したアミン化合物であるのが好ましい。窒素原子に結合するアルキル鎖は1つであってもよく、または2以上のアルキル鎖が結合していてもよい。これらのアミン化合物として、1級、2級および3級アミンの何れを用いてもよい。これらのアミン化合物はその骨格中に複数個のアミノ基を有していてもよく、また、骨格自体がエチレンオキサイド等で変性されていてもよい。本発明で使用されるアミン化合物は、好ましくはアルキル鎖の炭素数4〜22であり、より好ましくはアルキル鎖の炭素数7〜20である。 The amine compound is preferably an amine compound in which an alkyl chain having 4 or more carbon atoms is bonded to a nitrogen atom. There may be one alkyl chain bonded to the nitrogen atom, or two or more alkyl chains may be bonded. As these amine compounds, any of primary, secondary and tertiary amines may be used. These amine compounds may have a plurality of amino groups in the skeleton, or the skeleton itself may be modified with ethylene oxide or the like. The amine compound used in the present invention preferably has 4 to 22 carbon atoms in the alkyl chain, more preferably 7 to 20 carbon atoms in the alkyl chain.
具体的なアミン化合物として、例えば以下のものが挙げられる:
(1)1級アミン化合物
(1−1)脂肪族モノ及びポリアミン化合物
n-ブチルアミン、アミルアミン、n-ヘキシルアミン、ヘプチルアミン、n-オクチルアミン、ノニルアミン、ラウリルアミン、テトラデシルアミン、セチルアミン、ステアリルアミン、2,4-ブタンジアミン、1,6-ヘキサメチレンジアミン、1,8-オクタメチレンジアミン等の脂肪族1級アミン化合物類、
(1−2)脂環族モノ及びポリアミン化合物
シクロヘキシルアミン、1,3-及び1,4-ジアミノシクロヘキサン、1,3-及び1,4-ビス(アミノメチル)シクロヘキサン、3-アミノメチル-3,5,5- トリメチル-1- アミノシクロヘキサン、ビス(4-アミノシクロヘキシル)メタン、1-メチル-2,4- ジアミノシクロヘキサン、1-メチル-2,6-ジアミノシクロヘキサン等の脂環族1級アミン化合物類、
(1−3)芳香族モノ及びポリアミン化合物
アニリン、メタ及びパラトルイジン、ナフチルアミン、1,3-及び1,4-フェニレンジアミン、1-メチル-2,4- ジアミノベンゼン、1-メチル-2,6- ジアミノベンゼン、2,4,- 及び 4,4,-ジアミノジフェニルメタン、 4,4,-ジアミノビフェニル、1,5-及び2,6-ナフタレンジアミン等の芳香族1級アミン化合物類、
(1−4)アラルキルモノ及びポリアミン化合物
1,3-及び1,4-ビス(アミノメチル)ベンゼン、1,5-及び2,6-ビス(アミノメチル)ナフタレン等のアラルキル1級アミン化合物類、
これらの工業製品として、ライオン社製アーミンCD,OD,TD,HT,8D,12D,14D,16D,18D)、花王社製ファーミン(CS,08D,20D,80,86T,O,T)等が挙げられる;
(2)2級アミン化合物
ジ-n-ブチルアミン、ジイソアミルアミン、ジベンジルアミン、メチルジエチルエチレンジアミン、メチルアニリン、ピペリジン、1,2,3,4-テトラヒドロイソキノリン、6-メトキシ-1,2,3,4-テトラヒドロイソキノリン、モルホリン、N-メチル-グルカミン、グルコサミン、t-ブチルアミン等の2級アミン、
これらの工業製品として、花王社製ファーミン(D86)等が挙げられる;
(3)3級アミン化合物
トリ(n-ブチル)アミン、テトラメチルエチレンジアミン、1-メチルピペリジン、1-メチルピロリジン、4-ジメチルアミノピリジン、トリエチレンジアミン、ビスジメチルアミノエチルエーテル、トリイソプロパノールアミン等の3級アミン、
これらの工業製品として、ライオン社製アーミン(DMMCD,DMTD,DMMHTD,DM12D,DM14D,DM16D,DM18D,DM22D, M2HT, M2O,M210D)、花王社製ファーミン(DM24C,DM0898,DM1098,DM2098,DM2465,DM2463,DM2458,DM4098,DM4662, DM6098, DM6875,DM8680,DM8098,DM2285,M2-2095,T-08)等が挙げられる;
(4)アルカノールアミン
花王社製アミノーン(PK-02S,L-02)等;
(5) 変性アミン
(5−1)アルキルアミンエチレンオキサイド付加物
ライオン社製エソミン(C/12,C/15,C/25,T/12,T/15,T/25,S/15,S/25,O/12,O/17,O/20,HT/12, HT/14, HT/17)、ライオン社製エソマイド(HT/15,HT/60,O/15)、旭電化工業社製アデカソール(CO,COA,CMA,YA-6)、花王社製アミート(105,320);
等が挙げられるが、これらに限るものではない。
Specific examples of amine compounds include the following:
(1) Primary amine compound (1-1) Aliphatic mono- and polyamine compounds
n-butylamine, amylamine, n-hexylamine, heptylamine, n-octylamine, nonylamine, laurylamine, tetradecylamine, cetylamine, stearylamine, 2,4-butanediamine, 1,6-hexamethylenediamine, 1, Aliphatic primary amine compounds such as 8-octamethylenediamine,
(1-2) Alicyclic mono- and polyamine compounds cyclohexylamine, 1,3- and 1,4-diaminocyclohexane, 1,3- and 1,4-bis (aminomethyl) cyclohexane, 3-aminomethyl-3, Alicyclic primary amine compounds such as 5,5-trimethyl-1-aminocyclohexane, bis (4-aminocyclohexyl) methane, 1-methyl-2,4-diaminocyclohexane, 1-methyl-2,6-diaminocyclohexane Kind,
(1-3) Aromatic mono- and polyamine compounds aniline, meta and paratoluidine, naphthylamine, 1,3- and 1,4-phenylenediamine, 1-methyl-2,4-diaminobenzene, 1-methyl-2,6 -Aromatic primary amine compounds such as diaminobenzene, 2,4,-and 4,4, -diaminodiphenylmethane, 4,4, -diaminobiphenyl, 1,5- and 2,6-naphthalenediamine,
(1-4) Aralkyl mono and polyamine compounds
Aralkyl primary amine compounds such as 1,3- and 1,4-bis (aminomethyl) benzene, 1,5- and 2,6-bis (aminomethyl) naphthalene,
These industrial products include Lion's Armin CD, OD, TD, HT, 8D, 12D, 14D, 16D, 18D), Kao's Farmin (CS, 08D, 20D, 80, 86T, O, T), etc. Listed;
(2) Secondary amine compounds di-n-butylamine, diisoamylamine, dibenzylamine, methyldiethylethylenediamine, methylaniline, piperidine, 1,2,3,4-tetrahydroisoquinoline, 6-methoxy-1,2,3 Secondary amines such as, 4-tetrahydroisoquinoline, morpholine, N-methyl-glucamine, glucosamine, t-butylamine,
These industrial products include Kao's Farmin (D86) and the like;
(3) tertiary amine compounds such as tri (n-butyl) amine, tetramethylethylenediamine, 1-methylpiperidine, 1-methylpyrrolidine, 4-dimethylaminopyridine, triethylenediamine, bisdimethylaminoethyl ether, triisopropanolamine, etc. Grade amines,
These industrial products include Lion's Armin (DMMCD, DMTD, DMMHTD, DM12D, DM14D, DM16D, DM18D, DM22D, M2HT, M2O, M210D), Kao's Farmin (DM24C, DM0898, DM1098, DM2098, DM2465, DM2463) DM2458, DM4098, DM4662, DM6098, DM6875, DM8680, DM8098, DM2285, M2-2095, T-08) and the like;
(4) Alkanolamine Kao Aminone (PK-02S, L-02), etc .;
(5) Modified amine (5-1) Alkylamine Ethylene oxide adduct Lion Esomin (C / 12, C / 15, C / 25, T / 12, T / 15, T / 25, S / 15, S / 25, O / 12, O / 17, O / 20, HT / 12, HT / 14, HT / 17), Lion esomide (HT / 15, HT / 60, O / 15), Asahi Denka Kogyo Co., Ltd. Made Adekasol (CO, COA, CMA, YA-6), Kao Amit (105,320);
However, it is not limited to these.
これらの脂肪酸類とアミン化合物はいずれか一種または二種以上を組み合わせて用いても良い。 These fatty acids and amine compounds may be used either alone or in combination of two or more.
脂肪酸類またはアミン化合物を加えることによって顔料の分散性が向上する作用機構は明確ではないが、例えば、脂肪酸が顔料に対して単分子膜のような構造または2分子膜のような構造の配置をとり、これによって顔料の水に対する抵抗等が大きくなり、顔料の沈降が防止されると考えられる。本発明において使用される脂肪酸類またはアミン化合物は、分子膜のような構造に配置する能力が高く、顔料の沈降を防止する性能に優れる。 Although the mechanism of action by which the dispersibility of the pigment is improved by adding a fatty acid or an amine compound is not clear, for example, the arrangement of a structure of a monomolecular film or a structure of a bimolecular film of a fatty acid with respect to the pigment Therefore, it is considered that this increases the resistance of the pigment to water and prevents the pigment from settling. The fatty acids or amine compounds used in the present invention have a high ability to be arranged in a structure such as a molecular film, and are excellent in the performance of preventing the precipitation of the pigment.
顔料沈降防止剤(a)は、電着塗料組成物中に含まれる顔料100重量部に対して下限0.1重量部、上限20重量部を占める量で電着塗料組成物に含有される。上記下限は0.5重量部であるのが好ましく、1重量部であるのがより好ましい。また、上記上限は15重量部であるのが好ましく、10重量部であるのがより好ましい。 The pigment settling inhibitor (a) is contained in the electrodeposition coating composition in an amount occupying the lower limit of 0.1 part by weight and the upper limit of 20 parts by weight with respect to 100 parts by weight of the pigment contained in the electrodeposition coating composition. The lower limit is preferably 0.5 parts by weight, and more preferably 1 part by weight. The upper limit is preferably 15 parts by weight, and more preferably 10 parts by weight.
カチオン顔料分散ペースト
顔料を電着塗料の成分として用いる場合、一般に顔料を顔料分散樹脂と呼ばれる樹脂と共に予め高濃度で水性媒体に分散させてペースト状にする。顔料は粉体状であるため、電着塗料組成物で用いる低濃度均一状態に一工程で分散させるのは困難だからである。一般にこのようなペーストを顔料分散ペーストという。触媒を用いる場合、この顔料分散ペーストを作成する際に加えてもよいし、他の塗料製造工程で触媒を加えてもよい。
When a cationic pigment dispersion paste pigment is used as a component of an electrodeposition paint, generally, the pigment is dispersed in an aqueous medium at a high concentration together with a resin called a pigment dispersion resin to make a paste. This is because the pigment is in a powder form, and it is difficult to disperse in a single step in a low concentration uniform state used in the electrodeposition coating composition. Such a paste is generally called a pigment dispersion paste. When a catalyst is used, it may be added when preparing this pigment dispersion paste, or the catalyst may be added in another paint manufacturing process.
カチオン性顔料分散樹脂ワニスとしては、一般に、カチオン性又はノニオン性の低分子量界面活性剤や4級アンモニウム基及び/又は3級スルホニウム基を有する変性エポキシ樹脂等を用いる。水性媒体としてはイオン交換水や少量のアルコール類を含む水等を用いる。一般に、顔料分散樹脂ワニスは固形分中で20〜40質量部、顔料および錫触媒は60〜80質量部の比率で用いる。 As the cationic pigment dispersion resin varnish, generally, a cationic or nonionic low molecular weight surfactant, a modified epoxy resin having a quaternary ammonium group and / or a tertiary sulfonium group, or the like is used. As the aqueous medium, ion-exchanged water or water containing a small amount of alcohol is used. Generally, the pigment-dispersed resin varnish is used in a solid content of 20 to 40 parts by mass, and the pigment and tin catalyst are used in a ratio of 60 to 80 parts by mass.
カチオン電着塗料組成物
本発明のカチオン電着塗料組成物は、カチオン性樹脂およびブロックポリイソシアネート硬化剤を水性媒体中に分散させたもの(カチオン性メインエマルション)、カチオン性アクリル樹脂およびブロックポリイソシアネート硬化剤を水性媒体中に分散させたもの(サブエマルション)、顔料分散ペースト、脱イオン水を所定の割合で混合することによって調製される。
Cationic electrodeposition coating composition The cationic electrodeposition coating composition of the present invention comprises a cationic resin and a block polyisocyanate curing agent dispersed in an aqueous medium (cationic main emulsion), a cationic acrylic resin and a block polyisocyanate. It is prepared by mixing a hardener dispersed in an aqueous medium (subemulsion), a pigment dispersion paste, and deionized water at a predetermined ratio.
本発明の電着塗料組成物の調製において、顔料沈降防止剤(a)は、何れの分散・混合段階においても加えることができる。顔料沈降防止剤(a)は、好ましくは、上記のカチオン性顔料分散ペーストに加えられ、その後、カチオン性メインエマルション等の他の成分と混合される。この場合は、顔料の沈降を防止する性能により優れるからである。 In the preparation of the electrodeposition coating composition of the present invention, the pigment settling inhibitor (a) can be added at any dispersion / mixing stage. The pigment settling inhibitor (a) is preferably added to the above-mentioned cationic pigment dispersion paste and then mixed with other components such as a cationic main emulsion. In this case, it is because it is excellent in the performance which prevents sedimentation of a pigment.
水性媒体としてはイオン交換水や少量のアルコール類を含む水等を用いる。そして水性媒体にはカチオン性樹脂の分散性を向上させるために中和剤を含有させる。中和剤は塩酸、硝酸、リン酸、ギ酸、酢酸、乳酸のような無機酸または有機酸である。その量は少なくとも20%、好ましくは30〜60%の中和率を達成する量である。 As the aqueous medium, ion-exchanged water or water containing a small amount of alcohol is used. The aqueous medium contains a neutralizing agent in order to improve the dispersibility of the cationic resin. Neutralizing agents are inorganic or organic acids such as hydrochloric acid, nitric acid, phosphoric acid, formic acid, acetic acid, lactic acid. The amount is that which achieves a neutralization rate of at least 20%, preferably 30-60%.
ブロックポリイソシアネート硬化剤の量は、硬化時にカチオン性樹脂中の1級、2級又は/及び3級アミノ基、水酸基等の活性水素含有官能基と反応して良好な硬化塗膜を与えるのに十分でなければならず、一般にカチオン性樹脂のブロックポリイソシアネート硬化剤に対する重量比で表して一般に90/10〜50/50、好ましくは80/20〜65/35の範囲である。 The amount of the block polyisocyanate curing agent is sufficient to react with active hydrogen-containing functional groups such as primary, secondary or / and tertiary amino groups and hydroxyl groups in the cationic resin during curing to give a good cured coating film. It should be sufficient and generally ranges from 90/10 to 50/50, preferably 80/20 to 65/35, expressed as a weight ratio of cationic resin to blocked polyisocyanate curing agent.
電着塗料は、水混和性有機溶剤、界面活性剤、酸化防止剤、および紫外線吸収剤などの常用の塗料用添加剤を含むことができる。 The electrodeposition paint can contain conventional paint additives such as water-miscible organic solvents, surfactants, antioxidants, and UV absorbers.
本発明の電着塗料組成物は当業者に周知の方法で被塗物に電着塗装され、硬化塗膜を形成する。このカチオン電着塗料組成物を用いて電着塗装を行う場合の被塗物は、予め、浸漬、スプレー方法等によりリン酸亜鉛処理等の表面処理の施された導体であることが好ましいが、この表面処理が施されていないものであっても良い。また、導体とは、電着塗装を行うに当り、陰極になり得るものであれば特に制限はなく、金属基材が好ましい。 The electrodeposition coating composition of the present invention is electrodeposited onto an article by a method well known to those skilled in the art to form a cured coating film. The object to be coated when performing electrodeposition coating using this cationic electrodeposition coating composition is preferably a conductor that has been subjected to surface treatment such as zinc phosphate treatment in advance by dipping, spraying method, etc. The surface treatment may not be performed. In addition, the conductor is not particularly limited as long as it can become a cathode in performing electrodeposition coating, and a metal substrate is preferable.
電着が実施される条件は一般的に他の型の電着塗装に用いられるものと同様である。印加電圧は大きく変化してもよく、1ボルト〜数百ボルトの範囲であってよい。電流密度は通常約10アンペア/m2〜160アンペア/m2であり、電着中に減少する傾向にある。 The conditions under which electrodeposition is performed are generally the same as those used for other types of electrodeposition coating. The applied voltage may vary greatly and may range from 1 volt to several hundred volts. The current density is usually about 10 amperes / m 2 to 160 amperes / m 2 and tends to decrease during electrodeposition.
電着後、被膜を昇温下に通常の方法、例えば焼付炉中、オーブン中あるいは赤外ヒートランプで焼付ける。焼付け温度は変化してもよいが、通常約140℃〜180℃である。 After electrodeposition, the coating is baked at normal temperature, for example, in a baking furnace, in an oven or with an infrared heat lamp. The baking temperature may vary but is usually about 140 ° C to 180 ° C.
アニオン電着塗料組成物
本発明の電着塗料組成物はアニオン電着塗料組成物であっても良い。以下、アニオン性の場合について、説明する。
Anionic electrodeposition coating composition The electrodeposition coating composition of the present invention may be an anionic electrodeposition coating composition. Hereinafter, the anionic case will be described.
本発明のアニオン電着塗料組成物は、カチオン電着塗料組成物のカチオン性の樹脂類をアニオン性に置き換えることにより、形成することができる。以下、カチオン性電着塗料組成物と違う部分のみ説明を加える。 The anionic electrodeposition coating composition of the present invention can be formed by replacing the cationic resins of the cationic electrodeposition coating composition with anionic. Hereinafter, only parts different from the cationic electrodeposition coating composition will be described.
アニオン性樹脂
アニオン電着塗料組成物では、カチオン性樹脂の代わりにアニオン性樹脂を用いる。本発明で用いるアニオン性樹脂として、電着塗料の分野では周知のカルボキシル基および場合によりさらに水酸基を有する樹脂を用いることができる。アニオン性樹脂として、例えば、カルボキシル基を有するアクリル樹脂またはカルボキシル基を有するポリウレタン樹脂を用いるのが好ましく、カルボキシル基および水酸基を有するアクリル樹脂またはカルボキシル基および水酸基を有するポリウレタン樹脂を用いるのが特に好ましい。塗膜の耐候性、平滑性に優れるからである。
In the anionic resin anionic electrodeposition coating composition, an anionic resin is used instead of the cationic resin. As the anionic resin used in the present invention, a resin having a carboxyl group and optionally further a hydroxyl group, which is well known in the field of electrodeposition coating, can be used. As the anionic resin, for example, an acrylic resin having a carboxyl group or a polyurethane resin having a carboxyl group is preferably used, and an acrylic resin having a carboxyl group and a hydroxyl group or a polyurethane resin having a carboxyl group and a hydroxyl group is particularly preferably used. This is because the coating film is excellent in weather resistance and smoothness.
上記のカルボキシル基及び水酸基を有するアクリル樹脂としては、例えば、カルボキシル基含有不飽和単量体、水酸基含有アクリル系単量体、さらに必要に応じてその他の重合性単量体を用い、これらの単量体をラジカル重合させてなる共重合体が使用できる。 Examples of the acrylic resin having a carboxyl group and a hydroxyl group include, for example, a carboxyl group-containing unsaturated monomer, a hydroxyl group-containing acrylic monomer, and, if necessary, other polymerizable monomers. A copolymer obtained by radical polymerization of a monomer can be used.
カルボキシル基含有不飽和単量体は、1分子中にカルボキシル基と重合性不飽和結合をそれぞれ少なくとも1個有する化合物であり、例えば、(メタ)アクリル酸、イタコン酸、マレイン酸、カプロラクトン変性カルボキシル基含有(メタ)アクリル系単量体などがあげられる。 The carboxyl group-containing unsaturated monomer is a compound having at least one carboxyl group and polymerizable unsaturated bond in one molecule, for example, (meth) acrylic acid, itaconic acid, maleic acid, caprolactone-modified carboxyl group Examples thereof include (meth) acrylic monomers.
水酸基含有アクリル系単量体は、1分子中に水酸基と重合性不飽和結合をそれぞれ少なくとも1個有する化合物であり、例えば、ヒドロキシエチル(メタ)アクリレート、ヒドロキシプロピル(メタ)アクリレート、ヒドロキシブチル(メタ)アクリレートなどのヒドロキシアルキル(メタ)アクリレート;(ポリ)エチレングリコールモノ(メタ)アクリレート、(ポリ)プロピレングリコールモノ(メタ)アクリレートなどの(ポリ)アルキレングリコールモノ(メタ)アクリレート;これらの水酸基含有アクリル系単量体と、β−プロピオラクトン、ジメチルプロピオラクトン、ブチロラクトン、γ−バレロラクトン、γ−カプロラクトン、γ−カプリロラクトン、γ−ラウリロラクトン、ε−カプロラクトン、δ−カプロラクトンなどのラクトン類化合物との反応物などがあげられ、市販品としては、プラクセルFM1(ダイセル化学社製、商品名、カプロラクトン変性(メタ)アクリル酸ヒドロキシエステル類)、プラクセルFM2(同左)、プラクセルFM3(同左)、プラクセルFA1(同左)、プラクセルFA2(同左)、プラクセルFA3(同左)などがあげられる。 A hydroxyl group-containing acrylic monomer is a compound having at least one hydroxyl group and a polymerizable unsaturated bond in one molecule. For example, hydroxyethyl (meth) acrylate, hydroxypropyl (meth) acrylate, hydroxybutyl (meta ) Hydroxyalkyl (meth) acrylates such as acrylates; (poly) ethylene glycol mono (meth) acrylates, (poly) alkylene glycol mono (meth) acrylates such as (poly) propylene glycol mono (meth) acrylates; Monomers and β-propiolactone, dimethylpropiolactone, butyrolactone, γ-valerolactone, γ-caprolactone, γ-caprolactone, γ-laurolactone, ε-caprolactone, δ-caprolactone, etc. Examples of commercially available products include Plaxel FM1 (trade name, caprolactone-modified (meth) acrylic acid hydroxyesters), Plaxel FM2 (same as left), and Placcel FM3 (same as left). ), Plaxel FA1 (same as left), Plaxel FA2 (same as left), Plaxel FA3 (same as left), and the like.
その他の重合性単量体は、上記のカルボキシル基含有不飽和単量体及び水酸基含有アクリル系単量体以外であって、1分子中に重合性不飽和結合を少なくとも1個有する化合物であり、例えば、(メタ)アクリル酸メチル、(メタ)アクリル酸エチル、(メタ)アクリル酸プロピル、(メタ)アクリル酸ブチル、(メタ)アクリル酸ヘキシル、(メタ)アクリル酸オクチル、(メタ)アクリル酸ラウリル、(メタ)アクリル酸シクロヘキシルなどの(メタ)アクリル酸のC1〜C18のアルキル又はシクロアルキルエステル;スチレン、α−メチルスチレン、ビニルトルエンなどの芳香族重合性単量体;(メタ)アクリル酸アミド、N−ブトキシメチル(メタ)アクリアミド、N−メチロール(メタ)アクリアミドなどの(メタ)アクリルアミド及びその誘導体;(メタ)アクリロニトリル化合物類;γ−(メタ)アクリロキシプロピルトリメトキシシラン、γ−(メタ)アクリロキシプロピルメチルジメトキシシラン、γ−(メタ)アクリロキシプロピルトリエトキシシラン、ビニルトリメトキシシランなどのアルコキシシリル基含有重合性単量体などがあげられる。 The other polymerizable monomer is a compound having at least one polymerizable unsaturated bond in one molecule other than the above carboxyl group-containing unsaturated monomer and hydroxyl group-containing acrylic monomer, For example, methyl (meth) acrylate, ethyl (meth) acrylate, propyl (meth) acrylate, butyl (meth) acrylate, hexyl (meth) acrylate, octyl (meth) acrylate, lauryl (meth) acrylate , (meth) alkyl or cycloalkyl esters of C 1 -C 18 (meth) acrylic acid such as cyclohexyl acrylate; styrene, alpha-methyl styrene, aromatic polymerizable monomers such as vinyl toluene; (meth) acrylic (Meth) acrylamido such as acid amide, N-butoxymethyl (meth) acrylamide, N-methylol (meth) acrylamide And derivatives thereof; (meth) acrylonitrile compounds; γ- (meth) acryloxypropyltrimethoxysilane, γ- (meth) acryloxypropylmethyldimethoxysilane, γ- (meth) acryloxypropyltriethoxysilane, vinyltrimethoxy Examples include alkoxysilyl group-containing polymerizable monomers such as silane.
これらの単量体の配合割合として、カルボキシル基含有不飽和単量体を、単量体の合計重量に対して3〜30重量%、特に4〜20重量%の範囲内で用いることが好ましい。水酸基含有アクリル系単量体を、単量体の合計重量に対して3〜40重量%、特に5〜30重量%の範囲内で用いることが好ましい。 As a blending ratio of these monomers, it is preferable to use the carboxyl group-containing unsaturated monomer within the range of 3 to 30% by weight, particularly 4 to 20% by weight, based on the total weight of the monomers. The hydroxyl group-containing acrylic monomer is preferably used in the range of 3 to 40% by weight, particularly 5 to 30% by weight, based on the total weight of the monomers.
これらの単量体をラジカル共重合反応させる方法は従来から既知の溶液重合方法などを採用することができる。 A conventionally known solution polymerization method or the like can be adopted as a method for radically copolymerizing these monomers.
カルボキシル基及び水酸基を有するポリウレタン樹脂としては、例えば、ポリイソシアネート化合物、ポリオール類及びジヒドロキシカルボン酸を、水酸基過剰の当量比で、ワンショット法又は多段法によりウレタン化反応させることにより得られるものがあげられる。 Examples of the polyurethane resin having a carboxyl group and a hydroxyl group include those obtained by subjecting a polyisocyanate compound, polyols and dihydroxycarboxylic acid to a urethanization reaction by an equivalent ratio of excess hydroxyl group by a one-shot method or a multistage method. It is done.
ポリイソシアネート化合物は、1分子中にイソシアネート基を2個以上有する化合物であり、例えば、ヘキサメチレンジイソシアネート、トリメチルヘキサンジイソシアネート、リジンジイソシアネートなどの脂肪族ジイソシアネート;シクロヘキサンジイソシアネート、イソホロンジイソシアネート、ジシクロヘキシルメタンジイソシアネート、メチルシクロヘキシレンジイソシアネートなどの脂環式ジイソシアネートなどが好適に使用される。 The polyisocyanate compound is a compound having two or more isocyanate groups in one molecule, and examples thereof include aliphatic diisocyanates such as hexamethylene diisocyanate, trimethylhexane diisocyanate, and lysine diisocyanate; cyclohexane diisocyanate, isophorone diisocyanate, dicyclohexylmethane diisocyanate, and methylcyclohexyl. An alicyclic diisocyanate such as silylene diisocyanate is preferably used.
ポリオール類は、1分子中に2個以上の水酸基を有する化合物であり、例えば、アルキレンオキシド(エチレンオキシド、プロピレンオキシド、ブチレンオキシドなど)及び/又は複素環式エーテル(テトラヒドロフラン)を重合又は共重合(ブロック又はランダム)させて得られるポリエーテルジオール、例えば、ポリエチレングリコール、ポリプロピレングリコール、ポリエチレン−プロピレン(ブロック又はランダム)グリコール、ポリテトラメチレンエーテルグリコール、ポリヘキサメチレンエーテルグリコール、ポリオクタメチレンエーテルグリコールなど;ジカルボン酸(アジピン酸、コハク酸、セバシン酸、グルタル酸、マレイン酸、フマル酸、フタル酸など)とグリコール(エチレングリコール、プロピレングリコール、ブタンジオール、ヘキサンジオール、ネオペンチルグリコール、ビスヒドロキシメチルシクロヘキサンなど)とを縮重合させて得られるポリエステルジオール、例えば、ポリエチレンアジペート、ポリブチレンアジペート、ポリヘキサメチレンアジペート、ポリネオペンチルアジペート、ポリエチレン−ブチレンアジペート、ポリネオペンチル−ヘキシルアジペートなど;ポリラクトンジオール、例えば、ポリカプロラクトンジオール、ポリ3−メチルバレロラクトンジオールなど;ポリカーボネートジオール;これらから選ばれる2種以上からなる混合物などがあげられる。これらのポリオール類一般に500以上、好ましくは500〜5000、より好ましくは1000〜3000の範囲内の数平均分子量を有することができる。 Polyols are compounds having two or more hydroxyl groups in one molecule, for example, polymerization or copolymerization (blocking) of alkylene oxide (ethylene oxide, propylene oxide, butylene oxide, etc.) and / or heterocyclic ether (tetrahydrofuran). Or random) polyether diols obtained by, for example, polyethylene glycol, polypropylene glycol, polyethylene-propylene (block or random) glycol, polytetramethylene ether glycol, polyhexamethylene ether glycol, polyoctamethylene ether glycol, etc .; dicarboxylic acid (Adipic acid, succinic acid, sebacic acid, glutaric acid, maleic acid, fumaric acid, phthalic acid, etc.) and glycol (ethylene glycol, propylene glycol, Diol, hexanediol, neopentyl glycol, bishydroxymethylcyclohexane and the like) polyester diols obtained by condensation polymerization such as polyethylene adipate, polybutylene adipate, polyhexamethylene adipate, polyneopentyl adipate, polyethylene-butylene adipate, Examples include polyneopentyl-hexyl adipate and the like; polylactone diols such as polycaprolactone diol and poly-3-methylvalerolactone diol; polycarbonate diols; a mixture of two or more selected from these. These polyols can generally have a number average molecular weight in the range of 500 or more, preferably 500 to 5000, more preferably 1000 to 3000.
また、ポリオール類として、1分子中に2個以上の水酸基を有し、かつ数平均分子量が500未満の低分子量のポリオールも使用することができる。具体的には、上記のポリエステルジオールの原料としてあげたグリコール及びそのアルキレンオキシド低モル付加物(分子量500未満);3価アルコール、例えば、グリセリン、トリメチロルエタン、トリメチロールプロパンなど及びそのアルキレンオキシド低モル付加物(分子量500未満);これらから選ばれた2種以上からなる混合物などがあげられる。 As the polyols, low molecular weight polyols having two or more hydroxyl groups in one molecule and having a number average molecular weight of less than 500 can also be used. Specifically, glycols and their alkylene oxide low molar adducts (molecular weight less than 500) mentioned above as raw materials for polyester diols; trihydric alcohols such as glycerin, trimethylolethane, trimethylolpropane and the like and their low alkylene oxides. Mole adduct (molecular weight less than 500); a mixture of two or more selected from these, and the like.
数平均分子量が500以上のポリオール類と数平均分子量が500未満の低分子量のポリオール類とを併用する系において、これら両ポリオールの構成比率は、両ポリオールの合計量を基準にして、前者は80〜99.9重量%、特に90〜99.5重量%、後者は20〜0.1重量%、特に10〜0.5重量%の範囲内にあることが好ましい。 In a system in which a polyol having a number average molecular weight of 500 or more and a low molecular weight polyol having a number average molecular weight of less than 500 are used in combination, the composition ratio of these two polyols is 80 based on the total amount of both polyols. ˜99.9% by weight, in particular 90 to 99.5% by weight, the latter being preferably in the range of 20 to 0.1% by weight, in particular 10 to 0.5% by weight.
ジヒドロキシカルボン酸は、1分子中に2個の水酸基と1個のカルボキシル基を有する化合物であり、例えば、ジメチロール酢酸、ジメチロールプロピオン酸、ジメチロール酪酸、ジメチロールブタン酸などがあげられる。 Dihydroxycarboxylic acid is a compound having two hydroxyl groups and one carboxyl group in one molecule, and examples thereof include dimethylolacetic acid, dimethylolpropionic acid, dimethylolbutyric acid, and dimethylolbutanoic acid.
以上に述べたポリイソシアネート化合物、ポリオール類及びジヒドロキシカルボン酸によるウレタン化反応はそれ自体既知の方法で行なうことができる。 The urethanation reaction with the polyisocyanate compound, polyols and dihydroxycarboxylic acid described above can be carried out by a method known per se.
硬化剤
アニオン電着塗料組成物において、アニオン性樹脂に対する硬化剤として、例えばメラミン樹脂、ブロックポリイソシアネートなどが挙げられる。
In the curing agent anionic electrodeposition coating composition, examples of the curing agent for the anionic resin include melamine resin and block polyisocyanate.
メラミン樹脂としては、メラミンにホルムアルデヒドなどを反応させてなるメチロールメラミンのメチロール基の一部もしくは全部がC1〜C10のモノアルコールから選ばれた1種もしくは2種以上のアルコールで変性されたエーテル化メラミン樹脂を使用することができる。また、メラミン樹脂中にはイミノ基、メチロール基、その他の官能基が含まれていても差支えない。 As the melamine resin, ether in which part or all of the methylol group of methylolmelamine obtained by reacting melamine with formaldehyde or the like is modified with one or more alcohols selected from C 1 to C 10 monoalcohols. A melamine resin can be used. The melamine resin may contain an imino group, a methylol group, or other functional groups.
ブロックポリイソシアネートは、前記のカチオン電着塗料組成物で例示したブロックポリイソシアネート硬化剤を使用することができる。 As the block polyisocyanate, the block polyisocyanate curing agent exemplified in the above cationic electrodeposition coating composition can be used.
顔料沈降防止剤(a)
アニオン電着塗料組成物において用いられる顔料沈降防止剤(a)はカチオン電着塗料組成物の場合と同じである。
Pigment settling inhibitor (a)
The pigment anti-settling agent (a) used in the anionic electrodeposition coating composition is the same as that in the cationic electrodeposition coating composition.
アニオン性顔料分散ペースト
電着塗料に顔料を含有させる場合、顔料の分散容易性の観点から、顔料を予め顔料分散ペーストの形態に調製するのが好ましい。アニオン性顔料分散ペーストは、顔料をアニオン性顔料分散樹脂に分散させて調製することができる。顔料として、前記のカチオン電着塗料組成物で例示した顔料を使用することができる。
When the anionic pigment-dispersed paste electrodeposition paint contains a pigment, it is preferable to prepare the pigment in the form of a pigment-dispersed paste from the viewpoint of easy dispersion of the pigment. An anionic pigment dispersion paste can be prepared by dispersing a pigment in an anionic pigment dispersion resin. As the pigment, the pigments exemplified in the above cationic electrodeposition coating composition can be used.
アニオン性顔料分散樹脂として例えば、アクリル酸エステル、アクリル酸およびアゾニトリル化合物を有する変性アクリル樹脂を用いることができる。水性媒体として上記の水性媒体、例えばイオン交換水などを用いる。 For example, a modified acrylic resin having an acrylic ester, acrylic acid and an azonitrile compound can be used as the anionic pigment dispersion resin. As the aqueous medium, the above-mentioned aqueous medium, for example, ion exchange water or the like is used.
アニオン性顔料分散ペーストは、上記のアニオン性顔料分散樹脂と顔料と中和剤を加え、これを分散させるか溶解させることにより調製することができる。 An anionic pigment dispersion paste can be prepared by adding the above-mentioned anionic pigment dispersion resin, a pigment and a neutralizing agent, and dispersing or dissolving them.
一般に、アニオン性顔料分散ペーストは、固形分35〜70重量%、好ましくは40〜65重量%に調製される。 Generally, the anionic pigment dispersion paste is prepared to a solid content of 35 to 70% by weight, preferably 40 to 65% by weight.
アニオン性顔料分散ペーストは、アニオン性顔料分散樹脂、および顔料、必要に応じてトリエチルアミンなどの中和剤および水性媒体を、混合した後、その混合物中の顔料の粒径が所定の均一な粒径となるまで、ボールミルやサンドグラインドミル等の通常の分散装置を用いて分散させて得ることができる。 An anionic pigment dispersion paste is prepared by mixing an anionic pigment dispersion resin and a pigment, and, if necessary, a neutralizing agent such as triethylamine and an aqueous medium, and then the pigment in the mixture has a predetermined uniform particle size. Until it becomes, it can disperse | distribute and obtain using normal dispersion apparatuses, such as a ball mill and a sand grind mill.
アニオン電着塗料組成物の調製
本発明のアニオン電着塗料組成物は、上に述べたアニオン性樹脂、アニオン性顔料分散ペーストを水性媒体中に分散させることによって調製される。また、通常、水性媒体にはアニオン性樹脂を中和して分散性を向上させるために中和塩基(アミンまたはアルカリ化合物)を含有させる。この中和塩基として用いるアミンは具体的には炭素数が3以下の低い分子量のものであり、前述の顔料沈降防止剤とは異なるものである。このような炭素数であると、顔料との相互作用よりも樹脂との相互作用が大きくなるので、顔料の沈降防止剤としての効果は無くなる。中和塩基の例としては、アンモニア;ジエチルアミン、エチルエタノールアミン、ジエタノールアミン、モノエタノールアミン、モノプロパノールアミン、イソプロパノールアミン、エチルアミノエチルアミン、ヒドロキシエチルアミン、ジエチレントリアミンなどの有機アミン;水酸化ナトリウム、水酸化カリウムなどのアルカリ金属水酸化物などの塩基性化合物である。水性媒体は水か、水と上記の有機溶剤との混合物である。水としてイオン交換水を用いるのが好ましい。
Preparation of anionic electrodeposition coating composition The anionic electrodeposition coating composition of the present invention is prepared by dispersing the above-mentioned anionic resin and anionic pigment dispersion paste in an aqueous medium. Usually, the aqueous medium contains a neutralized base (amine or alkali compound) in order to neutralize the anionic resin and improve the dispersibility. Specifically, the amine used as the neutralizing base has a low molecular weight having 3 or less carbon atoms, and is different from the above-described pigment settling inhibitor. When the number of carbon atoms is such, the interaction with the resin becomes larger than the interaction with the pigment, so that the effect of the pigment as an anti-settling agent is lost. Examples of neutralizing bases include ammonia; diethylamine, ethylethanolamine, diethanolamine, monoethanolamine, monopropanolamine, isopropanolamine, ethylaminoethylamine, hydroxyethylamine, diethylenetriamine and other organic amines; sodium hydroxide, potassium hydroxide, etc. Basic compounds such as alkali metal hydroxides. The aqueous medium is water or a mixture of water and the above organic solvent. It is preferable to use ion exchange water as water.
本発明のアニオン性電着塗料組成物の調製において、顔料沈降防止剤(a)は、何れの分散・混合段階においても加えることができる。顔料沈降防止剤(a)は、好ましくは、上記のアニオン性顔料分散ペーストに加えられ、その後、アニオン性メインエマルション等の他の成分と混合される。この場合は、顔料の沈降を防止する性能により優れるからである。なお、脂肪酸またはアミン化合物の配合量は、カチオン電着塗料組成物の場合と同じである。 In the preparation of the anionic electrodeposition coating composition of the present invention, the pigment settling inhibitor (a) can be added at any dispersion / mixing stage. The pigment settling inhibitor (a) is preferably added to the anionic pigment dispersion paste and then mixed with other components such as an anionic main emulsion. In this case, it is because it is excellent in the performance which prevents sedimentation of a pigment. In addition, the compounding quantity of a fatty acid or an amine compound is the same as the case of a cationic electrodeposition coating composition.
硬化剤の量は、アニオン性樹脂と硬化剤との固形分重量比(アニオン性樹脂/硬化剤)で表して一般に90/10〜50/50、好ましくは80/20〜50/50の範囲である。中和塩基の量は、アニオン性樹脂のアニオン性基の少なくとも30%、好ましくは50〜120%を中和するのに足りる量である。 The amount of the curing agent is generally 90/10 to 50/50, preferably in the range of 80/20 to 50/50, expressed as a solid weight ratio (anionic resin / curing agent) between the anionic resin and the curing agent. is there. The amount of neutralizing base is that which is sufficient to neutralize at least 30%, preferably 50-120% of the anionic groups of the anionic resin.
アニオン電着塗料組成物の電着塗装は、被塗物を陽極として陰極との間に、通常1〜400Vの電圧を印加して行なう。電着塗装時、塗料組成物の浴液温度は10〜45℃、好ましくは15〜30℃に、pHは6.0〜9.0、好ましくは7.0〜8.0に調節される。 The electrodeposition coating of the anion electrodeposition coating composition is usually performed by applying a voltage of 1 to 400 V between the object to be coated as the anode and the cathode. During electrodeposition coating, the bath temperature of the coating composition is adjusted to 10 to 45 ° C, preferably 15 to 30 ° C, and pH is adjusted to 6.0 to 9.0, preferably 7.0 to 8.0.
電着過程は、アニオン電着塗料組成物に被塗物を浸漬する過程、及び、上記被塗物を陽極として陰極との間に電圧を印加し、被膜を析出させる過程、から構成される。また、電圧を印加する時間は、電着条件によって異なるが、一般には、30秒〜5分とすることができる。電着過程の終了後、そのまま又は水洗した後、100〜200℃、好ましくは120〜180℃で、10〜60分間焼き付けることにより硬化塗膜が得られる。 The electrodeposition process includes a process of immersing a coating object in the anionic electrodeposition coating composition, and a process of depositing a film by applying a voltage between the coating object as an anode and a cathode. Moreover, although the voltage application time varies depending on the electrodeposition conditions, it can generally be set to 30 seconds to 5 minutes. After completion of the electrodeposition process, the cured coating film is obtained by baking at 100 to 200 ° C., preferably 120 to 180 ° C., for 10 to 60 minutes as it is or after washing with water.
得られる膜厚は硬化塗膜で5〜30μm、特に7〜20μmの範囲内にあることが好ましい。
The obtained film thickness is preferably 5 to 30 μm, particularly 7 to 20 μm, as a cured coating film.
本発明の電着塗料組成物は、電着浴の攪拌を停止しても顔料成分の沈降が非常に少ないので、非塗装時には電着浴の攪拌を停止しても問題がない。ただし、電着塗装時には塗膜析出中に発生する反応ガスを除去したり、塗膜析出時に発生する反応熱を拡散させる意味から槽内攪拌をすることが好ましい。従来の塗料では、非塗装時にも電着浴の攪拌を実施することが必要であるが、本発明の電着塗料は夜間、休日等の非塗装時に攪拌を停止することが可能なため、電着浴の攪拌に要する電気エネルギーコストを大幅に減少させることが可能となる。 The electrodeposition coating composition of the present invention has very little sedimentation of the pigment component even if the stirring of the electrodeposition bath is stopped, so there is no problem even if the stirring of the electrodeposition bath is stopped when not coated. However, it is preferable to stir in the tank in order to remove the reaction gas generated during deposition of the coating during electrodeposition coating or to diffuse reaction heat generated during deposition of the coating. With conventional paints, it is necessary to stir the electrodeposition bath even when it is not painted. However, since the electrodeposition paint of the present invention can stop stirring when it is not painted at night, on holidays, etc., It is possible to significantly reduce the electric energy cost required for stirring the bath.
電着浴の攪拌は一般に、図1に示すように、ポンプを利用して、電着浴の一部をとって、電着浴に戻すことにより行っているのが一般的である。図中、電着浴1には、オーバーフロー槽2が付いていて、電着塗料が両槽に存在する。電着浴1の一部およびオーバーフロー槽の一部もポンプ3に送られ、フィルター4を通って電着浴内に戻されるが、その際電着浴1内のライザー5のノズル6より、噴出して攪拌を行なう。しかし、もちろんこの方法に限定されるものではない。
As shown in FIG. 1, stirring of the electrodeposition bath is generally performed by taking a part of the electrodeposition bath and returning it to the electrodeposition bath using a pump. In the figure, the electrodeposition bath 1 is provided with an
例えば、図2に記載するように、攪拌のための羽(攪拌羽11)を電着浴に挿入する方法も考えられる。この場合には、従来、用いていた図1に記載する循環攪拌システムを利用しないことができる。従って、循環攪拌のための装置等が攪拌羽のみでよく、設備費やエネルギーコストが大幅に改善される。攪拌自体は、前述のように、反応ガスの除去や、反応熱の拡散のために必要であるが、電着塗装時に攪拌羽による簡単な攪拌で十分であり、しかも本発明の塗料組成物を用いると、非塗装時に攪拌を停止することができるので、大きくエネルギーコストの削減に寄与する。 For example, as shown in FIG. 2, a method of inserting a blade for stirring (stirring blade 11) into the electrodeposition bath is also conceivable. In this case, it is not possible to use the circulation stirring system shown in FIG. Accordingly, only a stirring blade is required for the circulating stirring device, and the equipment cost and energy cost are greatly improved. As described above, the stirring itself is necessary for the removal of the reaction gas and the diffusion of the reaction heat, but simple stirring with stirring blades is sufficient during electrodeposition coating, and the coating composition of the present invention is used. If used, stirring can be stopped when not painted, which greatly contributes to a reduction in energy costs.
また、図1に記載されているような循環攪拌は、電着以後に行われる水洗浴の管理においても行われている。その例を図3に模式的に示す。図3中、30は電着浴を示し、31は第1水洗浴を示し、32は第2水洗浴を示す。電着浴30の一部は限外濾過器(UF)33により、塗料分を水分に分離し、塗料分は電着浴30に戻し、水分は水洗浴(31および32)で利用される。通常は、水分は第2水洗浴32で利用した後、その一部を第1水洗浴31に戻し、更に電着浴30に戻される。第1水洗浴31および第2水洗浴32のいずれでも、34および35で示す循環攪拌システムで攪拌されている。この攪拌は、電着塗料が水洗浴にも被塗物に付着して持ち込まれるので、分散状態を保つために必要である。本発明の塗料を用いると、今までの電着塗料と比べて沈降が極めて少ないので、従来の図3のような循環攪拌は特に必要が無くなり、図4に記載するような、攪拌羽36を用いた攪拌で十分になり、設備コストおよびエネルギーコストが大きく削減する。
Further, the circulating stirring as described in FIG. 1 is also performed in the management of a washing bath performed after electrodeposition. An example is schematically shown in FIG. In FIG. 3, 30 indicates an electrodeposition bath, 31 indicates a first water-washing bath, and 32 indicates a second water-washing bath. Part of the
本発明を実施例により更に詳細に説明する。本発明は、これら実施例に限定するものと解してはならない。これら実施例中において「部」および「%」は特別に記載しない限り重量による。 The present invention will be described in more detail with reference to examples. The present invention should not be construed as limited to these examples. In these examples, “parts” and “%” are by weight unless otherwise specified.
製造例1
カチオン性樹脂の調製
撹拌装置、冷却管、窒素導入管および温度計を備え付けた反応容器に、エピコート1001(油化シェルエポキシ社製、エポキシ当量475のビスフェノールA型エポキシ樹脂)99.8部、エピコート1004(油化シェルエポキシ社製、エポキシ当量950のビスフェノールA型エポキシ樹脂)850.2部、ノニルフェノール55部、メチルイソブチルケトン(MIBK)193.3部およびベンジルジメチルアミン4.5gを加え、140℃で4時間反応し、エポキシ当量1175を有する樹脂を得た。ここにエチレングリコールn−ヘキシルエーテル69.1部、2−アミノエチルエタノールアミンのMIBKケチミン化物のMIBK溶液(固形分78重量%)35.4部、N−メチルエタノールアミン26.5部およびジエタノールアミン37.1部を加えた。これを120℃で2時間反応させ、目的とする樹脂を得た。このカチオン性樹脂のSPは11.4であった。
Production Example 1
Preparation of cationic resin A reaction vessel equipped with a stirrer, a cooling tube, a nitrogen introduction tube and a thermometer, 99.8 parts of Epicoat 1001 (Oilized Shell Epoxy, bisphenol A type epoxy resin having an epoxy equivalent of 475), Epicoat 1004 (manufactured by Yuka Shell Epoxy, bisphenol A type epoxy resin having an epoxy equivalent of 950) 850.2 parts, 55 parts of nonylphenol, 193.3 parts of methyl isobutyl ketone (MIBK) and 4.5 g of benzyldimethylamine were added at 140 ° C. For 4 hours to obtain a resin having an epoxy equivalent of 1175. Here, 69.1 parts of ethylene glycol n-hexyl ether, 35.4 parts of MIBK solution (solid content 78% by weight) of MIBK ketimine product of 2-aminoethylethanolamine, 26.5 parts of N-methylethanolamine and 37 of diethanolamine 37 .1 part was added. This was reacted at 120 ° C. for 2 hours to obtain the desired resin. The SP of this cationic resin was 11.4.
製造例2
カチオン性アクリル樹脂の調製
撹拌装置、冷却管、窒素導入管および滴下ロートを備えたフラスコに、スチレン50.7部、メチルメタクリレート10.0部、n−ブチルアクリレート20.1部、2−ヒドロキシエチルメタクリレート10.2部、グリシジルメタクリレート9.2部、およびt−ブチルパーオクトエート4.0部の混合物を滴下ロートから3時間かけて滴下した。滴下終了後115℃で約1時間保持し、t−ブチルパーオクトエート0.5部を滴下し、115℃で約30分間保持し、固形分65%の樹脂溶液を得た。数平均分子量(Mn)5000の樹脂溶液を得た。冷却後これへN−メチルエタノールアミン5.1部を加え、窒素雰囲気下120℃で2時間反応させ固形分約66%のカチオン性アクリル樹脂溶液を得た。このカチオン性アクリル樹脂のSPは9.7であった。
Production Example 2
Preparation of cationic acrylic resin In a flask equipped with a stirrer, a cooling tube, a nitrogen introducing tube and a dropping funnel, 50.7 parts of styrene, 10.0 parts of methyl methacrylate, 20.1 parts of n-butyl acrylate, 2-hydroxyethyl A mixture of 10.2 parts of methacrylate, 9.2 parts of glycidyl methacrylate, and 4.0 parts of t-butyl peroctoate was dropped from a dropping funnel over 3 hours. After completion of dropping, the mixture was kept at 115 ° C. for about 1 hour, 0.5 part of t-butyl peroctoate was dropped, and kept at 115 ° C. for about 30 minutes to obtain a resin solution having a solid content of 65%. A resin solution having a number average molecular weight (Mn) of 5000 was obtained. After cooling, 5.1 parts of N-methylethanolamine was added thereto and reacted at 120 ° C. for 2 hours under a nitrogen atmosphere to obtain a cationic acrylic resin solution having a solid content of about 66%. The SP of this cationic acrylic resin was 9.7.
製造例3
ブロックポリイソシアネート硬化剤の調製
還流冷却器、撹拌機、滴下ロートおよび窒素導入管を備えた5つ口フラスコに、ヘキサメチレンジイソシアネート三量体(コロネートEH)199.1部とメチルイソブチルケトン31.6部を仕込み、窒素雰囲気下40℃に加熱保持した。これへジブチル錫ジラウレート0.2部を加え、さらにメチルエチルケトオキシム87.0部を滴下ロートより2時間かけて滴下し、滴下終了後、IRスペクトルによりイソシアネート基のピークが消失するまで70℃で反応させた。反応終了後、メチルイソブチルケトン38.1部およびブタノール1.6部を加え冷却し、固形分80%のブロックポリイソシアネート架橋剤を得た。
Production Example 3
Preparation of block polyisocyanate curing agent In a five-necked flask equipped with a reflux condenser, a stirrer, a dropping funnel and a nitrogen introduction tube, 199.1 parts of hexamethylene diisocyanate trimer (Coronate EH) and 31.6 of methyl isobutyl ketone The part was prepared and heated and held at 40 ° C. in a nitrogen atmosphere. To this was added 0.2 part of dibutyltin dilaurate, and further 87.0 parts of methylethylketoxime was added dropwise over 2 hours from the dropping funnel. After completion of the addition, the reaction was carried out at 70 ° C. until the peak of the isocyanate group disappeared by IR spectrum. It was. After completion of the reaction, 38.1 parts of methyl isobutyl ketone and 1.6 parts of butanol were added and cooled to obtain a block polyisocyanate crosslinking agent having a solid content of 80%.
製造例4
エポキシ樹脂系顔料分散樹脂の調製
エピコート828 382部、ビスフェノールA118部を反応容器に入れ、窒素雰囲気下150〜160℃へ加熱した。反応混合物を150〜160℃でエポキシ当量が500に達するまで反応させた。次いで、反応混合物を140〜145℃に冷却後、2−エチルヘキサノールハーフブロック化トルエンジイソシアネート203部を加えた。反応混合物を140〜145℃に約1時間保ち、次いで、ジプロピレングリコールモノブチルエーテル209部を加えた。次に、反応混合物を90℃以下に冷却し、1−(2−ヒドロキシエチルチオ)プロパン−2−オール272部、ジメチロールプロピオン酸134部、脱イオン水144部を加えた。この混合物を約8の酸価が得られるまで65〜75℃で反応させて顔料分散用樹脂を得た。これを冷却し、30%の固形分量になるまで脱イオン水で希釈し、顔料分散用ワニスを得た。
Production Example 4
Preparation of Epoxy Resin Pigment Dispersion Resin 382 parts of Epicoat 828 and 118 parts of bisphenol A were placed in a reaction vessel and heated to 150 to 160 ° C. in a nitrogen atmosphere. The reaction mixture was reacted at 150-160 ° C. until the epoxy equivalent reached 500. Subsequently, after cooling the reaction mixture to 140 to 145 ° C., 203 parts of 2-ethylhexanol half-blocked toluene diisocyanate was added. The reaction mixture was kept at 140-145 ° C. for about 1 hour and then 209 parts dipropylene glycol monobutyl ether was added. Next, the reaction mixture was cooled to 90 ° C. or lower, and 272 parts of 1- (2-hydroxyethylthio) propan-2-ol, 134 parts of dimethylolpropionic acid, and 144 parts of deionized water were added. This mixture was reacted at 65 to 75 ° C. until an acid value of about 8 was obtained to obtain a pigment dispersing resin. This was cooled and diluted with deionized water to a solids content of 30% to obtain a varnish for pigment dispersion.
製造例5
カチオン性メインエマルションの調製
製造例1のカチオン性樹脂と製造例3のポリイソシアネート架橋剤を固形分として70:30の割合で混合し、酢酸で中和率40%に中和し、脱イオン水を加え、ゆっくり希釈し、ついで不揮発分が37質量%になるようにメチルイソブチルケトン及び脱イオン水を除去し、カチオン性メインエマルションを得た。
Production Example 5
Preparation of Cationic Main Emulsion The cationic resin of Production Example 1 and the polyisocyanate cross-linking agent of Production Example 3 were mixed as a solid content in a ratio of 70:30, neutralized with acetic acid to a neutralization rate of 40%, and deionized water Was added and diluted slowly, and then methyl isobutyl ketone and deionized water were removed so that the non-volatile content was 37% by mass to obtain a cationic main emulsion.
製造例6
カチオン性アクリル樹脂エマルションの調製
上記製造例5と同様に、製造例2のカチオン性アクリル樹脂と製造例3の架橋剤を固形分として70:30の割合で含む不揮発分33%のエマルションを作成した。
Production Example 6
Preparation of Cationic Acrylic Resin Emulsion In the same manner as in Production Example 5, an emulsion having a non-volatile content of 33% containing the cationic acrylic resin of Production Example 2 and the crosslinking agent of Production Example 3 in a ratio of 70:30 as a solid content was prepared. .
製造例7
カチオン性顔料ペーストの調製
下記配合量のものを分散することによりカチオン性顔料ペーストを調製した。
Production Example 7
Preparation of Cationic Pigment Paste A cationic pigment paste was prepared by dispersing the following blending amount.
上記表中、カーボンブラック:三菱化学株式会社製、MA−100、酸化チタン:石原産業株式会社製、タイペークCR−97である。 In the above table, carbon black: manufactured by Mitsubishi Chemical Corporation, MA-100, titanium oxide: manufactured by Ishihara Sangyo Co., Ltd., Type CR-97.
実施例1
製造例5のカチオン性メインエマルション35重量部、製造例6のカチオン性アクリル樹脂エマルション4重量部、製造例7のカチオン性顔料分散ペースト13.3重量部、および脱イオン水47.4重量部を混合して、カチオン電着塗料組成物を得た。
Example 1
35 parts by weight of the cationic main emulsion of Production Example 5, 4 parts by weight of the cationic acrylic resin emulsion of Production Example 6, 13.3 parts by weight of the cationic pigment dispersion paste of Production Example 7, and 47.4 parts by weight of deionized water Mixing was performed to obtain a cationic electrodeposition coating composition.
得られたカチオン電着塗料組成物について以下の沈降性試験を行った。カチオン電着塗料組成物を、直径20mmの試験管に、100mmの高さまで流し入れた。この試験管を静置し沈殿を生成させた。静置7日間後に生じた沈殿の厚さ(mm)を測定し、沈降量とした。測定した沈降量(mm)を表2に示す。また、電着塗料組成物の不揮発分(重量%)、pHを表2に示す。 The following settling test was performed on the obtained cationic electrodeposition coating composition. The cationic electrodeposition coating composition was poured into a test tube having a diameter of 20 mm to a height of 100 mm. The test tube was left to generate a precipitate. The thickness (mm) of the precipitate generated after 7 days of standing was measured and used as the amount of sediment. Table 2 shows the measured sedimentation amount (mm). Table 2 shows the nonvolatile content (% by weight) and pH of the electrodeposition coating composition.
得られたカチオン電着塗料組成物を用いて、リン酸亜鉛処理した冷延鋼板に電着塗装し、水洗後、140℃で20分間焼き付けた。得られた硬化塗膜の膜厚を表2に示す。また、硬化塗膜の外観を目視で評価し、異常がみられない場合を「異常なし」、目視で異常が確認できる場合を「異常あり」として評価した。 The obtained cationic electrodeposition coating composition was electrodeposited on a cold-rolled steel sheet treated with zinc phosphate, washed with water, and baked at 140 ° C. for 20 minutes. Table 2 shows the thickness of the obtained cured coating film. Further, the appearance of the cured coating film was visually evaluated. The case where no abnormality was observed was evaluated as “no abnormality”, and the case where abnormality could be visually confirmed was evaluated as “abnormal”.
実施例2
製造例7のカチオン性顔料分散ペーストの製造においてヘプタン酸1重量部の代わりにヘプタン酸5重量部を用いたこと以外は、実施例1と同様にして、カチオン電着塗料組成物を調製した。得られた塗料組成物を用いて、実施例1と同様に評価を行った。得られた結果を表2に示す。
Example 2
A cationic electrodeposition coating composition was prepared in the same manner as in Example 1 except that 5 parts by weight of heptanoic acid was used instead of 1 part by weight of heptanoic acid in the production of the cationic pigment dispersion paste of Production Example 7. Evaluation was performed in the same manner as in Example 1 using the obtained coating composition. The obtained results are shown in Table 2.
実施例3
製造例7のカチオン性顔料分散ペーストの製造においてヘプタン酸1重量部の代わりにカプリル酸2重量部を用いたこと以外は、実施例1と同様にして、カチオン電着塗料組成物を調製した。得られた塗料組成物を用いて、実施例1と同様に評価を行った。得られた結果を表2に示す。
Example 3
A cationic electrodeposition coating composition was prepared in the same manner as in Example 1 except that 2 parts by weight of caprylic acid was used instead of 1 part by weight of heptanoic acid in the production of the cationic pigment dispersion paste of Production Example 7. Evaluation was performed in the same manner as in Example 1 using the obtained coating composition. The obtained results are shown in Table 2.
実施例4
製造例7のカチオン性顔料分散ペーストの製造においてヘプタン酸1重量部の代わりにカデナックスGS−90(ライオン社製、アルコールエステル系脂肪酸エステル)を2重量部を用いたこと以外は、実施例1と同様にして、カチオン電着塗料組成物を調製した。得られた塗料組成物を用いて、実施例1と同様に評価を行った。得られた結果を表2に示す。
Example 4
Example 1 with the exception that 2 parts by weight of CADENAX GS-90 (produced by Lion Corporation, alcohol ester fatty acid ester) was used instead of 1 part by weight of heptanoic acid in the production of the cationic pigment dispersion paste of Production Example 7. Similarly, a cationic electrodeposition coating composition was prepared. Evaluation was performed in the same manner as in Example 1 using the obtained coating composition. The obtained results are shown in Table 2.
実施例5
製造例7のカチオン性顔料分散ペーストの製造においてヘプタン酸1重量部の代わりにカデナックスGS−90(ライオン社製、アルコールエステル系脂肪酸エステル)を5重量部を用いたこと以外は、実施例1と同様にして、カチオン電着塗料組成物を調製した。得られた塗料組成物を用いて、実施例1と同様に評価を行った。得られた結果を表2に示す。
Example 5
Example 1 except that 5 parts by weight of Kadenax GS-90 (produced by Lion Corporation, alcohol ester fatty acid ester) was used instead of 1 part by weight of heptanoic acid in the production of the cationic pigment dispersion paste of Production Example 7. Similarly, a cationic electrodeposition coating composition was prepared. Evaluation was performed in the same manner as in Example 1 using the obtained coating composition. The obtained results are shown in Table 2.
実施例6
製造例7のカチオン性顔料分散ペーストの製造においてヘプタン酸1重量部の代わりにカオーワックスEB−G(花王社製、不飽和脂肪酸モノアミド)を2重量部を用いたこと以外は、実施例1と同様にして、カチオン電着塗料組成物を調製した。得られた塗料組成物を用いて、実施例1と同様に評価を行った。得られた結果を表2に示す。
Example 6
Example 1 with the exception that 2 parts by weight of Kao wax EB-G (unsaturated fatty acid monoamide) was used in place of 1 part by weight of heptanoic acid in the production of the cationic pigment dispersion paste of Production Example 7. Similarly, a cationic electrodeposition coating composition was prepared. Evaluation was performed in the same manner as in Example 1 using the obtained coating composition. The obtained results are shown in Table 2.
実施例7
製造例7のカチオン性顔料分散ペーストの製造においてヘプタン酸1重量部の代わりにレオドールMS−50(花王社製、グリセリンエステル系脂肪酸エステル)を5重量部を用いたこと以外は、実施例1と同様にして、カチオン電着塗料組成物を調製した。得られた塗料組成物を用いて、実施例1と同様に評価を行った。得られた結果を表2に示す。
Example 7
Example 1 except that 5 parts by weight of Rhedol MS-50 (manufactured by Kao Corporation, glycerin ester fatty acid ester) was used instead of 1 part by weight of heptanoic acid in the production of the cationic pigment dispersion paste of Production Example 7. Similarly, a cationic electrodeposition coating composition was prepared. Evaluation was performed in the same manner as in Example 1 using the obtained coating composition. The obtained results are shown in Table 2.
実施例8
製造例7のカチオン性顔料分散ペーストの製造においてヘプタン酸1重量部の代わりにアーマイドO(ライオン社製、アルカノールアミド)を2重量部を用いたこと以外は、実施例1と同様にして、カチオン電着塗料組成物を調製した。得られた塗料組成物を用いて、実施例1と同様に評価を行った。得られた結果を表3に示す。
Example 8
In the production of the cationic pigment dispersion paste of Production Example 7, a cation was obtained in the same manner as in Example 1 except that 2 parts by weight of Armido O (Lion Corporation, alkanolamide) was used instead of 1 part by weight of heptanoic acid. An electrodeposition coating composition was prepared. Evaluation was performed in the same manner as in Example 1 using the obtained coating composition. The obtained results are shown in Table 3.
実施例9
製造例7のカチオン性顔料分散ペーストの製造においてヘプタン酸1重量部の代わりにエソミンC/12(ライオン社製、アルキルアミンエチレンオキサイド付加アミン)を5重量部を用いたこと以外は、実施例1と同様にして、カチオン電着塗料組成物を調製した。得られた塗料組成物を用いて、実施例1と同様に評価を行った。得られた結果を表3に示す。
Example 9
Example 1 except that 5 parts by weight of Esomine C / 12 (manufactured by Lion Corporation, alkylamine ethylene oxide added amine) was used instead of 1 part by weight of heptanoic acid in the production of the cationic pigment dispersion paste of Production Example 7. In the same manner as above, a cationic electrodeposition coating composition was prepared. Evaluation was performed in the same manner as in Example 1 using the obtained coating composition. The obtained results are shown in Table 3.
比較例1
製造例7のカチオン性顔料分散ペーストの製造においてヘプタン酸1重量部を加えなかったこと以外は、実施例1と同様にして、カチオン電着塗料組成物を調製した。得られた塗料組成物を用いて、実施例1と同様に評価を行った。得られた結果を表3に示す。
Comparative Example 1
A cationic electrodeposition coating composition was prepared in the same manner as in Example 1 except that 1 part by weight of heptanoic acid was not added in the production of the cationic pigment dispersion paste of Production Example 7. Evaluation was performed in the same manner as in Example 1 using the obtained coating composition. The obtained results are shown in Table 3.
製造例8
アニオン性顔料分散用樹脂の調製
攪拌装置、冷却管、窒素導入管、温度調整機に連結した温度計を整備した2Lの反応容器にイソプロピルアルコール700重量部を仕込み、窒素雰囲気下で80℃に加熱した。反応容器に、メタクリル酸メチル210重量部、アクリル酸ブチル196重量部、スチレン140重量部、メタクリル酸2−ヒドロキシエチル84重量部、アクリル酸70重量部、アゾビスジメチルバレロ二トリル7重量部の混合溶液を3時間かけて等速滴下し、その後、2時間80℃で保持することにより、固形分50%、酸価78mgKOH/g、水酸基価52mgKOH/g、重量平均分子量28000の顔料分散用アクリル共重合体樹脂(アニオン性顔料分散用樹脂)を得た。
Production Example 8
Preparation of resin for dispersing anionic pigment Disperse 700 parts by weight of isopropyl alcohol in a 2 L reaction vessel equipped with a stirrer, a cooling pipe, a nitrogen introduction pipe, and a thermometer connected to a temperature controller, and heat to 80 ° C. in a nitrogen atmosphere. did. In a reaction vessel, 210 parts by weight of methyl methacrylate, 196 parts by weight of butyl acrylate, 140 parts by weight of styrene, 84 parts by weight of 2-hydroxyethyl methacrylate, 70 parts by weight of acrylic acid, and 7 parts by weight of azobisdimethylvaleronitryl The solution was added dropwise at a constant rate over 3 hours, and then kept at 80 ° C. for 2 hours, whereby an acrylic copolymer for pigment dispersion having a solid content of 50%, an acid value of 78 mgKOH / g, a hydroxyl value of 52 mgKOH / g, and a weight average molecular weight of 28000 was obtained. A polymer resin (an anionic pigment dispersing resin) was obtained.
製造例9
アニオン性顔料分散ペーストの調製
製造例8のアニオン性顔料分散用樹脂(固形分50%、分子量28000、酸価78、水酸基価52)100部、酸化チタン(タイペークCR−95、石原産業(株)製)120部を加え、さらにトリエチルアミン5部、脱イオン水115部を加えて、固形分50%のアニオン性顔料分散ペーストを得た。
Production Example 9
Preparation of anionic pigment dispersion paste Anionic pigment dispersion resin of Production Example 8 (solid content 50%, molecular weight 28000, acid value 78, hydroxyl value 52) 100 parts titanium oxide (Taipeku CR-95, Ishihara Sangyo Co., Ltd.) 120 parts) and 5 parts of triethylamine and 115 parts of deionized water were added to obtain an anionic pigment dispersion paste having a solid content of 50%.
製造例10
アクリル共重合体樹脂の調製
攪拌装置、冷却管、窒素導入管、温度調整機に連結した温度計を装備した2Lの反応容器にイソプロピルアルコール700部を仕込み、窒素雰囲気下で80℃に加熱し、メタクリル酸メチル(MMA)322部、アクリル酸ブチル(nBA)140部、スチレン(St)105部、メタクリル酸2−ヒドロキシエチル(HEMA)84部、アクリル酸(AA)49部、アゾビスジメチルバレロニトリル7部の混合溶液を3時間で等速滴下し、その後、2時間80℃で保持することにより、酸価55mgKOH/g、水酸基価52mgKOH/g、重量平均分子量30000のアクリル共重合体樹脂を得た。
Production Example 10
Preparation of acrylic copolymer resin A 2 L reaction vessel equipped with a stirrer, a cooling tube, a nitrogen introduction tube, and a thermometer connected to a temperature controller was charged with 700 parts of isopropyl alcohol and heated to 80 ° C. in a nitrogen atmosphere. 322 parts of methyl methacrylate (MMA), 140 parts of butyl acrylate (nBA), 105 parts of styrene (St), 84 parts of 2-hydroxyethyl methacrylate (HEMA), 49 parts of acrylic acid (AA), azobisdimethylvaleronitrile An acrylic copolymer resin having an acid value of 55 mgKOH / g, a hydroxyl value of 52 mgKOH / g, and a weight average molecular weight of 30000 is obtained by dropping 7 parts of the mixed solution at a constant rate in 3 hours and then holding at 80 ° C. for 2 hours. It was.
実施例10
製造例10のアクリル共重合体樹脂313部、硬化剤としてメラミン樹脂であるサイメル285−100(サイテック社製)86部、トリエチルアミン11部を混合撹拌しながら、製造例9のアニオン性顔料分散ペーストに対して、含まれる顔料に対して2重量%となる量のヘプタン酸を加えたもの255部を加えて混合撹拌し、さらにイオン交換水3035部を加えて、アニオン性電着塗料組成物を調製した。得られた塗料組成物について、沈降性試験を上記と同様に行い、7日間静置後の沈降量(mm)を測定した。得られた結果を表4に示す。
Example 10
While mixing and stirring 313 parts of the acrylic copolymer resin of Production Example 10, 86 parts of Cymel 285-100 (manufactured by Cytec Co., Ltd.) which is a melamine resin as a curing agent, and 11 parts of triethylamine, the anionic pigment dispersion paste of Production Example 9 In contrast, 255 parts of heptanoic acid in an amount of 2% by weight with respect to the contained pigment was added, mixed and stirred, and 3035 parts of ion-exchanged water was further added to prepare an anionic electrodeposition coating composition. did. The resulting coating composition was subjected to a sedimentation test in the same manner as described above, and the amount of sediment (mm) after standing for 7 days was measured. Table 4 shows the obtained results.
得られたアニオン電着塗料組成物を、6063Sアルミニウム合金版にアルマイト処理(アルマイト皮膜厚9μm)および封孔処理(85℃の熱水に3分浸漬)を施したシルバー色の基材に、塗装電圧150〜250Vの直流電圧を3分間印加して所定膜厚になるように電着塗装した。その後、180℃にて30分間焼付け、乾燥を行い、硬化電着塗膜を得た。得られた硬化塗膜の膜厚を測定した。また、硬化塗膜の外観を目視で評価し、異常がみられない場合を「異常なし」、目視で異常が確認できる場合を「異常あり」として評価した。また、硬化塗膜の光沢値として、光沢計(BYK−GardnerGmbH社製)を用いて60°鏡面反射率を測定した。得られた結果を表4に示す。 The obtained anion electrodeposition coating composition was coated on a silver base material obtained by subjecting a 6063S aluminum alloy plate to an alumite treatment (alumite film thickness 9 μm) and sealing treatment (immersion in hot water at 85 ° C. for 3 minutes). A DC voltage of 150 to 250 V was applied for 3 minutes, and electrodeposition was applied to achieve a predetermined film thickness. Thereafter, baking was performed at 180 ° C. for 30 minutes and drying was performed to obtain a cured electrodeposition coating film. The film thickness of the obtained cured coating film was measured. Further, the appearance of the cured coating film was visually evaluated. The case where no abnormality was observed was evaluated as “no abnormality”, and the case where abnormality could be visually confirmed was evaluated as “abnormal”. Further, as a gloss value of the cured coating film, a 60 ° specular reflectance was measured using a gloss meter (manufactured by BYK-Gardner GmbH). Table 4 shows the obtained results.
実施例11
製造例9のアニオン性顔料分散ペーストに対して、含まれる顔料に対して2重量%となる量のカプリル酸を加えたこと以外は、実施例10と同様にしてアニオン電着塗料組成物を調製し、評価した。得られた結果を表4に示す。
Example 11
An anionic electrodeposition coating composition was prepared in the same manner as in Example 10 except that caprylic acid in an amount of 2% by weight with respect to the contained pigment was added to the anionic pigment dispersion paste of Production Example 9. And evaluated. Table 4 shows the obtained results.
実施例12
製造例9のアニオン性顔料分散ペーストに対して、含まれる顔料に対して1.8重量%となる量のカデナックスGS−90(ライオン社製、アルコールエステル系脂肪酸エステル)を加えたこと以外は、実施例10と同様にしてアニオン電着塗料組成物を調製し、評価した。得られた結果を表4に示す。
Example 12
To the anionic pigment dispersion paste of Production Example 9, except that Kadenax GS-90 (produced by Lion Corporation, alcohol ester fatty acid ester) was added in an amount of 1.8% by weight with respect to the contained pigment. In the same manner as in Example 10, an anionic electrodeposition coating composition was prepared and evaluated. Table 4 shows the obtained results.
実施例13
製造例9のアニオン性顔料分散ペーストに対して、含まれる顔料に対して5重量%となる量のカデナックスGS−90(ライオン社製、アルコールエステル系脂肪酸エステル)を加えたこと以外は、実施例10と同様にしてアニオン電着塗料組成物を調製し、評価した。得られた結果を表4に示す。
Example 13
Except for adding an amount of 5% by weight of Cadenax GS-90 (produced by Lion Corporation, alcohol ester fatty acid ester) to the anionic pigment dispersion paste of Production Example 9 In the same manner as in No. 10, an anionic electrodeposition coating composition was prepared and evaluated. Table 4 shows the obtained results.
実施例14
製造例9のアニオン性顔料分散ペーストに対して、含まれる顔料に対して2重量%となる量のカオーワックスEB−G(花王社製、不飽和脂肪酸モノアミド)を加えたこと以外は、実施例10と同様にしてアニオン電着塗料組成物を調製し、評価した。得られた結果を表4に示す。
Example 14
Except that Kao wax EB-G (Kao Co., Ltd., unsaturated fatty acid monoamide) was added to the anionic pigment dispersion paste of Production Example 9 in an amount of 2% by weight based on the contained pigment. In the same manner as in No. 10, an anionic electrodeposition coating composition was prepared and evaluated. Table 4 shows the obtained results.
実施例15
製造例9のアニオン性顔料分散ペーストに対して、含まれる顔料に対して5重量%となる量のレオドールMS−50(花王社製、グリセリンエステル系脂肪酸エステル)を加えたこと以外は、実施例10と同様にしてアニオン電着塗料組成物を調製し、評価した。得られた結果を表5に示す。
Example 15
Except that Rheidol MS-50 (produced by Kao Corporation, glycerin ester fatty acid ester) was added to the anionic pigment dispersion paste of Production Example 9 in an amount of 5% by weight based on the contained pigment. In the same manner as in No. 10, an anionic electrodeposition coating composition was prepared and evaluated. The results obtained are shown in Table 5.
実施例16
製造例9のアニオン性顔料分散ペーストに対して、含まれる顔料に対して2重量%となる量のアーマイドO(ライオン社製、アルカノールアミド)を加えたこと以外は、実施例10と同様にしてアニオン電着塗料組成物を調製し、評価した。得られた結果を表5に示す。
Example 16
The same procedure as in Example 10 was performed, except that Armide O (an alkanolamide manufactured by Lion Corporation) in an amount of 2% by weight with respect to the contained pigment was added to the anionic pigment dispersion paste of Production Example 9. Anionic electrodeposition coating compositions were prepared and evaluated. The results obtained are shown in Table 5.
実施例17
製造例9のアニオン性顔料分散ペーストに対して、含まれる顔料に対して2重量%となる量のエソミンC/12(ライオン社製、アルキルアミンエチレンオキサイド付加アミン)を加えたこと以外は、実施例10と同様にしてアニオン電着塗料組成物を調製し、評価した。得られた結果を表5に示す。
Example 17
Except for adding an amount of 2% by weight of Esomine C / 12 (produced by Lion Corporation, alkylamine ethylene oxide added amine) to the anionic pigment dispersion paste of Production Example 9 In the same manner as in Example 10, an anionic electrodeposition coating composition was prepared and evaluated. The results obtained are shown in Table 5.
比較例2
製造例9のアニオン性顔料分散ペーストに脂肪酸類などを加えなかったこと以外は、実施例10と同様にしてアニオン電着塗料組成物を調製し、評価した。得られた結果を表5に示す。
Comparative Example 2
An anionic electrodeposition coating composition was prepared and evaluated in the same manner as in Example 10 except that fatty acids and the like were not added to the anionic pigment dispersion paste of Production Example 9. The results obtained are shown in Table 5.
実施例および比較例からわかるとおり、本発明の電着塗料組成物は、比較例の電着塗料組成物と比較して、沈降安定性に各段に優れる電着塗料組成物であることが確認された。 As can be seen from the examples and comparative examples, it is confirmed that the electrodeposition coating composition of the present invention is an electrodeposition coating composition excellent in sedimentation stability in each stage as compared with the electrodeposition coating composition of the comparative example. It was done.
1・・・電着浴
2・・・オーバーフロー槽
3・・・ポンプ
4・・・フィルター
5・・・ライザー
6・・・ノズル
11・・・攪拌羽
30・・・電着浴
31・・・第1水洗浴
32・・・第2水洗浴
33・・・限外濾過器(UF)
34および35・・・循環攪拌システム
36・・・攪拌羽。
DESCRIPTION OF SYMBOLS 1 ...
34 and 35: Circulating stirring system 36: Stirring blades.
Claims (6)
(c)以下の(c1)〜(c3)のいずれかの成分:
(c1)カチオン性樹脂、ブロックポリイソシアネート硬化剤および硬化触媒、
(c2)アニオン性樹脂、ブロックポリイソシアネート硬化剤および硬化触媒、または
(c3)アニオン性樹脂およびメラミン樹脂、
を含有する電着塗料組成物であって、
該硬化触媒は、顔料ペースト調製時に加えるか、または他の塗料製造工程で加え、
得られた電着塗料組成物を直径20mmの試験管に100mmの高さまで入れて、7日間静置後に生じた沈澱の厚さ(mm)を沈降量としたときに沈降量が5mm未満である電着塗料組成物。(A) a fatty acid having 4 to 22 carbon atoms, a derivative of a fatty acid having 4 to 22 carbon atoms, or a pigment antisettling agent which is a mixture of the two, and (b) a pigment paste containing a pigment, and
(C) Any of the following components (c1) to (c3):
(C1) cationic resin, block polyisocyanate curing agent and curing catalyst,
(C2) anionic resin, block polyisocyanate curing agent and curing catalyst, or
(C3) anionic resin and melamine resin,
An electrodeposition coating composition containing
The curing catalyst is added at the time of preparing the pigment paste or added in another paint manufacturing process,
When the obtained electrodeposition coating composition is put in a test tube having a diameter of 20 mm to a height of 100 mm and the thickness (mm) of the precipitate generated after standing for 7 days is defined as the amount of sedimentation, the sedimentation amount is less than 5 mm. Electrodeposition paint composition.
(c)以下の(c1)〜(c3)のいずれかの成分:(C) Any of the following components (c1) to (c3):
(c1)カチオン性樹脂、ブロックポリイソシアネート硬化剤および硬化触媒、(C1) cationic resin, block polyisocyanate curing agent and curing catalyst,
(c2)アニオン性樹脂、ブロックポリイソシアネート硬化剤および硬化触媒、または(C2) anionic resin, block polyisocyanate curing agent and curing catalyst, or
(c3)アニオン性樹脂およびメラミン樹脂、(C3) anionic resin and melamine resin,
を含有する請求項1記載の電着塗料組成物の製造方法であって、A method for producing an electrodeposition coating composition according to claim 1, comprising
上記成分(a)および成分(b)を含む顔料ペーストを調製する調製工程、およびA preparation step of preparing a pigment paste comprising the component (a) and the component (b), and
得られた顔料ペーストと成分(c)を、水性媒体に分散させる、分散工程、 A dispersion step of dispersing the obtained pigment paste and component (c) in an aqueous medium;
但し、硬化触媒は顔料ペースト調製時に加えるか、または他の塗料製造工程で加えるこ However, the curing catalyst must be added at the time of pigment paste preparation or added during other paint manufacturing processes. と、When,
を包含し、かつ得られた電着塗料組成物が直径20mmの試験管に100mmの高さまでAnd the obtained electrodeposition coating composition is placed in a test tube having a diameter of 20 mm up to a height of 100 mm. 入れて、7日間静置後に生じた沈澱の厚さ(mm)を沈降量としたときに沈降量が5mmWhen the amount of sediment (mm) generated after standing for 7 days is defined as the sedimentation amount, the sedimentation amount is 5 mm. 未満であることを特徴とする請求項1記載の電着塗料組成物の製造方法。The method for producing an electrodeposition coating composition according to claim 1, wherein
カチオン性樹脂、ブロックポリイソシアネート硬化剤、および該顔料ペーストを、水性媒体に分散させる、分散工程、
を包含する、カチオン性の電着塗料組成物の製造方法であって、得られた電着塗料組成物が直径20mmの試験管に100mmの高さまで入れて、7日間静置後に生じた沈澱の厚さ(mm)を沈降量としたときに沈降量が5mm未満であることを特徴とするカチオン性電着塗料組成物の製造方法。(A) C4-C22 fatty acid, C4-C22 fatty acid derivative, or pigment anti-settling agent which is a mixture of these two types, (b) Preparation step for preparing pigment paste containing pigment and curing catalyst A dispersion step of dispersing the cationic resin, the blocked polyisocyanate curing agent, and the pigment paste in an aqueous medium,
A method for producing a cationic electrodeposition coating composition, comprising: depositing the resulting electrodeposition coating composition into a test tube having a diameter of 20 mm up to a height of 100 mm and allowing the precipitate formed after standing for 7 days to A method for producing a cationic electrodeposition coating composition, wherein the amount of sedimentation is less than 5 mm when the thickness (mm) is the amount of sedimentation.
アニオン性樹脂、メラミン樹脂、および該顔料ペーストを、水性媒体に分散させる、分散工程、
を包含する、アニオン性の電着塗料組成物の製造方法であって、得られた電着塗料組成物が直径20mmの試験管に100mmの高さまで入れて、7日間静置後に生じた沈澱の厚さ(mm)を沈降量としたときに沈降量が5mm未満であることを特徴とするアニオン性電着塗料組成物の製造方法。
A preparation step of preparing a pigment paste containing (a) a fatty acid having 4 to 22 carbon atoms, a derivative of a fatty acid having 4 to 22 carbon atoms, or a mixture of these two, and (b) a pigment, and An anionic resin, a melamine resin , and the pigment paste are dispersed in an aqueous medium, a dispersion step;
The obtained electrodeposition coating composition is placed in a test tube having a diameter of 20 mm up to a height of 100 mm and the precipitate formed after standing for 7 days is included. A method for producing an anionic electrodeposition coating composition, wherein the amount of sedimentation is less than 5 mm when the thickness (mm) is the amount of sedimentation.
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CN108795144A (en) * | 2018-05-25 | 2018-11-13 | 河北晨阳工贸集团有限公司 | Anti- precipitation cathode electrophoresis dope of one kind and preparation method thereof |
CN110003419B (en) * | 2019-03-08 | 2021-10-08 | 黎明化工研究设计院有限责任公司 | Pre-gel and preparation method and application thereof |
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