Claims
- 1. A method of producing an adherent and corrosion-inhibiting multi-layer coating on small metal parts comprising the steps of
- (A) phosphating the metal parts with an aqueous metal phosphating solution;
- (B) electrophoretically depositing a first film of a siccative organic coating composition on the phosphated metal parts contained on a rack or in a rotatable porous barrel wherein said organic coating composition is selected from anodic and cathodic coating compositions;
- (C) non-electrophoretically applying a second film of a cathodic or anodic composition over the first film prior to curing of the film deposited in (B) to form a seal coat, said second film comprising at least one film-forming organic resin component provided: that the compositions of second film is a cathodic composition when the composition of the first film is anodic; and the composition of the second film is anodic when the composition of the first film is cathodic; and
- (D) curing the coatings on the metal parts; wherein the small metal parts comprise nuts, bolts, fasteners, screws, small sub-assemblies, and mixtures thereof.
- 2. The method of claim 1 wherein the aqueous metal phosphating solution is an aqueous acidic zinc, lead, iron or manganese phosphating solution.
- 3. The method of claim 1 wherein the phosphated metal part obtained in step (A) is further rinsed with water or contacted with an organic or inorganic composition or an aqueous solution containing an organic or inorganic composition which seals the phosphate coating prior to step (B).
- 4. The method of claim 3 wherein the phosphated metal part is rinsed with an aqueous solution containing chromium or an alkali metal fluorozirconate, and the rinsed metal is dried prior to the electrophoretic deposition of step (B).
- 5. The method of claim 1 wherein the electrophoretic deposition in step (B) is conducted on the phosphated metal parts contained in a rotatable porous barrel.
- 6. The method of claim 5 wherein the electrophoretic deposition of the organic coating is carried out at a voltage within the range of from about 50 to 1000 volts at temperatures of from about 20.degree.-40.degree. C. and for a period of from about 10 seconds to about 10 minutes.
- 7. The method of claim 1 wherein the siccative organic coating composition used in (B) is an aqueous dispersion, emulsion or solution of a thermosetting resin wherein the resin has a concentration from about 3% to about 40% by weight.
- 8. The method of claim 7 wherein a pigment or dye is incorporated into said resin dispersion, emulsion or solution.
- 9. The method of claim 1 wherein the siccative organic coating composition used in step (B) comprises a polar resin containing at least one member selected from the group consisting of epoxy resins, melamine-formaldehyde resins, alkyd resins, polyester resins, acrylic resins, and polybutadiene resins.
- 10. The method of claim 1 wherein the composition applied in step (C) comprises water and at least one water-dispersible or emulsifiable film-forming resin selected from the group consisting of urethane resins, amino resins, acrylic resins, alkyd resins, epoxy resins, phenolic resins, cyclized olefin rubbers, and mixtures thereof.
- 11. A method of producing an adherent and rust-inhibiting multi-layer finish on small metal parts wherein the metal is selected from the group consisting of ferrous metal, zinc, aluminum, and alloys thereof comprising the steps of
- (A) immersing the parts in an aqueous acidic zinc, lead, iron or manganese phosphating solution for a period of time and at a temperature sufficient to deposit an adherent phosphate coating on said metal parts;
- (B) rinsing the phosphate-coated parts with an aqueous acidic solution containing an under-paint corrosion inhibitor;
- (C) immersing the phosphate-coated metal parts contained on a rack or in a rotatable porous barrel in an aqueous dispersion, emulsion or solution of a cathodic or anodic thermosetting resin and passing through said parts, an electric current to electrodeposit resin particles on the phosphate-coated parts by electrophoresis to form a first resin film;
- (D) contacting the parts having the first resin film with an aqueous composition prior to curing of the first resin film to form a second film of the aqueous composition over the first film as a seal coat, said aqueous composition comprising water and at least one water-dispersible or emulsifying anodic or cathodic film-forming resin provided: that the compositions of second film is a cathodic composition when the composition of the first film is anodic; and the composition of the second film is anodic when the composition of the first film is cathodic; and
- (E) curing the films on the metal parts by subjecting the parts to an elevated temperature for a time sufficient to cure the films; wherein the small metal parts comprise nuts, bolts, fasteners, screws, small sub-assemblies, and mixtures thereof.
- 12. The method of claim 11 wherein the parts obtained in step (C) are further rinsed with water prior to step (D).
- 13. The method of claim 11 wherein the metal parts are immersed in step (A) in an aqueous acidic zinc phosphating solution.
- 14. The method of claim 11 wherein the thermosetting resin in the aqueous dispersion emulsion or solution used in step (C) has a concentration from about 3% to about 40% by weight.
- 15. The method of claim 11 wherein the first film of siccative organic coating composition is electrophoretically deposited on the phosphated surface in step (C) by immersing said parts in the aqueous dispersion, emulsion or solution of thermosetting resin and passing through said metal as an anode, a direct current having an initial voltage of from about 200 to 300 volts at about 4 to about 5 amperes.
- 16. The method of claim 1 wherein the thermosetting resin used in step (C) is at least one water-dispersible or emulsifiable resin selected from the group consisting of epoxy resins, melamine formaldehyde resins, alkyd resins, polyester resins, acrylic resins, polybutadiene resins, cyclized olefin rubbers, and phenolic resins.
- 17. The method of claim 1 wherein the resin films are cured in step (D) by heating at a temperature of from about 120.degree. C. to about 250.degree. C. for from about 5 to about 30 minutes.
- 18. The method of claim 1 wherein the film applied as a seal coat in step (D) comprises water and at least one thermosetting resin selected from the group consisting of epoxy resins, melamine formaldehyde resins, alkyd resins, polyester resins, acrylic resins, polybutadiene resins, and phenolic resins.
- 19. The method of claim 18 wherein the resin is a water-dispersible or emulsifiable epoxy resin or phenolic resin.
- 20. The method of claim 1 wherein the aqueous dispersion, emulsion or solution of thermosetting resin used in step (C) comprises in addition to water
- (1) at least one water-dispersible or emulsifiable film-forming thermosetting resin as the thermosetting resin;
- (2) from about 0.1 to about 15% by weight, based on the weight of resin (1) of a hydrophobic fluoroalkene polymer; and
- (3) an effective amount of at least one nonionic fluorocarbon surfactant.
- 21. The method of claim 24 wherein the film-forming resin (1) comprises a mixture of an epoxy resin and an aminoplast resin.
- 22. The method of claim 1 wherein the metal parts are contacted with the aqueous composition in step (D) by immersion or spraying.
- 23. A method of producing an adherent and corrosion-inhibiting multi-layer coating on small metal parts comprising the steps of
- (A) phosphating the metal parts with an aqueous metal phosphating solution;
- (B) electrophoretically depositing a first film of a siccative organic coating composition on the phosphated metal parts contained on a rack or in a rotatable porous barrel wherein said organic coating composition is selected from anodic and cathodic coating compositions, wherein the organic coating composition comprises at least one film-forming organic resin component and a fluoroalkene polymer;
- (C) non-electrophoretically applying a second film of a cathodic or anodic composition over the first film prior to curing of the film deposited in (B) to form a seal coat, said second film comprising at least one film-forming organic resin component provided: that the compositions of second film is a cathodic composition when the composition of the first film is anodic; and the composition of the second film is anodic when the composition of the first film is cathodic; and
- (D) curing the coatings on the metal parts.
- 24. A method of producing an adherent and corrosion-inhibiting multi-layer coating on small metal parts comprising the steps of
- (A) phosphating the metal parts with an aqueous metal phosphating solution;
- (B) electrophoretically depositing a first film of a siccative organic coating composition on the phosphated metal parts contained on a rack or in a rotatable porous barrel wherein said organic coating composition is selected from anodic and cathodic coating compositions;
- (C) non-electrophoretically applying a second film of a cathodic or anodic composition over the first film prior to curing of the film deposited in (B) to form a seal coat, said second film comprising at least one film-forming organic resin component and a fluoroalkene polymer provided that the compositions of second film is a cathodic composition when the composition of the first film is anodic; and the composition of the second film is anodic when the composition of the first film is cathodic; and
- (D) curing the coatings on the metal parts.
- 25. A method of producing an adherent and corrosion-inhibiting multi-layer coating on small metal parts comprising the steps of
- (A) phosphating the metal parts with an aqueous metal phosphating solution;
- (B) electrophoretically depositing a first film of a siccative organic coating composition on the phosphated metal parts contained on a rack or in a rotatable porous barrel wherein said organic coating composition is selected from anodic and cathodic coating compositions, wherein the organic coating composition comprises at least one film-forming organic resin component and at least one additive selected from mica, talc, carbon black, iron oxide and calcium carbonate;
- (C) non-electrophoretically applying a second film of a cathodic or anodic composition over the first film prior to curing of the film deposited in (B) to form a seal coat, said second film comprising at least one film-forming organic resin component provided: that the compositions of second film is a cathodic composition when the composition of the first film is anodic; and the composition of the second film is anodic when the composition of the first film is cathodic; and
- (D) curing the coatings on the metal parts.
- 26. The method of claim 25, wherein the additive in step (B) is at least one of mica and calcium carbonate.
- 27. A method of producing an adherent and corrosion-inhibiting multi-layer coating on small metal parts comprising the steps of
- (A) phosphating the metal parts with an aqueous metal phosphating solution;
- (B) electrophoretically depositing a first film of a siccative organic coating composition on the phosphated metal parts contained on a rack or in a rotatable porous barrel wherein said organic coating composition is selected from anodic and cathodic coating compositions;
- (C) non-electrophoretically applying a second film of a cathodic or anodic composition over the first film prior to curing of the film deposited in (B) to form a seal coat, said second film comprising at least one film-forming organic resin component and at least one additive selected from mica, talc, carbon black, iron oxide and calcium carbonate provided that the compositions of second film is a cathodic composition when the composition of the first film is anodic; and the composition of the second film is anodic when the composition of the first film is cathodic; and
- (D) curing the coatings on the metal parts.
- 28. The method of claim 27, wherein the additive in step (C) is at least one of mica and calcium carbonate.
Parent Case Info
This is a continuation of application Ser. No. 08/325,786 filed on Oct. 19, 1994 now abandoned, which is a continuation of application Ser. No. 08/156,308 filed on Nov. 23, 1993 now U.S. Pat. No. 5,385,655, which is a continuation of application Ser. No. 07/969,128 filed on Oct. 30, 1992 now abandoned.
US Referenced Citations (9)
Continuations (3)
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Number |
Date |
Country |
Parent |
325786 |
Oct 1994 |
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Parent |
156308 |
Nov 1993 |
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Parent |
969128 |
Oct 1992 |
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