Method for the selective removal of zinc ions from alkaline bath solutions in the serial surface treatment of metal components

US10443134B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10443134-B2
Application numberUS-201715592520-A
CountryUS
Kind codeB2
Filing dateMay 11, 2017
Priority dateNov 13, 2014
Publication dateOct 15, 2019
Grant dateOct 15, 2019

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  5. First independent claim

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Abstract

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The present invention relates to a method for the serial surface treatment of metal components that have zinc surfaces, wherein the method comprises an alkaline pretreatment, and a method for the selective removal of zinc ions from an alkaline bath solution for the serial surface treatment of metal surfaces that have zinc surfaces. According to the invention, in order to perform each method, part of the alkaline aqueous bath solution is brought in contact with an ion exchange resin that bears functional groups selected from —OPO3X2/n and/or —PO3X2/n, wherein X is either a hydrogen atom or an alkali metal and/or alkaline-earth metal atom to be exchanged having the particular valency n.

First claim

Opening claim text (preview).

What is claimed is: 1. A method for the selective removal of zinc ions from an alkaline aqueous bath solution for the serial surface treatment of metal components that have surfaces of zinc, said alkaline aqueous bath solution being stored in a system tank, wherein the alkaline aqueous bath solution contains: a) at least 50 mg/kg of iron(III) ions; b) at least 50 mg/kg of zinc(II) ions; and c) a complexing agent Y in the form of water-soluble condensed phosphates; water-soluble organic compounds that have at least one functional group selected from —OPO 3 X 2/n , —PO 3 X 2/n , and combinations thereof, wherein X is either a hydrogen atom or an alkali metal and/or alkaline-earth metal atom having a particular valency n; and combinations thereof; wherein the alkaline aqueous bath solution has a molar ratio of the complexing agent Y, with respect to the element phosphorus, to a total amount of the iron(III) ions and the zinc(II) ions that is greater than 1.0; the method comprising steps of: contacting a part of the bath solution with an ion exchange resin that bears functional groups containing —OPO 3 X 2/n and/or —PO 3 X 2/n , wherein X is either a hydrogen atom or an alkali metal and/or alkaline-earth metal atom to be exchanged having a particular valency n. 2. The method according to claim 1 , wherein the alkaline aqueous bath solution has a molar ratio of the complexing agent Y, with respect to the element phosphorus, to the iron(III) ions that is greater than 1.5. 3. The method according to claim 1 , wherein the iron(III) ions in the alkaline aqueous bath solution are present in an amount of at least 100 mg/kg, but not more than 2 g/kg. 4. The method according to claim 1 , wherein the alkaline aqueous bath solution has a pH value that is at least 9 and a free alkalinity that is at least 0.5 points but less than 50 points. 5. The method according to claim 1 , wherein the alkaline aqueous bath solution contains not more than 0.6 g/kg of aluminum dissolved in water. 6. The method according to claim 1 , wherein the ion exchange resin has, in total, at least 1.0 mol of the functional groups selected from —OPO 3 X 2/n and/or —PO 3 X 2/n per kilogram of the ion exchange resin. 7. The method according to claim 1 , wherein the ion exchange resin has a polymer backbone based on the monomers styrene, divinylbenzene and/or based on phenol-formaldehyde condensates. 8. The method according to claim 1 , wherein the functional groups of the ion exchange resin are selected from aminoalkyl phosphonic acid groups. 9. The method according to claim 8 , wherein the aminoalkyl phosphonic acid groups are selected from aminomethyl phosphonic acid groups conforming to —NR 1 —CH 2 —PO 3 X 2/n , wherein X is either a hydrogen atom or an alkali metal and/or alkaline-earth metal atom to be exchanged having the particular valency n and R 1 is a hydrogen atom or an alkyl, cycloalkyl, or aryl residue. 10. The method according to claim 1 , wherein the complexing agent Y of the alkaline aqueous bath solution additionally contains, in the α or β position with respect, to an —OPO 3 X 2/n and/or —PO 3 X 2/n group, an amino, hydroxyl, or carboxyl group. 11. The method according to claim 1 , wherein the ion exchange resin is a solid, which is in the form of beads having a bead diameter in the range of 0.2-2 mm. 12. A method for wet-chemical surface treatment of metal components, which have surfaces of zinc and aluminum and which are serially wet-chemically pretreated comprising steps of: A.) contacting metal components having surfaces of zinc and aluminum with an alkaline bath solution, which is stored in a system tank and contains: a) a complexing agent Y in the form of water-soluble condensed phosphates and/or in the form of water-soluble organic compounds, which have at least one functional group selected from —OPO 3 X 2/n and/or —PO 3 X 2/n , wherein X is either a hydrogen atom or an alkali metal and/or alkaline-earth metal atom having the particular valency n, and b) iron(III) ions, wherein the alkaline bath solution in the wet-chemical pretreatment has a pH value that is greater than 10 and a free alkalinity that is at least 0.5 points, but less than 50 points; wherein a maximum value “Zn max ” for concentration of dissolved zinc in the alkaline bath solution of the system tank is not greater than Zn max according to Formula I: Zn max =0.0004×(pH−9)×[FA]+0.6×[Y]  (I) pH is pH value; Zn max is the maximum value for concentration of dissolved zinc in mmol/l; [FA] is free alkalinity in mmol/l; [Y] is concentration in mmol/l of complexing agents Y in the form of water-soluble condensed phosphates, calculated as P 2 O 6 , and/or in the form of water-soluble organic compounds that have at least one functional group selected from —COOX 1/n , —OPO 3 X 2/n , and/or —PO 3 X 2/n , wherein X is either a hydrogen atom or an alkali metal and/or alkaline-earth metal atom having the particular valency n; and B.) preventing the maximum value Zn max in the wet-chemical pretreatment from being exceeded by: 1) contacting at least part of the alkaline bath solution of the system tank with an ion exchange resin that bears functional groups containing —OPO 3 X 2/n , and/or —PO 3 X 2/n , wherein X is either a hydrogen atom or an alkali metal and/or alkaline-earth metal atom to be exchanged having the particular valency n, and 2) returning the part of the alkaline bath solution that was brought in contact with the ion exchange resin to the system tank. 13. The method according to claim 12 , wherein the iron(III) ions in the alkaline aqueous bath solution are present in an amount of at least 50 mg/kg, but not more than 2 g/kg. 14. The method according to claim 12 , wherein the serial wet-chemical surface treatment of the metal components occurs at least for such a quantity of metal components that a total area of only zinc surfaces of the metal components in square meters that is greater than the following term is wet-chemically pretreated with the alkaline bath solution of the system tank: V B × Zn max × M Zn Δ ⁢ ⁢ m Zn wherein: V B is bath volume in m 3 ; Zn max is maximum concentration of dissolved zinc in mmol/l M Zn is molar mass of zinc in g/mol Δm Zn is area-standardized pickling removal with respect to the zinc surfaces of the metal components in g/m 2 . 15. The method according to claim 12 , wherein the alkaline aqueous bath solution contains not more than 0.6 g/kg of aluminum dissolved in water. 16. The method according to claim 12 , wherein the ion exchange resin has, in total, at least 1.0 mol of the functional groups selected from —OPO 3 X 2/n and/or —PO 3 X 2/n per kilogram of the ion exchange resin. 17. The method according to claim 12 , wherein the ion exchange resin has a polymer backbone based on the monomers styrene, divinylbenzene and/or based on phenol-formaldehyde condensates. 18. The method according to claim 12 , wherein the functional groups

Assignees

Inventors

Classifications

  • C23C22/86Primary

    Regeneration of coating baths · CPC title

  • Pretreatment of the material to be coated · CPC title

  • Controlling or regulating of the coating process · CPC title

  • using alkaline aqueous solutions with pH greater than 8 · CPC title

  • C23G1/36Primary

    Regeneration of waste pickling liquors · CPC title

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What does patent US10443134B2 cover?
The present invention relates to a method for the serial surface treatment of metal components that have zinc surfaces, wherein the method comprises an alkaline pretreatment, and a method for the selective removal of zinc ions from an alkaline bath solution for the serial surface treatment of metal surfaces that have zinc surfaces. According to the invention, in order to perform each method, pa…
Who is the assignee on this patent?
Henkel Ag & Co Kgaa
What technology area does this patent fall under?
Primary CPC classification C23C22/86. Mapped technology areas include Chemistry & Metallurgy.
When was this patent published?
Publication date Tue Oct 15 2019 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 2 related publications on this page (citations in our corpus or others sharing the same primary CPC).