Claims
- 1. An acidic aqueous liquid composition that is suitable for use directly, after being diluted with water, or both directly and after being diluted with water, for generating a corrosion reducing coating over a metal surface when contacted therewith, said composition comprising water and:(A) a component of “fluorometallate” anions, each of said anions consisting of (i) at least four fluorine atoms, (ii) at least one atom of an element selected from the group consisting of titanium, zirconium, hafnium, silicon, aluminum, and boron, and optionally, one or both of (iii) ionizable hydrogen atoms, and (iv) one or more oxygen atoms; (B) a component of divalent or tetravalent cations of elements selected from the group consisting of cobalt, magnesium, manganese, zinc, nickel, fin, copper, zirconium, iron, and strontium; (C) a component selected from the group consisting of phosphorus-containing inorganic oxyanions and phosphonate anions; and (D) a component of water-soluble, water-dispersible, or both water-soluble and water-dispersible polymers of hydroxy styrene, modified by substitution on the aromatic rings of the polymers of at least mono-substituted aminomethyl moieties, in which the substituents (other than the carbon atom that is directly bonded to an aromatic ring in the polymer) on the amino nitrogen atom jointly contain at least two carbon atoms and at least one hydroxy moiety but neither of these substituents individually contains more than half as many hydroxyl moieties as it has carbon atoms, unless it contains only one carbon atom.
- 2. An acidic aqueous liquid composition according to claim 1, wherein:there is a total concentration of “fluorometallate” anions of component (A) that is at least about 0.010 M/kg; there is a total concentration of metal cations of component (B) that is at least about 0.020 M/kg; there is a ratio of total concentration in M/kg of metal cations of component (B) in M/kg to the total concentration in M/kg of “fluorometallate” anions of component (A) that is in a range from about 0.4:1.0 to about 1.6:1.00; there is a concentration of phosphorus from component (C) that is at least about 0.017 M/kg; there is a ratio of moles of phosphorus from component (C) to moles of “fluorometallate” ions from component (A) that is in a range from about 0.60:1.00 to about 2.6:1.00; there is a ratio of moles of phosphorus from component (C) to moles of total metal cations from component (B) that is from about 0.4:1.0 to about 2.2:1.00; there is a concentration of moles of substituted phenol moieties from component (D) that is at least about 0.008 M/kg; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total “fluorometallate” anions from component (A) that is from about 0.12:1.00 to about 1.5:1.00; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total metal cations from component (B) that is from about 0.12:1.00 to about 1.5:1.00; and there is a ratio of moles of substituted phenol moieties from component (D) to moles of phosphorus from component (C) that is from about 0.12:1.00 to about 1.5:1.00.
- 3. An acidic aqueous liquid composition according to claim 2, wherein:component (A) is selected from the group consisting of fluorotitanate and fluorozirconate; at least 60% of component (B) is selected from the group consisting of divalent manganese, cobalt, nickel, and magnesium; and there is not more than 0.10% of organic materials that are liquid at 25° C. under normal atmospheric pressure and have a vapor pressure of at least 0.05 bar at 25° C.
- 4. An acidic aqueous liquid composition according to claim 3, wherein component (D) has the chemical characteristics of a polymer that is a product of reaction of:(A′) at least one precursor phenolic polymer or copolymer which does not bear any substituted aminomethyl substituents on its aromatic rings; (B′) at least one aldehyde, ketone, or mixture thereof; and (C′) at least one amine.
- 5. An acidic aqueous liquid composition according to claim 4, wherein:the number of moles of carbonyl groups in component (B′) has a ratio to the number of moles of primary and secondary amino nitrogen atoms in component (C′) that is from about 0.5:1.00 to about 1.5:1.00; the number of moles of carbonyl groups in component (B′) has a ratio to the number of moles of aromatic rings in component (A′) that is from about 0.20:1.00 to about 2.00:1.00; and the number of moles of primary and secondary amino nitrogen atoms in component (C′) has a ratio to the number of moles of aromatic rings in component (A′) that is from about 0.20:1.00 to about 2.00:1.00.
- 6. An acidic aqueous liquid composition according to claim 5, wherein component (D) has been made by a process comprising the following operations:(I′) reacting the precursor phenolic polymer component (A′) in water with an organic or inorganic alkalinizing agent to form an aqueous solution of the corresponding phenoxide salt; (II′) mixing the aqueous solution from operation (I′) with the amine component (C′) and the component (B′) of aldehyde, ketone, or mixture thereof to form a single aqueous solution in which chemical reaction among components (A′), (B′), and (C′) occurs at a temperature in a range from about 20 to about 100° C. to attach substituted aminomethyl moieties to at least some of the aromatic rings in the precursor polymer and produce an aqueous solution of substituted aminomethylated phenolic polymer molecules; (III′) adding at least one acid to the aqueous solution formed at the end of operation (II′), the quantity of acid added being sufficient to neutralize the alkalinizing agent added in operation (I′) and to protonate a sufficient fraction of the amino nitrogen atoms in the substituted aminomethylated phenolic polymer to stabilize against settling the solution of the substituted aminomethylated phenolic polymer formed in operation (II′); and (IV′) contacting the resulting aqueous solution from the end of operation (III′) with a cation exchange resin in its protonated form to remove at least about 75% of any inorganic and/or quatemary ammonium cations dissolved in said aqueous solution from the end of operation (III′).
- 7. An acidic aqueous liquid composition according to claim 6, wherein:there is a total concentration of “fluorometallate” anions of component (A) that is at least about 0.040 M/kg; there is a total concentration of metal cations of component (B) that is at least about 0.054 M/kg; there is a ratio of total concentration in M/kg of metal cations of component (B) in M/kg to the total concentration in M/kg of “fluorometallate” anions of component (A) that is in a range from about 1.00:1.00 to about 1.30:1.00; there is a concentration of phosphorus from component (C) that is at least about 0.057 M/kg; there is a ratio of moles of phosphorus from component (C) to moles of “fluorometallate” ions from component (A) that is in a range from about 1.00:1.00 to about 1.40:1.00; there is a ratio of moles of phosphorus from component (C) to moles of total metal cations from component (B) that is from about 0.80:1.00 to about 1.25:1.00; there is a concentration of moles of substituted phenol moieties from component (D) that is at least about 0.024 M/kg; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total “fluorometallate” anions from component (A) that is from about 0.40:1.00 to about 0.80:1.00; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total metal cations from component (B) that is from about 0.35:1.00 to about 0.70:1.00; and there is a ratio of moles of substituted phenol moieties from component (D) to moles of phosphorus from component (C) that is from about 0.30:1.00 to about 0.65:1.00.
- 8. An acidic aqueous liquid composition according to claim 1, wherein:component (A) is selected from the group consisting of fluorotitanate and fluorozirconate; at least 60% of component (B) is selected from the group consisting of divalent manganese, cobalt, nickel, and magnesium; and there is not more than 0.10% of organic materials that are liquid at 25° C. under normal atmospheric pressure and have a vapor pressure of at least 0.05 bar at 25° C.
- 9. An acidic aqueous liquid composition according to claim 8, wherein component (D) has the chemical characteristics of a polymer that is a product of reaction of:(A′) at least one precursor phenolic polymer or copolymer which does not bear any substituted aminomethyl substituents on its aromatic rings; (B′) at least one aldehyde, ketone, or mixture thereof; and (C′) at least one amine.
- 10. An acidic aqueous liquid composition according to claim 9, wherein:the number of moles of carbonyl groups in component (B′) has a ratio to the number of moles of primary and secondary amino nitrogen atoms in component (C′) that is from about 0.5:1.00 to about 1.5:1.00; the number of moles of carbonyl groups in component (B′) has a ratio to the number of moles of aromatic rings in component (A′) that is from about 0.20:1.00 to about 2.00:1.00; and the number of moles of primary and secondary amino nitrogen atoms in component (C′) has a ratio to the number of moles of aromatic rings in component (A′) that is from about 0.20:1.00 to about 2.00:1.00.
- 11. An acidic aqueous liquid composition according to claim 10, wherein component (D) has been made by a process comprising the following operations:(I′) reacting the precursor phenolic polymer component (A′) in water with an organic or inorganic alkalinizing a gent to form an aqueous solution of the corresponding phenoxide salt; (II′) mixing the aqueous solution from operation (I′) with the amine component (C′) and the component (B′) of aldehyde, ketone, or mixture thereof to form a single aqueous solution in which chemical reaction among components (A′), (B′), and (C′) occurs at a temperature in a range from about 20 to about 100° C. to attach substituted aminomethyl moieties to at least some of the aromatic rings in the precursor polymer and produce an aqueous solution of substituted aminomethylated phenolic polymer molecules; (III′) adding at least one acid to the aqueous solution formed at the end of operation (II′), the quantity of acid added being sufficient to neutralize the alkalinizing a gent added in operation (I′) and to protonate a sufficient fraction of the amino nitrogen atoms in the substituted aminomethylated phenolic polymer to stabilize against settling the solution of the substituted aminomethylated phenolic polymer formed in operation; and (IV′) contacting the resulting aqueous solution from the end of operation (III′) with a cation exchange resin in its protonated form to remove at least about 75% of any inorganic and/or quaternary ammonium cations dissolved in said aqueous solution from the end of operation (III′).
- 12. An acidic aqueous liquid composition according to claim 11, wherein:there is a total concentration of “fluorometallate” anions of component (A) that is at least about 0.040 M/kg; there is a total concentration of metal cations of component (B) that is at least about 0.054 M/kg; there is a ratio of total concentration in M/kg of metal cations of component (B) in M/kg to the total concentration in M/kg of “fluorometallate” anions of component (A) that is in a range from about 1.00:1.00 to about 1.30:1.00; there is a concentration of phosphorus from component (C) that is at least about 0.057 M/kg; there is a ratio of moles of phosphorus from component (C) to moles of “fluorometallate ” ions from component (A) that is in a range from about 1.00:1.00 to about 1.40:1.00; there is a ratio of moles of phosphorus from component (C) to moles of total metal cations from component (B) that is from about 0.80:1.00 to about 1.25:1.00; there is a concentration of moles of substituted phenol moieties from component (D) that is at least about 0.024 M/kg; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total “fluorometallate” anions from component (A) that is from about 0.40:1.00 to about 0.80:1.00; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total metal cations from component (B) that is from about 0.35:1.00 to about 0.70:1.00; and there is a ratio of moles of substituted phenol moieties from component (D) to moles of phosphorus from component (C) that is from about 0.30:1.00 to about 0.65:1.00.
- 13. An acidic aqueous liquid composition according to claim 1, wherein component (D) has the chemical characteristics of a polymer that is a product of reaction of:(A′) at least one precursor phenolic polymer or copolymer which does not bear any substituted aminomethyl substituents on its aromatic rings; (B′) at least one aldehyde, ketone, or mixture thereof; and (C′) at least one amine.
- 14. An acidic aqueous liquid composition according to claim 13, wherein:the number of moles of carbonyl groups in component (B′) has a ratio to the number of moles of primary and secondary amino nitrogen atoms in component (C′) that is from about 0.5:1.00 to about 1.5:1.00; the number of moles of carbonyl groups in component (B′) has a ratio to the number of moles of aromatic rings in component (A′) that is from about 0.20:1.00 to about 2.00:1.00; and the number of moles of primary and secondary amino nitrogen atoms in component (C′) has a ratio to the number of moles of aromatic rings in component (A′) that is from about 0.20:1.00 to about 2.00:1.00.
- 15. An acidic aqueous liquid composition according to claim 14, wherein component (D) has been made by a process comprising the following operations:(I′) reacting the precursor phenolic polymer component (A′) in water with an organic or inorganic alkalinizing agent to form an aqueous solution of the corresponding phenoxide salt; (II′) mixing the aqueous solution from operation (I′) with the amine component (C′) and the component (B′) of aldehyde, ketone, or mixture thereof to form a single aqueous solution in which chemical reaction among components (A′), (B′), and (C′) occurs at a temperature in a range from about 20 to about 100° C. to attach substituted aminomethyl moieties to at least some of the aromatic rings in the precursor polymer and produce an aqueous solution of substituted aminomethylated phenolic polymer molecules; (III′) adding at least one acid to the aqueous solution formed at the end of operation (II′), the quantity of acid added being sufficient to neutralize the alkalinizing agent added in operation (I′) and to protonate a sufficient fraction of the amino nitrogen atoms in the substituted aminomethylated phenolic polymer to stabilize against settling the solution of the substituted aminomethylated phenolic polymer formed in operation (II′); and (IV′) contacting the resulting aqueous solution from the end of operation (III′) with a cation exchange resin in its protonated form to remove at least about 75% of any inorganic and/or quaternary ammonium cations dissolved in said aqueous solution from the end of operation (III′).
- 16. An acidic aqueous liquid composition according to claim 15, wherein:there is a total concentration of “fluorometallate” anions of component (A) that is at least about 0.040 M/kg; there is a total concentration of metal cations of component (B) that is at least about 0.054 M/kg; there is a ratio of total concentration in M/kg of metal cations of component (B) in M/kg to the total concentration in M/kg of “fluorometallate” anions of component (A) that is in a range from about 1.00:1.00 to about 1.30:1.00; there is a concentration of phosphorus from component (C) that is at least about 0.057 M/kg; there is a ratio of moles of phosphorus from component (C) to moles of “fluorometallate ” ions from component (A) that is in a range from about 1.00:1.00 to about 1.40:1.00; there is a ratio of moles of phosphorus from component (C) to moles of total metal cations from component (B) that is from about 0.80:1.00 to about 1.25:1.00; there is a concentration of moles of substituted phenol moieties from component (D) that is at least about 0.024 M/kg; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total “fluorometallate” anions from component (A) that is from about 0.40:1.00 to about 0.80:1.00; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total metal cations from component (B) that is from about 0.35:1.00 to about 0.70:1.00; and there is a ratio of moles of substituted phenol moieties from component (D) to moles of phosphorus from component (C) that is from about 0.30:1.00 to about 0.65:1.00.
- 17. An acidic aqueous liquid composition according to claim 13, when component (D) has been made by a process comprising the following operations:(I′) reacting the precursor phenolic polymer component (A′) in water with an organic or inorganic alkalinizing agent to form an aqueous solution of the corresponding phenoxide salt; (II′) mixing the aqueous solution from operation (I′) with the amine component (C′) and the component (B′) of aldehyde, ketone, or mixture thereof to form a single aqueous solution in which chemical reaction among components (A′), (B′), and (C′) occurs at a temperature in a range from about 20 to about 100° C. to attach substituted aminomethyl moieties to at least some of the aromatic rings in the precursor polymer and produce an aqueous solution of substituted aminomethylated phenolic polymer molecules; (III′) adding at least one acid to the aqueous solution formed at the end of operation (II′), the quantity of acid added being sufficient to neutralize the alkalinizing a gent added in operation (I′) and to protonate a sufficient fraction of the amino nitrogen atoms in the substituted aminomethylated phenolic polymer to stabilize against sowing the solution of the substituted aminomethylated phenolic polymer formed in operation (II′); and (IV′) contacting the resulting aqueous solution from the end of operation (III′) with a cation exchange resin in its protonated form to remove at least about 75% of any inorganic and/or quatemary ammonium cations dissolved in said aqueous solution from the end of operation (III′).
- 18. An acidic aqueous liquid composition according to claim 17, wherein:there is a total concentration of “fluorometallate” anions of component (A) that is at least about 0.040 M/kg; there is a total concentration of metal cations of component (B) that is at least about 0.054 M/kg; there is a ratio of total concentration in M/kg of metal cations of component (B) in M/kg to the total concentration in M/kg of “fluorometallate” anions of component (A) that is in a range from about 1.00:1.00 to about 1.30:1.00; there is a concentration of phosphorus from component (C) that is at least about 0.057 M/kg; there is a ratio of moles of phosphorus from component (C) to moles of “fluorometallate” ions from component (A) that is in a range from about 1.00:1.00 to about 1.40:1.00; there is a ratio of moles of phosphorus from component (C) to moles of total metal cations from component (B) that is from about 0.80:1.00 to about 1.25:1.00; there is a concentration of moles of substituted phenol moieties from component (D) that is at least about 0.024 M/kg; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total “fluorometallate” anions from component (A) that is from about 0.40:1.00 to about 0.80:1.00; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total metal cations from component (B) that is from about 0.35:1.00 to about 0.70:1.00; and there is a ratio of moles of substituted phenol moieties from component (D) to moles of phosphorus from component (C) that is from about 0.30:1.00 to about 0.66:1.00.
- 19. An acidic aqueous liquid composition according to claim 1, wherein component (D) has been made by a process comprising the following operations:(I′) reacting a precursor phenolic polymer component (A′) in water with an organic or inorganic alkalinizing a gent to form an aqueous solution of the corresponding phenoxide salt; (II′) mixing the aqueous solution from operation (I′) with an amino component (C′) and a component (B′) of aldehyde, ketone, or mixture thereof to form a single aqueous solution in which chemical reaction among components (A′), (B′), and (C′) occurs at a temperature in a range from about 20 to about 100° C. to attach substituted aminomethyl moieties to at least some of the aromatic rings in the precursor polymer and produce an aqueous solution of substituted aminomethylated phenolic polymer molecules; (III′) adding at least one acid to the aqueous solution formed at the end of operation (II′), the quantity of acid added being sufficient to neutralize the alkalinizing a gent added in operation (I′) and to protonate a sufficient fraction of the amino nitrogen atoms in the substituted aminomethylated phenolic polymer to stabilize against settling the solution of the substituted aminomethylated phenolic polymer formed in operation (II′); and (IV′) contacting the resulting aqueous solution from the end of operation (III′) with a cation exchange resin in its protonated form to remove at least about 75% of any inorganic and/or quaternary ammonium cations dissolved in said aqueous solution from the end of operation (III′).
- 20. An acidic aqueous liquid composition according to claim 19, wherein:there is a total concentration of “fluorometallate” anions of component (A) that is at least about 0.040 M/kg; there is a total concentration of metal cations of component (B) that is at least about 0.054 M/kg; there is a ratio of total concentration in M/kg of metal cations of component (B) in M/kg to the total concentration in M/kg of “fluorometallate” anions of component (A) that is in a range from about 1.00:1.00 to about 1.30:1.00; there is a concentration of phosphors from component (C) that is at least about 0.057 M/kg; there is a ratio of moles of phosphorus from component (C) to moles of “fluorometallate” ions from component (A) that is in a range from about 1.00:1.00 to about 1.40:1.00; there is a ratio of mols of phosphorus from component (C) to moles of total metal cations from component (B) that is from about 0.80:1.00 to about 1.25:1.00; there is a concentration of moles of substituted phenol moieties from component (D) that is at least about 0.024 M/kg; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total “fluorometallate” anions from component that is from about 0.40:1.00 to about 0.80:1.00; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total metal cations from component (B) that is from about 0.35:1.00 to about 0.70;1.00; and there is a ratio of moles of substituted phenol moieties from component (D) to moles of phosphorus from component (C) that is from about 0.30:1.00 to about 0.65:1.00.
- 21. An acidic aqueous liquid composition according to claim 1, wherein:there is a total concentration of “fluorometallate” anions of component (A) that is at least about 0.040 M/kg; there is a total concentration of metal cations of component (B) that is at least about 0.054 M/kg; there is a ratio of total concentration in M/kg of metal cations of component (B) in M/kg to the total concentration in M/kg of “fluorometallate” anions of component (A) that is in a range from about 1.00:1.00 to about 1.30:1.00; there is a concentration of phosphorus from component (C) that is at least about 0.057 M/kg; there is a ratio of moles of phosphorus from component (C) to moles of “fluorometallate” ions from component (A) that is in a range from about 1.00:1.00 to about 1.40:1.00; there is a ratio of moles of phosphorus from component (C) to moles of total metal cations from component (B) that is from about 0.80:1.00 to about 1.25:1.00; there is a concentration of moles of substituted phenol moieties from component (D) that is at least about 0.024 M/kg; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total “fluorometallate ” anions from component (A) that is from about 0.40:1.00 to about 0.80:1.00; there is a ratio of moles of substituted phenol moieties from component (D) to moles of total metal cations from component (B) that is from about 0.35:1.00 to about 0.70:1.00; and there is a ratio of moles of substituted phenol moieties from component (D) to moles of phosphorus from component (C) that is from about 0.30:1.00 to about 0.65:1.00.
- 22. An acidic aqueous liquid composition that is suitable for use directly, after being diluted with water, or both directly and after being diluted with water, for generating a corrosion reducing coating over a metal surface when contacted therewith, said composition having been made by mixing with water at least the following components:(A) a source of a component of “fluorometallate” anions, ach of said anions consisting of (i) at least four fluorine atoms, (ii) at least one atom of an element select d from the group consisting of titanium, zirconium, hafnium, scion, aluminum, and boron, and, optionally, one or both of (iii) ionizable hydrogen atoms, and (iv) one or more oxygen atoms; (B) a source of a component of divalent or tetravalent cations of elements selected from the group consisting of cobalt, magnesium, manganese, zinc, nickel, tin, copper, zirconium, iron, and strontium; (C) a source of a component selected from the group consisting of phosphorus-containing inorganic oxyanions and phosphonate anions; and (D) a source of a component of water-soluble, water-dispersible, or both water-soluble and water-dispersible polymers of hydroxy styrene, modified by substitution on the aromatic rings of the polymers of at least mono-substituted aminomethyl moieties, in which the substituents (other than the carbon atom that is directly bonded to an aromatic ring in the polymer) on the amino nitrogen atom jointly contain at least two carbon atoms and at least one hydroxy moiety but neither of these substituents individually contains more than half as many hydroxyl moieties as it has carbon atoms, unless it contains only one carbon atom.
- 23. An acidic aqueous liquid composition according to claim 22, wherein:the source of “fluorometallate” anions provides such anions in an amount corresponding to a concentration in the acidic aqueous liquid composition that is at least about 0.010 M/kg; the source of metal cations of component (B) provides such cations in an amount corresponding to a concentration in the acidic aqueous liquid composition that is at least about 0.020 M/kg; there is a ratio of moles of metal cations of component (B) supplied to the acidic aqueous liquid composition to moles of “fluorometallate” anions supplied to the acidic aqueous liquid composition that is in a range from about 0.4:1.0 to about 1.6:1.00; the source of phosphorus for component (C) provides phosphorus in an amount corresponding to a concentration in an acidic aqueous liquid composition that is at least about 0.017 M/kg; there is a ratio of moles of phosphorus from component (C) supplied to the acidic aqueous liquid composition to moles of “fluorometallate” ions from component (A) supplied to the acidic aqueous liquid composition that is in a range from about 0.60:1.00 to about 2.6:1.00; there is a ratio of moles of phosphorus from component (C) supplied to the acidic aqueous liquid composition to moles of total metal cations from component (B) supplied to the acidic aqueous liquid composition that is from about 0.4:1.0 to about 2.2:1.00; the source of substituted phenol moieties for component (D) provides such moieties in an amount corresponding to a concentration in the acidic aqueous liquid composition that is at least about 0.008 M/kg; there is a ratio of moles of substituted phenol moieties for component (D) supplied to the acidic aqueous liquid composition to moles of total “fluorometallate” anions from component (A) supplied to the acidic aqueous liquid composition that is from about 0.12:1.00 to about 1.5:1.00; there is a ratio of moles of substituted phenol moieties from component (D) supplied to the acidic aqueous liquid composition to moles of total metal cations from component (B) supplied to the acidic aqueous liquid composition that is from about 0.12:1.00 to about 1.5:1.00; and there is a ratio of moles of substituted phenol moieties from component (D) supplied to the acidic aqueous liquid composition to moles of phosphorus from component (C) that is from about 0.12:1.00 to about 1.5:1.00.
- 24. An acidic aqueous liquid composition according to claim 23, wherein:component (A) is selected from the group consisting of fluorotitanate and fluorozirconate; at least 60% of component is selected from the group consisting of divalent manganese, cobalt, nickel, and magnesium; and there is not more than 0.10% of organic materials that are liquid at 25° C. under normal atmospheric pressure and have a vapor pressure of at least 0.05 bar at 25° C.
- 25. An acidic aqueous liquid composition according to calm 24, wherein component (D) has the chemical characteristics of a polymer that is a product of reaction of:(A′) at least one precursor phenolic polymer or copolymer which does not bear any substituted aminomethyl substituents on its aromatic rings; (B′) at least one aldehyde, ketone, or mixture thereof; and (C′) at least one amine.
- 26. An acidic aqueous liquid composition according to claim 25, wherein:the number of moles of carbonyl groups in component (B′) has a ratio to the number of moles of primary and secondary amino nitrogen atoms in component (C′) that is from about 0.5:1.00 to about 1.5:1.00; the number of moles of carbonyl groups in component (B′) has a ratio to the number of moles of aromatic rings in component (A′) that is from about 0.20:1.00 to about 2.00:1.00; and the number of moles of primary and secondary amino nitrogen atoms in component (C′) has a ratio to the number of moles of aromatic rings in component (A′) that is from about 0.20:1.00 to about 2.00:1.00.
- 27. An acidic aqueous liquid composition according to claim 26, wherein component (D) has been made by a process comprising the following operations:(I′) reacting the precursor phenolic polymer component (A′) in water with an organic or inorganic alkalinizing agent to form an aqueous solution of the corresponding phenoxide salt; (II′) mixing the aqueous solution from operation (I′) with the amine component (C′) and the component (B′) of aldehyde, ketone, or mixture thereof to form a single aqueous solution in which chemical reaction among components (A′), (B′), and (C′) occurs at a temperature in a range from about 20 to about 100° C. to attach substituted amino methyl moieties to at least some of the aromatic rings in the precursor polymer and produce an aqueous solution of substituted aminomethylated phenolic polymer molecules; (III′) adding at least one acid to the aqueous solution formed at the end of operation (II′), the quantity of acid added being sufficient to neutralize the alkalinizing agent added in operation (I′) and to protonate a sufficient fraction of the amino nitrogen atoms in the substituted aminomethylated phenolic polymer to stabilize against settling the solution of the substituted aminomethylated phenolic polymer formed in operation (II′); and (IV′) contacting the resulting aqueous solution from the end of operation (III′) with a cation exchange resin in its protonated form to remove at least about 75% of any inorganic and/or quaternary ammonium cations dissolved in said aqueous solution from the end of operation (III′).
- 28. An acidic aqueous liquid composition according to claim 27, wherein:the source of “fluorometallate” anions of component (A) provides such anions in an amount corresponding to a concentration in the acidic aqueous liquid composition that is at least about 0.040 M/kg; the source of metal cations of component (B) provides such cations in an amount corresponding to a concentration in the acidic aqueous liquid composition that is at least about 0.054 M/kg; there is a ratio of moles of metal cations of component (B) supplied to the acidic aqueous liquid composition to the ratio of moles of “fluorometallate” anions supplied to the acidic aqueous liquid composition that is in a range from about 1.00:1.00 to about 1.30:1.00; the source of phosphorus for component (C) provides phosphorus in an amount corresponding to a concentration in the acidic aqueous liquid composition that is at least about 0.057 M/kg; there is a ratio of moles of phosphorus from component (C) supplied to the acidic aqueous liquid composition to moles of “fluorometallate” ions from component (A) supplied to the acidic aqueous liquid composition that is in a range from about 1.00:1.00 to about 1.40:1.00; there is a ratio of moles of phosphorus from component (C) supplied to the acidic aqueous liquid composition to moles of total metal cations from component (B) supplied to the acidic aqueous liquid composition that is from about 0.80:1.00 to about 1.25:1.00; the source of substituted phenol moieties from component (D) provides such moieties in an amount corresponding to a concentration in the acidic aqueous liquid composition that is at least about 0.024 M/kg; there is a ratio of moles of substituted phenol moieties from component (D) supplied to the acidic aqueous liquid composition to moles of total “fluorometallate” anions from component (A) supplied to the acidic aqueous liquid composition that is from about 0.40:1.00 to about 0.80:1.00; there is a ratio of moles of substituted phenol moieties from component (D) supplied to the acidic aqueous liquid composition to moles of total metal cations from component (B) supplied to the acidic aqueous liquid composition that is from about 0.35:1.00 to about 0.70:1.00; and there is a ratio of moles of substituted phenol moieties from component (D) supplied to the acidic aqueous liquid composition to moles of phosphorus from component (C) supplied to the acidic aqueous liquid composition that is from about 0.30:1.00 to about 0.65:1.00.
- 29. A process of forming a corrosion reducing coating over a metal surface, said process comprising contacting the metal surface with an acidic aqueous liquid composition according to claim 1.
- 30. A process according to claim 29 that produces a dried add-on mass of coating per unit area of surface coated that is from about 50 to about 300 mg/m2.
- 31. The process of claim 29 wherein said metal surface is cold rolled steel.
- 32. The process of claim 29 comprising an additional step of drying the acidic aqueous liquid composition.
- 33. The process of claim 32 comprising an additional step of applying an organic protective coating over the metal surface having a dried coating of the acidic aqueous liquid composition thereon.
- 34. A process of forming a corrosion reducing coating over a metal surface, said process comprising contacting the metal surface with an acidic aqueous liquid composition according to claim 8.
- 35. A process of forming a corrosion reducing coating over a metal surface, said process comprising contacting the metal surface with an acidic aqueous liquid composition according to claim 13.
- 36. A process of forming a corrosion reducing coating over a metal surface, said process comprising contacting the metal surface with an acidic aqueous liquid composition according to claim 19.
- 37. A process of forming a corrosion reducing coating over a metal surface, said process comprising contacting the metal surface with an acidic aqueous liquid composition according to claim 21.
- 38. A process of forming a corrosion reducing coating over a metal surface, said process comprising contacting the metal surface with an acidic aqueous liquid composition according to claim 22.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application claims priority from International Application No. PCT/US00/29266, filed Oct. 24, 2000, and published in English as WO 01/32925, and from United States Provisional Application Ser. No. 60/162,455, filed Oct. 29, 1999.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US00/29266 |
|
WO |
00 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO01/32952 |
5/10/2001 |
WO |
A |
US Referenced Citations (8)
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/162455 |
Oct 1999 |
US |