AU766638B2 - Acyloxy silane treatments for metals - Google Patents

Acyloxy silane treatments for metals Download PDF

Info

Publication number
AU766638B2
AU766638B2 AU62225/00A AU6222500A AU766638B2 AU 766638 B2 AU766638 B2 AU 766638B2 AU 62225/00 A AU62225/00 A AU 62225/00A AU 6222500 A AU6222500 A AU 6222500A AU 766638 B2 AU766638 B2 AU 766638B2
Authority
AU
Australia
Prior art keywords
group
acyloxy
silane
substituted
solution
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired
Application number
AU62225/00A
Other versions
AU6222500A (en
Inventor
Wim J Van Ooij
Danqing Zhu
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
CINCINNATI THE, University of
Original Assignee
University of Cincinnati
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US09/356,926 external-priority patent/US6827981B2/en
Application filed by University of Cincinnati filed Critical University of Cincinnati
Priority claimed from PCT/US2000/019646 external-priority patent/WO2001006036A1/en
Publication of AU6222500A publication Critical patent/AU6222500A/en
Application granted granted Critical
Publication of AU766638B2 publication Critical patent/AU766638B2/en
Anticipated expiration legal-status Critical
Expired legal-status Critical Current

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C2222/00Aspects relating to chemical surface treatment of metallic material by reaction of the surface with a reactive medium
    • C23C2222/20Use of solutions containing silanes

Landscapes

  • Application Of Or Painting With Fluid Materials (AREA)

Description

WO 01/06036 PCT/US00/19646 ACYLOXY SILANE TREATMENTS FOR METALS Background of the Invention Field of the Invention The present invention relates to silane coatings for metals. More particularly, the present invention provides coatings which include an acyloxy silane, and are particularly useful for preventing corrosion and/or promoting adhesion between a metal substrate and a polymer layer applied to the treated metal substrate. Solutions for applying such coatings, compositions as well as methods of treating metal surfaces, are also provided.
Description of Related Art Most metals are susceptible to corrosion, including the formation of various types of rust. Such corrosion will significantly affect the quality of such metals, as well as that of the products produced therefrom. Although rust and the like may often be removed, such steps are costly and may further diminish the strength of the metal. In addition, when polymer coatings such as paints, adhesives or rubbers are applied to the metals, corrosion may cause a loss of adhesion between the polymer coating and the metal.
By way of example, metallic coated steel sheet such as galvanized steel is used in many industnes, including the automotive, construction and appliance industries. In most cases, the galvanized steel is painted or otherwise coated with a polymer layer to achieve a durable and aesthetically-pleasing product.
Galvanized steel, particularly hot-dipped galvanized steel, however, often develops "white rust" during storage and shipment.
White rust (also called "wet-storage stain") is typically caused by moisture condensation on the surface of galvanized steel which reacts with the zinc coating. On products such as GALVALUME®, the wet-storage stain is black in color ("black rust"). White rust (as well as black rust) is aesthetically unappealing and impairs the ability of the galvanized steel to be painted or WO 01/06036 PCT/US00/19646 2 otherwise coated with a polymer. Thus, prior to such coating, the surface of the galvanized steel must be pretreated in order to remove the white rust and prevent its reformation beneath the polymer layer. Various methods are currently employed to not only prevent the formation of white rust during shipment and storage, but also to prevent the formation of white rust beneath a polymer coating paint).
In order to prevent white rust on hot-dipped galvanized steel during storage and snipping, the surface of the steel is often passivated by forming a thin chromate film on the surface of the steel. While such chromate coatings do provide resistance to the formation of white rust, chromium is hignly toxic and environmentally undesirable. It is also known to employ a phosphate conversion coating in conjunction with a chromate nnse in order to improve paint adherence and provide corrosion protection. It is believed that the chromate rinse covers the pores in the phosphate coating, thereby improving the corrosion resistance and adhesion performance. Once again, however, it is highly desiraDle to eliminate the use of chromate altogether. Unfortunately, however, the phosphate conversion coating is generally not very effective without the chromate rinse.
Recently, various techniques for eliminating the use of chromate have been proposed. These include coating the galvanized steel with an inorganic silicate followed by treating the silicate coating with an organofunctional silane Patent No. 5,108,793).
U.S. Patent No. 5,292,549 teaches the rinsing of metallic coated steel sheet with a solution containing an organofunctional silane and a crosslinking agent.
U.S. Patent No. 6,071,566 relates to a method of treating a metal substrate to provide permanent corrosion resistance. The method comprises applying a solution containing one or more vinyl silanes in admixture with one or more multi-silyl-functional silanes to a metal substrate in order to form a coating.
WO 01/06036 PCT/US00/19646 3 Various other techniques for preventing the formation of white rust on galvanized steel, as well as preventing corrosion on other types of metals, have also been proposed. Many of the proposed techniques described in the prior art are, however, ineffective, or require time-consuming, energy-inefficient, multistep processes. Thus, there is a need for a simple, low-cost technique for preventing corrosion on the surface of metal.
A particular problem associated with the silane treatments of the prior art is the rate of hydrolysis of the silane compounds. Such compounds are generally hydrolysed in water, at a specific pH, prior to application of the solution to the suDstrate to De treated. The rate of hydrolysis varies between silanes, and the degree of hydrolysis is a priori not known. Generally, it has to be guessed when the solution is ready for application When the solution has turned cloudy, this indicates that condensation of the silanes has occurred and the effectiveness of the treatment solution is reduced A further problem with the prior art techniques is the inherent insolubility in aqueous media of some of the silanes employed in the metal treatments. To overcome this problem it is commonplace to dissolve the silane with the aid of an organic solvent, for example, alcohols Thus a final treatment solution commonly contains up to 60% alcohol. The use of many volatile organic compounds (VOCs), including solvents, is highly undesirable from an economic, aswell as an environmental perspective. Apart from the cost of such organic solvents, including the cost of their disposal and methods of treatment solution preparation, such compounds present a threat to the environment and are a hazzard to the premises and personnel handling the materials.
A further problem is that the silane systems used in treatment solutions have to have their pH maintained in specific ranges by the initial and continuous addition of acids or bases.
It would therefore be desirable to provide an effective treatment method for metal surfaces, especially to prevent corrosion, and/or improve adhesion.
It would also be desirable to provide a treatment solution useful in preventing corrosion, and/or adhesion promotion of metal surfaces, for example, PAOPER\S=62225-00 spe 230.doc-l8lO/03 -4steel, aluminium, aluminium alloys, zinc, zinc alloys, magnesium, magnesium alloys, copper, copper alloys, tin and tin alloys, particularly zinc, zinc alloys, and other metals having a zinc-containing coating thereon.
It would additionally be desirable to provide a metal surface having improved corrosion resistance and/or improved adhesion characteristics.
Summary of the Invention The present invention provides a method of treating a metal surface, comprising the steps of: providing a metal substrate; and applying an aqueous solution to said metal substrate, said solution comprising at least one acyloxy silane which comprises at least one acyloxy group wherein the acyloxysilane comprises a single tetrasubstituted silicon atom, wherein the substituents are individually selected from the group consisting of alkyl, alkenyl, alkynyl, aryl, alkaryl, aralkyl, vinyl, amino, ureido, glycidoxy, epoxy, hydroxy, alkoxy, aryloxy and acyloxy, or any of the group alkyl, alkenyl, alkynyl, aryl, alkaryl and aralkyl substituted by a group selected from the group consisting of vinyl, amine, ureido, glycidoxy, epoxy, hydroxy and alkoxy, with the proviso that at least one of the substituents on the silicon atom is an acyloxy group; wherein said silane has been at least partially hydrolysed; and (ii) at least one basic silane compound selected from either compounds having the general structure oooo *o o oo *oooo *o *o* N-XLSi-okaR W IR P:\OPER\S.\62225-0O spe 230.dc.IIO/003 -4Awherein R 2 is chosen from the group consisting of hydrogen and CI-C24 alkyl, preferably C1-C6 alkyl and each R may be the same or different;
X
1 is selected from the group consisting of a bond, a substituted or unsubstituted aliphatic or aromatic group; and
R
3 is a group individually selected from the group consisting of hydrogen, CI-C6 alkyl, C2-C6 alkenyl, C-C6 alkyl substituted with at least one amino group, C2-C6 alkenyl substituted with at least one amino group, arylene and alkylarylene or a bis-silyl aminosilane(s) having the structure
OR
4
OR
4 I 2
R
4 O-Si---R -X 2 -R-Si-OR 4
OR
4
OR
wherein R 4 is individually selected from the group consisting of: hydrogen and Ci C24 alkyl;
R
5 is individually selected from the group consisting of: substituted aliphatic groups, unsubstituted aliphatic groups, substituted aromatic groups, and unsubstituted aromatic groups; and
-X
2 is either: S 20 R6 R 6
R
Sor I N- m -R-N
-N-RN
wherein each R 6 is individually selected from the group consisting of: hydrogen, substituted and unsubstituted aliphatic groups, and substituted and unsubstituted aromatic groups; and
R
7 is selected from the group consisting of: substituted and unsubstituted aliphatic groups, and substituted and unsubstituted aromatic groups wherein the acyloxy silane and the basic compound are present in concentrations to provide a solution S: pH of between 3 and P OPER\Sz\62225-0 spO 230.doc-18/08/03 -4B- The present invention also provides a composition comprising at least one acyloxy silane and at least one basic compound, wherein the at least one acyloxy silane is at least partially hydrolyzed. A metal surface having improved corrosion resistance and/or adhesion and a composition concentrate is also provided.
Detailed Description of the Invention The acyloxy silane(s) utilised in the present invention may comprise one or more silyl groups and the solution may contain a mixture of acyloxy silanes.
WO 01/06036 PCT/US00/19646 Where the acyloxy silane comprises a single silyl group the silicon atom is tetrasubstituted, wherein the substituents are individually selected from the group consisting of alkyl, alkenyl, alkynyl, aryl, alkaryl, aralkyl, vinyl, amino, ureido, glycidoxy, epoxy, hydroxy, alkoxy, aryloxy and acyloxy, or any of the group alkyl, alkenyl, alkynyl, aryl, alkaryl and aralkyl substituted by a group selected from the group consisting of vinyl, amine, ureido, glycidoxy. epoxy, hydroxy and alkoxy, with the proviso that at least one of the substituents on the silicon atom is an acyloxy group.
Where more than one acyloxy group is attached to the silicon atom of the silyl group, tne acyloxy groups are preferably all the same. The acyloxy group(s) are preferably selected from the group consisting of C 2 1 2 alkanoyloxy, C3-, alkenoyloxy, C 3 alkynoyloxy and C 7 arenoyloxy, preferably C2-, alkanoyloxy, alkenoyloxy, C, alkynoyloxy and 2 arenoyloxy. Most preferably the acyloxy groups are all the same and are ethanoyloxy (acetoxy) or methanoyloxy groups.
Where the acyloxy silane comprises a single silyl group, preferably three of the substituents on the silyl group are acyloxy groups and the fourth substituent is preferably selected from a the group consisting of vinyl or vinyl substituted group, amine or amine substituted group, ureido or ureido substituted group and glycidoxy or glycidoxy substituted group.
In a particularly preferred embodiment, the acyloxy silane is selected from the group consisting of OCOR
OCOR
H I,
I
X-Si-OCOR H 2 N-Y-Si-OCOR H OCOR OCOR O OCOR OCOR N2N N-Z-Si-OCOR !!'-W-Si-OCOR OCOR OCOR OCOR OCORU WO 01/06036 PCT/US00/19646 6 wherein W, X, Y and Z are selected from the group consisting of a C-Si bond, substituted aliphatic groups, unsubstituted aliphatic groups, substituted aromatic groups and unsubstituted aromatic groups; and R is selected from methyl, ethyl and propyl, preferably ethyl.
The acyloxy silane may comprises more than one silyl group. Although the term acyloxy silane generically refers to such a compound, it may be referred to as a multi-silyl-acyloxy silane. More than one multi-silyl-acyloxy silane may be employed in a mixture with one or more other multi-silyl-acyloxy silanes or one or more acyloxy silanes containing a single silyl group as described above.
The acyloxy groups bound to the silicon atoms of the silyl groups of the multi-silyl-acyloxy silane are preferably all the same and are preferably selectea from the group consisting of C 2 12 alkanoyloxy, C3-, alkenoyloxy, C.12 alkynoyloxy and C,7- arenoyloxy, preferably C2- alkanoyloxy, C, alkenoyloxy, Ce6 alkynoyloxy and C 7 1 2 arenoyloxy. Most preferably the acyloxy groups are all the same and are ethanoyloxy or methanoyloxy groups.
Preferably the multi-silyl-acyloxy silane utilised in the present invention has the structure
OCOR
1 Q--Si-OCOR 1
OCOR
1 J 2 wherein Q is selected from the group consisting of either a bond, an aliphatic or aromatic group; and R' is selected from methyl, ethyl and propyl.
Preferably Q is selected from the group consisting of a bond, C,-C 6 alkylene, C 2
-C
6 alkenylene, alkylene substituted with at least one amino group, C 2 -C alkenylene substituted with at least one amino group, C,-C, alkylene substituted with at least one sulfide group containing 1 to 6 sulfur atoms, C 2
-C
6 alkenylene substituted with at least one sulfide group containing 1 to 6 sulfur atoms, arylene and alkylarylene. In the case where Q is a bond, the WO 01/06036 PCT/US00/19646 7 multi-functional silane comprises two trisubstituted silyl groups which are bonded directly to one another. Preferred multi-silyl-acyloxy silane are bis-(triacetoxysilyl)alkane, bls-(triacetoxysilylalkyl)amine and bis-(triacetoxysilylalkyl)tetrasulfide, most preferably bis-(triacetoxysilyl)ethane, bis-(triacetoxysilylpropyl)amine and bis-(triacetoxysilylpropyl)tetrasulfide.
In an especially preferred embodiment, the acyloxy silane utilised in the present invention is vinyltriacetoxysilane.
Acyloxy silanes utilised in the present invention generally dissolve and hydrolyze readily and completely in water to produce organic acids. For example, where an acetoxy silane is used, acetic acid is produced. Unlike the analogous alkoxy silanes commonly utilised in the prior art which produce alcohols upon hydrolysis, the acyloxy silanes utilised in the present invention produce substantially none or small amounts of VOCs depending on the level of non-acyloxy group substitution in the silanes.
Depending on the level of substitution of acyloxy groups in the silanes utilised in the present invention, the pH of the resultant solution can be predetermined and manipulated. Commonly, high degrees of acyloxy group substitution are present, for example =100% substitution, and this can result in a pH as low as 1 or 2 At these low levels of pH, the hydrolysed acyloxysilanes tend to condense, therefore reducing their efficacy. It is therefore necessary to add a base to maintain the pH in an optimal range.
Preferably, where a single silyl group-containing silane is used as the acyloxy silane, 3 of the groups attached to the silicon atom of the silyl group are acyloxy groups, preferably methanoyloxy or acetoxy.
Preferably, where a multi-silyl-acyloxy silane is used, 3 of the groups attached to the each silicon atom of each silyl group are acyloxy groups, preferably methanoyloxy or acetoxy.
The pH of the silane mixture is between about 3 and about 10, more preferably between about 4 and about 8, most preferably 4 to 5 and should be maintained. The pH may be adjusted by the addition of one or more basic compounds or addition of acyloxy silane(s).
P:AOPER\Sanu62225-00 spe 230,doc-18/08/03 -8- During preparation of the treatment solution, a pH of above 2, more preferably above 3, most preferably between 4 and 5 should be maintained.
In order to maintain an optimal pH during preparation of the treatment solution, a basic silane compound is applied to the treatment solution.
To maintain the pH in the preferred range, the acyloxy silane and the basic silane compound are preferably mixed together prior to the addition of water and subsequently dissolved in water.
The basic silanes used in the present invention have the general structure
R
3 OR2 N-X -Si-OR
R
3
OR
2
R
2 is chosen from the group consisting of hydrogen and Ci-C24 alkyl, preferably C1-C6 alkyl and each R 2 may be the same or different. Preferably R 2 is individually chosen from the group consisting of hydrogen, ethyl, methyl, propyl, iso-propyl, butyl, iso-butyl, sec-butyl and ter-butyl or p:OPER\San\62225-0 spe 230.doc-.1808/03 -9- X' is a group selected from the group consisting of a bond, a substituted or unsubstituted aliphatic or aromatic group. Preferably X 1 is selected from the group consisting of a bond, CI-C6 alkylene, C2-C6 alkenylene, CI-C6 alkylene substituted with at least one amino group, C2-C6 alkenylene substituted with at least one amino group, C6-18 arylene and C7-C18 alkylarylene;
R
3 is a group individually selected from the group consisting of hydrogen, C1-C6 alkyl, C2-C6 alkenyl, CI-C6 alkyl substituted with at least one amino group, C2-C6 alkenyl substituted with at least one amino group, arylene and alkylarylene.
Preferably R 3 is individually selected from the group consisting of hydrogen, ethyl, methyl, propyl, iso-propyl, butyl, iso-butyl, sec-butyl ter-butyl and acetyl or a bis-silyl aminosilane comprising:
OR
4
OR
4 I R4 -Si-R 5
-X
2
-R
5 -Si--OR 4 i OR4 OR 4 wherein each R 4 is individually selected from the group consisting of: hydrogen and Ci C24 alkyl; each R 5 is individually selected from the group consisting of: substituted aliphatic groups, unsubstituted aliphatic groups, substituted aromatic groups, and unsubstituted aromatic groups; and
X
2 is either:
R
6
R
6
R
6 I or S-N- -N-R N- P:OPER\San62225-0 spe 230.doc-18/08/03 wherein each R 6 is individually selected from the group consisting of: hydrogen, substituted and unsubstituted aliphatic groups, and substituted and unsubstituted aromatic groups; and
R
7 is selected from the group consisting of: substituted and unsubstituted aliphatic groups, and substituted and unsubstituted aromatic groups.
Particular preferred amino silanes employed in the method of the present invention are y-aminopropyltriethoxysilane and y-aminopropyl trimethoxysilane.
Particular preferred amino silanes employed in the method of the present invention are yaminopropyltriethoxysilane and y-aminopropyl trimethoxysilane. Particularly preferred bis-silyl aminosilanes which may be used in the present invention include: bis-(trimethoxysilylpropyl)amine (which is sold under the tradename A-1170 by Witco):
OCH
3 H OCH 3
CH
3 O-Si C 3
H
6
C
3
H
6 Si-OCH 3
OCH
3
OCH
3 bis-(triethoxysilylpropyl)amine: 2
H
5 H OC 2
H
0* OC 2
H
5 Si-C 3
H
6
NC
3
H
6 Si-OC 2
H
OC
2
H
5
OC
2
H
and bis-(triethoxysilylpropyl)ethylene diamine:
OCH
3 H H OCH 3
CH
3 0-Si C 3
H
6
N-C
2
H
4
N-C
3
H
6 Si-OCH 3
OCH
3 OCH 3 Particularly preferred combinations of acyloxy silanes and basic compounds are: P:OPER\San\62225-00 spe 230 doc-18/08/03 11 vinyltriacetoxysilane and bis-(trimethoxysilylpropyl)amine; 1,2-bis-(triethoxysilyl)ethane and bis-(trimethoxysilylpropyl)amine; vinyltriacetoxysilane and aminopropyltriethoxysilane; vinyltriacetoxysilane and bis-(triethoxysilylpropyl)amine; 1,2-bis-(triethoxysilyl)ethane and bis-(triethoxysilylpropyl)amine; vinyltriacetoxysilane and aminopropyltrimethoxysilane.
Where basic silanes are used, additional basic compounds may be used, for example, the inorganic bases referred to above.
The solutions and methods of the present invention may be used on a variety of metals, including steel, aluminium, aluminium alloys, zinc, zinc alloys, magnesium, magnesium alloys, copper, copper alloys, tin and tin alloys. In particular, the present method is particularly useful on zinc, zinc alloy, and metals having a zinc-containing coating thereon, as well as aluminium or aluminium containing substrates. For example, the treatment solutions and methods of the present invention are useful in preventing corrosion of steel having a zinccontaining coating, such as: galvanized steel (especially hot dipped galvanized steel), GALVALUME® (a 55%-AI/43.4%-Zn/1.6% Si alloy coated sheet steel manufactured and sold, for example, by Bethlehem Steel Corp), GALFAN® (a alloy coated sheet steel manufactured and sold by Weirton Steel Corp., 20 of Weirton, WV), galvanneal (annealed hot dipped galvanized steel) and similar types of coated steel. Zinc and zinc alloys are also particularly amenable to application of the treatment solutions and methods of the present invention.
Exemplary zinc and zinc alloy materials include: titanium-zinc (zinc which has a very small amount of titanium added thereto), zinc-nickel alloy (typically about 25 to about 13% nickel content), and zinc-cobalt alloy (typically about 1% cobalt).
The solutions of the present invention may be applied to the metal prior to shipment to the end-user, and provide corrosion protection during shipment and storage (including the prevention of wet-storage stain such as white rust). If a paint or other polymer coating is desired, the end user may merely apply the paint or polymer such as adhesives, plastics, or rubber coatings) directly on top of the silane coating provided by the present invention. The silane coatings of the P:"OPER\S.an62225-00 pe 230.doc.18/08/03 -11Apresent invention not only provide excellent corrosion protection even without paint, but also provide superior adhesion of paint, rubber or other polymer layers.
Thus, unlike many of the currently-employed treatment techniques, the silane coatings of the present invention need not be removed prior to painting (or applying other types of polymer coatings such as rubber).
*o oo WO 01/06036 PCTIUSOO/19646 12 Suitable polymer coatings include various types of paints, adhesives (such as epoxy automotive adhesives), and peroxide-cured rubbers peroxide-cured natural, NBR, SBR, nitrile or silicone rubbers). Suitable paints include polyesters, polyurethanes and epoxy-based paints. Plastic coatings are also suitable including acrylic, polyester, polyurethane, polyethylene, polyimide, polyphenylene oxide, polycarbonate, polyamide, epoxy, phenolic, acrylonitrilebutadiene-styrene, and acetal plastics. Thus, not only do the coatings of the present invention prevent corrosion, they may also be employed as primers and/or adhesive coatings for other polymer layers.
Tne solutions of the present invention do not require the use or addition of silicates.
The compositions may optionally comprise other silane compounds to the acyloxy silanes or the basic silanes disclosed herein.
The treatment solution is aqueous, and may optionally include one or more compatible solvents (such as ethanol, methanol, propanol or isopropanol) although their presence is not normally required. Where an organic solvent is required, ethanol is preferred. Preferably, solutions of the present invention are substantially free of organic solvents and VOCs.
As mentioned above, the silane(s) in the solution of the present invention are at least partially, and preferably are substantially fully hydrolyzed in order to facilitate the bonding of the silanes to the metal surface and to each other.
During hydrolysis, the alkoxy groups in the case of the non-acyloxy silanes and the acyloxy in the case of the acyloxy silanes are replaced by hydroxyl groups.
Hydrolysis of the silanes may be accomplished, for example, by merely mixing the silanes in water, and optionally including a solvent (such as an alcohol) in order to improve silane solubility and solution stability.
In order to accelerate silane hydrolysis and avoid silane condensation during hydrolysis, the pH may be maintained below about 8, more preferably between about 4 and about 6, and even more preferably between about 4 and about P:OPER\Sn\62225-00 spc 230.doc-18/08/03 13- It should be noted that the various silane concentrations discussed and claimed herein are all defined in terms of the ratio between the amount (by volume) of unhydrolyzed silane(s) employed to prepare the treatment solution prior to hydrolyzation), and the total volume of treatment solution components acyloxy silanes, basic compound, water, and optional solvents. In the case of acyloxy silane(s), the concentrations herein (unless otherwise specified) refer to the total amount of unhydrolyzed acyloxy silanes employed, since multiple acyloxy silanes may optionally be present. The basic compounds concentrations herein are defined in the same manner.
As for the concentration of hydrolyzed silanes in the treatment solution, beneficial results will be obtained over a wide range of silane concentrations and ratios. It is preferred, however, that the solution have at least about 0.1% acyloxy silanes by volume, more preferably at least about 1% acyloxy silanes by volume, most preferably between about 2% and about 5% by volume. Lower vinyl silane concentrations generally provide less corrosion protection. Higher concentrations of acyloxy silanes (greater than about 10%) should also be avoided for economic reasons, and to avoid silane condensation (which may limit storage stability).
The concentration of the basic silane compound required in the treatment solution varies strongly with the type of acyloxy silane employed and the type of S 20 basic silane compound. Obviously, a strongly acidic solution produced by a highly acyloxy group-substituted acyloxy silane will require an appropriate amount of basic silane compound to result in a treatment solution with a pH in the predetermined range. Once the pH of the acyloxy silane in solution is known, an appropriate amount of a basic silane compound (with a known pH value in 25 solution) can be added to the solution. The relative acidity and basicity of the acyloxy silane and the basic silane compound may be established before the solution is made up and are commonly presented in standard tables reciting physical properties of known compounds. However, the concentration of the basic silane compound is generally in the range of about 0.1% and about 10% by volume.
P:'OPER\Sa\62225-00 spe 230.doc-18/08/03 -14- The solution should have at least about 0.1% basic silanes by volume, more preferably at least about 1% basic silane by volume, more preferably between about 2% and about 10%, most preferably between about 2% and about by volume.
As for the ratio of acyloxy silanes to basic silane compound, a wide range of ratios may be employed, and the present invention is not limited to any particular range of silane ratios.
The mixture of the acyloxy and basic silane compound may be provided to the user in a pre-mixed, unhydrolysed form which improves shelf life as condensation of the silane is limited. Such a mixture can then be made up into a treatment solution as defined herein. Such a pre-mixed, unhydrolysed compositions should preferably be substantially free of water but may include one or more organic solvents (such as alcohols). The composition may also include other components such as stabilizers, pigments, desiccants, and the like.
Such a pre-mixed composition can be made up with a pre-determined amount of acyloxy silane and basic silane compound so that the addition of the mixture to water results in a pH within the preferred range. Such pre-mixing prevents or limits a drop in pH, due to the acyloxy silane alone being present in solution, to levels which promote condensation of the silanes in solution.
However, the composition can be presented in a "two-pack" kit, wherein one part of the kit comprises the acyloxy silane, while another part of the kit provides the basic silane compound.
In either of the above presentation embodiments, the acyloxy silane and basic silane compound, along with the other components of the composition are S: 25 provided in a concentrated form as a powder or liquid mixture. In either case, the concentrate is substantially free of water and may be presented in a hermetically sealed container or kit. Preferably, substantially no organic solvent is present in the composition.
The concentration of the acyloxy silane and basic silane compound in the pre-mixed concentrate composition is generally in the range 10-100%, preferably 15-80%, most preferably 25-70%. The concentrate may contain numerous P:OPER\Sn62225-00 spe 230.doc-18/08/03 additional components such as stabilisers, pigments, anti-oxidants, basic pH adjusters, desiccants, adhesion promoters, corrosion inhibitors and the like.
The treatment method itself is very simple. Where the solution is to be made up of separately presented components, the unhydrolyzed acyloxy silane, water, basic silane compound, solvent (if desired), are combined with one another.
The solution is then stirred at room temperature in order to hydrolyze the silanes.
The solution generally goes clear when hydrolysis is complete. In this embodiment it is beneficial to maintain the pH of the solution above 2 to limit any condensation of the silanes in solution, particularly the acyloxy silanes.
Where the composition is presented as a pre-mixed kit, the composition is simply added to a pre-determined amount of water and mixed until the solution is substantially clear.
The metal surface to be coated with the solution of the present invention may be solvent and/or alkaline cleaned by techniques well-known to those skilled in the art prior to application of the treatment solution of the present invention. The silane solution is then applied to the metal surface the sheet is coated with the silane solution) by, for example, dipping the metal into the solution (also referred to as "rinsing"), spraying the solution onto the surface of the metal, or S- even brushing or wiping the solution onto the metal surface. Various other S 20 application techniques well-known to those skilled in the art may also be used.
When the preferred application method of dipping is employed, the duration of dipping is not critical, as it generally does not significantly affect the resulting film thickness. It is merely preferred that whatever application method is used, the contact time should be sufficient to ensure complete coating of the metal. For S. S 25 most methods of application, a contact time of at least about 2 seconds, and more preferably at least about 5 seconds, will help to ensure complete coating of the metal.
the treatment solution is used up, the acyloxy silane concentration is S. reduced and the acetic acid concentration remains approximately constant as long as no further acyloxy silane is added to the solution. As further acyloxy silane is added to maintain their concentration, acetic acid is built up in the solution. To P:0PER\San\62225-00 spe 230.doc-18/08/03 -16maintain the pH in the preferred range pH adjusters may be added such as basic silane compounds as hereinbefore described, buffers and the like. In one embodiment, a basic silane compound may be added along with the additional acyloxy silane which forms a salt with the acid in solution. This may form an insoluble salt which can be removed from the process.
The treatment solution may also be heated when applying the treatment solution. Where the treatment solution is heated, the temperature of the treatment solution is generally in the range 200C to 80 0 C, preferably 30 0 C to 500C.
After coating with the treatment solution of the present invention, the metal sheet may be air-dried at room temperature, or, more preferably, placed into an oven for heat drying. Preferable heated drying conditions include temperatures between about 200C and about 200 °C with drying times of between about 30 seconds and about 60 minutes (higher temperatures allow for shorter drying times). More preferably, heated drying is performed at a temperature of at least about 90°C, for a time sufficient to allow the silane coating to dry. While heated drying is not necessary to achieve satisfactory results, it will reduce the drying time thereby lessening the likelihood of the formation of white rust during drying. Once dried, the treated metal may be shipped to an end-user, or stored for later use.
S* The examples below demonstrate some of the superior and unexpected
*S
20 results obtained by employing the methods of the present invention.
Examples Example 1 Salt Spray test (SST)(Lakebluff) was carried out on A1170N/inyltriacetoxysilane 25 natural pH=4) treated AA5005 panels. Alkaline cleaned blank and chromated AA5005 panels were chosen as controls. The treated panels were cured at 1000C for 10 min, and then exposed to SST for 29 days, along with the control panels. Four replicates were made for each treatment. The results are presented in Fig. 1.
WO 01/06036 PCT/US00/19646 17 1. A1170/VTAS treated panels showed original surface after 29 days of exposure to SST, i.e. no corrosion occurred during testing.
2. The blank panels corroded heavily, while the chramated ones pitted apparently.
Example 2 Salt Spray test (Lakebluff) was carried out on A1170/VTAS natural pH=4) treated Al2024-T3 panels. Alkaline cleaned blank and chromated A12024-T3 panels were chosen as controls. The treated panels were cured at 100*C for 10 min, and then exposed to SST for 7 days, along with the control panels. Three replicates were made for each treatment. The results are presented in Fig. 2.
3. A1170A/TAS treated panels showed almost original surface after 7 days of exposure to SST, i.e, only slight edge corrosion occurred during testing.
4. The blank panels corroded heavily, while the chromated ones pitted slightly.
Example 3 In order to investigate the paintability of A1170/VTAS water-based silane film on metal substrates, A1170/VTAS pH=5) water-based silane film was applied on A12023-T3 and HDG, respectively. The treated panels were then powder-painted at Lakebluff with Polyester and Polyurethane powder paints. After that, the panels were put into salt spray chamber for some times, along with the control panels, the blank and the chromated. Three replicates were made for each treatment The results are shown in Fig. 3 1. As for A12024-T3 painted with both powder paints (1000hrs in SST), the corrosion performance and paint adhesion improved significantly, which was equal to the chromated and much better than the blank.
2. As for powder-painted HDG (336 hrs in SST), the corrosion performance improved apparently, compared with the chromated P:ODPER\S-6222S5-0 spe 23O.do-l8/O3 18and the blank. The paint adhesion improved somewhat, which was better that the control panels.
Throughout this specification and the claims which follow, unless the context requires otherwise, the word "comprise", and variations such as "comprises" and "comprising", will be understood to imply the inclusion of a stated integer or step or group of integers or steps but not the exclusion of any other integer or step or group of integers or steps.
The reference to any prior art in this specification is not, and should not be taken as, an acknowledgment or any form of suggestion that that prior art forms part of the common general knowledge in Australia.
0 *o o o

Claims (34)

1. A method of treating a metal surface, comprising the steps of: providing a metal substrate; and applying an aqueous solution to said metal substrate, said solution comprising at least one acyloxy silane which comprises at least one acyloxy group wherein the acyloxysilane comprises a single tetrasubstituted silicon atom, wherein the substituents are individually selected from the group consisting of alkyl, alkenyl, alkynyl, aryl, alkaryl, aralkyl, vinyl, amino, ureido, glycidoxy, epoxy, hydroxy, alkoxy, aryloxy and acyloxy, or any of the group alkyl, alkenyl, alkynyl, aryl, alkaryl and aralkyl substituted by a group selected from the group consisting of vinyl, amine, ureido, glycidoxy, epoxy, hydroxy and alkoxy, with the proviso that at least one of the substituents on the silicon atom is an acyloxy group; wherein said silane has been at least partially hydrolysed; and (ii) at least one basic silane compound selected from either compounds having the general structure \X wherein R 2 is chosen from the group consisting of hydrogen and C1-C24 alkyl, preferably C1-C6 alkyl and each R may be the same or different; 25 X 1 is selected from the group consisting of a bond, a substituted or unsubstituted aliphatic or aromatic group; and R 3 is a group individually selected from the group consisting of hydrogen, C1-C6 alkyl, C2-C6 alkenyl, Cl-C6 alkyl substituted with at least one amino group, C2-C6 alkenyl substituted with at least one amino group, arylene and alkylarylene or a bis-silyl aminosilane(s) having the structure bis-silyl aminosilane(s) having the structure P:AOPERSan\62225-00 spc 230 doc-1/08/03 OR 4 OR 4 R 4 0-Si--R---X 2 -R 5 -Si--OR 4 OR 4 OR 4 wherein R 4 is individually selected from the group consisting of: hydrogen and C 1 C 24 alkyl; R 5 is individually selected from the group consisting of: substituted aliphatic groups, unsubstituted aliphatic groups, substituted aromatic groups, and unsubstituted aromatic groups; and -X 2 is either: R 6 R 6 R 6 I or I -N-R-N wherein each R 6 is individually selected from the group consisting of: hydrogen, substituted and unsubstituted aliphatic groups, and substituted and unsubstituted aromatic groups; and R 7 is selected from the group consisting of: substituted and unsubstituted aliphatic groups, and substituted and unsubstituted aromatic groups wherein the acyloxy S: silane and the basic compound are present in concentrations to provide a solution 20 pH of between 3 and
2. The method according to claim 1 wherein the solution pH is between 4 and
8. 25 3. The method according to claim 1 wherein the solution pH is between 4 and 4. The method according to claim 1, wherein the metal surface selected from the group consisting of steel, aluminium, aluminium alloys, zinc, zinc alloys, magnesium, magnesium alloys, copper, copper alloys, tin, and, tin alloys. P:'OPER\S\62225-00 spe 230.doc-18/08/03 -21- The method according to claim 1, wherein the metal surface is selected from the group consisting of: -a metal surface having a zinc-containing coating; -zinc; -zinc alloy. -Aluminium; -Aluminium alloy; and -steel. 6. The method according to claim 1, wherein the acyloxy groups are all the same and are selected from the group consisting of C2- 12 alkanoyloxy, C3-12 alkenoyloxy, C3-12 alkynoyloxy andC.- 18 arenoyloxy, preferably C2-6 alkanoyloy, C3. 6 alkenoyloxy, C3-6 alkynoyloxy and C7-12 arenoyloxy. 7. The method according to claim 6, wherein the acyloxy groups are ethanoyloxy or methanoyloxy groups. 0. 8. The method according to any preceding claim, wherein the acyloxy silane is selected from the group ogo *oe P:PER\Sa\62225-00 sp 230.doc-19/08/03 -22- S OCOR OCOR X-Si-OCOR H 2 N-Y-Si-OCOR H OCOR OCOR O OCOR O COR H 2 N N-Z-Si-OCOR Z---W-Si-OCOR H COR OCOR wherein W, X, Y and Z are selected from the group consisting of a C-Si bond, substituted aliphatic groups, unsubstituted aliphatic groups, substituted aromatic groups and unsubstituted aromatic groups; and R is selected from methyl, ethyl and propyl.
9. The method according to claim 1 wherein the acyloxy silane comprises more than one silyl group. The method according to claim 1, wherein the acyloxy silane comprises two silyl groups.
11. The method according to claim 9, wherein the acyloxy groups are the same 20 and are selected from the group consisting of 02-12 alkanoyloxy, C3-12 alkenoyloxy, C3-12 alkynoyloxy and C7-18 arenoyloxy, preferably C2-6 alkanoyloxy, C3-6 alkenoyloxy, C3-6 alkynoyloxy and C7-12 arenoyloxy.
12. A method according to claim 10 wherein the acyloxy groups are 25 ethanoyloxy or methanoyloxy groups. The method according to claim 9 or 10, wherein the acyloxysilane has the structure e P:\OPER\Sanl6222500 spe 230.doc-18/08/03 -23- OCOR I Q--Si-OCOR OCOR 2 wherein Q is selected from the group consisting of either a bond, an aliphatic or aromatic group; and R 1 is selected from methyl, ethyl and propyl.
14. The method according to claim 12, wherein Q is selected from the group consisting of a bond, Ci-C 6 alkylene, C 2 -C 6 alkenylene, C 1 -C 6 alkylene substituted with at least one amino group, C 2 -C 6 alkenylene substituted with at least one amino group, C 1 -C 6 alkylene substituted with at least one sulfide group containing 1 to 10 sulfur atoms, C 2 -C 6 alkenylene substituted with at least one sulfide group containing 1 to 10 sulfur atoms, arylene and alkylarylene. The method according to claim 13, wherein the acyloxy silane is selected from the group consisting of bis-(triacetoxysilyl)ethane, bis-(triacetoxysilylpropyl) amine and bis-(triacetoxysilylpropyl)tetrasulfide. S
16. The method according to claim 1, wherein the acyloxy silane is vinyltriacetoxysilane.
17. The method according to claim 1, wherein R 2 is individually chosen from 25 the group consisting of hydrogen, ethyl, methyl, propyl, iso-propyl, butyl, iso-butyl, sec-butyl and ter-butyl; X 1 is selected from the group chosen from the group consisting of a bond, C 1 -C 6 alkylene, C 2 -C 6 alkenylene, C 1 -C 6 alkylene substituted with at least one amino group, C 2 -C 6 alkenylene substituted with at least one amino group, arylene and alkylarylene; and P:\OPER\San\62225-00 spe 230.doc-18/08/03 -24- R 3 is individually selected from the group consisting of hydrogen, ethyl, methyl, propyl, iso-propyl, butyl, iso-butyl, sec-butyl and ter-butyl.
18. The method according to claim 1, wherein the basic compounds are selected from the group consisting of y-aminopropyltriethoxysilane and -y aminopropyltrimethoxysilane, bis-(trimethoxysilylpropyl)amine, bis- (triethoxysilylpropyl)amine and bis-(triethoxysilylpropyl)ethylene diamine.
19. The method according to any preceding claim, wherein a polymer coating is applied to the treated metal substrate. The method of claim 19, wherein the polymer coating is selected from paints, adhesives, rubbers and plastics.
21. The method according to any preceding claim, wherein the solution contains at least 0.1% acyloxy silanes by volume.
22. The method according to claim 20 wherein the solution contains at least 1% S: acyloxy silanes by volume.
23. The method according to claim 20 wherein the solution contains between 2 and 5% by volume of acyloxy silanes.
24. The method according to any preceding claim wherein the solution contains 25 at least 0.1% basic compound by volume. 9*o
25. The method according to any preceding claim wherein the solution contains at least 1% by volume of basic compound.
26. The method according to any preceding claim wherein the solution contains between 2% and 5% of basic compound. P;'OPER\San622254-0 spe 230.doc-19/08/03
27. A composition comprising an acyloxy silane and a basic compound as defined in any preceding claim, wherein the aqueous solution pH is between 3 and
28. A composition according to any preceding claim wherein the aqueous solution pH is between 4 and 8.
29. A composition according to any preceding claim wherein the aqueous solution pH is between 4 and The composition according to claim 27, wherein the solution contains at least 0.1% acyloxy silanes by volume.
31. The composition according to any preceding claim wherein the solution contains at least 1% acyloxy silane by volume.
32. The composition according to any preceding claim wherein the solution p* contains between 2% and 5% of acyloxysilane by volume.
33. The composition according to any one of claims 27 to 30, wherein the aqueous solution contains 0.1% basic compound by volume.
34. The composition according to any one of claims 27 to 30, wherein the 25 solution contains at least 1% by volume of basic compound. The composition according to any of claims 27 to 30, wherein the solution contains between 2% and 10% by volume of basic compound.
36. The composition according to any of claims 27 to 30 wherein the solution contains between 2% and 5% by volume. PAOPERS=62223-00 spe 230.do-18/03W -26-
37. A composition comprising an acyloxy silane as defined in any one of claims 1 and 6 to 16 and a basic compound as defined in any one of claims 1, 17 and 18, wherein the acyloxy silane is substantially unhydrolysed and the composition is substantially free of water.
38. The composition according to claim 37, wherein the combined concentration of the acyloxy silane and basic compound in composition is generally in the range 10-100%.
39. The composition according to claim 36 wherein the combined concentration of the acyloxy silane and basic compound in composition is in the range 15-80%. The composition according to claim 36 wherein the combined concentration of the acyloxy silane and basic compound in the composition is in the range
41. The composition according to claim 38, wherein the concentrations of S. acyloxy silane and basic compound pre-determined so as to provide a solution 20 with a pH in the range of between 3 and 10 when dissolved in water.
42. The composition according to claim 37 wherein the solution has a pH between 4 and 8 when dissolved in water. 25 43. The composition according to claim 37 wherein the solution has a pH between 4 and 5 when dissolved in water.
44. The composition according to any of claims 27 to 41, comprising additional components selected from stabilisers, pigments, anti-oxidants, desiccants, adhesion promoters, corrosion inhibitors and mixtures thereof. P:'OPER\San'62225O0 spe 230,doc-18/08/03 -27- A kit comprising a composition according to any of claims 27 to 42.
46. The method according to claim 1 substantially as hereinbefore described.
47. The composition according to claim 27 substantially as hereinbefore described.
48. The kit according to claim 45 substantially as hereinbefore described. *O a
AU62225/00A 1999-07-19 2000-07-19 Acyloxy silane treatments for metals Expired AU766638B2 (en)

Applications Claiming Priority (5)

Application Number Priority Date Filing Date Title
US09/356,926 US6827981B2 (en) 1999-07-19 1999-07-19 Silane coatings for metal
US09/356926 1999-07-19
PCT/EP2000/006794 WO2001005520A2 (en) 1999-07-19 2000-07-17 Protective treatment of metal surfaces with aqueous mixture of vinyl silane and bis-silyl aminosilane
WOEP00/06794 2000-07-17
PCT/US2000/019646 WO2001006036A1 (en) 1999-07-19 2000-07-19 Acyloxy silane treatments for metals

Publications (2)

Publication Number Publication Date
AU6222500A AU6222500A (en) 2001-02-05
AU766638B2 true AU766638B2 (en) 2003-10-23

Family

ID=26069194

Family Applications (1)

Application Number Title Priority Date Filing Date
AU62225/00A Expired AU766638B2 (en) 1999-07-19 2000-07-19 Acyloxy silane treatments for metals

Country Status (2)

Country Link
AU (1) AU766638B2 (en)
CA (1) CA2378851A1 (en)

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1999020705A1 (en) * 1997-10-23 1999-04-29 Aar Cornelis P J V D Rubber to metal bonding by silane coupling agents
AU2446800A (en) * 1999-02-05 2000-08-25 Chemetall Plc Method of treating metals using amino silanes and multi-silyl-functional silanesin admixture

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1999020705A1 (en) * 1997-10-23 1999-04-29 Aar Cornelis P J V D Rubber to metal bonding by silane coupling agents
AU2446800A (en) * 1999-02-05 2000-08-25 Chemetall Plc Method of treating metals using amino silanes and multi-silyl-functional silanesin admixture

Also Published As

Publication number Publication date
CA2378851A1 (en) 2001-01-25
AU6222500A (en) 2001-02-05

Similar Documents

Publication Publication Date Title
EP1198616B1 (en) Acyloxy silane treatments for metals
EP1097259B1 (en) Corrosion prevention of metals using bis-functional polysulfur silanes
US6203854B1 (en) Methods of and compositions for preventing corrosion of metal substrates
CA2273249C (en) Method of preventing corrosion of metals using silanes
US6596835B1 (en) Method of treating metals using amino silanes and multi-silyl-functional silanes in admixture
US6361592B1 (en) Method of treating metals using ureido silanes and multi-silyl-functional silanes in admixture
US6071566A (en) Method of treating metals using vinyl silanes and multi-silyl-functional silanes in admixture
EP0959990A2 (en) Method of preventing corrosion of metal sheet using vinyl silanes
JP2006519308A (en) Method for coating a metal surface with a polymer-rich composition
AU766638B2 (en) Acyloxy silane treatments for metals
WO2001006036A1 (en) Acyloxy silane treatments for metals
AU724978C (en) Method and compositions for preventing corrosion of metal substrates
MXPA99004235A (en) Method of preventing corrosion of metal sheet using vinyl silanes

Legal Events

Date Code Title Description
FGA Letters patent sealed or granted (standard patent)
MK14 Patent ceased section 143(a) (annual fees not paid) or expired