USRE35058E - Peroxy cured (meth)acrylic ester compositions employing nitrite, borate, silicate or carbonate salt accelerators - Google Patents

Peroxy cured (meth)acrylic ester compositions employing nitrite, borate, silicate or carbonate salt accelerators Download PDF

Info

Publication number
USRE35058E
USRE35058E US08/036,467 US3646793A USRE35058E US RE35058 E USRE35058 E US RE35058E US 3646793 A US3646793 A US 3646793A US RE35058 E USRE35058 E US RE35058E
Authority
US
United States
Prior art keywords
formulation
iaddend
iadd
nitrite
meth
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 - Lifetime
Application number
US08/036,467
Inventor
Darchun B. Yang
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.)
Henkel Loctite Corp
Original Assignee
Henkel Loctite Corp
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
Application filed by Henkel Loctite Corp filed Critical Henkel Loctite Corp
Priority to US08/036,467 priority Critical patent/USRE35058E/en
Assigned to LOCTITE CORPORATION reassignment LOCTITE CORPORATION ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: NEWBERTH, FREDERICK F., III
Application granted granted Critical
Publication of USRE35058E publication Critical patent/USRE35058E/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09DCOATING COMPOSITIONS, e.g. PAINTS, VARNISHES OR LACQUERS; FILLING PASTES; CHEMICAL PAINT OR INK REMOVERS; INKS; CORRECTING FLUIDS; WOODSTAINS; PASTES OR SOLIDS FOR COLOURING OR PRINTING; USE OF MATERIALS THEREFOR
    • C09D4/00Coating compositions, e.g. paints, varnishes or lacquers, based on organic non-macromolecular compounds having at least one polymerisable carbon-to-carbon unsaturated bond ; Coating compositions, based on monomers of macromolecular compounds of groups C09D183/00 - C09D183/16
    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09JADHESIVES; NON-MECHANICAL ASPECTS OF ADHESIVE PROCESSES IN GENERAL; ADHESIVE PROCESSES NOT PROVIDED FOR ELSEWHERE; USE OF MATERIALS AS ADHESIVES
    • C09J4/00Adhesives based on organic non-macromolecular compounds having at least one polymerisable carbon-to-carbon unsaturated bond ; adhesives, based on monomers of macromolecular compounds of groups C09J183/00 - C09J183/16

Definitions

  • Formulations employing combinations of anaerobic and chemical activation are also known.
  • U.S. Pat. No. 3,672,942 there is described an impregnation process employing the steps of impregnating a porous article with an anaerobically curable composition and then treating the surface with a chemical activator to induce surface cure where the impregnant is exposed to oxygen.
  • Suitable activators include solutions of amine/aldehyde condensation products, various metal salts or chelates and various thiourea or other sulfur containing compounds. While the presence of uncured surface monomer has been reduced by the improved processes of U.S. Pat. No. 3,969,552 and U.S. Pat. No. 4,165,400, it is still generally advised to use an accelerator rinse to activate cure of the composition nearest of the surface of the impregnated article. Erythrobic or ascorbic acids have become preferred impregnation surface activators in more recent years.
  • transition metals especially copper or iron
  • Transition metal oxidation is often part of the redox reaction which produces free radicals from peroxy initiators.
  • Transition metal may be supplied by the substrate itself or in the form of salts of metals incorporated into the formulation or applied to the substrate. Copper, manganese, iron, cobalt and vanadium salts are all known for this purpose, copper and iron being the most commonly used.
  • impregnation processes which employ aeration of the acrylic monomer formulation it is typical to add 1-10 ppm copper as a copper salt directly to the formulation.
  • combinations of copper and iron salts or complexes may also be employed.
  • this invention comprises a novel curable composition comprising:
  • the composition includes an acid having a pKa of 6 or less, the composition further includes at least 1 ppm of a transition metal salt and is free of compounds of the formula: ##STR1## where R 1 is a monovalent hydrocarbon group, x is an integer of at least 1 and R 2 is H or a x-valent hydrocarbon group.
  • the composition may also include other conventional accelerators such as sulfimide, phenyl hydrazide and amine accelerators.
  • the cure accelerating nitrite, borate, silicate or alkaline carbonate salt may be applied to a substrate surface, rather than directly into the composition and still give effective acceleration.
  • the salts can be used both as corrosion inhibitors for the substrates and as cure accelerators for the composition. Therefore, as a further aspect of the invention there is the process of bonding or sealing two metallic substrates, at least one of which has a coating comprising a nitrite, borate, silicate or alkaline carbonate salt, the process comprising applying to at least one of said substrates composition comprising:
  • composition (b) a polymerization initiating effective amount of a peroxy compound provided that if the composition includes an acid having a pKa of 6 or less, the composition further includes at least 1 ppm of a transition metal salt and is free of compounds of the formula: ##STR2## where R 1 is a monovalent hydrocarbon group, x is an integer of at least 1 and R 2 is H or a x-valent hydrocarbon group,
  • the nitrite, borate, silicate or carbonate salt only need be present on the surface of the substrate in very low levels, such as a few ppm, to be effective.
  • a further aspect of the invention as described is its adaptability for impregnation into a porous substrate.
  • a still further aspect of the invention comprises an improved process for bonding a pair of substrates with an anaerobic adhesive formulation by applying the adhesive between the substrates and joining them until bonded, the improvement comprising first (determining whether either of the substrates has been treated with a composition leaving a residue of a nitrite, silicate, borate, or alkaline carbonate salt and if so, selecting an anaerobic adhesive for application to the substrates which is free of an acid having a pKa of 6 or lower.)
  • the (meth)acrylic ester employed in the compositions of the invention may be any (meth)acrylic ester provided, however, that if the ester compound also includes acid functionally having a pKa above 6, the formulation must include at least 1 ppm of a transition metal salt and the composition must be free of acyl hydrazine compounds of formula (1) above.
  • Suitable monomers are described in U.S. Pat. Nos. 3,425,988, 4,018,851, 4,295,909, 4,309,526, 4,380,613 and 4,439,600, all of which are incorporated herein by reference.
  • One class of monomers suited for use in this invention comprises acrylate esters having the following general formula: ##STR3## wherein R 4 represents a radical selected from the group consisting of hydrogen, halogen, alkyl of 1-4 carbon atoms, inclusive, hydroxy alkyl of 1-4 carbon atoms inclusive, and ##STR4## R 3 is a radical selected from the group consisting of hydrogen, halogen, and lower alkyl of 1-4 carbon atoms; R 5 is a radical selected from the group consisting of hydrogen, --OH and ##STR5## m is an integer equal to at least 1, e.g. from 1 to 8 or higher, for instance, from 1 to 4 inclusive, n is an integer equal to at least 1, for example, 1 to 20 or more; and p is 0 or 1.
  • the polymerizable polyacrylate esters utilized in accordance with the invention and corresponding to the above general formula are exemplified by, but not restricted to, the following materials: diethylene glycol dimethacrylate, triethylene glycol dimethacrylate, tetraethylene glycol dimethacrylate, dipropylene glycol dimethacrylate, di-(pentamethylene glycol) dimethacrylate, tetraethylene diglycerol diacrylate, diglycerol tetramethacrylate, tetramethylene dimethacrylate, ethylene dimethacrylate, neopentyl glycol diacrylate and trimethylol propane triacrylate.
  • the preferred monomers are triethylene glycol dimethacrylate and polyethylene glycol dimethacrylate.
  • epoxy acrylate monomers i.e. the reaction products of epoxy compounds or prepolymers with acrylic or methacrylic acids
  • urethane acrylate capped prepolymers such as those described in U.S. Pat. Nos. 4,309,526, 4,295,909, 4,018,851, 4,380,613, and 4,439,600 may be employed.
  • (meth)acrylic esters of ethoxylated bisphenol A and structurally similar compounds are also useful.
  • monoacrylate esters can be used, particularly if the non-acrylate portion of the ester contains a hydroxyl or amino group, or other reactive substituent which serves as a site for potential cross-linking.
  • useful mono(meth)acrylate monomers are hydroxyethyl methacrylate, cyanoethyl acrylate, t-butylaminoethyl methacrylate, glycidyl methacrylate, dicyclopentadiene methacrylate, lauryl acrylate and lauryl methacrylate. Further details on useful monomers may be found in U.S. Pat. No. 4,287,330 at Col. 3, line 51-Col. 6, line 44.
  • Silicones having (meth)acrylate ester functionally are another class of monomers which may be used in the invention. Examples of such silicones may be found in U.S. Pat. Nos. 3,878,263, 4,035,355, 4,348,454, 4,477,326, 4,503,208, 4,504,629, 4,575,545, 4,575,546, 4,640,940, and 4,684,538, all incorporated herein by reference.
  • metal ions if present, from the polymerizable monomer. This may be particularly desirable in the event that commercially obtained monomers, which often contain significant amounts of metal ions are employed in these compositions. (Removal of metal ions may be effected by means known to those skilled in the art.)
  • compositions of the invention may comprise a single type of polymerizable monomer or may comprise a blend of two or more different polymerizable monomers. (Preferably they are substantially 100% solids formulations, i.e. they cure to solids without substantial weight loss due to solvent volitalization, or the like.)
  • the preferred compositions include at least one monomer or prepolymer which is characterized by at least two acrylate or methacrylate groups per molecule. Such compounds are suitably used at levels of 30% or more by weight of the composition.
  • the improved thermal properties of the inventive compositions are usually most striking when the formulation contains a urethane acrylate or urethane methacrylate capped prepolymer.
  • compositions of the inventions cure via a peroxy initiated free radical mechanism.
  • useful initiators are any of a wide variety of known peroxy compounds. Illustrative of such initiators are the diacyl peroxides such as benzoyl peroxide; dialkyl peroxides such as di-t-butyl peroxide; ketone peroxides such as methylethyl ketone peroxides; peresters which readily hydrolyze, e.g., t-butyl peracetate, t-butylperbenzoate, di-t-butyldiperphthalate; and peroxycarbonates, i.e., reaction products of isocyantes and hydroperoxides.
  • a particularly useful class of peroxy initiators are the organic hydroperoxides such as cumene hydroperoxide, methyl ethyl ketone hydroperoxide, t-butyl hydroperoxide, etc. Of these, cumene hydroperoxide is especially preferred. It is also known in the art to generate hydroperoxides in-situ by aeration of some (meth)acrylic ester monomers.
  • the peroxy initiators should be used at a concentration of about 0.01% to about 10% by weight of the total formulation, preferably 0.1% to about 5% by weight, most preferably about 1%-3% by weight.
  • transition metal compound In the case of impregnants and other formulations to which transition metal salts are added, it is usually necessary to add the transition metal compound at the time the composition is to be used unless the composition is aerated to maintain stability.
  • the inventive compositions also include an accelerating salt selected from nitrite, borate, silicate and alkaline carbonate salts. Most preferred are the nitrite salts as they show the highest acceleration activity.
  • the counter-ion is not considered critical.
  • these salts are alkali metal salts such as sodium, potassium, or lithium salts. Such salts are commonly used in metal corrosion inhibition formulations. Other counter-ions, however, may be useful such as ammonium or copper salts.
  • the level of accelerating salt may be very low.
  • levels of sodium nitrite based corrosion inhibitor providing just a few ppm nitrite ion on the surface can be sufficient to substantially improve the cure rate.
  • the level is generally recommended to be between 0.001 and 5.0 percent, preferably 0.01 and 1.0 percent, more preferably between 0.1 and 0.5 percent.
  • accelerators of anaerobic polymerization may also be advantageously included.
  • Such accelerators include a variety of secondary and tertiary organic amines as well as sulfimides (e.g. benzoic sulfimide) which are also known in the art. These may be used at a concentration range of about 0.1 to about 5, preferably about 1 to about 2% by weight of the total composition.
  • sulfimides e.g. benzoic sulfimide
  • agents such as thickeners, plasticizers, etc, are also known in the art and may advantageously be incorporated where functionally desirable, provided only that they do not interfere with the functioning of the composition for its intended purpose. This, of course, can be determined by simple experimentation.
  • the invention may be illustrated by the following non-limiting examples.
  • Model anaerobic formulations were prepared as in Table 1. Cure rates of the respective formulations between a sodium chloride salt plate and a polished aluminum panel (having a trace content of copper) were monitored for two hours by real time FTIR and compared to the cure rate observed when the aluminum panel was treated by immersing it in a 5 wt % solution of aqueous sodium nitrite for 15 minutes and blow drying the panel with dry nitrogen immediately after removing it from the solution. The highest observed cure rate and percent cure after 2 hours for the respective formulations on untreated and treated panels are recorded in Table I below.
  • formulations A and F The results show that nitrite treatment enhanced the cure of formulations A and F. Inhibition was observed with formulations B, D and E, all of which included acrylic acid and two of which also included acetyl phenyl hydrazine. It was also noted that for formulation A the induction period before onset of polymerization was reduced from 40 minutes on the untreated panel to 5 minutes on the treated panel.
  • a typical anaerobic impregnant formulation was prepared containing the following ingredients:

Abstract

(Meth)acrylic ester formulations employing peroxy initiators have accelerated cure rates when the substrates to which they are applied, or the compositions themselves, include nitrite, borate, silicate or carbonate salts. The compositions should be free of acids having a PKa of 6 or less unless the composition also includes a transition metal compound.

Description

BACKGROUND OF THE INVENTION
(Anaerobic formulations, i.e. (meth)acrylic ester formulations which are oxygen stabilized and cure as a result of oxygen deprivation,) have become well known since their disclosure in U.S. Pat. No. 2,628,178. The invention of formulations employing hydroperoxide catalysts which are stable without aeration which was disclosed in U.S. Pat. No. 2,895,950 (Krieble) prompted a wide range of commercial uses for such formulations including thread locking, impregnation of porous articles, gasketing and adhesive bonding applications. Acceleration of the cure of such composition has been disclosed in numerous patents. (Sulfimide accelerators, particularly saccharin (benzoic sulfimide),) have been used in most anaerobic formulations since the disclosure of their utility in U.S. Pat. No. 3,046,262. Other accelerator systems which are known for use in anaerobic formulations include various amine compounds as disclosed, for instance, in U.S. Pat. Nos. 3,041,322, 3,203,941 and 3,218,305 and various compounds having structures analogous to sulfimides such as disclosed in U.S. Pat. No. 4,513,127 and U.S. Pat. No. 4,622,348 and the references disclosed therein. Certain acyl hydrazine compounds are disclosed as anaerobic accelerators in U.S. Pat. Nos. 4,180,640 and 4,287,330preferably in combination with an acid having a small pKa of 6 or less. The various known types of accelerators are often used in combination in commercial formulations.
Similar acrylic curable peroxy initiated compositions which rely on chemical activation rather than oxygen deprivation to activate cure initiation are disclosed, for instance, in U.S. Pat. Nos. 4,442,267; 4,450,030; 4,451,615 and 4,574,142. Preferred activators for such compositions are amine/aldehyde condensation products.
Formulations employing combinations of anaerobic and chemical activation are also known. For instance, in U.S. Pat. No. 3,672,942 there is described an impregnation process employing the steps of impregnating a porous article with an anaerobically curable composition and then treating the surface with a chemical activator to induce surface cure where the impregnant is exposed to oxygen. Suitable activators include solutions of amine/aldehyde condensation products, various metal salts or chelates and various thiourea or other sulfur containing compounds. While the presence of uncured surface monomer has been reduced by the improved processes of U.S. Pat. No. 3,969,552 and U.S. Pat. No. 4,165,400, it is still generally advised to use an accelerator rinse to activate cure of the composition nearest of the surface of the impregnated article. Erythrobic or ascorbic acids have become preferred impregnation surface activators in more recent years.
It has also (long been known) that transition metals, especially copper or iron, play an important part in the cure mechanism of peroxide initiated acrylic formulations. This is especially so in anaerobic cure mechanisms. Transition metal oxidation is often part of the redox reaction which produces free radicals from peroxy initiators. Transition metal may be supplied by the substrate itself or in the form of salts of metals incorporated into the formulation or applied to the substrate. Copper, manganese, iron, cobalt and vanadium salts are all known for this purpose, copper and iron being the most commonly used. In impregnation processes which employ aeration of the acrylic monomer formulation it is typical to add 1-10 ppm copper as a copper salt directly to the formulation. As disclosed in U.S. Pat. No. 4,632,945, combinations of copper and iron salts or complexes may also be employed.
Recently it has been discovered that certain anaerobic formulations as described in U.S. Pat. Nos. 4,180,640 and 4,287,330 will not readily cure on metal substrates treated with nitrite, silicate, borate or alkaline carbonate corrosion inhibitors even though these compounds are typically present on the surface at a level of only a few ppm. Cure inhibition by nitrite salts was observed to be most severe. This discovery prompted an investigation of the effect of such salts on the cure of anaerobic compositions.
SUMMARY OF THE INVENTION
The investigation into curing inhibition by common corrosion inhibiting compounds has lead to the surprising discovery that in many cases these same compounds actually accelerate cure of peroxy initiated (meth)acrylic ester compositions. Accordingly, in one aspect this invention comprises a novel curable composition comprising:
(a) at least one (meth)acrylic ester;
(b) a polymerization initiating effective amount of a peroxy compound; and
(c) an effective amount for accelerating polymerization of a nitrite, borate, silicate or alkaline carbonate salt,
provided that if the composition includes an acid having a pKa of 6 or less, the composition further includes at least 1 ppm of a transition metal salt and is free of compounds of the formula: ##STR1## where R1 is a monovalent hydrocarbon group, x is an integer of at least 1 and R2 is H or a x-valent hydrocarbon group. Subject to the restrictions above, the composition may also include other conventional accelerators such as sulfimide, phenyl hydrazide and amine accelerators.
The cure accelerating nitrite, borate, silicate or alkaline carbonate salt may be applied to a substrate surface, rather than directly into the composition and still give effective acceleration. In this way the salts can be used both as corrosion inhibitors for the substrates and as cure accelerators for the composition. Therefore, as a further aspect of the invention there is the process of bonding or sealing two metallic substrates, at least one of which has a coating comprising a nitrite, borate, silicate or alkaline carbonate salt, the process comprising applying to at least one of said substrates composition comprising:
(a) at least one (meth)acrylic ester; and,
(b) a polymerization initiating effective amount of a peroxy compound provided that if the composition includes an acid having a pKa of 6 or less, the composition further includes at least 1 ppm of a transition metal salt and is free of compounds of the formula: ##STR2## where R1 is a monovalent hydrocarbon group, x is an integer of at least 1 and R2 is H or a x-valent hydrocarbon group,
and then joining the substrates until the composition has cured. The nitrite, borate, silicate or carbonate salt only need be present on the surface of the substrate in very low levels, such as a few ppm, to be effective.
A further aspect of the invention as described is its adaptability for impregnation into a porous substrate.
Surface acceleration with nitrite, borate, silicate or carbonate salt is also an advantage as a final step in an impregnation process using anaerobic sealants. Using a dilute aqueous solution comprising one of these salts as a final rinse after impregnation and cleaning is especially advantageous where the impregnated substrate is a porous metallic article since the residual salt simultaneously will accelerate cure of the composition near the surface and inhibit corrosion of the metallic article. The impregnant, however, must meet the same proviso as set forth above.
A still further aspect of the invention comprises an improved process for bonding a pair of substrates with an anaerobic adhesive formulation by applying the adhesive between the substrates and joining them until bonded, the improvement comprising first (determining whether either of the substrates has been treated with a composition leaving a residue of a nitrite, silicate, borate, or alkaline carbonate salt and if so, selecting an anaerobic adhesive for application to the substrates which is free of an acid having a pKa of 6 or lower.)
DETAILED DESCRIPTION OF THE INVENTION
All of the U.S. patents identified in the foregoing background section of the invention are incorporated herein by reference.
The (meth)acrylic ester employed in the compositions of the invention (i.e. component (a)) may be any (meth)acrylic ester provided, however, that if the ester compound also includes acid functionally having a pKa above 6, the formulation must include at least 1 ppm of a transition metal salt and the composition must be free of acyl hydrazine compounds of formula (1) above. Suitable monomers are described in U.S. Pat. Nos. 3,425,988, 4,018,851, 4,295,909, 4,309,526, 4,380,613 and 4,439,600, all of which are incorporated herein by reference.
One class of monomers suited for use in this invention comprises acrylate esters having the following general formula: ##STR3## wherein R4 represents a radical selected from the group consisting of hydrogen, halogen, alkyl of 1-4 carbon atoms, inclusive, hydroxy alkyl of 1-4 carbon atoms inclusive, and ##STR4## R3 is a radical selected from the group consisting of hydrogen, halogen, and lower alkyl of 1-4 carbon atoms; R5 is a radical selected from the group consisting of hydrogen, --OH and ##STR5## m is an integer equal to at least 1, e.g. from 1 to 8 or higher, for instance, from 1 to 4 inclusive, n is an integer equal to at least 1, for example, 1 to 20 or more; and p is 0 or 1.
The polymerizable polyacrylate esters utilized in accordance with the invention and corresponding to the above general formula are exemplified by, but not restricted to, the following materials: diethylene glycol dimethacrylate, triethylene glycol dimethacrylate, tetraethylene glycol dimethacrylate, dipropylene glycol dimethacrylate, di-(pentamethylene glycol) dimethacrylate, tetraethylene diglycerol diacrylate, diglycerol tetramethacrylate, tetramethylene dimethacrylate, ethylene dimethacrylate, neopentyl glycol diacrylate and trimethylol propane triacrylate. Of these, the preferred monomers are triethylene glycol dimethacrylate and polyethylene glycol dimethacrylate.
In addition to the monomers described above, epoxy acrylate monomers (i.e. the reaction products of epoxy compounds or prepolymers with acrylic or methacrylic acids) and urethane acrylate capped prepolymers such as those described in U.S. Pat. Nos. 4,309,526, 4,295,909, 4,018,851, 4,380,613, and 4,439,600 may be employed. Also useful are (meth)acrylic esters of ethoxylated bisphenol A and structurally similar compounds.
Although di-and and other poly(meth)acrylate esters are preferred, monoacrylate esters can be used, particularly if the non-acrylate portion of the ester contains a hydroxyl or amino group, or other reactive substituent which serves as a site for potential cross-linking. Examples of useful mono(meth)acrylate monomers are hydroxyethyl methacrylate, cyanoethyl acrylate, t-butylaminoethyl methacrylate, glycidyl methacrylate, dicyclopentadiene methacrylate, lauryl acrylate and lauryl methacrylate. Further details on useful monomers may be found in U.S. Pat. No. 4,287,330 at Col. 3, line 51-Col. 6, line 44.
Silicones having (meth)acrylate ester functionally are another class of monomers which may be used in the invention. Examples of such silicones may be found in U.S. Pat. Nos. 3,878,263, 4,035,355, 4,348,454, 4,477,326, 4,503,208, 4,504,629, 4,575,545, 4,575,546, 4,640,940, and 4,684,538, all incorporated herein by reference.
In order to enhance shelf life of the compositions, it may be desirable to remove metal ions, if present, from the polymerizable monomer. This may be particularly desirable in the event that commercially obtained monomers, which often contain significant amounts of metal ions are employed in these compositions. (Removal of metal ions may be effected by means known to those skilled in the art.)
The compositions of the invention may comprise a single type of polymerizable monomer or may comprise a blend of two or more different polymerizable monomers. (Preferably they are substantially 100% solids formulations, i.e. they cure to solids without substantial weight loss due to solvent volitalization, or the like.)
The preferred compositions include at least one monomer or prepolymer which is characterized by at least two acrylate or methacrylate groups per molecule. Such compounds are suitably used at levels of 30% or more by weight of the composition. The improved thermal properties of the inventive compositions are usually most striking when the formulation contains a urethane acrylate or urethane methacrylate capped prepolymer.
The compositions of the inventions cure via a peroxy initiated free radical mechanism. Useful initiators are any of a wide variety of known peroxy compounds. Illustrative of such initiators are the diacyl peroxides such as benzoyl peroxide; dialkyl peroxides such as di-t-butyl peroxide; ketone peroxides such as methylethyl ketone peroxides; peresters which readily hydrolyze, e.g., t-butyl peracetate, t-butylperbenzoate, di-t-butyldiperphthalate; and peroxycarbonates, i.e., reaction products of isocyantes and hydroperoxides. A particularly useful class of peroxy initiators are the organic hydroperoxides such as cumene hydroperoxide, methyl ethyl ketone hydroperoxide, t-butyl hydroperoxide, etc. Of these, cumene hydroperoxide is especially preferred. It is also known in the art to generate hydroperoxides in-situ by aeration of some (meth)acrylic ester monomers. The peroxy initiators should be used at a concentration of about 0.01% to about 10% by weight of the total formulation, preferably 0.1% to about 5% by weight, most preferably about 1%-3% by weight.
In the case of impregnants and other formulations to which transition metal salts are added, it is usually necessary to add the transition metal compound at the time the composition is to be used unless the composition is aerated to maintain stability.
As previously mentioned, the inventive compositions also include an accelerating salt selected from nitrite, borate, silicate and alkaline carbonate salts. Most preferred are the nitrite salts as they show the highest acceleration activity. The counter-ion is not considered critical. Suitably these salts are alkali metal salts such as sodium, potassium, or lithium salts. Such salts are commonly used in metal corrosion inhibition formulations. Other counter-ions, however, may be useful such as ammonium or copper salts.
The level of accelerating salt may be very low. For surface activation, levels of sodium nitrite based corrosion inhibitor providing just a few ppm nitrite ion on the surface can be sufficient to substantially improve the cure rate. When added to adhesive and sealant compositions, the level is generally recommended to be between 0.001 and 5.0 percent, preferably 0.01 and 1.0 percent, more preferably between 0.1 and 0.5 percent.
Other accelerators of anaerobic polymerization may also be advantageously included. Such accelerators include a variety of secondary and tertiary organic amines as well as sulfimides (e.g. benzoic sulfimide) which are also known in the art. These may be used at a concentration range of about 0.1 to about 5, preferably about 1 to about 2% by weight of the total composition. However, it has been found that certain combinations of accelerators have the opposite effect in the presence of the accelerating salt so that polymerization of the composition is severely inhibited. If compounds having a pKa of less than 6 are present in the formulation the presence of a nitrite, borate, silicate or alkaline carbonate salt in the formulation or on the substrate will usually substantially inhibit cure speed. The inhibition effect is magnified if the formulation includes both an acid having an pKa of 6 or less and a compound of the formula: ##STR6##
Without being bound thereto, the Applicant believes that this cure inhibition effect is the result of a side reaction in which the nitrite and acid together participate to decompose the peroxy compound to ionic species rather than to a radical capable of cure initiation. The presence of compounds (1) are believed to participate in a nitrite regeneration reaction which accounts for the more severe inhibition effect noted when both acid and a compound of formula (1) are present in the formulation.
An exception to the prohibition against acidic compounds in the formulation has been observed, however, in impregnation formulations to which a small amount of transition metal compound has been added in accordance with the usual procedure as noted above. Typically a small amount of Cu(II) and/or Fe(II) salt or complex compound are added to such formulations at the time of use. Aeration of the formulation is then maintained to prevent premature polymerization. It has been observed that addition of nitrite, borate, silicate or alkaline carbonate salts accelerates cure in the absence of acid. This acceleration is accentuated by the presence of small amounts of water. In addition to the acceleration in the absence of acid, a synergistic acceleration is obtained when relatively high levels of an acid such as acrylic acid are included in the formulation with a nitrite salt. In these formulations the acrylic acid alone has a noticeable inhibiting effect. The mechanism accounting for this phenomenon is not known although, again, it is believed that the mechanism probably involves competing reactions which respectively produce radicals or ions from the peroxy species. In any event, the use of such accelerating salts, especially the nitrite salts, as components of anaerobic impregnation formulations or in a final accelerator rinse, will give substantial acceleration even in the presence of an acid having a pKa of 6 or less.
Other agents such as thickeners, plasticizers, etc, are also known in the art and may advantageously be incorporated where functionally desirable, provided only that they do not interfere with the functioning of the composition for its intended purpose. This, of course, can be determined by simple experimentation.
The invention may be illustrated by the following non-limiting examples.
EXAMPLE I
Model anaerobic formulations were prepared as in Table 1. Cure rates of the respective formulations between a sodium chloride salt plate and a polished aluminum panel (having a trace content of copper) were monitored for two hours by real time FTIR and compared to the cure rate observed when the aluminum panel was treated by immersing it in a 5 wt % solution of aqueous sodium nitrite for 15 minutes and blow drying the panel with dry nitrogen immediately after removing it from the solution. The highest observed cure rate and percent cure after 2 hours for the respective formulations on untreated and treated panels are recorded in Table I below.
              TABLE I                                                     
______________________________________                                    
             Compositions (parts by wt.)                                  
Ingredients    A      B      C    D    E    F                             
______________________________________                                    
Triethylene glycol                                                        
               92.1   92.1   92.1 92.1 92.1 92.1                          
dimethacrylate                                                            
Cumene hydroperoxide                                                      
               2.2    2.2    2.2  2.2  2.2  2.2                           
Saccharin      0.8    0.8    0.8  --   --   --                            
Acrylic acid   --     4.3    --   4.3  4.3  --                            
Acetyl phenyl hydrazine                                                   
               0.6    0.6    --   0.6  --   --                            
% Cure 2 hrs   60     77     36   65   35   16                            
untreated                                                                 
% Cure 2 hrs   72     17     34   30   11   56                            
NaNO.sub.2 treated                                                        
Untreated-highest cure                                                    
               0.10   0.27   0.21 0.08 0.02 0.02                          
rate (moles/l-sec)                                                        
NaNO.sub.2 treated-highest                                                
               0.62   0.02   0.11 0.01 0.01 0.16                          
cure rate (moles/l-sec)                                                   
______________________________________                                    
The results show that nitrite treatment enhanced the cure of formulations A and F. Inhibition was observed with formulations B, D and E, all of which included acrylic acid and two of which also included acetyl phenyl hydrazine. It was also noted that for formulation A the induction period before onset of polymerization was reduced from 40 minutes on the untreated panel to 5 minutes on the treated panel.
EXAMPLE 2
The effect of silicate, borate, carbonate and nitrite salt compounds commonly used as corrosion inhibitors on a commercial anaerobic impregnation formulation (Locite® RESINOL™ RTC) was investigated by adding salt or salt/water mixtures as shown in Table 11 to the commercial aerated formulation containing several ppm copper (11). Oxygen bubbling was maintained and samples taken at 1 hour and 48 hours after addition of the additive to the formulation. Gel times (40° C.) of the samples were determined and are shown in Table II. The results demonstrate that all of the additives gave acceleration relative to the control with the water/NaNO2 combination giving the best acceleration.
              TABLE II                                                    
______________________________________                                    
                   40° C. GEL (MIN)                                
ADDITIVE   AMOUNT (%)    1 HR    48 HRS                                   
______________________________________                                    
None       --            32      25                                       
NaNO.sub.2 0.5            7      6.5                                      
NaNO.sub.2 0.5            2      --                                       
H.sub.2 O  0.1                                                            
Na.sub.2 SiO.sub.3                                                        
           0.5           16      15                                       
Na.sub.2 SiO.sub.3                                                        
           0.5                                                            
H.sub.2 O  0.5           11      15                                       
Na.sub.2 B.sub.4 O.sub.7                                                  
           0.5           11      9.5                                      
Na.sub.2 B.sub.4 O.sub.7                                                  
           0.5                                                            
H.sub.2 O  0.1           16      11                                       
Na.sub.2 CO.sub.3                                                         
           0.5           11      14                                       
Na.sub.2 CO.sub.3                                                         
           0.5                                                            
H.sub.2 O  0.1            6      14                                       
______________________________________                                    
EXAMPLE III
A typical anaerobic impregnant formulation was prepared containing the following ingredients:
______________________________________                                    
71.4%        Triethylene glycol dimethacrylate                            
15.0%        Lauryl methacrylate                                          
7.5%         Hydroxyl propyl methacrylate                                 
5.0%         Dye                                                          
0.51%        p-benzoquinone                                               
0.30%        Benzoic sulfimide                                            
0.25%        t-Butyl hydroperoxide                                        
>0.1%        Chelators and stabilizers                                    
______________________________________                                    
Several ppm of copper (II) salt was added together with the acrylic acid and/or sodium nitrite additives as shown in Table III. Oxygen was bubbled through the respective formulations and samples rested for 40° C. gel times after 1 hour and 24 hour aging periods. The results, given in Table III demonstrate that in this system acrylic acid alone had an inhibiting effect whereas the nitrite alone gave substantial acceleration which was not significantly affected when combined with small amounts of acrylic acid. At higher levels of acrylic acid, a synergistic acceleration was observed.
              TABLE III                                                   
______________________________________                                    
                   40° C. GEL (MIN)                                
ADDITIVE    AMOUNT (%)  1 HR      24 HRS                                  
______________________________________                                    
None        --          20.2      21.4                                    
NaNO.sub.2  0.1         11.8      6.2                                     
NaNO.sub.2  0.5          7.0      6.5                                     
Acrylic     0.5         20.5      18.5                                    
Acid (AA)                                                                 
AA          1.0         24.6      25.0                                    
AA          5.0         --        48                                      
NaNO.sub.2  0.5          8.1      7.0                                     
AA          0.5                                                           
NaNO.sub.2  1.0          8.6      8.0                                     
AA          1.0                                                           
.[.NaNO.sub.2                                                             
            5.0          4.9      4.3    .].                              
.[.AA       1.0                          .].                              
.[.NaNO.sub.2                                                             
            5.0          1.9      --     .].                              
.[.AA       4.0                          .].                              
______________________________________                                    

Claims (14)

    What is claimed is: .[.1. A substantially 100% solids curable formulation comprising:
  1. least 1 and R2 is H or a x-valent hydrocarbon group..]. 2. A formulation as in claim .[.1.]. .Iadd.12, 14 or 15 .Iaddend.wherein the
  2. (meth)acrylic ester comprises at least two (meth)acrylic groups. 3. A formulation as in claim g .[.1.]. .Iadd.12 or 14 .Iaddend.wherein the
  3. transition metal salt is a salt of copper, iron or mixtures thereof. 4. A formulation as in claim .[.1.]. .Iadd.12, 14 or 15 .Iaddend.adapted to be
  4. anaerobically curable. 5. A formulation as in claim .[.1.]. .Iadd.12, 14, or 15 .Iaddend.wherein the peroxy compound is a hydroperoxide or perester.
  5. . A formulation as in claim .[.4.]. .Iadd.14 .Iaddend.wherein the
  6. formulation is adapted for impregnation into a porous substrate. 7. A formulation as in claim .[.1.]. .Iadd.12 or 15 .Iaddend.wherein the
  7. ingredient (c) is a nitrite salt. 8. A formulation as in claim 7 wherein
  8. the nitrite salt is a nitrite salt of an alkali metal. 9. A formulation as in claim .[.1.]. .Iadd.12, 14 or 15 .Iaddend.wherein the ingredient (c) is
  9. present in an amount between 0.001% and 5.0%. 10. A formulation as in claim .[.1.]. .Iadd.12, 14 or 15 .Iaddend.further comprising between about
  10. 0.1% and 5% of a sulfimide accelerator. 11. A formulation as in claim .[.1.]. .Iadd.14 .Iaddend.which is substantially free of an acid having a
  11. pKa of 6 or less. .Iadd.12. A substantially 100% solids curable formulation comprising:
    (a) at least one (meth)acrylic ester;
    (b) a polymerization initiating effective amount of a peroxy compound; and
    (c) an effective amount for accelerating polymerization of a nitrite, borate, silicate or alkaline carbonate salt,
    provided that the composition includes an acid having a pKa of 6 or less, and the composition further includes at least 1 ppm of a transition metal salt and is free of compounds of the formula: ##STR8## where R1 is a monovalent hydrocarbon group, x is an integer of at least 1 and R2 is H or a x-valent hydrocarbon group. .Iaddend.
  12. .Iadd. 3. A formulation as in claim 12 wherein said acid is acrylic acid.
  13. .Iaddend. .Iadd.14. A substantially 100% solids curable formulation comprising:
    (a) at least one (meth)acrylic ester;
    (b) a polymerization initiating effective amount of a peroxy compound; and
    (c) an effective amount for accelerating polymerization of a borate, silicate or alkaline carbonate salt,
    provided that if the composition includes an acid having a pKa of 6 or less, the composition further includes at least 1 ppm of a transition metal salt and is free of compounds of the formula: ##STR9## where R1 is a monovalent hydrocarbon group, x is an integer of at least 1 and R2 is H or a x-valent hydrocarbon group. .Iaddend.
  14. .Iadd. 5. A substantially 100% solids curable formulation comprising:
    (a) at least one (meth)acrylic ester;
    (b) a polymerization initiating effective amount of a peroxy compound; and
    (c) an effective amount for accelerating polymerization of a nitrite, borate, silicate or alkaline carbonate salt,
    provided that the composition is substantially free of an acid having a pKa of 6 or less, and further comprises a co-accelerator compound of the formula: ##STR10## where R1 is a monovalent hydrocarbon group, x is an integer of at least 1 and R2 is H or a x-valent hydrocarbon group. .Iaddend.
US08/036,467 1990-03-26 1993-03-24 Peroxy cured (meth)acrylic ester compositions employing nitrite, borate, silicate or carbonate salt accelerators Expired - Lifetime USRE35058E (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
US08/036,467 USRE35058E (en) 1990-03-26 1993-03-24 Peroxy cured (meth)acrylic ester compositions employing nitrite, borate, silicate or carbonate salt accelerators

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US07/498,842 US5126416A (en) 1990-03-26 1990-03-26 Peroxy cured (meth)acrylic ester compositions employing nitrite, borate, silicate or carbonate salt accelerators
US08/036,467 USRE35058E (en) 1990-03-26 1993-03-24 Peroxy cured (meth)acrylic ester compositions employing nitrite, borate, silicate or carbonate salt accelerators

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
US07/498,842 Reissue US5126416A (en) 1990-03-26 1990-03-26 Peroxy cured (meth)acrylic ester compositions employing nitrite, borate, silicate or carbonate salt accelerators

Publications (1)

Publication Number Publication Date
USRE35058E true USRE35058E (en) 1995-10-10

Family

ID=23982732

Family Applications (2)

Application Number Title Priority Date Filing Date
US07/498,842 Ceased US5126416A (en) 1990-03-26 1990-03-26 Peroxy cured (meth)acrylic ester compositions employing nitrite, borate, silicate or carbonate salt accelerators
US08/036,467 Expired - Lifetime USRE35058E (en) 1990-03-26 1993-03-24 Peroxy cured (meth)acrylic ester compositions employing nitrite, borate, silicate or carbonate salt accelerators

Family Applications Before (1)

Application Number Title Priority Date Filing Date
US07/498,842 Ceased US5126416A (en) 1990-03-26 1990-03-26 Peroxy cured (meth)acrylic ester compositions employing nitrite, borate, silicate or carbonate salt accelerators

Country Status (1)

Country Link
US (2) US5126416A (en)

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050137370A1 (en) * 2003-12-22 2005-06-23 Jialanella Gary L. Accelerated organoborane amine complex initiated polymerizable compositions
US20070083051A1 (en) * 2005-10-07 2007-04-12 Shaoguang Feng Amido-organoborate initiator systems
US20080045680A1 (en) * 2003-12-22 2008-02-21 Dow Global Technologies Inc. Accelerated organoborane amine complex initiated polymerizable compositions
US20080090981A1 (en) * 2006-10-12 2008-04-17 Jialanella Gary L Accelerated organoborane initiated polymerizable compositions
US20080103274A1 (en) * 2006-10-12 2008-05-01 Jialanella Gary L Accelerated organoborane initiated polymerizable compositions
US20100084091A1 (en) * 2007-06-08 2010-04-08 Henkel Corporation Room temperature curing adhesive composition having high temperature properties

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CA2136882A1 (en) * 1993-12-20 1995-06-21 William J. Catena Structural acrylic adhesives
WO2000077110A1 (en) 1999-06-11 2000-12-21 Three Bond Co., Ltd. Anaerobically curable composition
DE10062316A1 (en) * 2000-12-14 2002-07-11 Int Metall Impraegnier Gmbh Method and device for impregnating porous objects

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3691080A (en) * 1969-09-24 1972-09-12 Wacker Chemie Gmbh Nitrites in vinyl chloride polymerization
US4731146A (en) * 1985-08-30 1988-03-15 Loctite Corporation Adhesion promoting primer activator for anaerobic compositions
US4933213A (en) * 1986-11-14 1990-06-12 Societe Chimique Des Charbonnages S.A. Crosslinking process

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3691080A (en) * 1969-09-24 1972-09-12 Wacker Chemie Gmbh Nitrites in vinyl chloride polymerization
US4731146A (en) * 1985-08-30 1988-03-15 Loctite Corporation Adhesion promoting primer activator for anaerobic compositions
US4933213A (en) * 1986-11-14 1990-06-12 Societe Chimique Des Charbonnages S.A. Crosslinking process

Cited By (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7534843B2 (en) 2003-12-22 2009-05-19 Dow Global Technoloigies, Inc. Accelerated organoborane amine complex initiated polymerizable compositions
US20080045681A1 (en) * 2003-12-22 2008-02-21 Dow Global Technologies Inc. Accelerated organoborane amine complex initiated polymerizable compositions
US20080045680A1 (en) * 2003-12-22 2008-02-21 Dow Global Technologies Inc. Accelerated organoborane amine complex initiated polymerizable compositions
US8114947B2 (en) 2003-12-22 2012-02-14 Dow Global Technologies Llc Accelerated organoborane amine complex initiated polymerizable compositions
US20050137370A1 (en) * 2003-12-22 2005-06-23 Jialanella Gary L. Accelerated organoborane amine complex initiated polymerizable compositions
US20070083051A1 (en) * 2005-10-07 2007-04-12 Shaoguang Feng Amido-organoborate initiator systems
US7816562B2 (en) 2005-10-07 2010-10-19 Dow Global Technologies Inc. Amido-organoborate initiator systems
US7737241B2 (en) 2005-10-07 2010-06-15 Dow Global Technologies Inc. Amido-organoborate initiator systems
US20080295961A1 (en) * 2006-10-12 2008-12-04 Dow Global Technologies Inc. Accelerated organoborane initiated polymerizable compositions
US7683132B2 (en) 2006-10-12 2010-03-23 Dow Global Technologies Inc. Accelerated organoborane initiated polymerizable compositions
US7524907B2 (en) 2006-10-12 2009-04-28 Dow Global Technologies, Inc. Accelerated organoborane initiated polymerizable compositions
US20080103274A1 (en) * 2006-10-12 2008-05-01 Jialanella Gary L Accelerated organoborane initiated polymerizable compositions
US20080090981A1 (en) * 2006-10-12 2008-04-17 Jialanella Gary L Accelerated organoborane initiated polymerizable compositions
US20100084091A1 (en) * 2007-06-08 2010-04-08 Henkel Corporation Room temperature curing adhesive composition having high temperature properties
US8119754B2 (en) 2007-06-08 2012-02-21 Henkel Corporation Room temperature curing adhesive composition having high temperature properties

Also Published As

Publication number Publication date
US5126416A (en) 1992-06-30

Similar Documents

Publication Publication Date Title
US4731146A (en) Adhesion promoting primer activator for anaerobic compositions
US3046262A (en) Accelerated anaerobic curing compositions
US3836377A (en) Cyanoacrylate adhesive composition
USRE35058E (en) Peroxy cured (meth)acrylic ester compositions employing nitrite, borate, silicate or carbonate salt accelerators
EP0014062B1 (en) Composition and process for the impregnation and sealing of porous articles
US4990281A (en) Adhesion promoting primer activator for an anaerobic compositions
US3203941A (en) Accelerated anaerobic curing compositions containing a catalyst system of peroxides and polyamino compounds
CA1101144A (en) 2-cyanoacrylate adhesive compositions having enhanced bond strength
US4081308A (en) Rapid curing two part adhesives
US4125494A (en) Adhesion promoter for 2-cyanoacrylate adhesive compositions
EP0894119A1 (en) Free radical polymerizable compositions including para-halogenated aniline derivatives
KR100231970B1 (en) Non-volatile adhesive promoter composition for curing adhesives
US4451615A (en) Polyisoprene toughened adhesive composition
EP2147068A1 (en) Surface insensitive anaerobic adhesive and sealant compositions
US4540738A (en) Acrylic adhesive composition comprising an alpha amino phosphonic acid or salt having improved stability
JPS594667A (en) Two liquid solvent-free adhesive composition adhering method therewith
US4403058A (en) Two-part type (meth)acrylate adhesives having excellent storage stabilities
US4546125A (en) Anaerobic curing adhesive compositions
US4374940A (en) Anaerobic compositions
US5039767A (en) Peroxy cured (meth)acrylic ester compositions employing metal dithiolate catalysts
EP0040079A1 (en) Polyisoprene toughened adhesive composition
US4262106A (en) Highly stable anaerobic compositions and process for preparing them
CA1339456C (en) Adhesive compositions
US4945017A (en) Rust conversion composition
EP3137565B1 (en) Anaerobic curable compositions containing blocked carboxylic acid compounds

Legal Events

Date Code Title Description
AS Assignment

Owner name: LOCTITE CORPORATION, CONNECTICUT

Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:NEWBERTH, FREDERICK F., III;REEL/FRAME:006590/0755

Effective date: 19930303

FPAY Fee payment

Year of fee payment: 4