Claims
- 1. A high ortho etherified phenol-formaldehyde resole resin being characterized by:
- A. having a reacted formaldehyde to phenol mol ratio of 1.10 to 2.0, said formaldehyde reacting with said phenol, forming methylol groups taking a final orientation of about 90% to 100% in the ortho position,
- B. having said phenol selected from the group consisting of phenol, meta-substituted phenols and mixtures of phenol and substituted phenols,
- C. having condensed phenol-aldehyde linkages wherein 25 to 90% of said linkages are benzyl ether linkages having a final orientation essentially in the ortho position and 10 to 75% are methylene linkages taking a final orientation of about 70 to 90% in the ortho position and about 10 to 30% in the para position,
- D. having an average degree of polymerization of less than 4.0, and
- E. having said methylol groups partially etherified with monohydric alcohols.
- 2. The high ortho etherified phenol-formaldehyde resole resin of claim 1, wherein said meta substituted phenol is a phenol having at least one attached radical selected from the group consisting of alkyl, aryl, cycloalkyl, alkenyl, cycloalkenyl, alkaryl, aralkyl, carbocyclic, halogen and mixtures thereof.
- 3. The high ortho etherified phenol-formaldehyde resole resin of claim 1, wherein said substituted phenol is a phenol substituted with a material selected from the group consisting of indenes, vinylidene aromatics, cyclopentadienes, dicyclopentadienes, nonenes, octenes, terpenes and mixtures thereof.
- 4. A high ortho etherified phenol-formaldehyde resole resin of claim 1, wherein said resole resin having been prepared by first reacting said phenol and said formaldehyde in an aqueous reaction mixture under reflux at about 80.degree. C. to 100.degree. C., in the presence of a divalent electropositive metal ion while maintaining a pH in the range between about 4 and 7 wherein said pH is controlled by adding sufficient amounts of an organic acid and thereafter etherifying said resole resin with a monohydric alcohol at a temperature of 65.degree.-100.degree. C., and dehydrating the resulting aqueous solution to a water content of less than about 1 weight percent and an alcohol content of less than about 5 percent.
- 5. A high ortho etherified phenol-formaldehyde resole resin of claim 4, wherein said divalent electropositive metal ion is provided by a compound selected from the group consisting of oxides, hydroxides and organic acid salts of such metal ions, and wherein said resole resins are prepared in the presence of said compounds wherein the amount of said compound is within the range of about 0.1 to 10.0 weight percent based on the weight of said phenols.
- 6. A high ortho etherified phenol-formaldehyde resole resin of claim 4, wherein said divalent electropositive metal ion is selected from the group consisting of zinc (Zn++), cobalt (Co+++), magnesium (Mg++), manganese (Mn++) and calcium (Ca++) or mixtures thereof.
- 7. A high ortho etherified phenol-formaldehyde resole resin of claim 4, wherein said resole resins are prepared while maintaining a pH in the range of between about 4 and 7 wherein said pH is controlled by adding sufficient amounts of an organic acid selected from the group consisting of an aliphatic monocarboxylic acid such as formic or acetic, an aliphatic hydroxy-carboxylic acid such as lactic, an aromatic carboxylic acid such as benzoic or a dicarboxylic acid such as adipic or succinic or mixtures thereof.
- 8. A high ortho etherified resole resin of claim 1, wherein the monohydric alcohol is selected from the group consisting of alkyl and aralkyl.
- 9. A high ortho etherified resole resin of claim 8, wherein said alkyl alcohols are primary and secondary alcohols having 1 to 12 carbon atoms.
- 10. A high ortho etherified resole resin of claim 8, wherein said aralkyl are benzyl and phenethyl.
- 11. A high ortho etherified resole resin of claim 1, wherein said alcohol is incorporated in amounts of about 0.05 to 0.50 methylol ether groups per phenolic group.
- 12. An improved process for preparing an etherified high ortho resole resin, said resin being characterized by:
- A. having a reacted formaldehyde to phenol mol ratio of 1.10 to 2.0, said formaldehyde reacting with said phenol, forming methylol groups taking a final orientation of about 90% to 100% in the ortho position,
- B. having said phenol selected from the group consisting of phenol, meta-substituted phenols and mixtures of phenol and substituted phenols,
- C. having condensed phenol-aldehyde linkages wherein 25 to 90% of said linkages are benzyl ether linkages having a final orientation essentially in the ortho position and 10 to 75% are methylene linkages taking a final orientation of about 70 to 90% in the ortho position and about 10 to 30% in the para position,
- D. having an average degree of polymerization of less than 4.0, and
- E. having said methylol groups partially etherified with monohydric alcohols, said etherified resoles being prepared by first reacting said phenol and said formaldehyde in an aqueous reaction mixture under reflux at about 80.degree. C. to 100.degree. C., in the presence of a divalent electropositive metal ion, while maintaining the pH in the range of about 4 to 7, wherein said pH is controlled by having a sufficient amount of an organic acid present, forming said resole in said reaction mixture, the improvement comprising, etherifying said resole with a monohydric alcohol at a temperature of 65.degree. to 100.degree. C. in said reaction mixture and dehydrating the resultant aqueous reaction mixture to a water content of less than about 1 weight percent and an alcohol content of less than about 5% by weight providing an etherified high ortho resole resin as a single phase clear liquid varnish.
- 13. A process of claim 12 wherein said meta substituted phenol is a phenol having at least one attached radical selected from the group consisting of alkyl, aryl, cycloalkyl, alkenyl, cycloalkenyl, alkaryl, aralkyl, carbocyclic, halogen and mixtures thereof.
- 14. A process of claim 12 wherein said substituted phenol is a phenol substituted with a material selected from the group consisting of indenes, vinylidene aromatics, cyclopentadienes, dicyclopentadienes, nonenes, octenes, terpenes, and mixtures thereof.
- 15. A process of claim 12 wherein said divalent electropositive metal ion is provided by a compound selected from the group consisting of oxides, hydroxides and organic acid salts of such metal ions, and wherein said resole resins are prepared in the presence of said compounds wherein the amount of said compound is within the range of about 0.1 to 10.0 weight percent based on the weight of said phenols.
- 16. A process of claim 12 wherein said divalent electropositive metal ion is selected from the group consisting of zinc (Zn++), cobalt (Co+++), magnesium (Mg++), manganese (Mn++) and calcium (Ca++) or mixtures thereof.
- 17. A process of claim 12 wherein said pH is controlled by adding sufficient amounts of an organic acid selected from the group consisting of an aliphatic monocarboxylic acid such as formic or acetic, an aliphatic hydroxy-carboxylic acid such as lactic, an aromatic carboxylic acid such as benzoic or a dicarboxylic acid such as adipic or succinic or mixtures thereof.
- 18. A process of claim 12 wherein the monohydric alcohol is selected from the group consisting of alkyl and aralkyl.
- 19. A process of claim 12 wherein said alkyl alcohols are primary and secondary alcohols having 1 to 12 carbon atoms.
- 20. A process of claim 12 wherein said aralkyl are benzyl and phenethyl.
- 21. A process of claim 12 wherein said alcohol is incorporated in amounts of about 0.05 tp 0.50 methylol ether groups per phenolic group.
A CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a Continuation-In-Part of copending application, Ser. No. 647,958 filed Jan. 9, 1976 now abandoned.
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Number |
Name |
Date |
Kind |
3485797 |
Robins |
Dec 1969 |
|
3630977 |
Broecker et al. |
Dec 1971 |
|
3637429 |
Anderson et al. |
Jan 1972 |
|
4022942 |
Anderson et al. |
May 1977 |
|
Foreign Referenced Citations (1)
Number |
Date |
Country |
773,611 |
May 1957 |
GBX |
Non-Patent Literature Citations (3)
Entry |
Chem. Abstracts, vol. 85, 1976, 22350w, Kalina et al., effective date 7/75. |
Journal of Polymer Science: Part A, vol. 3, pp. 1079-1106 (1965), Woodbrey et al. |
Phenolic Resins, Whitehouse et al. (1968), pp. 6-9, 20-21, 24-27, 66-71. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
647958 |
Jan 1976 |
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