Claims
- 1. Method for preparing a urethane composition restorative tooth structure, including forming a mixture of a first side comprising an isocyanato reagent under urethane polymer forming conditions simultaneously with a second side comprising a premix of an hydroxylated tertiary amine reagent and another differentially reactive polyol reagent, shaping into a tooth restoration by condensing said mixture against a natural tooth, and reacting to form a polymeric urethane composition restorative tooth structure.
- 2. The method according to claim 1, including also selecting an isocyanato reagent comprising 4,4'-diphenylmethanediisocyanate.
- 3. The method according to claim 2, including also cyclizing said 4,4'-diphenylmethane diisocyanate with itself before mixing for urethane polymer forming reaction.
- 4. The method according to claim 3, including also dissolving said cyclized 4,4'-diphenylmethane diisocyanate in noncyclized 4,4'-diphenylmethane diisocyanate before mixing under urethane polymer forming conditions.
- 5. The method according to claim 1, including also selecting an isocyanato reagent comprising the polyfunctional isocyanate addition reaction product of an aromatic polyfunctional isocyanate moiety and a hydrophobic organic polyfunctional active hydrogen moiety.
- 6. The method according to claim 5, including also selecting 4,4'-diphenylmethane diisocyanate as said aromatic polyfunctional isocyanate moiety.
- 7. The method according to claim 6, including also cyclizing said 4,4'-diphenylmethane diisocyanate with itself and dissolving it in noncyclized 4,4'-diphenylmethane diisocyanate in advance of said addition reaction.
- 8. The method according to claim 6, including also selecting hydroxyl-, thiol-, or carboxylpolysubstituted compounds reactive with isocyanate groups as substituted compounds reactive with isocyanate groups as said hydrophobic organic polyfunctional active hydrogen moiety.
- 9. The method according to claim 8, including also selecting polytetraalkyleneoxide ether polyols, polyoxyalkyleneoxide ether polyols, aliphatic diols, or active-hydrogen substituted oligomers and fatty acid esters reactive with isocyanate groups as said hydrophobic organic polyfunctional active hydrogen moiety.
- 10. The method according to claim 9, including also selecting active hydrogen substituted silicone, fluorocarbon, fluorochlorocarbon, polyether polyols, polytetraalkyleneoxide ether polyols, acrylic, vinyl, butadiene, cis-polyisoprene, polyamide, polyester, vinyl acetate, acrylamide, polyolefin, or Diels-Alder adducts of unsaturated polyester resin oligomers as said hydrophobic organic polyfunctional active hydrogen moiety.
- 11. The method according to claim 6 including also selecting polytetramethylyene oxide ether polyol, D.B. castor oil or hydroxylated glyceryltriricinoleate triester reagent reactive with isocynate as said hydrophobic organic polyfunctional active hydrogen moiety.
- 12. The method according to claim 11, including also reacting said 4,4'-diphenylmethane diisocyanate and said reagent in an inert vessel under high shear conditions at a temperature of about 80.degree. C. for about one hour under a vacuum in excess of one millimeter of mercury.
- 13. The method according to claim 12, including also effecting said reaction to an amine equivalency in the product of above about 400.
- 14. The method according to claim 1, including also selecting as the polyol reagent a polyol preferentially forming a noncrystalline urethane polymer with said isocyanato reagent under urethane polymer forming conditions.
- 15. The method according to claim 1, including selecting as said polyol an hydroxyl-, thiol-, or carboxyl- polysubstituted oligomer having a molecular weight above about 500 and a segregated phase defining reaction with said isocanato reagent relative to said amine reaction with said isocyanato reagent under the same urethane polymer forming conditions.
- 16. The method according to claim 15, including also selecting a polytetraalkyleneoxide ether polyol or polyoxyalkylene ether polyol as said polyol reagent.
- 17. The method according to claim 16, including also selecting an ether polyol having a molecular weight above about 1000.
- 18. The method according to claim 17, including also reacting said polyol with an isocyanato reagent comprising an adduct of liquid 4,4'-diphenylmethanediisocyanate and glyceryltriricinoleate triester or polytetramethyleneoxide ether polyol to form a noncrystalline urethane polymer.
- 19. The method according to claim 18, including also reacting said polyol and isocyanato reagent adduct in admixture with a tertiary amine having a faster rate of reaction with said isocyanato reagent adduct than does said polyol.
- 20. The method according to claim 1, including also selecting as the polyol reagent a polyol preferentially forming a noncrystalline urethane polymer with said isocyanato reagent under urethane polymer conditions, and selecting as the hydroxylated tertiary amine reagent an alkaryl amine, arylamine, mercaptan, alkylene oxide adduct of alkanol amines, alkoxylated or epoxylated ethylenediamines, triazines, amines and hydrazines having hydroxyl, thiol, or carboxyl functionality.
- 21. The method according to claim 1, including also selecting as the polyol reagent a polyol preferentially forming a noncrystalline urethane polymer with said isocyanato reagent under urethane polymer forming conditions, and selecting as the hydroxylated tertiary amine reagent a compound having the formula: ##STR3## in which at least one R=R1, and each remaining R is R1 or R2, and: in which:
- R1=--OH; --SH; --N (CH2CH2) OH2; --N (CH2CH3CH2OH) 2; --N (CH2CHCH3OH) 2.
- R2=--H; Me; -Alkyl; OAlkyl; --OMe; -Halogen; -Aryl; Aroyl.
- 22. The method according to claim 1, including selecting as the polyol reagent a polyol preferentially forming a noncrystalline urethane polymer with said isocyanato reagent under urethane polymer forming conditions, and also selecting as the hydroxylated tertiary amine reagent the compound N'N'N'N'-tetrakis(2-hydroxyethyl or propyl) ethylene diamine.
- 23. The method according to claim 21, including also selecting as the isocyanato reagent 4,4'-diphenylmethane diisocyanate, and as the polyol reagent polyoxypropylene polyol triol.
- 24. The method according to claim 1, including reacting said isocyanato reagent with said hydroxylated tertiary amine reagent to a crystalline urethane polymer, and with said polyol reagent to an amorphous polymer interdispersed with said crystalline polymer.
- 25. The method according to claim 24, including also employing as said first side per 100 parts by weight from 25 to 45 parts of 4,4'-diphenylmethane diisocyanate, from 3 to 8 parts of hydroxylated tertiary amine, glycerylricinoleate triester adducted with said 4,4'-diphenylmethane diisocyanate, or polytetramethyleneoxide ether polyol adducted with said 4,4'-diphenylmethane diisocyanate, and the balance a hardening filler.
- 26. The method according to claim 24, including also employing as said second side per 100 parts by weight from 10 to 30 parts of said polyol, from 10 to 30 parts of said hydroxylated tertiary amine, and the balance zeolite, silica, vitreous particulate, or mixtures thereof.
- 27. Composition for restorative tooth structures, comprising a urethane polymer reaction product condensed in the shape of a tooth restoration structure against a natural tooth, of a first side comprising an isocyanato reagent simultaneously with a second side comprising a premix of an hydroxylated tertiary amine reagent and another polyol reagent.
- 28. The composition according to claim 27, in which said isocyanato reagent comprises 4,4'-diphenylmethanediisocyanate.
- 29. The composition according to claim 28, in which said isocyanato reagent comprises 4,4'-diphenylmethane diisocyanate cyclized with itself.
- 30. The urethane polymer according to claim 29, in which said isocyanato reagent comprises said cyclized 4,4'-diphenylmethane diisocyanate dissolved in noncyclized 4,4'-diphenylmethane diisocyanate.
- 31. The composition according to claim 27, in which said isocyanato reagent comprises the polyfunctional isocyanate addition reaction product of an aromatic polyfunctional isocyanate moiety and a hydrophobic organic polyfunctional active hydrogen moiety.
- 32. The composition according to claim 31, in which said aromatic polyfunctional isocyanate moiety comprises 4,4'-diphenylmethane diisocyanate.
- 33. The composition according to claim 32, in which said 4,4'-diphenylmethane diisocyanate is cyclized with itself and dissolved in noncyclized 4,4'-diphenylmethane diisocyanate.
- 34. The composition according to claim 32, in which said hydrophobic organic polyfunctional active hydrogen moiety comprises hydroxyl-, thiol-, or carboxyl-poly-substituted compounds reactive with isocyanate groups.
- 35. The composition according to claim 34, in which said hydrophobic organic polyfunctional active hydrogen moiety comprises polytetraalkyleneoxide ether polyols or polyoxyalkyleneoxide ether polyols, aliphatic diols, or active-hydrogen substituted oligomers and fatty acid esters reactive with isocyanate groups.
- 36. The composition according to claim 35, in which said hydrophobic organic polyfunctional active hydrogen moiety comprises active hydrogen substituted oligomers selected from silicone, fluorocarbon, fluorochlorocarbon, polyether polyols, polytetraalkyleneoxide ether polyols, methacrylic, vinyl, butadiene, cis-polyisoprene, polyamide, polyester, vinyl acetate, acrylamide, polyolefin, or Diels-Alder adducts of unsaturated polyester resin oligomers.
- 37. The composition according to claim 32, in which said hydrophobic organic polyfunctional active hydrogen moiety comprises polytetramethyleneoxide ether polyols, D.B. castor oil, or hydroxylated glyceryltriricinoleate triester reagent reactive with isocyanate.
- 38. The composition according to claim 37, in which said 4,4'-diphenylmethane diisocyanate and said hydroxylated reactive reagent are prereacted in a chemically inert vessel under high shear conditions at a temperature of about 80.degree. C. for about one hour under a vacuum in excess of one millimeter of mercury.
- 39. The composition according to claim 38, in which said prereacted compounds have an amine equivalency in the product of above about 400.
- 40. The composition according to claim 27, in which said polyol reagent is a polyol preferentially forming a noncrystalline urethane polymer with said isocyanato reagent under urethane polymer forming conditions.
- 41. The composition according to claim 40 in which said polyol is an hydroxyl-, thiol-, or carboxyl- polysubstituted oligomer having a molecular weight above about 500 and a segregated phase defining reaction with said iscyanato reagent than said amine reaction with said isocyanate reagent under the same urethane polymer forming conditions.
- 42. The composition according to claim 41, in which said polyol reagent is a polytetraalkyleneoxide ether polyol or polyoxyalkylene ether polyol.
- 43. The composition according to claim 42, in which said polyol has a molecular weight above about 1000.
- 44. The composition according to claim 43, in which the urethane polymer is obtained by reaction of said polyol with an isocyanato reagent comprising an adduct of liquid 4,4'-diphenylmethanediisocyanate and polytetramethyleneoxide ether polyol, D.B. castor oil, or glyceryltriricinoleate triester and is a noncrystalline urethane polymer.
- 45. The composition according to claim 44, in which tertiary amine reagent has a faster rate of reaction with said isocyanato reagent adduct than does said polyol reagent, whereby said urethane polymer comprises a crystalline portion produced by reaction of said amine and said adduct and a noncrystalline portion produced by reaction of said polyol and said adduct, said crystalline portion being dispersed through said noncrystalline portion.
- 46. The composition according to claim 27, in which said polyol reagent is a polyol preferentially forming a noncrystalline urethane polymer with said isocyanato reagent under urethane polymer forming conditions, and said hydroxylated tertiary amine reagent comprises an alkaryl amine, arylamine, mercaptan or alkylene oxide adduct of alkanol amines, alkoxylated or epoxylated ethylenediamines, triazines, amines and hydrazines having hydroyxl, thiol, or carboxyl functionality.
- 47. The composition according to claim 27, in which said polyol reagent is a polyol preferentially forming a noncrystalline urethane polymer with said isocyanato reagent under urethane polymer forming conditions, and said hydroxylated tertiary amine reagent compound has the formula: ##STR4## in which at least one R=R1, and each remaining R is R1 or R2, and: in which:
- R1=--OH; --SH; --N (CH2CH2) OH2; --N (CH2CH3CH2OH) 2; --N (CH2CHCH3OH) 2.
- R2=--H; Me; -Alkyl; OAlkyl; --OMe; -Halogen; -Aryl; Aroyl.
- 48. The composition according to claim 27, in which said polyol reagent is a polyol preferentially forming a noncrystalline urethane polymer with said isocyanato reagent under urethane polymer forming conditions, and the hydroxylated tertiary amine reagent is the N'N'N'N'-tetrakis(2-hydroxyethyl or propyl) ethylene diamine.
- 49. The composition according to claim 47, in which said isocyanato reagent is 4,4'-diphenylmethane diisocyanate, and said polyol reagent is polyoxypropylene polyol triol.
- 50. The composition according to claim 27, in which the urethane polymer obtained by reaction of said isocyanato reagent with said hydroxylated tertiary amine reagent is a crystalline urethane polymer, and the urethane polymer obtained by reaction of said isocyanato reagent with said polyol reagent is an amorphous polymer interdispersed with said crystalline polymer.
- 51. The composition according to claim 50, in which said polymer comprises per 200 parts by weight from 25 to 45 parts of 4,4'-diphenylmethane diisocyanate, from 3 to 8 parts of polytetramethyleneoxide ether polyol, D.B. castor oil, or glycerylricinoleate triester adducted with said 4,4'-diphenylmethane diisocyanate, from 0 to 30 parts of said polyol, from 10 to 60 parts of said hydroxylated tertiary amine, and the balance a hardening filler.
- 52. Method of shaping a urethane polymer composition against a natural tooth, said composition comprising the reaction product of a first side comprising an isocyanato reagent and a second side comprising a premix of an hydroxylated tertiary amine reagent and another differentially reactive polyol reagent under urethane polymer forming conditions, including incorporating an effective amount above about 5% by weight zeolite in said composition sufficient to enhance the malleability of said composition, and subsequently shaping said composition against said tooth.
- 53. Method for preparing a urethane composition restorative tooth structure, including forming a mixture of a first side comprising an isocyanato reagent comprising the polyfunctional isocyanate addition reaction product of 4,4'-diphenylmethane diisocyanate and D.B. castor oil, and a second side comprising a polyoxyalkylene ether polyol having a molecular weight above about 1000 and a tertiary amine comprising N'N'N'N'-tetrakis (2-hydroxylpropyl) ethylene diamine differentially reactive with said isocyanato reagent under urethane polymer forming conditions, shaping said mixture against a natural tooth, and reacting to form a polymeric urethane composition restorative tooth structure.
- 54. Urethane composition restorative tooth structure, comprising a mixture of a first side comprising an isocyanato reagent comprising the polyfunctional isocyanate addition reaction product of 4,4'-diphenylmethane diisocyanate and D.B. castor oil, and a second side comprising a polyoxyalkylene ether polyol having a molecular weight above about 1000 and a tertiary amine comprising N'N'N'N'-tetrakis (2-hydroxylpropyl) ethylene diamine differentially reactive with said isocyanato reagent under urethane polymer forming conditions, said mixture being condensed against a natural tooth, and reacted to a polymeric urethane composition restorative tooth structure.
Parent Case Info
This application is a division of application Ser. No. 739,827 now U.S. Pat. No. 5,160,072, filed May 31, 1985.
US Referenced Citations (3)
Number |
Name |
Date |
Kind |
4281892 |
Colpitts et al. |
Aug 1981 |
|
4476292 |
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4677157 |
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Divisions (1)
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Number |
Date |
Country |
Parent |
739827 |
May 1988 |
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